1 /*******************************************************************************
2  *
3  * Intel Ethernet Controller XL710 Family Linux Driver
4  * Copyright(c) 2013 - 2017 Intel Corporation.
5  *
6  * This program is free software; you can redistribute it and/or modify it
7  * under the terms and conditions of the GNU General Public License,
8  * version 2, as published by the Free Software Foundation.
9  *
10  * This program is distributed in the hope it will be useful, but WITHOUT
11  * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
12  * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License for
13  * more details.
14  *
15  * You should have received a copy of the GNU General Public License along
16  * with this program.  If not, see <http://www.gnu.org/licenses/>.
17  *
18  * The full GNU General Public License is included in this distribution in
19  * the file called "COPYING".
20  *
21  * Contact Information:
22  * e1000-devel Mailing List <e1000-devel@lists.sourceforge.net>
23  * Intel Corporation, 5200 N.E. Elam Young Parkway, Hillsboro, OR 97124-6497
24  *
25  ******************************************************************************/
26 
27 #include <linux/etherdevice.h>
28 #include <linux/of_net.h>
29 #include <linux/pci.h>
30 #include <linux/bpf.h>
31 
32 /* Local includes */
33 #include "i40e.h"
34 #include "i40e_diag.h"
35 #include <net/udp_tunnel.h>
36 /* All i40e tracepoints are defined by the include below, which
37  * must be included exactly once across the whole kernel with
38  * CREATE_TRACE_POINTS defined
39  */
40 #define CREATE_TRACE_POINTS
41 #include "i40e_trace.h"
42 
43 const char i40e_driver_name[] = "i40e";
44 static const char i40e_driver_string[] =
45 			"Intel(R) Ethernet Connection XL710 Network Driver";
46 
47 #define DRV_KERN "-k"
48 
49 #define DRV_VERSION_MAJOR 2
50 #define DRV_VERSION_MINOR 1
51 #define DRV_VERSION_BUILD 14
52 #define DRV_VERSION __stringify(DRV_VERSION_MAJOR) "." \
53 	     __stringify(DRV_VERSION_MINOR) "." \
54 	     __stringify(DRV_VERSION_BUILD)    DRV_KERN
55 const char i40e_driver_version_str[] = DRV_VERSION;
56 static const char i40e_copyright[] = "Copyright (c) 2013 - 2014 Intel Corporation.";
57 
58 /* a bit of forward declarations */
59 static void i40e_vsi_reinit_locked(struct i40e_vsi *vsi);
60 static void i40e_handle_reset_warning(struct i40e_pf *pf, bool lock_acquired);
61 static int i40e_add_vsi(struct i40e_vsi *vsi);
62 static int i40e_add_veb(struct i40e_veb *veb, struct i40e_vsi *vsi);
63 static int i40e_setup_pf_switch(struct i40e_pf *pf, bool reinit);
64 static int i40e_setup_misc_vector(struct i40e_pf *pf);
65 static void i40e_determine_queue_usage(struct i40e_pf *pf);
66 static int i40e_setup_pf_filter_control(struct i40e_pf *pf);
67 static void i40e_prep_for_reset(struct i40e_pf *pf, bool lock_acquired);
68 static int i40e_reset(struct i40e_pf *pf);
69 static void i40e_rebuild(struct i40e_pf *pf, bool reinit, bool lock_acquired);
70 static void i40e_fdir_sb_setup(struct i40e_pf *pf);
71 static int i40e_veb_get_bw_info(struct i40e_veb *veb);
72 static int i40e_add_del_cloud_filter(struct i40e_vsi *vsi,
73 				     struct i40e_cloud_filter *filter,
74 				     bool add);
75 static int i40e_add_del_cloud_filter_big_buf(struct i40e_vsi *vsi,
76 					     struct i40e_cloud_filter *filter,
77 					     bool add);
78 static int i40e_get_capabilities(struct i40e_pf *pf,
79 				 enum i40e_admin_queue_opc list_type);
80 
81 
82 /* i40e_pci_tbl - PCI Device ID Table
83  *
84  * Last entry must be all 0s
85  *
86  * { Vendor ID, Device ID, SubVendor ID, SubDevice ID,
87  *   Class, Class Mask, private data (not used) }
88  */
89 static const struct pci_device_id i40e_pci_tbl[] = {
90 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_SFP_XL710), 0},
91 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_QEMU), 0},
92 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_KX_B), 0},
93 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_KX_C), 0},
94 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_QSFP_A), 0},
95 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_QSFP_B), 0},
96 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_QSFP_C), 0},
97 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_10G_BASE_T), 0},
98 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_10G_BASE_T4), 0},
99 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_KX_X722), 0},
100 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_QSFP_X722), 0},
101 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_SFP_X722), 0},
102 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_1G_BASE_T_X722), 0},
103 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_10G_BASE_T_X722), 0},
104 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_SFP_I_X722), 0},
105 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_20G_KR2), 0},
106 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_20G_KR2_A), 0},
107 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_25G_B), 0},
108 	{PCI_VDEVICE(INTEL, I40E_DEV_ID_25G_SFP28), 0},
109 	/* required last entry */
110 	{0, }
111 };
112 MODULE_DEVICE_TABLE(pci, i40e_pci_tbl);
113 
114 #define I40E_MAX_VF_COUNT 128
115 static int debug = -1;
116 module_param(debug, uint, 0);
117 MODULE_PARM_DESC(debug, "Debug level (0=none,...,16=all), Debug mask (0x8XXXXXXX)");
118 
119 MODULE_AUTHOR("Intel Corporation, <e1000-devel@lists.sourceforge.net>");
120 MODULE_DESCRIPTION("Intel(R) Ethernet Connection XL710 Network Driver");
121 MODULE_LICENSE("GPL");
122 MODULE_VERSION(DRV_VERSION);
123 
124 static struct workqueue_struct *i40e_wq;
125 
126 /**
127  * i40e_allocate_dma_mem_d - OS specific memory alloc for shared code
128  * @hw:   pointer to the HW structure
129  * @mem:  ptr to mem struct to fill out
130  * @size: size of memory requested
131  * @alignment: what to align the allocation to
132  **/
133 int i40e_allocate_dma_mem_d(struct i40e_hw *hw, struct i40e_dma_mem *mem,
134 			    u64 size, u32 alignment)
135 {
136 	struct i40e_pf *pf = (struct i40e_pf *)hw->back;
137 
138 	mem->size = ALIGN(size, alignment);
139 	mem->va = dma_zalloc_coherent(&pf->pdev->dev, mem->size,
140 				      &mem->pa, GFP_KERNEL);
141 	if (!mem->va)
142 		return -ENOMEM;
143 
144 	return 0;
145 }
146 
147 /**
148  * i40e_free_dma_mem_d - OS specific memory free for shared code
149  * @hw:   pointer to the HW structure
150  * @mem:  ptr to mem struct to free
151  **/
152 int i40e_free_dma_mem_d(struct i40e_hw *hw, struct i40e_dma_mem *mem)
153 {
154 	struct i40e_pf *pf = (struct i40e_pf *)hw->back;
155 
156 	dma_free_coherent(&pf->pdev->dev, mem->size, mem->va, mem->pa);
157 	mem->va = NULL;
158 	mem->pa = 0;
159 	mem->size = 0;
160 
161 	return 0;
162 }
163 
164 /**
165  * i40e_allocate_virt_mem_d - OS specific memory alloc for shared code
166  * @hw:   pointer to the HW structure
167  * @mem:  ptr to mem struct to fill out
168  * @size: size of memory requested
169  **/
170 int i40e_allocate_virt_mem_d(struct i40e_hw *hw, struct i40e_virt_mem *mem,
171 			     u32 size)
172 {
173 	mem->size = size;
174 	mem->va = kzalloc(size, GFP_KERNEL);
175 
176 	if (!mem->va)
177 		return -ENOMEM;
178 
179 	return 0;
180 }
181 
182 /**
183  * i40e_free_virt_mem_d - OS specific memory free for shared code
184  * @hw:   pointer to the HW structure
185  * @mem:  ptr to mem struct to free
186  **/
187 int i40e_free_virt_mem_d(struct i40e_hw *hw, struct i40e_virt_mem *mem)
188 {
189 	/* it's ok to kfree a NULL pointer */
190 	kfree(mem->va);
191 	mem->va = NULL;
192 	mem->size = 0;
193 
194 	return 0;
195 }
196 
197 /**
198  * i40e_get_lump - find a lump of free generic resource
199  * @pf: board private structure
200  * @pile: the pile of resource to search
201  * @needed: the number of items needed
202  * @id: an owner id to stick on the items assigned
203  *
204  * Returns the base item index of the lump, or negative for error
205  *
206  * The search_hint trick and lack of advanced fit-finding only work
207  * because we're highly likely to have all the same size lump requests.
208  * Linear search time and any fragmentation should be minimal.
209  **/
210 static int i40e_get_lump(struct i40e_pf *pf, struct i40e_lump_tracking *pile,
211 			 u16 needed, u16 id)
212 {
213 	int ret = -ENOMEM;
214 	int i, j;
215 
216 	if (!pile || needed == 0 || id >= I40E_PILE_VALID_BIT) {
217 		dev_info(&pf->pdev->dev,
218 			 "param err: pile=%p needed=%d id=0x%04x\n",
219 			 pile, needed, id);
220 		return -EINVAL;
221 	}
222 
223 	/* start the linear search with an imperfect hint */
224 	i = pile->search_hint;
225 	while (i < pile->num_entries) {
226 		/* skip already allocated entries */
227 		if (pile->list[i] & I40E_PILE_VALID_BIT) {
228 			i++;
229 			continue;
230 		}
231 
232 		/* do we have enough in this lump? */
233 		for (j = 0; (j < needed) && ((i+j) < pile->num_entries); j++) {
234 			if (pile->list[i+j] & I40E_PILE_VALID_BIT)
235 				break;
236 		}
237 
238 		if (j == needed) {
239 			/* there was enough, so assign it to the requestor */
240 			for (j = 0; j < needed; j++)
241 				pile->list[i+j] = id | I40E_PILE_VALID_BIT;
242 			ret = i;
243 			pile->search_hint = i + j;
244 			break;
245 		}
246 
247 		/* not enough, so skip over it and continue looking */
248 		i += j;
249 	}
250 
251 	return ret;
252 }
253 
254 /**
255  * i40e_put_lump - return a lump of generic resource
256  * @pile: the pile of resource to search
257  * @index: the base item index
258  * @id: the owner id of the items assigned
259  *
260  * Returns the count of items in the lump
261  **/
262 static int i40e_put_lump(struct i40e_lump_tracking *pile, u16 index, u16 id)
263 {
264 	int valid_id = (id | I40E_PILE_VALID_BIT);
265 	int count = 0;
266 	int i;
267 
268 	if (!pile || index >= pile->num_entries)
269 		return -EINVAL;
270 
271 	for (i = index;
272 	     i < pile->num_entries && pile->list[i] == valid_id;
273 	     i++) {
274 		pile->list[i] = 0;
275 		count++;
276 	}
277 
278 	if (count && index < pile->search_hint)
279 		pile->search_hint = index;
280 
281 	return count;
282 }
283 
284 /**
285  * i40e_find_vsi_from_id - searches for the vsi with the given id
286  * @pf - the pf structure to search for the vsi
287  * @id - id of the vsi it is searching for
288  **/
289 struct i40e_vsi *i40e_find_vsi_from_id(struct i40e_pf *pf, u16 id)
290 {
291 	int i;
292 
293 	for (i = 0; i < pf->num_alloc_vsi; i++)
294 		if (pf->vsi[i] && (pf->vsi[i]->id == id))
295 			return pf->vsi[i];
296 
297 	return NULL;
298 }
299 
300 /**
301  * i40e_service_event_schedule - Schedule the service task to wake up
302  * @pf: board private structure
303  *
304  * If not already scheduled, this puts the task into the work queue
305  **/
306 void i40e_service_event_schedule(struct i40e_pf *pf)
307 {
308 	if (!test_bit(__I40E_DOWN, pf->state) &&
309 	    !test_bit(__I40E_RESET_RECOVERY_PENDING, pf->state))
310 		queue_work(i40e_wq, &pf->service_task);
311 }
312 
313 /**
314  * i40e_tx_timeout - Respond to a Tx Hang
315  * @netdev: network interface device structure
316  *
317  * If any port has noticed a Tx timeout, it is likely that the whole
318  * device is munged, not just the one netdev port, so go for the full
319  * reset.
320  **/
321 static void i40e_tx_timeout(struct net_device *netdev)
322 {
323 	struct i40e_netdev_priv *np = netdev_priv(netdev);
324 	struct i40e_vsi *vsi = np->vsi;
325 	struct i40e_pf *pf = vsi->back;
326 	struct i40e_ring *tx_ring = NULL;
327 	unsigned int i, hung_queue = 0;
328 	u32 head, val;
329 
330 	pf->tx_timeout_count++;
331 
332 	/* find the stopped queue the same way the stack does */
333 	for (i = 0; i < netdev->num_tx_queues; i++) {
334 		struct netdev_queue *q;
335 		unsigned long trans_start;
336 
337 		q = netdev_get_tx_queue(netdev, i);
338 		trans_start = q->trans_start;
339 		if (netif_xmit_stopped(q) &&
340 		    time_after(jiffies,
341 			       (trans_start + netdev->watchdog_timeo))) {
342 			hung_queue = i;
343 			break;
344 		}
345 	}
346 
347 	if (i == netdev->num_tx_queues) {
348 		netdev_info(netdev, "tx_timeout: no netdev hung queue found\n");
349 	} else {
350 		/* now that we have an index, find the tx_ring struct */
351 		for (i = 0; i < vsi->num_queue_pairs; i++) {
352 			if (vsi->tx_rings[i] && vsi->tx_rings[i]->desc) {
353 				if (hung_queue ==
354 				    vsi->tx_rings[i]->queue_index) {
355 					tx_ring = vsi->tx_rings[i];
356 					break;
357 				}
358 			}
359 		}
360 	}
361 
362 	if (time_after(jiffies, (pf->tx_timeout_last_recovery + HZ*20)))
363 		pf->tx_timeout_recovery_level = 1;  /* reset after some time */
364 	else if (time_before(jiffies,
365 		      (pf->tx_timeout_last_recovery + netdev->watchdog_timeo)))
366 		return;   /* don't do any new action before the next timeout */
367 
368 	if (tx_ring) {
369 		head = i40e_get_head(tx_ring);
370 		/* Read interrupt register */
371 		if (pf->flags & I40E_FLAG_MSIX_ENABLED)
372 			val = rd32(&pf->hw,
373 			     I40E_PFINT_DYN_CTLN(tx_ring->q_vector->v_idx +
374 						tx_ring->vsi->base_vector - 1));
375 		else
376 			val = rd32(&pf->hw, I40E_PFINT_DYN_CTL0);
377 
378 		netdev_info(netdev, "tx_timeout: VSI_seid: %d, Q %d, NTC: 0x%x, HWB: 0x%x, NTU: 0x%x, TAIL: 0x%x, INT: 0x%x\n",
379 			    vsi->seid, hung_queue, tx_ring->next_to_clean,
380 			    head, tx_ring->next_to_use,
381 			    readl(tx_ring->tail), val);
382 	}
383 
384 	pf->tx_timeout_last_recovery = jiffies;
385 	netdev_info(netdev, "tx_timeout recovery level %d, hung_queue %d\n",
386 		    pf->tx_timeout_recovery_level, hung_queue);
387 
388 	switch (pf->tx_timeout_recovery_level) {
389 	case 1:
390 		set_bit(__I40E_PF_RESET_REQUESTED, pf->state);
391 		break;
392 	case 2:
393 		set_bit(__I40E_CORE_RESET_REQUESTED, pf->state);
394 		break;
395 	case 3:
396 		set_bit(__I40E_GLOBAL_RESET_REQUESTED, pf->state);
397 		break;
398 	default:
399 		netdev_err(netdev, "tx_timeout recovery unsuccessful\n");
400 		break;
401 	}
402 
403 	i40e_service_event_schedule(pf);
404 	pf->tx_timeout_recovery_level++;
405 }
406 
407 /**
408  * i40e_get_vsi_stats_struct - Get System Network Statistics
409  * @vsi: the VSI we care about
410  *
411  * Returns the address of the device statistics structure.
412  * The statistics are actually updated from the service task.
413  **/
414 struct rtnl_link_stats64 *i40e_get_vsi_stats_struct(struct i40e_vsi *vsi)
415 {
416 	return &vsi->net_stats;
417 }
418 
419 /**
420  * i40e_get_netdev_stats_struct_tx - populate stats from a Tx ring
421  * @ring: Tx ring to get statistics from
422  * @stats: statistics entry to be updated
423  **/
424 static void i40e_get_netdev_stats_struct_tx(struct i40e_ring *ring,
425 					    struct rtnl_link_stats64 *stats)
426 {
427 	u64 bytes, packets;
428 	unsigned int start;
429 
430 	do {
431 		start = u64_stats_fetch_begin_irq(&ring->syncp);
432 		packets = ring->stats.packets;
433 		bytes   = ring->stats.bytes;
434 	} while (u64_stats_fetch_retry_irq(&ring->syncp, start));
435 
436 	stats->tx_packets += packets;
437 	stats->tx_bytes   += bytes;
438 }
439 
440 /**
441  * i40e_get_netdev_stats_struct - Get statistics for netdev interface
442  * @netdev: network interface device structure
443  *
444  * Returns the address of the device statistics structure.
445  * The statistics are actually updated from the service task.
446  **/
447 static void i40e_get_netdev_stats_struct(struct net_device *netdev,
448 				  struct rtnl_link_stats64 *stats)
449 {
450 	struct i40e_netdev_priv *np = netdev_priv(netdev);
451 	struct i40e_ring *tx_ring, *rx_ring;
452 	struct i40e_vsi *vsi = np->vsi;
453 	struct rtnl_link_stats64 *vsi_stats = i40e_get_vsi_stats_struct(vsi);
454 	int i;
455 
456 	if (test_bit(__I40E_VSI_DOWN, vsi->state))
457 		return;
458 
459 	if (!vsi->tx_rings)
460 		return;
461 
462 	rcu_read_lock();
463 	for (i = 0; i < vsi->num_queue_pairs; i++) {
464 		u64 bytes, packets;
465 		unsigned int start;
466 
467 		tx_ring = READ_ONCE(vsi->tx_rings[i]);
468 		if (!tx_ring)
469 			continue;
470 		i40e_get_netdev_stats_struct_tx(tx_ring, stats);
471 
472 		rx_ring = &tx_ring[1];
473 
474 		do {
475 			start = u64_stats_fetch_begin_irq(&rx_ring->syncp);
476 			packets = rx_ring->stats.packets;
477 			bytes   = rx_ring->stats.bytes;
478 		} while (u64_stats_fetch_retry_irq(&rx_ring->syncp, start));
479 
480 		stats->rx_packets += packets;
481 		stats->rx_bytes   += bytes;
482 
483 		if (i40e_enabled_xdp_vsi(vsi))
484 			i40e_get_netdev_stats_struct_tx(&rx_ring[1], stats);
485 	}
486 	rcu_read_unlock();
487 
488 	/* following stats updated by i40e_watchdog_subtask() */
489 	stats->multicast	= vsi_stats->multicast;
490 	stats->tx_errors	= vsi_stats->tx_errors;
491 	stats->tx_dropped	= vsi_stats->tx_dropped;
492 	stats->rx_errors	= vsi_stats->rx_errors;
493 	stats->rx_dropped	= vsi_stats->rx_dropped;
494 	stats->rx_crc_errors	= vsi_stats->rx_crc_errors;
495 	stats->rx_length_errors	= vsi_stats->rx_length_errors;
496 }
497 
498 /**
499  * i40e_vsi_reset_stats - Resets all stats of the given vsi
500  * @vsi: the VSI to have its stats reset
501  **/
502 void i40e_vsi_reset_stats(struct i40e_vsi *vsi)
503 {
504 	struct rtnl_link_stats64 *ns;
505 	int i;
506 
507 	if (!vsi)
508 		return;
509 
510 	ns = i40e_get_vsi_stats_struct(vsi);
511 	memset(ns, 0, sizeof(*ns));
512 	memset(&vsi->net_stats_offsets, 0, sizeof(vsi->net_stats_offsets));
513 	memset(&vsi->eth_stats, 0, sizeof(vsi->eth_stats));
514 	memset(&vsi->eth_stats_offsets, 0, sizeof(vsi->eth_stats_offsets));
515 	if (vsi->rx_rings && vsi->rx_rings[0]) {
516 		for (i = 0; i < vsi->num_queue_pairs; i++) {
517 			memset(&vsi->rx_rings[i]->stats, 0,
518 			       sizeof(vsi->rx_rings[i]->stats));
519 			memset(&vsi->rx_rings[i]->rx_stats, 0,
520 			       sizeof(vsi->rx_rings[i]->rx_stats));
521 			memset(&vsi->tx_rings[i]->stats, 0,
522 			       sizeof(vsi->tx_rings[i]->stats));
523 			memset(&vsi->tx_rings[i]->tx_stats, 0,
524 			       sizeof(vsi->tx_rings[i]->tx_stats));
525 		}
526 	}
527 	vsi->stat_offsets_loaded = false;
528 }
529 
530 /**
531  * i40e_pf_reset_stats - Reset all of the stats for the given PF
532  * @pf: the PF to be reset
533  **/
534 void i40e_pf_reset_stats(struct i40e_pf *pf)
535 {
536 	int i;
537 
538 	memset(&pf->stats, 0, sizeof(pf->stats));
539 	memset(&pf->stats_offsets, 0, sizeof(pf->stats_offsets));
540 	pf->stat_offsets_loaded = false;
541 
542 	for (i = 0; i < I40E_MAX_VEB; i++) {
543 		if (pf->veb[i]) {
544 			memset(&pf->veb[i]->stats, 0,
545 			       sizeof(pf->veb[i]->stats));
546 			memset(&pf->veb[i]->stats_offsets, 0,
547 			       sizeof(pf->veb[i]->stats_offsets));
548 			pf->veb[i]->stat_offsets_loaded = false;
549 		}
550 	}
551 	pf->hw_csum_rx_error = 0;
552 }
553 
554 /**
555  * i40e_stat_update48 - read and update a 48 bit stat from the chip
556  * @hw: ptr to the hardware info
557  * @hireg: the high 32 bit reg to read
558  * @loreg: the low 32 bit reg to read
559  * @offset_loaded: has the initial offset been loaded yet
560  * @offset: ptr to current offset value
561  * @stat: ptr to the stat
562  *
563  * Since the device stats are not reset at PFReset, they likely will not
564  * be zeroed when the driver starts.  We'll save the first values read
565  * and use them as offsets to be subtracted from the raw values in order
566  * to report stats that count from zero.  In the process, we also manage
567  * the potential roll-over.
568  **/
569 static void i40e_stat_update48(struct i40e_hw *hw, u32 hireg, u32 loreg,
570 			       bool offset_loaded, u64 *offset, u64 *stat)
571 {
572 	u64 new_data;
573 
574 	if (hw->device_id == I40E_DEV_ID_QEMU) {
575 		new_data = rd32(hw, loreg);
576 		new_data |= ((u64)(rd32(hw, hireg) & 0xFFFF)) << 32;
577 	} else {
578 		new_data = rd64(hw, loreg);
579 	}
580 	if (!offset_loaded)
581 		*offset = new_data;
582 	if (likely(new_data >= *offset))
583 		*stat = new_data - *offset;
584 	else
585 		*stat = (new_data + BIT_ULL(48)) - *offset;
586 	*stat &= 0xFFFFFFFFFFFFULL;
587 }
588 
589 /**
590  * i40e_stat_update32 - read and update a 32 bit stat from the chip
591  * @hw: ptr to the hardware info
592  * @reg: the hw reg to read
593  * @offset_loaded: has the initial offset been loaded yet
594  * @offset: ptr to current offset value
595  * @stat: ptr to the stat
596  **/
597 static void i40e_stat_update32(struct i40e_hw *hw, u32 reg,
598 			       bool offset_loaded, u64 *offset, u64 *stat)
599 {
600 	u32 new_data;
601 
602 	new_data = rd32(hw, reg);
603 	if (!offset_loaded)
604 		*offset = new_data;
605 	if (likely(new_data >= *offset))
606 		*stat = (u32)(new_data - *offset);
607 	else
608 		*stat = (u32)((new_data + BIT_ULL(32)) - *offset);
609 }
610 
611 /**
612  * i40e_stat_update_and_clear32 - read and clear hw reg, update a 32 bit stat
613  * @hw: ptr to the hardware info
614  * @reg: the hw reg to read and clear
615  * @stat: ptr to the stat
616  **/
617 static void i40e_stat_update_and_clear32(struct i40e_hw *hw, u32 reg, u64 *stat)
618 {
619 	u32 new_data = rd32(hw, reg);
620 
621 	wr32(hw, reg, 1); /* must write a nonzero value to clear register */
622 	*stat += new_data;
623 }
624 
625 /**
626  * i40e_update_eth_stats - Update VSI-specific ethernet statistics counters.
627  * @vsi: the VSI to be updated
628  **/
629 void i40e_update_eth_stats(struct i40e_vsi *vsi)
630 {
631 	int stat_idx = le16_to_cpu(vsi->info.stat_counter_idx);
632 	struct i40e_pf *pf = vsi->back;
633 	struct i40e_hw *hw = &pf->hw;
634 	struct i40e_eth_stats *oes;
635 	struct i40e_eth_stats *es;     /* device's eth stats */
636 
637 	es = &vsi->eth_stats;
638 	oes = &vsi->eth_stats_offsets;
639 
640 	/* Gather up the stats that the hw collects */
641 	i40e_stat_update32(hw, I40E_GLV_TEPC(stat_idx),
642 			   vsi->stat_offsets_loaded,
643 			   &oes->tx_errors, &es->tx_errors);
644 	i40e_stat_update32(hw, I40E_GLV_RDPC(stat_idx),
645 			   vsi->stat_offsets_loaded,
646 			   &oes->rx_discards, &es->rx_discards);
647 	i40e_stat_update32(hw, I40E_GLV_RUPP(stat_idx),
648 			   vsi->stat_offsets_loaded,
649 			   &oes->rx_unknown_protocol, &es->rx_unknown_protocol);
650 	i40e_stat_update32(hw, I40E_GLV_TEPC(stat_idx),
651 			   vsi->stat_offsets_loaded,
652 			   &oes->tx_errors, &es->tx_errors);
653 
654 	i40e_stat_update48(hw, I40E_GLV_GORCH(stat_idx),
655 			   I40E_GLV_GORCL(stat_idx),
656 			   vsi->stat_offsets_loaded,
657 			   &oes->rx_bytes, &es->rx_bytes);
658 	i40e_stat_update48(hw, I40E_GLV_UPRCH(stat_idx),
659 			   I40E_GLV_UPRCL(stat_idx),
660 			   vsi->stat_offsets_loaded,
661 			   &oes->rx_unicast, &es->rx_unicast);
662 	i40e_stat_update48(hw, I40E_GLV_MPRCH(stat_idx),
663 			   I40E_GLV_MPRCL(stat_idx),
664 			   vsi->stat_offsets_loaded,
665 			   &oes->rx_multicast, &es->rx_multicast);
666 	i40e_stat_update48(hw, I40E_GLV_BPRCH(stat_idx),
667 			   I40E_GLV_BPRCL(stat_idx),
668 			   vsi->stat_offsets_loaded,
669 			   &oes->rx_broadcast, &es->rx_broadcast);
670 
671 	i40e_stat_update48(hw, I40E_GLV_GOTCH(stat_idx),
672 			   I40E_GLV_GOTCL(stat_idx),
673 			   vsi->stat_offsets_loaded,
674 			   &oes->tx_bytes, &es->tx_bytes);
675 	i40e_stat_update48(hw, I40E_GLV_UPTCH(stat_idx),
676 			   I40E_GLV_UPTCL(stat_idx),
677 			   vsi->stat_offsets_loaded,
678 			   &oes->tx_unicast, &es->tx_unicast);
679 	i40e_stat_update48(hw, I40E_GLV_MPTCH(stat_idx),
680 			   I40E_GLV_MPTCL(stat_idx),
681 			   vsi->stat_offsets_loaded,
682 			   &oes->tx_multicast, &es->tx_multicast);
683 	i40e_stat_update48(hw, I40E_GLV_BPTCH(stat_idx),
684 			   I40E_GLV_BPTCL(stat_idx),
685 			   vsi->stat_offsets_loaded,
686 			   &oes->tx_broadcast, &es->tx_broadcast);
687 	vsi->stat_offsets_loaded = true;
688 }
689 
690 /**
691  * i40e_update_veb_stats - Update Switch component statistics
692  * @veb: the VEB being updated
693  **/
694 static void i40e_update_veb_stats(struct i40e_veb *veb)
695 {
696 	struct i40e_pf *pf = veb->pf;
697 	struct i40e_hw *hw = &pf->hw;
698 	struct i40e_eth_stats *oes;
699 	struct i40e_eth_stats *es;     /* device's eth stats */
700 	struct i40e_veb_tc_stats *veb_oes;
701 	struct i40e_veb_tc_stats *veb_es;
702 	int i, idx = 0;
703 
704 	idx = veb->stats_idx;
705 	es = &veb->stats;
706 	oes = &veb->stats_offsets;
707 	veb_es = &veb->tc_stats;
708 	veb_oes = &veb->tc_stats_offsets;
709 
710 	/* Gather up the stats that the hw collects */
711 	i40e_stat_update32(hw, I40E_GLSW_TDPC(idx),
712 			   veb->stat_offsets_loaded,
713 			   &oes->tx_discards, &es->tx_discards);
714 	if (hw->revision_id > 0)
715 		i40e_stat_update32(hw, I40E_GLSW_RUPP(idx),
716 				   veb->stat_offsets_loaded,
717 				   &oes->rx_unknown_protocol,
718 				   &es->rx_unknown_protocol);
719 	i40e_stat_update48(hw, I40E_GLSW_GORCH(idx), I40E_GLSW_GORCL(idx),
720 			   veb->stat_offsets_loaded,
721 			   &oes->rx_bytes, &es->rx_bytes);
722 	i40e_stat_update48(hw, I40E_GLSW_UPRCH(idx), I40E_GLSW_UPRCL(idx),
723 			   veb->stat_offsets_loaded,
724 			   &oes->rx_unicast, &es->rx_unicast);
725 	i40e_stat_update48(hw, I40E_GLSW_MPRCH(idx), I40E_GLSW_MPRCL(idx),
726 			   veb->stat_offsets_loaded,
727 			   &oes->rx_multicast, &es->rx_multicast);
728 	i40e_stat_update48(hw, I40E_GLSW_BPRCH(idx), I40E_GLSW_BPRCL(idx),
729 			   veb->stat_offsets_loaded,
730 			   &oes->rx_broadcast, &es->rx_broadcast);
731 
732 	i40e_stat_update48(hw, I40E_GLSW_GOTCH(idx), I40E_GLSW_GOTCL(idx),
733 			   veb->stat_offsets_loaded,
734 			   &oes->tx_bytes, &es->tx_bytes);
735 	i40e_stat_update48(hw, I40E_GLSW_UPTCH(idx), I40E_GLSW_UPTCL(idx),
736 			   veb->stat_offsets_loaded,
737 			   &oes->tx_unicast, &es->tx_unicast);
738 	i40e_stat_update48(hw, I40E_GLSW_MPTCH(idx), I40E_GLSW_MPTCL(idx),
739 			   veb->stat_offsets_loaded,
740 			   &oes->tx_multicast, &es->tx_multicast);
741 	i40e_stat_update48(hw, I40E_GLSW_BPTCH(idx), I40E_GLSW_BPTCL(idx),
742 			   veb->stat_offsets_loaded,
743 			   &oes->tx_broadcast, &es->tx_broadcast);
744 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
745 		i40e_stat_update48(hw, I40E_GLVEBTC_RPCH(i, idx),
746 				   I40E_GLVEBTC_RPCL(i, idx),
747 				   veb->stat_offsets_loaded,
748 				   &veb_oes->tc_rx_packets[i],
749 				   &veb_es->tc_rx_packets[i]);
750 		i40e_stat_update48(hw, I40E_GLVEBTC_RBCH(i, idx),
751 				   I40E_GLVEBTC_RBCL(i, idx),
752 				   veb->stat_offsets_loaded,
753 				   &veb_oes->tc_rx_bytes[i],
754 				   &veb_es->tc_rx_bytes[i]);
755 		i40e_stat_update48(hw, I40E_GLVEBTC_TPCH(i, idx),
756 				   I40E_GLVEBTC_TPCL(i, idx),
757 				   veb->stat_offsets_loaded,
758 				   &veb_oes->tc_tx_packets[i],
759 				   &veb_es->tc_tx_packets[i]);
760 		i40e_stat_update48(hw, I40E_GLVEBTC_TBCH(i, idx),
761 				   I40E_GLVEBTC_TBCL(i, idx),
762 				   veb->stat_offsets_loaded,
763 				   &veb_oes->tc_tx_bytes[i],
764 				   &veb_es->tc_tx_bytes[i]);
765 	}
766 	veb->stat_offsets_loaded = true;
767 }
768 
769 /**
770  * i40e_update_vsi_stats - Update the vsi statistics counters.
771  * @vsi: the VSI to be updated
772  *
773  * There are a few instances where we store the same stat in a
774  * couple of different structs.  This is partly because we have
775  * the netdev stats that need to be filled out, which is slightly
776  * different from the "eth_stats" defined by the chip and used in
777  * VF communications.  We sort it out here.
778  **/
779 static void i40e_update_vsi_stats(struct i40e_vsi *vsi)
780 {
781 	struct i40e_pf *pf = vsi->back;
782 	struct rtnl_link_stats64 *ons;
783 	struct rtnl_link_stats64 *ns;   /* netdev stats */
784 	struct i40e_eth_stats *oes;
785 	struct i40e_eth_stats *es;     /* device's eth stats */
786 	u32 tx_restart, tx_busy;
787 	struct i40e_ring *p;
788 	u32 rx_page, rx_buf;
789 	u64 bytes, packets;
790 	unsigned int start;
791 	u64 tx_linearize;
792 	u64 tx_force_wb;
793 	u64 rx_p, rx_b;
794 	u64 tx_p, tx_b;
795 	u16 q;
796 
797 	if (test_bit(__I40E_VSI_DOWN, vsi->state) ||
798 	    test_bit(__I40E_CONFIG_BUSY, pf->state))
799 		return;
800 
801 	ns = i40e_get_vsi_stats_struct(vsi);
802 	ons = &vsi->net_stats_offsets;
803 	es = &vsi->eth_stats;
804 	oes = &vsi->eth_stats_offsets;
805 
806 	/* Gather up the netdev and vsi stats that the driver collects
807 	 * on the fly during packet processing
808 	 */
809 	rx_b = rx_p = 0;
810 	tx_b = tx_p = 0;
811 	tx_restart = tx_busy = tx_linearize = tx_force_wb = 0;
812 	rx_page = 0;
813 	rx_buf = 0;
814 	rcu_read_lock();
815 	for (q = 0; q < vsi->num_queue_pairs; q++) {
816 		/* locate Tx ring */
817 		p = READ_ONCE(vsi->tx_rings[q]);
818 
819 		do {
820 			start = u64_stats_fetch_begin_irq(&p->syncp);
821 			packets = p->stats.packets;
822 			bytes = p->stats.bytes;
823 		} while (u64_stats_fetch_retry_irq(&p->syncp, start));
824 		tx_b += bytes;
825 		tx_p += packets;
826 		tx_restart += p->tx_stats.restart_queue;
827 		tx_busy += p->tx_stats.tx_busy;
828 		tx_linearize += p->tx_stats.tx_linearize;
829 		tx_force_wb += p->tx_stats.tx_force_wb;
830 
831 		/* Rx queue is part of the same block as Tx queue */
832 		p = &p[1];
833 		do {
834 			start = u64_stats_fetch_begin_irq(&p->syncp);
835 			packets = p->stats.packets;
836 			bytes = p->stats.bytes;
837 		} while (u64_stats_fetch_retry_irq(&p->syncp, start));
838 		rx_b += bytes;
839 		rx_p += packets;
840 		rx_buf += p->rx_stats.alloc_buff_failed;
841 		rx_page += p->rx_stats.alloc_page_failed;
842 	}
843 	rcu_read_unlock();
844 	vsi->tx_restart = tx_restart;
845 	vsi->tx_busy = tx_busy;
846 	vsi->tx_linearize = tx_linearize;
847 	vsi->tx_force_wb = tx_force_wb;
848 	vsi->rx_page_failed = rx_page;
849 	vsi->rx_buf_failed = rx_buf;
850 
851 	ns->rx_packets = rx_p;
852 	ns->rx_bytes = rx_b;
853 	ns->tx_packets = tx_p;
854 	ns->tx_bytes = tx_b;
855 
856 	/* update netdev stats from eth stats */
857 	i40e_update_eth_stats(vsi);
858 	ons->tx_errors = oes->tx_errors;
859 	ns->tx_errors = es->tx_errors;
860 	ons->multicast = oes->rx_multicast;
861 	ns->multicast = es->rx_multicast;
862 	ons->rx_dropped = oes->rx_discards;
863 	ns->rx_dropped = es->rx_discards;
864 	ons->tx_dropped = oes->tx_discards;
865 	ns->tx_dropped = es->tx_discards;
866 
867 	/* pull in a couple PF stats if this is the main vsi */
868 	if (vsi == pf->vsi[pf->lan_vsi]) {
869 		ns->rx_crc_errors = pf->stats.crc_errors;
870 		ns->rx_errors = pf->stats.crc_errors + pf->stats.illegal_bytes;
871 		ns->rx_length_errors = pf->stats.rx_length_errors;
872 	}
873 }
874 
875 /**
876  * i40e_update_pf_stats - Update the PF statistics counters.
877  * @pf: the PF to be updated
878  **/
879 static void i40e_update_pf_stats(struct i40e_pf *pf)
880 {
881 	struct i40e_hw_port_stats *osd = &pf->stats_offsets;
882 	struct i40e_hw_port_stats *nsd = &pf->stats;
883 	struct i40e_hw *hw = &pf->hw;
884 	u32 val;
885 	int i;
886 
887 	i40e_stat_update48(hw, I40E_GLPRT_GORCH(hw->port),
888 			   I40E_GLPRT_GORCL(hw->port),
889 			   pf->stat_offsets_loaded,
890 			   &osd->eth.rx_bytes, &nsd->eth.rx_bytes);
891 	i40e_stat_update48(hw, I40E_GLPRT_GOTCH(hw->port),
892 			   I40E_GLPRT_GOTCL(hw->port),
893 			   pf->stat_offsets_loaded,
894 			   &osd->eth.tx_bytes, &nsd->eth.tx_bytes);
895 	i40e_stat_update32(hw, I40E_GLPRT_RDPC(hw->port),
896 			   pf->stat_offsets_loaded,
897 			   &osd->eth.rx_discards,
898 			   &nsd->eth.rx_discards);
899 	i40e_stat_update48(hw, I40E_GLPRT_UPRCH(hw->port),
900 			   I40E_GLPRT_UPRCL(hw->port),
901 			   pf->stat_offsets_loaded,
902 			   &osd->eth.rx_unicast,
903 			   &nsd->eth.rx_unicast);
904 	i40e_stat_update48(hw, I40E_GLPRT_MPRCH(hw->port),
905 			   I40E_GLPRT_MPRCL(hw->port),
906 			   pf->stat_offsets_loaded,
907 			   &osd->eth.rx_multicast,
908 			   &nsd->eth.rx_multicast);
909 	i40e_stat_update48(hw, I40E_GLPRT_BPRCH(hw->port),
910 			   I40E_GLPRT_BPRCL(hw->port),
911 			   pf->stat_offsets_loaded,
912 			   &osd->eth.rx_broadcast,
913 			   &nsd->eth.rx_broadcast);
914 	i40e_stat_update48(hw, I40E_GLPRT_UPTCH(hw->port),
915 			   I40E_GLPRT_UPTCL(hw->port),
916 			   pf->stat_offsets_loaded,
917 			   &osd->eth.tx_unicast,
918 			   &nsd->eth.tx_unicast);
919 	i40e_stat_update48(hw, I40E_GLPRT_MPTCH(hw->port),
920 			   I40E_GLPRT_MPTCL(hw->port),
921 			   pf->stat_offsets_loaded,
922 			   &osd->eth.tx_multicast,
923 			   &nsd->eth.tx_multicast);
924 	i40e_stat_update48(hw, I40E_GLPRT_BPTCH(hw->port),
925 			   I40E_GLPRT_BPTCL(hw->port),
926 			   pf->stat_offsets_loaded,
927 			   &osd->eth.tx_broadcast,
928 			   &nsd->eth.tx_broadcast);
929 
930 	i40e_stat_update32(hw, I40E_GLPRT_TDOLD(hw->port),
931 			   pf->stat_offsets_loaded,
932 			   &osd->tx_dropped_link_down,
933 			   &nsd->tx_dropped_link_down);
934 
935 	i40e_stat_update32(hw, I40E_GLPRT_CRCERRS(hw->port),
936 			   pf->stat_offsets_loaded,
937 			   &osd->crc_errors, &nsd->crc_errors);
938 
939 	i40e_stat_update32(hw, I40E_GLPRT_ILLERRC(hw->port),
940 			   pf->stat_offsets_loaded,
941 			   &osd->illegal_bytes, &nsd->illegal_bytes);
942 
943 	i40e_stat_update32(hw, I40E_GLPRT_MLFC(hw->port),
944 			   pf->stat_offsets_loaded,
945 			   &osd->mac_local_faults,
946 			   &nsd->mac_local_faults);
947 	i40e_stat_update32(hw, I40E_GLPRT_MRFC(hw->port),
948 			   pf->stat_offsets_loaded,
949 			   &osd->mac_remote_faults,
950 			   &nsd->mac_remote_faults);
951 
952 	i40e_stat_update32(hw, I40E_GLPRT_RLEC(hw->port),
953 			   pf->stat_offsets_loaded,
954 			   &osd->rx_length_errors,
955 			   &nsd->rx_length_errors);
956 
957 	i40e_stat_update32(hw, I40E_GLPRT_LXONRXC(hw->port),
958 			   pf->stat_offsets_loaded,
959 			   &osd->link_xon_rx, &nsd->link_xon_rx);
960 	i40e_stat_update32(hw, I40E_GLPRT_LXONTXC(hw->port),
961 			   pf->stat_offsets_loaded,
962 			   &osd->link_xon_tx, &nsd->link_xon_tx);
963 	i40e_stat_update32(hw, I40E_GLPRT_LXOFFRXC(hw->port),
964 			   pf->stat_offsets_loaded,
965 			   &osd->link_xoff_rx, &nsd->link_xoff_rx);
966 	i40e_stat_update32(hw, I40E_GLPRT_LXOFFTXC(hw->port),
967 			   pf->stat_offsets_loaded,
968 			   &osd->link_xoff_tx, &nsd->link_xoff_tx);
969 
970 	for (i = 0; i < 8; i++) {
971 		i40e_stat_update32(hw, I40E_GLPRT_PXOFFRXC(hw->port, i),
972 				   pf->stat_offsets_loaded,
973 				   &osd->priority_xoff_rx[i],
974 				   &nsd->priority_xoff_rx[i]);
975 		i40e_stat_update32(hw, I40E_GLPRT_PXONRXC(hw->port, i),
976 				   pf->stat_offsets_loaded,
977 				   &osd->priority_xon_rx[i],
978 				   &nsd->priority_xon_rx[i]);
979 		i40e_stat_update32(hw, I40E_GLPRT_PXONTXC(hw->port, i),
980 				   pf->stat_offsets_loaded,
981 				   &osd->priority_xon_tx[i],
982 				   &nsd->priority_xon_tx[i]);
983 		i40e_stat_update32(hw, I40E_GLPRT_PXOFFTXC(hw->port, i),
984 				   pf->stat_offsets_loaded,
985 				   &osd->priority_xoff_tx[i],
986 				   &nsd->priority_xoff_tx[i]);
987 		i40e_stat_update32(hw,
988 				   I40E_GLPRT_RXON2OFFCNT(hw->port, i),
989 				   pf->stat_offsets_loaded,
990 				   &osd->priority_xon_2_xoff[i],
991 				   &nsd->priority_xon_2_xoff[i]);
992 	}
993 
994 	i40e_stat_update48(hw, I40E_GLPRT_PRC64H(hw->port),
995 			   I40E_GLPRT_PRC64L(hw->port),
996 			   pf->stat_offsets_loaded,
997 			   &osd->rx_size_64, &nsd->rx_size_64);
998 	i40e_stat_update48(hw, I40E_GLPRT_PRC127H(hw->port),
999 			   I40E_GLPRT_PRC127L(hw->port),
1000 			   pf->stat_offsets_loaded,
1001 			   &osd->rx_size_127, &nsd->rx_size_127);
1002 	i40e_stat_update48(hw, I40E_GLPRT_PRC255H(hw->port),
1003 			   I40E_GLPRT_PRC255L(hw->port),
1004 			   pf->stat_offsets_loaded,
1005 			   &osd->rx_size_255, &nsd->rx_size_255);
1006 	i40e_stat_update48(hw, I40E_GLPRT_PRC511H(hw->port),
1007 			   I40E_GLPRT_PRC511L(hw->port),
1008 			   pf->stat_offsets_loaded,
1009 			   &osd->rx_size_511, &nsd->rx_size_511);
1010 	i40e_stat_update48(hw, I40E_GLPRT_PRC1023H(hw->port),
1011 			   I40E_GLPRT_PRC1023L(hw->port),
1012 			   pf->stat_offsets_loaded,
1013 			   &osd->rx_size_1023, &nsd->rx_size_1023);
1014 	i40e_stat_update48(hw, I40E_GLPRT_PRC1522H(hw->port),
1015 			   I40E_GLPRT_PRC1522L(hw->port),
1016 			   pf->stat_offsets_loaded,
1017 			   &osd->rx_size_1522, &nsd->rx_size_1522);
1018 	i40e_stat_update48(hw, I40E_GLPRT_PRC9522H(hw->port),
1019 			   I40E_GLPRT_PRC9522L(hw->port),
1020 			   pf->stat_offsets_loaded,
1021 			   &osd->rx_size_big, &nsd->rx_size_big);
1022 
1023 	i40e_stat_update48(hw, I40E_GLPRT_PTC64H(hw->port),
1024 			   I40E_GLPRT_PTC64L(hw->port),
1025 			   pf->stat_offsets_loaded,
1026 			   &osd->tx_size_64, &nsd->tx_size_64);
1027 	i40e_stat_update48(hw, I40E_GLPRT_PTC127H(hw->port),
1028 			   I40E_GLPRT_PTC127L(hw->port),
1029 			   pf->stat_offsets_loaded,
1030 			   &osd->tx_size_127, &nsd->tx_size_127);
1031 	i40e_stat_update48(hw, I40E_GLPRT_PTC255H(hw->port),
1032 			   I40E_GLPRT_PTC255L(hw->port),
1033 			   pf->stat_offsets_loaded,
1034 			   &osd->tx_size_255, &nsd->tx_size_255);
1035 	i40e_stat_update48(hw, I40E_GLPRT_PTC511H(hw->port),
1036 			   I40E_GLPRT_PTC511L(hw->port),
1037 			   pf->stat_offsets_loaded,
1038 			   &osd->tx_size_511, &nsd->tx_size_511);
1039 	i40e_stat_update48(hw, I40E_GLPRT_PTC1023H(hw->port),
1040 			   I40E_GLPRT_PTC1023L(hw->port),
1041 			   pf->stat_offsets_loaded,
1042 			   &osd->tx_size_1023, &nsd->tx_size_1023);
1043 	i40e_stat_update48(hw, I40E_GLPRT_PTC1522H(hw->port),
1044 			   I40E_GLPRT_PTC1522L(hw->port),
1045 			   pf->stat_offsets_loaded,
1046 			   &osd->tx_size_1522, &nsd->tx_size_1522);
1047 	i40e_stat_update48(hw, I40E_GLPRT_PTC9522H(hw->port),
1048 			   I40E_GLPRT_PTC9522L(hw->port),
1049 			   pf->stat_offsets_loaded,
1050 			   &osd->tx_size_big, &nsd->tx_size_big);
1051 
1052 	i40e_stat_update32(hw, I40E_GLPRT_RUC(hw->port),
1053 			   pf->stat_offsets_loaded,
1054 			   &osd->rx_undersize, &nsd->rx_undersize);
1055 	i40e_stat_update32(hw, I40E_GLPRT_RFC(hw->port),
1056 			   pf->stat_offsets_loaded,
1057 			   &osd->rx_fragments, &nsd->rx_fragments);
1058 	i40e_stat_update32(hw, I40E_GLPRT_ROC(hw->port),
1059 			   pf->stat_offsets_loaded,
1060 			   &osd->rx_oversize, &nsd->rx_oversize);
1061 	i40e_stat_update32(hw, I40E_GLPRT_RJC(hw->port),
1062 			   pf->stat_offsets_loaded,
1063 			   &osd->rx_jabber, &nsd->rx_jabber);
1064 
1065 	/* FDIR stats */
1066 	i40e_stat_update_and_clear32(hw,
1067 			I40E_GLQF_PCNT(I40E_FD_ATR_STAT_IDX(hw->pf_id)),
1068 			&nsd->fd_atr_match);
1069 	i40e_stat_update_and_clear32(hw,
1070 			I40E_GLQF_PCNT(I40E_FD_SB_STAT_IDX(hw->pf_id)),
1071 			&nsd->fd_sb_match);
1072 	i40e_stat_update_and_clear32(hw,
1073 			I40E_GLQF_PCNT(I40E_FD_ATR_TUNNEL_STAT_IDX(hw->pf_id)),
1074 			&nsd->fd_atr_tunnel_match);
1075 
1076 	val = rd32(hw, I40E_PRTPM_EEE_STAT);
1077 	nsd->tx_lpi_status =
1078 		       (val & I40E_PRTPM_EEE_STAT_TX_LPI_STATUS_MASK) >>
1079 			I40E_PRTPM_EEE_STAT_TX_LPI_STATUS_SHIFT;
1080 	nsd->rx_lpi_status =
1081 		       (val & I40E_PRTPM_EEE_STAT_RX_LPI_STATUS_MASK) >>
1082 			I40E_PRTPM_EEE_STAT_RX_LPI_STATUS_SHIFT;
1083 	i40e_stat_update32(hw, I40E_PRTPM_TLPIC,
1084 			   pf->stat_offsets_loaded,
1085 			   &osd->tx_lpi_count, &nsd->tx_lpi_count);
1086 	i40e_stat_update32(hw, I40E_PRTPM_RLPIC,
1087 			   pf->stat_offsets_loaded,
1088 			   &osd->rx_lpi_count, &nsd->rx_lpi_count);
1089 
1090 	if (pf->flags & I40E_FLAG_FD_SB_ENABLED &&
1091 	    !(pf->flags & I40E_FLAG_FD_SB_AUTO_DISABLED))
1092 		nsd->fd_sb_status = true;
1093 	else
1094 		nsd->fd_sb_status = false;
1095 
1096 	if (pf->flags & I40E_FLAG_FD_ATR_ENABLED &&
1097 	    !(pf->flags & I40E_FLAG_FD_ATR_AUTO_DISABLED))
1098 		nsd->fd_atr_status = true;
1099 	else
1100 		nsd->fd_atr_status = false;
1101 
1102 	pf->stat_offsets_loaded = true;
1103 }
1104 
1105 /**
1106  * i40e_update_stats - Update the various statistics counters.
1107  * @vsi: the VSI to be updated
1108  *
1109  * Update the various stats for this VSI and its related entities.
1110  **/
1111 void i40e_update_stats(struct i40e_vsi *vsi)
1112 {
1113 	struct i40e_pf *pf = vsi->back;
1114 
1115 	if (vsi == pf->vsi[pf->lan_vsi])
1116 		i40e_update_pf_stats(pf);
1117 
1118 	i40e_update_vsi_stats(vsi);
1119 }
1120 
1121 /**
1122  * i40e_find_filter - Search VSI filter list for specific mac/vlan filter
1123  * @vsi: the VSI to be searched
1124  * @macaddr: the MAC address
1125  * @vlan: the vlan
1126  *
1127  * Returns ptr to the filter object or NULL
1128  **/
1129 static struct i40e_mac_filter *i40e_find_filter(struct i40e_vsi *vsi,
1130 						const u8 *macaddr, s16 vlan)
1131 {
1132 	struct i40e_mac_filter *f;
1133 	u64 key;
1134 
1135 	if (!vsi || !macaddr)
1136 		return NULL;
1137 
1138 	key = i40e_addr_to_hkey(macaddr);
1139 	hash_for_each_possible(vsi->mac_filter_hash, f, hlist, key) {
1140 		if ((ether_addr_equal(macaddr, f->macaddr)) &&
1141 		    (vlan == f->vlan))
1142 			return f;
1143 	}
1144 	return NULL;
1145 }
1146 
1147 /**
1148  * i40e_find_mac - Find a mac addr in the macvlan filters list
1149  * @vsi: the VSI to be searched
1150  * @macaddr: the MAC address we are searching for
1151  *
1152  * Returns the first filter with the provided MAC address or NULL if
1153  * MAC address was not found
1154  **/
1155 struct i40e_mac_filter *i40e_find_mac(struct i40e_vsi *vsi, const u8 *macaddr)
1156 {
1157 	struct i40e_mac_filter *f;
1158 	u64 key;
1159 
1160 	if (!vsi || !macaddr)
1161 		return NULL;
1162 
1163 	key = i40e_addr_to_hkey(macaddr);
1164 	hash_for_each_possible(vsi->mac_filter_hash, f, hlist, key) {
1165 		if ((ether_addr_equal(macaddr, f->macaddr)))
1166 			return f;
1167 	}
1168 	return NULL;
1169 }
1170 
1171 /**
1172  * i40e_is_vsi_in_vlan - Check if VSI is in vlan mode
1173  * @vsi: the VSI to be searched
1174  *
1175  * Returns true if VSI is in vlan mode or false otherwise
1176  **/
1177 bool i40e_is_vsi_in_vlan(struct i40e_vsi *vsi)
1178 {
1179 	/* If we have a PVID, always operate in VLAN mode */
1180 	if (vsi->info.pvid)
1181 		return true;
1182 
1183 	/* We need to operate in VLAN mode whenever we have any filters with
1184 	 * a VLAN other than I40E_VLAN_ALL. We could check the table each
1185 	 * time, incurring search cost repeatedly. However, we can notice two
1186 	 * things:
1187 	 *
1188 	 * 1) the only place where we can gain a VLAN filter is in
1189 	 *    i40e_add_filter.
1190 	 *
1191 	 * 2) the only place where filters are actually removed is in
1192 	 *    i40e_sync_filters_subtask.
1193 	 *
1194 	 * Thus, we can simply use a boolean value, has_vlan_filters which we
1195 	 * will set to true when we add a VLAN filter in i40e_add_filter. Then
1196 	 * we have to perform the full search after deleting filters in
1197 	 * i40e_sync_filters_subtask, but we already have to search
1198 	 * filters here and can perform the check at the same time. This
1199 	 * results in avoiding embedding a loop for VLAN mode inside another
1200 	 * loop over all the filters, and should maintain correctness as noted
1201 	 * above.
1202 	 */
1203 	return vsi->has_vlan_filter;
1204 }
1205 
1206 /**
1207  * i40e_correct_mac_vlan_filters - Correct non-VLAN filters if necessary
1208  * @vsi: the VSI to configure
1209  * @tmp_add_list: list of filters ready to be added
1210  * @tmp_del_list: list of filters ready to be deleted
1211  * @vlan_filters: the number of active VLAN filters
1212  *
1213  * Update VLAN=0 and VLAN=-1 (I40E_VLAN_ANY) filters properly so that they
1214  * behave as expected. If we have any active VLAN filters remaining or about
1215  * to be added then we need to update non-VLAN filters to be marked as VLAN=0
1216  * so that they only match against untagged traffic. If we no longer have any
1217  * active VLAN filters, we need to make all non-VLAN filters marked as VLAN=-1
1218  * so that they match against both tagged and untagged traffic. In this way,
1219  * we ensure that we correctly receive the desired traffic. This ensures that
1220  * when we have an active VLAN we will receive only untagged traffic and
1221  * traffic matching active VLANs. If we have no active VLANs then we will
1222  * operate in non-VLAN mode and receive all traffic, tagged or untagged.
1223  *
1224  * Finally, in a similar fashion, this function also corrects filters when
1225  * there is an active PVID assigned to this VSI.
1226  *
1227  * In case of memory allocation failure return -ENOMEM. Otherwise, return 0.
1228  *
1229  * This function is only expected to be called from within
1230  * i40e_sync_vsi_filters.
1231  *
1232  * NOTE: This function expects to be called while under the
1233  * mac_filter_hash_lock
1234  */
1235 static int i40e_correct_mac_vlan_filters(struct i40e_vsi *vsi,
1236 					 struct hlist_head *tmp_add_list,
1237 					 struct hlist_head *tmp_del_list,
1238 					 int vlan_filters)
1239 {
1240 	s16 pvid = le16_to_cpu(vsi->info.pvid);
1241 	struct i40e_mac_filter *f, *add_head;
1242 	struct i40e_new_mac_filter *new;
1243 	struct hlist_node *h;
1244 	int bkt, new_vlan;
1245 
1246 	/* To determine if a particular filter needs to be replaced we
1247 	 * have the three following conditions:
1248 	 *
1249 	 * a) if we have a PVID assigned, then all filters which are
1250 	 *    not marked as VLAN=PVID must be replaced with filters that
1251 	 *    are.
1252 	 * b) otherwise, if we have any active VLANS, all filters
1253 	 *    which are marked as VLAN=-1 must be replaced with
1254 	 *    filters marked as VLAN=0
1255 	 * c) finally, if we do not have any active VLANS, all filters
1256 	 *    which are marked as VLAN=0 must be replaced with filters
1257 	 *    marked as VLAN=-1
1258 	 */
1259 
1260 	/* Update the filters about to be added in place */
1261 	hlist_for_each_entry(new, tmp_add_list, hlist) {
1262 		if (pvid && new->f->vlan != pvid)
1263 			new->f->vlan = pvid;
1264 		else if (vlan_filters && new->f->vlan == I40E_VLAN_ANY)
1265 			new->f->vlan = 0;
1266 		else if (!vlan_filters && new->f->vlan == 0)
1267 			new->f->vlan = I40E_VLAN_ANY;
1268 	}
1269 
1270 	/* Update the remaining active filters */
1271 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
1272 		/* Combine the checks for whether a filter needs to be changed
1273 		 * and then determine the new VLAN inside the if block, in
1274 		 * order to avoid duplicating code for adding the new filter
1275 		 * then deleting the old filter.
1276 		 */
1277 		if ((pvid && f->vlan != pvid) ||
1278 		    (vlan_filters && f->vlan == I40E_VLAN_ANY) ||
1279 		    (!vlan_filters && f->vlan == 0)) {
1280 			/* Determine the new vlan we will be adding */
1281 			if (pvid)
1282 				new_vlan = pvid;
1283 			else if (vlan_filters)
1284 				new_vlan = 0;
1285 			else
1286 				new_vlan = I40E_VLAN_ANY;
1287 
1288 			/* Create the new filter */
1289 			add_head = i40e_add_filter(vsi, f->macaddr, new_vlan);
1290 			if (!add_head)
1291 				return -ENOMEM;
1292 
1293 			/* Create a temporary i40e_new_mac_filter */
1294 			new = kzalloc(sizeof(*new), GFP_ATOMIC);
1295 			if (!new)
1296 				return -ENOMEM;
1297 
1298 			new->f = add_head;
1299 			new->state = add_head->state;
1300 
1301 			/* Add the new filter to the tmp list */
1302 			hlist_add_head(&new->hlist, tmp_add_list);
1303 
1304 			/* Put the original filter into the delete list */
1305 			f->state = I40E_FILTER_REMOVE;
1306 			hash_del(&f->hlist);
1307 			hlist_add_head(&f->hlist, tmp_del_list);
1308 		}
1309 	}
1310 
1311 	vsi->has_vlan_filter = !!vlan_filters;
1312 
1313 	return 0;
1314 }
1315 
1316 /**
1317  * i40e_rm_default_mac_filter - Remove the default MAC filter set by NVM
1318  * @vsi: the PF Main VSI - inappropriate for any other VSI
1319  * @macaddr: the MAC address
1320  *
1321  * Remove whatever filter the firmware set up so the driver can manage
1322  * its own filtering intelligently.
1323  **/
1324 static void i40e_rm_default_mac_filter(struct i40e_vsi *vsi, u8 *macaddr)
1325 {
1326 	struct i40e_aqc_remove_macvlan_element_data element;
1327 	struct i40e_pf *pf = vsi->back;
1328 
1329 	/* Only appropriate for the PF main VSI */
1330 	if (vsi->type != I40E_VSI_MAIN)
1331 		return;
1332 
1333 	memset(&element, 0, sizeof(element));
1334 	ether_addr_copy(element.mac_addr, macaddr);
1335 	element.vlan_tag = 0;
1336 	/* Ignore error returns, some firmware does it this way... */
1337 	element.flags = I40E_AQC_MACVLAN_DEL_PERFECT_MATCH;
1338 	i40e_aq_remove_macvlan(&pf->hw, vsi->seid, &element, 1, NULL);
1339 
1340 	memset(&element, 0, sizeof(element));
1341 	ether_addr_copy(element.mac_addr, macaddr);
1342 	element.vlan_tag = 0;
1343 	/* ...and some firmware does it this way. */
1344 	element.flags = I40E_AQC_MACVLAN_DEL_PERFECT_MATCH |
1345 			I40E_AQC_MACVLAN_DEL_IGNORE_VLAN;
1346 	i40e_aq_remove_macvlan(&pf->hw, vsi->seid, &element, 1, NULL);
1347 }
1348 
1349 /**
1350  * i40e_add_filter - Add a mac/vlan filter to the VSI
1351  * @vsi: the VSI to be searched
1352  * @macaddr: the MAC address
1353  * @vlan: the vlan
1354  *
1355  * Returns ptr to the filter object or NULL when no memory available.
1356  *
1357  * NOTE: This function is expected to be called with mac_filter_hash_lock
1358  * being held.
1359  **/
1360 struct i40e_mac_filter *i40e_add_filter(struct i40e_vsi *vsi,
1361 					const u8 *macaddr, s16 vlan)
1362 {
1363 	struct i40e_mac_filter *f;
1364 	u64 key;
1365 
1366 	if (!vsi || !macaddr)
1367 		return NULL;
1368 
1369 	f = i40e_find_filter(vsi, macaddr, vlan);
1370 	if (!f) {
1371 		f = kzalloc(sizeof(*f), GFP_ATOMIC);
1372 		if (!f)
1373 			return NULL;
1374 
1375 		/* Update the boolean indicating if we need to function in
1376 		 * VLAN mode.
1377 		 */
1378 		if (vlan >= 0)
1379 			vsi->has_vlan_filter = true;
1380 
1381 		ether_addr_copy(f->macaddr, macaddr);
1382 		f->vlan = vlan;
1383 		/* If we're in overflow promisc mode, set the state directly
1384 		 * to failed, so we don't bother to try sending the filter
1385 		 * to the hardware.
1386 		 */
1387 		if (test_bit(__I40E_VSI_OVERFLOW_PROMISC, vsi->state))
1388 			f->state = I40E_FILTER_FAILED;
1389 		else
1390 			f->state = I40E_FILTER_NEW;
1391 		INIT_HLIST_NODE(&f->hlist);
1392 
1393 		key = i40e_addr_to_hkey(macaddr);
1394 		hash_add(vsi->mac_filter_hash, &f->hlist, key);
1395 
1396 		vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
1397 		vsi->back->flags |= I40E_FLAG_FILTER_SYNC;
1398 	}
1399 
1400 	/* If we're asked to add a filter that has been marked for removal, it
1401 	 * is safe to simply restore it to active state. __i40e_del_filter
1402 	 * will have simply deleted any filters which were previously marked
1403 	 * NEW or FAILED, so if it is currently marked REMOVE it must have
1404 	 * previously been ACTIVE. Since we haven't yet run the sync filters
1405 	 * task, just restore this filter to the ACTIVE state so that the
1406 	 * sync task leaves it in place
1407 	 */
1408 	if (f->state == I40E_FILTER_REMOVE)
1409 		f->state = I40E_FILTER_ACTIVE;
1410 
1411 	return f;
1412 }
1413 
1414 /**
1415  * __i40e_del_filter - Remove a specific filter from the VSI
1416  * @vsi: VSI to remove from
1417  * @f: the filter to remove from the list
1418  *
1419  * This function should be called instead of i40e_del_filter only if you know
1420  * the exact filter you will remove already, such as via i40e_find_filter or
1421  * i40e_find_mac.
1422  *
1423  * NOTE: This function is expected to be called with mac_filter_hash_lock
1424  * being held.
1425  * ANOTHER NOTE: This function MUST be called from within the context of
1426  * the "safe" variants of any list iterators, e.g. list_for_each_entry_safe()
1427  * instead of list_for_each_entry().
1428  **/
1429 void __i40e_del_filter(struct i40e_vsi *vsi, struct i40e_mac_filter *f)
1430 {
1431 	if (!f)
1432 		return;
1433 
1434 	/* If the filter was never added to firmware then we can just delete it
1435 	 * directly and we don't want to set the status to remove or else an
1436 	 * admin queue command will unnecessarily fire.
1437 	 */
1438 	if ((f->state == I40E_FILTER_FAILED) ||
1439 	    (f->state == I40E_FILTER_NEW)) {
1440 		hash_del(&f->hlist);
1441 		kfree(f);
1442 	} else {
1443 		f->state = I40E_FILTER_REMOVE;
1444 	}
1445 
1446 	vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
1447 	vsi->back->flags |= I40E_FLAG_FILTER_SYNC;
1448 }
1449 
1450 /**
1451  * i40e_del_filter - Remove a MAC/VLAN filter from the VSI
1452  * @vsi: the VSI to be searched
1453  * @macaddr: the MAC address
1454  * @vlan: the VLAN
1455  *
1456  * NOTE: This function is expected to be called with mac_filter_hash_lock
1457  * being held.
1458  * ANOTHER NOTE: This function MUST be called from within the context of
1459  * the "safe" variants of any list iterators, e.g. list_for_each_entry_safe()
1460  * instead of list_for_each_entry().
1461  **/
1462 void i40e_del_filter(struct i40e_vsi *vsi, const u8 *macaddr, s16 vlan)
1463 {
1464 	struct i40e_mac_filter *f;
1465 
1466 	if (!vsi || !macaddr)
1467 		return;
1468 
1469 	f = i40e_find_filter(vsi, macaddr, vlan);
1470 	__i40e_del_filter(vsi, f);
1471 }
1472 
1473 /**
1474  * i40e_add_mac_filter - Add a MAC filter for all active VLANs
1475  * @vsi: the VSI to be searched
1476  * @macaddr: the mac address to be filtered
1477  *
1478  * If we're not in VLAN mode, just add the filter to I40E_VLAN_ANY. Otherwise,
1479  * go through all the macvlan filters and add a macvlan filter for each
1480  * unique vlan that already exists. If a PVID has been assigned, instead only
1481  * add the macaddr to that VLAN.
1482  *
1483  * Returns last filter added on success, else NULL
1484  **/
1485 struct i40e_mac_filter *i40e_add_mac_filter(struct i40e_vsi *vsi,
1486 					    const u8 *macaddr)
1487 {
1488 	struct i40e_mac_filter *f, *add = NULL;
1489 	struct hlist_node *h;
1490 	int bkt;
1491 
1492 	if (vsi->info.pvid)
1493 		return i40e_add_filter(vsi, macaddr,
1494 				       le16_to_cpu(vsi->info.pvid));
1495 
1496 	if (!i40e_is_vsi_in_vlan(vsi))
1497 		return i40e_add_filter(vsi, macaddr, I40E_VLAN_ANY);
1498 
1499 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
1500 		if (f->state == I40E_FILTER_REMOVE)
1501 			continue;
1502 		add = i40e_add_filter(vsi, macaddr, f->vlan);
1503 		if (!add)
1504 			return NULL;
1505 	}
1506 
1507 	return add;
1508 }
1509 
1510 /**
1511  * i40e_del_mac_filter - Remove a MAC filter from all VLANs
1512  * @vsi: the VSI to be searched
1513  * @macaddr: the mac address to be removed
1514  *
1515  * Removes a given MAC address from a VSI regardless of what VLAN it has been
1516  * associated with.
1517  *
1518  * Returns 0 for success, or error
1519  **/
1520 int i40e_del_mac_filter(struct i40e_vsi *vsi, const u8 *macaddr)
1521 {
1522 	struct i40e_mac_filter *f;
1523 	struct hlist_node *h;
1524 	bool found = false;
1525 	int bkt;
1526 
1527 	WARN(!spin_is_locked(&vsi->mac_filter_hash_lock),
1528 	     "Missing mac_filter_hash_lock\n");
1529 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
1530 		if (ether_addr_equal(macaddr, f->macaddr)) {
1531 			__i40e_del_filter(vsi, f);
1532 			found = true;
1533 		}
1534 	}
1535 
1536 	if (found)
1537 		return 0;
1538 	else
1539 		return -ENOENT;
1540 }
1541 
1542 /**
1543  * i40e_set_mac - NDO callback to set mac address
1544  * @netdev: network interface device structure
1545  * @p: pointer to an address structure
1546  *
1547  * Returns 0 on success, negative on failure
1548  **/
1549 static int i40e_set_mac(struct net_device *netdev, void *p)
1550 {
1551 	struct i40e_netdev_priv *np = netdev_priv(netdev);
1552 	struct i40e_vsi *vsi = np->vsi;
1553 	struct i40e_pf *pf = vsi->back;
1554 	struct i40e_hw *hw = &pf->hw;
1555 	struct sockaddr *addr = p;
1556 
1557 	if (!is_valid_ether_addr(addr->sa_data))
1558 		return -EADDRNOTAVAIL;
1559 
1560 	if (ether_addr_equal(netdev->dev_addr, addr->sa_data)) {
1561 		netdev_info(netdev, "already using mac address %pM\n",
1562 			    addr->sa_data);
1563 		return 0;
1564 	}
1565 
1566 	if (test_bit(__I40E_VSI_DOWN, vsi->back->state) ||
1567 	    test_bit(__I40E_RESET_RECOVERY_PENDING, vsi->back->state))
1568 		return -EADDRNOTAVAIL;
1569 
1570 	if (ether_addr_equal(hw->mac.addr, addr->sa_data))
1571 		netdev_info(netdev, "returning to hw mac address %pM\n",
1572 			    hw->mac.addr);
1573 	else
1574 		netdev_info(netdev, "set new mac address %pM\n", addr->sa_data);
1575 
1576 	spin_lock_bh(&vsi->mac_filter_hash_lock);
1577 	i40e_del_mac_filter(vsi, netdev->dev_addr);
1578 	i40e_add_mac_filter(vsi, addr->sa_data);
1579 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
1580 	ether_addr_copy(netdev->dev_addr, addr->sa_data);
1581 	if (vsi->type == I40E_VSI_MAIN) {
1582 		i40e_status ret;
1583 
1584 		ret = i40e_aq_mac_address_write(&vsi->back->hw,
1585 						I40E_AQC_WRITE_TYPE_LAA_WOL,
1586 						addr->sa_data, NULL);
1587 		if (ret)
1588 			netdev_info(netdev, "Ignoring error from firmware on LAA update, status %s, AQ ret %s\n",
1589 				    i40e_stat_str(hw, ret),
1590 				    i40e_aq_str(hw, hw->aq.asq_last_status));
1591 	}
1592 
1593 	/* schedule our worker thread which will take care of
1594 	 * applying the new filter changes
1595 	 */
1596 	i40e_service_event_schedule(vsi->back);
1597 	return 0;
1598 }
1599 
1600 /**
1601  * i40e_config_rss_aq - Prepare for RSS using AQ commands
1602  * @vsi: vsi structure
1603  * @seed: RSS hash seed
1604  **/
1605 static int i40e_config_rss_aq(struct i40e_vsi *vsi, const u8 *seed,
1606 			      u8 *lut, u16 lut_size)
1607 {
1608 	struct i40e_pf *pf = vsi->back;
1609 	struct i40e_hw *hw = &pf->hw;
1610 	int ret = 0;
1611 
1612 	if (seed) {
1613 		struct i40e_aqc_get_set_rss_key_data *seed_dw =
1614 			(struct i40e_aqc_get_set_rss_key_data *)seed;
1615 		ret = i40e_aq_set_rss_key(hw, vsi->id, seed_dw);
1616 		if (ret) {
1617 			dev_info(&pf->pdev->dev,
1618 				 "Cannot set RSS key, err %s aq_err %s\n",
1619 				 i40e_stat_str(hw, ret),
1620 				 i40e_aq_str(hw, hw->aq.asq_last_status));
1621 			return ret;
1622 		}
1623 	}
1624 	if (lut) {
1625 		bool pf_lut = vsi->type == I40E_VSI_MAIN ? true : false;
1626 
1627 		ret = i40e_aq_set_rss_lut(hw, vsi->id, pf_lut, lut, lut_size);
1628 		if (ret) {
1629 			dev_info(&pf->pdev->dev,
1630 				 "Cannot set RSS lut, err %s aq_err %s\n",
1631 				 i40e_stat_str(hw, ret),
1632 				 i40e_aq_str(hw, hw->aq.asq_last_status));
1633 			return ret;
1634 		}
1635 	}
1636 	return ret;
1637 }
1638 
1639 /**
1640  * i40e_vsi_config_rss - Prepare for VSI(VMDq) RSS if used
1641  * @vsi: VSI structure
1642  **/
1643 static int i40e_vsi_config_rss(struct i40e_vsi *vsi)
1644 {
1645 	struct i40e_pf *pf = vsi->back;
1646 	u8 seed[I40E_HKEY_ARRAY_SIZE];
1647 	u8 *lut;
1648 	int ret;
1649 
1650 	if (!(pf->hw_features & I40E_HW_RSS_AQ_CAPABLE))
1651 		return 0;
1652 	if (!vsi->rss_size)
1653 		vsi->rss_size = min_t(int, pf->alloc_rss_size,
1654 				      vsi->num_queue_pairs);
1655 	if (!vsi->rss_size)
1656 		return -EINVAL;
1657 	lut = kzalloc(vsi->rss_table_size, GFP_KERNEL);
1658 	if (!lut)
1659 		return -ENOMEM;
1660 
1661 	/* Use the user configured hash keys and lookup table if there is one,
1662 	 * otherwise use default
1663 	 */
1664 	if (vsi->rss_lut_user)
1665 		memcpy(lut, vsi->rss_lut_user, vsi->rss_table_size);
1666 	else
1667 		i40e_fill_rss_lut(pf, lut, vsi->rss_table_size, vsi->rss_size);
1668 	if (vsi->rss_hkey_user)
1669 		memcpy(seed, vsi->rss_hkey_user, I40E_HKEY_ARRAY_SIZE);
1670 	else
1671 		netdev_rss_key_fill((void *)seed, I40E_HKEY_ARRAY_SIZE);
1672 	ret = i40e_config_rss_aq(vsi, seed, lut, vsi->rss_table_size);
1673 	kfree(lut);
1674 	return ret;
1675 }
1676 
1677 /**
1678  * i40e_vsi_setup_queue_map_mqprio - Prepares mqprio based tc_config
1679  * @vsi: the VSI being configured,
1680  * @ctxt: VSI context structure
1681  * @enabled_tc: number of traffic classes to enable
1682  *
1683  * Prepares VSI tc_config to have queue configurations based on MQPRIO options.
1684  **/
1685 static int i40e_vsi_setup_queue_map_mqprio(struct i40e_vsi *vsi,
1686 					   struct i40e_vsi_context *ctxt,
1687 					   u8 enabled_tc)
1688 {
1689 	u16 qcount = 0, max_qcount, qmap, sections = 0;
1690 	int i, override_q, pow, num_qps, ret;
1691 	u8 netdev_tc = 0, offset = 0;
1692 
1693 	if (vsi->type != I40E_VSI_MAIN)
1694 		return -EINVAL;
1695 	sections = I40E_AQ_VSI_PROP_QUEUE_MAP_VALID;
1696 	sections |= I40E_AQ_VSI_PROP_SCHED_VALID;
1697 	vsi->tc_config.numtc = vsi->mqprio_qopt.qopt.num_tc;
1698 	vsi->tc_config.enabled_tc = enabled_tc ? enabled_tc : 1;
1699 	num_qps = vsi->mqprio_qopt.qopt.count[0];
1700 
1701 	/* find the next higher power-of-2 of num queue pairs */
1702 	pow = ilog2(num_qps);
1703 	if (!is_power_of_2(num_qps))
1704 		pow++;
1705 	qmap = (offset << I40E_AQ_VSI_TC_QUE_OFFSET_SHIFT) |
1706 		(pow << I40E_AQ_VSI_TC_QUE_NUMBER_SHIFT);
1707 
1708 	/* Setup queue offset/count for all TCs for given VSI */
1709 	max_qcount = vsi->mqprio_qopt.qopt.count[0];
1710 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
1711 		/* See if the given TC is enabled for the given VSI */
1712 		if (vsi->tc_config.enabled_tc & BIT(i)) {
1713 			offset = vsi->mqprio_qopt.qopt.offset[i];
1714 			qcount = vsi->mqprio_qopt.qopt.count[i];
1715 			if (qcount > max_qcount)
1716 				max_qcount = qcount;
1717 			vsi->tc_config.tc_info[i].qoffset = offset;
1718 			vsi->tc_config.tc_info[i].qcount = qcount;
1719 			vsi->tc_config.tc_info[i].netdev_tc = netdev_tc++;
1720 		} else {
1721 			/* TC is not enabled so set the offset to
1722 			 * default queue and allocate one queue
1723 			 * for the given TC.
1724 			 */
1725 			vsi->tc_config.tc_info[i].qoffset = 0;
1726 			vsi->tc_config.tc_info[i].qcount = 1;
1727 			vsi->tc_config.tc_info[i].netdev_tc = 0;
1728 		}
1729 	}
1730 
1731 	/* Set actual Tx/Rx queue pairs */
1732 	vsi->num_queue_pairs = offset + qcount;
1733 
1734 	/* Setup queue TC[0].qmap for given VSI context */
1735 	ctxt->info.tc_mapping[0] = cpu_to_le16(qmap);
1736 	ctxt->info.mapping_flags |= cpu_to_le16(I40E_AQ_VSI_QUE_MAP_CONTIG);
1737 	ctxt->info.queue_mapping[0] = cpu_to_le16(vsi->base_queue);
1738 	ctxt->info.valid_sections |= cpu_to_le16(sections);
1739 
1740 	/* Reconfigure RSS for main VSI with max queue count */
1741 	vsi->rss_size = max_qcount;
1742 	ret = i40e_vsi_config_rss(vsi);
1743 	if (ret) {
1744 		dev_info(&vsi->back->pdev->dev,
1745 			 "Failed to reconfig rss for num_queues (%u)\n",
1746 			 max_qcount);
1747 		return ret;
1748 	}
1749 	vsi->reconfig_rss = true;
1750 	dev_dbg(&vsi->back->pdev->dev,
1751 		"Reconfigured rss with num_queues (%u)\n", max_qcount);
1752 
1753 	/* Find queue count available for channel VSIs and starting offset
1754 	 * for channel VSIs
1755 	 */
1756 	override_q = vsi->mqprio_qopt.qopt.count[0];
1757 	if (override_q && override_q < vsi->num_queue_pairs) {
1758 		vsi->cnt_q_avail = vsi->num_queue_pairs - override_q;
1759 		vsi->next_base_queue = override_q;
1760 	}
1761 	return 0;
1762 }
1763 
1764 /**
1765  * i40e_vsi_setup_queue_map - Setup a VSI queue map based on enabled_tc
1766  * @vsi: the VSI being setup
1767  * @ctxt: VSI context structure
1768  * @enabled_tc: Enabled TCs bitmap
1769  * @is_add: True if called before Add VSI
1770  *
1771  * Setup VSI queue mapping for enabled traffic classes.
1772  **/
1773 static void i40e_vsi_setup_queue_map(struct i40e_vsi *vsi,
1774 				     struct i40e_vsi_context *ctxt,
1775 				     u8 enabled_tc,
1776 				     bool is_add)
1777 {
1778 	struct i40e_pf *pf = vsi->back;
1779 	u16 sections = 0;
1780 	u8 netdev_tc = 0;
1781 	u16 numtc = 0;
1782 	u16 qcount;
1783 	u8 offset;
1784 	u16 qmap;
1785 	int i;
1786 	u16 num_tc_qps = 0;
1787 
1788 	sections = I40E_AQ_VSI_PROP_QUEUE_MAP_VALID;
1789 	offset = 0;
1790 
1791 	if (enabled_tc && (vsi->back->flags & I40E_FLAG_DCB_ENABLED)) {
1792 		/* Find numtc from enabled TC bitmap */
1793 		for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
1794 			if (enabled_tc & BIT(i)) /* TC is enabled */
1795 				numtc++;
1796 		}
1797 		if (!numtc) {
1798 			dev_warn(&pf->pdev->dev, "DCB is enabled but no TC enabled, forcing TC0\n");
1799 			numtc = 1;
1800 		}
1801 	} else {
1802 		/* At least TC0 is enabled in non-DCB, non-MQPRIO case */
1803 		numtc = 1;
1804 	}
1805 
1806 	vsi->tc_config.numtc = numtc;
1807 	vsi->tc_config.enabled_tc = enabled_tc ? enabled_tc : 1;
1808 	/* Number of queues per enabled TC */
1809 	qcount = vsi->alloc_queue_pairs;
1810 
1811 	num_tc_qps = qcount / numtc;
1812 	num_tc_qps = min_t(int, num_tc_qps, i40e_pf_get_max_q_per_tc(pf));
1813 
1814 	/* Setup queue offset/count for all TCs for given VSI */
1815 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
1816 		/* See if the given TC is enabled for the given VSI */
1817 		if (vsi->tc_config.enabled_tc & BIT(i)) {
1818 			/* TC is enabled */
1819 			int pow, num_qps;
1820 
1821 			switch (vsi->type) {
1822 			case I40E_VSI_MAIN:
1823 				qcount = min_t(int, pf->alloc_rss_size,
1824 					       num_tc_qps);
1825 				break;
1826 			case I40E_VSI_FDIR:
1827 			case I40E_VSI_SRIOV:
1828 			case I40E_VSI_VMDQ2:
1829 			default:
1830 				qcount = num_tc_qps;
1831 				WARN_ON(i != 0);
1832 				break;
1833 			}
1834 			vsi->tc_config.tc_info[i].qoffset = offset;
1835 			vsi->tc_config.tc_info[i].qcount = qcount;
1836 
1837 			/* find the next higher power-of-2 of num queue pairs */
1838 			num_qps = qcount;
1839 			pow = 0;
1840 			while (num_qps && (BIT_ULL(pow) < qcount)) {
1841 				pow++;
1842 				num_qps >>= 1;
1843 			}
1844 
1845 			vsi->tc_config.tc_info[i].netdev_tc = netdev_tc++;
1846 			qmap =
1847 			    (offset << I40E_AQ_VSI_TC_QUE_OFFSET_SHIFT) |
1848 			    (pow << I40E_AQ_VSI_TC_QUE_NUMBER_SHIFT);
1849 
1850 			offset += qcount;
1851 		} else {
1852 			/* TC is not enabled so set the offset to
1853 			 * default queue and allocate one queue
1854 			 * for the given TC.
1855 			 */
1856 			vsi->tc_config.tc_info[i].qoffset = 0;
1857 			vsi->tc_config.tc_info[i].qcount = 1;
1858 			vsi->tc_config.tc_info[i].netdev_tc = 0;
1859 
1860 			qmap = 0;
1861 		}
1862 		ctxt->info.tc_mapping[i] = cpu_to_le16(qmap);
1863 	}
1864 
1865 	/* Set actual Tx/Rx queue pairs */
1866 	vsi->num_queue_pairs = offset;
1867 	if ((vsi->type == I40E_VSI_MAIN) && (numtc == 1)) {
1868 		if (vsi->req_queue_pairs > 0)
1869 			vsi->num_queue_pairs = vsi->req_queue_pairs;
1870 		else if (pf->flags & I40E_FLAG_MSIX_ENABLED)
1871 			vsi->num_queue_pairs = pf->num_lan_msix;
1872 	}
1873 
1874 	/* Scheduler section valid can only be set for ADD VSI */
1875 	if (is_add) {
1876 		sections |= I40E_AQ_VSI_PROP_SCHED_VALID;
1877 
1878 		ctxt->info.up_enable_bits = enabled_tc;
1879 	}
1880 	if (vsi->type == I40E_VSI_SRIOV) {
1881 		ctxt->info.mapping_flags |=
1882 				     cpu_to_le16(I40E_AQ_VSI_QUE_MAP_NONCONTIG);
1883 		for (i = 0; i < vsi->num_queue_pairs; i++)
1884 			ctxt->info.queue_mapping[i] =
1885 					       cpu_to_le16(vsi->base_queue + i);
1886 	} else {
1887 		ctxt->info.mapping_flags |=
1888 					cpu_to_le16(I40E_AQ_VSI_QUE_MAP_CONTIG);
1889 		ctxt->info.queue_mapping[0] = cpu_to_le16(vsi->base_queue);
1890 	}
1891 	ctxt->info.valid_sections |= cpu_to_le16(sections);
1892 }
1893 
1894 /**
1895  * i40e_addr_sync - Callback for dev_(mc|uc)_sync to add address
1896  * @netdev: the netdevice
1897  * @addr: address to add
1898  *
1899  * Called by __dev_(mc|uc)_sync when an address needs to be added. We call
1900  * __dev_(uc|mc)_sync from .set_rx_mode and guarantee to hold the hash lock.
1901  */
1902 static int i40e_addr_sync(struct net_device *netdev, const u8 *addr)
1903 {
1904 	struct i40e_netdev_priv *np = netdev_priv(netdev);
1905 	struct i40e_vsi *vsi = np->vsi;
1906 
1907 	if (i40e_add_mac_filter(vsi, addr))
1908 		return 0;
1909 	else
1910 		return -ENOMEM;
1911 }
1912 
1913 /**
1914  * i40e_addr_unsync - Callback for dev_(mc|uc)_sync to remove address
1915  * @netdev: the netdevice
1916  * @addr: address to add
1917  *
1918  * Called by __dev_(mc|uc)_sync when an address needs to be removed. We call
1919  * __dev_(uc|mc)_sync from .set_rx_mode and guarantee to hold the hash lock.
1920  */
1921 static int i40e_addr_unsync(struct net_device *netdev, const u8 *addr)
1922 {
1923 	struct i40e_netdev_priv *np = netdev_priv(netdev);
1924 	struct i40e_vsi *vsi = np->vsi;
1925 
1926 	i40e_del_mac_filter(vsi, addr);
1927 
1928 	return 0;
1929 }
1930 
1931 /**
1932  * i40e_set_rx_mode - NDO callback to set the netdev filters
1933  * @netdev: network interface device structure
1934  **/
1935 static void i40e_set_rx_mode(struct net_device *netdev)
1936 {
1937 	struct i40e_netdev_priv *np = netdev_priv(netdev);
1938 	struct i40e_vsi *vsi = np->vsi;
1939 
1940 	spin_lock_bh(&vsi->mac_filter_hash_lock);
1941 
1942 	__dev_uc_sync(netdev, i40e_addr_sync, i40e_addr_unsync);
1943 	__dev_mc_sync(netdev, i40e_addr_sync, i40e_addr_unsync);
1944 
1945 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
1946 
1947 	/* check for other flag changes */
1948 	if (vsi->current_netdev_flags != vsi->netdev->flags) {
1949 		vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
1950 		vsi->back->flags |= I40E_FLAG_FILTER_SYNC;
1951 	}
1952 }
1953 
1954 /**
1955  * i40e_undo_del_filter_entries - Undo the changes made to MAC filter entries
1956  * @vsi: Pointer to VSI struct
1957  * @from: Pointer to list which contains MAC filter entries - changes to
1958  *        those entries needs to be undone.
1959  *
1960  * MAC filter entries from this list were slated for deletion.
1961  **/
1962 static void i40e_undo_del_filter_entries(struct i40e_vsi *vsi,
1963 					 struct hlist_head *from)
1964 {
1965 	struct i40e_mac_filter *f;
1966 	struct hlist_node *h;
1967 
1968 	hlist_for_each_entry_safe(f, h, from, hlist) {
1969 		u64 key = i40e_addr_to_hkey(f->macaddr);
1970 
1971 		/* Move the element back into MAC filter list*/
1972 		hlist_del(&f->hlist);
1973 		hash_add(vsi->mac_filter_hash, &f->hlist, key);
1974 	}
1975 }
1976 
1977 /**
1978  * i40e_undo_add_filter_entries - Undo the changes made to MAC filter entries
1979  * @vsi: Pointer to vsi struct
1980  * @from: Pointer to list which contains MAC filter entries - changes to
1981  *        those entries needs to be undone.
1982  *
1983  * MAC filter entries from this list were slated for addition.
1984  **/
1985 static void i40e_undo_add_filter_entries(struct i40e_vsi *vsi,
1986 					 struct hlist_head *from)
1987 {
1988 	struct i40e_new_mac_filter *new;
1989 	struct hlist_node *h;
1990 
1991 	hlist_for_each_entry_safe(new, h, from, hlist) {
1992 		/* We can simply free the wrapper structure */
1993 		hlist_del(&new->hlist);
1994 		kfree(new);
1995 	}
1996 }
1997 
1998 /**
1999  * i40e_next_entry - Get the next non-broadcast filter from a list
2000  * @next: pointer to filter in list
2001  *
2002  * Returns the next non-broadcast filter in the list. Required so that we
2003  * ignore broadcast filters within the list, since these are not handled via
2004  * the normal firmware update path.
2005  */
2006 static
2007 struct i40e_new_mac_filter *i40e_next_filter(struct i40e_new_mac_filter *next)
2008 {
2009 	hlist_for_each_entry_continue(next, hlist) {
2010 		if (!is_broadcast_ether_addr(next->f->macaddr))
2011 			return next;
2012 	}
2013 
2014 	return NULL;
2015 }
2016 
2017 /**
2018  * i40e_update_filter_state - Update filter state based on return data
2019  * from firmware
2020  * @count: Number of filters added
2021  * @add_list: return data from fw
2022  * @head: pointer to first filter in current batch
2023  *
2024  * MAC filter entries from list were slated to be added to device. Returns
2025  * number of successful filters. Note that 0 does NOT mean success!
2026  **/
2027 static int
2028 i40e_update_filter_state(int count,
2029 			 struct i40e_aqc_add_macvlan_element_data *add_list,
2030 			 struct i40e_new_mac_filter *add_head)
2031 {
2032 	int retval = 0;
2033 	int i;
2034 
2035 	for (i = 0; i < count; i++) {
2036 		/* Always check status of each filter. We don't need to check
2037 		 * the firmware return status because we pre-set the filter
2038 		 * status to I40E_AQC_MM_ERR_NO_RES when sending the filter
2039 		 * request to the adminq. Thus, if it no longer matches then
2040 		 * we know the filter is active.
2041 		 */
2042 		if (add_list[i].match_method == I40E_AQC_MM_ERR_NO_RES) {
2043 			add_head->state = I40E_FILTER_FAILED;
2044 		} else {
2045 			add_head->state = I40E_FILTER_ACTIVE;
2046 			retval++;
2047 		}
2048 
2049 		add_head = i40e_next_filter(add_head);
2050 		if (!add_head)
2051 			break;
2052 	}
2053 
2054 	return retval;
2055 }
2056 
2057 /**
2058  * i40e_aqc_del_filters - Request firmware to delete a set of filters
2059  * @vsi: ptr to the VSI
2060  * @vsi_name: name to display in messages
2061  * @list: the list of filters to send to firmware
2062  * @num_del: the number of filters to delete
2063  * @retval: Set to -EIO on failure to delete
2064  *
2065  * Send a request to firmware via AdminQ to delete a set of filters. Uses
2066  * *retval instead of a return value so that success does not force ret_val to
2067  * be set to 0. This ensures that a sequence of calls to this function
2068  * preserve the previous value of *retval on successful delete.
2069  */
2070 static
2071 void i40e_aqc_del_filters(struct i40e_vsi *vsi, const char *vsi_name,
2072 			  struct i40e_aqc_remove_macvlan_element_data *list,
2073 			  int num_del, int *retval)
2074 {
2075 	struct i40e_hw *hw = &vsi->back->hw;
2076 	i40e_status aq_ret;
2077 	int aq_err;
2078 
2079 	aq_ret = i40e_aq_remove_macvlan(hw, vsi->seid, list, num_del, NULL);
2080 	aq_err = hw->aq.asq_last_status;
2081 
2082 	/* Explicitly ignore and do not report when firmware returns ENOENT */
2083 	if (aq_ret && !(aq_err == I40E_AQ_RC_ENOENT)) {
2084 		*retval = -EIO;
2085 		dev_info(&vsi->back->pdev->dev,
2086 			 "ignoring delete macvlan error on %s, err %s, aq_err %s\n",
2087 			 vsi_name, i40e_stat_str(hw, aq_ret),
2088 			 i40e_aq_str(hw, aq_err));
2089 	}
2090 }
2091 
2092 /**
2093  * i40e_aqc_add_filters - Request firmware to add a set of filters
2094  * @vsi: ptr to the VSI
2095  * @vsi_name: name to display in messages
2096  * @list: the list of filters to send to firmware
2097  * @add_head: Position in the add hlist
2098  * @num_add: the number of filters to add
2099  * @promisc_change: set to true on exit if promiscuous mode was forced on
2100  *
2101  * Send a request to firmware via AdminQ to add a chunk of filters. Will set
2102  * promisc_changed to true if the firmware has run out of space for more
2103  * filters.
2104  */
2105 static
2106 void i40e_aqc_add_filters(struct i40e_vsi *vsi, const char *vsi_name,
2107 			  struct i40e_aqc_add_macvlan_element_data *list,
2108 			  struct i40e_new_mac_filter *add_head,
2109 			  int num_add, bool *promisc_changed)
2110 {
2111 	struct i40e_hw *hw = &vsi->back->hw;
2112 	int aq_err, fcnt;
2113 
2114 	i40e_aq_add_macvlan(hw, vsi->seid, list, num_add, NULL);
2115 	aq_err = hw->aq.asq_last_status;
2116 	fcnt = i40e_update_filter_state(num_add, list, add_head);
2117 
2118 	if (fcnt != num_add) {
2119 		*promisc_changed = true;
2120 		set_bit(__I40E_VSI_OVERFLOW_PROMISC, vsi->state);
2121 		dev_warn(&vsi->back->pdev->dev,
2122 			 "Error %s adding RX filters on %s, promiscuous mode forced on\n",
2123 			 i40e_aq_str(hw, aq_err),
2124 			 vsi_name);
2125 	}
2126 }
2127 
2128 /**
2129  * i40e_aqc_broadcast_filter - Set promiscuous broadcast flags
2130  * @vsi: pointer to the VSI
2131  * @f: filter data
2132  *
2133  * This function sets or clears the promiscuous broadcast flags for VLAN
2134  * filters in order to properly receive broadcast frames. Assumes that only
2135  * broadcast filters are passed.
2136  *
2137  * Returns status indicating success or failure;
2138  **/
2139 static i40e_status
2140 i40e_aqc_broadcast_filter(struct i40e_vsi *vsi, const char *vsi_name,
2141 			  struct i40e_mac_filter *f)
2142 {
2143 	bool enable = f->state == I40E_FILTER_NEW;
2144 	struct i40e_hw *hw = &vsi->back->hw;
2145 	i40e_status aq_ret;
2146 
2147 	if (f->vlan == I40E_VLAN_ANY) {
2148 		aq_ret = i40e_aq_set_vsi_broadcast(hw,
2149 						   vsi->seid,
2150 						   enable,
2151 						   NULL);
2152 	} else {
2153 		aq_ret = i40e_aq_set_vsi_bc_promisc_on_vlan(hw,
2154 							    vsi->seid,
2155 							    enable,
2156 							    f->vlan,
2157 							    NULL);
2158 	}
2159 
2160 	if (aq_ret)
2161 		dev_warn(&vsi->back->pdev->dev,
2162 			 "Error %s setting broadcast promiscuous mode on %s\n",
2163 			 i40e_aq_str(hw, hw->aq.asq_last_status),
2164 			 vsi_name);
2165 
2166 	return aq_ret;
2167 }
2168 
2169 /**
2170  * i40e_set_promiscuous - set promiscuous mode
2171  * @pf: board private structure
2172  * @promisc: promisc on or off
2173  *
2174  * There are different ways of setting promiscuous mode on a PF depending on
2175  * what state/environment we're in.  This identifies and sets it appropriately.
2176  * Returns 0 on success.
2177  **/
2178 static int i40e_set_promiscuous(struct i40e_pf *pf, bool promisc)
2179 {
2180 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
2181 	struct i40e_hw *hw = &pf->hw;
2182 	i40e_status aq_ret;
2183 
2184 	if (vsi->type == I40E_VSI_MAIN &&
2185 	    pf->lan_veb != I40E_NO_VEB &&
2186 	    !(pf->flags & I40E_FLAG_MFP_ENABLED)) {
2187 		/* set defport ON for Main VSI instead of true promisc
2188 		 * this way we will get all unicast/multicast and VLAN
2189 		 * promisc behavior but will not get VF or VMDq traffic
2190 		 * replicated on the Main VSI.
2191 		 */
2192 		if (promisc)
2193 			aq_ret = i40e_aq_set_default_vsi(hw,
2194 							 vsi->seid,
2195 							 NULL);
2196 		else
2197 			aq_ret = i40e_aq_clear_default_vsi(hw,
2198 							   vsi->seid,
2199 							   NULL);
2200 		if (aq_ret) {
2201 			dev_info(&pf->pdev->dev,
2202 				 "Set default VSI failed, err %s, aq_err %s\n",
2203 				 i40e_stat_str(hw, aq_ret),
2204 				 i40e_aq_str(hw, hw->aq.asq_last_status));
2205 		}
2206 	} else {
2207 		aq_ret = i40e_aq_set_vsi_unicast_promiscuous(
2208 						  hw,
2209 						  vsi->seid,
2210 						  promisc, NULL,
2211 						  true);
2212 		if (aq_ret) {
2213 			dev_info(&pf->pdev->dev,
2214 				 "set unicast promisc failed, err %s, aq_err %s\n",
2215 				 i40e_stat_str(hw, aq_ret),
2216 				 i40e_aq_str(hw, hw->aq.asq_last_status));
2217 		}
2218 		aq_ret = i40e_aq_set_vsi_multicast_promiscuous(
2219 						  hw,
2220 						  vsi->seid,
2221 						  promisc, NULL);
2222 		if (aq_ret) {
2223 			dev_info(&pf->pdev->dev,
2224 				 "set multicast promisc failed, err %s, aq_err %s\n",
2225 				 i40e_stat_str(hw, aq_ret),
2226 				 i40e_aq_str(hw, hw->aq.asq_last_status));
2227 		}
2228 	}
2229 
2230 	if (!aq_ret)
2231 		pf->cur_promisc = promisc;
2232 
2233 	return aq_ret;
2234 }
2235 
2236 /**
2237  * i40e_sync_vsi_filters - Update the VSI filter list to the HW
2238  * @vsi: ptr to the VSI
2239  *
2240  * Push any outstanding VSI filter changes through the AdminQ.
2241  *
2242  * Returns 0 or error value
2243  **/
2244 int i40e_sync_vsi_filters(struct i40e_vsi *vsi)
2245 {
2246 	struct hlist_head tmp_add_list, tmp_del_list;
2247 	struct i40e_mac_filter *f;
2248 	struct i40e_new_mac_filter *new, *add_head = NULL;
2249 	struct i40e_hw *hw = &vsi->back->hw;
2250 	unsigned int failed_filters = 0;
2251 	unsigned int vlan_filters = 0;
2252 	bool promisc_changed = false;
2253 	char vsi_name[16] = "PF";
2254 	int filter_list_len = 0;
2255 	i40e_status aq_ret = 0;
2256 	u32 changed_flags = 0;
2257 	struct hlist_node *h;
2258 	struct i40e_pf *pf;
2259 	int num_add = 0;
2260 	int num_del = 0;
2261 	int retval = 0;
2262 	u16 cmd_flags;
2263 	int list_size;
2264 	int bkt;
2265 
2266 	/* empty array typed pointers, kcalloc later */
2267 	struct i40e_aqc_add_macvlan_element_data *add_list;
2268 	struct i40e_aqc_remove_macvlan_element_data *del_list;
2269 
2270 	while (test_and_set_bit(__I40E_VSI_SYNCING_FILTERS, vsi->state))
2271 		usleep_range(1000, 2000);
2272 	pf = vsi->back;
2273 
2274 	if (vsi->netdev) {
2275 		changed_flags = vsi->current_netdev_flags ^ vsi->netdev->flags;
2276 		vsi->current_netdev_flags = vsi->netdev->flags;
2277 	}
2278 
2279 	INIT_HLIST_HEAD(&tmp_add_list);
2280 	INIT_HLIST_HEAD(&tmp_del_list);
2281 
2282 	if (vsi->type == I40E_VSI_SRIOV)
2283 		snprintf(vsi_name, sizeof(vsi_name) - 1, "VF %d", vsi->vf_id);
2284 	else if (vsi->type != I40E_VSI_MAIN)
2285 		snprintf(vsi_name, sizeof(vsi_name) - 1, "vsi %d", vsi->seid);
2286 
2287 	if (vsi->flags & I40E_VSI_FLAG_FILTER_CHANGED) {
2288 		vsi->flags &= ~I40E_VSI_FLAG_FILTER_CHANGED;
2289 
2290 		spin_lock_bh(&vsi->mac_filter_hash_lock);
2291 		/* Create a list of filters to delete. */
2292 		hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
2293 			if (f->state == I40E_FILTER_REMOVE) {
2294 				/* Move the element into temporary del_list */
2295 				hash_del(&f->hlist);
2296 				hlist_add_head(&f->hlist, &tmp_del_list);
2297 
2298 				/* Avoid counting removed filters */
2299 				continue;
2300 			}
2301 			if (f->state == I40E_FILTER_NEW) {
2302 				/* Create a temporary i40e_new_mac_filter */
2303 				new = kzalloc(sizeof(*new), GFP_ATOMIC);
2304 				if (!new)
2305 					goto err_no_memory_locked;
2306 
2307 				/* Store pointer to the real filter */
2308 				new->f = f;
2309 				new->state = f->state;
2310 
2311 				/* Add it to the hash list */
2312 				hlist_add_head(&new->hlist, &tmp_add_list);
2313 			}
2314 
2315 			/* Count the number of active (current and new) VLAN
2316 			 * filters we have now. Does not count filters which
2317 			 * are marked for deletion.
2318 			 */
2319 			if (f->vlan > 0)
2320 				vlan_filters++;
2321 		}
2322 
2323 		retval = i40e_correct_mac_vlan_filters(vsi,
2324 						       &tmp_add_list,
2325 						       &tmp_del_list,
2326 						       vlan_filters);
2327 		if (retval)
2328 			goto err_no_memory_locked;
2329 
2330 		spin_unlock_bh(&vsi->mac_filter_hash_lock);
2331 	}
2332 
2333 	/* Now process 'del_list' outside the lock */
2334 	if (!hlist_empty(&tmp_del_list)) {
2335 		filter_list_len = hw->aq.asq_buf_size /
2336 			    sizeof(struct i40e_aqc_remove_macvlan_element_data);
2337 		list_size = filter_list_len *
2338 			    sizeof(struct i40e_aqc_remove_macvlan_element_data);
2339 		del_list = kzalloc(list_size, GFP_ATOMIC);
2340 		if (!del_list)
2341 			goto err_no_memory;
2342 
2343 		hlist_for_each_entry_safe(f, h, &tmp_del_list, hlist) {
2344 			cmd_flags = 0;
2345 
2346 			/* handle broadcast filters by updating the broadcast
2347 			 * promiscuous flag and release filter list.
2348 			 */
2349 			if (is_broadcast_ether_addr(f->macaddr)) {
2350 				i40e_aqc_broadcast_filter(vsi, vsi_name, f);
2351 
2352 				hlist_del(&f->hlist);
2353 				kfree(f);
2354 				continue;
2355 			}
2356 
2357 			/* add to delete list */
2358 			ether_addr_copy(del_list[num_del].mac_addr, f->macaddr);
2359 			if (f->vlan == I40E_VLAN_ANY) {
2360 				del_list[num_del].vlan_tag = 0;
2361 				cmd_flags |= I40E_AQC_MACVLAN_DEL_IGNORE_VLAN;
2362 			} else {
2363 				del_list[num_del].vlan_tag =
2364 					cpu_to_le16((u16)(f->vlan));
2365 			}
2366 
2367 			cmd_flags |= I40E_AQC_MACVLAN_DEL_PERFECT_MATCH;
2368 			del_list[num_del].flags = cmd_flags;
2369 			num_del++;
2370 
2371 			/* flush a full buffer */
2372 			if (num_del == filter_list_len) {
2373 				i40e_aqc_del_filters(vsi, vsi_name, del_list,
2374 						     num_del, &retval);
2375 				memset(del_list, 0, list_size);
2376 				num_del = 0;
2377 			}
2378 			/* Release memory for MAC filter entries which were
2379 			 * synced up with HW.
2380 			 */
2381 			hlist_del(&f->hlist);
2382 			kfree(f);
2383 		}
2384 
2385 		if (num_del) {
2386 			i40e_aqc_del_filters(vsi, vsi_name, del_list,
2387 					     num_del, &retval);
2388 		}
2389 
2390 		kfree(del_list);
2391 		del_list = NULL;
2392 	}
2393 
2394 	if (!hlist_empty(&tmp_add_list)) {
2395 		/* Do all the adds now. */
2396 		filter_list_len = hw->aq.asq_buf_size /
2397 			       sizeof(struct i40e_aqc_add_macvlan_element_data);
2398 		list_size = filter_list_len *
2399 			       sizeof(struct i40e_aqc_add_macvlan_element_data);
2400 		add_list = kzalloc(list_size, GFP_ATOMIC);
2401 		if (!add_list)
2402 			goto err_no_memory;
2403 
2404 		num_add = 0;
2405 		hlist_for_each_entry_safe(new, h, &tmp_add_list, hlist) {
2406 			if (test_bit(__I40E_VSI_OVERFLOW_PROMISC,
2407 				     vsi->state)) {
2408 				new->state = I40E_FILTER_FAILED;
2409 				continue;
2410 			}
2411 
2412 			/* handle broadcast filters by updating the broadcast
2413 			 * promiscuous flag instead of adding a MAC filter.
2414 			 */
2415 			if (is_broadcast_ether_addr(new->f->macaddr)) {
2416 				if (i40e_aqc_broadcast_filter(vsi, vsi_name,
2417 							      new->f))
2418 					new->state = I40E_FILTER_FAILED;
2419 				else
2420 					new->state = I40E_FILTER_ACTIVE;
2421 				continue;
2422 			}
2423 
2424 			/* add to add array */
2425 			if (num_add == 0)
2426 				add_head = new;
2427 			cmd_flags = 0;
2428 			ether_addr_copy(add_list[num_add].mac_addr,
2429 					new->f->macaddr);
2430 			if (new->f->vlan == I40E_VLAN_ANY) {
2431 				add_list[num_add].vlan_tag = 0;
2432 				cmd_flags |= I40E_AQC_MACVLAN_ADD_IGNORE_VLAN;
2433 			} else {
2434 				add_list[num_add].vlan_tag =
2435 					cpu_to_le16((u16)(new->f->vlan));
2436 			}
2437 			add_list[num_add].queue_number = 0;
2438 			/* set invalid match method for later detection */
2439 			add_list[num_add].match_method = I40E_AQC_MM_ERR_NO_RES;
2440 			cmd_flags |= I40E_AQC_MACVLAN_ADD_PERFECT_MATCH;
2441 			add_list[num_add].flags = cpu_to_le16(cmd_flags);
2442 			num_add++;
2443 
2444 			/* flush a full buffer */
2445 			if (num_add == filter_list_len) {
2446 				i40e_aqc_add_filters(vsi, vsi_name, add_list,
2447 						     add_head, num_add,
2448 						     &promisc_changed);
2449 				memset(add_list, 0, list_size);
2450 				num_add = 0;
2451 			}
2452 		}
2453 		if (num_add) {
2454 			i40e_aqc_add_filters(vsi, vsi_name, add_list, add_head,
2455 					     num_add, &promisc_changed);
2456 		}
2457 		/* Now move all of the filters from the temp add list back to
2458 		 * the VSI's list.
2459 		 */
2460 		spin_lock_bh(&vsi->mac_filter_hash_lock);
2461 		hlist_for_each_entry_safe(new, h, &tmp_add_list, hlist) {
2462 			/* Only update the state if we're still NEW */
2463 			if (new->f->state == I40E_FILTER_NEW)
2464 				new->f->state = new->state;
2465 			hlist_del(&new->hlist);
2466 			kfree(new);
2467 		}
2468 		spin_unlock_bh(&vsi->mac_filter_hash_lock);
2469 		kfree(add_list);
2470 		add_list = NULL;
2471 	}
2472 
2473 	/* Determine the number of active and failed filters. */
2474 	spin_lock_bh(&vsi->mac_filter_hash_lock);
2475 	vsi->active_filters = 0;
2476 	hash_for_each(vsi->mac_filter_hash, bkt, f, hlist) {
2477 		if (f->state == I40E_FILTER_ACTIVE)
2478 			vsi->active_filters++;
2479 		else if (f->state == I40E_FILTER_FAILED)
2480 			failed_filters++;
2481 	}
2482 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
2483 
2484 	/* If promiscuous mode has changed, we need to calculate a new
2485 	 * threshold for when we are safe to exit
2486 	 */
2487 	if (promisc_changed)
2488 		vsi->promisc_threshold = (vsi->active_filters * 3) / 4;
2489 
2490 	/* Check if we are able to exit overflow promiscuous mode. We can
2491 	 * safely exit if we didn't just enter, we no longer have any failed
2492 	 * filters, and we have reduced filters below the threshold value.
2493 	 */
2494 	if (test_bit(__I40E_VSI_OVERFLOW_PROMISC, vsi->state) &&
2495 	    !promisc_changed && !failed_filters &&
2496 	    (vsi->active_filters < vsi->promisc_threshold)) {
2497 		dev_info(&pf->pdev->dev,
2498 			 "filter logjam cleared on %s, leaving overflow promiscuous mode\n",
2499 			 vsi_name);
2500 		clear_bit(__I40E_VSI_OVERFLOW_PROMISC, vsi->state);
2501 		promisc_changed = true;
2502 		vsi->promisc_threshold = 0;
2503 	}
2504 
2505 	/* if the VF is not trusted do not do promisc */
2506 	if ((vsi->type == I40E_VSI_SRIOV) && !pf->vf[vsi->vf_id].trusted) {
2507 		clear_bit(__I40E_VSI_OVERFLOW_PROMISC, vsi->state);
2508 		goto out;
2509 	}
2510 
2511 	/* check for changes in promiscuous modes */
2512 	if (changed_flags & IFF_ALLMULTI) {
2513 		bool cur_multipromisc;
2514 
2515 		cur_multipromisc = !!(vsi->current_netdev_flags & IFF_ALLMULTI);
2516 		aq_ret = i40e_aq_set_vsi_multicast_promiscuous(&vsi->back->hw,
2517 							       vsi->seid,
2518 							       cur_multipromisc,
2519 							       NULL);
2520 		if (aq_ret) {
2521 			retval = i40e_aq_rc_to_posix(aq_ret,
2522 						     hw->aq.asq_last_status);
2523 			dev_info(&pf->pdev->dev,
2524 				 "set multi promisc failed on %s, err %s aq_err %s\n",
2525 				 vsi_name,
2526 				 i40e_stat_str(hw, aq_ret),
2527 				 i40e_aq_str(hw, hw->aq.asq_last_status));
2528 		}
2529 	}
2530 
2531 	if ((changed_flags & IFF_PROMISC) || promisc_changed) {
2532 		bool cur_promisc;
2533 
2534 		cur_promisc = (!!(vsi->current_netdev_flags & IFF_PROMISC) ||
2535 			       test_bit(__I40E_VSI_OVERFLOW_PROMISC,
2536 					vsi->state));
2537 		aq_ret = i40e_set_promiscuous(pf, cur_promisc);
2538 		if (aq_ret) {
2539 			retval = i40e_aq_rc_to_posix(aq_ret,
2540 						     hw->aq.asq_last_status);
2541 			dev_info(&pf->pdev->dev,
2542 				 "Setting promiscuous %s failed on %s, err %s aq_err %s\n",
2543 				 cur_promisc ? "on" : "off",
2544 				 vsi_name,
2545 				 i40e_stat_str(hw, aq_ret),
2546 				 i40e_aq_str(hw, hw->aq.asq_last_status));
2547 		}
2548 	}
2549 out:
2550 	/* if something went wrong then set the changed flag so we try again */
2551 	if (retval)
2552 		vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
2553 
2554 	clear_bit(__I40E_VSI_SYNCING_FILTERS, vsi->state);
2555 	return retval;
2556 
2557 err_no_memory:
2558 	/* Restore elements on the temporary add and delete lists */
2559 	spin_lock_bh(&vsi->mac_filter_hash_lock);
2560 err_no_memory_locked:
2561 	i40e_undo_del_filter_entries(vsi, &tmp_del_list);
2562 	i40e_undo_add_filter_entries(vsi, &tmp_add_list);
2563 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
2564 
2565 	vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
2566 	clear_bit(__I40E_VSI_SYNCING_FILTERS, vsi->state);
2567 	return -ENOMEM;
2568 }
2569 
2570 /**
2571  * i40e_sync_filters_subtask - Sync the VSI filter list with HW
2572  * @pf: board private structure
2573  **/
2574 static void i40e_sync_filters_subtask(struct i40e_pf *pf)
2575 {
2576 	int v;
2577 
2578 	if (!pf || !(pf->flags & I40E_FLAG_FILTER_SYNC))
2579 		return;
2580 	pf->flags &= ~I40E_FLAG_FILTER_SYNC;
2581 
2582 	for (v = 0; v < pf->num_alloc_vsi; v++) {
2583 		if (pf->vsi[v] &&
2584 		    (pf->vsi[v]->flags & I40E_VSI_FLAG_FILTER_CHANGED)) {
2585 			int ret = i40e_sync_vsi_filters(pf->vsi[v]);
2586 
2587 			if (ret) {
2588 				/* come back and try again later */
2589 				pf->flags |= I40E_FLAG_FILTER_SYNC;
2590 				break;
2591 			}
2592 		}
2593 	}
2594 }
2595 
2596 /**
2597  * i40e_max_xdp_frame_size - returns the maximum allowed frame size for XDP
2598  * @vsi: the vsi
2599  **/
2600 static int i40e_max_xdp_frame_size(struct i40e_vsi *vsi)
2601 {
2602 	if (PAGE_SIZE >= 8192 || (vsi->back->flags & I40E_FLAG_LEGACY_RX))
2603 		return I40E_RXBUFFER_2048;
2604 	else
2605 		return I40E_RXBUFFER_3072;
2606 }
2607 
2608 /**
2609  * i40e_change_mtu - NDO callback to change the Maximum Transfer Unit
2610  * @netdev: network interface device structure
2611  * @new_mtu: new value for maximum frame size
2612  *
2613  * Returns 0 on success, negative on failure
2614  **/
2615 static int i40e_change_mtu(struct net_device *netdev, int new_mtu)
2616 {
2617 	struct i40e_netdev_priv *np = netdev_priv(netdev);
2618 	struct i40e_vsi *vsi = np->vsi;
2619 	struct i40e_pf *pf = vsi->back;
2620 
2621 	if (i40e_enabled_xdp_vsi(vsi)) {
2622 		int frame_size = new_mtu + ETH_HLEN + ETH_FCS_LEN + VLAN_HLEN;
2623 
2624 		if (frame_size > i40e_max_xdp_frame_size(vsi))
2625 			return -EINVAL;
2626 	}
2627 
2628 	netdev_info(netdev, "changing MTU from %d to %d\n",
2629 		    netdev->mtu, new_mtu);
2630 	netdev->mtu = new_mtu;
2631 	if (netif_running(netdev))
2632 		i40e_vsi_reinit_locked(vsi);
2633 	pf->flags |= (I40E_FLAG_SERVICE_CLIENT_REQUESTED |
2634 		      I40E_FLAG_CLIENT_L2_CHANGE);
2635 	return 0;
2636 }
2637 
2638 /**
2639  * i40e_ioctl - Access the hwtstamp interface
2640  * @netdev: network interface device structure
2641  * @ifr: interface request data
2642  * @cmd: ioctl command
2643  **/
2644 int i40e_ioctl(struct net_device *netdev, struct ifreq *ifr, int cmd)
2645 {
2646 	struct i40e_netdev_priv *np = netdev_priv(netdev);
2647 	struct i40e_pf *pf = np->vsi->back;
2648 
2649 	switch (cmd) {
2650 	case SIOCGHWTSTAMP:
2651 		return i40e_ptp_get_ts_config(pf, ifr);
2652 	case SIOCSHWTSTAMP:
2653 		return i40e_ptp_set_ts_config(pf, ifr);
2654 	default:
2655 		return -EOPNOTSUPP;
2656 	}
2657 }
2658 
2659 /**
2660  * i40e_vlan_stripping_enable - Turn on vlan stripping for the VSI
2661  * @vsi: the vsi being adjusted
2662  **/
2663 void i40e_vlan_stripping_enable(struct i40e_vsi *vsi)
2664 {
2665 	struct i40e_vsi_context ctxt;
2666 	i40e_status ret;
2667 
2668 	if ((vsi->info.valid_sections &
2669 	     cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID)) &&
2670 	    ((vsi->info.port_vlan_flags & I40E_AQ_VSI_PVLAN_MODE_MASK) == 0))
2671 		return;  /* already enabled */
2672 
2673 	vsi->info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
2674 	vsi->info.port_vlan_flags = I40E_AQ_VSI_PVLAN_MODE_ALL |
2675 				    I40E_AQ_VSI_PVLAN_EMOD_STR_BOTH;
2676 
2677 	ctxt.seid = vsi->seid;
2678 	ctxt.info = vsi->info;
2679 	ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
2680 	if (ret) {
2681 		dev_info(&vsi->back->pdev->dev,
2682 			 "update vlan stripping failed, err %s aq_err %s\n",
2683 			 i40e_stat_str(&vsi->back->hw, ret),
2684 			 i40e_aq_str(&vsi->back->hw,
2685 				     vsi->back->hw.aq.asq_last_status));
2686 	}
2687 }
2688 
2689 /**
2690  * i40e_vlan_stripping_disable - Turn off vlan stripping for the VSI
2691  * @vsi: the vsi being adjusted
2692  **/
2693 void i40e_vlan_stripping_disable(struct i40e_vsi *vsi)
2694 {
2695 	struct i40e_vsi_context ctxt;
2696 	i40e_status ret;
2697 
2698 	if ((vsi->info.valid_sections &
2699 	     cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID)) &&
2700 	    ((vsi->info.port_vlan_flags & I40E_AQ_VSI_PVLAN_EMOD_MASK) ==
2701 	     I40E_AQ_VSI_PVLAN_EMOD_MASK))
2702 		return;  /* already disabled */
2703 
2704 	vsi->info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
2705 	vsi->info.port_vlan_flags = I40E_AQ_VSI_PVLAN_MODE_ALL |
2706 				    I40E_AQ_VSI_PVLAN_EMOD_NOTHING;
2707 
2708 	ctxt.seid = vsi->seid;
2709 	ctxt.info = vsi->info;
2710 	ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
2711 	if (ret) {
2712 		dev_info(&vsi->back->pdev->dev,
2713 			 "update vlan stripping failed, err %s aq_err %s\n",
2714 			 i40e_stat_str(&vsi->back->hw, ret),
2715 			 i40e_aq_str(&vsi->back->hw,
2716 				     vsi->back->hw.aq.asq_last_status));
2717 	}
2718 }
2719 
2720 /**
2721  * i40e_vlan_rx_register - Setup or shutdown vlan offload
2722  * @netdev: network interface to be adjusted
2723  * @features: netdev features to test if VLAN offload is enabled or not
2724  **/
2725 static void i40e_vlan_rx_register(struct net_device *netdev, u32 features)
2726 {
2727 	struct i40e_netdev_priv *np = netdev_priv(netdev);
2728 	struct i40e_vsi *vsi = np->vsi;
2729 
2730 	if (features & NETIF_F_HW_VLAN_CTAG_RX)
2731 		i40e_vlan_stripping_enable(vsi);
2732 	else
2733 		i40e_vlan_stripping_disable(vsi);
2734 }
2735 
2736 /**
2737  * i40e_add_vlan_all_mac - Add a MAC/VLAN filter for each existing MAC address
2738  * @vsi: the vsi being configured
2739  * @vid: vlan id to be added (0 = untagged only , -1 = any)
2740  *
2741  * This is a helper function for adding a new MAC/VLAN filter with the
2742  * specified VLAN for each existing MAC address already in the hash table.
2743  * This function does *not* perform any accounting to update filters based on
2744  * VLAN mode.
2745  *
2746  * NOTE: this function expects to be called while under the
2747  * mac_filter_hash_lock
2748  **/
2749 int i40e_add_vlan_all_mac(struct i40e_vsi *vsi, s16 vid)
2750 {
2751 	struct i40e_mac_filter *f, *add_f;
2752 	struct hlist_node *h;
2753 	int bkt;
2754 
2755 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
2756 		if (f->state == I40E_FILTER_REMOVE)
2757 			continue;
2758 		add_f = i40e_add_filter(vsi, f->macaddr, vid);
2759 		if (!add_f) {
2760 			dev_info(&vsi->back->pdev->dev,
2761 				 "Could not add vlan filter %d for %pM\n",
2762 				 vid, f->macaddr);
2763 			return -ENOMEM;
2764 		}
2765 	}
2766 
2767 	return 0;
2768 }
2769 
2770 /**
2771  * i40e_vsi_add_vlan - Add VSI membership for given VLAN
2772  * @vsi: the VSI being configured
2773  * @vid: VLAN id to be added
2774  **/
2775 int i40e_vsi_add_vlan(struct i40e_vsi *vsi, u16 vid)
2776 {
2777 	int err;
2778 
2779 	if (vsi->info.pvid)
2780 		return -EINVAL;
2781 
2782 	/* The network stack will attempt to add VID=0, with the intention to
2783 	 * receive priority tagged packets with a VLAN of 0. Our HW receives
2784 	 * these packets by default when configured to receive untagged
2785 	 * packets, so we don't need to add a filter for this case.
2786 	 * Additionally, HW interprets adding a VID=0 filter as meaning to
2787 	 * receive *only* tagged traffic and stops receiving untagged traffic.
2788 	 * Thus, we do not want to actually add a filter for VID=0
2789 	 */
2790 	if (!vid)
2791 		return 0;
2792 
2793 	/* Locked once because all functions invoked below iterates list*/
2794 	spin_lock_bh(&vsi->mac_filter_hash_lock);
2795 	err = i40e_add_vlan_all_mac(vsi, vid);
2796 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
2797 	if (err)
2798 		return err;
2799 
2800 	/* schedule our worker thread which will take care of
2801 	 * applying the new filter changes
2802 	 */
2803 	i40e_service_event_schedule(vsi->back);
2804 	return 0;
2805 }
2806 
2807 /**
2808  * i40e_rm_vlan_all_mac - Remove MAC/VLAN pair for all MAC with the given VLAN
2809  * @vsi: the vsi being configured
2810  * @vid: vlan id to be removed (0 = untagged only , -1 = any)
2811  *
2812  * This function should be used to remove all VLAN filters which match the
2813  * given VID. It does not schedule the service event and does not take the
2814  * mac_filter_hash_lock so it may be combined with other operations under
2815  * a single invocation of the mac_filter_hash_lock.
2816  *
2817  * NOTE: this function expects to be called while under the
2818  * mac_filter_hash_lock
2819  */
2820 void i40e_rm_vlan_all_mac(struct i40e_vsi *vsi, s16 vid)
2821 {
2822 	struct i40e_mac_filter *f;
2823 	struct hlist_node *h;
2824 	int bkt;
2825 
2826 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
2827 		if (f->vlan == vid)
2828 			__i40e_del_filter(vsi, f);
2829 	}
2830 }
2831 
2832 /**
2833  * i40e_vsi_kill_vlan - Remove VSI membership for given VLAN
2834  * @vsi: the VSI being configured
2835  * @vid: VLAN id to be removed
2836  **/
2837 void i40e_vsi_kill_vlan(struct i40e_vsi *vsi, u16 vid)
2838 {
2839 	if (!vid || vsi->info.pvid)
2840 		return;
2841 
2842 	spin_lock_bh(&vsi->mac_filter_hash_lock);
2843 	i40e_rm_vlan_all_mac(vsi, vid);
2844 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
2845 
2846 	/* schedule our worker thread which will take care of
2847 	 * applying the new filter changes
2848 	 */
2849 	i40e_service_event_schedule(vsi->back);
2850 }
2851 
2852 /**
2853  * i40e_vlan_rx_add_vid - Add a vlan id filter to HW offload
2854  * @netdev: network interface to be adjusted
2855  * @vid: vlan id to be added
2856  *
2857  * net_device_ops implementation for adding vlan ids
2858  **/
2859 static int i40e_vlan_rx_add_vid(struct net_device *netdev,
2860 				__always_unused __be16 proto, u16 vid)
2861 {
2862 	struct i40e_netdev_priv *np = netdev_priv(netdev);
2863 	struct i40e_vsi *vsi = np->vsi;
2864 	int ret = 0;
2865 
2866 	if (vid >= VLAN_N_VID)
2867 		return -EINVAL;
2868 
2869 	ret = i40e_vsi_add_vlan(vsi, vid);
2870 	if (!ret)
2871 		set_bit(vid, vsi->active_vlans);
2872 
2873 	return ret;
2874 }
2875 
2876 /**
2877  * i40e_vlan_rx_kill_vid - Remove a vlan id filter from HW offload
2878  * @netdev: network interface to be adjusted
2879  * @vid: vlan id to be removed
2880  *
2881  * net_device_ops implementation for removing vlan ids
2882  **/
2883 static int i40e_vlan_rx_kill_vid(struct net_device *netdev,
2884 				 __always_unused __be16 proto, u16 vid)
2885 {
2886 	struct i40e_netdev_priv *np = netdev_priv(netdev);
2887 	struct i40e_vsi *vsi = np->vsi;
2888 
2889 	/* return code is ignored as there is nothing a user
2890 	 * can do about failure to remove and a log message was
2891 	 * already printed from the other function
2892 	 */
2893 	i40e_vsi_kill_vlan(vsi, vid);
2894 
2895 	clear_bit(vid, vsi->active_vlans);
2896 
2897 	return 0;
2898 }
2899 
2900 /**
2901  * i40e_restore_vlan - Reinstate vlans when vsi/netdev comes back up
2902  * @vsi: the vsi being brought back up
2903  **/
2904 static void i40e_restore_vlan(struct i40e_vsi *vsi)
2905 {
2906 	u16 vid;
2907 
2908 	if (!vsi->netdev)
2909 		return;
2910 
2911 	i40e_vlan_rx_register(vsi->netdev, vsi->netdev->features);
2912 
2913 	for_each_set_bit(vid, vsi->active_vlans, VLAN_N_VID)
2914 		i40e_vlan_rx_add_vid(vsi->netdev, htons(ETH_P_8021Q),
2915 				     vid);
2916 }
2917 
2918 /**
2919  * i40e_vsi_add_pvid - Add pvid for the VSI
2920  * @vsi: the vsi being adjusted
2921  * @vid: the vlan id to set as a PVID
2922  **/
2923 int i40e_vsi_add_pvid(struct i40e_vsi *vsi, u16 vid)
2924 {
2925 	struct i40e_vsi_context ctxt;
2926 	i40e_status ret;
2927 
2928 	vsi->info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
2929 	vsi->info.pvid = cpu_to_le16(vid);
2930 	vsi->info.port_vlan_flags = I40E_AQ_VSI_PVLAN_MODE_TAGGED |
2931 				    I40E_AQ_VSI_PVLAN_INSERT_PVID |
2932 				    I40E_AQ_VSI_PVLAN_EMOD_STR;
2933 
2934 	ctxt.seid = vsi->seid;
2935 	ctxt.info = vsi->info;
2936 	ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
2937 	if (ret) {
2938 		dev_info(&vsi->back->pdev->dev,
2939 			 "add pvid failed, err %s aq_err %s\n",
2940 			 i40e_stat_str(&vsi->back->hw, ret),
2941 			 i40e_aq_str(&vsi->back->hw,
2942 				     vsi->back->hw.aq.asq_last_status));
2943 		return -ENOENT;
2944 	}
2945 
2946 	return 0;
2947 }
2948 
2949 /**
2950  * i40e_vsi_remove_pvid - Remove the pvid from the VSI
2951  * @vsi: the vsi being adjusted
2952  *
2953  * Just use the vlan_rx_register() service to put it back to normal
2954  **/
2955 void i40e_vsi_remove_pvid(struct i40e_vsi *vsi)
2956 {
2957 	i40e_vlan_stripping_disable(vsi);
2958 
2959 	vsi->info.pvid = 0;
2960 }
2961 
2962 /**
2963  * i40e_vsi_setup_tx_resources - Allocate VSI Tx queue resources
2964  * @vsi: ptr to the VSI
2965  *
2966  * If this function returns with an error, then it's possible one or
2967  * more of the rings is populated (while the rest are not).  It is the
2968  * callers duty to clean those orphaned rings.
2969  *
2970  * Return 0 on success, negative on failure
2971  **/
2972 static int i40e_vsi_setup_tx_resources(struct i40e_vsi *vsi)
2973 {
2974 	int i, err = 0;
2975 
2976 	for (i = 0; i < vsi->num_queue_pairs && !err; i++)
2977 		err = i40e_setup_tx_descriptors(vsi->tx_rings[i]);
2978 
2979 	if (!i40e_enabled_xdp_vsi(vsi))
2980 		return err;
2981 
2982 	for (i = 0; i < vsi->num_queue_pairs && !err; i++)
2983 		err = i40e_setup_tx_descriptors(vsi->xdp_rings[i]);
2984 
2985 	return err;
2986 }
2987 
2988 /**
2989  * i40e_vsi_free_tx_resources - Free Tx resources for VSI queues
2990  * @vsi: ptr to the VSI
2991  *
2992  * Free VSI's transmit software resources
2993  **/
2994 static void i40e_vsi_free_tx_resources(struct i40e_vsi *vsi)
2995 {
2996 	int i;
2997 
2998 	if (vsi->tx_rings) {
2999 		for (i = 0; i < vsi->num_queue_pairs; i++)
3000 			if (vsi->tx_rings[i] && vsi->tx_rings[i]->desc)
3001 				i40e_free_tx_resources(vsi->tx_rings[i]);
3002 	}
3003 
3004 	if (vsi->xdp_rings) {
3005 		for (i = 0; i < vsi->num_queue_pairs; i++)
3006 			if (vsi->xdp_rings[i] && vsi->xdp_rings[i]->desc)
3007 				i40e_free_tx_resources(vsi->xdp_rings[i]);
3008 	}
3009 }
3010 
3011 /**
3012  * i40e_vsi_setup_rx_resources - Allocate VSI queues Rx resources
3013  * @vsi: ptr to the VSI
3014  *
3015  * If this function returns with an error, then it's possible one or
3016  * more of the rings is populated (while the rest are not).  It is the
3017  * callers duty to clean those orphaned rings.
3018  *
3019  * Return 0 on success, negative on failure
3020  **/
3021 static int i40e_vsi_setup_rx_resources(struct i40e_vsi *vsi)
3022 {
3023 	int i, err = 0;
3024 
3025 	for (i = 0; i < vsi->num_queue_pairs && !err; i++)
3026 		err = i40e_setup_rx_descriptors(vsi->rx_rings[i]);
3027 	return err;
3028 }
3029 
3030 /**
3031  * i40e_vsi_free_rx_resources - Free Rx Resources for VSI queues
3032  * @vsi: ptr to the VSI
3033  *
3034  * Free all receive software resources
3035  **/
3036 static void i40e_vsi_free_rx_resources(struct i40e_vsi *vsi)
3037 {
3038 	int i;
3039 
3040 	if (!vsi->rx_rings)
3041 		return;
3042 
3043 	for (i = 0; i < vsi->num_queue_pairs; i++)
3044 		if (vsi->rx_rings[i] && vsi->rx_rings[i]->desc)
3045 			i40e_free_rx_resources(vsi->rx_rings[i]);
3046 }
3047 
3048 /**
3049  * i40e_config_xps_tx_ring - Configure XPS for a Tx ring
3050  * @ring: The Tx ring to configure
3051  *
3052  * This enables/disables XPS for a given Tx descriptor ring
3053  * based on the TCs enabled for the VSI that ring belongs to.
3054  **/
3055 static void i40e_config_xps_tx_ring(struct i40e_ring *ring)
3056 {
3057 	int cpu;
3058 
3059 	if (!ring->q_vector || !ring->netdev || ring->ch)
3060 		return;
3061 
3062 	/* We only initialize XPS once, so as not to overwrite user settings */
3063 	if (test_and_set_bit(__I40E_TX_XPS_INIT_DONE, ring->state))
3064 		return;
3065 
3066 	cpu = cpumask_local_spread(ring->q_vector->v_idx, -1);
3067 	netif_set_xps_queue(ring->netdev, get_cpu_mask(cpu),
3068 			    ring->queue_index);
3069 }
3070 
3071 /**
3072  * i40e_configure_tx_ring - Configure a transmit ring context and rest
3073  * @ring: The Tx ring to configure
3074  *
3075  * Configure the Tx descriptor ring in the HMC context.
3076  **/
3077 static int i40e_configure_tx_ring(struct i40e_ring *ring)
3078 {
3079 	struct i40e_vsi *vsi = ring->vsi;
3080 	u16 pf_q = vsi->base_queue + ring->queue_index;
3081 	struct i40e_hw *hw = &vsi->back->hw;
3082 	struct i40e_hmc_obj_txq tx_ctx;
3083 	i40e_status err = 0;
3084 	u32 qtx_ctl = 0;
3085 
3086 	/* some ATR related tx ring init */
3087 	if (vsi->back->flags & I40E_FLAG_FD_ATR_ENABLED) {
3088 		ring->atr_sample_rate = vsi->back->atr_sample_rate;
3089 		ring->atr_count = 0;
3090 	} else {
3091 		ring->atr_sample_rate = 0;
3092 	}
3093 
3094 	/* configure XPS */
3095 	i40e_config_xps_tx_ring(ring);
3096 
3097 	/* clear the context structure first */
3098 	memset(&tx_ctx, 0, sizeof(tx_ctx));
3099 
3100 	tx_ctx.new_context = 1;
3101 	tx_ctx.base = (ring->dma / 128);
3102 	tx_ctx.qlen = ring->count;
3103 	tx_ctx.fd_ena = !!(vsi->back->flags & (I40E_FLAG_FD_SB_ENABLED |
3104 					       I40E_FLAG_FD_ATR_ENABLED));
3105 	tx_ctx.timesync_ena = !!(vsi->back->flags & I40E_FLAG_PTP);
3106 	/* FDIR VSI tx ring can still use RS bit and writebacks */
3107 	if (vsi->type != I40E_VSI_FDIR)
3108 		tx_ctx.head_wb_ena = 1;
3109 	tx_ctx.head_wb_addr = ring->dma +
3110 			      (ring->count * sizeof(struct i40e_tx_desc));
3111 
3112 	/* As part of VSI creation/update, FW allocates certain
3113 	 * Tx arbitration queue sets for each TC enabled for
3114 	 * the VSI. The FW returns the handles to these queue
3115 	 * sets as part of the response buffer to Add VSI,
3116 	 * Update VSI, etc. AQ commands. It is expected that
3117 	 * these queue set handles be associated with the Tx
3118 	 * queues by the driver as part of the TX queue context
3119 	 * initialization. This has to be done regardless of
3120 	 * DCB as by default everything is mapped to TC0.
3121 	 */
3122 
3123 	if (ring->ch)
3124 		tx_ctx.rdylist =
3125 			le16_to_cpu(ring->ch->info.qs_handle[ring->dcb_tc]);
3126 
3127 	else
3128 		tx_ctx.rdylist = le16_to_cpu(vsi->info.qs_handle[ring->dcb_tc]);
3129 
3130 	tx_ctx.rdylist_act = 0;
3131 
3132 	/* clear the context in the HMC */
3133 	err = i40e_clear_lan_tx_queue_context(hw, pf_q);
3134 	if (err) {
3135 		dev_info(&vsi->back->pdev->dev,
3136 			 "Failed to clear LAN Tx queue context on Tx ring %d (pf_q %d), error: %d\n",
3137 			 ring->queue_index, pf_q, err);
3138 		return -ENOMEM;
3139 	}
3140 
3141 	/* set the context in the HMC */
3142 	err = i40e_set_lan_tx_queue_context(hw, pf_q, &tx_ctx);
3143 	if (err) {
3144 		dev_info(&vsi->back->pdev->dev,
3145 			 "Failed to set LAN Tx queue context on Tx ring %d (pf_q %d, error: %d\n",
3146 			 ring->queue_index, pf_q, err);
3147 		return -ENOMEM;
3148 	}
3149 
3150 	/* Now associate this queue with this PCI function */
3151 	if (ring->ch) {
3152 		if (ring->ch->type == I40E_VSI_VMDQ2)
3153 			qtx_ctl = I40E_QTX_CTL_VM_QUEUE;
3154 		else
3155 			return -EINVAL;
3156 
3157 		qtx_ctl |= (ring->ch->vsi_number <<
3158 			    I40E_QTX_CTL_VFVM_INDX_SHIFT) &
3159 			    I40E_QTX_CTL_VFVM_INDX_MASK;
3160 	} else {
3161 		if (vsi->type == I40E_VSI_VMDQ2) {
3162 			qtx_ctl = I40E_QTX_CTL_VM_QUEUE;
3163 			qtx_ctl |= ((vsi->id) << I40E_QTX_CTL_VFVM_INDX_SHIFT) &
3164 				    I40E_QTX_CTL_VFVM_INDX_MASK;
3165 		} else {
3166 			qtx_ctl = I40E_QTX_CTL_PF_QUEUE;
3167 		}
3168 	}
3169 
3170 	qtx_ctl |= ((hw->pf_id << I40E_QTX_CTL_PF_INDX_SHIFT) &
3171 		    I40E_QTX_CTL_PF_INDX_MASK);
3172 	wr32(hw, I40E_QTX_CTL(pf_q), qtx_ctl);
3173 	i40e_flush(hw);
3174 
3175 	/* cache tail off for easier writes later */
3176 	ring->tail = hw->hw_addr + I40E_QTX_TAIL(pf_q);
3177 
3178 	return 0;
3179 }
3180 
3181 /**
3182  * i40e_configure_rx_ring - Configure a receive ring context
3183  * @ring: The Rx ring to configure
3184  *
3185  * Configure the Rx descriptor ring in the HMC context.
3186  **/
3187 static int i40e_configure_rx_ring(struct i40e_ring *ring)
3188 {
3189 	struct i40e_vsi *vsi = ring->vsi;
3190 	u32 chain_len = vsi->back->hw.func_caps.rx_buf_chain_len;
3191 	u16 pf_q = vsi->base_queue + ring->queue_index;
3192 	struct i40e_hw *hw = &vsi->back->hw;
3193 	struct i40e_hmc_obj_rxq rx_ctx;
3194 	i40e_status err = 0;
3195 
3196 	bitmap_zero(ring->state, __I40E_RING_STATE_NBITS);
3197 
3198 	/* clear the context structure first */
3199 	memset(&rx_ctx, 0, sizeof(rx_ctx));
3200 
3201 	ring->rx_buf_len = vsi->rx_buf_len;
3202 
3203 	rx_ctx.dbuff = DIV_ROUND_UP(ring->rx_buf_len,
3204 				    BIT_ULL(I40E_RXQ_CTX_DBUFF_SHIFT));
3205 
3206 	rx_ctx.base = (ring->dma / 128);
3207 	rx_ctx.qlen = ring->count;
3208 
3209 	/* use 32 byte descriptors */
3210 	rx_ctx.dsize = 1;
3211 
3212 	/* descriptor type is always zero
3213 	 * rx_ctx.dtype = 0;
3214 	 */
3215 	rx_ctx.hsplit_0 = 0;
3216 
3217 	rx_ctx.rxmax = min_t(u16, vsi->max_frame, chain_len * ring->rx_buf_len);
3218 	if (hw->revision_id == 0)
3219 		rx_ctx.lrxqthresh = 0;
3220 	else
3221 		rx_ctx.lrxqthresh = 1;
3222 	rx_ctx.crcstrip = 1;
3223 	rx_ctx.l2tsel = 1;
3224 	/* this controls whether VLAN is stripped from inner headers */
3225 	rx_ctx.showiv = 0;
3226 	/* set the prefena field to 1 because the manual says to */
3227 	rx_ctx.prefena = 1;
3228 
3229 	/* clear the context in the HMC */
3230 	err = i40e_clear_lan_rx_queue_context(hw, pf_q);
3231 	if (err) {
3232 		dev_info(&vsi->back->pdev->dev,
3233 			 "Failed to clear LAN Rx queue context on Rx ring %d (pf_q %d), error: %d\n",
3234 			 ring->queue_index, pf_q, err);
3235 		return -ENOMEM;
3236 	}
3237 
3238 	/* set the context in the HMC */
3239 	err = i40e_set_lan_rx_queue_context(hw, pf_q, &rx_ctx);
3240 	if (err) {
3241 		dev_info(&vsi->back->pdev->dev,
3242 			 "Failed to set LAN Rx queue context on Rx ring %d (pf_q %d), error: %d\n",
3243 			 ring->queue_index, pf_q, err);
3244 		return -ENOMEM;
3245 	}
3246 
3247 	/* configure Rx buffer alignment */
3248 	if (!vsi->netdev || (vsi->back->flags & I40E_FLAG_LEGACY_RX))
3249 		clear_ring_build_skb_enabled(ring);
3250 	else
3251 		set_ring_build_skb_enabled(ring);
3252 
3253 	/* cache tail for quicker writes, and clear the reg before use */
3254 	ring->tail = hw->hw_addr + I40E_QRX_TAIL(pf_q);
3255 	writel(0, ring->tail);
3256 
3257 	i40e_alloc_rx_buffers(ring, I40E_DESC_UNUSED(ring));
3258 
3259 	return 0;
3260 }
3261 
3262 /**
3263  * i40e_vsi_configure_tx - Configure the VSI for Tx
3264  * @vsi: VSI structure describing this set of rings and resources
3265  *
3266  * Configure the Tx VSI for operation.
3267  **/
3268 static int i40e_vsi_configure_tx(struct i40e_vsi *vsi)
3269 {
3270 	int err = 0;
3271 	u16 i;
3272 
3273 	for (i = 0; (i < vsi->num_queue_pairs) && !err; i++)
3274 		err = i40e_configure_tx_ring(vsi->tx_rings[i]);
3275 
3276 	if (!i40e_enabled_xdp_vsi(vsi))
3277 		return err;
3278 
3279 	for (i = 0; (i < vsi->num_queue_pairs) && !err; i++)
3280 		err = i40e_configure_tx_ring(vsi->xdp_rings[i]);
3281 
3282 	return err;
3283 }
3284 
3285 /**
3286  * i40e_vsi_configure_rx - Configure the VSI for Rx
3287  * @vsi: the VSI being configured
3288  *
3289  * Configure the Rx VSI for operation.
3290  **/
3291 static int i40e_vsi_configure_rx(struct i40e_vsi *vsi)
3292 {
3293 	int err = 0;
3294 	u16 i;
3295 
3296 	if (!vsi->netdev || (vsi->back->flags & I40E_FLAG_LEGACY_RX)) {
3297 		vsi->max_frame = I40E_MAX_RXBUFFER;
3298 		vsi->rx_buf_len = I40E_RXBUFFER_2048;
3299 #if (PAGE_SIZE < 8192)
3300 	} else if (!I40E_2K_TOO_SMALL_WITH_PADDING &&
3301 		   (vsi->netdev->mtu <= ETH_DATA_LEN)) {
3302 		vsi->max_frame = I40E_RXBUFFER_1536 - NET_IP_ALIGN;
3303 		vsi->rx_buf_len = I40E_RXBUFFER_1536 - NET_IP_ALIGN;
3304 #endif
3305 	} else {
3306 		vsi->max_frame = I40E_MAX_RXBUFFER;
3307 		vsi->rx_buf_len = (PAGE_SIZE < 8192) ? I40E_RXBUFFER_3072 :
3308 						       I40E_RXBUFFER_2048;
3309 	}
3310 
3311 	/* set up individual rings */
3312 	for (i = 0; i < vsi->num_queue_pairs && !err; i++)
3313 		err = i40e_configure_rx_ring(vsi->rx_rings[i]);
3314 
3315 	return err;
3316 }
3317 
3318 /**
3319  * i40e_vsi_config_dcb_rings - Update rings to reflect DCB TC
3320  * @vsi: ptr to the VSI
3321  **/
3322 static void i40e_vsi_config_dcb_rings(struct i40e_vsi *vsi)
3323 {
3324 	struct i40e_ring *tx_ring, *rx_ring;
3325 	u16 qoffset, qcount;
3326 	int i, n;
3327 
3328 	if (!(vsi->back->flags & I40E_FLAG_DCB_ENABLED)) {
3329 		/* Reset the TC information */
3330 		for (i = 0; i < vsi->num_queue_pairs; i++) {
3331 			rx_ring = vsi->rx_rings[i];
3332 			tx_ring = vsi->tx_rings[i];
3333 			rx_ring->dcb_tc = 0;
3334 			tx_ring->dcb_tc = 0;
3335 		}
3336 		return;
3337 	}
3338 
3339 	for (n = 0; n < I40E_MAX_TRAFFIC_CLASS; n++) {
3340 		if (!(vsi->tc_config.enabled_tc & BIT_ULL(n)))
3341 			continue;
3342 
3343 		qoffset = vsi->tc_config.tc_info[n].qoffset;
3344 		qcount = vsi->tc_config.tc_info[n].qcount;
3345 		for (i = qoffset; i < (qoffset + qcount); i++) {
3346 			rx_ring = vsi->rx_rings[i];
3347 			tx_ring = vsi->tx_rings[i];
3348 			rx_ring->dcb_tc = n;
3349 			tx_ring->dcb_tc = n;
3350 		}
3351 	}
3352 }
3353 
3354 /**
3355  * i40e_set_vsi_rx_mode - Call set_rx_mode on a VSI
3356  * @vsi: ptr to the VSI
3357  **/
3358 static void i40e_set_vsi_rx_mode(struct i40e_vsi *vsi)
3359 {
3360 	if (vsi->netdev)
3361 		i40e_set_rx_mode(vsi->netdev);
3362 }
3363 
3364 /**
3365  * i40e_fdir_filter_restore - Restore the Sideband Flow Director filters
3366  * @vsi: Pointer to the targeted VSI
3367  *
3368  * This function replays the hlist on the hw where all the SB Flow Director
3369  * filters were saved.
3370  **/
3371 static void i40e_fdir_filter_restore(struct i40e_vsi *vsi)
3372 {
3373 	struct i40e_fdir_filter *filter;
3374 	struct i40e_pf *pf = vsi->back;
3375 	struct hlist_node *node;
3376 
3377 	if (!(pf->flags & I40E_FLAG_FD_SB_ENABLED))
3378 		return;
3379 
3380 	/* Reset FDir counters as we're replaying all existing filters */
3381 	pf->fd_tcp4_filter_cnt = 0;
3382 	pf->fd_udp4_filter_cnt = 0;
3383 	pf->fd_sctp4_filter_cnt = 0;
3384 	pf->fd_ip4_filter_cnt = 0;
3385 
3386 	hlist_for_each_entry_safe(filter, node,
3387 				  &pf->fdir_filter_list, fdir_node) {
3388 		i40e_add_del_fdir(vsi, filter, true);
3389 	}
3390 }
3391 
3392 /**
3393  * i40e_vsi_configure - Set up the VSI for action
3394  * @vsi: the VSI being configured
3395  **/
3396 static int i40e_vsi_configure(struct i40e_vsi *vsi)
3397 {
3398 	int err;
3399 
3400 	i40e_set_vsi_rx_mode(vsi);
3401 	i40e_restore_vlan(vsi);
3402 	i40e_vsi_config_dcb_rings(vsi);
3403 	err = i40e_vsi_configure_tx(vsi);
3404 	if (!err)
3405 		err = i40e_vsi_configure_rx(vsi);
3406 
3407 	return err;
3408 }
3409 
3410 /**
3411  * i40e_vsi_configure_msix - MSIX mode Interrupt Config in the HW
3412  * @vsi: the VSI being configured
3413  **/
3414 static void i40e_vsi_configure_msix(struct i40e_vsi *vsi)
3415 {
3416 	bool has_xdp = i40e_enabled_xdp_vsi(vsi);
3417 	struct i40e_pf *pf = vsi->back;
3418 	struct i40e_hw *hw = &pf->hw;
3419 	u16 vector;
3420 	int i, q;
3421 	u32 qp;
3422 
3423 	/* The interrupt indexing is offset by 1 in the PFINT_ITRn
3424 	 * and PFINT_LNKLSTn registers, e.g.:
3425 	 *   PFINT_ITRn[0..n-1] gets msix-1..msix-n  (qpair interrupts)
3426 	 */
3427 	qp = vsi->base_queue;
3428 	vector = vsi->base_vector;
3429 	for (i = 0; i < vsi->num_q_vectors; i++, vector++) {
3430 		struct i40e_q_vector *q_vector = vsi->q_vectors[i];
3431 
3432 		q_vector->itr_countdown = ITR_COUNTDOWN_START;
3433 		q_vector->rx.itr = ITR_TO_REG(vsi->rx_rings[i]->rx_itr_setting);
3434 		q_vector->rx.latency_range = I40E_LOW_LATENCY;
3435 		wr32(hw, I40E_PFINT_ITRN(I40E_RX_ITR, vector - 1),
3436 		     q_vector->rx.itr);
3437 		q_vector->tx.itr = ITR_TO_REG(vsi->tx_rings[i]->tx_itr_setting);
3438 		q_vector->tx.latency_range = I40E_LOW_LATENCY;
3439 		wr32(hw, I40E_PFINT_ITRN(I40E_TX_ITR, vector - 1),
3440 		     q_vector->tx.itr);
3441 		wr32(hw, I40E_PFINT_RATEN(vector - 1),
3442 		     i40e_intrl_usec_to_reg(vsi->int_rate_limit));
3443 
3444 		/* Linked list for the queuepairs assigned to this vector */
3445 		wr32(hw, I40E_PFINT_LNKLSTN(vector - 1), qp);
3446 		for (q = 0; q < q_vector->num_ringpairs; q++) {
3447 			u32 nextqp = has_xdp ? qp + vsi->alloc_queue_pairs : qp;
3448 			u32 val;
3449 
3450 			val = I40E_QINT_RQCTL_CAUSE_ENA_MASK |
3451 			      (I40E_RX_ITR << I40E_QINT_RQCTL_ITR_INDX_SHIFT) |
3452 			      (vector << I40E_QINT_RQCTL_MSIX_INDX_SHIFT) |
3453 			      (nextqp << I40E_QINT_RQCTL_NEXTQ_INDX_SHIFT) |
3454 			      (I40E_QUEUE_TYPE_TX <<
3455 			       I40E_QINT_RQCTL_NEXTQ_TYPE_SHIFT);
3456 
3457 			wr32(hw, I40E_QINT_RQCTL(qp), val);
3458 
3459 			if (has_xdp) {
3460 				val = I40E_QINT_TQCTL_CAUSE_ENA_MASK |
3461 				      (I40E_TX_ITR << I40E_QINT_TQCTL_ITR_INDX_SHIFT) |
3462 				      (vector << I40E_QINT_TQCTL_MSIX_INDX_SHIFT) |
3463 				      (qp << I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT) |
3464 				      (I40E_QUEUE_TYPE_TX <<
3465 				       I40E_QINT_TQCTL_NEXTQ_TYPE_SHIFT);
3466 
3467 				wr32(hw, I40E_QINT_TQCTL(nextqp), val);
3468 			}
3469 
3470 			val = I40E_QINT_TQCTL_CAUSE_ENA_MASK |
3471 			      (I40E_TX_ITR << I40E_QINT_TQCTL_ITR_INDX_SHIFT) |
3472 			      (vector << I40E_QINT_TQCTL_MSIX_INDX_SHIFT) |
3473 			      ((qp + 1) << I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT) |
3474 			      (I40E_QUEUE_TYPE_RX <<
3475 			       I40E_QINT_TQCTL_NEXTQ_TYPE_SHIFT);
3476 
3477 			/* Terminate the linked list */
3478 			if (q == (q_vector->num_ringpairs - 1))
3479 				val |= (I40E_QUEUE_END_OF_LIST <<
3480 					I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT);
3481 
3482 			wr32(hw, I40E_QINT_TQCTL(qp), val);
3483 			qp++;
3484 		}
3485 	}
3486 
3487 	i40e_flush(hw);
3488 }
3489 
3490 /**
3491  * i40e_enable_misc_int_causes - enable the non-queue interrupts
3492  * @hw: ptr to the hardware info
3493  **/
3494 static void i40e_enable_misc_int_causes(struct i40e_pf *pf)
3495 {
3496 	struct i40e_hw *hw = &pf->hw;
3497 	u32 val;
3498 
3499 	/* clear things first */
3500 	wr32(hw, I40E_PFINT_ICR0_ENA, 0);  /* disable all */
3501 	rd32(hw, I40E_PFINT_ICR0);         /* read to clear */
3502 
3503 	val = I40E_PFINT_ICR0_ENA_ECC_ERR_MASK       |
3504 	      I40E_PFINT_ICR0_ENA_MAL_DETECT_MASK    |
3505 	      I40E_PFINT_ICR0_ENA_GRST_MASK          |
3506 	      I40E_PFINT_ICR0_ENA_PCI_EXCEPTION_MASK |
3507 	      I40E_PFINT_ICR0_ENA_GPIO_MASK          |
3508 	      I40E_PFINT_ICR0_ENA_HMC_ERR_MASK       |
3509 	      I40E_PFINT_ICR0_ENA_VFLR_MASK          |
3510 	      I40E_PFINT_ICR0_ENA_ADMINQ_MASK;
3511 
3512 	if (pf->flags & I40E_FLAG_IWARP_ENABLED)
3513 		val |= I40E_PFINT_ICR0_ENA_PE_CRITERR_MASK;
3514 
3515 	if (pf->flags & I40E_FLAG_PTP)
3516 		val |= I40E_PFINT_ICR0_ENA_TIMESYNC_MASK;
3517 
3518 	wr32(hw, I40E_PFINT_ICR0_ENA, val);
3519 
3520 	/* SW_ITR_IDX = 0, but don't change INTENA */
3521 	wr32(hw, I40E_PFINT_DYN_CTL0, I40E_PFINT_DYN_CTL0_SW_ITR_INDX_MASK |
3522 					I40E_PFINT_DYN_CTL0_INTENA_MSK_MASK);
3523 
3524 	/* OTHER_ITR_IDX = 0 */
3525 	wr32(hw, I40E_PFINT_STAT_CTL0, 0);
3526 }
3527 
3528 /**
3529  * i40e_configure_msi_and_legacy - Legacy mode interrupt config in the HW
3530  * @vsi: the VSI being configured
3531  **/
3532 static void i40e_configure_msi_and_legacy(struct i40e_vsi *vsi)
3533 {
3534 	u32 nextqp = i40e_enabled_xdp_vsi(vsi) ? vsi->alloc_queue_pairs : 0;
3535 	struct i40e_q_vector *q_vector = vsi->q_vectors[0];
3536 	struct i40e_pf *pf = vsi->back;
3537 	struct i40e_hw *hw = &pf->hw;
3538 	u32 val;
3539 
3540 	/* set the ITR configuration */
3541 	q_vector->itr_countdown = ITR_COUNTDOWN_START;
3542 	q_vector->rx.itr = ITR_TO_REG(vsi->rx_rings[0]->rx_itr_setting);
3543 	q_vector->rx.latency_range = I40E_LOW_LATENCY;
3544 	wr32(hw, I40E_PFINT_ITR0(I40E_RX_ITR), q_vector->rx.itr);
3545 	q_vector->tx.itr = ITR_TO_REG(vsi->tx_rings[0]->tx_itr_setting);
3546 	q_vector->tx.latency_range = I40E_LOW_LATENCY;
3547 	wr32(hw, I40E_PFINT_ITR0(I40E_TX_ITR), q_vector->tx.itr);
3548 
3549 	i40e_enable_misc_int_causes(pf);
3550 
3551 	/* FIRSTQ_INDX = 0, FIRSTQ_TYPE = 0 (rx) */
3552 	wr32(hw, I40E_PFINT_LNKLST0, 0);
3553 
3554 	/* Associate the queue pair to the vector and enable the queue int */
3555 	val = I40E_QINT_RQCTL_CAUSE_ENA_MASK		       |
3556 	      (I40E_RX_ITR << I40E_QINT_RQCTL_ITR_INDX_SHIFT)  |
3557 	      (nextqp	   << I40E_QINT_RQCTL_NEXTQ_INDX_SHIFT)|
3558 	      (I40E_QUEUE_TYPE_TX << I40E_QINT_TQCTL_NEXTQ_TYPE_SHIFT);
3559 
3560 	wr32(hw, I40E_QINT_RQCTL(0), val);
3561 
3562 	if (i40e_enabled_xdp_vsi(vsi)) {
3563 		val = I40E_QINT_TQCTL_CAUSE_ENA_MASK		     |
3564 		      (I40E_TX_ITR << I40E_QINT_TQCTL_ITR_INDX_SHIFT)|
3565 		      (I40E_QUEUE_TYPE_TX
3566 		       << I40E_QINT_TQCTL_NEXTQ_TYPE_SHIFT);
3567 
3568 	       wr32(hw, I40E_QINT_TQCTL(nextqp), val);
3569 	}
3570 
3571 	val = I40E_QINT_TQCTL_CAUSE_ENA_MASK		      |
3572 	      (I40E_TX_ITR << I40E_QINT_TQCTL_ITR_INDX_SHIFT) |
3573 	      (I40E_QUEUE_END_OF_LIST << I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT);
3574 
3575 	wr32(hw, I40E_QINT_TQCTL(0), val);
3576 	i40e_flush(hw);
3577 }
3578 
3579 /**
3580  * i40e_irq_dynamic_disable_icr0 - Disable default interrupt generation for icr0
3581  * @pf: board private structure
3582  **/
3583 void i40e_irq_dynamic_disable_icr0(struct i40e_pf *pf)
3584 {
3585 	struct i40e_hw *hw = &pf->hw;
3586 
3587 	wr32(hw, I40E_PFINT_DYN_CTL0,
3588 	     I40E_ITR_NONE << I40E_PFINT_DYN_CTLN_ITR_INDX_SHIFT);
3589 	i40e_flush(hw);
3590 }
3591 
3592 /**
3593  * i40e_irq_dynamic_enable_icr0 - Enable default interrupt generation for icr0
3594  * @pf: board private structure
3595  **/
3596 void i40e_irq_dynamic_enable_icr0(struct i40e_pf *pf)
3597 {
3598 	struct i40e_hw *hw = &pf->hw;
3599 	u32 val;
3600 
3601 	val = I40E_PFINT_DYN_CTL0_INTENA_MASK   |
3602 	      I40E_PFINT_DYN_CTL0_CLEARPBA_MASK |
3603 	      (I40E_ITR_NONE << I40E_PFINT_DYN_CTL0_ITR_INDX_SHIFT);
3604 
3605 	wr32(hw, I40E_PFINT_DYN_CTL0, val);
3606 	i40e_flush(hw);
3607 }
3608 
3609 /**
3610  * i40e_msix_clean_rings - MSIX mode Interrupt Handler
3611  * @irq: interrupt number
3612  * @data: pointer to a q_vector
3613  **/
3614 static irqreturn_t i40e_msix_clean_rings(int irq, void *data)
3615 {
3616 	struct i40e_q_vector *q_vector = data;
3617 
3618 	if (!q_vector->tx.ring && !q_vector->rx.ring)
3619 		return IRQ_HANDLED;
3620 
3621 	napi_schedule_irqoff(&q_vector->napi);
3622 
3623 	return IRQ_HANDLED;
3624 }
3625 
3626 /**
3627  * i40e_irq_affinity_notify - Callback for affinity changes
3628  * @notify: context as to what irq was changed
3629  * @mask: the new affinity mask
3630  *
3631  * This is a callback function used by the irq_set_affinity_notifier function
3632  * so that we may register to receive changes to the irq affinity masks.
3633  **/
3634 static void i40e_irq_affinity_notify(struct irq_affinity_notify *notify,
3635 				     const cpumask_t *mask)
3636 {
3637 	struct i40e_q_vector *q_vector =
3638 		container_of(notify, struct i40e_q_vector, affinity_notify);
3639 
3640 	cpumask_copy(&q_vector->affinity_mask, mask);
3641 }
3642 
3643 /**
3644  * i40e_irq_affinity_release - Callback for affinity notifier release
3645  * @ref: internal core kernel usage
3646  *
3647  * This is a callback function used by the irq_set_affinity_notifier function
3648  * to inform the current notification subscriber that they will no longer
3649  * receive notifications.
3650  **/
3651 static void i40e_irq_affinity_release(struct kref *ref) {}
3652 
3653 /**
3654  * i40e_vsi_request_irq_msix - Initialize MSI-X interrupts
3655  * @vsi: the VSI being configured
3656  * @basename: name for the vector
3657  *
3658  * Allocates MSI-X vectors and requests interrupts from the kernel.
3659  **/
3660 static int i40e_vsi_request_irq_msix(struct i40e_vsi *vsi, char *basename)
3661 {
3662 	int q_vectors = vsi->num_q_vectors;
3663 	struct i40e_pf *pf = vsi->back;
3664 	int base = vsi->base_vector;
3665 	int rx_int_idx = 0;
3666 	int tx_int_idx = 0;
3667 	int vector, err;
3668 	int irq_num;
3669 	int cpu;
3670 
3671 	for (vector = 0; vector < q_vectors; vector++) {
3672 		struct i40e_q_vector *q_vector = vsi->q_vectors[vector];
3673 
3674 		irq_num = pf->msix_entries[base + vector].vector;
3675 
3676 		if (q_vector->tx.ring && q_vector->rx.ring) {
3677 			snprintf(q_vector->name, sizeof(q_vector->name) - 1,
3678 				 "%s-%s-%d", basename, "TxRx", rx_int_idx++);
3679 			tx_int_idx++;
3680 		} else if (q_vector->rx.ring) {
3681 			snprintf(q_vector->name, sizeof(q_vector->name) - 1,
3682 				 "%s-%s-%d", basename, "rx", rx_int_idx++);
3683 		} else if (q_vector->tx.ring) {
3684 			snprintf(q_vector->name, sizeof(q_vector->name) - 1,
3685 				 "%s-%s-%d", basename, "tx", tx_int_idx++);
3686 		} else {
3687 			/* skip this unused q_vector */
3688 			continue;
3689 		}
3690 		err = request_irq(irq_num,
3691 				  vsi->irq_handler,
3692 				  0,
3693 				  q_vector->name,
3694 				  q_vector);
3695 		if (err) {
3696 			dev_info(&pf->pdev->dev,
3697 				 "MSIX request_irq failed, error: %d\n", err);
3698 			goto free_queue_irqs;
3699 		}
3700 
3701 		/* register for affinity change notifications */
3702 		q_vector->affinity_notify.notify = i40e_irq_affinity_notify;
3703 		q_vector->affinity_notify.release = i40e_irq_affinity_release;
3704 		irq_set_affinity_notifier(irq_num, &q_vector->affinity_notify);
3705 		/* Spread affinity hints out across online CPUs.
3706 		 *
3707 		 * get_cpu_mask returns a static constant mask with
3708 		 * a permanent lifetime so it's ok to pass to
3709 		 * irq_set_affinity_hint without making a copy.
3710 		 */
3711 		cpu = cpumask_local_spread(q_vector->v_idx, -1);
3712 		irq_set_affinity_hint(irq_num, get_cpu_mask(cpu));
3713 	}
3714 
3715 	vsi->irqs_ready = true;
3716 	return 0;
3717 
3718 free_queue_irqs:
3719 	while (vector) {
3720 		vector--;
3721 		irq_num = pf->msix_entries[base + vector].vector;
3722 		irq_set_affinity_notifier(irq_num, NULL);
3723 		irq_set_affinity_hint(irq_num, NULL);
3724 		free_irq(irq_num, &vsi->q_vectors[vector]);
3725 	}
3726 	return err;
3727 }
3728 
3729 /**
3730  * i40e_vsi_disable_irq - Mask off queue interrupt generation on the VSI
3731  * @vsi: the VSI being un-configured
3732  **/
3733 static void i40e_vsi_disable_irq(struct i40e_vsi *vsi)
3734 {
3735 	struct i40e_pf *pf = vsi->back;
3736 	struct i40e_hw *hw = &pf->hw;
3737 	int base = vsi->base_vector;
3738 	int i;
3739 
3740 	/* disable interrupt causation from each queue */
3741 	for (i = 0; i < vsi->num_queue_pairs; i++) {
3742 		u32 val;
3743 
3744 		val = rd32(hw, I40E_QINT_TQCTL(vsi->tx_rings[i]->reg_idx));
3745 		val &= ~I40E_QINT_TQCTL_CAUSE_ENA_MASK;
3746 		wr32(hw, I40E_QINT_TQCTL(vsi->tx_rings[i]->reg_idx), val);
3747 
3748 		val = rd32(hw, I40E_QINT_RQCTL(vsi->rx_rings[i]->reg_idx));
3749 		val &= ~I40E_QINT_RQCTL_CAUSE_ENA_MASK;
3750 		wr32(hw, I40E_QINT_RQCTL(vsi->rx_rings[i]->reg_idx), val);
3751 
3752 		if (!i40e_enabled_xdp_vsi(vsi))
3753 			continue;
3754 		wr32(hw, I40E_QINT_TQCTL(vsi->xdp_rings[i]->reg_idx), 0);
3755 	}
3756 
3757 	/* disable each interrupt */
3758 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
3759 		for (i = vsi->base_vector;
3760 		     i < (vsi->num_q_vectors + vsi->base_vector); i++)
3761 			wr32(hw, I40E_PFINT_DYN_CTLN(i - 1), 0);
3762 
3763 		i40e_flush(hw);
3764 		for (i = 0; i < vsi->num_q_vectors; i++)
3765 			synchronize_irq(pf->msix_entries[i + base].vector);
3766 	} else {
3767 		/* Legacy and MSI mode - this stops all interrupt handling */
3768 		wr32(hw, I40E_PFINT_ICR0_ENA, 0);
3769 		wr32(hw, I40E_PFINT_DYN_CTL0, 0);
3770 		i40e_flush(hw);
3771 		synchronize_irq(pf->pdev->irq);
3772 	}
3773 }
3774 
3775 /**
3776  * i40e_vsi_enable_irq - Enable IRQ for the given VSI
3777  * @vsi: the VSI being configured
3778  **/
3779 static int i40e_vsi_enable_irq(struct i40e_vsi *vsi)
3780 {
3781 	struct i40e_pf *pf = vsi->back;
3782 	int i;
3783 
3784 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
3785 		for (i = 0; i < vsi->num_q_vectors; i++)
3786 			i40e_irq_dynamic_enable(vsi, i);
3787 	} else {
3788 		i40e_irq_dynamic_enable_icr0(pf);
3789 	}
3790 
3791 	i40e_flush(&pf->hw);
3792 	return 0;
3793 }
3794 
3795 /**
3796  * i40e_free_misc_vector - Free the vector that handles non-queue events
3797  * @pf: board private structure
3798  **/
3799 static void i40e_free_misc_vector(struct i40e_pf *pf)
3800 {
3801 	/* Disable ICR 0 */
3802 	wr32(&pf->hw, I40E_PFINT_ICR0_ENA, 0);
3803 	i40e_flush(&pf->hw);
3804 
3805 	if (pf->flags & I40E_FLAG_MSIX_ENABLED && pf->msix_entries) {
3806 		synchronize_irq(pf->msix_entries[0].vector);
3807 		free_irq(pf->msix_entries[0].vector, pf);
3808 		clear_bit(__I40E_MISC_IRQ_REQUESTED, pf->state);
3809 	}
3810 }
3811 
3812 /**
3813  * i40e_intr - MSI/Legacy and non-queue interrupt handler
3814  * @irq: interrupt number
3815  * @data: pointer to a q_vector
3816  *
3817  * This is the handler used for all MSI/Legacy interrupts, and deals
3818  * with both queue and non-queue interrupts.  This is also used in
3819  * MSIX mode to handle the non-queue interrupts.
3820  **/
3821 static irqreturn_t i40e_intr(int irq, void *data)
3822 {
3823 	struct i40e_pf *pf = (struct i40e_pf *)data;
3824 	struct i40e_hw *hw = &pf->hw;
3825 	irqreturn_t ret = IRQ_NONE;
3826 	u32 icr0, icr0_remaining;
3827 	u32 val, ena_mask;
3828 
3829 	icr0 = rd32(hw, I40E_PFINT_ICR0);
3830 	ena_mask = rd32(hw, I40E_PFINT_ICR0_ENA);
3831 
3832 	/* if sharing a legacy IRQ, we might get called w/o an intr pending */
3833 	if ((icr0 & I40E_PFINT_ICR0_INTEVENT_MASK) == 0)
3834 		goto enable_intr;
3835 
3836 	/* if interrupt but no bits showing, must be SWINT */
3837 	if (((icr0 & ~I40E_PFINT_ICR0_INTEVENT_MASK) == 0) ||
3838 	    (icr0 & I40E_PFINT_ICR0_SWINT_MASK))
3839 		pf->sw_int_count++;
3840 
3841 	if ((pf->flags & I40E_FLAG_IWARP_ENABLED) &&
3842 	    (icr0 & I40E_PFINT_ICR0_ENA_PE_CRITERR_MASK)) {
3843 		ena_mask &= ~I40E_PFINT_ICR0_ENA_PE_CRITERR_MASK;
3844 		dev_dbg(&pf->pdev->dev, "cleared PE_CRITERR\n");
3845 		set_bit(__I40E_CORE_RESET_REQUESTED, pf->state);
3846 	}
3847 
3848 	/* only q0 is used in MSI/Legacy mode, and none are used in MSIX */
3849 	if (icr0 & I40E_PFINT_ICR0_QUEUE_0_MASK) {
3850 		struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
3851 		struct i40e_q_vector *q_vector = vsi->q_vectors[0];
3852 
3853 		/* We do not have a way to disarm Queue causes while leaving
3854 		 * interrupt enabled for all other causes, ideally
3855 		 * interrupt should be disabled while we are in NAPI but
3856 		 * this is not a performance path and napi_schedule()
3857 		 * can deal with rescheduling.
3858 		 */
3859 		if (!test_bit(__I40E_DOWN, pf->state))
3860 			napi_schedule_irqoff(&q_vector->napi);
3861 	}
3862 
3863 	if (icr0 & I40E_PFINT_ICR0_ADMINQ_MASK) {
3864 		ena_mask &= ~I40E_PFINT_ICR0_ENA_ADMINQ_MASK;
3865 		set_bit(__I40E_ADMINQ_EVENT_PENDING, pf->state);
3866 		i40e_debug(&pf->hw, I40E_DEBUG_NVM, "AdminQ event\n");
3867 	}
3868 
3869 	if (icr0 & I40E_PFINT_ICR0_MAL_DETECT_MASK) {
3870 		ena_mask &= ~I40E_PFINT_ICR0_ENA_MAL_DETECT_MASK;
3871 		set_bit(__I40E_MDD_EVENT_PENDING, pf->state);
3872 	}
3873 
3874 	if (icr0 & I40E_PFINT_ICR0_VFLR_MASK) {
3875 		ena_mask &= ~I40E_PFINT_ICR0_ENA_VFLR_MASK;
3876 		set_bit(__I40E_VFLR_EVENT_PENDING, pf->state);
3877 	}
3878 
3879 	if (icr0 & I40E_PFINT_ICR0_GRST_MASK) {
3880 		if (!test_bit(__I40E_RESET_RECOVERY_PENDING, pf->state))
3881 			set_bit(__I40E_RESET_INTR_RECEIVED, pf->state);
3882 		ena_mask &= ~I40E_PFINT_ICR0_ENA_GRST_MASK;
3883 		val = rd32(hw, I40E_GLGEN_RSTAT);
3884 		val = (val & I40E_GLGEN_RSTAT_RESET_TYPE_MASK)
3885 		       >> I40E_GLGEN_RSTAT_RESET_TYPE_SHIFT;
3886 		if (val == I40E_RESET_CORER) {
3887 			pf->corer_count++;
3888 		} else if (val == I40E_RESET_GLOBR) {
3889 			pf->globr_count++;
3890 		} else if (val == I40E_RESET_EMPR) {
3891 			pf->empr_count++;
3892 			set_bit(__I40E_EMP_RESET_INTR_RECEIVED, pf->state);
3893 		}
3894 	}
3895 
3896 	if (icr0 & I40E_PFINT_ICR0_HMC_ERR_MASK) {
3897 		icr0 &= ~I40E_PFINT_ICR0_HMC_ERR_MASK;
3898 		dev_info(&pf->pdev->dev, "HMC error interrupt\n");
3899 		dev_info(&pf->pdev->dev, "HMC error info 0x%x, HMC error data 0x%x\n",
3900 			 rd32(hw, I40E_PFHMC_ERRORINFO),
3901 			 rd32(hw, I40E_PFHMC_ERRORDATA));
3902 	}
3903 
3904 	if (icr0 & I40E_PFINT_ICR0_TIMESYNC_MASK) {
3905 		u32 prttsyn_stat = rd32(hw, I40E_PRTTSYN_STAT_0);
3906 
3907 		if (prttsyn_stat & I40E_PRTTSYN_STAT_0_TXTIME_MASK) {
3908 			icr0 &= ~I40E_PFINT_ICR0_ENA_TIMESYNC_MASK;
3909 			i40e_ptp_tx_hwtstamp(pf);
3910 		}
3911 	}
3912 
3913 	/* If a critical error is pending we have no choice but to reset the
3914 	 * device.
3915 	 * Report and mask out any remaining unexpected interrupts.
3916 	 */
3917 	icr0_remaining = icr0 & ena_mask;
3918 	if (icr0_remaining) {
3919 		dev_info(&pf->pdev->dev, "unhandled interrupt icr0=0x%08x\n",
3920 			 icr0_remaining);
3921 		if ((icr0_remaining & I40E_PFINT_ICR0_PE_CRITERR_MASK) ||
3922 		    (icr0_remaining & I40E_PFINT_ICR0_PCI_EXCEPTION_MASK) ||
3923 		    (icr0_remaining & I40E_PFINT_ICR0_ECC_ERR_MASK)) {
3924 			dev_info(&pf->pdev->dev, "device will be reset\n");
3925 			set_bit(__I40E_PF_RESET_REQUESTED, pf->state);
3926 			i40e_service_event_schedule(pf);
3927 		}
3928 		ena_mask &= ~icr0_remaining;
3929 	}
3930 	ret = IRQ_HANDLED;
3931 
3932 enable_intr:
3933 	/* re-enable interrupt causes */
3934 	wr32(hw, I40E_PFINT_ICR0_ENA, ena_mask);
3935 	if (!test_bit(__I40E_DOWN, pf->state)) {
3936 		i40e_service_event_schedule(pf);
3937 		i40e_irq_dynamic_enable_icr0(pf);
3938 	}
3939 
3940 	return ret;
3941 }
3942 
3943 /**
3944  * i40e_clean_fdir_tx_irq - Reclaim resources after transmit completes
3945  * @tx_ring:  tx ring to clean
3946  * @budget:   how many cleans we're allowed
3947  *
3948  * Returns true if there's any budget left (e.g. the clean is finished)
3949  **/
3950 static bool i40e_clean_fdir_tx_irq(struct i40e_ring *tx_ring, int budget)
3951 {
3952 	struct i40e_vsi *vsi = tx_ring->vsi;
3953 	u16 i = tx_ring->next_to_clean;
3954 	struct i40e_tx_buffer *tx_buf;
3955 	struct i40e_tx_desc *tx_desc;
3956 
3957 	tx_buf = &tx_ring->tx_bi[i];
3958 	tx_desc = I40E_TX_DESC(tx_ring, i);
3959 	i -= tx_ring->count;
3960 
3961 	do {
3962 		struct i40e_tx_desc *eop_desc = tx_buf->next_to_watch;
3963 
3964 		/* if next_to_watch is not set then there is no work pending */
3965 		if (!eop_desc)
3966 			break;
3967 
3968 		/* prevent any other reads prior to eop_desc */
3969 		smp_rmb();
3970 
3971 		/* if the descriptor isn't done, no work yet to do */
3972 		if (!(eop_desc->cmd_type_offset_bsz &
3973 		      cpu_to_le64(I40E_TX_DESC_DTYPE_DESC_DONE)))
3974 			break;
3975 
3976 		/* clear next_to_watch to prevent false hangs */
3977 		tx_buf->next_to_watch = NULL;
3978 
3979 		tx_desc->buffer_addr = 0;
3980 		tx_desc->cmd_type_offset_bsz = 0;
3981 		/* move past filter desc */
3982 		tx_buf++;
3983 		tx_desc++;
3984 		i++;
3985 		if (unlikely(!i)) {
3986 			i -= tx_ring->count;
3987 			tx_buf = tx_ring->tx_bi;
3988 			tx_desc = I40E_TX_DESC(tx_ring, 0);
3989 		}
3990 		/* unmap skb header data */
3991 		dma_unmap_single(tx_ring->dev,
3992 				 dma_unmap_addr(tx_buf, dma),
3993 				 dma_unmap_len(tx_buf, len),
3994 				 DMA_TO_DEVICE);
3995 		if (tx_buf->tx_flags & I40E_TX_FLAGS_FD_SB)
3996 			kfree(tx_buf->raw_buf);
3997 
3998 		tx_buf->raw_buf = NULL;
3999 		tx_buf->tx_flags = 0;
4000 		tx_buf->next_to_watch = NULL;
4001 		dma_unmap_len_set(tx_buf, len, 0);
4002 		tx_desc->buffer_addr = 0;
4003 		tx_desc->cmd_type_offset_bsz = 0;
4004 
4005 		/* move us past the eop_desc for start of next FD desc */
4006 		tx_buf++;
4007 		tx_desc++;
4008 		i++;
4009 		if (unlikely(!i)) {
4010 			i -= tx_ring->count;
4011 			tx_buf = tx_ring->tx_bi;
4012 			tx_desc = I40E_TX_DESC(tx_ring, 0);
4013 		}
4014 
4015 		/* update budget accounting */
4016 		budget--;
4017 	} while (likely(budget));
4018 
4019 	i += tx_ring->count;
4020 	tx_ring->next_to_clean = i;
4021 
4022 	if (vsi->back->flags & I40E_FLAG_MSIX_ENABLED)
4023 		i40e_irq_dynamic_enable(vsi, tx_ring->q_vector->v_idx);
4024 
4025 	return budget > 0;
4026 }
4027 
4028 /**
4029  * i40e_fdir_clean_ring - Interrupt Handler for FDIR SB ring
4030  * @irq: interrupt number
4031  * @data: pointer to a q_vector
4032  **/
4033 static irqreturn_t i40e_fdir_clean_ring(int irq, void *data)
4034 {
4035 	struct i40e_q_vector *q_vector = data;
4036 	struct i40e_vsi *vsi;
4037 
4038 	if (!q_vector->tx.ring)
4039 		return IRQ_HANDLED;
4040 
4041 	vsi = q_vector->tx.ring->vsi;
4042 	i40e_clean_fdir_tx_irq(q_vector->tx.ring, vsi->work_limit);
4043 
4044 	return IRQ_HANDLED;
4045 }
4046 
4047 /**
4048  * i40e_map_vector_to_qp - Assigns the queue pair to the vector
4049  * @vsi: the VSI being configured
4050  * @v_idx: vector index
4051  * @qp_idx: queue pair index
4052  **/
4053 static void i40e_map_vector_to_qp(struct i40e_vsi *vsi, int v_idx, int qp_idx)
4054 {
4055 	struct i40e_q_vector *q_vector = vsi->q_vectors[v_idx];
4056 	struct i40e_ring *tx_ring = vsi->tx_rings[qp_idx];
4057 	struct i40e_ring *rx_ring = vsi->rx_rings[qp_idx];
4058 
4059 	tx_ring->q_vector = q_vector;
4060 	tx_ring->next = q_vector->tx.ring;
4061 	q_vector->tx.ring = tx_ring;
4062 	q_vector->tx.count++;
4063 
4064 	/* Place XDP Tx ring in the same q_vector ring list as regular Tx */
4065 	if (i40e_enabled_xdp_vsi(vsi)) {
4066 		struct i40e_ring *xdp_ring = vsi->xdp_rings[qp_idx];
4067 
4068 		xdp_ring->q_vector = q_vector;
4069 		xdp_ring->next = q_vector->tx.ring;
4070 		q_vector->tx.ring = xdp_ring;
4071 		q_vector->tx.count++;
4072 	}
4073 
4074 	rx_ring->q_vector = q_vector;
4075 	rx_ring->next = q_vector->rx.ring;
4076 	q_vector->rx.ring = rx_ring;
4077 	q_vector->rx.count++;
4078 }
4079 
4080 /**
4081  * i40e_vsi_map_rings_to_vectors - Maps descriptor rings to vectors
4082  * @vsi: the VSI being configured
4083  *
4084  * This function maps descriptor rings to the queue-specific vectors
4085  * we were allotted through the MSI-X enabling code.  Ideally, we'd have
4086  * one vector per queue pair, but on a constrained vector budget, we
4087  * group the queue pairs as "efficiently" as possible.
4088  **/
4089 static void i40e_vsi_map_rings_to_vectors(struct i40e_vsi *vsi)
4090 {
4091 	int qp_remaining = vsi->num_queue_pairs;
4092 	int q_vectors = vsi->num_q_vectors;
4093 	int num_ringpairs;
4094 	int v_start = 0;
4095 	int qp_idx = 0;
4096 
4097 	/* If we don't have enough vectors for a 1-to-1 mapping, we'll have to
4098 	 * group them so there are multiple queues per vector.
4099 	 * It is also important to go through all the vectors available to be
4100 	 * sure that if we don't use all the vectors, that the remaining vectors
4101 	 * are cleared. This is especially important when decreasing the
4102 	 * number of queues in use.
4103 	 */
4104 	for (; v_start < q_vectors; v_start++) {
4105 		struct i40e_q_vector *q_vector = vsi->q_vectors[v_start];
4106 
4107 		num_ringpairs = DIV_ROUND_UP(qp_remaining, q_vectors - v_start);
4108 
4109 		q_vector->num_ringpairs = num_ringpairs;
4110 
4111 		q_vector->rx.count = 0;
4112 		q_vector->tx.count = 0;
4113 		q_vector->rx.ring = NULL;
4114 		q_vector->tx.ring = NULL;
4115 
4116 		while (num_ringpairs--) {
4117 			i40e_map_vector_to_qp(vsi, v_start, qp_idx);
4118 			qp_idx++;
4119 			qp_remaining--;
4120 		}
4121 	}
4122 }
4123 
4124 /**
4125  * i40e_vsi_request_irq - Request IRQ from the OS
4126  * @vsi: the VSI being configured
4127  * @basename: name for the vector
4128  **/
4129 static int i40e_vsi_request_irq(struct i40e_vsi *vsi, char *basename)
4130 {
4131 	struct i40e_pf *pf = vsi->back;
4132 	int err;
4133 
4134 	if (pf->flags & I40E_FLAG_MSIX_ENABLED)
4135 		err = i40e_vsi_request_irq_msix(vsi, basename);
4136 	else if (pf->flags & I40E_FLAG_MSI_ENABLED)
4137 		err = request_irq(pf->pdev->irq, i40e_intr, 0,
4138 				  pf->int_name, pf);
4139 	else
4140 		err = request_irq(pf->pdev->irq, i40e_intr, IRQF_SHARED,
4141 				  pf->int_name, pf);
4142 
4143 	if (err)
4144 		dev_info(&pf->pdev->dev, "request_irq failed, Error %d\n", err);
4145 
4146 	return err;
4147 }
4148 
4149 #ifdef CONFIG_NET_POLL_CONTROLLER
4150 /**
4151  * i40e_netpoll - A Polling 'interrupt' handler
4152  * @netdev: network interface device structure
4153  *
4154  * This is used by netconsole to send skbs without having to re-enable
4155  * interrupts.  It's not called while the normal interrupt routine is executing.
4156  **/
4157 static void i40e_netpoll(struct net_device *netdev)
4158 {
4159 	struct i40e_netdev_priv *np = netdev_priv(netdev);
4160 	struct i40e_vsi *vsi = np->vsi;
4161 	struct i40e_pf *pf = vsi->back;
4162 	int i;
4163 
4164 	/* if interface is down do nothing */
4165 	if (test_bit(__I40E_VSI_DOWN, vsi->state))
4166 		return;
4167 
4168 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
4169 		for (i = 0; i < vsi->num_q_vectors; i++)
4170 			i40e_msix_clean_rings(0, vsi->q_vectors[i]);
4171 	} else {
4172 		i40e_intr(pf->pdev->irq, netdev);
4173 	}
4174 }
4175 #endif
4176 
4177 #define I40E_QTX_ENA_WAIT_COUNT 50
4178 
4179 /**
4180  * i40e_pf_txq_wait - Wait for a PF's Tx queue to be enabled or disabled
4181  * @pf: the PF being configured
4182  * @pf_q: the PF queue
4183  * @enable: enable or disable state of the queue
4184  *
4185  * This routine will wait for the given Tx queue of the PF to reach the
4186  * enabled or disabled state.
4187  * Returns -ETIMEDOUT in case of failing to reach the requested state after
4188  * multiple retries; else will return 0 in case of success.
4189  **/
4190 static int i40e_pf_txq_wait(struct i40e_pf *pf, int pf_q, bool enable)
4191 {
4192 	int i;
4193 	u32 tx_reg;
4194 
4195 	for (i = 0; i < I40E_QUEUE_WAIT_RETRY_LIMIT; i++) {
4196 		tx_reg = rd32(&pf->hw, I40E_QTX_ENA(pf_q));
4197 		if (enable == !!(tx_reg & I40E_QTX_ENA_QENA_STAT_MASK))
4198 			break;
4199 
4200 		usleep_range(10, 20);
4201 	}
4202 	if (i >= I40E_QUEUE_WAIT_RETRY_LIMIT)
4203 		return -ETIMEDOUT;
4204 
4205 	return 0;
4206 }
4207 
4208 /**
4209  * i40e_control_tx_q - Start or stop a particular Tx queue
4210  * @pf: the PF structure
4211  * @pf_q: the PF queue to configure
4212  * @enable: start or stop the queue
4213  *
4214  * This function enables or disables a single queue. Note that any delay
4215  * required after the operation is expected to be handled by the caller of
4216  * this function.
4217  **/
4218 static void i40e_control_tx_q(struct i40e_pf *pf, int pf_q, bool enable)
4219 {
4220 	struct i40e_hw *hw = &pf->hw;
4221 	u32 tx_reg;
4222 	int i;
4223 
4224 	/* warn the TX unit of coming changes */
4225 	i40e_pre_tx_queue_cfg(&pf->hw, pf_q, enable);
4226 	if (!enable)
4227 		usleep_range(10, 20);
4228 
4229 	for (i = 0; i < I40E_QTX_ENA_WAIT_COUNT; i++) {
4230 		tx_reg = rd32(hw, I40E_QTX_ENA(pf_q));
4231 		if (((tx_reg >> I40E_QTX_ENA_QENA_REQ_SHIFT) & 1) ==
4232 		    ((tx_reg >> I40E_QTX_ENA_QENA_STAT_SHIFT) & 1))
4233 			break;
4234 		usleep_range(1000, 2000);
4235 	}
4236 
4237 	/* Skip if the queue is already in the requested state */
4238 	if (enable == !!(tx_reg & I40E_QTX_ENA_QENA_STAT_MASK))
4239 		return;
4240 
4241 	/* turn on/off the queue */
4242 	if (enable) {
4243 		wr32(hw, I40E_QTX_HEAD(pf_q), 0);
4244 		tx_reg |= I40E_QTX_ENA_QENA_REQ_MASK;
4245 	} else {
4246 		tx_reg &= ~I40E_QTX_ENA_QENA_REQ_MASK;
4247 	}
4248 
4249 	wr32(hw, I40E_QTX_ENA(pf_q), tx_reg);
4250 }
4251 
4252 /**
4253  * i40e_control_wait_tx_q - Start/stop Tx queue and wait for completion
4254  * @seid: VSI SEID
4255  * @pf: the PF structure
4256  * @pf_q: the PF queue to configure
4257  * @is_xdp: true if the queue is used for XDP
4258  * @enable: start or stop the queue
4259  **/
4260 static int i40e_control_wait_tx_q(int seid, struct i40e_pf *pf, int pf_q,
4261 				  bool is_xdp, bool enable)
4262 {
4263 	int ret;
4264 
4265 	i40e_control_tx_q(pf, pf_q, enable);
4266 
4267 	/* wait for the change to finish */
4268 	ret = i40e_pf_txq_wait(pf, pf_q, enable);
4269 	if (ret) {
4270 		dev_info(&pf->pdev->dev,
4271 			 "VSI seid %d %sTx ring %d %sable timeout\n",
4272 			 seid, (is_xdp ? "XDP " : ""), pf_q,
4273 			 (enable ? "en" : "dis"));
4274 	}
4275 
4276 	return ret;
4277 }
4278 
4279 /**
4280  * i40e_vsi_control_tx - Start or stop a VSI's rings
4281  * @vsi: the VSI being configured
4282  * @enable: start or stop the rings
4283  **/
4284 static int i40e_vsi_control_tx(struct i40e_vsi *vsi, bool enable)
4285 {
4286 	struct i40e_pf *pf = vsi->back;
4287 	int i, pf_q, ret = 0;
4288 
4289 	pf_q = vsi->base_queue;
4290 	for (i = 0; i < vsi->num_queue_pairs; i++, pf_q++) {
4291 		ret = i40e_control_wait_tx_q(vsi->seid, pf,
4292 					     pf_q,
4293 					     false /*is xdp*/, enable);
4294 		if (ret)
4295 			break;
4296 
4297 		if (!i40e_enabled_xdp_vsi(vsi))
4298 			continue;
4299 
4300 		ret = i40e_control_wait_tx_q(vsi->seid, pf,
4301 					     pf_q + vsi->alloc_queue_pairs,
4302 					     true /*is xdp*/, enable);
4303 		if (ret)
4304 			break;
4305 	}
4306 
4307 	return ret;
4308 }
4309 
4310 /**
4311  * i40e_pf_rxq_wait - Wait for a PF's Rx queue to be enabled or disabled
4312  * @pf: the PF being configured
4313  * @pf_q: the PF queue
4314  * @enable: enable or disable state of the queue
4315  *
4316  * This routine will wait for the given Rx queue of the PF to reach the
4317  * enabled or disabled state.
4318  * Returns -ETIMEDOUT in case of failing to reach the requested state after
4319  * multiple retries; else will return 0 in case of success.
4320  **/
4321 static int i40e_pf_rxq_wait(struct i40e_pf *pf, int pf_q, bool enable)
4322 {
4323 	int i;
4324 	u32 rx_reg;
4325 
4326 	for (i = 0; i < I40E_QUEUE_WAIT_RETRY_LIMIT; i++) {
4327 		rx_reg = rd32(&pf->hw, I40E_QRX_ENA(pf_q));
4328 		if (enable == !!(rx_reg & I40E_QRX_ENA_QENA_STAT_MASK))
4329 			break;
4330 
4331 		usleep_range(10, 20);
4332 	}
4333 	if (i >= I40E_QUEUE_WAIT_RETRY_LIMIT)
4334 		return -ETIMEDOUT;
4335 
4336 	return 0;
4337 }
4338 
4339 /**
4340  * i40e_control_rx_q - Start or stop a particular Rx queue
4341  * @pf: the PF structure
4342  * @pf_q: the PF queue to configure
4343  * @enable: start or stop the queue
4344  *
4345  * This function enables or disables a single queue. Note that any delay
4346  * required after the operation is expected to be handled by the caller of
4347  * this function.
4348  **/
4349 static void i40e_control_rx_q(struct i40e_pf *pf, int pf_q, bool enable)
4350 {
4351 	struct i40e_hw *hw = &pf->hw;
4352 	u32 rx_reg;
4353 	int i;
4354 
4355 	for (i = 0; i < I40E_QTX_ENA_WAIT_COUNT; i++) {
4356 		rx_reg = rd32(hw, I40E_QRX_ENA(pf_q));
4357 		if (((rx_reg >> I40E_QRX_ENA_QENA_REQ_SHIFT) & 1) ==
4358 		    ((rx_reg >> I40E_QRX_ENA_QENA_STAT_SHIFT) & 1))
4359 			break;
4360 		usleep_range(1000, 2000);
4361 	}
4362 
4363 	/* Skip if the queue is already in the requested state */
4364 	if (enable == !!(rx_reg & I40E_QRX_ENA_QENA_STAT_MASK))
4365 		return;
4366 
4367 	/* turn on/off the queue */
4368 	if (enable)
4369 		rx_reg |= I40E_QRX_ENA_QENA_REQ_MASK;
4370 	else
4371 		rx_reg &= ~I40E_QRX_ENA_QENA_REQ_MASK;
4372 
4373 	wr32(hw, I40E_QRX_ENA(pf_q), rx_reg);
4374 }
4375 
4376 /**
4377  * i40e_vsi_control_rx - Start or stop a VSI's rings
4378  * @vsi: the VSI being configured
4379  * @enable: start or stop the rings
4380  **/
4381 static int i40e_vsi_control_rx(struct i40e_vsi *vsi, bool enable)
4382 {
4383 	struct i40e_pf *pf = vsi->back;
4384 	int i, pf_q, ret = 0;
4385 
4386 	pf_q = vsi->base_queue;
4387 	for (i = 0; i < vsi->num_queue_pairs; i++, pf_q++) {
4388 		i40e_control_rx_q(pf, pf_q, enable);
4389 
4390 		/* wait for the change to finish */
4391 		ret = i40e_pf_rxq_wait(pf, pf_q, enable);
4392 		if (ret) {
4393 			dev_info(&pf->pdev->dev,
4394 				 "VSI seid %d Rx ring %d %sable timeout\n",
4395 				 vsi->seid, pf_q, (enable ? "en" : "dis"));
4396 			break;
4397 		}
4398 	}
4399 
4400 	/* Due to HW errata, on Rx disable only, the register can indicate done
4401 	 * before it really is. Needs 50ms to be sure
4402 	 */
4403 	if (!enable)
4404 		mdelay(50);
4405 
4406 	return ret;
4407 }
4408 
4409 /**
4410  * i40e_vsi_start_rings - Start a VSI's rings
4411  * @vsi: the VSI being configured
4412  **/
4413 int i40e_vsi_start_rings(struct i40e_vsi *vsi)
4414 {
4415 	int ret = 0;
4416 
4417 	/* do rx first for enable and last for disable */
4418 	ret = i40e_vsi_control_rx(vsi, true);
4419 	if (ret)
4420 		return ret;
4421 	ret = i40e_vsi_control_tx(vsi, true);
4422 
4423 	return ret;
4424 }
4425 
4426 /**
4427  * i40e_vsi_stop_rings - Stop a VSI's rings
4428  * @vsi: the VSI being configured
4429  **/
4430 void i40e_vsi_stop_rings(struct i40e_vsi *vsi)
4431 {
4432 	/* When port TX is suspended, don't wait */
4433 	if (test_bit(__I40E_PORT_SUSPENDED, vsi->back->state))
4434 		return i40e_vsi_stop_rings_no_wait(vsi);
4435 
4436 	/* do rx first for enable and last for disable
4437 	 * Ignore return value, we need to shutdown whatever we can
4438 	 */
4439 	i40e_vsi_control_tx(vsi, false);
4440 	i40e_vsi_control_rx(vsi, false);
4441 }
4442 
4443 /**
4444  * i40e_vsi_stop_rings_no_wait - Stop a VSI's rings and do not delay
4445  * @vsi: the VSI being shutdown
4446  *
4447  * This function stops all the rings for a VSI but does not delay to verify
4448  * that rings have been disabled. It is expected that the caller is shutting
4449  * down multiple VSIs at once and will delay together for all the VSIs after
4450  * initiating the shutdown. This is particularly useful for shutting down lots
4451  * of VFs together. Otherwise, a large delay can be incurred while configuring
4452  * each VSI in serial.
4453  **/
4454 void i40e_vsi_stop_rings_no_wait(struct i40e_vsi *vsi)
4455 {
4456 	struct i40e_pf *pf = vsi->back;
4457 	int i, pf_q;
4458 
4459 	pf_q = vsi->base_queue;
4460 	for (i = 0; i < vsi->num_queue_pairs; i++, pf_q++) {
4461 		i40e_control_tx_q(pf, pf_q, false);
4462 		i40e_control_rx_q(pf, pf_q, false);
4463 	}
4464 }
4465 
4466 /**
4467  * i40e_vsi_free_irq - Free the irq association with the OS
4468  * @vsi: the VSI being configured
4469  **/
4470 static void i40e_vsi_free_irq(struct i40e_vsi *vsi)
4471 {
4472 	struct i40e_pf *pf = vsi->back;
4473 	struct i40e_hw *hw = &pf->hw;
4474 	int base = vsi->base_vector;
4475 	u32 val, qp;
4476 	int i;
4477 
4478 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
4479 		if (!vsi->q_vectors)
4480 			return;
4481 
4482 		if (!vsi->irqs_ready)
4483 			return;
4484 
4485 		vsi->irqs_ready = false;
4486 		for (i = 0; i < vsi->num_q_vectors; i++) {
4487 			int irq_num;
4488 			u16 vector;
4489 
4490 			vector = i + base;
4491 			irq_num = pf->msix_entries[vector].vector;
4492 
4493 			/* free only the irqs that were actually requested */
4494 			if (!vsi->q_vectors[i] ||
4495 			    !vsi->q_vectors[i]->num_ringpairs)
4496 				continue;
4497 
4498 			/* clear the affinity notifier in the IRQ descriptor */
4499 			irq_set_affinity_notifier(irq_num, NULL);
4500 			/* remove our suggested affinity mask for this IRQ */
4501 			irq_set_affinity_hint(irq_num, NULL);
4502 			synchronize_irq(irq_num);
4503 			free_irq(irq_num, vsi->q_vectors[i]);
4504 
4505 			/* Tear down the interrupt queue link list
4506 			 *
4507 			 * We know that they come in pairs and always
4508 			 * the Rx first, then the Tx.  To clear the
4509 			 * link list, stick the EOL value into the
4510 			 * next_q field of the registers.
4511 			 */
4512 			val = rd32(hw, I40E_PFINT_LNKLSTN(vector - 1));
4513 			qp = (val & I40E_PFINT_LNKLSTN_FIRSTQ_INDX_MASK)
4514 				>> I40E_PFINT_LNKLSTN_FIRSTQ_INDX_SHIFT;
4515 			val |= I40E_QUEUE_END_OF_LIST
4516 				<< I40E_PFINT_LNKLSTN_FIRSTQ_INDX_SHIFT;
4517 			wr32(hw, I40E_PFINT_LNKLSTN(vector - 1), val);
4518 
4519 			while (qp != I40E_QUEUE_END_OF_LIST) {
4520 				u32 next;
4521 
4522 				val = rd32(hw, I40E_QINT_RQCTL(qp));
4523 
4524 				val &= ~(I40E_QINT_RQCTL_MSIX_INDX_MASK  |
4525 					 I40E_QINT_RQCTL_MSIX0_INDX_MASK |
4526 					 I40E_QINT_RQCTL_CAUSE_ENA_MASK  |
4527 					 I40E_QINT_RQCTL_INTEVENT_MASK);
4528 
4529 				val |= (I40E_QINT_RQCTL_ITR_INDX_MASK |
4530 					 I40E_QINT_RQCTL_NEXTQ_INDX_MASK);
4531 
4532 				wr32(hw, I40E_QINT_RQCTL(qp), val);
4533 
4534 				val = rd32(hw, I40E_QINT_TQCTL(qp));
4535 
4536 				next = (val & I40E_QINT_TQCTL_NEXTQ_INDX_MASK)
4537 					>> I40E_QINT_TQCTL_NEXTQ_INDX_SHIFT;
4538 
4539 				val &= ~(I40E_QINT_TQCTL_MSIX_INDX_MASK  |
4540 					 I40E_QINT_TQCTL_MSIX0_INDX_MASK |
4541 					 I40E_QINT_TQCTL_CAUSE_ENA_MASK  |
4542 					 I40E_QINT_TQCTL_INTEVENT_MASK);
4543 
4544 				val |= (I40E_QINT_TQCTL_ITR_INDX_MASK |
4545 					 I40E_QINT_TQCTL_NEXTQ_INDX_MASK);
4546 
4547 				wr32(hw, I40E_QINT_TQCTL(qp), val);
4548 				qp = next;
4549 			}
4550 		}
4551 	} else {
4552 		free_irq(pf->pdev->irq, pf);
4553 
4554 		val = rd32(hw, I40E_PFINT_LNKLST0);
4555 		qp = (val & I40E_PFINT_LNKLSTN_FIRSTQ_INDX_MASK)
4556 			>> I40E_PFINT_LNKLSTN_FIRSTQ_INDX_SHIFT;
4557 		val |= I40E_QUEUE_END_OF_LIST
4558 			<< I40E_PFINT_LNKLST0_FIRSTQ_INDX_SHIFT;
4559 		wr32(hw, I40E_PFINT_LNKLST0, val);
4560 
4561 		val = rd32(hw, I40E_QINT_RQCTL(qp));
4562 		val &= ~(I40E_QINT_RQCTL_MSIX_INDX_MASK  |
4563 			 I40E_QINT_RQCTL_MSIX0_INDX_MASK |
4564 			 I40E_QINT_RQCTL_CAUSE_ENA_MASK  |
4565 			 I40E_QINT_RQCTL_INTEVENT_MASK);
4566 
4567 		val |= (I40E_QINT_RQCTL_ITR_INDX_MASK |
4568 			I40E_QINT_RQCTL_NEXTQ_INDX_MASK);
4569 
4570 		wr32(hw, I40E_QINT_RQCTL(qp), val);
4571 
4572 		val = rd32(hw, I40E_QINT_TQCTL(qp));
4573 
4574 		val &= ~(I40E_QINT_TQCTL_MSIX_INDX_MASK  |
4575 			 I40E_QINT_TQCTL_MSIX0_INDX_MASK |
4576 			 I40E_QINT_TQCTL_CAUSE_ENA_MASK  |
4577 			 I40E_QINT_TQCTL_INTEVENT_MASK);
4578 
4579 		val |= (I40E_QINT_TQCTL_ITR_INDX_MASK |
4580 			I40E_QINT_TQCTL_NEXTQ_INDX_MASK);
4581 
4582 		wr32(hw, I40E_QINT_TQCTL(qp), val);
4583 	}
4584 }
4585 
4586 /**
4587  * i40e_free_q_vector - Free memory allocated for specific interrupt vector
4588  * @vsi: the VSI being configured
4589  * @v_idx: Index of vector to be freed
4590  *
4591  * This function frees the memory allocated to the q_vector.  In addition if
4592  * NAPI is enabled it will delete any references to the NAPI struct prior
4593  * to freeing the q_vector.
4594  **/
4595 static void i40e_free_q_vector(struct i40e_vsi *vsi, int v_idx)
4596 {
4597 	struct i40e_q_vector *q_vector = vsi->q_vectors[v_idx];
4598 	struct i40e_ring *ring;
4599 
4600 	if (!q_vector)
4601 		return;
4602 
4603 	/* disassociate q_vector from rings */
4604 	i40e_for_each_ring(ring, q_vector->tx)
4605 		ring->q_vector = NULL;
4606 
4607 	i40e_for_each_ring(ring, q_vector->rx)
4608 		ring->q_vector = NULL;
4609 
4610 	/* only VSI w/ an associated netdev is set up w/ NAPI */
4611 	if (vsi->netdev)
4612 		netif_napi_del(&q_vector->napi);
4613 
4614 	vsi->q_vectors[v_idx] = NULL;
4615 
4616 	kfree_rcu(q_vector, rcu);
4617 }
4618 
4619 /**
4620  * i40e_vsi_free_q_vectors - Free memory allocated for interrupt vectors
4621  * @vsi: the VSI being un-configured
4622  *
4623  * This frees the memory allocated to the q_vectors and
4624  * deletes references to the NAPI struct.
4625  **/
4626 static void i40e_vsi_free_q_vectors(struct i40e_vsi *vsi)
4627 {
4628 	int v_idx;
4629 
4630 	for (v_idx = 0; v_idx < vsi->num_q_vectors; v_idx++)
4631 		i40e_free_q_vector(vsi, v_idx);
4632 }
4633 
4634 /**
4635  * i40e_reset_interrupt_capability - Disable interrupt setup in OS
4636  * @pf: board private structure
4637  **/
4638 static void i40e_reset_interrupt_capability(struct i40e_pf *pf)
4639 {
4640 	/* If we're in Legacy mode, the interrupt was cleaned in vsi_close */
4641 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
4642 		pci_disable_msix(pf->pdev);
4643 		kfree(pf->msix_entries);
4644 		pf->msix_entries = NULL;
4645 		kfree(pf->irq_pile);
4646 		pf->irq_pile = NULL;
4647 	} else if (pf->flags & I40E_FLAG_MSI_ENABLED) {
4648 		pci_disable_msi(pf->pdev);
4649 	}
4650 	pf->flags &= ~(I40E_FLAG_MSIX_ENABLED | I40E_FLAG_MSI_ENABLED);
4651 }
4652 
4653 /**
4654  * i40e_clear_interrupt_scheme - Clear the current interrupt scheme settings
4655  * @pf: board private structure
4656  *
4657  * We go through and clear interrupt specific resources and reset the structure
4658  * to pre-load conditions
4659  **/
4660 static void i40e_clear_interrupt_scheme(struct i40e_pf *pf)
4661 {
4662 	int i;
4663 
4664 	i40e_free_misc_vector(pf);
4665 
4666 	i40e_put_lump(pf->irq_pile, pf->iwarp_base_vector,
4667 		      I40E_IWARP_IRQ_PILE_ID);
4668 
4669 	i40e_put_lump(pf->irq_pile, 0, I40E_PILE_VALID_BIT-1);
4670 	for (i = 0; i < pf->num_alloc_vsi; i++)
4671 		if (pf->vsi[i])
4672 			i40e_vsi_free_q_vectors(pf->vsi[i]);
4673 	i40e_reset_interrupt_capability(pf);
4674 }
4675 
4676 /**
4677  * i40e_napi_enable_all - Enable NAPI for all q_vectors in the VSI
4678  * @vsi: the VSI being configured
4679  **/
4680 static void i40e_napi_enable_all(struct i40e_vsi *vsi)
4681 {
4682 	int q_idx;
4683 
4684 	if (!vsi->netdev)
4685 		return;
4686 
4687 	for (q_idx = 0; q_idx < vsi->num_q_vectors; q_idx++) {
4688 		struct i40e_q_vector *q_vector = vsi->q_vectors[q_idx];
4689 
4690 		if (q_vector->rx.ring || q_vector->tx.ring)
4691 			napi_enable(&q_vector->napi);
4692 	}
4693 }
4694 
4695 /**
4696  * i40e_napi_disable_all - Disable NAPI for all q_vectors in the VSI
4697  * @vsi: the VSI being configured
4698  **/
4699 static void i40e_napi_disable_all(struct i40e_vsi *vsi)
4700 {
4701 	int q_idx;
4702 
4703 	if (!vsi->netdev)
4704 		return;
4705 
4706 	for (q_idx = 0; q_idx < vsi->num_q_vectors; q_idx++) {
4707 		struct i40e_q_vector *q_vector = vsi->q_vectors[q_idx];
4708 
4709 		if (q_vector->rx.ring || q_vector->tx.ring)
4710 			napi_disable(&q_vector->napi);
4711 	}
4712 }
4713 
4714 /**
4715  * i40e_vsi_close - Shut down a VSI
4716  * @vsi: the vsi to be quelled
4717  **/
4718 static void i40e_vsi_close(struct i40e_vsi *vsi)
4719 {
4720 	struct i40e_pf *pf = vsi->back;
4721 	if (!test_and_set_bit(__I40E_VSI_DOWN, vsi->state))
4722 		i40e_down(vsi);
4723 	i40e_vsi_free_irq(vsi);
4724 	i40e_vsi_free_tx_resources(vsi);
4725 	i40e_vsi_free_rx_resources(vsi);
4726 	vsi->current_netdev_flags = 0;
4727 	pf->flags |= I40E_FLAG_SERVICE_CLIENT_REQUESTED;
4728 	if (test_bit(__I40E_RESET_RECOVERY_PENDING, pf->state))
4729 		pf->flags |=  I40E_FLAG_CLIENT_RESET;
4730 }
4731 
4732 /**
4733  * i40e_quiesce_vsi - Pause a given VSI
4734  * @vsi: the VSI being paused
4735  **/
4736 static void i40e_quiesce_vsi(struct i40e_vsi *vsi)
4737 {
4738 	if (test_bit(__I40E_VSI_DOWN, vsi->state))
4739 		return;
4740 
4741 	set_bit(__I40E_VSI_NEEDS_RESTART, vsi->state);
4742 	if (vsi->netdev && netif_running(vsi->netdev))
4743 		vsi->netdev->netdev_ops->ndo_stop(vsi->netdev);
4744 	else
4745 		i40e_vsi_close(vsi);
4746 }
4747 
4748 /**
4749  * i40e_unquiesce_vsi - Resume a given VSI
4750  * @vsi: the VSI being resumed
4751  **/
4752 static void i40e_unquiesce_vsi(struct i40e_vsi *vsi)
4753 {
4754 	if (!test_and_clear_bit(__I40E_VSI_NEEDS_RESTART, vsi->state))
4755 		return;
4756 
4757 	if (vsi->netdev && netif_running(vsi->netdev))
4758 		vsi->netdev->netdev_ops->ndo_open(vsi->netdev);
4759 	else
4760 		i40e_vsi_open(vsi);   /* this clears the DOWN bit */
4761 }
4762 
4763 /**
4764  * i40e_pf_quiesce_all_vsi - Pause all VSIs on a PF
4765  * @pf: the PF
4766  **/
4767 static void i40e_pf_quiesce_all_vsi(struct i40e_pf *pf)
4768 {
4769 	int v;
4770 
4771 	for (v = 0; v < pf->num_alloc_vsi; v++) {
4772 		if (pf->vsi[v])
4773 			i40e_quiesce_vsi(pf->vsi[v]);
4774 	}
4775 }
4776 
4777 /**
4778  * i40e_pf_unquiesce_all_vsi - Resume all VSIs on a PF
4779  * @pf: the PF
4780  **/
4781 static void i40e_pf_unquiesce_all_vsi(struct i40e_pf *pf)
4782 {
4783 	int v;
4784 
4785 	for (v = 0; v < pf->num_alloc_vsi; v++) {
4786 		if (pf->vsi[v])
4787 			i40e_unquiesce_vsi(pf->vsi[v]);
4788 	}
4789 }
4790 
4791 /**
4792  * i40e_vsi_wait_queues_disabled - Wait for VSI's queues to be disabled
4793  * @vsi: the VSI being configured
4794  *
4795  * Wait until all queues on a given VSI have been disabled.
4796  **/
4797 int i40e_vsi_wait_queues_disabled(struct i40e_vsi *vsi)
4798 {
4799 	struct i40e_pf *pf = vsi->back;
4800 	int i, pf_q, ret;
4801 
4802 	pf_q = vsi->base_queue;
4803 	for (i = 0; i < vsi->num_queue_pairs; i++, pf_q++) {
4804 		/* Check and wait for the Tx queue */
4805 		ret = i40e_pf_txq_wait(pf, pf_q, false);
4806 		if (ret) {
4807 			dev_info(&pf->pdev->dev,
4808 				 "VSI seid %d Tx ring %d disable timeout\n",
4809 				 vsi->seid, pf_q);
4810 			return ret;
4811 		}
4812 
4813 		if (!i40e_enabled_xdp_vsi(vsi))
4814 			goto wait_rx;
4815 
4816 		/* Check and wait for the XDP Tx queue */
4817 		ret = i40e_pf_txq_wait(pf, pf_q + vsi->alloc_queue_pairs,
4818 				       false);
4819 		if (ret) {
4820 			dev_info(&pf->pdev->dev,
4821 				 "VSI seid %d XDP Tx ring %d disable timeout\n",
4822 				 vsi->seid, pf_q);
4823 			return ret;
4824 		}
4825 wait_rx:
4826 		/* Check and wait for the Rx queue */
4827 		ret = i40e_pf_rxq_wait(pf, pf_q, false);
4828 		if (ret) {
4829 			dev_info(&pf->pdev->dev,
4830 				 "VSI seid %d Rx ring %d disable timeout\n",
4831 				 vsi->seid, pf_q);
4832 			return ret;
4833 		}
4834 	}
4835 
4836 	return 0;
4837 }
4838 
4839 #ifdef CONFIG_I40E_DCB
4840 /**
4841  * i40e_pf_wait_queues_disabled - Wait for all queues of PF VSIs to be disabled
4842  * @pf: the PF
4843  *
4844  * This function waits for the queues to be in disabled state for all the
4845  * VSIs that are managed by this PF.
4846  **/
4847 static int i40e_pf_wait_queues_disabled(struct i40e_pf *pf)
4848 {
4849 	int v, ret = 0;
4850 
4851 	for (v = 0; v < pf->hw.func_caps.num_vsis; v++) {
4852 		if (pf->vsi[v]) {
4853 			ret = i40e_vsi_wait_queues_disabled(pf->vsi[v]);
4854 			if (ret)
4855 				break;
4856 		}
4857 	}
4858 
4859 	return ret;
4860 }
4861 
4862 #endif
4863 
4864 /**
4865  * i40e_detect_recover_hung_queue - Function to detect and recover hung_queue
4866  * @q_idx: TX queue number
4867  * @vsi: Pointer to VSI struct
4868  *
4869  * This function checks specified queue for given VSI. Detects hung condition.
4870  * We proactively detect hung TX queues by checking if interrupts are disabled
4871  * but there are pending descriptors.  If it appears hung, attempt to recover
4872  * by triggering a SW interrupt.
4873  **/
4874 static void i40e_detect_recover_hung_queue(int q_idx, struct i40e_vsi *vsi)
4875 {
4876 	struct i40e_ring *tx_ring = NULL;
4877 	struct i40e_pf	*pf;
4878 	u32 val, tx_pending;
4879 	int i;
4880 
4881 	pf = vsi->back;
4882 
4883 	/* now that we have an index, find the tx_ring struct */
4884 	for (i = 0; i < vsi->num_queue_pairs; i++) {
4885 		if (vsi->tx_rings[i] && vsi->tx_rings[i]->desc) {
4886 			if (q_idx == vsi->tx_rings[i]->queue_index) {
4887 				tx_ring = vsi->tx_rings[i];
4888 				break;
4889 			}
4890 		}
4891 	}
4892 
4893 	if (!tx_ring)
4894 		return;
4895 
4896 	/* Read interrupt register */
4897 	if (pf->flags & I40E_FLAG_MSIX_ENABLED)
4898 		val = rd32(&pf->hw,
4899 			   I40E_PFINT_DYN_CTLN(tx_ring->q_vector->v_idx +
4900 					       tx_ring->vsi->base_vector - 1));
4901 	else
4902 		val = rd32(&pf->hw, I40E_PFINT_DYN_CTL0);
4903 
4904 	tx_pending = i40e_get_tx_pending(tx_ring);
4905 
4906 	/* Interrupts are disabled and TX pending is non-zero,
4907 	 * trigger the SW interrupt (don't wait). Worst case
4908 	 * there will be one extra interrupt which may result
4909 	 * into not cleaning any queues because queues are cleaned.
4910 	 */
4911 	if (tx_pending && (!(val & I40E_PFINT_DYN_CTLN_INTENA_MASK)))
4912 		i40e_force_wb(vsi, tx_ring->q_vector);
4913 }
4914 
4915 /**
4916  * i40e_detect_recover_hung - Function to detect and recover hung_queues
4917  * @pf:  pointer to PF struct
4918  *
4919  * LAN VSI has netdev and netdev has TX queues. This function is to check
4920  * each of those TX queues if they are hung, trigger recovery by issuing
4921  * SW interrupt.
4922  **/
4923 static void i40e_detect_recover_hung(struct i40e_pf *pf)
4924 {
4925 	struct net_device *netdev;
4926 	struct i40e_vsi *vsi;
4927 	unsigned int i;
4928 
4929 	/* Only for LAN VSI */
4930 	vsi = pf->vsi[pf->lan_vsi];
4931 
4932 	if (!vsi)
4933 		return;
4934 
4935 	/* Make sure, VSI state is not DOWN/RECOVERY_PENDING */
4936 	if (test_bit(__I40E_VSI_DOWN, vsi->back->state) ||
4937 	    test_bit(__I40E_RESET_RECOVERY_PENDING, vsi->back->state))
4938 		return;
4939 
4940 	/* Make sure type is MAIN VSI */
4941 	if (vsi->type != I40E_VSI_MAIN)
4942 		return;
4943 
4944 	netdev = vsi->netdev;
4945 	if (!netdev)
4946 		return;
4947 
4948 	/* Bail out if netif_carrier is not OK */
4949 	if (!netif_carrier_ok(netdev))
4950 		return;
4951 
4952 	/* Go thru' TX queues for netdev */
4953 	for (i = 0; i < netdev->num_tx_queues; i++) {
4954 		struct netdev_queue *q;
4955 
4956 		q = netdev_get_tx_queue(netdev, i);
4957 		if (q)
4958 			i40e_detect_recover_hung_queue(i, vsi);
4959 	}
4960 }
4961 
4962 /**
4963  * i40e_get_iscsi_tc_map - Return TC map for iSCSI APP
4964  * @pf: pointer to PF
4965  *
4966  * Get TC map for ISCSI PF type that will include iSCSI TC
4967  * and LAN TC.
4968  **/
4969 static u8 i40e_get_iscsi_tc_map(struct i40e_pf *pf)
4970 {
4971 	struct i40e_dcb_app_priority_table app;
4972 	struct i40e_hw *hw = &pf->hw;
4973 	u8 enabled_tc = 1; /* TC0 is always enabled */
4974 	u8 tc, i;
4975 	/* Get the iSCSI APP TLV */
4976 	struct i40e_dcbx_config *dcbcfg = &hw->local_dcbx_config;
4977 
4978 	for (i = 0; i < dcbcfg->numapps; i++) {
4979 		app = dcbcfg->app[i];
4980 		if (app.selector == I40E_APP_SEL_TCPIP &&
4981 		    app.protocolid == I40E_APP_PROTOID_ISCSI) {
4982 			tc = dcbcfg->etscfg.prioritytable[app.priority];
4983 			enabled_tc |= BIT(tc);
4984 			break;
4985 		}
4986 	}
4987 
4988 	return enabled_tc;
4989 }
4990 
4991 /**
4992  * i40e_dcb_get_num_tc -  Get the number of TCs from DCBx config
4993  * @dcbcfg: the corresponding DCBx configuration structure
4994  *
4995  * Return the number of TCs from given DCBx configuration
4996  **/
4997 static u8 i40e_dcb_get_num_tc(struct i40e_dcbx_config *dcbcfg)
4998 {
4999 	int i, tc_unused = 0;
5000 	u8 num_tc = 0;
5001 	u8 ret = 0;
5002 
5003 	/* Scan the ETS Config Priority Table to find
5004 	 * traffic class enabled for a given priority
5005 	 * and create a bitmask of enabled TCs
5006 	 */
5007 	for (i = 0; i < I40E_MAX_USER_PRIORITY; i++)
5008 		num_tc |= BIT(dcbcfg->etscfg.prioritytable[i]);
5009 
5010 	/* Now scan the bitmask to check for
5011 	 * contiguous TCs starting with TC0
5012 	 */
5013 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
5014 		if (num_tc & BIT(i)) {
5015 			if (!tc_unused) {
5016 				ret++;
5017 			} else {
5018 				pr_err("Non-contiguous TC - Disabling DCB\n");
5019 				return 1;
5020 			}
5021 		} else {
5022 			tc_unused = 1;
5023 		}
5024 	}
5025 
5026 	/* There is always at least TC0 */
5027 	if (!ret)
5028 		ret = 1;
5029 
5030 	return ret;
5031 }
5032 
5033 /**
5034  * i40e_dcb_get_enabled_tc - Get enabled traffic classes
5035  * @dcbcfg: the corresponding DCBx configuration structure
5036  *
5037  * Query the current DCB configuration and return the number of
5038  * traffic classes enabled from the given DCBX config
5039  **/
5040 static u8 i40e_dcb_get_enabled_tc(struct i40e_dcbx_config *dcbcfg)
5041 {
5042 	u8 num_tc = i40e_dcb_get_num_tc(dcbcfg);
5043 	u8 enabled_tc = 1;
5044 	u8 i;
5045 
5046 	for (i = 0; i < num_tc; i++)
5047 		enabled_tc |= BIT(i);
5048 
5049 	return enabled_tc;
5050 }
5051 
5052 /**
5053  * i40e_mqprio_get_enabled_tc - Get enabled traffic classes
5054  * @pf: PF being queried
5055  *
5056  * Query the current MQPRIO configuration and return the number of
5057  * traffic classes enabled.
5058  **/
5059 static u8 i40e_mqprio_get_enabled_tc(struct i40e_pf *pf)
5060 {
5061 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
5062 	u8 num_tc = vsi->mqprio_qopt.qopt.num_tc;
5063 	u8 enabled_tc = 1, i;
5064 
5065 	for (i = 1; i < num_tc; i++)
5066 		enabled_tc |= BIT(i);
5067 	return enabled_tc;
5068 }
5069 
5070 /**
5071  * i40e_pf_get_num_tc - Get enabled traffic classes for PF
5072  * @pf: PF being queried
5073  *
5074  * Return number of traffic classes enabled for the given PF
5075  **/
5076 static u8 i40e_pf_get_num_tc(struct i40e_pf *pf)
5077 {
5078 	struct i40e_hw *hw = &pf->hw;
5079 	u8 i, enabled_tc = 1;
5080 	u8 num_tc = 0;
5081 	struct i40e_dcbx_config *dcbcfg = &hw->local_dcbx_config;
5082 
5083 	if (pf->flags & I40E_FLAG_TC_MQPRIO)
5084 		return pf->vsi[pf->lan_vsi]->mqprio_qopt.qopt.num_tc;
5085 
5086 	/* If neither MQPRIO nor DCB is enabled, then always use single TC */
5087 	if (!(pf->flags & I40E_FLAG_DCB_ENABLED))
5088 		return 1;
5089 
5090 	/* SFP mode will be enabled for all TCs on port */
5091 	if (!(pf->flags & I40E_FLAG_MFP_ENABLED))
5092 		return i40e_dcb_get_num_tc(dcbcfg);
5093 
5094 	/* MFP mode return count of enabled TCs for this PF */
5095 	if (pf->hw.func_caps.iscsi)
5096 		enabled_tc =  i40e_get_iscsi_tc_map(pf);
5097 	else
5098 		return 1; /* Only TC0 */
5099 
5100 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
5101 		if (enabled_tc & BIT(i))
5102 			num_tc++;
5103 	}
5104 	return num_tc;
5105 }
5106 
5107 /**
5108  * i40e_pf_get_pf_tc_map - Get bitmap for enabled traffic classes
5109  * @pf: PF being queried
5110  *
5111  * Return a bitmap for enabled traffic classes for this PF.
5112  **/
5113 static u8 i40e_pf_get_tc_map(struct i40e_pf *pf)
5114 {
5115 	if (pf->flags & I40E_FLAG_TC_MQPRIO)
5116 		return i40e_mqprio_get_enabled_tc(pf);
5117 
5118 	/* If neither MQPRIO nor DCB is enabled for this PF then just return
5119 	 * default TC
5120 	 */
5121 	if (!(pf->flags & I40E_FLAG_DCB_ENABLED))
5122 		return I40E_DEFAULT_TRAFFIC_CLASS;
5123 
5124 	/* SFP mode we want PF to be enabled for all TCs */
5125 	if (!(pf->flags & I40E_FLAG_MFP_ENABLED))
5126 		return i40e_dcb_get_enabled_tc(&pf->hw.local_dcbx_config);
5127 
5128 	/* MFP enabled and iSCSI PF type */
5129 	if (pf->hw.func_caps.iscsi)
5130 		return i40e_get_iscsi_tc_map(pf);
5131 	else
5132 		return I40E_DEFAULT_TRAFFIC_CLASS;
5133 }
5134 
5135 /**
5136  * i40e_vsi_get_bw_info - Query VSI BW Information
5137  * @vsi: the VSI being queried
5138  *
5139  * Returns 0 on success, negative value on failure
5140  **/
5141 static int i40e_vsi_get_bw_info(struct i40e_vsi *vsi)
5142 {
5143 	struct i40e_aqc_query_vsi_ets_sla_config_resp bw_ets_config = {0};
5144 	struct i40e_aqc_query_vsi_bw_config_resp bw_config = {0};
5145 	struct i40e_pf *pf = vsi->back;
5146 	struct i40e_hw *hw = &pf->hw;
5147 	i40e_status ret;
5148 	u32 tc_bw_max;
5149 	int i;
5150 
5151 	/* Get the VSI level BW configuration */
5152 	ret = i40e_aq_query_vsi_bw_config(hw, vsi->seid, &bw_config, NULL);
5153 	if (ret) {
5154 		dev_info(&pf->pdev->dev,
5155 			 "couldn't get PF vsi bw config, err %s aq_err %s\n",
5156 			 i40e_stat_str(&pf->hw, ret),
5157 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
5158 		return -EINVAL;
5159 	}
5160 
5161 	/* Get the VSI level BW configuration per TC */
5162 	ret = i40e_aq_query_vsi_ets_sla_config(hw, vsi->seid, &bw_ets_config,
5163 					       NULL);
5164 	if (ret) {
5165 		dev_info(&pf->pdev->dev,
5166 			 "couldn't get PF vsi ets bw config, err %s aq_err %s\n",
5167 			 i40e_stat_str(&pf->hw, ret),
5168 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
5169 		return -EINVAL;
5170 	}
5171 
5172 	if (bw_config.tc_valid_bits != bw_ets_config.tc_valid_bits) {
5173 		dev_info(&pf->pdev->dev,
5174 			 "Enabled TCs mismatch from querying VSI BW info 0x%08x 0x%08x\n",
5175 			 bw_config.tc_valid_bits,
5176 			 bw_ets_config.tc_valid_bits);
5177 		/* Still continuing */
5178 	}
5179 
5180 	vsi->bw_limit = le16_to_cpu(bw_config.port_bw_limit);
5181 	vsi->bw_max_quanta = bw_config.max_bw;
5182 	tc_bw_max = le16_to_cpu(bw_ets_config.tc_bw_max[0]) |
5183 		    (le16_to_cpu(bw_ets_config.tc_bw_max[1]) << 16);
5184 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
5185 		vsi->bw_ets_share_credits[i] = bw_ets_config.share_credits[i];
5186 		vsi->bw_ets_limit_credits[i] =
5187 					le16_to_cpu(bw_ets_config.credits[i]);
5188 		/* 3 bits out of 4 for each TC */
5189 		vsi->bw_ets_max_quanta[i] = (u8)((tc_bw_max >> (i*4)) & 0x7);
5190 	}
5191 
5192 	return 0;
5193 }
5194 
5195 /**
5196  * i40e_vsi_configure_bw_alloc - Configure VSI BW allocation per TC
5197  * @vsi: the VSI being configured
5198  * @enabled_tc: TC bitmap
5199  * @bw_credits: BW shared credits per TC
5200  *
5201  * Returns 0 on success, negative value on failure
5202  **/
5203 static int i40e_vsi_configure_bw_alloc(struct i40e_vsi *vsi, u8 enabled_tc,
5204 				       u8 *bw_share)
5205 {
5206 	struct i40e_aqc_configure_vsi_tc_bw_data bw_data;
5207 	i40e_status ret;
5208 	int i;
5209 
5210 	if (vsi->back->flags & I40E_FLAG_TC_MQPRIO)
5211 		return 0;
5212 	if (!vsi->mqprio_qopt.qopt.hw) {
5213 		ret = i40e_set_bw_limit(vsi, vsi->seid, 0);
5214 		if (ret)
5215 			dev_info(&vsi->back->pdev->dev,
5216 				 "Failed to reset tx rate for vsi->seid %u\n",
5217 				 vsi->seid);
5218 		return ret;
5219 	}
5220 	bw_data.tc_valid_bits = enabled_tc;
5221 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++)
5222 		bw_data.tc_bw_credits[i] = bw_share[i];
5223 
5224 	ret = i40e_aq_config_vsi_tc_bw(&vsi->back->hw, vsi->seid, &bw_data,
5225 				       NULL);
5226 	if (ret) {
5227 		dev_info(&vsi->back->pdev->dev,
5228 			 "AQ command Config VSI BW allocation per TC failed = %d\n",
5229 			 vsi->back->hw.aq.asq_last_status);
5230 		return -EINVAL;
5231 	}
5232 
5233 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++)
5234 		vsi->info.qs_handle[i] = bw_data.qs_handles[i];
5235 
5236 	return 0;
5237 }
5238 
5239 /**
5240  * i40e_vsi_config_netdev_tc - Setup the netdev TC configuration
5241  * @vsi: the VSI being configured
5242  * @enabled_tc: TC map to be enabled
5243  *
5244  **/
5245 static void i40e_vsi_config_netdev_tc(struct i40e_vsi *vsi, u8 enabled_tc)
5246 {
5247 	struct net_device *netdev = vsi->netdev;
5248 	struct i40e_pf *pf = vsi->back;
5249 	struct i40e_hw *hw = &pf->hw;
5250 	u8 netdev_tc = 0;
5251 	int i;
5252 	struct i40e_dcbx_config *dcbcfg = &hw->local_dcbx_config;
5253 
5254 	if (!netdev)
5255 		return;
5256 
5257 	if (!enabled_tc) {
5258 		netdev_reset_tc(netdev);
5259 		return;
5260 	}
5261 
5262 	/* Set up actual enabled TCs on the VSI */
5263 	if (netdev_set_num_tc(netdev, vsi->tc_config.numtc))
5264 		return;
5265 
5266 	/* set per TC queues for the VSI */
5267 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
5268 		/* Only set TC queues for enabled tcs
5269 		 *
5270 		 * e.g. For a VSI that has TC0 and TC3 enabled the
5271 		 * enabled_tc bitmap would be 0x00001001; the driver
5272 		 * will set the numtc for netdev as 2 that will be
5273 		 * referenced by the netdev layer as TC 0 and 1.
5274 		 */
5275 		if (vsi->tc_config.enabled_tc & BIT(i))
5276 			netdev_set_tc_queue(netdev,
5277 					vsi->tc_config.tc_info[i].netdev_tc,
5278 					vsi->tc_config.tc_info[i].qcount,
5279 					vsi->tc_config.tc_info[i].qoffset);
5280 	}
5281 
5282 	if (pf->flags & I40E_FLAG_TC_MQPRIO)
5283 		return;
5284 
5285 	/* Assign UP2TC map for the VSI */
5286 	for (i = 0; i < I40E_MAX_USER_PRIORITY; i++) {
5287 		/* Get the actual TC# for the UP */
5288 		u8 ets_tc = dcbcfg->etscfg.prioritytable[i];
5289 		/* Get the mapped netdev TC# for the UP */
5290 		netdev_tc =  vsi->tc_config.tc_info[ets_tc].netdev_tc;
5291 		netdev_set_prio_tc_map(netdev, i, netdev_tc);
5292 	}
5293 }
5294 
5295 /**
5296  * i40e_vsi_update_queue_map - Update our copy of VSi info with new queue map
5297  * @vsi: the VSI being configured
5298  * @ctxt: the ctxt buffer returned from AQ VSI update param command
5299  **/
5300 static void i40e_vsi_update_queue_map(struct i40e_vsi *vsi,
5301 				      struct i40e_vsi_context *ctxt)
5302 {
5303 	/* copy just the sections touched not the entire info
5304 	 * since not all sections are valid as returned by
5305 	 * update vsi params
5306 	 */
5307 	vsi->info.mapping_flags = ctxt->info.mapping_flags;
5308 	memcpy(&vsi->info.queue_mapping,
5309 	       &ctxt->info.queue_mapping, sizeof(vsi->info.queue_mapping));
5310 	memcpy(&vsi->info.tc_mapping, ctxt->info.tc_mapping,
5311 	       sizeof(vsi->info.tc_mapping));
5312 }
5313 
5314 /**
5315  * i40e_vsi_config_tc - Configure VSI Tx Scheduler for given TC map
5316  * @vsi: VSI to be configured
5317  * @enabled_tc: TC bitmap
5318  *
5319  * This configures a particular VSI for TCs that are mapped to the
5320  * given TC bitmap. It uses default bandwidth share for TCs across
5321  * VSIs to configure TC for a particular VSI.
5322  *
5323  * NOTE:
5324  * It is expected that the VSI queues have been quisced before calling
5325  * this function.
5326  **/
5327 static int i40e_vsi_config_tc(struct i40e_vsi *vsi, u8 enabled_tc)
5328 {
5329 	u8 bw_share[I40E_MAX_TRAFFIC_CLASS] = {0};
5330 	struct i40e_vsi_context ctxt;
5331 	int ret = 0;
5332 	int i;
5333 
5334 	/* Check if enabled_tc is same as existing or new TCs */
5335 	if (vsi->tc_config.enabled_tc == enabled_tc &&
5336 	    vsi->mqprio_qopt.mode != TC_MQPRIO_MODE_CHANNEL)
5337 		return ret;
5338 
5339 	/* Enable ETS TCs with equal BW Share for now across all VSIs */
5340 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
5341 		if (enabled_tc & BIT(i))
5342 			bw_share[i] = 1;
5343 	}
5344 
5345 	ret = i40e_vsi_configure_bw_alloc(vsi, enabled_tc, bw_share);
5346 	if (ret) {
5347 		dev_info(&vsi->back->pdev->dev,
5348 			 "Failed configuring TC map %d for VSI %d\n",
5349 			 enabled_tc, vsi->seid);
5350 		goto out;
5351 	}
5352 
5353 	/* Update Queue Pairs Mapping for currently enabled UPs */
5354 	ctxt.seid = vsi->seid;
5355 	ctxt.pf_num = vsi->back->hw.pf_id;
5356 	ctxt.vf_num = 0;
5357 	ctxt.uplink_seid = vsi->uplink_seid;
5358 	ctxt.info = vsi->info;
5359 	if (vsi->back->flags & I40E_FLAG_TC_MQPRIO) {
5360 		ret = i40e_vsi_setup_queue_map_mqprio(vsi, &ctxt, enabled_tc);
5361 		if (ret)
5362 			goto out;
5363 	} else {
5364 		i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, false);
5365 	}
5366 
5367 	/* On destroying the qdisc, reset vsi->rss_size, as number of enabled
5368 	 * queues changed.
5369 	 */
5370 	if (!vsi->mqprio_qopt.qopt.hw && vsi->reconfig_rss) {
5371 		vsi->rss_size = min_t(int, vsi->back->alloc_rss_size,
5372 				      vsi->num_queue_pairs);
5373 		ret = i40e_vsi_config_rss(vsi);
5374 		if (ret) {
5375 			dev_info(&vsi->back->pdev->dev,
5376 				 "Failed to reconfig rss for num_queues\n");
5377 			return ret;
5378 		}
5379 		vsi->reconfig_rss = false;
5380 	}
5381 	if (vsi->back->flags & I40E_FLAG_IWARP_ENABLED) {
5382 		ctxt.info.valid_sections |=
5383 				cpu_to_le16(I40E_AQ_VSI_PROP_QUEUE_OPT_VALID);
5384 		ctxt.info.queueing_opt_flags |= I40E_AQ_VSI_QUE_OPT_TCP_ENA;
5385 	}
5386 
5387 	/* Update the VSI after updating the VSI queue-mapping
5388 	 * information
5389 	 */
5390 	ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
5391 	if (ret) {
5392 		dev_info(&vsi->back->pdev->dev,
5393 			 "Update vsi tc config failed, err %s aq_err %s\n",
5394 			 i40e_stat_str(&vsi->back->hw, ret),
5395 			 i40e_aq_str(&vsi->back->hw,
5396 				     vsi->back->hw.aq.asq_last_status));
5397 		goto out;
5398 	}
5399 	/* update the local VSI info with updated queue map */
5400 	i40e_vsi_update_queue_map(vsi, &ctxt);
5401 	vsi->info.valid_sections = 0;
5402 
5403 	/* Update current VSI BW information */
5404 	ret = i40e_vsi_get_bw_info(vsi);
5405 	if (ret) {
5406 		dev_info(&vsi->back->pdev->dev,
5407 			 "Failed updating vsi bw info, err %s aq_err %s\n",
5408 			 i40e_stat_str(&vsi->back->hw, ret),
5409 			 i40e_aq_str(&vsi->back->hw,
5410 				     vsi->back->hw.aq.asq_last_status));
5411 		goto out;
5412 	}
5413 
5414 	/* Update the netdev TC setup */
5415 	i40e_vsi_config_netdev_tc(vsi, enabled_tc);
5416 out:
5417 	return ret;
5418 }
5419 
5420 /**
5421  * i40e_get_link_speed - Returns link speed for the interface
5422  * @vsi: VSI to be configured
5423  *
5424  **/
5425 int i40e_get_link_speed(struct i40e_vsi *vsi)
5426 {
5427 	struct i40e_pf *pf = vsi->back;
5428 
5429 	switch (pf->hw.phy.link_info.link_speed) {
5430 	case I40E_LINK_SPEED_40GB:
5431 		return 40000;
5432 	case I40E_LINK_SPEED_25GB:
5433 		return 25000;
5434 	case I40E_LINK_SPEED_20GB:
5435 		return 20000;
5436 	case I40E_LINK_SPEED_10GB:
5437 		return 10000;
5438 	case I40E_LINK_SPEED_1GB:
5439 		return 1000;
5440 	default:
5441 		return -EINVAL;
5442 	}
5443 }
5444 
5445 /**
5446  * i40e_set_bw_limit - setup BW limit for Tx traffic based on max_tx_rate
5447  * @vsi: VSI to be configured
5448  * @seid: seid of the channel/VSI
5449  * @max_tx_rate: max TX rate to be configured as BW limit
5450  *
5451  * Helper function to set BW limit for a given VSI
5452  **/
5453 int i40e_set_bw_limit(struct i40e_vsi *vsi, u16 seid, u64 max_tx_rate)
5454 {
5455 	struct i40e_pf *pf = vsi->back;
5456 	u64 credits = 0;
5457 	int speed = 0;
5458 	int ret = 0;
5459 
5460 	speed = i40e_get_link_speed(vsi);
5461 	if (max_tx_rate > speed) {
5462 		dev_err(&pf->pdev->dev,
5463 			"Invalid max tx rate %llu specified for VSI seid %d.",
5464 			max_tx_rate, seid);
5465 		return -EINVAL;
5466 	}
5467 	if (max_tx_rate && max_tx_rate < 50) {
5468 		dev_warn(&pf->pdev->dev,
5469 			 "Setting max tx rate to minimum usable value of 50Mbps.\n");
5470 		max_tx_rate = 50;
5471 	}
5472 
5473 	/* Tx rate credits are in values of 50Mbps, 0 is disabled */
5474 	credits = max_tx_rate;
5475 	do_div(credits, I40E_BW_CREDIT_DIVISOR);
5476 	ret = i40e_aq_config_vsi_bw_limit(&pf->hw, seid, credits,
5477 					  I40E_MAX_BW_INACTIVE_ACCUM, NULL);
5478 	if (ret)
5479 		dev_err(&pf->pdev->dev,
5480 			"Failed set tx rate (%llu Mbps) for vsi->seid %u, err %s aq_err %s\n",
5481 			max_tx_rate, seid, i40e_stat_str(&pf->hw, ret),
5482 			i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
5483 	return ret;
5484 }
5485 
5486 /**
5487  * i40e_remove_queue_channels - Remove queue channels for the TCs
5488  * @vsi: VSI to be configured
5489  *
5490  * Remove queue channels for the TCs
5491  **/
5492 static void i40e_remove_queue_channels(struct i40e_vsi *vsi)
5493 {
5494 	enum i40e_admin_queue_err last_aq_status;
5495 	struct i40e_cloud_filter *cfilter;
5496 	struct i40e_channel *ch, *ch_tmp;
5497 	struct i40e_pf *pf = vsi->back;
5498 	struct hlist_node *node;
5499 	int ret, i;
5500 
5501 	/* Reset rss size that was stored when reconfiguring rss for
5502 	 * channel VSIs with non-power-of-2 queue count.
5503 	 */
5504 	vsi->current_rss_size = 0;
5505 
5506 	/* perform cleanup for channels if they exist */
5507 	if (list_empty(&vsi->ch_list))
5508 		return;
5509 
5510 	list_for_each_entry_safe(ch, ch_tmp, &vsi->ch_list, list) {
5511 		struct i40e_vsi *p_vsi;
5512 
5513 		list_del(&ch->list);
5514 		p_vsi = ch->parent_vsi;
5515 		if (!p_vsi || !ch->initialized) {
5516 			kfree(ch);
5517 			continue;
5518 		}
5519 		/* Reset queue contexts */
5520 		for (i = 0; i < ch->num_queue_pairs; i++) {
5521 			struct i40e_ring *tx_ring, *rx_ring;
5522 			u16 pf_q;
5523 
5524 			pf_q = ch->base_queue + i;
5525 			tx_ring = vsi->tx_rings[pf_q];
5526 			tx_ring->ch = NULL;
5527 
5528 			rx_ring = vsi->rx_rings[pf_q];
5529 			rx_ring->ch = NULL;
5530 		}
5531 
5532 		/* Reset BW configured for this VSI via mqprio */
5533 		ret = i40e_set_bw_limit(vsi, ch->seid, 0);
5534 		if (ret)
5535 			dev_info(&vsi->back->pdev->dev,
5536 				 "Failed to reset tx rate for ch->seid %u\n",
5537 				 ch->seid);
5538 
5539 		/* delete cloud filters associated with this channel */
5540 		hlist_for_each_entry_safe(cfilter, node,
5541 					  &pf->cloud_filter_list, cloud_node) {
5542 			if (cfilter->seid != ch->seid)
5543 				continue;
5544 
5545 			hash_del(&cfilter->cloud_node);
5546 			if (cfilter->dst_port)
5547 				ret = i40e_add_del_cloud_filter_big_buf(vsi,
5548 									cfilter,
5549 									false);
5550 			else
5551 				ret = i40e_add_del_cloud_filter(vsi, cfilter,
5552 								false);
5553 			last_aq_status = pf->hw.aq.asq_last_status;
5554 			if (ret)
5555 				dev_info(&pf->pdev->dev,
5556 					 "Failed to delete cloud filter, err %s aq_err %s\n",
5557 					 i40e_stat_str(&pf->hw, ret),
5558 					 i40e_aq_str(&pf->hw, last_aq_status));
5559 			kfree(cfilter);
5560 		}
5561 
5562 		/* delete VSI from FW */
5563 		ret = i40e_aq_delete_element(&vsi->back->hw, ch->seid,
5564 					     NULL);
5565 		if (ret)
5566 			dev_err(&vsi->back->pdev->dev,
5567 				"unable to remove channel (%d) for parent VSI(%d)\n",
5568 				ch->seid, p_vsi->seid);
5569 		kfree(ch);
5570 	}
5571 	INIT_LIST_HEAD(&vsi->ch_list);
5572 }
5573 
5574 /**
5575  * i40e_is_any_channel - channel exist or not
5576  * @vsi: ptr to VSI to which channels are associated with
5577  *
5578  * Returns true or false if channel(s) exist for associated VSI or not
5579  **/
5580 static bool i40e_is_any_channel(struct i40e_vsi *vsi)
5581 {
5582 	struct i40e_channel *ch, *ch_tmp;
5583 
5584 	list_for_each_entry_safe(ch, ch_tmp, &vsi->ch_list, list) {
5585 		if (ch->initialized)
5586 			return true;
5587 	}
5588 
5589 	return false;
5590 }
5591 
5592 /**
5593  * i40e_get_max_queues_for_channel
5594  * @vsi: ptr to VSI to which channels are associated with
5595  *
5596  * Helper function which returns max value among the queue counts set on the
5597  * channels/TCs created.
5598  **/
5599 static int i40e_get_max_queues_for_channel(struct i40e_vsi *vsi)
5600 {
5601 	struct i40e_channel *ch, *ch_tmp;
5602 	int max = 0;
5603 
5604 	list_for_each_entry_safe(ch, ch_tmp, &vsi->ch_list, list) {
5605 		if (!ch->initialized)
5606 			continue;
5607 		if (ch->num_queue_pairs > max)
5608 			max = ch->num_queue_pairs;
5609 	}
5610 
5611 	return max;
5612 }
5613 
5614 /**
5615  * i40e_validate_num_queues - validate num_queues w.r.t channel
5616  * @pf: ptr to PF device
5617  * @num_queues: number of queues
5618  * @vsi: the parent VSI
5619  * @reconfig_rss: indicates should the RSS be reconfigured or not
5620  *
5621  * This function validates number of queues in the context of new channel
5622  * which is being established and determines if RSS should be reconfigured
5623  * or not for parent VSI.
5624  **/
5625 static int i40e_validate_num_queues(struct i40e_pf *pf, int num_queues,
5626 				    struct i40e_vsi *vsi, bool *reconfig_rss)
5627 {
5628 	int max_ch_queues;
5629 
5630 	if (!reconfig_rss)
5631 		return -EINVAL;
5632 
5633 	*reconfig_rss = false;
5634 	if (vsi->current_rss_size) {
5635 		if (num_queues > vsi->current_rss_size) {
5636 			dev_dbg(&pf->pdev->dev,
5637 				"Error: num_queues (%d) > vsi's current_size(%d)\n",
5638 				num_queues, vsi->current_rss_size);
5639 			return -EINVAL;
5640 		} else if ((num_queues < vsi->current_rss_size) &&
5641 			   (!is_power_of_2(num_queues))) {
5642 			dev_dbg(&pf->pdev->dev,
5643 				"Error: num_queues (%d) < vsi's current_size(%d), but not power of 2\n",
5644 				num_queues, vsi->current_rss_size);
5645 			return -EINVAL;
5646 		}
5647 	}
5648 
5649 	if (!is_power_of_2(num_queues)) {
5650 		/* Find the max num_queues configured for channel if channel
5651 		 * exist.
5652 		 * if channel exist, then enforce 'num_queues' to be more than
5653 		 * max ever queues configured for channel.
5654 		 */
5655 		max_ch_queues = i40e_get_max_queues_for_channel(vsi);
5656 		if (num_queues < max_ch_queues) {
5657 			dev_dbg(&pf->pdev->dev,
5658 				"Error: num_queues (%d) < max queues configured for channel(%d)\n",
5659 				num_queues, max_ch_queues);
5660 			return -EINVAL;
5661 		}
5662 		*reconfig_rss = true;
5663 	}
5664 
5665 	return 0;
5666 }
5667 
5668 /**
5669  * i40e_vsi_reconfig_rss - reconfig RSS based on specified rss_size
5670  * @vsi: the VSI being setup
5671  * @rss_size: size of RSS, accordingly LUT gets reprogrammed
5672  *
5673  * This function reconfigures RSS by reprogramming LUTs using 'rss_size'
5674  **/
5675 static int i40e_vsi_reconfig_rss(struct i40e_vsi *vsi, u16 rss_size)
5676 {
5677 	struct i40e_pf *pf = vsi->back;
5678 	u8 seed[I40E_HKEY_ARRAY_SIZE];
5679 	struct i40e_hw *hw = &pf->hw;
5680 	int local_rss_size;
5681 	u8 *lut;
5682 	int ret;
5683 
5684 	if (!vsi->rss_size)
5685 		return -EINVAL;
5686 
5687 	if (rss_size > vsi->rss_size)
5688 		return -EINVAL;
5689 
5690 	local_rss_size = min_t(int, vsi->rss_size, rss_size);
5691 	lut = kzalloc(vsi->rss_table_size, GFP_KERNEL);
5692 	if (!lut)
5693 		return -ENOMEM;
5694 
5695 	/* Ignoring user configured lut if there is one */
5696 	i40e_fill_rss_lut(pf, lut, vsi->rss_table_size, local_rss_size);
5697 
5698 	/* Use user configured hash key if there is one, otherwise
5699 	 * use default.
5700 	 */
5701 	if (vsi->rss_hkey_user)
5702 		memcpy(seed, vsi->rss_hkey_user, I40E_HKEY_ARRAY_SIZE);
5703 	else
5704 		netdev_rss_key_fill((void *)seed, I40E_HKEY_ARRAY_SIZE);
5705 
5706 	ret = i40e_config_rss(vsi, seed, lut, vsi->rss_table_size);
5707 	if (ret) {
5708 		dev_info(&pf->pdev->dev,
5709 			 "Cannot set RSS lut, err %s aq_err %s\n",
5710 			 i40e_stat_str(hw, ret),
5711 			 i40e_aq_str(hw, hw->aq.asq_last_status));
5712 		kfree(lut);
5713 		return ret;
5714 	}
5715 	kfree(lut);
5716 
5717 	/* Do the update w.r.t. storing rss_size */
5718 	if (!vsi->orig_rss_size)
5719 		vsi->orig_rss_size = vsi->rss_size;
5720 	vsi->current_rss_size = local_rss_size;
5721 
5722 	return ret;
5723 }
5724 
5725 /**
5726  * i40e_channel_setup_queue_map - Setup a channel queue map
5727  * @pf: ptr to PF device
5728  * @vsi: the VSI being setup
5729  * @ctxt: VSI context structure
5730  * @ch: ptr to channel structure
5731  *
5732  * Setup queue map for a specific channel
5733  **/
5734 static void i40e_channel_setup_queue_map(struct i40e_pf *pf,
5735 					 struct i40e_vsi_context *ctxt,
5736 					 struct i40e_channel *ch)
5737 {
5738 	u16 qcount, qmap, sections = 0;
5739 	u8 offset = 0;
5740 	int pow;
5741 
5742 	sections = I40E_AQ_VSI_PROP_QUEUE_MAP_VALID;
5743 	sections |= I40E_AQ_VSI_PROP_SCHED_VALID;
5744 
5745 	qcount = min_t(int, ch->num_queue_pairs, pf->num_lan_msix);
5746 	ch->num_queue_pairs = qcount;
5747 
5748 	/* find the next higher power-of-2 of num queue pairs */
5749 	pow = ilog2(qcount);
5750 	if (!is_power_of_2(qcount))
5751 		pow++;
5752 
5753 	qmap = (offset << I40E_AQ_VSI_TC_QUE_OFFSET_SHIFT) |
5754 		(pow << I40E_AQ_VSI_TC_QUE_NUMBER_SHIFT);
5755 
5756 	/* Setup queue TC[0].qmap for given VSI context */
5757 	ctxt->info.tc_mapping[0] = cpu_to_le16(qmap);
5758 
5759 	ctxt->info.up_enable_bits = 0x1; /* TC0 enabled */
5760 	ctxt->info.mapping_flags |= cpu_to_le16(I40E_AQ_VSI_QUE_MAP_CONTIG);
5761 	ctxt->info.queue_mapping[0] = cpu_to_le16(ch->base_queue);
5762 	ctxt->info.valid_sections |= cpu_to_le16(sections);
5763 }
5764 
5765 /**
5766  * i40e_add_channel - add a channel by adding VSI
5767  * @pf: ptr to PF device
5768  * @uplink_seid: underlying HW switching element (VEB) ID
5769  * @ch: ptr to channel structure
5770  *
5771  * Add a channel (VSI) using add_vsi and queue_map
5772  **/
5773 static int i40e_add_channel(struct i40e_pf *pf, u16 uplink_seid,
5774 			    struct i40e_channel *ch)
5775 {
5776 	struct i40e_hw *hw = &pf->hw;
5777 	struct i40e_vsi_context ctxt;
5778 	u8 enabled_tc = 0x1; /* TC0 enabled */
5779 	int ret;
5780 
5781 	if (ch->type != I40E_VSI_VMDQ2) {
5782 		dev_info(&pf->pdev->dev,
5783 			 "add new vsi failed, ch->type %d\n", ch->type);
5784 		return -EINVAL;
5785 	}
5786 
5787 	memset(&ctxt, 0, sizeof(ctxt));
5788 	ctxt.pf_num = hw->pf_id;
5789 	ctxt.vf_num = 0;
5790 	ctxt.uplink_seid = uplink_seid;
5791 	ctxt.connection_type = I40E_AQ_VSI_CONN_TYPE_NORMAL;
5792 	if (ch->type == I40E_VSI_VMDQ2)
5793 		ctxt.flags = I40E_AQ_VSI_TYPE_VMDQ2;
5794 
5795 	if (pf->flags & I40E_FLAG_VEB_MODE_ENABLED) {
5796 		ctxt.info.valid_sections |=
5797 		     cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
5798 		ctxt.info.switch_id =
5799 		   cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
5800 	}
5801 
5802 	/* Set queue map for a given VSI context */
5803 	i40e_channel_setup_queue_map(pf, &ctxt, ch);
5804 
5805 	/* Now time to create VSI */
5806 	ret = i40e_aq_add_vsi(hw, &ctxt, NULL);
5807 	if (ret) {
5808 		dev_info(&pf->pdev->dev,
5809 			 "add new vsi failed, err %s aq_err %s\n",
5810 			 i40e_stat_str(&pf->hw, ret),
5811 			 i40e_aq_str(&pf->hw,
5812 				     pf->hw.aq.asq_last_status));
5813 		return -ENOENT;
5814 	}
5815 
5816 	/* Success, update channel */
5817 	ch->enabled_tc = enabled_tc;
5818 	ch->seid = ctxt.seid;
5819 	ch->vsi_number = ctxt.vsi_number;
5820 	ch->stat_counter_idx = cpu_to_le16(ctxt.info.stat_counter_idx);
5821 
5822 	/* copy just the sections touched not the entire info
5823 	 * since not all sections are valid as returned by
5824 	 * update vsi params
5825 	 */
5826 	ch->info.mapping_flags = ctxt.info.mapping_flags;
5827 	memcpy(&ch->info.queue_mapping,
5828 	       &ctxt.info.queue_mapping, sizeof(ctxt.info.queue_mapping));
5829 	memcpy(&ch->info.tc_mapping, ctxt.info.tc_mapping,
5830 	       sizeof(ctxt.info.tc_mapping));
5831 
5832 	return 0;
5833 }
5834 
5835 static int i40e_channel_config_bw(struct i40e_vsi *vsi, struct i40e_channel *ch,
5836 				  u8 *bw_share)
5837 {
5838 	struct i40e_aqc_configure_vsi_tc_bw_data bw_data;
5839 	i40e_status ret;
5840 	int i;
5841 
5842 	bw_data.tc_valid_bits = ch->enabled_tc;
5843 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++)
5844 		bw_data.tc_bw_credits[i] = bw_share[i];
5845 
5846 	ret = i40e_aq_config_vsi_tc_bw(&vsi->back->hw, ch->seid,
5847 				       &bw_data, NULL);
5848 	if (ret) {
5849 		dev_info(&vsi->back->pdev->dev,
5850 			 "Config VSI BW allocation per TC failed, aq_err: %d for new_vsi->seid %u\n",
5851 			 vsi->back->hw.aq.asq_last_status, ch->seid);
5852 		return -EINVAL;
5853 	}
5854 
5855 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++)
5856 		ch->info.qs_handle[i] = bw_data.qs_handles[i];
5857 
5858 	return 0;
5859 }
5860 
5861 /**
5862  * i40e_channel_config_tx_ring - config TX ring associated with new channel
5863  * @pf: ptr to PF device
5864  * @vsi: the VSI being setup
5865  * @ch: ptr to channel structure
5866  *
5867  * Configure TX rings associated with channel (VSI) since queues are being
5868  * from parent VSI.
5869  **/
5870 static int i40e_channel_config_tx_ring(struct i40e_pf *pf,
5871 				       struct i40e_vsi *vsi,
5872 				       struct i40e_channel *ch)
5873 {
5874 	i40e_status ret;
5875 	int i;
5876 	u8 bw_share[I40E_MAX_TRAFFIC_CLASS] = {0};
5877 
5878 	/* Enable ETS TCs with equal BW Share for now across all VSIs */
5879 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
5880 		if (ch->enabled_tc & BIT(i))
5881 			bw_share[i] = 1;
5882 	}
5883 
5884 	/* configure BW for new VSI */
5885 	ret = i40e_channel_config_bw(vsi, ch, bw_share);
5886 	if (ret) {
5887 		dev_info(&vsi->back->pdev->dev,
5888 			 "Failed configuring TC map %d for channel (seid %u)\n",
5889 			 ch->enabled_tc, ch->seid);
5890 		return ret;
5891 	}
5892 
5893 	for (i = 0; i < ch->num_queue_pairs; i++) {
5894 		struct i40e_ring *tx_ring, *rx_ring;
5895 		u16 pf_q;
5896 
5897 		pf_q = ch->base_queue + i;
5898 
5899 		/* Get to TX ring ptr of main VSI, for re-setup TX queue
5900 		 * context
5901 		 */
5902 		tx_ring = vsi->tx_rings[pf_q];
5903 		tx_ring->ch = ch;
5904 
5905 		/* Get the RX ring ptr */
5906 		rx_ring = vsi->rx_rings[pf_q];
5907 		rx_ring->ch = ch;
5908 	}
5909 
5910 	return 0;
5911 }
5912 
5913 /**
5914  * i40e_setup_hw_channel - setup new channel
5915  * @pf: ptr to PF device
5916  * @vsi: the VSI being setup
5917  * @ch: ptr to channel structure
5918  * @uplink_seid: underlying HW switching element (VEB) ID
5919  * @type: type of channel to be created (VMDq2/VF)
5920  *
5921  * Setup new channel (VSI) based on specified type (VMDq2/VF)
5922  * and configures TX rings accordingly
5923  **/
5924 static inline int i40e_setup_hw_channel(struct i40e_pf *pf,
5925 					struct i40e_vsi *vsi,
5926 					struct i40e_channel *ch,
5927 					u16 uplink_seid, u8 type)
5928 {
5929 	int ret;
5930 
5931 	ch->initialized = false;
5932 	ch->base_queue = vsi->next_base_queue;
5933 	ch->type = type;
5934 
5935 	/* Proceed with creation of channel (VMDq2) VSI */
5936 	ret = i40e_add_channel(pf, uplink_seid, ch);
5937 	if (ret) {
5938 		dev_info(&pf->pdev->dev,
5939 			 "failed to add_channel using uplink_seid %u\n",
5940 			 uplink_seid);
5941 		return ret;
5942 	}
5943 
5944 	/* Mark the successful creation of channel */
5945 	ch->initialized = true;
5946 
5947 	/* Reconfigure TX queues using QTX_CTL register */
5948 	ret = i40e_channel_config_tx_ring(pf, vsi, ch);
5949 	if (ret) {
5950 		dev_info(&pf->pdev->dev,
5951 			 "failed to configure TX rings for channel %u\n",
5952 			 ch->seid);
5953 		return ret;
5954 	}
5955 
5956 	/* update 'next_base_queue' */
5957 	vsi->next_base_queue = vsi->next_base_queue + ch->num_queue_pairs;
5958 	dev_dbg(&pf->pdev->dev,
5959 		"Added channel: vsi_seid %u, vsi_number %u, stat_counter_idx %u, num_queue_pairs %u, pf->next_base_queue %d\n",
5960 		ch->seid, ch->vsi_number, ch->stat_counter_idx,
5961 		ch->num_queue_pairs,
5962 		vsi->next_base_queue);
5963 	return ret;
5964 }
5965 
5966 /**
5967  * i40e_setup_channel - setup new channel using uplink element
5968  * @pf: ptr to PF device
5969  * @type: type of channel to be created (VMDq2/VF)
5970  * @uplink_seid: underlying HW switching element (VEB) ID
5971  * @ch: ptr to channel structure
5972  *
5973  * Setup new channel (VSI) based on specified type (VMDq2/VF)
5974  * and uplink switching element (uplink_seid)
5975  **/
5976 static bool i40e_setup_channel(struct i40e_pf *pf, struct i40e_vsi *vsi,
5977 			       struct i40e_channel *ch)
5978 {
5979 	u8 vsi_type;
5980 	u16 seid;
5981 	int ret;
5982 
5983 	if (vsi->type == I40E_VSI_MAIN) {
5984 		vsi_type = I40E_VSI_VMDQ2;
5985 	} else {
5986 		dev_err(&pf->pdev->dev, "unsupported parent vsi type(%d)\n",
5987 			vsi->type);
5988 		return false;
5989 	}
5990 
5991 	/* underlying switching element */
5992 	seid = pf->vsi[pf->lan_vsi]->uplink_seid;
5993 
5994 	/* create channel (VSI), configure TX rings */
5995 	ret = i40e_setup_hw_channel(pf, vsi, ch, seid, vsi_type);
5996 	if (ret) {
5997 		dev_err(&pf->pdev->dev, "failed to setup hw_channel\n");
5998 		return false;
5999 	}
6000 
6001 	return ch->initialized ? true : false;
6002 }
6003 
6004 /**
6005  * i40e_validate_and_set_switch_mode - sets up switch mode correctly
6006  * @vsi: ptr to VSI which has PF backing
6007  *
6008  * Sets up switch mode correctly if it needs to be changed and perform
6009  * what are allowed modes.
6010  **/
6011 static int i40e_validate_and_set_switch_mode(struct i40e_vsi *vsi)
6012 {
6013 	u8 mode;
6014 	struct i40e_pf *pf = vsi->back;
6015 	struct i40e_hw *hw = &pf->hw;
6016 	int ret;
6017 
6018 	ret = i40e_get_capabilities(pf, i40e_aqc_opc_list_dev_capabilities);
6019 	if (ret)
6020 		return -EINVAL;
6021 
6022 	if (hw->dev_caps.switch_mode) {
6023 		/* if switch mode is set, support mode2 (non-tunneled for
6024 		 * cloud filter) for now
6025 		 */
6026 		u32 switch_mode = hw->dev_caps.switch_mode &
6027 				  I40E_SWITCH_MODE_MASK;
6028 		if (switch_mode >= I40E_CLOUD_FILTER_MODE1) {
6029 			if (switch_mode == I40E_CLOUD_FILTER_MODE2)
6030 				return 0;
6031 			dev_err(&pf->pdev->dev,
6032 				"Invalid switch_mode (%d), only non-tunneled mode for cloud filter is supported\n",
6033 				hw->dev_caps.switch_mode);
6034 			return -EINVAL;
6035 		}
6036 	}
6037 
6038 	/* Set Bit 7 to be valid */
6039 	mode = I40E_AQ_SET_SWITCH_BIT7_VALID;
6040 
6041 	/* Set L4type to both TCP and UDP support */
6042 	mode |= I40E_AQ_SET_SWITCH_L4_TYPE_BOTH;
6043 
6044 	/* Set cloud filter mode */
6045 	mode |= I40E_AQ_SET_SWITCH_MODE_NON_TUNNEL;
6046 
6047 	/* Prep mode field for set_switch_config */
6048 	ret = i40e_aq_set_switch_config(hw, pf->last_sw_conf_flags,
6049 					pf->last_sw_conf_valid_flags,
6050 					mode, NULL);
6051 	if (ret && hw->aq.asq_last_status != I40E_AQ_RC_ESRCH)
6052 		dev_err(&pf->pdev->dev,
6053 			"couldn't set switch config bits, err %s aq_err %s\n",
6054 			i40e_stat_str(hw, ret),
6055 			i40e_aq_str(hw,
6056 				    hw->aq.asq_last_status));
6057 
6058 	return ret;
6059 }
6060 
6061 /**
6062  * i40e_create_queue_channel - function to create channel
6063  * @vsi: VSI to be configured
6064  * @ch: ptr to channel (it contains channel specific params)
6065  *
6066  * This function creates channel (VSI) using num_queues specified by user,
6067  * reconfigs RSS if needed.
6068  **/
6069 int i40e_create_queue_channel(struct i40e_vsi *vsi,
6070 			      struct i40e_channel *ch)
6071 {
6072 	struct i40e_pf *pf = vsi->back;
6073 	bool reconfig_rss;
6074 	int err;
6075 
6076 	if (!ch)
6077 		return -EINVAL;
6078 
6079 	if (!ch->num_queue_pairs) {
6080 		dev_err(&pf->pdev->dev, "Invalid num_queues requested: %d\n",
6081 			ch->num_queue_pairs);
6082 		return -EINVAL;
6083 	}
6084 
6085 	/* validate user requested num_queues for channel */
6086 	err = i40e_validate_num_queues(pf, ch->num_queue_pairs, vsi,
6087 				       &reconfig_rss);
6088 	if (err) {
6089 		dev_info(&pf->pdev->dev, "Failed to validate num_queues (%d)\n",
6090 			 ch->num_queue_pairs);
6091 		return -EINVAL;
6092 	}
6093 
6094 	/* By default we are in VEPA mode, if this is the first VF/VMDq
6095 	 * VSI to be added switch to VEB mode.
6096 	 */
6097 	if ((!(pf->flags & I40E_FLAG_VEB_MODE_ENABLED)) ||
6098 	    (!i40e_is_any_channel(vsi))) {
6099 		if (!is_power_of_2(vsi->tc_config.tc_info[0].qcount)) {
6100 			dev_dbg(&pf->pdev->dev,
6101 				"Failed to create channel. Override queues (%u) not power of 2\n",
6102 				vsi->tc_config.tc_info[0].qcount);
6103 			return -EINVAL;
6104 		}
6105 
6106 		if (!(pf->flags & I40E_FLAG_VEB_MODE_ENABLED)) {
6107 			pf->flags |= I40E_FLAG_VEB_MODE_ENABLED;
6108 
6109 			if (vsi->type == I40E_VSI_MAIN) {
6110 				if (pf->flags & I40E_FLAG_TC_MQPRIO)
6111 					i40e_do_reset(pf, I40E_PF_RESET_FLAG,
6112 						      true);
6113 				else
6114 					i40e_do_reset_safe(pf,
6115 							   I40E_PF_RESET_FLAG);
6116 			}
6117 		}
6118 		/* now onwards for main VSI, number of queues will be value
6119 		 * of TC0's queue count
6120 		 */
6121 	}
6122 
6123 	/* By this time, vsi->cnt_q_avail shall be set to non-zero and
6124 	 * it should be more than num_queues
6125 	 */
6126 	if (!vsi->cnt_q_avail || vsi->cnt_q_avail < ch->num_queue_pairs) {
6127 		dev_dbg(&pf->pdev->dev,
6128 			"Error: cnt_q_avail (%u) less than num_queues %d\n",
6129 			vsi->cnt_q_avail, ch->num_queue_pairs);
6130 		return -EINVAL;
6131 	}
6132 
6133 	/* reconfig_rss only if vsi type is MAIN_VSI */
6134 	if (reconfig_rss && (vsi->type == I40E_VSI_MAIN)) {
6135 		err = i40e_vsi_reconfig_rss(vsi, ch->num_queue_pairs);
6136 		if (err) {
6137 			dev_info(&pf->pdev->dev,
6138 				 "Error: unable to reconfig rss for num_queues (%u)\n",
6139 				 ch->num_queue_pairs);
6140 			return -EINVAL;
6141 		}
6142 	}
6143 
6144 	if (!i40e_setup_channel(pf, vsi, ch)) {
6145 		dev_info(&pf->pdev->dev, "Failed to setup channel\n");
6146 		return -EINVAL;
6147 	}
6148 
6149 	dev_info(&pf->pdev->dev,
6150 		 "Setup channel (id:%u) utilizing num_queues %d\n",
6151 		 ch->seid, ch->num_queue_pairs);
6152 
6153 	/* configure VSI for BW limit */
6154 	if (ch->max_tx_rate) {
6155 		u64 credits = ch->max_tx_rate;
6156 
6157 		if (i40e_set_bw_limit(vsi, ch->seid, ch->max_tx_rate))
6158 			return -EINVAL;
6159 
6160 		do_div(credits, I40E_BW_CREDIT_DIVISOR);
6161 		dev_dbg(&pf->pdev->dev,
6162 			"Set tx rate of %llu Mbps (count of 50Mbps %llu) for vsi->seid %u\n",
6163 			ch->max_tx_rate,
6164 			credits,
6165 			ch->seid);
6166 	}
6167 
6168 	/* in case of VF, this will be main SRIOV VSI */
6169 	ch->parent_vsi = vsi;
6170 
6171 	/* and update main_vsi's count for queue_available to use */
6172 	vsi->cnt_q_avail -= ch->num_queue_pairs;
6173 
6174 	return 0;
6175 }
6176 
6177 /**
6178  * i40e_configure_queue_channels - Add queue channel for the given TCs
6179  * @vsi: VSI to be configured
6180  *
6181  * Configures queue channel mapping to the given TCs
6182  **/
6183 static int i40e_configure_queue_channels(struct i40e_vsi *vsi)
6184 {
6185 	struct i40e_channel *ch;
6186 	u64 max_rate = 0;
6187 	int ret = 0, i;
6188 
6189 	/* Create app vsi with the TCs. Main VSI with TC0 is already set up */
6190 	vsi->tc_seid_map[0] = vsi->seid;
6191 	for (i = 1; i < I40E_MAX_TRAFFIC_CLASS; i++) {
6192 		if (vsi->tc_config.enabled_tc & BIT(i)) {
6193 			ch = kzalloc(sizeof(*ch), GFP_KERNEL);
6194 			if (!ch) {
6195 				ret = -ENOMEM;
6196 				goto err_free;
6197 			}
6198 
6199 			INIT_LIST_HEAD(&ch->list);
6200 			ch->num_queue_pairs =
6201 				vsi->tc_config.tc_info[i].qcount;
6202 			ch->base_queue =
6203 				vsi->tc_config.tc_info[i].qoffset;
6204 
6205 			/* Bandwidth limit through tc interface is in bytes/s,
6206 			 * change to Mbit/s
6207 			 */
6208 			max_rate = vsi->mqprio_qopt.max_rate[i];
6209 			do_div(max_rate, I40E_BW_MBPS_DIVISOR);
6210 			ch->max_tx_rate = max_rate;
6211 
6212 			list_add_tail(&ch->list, &vsi->ch_list);
6213 
6214 			ret = i40e_create_queue_channel(vsi, ch);
6215 			if (ret) {
6216 				dev_err(&vsi->back->pdev->dev,
6217 					"Failed creating queue channel with TC%d: queues %d\n",
6218 					i, ch->num_queue_pairs);
6219 				goto err_free;
6220 			}
6221 			vsi->tc_seid_map[i] = ch->seid;
6222 		}
6223 	}
6224 	return ret;
6225 
6226 err_free:
6227 	i40e_remove_queue_channels(vsi);
6228 	return ret;
6229 }
6230 
6231 /**
6232  * i40e_veb_config_tc - Configure TCs for given VEB
6233  * @veb: given VEB
6234  * @enabled_tc: TC bitmap
6235  *
6236  * Configures given TC bitmap for VEB (switching) element
6237  **/
6238 int i40e_veb_config_tc(struct i40e_veb *veb, u8 enabled_tc)
6239 {
6240 	struct i40e_aqc_configure_switching_comp_bw_config_data bw_data = {0};
6241 	struct i40e_pf *pf = veb->pf;
6242 	int ret = 0;
6243 	int i;
6244 
6245 	/* No TCs or already enabled TCs just return */
6246 	if (!enabled_tc || veb->enabled_tc == enabled_tc)
6247 		return ret;
6248 
6249 	bw_data.tc_valid_bits = enabled_tc;
6250 	/* bw_data.absolute_credits is not set (relative) */
6251 
6252 	/* Enable ETS TCs with equal BW Share for now */
6253 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
6254 		if (enabled_tc & BIT(i))
6255 			bw_data.tc_bw_share_credits[i] = 1;
6256 	}
6257 
6258 	ret = i40e_aq_config_switch_comp_bw_config(&pf->hw, veb->seid,
6259 						   &bw_data, NULL);
6260 	if (ret) {
6261 		dev_info(&pf->pdev->dev,
6262 			 "VEB bw config failed, err %s aq_err %s\n",
6263 			 i40e_stat_str(&pf->hw, ret),
6264 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
6265 		goto out;
6266 	}
6267 
6268 	/* Update the BW information */
6269 	ret = i40e_veb_get_bw_info(veb);
6270 	if (ret) {
6271 		dev_info(&pf->pdev->dev,
6272 			 "Failed getting veb bw config, err %s aq_err %s\n",
6273 			 i40e_stat_str(&pf->hw, ret),
6274 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
6275 	}
6276 
6277 out:
6278 	return ret;
6279 }
6280 
6281 #ifdef CONFIG_I40E_DCB
6282 /**
6283  * i40e_dcb_reconfigure - Reconfigure all VEBs and VSIs
6284  * @pf: PF struct
6285  *
6286  * Reconfigure VEB/VSIs on a given PF; it is assumed that
6287  * the caller would've quiesce all the VSIs before calling
6288  * this function
6289  **/
6290 static void i40e_dcb_reconfigure(struct i40e_pf *pf)
6291 {
6292 	u8 tc_map = 0;
6293 	int ret;
6294 	u8 v;
6295 
6296 	/* Enable the TCs available on PF to all VEBs */
6297 	tc_map = i40e_pf_get_tc_map(pf);
6298 	for (v = 0; v < I40E_MAX_VEB; v++) {
6299 		if (!pf->veb[v])
6300 			continue;
6301 		ret = i40e_veb_config_tc(pf->veb[v], tc_map);
6302 		if (ret) {
6303 			dev_info(&pf->pdev->dev,
6304 				 "Failed configuring TC for VEB seid=%d\n",
6305 				 pf->veb[v]->seid);
6306 			/* Will try to configure as many components */
6307 		}
6308 	}
6309 
6310 	/* Update each VSI */
6311 	for (v = 0; v < pf->num_alloc_vsi; v++) {
6312 		if (!pf->vsi[v])
6313 			continue;
6314 
6315 		/* - Enable all TCs for the LAN VSI
6316 		 * - For all others keep them at TC0 for now
6317 		 */
6318 		if (v == pf->lan_vsi)
6319 			tc_map = i40e_pf_get_tc_map(pf);
6320 		else
6321 			tc_map = I40E_DEFAULT_TRAFFIC_CLASS;
6322 
6323 		ret = i40e_vsi_config_tc(pf->vsi[v], tc_map);
6324 		if (ret) {
6325 			dev_info(&pf->pdev->dev,
6326 				 "Failed configuring TC for VSI seid=%d\n",
6327 				 pf->vsi[v]->seid);
6328 			/* Will try to configure as many components */
6329 		} else {
6330 			/* Re-configure VSI vectors based on updated TC map */
6331 			i40e_vsi_map_rings_to_vectors(pf->vsi[v]);
6332 			if (pf->vsi[v]->netdev)
6333 				i40e_dcbnl_set_all(pf->vsi[v]);
6334 		}
6335 	}
6336 }
6337 
6338 /**
6339  * i40e_resume_port_tx - Resume port Tx
6340  * @pf: PF struct
6341  *
6342  * Resume a port's Tx and issue a PF reset in case of failure to
6343  * resume.
6344  **/
6345 static int i40e_resume_port_tx(struct i40e_pf *pf)
6346 {
6347 	struct i40e_hw *hw = &pf->hw;
6348 	int ret;
6349 
6350 	ret = i40e_aq_resume_port_tx(hw, NULL);
6351 	if (ret) {
6352 		dev_info(&pf->pdev->dev,
6353 			 "Resume Port Tx failed, err %s aq_err %s\n",
6354 			  i40e_stat_str(&pf->hw, ret),
6355 			  i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
6356 		/* Schedule PF reset to recover */
6357 		set_bit(__I40E_PF_RESET_REQUESTED, pf->state);
6358 		i40e_service_event_schedule(pf);
6359 	}
6360 
6361 	return ret;
6362 }
6363 
6364 /**
6365  * i40e_init_pf_dcb - Initialize DCB configuration
6366  * @pf: PF being configured
6367  *
6368  * Query the current DCB configuration and cache it
6369  * in the hardware structure
6370  **/
6371 static int i40e_init_pf_dcb(struct i40e_pf *pf)
6372 {
6373 	struct i40e_hw *hw = &pf->hw;
6374 	int err = 0;
6375 
6376 	/* Do not enable DCB for SW1 and SW2 images even if the FW is capable */
6377 	if (pf->hw_features & I40E_HW_NO_DCB_SUPPORT)
6378 		goto out;
6379 
6380 	/* Get the initial DCB configuration */
6381 	err = i40e_init_dcb(hw);
6382 	if (!err) {
6383 		/* Device/Function is not DCBX capable */
6384 		if ((!hw->func_caps.dcb) ||
6385 		    (hw->dcbx_status == I40E_DCBX_STATUS_DISABLED)) {
6386 			dev_info(&pf->pdev->dev,
6387 				 "DCBX offload is not supported or is disabled for this PF.\n");
6388 		} else {
6389 			/* When status is not DISABLED then DCBX in FW */
6390 			pf->dcbx_cap = DCB_CAP_DCBX_LLD_MANAGED |
6391 				       DCB_CAP_DCBX_VER_IEEE;
6392 
6393 			pf->flags |= I40E_FLAG_DCB_CAPABLE;
6394 			/* Enable DCB tagging only when more than one TC
6395 			 * or explicitly disable if only one TC
6396 			 */
6397 			if (i40e_dcb_get_num_tc(&hw->local_dcbx_config) > 1)
6398 				pf->flags |= I40E_FLAG_DCB_ENABLED;
6399 			else
6400 				pf->flags &= ~I40E_FLAG_DCB_ENABLED;
6401 			dev_dbg(&pf->pdev->dev,
6402 				"DCBX offload is supported for this PF.\n");
6403 		}
6404 	} else {
6405 		dev_info(&pf->pdev->dev,
6406 			 "Query for DCB configuration failed, err %s aq_err %s\n",
6407 			 i40e_stat_str(&pf->hw, err),
6408 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
6409 	}
6410 
6411 out:
6412 	return err;
6413 }
6414 #endif /* CONFIG_I40E_DCB */
6415 #define SPEED_SIZE 14
6416 #define FC_SIZE 8
6417 /**
6418  * i40e_print_link_message - print link up or down
6419  * @vsi: the VSI for which link needs a message
6420  */
6421 void i40e_print_link_message(struct i40e_vsi *vsi, bool isup)
6422 {
6423 	enum i40e_aq_link_speed new_speed;
6424 	struct i40e_pf *pf = vsi->back;
6425 	char *speed = "Unknown";
6426 	char *fc = "Unknown";
6427 	char *fec = "";
6428 	char *req_fec = "";
6429 	char *an = "";
6430 
6431 	new_speed = pf->hw.phy.link_info.link_speed;
6432 
6433 	if ((vsi->current_isup == isup) && (vsi->current_speed == new_speed))
6434 		return;
6435 	vsi->current_isup = isup;
6436 	vsi->current_speed = new_speed;
6437 	if (!isup) {
6438 		netdev_info(vsi->netdev, "NIC Link is Down\n");
6439 		return;
6440 	}
6441 
6442 	/* Warn user if link speed on NPAR enabled partition is not at
6443 	 * least 10GB
6444 	 */
6445 	if (pf->hw.func_caps.npar_enable &&
6446 	    (pf->hw.phy.link_info.link_speed == I40E_LINK_SPEED_1GB ||
6447 	     pf->hw.phy.link_info.link_speed == I40E_LINK_SPEED_100MB))
6448 		netdev_warn(vsi->netdev,
6449 			    "The partition detected link speed that is less than 10Gbps\n");
6450 
6451 	switch (pf->hw.phy.link_info.link_speed) {
6452 	case I40E_LINK_SPEED_40GB:
6453 		speed = "40 G";
6454 		break;
6455 	case I40E_LINK_SPEED_20GB:
6456 		speed = "20 G";
6457 		break;
6458 	case I40E_LINK_SPEED_25GB:
6459 		speed = "25 G";
6460 		break;
6461 	case I40E_LINK_SPEED_10GB:
6462 		speed = "10 G";
6463 		break;
6464 	case I40E_LINK_SPEED_1GB:
6465 		speed = "1000 M";
6466 		break;
6467 	case I40E_LINK_SPEED_100MB:
6468 		speed = "100 M";
6469 		break;
6470 	default:
6471 		break;
6472 	}
6473 
6474 	switch (pf->hw.fc.current_mode) {
6475 	case I40E_FC_FULL:
6476 		fc = "RX/TX";
6477 		break;
6478 	case I40E_FC_TX_PAUSE:
6479 		fc = "TX";
6480 		break;
6481 	case I40E_FC_RX_PAUSE:
6482 		fc = "RX";
6483 		break;
6484 	default:
6485 		fc = "None";
6486 		break;
6487 	}
6488 
6489 	if (pf->hw.phy.link_info.link_speed == I40E_LINK_SPEED_25GB) {
6490 		req_fec = ", Requested FEC: None";
6491 		fec = ", FEC: None";
6492 		an = ", Autoneg: False";
6493 
6494 		if (pf->hw.phy.link_info.an_info & I40E_AQ_AN_COMPLETED)
6495 			an = ", Autoneg: True";
6496 
6497 		if (pf->hw.phy.link_info.fec_info &
6498 		    I40E_AQ_CONFIG_FEC_KR_ENA)
6499 			fec = ", FEC: CL74 FC-FEC/BASE-R";
6500 		else if (pf->hw.phy.link_info.fec_info &
6501 			 I40E_AQ_CONFIG_FEC_RS_ENA)
6502 			fec = ", FEC: CL108 RS-FEC";
6503 
6504 		/* 'CL108 RS-FEC' should be displayed when RS is requested, or
6505 		 * both RS and FC are requested
6506 		 */
6507 		if (vsi->back->hw.phy.link_info.req_fec_info &
6508 		    (I40E_AQ_REQUEST_FEC_KR | I40E_AQ_REQUEST_FEC_RS)) {
6509 			if (vsi->back->hw.phy.link_info.req_fec_info &
6510 			    I40E_AQ_REQUEST_FEC_RS)
6511 				req_fec = ", Requested FEC: CL108 RS-FEC";
6512 			else
6513 				req_fec = ", Requested FEC: CL74 FC-FEC/BASE-R";
6514 		}
6515 	}
6516 
6517 	netdev_info(vsi->netdev, "NIC Link is Up, %sbps Full Duplex%s%s%s, Flow Control: %s\n",
6518 		    speed, req_fec, fec, an, fc);
6519 }
6520 
6521 /**
6522  * i40e_up_complete - Finish the last steps of bringing up a connection
6523  * @vsi: the VSI being configured
6524  **/
6525 static int i40e_up_complete(struct i40e_vsi *vsi)
6526 {
6527 	struct i40e_pf *pf = vsi->back;
6528 	int err;
6529 
6530 	if (pf->flags & I40E_FLAG_MSIX_ENABLED)
6531 		i40e_vsi_configure_msix(vsi);
6532 	else
6533 		i40e_configure_msi_and_legacy(vsi);
6534 
6535 	/* start rings */
6536 	err = i40e_vsi_start_rings(vsi);
6537 	if (err)
6538 		return err;
6539 
6540 	clear_bit(__I40E_VSI_DOWN, vsi->state);
6541 	i40e_napi_enable_all(vsi);
6542 	i40e_vsi_enable_irq(vsi);
6543 
6544 	if ((pf->hw.phy.link_info.link_info & I40E_AQ_LINK_UP) &&
6545 	    (vsi->netdev)) {
6546 		i40e_print_link_message(vsi, true);
6547 		netif_tx_start_all_queues(vsi->netdev);
6548 		netif_carrier_on(vsi->netdev);
6549 	}
6550 
6551 	/* replay FDIR SB filters */
6552 	if (vsi->type == I40E_VSI_FDIR) {
6553 		/* reset fd counters */
6554 		pf->fd_add_err = 0;
6555 		pf->fd_atr_cnt = 0;
6556 		i40e_fdir_filter_restore(vsi);
6557 	}
6558 
6559 	/* On the next run of the service_task, notify any clients of the new
6560 	 * opened netdev
6561 	 */
6562 	pf->flags |= I40E_FLAG_SERVICE_CLIENT_REQUESTED;
6563 	i40e_service_event_schedule(pf);
6564 
6565 	return 0;
6566 }
6567 
6568 /**
6569  * i40e_vsi_reinit_locked - Reset the VSI
6570  * @vsi: the VSI being configured
6571  *
6572  * Rebuild the ring structs after some configuration
6573  * has changed, e.g. MTU size.
6574  **/
6575 static void i40e_vsi_reinit_locked(struct i40e_vsi *vsi)
6576 {
6577 	struct i40e_pf *pf = vsi->back;
6578 
6579 	WARN_ON(in_interrupt());
6580 	while (test_and_set_bit(__I40E_CONFIG_BUSY, pf->state))
6581 		usleep_range(1000, 2000);
6582 	i40e_down(vsi);
6583 
6584 	i40e_up(vsi);
6585 	clear_bit(__I40E_CONFIG_BUSY, pf->state);
6586 }
6587 
6588 /**
6589  * i40e_up - Bring the connection back up after being down
6590  * @vsi: the VSI being configured
6591  **/
6592 int i40e_up(struct i40e_vsi *vsi)
6593 {
6594 	int err;
6595 
6596 	err = i40e_vsi_configure(vsi);
6597 	if (!err)
6598 		err = i40e_up_complete(vsi);
6599 
6600 	return err;
6601 }
6602 
6603 /**
6604  * i40e_down - Shutdown the connection processing
6605  * @vsi: the VSI being stopped
6606  **/
6607 void i40e_down(struct i40e_vsi *vsi)
6608 {
6609 	int i;
6610 
6611 	/* It is assumed that the caller of this function
6612 	 * sets the vsi->state __I40E_VSI_DOWN bit.
6613 	 */
6614 	if (vsi->netdev) {
6615 		netif_carrier_off(vsi->netdev);
6616 		netif_tx_disable(vsi->netdev);
6617 	}
6618 	i40e_vsi_disable_irq(vsi);
6619 	i40e_vsi_stop_rings(vsi);
6620 	i40e_napi_disable_all(vsi);
6621 
6622 	for (i = 0; i < vsi->num_queue_pairs; i++) {
6623 		i40e_clean_tx_ring(vsi->tx_rings[i]);
6624 		if (i40e_enabled_xdp_vsi(vsi))
6625 			i40e_clean_tx_ring(vsi->xdp_rings[i]);
6626 		i40e_clean_rx_ring(vsi->rx_rings[i]);
6627 	}
6628 
6629 }
6630 
6631 /**
6632  * i40e_validate_mqprio_qopt- validate queue mapping info
6633  * @vsi: the VSI being configured
6634  * @mqprio_qopt: queue parametrs
6635  **/
6636 static int i40e_validate_mqprio_qopt(struct i40e_vsi *vsi,
6637 				     struct tc_mqprio_qopt_offload *mqprio_qopt)
6638 {
6639 	u64 sum_max_rate = 0;
6640 	u64 max_rate = 0;
6641 	int i;
6642 
6643 	if (mqprio_qopt->qopt.offset[0] != 0 ||
6644 	    mqprio_qopt->qopt.num_tc < 1 ||
6645 	    mqprio_qopt->qopt.num_tc > I40E_MAX_TRAFFIC_CLASS)
6646 		return -EINVAL;
6647 	for (i = 0; ; i++) {
6648 		if (!mqprio_qopt->qopt.count[i])
6649 			return -EINVAL;
6650 		if (mqprio_qopt->min_rate[i]) {
6651 			dev_err(&vsi->back->pdev->dev,
6652 				"Invalid min tx rate (greater than 0) specified\n");
6653 			return -EINVAL;
6654 		}
6655 		max_rate = mqprio_qopt->max_rate[i];
6656 		do_div(max_rate, I40E_BW_MBPS_DIVISOR);
6657 		sum_max_rate += max_rate;
6658 
6659 		if (i >= mqprio_qopt->qopt.num_tc - 1)
6660 			break;
6661 		if (mqprio_qopt->qopt.offset[i + 1] !=
6662 		    (mqprio_qopt->qopt.offset[i] + mqprio_qopt->qopt.count[i]))
6663 			return -EINVAL;
6664 	}
6665 	if (vsi->num_queue_pairs <
6666 	    (mqprio_qopt->qopt.offset[i] + mqprio_qopt->qopt.count[i])) {
6667 		return -EINVAL;
6668 	}
6669 	if (sum_max_rate > i40e_get_link_speed(vsi)) {
6670 		dev_err(&vsi->back->pdev->dev,
6671 			"Invalid max tx rate specified\n");
6672 		return -EINVAL;
6673 	}
6674 	return 0;
6675 }
6676 
6677 /**
6678  * i40e_vsi_set_default_tc_config - set default values for tc configuration
6679  * @vsi: the VSI being configured
6680  **/
6681 static void i40e_vsi_set_default_tc_config(struct i40e_vsi *vsi)
6682 {
6683 	u16 qcount;
6684 	int i;
6685 
6686 	/* Only TC0 is enabled */
6687 	vsi->tc_config.numtc = 1;
6688 	vsi->tc_config.enabled_tc = 1;
6689 	qcount = min_t(int, vsi->alloc_queue_pairs,
6690 		       i40e_pf_get_max_q_per_tc(vsi->back));
6691 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
6692 		/* For the TC that is not enabled set the offset to to default
6693 		 * queue and allocate one queue for the given TC.
6694 		 */
6695 		vsi->tc_config.tc_info[i].qoffset = 0;
6696 		if (i == 0)
6697 			vsi->tc_config.tc_info[i].qcount = qcount;
6698 		else
6699 			vsi->tc_config.tc_info[i].qcount = 1;
6700 		vsi->tc_config.tc_info[i].netdev_tc = 0;
6701 	}
6702 }
6703 
6704 /**
6705  * i40e_setup_tc - configure multiple traffic classes
6706  * @netdev: net device to configure
6707  * @type_data: tc offload data
6708  **/
6709 static int i40e_setup_tc(struct net_device *netdev, void *type_data)
6710 {
6711 	struct tc_mqprio_qopt_offload *mqprio_qopt = type_data;
6712 	struct i40e_netdev_priv *np = netdev_priv(netdev);
6713 	struct i40e_vsi *vsi = np->vsi;
6714 	struct i40e_pf *pf = vsi->back;
6715 	u8 enabled_tc = 0, num_tc, hw;
6716 	bool need_reset = false;
6717 	int ret = -EINVAL;
6718 	u16 mode;
6719 	int i;
6720 
6721 	num_tc = mqprio_qopt->qopt.num_tc;
6722 	hw = mqprio_qopt->qopt.hw;
6723 	mode = mqprio_qopt->mode;
6724 	if (!hw) {
6725 		pf->flags &= ~I40E_FLAG_TC_MQPRIO;
6726 		memcpy(&vsi->mqprio_qopt, mqprio_qopt, sizeof(*mqprio_qopt));
6727 		goto config_tc;
6728 	}
6729 
6730 	/* Check if MFP enabled */
6731 	if (pf->flags & I40E_FLAG_MFP_ENABLED) {
6732 		netdev_info(netdev,
6733 			    "Configuring TC not supported in MFP mode\n");
6734 		return ret;
6735 	}
6736 	switch (mode) {
6737 	case TC_MQPRIO_MODE_DCB:
6738 		pf->flags &= ~I40E_FLAG_TC_MQPRIO;
6739 
6740 		/* Check if DCB enabled to continue */
6741 		if (!(pf->flags & I40E_FLAG_DCB_ENABLED)) {
6742 			netdev_info(netdev,
6743 				    "DCB is not enabled for adapter\n");
6744 			return ret;
6745 		}
6746 
6747 		/* Check whether tc count is within enabled limit */
6748 		if (num_tc > i40e_pf_get_num_tc(pf)) {
6749 			netdev_info(netdev,
6750 				    "TC count greater than enabled on link for adapter\n");
6751 			return ret;
6752 		}
6753 		break;
6754 	case TC_MQPRIO_MODE_CHANNEL:
6755 		if (pf->flags & I40E_FLAG_DCB_ENABLED) {
6756 			netdev_info(netdev,
6757 				    "Full offload of TC Mqprio options is not supported when DCB is enabled\n");
6758 			return ret;
6759 		}
6760 		if (!(pf->flags & I40E_FLAG_MSIX_ENABLED))
6761 			return ret;
6762 		ret = i40e_validate_mqprio_qopt(vsi, mqprio_qopt);
6763 		if (ret)
6764 			return ret;
6765 		memcpy(&vsi->mqprio_qopt, mqprio_qopt,
6766 		       sizeof(*mqprio_qopt));
6767 		pf->flags |= I40E_FLAG_TC_MQPRIO;
6768 		pf->flags &= ~I40E_FLAG_DCB_ENABLED;
6769 		break;
6770 	default:
6771 		return -EINVAL;
6772 	}
6773 
6774 config_tc:
6775 	/* Generate TC map for number of tc requested */
6776 	for (i = 0; i < num_tc; i++)
6777 		enabled_tc |= BIT(i);
6778 
6779 	/* Requesting same TC configuration as already enabled */
6780 	if (enabled_tc == vsi->tc_config.enabled_tc &&
6781 	    mode != TC_MQPRIO_MODE_CHANNEL)
6782 		return 0;
6783 
6784 	/* Quiesce VSI queues */
6785 	i40e_quiesce_vsi(vsi);
6786 
6787 	if (!hw && !(pf->flags & I40E_FLAG_TC_MQPRIO))
6788 		i40e_remove_queue_channels(vsi);
6789 
6790 	/* Configure VSI for enabled TCs */
6791 	ret = i40e_vsi_config_tc(vsi, enabled_tc);
6792 	if (ret) {
6793 		netdev_info(netdev, "Failed configuring TC for VSI seid=%d\n",
6794 			    vsi->seid);
6795 		need_reset = true;
6796 		goto exit;
6797 	}
6798 
6799 	if (pf->flags & I40E_FLAG_TC_MQPRIO) {
6800 		if (vsi->mqprio_qopt.max_rate[0]) {
6801 			u64 max_tx_rate = vsi->mqprio_qopt.max_rate[0];
6802 
6803 			do_div(max_tx_rate, I40E_BW_MBPS_DIVISOR);
6804 			ret = i40e_set_bw_limit(vsi, vsi->seid, max_tx_rate);
6805 			if (!ret) {
6806 				u64 credits = max_tx_rate;
6807 
6808 				do_div(credits, I40E_BW_CREDIT_DIVISOR);
6809 				dev_dbg(&vsi->back->pdev->dev,
6810 					"Set tx rate of %llu Mbps (count of 50Mbps %llu) for vsi->seid %u\n",
6811 					max_tx_rate,
6812 					credits,
6813 					vsi->seid);
6814 			} else {
6815 				need_reset = true;
6816 				goto exit;
6817 			}
6818 		}
6819 		ret = i40e_configure_queue_channels(vsi);
6820 		if (ret) {
6821 			netdev_info(netdev,
6822 				    "Failed configuring queue channels\n");
6823 			need_reset = true;
6824 			goto exit;
6825 		}
6826 	}
6827 
6828 exit:
6829 	/* Reset the configuration data to defaults, only TC0 is enabled */
6830 	if (need_reset) {
6831 		i40e_vsi_set_default_tc_config(vsi);
6832 		need_reset = false;
6833 	}
6834 
6835 	/* Unquiesce VSI */
6836 	i40e_unquiesce_vsi(vsi);
6837 	return ret;
6838 }
6839 
6840 /**
6841  * i40e_set_cld_element - sets cloud filter element data
6842  * @filter: cloud filter rule
6843  * @cld: ptr to cloud filter element data
6844  *
6845  * This is helper function to copy data into cloud filter element
6846  **/
6847 static inline void
6848 i40e_set_cld_element(struct i40e_cloud_filter *filter,
6849 		     struct i40e_aqc_cloud_filters_element_data *cld)
6850 {
6851 	int i, j;
6852 	u32 ipa;
6853 
6854 	memset(cld, 0, sizeof(*cld));
6855 	ether_addr_copy(cld->outer_mac, filter->dst_mac);
6856 	ether_addr_copy(cld->inner_mac, filter->src_mac);
6857 
6858 	if (filter->n_proto != ETH_P_IP && filter->n_proto != ETH_P_IPV6)
6859 		return;
6860 
6861 	if (filter->n_proto == ETH_P_IPV6) {
6862 #define IPV6_MAX_INDEX	(ARRAY_SIZE(filter->dst_ipv6) - 1)
6863 		for (i = 0, j = 0; i < ARRAY_SIZE(filter->dst_ipv6);
6864 		     i++, j += 2) {
6865 			ipa = be32_to_cpu(filter->dst_ipv6[IPV6_MAX_INDEX - i]);
6866 			ipa = cpu_to_le32(ipa);
6867 			memcpy(&cld->ipaddr.raw_v6.data[j], &ipa, sizeof(ipa));
6868 		}
6869 	} else {
6870 		ipa = be32_to_cpu(filter->dst_ipv4);
6871 		memcpy(&cld->ipaddr.v4.data, &ipa, sizeof(ipa));
6872 	}
6873 
6874 	cld->inner_vlan = cpu_to_le16(ntohs(filter->vlan_id));
6875 
6876 	/* tenant_id is not supported by FW now, once the support is enabled
6877 	 * fill the cld->tenant_id with cpu_to_le32(filter->tenant_id)
6878 	 */
6879 	if (filter->tenant_id)
6880 		return;
6881 }
6882 
6883 /**
6884  * i40e_add_del_cloud_filter - Add/del cloud filter
6885  * @vsi: pointer to VSI
6886  * @filter: cloud filter rule
6887  * @add: if true, add, if false, delete
6888  *
6889  * Add or delete a cloud filter for a specific flow spec.
6890  * Returns 0 if the filter were successfully added.
6891  **/
6892 static int i40e_add_del_cloud_filter(struct i40e_vsi *vsi,
6893 				     struct i40e_cloud_filter *filter, bool add)
6894 {
6895 	struct i40e_aqc_cloud_filters_element_data cld_filter;
6896 	struct i40e_pf *pf = vsi->back;
6897 	int ret;
6898 	static const u16 flag_table[128] = {
6899 		[I40E_CLOUD_FILTER_FLAGS_OMAC]  =
6900 			I40E_AQC_ADD_CLOUD_FILTER_OMAC,
6901 		[I40E_CLOUD_FILTER_FLAGS_IMAC]  =
6902 			I40E_AQC_ADD_CLOUD_FILTER_IMAC,
6903 		[I40E_CLOUD_FILTER_FLAGS_IMAC_IVLAN]  =
6904 			I40E_AQC_ADD_CLOUD_FILTER_IMAC_IVLAN,
6905 		[I40E_CLOUD_FILTER_FLAGS_IMAC_TEN_ID] =
6906 			I40E_AQC_ADD_CLOUD_FILTER_IMAC_TEN_ID,
6907 		[I40E_CLOUD_FILTER_FLAGS_OMAC_TEN_ID_IMAC] =
6908 			I40E_AQC_ADD_CLOUD_FILTER_OMAC_TEN_ID_IMAC,
6909 		[I40E_CLOUD_FILTER_FLAGS_IMAC_IVLAN_TEN_ID] =
6910 			I40E_AQC_ADD_CLOUD_FILTER_IMAC_IVLAN_TEN_ID,
6911 		[I40E_CLOUD_FILTER_FLAGS_IIP] =
6912 			I40E_AQC_ADD_CLOUD_FILTER_IIP,
6913 	};
6914 
6915 	if (filter->flags >= ARRAY_SIZE(flag_table))
6916 		return I40E_ERR_CONFIG;
6917 
6918 	/* copy element needed to add cloud filter from filter */
6919 	i40e_set_cld_element(filter, &cld_filter);
6920 
6921 	if (filter->tunnel_type != I40E_CLOUD_TNL_TYPE_NONE)
6922 		cld_filter.flags = cpu_to_le16(filter->tunnel_type <<
6923 					     I40E_AQC_ADD_CLOUD_TNL_TYPE_SHIFT);
6924 
6925 	if (filter->n_proto == ETH_P_IPV6)
6926 		cld_filter.flags |= cpu_to_le16(flag_table[filter->flags] |
6927 						I40E_AQC_ADD_CLOUD_FLAGS_IPV6);
6928 	else
6929 		cld_filter.flags |= cpu_to_le16(flag_table[filter->flags] |
6930 						I40E_AQC_ADD_CLOUD_FLAGS_IPV4);
6931 
6932 	if (add)
6933 		ret = i40e_aq_add_cloud_filters(&pf->hw, filter->seid,
6934 						&cld_filter, 1);
6935 	else
6936 		ret = i40e_aq_rem_cloud_filters(&pf->hw, filter->seid,
6937 						&cld_filter, 1);
6938 	if (ret)
6939 		dev_dbg(&pf->pdev->dev,
6940 			"Failed to %s cloud filter using l4 port %u, err %d aq_err %d\n",
6941 			add ? "add" : "delete", filter->dst_port, ret,
6942 			pf->hw.aq.asq_last_status);
6943 	else
6944 		dev_info(&pf->pdev->dev,
6945 			 "%s cloud filter for VSI: %d\n",
6946 			 add ? "Added" : "Deleted", filter->seid);
6947 	return ret;
6948 }
6949 
6950 /**
6951  * i40e_add_del_cloud_filter_big_buf - Add/del cloud filter using big_buf
6952  * @vsi: pointer to VSI
6953  * @filter: cloud filter rule
6954  * @add: if true, add, if false, delete
6955  *
6956  * Add or delete a cloud filter for a specific flow spec using big buffer.
6957  * Returns 0 if the filter were successfully added.
6958  **/
6959 static int i40e_add_del_cloud_filter_big_buf(struct i40e_vsi *vsi,
6960 					     struct i40e_cloud_filter *filter,
6961 					     bool add)
6962 {
6963 	struct i40e_aqc_cloud_filters_element_bb cld_filter;
6964 	struct i40e_pf *pf = vsi->back;
6965 	int ret;
6966 
6967 	/* Both (src/dst) valid mac_addr are not supported */
6968 	if ((is_valid_ether_addr(filter->dst_mac) &&
6969 	     is_valid_ether_addr(filter->src_mac)) ||
6970 	    (is_multicast_ether_addr(filter->dst_mac) &&
6971 	     is_multicast_ether_addr(filter->src_mac)))
6972 		return -EINVAL;
6973 
6974 	/* Make sure port is specified, otherwise bail out, for channel
6975 	 * specific cloud filter needs 'L4 port' to be non-zero
6976 	 */
6977 	if (!filter->dst_port)
6978 		return -EINVAL;
6979 
6980 	/* adding filter using src_port/src_ip is not supported at this stage */
6981 	if (filter->src_port || filter->src_ipv4 ||
6982 	    !ipv6_addr_any(&filter->ip.v6.src_ip6))
6983 		return -EINVAL;
6984 
6985 	/* copy element needed to add cloud filter from filter */
6986 	i40e_set_cld_element(filter, &cld_filter.element);
6987 
6988 	if (is_valid_ether_addr(filter->dst_mac) ||
6989 	    is_valid_ether_addr(filter->src_mac) ||
6990 	    is_multicast_ether_addr(filter->dst_mac) ||
6991 	    is_multicast_ether_addr(filter->src_mac)) {
6992 		/* MAC + IP : unsupported mode */
6993 		if (filter->dst_ipv4)
6994 			return -EINVAL;
6995 
6996 		/* since we validated that L4 port must be valid before
6997 		 * we get here, start with respective "flags" value
6998 		 * and update if vlan is present or not
6999 		 */
7000 		cld_filter.element.flags =
7001 			cpu_to_le16(I40E_AQC_ADD_CLOUD_FILTER_MAC_PORT);
7002 
7003 		if (filter->vlan_id) {
7004 			cld_filter.element.flags =
7005 			cpu_to_le16(I40E_AQC_ADD_CLOUD_FILTER_MAC_VLAN_PORT);
7006 		}
7007 
7008 	} else if (filter->dst_ipv4 ||
7009 		   !ipv6_addr_any(&filter->ip.v6.dst_ip6)) {
7010 		cld_filter.element.flags =
7011 				cpu_to_le16(I40E_AQC_ADD_CLOUD_FILTER_IP_PORT);
7012 		if (filter->n_proto == ETH_P_IPV6)
7013 			cld_filter.element.flags |=
7014 				cpu_to_le16(I40E_AQC_ADD_CLOUD_FLAGS_IPV6);
7015 		else
7016 			cld_filter.element.flags |=
7017 				cpu_to_le16(I40E_AQC_ADD_CLOUD_FLAGS_IPV4);
7018 	} else {
7019 		dev_err(&pf->pdev->dev,
7020 			"either mac or ip has to be valid for cloud filter\n");
7021 		return -EINVAL;
7022 	}
7023 
7024 	/* Now copy L4 port in Byte 6..7 in general fields */
7025 	cld_filter.general_fields[I40E_AQC_ADD_CLOUD_FV_FLU_0X16_WORD0] =
7026 						be16_to_cpu(filter->dst_port);
7027 
7028 	if (add) {
7029 		/* Validate current device switch mode, change if necessary */
7030 		ret = i40e_validate_and_set_switch_mode(vsi);
7031 		if (ret) {
7032 			dev_err(&pf->pdev->dev,
7033 				"failed to set switch mode, ret %d\n",
7034 				ret);
7035 			return ret;
7036 		}
7037 
7038 		ret = i40e_aq_add_cloud_filters_bb(&pf->hw, filter->seid,
7039 						   &cld_filter, 1);
7040 	} else {
7041 		ret = i40e_aq_rem_cloud_filters_bb(&pf->hw, filter->seid,
7042 						   &cld_filter, 1);
7043 	}
7044 
7045 	if (ret)
7046 		dev_dbg(&pf->pdev->dev,
7047 			"Failed to %s cloud filter(big buffer) err %d aq_err %d\n",
7048 			add ? "add" : "delete", ret, pf->hw.aq.asq_last_status);
7049 	else
7050 		dev_info(&pf->pdev->dev,
7051 			 "%s cloud filter for VSI: %d, L4 port: %d\n",
7052 			 add ? "add" : "delete", filter->seid,
7053 			 ntohs(filter->dst_port));
7054 	return ret;
7055 }
7056 
7057 /**
7058  * i40e_parse_cls_flower - Parse tc flower filters provided by kernel
7059  * @vsi: Pointer to VSI
7060  * @cls_flower: Pointer to struct tc_cls_flower_offload
7061  * @filter: Pointer to cloud filter structure
7062  *
7063  **/
7064 static int i40e_parse_cls_flower(struct i40e_vsi *vsi,
7065 				 struct tc_cls_flower_offload *f,
7066 				 struct i40e_cloud_filter *filter)
7067 {
7068 	u16 n_proto_mask = 0, n_proto_key = 0, addr_type = 0;
7069 	struct i40e_pf *pf = vsi->back;
7070 	u8 field_flags = 0;
7071 
7072 	if (f->dissector->used_keys &
7073 	    ~(BIT(FLOW_DISSECTOR_KEY_CONTROL) |
7074 	      BIT(FLOW_DISSECTOR_KEY_BASIC) |
7075 	      BIT(FLOW_DISSECTOR_KEY_ETH_ADDRS) |
7076 	      BIT(FLOW_DISSECTOR_KEY_VLAN) |
7077 	      BIT(FLOW_DISSECTOR_KEY_IPV4_ADDRS) |
7078 	      BIT(FLOW_DISSECTOR_KEY_IPV6_ADDRS) |
7079 	      BIT(FLOW_DISSECTOR_KEY_PORTS) |
7080 	      BIT(FLOW_DISSECTOR_KEY_ENC_KEYID))) {
7081 		dev_err(&pf->pdev->dev, "Unsupported key used: 0x%x\n",
7082 			f->dissector->used_keys);
7083 		return -EOPNOTSUPP;
7084 	}
7085 
7086 	if (dissector_uses_key(f->dissector, FLOW_DISSECTOR_KEY_ENC_KEYID)) {
7087 		struct flow_dissector_key_keyid *key =
7088 			skb_flow_dissector_target(f->dissector,
7089 						  FLOW_DISSECTOR_KEY_ENC_KEYID,
7090 						  f->key);
7091 
7092 		struct flow_dissector_key_keyid *mask =
7093 			skb_flow_dissector_target(f->dissector,
7094 						  FLOW_DISSECTOR_KEY_ENC_KEYID,
7095 						  f->mask);
7096 
7097 		if (mask->keyid != 0)
7098 			field_flags |= I40E_CLOUD_FIELD_TEN_ID;
7099 
7100 		filter->tenant_id = be32_to_cpu(key->keyid);
7101 	}
7102 
7103 	if (dissector_uses_key(f->dissector, FLOW_DISSECTOR_KEY_BASIC)) {
7104 		struct flow_dissector_key_basic *key =
7105 			skb_flow_dissector_target(f->dissector,
7106 						  FLOW_DISSECTOR_KEY_BASIC,
7107 						  f->key);
7108 
7109 		struct flow_dissector_key_basic *mask =
7110 			skb_flow_dissector_target(f->dissector,
7111 						  FLOW_DISSECTOR_KEY_BASIC,
7112 						  f->mask);
7113 
7114 		n_proto_key = ntohs(key->n_proto);
7115 		n_proto_mask = ntohs(mask->n_proto);
7116 
7117 		if (n_proto_key == ETH_P_ALL) {
7118 			n_proto_key = 0;
7119 			n_proto_mask = 0;
7120 		}
7121 		filter->n_proto = n_proto_key & n_proto_mask;
7122 		filter->ip_proto = key->ip_proto;
7123 	}
7124 
7125 	if (dissector_uses_key(f->dissector, FLOW_DISSECTOR_KEY_ETH_ADDRS)) {
7126 		struct flow_dissector_key_eth_addrs *key =
7127 			skb_flow_dissector_target(f->dissector,
7128 						  FLOW_DISSECTOR_KEY_ETH_ADDRS,
7129 						  f->key);
7130 
7131 		struct flow_dissector_key_eth_addrs *mask =
7132 			skb_flow_dissector_target(f->dissector,
7133 						  FLOW_DISSECTOR_KEY_ETH_ADDRS,
7134 						  f->mask);
7135 
7136 		/* use is_broadcast and is_zero to check for all 0xf or 0 */
7137 		if (!is_zero_ether_addr(mask->dst)) {
7138 			if (is_broadcast_ether_addr(mask->dst)) {
7139 				field_flags |= I40E_CLOUD_FIELD_OMAC;
7140 			} else {
7141 				dev_err(&pf->pdev->dev, "Bad ether dest mask %pM\n",
7142 					mask->dst);
7143 				return I40E_ERR_CONFIG;
7144 			}
7145 		}
7146 
7147 		if (!is_zero_ether_addr(mask->src)) {
7148 			if (is_broadcast_ether_addr(mask->src)) {
7149 				field_flags |= I40E_CLOUD_FIELD_IMAC;
7150 			} else {
7151 				dev_err(&pf->pdev->dev, "Bad ether src mask %pM\n",
7152 					mask->src);
7153 				return I40E_ERR_CONFIG;
7154 			}
7155 		}
7156 		ether_addr_copy(filter->dst_mac, key->dst);
7157 		ether_addr_copy(filter->src_mac, key->src);
7158 	}
7159 
7160 	if (dissector_uses_key(f->dissector, FLOW_DISSECTOR_KEY_VLAN)) {
7161 		struct flow_dissector_key_vlan *key =
7162 			skb_flow_dissector_target(f->dissector,
7163 						  FLOW_DISSECTOR_KEY_VLAN,
7164 						  f->key);
7165 		struct flow_dissector_key_vlan *mask =
7166 			skb_flow_dissector_target(f->dissector,
7167 						  FLOW_DISSECTOR_KEY_VLAN,
7168 						  f->mask);
7169 
7170 		if (mask->vlan_id) {
7171 			if (mask->vlan_id == VLAN_VID_MASK) {
7172 				field_flags |= I40E_CLOUD_FIELD_IVLAN;
7173 
7174 			} else {
7175 				dev_err(&pf->pdev->dev, "Bad vlan mask 0x%04x\n",
7176 					mask->vlan_id);
7177 				return I40E_ERR_CONFIG;
7178 			}
7179 		}
7180 
7181 		filter->vlan_id = cpu_to_be16(key->vlan_id);
7182 	}
7183 
7184 	if (dissector_uses_key(f->dissector, FLOW_DISSECTOR_KEY_CONTROL)) {
7185 		struct flow_dissector_key_control *key =
7186 			skb_flow_dissector_target(f->dissector,
7187 						  FLOW_DISSECTOR_KEY_CONTROL,
7188 						  f->key);
7189 
7190 		addr_type = key->addr_type;
7191 	}
7192 
7193 	if (addr_type == FLOW_DISSECTOR_KEY_IPV4_ADDRS) {
7194 		struct flow_dissector_key_ipv4_addrs *key =
7195 			skb_flow_dissector_target(f->dissector,
7196 						  FLOW_DISSECTOR_KEY_IPV4_ADDRS,
7197 						  f->key);
7198 		struct flow_dissector_key_ipv4_addrs *mask =
7199 			skb_flow_dissector_target(f->dissector,
7200 						  FLOW_DISSECTOR_KEY_IPV4_ADDRS,
7201 						  f->mask);
7202 
7203 		if (mask->dst) {
7204 			if (mask->dst == cpu_to_be32(0xffffffff)) {
7205 				field_flags |= I40E_CLOUD_FIELD_IIP;
7206 			} else {
7207 				mask->dst = be32_to_cpu(mask->dst);
7208 				dev_err(&pf->pdev->dev, "Bad ip dst mask %pI4\n",
7209 					&mask->dst);
7210 				return I40E_ERR_CONFIG;
7211 			}
7212 		}
7213 
7214 		if (mask->src) {
7215 			if (mask->src == cpu_to_be32(0xffffffff)) {
7216 				field_flags |= I40E_CLOUD_FIELD_IIP;
7217 			} else {
7218 				mask->src = be32_to_cpu(mask->src);
7219 				dev_err(&pf->pdev->dev, "Bad ip src mask %pI4\n",
7220 					&mask->src);
7221 				return I40E_ERR_CONFIG;
7222 			}
7223 		}
7224 
7225 		if (field_flags & I40E_CLOUD_FIELD_TEN_ID) {
7226 			dev_err(&pf->pdev->dev, "Tenant id not allowed for ip filter\n");
7227 			return I40E_ERR_CONFIG;
7228 		}
7229 		filter->dst_ipv4 = key->dst;
7230 		filter->src_ipv4 = key->src;
7231 	}
7232 
7233 	if (addr_type == FLOW_DISSECTOR_KEY_IPV6_ADDRS) {
7234 		struct flow_dissector_key_ipv6_addrs *key =
7235 			skb_flow_dissector_target(f->dissector,
7236 						  FLOW_DISSECTOR_KEY_IPV6_ADDRS,
7237 						  f->key);
7238 		struct flow_dissector_key_ipv6_addrs *mask =
7239 			skb_flow_dissector_target(f->dissector,
7240 						  FLOW_DISSECTOR_KEY_IPV6_ADDRS,
7241 						  f->mask);
7242 
7243 		/* src and dest IPV6 address should not be LOOPBACK
7244 		 * (0:0:0:0:0:0:0:1), which can be represented as ::1
7245 		 */
7246 		if (ipv6_addr_loopback(&key->dst) ||
7247 		    ipv6_addr_loopback(&key->src)) {
7248 			dev_err(&pf->pdev->dev,
7249 				"Bad ipv6, addr is LOOPBACK\n");
7250 			return I40E_ERR_CONFIG;
7251 		}
7252 		if (!ipv6_addr_any(&mask->dst) || !ipv6_addr_any(&mask->src))
7253 			field_flags |= I40E_CLOUD_FIELD_IIP;
7254 
7255 		memcpy(&filter->src_ipv6, &key->src.s6_addr32,
7256 		       sizeof(filter->src_ipv6));
7257 		memcpy(&filter->dst_ipv6, &key->dst.s6_addr32,
7258 		       sizeof(filter->dst_ipv6));
7259 	}
7260 
7261 	if (dissector_uses_key(f->dissector, FLOW_DISSECTOR_KEY_PORTS)) {
7262 		struct flow_dissector_key_ports *key =
7263 			skb_flow_dissector_target(f->dissector,
7264 						  FLOW_DISSECTOR_KEY_PORTS,
7265 						  f->key);
7266 		struct flow_dissector_key_ports *mask =
7267 			skb_flow_dissector_target(f->dissector,
7268 						  FLOW_DISSECTOR_KEY_PORTS,
7269 						  f->mask);
7270 
7271 		if (mask->src) {
7272 			if (mask->src == cpu_to_be16(0xffff)) {
7273 				field_flags |= I40E_CLOUD_FIELD_IIP;
7274 			} else {
7275 				dev_err(&pf->pdev->dev, "Bad src port mask 0x%04x\n",
7276 					be16_to_cpu(mask->src));
7277 				return I40E_ERR_CONFIG;
7278 			}
7279 		}
7280 
7281 		if (mask->dst) {
7282 			if (mask->dst == cpu_to_be16(0xffff)) {
7283 				field_flags |= I40E_CLOUD_FIELD_IIP;
7284 			} else {
7285 				dev_err(&pf->pdev->dev, "Bad dst port mask 0x%04x\n",
7286 					be16_to_cpu(mask->dst));
7287 				return I40E_ERR_CONFIG;
7288 			}
7289 		}
7290 
7291 		filter->dst_port = key->dst;
7292 		filter->src_port = key->src;
7293 
7294 		switch (filter->ip_proto) {
7295 		case IPPROTO_TCP:
7296 		case IPPROTO_UDP:
7297 			break;
7298 		default:
7299 			dev_err(&pf->pdev->dev,
7300 				"Only UDP and TCP transport are supported\n");
7301 			return -EINVAL;
7302 		}
7303 	}
7304 	filter->flags = field_flags;
7305 	return 0;
7306 }
7307 
7308 /**
7309  * i40e_handle_tclass: Forward to a traffic class on the device
7310  * @vsi: Pointer to VSI
7311  * @tc: traffic class index on the device
7312  * @filter: Pointer to cloud filter structure
7313  *
7314  **/
7315 static int i40e_handle_tclass(struct i40e_vsi *vsi, u32 tc,
7316 			      struct i40e_cloud_filter *filter)
7317 {
7318 	struct i40e_channel *ch, *ch_tmp;
7319 
7320 	/* direct to a traffic class on the same device */
7321 	if (tc == 0) {
7322 		filter->seid = vsi->seid;
7323 		return 0;
7324 	} else if (vsi->tc_config.enabled_tc & BIT(tc)) {
7325 		if (!filter->dst_port) {
7326 			dev_err(&vsi->back->pdev->dev,
7327 				"Specify destination port to direct to traffic class that is not default\n");
7328 			return -EINVAL;
7329 		}
7330 		if (list_empty(&vsi->ch_list))
7331 			return -EINVAL;
7332 		list_for_each_entry_safe(ch, ch_tmp, &vsi->ch_list,
7333 					 list) {
7334 			if (ch->seid == vsi->tc_seid_map[tc])
7335 				filter->seid = ch->seid;
7336 		}
7337 		return 0;
7338 	}
7339 	dev_err(&vsi->back->pdev->dev, "TC is not enabled\n");
7340 	return -EINVAL;
7341 }
7342 
7343 /**
7344  * i40e_configure_clsflower - Configure tc flower filters
7345  * @vsi: Pointer to VSI
7346  * @cls_flower: Pointer to struct tc_cls_flower_offload
7347  *
7348  **/
7349 static int i40e_configure_clsflower(struct i40e_vsi *vsi,
7350 				    struct tc_cls_flower_offload *cls_flower)
7351 {
7352 	int tc = tc_classid_to_hwtc(vsi->netdev, cls_flower->classid);
7353 	struct i40e_cloud_filter *filter = NULL;
7354 	struct i40e_pf *pf = vsi->back;
7355 	int err = 0;
7356 
7357 	if (tc < 0) {
7358 		dev_err(&vsi->back->pdev->dev, "Invalid traffic class\n");
7359 		return -EINVAL;
7360 	}
7361 
7362 	if (test_bit(__I40E_RESET_RECOVERY_PENDING, pf->state) ||
7363 	    test_bit(__I40E_RESET_INTR_RECEIVED, pf->state))
7364 		return -EBUSY;
7365 
7366 	if (pf->fdir_pf_active_filters ||
7367 	    (!hlist_empty(&pf->fdir_filter_list))) {
7368 		dev_err(&vsi->back->pdev->dev,
7369 			"Flow Director Sideband filters exists, turn ntuple off to configure cloud filters\n");
7370 		return -EINVAL;
7371 	}
7372 
7373 	if (vsi->back->flags & I40E_FLAG_FD_SB_ENABLED) {
7374 		dev_err(&vsi->back->pdev->dev,
7375 			"Disable Flow Director Sideband, configuring Cloud filters via tc-flower\n");
7376 		vsi->back->flags &= ~I40E_FLAG_FD_SB_ENABLED;
7377 		vsi->back->flags |= I40E_FLAG_FD_SB_TO_CLOUD_FILTER;
7378 	}
7379 
7380 	filter = kzalloc(sizeof(*filter), GFP_KERNEL);
7381 	if (!filter)
7382 		return -ENOMEM;
7383 
7384 	filter->cookie = cls_flower->cookie;
7385 
7386 	err = i40e_parse_cls_flower(vsi, cls_flower, filter);
7387 	if (err < 0)
7388 		goto err;
7389 
7390 	err = i40e_handle_tclass(vsi, tc, filter);
7391 	if (err < 0)
7392 		goto err;
7393 
7394 	/* Add cloud filter */
7395 	if (filter->dst_port)
7396 		err = i40e_add_del_cloud_filter_big_buf(vsi, filter, true);
7397 	else
7398 		err = i40e_add_del_cloud_filter(vsi, filter, true);
7399 
7400 	if (err) {
7401 		dev_err(&pf->pdev->dev,
7402 			"Failed to add cloud filter, err %s\n",
7403 			i40e_stat_str(&pf->hw, err));
7404 		goto err;
7405 	}
7406 
7407 	/* add filter to the ordered list */
7408 	INIT_HLIST_NODE(&filter->cloud_node);
7409 
7410 	hlist_add_head(&filter->cloud_node, &pf->cloud_filter_list);
7411 
7412 	pf->num_cloud_filters++;
7413 
7414 	return err;
7415 err:
7416 	kfree(filter);
7417 	return err;
7418 }
7419 
7420 /**
7421  * i40e_find_cloud_filter - Find the could filter in the list
7422  * @vsi: Pointer to VSI
7423  * @cookie: filter specific cookie
7424  *
7425  **/
7426 static struct i40e_cloud_filter *i40e_find_cloud_filter(struct i40e_vsi *vsi,
7427 							unsigned long *cookie)
7428 {
7429 	struct i40e_cloud_filter *filter = NULL;
7430 	struct hlist_node *node2;
7431 
7432 	hlist_for_each_entry_safe(filter, node2,
7433 				  &vsi->back->cloud_filter_list, cloud_node)
7434 		if (!memcmp(cookie, &filter->cookie, sizeof(filter->cookie)))
7435 			return filter;
7436 	return NULL;
7437 }
7438 
7439 /**
7440  * i40e_delete_clsflower - Remove tc flower filters
7441  * @vsi: Pointer to VSI
7442  * @cls_flower: Pointer to struct tc_cls_flower_offload
7443  *
7444  **/
7445 static int i40e_delete_clsflower(struct i40e_vsi *vsi,
7446 				 struct tc_cls_flower_offload *cls_flower)
7447 {
7448 	struct i40e_cloud_filter *filter = NULL;
7449 	struct i40e_pf *pf = vsi->back;
7450 	int err = 0;
7451 
7452 	filter = i40e_find_cloud_filter(vsi, &cls_flower->cookie);
7453 
7454 	if (!filter)
7455 		return -EINVAL;
7456 
7457 	hash_del(&filter->cloud_node);
7458 
7459 	if (filter->dst_port)
7460 		err = i40e_add_del_cloud_filter_big_buf(vsi, filter, false);
7461 	else
7462 		err = i40e_add_del_cloud_filter(vsi, filter, false);
7463 
7464 	kfree(filter);
7465 	if (err) {
7466 		dev_err(&pf->pdev->dev,
7467 			"Failed to delete cloud filter, err %s\n",
7468 			i40e_stat_str(&pf->hw, err));
7469 		return i40e_aq_rc_to_posix(err, pf->hw.aq.asq_last_status);
7470 	}
7471 
7472 	pf->num_cloud_filters--;
7473 	if (!pf->num_cloud_filters)
7474 		if ((pf->flags & I40E_FLAG_FD_SB_TO_CLOUD_FILTER) &&
7475 		    !(pf->flags & I40E_FLAG_FD_SB_INACTIVE)) {
7476 			pf->flags |= I40E_FLAG_FD_SB_ENABLED;
7477 			pf->flags &= ~I40E_FLAG_FD_SB_TO_CLOUD_FILTER;
7478 			pf->flags &= ~I40E_FLAG_FD_SB_INACTIVE;
7479 		}
7480 	return 0;
7481 }
7482 
7483 /**
7484  * i40e_setup_tc_cls_flower - flower classifier offloads
7485  * @netdev: net device to configure
7486  * @type_data: offload data
7487  **/
7488 static int i40e_setup_tc_cls_flower(struct i40e_netdev_priv *np,
7489 				    struct tc_cls_flower_offload *cls_flower)
7490 {
7491 	struct i40e_vsi *vsi = np->vsi;
7492 
7493 	if (cls_flower->common.chain_index)
7494 		return -EOPNOTSUPP;
7495 
7496 	switch (cls_flower->command) {
7497 	case TC_CLSFLOWER_REPLACE:
7498 		return i40e_configure_clsflower(vsi, cls_flower);
7499 	case TC_CLSFLOWER_DESTROY:
7500 		return i40e_delete_clsflower(vsi, cls_flower);
7501 	case TC_CLSFLOWER_STATS:
7502 		return -EOPNOTSUPP;
7503 	default:
7504 		return -EINVAL;
7505 	}
7506 }
7507 
7508 static int i40e_setup_tc_block_cb(enum tc_setup_type type, void *type_data,
7509 				  void *cb_priv)
7510 {
7511 	struct i40e_netdev_priv *np = cb_priv;
7512 
7513 	switch (type) {
7514 	case TC_SETUP_CLSFLOWER:
7515 		return i40e_setup_tc_cls_flower(np, type_data);
7516 
7517 	default:
7518 		return -EOPNOTSUPP;
7519 	}
7520 }
7521 
7522 static int i40e_setup_tc_block(struct net_device *dev,
7523 			       struct tc_block_offload *f)
7524 {
7525 	struct i40e_netdev_priv *np = netdev_priv(dev);
7526 
7527 	if (f->binder_type != TCF_BLOCK_BINDER_TYPE_CLSACT_INGRESS)
7528 		return -EOPNOTSUPP;
7529 
7530 	switch (f->command) {
7531 	case TC_BLOCK_BIND:
7532 		return tcf_block_cb_register(f->block, i40e_setup_tc_block_cb,
7533 					     np, np);
7534 	case TC_BLOCK_UNBIND:
7535 		tcf_block_cb_unregister(f->block, i40e_setup_tc_block_cb, np);
7536 		return 0;
7537 	default:
7538 		return -EOPNOTSUPP;
7539 	}
7540 }
7541 
7542 static int __i40e_setup_tc(struct net_device *netdev, enum tc_setup_type type,
7543 			   void *type_data)
7544 {
7545 	switch (type) {
7546 	case TC_SETUP_QDISC_MQPRIO:
7547 		return i40e_setup_tc(netdev, type_data);
7548 	case TC_SETUP_BLOCK:
7549 		return i40e_setup_tc_block(netdev, type_data);
7550 	default:
7551 		return -EOPNOTSUPP;
7552 	}
7553 }
7554 
7555 /**
7556  * i40e_open - Called when a network interface is made active
7557  * @netdev: network interface device structure
7558  *
7559  * The open entry point is called when a network interface is made
7560  * active by the system (IFF_UP).  At this point all resources needed
7561  * for transmit and receive operations are allocated, the interrupt
7562  * handler is registered with the OS, the netdev watchdog subtask is
7563  * enabled, and the stack is notified that the interface is ready.
7564  *
7565  * Returns 0 on success, negative value on failure
7566  **/
7567 int i40e_open(struct net_device *netdev)
7568 {
7569 	struct i40e_netdev_priv *np = netdev_priv(netdev);
7570 	struct i40e_vsi *vsi = np->vsi;
7571 	struct i40e_pf *pf = vsi->back;
7572 	int err;
7573 
7574 	/* disallow open during test or if eeprom is broken */
7575 	if (test_bit(__I40E_TESTING, pf->state) ||
7576 	    test_bit(__I40E_BAD_EEPROM, pf->state))
7577 		return -EBUSY;
7578 
7579 	netif_carrier_off(netdev);
7580 
7581 	err = i40e_vsi_open(vsi);
7582 	if (err)
7583 		return err;
7584 
7585 	/* configure global TSO hardware offload settings */
7586 	wr32(&pf->hw, I40E_GLLAN_TSOMSK_F, be32_to_cpu(TCP_FLAG_PSH |
7587 						       TCP_FLAG_FIN) >> 16);
7588 	wr32(&pf->hw, I40E_GLLAN_TSOMSK_M, be32_to_cpu(TCP_FLAG_PSH |
7589 						       TCP_FLAG_FIN |
7590 						       TCP_FLAG_CWR) >> 16);
7591 	wr32(&pf->hw, I40E_GLLAN_TSOMSK_L, be32_to_cpu(TCP_FLAG_CWR) >> 16);
7592 
7593 	udp_tunnel_get_rx_info(netdev);
7594 
7595 	return 0;
7596 }
7597 
7598 /**
7599  * i40e_vsi_open -
7600  * @vsi: the VSI to open
7601  *
7602  * Finish initialization of the VSI.
7603  *
7604  * Returns 0 on success, negative value on failure
7605  *
7606  * Note: expects to be called while under rtnl_lock()
7607  **/
7608 int i40e_vsi_open(struct i40e_vsi *vsi)
7609 {
7610 	struct i40e_pf *pf = vsi->back;
7611 	char int_name[I40E_INT_NAME_STR_LEN];
7612 	int err;
7613 
7614 	/* allocate descriptors */
7615 	err = i40e_vsi_setup_tx_resources(vsi);
7616 	if (err)
7617 		goto err_setup_tx;
7618 	err = i40e_vsi_setup_rx_resources(vsi);
7619 	if (err)
7620 		goto err_setup_rx;
7621 
7622 	err = i40e_vsi_configure(vsi);
7623 	if (err)
7624 		goto err_setup_rx;
7625 
7626 	if (vsi->netdev) {
7627 		snprintf(int_name, sizeof(int_name) - 1, "%s-%s",
7628 			 dev_driver_string(&pf->pdev->dev), vsi->netdev->name);
7629 		err = i40e_vsi_request_irq(vsi, int_name);
7630 		if (err)
7631 			goto err_setup_rx;
7632 
7633 		/* Notify the stack of the actual queue counts. */
7634 		err = netif_set_real_num_tx_queues(vsi->netdev,
7635 						   vsi->num_queue_pairs);
7636 		if (err)
7637 			goto err_set_queues;
7638 
7639 		err = netif_set_real_num_rx_queues(vsi->netdev,
7640 						   vsi->num_queue_pairs);
7641 		if (err)
7642 			goto err_set_queues;
7643 
7644 	} else if (vsi->type == I40E_VSI_FDIR) {
7645 		snprintf(int_name, sizeof(int_name) - 1, "%s-%s:fdir",
7646 			 dev_driver_string(&pf->pdev->dev),
7647 			 dev_name(&pf->pdev->dev));
7648 		err = i40e_vsi_request_irq(vsi, int_name);
7649 
7650 	} else {
7651 		err = -EINVAL;
7652 		goto err_setup_rx;
7653 	}
7654 
7655 	err = i40e_up_complete(vsi);
7656 	if (err)
7657 		goto err_up_complete;
7658 
7659 	return 0;
7660 
7661 err_up_complete:
7662 	i40e_down(vsi);
7663 err_set_queues:
7664 	i40e_vsi_free_irq(vsi);
7665 err_setup_rx:
7666 	i40e_vsi_free_rx_resources(vsi);
7667 err_setup_tx:
7668 	i40e_vsi_free_tx_resources(vsi);
7669 	if (vsi == pf->vsi[pf->lan_vsi])
7670 		i40e_do_reset(pf, I40E_PF_RESET_FLAG, true);
7671 
7672 	return err;
7673 }
7674 
7675 /**
7676  * i40e_fdir_filter_exit - Cleans up the Flow Director accounting
7677  * @pf: Pointer to PF
7678  *
7679  * This function destroys the hlist where all the Flow Director
7680  * filters were saved.
7681  **/
7682 static void i40e_fdir_filter_exit(struct i40e_pf *pf)
7683 {
7684 	struct i40e_fdir_filter *filter;
7685 	struct i40e_flex_pit *pit_entry, *tmp;
7686 	struct hlist_node *node2;
7687 
7688 	hlist_for_each_entry_safe(filter, node2,
7689 				  &pf->fdir_filter_list, fdir_node) {
7690 		hlist_del(&filter->fdir_node);
7691 		kfree(filter);
7692 	}
7693 
7694 	list_for_each_entry_safe(pit_entry, tmp, &pf->l3_flex_pit_list, list) {
7695 		list_del(&pit_entry->list);
7696 		kfree(pit_entry);
7697 	}
7698 	INIT_LIST_HEAD(&pf->l3_flex_pit_list);
7699 
7700 	list_for_each_entry_safe(pit_entry, tmp, &pf->l4_flex_pit_list, list) {
7701 		list_del(&pit_entry->list);
7702 		kfree(pit_entry);
7703 	}
7704 	INIT_LIST_HEAD(&pf->l4_flex_pit_list);
7705 
7706 	pf->fdir_pf_active_filters = 0;
7707 	pf->fd_tcp4_filter_cnt = 0;
7708 	pf->fd_udp4_filter_cnt = 0;
7709 	pf->fd_sctp4_filter_cnt = 0;
7710 	pf->fd_ip4_filter_cnt = 0;
7711 
7712 	/* Reprogram the default input set for TCP/IPv4 */
7713 	i40e_write_fd_input_set(pf, I40E_FILTER_PCTYPE_NONF_IPV4_TCP,
7714 				I40E_L3_SRC_MASK | I40E_L3_DST_MASK |
7715 				I40E_L4_SRC_MASK | I40E_L4_DST_MASK);
7716 
7717 	/* Reprogram the default input set for UDP/IPv4 */
7718 	i40e_write_fd_input_set(pf, I40E_FILTER_PCTYPE_NONF_IPV4_UDP,
7719 				I40E_L3_SRC_MASK | I40E_L3_DST_MASK |
7720 				I40E_L4_SRC_MASK | I40E_L4_DST_MASK);
7721 
7722 	/* Reprogram the default input set for SCTP/IPv4 */
7723 	i40e_write_fd_input_set(pf, I40E_FILTER_PCTYPE_NONF_IPV4_SCTP,
7724 				I40E_L3_SRC_MASK | I40E_L3_DST_MASK |
7725 				I40E_L4_SRC_MASK | I40E_L4_DST_MASK);
7726 
7727 	/* Reprogram the default input set for Other/IPv4 */
7728 	i40e_write_fd_input_set(pf, I40E_FILTER_PCTYPE_NONF_IPV4_OTHER,
7729 				I40E_L3_SRC_MASK | I40E_L3_DST_MASK);
7730 }
7731 
7732 /**
7733  * i40e_cloud_filter_exit - Cleans up the cloud filters
7734  * @pf: Pointer to PF
7735  *
7736  * This function destroys the hlist where all the cloud filters
7737  * were saved.
7738  **/
7739 static void i40e_cloud_filter_exit(struct i40e_pf *pf)
7740 {
7741 	struct i40e_cloud_filter *cfilter;
7742 	struct hlist_node *node;
7743 
7744 	hlist_for_each_entry_safe(cfilter, node,
7745 				  &pf->cloud_filter_list, cloud_node) {
7746 		hlist_del(&cfilter->cloud_node);
7747 		kfree(cfilter);
7748 	}
7749 	pf->num_cloud_filters = 0;
7750 
7751 	if ((pf->flags & I40E_FLAG_FD_SB_TO_CLOUD_FILTER) &&
7752 	    !(pf->flags & I40E_FLAG_FD_SB_INACTIVE)) {
7753 		pf->flags |= I40E_FLAG_FD_SB_ENABLED;
7754 		pf->flags &= ~I40E_FLAG_FD_SB_TO_CLOUD_FILTER;
7755 		pf->flags &= ~I40E_FLAG_FD_SB_INACTIVE;
7756 	}
7757 }
7758 
7759 /**
7760  * i40e_close - Disables a network interface
7761  * @netdev: network interface device structure
7762  *
7763  * The close entry point is called when an interface is de-activated
7764  * by the OS.  The hardware is still under the driver's control, but
7765  * this netdev interface is disabled.
7766  *
7767  * Returns 0, this is not allowed to fail
7768  **/
7769 int i40e_close(struct net_device *netdev)
7770 {
7771 	struct i40e_netdev_priv *np = netdev_priv(netdev);
7772 	struct i40e_vsi *vsi = np->vsi;
7773 
7774 	i40e_vsi_close(vsi);
7775 
7776 	return 0;
7777 }
7778 
7779 /**
7780  * i40e_do_reset - Start a PF or Core Reset sequence
7781  * @pf: board private structure
7782  * @reset_flags: which reset is requested
7783  * @lock_acquired: indicates whether or not the lock has been acquired
7784  * before this function was called.
7785  *
7786  * The essential difference in resets is that the PF Reset
7787  * doesn't clear the packet buffers, doesn't reset the PE
7788  * firmware, and doesn't bother the other PFs on the chip.
7789  **/
7790 void i40e_do_reset(struct i40e_pf *pf, u32 reset_flags, bool lock_acquired)
7791 {
7792 	u32 val;
7793 
7794 	WARN_ON(in_interrupt());
7795 
7796 
7797 	/* do the biggest reset indicated */
7798 	if (reset_flags & BIT_ULL(__I40E_GLOBAL_RESET_REQUESTED)) {
7799 
7800 		/* Request a Global Reset
7801 		 *
7802 		 * This will start the chip's countdown to the actual full
7803 		 * chip reset event, and a warning interrupt to be sent
7804 		 * to all PFs, including the requestor.  Our handler
7805 		 * for the warning interrupt will deal with the shutdown
7806 		 * and recovery of the switch setup.
7807 		 */
7808 		dev_dbg(&pf->pdev->dev, "GlobalR requested\n");
7809 		val = rd32(&pf->hw, I40E_GLGEN_RTRIG);
7810 		val |= I40E_GLGEN_RTRIG_GLOBR_MASK;
7811 		wr32(&pf->hw, I40E_GLGEN_RTRIG, val);
7812 
7813 	} else if (reset_flags & BIT_ULL(__I40E_CORE_RESET_REQUESTED)) {
7814 
7815 		/* Request a Core Reset
7816 		 *
7817 		 * Same as Global Reset, except does *not* include the MAC/PHY
7818 		 */
7819 		dev_dbg(&pf->pdev->dev, "CoreR requested\n");
7820 		val = rd32(&pf->hw, I40E_GLGEN_RTRIG);
7821 		val |= I40E_GLGEN_RTRIG_CORER_MASK;
7822 		wr32(&pf->hw, I40E_GLGEN_RTRIG, val);
7823 		i40e_flush(&pf->hw);
7824 
7825 	} else if (reset_flags & I40E_PF_RESET_FLAG) {
7826 
7827 		/* Request a PF Reset
7828 		 *
7829 		 * Resets only the PF-specific registers
7830 		 *
7831 		 * This goes directly to the tear-down and rebuild of
7832 		 * the switch, since we need to do all the recovery as
7833 		 * for the Core Reset.
7834 		 */
7835 		dev_dbg(&pf->pdev->dev, "PFR requested\n");
7836 		i40e_handle_reset_warning(pf, lock_acquired);
7837 
7838 	} else if (reset_flags & BIT_ULL(__I40E_REINIT_REQUESTED)) {
7839 		int v;
7840 
7841 		/* Find the VSI(s) that requested a re-init */
7842 		dev_info(&pf->pdev->dev,
7843 			 "VSI reinit requested\n");
7844 		for (v = 0; v < pf->num_alloc_vsi; v++) {
7845 			struct i40e_vsi *vsi = pf->vsi[v];
7846 
7847 			if (vsi != NULL &&
7848 			    test_and_clear_bit(__I40E_VSI_REINIT_REQUESTED,
7849 					       vsi->state))
7850 				i40e_vsi_reinit_locked(pf->vsi[v]);
7851 		}
7852 	} else if (reset_flags & BIT_ULL(__I40E_DOWN_REQUESTED)) {
7853 		int v;
7854 
7855 		/* Find the VSI(s) that needs to be brought down */
7856 		dev_info(&pf->pdev->dev, "VSI down requested\n");
7857 		for (v = 0; v < pf->num_alloc_vsi; v++) {
7858 			struct i40e_vsi *vsi = pf->vsi[v];
7859 
7860 			if (vsi != NULL &&
7861 			    test_and_clear_bit(__I40E_VSI_DOWN_REQUESTED,
7862 					       vsi->state)) {
7863 				set_bit(__I40E_VSI_DOWN, vsi->state);
7864 				i40e_down(vsi);
7865 			}
7866 		}
7867 	} else {
7868 		dev_info(&pf->pdev->dev,
7869 			 "bad reset request 0x%08x\n", reset_flags);
7870 	}
7871 }
7872 
7873 #ifdef CONFIG_I40E_DCB
7874 /**
7875  * i40e_dcb_need_reconfig - Check if DCB needs reconfig
7876  * @pf: board private structure
7877  * @old_cfg: current DCB config
7878  * @new_cfg: new DCB config
7879  **/
7880 bool i40e_dcb_need_reconfig(struct i40e_pf *pf,
7881 			    struct i40e_dcbx_config *old_cfg,
7882 			    struct i40e_dcbx_config *new_cfg)
7883 {
7884 	bool need_reconfig = false;
7885 
7886 	/* Check if ETS configuration has changed */
7887 	if (memcmp(&new_cfg->etscfg,
7888 		   &old_cfg->etscfg,
7889 		   sizeof(new_cfg->etscfg))) {
7890 		/* If Priority Table has changed reconfig is needed */
7891 		if (memcmp(&new_cfg->etscfg.prioritytable,
7892 			   &old_cfg->etscfg.prioritytable,
7893 			   sizeof(new_cfg->etscfg.prioritytable))) {
7894 			need_reconfig = true;
7895 			dev_dbg(&pf->pdev->dev, "ETS UP2TC changed.\n");
7896 		}
7897 
7898 		if (memcmp(&new_cfg->etscfg.tcbwtable,
7899 			   &old_cfg->etscfg.tcbwtable,
7900 			   sizeof(new_cfg->etscfg.tcbwtable)))
7901 			dev_dbg(&pf->pdev->dev, "ETS TC BW Table changed.\n");
7902 
7903 		if (memcmp(&new_cfg->etscfg.tsatable,
7904 			   &old_cfg->etscfg.tsatable,
7905 			   sizeof(new_cfg->etscfg.tsatable)))
7906 			dev_dbg(&pf->pdev->dev, "ETS TSA Table changed.\n");
7907 	}
7908 
7909 	/* Check if PFC configuration has changed */
7910 	if (memcmp(&new_cfg->pfc,
7911 		   &old_cfg->pfc,
7912 		   sizeof(new_cfg->pfc))) {
7913 		need_reconfig = true;
7914 		dev_dbg(&pf->pdev->dev, "PFC config change detected.\n");
7915 	}
7916 
7917 	/* Check if APP Table has changed */
7918 	if (memcmp(&new_cfg->app,
7919 		   &old_cfg->app,
7920 		   sizeof(new_cfg->app))) {
7921 		need_reconfig = true;
7922 		dev_dbg(&pf->pdev->dev, "APP Table change detected.\n");
7923 	}
7924 
7925 	dev_dbg(&pf->pdev->dev, "dcb need_reconfig=%d\n", need_reconfig);
7926 	return need_reconfig;
7927 }
7928 
7929 /**
7930  * i40e_handle_lldp_event - Handle LLDP Change MIB event
7931  * @pf: board private structure
7932  * @e: event info posted on ARQ
7933  **/
7934 static int i40e_handle_lldp_event(struct i40e_pf *pf,
7935 				  struct i40e_arq_event_info *e)
7936 {
7937 	struct i40e_aqc_lldp_get_mib *mib =
7938 		(struct i40e_aqc_lldp_get_mib *)&e->desc.params.raw;
7939 	struct i40e_hw *hw = &pf->hw;
7940 	struct i40e_dcbx_config tmp_dcbx_cfg;
7941 	bool need_reconfig = false;
7942 	int ret = 0;
7943 	u8 type;
7944 
7945 	/* Not DCB capable or capability disabled */
7946 	if (!(pf->flags & I40E_FLAG_DCB_CAPABLE))
7947 		return ret;
7948 
7949 	/* Ignore if event is not for Nearest Bridge */
7950 	type = ((mib->type >> I40E_AQ_LLDP_BRIDGE_TYPE_SHIFT)
7951 		& I40E_AQ_LLDP_BRIDGE_TYPE_MASK);
7952 	dev_dbg(&pf->pdev->dev, "LLDP event mib bridge type 0x%x\n", type);
7953 	if (type != I40E_AQ_LLDP_BRIDGE_TYPE_NEAREST_BRIDGE)
7954 		return ret;
7955 
7956 	/* Check MIB Type and return if event for Remote MIB update */
7957 	type = mib->type & I40E_AQ_LLDP_MIB_TYPE_MASK;
7958 	dev_dbg(&pf->pdev->dev,
7959 		"LLDP event mib type %s\n", type ? "remote" : "local");
7960 	if (type == I40E_AQ_LLDP_MIB_REMOTE) {
7961 		/* Update the remote cached instance and return */
7962 		ret = i40e_aq_get_dcb_config(hw, I40E_AQ_LLDP_MIB_REMOTE,
7963 				I40E_AQ_LLDP_BRIDGE_TYPE_NEAREST_BRIDGE,
7964 				&hw->remote_dcbx_config);
7965 		goto exit;
7966 	}
7967 
7968 	/* Store the old configuration */
7969 	tmp_dcbx_cfg = hw->local_dcbx_config;
7970 
7971 	/* Reset the old DCBx configuration data */
7972 	memset(&hw->local_dcbx_config, 0, sizeof(hw->local_dcbx_config));
7973 	/* Get updated DCBX data from firmware */
7974 	ret = i40e_get_dcb_config(&pf->hw);
7975 	if (ret) {
7976 		dev_info(&pf->pdev->dev,
7977 			 "Failed querying DCB configuration data from firmware, err %s aq_err %s\n",
7978 			 i40e_stat_str(&pf->hw, ret),
7979 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
7980 		goto exit;
7981 	}
7982 
7983 	/* No change detected in DCBX configs */
7984 	if (!memcmp(&tmp_dcbx_cfg, &hw->local_dcbx_config,
7985 		    sizeof(tmp_dcbx_cfg))) {
7986 		dev_dbg(&pf->pdev->dev, "No change detected in DCBX configuration.\n");
7987 		goto exit;
7988 	}
7989 
7990 	need_reconfig = i40e_dcb_need_reconfig(pf, &tmp_dcbx_cfg,
7991 					       &hw->local_dcbx_config);
7992 
7993 	i40e_dcbnl_flush_apps(pf, &tmp_dcbx_cfg, &hw->local_dcbx_config);
7994 
7995 	if (!need_reconfig)
7996 		goto exit;
7997 
7998 	/* Enable DCB tagging only when more than one TC */
7999 	if (i40e_dcb_get_num_tc(&hw->local_dcbx_config) > 1)
8000 		pf->flags |= I40E_FLAG_DCB_ENABLED;
8001 	else
8002 		pf->flags &= ~I40E_FLAG_DCB_ENABLED;
8003 
8004 	set_bit(__I40E_PORT_SUSPENDED, pf->state);
8005 	/* Reconfiguration needed quiesce all VSIs */
8006 	i40e_pf_quiesce_all_vsi(pf);
8007 
8008 	/* Changes in configuration update VEB/VSI */
8009 	i40e_dcb_reconfigure(pf);
8010 
8011 	ret = i40e_resume_port_tx(pf);
8012 
8013 	clear_bit(__I40E_PORT_SUSPENDED, pf->state);
8014 	/* In case of error no point in resuming VSIs */
8015 	if (ret)
8016 		goto exit;
8017 
8018 	/* Wait for the PF's queues to be disabled */
8019 	ret = i40e_pf_wait_queues_disabled(pf);
8020 	if (ret) {
8021 		/* Schedule PF reset to recover */
8022 		set_bit(__I40E_PF_RESET_REQUESTED, pf->state);
8023 		i40e_service_event_schedule(pf);
8024 	} else {
8025 		i40e_pf_unquiesce_all_vsi(pf);
8026 	pf->flags |= (I40E_FLAG_SERVICE_CLIENT_REQUESTED |
8027 		      I40E_FLAG_CLIENT_L2_CHANGE);
8028 	}
8029 
8030 exit:
8031 	return ret;
8032 }
8033 #endif /* CONFIG_I40E_DCB */
8034 
8035 /**
8036  * i40e_do_reset_safe - Protected reset path for userland calls.
8037  * @pf: board private structure
8038  * @reset_flags: which reset is requested
8039  *
8040  **/
8041 void i40e_do_reset_safe(struct i40e_pf *pf, u32 reset_flags)
8042 {
8043 	rtnl_lock();
8044 	i40e_do_reset(pf, reset_flags, true);
8045 	rtnl_unlock();
8046 }
8047 
8048 /**
8049  * i40e_handle_lan_overflow_event - Handler for LAN queue overflow event
8050  * @pf: board private structure
8051  * @e: event info posted on ARQ
8052  *
8053  * Handler for LAN Queue Overflow Event generated by the firmware for PF
8054  * and VF queues
8055  **/
8056 static void i40e_handle_lan_overflow_event(struct i40e_pf *pf,
8057 					   struct i40e_arq_event_info *e)
8058 {
8059 	struct i40e_aqc_lan_overflow *data =
8060 		(struct i40e_aqc_lan_overflow *)&e->desc.params.raw;
8061 	u32 queue = le32_to_cpu(data->prtdcb_rupto);
8062 	u32 qtx_ctl = le32_to_cpu(data->otx_ctl);
8063 	struct i40e_hw *hw = &pf->hw;
8064 	struct i40e_vf *vf;
8065 	u16 vf_id;
8066 
8067 	dev_dbg(&pf->pdev->dev, "overflow Rx Queue Number = %d QTX_CTL=0x%08x\n",
8068 		queue, qtx_ctl);
8069 
8070 	/* Queue belongs to VF, find the VF and issue VF reset */
8071 	if (((qtx_ctl & I40E_QTX_CTL_PFVF_Q_MASK)
8072 	    >> I40E_QTX_CTL_PFVF_Q_SHIFT) == I40E_QTX_CTL_VF_QUEUE) {
8073 		vf_id = (u16)((qtx_ctl & I40E_QTX_CTL_VFVM_INDX_MASK)
8074 			 >> I40E_QTX_CTL_VFVM_INDX_SHIFT);
8075 		vf_id -= hw->func_caps.vf_base_id;
8076 		vf = &pf->vf[vf_id];
8077 		i40e_vc_notify_vf_reset(vf);
8078 		/* Allow VF to process pending reset notification */
8079 		msleep(20);
8080 		i40e_reset_vf(vf, false);
8081 	}
8082 }
8083 
8084 /**
8085  * i40e_get_cur_guaranteed_fd_count - Get the consumed guaranteed FD filters
8086  * @pf: board private structure
8087  **/
8088 u32 i40e_get_cur_guaranteed_fd_count(struct i40e_pf *pf)
8089 {
8090 	u32 val, fcnt_prog;
8091 
8092 	val = rd32(&pf->hw, I40E_PFQF_FDSTAT);
8093 	fcnt_prog = (val & I40E_PFQF_FDSTAT_GUARANT_CNT_MASK);
8094 	return fcnt_prog;
8095 }
8096 
8097 /**
8098  * i40e_get_current_fd_count - Get total FD filters programmed for this PF
8099  * @pf: board private structure
8100  **/
8101 u32 i40e_get_current_fd_count(struct i40e_pf *pf)
8102 {
8103 	u32 val, fcnt_prog;
8104 
8105 	val = rd32(&pf->hw, I40E_PFQF_FDSTAT);
8106 	fcnt_prog = (val & I40E_PFQF_FDSTAT_GUARANT_CNT_MASK) +
8107 		    ((val & I40E_PFQF_FDSTAT_BEST_CNT_MASK) >>
8108 		      I40E_PFQF_FDSTAT_BEST_CNT_SHIFT);
8109 	return fcnt_prog;
8110 }
8111 
8112 /**
8113  * i40e_get_global_fd_count - Get total FD filters programmed on device
8114  * @pf: board private structure
8115  **/
8116 u32 i40e_get_global_fd_count(struct i40e_pf *pf)
8117 {
8118 	u32 val, fcnt_prog;
8119 
8120 	val = rd32(&pf->hw, I40E_GLQF_FDCNT_0);
8121 	fcnt_prog = (val & I40E_GLQF_FDCNT_0_GUARANT_CNT_MASK) +
8122 		    ((val & I40E_GLQF_FDCNT_0_BESTCNT_MASK) >>
8123 		     I40E_GLQF_FDCNT_0_BESTCNT_SHIFT);
8124 	return fcnt_prog;
8125 }
8126 
8127 /**
8128  * i40e_fdir_check_and_reenable - Function to reenabe FD ATR or SB if disabled
8129  * @pf: board private structure
8130  **/
8131 void i40e_fdir_check_and_reenable(struct i40e_pf *pf)
8132 {
8133 	struct i40e_fdir_filter *filter;
8134 	u32 fcnt_prog, fcnt_avail;
8135 	struct hlist_node *node;
8136 
8137 	if (test_bit(__I40E_FD_FLUSH_REQUESTED, pf->state))
8138 		return;
8139 
8140 	/* Check if we have enough room to re-enable FDir SB capability. */
8141 	fcnt_prog = i40e_get_global_fd_count(pf);
8142 	fcnt_avail = pf->fdir_pf_filter_count;
8143 	if ((fcnt_prog < (fcnt_avail - I40E_FDIR_BUFFER_HEAD_ROOM)) ||
8144 	    (pf->fd_add_err == 0) ||
8145 	    (i40e_get_current_atr_cnt(pf) < pf->fd_atr_cnt)) {
8146 		if (pf->flags & I40E_FLAG_FD_SB_AUTO_DISABLED) {
8147 			pf->flags &= ~I40E_FLAG_FD_SB_AUTO_DISABLED;
8148 			if ((pf->flags & I40E_FLAG_FD_SB_ENABLED) &&
8149 			    (I40E_DEBUG_FD & pf->hw.debug_mask))
8150 				dev_info(&pf->pdev->dev, "FD Sideband/ntuple is being enabled since we have space in the table now\n");
8151 		}
8152 	}
8153 
8154 	/* We should wait for even more space before re-enabling ATR.
8155 	 * Additionally, we cannot enable ATR as long as we still have TCP SB
8156 	 * rules active.
8157 	 */
8158 	if ((fcnt_prog < (fcnt_avail - I40E_FDIR_BUFFER_HEAD_ROOM_FOR_ATR)) &&
8159 	    (pf->fd_tcp4_filter_cnt == 0)) {
8160 		if (pf->flags & I40E_FLAG_FD_ATR_AUTO_DISABLED) {
8161 			pf->flags &= ~I40E_FLAG_FD_ATR_AUTO_DISABLED;
8162 			if ((pf->flags & I40E_FLAG_FD_ATR_ENABLED) &&
8163 			    (I40E_DEBUG_FD & pf->hw.debug_mask))
8164 				dev_info(&pf->pdev->dev, "ATR is being enabled since we have space in the table and there are no conflicting ntuple rules\n");
8165 		}
8166 	}
8167 
8168 	/* if hw had a problem adding a filter, delete it */
8169 	if (pf->fd_inv > 0) {
8170 		hlist_for_each_entry_safe(filter, node,
8171 					  &pf->fdir_filter_list, fdir_node) {
8172 			if (filter->fd_id == pf->fd_inv) {
8173 				hlist_del(&filter->fdir_node);
8174 				kfree(filter);
8175 				pf->fdir_pf_active_filters--;
8176 				pf->fd_inv = 0;
8177 			}
8178 		}
8179 	}
8180 }
8181 
8182 #define I40E_MIN_FD_FLUSH_INTERVAL 10
8183 #define I40E_MIN_FD_FLUSH_SB_ATR_UNSTABLE 30
8184 /**
8185  * i40e_fdir_flush_and_replay - Function to flush all FD filters and replay SB
8186  * @pf: board private structure
8187  **/
8188 static void i40e_fdir_flush_and_replay(struct i40e_pf *pf)
8189 {
8190 	unsigned long min_flush_time;
8191 	int flush_wait_retry = 50;
8192 	bool disable_atr = false;
8193 	int fd_room;
8194 	int reg;
8195 
8196 	if (!time_after(jiffies, pf->fd_flush_timestamp +
8197 				 (I40E_MIN_FD_FLUSH_INTERVAL * HZ)))
8198 		return;
8199 
8200 	/* If the flush is happening too quick and we have mostly SB rules we
8201 	 * should not re-enable ATR for some time.
8202 	 */
8203 	min_flush_time = pf->fd_flush_timestamp +
8204 			 (I40E_MIN_FD_FLUSH_SB_ATR_UNSTABLE * HZ);
8205 	fd_room = pf->fdir_pf_filter_count - pf->fdir_pf_active_filters;
8206 
8207 	if (!(time_after(jiffies, min_flush_time)) &&
8208 	    (fd_room < I40E_FDIR_BUFFER_HEAD_ROOM_FOR_ATR)) {
8209 		if (I40E_DEBUG_FD & pf->hw.debug_mask)
8210 			dev_info(&pf->pdev->dev, "ATR disabled, not enough FD filter space.\n");
8211 		disable_atr = true;
8212 	}
8213 
8214 	pf->fd_flush_timestamp = jiffies;
8215 	pf->flags |= I40E_FLAG_FD_ATR_AUTO_DISABLED;
8216 	/* flush all filters */
8217 	wr32(&pf->hw, I40E_PFQF_CTL_1,
8218 	     I40E_PFQF_CTL_1_CLEARFDTABLE_MASK);
8219 	i40e_flush(&pf->hw);
8220 	pf->fd_flush_cnt++;
8221 	pf->fd_add_err = 0;
8222 	do {
8223 		/* Check FD flush status every 5-6msec */
8224 		usleep_range(5000, 6000);
8225 		reg = rd32(&pf->hw, I40E_PFQF_CTL_1);
8226 		if (!(reg & I40E_PFQF_CTL_1_CLEARFDTABLE_MASK))
8227 			break;
8228 	} while (flush_wait_retry--);
8229 	if (reg & I40E_PFQF_CTL_1_CLEARFDTABLE_MASK) {
8230 		dev_warn(&pf->pdev->dev, "FD table did not flush, needs more time\n");
8231 	} else {
8232 		/* replay sideband filters */
8233 		i40e_fdir_filter_restore(pf->vsi[pf->lan_vsi]);
8234 		if (!disable_atr && !pf->fd_tcp4_filter_cnt)
8235 			pf->flags &= ~I40E_FLAG_FD_ATR_AUTO_DISABLED;
8236 		clear_bit(__I40E_FD_FLUSH_REQUESTED, pf->state);
8237 		if (I40E_DEBUG_FD & pf->hw.debug_mask)
8238 			dev_info(&pf->pdev->dev, "FD Filter table flushed and FD-SB replayed.\n");
8239 	}
8240 }
8241 
8242 /**
8243  * i40e_get_current_atr_count - Get the count of total FD ATR filters programmed
8244  * @pf: board private structure
8245  **/
8246 u32 i40e_get_current_atr_cnt(struct i40e_pf *pf)
8247 {
8248 	return i40e_get_current_fd_count(pf) - pf->fdir_pf_active_filters;
8249 }
8250 
8251 /* We can see up to 256 filter programming desc in transit if the filters are
8252  * being applied really fast; before we see the first
8253  * filter miss error on Rx queue 0. Accumulating enough error messages before
8254  * reacting will make sure we don't cause flush too often.
8255  */
8256 #define I40E_MAX_FD_PROGRAM_ERROR 256
8257 
8258 /**
8259  * i40e_fdir_reinit_subtask - Worker thread to reinit FDIR filter table
8260  * @pf: board private structure
8261  **/
8262 static void i40e_fdir_reinit_subtask(struct i40e_pf *pf)
8263 {
8264 
8265 	/* if interface is down do nothing */
8266 	if (test_bit(__I40E_DOWN, pf->state))
8267 		return;
8268 
8269 	if (test_bit(__I40E_FD_FLUSH_REQUESTED, pf->state))
8270 		i40e_fdir_flush_and_replay(pf);
8271 
8272 	i40e_fdir_check_and_reenable(pf);
8273 
8274 }
8275 
8276 /**
8277  * i40e_vsi_link_event - notify VSI of a link event
8278  * @vsi: vsi to be notified
8279  * @link_up: link up or down
8280  **/
8281 static void i40e_vsi_link_event(struct i40e_vsi *vsi, bool link_up)
8282 {
8283 	if (!vsi || test_bit(__I40E_VSI_DOWN, vsi->state))
8284 		return;
8285 
8286 	switch (vsi->type) {
8287 	case I40E_VSI_MAIN:
8288 		if (!vsi->netdev || !vsi->netdev_registered)
8289 			break;
8290 
8291 		if (link_up) {
8292 			netif_carrier_on(vsi->netdev);
8293 			netif_tx_wake_all_queues(vsi->netdev);
8294 		} else {
8295 			netif_carrier_off(vsi->netdev);
8296 			netif_tx_stop_all_queues(vsi->netdev);
8297 		}
8298 		break;
8299 
8300 	case I40E_VSI_SRIOV:
8301 	case I40E_VSI_VMDQ2:
8302 	case I40E_VSI_CTRL:
8303 	case I40E_VSI_IWARP:
8304 	case I40E_VSI_MIRROR:
8305 	default:
8306 		/* there is no notification for other VSIs */
8307 		break;
8308 	}
8309 }
8310 
8311 /**
8312  * i40e_veb_link_event - notify elements on the veb of a link event
8313  * @veb: veb to be notified
8314  * @link_up: link up or down
8315  **/
8316 static void i40e_veb_link_event(struct i40e_veb *veb, bool link_up)
8317 {
8318 	struct i40e_pf *pf;
8319 	int i;
8320 
8321 	if (!veb || !veb->pf)
8322 		return;
8323 	pf = veb->pf;
8324 
8325 	/* depth first... */
8326 	for (i = 0; i < I40E_MAX_VEB; i++)
8327 		if (pf->veb[i] && (pf->veb[i]->uplink_seid == veb->seid))
8328 			i40e_veb_link_event(pf->veb[i], link_up);
8329 
8330 	/* ... now the local VSIs */
8331 	for (i = 0; i < pf->num_alloc_vsi; i++)
8332 		if (pf->vsi[i] && (pf->vsi[i]->uplink_seid == veb->seid))
8333 			i40e_vsi_link_event(pf->vsi[i], link_up);
8334 }
8335 
8336 /**
8337  * i40e_link_event - Update netif_carrier status
8338  * @pf: board private structure
8339  **/
8340 static void i40e_link_event(struct i40e_pf *pf)
8341 {
8342 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
8343 	u8 new_link_speed, old_link_speed;
8344 	i40e_status status;
8345 	bool new_link, old_link;
8346 
8347 	/* save off old link status information */
8348 	pf->hw.phy.link_info_old = pf->hw.phy.link_info;
8349 
8350 	/* set this to force the get_link_status call to refresh state */
8351 	pf->hw.phy.get_link_info = true;
8352 
8353 	old_link = (pf->hw.phy.link_info_old.link_info & I40E_AQ_LINK_UP);
8354 
8355 	status = i40e_get_link_status(&pf->hw, &new_link);
8356 
8357 	/* On success, disable temp link polling */
8358 	if (status == I40E_SUCCESS) {
8359 		if (pf->flags & I40E_FLAG_TEMP_LINK_POLLING)
8360 			pf->flags &= ~I40E_FLAG_TEMP_LINK_POLLING;
8361 	} else {
8362 		/* Enable link polling temporarily until i40e_get_link_status
8363 		 * returns I40E_SUCCESS
8364 		 */
8365 		pf->flags |= I40E_FLAG_TEMP_LINK_POLLING;
8366 		dev_dbg(&pf->pdev->dev, "couldn't get link state, status: %d\n",
8367 			status);
8368 		return;
8369 	}
8370 
8371 	old_link_speed = pf->hw.phy.link_info_old.link_speed;
8372 	new_link_speed = pf->hw.phy.link_info.link_speed;
8373 
8374 	if (new_link == old_link &&
8375 	    new_link_speed == old_link_speed &&
8376 	    (test_bit(__I40E_VSI_DOWN, vsi->state) ||
8377 	     new_link == netif_carrier_ok(vsi->netdev)))
8378 		return;
8379 
8380 	i40e_print_link_message(vsi, new_link);
8381 
8382 	/* Notify the base of the switch tree connected to
8383 	 * the link.  Floating VEBs are not notified.
8384 	 */
8385 	if (pf->lan_veb != I40E_NO_VEB && pf->veb[pf->lan_veb])
8386 		i40e_veb_link_event(pf->veb[pf->lan_veb], new_link);
8387 	else
8388 		i40e_vsi_link_event(vsi, new_link);
8389 
8390 	if (pf->vf)
8391 		i40e_vc_notify_link_state(pf);
8392 
8393 	if (pf->flags & I40E_FLAG_PTP)
8394 		i40e_ptp_set_increment(pf);
8395 }
8396 
8397 /**
8398  * i40e_watchdog_subtask - periodic checks not using event driven response
8399  * @pf: board private structure
8400  **/
8401 static void i40e_watchdog_subtask(struct i40e_pf *pf)
8402 {
8403 	int i;
8404 
8405 	/* if interface is down do nothing */
8406 	if (test_bit(__I40E_DOWN, pf->state) ||
8407 	    test_bit(__I40E_CONFIG_BUSY, pf->state))
8408 		return;
8409 
8410 	/* make sure we don't do these things too often */
8411 	if (time_before(jiffies, (pf->service_timer_previous +
8412 				  pf->service_timer_period)))
8413 		return;
8414 	pf->service_timer_previous = jiffies;
8415 
8416 	if ((pf->flags & I40E_FLAG_LINK_POLLING_ENABLED) ||
8417 	    (pf->flags & I40E_FLAG_TEMP_LINK_POLLING))
8418 		i40e_link_event(pf);
8419 
8420 	/* Update the stats for active netdevs so the network stack
8421 	 * can look at updated numbers whenever it cares to
8422 	 */
8423 	for (i = 0; i < pf->num_alloc_vsi; i++)
8424 		if (pf->vsi[i] && pf->vsi[i]->netdev)
8425 			i40e_update_stats(pf->vsi[i]);
8426 
8427 	if (pf->flags & I40E_FLAG_VEB_STATS_ENABLED) {
8428 		/* Update the stats for the active switching components */
8429 		for (i = 0; i < I40E_MAX_VEB; i++)
8430 			if (pf->veb[i])
8431 				i40e_update_veb_stats(pf->veb[i]);
8432 	}
8433 
8434 	i40e_ptp_rx_hang(pf);
8435 	i40e_ptp_tx_hang(pf);
8436 }
8437 
8438 /**
8439  * i40e_reset_subtask - Set up for resetting the device and driver
8440  * @pf: board private structure
8441  **/
8442 static void i40e_reset_subtask(struct i40e_pf *pf)
8443 {
8444 	u32 reset_flags = 0;
8445 
8446 	if (test_bit(__I40E_REINIT_REQUESTED, pf->state)) {
8447 		reset_flags |= BIT(__I40E_REINIT_REQUESTED);
8448 		clear_bit(__I40E_REINIT_REQUESTED, pf->state);
8449 	}
8450 	if (test_bit(__I40E_PF_RESET_REQUESTED, pf->state)) {
8451 		reset_flags |= BIT(__I40E_PF_RESET_REQUESTED);
8452 		clear_bit(__I40E_PF_RESET_REQUESTED, pf->state);
8453 	}
8454 	if (test_bit(__I40E_CORE_RESET_REQUESTED, pf->state)) {
8455 		reset_flags |= BIT(__I40E_CORE_RESET_REQUESTED);
8456 		clear_bit(__I40E_CORE_RESET_REQUESTED, pf->state);
8457 	}
8458 	if (test_bit(__I40E_GLOBAL_RESET_REQUESTED, pf->state)) {
8459 		reset_flags |= BIT(__I40E_GLOBAL_RESET_REQUESTED);
8460 		clear_bit(__I40E_GLOBAL_RESET_REQUESTED, pf->state);
8461 	}
8462 	if (test_bit(__I40E_DOWN_REQUESTED, pf->state)) {
8463 		reset_flags |= BIT(__I40E_DOWN_REQUESTED);
8464 		clear_bit(__I40E_DOWN_REQUESTED, pf->state);
8465 	}
8466 
8467 	/* If there's a recovery already waiting, it takes
8468 	 * precedence before starting a new reset sequence.
8469 	 */
8470 	if (test_bit(__I40E_RESET_INTR_RECEIVED, pf->state)) {
8471 		i40e_prep_for_reset(pf, false);
8472 		i40e_reset(pf);
8473 		i40e_rebuild(pf, false, false);
8474 	}
8475 
8476 	/* If we're already down or resetting, just bail */
8477 	if (reset_flags &&
8478 	    !test_bit(__I40E_DOWN, pf->state) &&
8479 	    !test_bit(__I40E_CONFIG_BUSY, pf->state)) {
8480 		i40e_do_reset(pf, reset_flags, false);
8481 	}
8482 }
8483 
8484 /**
8485  * i40e_handle_link_event - Handle link event
8486  * @pf: board private structure
8487  * @e: event info posted on ARQ
8488  **/
8489 static void i40e_handle_link_event(struct i40e_pf *pf,
8490 				   struct i40e_arq_event_info *e)
8491 {
8492 	struct i40e_aqc_get_link_status *status =
8493 		(struct i40e_aqc_get_link_status *)&e->desc.params.raw;
8494 
8495 	/* Do a new status request to re-enable LSE reporting
8496 	 * and load new status information into the hw struct
8497 	 * This completely ignores any state information
8498 	 * in the ARQ event info, instead choosing to always
8499 	 * issue the AQ update link status command.
8500 	 */
8501 	i40e_link_event(pf);
8502 
8503 	/* Check if module meets thermal requirements */
8504 	if (status->phy_type == I40E_PHY_TYPE_NOT_SUPPORTED_HIGH_TEMP) {
8505 		dev_err(&pf->pdev->dev,
8506 			"Rx/Tx is disabled on this device because the module does not meet thermal requirements.\n");
8507 		dev_err(&pf->pdev->dev,
8508 			"Refer to the Intel(R) Ethernet Adapters and Devices User Guide for a list of supported modules.\n");
8509 	} else {
8510 		/* check for unqualified module, if link is down, suppress
8511 		 * the message if link was forced to be down.
8512 		 */
8513 		if ((status->link_info & I40E_AQ_MEDIA_AVAILABLE) &&
8514 		    (!(status->an_info & I40E_AQ_QUALIFIED_MODULE)) &&
8515 		    (!(status->link_info & I40E_AQ_LINK_UP)) &&
8516 		    (!(pf->flags & I40E_FLAG_LINK_DOWN_ON_CLOSE_ENABLED))) {
8517 			dev_err(&pf->pdev->dev,
8518 				"Rx/Tx is disabled on this device because an unsupported SFP module type was detected.\n");
8519 			dev_err(&pf->pdev->dev,
8520 				"Refer to the Intel(R) Ethernet Adapters and Devices User Guide for a list of supported modules.\n");
8521 		}
8522 	}
8523 }
8524 
8525 /**
8526  * i40e_clean_adminq_subtask - Clean the AdminQ rings
8527  * @pf: board private structure
8528  **/
8529 static void i40e_clean_adminq_subtask(struct i40e_pf *pf)
8530 {
8531 	struct i40e_arq_event_info event;
8532 	struct i40e_hw *hw = &pf->hw;
8533 	u16 pending, i = 0;
8534 	i40e_status ret;
8535 	u16 opcode;
8536 	u32 oldval;
8537 	u32 val;
8538 
8539 	/* Do not run clean AQ when PF reset fails */
8540 	if (test_bit(__I40E_RESET_FAILED, pf->state))
8541 		return;
8542 
8543 	/* check for error indications */
8544 	val = rd32(&pf->hw, pf->hw.aq.arq.len);
8545 	oldval = val;
8546 	if (val & I40E_PF_ARQLEN_ARQVFE_MASK) {
8547 		if (hw->debug_mask & I40E_DEBUG_AQ)
8548 			dev_info(&pf->pdev->dev, "ARQ VF Error detected\n");
8549 		val &= ~I40E_PF_ARQLEN_ARQVFE_MASK;
8550 	}
8551 	if (val & I40E_PF_ARQLEN_ARQOVFL_MASK) {
8552 		if (hw->debug_mask & I40E_DEBUG_AQ)
8553 			dev_info(&pf->pdev->dev, "ARQ Overflow Error detected\n");
8554 		val &= ~I40E_PF_ARQLEN_ARQOVFL_MASK;
8555 		pf->arq_overflows++;
8556 	}
8557 	if (val & I40E_PF_ARQLEN_ARQCRIT_MASK) {
8558 		if (hw->debug_mask & I40E_DEBUG_AQ)
8559 			dev_info(&pf->pdev->dev, "ARQ Critical Error detected\n");
8560 		val &= ~I40E_PF_ARQLEN_ARQCRIT_MASK;
8561 	}
8562 	if (oldval != val)
8563 		wr32(&pf->hw, pf->hw.aq.arq.len, val);
8564 
8565 	val = rd32(&pf->hw, pf->hw.aq.asq.len);
8566 	oldval = val;
8567 	if (val & I40E_PF_ATQLEN_ATQVFE_MASK) {
8568 		if (pf->hw.debug_mask & I40E_DEBUG_AQ)
8569 			dev_info(&pf->pdev->dev, "ASQ VF Error detected\n");
8570 		val &= ~I40E_PF_ATQLEN_ATQVFE_MASK;
8571 	}
8572 	if (val & I40E_PF_ATQLEN_ATQOVFL_MASK) {
8573 		if (pf->hw.debug_mask & I40E_DEBUG_AQ)
8574 			dev_info(&pf->pdev->dev, "ASQ Overflow Error detected\n");
8575 		val &= ~I40E_PF_ATQLEN_ATQOVFL_MASK;
8576 	}
8577 	if (val & I40E_PF_ATQLEN_ATQCRIT_MASK) {
8578 		if (pf->hw.debug_mask & I40E_DEBUG_AQ)
8579 			dev_info(&pf->pdev->dev, "ASQ Critical Error detected\n");
8580 		val &= ~I40E_PF_ATQLEN_ATQCRIT_MASK;
8581 	}
8582 	if (oldval != val)
8583 		wr32(&pf->hw, pf->hw.aq.asq.len, val);
8584 
8585 	event.buf_len = I40E_MAX_AQ_BUF_SIZE;
8586 	event.msg_buf = kzalloc(event.buf_len, GFP_KERNEL);
8587 	if (!event.msg_buf)
8588 		return;
8589 
8590 	do {
8591 		ret = i40e_clean_arq_element(hw, &event, &pending);
8592 		if (ret == I40E_ERR_ADMIN_QUEUE_NO_WORK)
8593 			break;
8594 		else if (ret) {
8595 			dev_info(&pf->pdev->dev, "ARQ event error %d\n", ret);
8596 			break;
8597 		}
8598 
8599 		opcode = le16_to_cpu(event.desc.opcode);
8600 		switch (opcode) {
8601 
8602 		case i40e_aqc_opc_get_link_status:
8603 			i40e_handle_link_event(pf, &event);
8604 			break;
8605 		case i40e_aqc_opc_send_msg_to_pf:
8606 			ret = i40e_vc_process_vf_msg(pf,
8607 					le16_to_cpu(event.desc.retval),
8608 					le32_to_cpu(event.desc.cookie_high),
8609 					le32_to_cpu(event.desc.cookie_low),
8610 					event.msg_buf,
8611 					event.msg_len);
8612 			break;
8613 		case i40e_aqc_opc_lldp_update_mib:
8614 			dev_dbg(&pf->pdev->dev, "ARQ: Update LLDP MIB event received\n");
8615 #ifdef CONFIG_I40E_DCB
8616 			rtnl_lock();
8617 			ret = i40e_handle_lldp_event(pf, &event);
8618 			rtnl_unlock();
8619 #endif /* CONFIG_I40E_DCB */
8620 			break;
8621 		case i40e_aqc_opc_event_lan_overflow:
8622 			dev_dbg(&pf->pdev->dev, "ARQ LAN queue overflow event received\n");
8623 			i40e_handle_lan_overflow_event(pf, &event);
8624 			break;
8625 		case i40e_aqc_opc_send_msg_to_peer:
8626 			dev_info(&pf->pdev->dev, "ARQ: Msg from other pf\n");
8627 			break;
8628 		case i40e_aqc_opc_nvm_erase:
8629 		case i40e_aqc_opc_nvm_update:
8630 		case i40e_aqc_opc_oem_post_update:
8631 			i40e_debug(&pf->hw, I40E_DEBUG_NVM,
8632 				   "ARQ NVM operation 0x%04x completed\n",
8633 				   opcode);
8634 			break;
8635 		default:
8636 			dev_info(&pf->pdev->dev,
8637 				 "ARQ: Unknown event 0x%04x ignored\n",
8638 				 opcode);
8639 			break;
8640 		}
8641 	} while (i++ < pf->adminq_work_limit);
8642 
8643 	if (i < pf->adminq_work_limit)
8644 		clear_bit(__I40E_ADMINQ_EVENT_PENDING, pf->state);
8645 
8646 	/* re-enable Admin queue interrupt cause */
8647 	val = rd32(hw, I40E_PFINT_ICR0_ENA);
8648 	val |=  I40E_PFINT_ICR0_ENA_ADMINQ_MASK;
8649 	wr32(hw, I40E_PFINT_ICR0_ENA, val);
8650 	i40e_flush(hw);
8651 
8652 	kfree(event.msg_buf);
8653 }
8654 
8655 /**
8656  * i40e_verify_eeprom - make sure eeprom is good to use
8657  * @pf: board private structure
8658  **/
8659 static void i40e_verify_eeprom(struct i40e_pf *pf)
8660 {
8661 	int err;
8662 
8663 	err = i40e_diag_eeprom_test(&pf->hw);
8664 	if (err) {
8665 		/* retry in case of garbage read */
8666 		err = i40e_diag_eeprom_test(&pf->hw);
8667 		if (err) {
8668 			dev_info(&pf->pdev->dev, "eeprom check failed (%d), Tx/Rx traffic disabled\n",
8669 				 err);
8670 			set_bit(__I40E_BAD_EEPROM, pf->state);
8671 		}
8672 	}
8673 
8674 	if (!err && test_bit(__I40E_BAD_EEPROM, pf->state)) {
8675 		dev_info(&pf->pdev->dev, "eeprom check passed, Tx/Rx traffic enabled\n");
8676 		clear_bit(__I40E_BAD_EEPROM, pf->state);
8677 	}
8678 }
8679 
8680 /**
8681  * i40e_enable_pf_switch_lb
8682  * @pf: pointer to the PF structure
8683  *
8684  * enable switch loop back or die - no point in a return value
8685  **/
8686 static void i40e_enable_pf_switch_lb(struct i40e_pf *pf)
8687 {
8688 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
8689 	struct i40e_vsi_context ctxt;
8690 	int ret;
8691 
8692 	ctxt.seid = pf->main_vsi_seid;
8693 	ctxt.pf_num = pf->hw.pf_id;
8694 	ctxt.vf_num = 0;
8695 	ret = i40e_aq_get_vsi_params(&pf->hw, &ctxt, NULL);
8696 	if (ret) {
8697 		dev_info(&pf->pdev->dev,
8698 			 "couldn't get PF vsi config, err %s aq_err %s\n",
8699 			 i40e_stat_str(&pf->hw, ret),
8700 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
8701 		return;
8702 	}
8703 	ctxt.flags = I40E_AQ_VSI_TYPE_PF;
8704 	ctxt.info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
8705 	ctxt.info.switch_id |= cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
8706 
8707 	ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
8708 	if (ret) {
8709 		dev_info(&pf->pdev->dev,
8710 			 "update vsi switch failed, err %s aq_err %s\n",
8711 			 i40e_stat_str(&pf->hw, ret),
8712 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
8713 	}
8714 }
8715 
8716 /**
8717  * i40e_disable_pf_switch_lb
8718  * @pf: pointer to the PF structure
8719  *
8720  * disable switch loop back or die - no point in a return value
8721  **/
8722 static void i40e_disable_pf_switch_lb(struct i40e_pf *pf)
8723 {
8724 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
8725 	struct i40e_vsi_context ctxt;
8726 	int ret;
8727 
8728 	ctxt.seid = pf->main_vsi_seid;
8729 	ctxt.pf_num = pf->hw.pf_id;
8730 	ctxt.vf_num = 0;
8731 	ret = i40e_aq_get_vsi_params(&pf->hw, &ctxt, NULL);
8732 	if (ret) {
8733 		dev_info(&pf->pdev->dev,
8734 			 "couldn't get PF vsi config, err %s aq_err %s\n",
8735 			 i40e_stat_str(&pf->hw, ret),
8736 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
8737 		return;
8738 	}
8739 	ctxt.flags = I40E_AQ_VSI_TYPE_PF;
8740 	ctxt.info.valid_sections = cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
8741 	ctxt.info.switch_id &= ~cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
8742 
8743 	ret = i40e_aq_update_vsi_params(&vsi->back->hw, &ctxt, NULL);
8744 	if (ret) {
8745 		dev_info(&pf->pdev->dev,
8746 			 "update vsi switch failed, err %s aq_err %s\n",
8747 			 i40e_stat_str(&pf->hw, ret),
8748 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
8749 	}
8750 }
8751 
8752 /**
8753  * i40e_config_bridge_mode - Configure the HW bridge mode
8754  * @veb: pointer to the bridge instance
8755  *
8756  * Configure the loop back mode for the LAN VSI that is downlink to the
8757  * specified HW bridge instance. It is expected this function is called
8758  * when a new HW bridge is instantiated.
8759  **/
8760 static void i40e_config_bridge_mode(struct i40e_veb *veb)
8761 {
8762 	struct i40e_pf *pf = veb->pf;
8763 
8764 	if (pf->hw.debug_mask & I40E_DEBUG_LAN)
8765 		dev_info(&pf->pdev->dev, "enabling bridge mode: %s\n",
8766 			 veb->bridge_mode == BRIDGE_MODE_VEPA ? "VEPA" : "VEB");
8767 	if (veb->bridge_mode & BRIDGE_MODE_VEPA)
8768 		i40e_disable_pf_switch_lb(pf);
8769 	else
8770 		i40e_enable_pf_switch_lb(pf);
8771 }
8772 
8773 /**
8774  * i40e_reconstitute_veb - rebuild the VEB and anything connected to it
8775  * @veb: pointer to the VEB instance
8776  *
8777  * This is a recursive function that first builds the attached VSIs then
8778  * recurses in to build the next layer of VEB.  We track the connections
8779  * through our own index numbers because the seid's from the HW could
8780  * change across the reset.
8781  **/
8782 static int i40e_reconstitute_veb(struct i40e_veb *veb)
8783 {
8784 	struct i40e_vsi *ctl_vsi = NULL;
8785 	struct i40e_pf *pf = veb->pf;
8786 	int v, veb_idx;
8787 	int ret;
8788 
8789 	/* build VSI that owns this VEB, temporarily attached to base VEB */
8790 	for (v = 0; v < pf->num_alloc_vsi && !ctl_vsi; v++) {
8791 		if (pf->vsi[v] &&
8792 		    pf->vsi[v]->veb_idx == veb->idx &&
8793 		    pf->vsi[v]->flags & I40E_VSI_FLAG_VEB_OWNER) {
8794 			ctl_vsi = pf->vsi[v];
8795 			break;
8796 		}
8797 	}
8798 	if (!ctl_vsi) {
8799 		dev_info(&pf->pdev->dev,
8800 			 "missing owner VSI for veb_idx %d\n", veb->idx);
8801 		ret = -ENOENT;
8802 		goto end_reconstitute;
8803 	}
8804 	if (ctl_vsi != pf->vsi[pf->lan_vsi])
8805 		ctl_vsi->uplink_seid = pf->vsi[pf->lan_vsi]->uplink_seid;
8806 	ret = i40e_add_vsi(ctl_vsi);
8807 	if (ret) {
8808 		dev_info(&pf->pdev->dev,
8809 			 "rebuild of veb_idx %d owner VSI failed: %d\n",
8810 			 veb->idx, ret);
8811 		goto end_reconstitute;
8812 	}
8813 	i40e_vsi_reset_stats(ctl_vsi);
8814 
8815 	/* create the VEB in the switch and move the VSI onto the VEB */
8816 	ret = i40e_add_veb(veb, ctl_vsi);
8817 	if (ret)
8818 		goto end_reconstitute;
8819 
8820 	if (pf->flags & I40E_FLAG_VEB_MODE_ENABLED)
8821 		veb->bridge_mode = BRIDGE_MODE_VEB;
8822 	else
8823 		veb->bridge_mode = BRIDGE_MODE_VEPA;
8824 	i40e_config_bridge_mode(veb);
8825 
8826 	/* create the remaining VSIs attached to this VEB */
8827 	for (v = 0; v < pf->num_alloc_vsi; v++) {
8828 		if (!pf->vsi[v] || pf->vsi[v] == ctl_vsi)
8829 			continue;
8830 
8831 		if (pf->vsi[v]->veb_idx == veb->idx) {
8832 			struct i40e_vsi *vsi = pf->vsi[v];
8833 
8834 			vsi->uplink_seid = veb->seid;
8835 			ret = i40e_add_vsi(vsi);
8836 			if (ret) {
8837 				dev_info(&pf->pdev->dev,
8838 					 "rebuild of vsi_idx %d failed: %d\n",
8839 					 v, ret);
8840 				goto end_reconstitute;
8841 			}
8842 			i40e_vsi_reset_stats(vsi);
8843 		}
8844 	}
8845 
8846 	/* create any VEBs attached to this VEB - RECURSION */
8847 	for (veb_idx = 0; veb_idx < I40E_MAX_VEB; veb_idx++) {
8848 		if (pf->veb[veb_idx] && pf->veb[veb_idx]->veb_idx == veb->idx) {
8849 			pf->veb[veb_idx]->uplink_seid = veb->seid;
8850 			ret = i40e_reconstitute_veb(pf->veb[veb_idx]);
8851 			if (ret)
8852 				break;
8853 		}
8854 	}
8855 
8856 end_reconstitute:
8857 	return ret;
8858 }
8859 
8860 /**
8861  * i40e_get_capabilities - get info about the HW
8862  * @pf: the PF struct
8863  **/
8864 static int i40e_get_capabilities(struct i40e_pf *pf,
8865 				 enum i40e_admin_queue_opc list_type)
8866 {
8867 	struct i40e_aqc_list_capabilities_element_resp *cap_buf;
8868 	u16 data_size;
8869 	int buf_len;
8870 	int err;
8871 
8872 	buf_len = 40 * sizeof(struct i40e_aqc_list_capabilities_element_resp);
8873 	do {
8874 		cap_buf = kzalloc(buf_len, GFP_KERNEL);
8875 		if (!cap_buf)
8876 			return -ENOMEM;
8877 
8878 		/* this loads the data into the hw struct for us */
8879 		err = i40e_aq_discover_capabilities(&pf->hw, cap_buf, buf_len,
8880 						    &data_size, list_type,
8881 						    NULL);
8882 		/* data loaded, buffer no longer needed */
8883 		kfree(cap_buf);
8884 
8885 		if (pf->hw.aq.asq_last_status == I40E_AQ_RC_ENOMEM) {
8886 			/* retry with a larger buffer */
8887 			buf_len = data_size;
8888 		} else if (pf->hw.aq.asq_last_status != I40E_AQ_RC_OK) {
8889 			dev_info(&pf->pdev->dev,
8890 				 "capability discovery failed, err %s aq_err %s\n",
8891 				 i40e_stat_str(&pf->hw, err),
8892 				 i40e_aq_str(&pf->hw,
8893 					     pf->hw.aq.asq_last_status));
8894 			return -ENODEV;
8895 		}
8896 	} while (err);
8897 
8898 	if (pf->hw.debug_mask & I40E_DEBUG_USER) {
8899 		if (list_type == i40e_aqc_opc_list_func_capabilities) {
8900 			dev_info(&pf->pdev->dev,
8901 				 "pf=%d, num_vfs=%d, msix_pf=%d, msix_vf=%d, fd_g=%d, fd_b=%d, pf_max_q=%d num_vsi=%d\n",
8902 				 pf->hw.pf_id, pf->hw.func_caps.num_vfs,
8903 				 pf->hw.func_caps.num_msix_vectors,
8904 				 pf->hw.func_caps.num_msix_vectors_vf,
8905 				 pf->hw.func_caps.fd_filters_guaranteed,
8906 				 pf->hw.func_caps.fd_filters_best_effort,
8907 				 pf->hw.func_caps.num_tx_qp,
8908 				 pf->hw.func_caps.num_vsis);
8909 		} else if (list_type == i40e_aqc_opc_list_dev_capabilities) {
8910 			dev_info(&pf->pdev->dev,
8911 				 "switch_mode=0x%04x, function_valid=0x%08x\n",
8912 				 pf->hw.dev_caps.switch_mode,
8913 				 pf->hw.dev_caps.valid_functions);
8914 			dev_info(&pf->pdev->dev,
8915 				 "SR-IOV=%d, num_vfs for all function=%u\n",
8916 				 pf->hw.dev_caps.sr_iov_1_1,
8917 				 pf->hw.dev_caps.num_vfs);
8918 			dev_info(&pf->pdev->dev,
8919 				 "num_vsis=%u, num_rx:%u, num_tx=%u\n",
8920 				 pf->hw.dev_caps.num_vsis,
8921 				 pf->hw.dev_caps.num_rx_qp,
8922 				 pf->hw.dev_caps.num_tx_qp);
8923 		}
8924 	}
8925 	if (list_type == i40e_aqc_opc_list_func_capabilities) {
8926 #define DEF_NUM_VSI (1 + (pf->hw.func_caps.fcoe ? 1 : 0) \
8927 		       + pf->hw.func_caps.num_vfs)
8928 		if (pf->hw.revision_id == 0 &&
8929 		    pf->hw.func_caps.num_vsis < DEF_NUM_VSI) {
8930 			dev_info(&pf->pdev->dev,
8931 				 "got num_vsis %d, setting num_vsis to %d\n",
8932 				 pf->hw.func_caps.num_vsis, DEF_NUM_VSI);
8933 			pf->hw.func_caps.num_vsis = DEF_NUM_VSI;
8934 		}
8935 	}
8936 	return 0;
8937 }
8938 
8939 static int i40e_vsi_clear(struct i40e_vsi *vsi);
8940 
8941 /**
8942  * i40e_fdir_sb_setup - initialize the Flow Director resources for Sideband
8943  * @pf: board private structure
8944  **/
8945 static void i40e_fdir_sb_setup(struct i40e_pf *pf)
8946 {
8947 	struct i40e_vsi *vsi;
8948 
8949 	/* quick workaround for an NVM issue that leaves a critical register
8950 	 * uninitialized
8951 	 */
8952 	if (!rd32(&pf->hw, I40E_GLQF_HKEY(0))) {
8953 		static const u32 hkey[] = {
8954 			0xe640d33f, 0xcdfe98ab, 0x73fa7161, 0x0d7a7d36,
8955 			0xeacb7d61, 0xaa4f05b6, 0x9c5c89ed, 0xfc425ddb,
8956 			0xa4654832, 0xfc7461d4, 0x8f827619, 0xf5c63c21,
8957 			0x95b3a76d};
8958 		int i;
8959 
8960 		for (i = 0; i <= I40E_GLQF_HKEY_MAX_INDEX; i++)
8961 			wr32(&pf->hw, I40E_GLQF_HKEY(i), hkey[i]);
8962 	}
8963 
8964 	if (!(pf->flags & I40E_FLAG_FD_SB_ENABLED))
8965 		return;
8966 
8967 	/* find existing VSI and see if it needs configuring */
8968 	vsi = i40e_find_vsi_by_type(pf, I40E_VSI_FDIR);
8969 
8970 	/* create a new VSI if none exists */
8971 	if (!vsi) {
8972 		vsi = i40e_vsi_setup(pf, I40E_VSI_FDIR,
8973 				     pf->vsi[pf->lan_vsi]->seid, 0);
8974 		if (!vsi) {
8975 			dev_info(&pf->pdev->dev, "Couldn't create FDir VSI\n");
8976 			pf->flags &= ~I40E_FLAG_FD_SB_ENABLED;
8977 			pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
8978 			return;
8979 		}
8980 	}
8981 
8982 	i40e_vsi_setup_irqhandler(vsi, i40e_fdir_clean_ring);
8983 }
8984 
8985 /**
8986  * i40e_fdir_teardown - release the Flow Director resources
8987  * @pf: board private structure
8988  **/
8989 static void i40e_fdir_teardown(struct i40e_pf *pf)
8990 {
8991 	struct i40e_vsi *vsi;
8992 
8993 	i40e_fdir_filter_exit(pf);
8994 	vsi = i40e_find_vsi_by_type(pf, I40E_VSI_FDIR);
8995 	if (vsi)
8996 		i40e_vsi_release(vsi);
8997 }
8998 
8999 /**
9000  * i40e_rebuild_cloud_filters - Rebuilds cloud filters for VSIs
9001  * @vsi: PF main vsi
9002  * @seid: seid of main or channel VSIs
9003  *
9004  * Rebuilds cloud filters associated with main VSI and channel VSIs if they
9005  * existed before reset
9006  **/
9007 static int i40e_rebuild_cloud_filters(struct i40e_vsi *vsi, u16 seid)
9008 {
9009 	struct i40e_cloud_filter *cfilter;
9010 	struct i40e_pf *pf = vsi->back;
9011 	struct hlist_node *node;
9012 	i40e_status ret;
9013 
9014 	/* Add cloud filters back if they exist */
9015 	hlist_for_each_entry_safe(cfilter, node, &pf->cloud_filter_list,
9016 				  cloud_node) {
9017 		if (cfilter->seid != seid)
9018 			continue;
9019 
9020 		if (cfilter->dst_port)
9021 			ret = i40e_add_del_cloud_filter_big_buf(vsi, cfilter,
9022 								true);
9023 		else
9024 			ret = i40e_add_del_cloud_filter(vsi, cfilter, true);
9025 
9026 		if (ret) {
9027 			dev_dbg(&pf->pdev->dev,
9028 				"Failed to rebuild cloud filter, err %s aq_err %s\n",
9029 				i40e_stat_str(&pf->hw, ret),
9030 				i40e_aq_str(&pf->hw,
9031 					    pf->hw.aq.asq_last_status));
9032 			return ret;
9033 		}
9034 	}
9035 	return 0;
9036 }
9037 
9038 /**
9039  * i40e_rebuild_channels - Rebuilds channel VSIs if they existed before reset
9040  * @vsi: PF main vsi
9041  *
9042  * Rebuilds channel VSIs if they existed before reset
9043  **/
9044 static int i40e_rebuild_channels(struct i40e_vsi *vsi)
9045 {
9046 	struct i40e_channel *ch, *ch_tmp;
9047 	i40e_status ret;
9048 
9049 	if (list_empty(&vsi->ch_list))
9050 		return 0;
9051 
9052 	list_for_each_entry_safe(ch, ch_tmp, &vsi->ch_list, list) {
9053 		if (!ch->initialized)
9054 			break;
9055 		/* Proceed with creation of channel (VMDq2) VSI */
9056 		ret = i40e_add_channel(vsi->back, vsi->uplink_seid, ch);
9057 		if (ret) {
9058 			dev_info(&vsi->back->pdev->dev,
9059 				 "failed to rebuild channels using uplink_seid %u\n",
9060 				 vsi->uplink_seid);
9061 			return ret;
9062 		}
9063 		if (ch->max_tx_rate) {
9064 			u64 credits = ch->max_tx_rate;
9065 
9066 			if (i40e_set_bw_limit(vsi, ch->seid,
9067 					      ch->max_tx_rate))
9068 				return -EINVAL;
9069 
9070 			do_div(credits, I40E_BW_CREDIT_DIVISOR);
9071 			dev_dbg(&vsi->back->pdev->dev,
9072 				"Set tx rate of %llu Mbps (count of 50Mbps %llu) for vsi->seid %u\n",
9073 				ch->max_tx_rate,
9074 				credits,
9075 				ch->seid);
9076 		}
9077 		ret = i40e_rebuild_cloud_filters(vsi, ch->seid);
9078 		if (ret) {
9079 			dev_dbg(&vsi->back->pdev->dev,
9080 				"Failed to rebuild cloud filters for channel VSI %u\n",
9081 				ch->seid);
9082 			return ret;
9083 		}
9084 	}
9085 	return 0;
9086 }
9087 
9088 /**
9089  * i40e_prep_for_reset - prep for the core to reset
9090  * @pf: board private structure
9091  * @lock_acquired: indicates whether or not the lock has been acquired
9092  * before this function was called.
9093  *
9094  * Close up the VFs and other things in prep for PF Reset.
9095   **/
9096 static void i40e_prep_for_reset(struct i40e_pf *pf, bool lock_acquired)
9097 {
9098 	struct i40e_hw *hw = &pf->hw;
9099 	i40e_status ret = 0;
9100 	u32 v;
9101 
9102 	clear_bit(__I40E_RESET_INTR_RECEIVED, pf->state);
9103 	if (test_and_set_bit(__I40E_RESET_RECOVERY_PENDING, pf->state))
9104 		return;
9105 	if (i40e_check_asq_alive(&pf->hw))
9106 		i40e_vc_notify_reset(pf);
9107 
9108 	dev_dbg(&pf->pdev->dev, "Tearing down internal switch for reset\n");
9109 
9110 	/* quiesce the VSIs and their queues that are not already DOWN */
9111 	/* pf_quiesce_all_vsi modifies netdev structures -rtnl_lock needed */
9112 	if (!lock_acquired)
9113 		rtnl_lock();
9114 	i40e_pf_quiesce_all_vsi(pf);
9115 	if (!lock_acquired)
9116 		rtnl_unlock();
9117 
9118 	for (v = 0; v < pf->num_alloc_vsi; v++) {
9119 		if (pf->vsi[v])
9120 			pf->vsi[v]->seid = 0;
9121 	}
9122 
9123 	i40e_shutdown_adminq(&pf->hw);
9124 
9125 	/* call shutdown HMC */
9126 	if (hw->hmc.hmc_obj) {
9127 		ret = i40e_shutdown_lan_hmc(hw);
9128 		if (ret)
9129 			dev_warn(&pf->pdev->dev,
9130 				 "shutdown_lan_hmc failed: %d\n", ret);
9131 	}
9132 }
9133 
9134 /**
9135  * i40e_send_version - update firmware with driver version
9136  * @pf: PF struct
9137  */
9138 static void i40e_send_version(struct i40e_pf *pf)
9139 {
9140 	struct i40e_driver_version dv;
9141 
9142 	dv.major_version = DRV_VERSION_MAJOR;
9143 	dv.minor_version = DRV_VERSION_MINOR;
9144 	dv.build_version = DRV_VERSION_BUILD;
9145 	dv.subbuild_version = 0;
9146 	strlcpy(dv.driver_string, DRV_VERSION, sizeof(dv.driver_string));
9147 	i40e_aq_send_driver_version(&pf->hw, &dv, NULL);
9148 }
9149 
9150 /**
9151  * i40e_get_oem_version - get OEM specific version information
9152  * @hw: pointer to the hardware structure
9153  **/
9154 static void i40e_get_oem_version(struct i40e_hw *hw)
9155 {
9156 	u16 block_offset = 0xffff;
9157 	u16 block_length = 0;
9158 	u16 capabilities = 0;
9159 	u16 gen_snap = 0;
9160 	u16 release = 0;
9161 
9162 #define I40E_SR_NVM_OEM_VERSION_PTR		0x1B
9163 #define I40E_NVM_OEM_LENGTH_OFFSET		0x00
9164 #define I40E_NVM_OEM_CAPABILITIES_OFFSET	0x01
9165 #define I40E_NVM_OEM_GEN_OFFSET			0x02
9166 #define I40E_NVM_OEM_RELEASE_OFFSET		0x03
9167 #define I40E_NVM_OEM_CAPABILITIES_MASK		0x000F
9168 #define I40E_NVM_OEM_LENGTH			3
9169 
9170 	/* Check if pointer to OEM version block is valid. */
9171 	i40e_read_nvm_word(hw, I40E_SR_NVM_OEM_VERSION_PTR, &block_offset);
9172 	if (block_offset == 0xffff)
9173 		return;
9174 
9175 	/* Check if OEM version block has correct length. */
9176 	i40e_read_nvm_word(hw, block_offset + I40E_NVM_OEM_LENGTH_OFFSET,
9177 			   &block_length);
9178 	if (block_length < I40E_NVM_OEM_LENGTH)
9179 		return;
9180 
9181 	/* Check if OEM version format is as expected. */
9182 	i40e_read_nvm_word(hw, block_offset + I40E_NVM_OEM_CAPABILITIES_OFFSET,
9183 			   &capabilities);
9184 	if ((capabilities & I40E_NVM_OEM_CAPABILITIES_MASK) != 0)
9185 		return;
9186 
9187 	i40e_read_nvm_word(hw, block_offset + I40E_NVM_OEM_GEN_OFFSET,
9188 			   &gen_snap);
9189 	i40e_read_nvm_word(hw, block_offset + I40E_NVM_OEM_RELEASE_OFFSET,
9190 			   &release);
9191 	hw->nvm.oem_ver = (gen_snap << I40E_OEM_SNAP_SHIFT) | release;
9192 	hw->nvm.eetrack = I40E_OEM_EETRACK_ID;
9193 }
9194 
9195 /**
9196  * i40e_reset - wait for core reset to finish reset, reset pf if corer not seen
9197  * @pf: board private structure
9198  **/
9199 static int i40e_reset(struct i40e_pf *pf)
9200 {
9201 	struct i40e_hw *hw = &pf->hw;
9202 	i40e_status ret;
9203 
9204 	ret = i40e_pf_reset(hw);
9205 	if (ret) {
9206 		dev_info(&pf->pdev->dev, "PF reset failed, %d\n", ret);
9207 		set_bit(__I40E_RESET_FAILED, pf->state);
9208 		clear_bit(__I40E_RESET_RECOVERY_PENDING, pf->state);
9209 	} else {
9210 		pf->pfr_count++;
9211 	}
9212 	return ret;
9213 }
9214 
9215 /**
9216  * i40e_rebuild - rebuild using a saved config
9217  * @pf: board private structure
9218  * @reinit: if the Main VSI needs to re-initialized.
9219  * @lock_acquired: indicates whether or not the lock has been acquired
9220  * before this function was called.
9221  **/
9222 static void i40e_rebuild(struct i40e_pf *pf, bool reinit, bool lock_acquired)
9223 {
9224 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
9225 	struct i40e_hw *hw = &pf->hw;
9226 	u8 set_fc_aq_fail = 0;
9227 	i40e_status ret;
9228 	u32 val;
9229 	int v;
9230 
9231 	if (test_bit(__I40E_DOWN, pf->state))
9232 		goto clear_recovery;
9233 	dev_dbg(&pf->pdev->dev, "Rebuilding internal switch\n");
9234 
9235 	/* rebuild the basics for the AdminQ, HMC, and initial HW switch */
9236 	ret = i40e_init_adminq(&pf->hw);
9237 	if (ret) {
9238 		dev_info(&pf->pdev->dev, "Rebuild AdminQ failed, err %s aq_err %s\n",
9239 			 i40e_stat_str(&pf->hw, ret),
9240 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
9241 		goto clear_recovery;
9242 	}
9243 	i40e_get_oem_version(&pf->hw);
9244 
9245 	/* re-verify the eeprom if we just had an EMP reset */
9246 	if (test_and_clear_bit(__I40E_EMP_RESET_INTR_RECEIVED, pf->state))
9247 		i40e_verify_eeprom(pf);
9248 
9249 	i40e_clear_pxe_mode(hw);
9250 	ret = i40e_get_capabilities(pf, i40e_aqc_opc_list_func_capabilities);
9251 	if (ret)
9252 		goto end_core_reset;
9253 
9254 	ret = i40e_init_lan_hmc(hw, hw->func_caps.num_tx_qp,
9255 				hw->func_caps.num_rx_qp, 0, 0);
9256 	if (ret) {
9257 		dev_info(&pf->pdev->dev, "init_lan_hmc failed: %d\n", ret);
9258 		goto end_core_reset;
9259 	}
9260 	ret = i40e_configure_lan_hmc(hw, I40E_HMC_MODEL_DIRECT_ONLY);
9261 	if (ret) {
9262 		dev_info(&pf->pdev->dev, "configure_lan_hmc failed: %d\n", ret);
9263 		goto end_core_reset;
9264 	}
9265 
9266 #ifdef CONFIG_I40E_DCB
9267 	ret = i40e_init_pf_dcb(pf);
9268 	if (ret) {
9269 		dev_info(&pf->pdev->dev, "DCB init failed %d, disabled\n", ret);
9270 		pf->flags &= ~I40E_FLAG_DCB_CAPABLE;
9271 		/* Continue without DCB enabled */
9272 	}
9273 #endif /* CONFIG_I40E_DCB */
9274 	/* do basic switch setup */
9275 	if (!lock_acquired)
9276 		rtnl_lock();
9277 	ret = i40e_setup_pf_switch(pf, reinit);
9278 	if (ret)
9279 		goto end_unlock;
9280 
9281 	/* The driver only wants link up/down and module qualification
9282 	 * reports from firmware.  Note the negative logic.
9283 	 */
9284 	ret = i40e_aq_set_phy_int_mask(&pf->hw,
9285 				       ~(I40E_AQ_EVENT_LINK_UPDOWN |
9286 					 I40E_AQ_EVENT_MEDIA_NA |
9287 					 I40E_AQ_EVENT_MODULE_QUAL_FAIL), NULL);
9288 	if (ret)
9289 		dev_info(&pf->pdev->dev, "set phy mask fail, err %s aq_err %s\n",
9290 			 i40e_stat_str(&pf->hw, ret),
9291 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
9292 
9293 	/* make sure our flow control settings are restored */
9294 	ret = i40e_set_fc(&pf->hw, &set_fc_aq_fail, true);
9295 	if (ret)
9296 		dev_dbg(&pf->pdev->dev, "setting flow control: ret = %s last_status = %s\n",
9297 			i40e_stat_str(&pf->hw, ret),
9298 			i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
9299 
9300 	/* Rebuild the VSIs and VEBs that existed before reset.
9301 	 * They are still in our local switch element arrays, so only
9302 	 * need to rebuild the switch model in the HW.
9303 	 *
9304 	 * If there were VEBs but the reconstitution failed, we'll try
9305 	 * try to recover minimal use by getting the basic PF VSI working.
9306 	 */
9307 	if (vsi->uplink_seid != pf->mac_seid) {
9308 		dev_dbg(&pf->pdev->dev, "attempting to rebuild switch\n");
9309 		/* find the one VEB connected to the MAC, and find orphans */
9310 		for (v = 0; v < I40E_MAX_VEB; v++) {
9311 			if (!pf->veb[v])
9312 				continue;
9313 
9314 			if (pf->veb[v]->uplink_seid == pf->mac_seid ||
9315 			    pf->veb[v]->uplink_seid == 0) {
9316 				ret = i40e_reconstitute_veb(pf->veb[v]);
9317 
9318 				if (!ret)
9319 					continue;
9320 
9321 				/* If Main VEB failed, we're in deep doodoo,
9322 				 * so give up rebuilding the switch and set up
9323 				 * for minimal rebuild of PF VSI.
9324 				 * If orphan failed, we'll report the error
9325 				 * but try to keep going.
9326 				 */
9327 				if (pf->veb[v]->uplink_seid == pf->mac_seid) {
9328 					dev_info(&pf->pdev->dev,
9329 						 "rebuild of switch failed: %d, will try to set up simple PF connection\n",
9330 						 ret);
9331 					vsi->uplink_seid = pf->mac_seid;
9332 					break;
9333 				} else if (pf->veb[v]->uplink_seid == 0) {
9334 					dev_info(&pf->pdev->dev,
9335 						 "rebuild of orphan VEB failed: %d\n",
9336 						 ret);
9337 				}
9338 			}
9339 		}
9340 	}
9341 
9342 	if (vsi->uplink_seid == pf->mac_seid) {
9343 		dev_dbg(&pf->pdev->dev, "attempting to rebuild PF VSI\n");
9344 		/* no VEB, so rebuild only the Main VSI */
9345 		ret = i40e_add_vsi(vsi);
9346 		if (ret) {
9347 			dev_info(&pf->pdev->dev,
9348 				 "rebuild of Main VSI failed: %d\n", ret);
9349 			goto end_unlock;
9350 		}
9351 	}
9352 
9353 	if (vsi->mqprio_qopt.max_rate[0]) {
9354 		u64 max_tx_rate = vsi->mqprio_qopt.max_rate[0];
9355 		u64 credits = 0;
9356 
9357 		do_div(max_tx_rate, I40E_BW_MBPS_DIVISOR);
9358 		ret = i40e_set_bw_limit(vsi, vsi->seid, max_tx_rate);
9359 		if (ret)
9360 			goto end_unlock;
9361 
9362 		credits = max_tx_rate;
9363 		do_div(credits, I40E_BW_CREDIT_DIVISOR);
9364 		dev_dbg(&vsi->back->pdev->dev,
9365 			"Set tx rate of %llu Mbps (count of 50Mbps %llu) for vsi->seid %u\n",
9366 			max_tx_rate,
9367 			credits,
9368 			vsi->seid);
9369 	}
9370 
9371 	ret = i40e_rebuild_cloud_filters(vsi, vsi->seid);
9372 	if (ret)
9373 		goto end_unlock;
9374 
9375 	/* PF Main VSI is rebuild by now, go ahead and rebuild channel VSIs
9376 	 * for this main VSI if they exist
9377 	 */
9378 	ret = i40e_rebuild_channels(vsi);
9379 	if (ret)
9380 		goto end_unlock;
9381 
9382 	/* Reconfigure hardware for allowing smaller MSS in the case
9383 	 * of TSO, so that we avoid the MDD being fired and causing
9384 	 * a reset in the case of small MSS+TSO.
9385 	 */
9386 #define I40E_REG_MSS          0x000E64DC
9387 #define I40E_REG_MSS_MIN_MASK 0x3FF0000
9388 #define I40E_64BYTE_MSS       0x400000
9389 	val = rd32(hw, I40E_REG_MSS);
9390 	if ((val & I40E_REG_MSS_MIN_MASK) > I40E_64BYTE_MSS) {
9391 		val &= ~I40E_REG_MSS_MIN_MASK;
9392 		val |= I40E_64BYTE_MSS;
9393 		wr32(hw, I40E_REG_MSS, val);
9394 	}
9395 
9396 	if (pf->hw_features & I40E_HW_RESTART_AUTONEG) {
9397 		msleep(75);
9398 		ret = i40e_aq_set_link_restart_an(&pf->hw, true, NULL);
9399 		if (ret)
9400 			dev_info(&pf->pdev->dev, "link restart failed, err %s aq_err %s\n",
9401 				 i40e_stat_str(&pf->hw, ret),
9402 				 i40e_aq_str(&pf->hw,
9403 					     pf->hw.aq.asq_last_status));
9404 	}
9405 	/* reinit the misc interrupt */
9406 	if (pf->flags & I40E_FLAG_MSIX_ENABLED)
9407 		ret = i40e_setup_misc_vector(pf);
9408 
9409 	/* Add a filter to drop all Flow control frames from any VSI from being
9410 	 * transmitted. By doing so we stop a malicious VF from sending out
9411 	 * PAUSE or PFC frames and potentially controlling traffic for other
9412 	 * PF/VF VSIs.
9413 	 * The FW can still send Flow control frames if enabled.
9414 	 */
9415 	i40e_add_filter_to_drop_tx_flow_control_frames(&pf->hw,
9416 						       pf->main_vsi_seid);
9417 
9418 	/* restart the VSIs that were rebuilt and running before the reset */
9419 	i40e_pf_unquiesce_all_vsi(pf);
9420 
9421 	/* Release the RTNL lock before we start resetting VFs */
9422 	if (!lock_acquired)
9423 		rtnl_unlock();
9424 
9425 	/* Restore promiscuous settings */
9426 	ret = i40e_set_promiscuous(pf, pf->cur_promisc);
9427 	if (ret)
9428 		dev_warn(&pf->pdev->dev,
9429 			 "Failed to restore promiscuous setting: %s, err %s aq_err %s\n",
9430 			 pf->cur_promisc ? "on" : "off",
9431 			 i40e_stat_str(&pf->hw, ret),
9432 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
9433 
9434 	i40e_reset_all_vfs(pf, true);
9435 
9436 	/* tell the firmware that we're starting */
9437 	i40e_send_version(pf);
9438 
9439 	/* We've already released the lock, so don't do it again */
9440 	goto end_core_reset;
9441 
9442 end_unlock:
9443 	if (!lock_acquired)
9444 		rtnl_unlock();
9445 end_core_reset:
9446 	clear_bit(__I40E_RESET_FAILED, pf->state);
9447 clear_recovery:
9448 	clear_bit(__I40E_RESET_RECOVERY_PENDING, pf->state);
9449 }
9450 
9451 /**
9452  * i40e_reset_and_rebuild - reset and rebuild using a saved config
9453  * @pf: board private structure
9454  * @reinit: if the Main VSI needs to re-initialized.
9455  * @lock_acquired: indicates whether or not the lock has been acquired
9456  * before this function was called.
9457  **/
9458 static void i40e_reset_and_rebuild(struct i40e_pf *pf, bool reinit,
9459 				   bool lock_acquired)
9460 {
9461 	int ret;
9462 	/* Now we wait for GRST to settle out.
9463 	 * We don't have to delete the VEBs or VSIs from the hw switch
9464 	 * because the reset will make them disappear.
9465 	 */
9466 	ret = i40e_reset(pf);
9467 	if (!ret)
9468 		i40e_rebuild(pf, reinit, lock_acquired);
9469 }
9470 
9471 /**
9472  * i40e_handle_reset_warning - prep for the PF to reset, reset and rebuild
9473  * @pf: board private structure
9474  *
9475  * Close up the VFs and other things in prep for a Core Reset,
9476  * then get ready to rebuild the world.
9477  * @lock_acquired: indicates whether or not the lock has been acquired
9478  * before this function was called.
9479  **/
9480 static void i40e_handle_reset_warning(struct i40e_pf *pf, bool lock_acquired)
9481 {
9482 	i40e_prep_for_reset(pf, lock_acquired);
9483 	i40e_reset_and_rebuild(pf, false, lock_acquired);
9484 }
9485 
9486 /**
9487  * i40e_handle_mdd_event
9488  * @pf: pointer to the PF structure
9489  *
9490  * Called from the MDD irq handler to identify possibly malicious vfs
9491  **/
9492 static void i40e_handle_mdd_event(struct i40e_pf *pf)
9493 {
9494 	struct i40e_hw *hw = &pf->hw;
9495 	bool mdd_detected = false;
9496 	bool pf_mdd_detected = false;
9497 	struct i40e_vf *vf;
9498 	u32 reg;
9499 	int i;
9500 
9501 	if (!test_bit(__I40E_MDD_EVENT_PENDING, pf->state))
9502 		return;
9503 
9504 	/* find what triggered the MDD event */
9505 	reg = rd32(hw, I40E_GL_MDET_TX);
9506 	if (reg & I40E_GL_MDET_TX_VALID_MASK) {
9507 		u8 pf_num = (reg & I40E_GL_MDET_TX_PF_NUM_MASK) >>
9508 				I40E_GL_MDET_TX_PF_NUM_SHIFT;
9509 		u16 vf_num = (reg & I40E_GL_MDET_TX_VF_NUM_MASK) >>
9510 				I40E_GL_MDET_TX_VF_NUM_SHIFT;
9511 		u8 event = (reg & I40E_GL_MDET_TX_EVENT_MASK) >>
9512 				I40E_GL_MDET_TX_EVENT_SHIFT;
9513 		u16 queue = ((reg & I40E_GL_MDET_TX_QUEUE_MASK) >>
9514 				I40E_GL_MDET_TX_QUEUE_SHIFT) -
9515 				pf->hw.func_caps.base_queue;
9516 		if (netif_msg_tx_err(pf))
9517 			dev_info(&pf->pdev->dev, "Malicious Driver Detection event 0x%02x on TX queue %d PF number 0x%02x VF number 0x%02x\n",
9518 				 event, queue, pf_num, vf_num);
9519 		wr32(hw, I40E_GL_MDET_TX, 0xffffffff);
9520 		mdd_detected = true;
9521 	}
9522 	reg = rd32(hw, I40E_GL_MDET_RX);
9523 	if (reg & I40E_GL_MDET_RX_VALID_MASK) {
9524 		u8 func = (reg & I40E_GL_MDET_RX_FUNCTION_MASK) >>
9525 				I40E_GL_MDET_RX_FUNCTION_SHIFT;
9526 		u8 event = (reg & I40E_GL_MDET_RX_EVENT_MASK) >>
9527 				I40E_GL_MDET_RX_EVENT_SHIFT;
9528 		u16 queue = ((reg & I40E_GL_MDET_RX_QUEUE_MASK) >>
9529 				I40E_GL_MDET_RX_QUEUE_SHIFT) -
9530 				pf->hw.func_caps.base_queue;
9531 		if (netif_msg_rx_err(pf))
9532 			dev_info(&pf->pdev->dev, "Malicious Driver Detection event 0x%02x on RX queue %d of function 0x%02x\n",
9533 				 event, queue, func);
9534 		wr32(hw, I40E_GL_MDET_RX, 0xffffffff);
9535 		mdd_detected = true;
9536 	}
9537 
9538 	if (mdd_detected) {
9539 		reg = rd32(hw, I40E_PF_MDET_TX);
9540 		if (reg & I40E_PF_MDET_TX_VALID_MASK) {
9541 			wr32(hw, I40E_PF_MDET_TX, 0xFFFF);
9542 			dev_info(&pf->pdev->dev, "TX driver issue detected, PF reset issued\n");
9543 			pf_mdd_detected = true;
9544 		}
9545 		reg = rd32(hw, I40E_PF_MDET_RX);
9546 		if (reg & I40E_PF_MDET_RX_VALID_MASK) {
9547 			wr32(hw, I40E_PF_MDET_RX, 0xFFFF);
9548 			dev_info(&pf->pdev->dev, "RX driver issue detected, PF reset issued\n");
9549 			pf_mdd_detected = true;
9550 		}
9551 		/* Queue belongs to the PF, initiate a reset */
9552 		if (pf_mdd_detected) {
9553 			set_bit(__I40E_PF_RESET_REQUESTED, pf->state);
9554 			i40e_service_event_schedule(pf);
9555 		}
9556 	}
9557 
9558 	/* see if one of the VFs needs its hand slapped */
9559 	for (i = 0; i < pf->num_alloc_vfs && mdd_detected; i++) {
9560 		vf = &(pf->vf[i]);
9561 		reg = rd32(hw, I40E_VP_MDET_TX(i));
9562 		if (reg & I40E_VP_MDET_TX_VALID_MASK) {
9563 			wr32(hw, I40E_VP_MDET_TX(i), 0xFFFF);
9564 			vf->num_mdd_events++;
9565 			dev_info(&pf->pdev->dev, "TX driver issue detected on VF %d\n",
9566 				 i);
9567 		}
9568 
9569 		reg = rd32(hw, I40E_VP_MDET_RX(i));
9570 		if (reg & I40E_VP_MDET_RX_VALID_MASK) {
9571 			wr32(hw, I40E_VP_MDET_RX(i), 0xFFFF);
9572 			vf->num_mdd_events++;
9573 			dev_info(&pf->pdev->dev, "RX driver issue detected on VF %d\n",
9574 				 i);
9575 		}
9576 
9577 		if (vf->num_mdd_events > I40E_DEFAULT_NUM_MDD_EVENTS_ALLOWED) {
9578 			dev_info(&pf->pdev->dev,
9579 				 "Too many MDD events on VF %d, disabled\n", i);
9580 			dev_info(&pf->pdev->dev,
9581 				 "Use PF Control I/F to re-enable the VF\n");
9582 			set_bit(I40E_VF_STATE_DISABLED, &vf->vf_states);
9583 		}
9584 	}
9585 
9586 	/* re-enable mdd interrupt cause */
9587 	clear_bit(__I40E_MDD_EVENT_PENDING, pf->state);
9588 	reg = rd32(hw, I40E_PFINT_ICR0_ENA);
9589 	reg |=  I40E_PFINT_ICR0_ENA_MAL_DETECT_MASK;
9590 	wr32(hw, I40E_PFINT_ICR0_ENA, reg);
9591 	i40e_flush(hw);
9592 }
9593 
9594 static const char *i40e_tunnel_name(struct i40e_udp_port_config *port)
9595 {
9596 	switch (port->type) {
9597 	case UDP_TUNNEL_TYPE_VXLAN:
9598 		return "vxlan";
9599 	case UDP_TUNNEL_TYPE_GENEVE:
9600 		return "geneve";
9601 	default:
9602 		return "unknown";
9603 	}
9604 }
9605 
9606 /**
9607  * i40e_sync_udp_filters - Trigger a sync event for existing UDP filters
9608  * @pf: board private structure
9609  **/
9610 static void i40e_sync_udp_filters(struct i40e_pf *pf)
9611 {
9612 	int i;
9613 
9614 	/* loop through and set pending bit for all active UDP filters */
9615 	for (i = 0; i < I40E_MAX_PF_UDP_OFFLOAD_PORTS; i++) {
9616 		if (pf->udp_ports[i].port)
9617 			pf->pending_udp_bitmap |= BIT_ULL(i);
9618 	}
9619 
9620 	pf->flags |= I40E_FLAG_UDP_FILTER_SYNC;
9621 }
9622 
9623 /**
9624  * i40e_sync_udp_filters_subtask - Sync the VSI filter list with HW
9625  * @pf: board private structure
9626  **/
9627 static void i40e_sync_udp_filters_subtask(struct i40e_pf *pf)
9628 {
9629 	struct i40e_hw *hw = &pf->hw;
9630 	i40e_status ret;
9631 	u16 port;
9632 	int i;
9633 
9634 	if (!(pf->flags & I40E_FLAG_UDP_FILTER_SYNC))
9635 		return;
9636 
9637 	pf->flags &= ~I40E_FLAG_UDP_FILTER_SYNC;
9638 
9639 	for (i = 0; i < I40E_MAX_PF_UDP_OFFLOAD_PORTS; i++) {
9640 		if (pf->pending_udp_bitmap & BIT_ULL(i)) {
9641 			pf->pending_udp_bitmap &= ~BIT_ULL(i);
9642 			port = pf->udp_ports[i].port;
9643 			if (port)
9644 				ret = i40e_aq_add_udp_tunnel(hw, port,
9645 							pf->udp_ports[i].type,
9646 							NULL, NULL);
9647 			else
9648 				ret = i40e_aq_del_udp_tunnel(hw, i, NULL);
9649 
9650 			if (ret) {
9651 				dev_info(&pf->pdev->dev,
9652 					 "%s %s port %d, index %d failed, err %s aq_err %s\n",
9653 					 i40e_tunnel_name(&pf->udp_ports[i]),
9654 					 port ? "add" : "delete",
9655 					 port, i,
9656 					 i40e_stat_str(&pf->hw, ret),
9657 					 i40e_aq_str(&pf->hw,
9658 						     pf->hw.aq.asq_last_status));
9659 				pf->udp_ports[i].port = 0;
9660 			}
9661 		}
9662 	}
9663 }
9664 
9665 /**
9666  * i40e_service_task - Run the driver's async subtasks
9667  * @work: pointer to work_struct containing our data
9668  **/
9669 static void i40e_service_task(struct work_struct *work)
9670 {
9671 	struct i40e_pf *pf = container_of(work,
9672 					  struct i40e_pf,
9673 					  service_task);
9674 	unsigned long start_time = jiffies;
9675 
9676 	/* don't bother with service tasks if a reset is in progress */
9677 	if (test_bit(__I40E_RESET_RECOVERY_PENDING, pf->state))
9678 		return;
9679 
9680 	if (test_and_set_bit(__I40E_SERVICE_SCHED, pf->state))
9681 		return;
9682 
9683 	i40e_detect_recover_hung(pf);
9684 	i40e_sync_filters_subtask(pf);
9685 	i40e_reset_subtask(pf);
9686 	i40e_handle_mdd_event(pf);
9687 	i40e_vc_process_vflr_event(pf);
9688 	i40e_watchdog_subtask(pf);
9689 	i40e_fdir_reinit_subtask(pf);
9690 	if (pf->flags & I40E_FLAG_CLIENT_RESET) {
9691 		/* Client subtask will reopen next time through. */
9692 		i40e_notify_client_of_netdev_close(pf->vsi[pf->lan_vsi], true);
9693 		pf->flags &= ~I40E_FLAG_CLIENT_RESET;
9694 	} else {
9695 		i40e_client_subtask(pf);
9696 		if (pf->flags & I40E_FLAG_CLIENT_L2_CHANGE) {
9697 			i40e_notify_client_of_l2_param_changes(
9698 							pf->vsi[pf->lan_vsi]);
9699 			pf->flags &= ~I40E_FLAG_CLIENT_L2_CHANGE;
9700 		}
9701 	}
9702 	i40e_sync_filters_subtask(pf);
9703 	i40e_sync_udp_filters_subtask(pf);
9704 	i40e_clean_adminq_subtask(pf);
9705 
9706 	/* flush memory to make sure state is correct before next watchdog */
9707 	smp_mb__before_atomic();
9708 	clear_bit(__I40E_SERVICE_SCHED, pf->state);
9709 
9710 	/* If the tasks have taken longer than one timer cycle or there
9711 	 * is more work to be done, reschedule the service task now
9712 	 * rather than wait for the timer to tick again.
9713 	 */
9714 	if (time_after(jiffies, (start_time + pf->service_timer_period)) ||
9715 	    test_bit(__I40E_ADMINQ_EVENT_PENDING, pf->state)		 ||
9716 	    test_bit(__I40E_MDD_EVENT_PENDING, pf->state)		 ||
9717 	    test_bit(__I40E_VFLR_EVENT_PENDING, pf->state))
9718 		i40e_service_event_schedule(pf);
9719 }
9720 
9721 /**
9722  * i40e_service_timer - timer callback
9723  * @data: pointer to PF struct
9724  **/
9725 static void i40e_service_timer(struct timer_list *t)
9726 {
9727 	struct i40e_pf *pf = from_timer(pf, t, service_timer);
9728 
9729 	mod_timer(&pf->service_timer,
9730 		  round_jiffies(jiffies + pf->service_timer_period));
9731 	i40e_service_event_schedule(pf);
9732 }
9733 
9734 /**
9735  * i40e_set_num_rings_in_vsi - Determine number of rings in the VSI
9736  * @vsi: the VSI being configured
9737  **/
9738 static int i40e_set_num_rings_in_vsi(struct i40e_vsi *vsi)
9739 {
9740 	struct i40e_pf *pf = vsi->back;
9741 
9742 	switch (vsi->type) {
9743 	case I40E_VSI_MAIN:
9744 		vsi->alloc_queue_pairs = pf->num_lan_qps;
9745 		vsi->num_desc = ALIGN(I40E_DEFAULT_NUM_DESCRIPTORS,
9746 				      I40E_REQ_DESCRIPTOR_MULTIPLE);
9747 		if (pf->flags & I40E_FLAG_MSIX_ENABLED)
9748 			vsi->num_q_vectors = pf->num_lan_msix;
9749 		else
9750 			vsi->num_q_vectors = 1;
9751 
9752 		break;
9753 
9754 	case I40E_VSI_FDIR:
9755 		vsi->alloc_queue_pairs = 1;
9756 		vsi->num_desc = ALIGN(I40E_FDIR_RING_COUNT,
9757 				      I40E_REQ_DESCRIPTOR_MULTIPLE);
9758 		vsi->num_q_vectors = pf->num_fdsb_msix;
9759 		break;
9760 
9761 	case I40E_VSI_VMDQ2:
9762 		vsi->alloc_queue_pairs = pf->num_vmdq_qps;
9763 		vsi->num_desc = ALIGN(I40E_DEFAULT_NUM_DESCRIPTORS,
9764 				      I40E_REQ_DESCRIPTOR_MULTIPLE);
9765 		vsi->num_q_vectors = pf->num_vmdq_msix;
9766 		break;
9767 
9768 	case I40E_VSI_SRIOV:
9769 		vsi->alloc_queue_pairs = pf->num_vf_qps;
9770 		vsi->num_desc = ALIGN(I40E_DEFAULT_NUM_DESCRIPTORS,
9771 				      I40E_REQ_DESCRIPTOR_MULTIPLE);
9772 		break;
9773 
9774 	default:
9775 		WARN_ON(1);
9776 		return -ENODATA;
9777 	}
9778 
9779 	return 0;
9780 }
9781 
9782 /**
9783  * i40e_vsi_alloc_arrays - Allocate queue and vector pointer arrays for the vsi
9784  * @vsi: VSI pointer
9785  * @alloc_qvectors: a bool to specify if q_vectors need to be allocated.
9786  *
9787  * On error: returns error code (negative)
9788  * On success: returns 0
9789  **/
9790 static int i40e_vsi_alloc_arrays(struct i40e_vsi *vsi, bool alloc_qvectors)
9791 {
9792 	struct i40e_ring **next_rings;
9793 	int size;
9794 	int ret = 0;
9795 
9796 	/* allocate memory for both Tx, XDP Tx and Rx ring pointers */
9797 	size = sizeof(struct i40e_ring *) * vsi->alloc_queue_pairs *
9798 	       (i40e_enabled_xdp_vsi(vsi) ? 3 : 2);
9799 	vsi->tx_rings = kzalloc(size, GFP_KERNEL);
9800 	if (!vsi->tx_rings)
9801 		return -ENOMEM;
9802 	next_rings = vsi->tx_rings + vsi->alloc_queue_pairs;
9803 	if (i40e_enabled_xdp_vsi(vsi)) {
9804 		vsi->xdp_rings = next_rings;
9805 		next_rings += vsi->alloc_queue_pairs;
9806 	}
9807 	vsi->rx_rings = next_rings;
9808 
9809 	if (alloc_qvectors) {
9810 		/* allocate memory for q_vector pointers */
9811 		size = sizeof(struct i40e_q_vector *) * vsi->num_q_vectors;
9812 		vsi->q_vectors = kzalloc(size, GFP_KERNEL);
9813 		if (!vsi->q_vectors) {
9814 			ret = -ENOMEM;
9815 			goto err_vectors;
9816 		}
9817 	}
9818 	return ret;
9819 
9820 err_vectors:
9821 	kfree(vsi->tx_rings);
9822 	return ret;
9823 }
9824 
9825 /**
9826  * i40e_vsi_mem_alloc - Allocates the next available struct vsi in the PF
9827  * @pf: board private structure
9828  * @type: type of VSI
9829  *
9830  * On error: returns error code (negative)
9831  * On success: returns vsi index in PF (positive)
9832  **/
9833 static int i40e_vsi_mem_alloc(struct i40e_pf *pf, enum i40e_vsi_type type)
9834 {
9835 	int ret = -ENODEV;
9836 	struct i40e_vsi *vsi;
9837 	int vsi_idx;
9838 	int i;
9839 
9840 	/* Need to protect the allocation of the VSIs at the PF level */
9841 	mutex_lock(&pf->switch_mutex);
9842 
9843 	/* VSI list may be fragmented if VSI creation/destruction has
9844 	 * been happening.  We can afford to do a quick scan to look
9845 	 * for any free VSIs in the list.
9846 	 *
9847 	 * find next empty vsi slot, looping back around if necessary
9848 	 */
9849 	i = pf->next_vsi;
9850 	while (i < pf->num_alloc_vsi && pf->vsi[i])
9851 		i++;
9852 	if (i >= pf->num_alloc_vsi) {
9853 		i = 0;
9854 		while (i < pf->next_vsi && pf->vsi[i])
9855 			i++;
9856 	}
9857 
9858 	if (i < pf->num_alloc_vsi && !pf->vsi[i]) {
9859 		vsi_idx = i;             /* Found one! */
9860 	} else {
9861 		ret = -ENODEV;
9862 		goto unlock_pf;  /* out of VSI slots! */
9863 	}
9864 	pf->next_vsi = ++i;
9865 
9866 	vsi = kzalloc(sizeof(*vsi), GFP_KERNEL);
9867 	if (!vsi) {
9868 		ret = -ENOMEM;
9869 		goto unlock_pf;
9870 	}
9871 	vsi->type = type;
9872 	vsi->back = pf;
9873 	set_bit(__I40E_VSI_DOWN, vsi->state);
9874 	vsi->flags = 0;
9875 	vsi->idx = vsi_idx;
9876 	vsi->int_rate_limit = 0;
9877 	vsi->rss_table_size = (vsi->type == I40E_VSI_MAIN) ?
9878 				pf->rss_table_size : 64;
9879 	vsi->netdev_registered = false;
9880 	vsi->work_limit = I40E_DEFAULT_IRQ_WORK;
9881 	hash_init(vsi->mac_filter_hash);
9882 	vsi->irqs_ready = false;
9883 
9884 	ret = i40e_set_num_rings_in_vsi(vsi);
9885 	if (ret)
9886 		goto err_rings;
9887 
9888 	ret = i40e_vsi_alloc_arrays(vsi, true);
9889 	if (ret)
9890 		goto err_rings;
9891 
9892 	/* Setup default MSIX irq handler for VSI */
9893 	i40e_vsi_setup_irqhandler(vsi, i40e_msix_clean_rings);
9894 
9895 	/* Initialize VSI lock */
9896 	spin_lock_init(&vsi->mac_filter_hash_lock);
9897 	pf->vsi[vsi_idx] = vsi;
9898 	ret = vsi_idx;
9899 	goto unlock_pf;
9900 
9901 err_rings:
9902 	pf->next_vsi = i - 1;
9903 	kfree(vsi);
9904 unlock_pf:
9905 	mutex_unlock(&pf->switch_mutex);
9906 	return ret;
9907 }
9908 
9909 /**
9910  * i40e_vsi_free_arrays - Free queue and vector pointer arrays for the VSI
9911  * @type: VSI pointer
9912  * @free_qvectors: a bool to specify if q_vectors need to be freed.
9913  *
9914  * On error: returns error code (negative)
9915  * On success: returns 0
9916  **/
9917 static void i40e_vsi_free_arrays(struct i40e_vsi *vsi, bool free_qvectors)
9918 {
9919 	/* free the ring and vector containers */
9920 	if (free_qvectors) {
9921 		kfree(vsi->q_vectors);
9922 		vsi->q_vectors = NULL;
9923 	}
9924 	kfree(vsi->tx_rings);
9925 	vsi->tx_rings = NULL;
9926 	vsi->rx_rings = NULL;
9927 	vsi->xdp_rings = NULL;
9928 }
9929 
9930 /**
9931  * i40e_clear_rss_config_user - clear the user configured RSS hash keys
9932  * and lookup table
9933  * @vsi: Pointer to VSI structure
9934  */
9935 static void i40e_clear_rss_config_user(struct i40e_vsi *vsi)
9936 {
9937 	if (!vsi)
9938 		return;
9939 
9940 	kfree(vsi->rss_hkey_user);
9941 	vsi->rss_hkey_user = NULL;
9942 
9943 	kfree(vsi->rss_lut_user);
9944 	vsi->rss_lut_user = NULL;
9945 }
9946 
9947 /**
9948  * i40e_vsi_clear - Deallocate the VSI provided
9949  * @vsi: the VSI being un-configured
9950  **/
9951 static int i40e_vsi_clear(struct i40e_vsi *vsi)
9952 {
9953 	struct i40e_pf *pf;
9954 
9955 	if (!vsi)
9956 		return 0;
9957 
9958 	if (!vsi->back)
9959 		goto free_vsi;
9960 	pf = vsi->back;
9961 
9962 	mutex_lock(&pf->switch_mutex);
9963 	if (!pf->vsi[vsi->idx]) {
9964 		dev_err(&pf->pdev->dev, "pf->vsi[%d] is NULL, just free vsi[%d](%p,type %d)\n",
9965 			vsi->idx, vsi->idx, vsi, vsi->type);
9966 		goto unlock_vsi;
9967 	}
9968 
9969 	if (pf->vsi[vsi->idx] != vsi) {
9970 		dev_err(&pf->pdev->dev,
9971 			"pf->vsi[%d](%p, type %d) != vsi[%d](%p,type %d): no free!\n",
9972 			pf->vsi[vsi->idx]->idx,
9973 			pf->vsi[vsi->idx],
9974 			pf->vsi[vsi->idx]->type,
9975 			vsi->idx, vsi, vsi->type);
9976 		goto unlock_vsi;
9977 	}
9978 
9979 	/* updates the PF for this cleared vsi */
9980 	i40e_put_lump(pf->qp_pile, vsi->base_queue, vsi->idx);
9981 	i40e_put_lump(pf->irq_pile, vsi->base_vector, vsi->idx);
9982 
9983 	i40e_vsi_free_arrays(vsi, true);
9984 	i40e_clear_rss_config_user(vsi);
9985 
9986 	pf->vsi[vsi->idx] = NULL;
9987 	if (vsi->idx < pf->next_vsi)
9988 		pf->next_vsi = vsi->idx;
9989 
9990 unlock_vsi:
9991 	mutex_unlock(&pf->switch_mutex);
9992 free_vsi:
9993 	kfree(vsi);
9994 
9995 	return 0;
9996 }
9997 
9998 /**
9999  * i40e_vsi_clear_rings - Deallocates the Rx and Tx rings for the provided VSI
10000  * @vsi: the VSI being cleaned
10001  **/
10002 static void i40e_vsi_clear_rings(struct i40e_vsi *vsi)
10003 {
10004 	int i;
10005 
10006 	if (vsi->tx_rings && vsi->tx_rings[0]) {
10007 		for (i = 0; i < vsi->alloc_queue_pairs; i++) {
10008 			kfree_rcu(vsi->tx_rings[i], rcu);
10009 			vsi->tx_rings[i] = NULL;
10010 			vsi->rx_rings[i] = NULL;
10011 			if (vsi->xdp_rings)
10012 				vsi->xdp_rings[i] = NULL;
10013 		}
10014 	}
10015 }
10016 
10017 /**
10018  * i40e_alloc_rings - Allocates the Rx and Tx rings for the provided VSI
10019  * @vsi: the VSI being configured
10020  **/
10021 static int i40e_alloc_rings(struct i40e_vsi *vsi)
10022 {
10023 	int i, qpv = i40e_enabled_xdp_vsi(vsi) ? 3 : 2;
10024 	struct i40e_pf *pf = vsi->back;
10025 	struct i40e_ring *ring;
10026 
10027 	/* Set basic values in the rings to be used later during open() */
10028 	for (i = 0; i < vsi->alloc_queue_pairs; i++) {
10029 		/* allocate space for both Tx and Rx in one shot */
10030 		ring = kcalloc(qpv, sizeof(struct i40e_ring), GFP_KERNEL);
10031 		if (!ring)
10032 			goto err_out;
10033 
10034 		ring->queue_index = i;
10035 		ring->reg_idx = vsi->base_queue + i;
10036 		ring->ring_active = false;
10037 		ring->vsi = vsi;
10038 		ring->netdev = vsi->netdev;
10039 		ring->dev = &pf->pdev->dev;
10040 		ring->count = vsi->num_desc;
10041 		ring->size = 0;
10042 		ring->dcb_tc = 0;
10043 		if (vsi->back->hw_features & I40E_HW_WB_ON_ITR_CAPABLE)
10044 			ring->flags = I40E_TXR_FLAGS_WB_ON_ITR;
10045 		ring->tx_itr_setting = pf->tx_itr_default;
10046 		vsi->tx_rings[i] = ring++;
10047 
10048 		if (!i40e_enabled_xdp_vsi(vsi))
10049 			goto setup_rx;
10050 
10051 		ring->queue_index = vsi->alloc_queue_pairs + i;
10052 		ring->reg_idx = vsi->base_queue + ring->queue_index;
10053 		ring->ring_active = false;
10054 		ring->vsi = vsi;
10055 		ring->netdev = NULL;
10056 		ring->dev = &pf->pdev->dev;
10057 		ring->count = vsi->num_desc;
10058 		ring->size = 0;
10059 		ring->dcb_tc = 0;
10060 		if (vsi->back->hw_features & I40E_HW_WB_ON_ITR_CAPABLE)
10061 			ring->flags = I40E_TXR_FLAGS_WB_ON_ITR;
10062 		set_ring_xdp(ring);
10063 		ring->tx_itr_setting = pf->tx_itr_default;
10064 		vsi->xdp_rings[i] = ring++;
10065 
10066 setup_rx:
10067 		ring->queue_index = i;
10068 		ring->reg_idx = vsi->base_queue + i;
10069 		ring->ring_active = false;
10070 		ring->vsi = vsi;
10071 		ring->netdev = vsi->netdev;
10072 		ring->dev = &pf->pdev->dev;
10073 		ring->count = vsi->num_desc;
10074 		ring->size = 0;
10075 		ring->dcb_tc = 0;
10076 		ring->rx_itr_setting = pf->rx_itr_default;
10077 		vsi->rx_rings[i] = ring;
10078 	}
10079 
10080 	return 0;
10081 
10082 err_out:
10083 	i40e_vsi_clear_rings(vsi);
10084 	return -ENOMEM;
10085 }
10086 
10087 /**
10088  * i40e_reserve_msix_vectors - Reserve MSI-X vectors in the kernel
10089  * @pf: board private structure
10090  * @vectors: the number of MSI-X vectors to request
10091  *
10092  * Returns the number of vectors reserved, or error
10093  **/
10094 static int i40e_reserve_msix_vectors(struct i40e_pf *pf, int vectors)
10095 {
10096 	vectors = pci_enable_msix_range(pf->pdev, pf->msix_entries,
10097 					I40E_MIN_MSIX, vectors);
10098 	if (vectors < 0) {
10099 		dev_info(&pf->pdev->dev,
10100 			 "MSI-X vector reservation failed: %d\n", vectors);
10101 		vectors = 0;
10102 	}
10103 
10104 	return vectors;
10105 }
10106 
10107 /**
10108  * i40e_init_msix - Setup the MSIX capability
10109  * @pf: board private structure
10110  *
10111  * Work with the OS to set up the MSIX vectors needed.
10112  *
10113  * Returns the number of vectors reserved or negative on failure
10114  **/
10115 static int i40e_init_msix(struct i40e_pf *pf)
10116 {
10117 	struct i40e_hw *hw = &pf->hw;
10118 	int cpus, extra_vectors;
10119 	int vectors_left;
10120 	int v_budget, i;
10121 	int v_actual;
10122 	int iwarp_requested = 0;
10123 
10124 	if (!(pf->flags & I40E_FLAG_MSIX_ENABLED))
10125 		return -ENODEV;
10126 
10127 	/* The number of vectors we'll request will be comprised of:
10128 	 *   - Add 1 for "other" cause for Admin Queue events, etc.
10129 	 *   - The number of LAN queue pairs
10130 	 *	- Queues being used for RSS.
10131 	 *		We don't need as many as max_rss_size vectors.
10132 	 *		use rss_size instead in the calculation since that
10133 	 *		is governed by number of cpus in the system.
10134 	 *	- assumes symmetric Tx/Rx pairing
10135 	 *   - The number of VMDq pairs
10136 	 *   - The CPU count within the NUMA node if iWARP is enabled
10137 	 * Once we count this up, try the request.
10138 	 *
10139 	 * If we can't get what we want, we'll simplify to nearly nothing
10140 	 * and try again.  If that still fails, we punt.
10141 	 */
10142 	vectors_left = hw->func_caps.num_msix_vectors;
10143 	v_budget = 0;
10144 
10145 	/* reserve one vector for miscellaneous handler */
10146 	if (vectors_left) {
10147 		v_budget++;
10148 		vectors_left--;
10149 	}
10150 
10151 	/* reserve some vectors for the main PF traffic queues. Initially we
10152 	 * only reserve at most 50% of the available vectors, in the case that
10153 	 * the number of online CPUs is large. This ensures that we can enable
10154 	 * extra features as well. Once we've enabled the other features, we
10155 	 * will use any remaining vectors to reach as close as we can to the
10156 	 * number of online CPUs.
10157 	 */
10158 	cpus = num_online_cpus();
10159 	pf->num_lan_msix = min_t(int, cpus, vectors_left / 2);
10160 	vectors_left -= pf->num_lan_msix;
10161 
10162 	/* reserve one vector for sideband flow director */
10163 	if (pf->flags & I40E_FLAG_FD_SB_ENABLED) {
10164 		if (vectors_left) {
10165 			pf->num_fdsb_msix = 1;
10166 			v_budget++;
10167 			vectors_left--;
10168 		} else {
10169 			pf->num_fdsb_msix = 0;
10170 		}
10171 	}
10172 
10173 	/* can we reserve enough for iWARP? */
10174 	if (pf->flags & I40E_FLAG_IWARP_ENABLED) {
10175 		iwarp_requested = pf->num_iwarp_msix;
10176 
10177 		if (!vectors_left)
10178 			pf->num_iwarp_msix = 0;
10179 		else if (vectors_left < pf->num_iwarp_msix)
10180 			pf->num_iwarp_msix = 1;
10181 		v_budget += pf->num_iwarp_msix;
10182 		vectors_left -= pf->num_iwarp_msix;
10183 	}
10184 
10185 	/* any vectors left over go for VMDq support */
10186 	if (pf->flags & I40E_FLAG_VMDQ_ENABLED) {
10187 		int vmdq_vecs_wanted = pf->num_vmdq_vsis * pf->num_vmdq_qps;
10188 		int vmdq_vecs = min_t(int, vectors_left, vmdq_vecs_wanted);
10189 
10190 		if (!vectors_left) {
10191 			pf->num_vmdq_msix = 0;
10192 			pf->num_vmdq_qps = 0;
10193 		} else {
10194 			/* if we're short on vectors for what's desired, we limit
10195 			 * the queues per vmdq.  If this is still more than are
10196 			 * available, the user will need to change the number of
10197 			 * queues/vectors used by the PF later with the ethtool
10198 			 * channels command
10199 			 */
10200 			if (vmdq_vecs < vmdq_vecs_wanted)
10201 				pf->num_vmdq_qps = 1;
10202 			pf->num_vmdq_msix = pf->num_vmdq_qps;
10203 
10204 			v_budget += vmdq_vecs;
10205 			vectors_left -= vmdq_vecs;
10206 		}
10207 	}
10208 
10209 	/* On systems with a large number of SMP cores, we previously limited
10210 	 * the number of vectors for num_lan_msix to be at most 50% of the
10211 	 * available vectors, to allow for other features. Now, we add back
10212 	 * the remaining vectors. However, we ensure that the total
10213 	 * num_lan_msix will not exceed num_online_cpus(). To do this, we
10214 	 * calculate the number of vectors we can add without going over the
10215 	 * cap of CPUs. For systems with a small number of CPUs this will be
10216 	 * zero.
10217 	 */
10218 	extra_vectors = min_t(int, cpus - pf->num_lan_msix, vectors_left);
10219 	pf->num_lan_msix += extra_vectors;
10220 	vectors_left -= extra_vectors;
10221 
10222 	WARN(vectors_left < 0,
10223 	     "Calculation of remaining vectors underflowed. This is an accounting bug when determining total MSI-X vectors.\n");
10224 
10225 	v_budget += pf->num_lan_msix;
10226 	pf->msix_entries = kcalloc(v_budget, sizeof(struct msix_entry),
10227 				   GFP_KERNEL);
10228 	if (!pf->msix_entries)
10229 		return -ENOMEM;
10230 
10231 	for (i = 0; i < v_budget; i++)
10232 		pf->msix_entries[i].entry = i;
10233 	v_actual = i40e_reserve_msix_vectors(pf, v_budget);
10234 
10235 	if (v_actual < I40E_MIN_MSIX) {
10236 		pf->flags &= ~I40E_FLAG_MSIX_ENABLED;
10237 		kfree(pf->msix_entries);
10238 		pf->msix_entries = NULL;
10239 		pci_disable_msix(pf->pdev);
10240 		return -ENODEV;
10241 
10242 	} else if (v_actual == I40E_MIN_MSIX) {
10243 		/* Adjust for minimal MSIX use */
10244 		pf->num_vmdq_vsis = 0;
10245 		pf->num_vmdq_qps = 0;
10246 		pf->num_lan_qps = 1;
10247 		pf->num_lan_msix = 1;
10248 
10249 	} else if (v_actual != v_budget) {
10250 		/* If we have limited resources, we will start with no vectors
10251 		 * for the special features and then allocate vectors to some
10252 		 * of these features based on the policy and at the end disable
10253 		 * the features that did not get any vectors.
10254 		 */
10255 		int vec;
10256 
10257 		dev_info(&pf->pdev->dev,
10258 			 "MSI-X vector limit reached with %d, wanted %d, attempting to redistribute vectors\n",
10259 			 v_actual, v_budget);
10260 		/* reserve the misc vector */
10261 		vec = v_actual - 1;
10262 
10263 		/* Scale vector usage down */
10264 		pf->num_vmdq_msix = 1;    /* force VMDqs to only one vector */
10265 		pf->num_vmdq_vsis = 1;
10266 		pf->num_vmdq_qps = 1;
10267 
10268 		/* partition out the remaining vectors */
10269 		switch (vec) {
10270 		case 2:
10271 			pf->num_lan_msix = 1;
10272 			break;
10273 		case 3:
10274 			if (pf->flags & I40E_FLAG_IWARP_ENABLED) {
10275 				pf->num_lan_msix = 1;
10276 				pf->num_iwarp_msix = 1;
10277 			} else {
10278 				pf->num_lan_msix = 2;
10279 			}
10280 			break;
10281 		default:
10282 			if (pf->flags & I40E_FLAG_IWARP_ENABLED) {
10283 				pf->num_iwarp_msix = min_t(int, (vec / 3),
10284 						 iwarp_requested);
10285 				pf->num_vmdq_vsis = min_t(int, (vec / 3),
10286 						  I40E_DEFAULT_NUM_VMDQ_VSI);
10287 			} else {
10288 				pf->num_vmdq_vsis = min_t(int, (vec / 2),
10289 						  I40E_DEFAULT_NUM_VMDQ_VSI);
10290 			}
10291 			if (pf->flags & I40E_FLAG_FD_SB_ENABLED) {
10292 				pf->num_fdsb_msix = 1;
10293 				vec--;
10294 			}
10295 			pf->num_lan_msix = min_t(int,
10296 			       (vec - (pf->num_iwarp_msix + pf->num_vmdq_vsis)),
10297 							      pf->num_lan_msix);
10298 			pf->num_lan_qps = pf->num_lan_msix;
10299 			break;
10300 		}
10301 	}
10302 
10303 	if ((pf->flags & I40E_FLAG_FD_SB_ENABLED) &&
10304 	    (pf->num_fdsb_msix == 0)) {
10305 		dev_info(&pf->pdev->dev, "Sideband Flowdir disabled, not enough MSI-X vectors\n");
10306 		pf->flags &= ~I40E_FLAG_FD_SB_ENABLED;
10307 		pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
10308 	}
10309 	if ((pf->flags & I40E_FLAG_VMDQ_ENABLED) &&
10310 	    (pf->num_vmdq_msix == 0)) {
10311 		dev_info(&pf->pdev->dev, "VMDq disabled, not enough MSI-X vectors\n");
10312 		pf->flags &= ~I40E_FLAG_VMDQ_ENABLED;
10313 	}
10314 
10315 	if ((pf->flags & I40E_FLAG_IWARP_ENABLED) &&
10316 	    (pf->num_iwarp_msix == 0)) {
10317 		dev_info(&pf->pdev->dev, "IWARP disabled, not enough MSI-X vectors\n");
10318 		pf->flags &= ~I40E_FLAG_IWARP_ENABLED;
10319 	}
10320 	i40e_debug(&pf->hw, I40E_DEBUG_INIT,
10321 		   "MSI-X vector distribution: PF %d, VMDq %d, FDSB %d, iWARP %d\n",
10322 		   pf->num_lan_msix,
10323 		   pf->num_vmdq_msix * pf->num_vmdq_vsis,
10324 		   pf->num_fdsb_msix,
10325 		   pf->num_iwarp_msix);
10326 
10327 	return v_actual;
10328 }
10329 
10330 /**
10331  * i40e_vsi_alloc_q_vector - Allocate memory for a single interrupt vector
10332  * @vsi: the VSI being configured
10333  * @v_idx: index of the vector in the vsi struct
10334  * @cpu: cpu to be used on affinity_mask
10335  *
10336  * We allocate one q_vector.  If allocation fails we return -ENOMEM.
10337  **/
10338 static int i40e_vsi_alloc_q_vector(struct i40e_vsi *vsi, int v_idx, int cpu)
10339 {
10340 	struct i40e_q_vector *q_vector;
10341 
10342 	/* allocate q_vector */
10343 	q_vector = kzalloc(sizeof(struct i40e_q_vector), GFP_KERNEL);
10344 	if (!q_vector)
10345 		return -ENOMEM;
10346 
10347 	q_vector->vsi = vsi;
10348 	q_vector->v_idx = v_idx;
10349 	cpumask_copy(&q_vector->affinity_mask, cpu_possible_mask);
10350 
10351 	if (vsi->netdev)
10352 		netif_napi_add(vsi->netdev, &q_vector->napi,
10353 			       i40e_napi_poll, NAPI_POLL_WEIGHT);
10354 
10355 	q_vector->rx.latency_range = I40E_LOW_LATENCY;
10356 	q_vector->tx.latency_range = I40E_LOW_LATENCY;
10357 
10358 	/* tie q_vector and vsi together */
10359 	vsi->q_vectors[v_idx] = q_vector;
10360 
10361 	return 0;
10362 }
10363 
10364 /**
10365  * i40e_vsi_alloc_q_vectors - Allocate memory for interrupt vectors
10366  * @vsi: the VSI being configured
10367  *
10368  * We allocate one q_vector per queue interrupt.  If allocation fails we
10369  * return -ENOMEM.
10370  **/
10371 static int i40e_vsi_alloc_q_vectors(struct i40e_vsi *vsi)
10372 {
10373 	struct i40e_pf *pf = vsi->back;
10374 	int err, v_idx, num_q_vectors, current_cpu;
10375 
10376 	/* if not MSIX, give the one vector only to the LAN VSI */
10377 	if (pf->flags & I40E_FLAG_MSIX_ENABLED)
10378 		num_q_vectors = vsi->num_q_vectors;
10379 	else if (vsi == pf->vsi[pf->lan_vsi])
10380 		num_q_vectors = 1;
10381 	else
10382 		return -EINVAL;
10383 
10384 	current_cpu = cpumask_first(cpu_online_mask);
10385 
10386 	for (v_idx = 0; v_idx < num_q_vectors; v_idx++) {
10387 		err = i40e_vsi_alloc_q_vector(vsi, v_idx, current_cpu);
10388 		if (err)
10389 			goto err_out;
10390 		current_cpu = cpumask_next(current_cpu, cpu_online_mask);
10391 		if (unlikely(current_cpu >= nr_cpu_ids))
10392 			current_cpu = cpumask_first(cpu_online_mask);
10393 	}
10394 
10395 	return 0;
10396 
10397 err_out:
10398 	while (v_idx--)
10399 		i40e_free_q_vector(vsi, v_idx);
10400 
10401 	return err;
10402 }
10403 
10404 /**
10405  * i40e_init_interrupt_scheme - Determine proper interrupt scheme
10406  * @pf: board private structure to initialize
10407  **/
10408 static int i40e_init_interrupt_scheme(struct i40e_pf *pf)
10409 {
10410 	int vectors = 0;
10411 	ssize_t size;
10412 
10413 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
10414 		vectors = i40e_init_msix(pf);
10415 		if (vectors < 0) {
10416 			pf->flags &= ~(I40E_FLAG_MSIX_ENABLED	|
10417 				       I40E_FLAG_IWARP_ENABLED	|
10418 				       I40E_FLAG_RSS_ENABLED	|
10419 				       I40E_FLAG_DCB_CAPABLE	|
10420 				       I40E_FLAG_DCB_ENABLED	|
10421 				       I40E_FLAG_SRIOV_ENABLED	|
10422 				       I40E_FLAG_FD_SB_ENABLED	|
10423 				       I40E_FLAG_FD_ATR_ENABLED	|
10424 				       I40E_FLAG_VMDQ_ENABLED);
10425 			pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
10426 
10427 			/* rework the queue expectations without MSIX */
10428 			i40e_determine_queue_usage(pf);
10429 		}
10430 	}
10431 
10432 	if (!(pf->flags & I40E_FLAG_MSIX_ENABLED) &&
10433 	    (pf->flags & I40E_FLAG_MSI_ENABLED)) {
10434 		dev_info(&pf->pdev->dev, "MSI-X not available, trying MSI\n");
10435 		vectors = pci_enable_msi(pf->pdev);
10436 		if (vectors < 0) {
10437 			dev_info(&pf->pdev->dev, "MSI init failed - %d\n",
10438 				 vectors);
10439 			pf->flags &= ~I40E_FLAG_MSI_ENABLED;
10440 		}
10441 		vectors = 1;  /* one MSI or Legacy vector */
10442 	}
10443 
10444 	if (!(pf->flags & (I40E_FLAG_MSIX_ENABLED | I40E_FLAG_MSI_ENABLED)))
10445 		dev_info(&pf->pdev->dev, "MSI-X and MSI not available, falling back to Legacy IRQ\n");
10446 
10447 	/* set up vector assignment tracking */
10448 	size = sizeof(struct i40e_lump_tracking) + (sizeof(u16) * vectors);
10449 	pf->irq_pile = kzalloc(size, GFP_KERNEL);
10450 	if (!pf->irq_pile) {
10451 		dev_err(&pf->pdev->dev, "error allocating irq_pile memory\n");
10452 		return -ENOMEM;
10453 	}
10454 	pf->irq_pile->num_entries = vectors;
10455 	pf->irq_pile->search_hint = 0;
10456 
10457 	/* track first vector for misc interrupts, ignore return */
10458 	(void)i40e_get_lump(pf, pf->irq_pile, 1, I40E_PILE_VALID_BIT - 1);
10459 
10460 	return 0;
10461 }
10462 
10463 /**
10464  * i40e_restore_interrupt_scheme - Restore the interrupt scheme
10465  * @pf: private board data structure
10466  *
10467  * Restore the interrupt scheme that was cleared when we suspended the
10468  * device. This should be called during resume to re-allocate the q_vectors
10469  * and reacquire IRQs.
10470  */
10471 static int i40e_restore_interrupt_scheme(struct i40e_pf *pf)
10472 {
10473 	int err, i;
10474 
10475 	/* We cleared the MSI and MSI-X flags when disabling the old interrupt
10476 	 * scheme. We need to re-enabled them here in order to attempt to
10477 	 * re-acquire the MSI or MSI-X vectors
10478 	 */
10479 	pf->flags |= (I40E_FLAG_MSIX_ENABLED | I40E_FLAG_MSI_ENABLED);
10480 
10481 	err = i40e_init_interrupt_scheme(pf);
10482 	if (err)
10483 		return err;
10484 
10485 	/* Now that we've re-acquired IRQs, we need to remap the vectors and
10486 	 * rings together again.
10487 	 */
10488 	for (i = 0; i < pf->num_alloc_vsi; i++) {
10489 		if (pf->vsi[i]) {
10490 			err = i40e_vsi_alloc_q_vectors(pf->vsi[i]);
10491 			if (err)
10492 				goto err_unwind;
10493 			i40e_vsi_map_rings_to_vectors(pf->vsi[i]);
10494 		}
10495 	}
10496 
10497 	err = i40e_setup_misc_vector(pf);
10498 	if (err)
10499 		goto err_unwind;
10500 
10501 	return 0;
10502 
10503 err_unwind:
10504 	while (i--) {
10505 		if (pf->vsi[i])
10506 			i40e_vsi_free_q_vectors(pf->vsi[i]);
10507 	}
10508 
10509 	return err;
10510 }
10511 
10512 /**
10513  * i40e_setup_misc_vector - Setup the misc vector to handle non queue events
10514  * @pf: board private structure
10515  *
10516  * This sets up the handler for MSIX 0, which is used to manage the
10517  * non-queue interrupts, e.g. AdminQ and errors.  This is not used
10518  * when in MSI or Legacy interrupt mode.
10519  **/
10520 static int i40e_setup_misc_vector(struct i40e_pf *pf)
10521 {
10522 	struct i40e_hw *hw = &pf->hw;
10523 	int err = 0;
10524 
10525 	/* Only request the IRQ once, the first time through. */
10526 	if (!test_and_set_bit(__I40E_MISC_IRQ_REQUESTED, pf->state)) {
10527 		err = request_irq(pf->msix_entries[0].vector,
10528 				  i40e_intr, 0, pf->int_name, pf);
10529 		if (err) {
10530 			clear_bit(__I40E_MISC_IRQ_REQUESTED, pf->state);
10531 			dev_info(&pf->pdev->dev,
10532 				 "request_irq for %s failed: %d\n",
10533 				 pf->int_name, err);
10534 			return -EFAULT;
10535 		}
10536 	}
10537 
10538 	i40e_enable_misc_int_causes(pf);
10539 
10540 	/* associate no queues to the misc vector */
10541 	wr32(hw, I40E_PFINT_LNKLST0, I40E_QUEUE_END_OF_LIST);
10542 	wr32(hw, I40E_PFINT_ITR0(I40E_RX_ITR), I40E_ITR_8K);
10543 
10544 	i40e_flush(hw);
10545 
10546 	i40e_irq_dynamic_enable_icr0(pf);
10547 
10548 	return err;
10549 }
10550 
10551 /**
10552  * i40e_get_rss_aq - Get RSS keys and lut by using AQ commands
10553  * @vsi: Pointer to vsi structure
10554  * @seed: Buffter to store the hash keys
10555  * @lut: Buffer to store the lookup table entries
10556  * @lut_size: Size of buffer to store the lookup table entries
10557  *
10558  * Return 0 on success, negative on failure
10559  */
10560 static int i40e_get_rss_aq(struct i40e_vsi *vsi, const u8 *seed,
10561 			   u8 *lut, u16 lut_size)
10562 {
10563 	struct i40e_pf *pf = vsi->back;
10564 	struct i40e_hw *hw = &pf->hw;
10565 	int ret = 0;
10566 
10567 	if (seed) {
10568 		ret = i40e_aq_get_rss_key(hw, vsi->id,
10569 			(struct i40e_aqc_get_set_rss_key_data *)seed);
10570 		if (ret) {
10571 			dev_info(&pf->pdev->dev,
10572 				 "Cannot get RSS key, err %s aq_err %s\n",
10573 				 i40e_stat_str(&pf->hw, ret),
10574 				 i40e_aq_str(&pf->hw,
10575 					     pf->hw.aq.asq_last_status));
10576 			return ret;
10577 		}
10578 	}
10579 
10580 	if (lut) {
10581 		bool pf_lut = vsi->type == I40E_VSI_MAIN ? true : false;
10582 
10583 		ret = i40e_aq_get_rss_lut(hw, vsi->id, pf_lut, lut, lut_size);
10584 		if (ret) {
10585 			dev_info(&pf->pdev->dev,
10586 				 "Cannot get RSS lut, err %s aq_err %s\n",
10587 				 i40e_stat_str(&pf->hw, ret),
10588 				 i40e_aq_str(&pf->hw,
10589 					     pf->hw.aq.asq_last_status));
10590 			return ret;
10591 		}
10592 	}
10593 
10594 	return ret;
10595 }
10596 
10597 /**
10598  * i40e_config_rss_reg - Configure RSS keys and lut by writing registers
10599  * @vsi: Pointer to vsi structure
10600  * @seed: RSS hash seed
10601  * @lut: Lookup table
10602  * @lut_size: Lookup table size
10603  *
10604  * Returns 0 on success, negative on failure
10605  **/
10606 static int i40e_config_rss_reg(struct i40e_vsi *vsi, const u8 *seed,
10607 			       const u8 *lut, u16 lut_size)
10608 {
10609 	struct i40e_pf *pf = vsi->back;
10610 	struct i40e_hw *hw = &pf->hw;
10611 	u16 vf_id = vsi->vf_id;
10612 	u8 i;
10613 
10614 	/* Fill out hash function seed */
10615 	if (seed) {
10616 		u32 *seed_dw = (u32 *)seed;
10617 
10618 		if (vsi->type == I40E_VSI_MAIN) {
10619 			for (i = 0; i <= I40E_PFQF_HKEY_MAX_INDEX; i++)
10620 				wr32(hw, I40E_PFQF_HKEY(i), seed_dw[i]);
10621 		} else if (vsi->type == I40E_VSI_SRIOV) {
10622 			for (i = 0; i <= I40E_VFQF_HKEY1_MAX_INDEX; i++)
10623 				wr32(hw, I40E_VFQF_HKEY1(i, vf_id), seed_dw[i]);
10624 		} else {
10625 			dev_err(&pf->pdev->dev, "Cannot set RSS seed - invalid VSI type\n");
10626 		}
10627 	}
10628 
10629 	if (lut) {
10630 		u32 *lut_dw = (u32 *)lut;
10631 
10632 		if (vsi->type == I40E_VSI_MAIN) {
10633 			if (lut_size != I40E_HLUT_ARRAY_SIZE)
10634 				return -EINVAL;
10635 			for (i = 0; i <= I40E_PFQF_HLUT_MAX_INDEX; i++)
10636 				wr32(hw, I40E_PFQF_HLUT(i), lut_dw[i]);
10637 		} else if (vsi->type == I40E_VSI_SRIOV) {
10638 			if (lut_size != I40E_VF_HLUT_ARRAY_SIZE)
10639 				return -EINVAL;
10640 			for (i = 0; i <= I40E_VFQF_HLUT_MAX_INDEX; i++)
10641 				wr32(hw, I40E_VFQF_HLUT1(i, vf_id), lut_dw[i]);
10642 		} else {
10643 			dev_err(&pf->pdev->dev, "Cannot set RSS LUT - invalid VSI type\n");
10644 		}
10645 	}
10646 	i40e_flush(hw);
10647 
10648 	return 0;
10649 }
10650 
10651 /**
10652  * i40e_get_rss_reg - Get the RSS keys and lut by reading registers
10653  * @vsi: Pointer to VSI structure
10654  * @seed: Buffer to store the keys
10655  * @lut: Buffer to store the lookup table entries
10656  * @lut_size: Size of buffer to store the lookup table entries
10657  *
10658  * Returns 0 on success, negative on failure
10659  */
10660 static int i40e_get_rss_reg(struct i40e_vsi *vsi, u8 *seed,
10661 			    u8 *lut, u16 lut_size)
10662 {
10663 	struct i40e_pf *pf = vsi->back;
10664 	struct i40e_hw *hw = &pf->hw;
10665 	u16 i;
10666 
10667 	if (seed) {
10668 		u32 *seed_dw = (u32 *)seed;
10669 
10670 		for (i = 0; i <= I40E_PFQF_HKEY_MAX_INDEX; i++)
10671 			seed_dw[i] = i40e_read_rx_ctl(hw, I40E_PFQF_HKEY(i));
10672 	}
10673 	if (lut) {
10674 		u32 *lut_dw = (u32 *)lut;
10675 
10676 		if (lut_size != I40E_HLUT_ARRAY_SIZE)
10677 			return -EINVAL;
10678 		for (i = 0; i <= I40E_PFQF_HLUT_MAX_INDEX; i++)
10679 			lut_dw[i] = rd32(hw, I40E_PFQF_HLUT(i));
10680 	}
10681 
10682 	return 0;
10683 }
10684 
10685 /**
10686  * i40e_config_rss - Configure RSS keys and lut
10687  * @vsi: Pointer to VSI structure
10688  * @seed: RSS hash seed
10689  * @lut: Lookup table
10690  * @lut_size: Lookup table size
10691  *
10692  * Returns 0 on success, negative on failure
10693  */
10694 int i40e_config_rss(struct i40e_vsi *vsi, u8 *seed, u8 *lut, u16 lut_size)
10695 {
10696 	struct i40e_pf *pf = vsi->back;
10697 
10698 	if (pf->hw_features & I40E_HW_RSS_AQ_CAPABLE)
10699 		return i40e_config_rss_aq(vsi, seed, lut, lut_size);
10700 	else
10701 		return i40e_config_rss_reg(vsi, seed, lut, lut_size);
10702 }
10703 
10704 /**
10705  * i40e_get_rss - Get RSS keys and lut
10706  * @vsi: Pointer to VSI structure
10707  * @seed: Buffer to store the keys
10708  * @lut: Buffer to store the lookup table entries
10709  * lut_size: Size of buffer to store the lookup table entries
10710  *
10711  * Returns 0 on success, negative on failure
10712  */
10713 int i40e_get_rss(struct i40e_vsi *vsi, u8 *seed, u8 *lut, u16 lut_size)
10714 {
10715 	struct i40e_pf *pf = vsi->back;
10716 
10717 	if (pf->hw_features & I40E_HW_RSS_AQ_CAPABLE)
10718 		return i40e_get_rss_aq(vsi, seed, lut, lut_size);
10719 	else
10720 		return i40e_get_rss_reg(vsi, seed, lut, lut_size);
10721 }
10722 
10723 /**
10724  * i40e_fill_rss_lut - Fill the RSS lookup table with default values
10725  * @pf: Pointer to board private structure
10726  * @lut: Lookup table
10727  * @rss_table_size: Lookup table size
10728  * @rss_size: Range of queue number for hashing
10729  */
10730 void i40e_fill_rss_lut(struct i40e_pf *pf, u8 *lut,
10731 		       u16 rss_table_size, u16 rss_size)
10732 {
10733 	u16 i;
10734 
10735 	for (i = 0; i < rss_table_size; i++)
10736 		lut[i] = i % rss_size;
10737 }
10738 
10739 /**
10740  * i40e_pf_config_rss - Prepare for RSS if used
10741  * @pf: board private structure
10742  **/
10743 static int i40e_pf_config_rss(struct i40e_pf *pf)
10744 {
10745 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
10746 	u8 seed[I40E_HKEY_ARRAY_SIZE];
10747 	u8 *lut;
10748 	struct i40e_hw *hw = &pf->hw;
10749 	u32 reg_val;
10750 	u64 hena;
10751 	int ret;
10752 
10753 	/* By default we enable TCP/UDP with IPv4/IPv6 ptypes */
10754 	hena = (u64)i40e_read_rx_ctl(hw, I40E_PFQF_HENA(0)) |
10755 		((u64)i40e_read_rx_ctl(hw, I40E_PFQF_HENA(1)) << 32);
10756 	hena |= i40e_pf_get_default_rss_hena(pf);
10757 
10758 	i40e_write_rx_ctl(hw, I40E_PFQF_HENA(0), (u32)hena);
10759 	i40e_write_rx_ctl(hw, I40E_PFQF_HENA(1), (u32)(hena >> 32));
10760 
10761 	/* Determine the RSS table size based on the hardware capabilities */
10762 	reg_val = i40e_read_rx_ctl(hw, I40E_PFQF_CTL_0);
10763 	reg_val = (pf->rss_table_size == 512) ?
10764 			(reg_val | I40E_PFQF_CTL_0_HASHLUTSIZE_512) :
10765 			(reg_val & ~I40E_PFQF_CTL_0_HASHLUTSIZE_512);
10766 	i40e_write_rx_ctl(hw, I40E_PFQF_CTL_0, reg_val);
10767 
10768 	/* Determine the RSS size of the VSI */
10769 	if (!vsi->rss_size) {
10770 		u16 qcount;
10771 
10772 		qcount = vsi->num_queue_pairs / vsi->tc_config.numtc;
10773 		vsi->rss_size = min_t(int, pf->alloc_rss_size, qcount);
10774 	}
10775 	if (!vsi->rss_size)
10776 		return -EINVAL;
10777 
10778 	lut = kzalloc(vsi->rss_table_size, GFP_KERNEL);
10779 	if (!lut)
10780 		return -ENOMEM;
10781 
10782 	/* Use user configured lut if there is one, otherwise use default */
10783 	if (vsi->rss_lut_user)
10784 		memcpy(lut, vsi->rss_lut_user, vsi->rss_table_size);
10785 	else
10786 		i40e_fill_rss_lut(pf, lut, vsi->rss_table_size, vsi->rss_size);
10787 
10788 	/* Use user configured hash key if there is one, otherwise
10789 	 * use default.
10790 	 */
10791 	if (vsi->rss_hkey_user)
10792 		memcpy(seed, vsi->rss_hkey_user, I40E_HKEY_ARRAY_SIZE);
10793 	else
10794 		netdev_rss_key_fill((void *)seed, I40E_HKEY_ARRAY_SIZE);
10795 	ret = i40e_config_rss(vsi, seed, lut, vsi->rss_table_size);
10796 	kfree(lut);
10797 
10798 	return ret;
10799 }
10800 
10801 /**
10802  * i40e_reconfig_rss_queues - change number of queues for rss and rebuild
10803  * @pf: board private structure
10804  * @queue_count: the requested queue count for rss.
10805  *
10806  * returns 0 if rss is not enabled, if enabled returns the final rss queue
10807  * count which may be different from the requested queue count.
10808  * Note: expects to be called while under rtnl_lock()
10809  **/
10810 int i40e_reconfig_rss_queues(struct i40e_pf *pf, int queue_count)
10811 {
10812 	struct i40e_vsi *vsi = pf->vsi[pf->lan_vsi];
10813 	int new_rss_size;
10814 
10815 	if (!(pf->flags & I40E_FLAG_RSS_ENABLED))
10816 		return 0;
10817 
10818 	new_rss_size = min_t(int, queue_count, pf->rss_size_max);
10819 
10820 	if (queue_count != vsi->num_queue_pairs) {
10821 		u16 qcount;
10822 
10823 		vsi->req_queue_pairs = queue_count;
10824 		i40e_prep_for_reset(pf, true);
10825 
10826 		pf->alloc_rss_size = new_rss_size;
10827 
10828 		i40e_reset_and_rebuild(pf, true, true);
10829 
10830 		/* Discard the user configured hash keys and lut, if less
10831 		 * queues are enabled.
10832 		 */
10833 		if (queue_count < vsi->rss_size) {
10834 			i40e_clear_rss_config_user(vsi);
10835 			dev_dbg(&pf->pdev->dev,
10836 				"discard user configured hash keys and lut\n");
10837 		}
10838 
10839 		/* Reset vsi->rss_size, as number of enabled queues changed */
10840 		qcount = vsi->num_queue_pairs / vsi->tc_config.numtc;
10841 		vsi->rss_size = min_t(int, pf->alloc_rss_size, qcount);
10842 
10843 		i40e_pf_config_rss(pf);
10844 	}
10845 	dev_info(&pf->pdev->dev, "User requested queue count/HW max RSS count:  %d/%d\n",
10846 		 vsi->req_queue_pairs, pf->rss_size_max);
10847 	return pf->alloc_rss_size;
10848 }
10849 
10850 /**
10851  * i40e_get_partition_bw_setting - Retrieve BW settings for this PF partition
10852  * @pf: board private structure
10853  **/
10854 i40e_status i40e_get_partition_bw_setting(struct i40e_pf *pf)
10855 {
10856 	i40e_status status;
10857 	bool min_valid, max_valid;
10858 	u32 max_bw, min_bw;
10859 
10860 	status = i40e_read_bw_from_alt_ram(&pf->hw, &max_bw, &min_bw,
10861 					   &min_valid, &max_valid);
10862 
10863 	if (!status) {
10864 		if (min_valid)
10865 			pf->min_bw = min_bw;
10866 		if (max_valid)
10867 			pf->max_bw = max_bw;
10868 	}
10869 
10870 	return status;
10871 }
10872 
10873 /**
10874  * i40e_set_partition_bw_setting - Set BW settings for this PF partition
10875  * @pf: board private structure
10876  **/
10877 i40e_status i40e_set_partition_bw_setting(struct i40e_pf *pf)
10878 {
10879 	struct i40e_aqc_configure_partition_bw_data bw_data;
10880 	i40e_status status;
10881 
10882 	/* Set the valid bit for this PF */
10883 	bw_data.pf_valid_bits = cpu_to_le16(BIT(pf->hw.pf_id));
10884 	bw_data.max_bw[pf->hw.pf_id] = pf->max_bw & I40E_ALT_BW_VALUE_MASK;
10885 	bw_data.min_bw[pf->hw.pf_id] = pf->min_bw & I40E_ALT_BW_VALUE_MASK;
10886 
10887 	/* Set the new bandwidths */
10888 	status = i40e_aq_configure_partition_bw(&pf->hw, &bw_data, NULL);
10889 
10890 	return status;
10891 }
10892 
10893 /**
10894  * i40e_commit_partition_bw_setting - Commit BW settings for this PF partition
10895  * @pf: board private structure
10896  **/
10897 i40e_status i40e_commit_partition_bw_setting(struct i40e_pf *pf)
10898 {
10899 	/* Commit temporary BW setting to permanent NVM image */
10900 	enum i40e_admin_queue_err last_aq_status;
10901 	i40e_status ret;
10902 	u16 nvm_word;
10903 
10904 	if (pf->hw.partition_id != 1) {
10905 		dev_info(&pf->pdev->dev,
10906 			 "Commit BW only works on partition 1! This is partition %d",
10907 			 pf->hw.partition_id);
10908 		ret = I40E_NOT_SUPPORTED;
10909 		goto bw_commit_out;
10910 	}
10911 
10912 	/* Acquire NVM for read access */
10913 	ret = i40e_acquire_nvm(&pf->hw, I40E_RESOURCE_READ);
10914 	last_aq_status = pf->hw.aq.asq_last_status;
10915 	if (ret) {
10916 		dev_info(&pf->pdev->dev,
10917 			 "Cannot acquire NVM for read access, err %s aq_err %s\n",
10918 			 i40e_stat_str(&pf->hw, ret),
10919 			 i40e_aq_str(&pf->hw, last_aq_status));
10920 		goto bw_commit_out;
10921 	}
10922 
10923 	/* Read word 0x10 of NVM - SW compatibility word 1 */
10924 	ret = i40e_aq_read_nvm(&pf->hw,
10925 			       I40E_SR_NVM_CONTROL_WORD,
10926 			       0x10, sizeof(nvm_word), &nvm_word,
10927 			       false, NULL);
10928 	/* Save off last admin queue command status before releasing
10929 	 * the NVM
10930 	 */
10931 	last_aq_status = pf->hw.aq.asq_last_status;
10932 	i40e_release_nvm(&pf->hw);
10933 	if (ret) {
10934 		dev_info(&pf->pdev->dev, "NVM read error, err %s aq_err %s\n",
10935 			 i40e_stat_str(&pf->hw, ret),
10936 			 i40e_aq_str(&pf->hw, last_aq_status));
10937 		goto bw_commit_out;
10938 	}
10939 
10940 	/* Wait a bit for NVM release to complete */
10941 	msleep(50);
10942 
10943 	/* Acquire NVM for write access */
10944 	ret = i40e_acquire_nvm(&pf->hw, I40E_RESOURCE_WRITE);
10945 	last_aq_status = pf->hw.aq.asq_last_status;
10946 	if (ret) {
10947 		dev_info(&pf->pdev->dev,
10948 			 "Cannot acquire NVM for write access, err %s aq_err %s\n",
10949 			 i40e_stat_str(&pf->hw, ret),
10950 			 i40e_aq_str(&pf->hw, last_aq_status));
10951 		goto bw_commit_out;
10952 	}
10953 	/* Write it back out unchanged to initiate update NVM,
10954 	 * which will force a write of the shadow (alt) RAM to
10955 	 * the NVM - thus storing the bandwidth values permanently.
10956 	 */
10957 	ret = i40e_aq_update_nvm(&pf->hw,
10958 				 I40E_SR_NVM_CONTROL_WORD,
10959 				 0x10, sizeof(nvm_word),
10960 				 &nvm_word, true, NULL);
10961 	/* Save off last admin queue command status before releasing
10962 	 * the NVM
10963 	 */
10964 	last_aq_status = pf->hw.aq.asq_last_status;
10965 	i40e_release_nvm(&pf->hw);
10966 	if (ret)
10967 		dev_info(&pf->pdev->dev,
10968 			 "BW settings NOT SAVED, err %s aq_err %s\n",
10969 			 i40e_stat_str(&pf->hw, ret),
10970 			 i40e_aq_str(&pf->hw, last_aq_status));
10971 bw_commit_out:
10972 
10973 	return ret;
10974 }
10975 
10976 /**
10977  * i40e_sw_init - Initialize general software structures (struct i40e_pf)
10978  * @pf: board private structure to initialize
10979  *
10980  * i40e_sw_init initializes the Adapter private data structure.
10981  * Fields are initialized based on PCI device information and
10982  * OS network device settings (MTU size).
10983  **/
10984 static int i40e_sw_init(struct i40e_pf *pf)
10985 {
10986 	int err = 0;
10987 	int size;
10988 
10989 	/* Set default capability flags */
10990 	pf->flags = I40E_FLAG_RX_CSUM_ENABLED |
10991 		    I40E_FLAG_MSI_ENABLED     |
10992 		    I40E_FLAG_MSIX_ENABLED;
10993 
10994 	/* Set default ITR */
10995 	pf->rx_itr_default = I40E_ITR_RX_DEF;
10996 	pf->tx_itr_default = I40E_ITR_TX_DEF;
10997 
10998 	/* Depending on PF configurations, it is possible that the RSS
10999 	 * maximum might end up larger than the available queues
11000 	 */
11001 	pf->rss_size_max = BIT(pf->hw.func_caps.rss_table_entry_width);
11002 	pf->alloc_rss_size = 1;
11003 	pf->rss_table_size = pf->hw.func_caps.rss_table_size;
11004 	pf->rss_size_max = min_t(int, pf->rss_size_max,
11005 				 pf->hw.func_caps.num_tx_qp);
11006 	if (pf->hw.func_caps.rss) {
11007 		pf->flags |= I40E_FLAG_RSS_ENABLED;
11008 		pf->alloc_rss_size = min_t(int, pf->rss_size_max,
11009 					   num_online_cpus());
11010 	}
11011 
11012 	/* MFP mode enabled */
11013 	if (pf->hw.func_caps.npar_enable || pf->hw.func_caps.flex10_enable) {
11014 		pf->flags |= I40E_FLAG_MFP_ENABLED;
11015 		dev_info(&pf->pdev->dev, "MFP mode Enabled\n");
11016 		if (i40e_get_partition_bw_setting(pf)) {
11017 			dev_warn(&pf->pdev->dev,
11018 				 "Could not get partition bw settings\n");
11019 		} else {
11020 			dev_info(&pf->pdev->dev,
11021 				 "Partition BW Min = %8.8x, Max = %8.8x\n",
11022 				 pf->min_bw, pf->max_bw);
11023 
11024 			/* nudge the Tx scheduler */
11025 			i40e_set_partition_bw_setting(pf);
11026 		}
11027 	}
11028 
11029 	if ((pf->hw.func_caps.fd_filters_guaranteed > 0) ||
11030 	    (pf->hw.func_caps.fd_filters_best_effort > 0)) {
11031 		pf->flags |= I40E_FLAG_FD_ATR_ENABLED;
11032 		pf->atr_sample_rate = I40E_DEFAULT_ATR_SAMPLE_RATE;
11033 		if (pf->flags & I40E_FLAG_MFP_ENABLED &&
11034 		    pf->hw.num_partitions > 1)
11035 			dev_info(&pf->pdev->dev,
11036 				 "Flow Director Sideband mode Disabled in MFP mode\n");
11037 		else
11038 			pf->flags |= I40E_FLAG_FD_SB_ENABLED;
11039 		pf->fdir_pf_filter_count =
11040 				 pf->hw.func_caps.fd_filters_guaranteed;
11041 		pf->hw.fdir_shared_filter_count =
11042 				 pf->hw.func_caps.fd_filters_best_effort;
11043 	}
11044 
11045 	if (pf->hw.mac.type == I40E_MAC_X722) {
11046 		pf->hw_features |= (I40E_HW_RSS_AQ_CAPABLE |
11047 				    I40E_HW_128_QP_RSS_CAPABLE |
11048 				    I40E_HW_ATR_EVICT_CAPABLE |
11049 				    I40E_HW_WB_ON_ITR_CAPABLE |
11050 				    I40E_HW_MULTIPLE_TCP_UDP_RSS_PCTYPE |
11051 				    I40E_HW_NO_PCI_LINK_CHECK |
11052 				    I40E_HW_USE_SET_LLDP_MIB |
11053 				    I40E_HW_GENEVE_OFFLOAD_CAPABLE |
11054 				    I40E_HW_PTP_L4_CAPABLE |
11055 				    I40E_HW_WOL_MC_MAGIC_PKT_WAKE |
11056 				    I40E_HW_OUTER_UDP_CSUM_CAPABLE);
11057 
11058 #define I40E_FDEVICT_PCTYPE_DEFAULT 0xc03
11059 		if (rd32(&pf->hw, I40E_GLQF_FDEVICTENA(1)) !=
11060 		    I40E_FDEVICT_PCTYPE_DEFAULT) {
11061 			dev_warn(&pf->pdev->dev,
11062 				 "FD EVICT PCTYPES are not right, disable FD HW EVICT\n");
11063 			pf->hw_features &= ~I40E_HW_ATR_EVICT_CAPABLE;
11064 		}
11065 	} else if ((pf->hw.aq.api_maj_ver > 1) ||
11066 		   ((pf->hw.aq.api_maj_ver == 1) &&
11067 		    (pf->hw.aq.api_min_ver > 4))) {
11068 		/* Supported in FW API version higher than 1.4 */
11069 		pf->hw_features |= I40E_HW_GENEVE_OFFLOAD_CAPABLE;
11070 	}
11071 
11072 	/* Enable HW ATR eviction if possible */
11073 	if (pf->hw_features & I40E_HW_ATR_EVICT_CAPABLE)
11074 		pf->flags |= I40E_FLAG_HW_ATR_EVICT_ENABLED;
11075 
11076 	if ((pf->hw.mac.type == I40E_MAC_XL710) &&
11077 	    (((pf->hw.aq.fw_maj_ver == 4) && (pf->hw.aq.fw_min_ver < 33)) ||
11078 	    (pf->hw.aq.fw_maj_ver < 4))) {
11079 		pf->hw_features |= I40E_HW_RESTART_AUTONEG;
11080 		/* No DCB support  for FW < v4.33 */
11081 		pf->hw_features |= I40E_HW_NO_DCB_SUPPORT;
11082 	}
11083 
11084 	/* Disable FW LLDP if FW < v4.3 */
11085 	if ((pf->hw.mac.type == I40E_MAC_XL710) &&
11086 	    (((pf->hw.aq.fw_maj_ver == 4) && (pf->hw.aq.fw_min_ver < 3)) ||
11087 	    (pf->hw.aq.fw_maj_ver < 4)))
11088 		pf->hw_features |= I40E_HW_STOP_FW_LLDP;
11089 
11090 	/* Use the FW Set LLDP MIB API if FW > v4.40 */
11091 	if ((pf->hw.mac.type == I40E_MAC_XL710) &&
11092 	    (((pf->hw.aq.fw_maj_ver == 4) && (pf->hw.aq.fw_min_ver >= 40)) ||
11093 	    (pf->hw.aq.fw_maj_ver >= 5)))
11094 		pf->hw_features |= I40E_HW_USE_SET_LLDP_MIB;
11095 
11096 	/* Enable PTP L4 if FW > v6.0 */
11097 	if (pf->hw.mac.type == I40E_MAC_XL710 &&
11098 	    pf->hw.aq.fw_maj_ver >= 6)
11099 		pf->hw_features |= I40E_HW_PTP_L4_CAPABLE;
11100 
11101 	if (pf->hw.func_caps.vmdq) {
11102 		pf->num_vmdq_vsis = I40E_DEFAULT_NUM_VMDQ_VSI;
11103 		pf->flags |= I40E_FLAG_VMDQ_ENABLED;
11104 		pf->num_vmdq_qps = i40e_default_queues_per_vmdq(pf);
11105 	}
11106 
11107 	if (pf->hw.func_caps.iwarp) {
11108 		pf->flags |= I40E_FLAG_IWARP_ENABLED;
11109 		/* IWARP needs one extra vector for CQP just like MISC.*/
11110 		pf->num_iwarp_msix = (int)num_online_cpus() + 1;
11111 	}
11112 
11113 #ifdef CONFIG_PCI_IOV
11114 	if (pf->hw.func_caps.num_vfs && pf->hw.partition_id == 1) {
11115 		pf->num_vf_qps = I40E_DEFAULT_QUEUES_PER_VF;
11116 		pf->flags |= I40E_FLAG_SRIOV_ENABLED;
11117 		pf->num_req_vfs = min_t(int,
11118 					pf->hw.func_caps.num_vfs,
11119 					I40E_MAX_VF_COUNT);
11120 	}
11121 #endif /* CONFIG_PCI_IOV */
11122 	pf->eeprom_version = 0xDEAD;
11123 	pf->lan_veb = I40E_NO_VEB;
11124 	pf->lan_vsi = I40E_NO_VSI;
11125 
11126 	/* By default FW has this off for performance reasons */
11127 	pf->flags &= ~I40E_FLAG_VEB_STATS_ENABLED;
11128 
11129 	/* set up queue assignment tracking */
11130 	size = sizeof(struct i40e_lump_tracking)
11131 		+ (sizeof(u16) * pf->hw.func_caps.num_tx_qp);
11132 	pf->qp_pile = kzalloc(size, GFP_KERNEL);
11133 	if (!pf->qp_pile) {
11134 		err = -ENOMEM;
11135 		goto sw_init_done;
11136 	}
11137 	pf->qp_pile->num_entries = pf->hw.func_caps.num_tx_qp;
11138 	pf->qp_pile->search_hint = 0;
11139 
11140 	pf->tx_timeout_recovery_level = 1;
11141 
11142 	mutex_init(&pf->switch_mutex);
11143 
11144 sw_init_done:
11145 	return err;
11146 }
11147 
11148 /**
11149  * i40e_set_ntuple - set the ntuple feature flag and take action
11150  * @pf: board private structure to initialize
11151  * @features: the feature set that the stack is suggesting
11152  *
11153  * returns a bool to indicate if reset needs to happen
11154  **/
11155 bool i40e_set_ntuple(struct i40e_pf *pf, netdev_features_t features)
11156 {
11157 	bool need_reset = false;
11158 
11159 	/* Check if Flow Director n-tuple support was enabled or disabled.  If
11160 	 * the state changed, we need to reset.
11161 	 */
11162 	if (features & NETIF_F_NTUPLE) {
11163 		/* Enable filters and mark for reset */
11164 		if (!(pf->flags & I40E_FLAG_FD_SB_ENABLED))
11165 			need_reset = true;
11166 		/* enable FD_SB only if there is MSI-X vector and no cloud
11167 		 * filters exist
11168 		 */
11169 		if (pf->num_fdsb_msix > 0 && !pf->num_cloud_filters) {
11170 			pf->flags |= I40E_FLAG_FD_SB_ENABLED;
11171 			pf->flags &= ~I40E_FLAG_FD_SB_INACTIVE;
11172 		}
11173 	} else {
11174 		/* turn off filters, mark for reset and clear SW filter list */
11175 		if (pf->flags & I40E_FLAG_FD_SB_ENABLED) {
11176 			need_reset = true;
11177 			i40e_fdir_filter_exit(pf);
11178 		}
11179 		pf->flags &= ~(I40E_FLAG_FD_SB_ENABLED |
11180 			       I40E_FLAG_FD_SB_AUTO_DISABLED);
11181 		pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
11182 
11183 		/* reset fd counters */
11184 		pf->fd_add_err = 0;
11185 		pf->fd_atr_cnt = 0;
11186 		/* if ATR was auto disabled it can be re-enabled. */
11187 		if (pf->flags & I40E_FLAG_FD_ATR_AUTO_DISABLED) {
11188 			pf->flags &= ~I40E_FLAG_FD_ATR_AUTO_DISABLED;
11189 			if ((pf->flags & I40E_FLAG_FD_ATR_ENABLED) &&
11190 			    (I40E_DEBUG_FD & pf->hw.debug_mask))
11191 				dev_info(&pf->pdev->dev, "ATR re-enabled.\n");
11192 		}
11193 	}
11194 	return need_reset;
11195 }
11196 
11197 /**
11198  * i40e_clear_rss_lut - clear the rx hash lookup table
11199  * @vsi: the VSI being configured
11200  **/
11201 static void i40e_clear_rss_lut(struct i40e_vsi *vsi)
11202 {
11203 	struct i40e_pf *pf = vsi->back;
11204 	struct i40e_hw *hw = &pf->hw;
11205 	u16 vf_id = vsi->vf_id;
11206 	u8 i;
11207 
11208 	if (vsi->type == I40E_VSI_MAIN) {
11209 		for (i = 0; i <= I40E_PFQF_HLUT_MAX_INDEX; i++)
11210 			wr32(hw, I40E_PFQF_HLUT(i), 0);
11211 	} else if (vsi->type == I40E_VSI_SRIOV) {
11212 		for (i = 0; i <= I40E_VFQF_HLUT_MAX_INDEX; i++)
11213 			i40e_write_rx_ctl(hw, I40E_VFQF_HLUT1(i, vf_id), 0);
11214 	} else {
11215 		dev_err(&pf->pdev->dev, "Cannot set RSS LUT - invalid VSI type\n");
11216 	}
11217 }
11218 
11219 /**
11220  * i40e_set_features - set the netdev feature flags
11221  * @netdev: ptr to the netdev being adjusted
11222  * @features: the feature set that the stack is suggesting
11223  * Note: expects to be called while under rtnl_lock()
11224  **/
11225 static int i40e_set_features(struct net_device *netdev,
11226 			     netdev_features_t features)
11227 {
11228 	struct i40e_netdev_priv *np = netdev_priv(netdev);
11229 	struct i40e_vsi *vsi = np->vsi;
11230 	struct i40e_pf *pf = vsi->back;
11231 	bool need_reset;
11232 
11233 	if (features & NETIF_F_RXHASH && !(netdev->features & NETIF_F_RXHASH))
11234 		i40e_pf_config_rss(pf);
11235 	else if (!(features & NETIF_F_RXHASH) &&
11236 		 netdev->features & NETIF_F_RXHASH)
11237 		i40e_clear_rss_lut(vsi);
11238 
11239 	if (features & NETIF_F_HW_VLAN_CTAG_RX)
11240 		i40e_vlan_stripping_enable(vsi);
11241 	else
11242 		i40e_vlan_stripping_disable(vsi);
11243 
11244 	if (!(features & NETIF_F_HW_TC) && pf->num_cloud_filters) {
11245 		dev_err(&pf->pdev->dev,
11246 			"Offloaded tc filters active, can't turn hw_tc_offload off");
11247 		return -EINVAL;
11248 	}
11249 
11250 	need_reset = i40e_set_ntuple(pf, features);
11251 
11252 	if (need_reset)
11253 		i40e_do_reset(pf, I40E_PF_RESET_FLAG, true);
11254 
11255 	return 0;
11256 }
11257 
11258 /**
11259  * i40e_get_udp_port_idx - Lookup a possibly offloaded for Rx UDP port
11260  * @pf: board private structure
11261  * @port: The UDP port to look up
11262  *
11263  * Returns the index number or I40E_MAX_PF_UDP_OFFLOAD_PORTS if port not found
11264  **/
11265 static u8 i40e_get_udp_port_idx(struct i40e_pf *pf, u16 port)
11266 {
11267 	u8 i;
11268 
11269 	for (i = 0; i < I40E_MAX_PF_UDP_OFFLOAD_PORTS; i++) {
11270 		if (pf->udp_ports[i].port == port)
11271 			return i;
11272 	}
11273 
11274 	return i;
11275 }
11276 
11277 /**
11278  * i40e_udp_tunnel_add - Get notifications about UDP tunnel ports that come up
11279  * @netdev: This physical port's netdev
11280  * @ti: Tunnel endpoint information
11281  **/
11282 static void i40e_udp_tunnel_add(struct net_device *netdev,
11283 				struct udp_tunnel_info *ti)
11284 {
11285 	struct i40e_netdev_priv *np = netdev_priv(netdev);
11286 	struct i40e_vsi *vsi = np->vsi;
11287 	struct i40e_pf *pf = vsi->back;
11288 	u16 port = ntohs(ti->port);
11289 	u8 next_idx;
11290 	u8 idx;
11291 
11292 	idx = i40e_get_udp_port_idx(pf, port);
11293 
11294 	/* Check if port already exists */
11295 	if (idx < I40E_MAX_PF_UDP_OFFLOAD_PORTS) {
11296 		netdev_info(netdev, "port %d already offloaded\n", port);
11297 		return;
11298 	}
11299 
11300 	/* Now check if there is space to add the new port */
11301 	next_idx = i40e_get_udp_port_idx(pf, 0);
11302 
11303 	if (next_idx == I40E_MAX_PF_UDP_OFFLOAD_PORTS) {
11304 		netdev_info(netdev, "maximum number of offloaded UDP ports reached, not adding port %d\n",
11305 			    port);
11306 		return;
11307 	}
11308 
11309 	switch (ti->type) {
11310 	case UDP_TUNNEL_TYPE_VXLAN:
11311 		pf->udp_ports[next_idx].type = I40E_AQC_TUNNEL_TYPE_VXLAN;
11312 		break;
11313 	case UDP_TUNNEL_TYPE_GENEVE:
11314 		if (!(pf->hw_features & I40E_HW_GENEVE_OFFLOAD_CAPABLE))
11315 			return;
11316 		pf->udp_ports[next_idx].type = I40E_AQC_TUNNEL_TYPE_NGE;
11317 		break;
11318 	default:
11319 		return;
11320 	}
11321 
11322 	/* New port: add it and mark its index in the bitmap */
11323 	pf->udp_ports[next_idx].port = port;
11324 	pf->pending_udp_bitmap |= BIT_ULL(next_idx);
11325 	pf->flags |= I40E_FLAG_UDP_FILTER_SYNC;
11326 }
11327 
11328 /**
11329  * i40e_udp_tunnel_del - Get notifications about UDP tunnel ports that go away
11330  * @netdev: This physical port's netdev
11331  * @ti: Tunnel endpoint information
11332  **/
11333 static void i40e_udp_tunnel_del(struct net_device *netdev,
11334 				struct udp_tunnel_info *ti)
11335 {
11336 	struct i40e_netdev_priv *np = netdev_priv(netdev);
11337 	struct i40e_vsi *vsi = np->vsi;
11338 	struct i40e_pf *pf = vsi->back;
11339 	u16 port = ntohs(ti->port);
11340 	u8 idx;
11341 
11342 	idx = i40e_get_udp_port_idx(pf, port);
11343 
11344 	/* Check if port already exists */
11345 	if (idx >= I40E_MAX_PF_UDP_OFFLOAD_PORTS)
11346 		goto not_found;
11347 
11348 	switch (ti->type) {
11349 	case UDP_TUNNEL_TYPE_VXLAN:
11350 		if (pf->udp_ports[idx].type != I40E_AQC_TUNNEL_TYPE_VXLAN)
11351 			goto not_found;
11352 		break;
11353 	case UDP_TUNNEL_TYPE_GENEVE:
11354 		if (pf->udp_ports[idx].type != I40E_AQC_TUNNEL_TYPE_NGE)
11355 			goto not_found;
11356 		break;
11357 	default:
11358 		goto not_found;
11359 	}
11360 
11361 	/* if port exists, set it to 0 (mark for deletion)
11362 	 * and make it pending
11363 	 */
11364 	pf->udp_ports[idx].port = 0;
11365 	pf->pending_udp_bitmap |= BIT_ULL(idx);
11366 	pf->flags |= I40E_FLAG_UDP_FILTER_SYNC;
11367 
11368 	return;
11369 not_found:
11370 	netdev_warn(netdev, "UDP port %d was not found, not deleting\n",
11371 		    port);
11372 }
11373 
11374 static int i40e_get_phys_port_id(struct net_device *netdev,
11375 				 struct netdev_phys_item_id *ppid)
11376 {
11377 	struct i40e_netdev_priv *np = netdev_priv(netdev);
11378 	struct i40e_pf *pf = np->vsi->back;
11379 	struct i40e_hw *hw = &pf->hw;
11380 
11381 	if (!(pf->hw_features & I40E_HW_PORT_ID_VALID))
11382 		return -EOPNOTSUPP;
11383 
11384 	ppid->id_len = min_t(int, sizeof(hw->mac.port_addr), sizeof(ppid->id));
11385 	memcpy(ppid->id, hw->mac.port_addr, ppid->id_len);
11386 
11387 	return 0;
11388 }
11389 
11390 /**
11391  * i40e_ndo_fdb_add - add an entry to the hardware database
11392  * @ndm: the input from the stack
11393  * @tb: pointer to array of nladdr (unused)
11394  * @dev: the net device pointer
11395  * @addr: the MAC address entry being added
11396  * @flags: instructions from stack about fdb operation
11397  */
11398 static int i40e_ndo_fdb_add(struct ndmsg *ndm, struct nlattr *tb[],
11399 			    struct net_device *dev,
11400 			    const unsigned char *addr, u16 vid,
11401 			    u16 flags)
11402 {
11403 	struct i40e_netdev_priv *np = netdev_priv(dev);
11404 	struct i40e_pf *pf = np->vsi->back;
11405 	int err = 0;
11406 
11407 	if (!(pf->flags & I40E_FLAG_SRIOV_ENABLED))
11408 		return -EOPNOTSUPP;
11409 
11410 	if (vid) {
11411 		pr_info("%s: vlans aren't supported yet for dev_uc|mc_add()\n", dev->name);
11412 		return -EINVAL;
11413 	}
11414 
11415 	/* Hardware does not support aging addresses so if a
11416 	 * ndm_state is given only allow permanent addresses
11417 	 */
11418 	if (ndm->ndm_state && !(ndm->ndm_state & NUD_PERMANENT)) {
11419 		netdev_info(dev, "FDB only supports static addresses\n");
11420 		return -EINVAL;
11421 	}
11422 
11423 	if (is_unicast_ether_addr(addr) || is_link_local_ether_addr(addr))
11424 		err = dev_uc_add_excl(dev, addr);
11425 	else if (is_multicast_ether_addr(addr))
11426 		err = dev_mc_add_excl(dev, addr);
11427 	else
11428 		err = -EINVAL;
11429 
11430 	/* Only return duplicate errors if NLM_F_EXCL is set */
11431 	if (err == -EEXIST && !(flags & NLM_F_EXCL))
11432 		err = 0;
11433 
11434 	return err;
11435 }
11436 
11437 /**
11438  * i40e_ndo_bridge_setlink - Set the hardware bridge mode
11439  * @dev: the netdev being configured
11440  * @nlh: RTNL message
11441  *
11442  * Inserts a new hardware bridge if not already created and
11443  * enables the bridging mode requested (VEB or VEPA). If the
11444  * hardware bridge has already been inserted and the request
11445  * is to change the mode then that requires a PF reset to
11446  * allow rebuild of the components with required hardware
11447  * bridge mode enabled.
11448  *
11449  * Note: expects to be called while under rtnl_lock()
11450  **/
11451 static int i40e_ndo_bridge_setlink(struct net_device *dev,
11452 				   struct nlmsghdr *nlh,
11453 				   u16 flags)
11454 {
11455 	struct i40e_netdev_priv *np = netdev_priv(dev);
11456 	struct i40e_vsi *vsi = np->vsi;
11457 	struct i40e_pf *pf = vsi->back;
11458 	struct i40e_veb *veb = NULL;
11459 	struct nlattr *attr, *br_spec;
11460 	int i, rem;
11461 
11462 	/* Only for PF VSI for now */
11463 	if (vsi->seid != pf->vsi[pf->lan_vsi]->seid)
11464 		return -EOPNOTSUPP;
11465 
11466 	/* Find the HW bridge for PF VSI */
11467 	for (i = 0; i < I40E_MAX_VEB && !veb; i++) {
11468 		if (pf->veb[i] && pf->veb[i]->seid == vsi->uplink_seid)
11469 			veb = pf->veb[i];
11470 	}
11471 
11472 	br_spec = nlmsg_find_attr(nlh, sizeof(struct ifinfomsg), IFLA_AF_SPEC);
11473 
11474 	nla_for_each_nested(attr, br_spec, rem) {
11475 		__u16 mode;
11476 
11477 		if (nla_type(attr) != IFLA_BRIDGE_MODE)
11478 			continue;
11479 
11480 		mode = nla_get_u16(attr);
11481 		if ((mode != BRIDGE_MODE_VEPA) &&
11482 		    (mode != BRIDGE_MODE_VEB))
11483 			return -EINVAL;
11484 
11485 		/* Insert a new HW bridge */
11486 		if (!veb) {
11487 			veb = i40e_veb_setup(pf, 0, vsi->uplink_seid, vsi->seid,
11488 					     vsi->tc_config.enabled_tc);
11489 			if (veb) {
11490 				veb->bridge_mode = mode;
11491 				i40e_config_bridge_mode(veb);
11492 			} else {
11493 				/* No Bridge HW offload available */
11494 				return -ENOENT;
11495 			}
11496 			break;
11497 		} else if (mode != veb->bridge_mode) {
11498 			/* Existing HW bridge but different mode needs reset */
11499 			veb->bridge_mode = mode;
11500 			/* TODO: If no VFs or VMDq VSIs, disallow VEB mode */
11501 			if (mode == BRIDGE_MODE_VEB)
11502 				pf->flags |= I40E_FLAG_VEB_MODE_ENABLED;
11503 			else
11504 				pf->flags &= ~I40E_FLAG_VEB_MODE_ENABLED;
11505 			i40e_do_reset(pf, I40E_PF_RESET_FLAG, true);
11506 			break;
11507 		}
11508 	}
11509 
11510 	return 0;
11511 }
11512 
11513 /**
11514  * i40e_ndo_bridge_getlink - Get the hardware bridge mode
11515  * @skb: skb buff
11516  * @pid: process id
11517  * @seq: RTNL message seq #
11518  * @dev: the netdev being configured
11519  * @filter_mask: unused
11520  * @nlflags: netlink flags passed in
11521  *
11522  * Return the mode in which the hardware bridge is operating in
11523  * i.e VEB or VEPA.
11524  **/
11525 static int i40e_ndo_bridge_getlink(struct sk_buff *skb, u32 pid, u32 seq,
11526 				   struct net_device *dev,
11527 				   u32 __always_unused filter_mask,
11528 				   int nlflags)
11529 {
11530 	struct i40e_netdev_priv *np = netdev_priv(dev);
11531 	struct i40e_vsi *vsi = np->vsi;
11532 	struct i40e_pf *pf = vsi->back;
11533 	struct i40e_veb *veb = NULL;
11534 	int i;
11535 
11536 	/* Only for PF VSI for now */
11537 	if (vsi->seid != pf->vsi[pf->lan_vsi]->seid)
11538 		return -EOPNOTSUPP;
11539 
11540 	/* Find the HW bridge for the PF VSI */
11541 	for (i = 0; i < I40E_MAX_VEB && !veb; i++) {
11542 		if (pf->veb[i] && pf->veb[i]->seid == vsi->uplink_seid)
11543 			veb = pf->veb[i];
11544 	}
11545 
11546 	if (!veb)
11547 		return 0;
11548 
11549 	return ndo_dflt_bridge_getlink(skb, pid, seq, dev, veb->bridge_mode,
11550 				       0, 0, nlflags, filter_mask, NULL);
11551 }
11552 
11553 /**
11554  * i40e_features_check - Validate encapsulated packet conforms to limits
11555  * @skb: skb buff
11556  * @dev: This physical port's netdev
11557  * @features: Offload features that the stack believes apply
11558  **/
11559 static netdev_features_t i40e_features_check(struct sk_buff *skb,
11560 					     struct net_device *dev,
11561 					     netdev_features_t features)
11562 {
11563 	size_t len;
11564 
11565 	/* No point in doing any of this if neither checksum nor GSO are
11566 	 * being requested for this frame.  We can rule out both by just
11567 	 * checking for CHECKSUM_PARTIAL
11568 	 */
11569 	if (skb->ip_summed != CHECKSUM_PARTIAL)
11570 		return features;
11571 
11572 	/* We cannot support GSO if the MSS is going to be less than
11573 	 * 64 bytes.  If it is then we need to drop support for GSO.
11574 	 */
11575 	if (skb_is_gso(skb) && (skb_shinfo(skb)->gso_size < 64))
11576 		features &= ~NETIF_F_GSO_MASK;
11577 
11578 	/* MACLEN can support at most 63 words */
11579 	len = skb_network_header(skb) - skb->data;
11580 	if (len & ~(63 * 2))
11581 		goto out_err;
11582 
11583 	/* IPLEN and EIPLEN can support at most 127 dwords */
11584 	len = skb_transport_header(skb) - skb_network_header(skb);
11585 	if (len & ~(127 * 4))
11586 		goto out_err;
11587 
11588 	if (skb->encapsulation) {
11589 		/* L4TUNLEN can support 127 words */
11590 		len = skb_inner_network_header(skb) - skb_transport_header(skb);
11591 		if (len & ~(127 * 2))
11592 			goto out_err;
11593 
11594 		/* IPLEN can support at most 127 dwords */
11595 		len = skb_inner_transport_header(skb) -
11596 		      skb_inner_network_header(skb);
11597 		if (len & ~(127 * 4))
11598 			goto out_err;
11599 	}
11600 
11601 	/* No need to validate L4LEN as TCP is the only protocol with a
11602 	 * a flexible value and we support all possible values supported
11603 	 * by TCP, which is at most 15 dwords
11604 	 */
11605 
11606 	return features;
11607 out_err:
11608 	return features & ~(NETIF_F_CSUM_MASK | NETIF_F_GSO_MASK);
11609 }
11610 
11611 /**
11612  * i40e_xdp_setup - add/remove an XDP program
11613  * @vsi: VSI to changed
11614  * @prog: XDP program
11615  **/
11616 static int i40e_xdp_setup(struct i40e_vsi *vsi,
11617 			  struct bpf_prog *prog)
11618 {
11619 	int frame_size = vsi->netdev->mtu + ETH_HLEN + ETH_FCS_LEN + VLAN_HLEN;
11620 	struct i40e_pf *pf = vsi->back;
11621 	struct bpf_prog *old_prog;
11622 	bool need_reset;
11623 	int i;
11624 
11625 	/* Don't allow frames that span over multiple buffers */
11626 	if (frame_size > vsi->rx_buf_len)
11627 		return -EINVAL;
11628 
11629 	if (!i40e_enabled_xdp_vsi(vsi) && !prog)
11630 		return 0;
11631 
11632 	/* When turning XDP on->off/off->on we reset and rebuild the rings. */
11633 	need_reset = (i40e_enabled_xdp_vsi(vsi) != !!prog);
11634 
11635 	if (need_reset)
11636 		i40e_prep_for_reset(pf, true);
11637 
11638 	old_prog = xchg(&vsi->xdp_prog, prog);
11639 
11640 	if (need_reset)
11641 		i40e_reset_and_rebuild(pf, true, true);
11642 
11643 	for (i = 0; i < vsi->num_queue_pairs; i++)
11644 		WRITE_ONCE(vsi->rx_rings[i]->xdp_prog, vsi->xdp_prog);
11645 
11646 	if (old_prog)
11647 		bpf_prog_put(old_prog);
11648 
11649 	return 0;
11650 }
11651 
11652 /**
11653  * i40e_xdp - implements ndo_bpf for i40e
11654  * @dev: netdevice
11655  * @xdp: XDP command
11656  **/
11657 static int i40e_xdp(struct net_device *dev,
11658 		    struct netdev_bpf *xdp)
11659 {
11660 	struct i40e_netdev_priv *np = netdev_priv(dev);
11661 	struct i40e_vsi *vsi = np->vsi;
11662 
11663 	if (vsi->type != I40E_VSI_MAIN)
11664 		return -EINVAL;
11665 
11666 	switch (xdp->command) {
11667 	case XDP_SETUP_PROG:
11668 		return i40e_xdp_setup(vsi, xdp->prog);
11669 	case XDP_QUERY_PROG:
11670 		xdp->prog_attached = i40e_enabled_xdp_vsi(vsi);
11671 		xdp->prog_id = vsi->xdp_prog ? vsi->xdp_prog->aux->id : 0;
11672 		return 0;
11673 	default:
11674 		return -EINVAL;
11675 	}
11676 }
11677 
11678 static const struct net_device_ops i40e_netdev_ops = {
11679 	.ndo_open		= i40e_open,
11680 	.ndo_stop		= i40e_close,
11681 	.ndo_start_xmit		= i40e_lan_xmit_frame,
11682 	.ndo_get_stats64	= i40e_get_netdev_stats_struct,
11683 	.ndo_set_rx_mode	= i40e_set_rx_mode,
11684 	.ndo_validate_addr	= eth_validate_addr,
11685 	.ndo_set_mac_address	= i40e_set_mac,
11686 	.ndo_change_mtu		= i40e_change_mtu,
11687 	.ndo_do_ioctl		= i40e_ioctl,
11688 	.ndo_tx_timeout		= i40e_tx_timeout,
11689 	.ndo_vlan_rx_add_vid	= i40e_vlan_rx_add_vid,
11690 	.ndo_vlan_rx_kill_vid	= i40e_vlan_rx_kill_vid,
11691 #ifdef CONFIG_NET_POLL_CONTROLLER
11692 	.ndo_poll_controller	= i40e_netpoll,
11693 #endif
11694 	.ndo_setup_tc		= __i40e_setup_tc,
11695 	.ndo_set_features	= i40e_set_features,
11696 	.ndo_set_vf_mac		= i40e_ndo_set_vf_mac,
11697 	.ndo_set_vf_vlan	= i40e_ndo_set_vf_port_vlan,
11698 	.ndo_set_vf_rate	= i40e_ndo_set_vf_bw,
11699 	.ndo_get_vf_config	= i40e_ndo_get_vf_config,
11700 	.ndo_set_vf_link_state	= i40e_ndo_set_vf_link_state,
11701 	.ndo_set_vf_spoofchk	= i40e_ndo_set_vf_spoofchk,
11702 	.ndo_set_vf_trust	= i40e_ndo_set_vf_trust,
11703 	.ndo_udp_tunnel_add	= i40e_udp_tunnel_add,
11704 	.ndo_udp_tunnel_del	= i40e_udp_tunnel_del,
11705 	.ndo_get_phys_port_id	= i40e_get_phys_port_id,
11706 	.ndo_fdb_add		= i40e_ndo_fdb_add,
11707 	.ndo_features_check	= i40e_features_check,
11708 	.ndo_bridge_getlink	= i40e_ndo_bridge_getlink,
11709 	.ndo_bridge_setlink	= i40e_ndo_bridge_setlink,
11710 	.ndo_bpf		= i40e_xdp,
11711 };
11712 
11713 /**
11714  * i40e_config_netdev - Setup the netdev flags
11715  * @vsi: the VSI being configured
11716  *
11717  * Returns 0 on success, negative value on failure
11718  **/
11719 static int i40e_config_netdev(struct i40e_vsi *vsi)
11720 {
11721 	struct i40e_pf *pf = vsi->back;
11722 	struct i40e_hw *hw = &pf->hw;
11723 	struct i40e_netdev_priv *np;
11724 	struct net_device *netdev;
11725 	u8 broadcast[ETH_ALEN];
11726 	u8 mac_addr[ETH_ALEN];
11727 	int etherdev_size;
11728 	netdev_features_t hw_enc_features;
11729 	netdev_features_t hw_features;
11730 
11731 	etherdev_size = sizeof(struct i40e_netdev_priv);
11732 	netdev = alloc_etherdev_mq(etherdev_size, vsi->alloc_queue_pairs);
11733 	if (!netdev)
11734 		return -ENOMEM;
11735 
11736 	vsi->netdev = netdev;
11737 	np = netdev_priv(netdev);
11738 	np->vsi = vsi;
11739 
11740 	hw_enc_features = NETIF_F_SG			|
11741 			  NETIF_F_IP_CSUM		|
11742 			  NETIF_F_IPV6_CSUM		|
11743 			  NETIF_F_HIGHDMA		|
11744 			  NETIF_F_SOFT_FEATURES		|
11745 			  NETIF_F_TSO			|
11746 			  NETIF_F_TSO_ECN		|
11747 			  NETIF_F_TSO6			|
11748 			  NETIF_F_GSO_GRE		|
11749 			  NETIF_F_GSO_GRE_CSUM		|
11750 			  NETIF_F_GSO_PARTIAL		|
11751 			  NETIF_F_GSO_UDP_TUNNEL	|
11752 			  NETIF_F_GSO_UDP_TUNNEL_CSUM	|
11753 			  NETIF_F_SCTP_CRC		|
11754 			  NETIF_F_RXHASH		|
11755 			  NETIF_F_RXCSUM		|
11756 			  0;
11757 
11758 	if (!(pf->hw_features & I40E_HW_OUTER_UDP_CSUM_CAPABLE))
11759 		netdev->gso_partial_features |= NETIF_F_GSO_UDP_TUNNEL_CSUM;
11760 
11761 	netdev->gso_partial_features |= NETIF_F_GSO_GRE_CSUM;
11762 
11763 	netdev->hw_enc_features |= hw_enc_features;
11764 
11765 	/* record features VLANs can make use of */
11766 	netdev->vlan_features |= hw_enc_features | NETIF_F_TSO_MANGLEID;
11767 
11768 	if (!(pf->flags & I40E_FLAG_MFP_ENABLED))
11769 		netdev->hw_features |= NETIF_F_NTUPLE | NETIF_F_HW_TC;
11770 
11771 	hw_features = hw_enc_features		|
11772 		      NETIF_F_HW_VLAN_CTAG_TX	|
11773 		      NETIF_F_HW_VLAN_CTAG_RX;
11774 
11775 	netdev->hw_features |= hw_features;
11776 
11777 	netdev->features |= hw_features | NETIF_F_HW_VLAN_CTAG_FILTER;
11778 	netdev->hw_enc_features |= NETIF_F_TSO_MANGLEID;
11779 
11780 	if (vsi->type == I40E_VSI_MAIN) {
11781 		SET_NETDEV_DEV(netdev, &pf->pdev->dev);
11782 		ether_addr_copy(mac_addr, hw->mac.perm_addr);
11783 		/* The following steps are necessary for two reasons. First,
11784 		 * some older NVM configurations load a default MAC-VLAN
11785 		 * filter that will accept any tagged packet, and we want to
11786 		 * replace this with a normal filter. Additionally, it is
11787 		 * possible our MAC address was provided by the platform using
11788 		 * Open Firmware or similar.
11789 		 *
11790 		 * Thus, we need to remove the default filter and install one
11791 		 * specific to the MAC address.
11792 		 */
11793 		i40e_rm_default_mac_filter(vsi, mac_addr);
11794 		spin_lock_bh(&vsi->mac_filter_hash_lock);
11795 		i40e_add_mac_filter(vsi, mac_addr);
11796 		spin_unlock_bh(&vsi->mac_filter_hash_lock);
11797 	} else {
11798 		/* Relate the VSI_VMDQ name to the VSI_MAIN name. Note that we
11799 		 * are still limited by IFNAMSIZ, but we're adding 'v%d\0' to
11800 		 * the end, which is 4 bytes long, so force truncation of the
11801 		 * original name by IFNAMSIZ - 4
11802 		 */
11803 		snprintf(netdev->name, IFNAMSIZ, "%.*sv%%d",
11804 			 IFNAMSIZ - 4,
11805 			 pf->vsi[pf->lan_vsi]->netdev->name);
11806 		random_ether_addr(mac_addr);
11807 
11808 		spin_lock_bh(&vsi->mac_filter_hash_lock);
11809 		i40e_add_mac_filter(vsi, mac_addr);
11810 		spin_unlock_bh(&vsi->mac_filter_hash_lock);
11811 	}
11812 
11813 	/* Add the broadcast filter so that we initially will receive
11814 	 * broadcast packets. Note that when a new VLAN is first added the
11815 	 * driver will convert all filters marked I40E_VLAN_ANY into VLAN
11816 	 * specific filters as part of transitioning into "vlan" operation.
11817 	 * When more VLANs are added, the driver will copy each existing MAC
11818 	 * filter and add it for the new VLAN.
11819 	 *
11820 	 * Broadcast filters are handled specially by
11821 	 * i40e_sync_filters_subtask, as the driver must to set the broadcast
11822 	 * promiscuous bit instead of adding this directly as a MAC/VLAN
11823 	 * filter. The subtask will update the correct broadcast promiscuous
11824 	 * bits as VLANs become active or inactive.
11825 	 */
11826 	eth_broadcast_addr(broadcast);
11827 	spin_lock_bh(&vsi->mac_filter_hash_lock);
11828 	i40e_add_mac_filter(vsi, broadcast);
11829 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
11830 
11831 	ether_addr_copy(netdev->dev_addr, mac_addr);
11832 	ether_addr_copy(netdev->perm_addr, mac_addr);
11833 
11834 	netdev->priv_flags |= IFF_UNICAST_FLT;
11835 	netdev->priv_flags |= IFF_SUPP_NOFCS;
11836 	/* Setup netdev TC information */
11837 	i40e_vsi_config_netdev_tc(vsi, vsi->tc_config.enabled_tc);
11838 
11839 	netdev->netdev_ops = &i40e_netdev_ops;
11840 	netdev->watchdog_timeo = 5 * HZ;
11841 	i40e_set_ethtool_ops(netdev);
11842 
11843 	/* MTU range: 68 - 9706 */
11844 	netdev->min_mtu = ETH_MIN_MTU;
11845 	netdev->max_mtu = I40E_MAX_RXBUFFER - I40E_PACKET_HDR_PAD;
11846 
11847 	return 0;
11848 }
11849 
11850 /**
11851  * i40e_vsi_delete - Delete a VSI from the switch
11852  * @vsi: the VSI being removed
11853  *
11854  * Returns 0 on success, negative value on failure
11855  **/
11856 static void i40e_vsi_delete(struct i40e_vsi *vsi)
11857 {
11858 	/* remove default VSI is not allowed */
11859 	if (vsi == vsi->back->vsi[vsi->back->lan_vsi])
11860 		return;
11861 
11862 	i40e_aq_delete_element(&vsi->back->hw, vsi->seid, NULL);
11863 }
11864 
11865 /**
11866  * i40e_is_vsi_uplink_mode_veb - Check if the VSI's uplink bridge mode is VEB
11867  * @vsi: the VSI being queried
11868  *
11869  * Returns 1 if HW bridge mode is VEB and return 0 in case of VEPA mode
11870  **/
11871 int i40e_is_vsi_uplink_mode_veb(struct i40e_vsi *vsi)
11872 {
11873 	struct i40e_veb *veb;
11874 	struct i40e_pf *pf = vsi->back;
11875 
11876 	/* Uplink is not a bridge so default to VEB */
11877 	if (vsi->veb_idx == I40E_NO_VEB)
11878 		return 1;
11879 
11880 	veb = pf->veb[vsi->veb_idx];
11881 	if (!veb) {
11882 		dev_info(&pf->pdev->dev,
11883 			 "There is no veb associated with the bridge\n");
11884 		return -ENOENT;
11885 	}
11886 
11887 	/* Uplink is a bridge in VEPA mode */
11888 	if (veb->bridge_mode & BRIDGE_MODE_VEPA) {
11889 		return 0;
11890 	} else {
11891 		/* Uplink is a bridge in VEB mode */
11892 		return 1;
11893 	}
11894 
11895 	/* VEPA is now default bridge, so return 0 */
11896 	return 0;
11897 }
11898 
11899 /**
11900  * i40e_add_vsi - Add a VSI to the switch
11901  * @vsi: the VSI being configured
11902  *
11903  * This initializes a VSI context depending on the VSI type to be added and
11904  * passes it down to the add_vsi aq command.
11905  **/
11906 static int i40e_add_vsi(struct i40e_vsi *vsi)
11907 {
11908 	int ret = -ENODEV;
11909 	struct i40e_pf *pf = vsi->back;
11910 	struct i40e_hw *hw = &pf->hw;
11911 	struct i40e_vsi_context ctxt;
11912 	struct i40e_mac_filter *f;
11913 	struct hlist_node *h;
11914 	int bkt;
11915 
11916 	u8 enabled_tc = 0x1; /* TC0 enabled */
11917 	int f_count = 0;
11918 
11919 	memset(&ctxt, 0, sizeof(ctxt));
11920 	switch (vsi->type) {
11921 	case I40E_VSI_MAIN:
11922 		/* The PF's main VSI is already setup as part of the
11923 		 * device initialization, so we'll not bother with
11924 		 * the add_vsi call, but we will retrieve the current
11925 		 * VSI context.
11926 		 */
11927 		ctxt.seid = pf->main_vsi_seid;
11928 		ctxt.pf_num = pf->hw.pf_id;
11929 		ctxt.vf_num = 0;
11930 		ret = i40e_aq_get_vsi_params(&pf->hw, &ctxt, NULL);
11931 		ctxt.flags = I40E_AQ_VSI_TYPE_PF;
11932 		if (ret) {
11933 			dev_info(&pf->pdev->dev,
11934 				 "couldn't get PF vsi config, err %s aq_err %s\n",
11935 				 i40e_stat_str(&pf->hw, ret),
11936 				 i40e_aq_str(&pf->hw,
11937 					     pf->hw.aq.asq_last_status));
11938 			return -ENOENT;
11939 		}
11940 		vsi->info = ctxt.info;
11941 		vsi->info.valid_sections = 0;
11942 
11943 		vsi->seid = ctxt.seid;
11944 		vsi->id = ctxt.vsi_number;
11945 
11946 		enabled_tc = i40e_pf_get_tc_map(pf);
11947 
11948 		/* Source pruning is enabled by default, so the flag is
11949 		 * negative logic - if it's set, we need to fiddle with
11950 		 * the VSI to disable source pruning.
11951 		 */
11952 		if (pf->flags & I40E_FLAG_SOURCE_PRUNING_DISABLED) {
11953 			memset(&ctxt, 0, sizeof(ctxt));
11954 			ctxt.seid = pf->main_vsi_seid;
11955 			ctxt.pf_num = pf->hw.pf_id;
11956 			ctxt.vf_num = 0;
11957 			ctxt.info.valid_sections |=
11958 				     cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
11959 			ctxt.info.switch_id =
11960 				   cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_LOCAL_LB);
11961 			ret = i40e_aq_update_vsi_params(hw, &ctxt, NULL);
11962 			if (ret) {
11963 				dev_info(&pf->pdev->dev,
11964 					 "update vsi failed, err %s aq_err %s\n",
11965 					 i40e_stat_str(&pf->hw, ret),
11966 					 i40e_aq_str(&pf->hw,
11967 						     pf->hw.aq.asq_last_status));
11968 				ret = -ENOENT;
11969 				goto err;
11970 			}
11971 		}
11972 
11973 		/* MFP mode setup queue map and update VSI */
11974 		if ((pf->flags & I40E_FLAG_MFP_ENABLED) &&
11975 		    !(pf->hw.func_caps.iscsi)) { /* NIC type PF */
11976 			memset(&ctxt, 0, sizeof(ctxt));
11977 			ctxt.seid = pf->main_vsi_seid;
11978 			ctxt.pf_num = pf->hw.pf_id;
11979 			ctxt.vf_num = 0;
11980 			i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, false);
11981 			ret = i40e_aq_update_vsi_params(hw, &ctxt, NULL);
11982 			if (ret) {
11983 				dev_info(&pf->pdev->dev,
11984 					 "update vsi failed, err %s aq_err %s\n",
11985 					 i40e_stat_str(&pf->hw, ret),
11986 					 i40e_aq_str(&pf->hw,
11987 						    pf->hw.aq.asq_last_status));
11988 				ret = -ENOENT;
11989 				goto err;
11990 			}
11991 			/* update the local VSI info queue map */
11992 			i40e_vsi_update_queue_map(vsi, &ctxt);
11993 			vsi->info.valid_sections = 0;
11994 		} else {
11995 			/* Default/Main VSI is only enabled for TC0
11996 			 * reconfigure it to enable all TCs that are
11997 			 * available on the port in SFP mode.
11998 			 * For MFP case the iSCSI PF would use this
11999 			 * flow to enable LAN+iSCSI TC.
12000 			 */
12001 			ret = i40e_vsi_config_tc(vsi, enabled_tc);
12002 			if (ret) {
12003 				/* Single TC condition is not fatal,
12004 				 * message and continue
12005 				 */
12006 				dev_info(&pf->pdev->dev,
12007 					 "failed to configure TCs for main VSI tc_map 0x%08x, err %s aq_err %s\n",
12008 					 enabled_tc,
12009 					 i40e_stat_str(&pf->hw, ret),
12010 					 i40e_aq_str(&pf->hw,
12011 						    pf->hw.aq.asq_last_status));
12012 			}
12013 		}
12014 		break;
12015 
12016 	case I40E_VSI_FDIR:
12017 		ctxt.pf_num = hw->pf_id;
12018 		ctxt.vf_num = 0;
12019 		ctxt.uplink_seid = vsi->uplink_seid;
12020 		ctxt.connection_type = I40E_AQ_VSI_CONN_TYPE_NORMAL;
12021 		ctxt.flags = I40E_AQ_VSI_TYPE_PF;
12022 		if ((pf->flags & I40E_FLAG_VEB_MODE_ENABLED) &&
12023 		    (i40e_is_vsi_uplink_mode_veb(vsi))) {
12024 			ctxt.info.valid_sections |=
12025 			     cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
12026 			ctxt.info.switch_id =
12027 			   cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
12028 		}
12029 		i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, true);
12030 		break;
12031 
12032 	case I40E_VSI_VMDQ2:
12033 		ctxt.pf_num = hw->pf_id;
12034 		ctxt.vf_num = 0;
12035 		ctxt.uplink_seid = vsi->uplink_seid;
12036 		ctxt.connection_type = I40E_AQ_VSI_CONN_TYPE_NORMAL;
12037 		ctxt.flags = I40E_AQ_VSI_TYPE_VMDQ2;
12038 
12039 		/* This VSI is connected to VEB so the switch_id
12040 		 * should be set to zero by default.
12041 		 */
12042 		if (i40e_is_vsi_uplink_mode_veb(vsi)) {
12043 			ctxt.info.valid_sections |=
12044 				cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
12045 			ctxt.info.switch_id =
12046 				cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
12047 		}
12048 
12049 		/* Setup the VSI tx/rx queue map for TC0 only for now */
12050 		i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, true);
12051 		break;
12052 
12053 	case I40E_VSI_SRIOV:
12054 		ctxt.pf_num = hw->pf_id;
12055 		ctxt.vf_num = vsi->vf_id + hw->func_caps.vf_base_id;
12056 		ctxt.uplink_seid = vsi->uplink_seid;
12057 		ctxt.connection_type = I40E_AQ_VSI_CONN_TYPE_NORMAL;
12058 		ctxt.flags = I40E_AQ_VSI_TYPE_VF;
12059 
12060 		/* This VSI is connected to VEB so the switch_id
12061 		 * should be set to zero by default.
12062 		 */
12063 		if (i40e_is_vsi_uplink_mode_veb(vsi)) {
12064 			ctxt.info.valid_sections |=
12065 				cpu_to_le16(I40E_AQ_VSI_PROP_SWITCH_VALID);
12066 			ctxt.info.switch_id =
12067 				cpu_to_le16(I40E_AQ_VSI_SW_ID_FLAG_ALLOW_LB);
12068 		}
12069 
12070 		if (vsi->back->flags & I40E_FLAG_IWARP_ENABLED) {
12071 			ctxt.info.valid_sections |=
12072 				cpu_to_le16(I40E_AQ_VSI_PROP_QUEUE_OPT_VALID);
12073 			ctxt.info.queueing_opt_flags |=
12074 				(I40E_AQ_VSI_QUE_OPT_TCP_ENA |
12075 				 I40E_AQ_VSI_QUE_OPT_RSS_LUT_VSI);
12076 		}
12077 
12078 		ctxt.info.valid_sections |= cpu_to_le16(I40E_AQ_VSI_PROP_VLAN_VALID);
12079 		ctxt.info.port_vlan_flags |= I40E_AQ_VSI_PVLAN_MODE_ALL;
12080 		if (pf->vf[vsi->vf_id].spoofchk) {
12081 			ctxt.info.valid_sections |=
12082 				cpu_to_le16(I40E_AQ_VSI_PROP_SECURITY_VALID);
12083 			ctxt.info.sec_flags |=
12084 				(I40E_AQ_VSI_SEC_FLAG_ENABLE_VLAN_CHK |
12085 				 I40E_AQ_VSI_SEC_FLAG_ENABLE_MAC_CHK);
12086 		}
12087 		/* Setup the VSI tx/rx queue map for TC0 only for now */
12088 		i40e_vsi_setup_queue_map(vsi, &ctxt, enabled_tc, true);
12089 		break;
12090 
12091 	case I40E_VSI_IWARP:
12092 		/* send down message to iWARP */
12093 		break;
12094 
12095 	default:
12096 		return -ENODEV;
12097 	}
12098 
12099 	if (vsi->type != I40E_VSI_MAIN) {
12100 		ret = i40e_aq_add_vsi(hw, &ctxt, NULL);
12101 		if (ret) {
12102 			dev_info(&vsi->back->pdev->dev,
12103 				 "add vsi failed, err %s aq_err %s\n",
12104 				 i40e_stat_str(&pf->hw, ret),
12105 				 i40e_aq_str(&pf->hw,
12106 					     pf->hw.aq.asq_last_status));
12107 			ret = -ENOENT;
12108 			goto err;
12109 		}
12110 		vsi->info = ctxt.info;
12111 		vsi->info.valid_sections = 0;
12112 		vsi->seid = ctxt.seid;
12113 		vsi->id = ctxt.vsi_number;
12114 	}
12115 
12116 	vsi->active_filters = 0;
12117 	clear_bit(__I40E_VSI_OVERFLOW_PROMISC, vsi->state);
12118 	spin_lock_bh(&vsi->mac_filter_hash_lock);
12119 	/* If macvlan filters already exist, force them to get loaded */
12120 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist) {
12121 		f->state = I40E_FILTER_NEW;
12122 		f_count++;
12123 	}
12124 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
12125 
12126 	if (f_count) {
12127 		vsi->flags |= I40E_VSI_FLAG_FILTER_CHANGED;
12128 		pf->flags |= I40E_FLAG_FILTER_SYNC;
12129 	}
12130 
12131 	/* Update VSI BW information */
12132 	ret = i40e_vsi_get_bw_info(vsi);
12133 	if (ret) {
12134 		dev_info(&pf->pdev->dev,
12135 			 "couldn't get vsi bw info, err %s aq_err %s\n",
12136 			 i40e_stat_str(&pf->hw, ret),
12137 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
12138 		/* VSI is already added so not tearing that up */
12139 		ret = 0;
12140 	}
12141 
12142 err:
12143 	return ret;
12144 }
12145 
12146 /**
12147  * i40e_vsi_release - Delete a VSI and free its resources
12148  * @vsi: the VSI being removed
12149  *
12150  * Returns 0 on success or < 0 on error
12151  **/
12152 int i40e_vsi_release(struct i40e_vsi *vsi)
12153 {
12154 	struct i40e_mac_filter *f;
12155 	struct hlist_node *h;
12156 	struct i40e_veb *veb = NULL;
12157 	struct i40e_pf *pf;
12158 	u16 uplink_seid;
12159 	int i, n, bkt;
12160 
12161 	pf = vsi->back;
12162 
12163 	/* release of a VEB-owner or last VSI is not allowed */
12164 	if (vsi->flags & I40E_VSI_FLAG_VEB_OWNER) {
12165 		dev_info(&pf->pdev->dev, "VSI %d has existing VEB %d\n",
12166 			 vsi->seid, vsi->uplink_seid);
12167 		return -ENODEV;
12168 	}
12169 	if (vsi == pf->vsi[pf->lan_vsi] &&
12170 	    !test_bit(__I40E_DOWN, pf->state)) {
12171 		dev_info(&pf->pdev->dev, "Can't remove PF VSI\n");
12172 		return -ENODEV;
12173 	}
12174 
12175 	uplink_seid = vsi->uplink_seid;
12176 	if (vsi->type != I40E_VSI_SRIOV) {
12177 		if (vsi->netdev_registered) {
12178 			vsi->netdev_registered = false;
12179 			if (vsi->netdev) {
12180 				/* results in a call to i40e_close() */
12181 				unregister_netdev(vsi->netdev);
12182 			}
12183 		} else {
12184 			i40e_vsi_close(vsi);
12185 		}
12186 		i40e_vsi_disable_irq(vsi);
12187 	}
12188 
12189 	spin_lock_bh(&vsi->mac_filter_hash_lock);
12190 
12191 	/* clear the sync flag on all filters */
12192 	if (vsi->netdev) {
12193 		__dev_uc_unsync(vsi->netdev, NULL);
12194 		__dev_mc_unsync(vsi->netdev, NULL);
12195 	}
12196 
12197 	/* make sure any remaining filters are marked for deletion */
12198 	hash_for_each_safe(vsi->mac_filter_hash, bkt, h, f, hlist)
12199 		__i40e_del_filter(vsi, f);
12200 
12201 	spin_unlock_bh(&vsi->mac_filter_hash_lock);
12202 
12203 	i40e_sync_vsi_filters(vsi);
12204 
12205 	i40e_vsi_delete(vsi);
12206 	i40e_vsi_free_q_vectors(vsi);
12207 	if (vsi->netdev) {
12208 		free_netdev(vsi->netdev);
12209 		vsi->netdev = NULL;
12210 	}
12211 	i40e_vsi_clear_rings(vsi);
12212 	i40e_vsi_clear(vsi);
12213 
12214 	/* If this was the last thing on the VEB, except for the
12215 	 * controlling VSI, remove the VEB, which puts the controlling
12216 	 * VSI onto the next level down in the switch.
12217 	 *
12218 	 * Well, okay, there's one more exception here: don't remove
12219 	 * the orphan VEBs yet.  We'll wait for an explicit remove request
12220 	 * from up the network stack.
12221 	 */
12222 	for (n = 0, i = 0; i < pf->num_alloc_vsi; i++) {
12223 		if (pf->vsi[i] &&
12224 		    pf->vsi[i]->uplink_seid == uplink_seid &&
12225 		    (pf->vsi[i]->flags & I40E_VSI_FLAG_VEB_OWNER) == 0) {
12226 			n++;      /* count the VSIs */
12227 		}
12228 	}
12229 	for (i = 0; i < I40E_MAX_VEB; i++) {
12230 		if (!pf->veb[i])
12231 			continue;
12232 		if (pf->veb[i]->uplink_seid == uplink_seid)
12233 			n++;     /* count the VEBs */
12234 		if (pf->veb[i]->seid == uplink_seid)
12235 			veb = pf->veb[i];
12236 	}
12237 	if (n == 0 && veb && veb->uplink_seid != 0)
12238 		i40e_veb_release(veb);
12239 
12240 	return 0;
12241 }
12242 
12243 /**
12244  * i40e_vsi_setup_vectors - Set up the q_vectors for the given VSI
12245  * @vsi: ptr to the VSI
12246  *
12247  * This should only be called after i40e_vsi_mem_alloc() which allocates the
12248  * corresponding SW VSI structure and initializes num_queue_pairs for the
12249  * newly allocated VSI.
12250  *
12251  * Returns 0 on success or negative on failure
12252  **/
12253 static int i40e_vsi_setup_vectors(struct i40e_vsi *vsi)
12254 {
12255 	int ret = -ENOENT;
12256 	struct i40e_pf *pf = vsi->back;
12257 
12258 	if (vsi->q_vectors[0]) {
12259 		dev_info(&pf->pdev->dev, "VSI %d has existing q_vectors\n",
12260 			 vsi->seid);
12261 		return -EEXIST;
12262 	}
12263 
12264 	if (vsi->base_vector) {
12265 		dev_info(&pf->pdev->dev, "VSI %d has non-zero base vector %d\n",
12266 			 vsi->seid, vsi->base_vector);
12267 		return -EEXIST;
12268 	}
12269 
12270 	ret = i40e_vsi_alloc_q_vectors(vsi);
12271 	if (ret) {
12272 		dev_info(&pf->pdev->dev,
12273 			 "failed to allocate %d q_vector for VSI %d, ret=%d\n",
12274 			 vsi->num_q_vectors, vsi->seid, ret);
12275 		vsi->num_q_vectors = 0;
12276 		goto vector_setup_out;
12277 	}
12278 
12279 	/* In Legacy mode, we do not have to get any other vector since we
12280 	 * piggyback on the misc/ICR0 for queue interrupts.
12281 	*/
12282 	if (!(pf->flags & I40E_FLAG_MSIX_ENABLED))
12283 		return ret;
12284 	if (vsi->num_q_vectors)
12285 		vsi->base_vector = i40e_get_lump(pf, pf->irq_pile,
12286 						 vsi->num_q_vectors, vsi->idx);
12287 	if (vsi->base_vector < 0) {
12288 		dev_info(&pf->pdev->dev,
12289 			 "failed to get tracking for %d vectors for VSI %d, err=%d\n",
12290 			 vsi->num_q_vectors, vsi->seid, vsi->base_vector);
12291 		i40e_vsi_free_q_vectors(vsi);
12292 		ret = -ENOENT;
12293 		goto vector_setup_out;
12294 	}
12295 
12296 vector_setup_out:
12297 	return ret;
12298 }
12299 
12300 /**
12301  * i40e_vsi_reinit_setup - return and reallocate resources for a VSI
12302  * @vsi: pointer to the vsi.
12303  *
12304  * This re-allocates a vsi's queue resources.
12305  *
12306  * Returns pointer to the successfully allocated and configured VSI sw struct
12307  * on success, otherwise returns NULL on failure.
12308  **/
12309 static struct i40e_vsi *i40e_vsi_reinit_setup(struct i40e_vsi *vsi)
12310 {
12311 	u16 alloc_queue_pairs;
12312 	struct i40e_pf *pf;
12313 	u8 enabled_tc;
12314 	int ret;
12315 
12316 	if (!vsi)
12317 		return NULL;
12318 
12319 	pf = vsi->back;
12320 
12321 	i40e_put_lump(pf->qp_pile, vsi->base_queue, vsi->idx);
12322 	i40e_vsi_clear_rings(vsi);
12323 
12324 	i40e_vsi_free_arrays(vsi, false);
12325 	i40e_set_num_rings_in_vsi(vsi);
12326 	ret = i40e_vsi_alloc_arrays(vsi, false);
12327 	if (ret)
12328 		goto err_vsi;
12329 
12330 	alloc_queue_pairs = vsi->alloc_queue_pairs *
12331 			    (i40e_enabled_xdp_vsi(vsi) ? 2 : 1);
12332 
12333 	ret = i40e_get_lump(pf, pf->qp_pile, alloc_queue_pairs, vsi->idx);
12334 	if (ret < 0) {
12335 		dev_info(&pf->pdev->dev,
12336 			 "failed to get tracking for %d queues for VSI %d err %d\n",
12337 			 alloc_queue_pairs, vsi->seid, ret);
12338 		goto err_vsi;
12339 	}
12340 	vsi->base_queue = ret;
12341 
12342 	/* Update the FW view of the VSI. Force a reset of TC and queue
12343 	 * layout configurations.
12344 	 */
12345 	enabled_tc = pf->vsi[pf->lan_vsi]->tc_config.enabled_tc;
12346 	pf->vsi[pf->lan_vsi]->tc_config.enabled_tc = 0;
12347 	pf->vsi[pf->lan_vsi]->seid = pf->main_vsi_seid;
12348 	i40e_vsi_config_tc(pf->vsi[pf->lan_vsi], enabled_tc);
12349 	if (vsi->type == I40E_VSI_MAIN)
12350 		i40e_rm_default_mac_filter(vsi, pf->hw.mac.perm_addr);
12351 
12352 	/* assign it some queues */
12353 	ret = i40e_alloc_rings(vsi);
12354 	if (ret)
12355 		goto err_rings;
12356 
12357 	/* map all of the rings to the q_vectors */
12358 	i40e_vsi_map_rings_to_vectors(vsi);
12359 	return vsi;
12360 
12361 err_rings:
12362 	i40e_vsi_free_q_vectors(vsi);
12363 	if (vsi->netdev_registered) {
12364 		vsi->netdev_registered = false;
12365 		unregister_netdev(vsi->netdev);
12366 		free_netdev(vsi->netdev);
12367 		vsi->netdev = NULL;
12368 	}
12369 	i40e_aq_delete_element(&pf->hw, vsi->seid, NULL);
12370 err_vsi:
12371 	i40e_vsi_clear(vsi);
12372 	return NULL;
12373 }
12374 
12375 /**
12376  * i40e_vsi_setup - Set up a VSI by a given type
12377  * @pf: board private structure
12378  * @type: VSI type
12379  * @uplink_seid: the switch element to link to
12380  * @param1: usage depends upon VSI type. For VF types, indicates VF id
12381  *
12382  * This allocates the sw VSI structure and its queue resources, then add a VSI
12383  * to the identified VEB.
12384  *
12385  * Returns pointer to the successfully allocated and configure VSI sw struct on
12386  * success, otherwise returns NULL on failure.
12387  **/
12388 struct i40e_vsi *i40e_vsi_setup(struct i40e_pf *pf, u8 type,
12389 				u16 uplink_seid, u32 param1)
12390 {
12391 	struct i40e_vsi *vsi = NULL;
12392 	struct i40e_veb *veb = NULL;
12393 	u16 alloc_queue_pairs;
12394 	int ret, i;
12395 	int v_idx;
12396 
12397 	/* The requested uplink_seid must be either
12398 	 *     - the PF's port seid
12399 	 *              no VEB is needed because this is the PF
12400 	 *              or this is a Flow Director special case VSI
12401 	 *     - seid of an existing VEB
12402 	 *     - seid of a VSI that owns an existing VEB
12403 	 *     - seid of a VSI that doesn't own a VEB
12404 	 *              a new VEB is created and the VSI becomes the owner
12405 	 *     - seid of the PF VSI, which is what creates the first VEB
12406 	 *              this is a special case of the previous
12407 	 *
12408 	 * Find which uplink_seid we were given and create a new VEB if needed
12409 	 */
12410 	for (i = 0; i < I40E_MAX_VEB; i++) {
12411 		if (pf->veb[i] && pf->veb[i]->seid == uplink_seid) {
12412 			veb = pf->veb[i];
12413 			break;
12414 		}
12415 	}
12416 
12417 	if (!veb && uplink_seid != pf->mac_seid) {
12418 
12419 		for (i = 0; i < pf->num_alloc_vsi; i++) {
12420 			if (pf->vsi[i] && pf->vsi[i]->seid == uplink_seid) {
12421 				vsi = pf->vsi[i];
12422 				break;
12423 			}
12424 		}
12425 		if (!vsi) {
12426 			dev_info(&pf->pdev->dev, "no such uplink_seid %d\n",
12427 				 uplink_seid);
12428 			return NULL;
12429 		}
12430 
12431 		if (vsi->uplink_seid == pf->mac_seid)
12432 			veb = i40e_veb_setup(pf, 0, pf->mac_seid, vsi->seid,
12433 					     vsi->tc_config.enabled_tc);
12434 		else if ((vsi->flags & I40E_VSI_FLAG_VEB_OWNER) == 0)
12435 			veb = i40e_veb_setup(pf, 0, vsi->uplink_seid, vsi->seid,
12436 					     vsi->tc_config.enabled_tc);
12437 		if (veb) {
12438 			if (vsi->seid != pf->vsi[pf->lan_vsi]->seid) {
12439 				dev_info(&vsi->back->pdev->dev,
12440 					 "New VSI creation error, uplink seid of LAN VSI expected.\n");
12441 				return NULL;
12442 			}
12443 			/* We come up by default in VEPA mode if SRIOV is not
12444 			 * already enabled, in which case we can't force VEPA
12445 			 * mode.
12446 			 */
12447 			if (!(pf->flags & I40E_FLAG_VEB_MODE_ENABLED)) {
12448 				veb->bridge_mode = BRIDGE_MODE_VEPA;
12449 				pf->flags &= ~I40E_FLAG_VEB_MODE_ENABLED;
12450 			}
12451 			i40e_config_bridge_mode(veb);
12452 		}
12453 		for (i = 0; i < I40E_MAX_VEB && !veb; i++) {
12454 			if (pf->veb[i] && pf->veb[i]->seid == vsi->uplink_seid)
12455 				veb = pf->veb[i];
12456 		}
12457 		if (!veb) {
12458 			dev_info(&pf->pdev->dev, "couldn't add VEB\n");
12459 			return NULL;
12460 		}
12461 
12462 		vsi->flags |= I40E_VSI_FLAG_VEB_OWNER;
12463 		uplink_seid = veb->seid;
12464 	}
12465 
12466 	/* get vsi sw struct */
12467 	v_idx = i40e_vsi_mem_alloc(pf, type);
12468 	if (v_idx < 0)
12469 		goto err_alloc;
12470 	vsi = pf->vsi[v_idx];
12471 	if (!vsi)
12472 		goto err_alloc;
12473 	vsi->type = type;
12474 	vsi->veb_idx = (veb ? veb->idx : I40E_NO_VEB);
12475 
12476 	if (type == I40E_VSI_MAIN)
12477 		pf->lan_vsi = v_idx;
12478 	else if (type == I40E_VSI_SRIOV)
12479 		vsi->vf_id = param1;
12480 	/* assign it some queues */
12481 	alloc_queue_pairs = vsi->alloc_queue_pairs *
12482 			    (i40e_enabled_xdp_vsi(vsi) ? 2 : 1);
12483 
12484 	ret = i40e_get_lump(pf, pf->qp_pile, alloc_queue_pairs, vsi->idx);
12485 	if (ret < 0) {
12486 		dev_info(&pf->pdev->dev,
12487 			 "failed to get tracking for %d queues for VSI %d err=%d\n",
12488 			 alloc_queue_pairs, vsi->seid, ret);
12489 		goto err_vsi;
12490 	}
12491 	vsi->base_queue = ret;
12492 
12493 	/* get a VSI from the hardware */
12494 	vsi->uplink_seid = uplink_seid;
12495 	ret = i40e_add_vsi(vsi);
12496 	if (ret)
12497 		goto err_vsi;
12498 
12499 	switch (vsi->type) {
12500 	/* setup the netdev if needed */
12501 	case I40E_VSI_MAIN:
12502 	case I40E_VSI_VMDQ2:
12503 		ret = i40e_config_netdev(vsi);
12504 		if (ret)
12505 			goto err_netdev;
12506 		ret = register_netdev(vsi->netdev);
12507 		if (ret)
12508 			goto err_netdev;
12509 		vsi->netdev_registered = true;
12510 		netif_carrier_off(vsi->netdev);
12511 #ifdef CONFIG_I40E_DCB
12512 		/* Setup DCB netlink interface */
12513 		i40e_dcbnl_setup(vsi);
12514 #endif /* CONFIG_I40E_DCB */
12515 		/* fall through */
12516 
12517 	case I40E_VSI_FDIR:
12518 		/* set up vectors and rings if needed */
12519 		ret = i40e_vsi_setup_vectors(vsi);
12520 		if (ret)
12521 			goto err_msix;
12522 
12523 		ret = i40e_alloc_rings(vsi);
12524 		if (ret)
12525 			goto err_rings;
12526 
12527 		/* map all of the rings to the q_vectors */
12528 		i40e_vsi_map_rings_to_vectors(vsi);
12529 
12530 		i40e_vsi_reset_stats(vsi);
12531 		break;
12532 
12533 	default:
12534 		/* no netdev or rings for the other VSI types */
12535 		break;
12536 	}
12537 
12538 	if ((pf->hw_features & I40E_HW_RSS_AQ_CAPABLE) &&
12539 	    (vsi->type == I40E_VSI_VMDQ2)) {
12540 		ret = i40e_vsi_config_rss(vsi);
12541 	}
12542 	return vsi;
12543 
12544 err_rings:
12545 	i40e_vsi_free_q_vectors(vsi);
12546 err_msix:
12547 	if (vsi->netdev_registered) {
12548 		vsi->netdev_registered = false;
12549 		unregister_netdev(vsi->netdev);
12550 		free_netdev(vsi->netdev);
12551 		vsi->netdev = NULL;
12552 	}
12553 err_netdev:
12554 	i40e_aq_delete_element(&pf->hw, vsi->seid, NULL);
12555 err_vsi:
12556 	i40e_vsi_clear(vsi);
12557 err_alloc:
12558 	return NULL;
12559 }
12560 
12561 /**
12562  * i40e_veb_get_bw_info - Query VEB BW information
12563  * @veb: the veb to query
12564  *
12565  * Query the Tx scheduler BW configuration data for given VEB
12566  **/
12567 static int i40e_veb_get_bw_info(struct i40e_veb *veb)
12568 {
12569 	struct i40e_aqc_query_switching_comp_ets_config_resp ets_data;
12570 	struct i40e_aqc_query_switching_comp_bw_config_resp bw_data;
12571 	struct i40e_pf *pf = veb->pf;
12572 	struct i40e_hw *hw = &pf->hw;
12573 	u32 tc_bw_max;
12574 	int ret = 0;
12575 	int i;
12576 
12577 	ret = i40e_aq_query_switch_comp_bw_config(hw, veb->seid,
12578 						  &bw_data, NULL);
12579 	if (ret) {
12580 		dev_info(&pf->pdev->dev,
12581 			 "query veb bw config failed, err %s aq_err %s\n",
12582 			 i40e_stat_str(&pf->hw, ret),
12583 			 i40e_aq_str(&pf->hw, hw->aq.asq_last_status));
12584 		goto out;
12585 	}
12586 
12587 	ret = i40e_aq_query_switch_comp_ets_config(hw, veb->seid,
12588 						   &ets_data, NULL);
12589 	if (ret) {
12590 		dev_info(&pf->pdev->dev,
12591 			 "query veb bw ets config failed, err %s aq_err %s\n",
12592 			 i40e_stat_str(&pf->hw, ret),
12593 			 i40e_aq_str(&pf->hw, hw->aq.asq_last_status));
12594 		goto out;
12595 	}
12596 
12597 	veb->bw_limit = le16_to_cpu(ets_data.port_bw_limit);
12598 	veb->bw_max_quanta = ets_data.tc_bw_max;
12599 	veb->is_abs_credits = bw_data.absolute_credits_enable;
12600 	veb->enabled_tc = ets_data.tc_valid_bits;
12601 	tc_bw_max = le16_to_cpu(bw_data.tc_bw_max[0]) |
12602 		    (le16_to_cpu(bw_data.tc_bw_max[1]) << 16);
12603 	for (i = 0; i < I40E_MAX_TRAFFIC_CLASS; i++) {
12604 		veb->bw_tc_share_credits[i] = bw_data.tc_bw_share_credits[i];
12605 		veb->bw_tc_limit_credits[i] =
12606 					le16_to_cpu(bw_data.tc_bw_limits[i]);
12607 		veb->bw_tc_max_quanta[i] = ((tc_bw_max >> (i*4)) & 0x7);
12608 	}
12609 
12610 out:
12611 	return ret;
12612 }
12613 
12614 /**
12615  * i40e_veb_mem_alloc - Allocates the next available struct veb in the PF
12616  * @pf: board private structure
12617  *
12618  * On error: returns error code (negative)
12619  * On success: returns vsi index in PF (positive)
12620  **/
12621 static int i40e_veb_mem_alloc(struct i40e_pf *pf)
12622 {
12623 	int ret = -ENOENT;
12624 	struct i40e_veb *veb;
12625 	int i;
12626 
12627 	/* Need to protect the allocation of switch elements at the PF level */
12628 	mutex_lock(&pf->switch_mutex);
12629 
12630 	/* VEB list may be fragmented if VEB creation/destruction has
12631 	 * been happening.  We can afford to do a quick scan to look
12632 	 * for any free slots in the list.
12633 	 *
12634 	 * find next empty veb slot, looping back around if necessary
12635 	 */
12636 	i = 0;
12637 	while ((i < I40E_MAX_VEB) && (pf->veb[i] != NULL))
12638 		i++;
12639 	if (i >= I40E_MAX_VEB) {
12640 		ret = -ENOMEM;
12641 		goto err_alloc_veb;  /* out of VEB slots! */
12642 	}
12643 
12644 	veb = kzalloc(sizeof(*veb), GFP_KERNEL);
12645 	if (!veb) {
12646 		ret = -ENOMEM;
12647 		goto err_alloc_veb;
12648 	}
12649 	veb->pf = pf;
12650 	veb->idx = i;
12651 	veb->enabled_tc = 1;
12652 
12653 	pf->veb[i] = veb;
12654 	ret = i;
12655 err_alloc_veb:
12656 	mutex_unlock(&pf->switch_mutex);
12657 	return ret;
12658 }
12659 
12660 /**
12661  * i40e_switch_branch_release - Delete a branch of the switch tree
12662  * @branch: where to start deleting
12663  *
12664  * This uses recursion to find the tips of the branch to be
12665  * removed, deleting until we get back to and can delete this VEB.
12666  **/
12667 static void i40e_switch_branch_release(struct i40e_veb *branch)
12668 {
12669 	struct i40e_pf *pf = branch->pf;
12670 	u16 branch_seid = branch->seid;
12671 	u16 veb_idx = branch->idx;
12672 	int i;
12673 
12674 	/* release any VEBs on this VEB - RECURSION */
12675 	for (i = 0; i < I40E_MAX_VEB; i++) {
12676 		if (!pf->veb[i])
12677 			continue;
12678 		if (pf->veb[i]->uplink_seid == branch->seid)
12679 			i40e_switch_branch_release(pf->veb[i]);
12680 	}
12681 
12682 	/* Release the VSIs on this VEB, but not the owner VSI.
12683 	 *
12684 	 * NOTE: Removing the last VSI on a VEB has the SIDE EFFECT of removing
12685 	 *       the VEB itself, so don't use (*branch) after this loop.
12686 	 */
12687 	for (i = 0; i < pf->num_alloc_vsi; i++) {
12688 		if (!pf->vsi[i])
12689 			continue;
12690 		if (pf->vsi[i]->uplink_seid == branch_seid &&
12691 		   (pf->vsi[i]->flags & I40E_VSI_FLAG_VEB_OWNER) == 0) {
12692 			i40e_vsi_release(pf->vsi[i]);
12693 		}
12694 	}
12695 
12696 	/* There's one corner case where the VEB might not have been
12697 	 * removed, so double check it here and remove it if needed.
12698 	 * This case happens if the veb was created from the debugfs
12699 	 * commands and no VSIs were added to it.
12700 	 */
12701 	if (pf->veb[veb_idx])
12702 		i40e_veb_release(pf->veb[veb_idx]);
12703 }
12704 
12705 /**
12706  * i40e_veb_clear - remove veb struct
12707  * @veb: the veb to remove
12708  **/
12709 static void i40e_veb_clear(struct i40e_veb *veb)
12710 {
12711 	if (!veb)
12712 		return;
12713 
12714 	if (veb->pf) {
12715 		struct i40e_pf *pf = veb->pf;
12716 
12717 		mutex_lock(&pf->switch_mutex);
12718 		if (pf->veb[veb->idx] == veb)
12719 			pf->veb[veb->idx] = NULL;
12720 		mutex_unlock(&pf->switch_mutex);
12721 	}
12722 
12723 	kfree(veb);
12724 }
12725 
12726 /**
12727  * i40e_veb_release - Delete a VEB and free its resources
12728  * @veb: the VEB being removed
12729  **/
12730 void i40e_veb_release(struct i40e_veb *veb)
12731 {
12732 	struct i40e_vsi *vsi = NULL;
12733 	struct i40e_pf *pf;
12734 	int i, n = 0;
12735 
12736 	pf = veb->pf;
12737 
12738 	/* find the remaining VSI and check for extras */
12739 	for (i = 0; i < pf->num_alloc_vsi; i++) {
12740 		if (pf->vsi[i] && pf->vsi[i]->uplink_seid == veb->seid) {
12741 			n++;
12742 			vsi = pf->vsi[i];
12743 		}
12744 	}
12745 	if (n != 1) {
12746 		dev_info(&pf->pdev->dev,
12747 			 "can't remove VEB %d with %d VSIs left\n",
12748 			 veb->seid, n);
12749 		return;
12750 	}
12751 
12752 	/* move the remaining VSI to uplink veb */
12753 	vsi->flags &= ~I40E_VSI_FLAG_VEB_OWNER;
12754 	if (veb->uplink_seid) {
12755 		vsi->uplink_seid = veb->uplink_seid;
12756 		if (veb->uplink_seid == pf->mac_seid)
12757 			vsi->veb_idx = I40E_NO_VEB;
12758 		else
12759 			vsi->veb_idx = veb->veb_idx;
12760 	} else {
12761 		/* floating VEB */
12762 		vsi->uplink_seid = pf->vsi[pf->lan_vsi]->uplink_seid;
12763 		vsi->veb_idx = pf->vsi[pf->lan_vsi]->veb_idx;
12764 	}
12765 
12766 	i40e_aq_delete_element(&pf->hw, veb->seid, NULL);
12767 	i40e_veb_clear(veb);
12768 }
12769 
12770 /**
12771  * i40e_add_veb - create the VEB in the switch
12772  * @veb: the VEB to be instantiated
12773  * @vsi: the controlling VSI
12774  **/
12775 static int i40e_add_veb(struct i40e_veb *veb, struct i40e_vsi *vsi)
12776 {
12777 	struct i40e_pf *pf = veb->pf;
12778 	bool enable_stats = !!(pf->flags & I40E_FLAG_VEB_STATS_ENABLED);
12779 	int ret;
12780 
12781 	ret = i40e_aq_add_veb(&pf->hw, veb->uplink_seid, vsi->seid,
12782 			      veb->enabled_tc, false,
12783 			      &veb->seid, enable_stats, NULL);
12784 
12785 	/* get a VEB from the hardware */
12786 	if (ret) {
12787 		dev_info(&pf->pdev->dev,
12788 			 "couldn't add VEB, err %s aq_err %s\n",
12789 			 i40e_stat_str(&pf->hw, ret),
12790 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
12791 		return -EPERM;
12792 	}
12793 
12794 	/* get statistics counter */
12795 	ret = i40e_aq_get_veb_parameters(&pf->hw, veb->seid, NULL, NULL,
12796 					 &veb->stats_idx, NULL, NULL, NULL);
12797 	if (ret) {
12798 		dev_info(&pf->pdev->dev,
12799 			 "couldn't get VEB statistics idx, err %s aq_err %s\n",
12800 			 i40e_stat_str(&pf->hw, ret),
12801 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
12802 		return -EPERM;
12803 	}
12804 	ret = i40e_veb_get_bw_info(veb);
12805 	if (ret) {
12806 		dev_info(&pf->pdev->dev,
12807 			 "couldn't get VEB bw info, err %s aq_err %s\n",
12808 			 i40e_stat_str(&pf->hw, ret),
12809 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
12810 		i40e_aq_delete_element(&pf->hw, veb->seid, NULL);
12811 		return -ENOENT;
12812 	}
12813 
12814 	vsi->uplink_seid = veb->seid;
12815 	vsi->veb_idx = veb->idx;
12816 	vsi->flags |= I40E_VSI_FLAG_VEB_OWNER;
12817 
12818 	return 0;
12819 }
12820 
12821 /**
12822  * i40e_veb_setup - Set up a VEB
12823  * @pf: board private structure
12824  * @flags: VEB setup flags
12825  * @uplink_seid: the switch element to link to
12826  * @vsi_seid: the initial VSI seid
12827  * @enabled_tc: Enabled TC bit-map
12828  *
12829  * This allocates the sw VEB structure and links it into the switch
12830  * It is possible and legal for this to be a duplicate of an already
12831  * existing VEB.  It is also possible for both uplink and vsi seids
12832  * to be zero, in order to create a floating VEB.
12833  *
12834  * Returns pointer to the successfully allocated VEB sw struct on
12835  * success, otherwise returns NULL on failure.
12836  **/
12837 struct i40e_veb *i40e_veb_setup(struct i40e_pf *pf, u16 flags,
12838 				u16 uplink_seid, u16 vsi_seid,
12839 				u8 enabled_tc)
12840 {
12841 	struct i40e_veb *veb, *uplink_veb = NULL;
12842 	int vsi_idx, veb_idx;
12843 	int ret;
12844 
12845 	/* if one seid is 0, the other must be 0 to create a floating relay */
12846 	if ((uplink_seid == 0 || vsi_seid == 0) &&
12847 	    (uplink_seid + vsi_seid != 0)) {
12848 		dev_info(&pf->pdev->dev,
12849 			 "one, not both seid's are 0: uplink=%d vsi=%d\n",
12850 			 uplink_seid, vsi_seid);
12851 		return NULL;
12852 	}
12853 
12854 	/* make sure there is such a vsi and uplink */
12855 	for (vsi_idx = 0; vsi_idx < pf->num_alloc_vsi; vsi_idx++)
12856 		if (pf->vsi[vsi_idx] && pf->vsi[vsi_idx]->seid == vsi_seid)
12857 			break;
12858 	if (vsi_idx >= pf->num_alloc_vsi && vsi_seid != 0) {
12859 		dev_info(&pf->pdev->dev, "vsi seid %d not found\n",
12860 			 vsi_seid);
12861 		return NULL;
12862 	}
12863 
12864 	if (uplink_seid && uplink_seid != pf->mac_seid) {
12865 		for (veb_idx = 0; veb_idx < I40E_MAX_VEB; veb_idx++) {
12866 			if (pf->veb[veb_idx] &&
12867 			    pf->veb[veb_idx]->seid == uplink_seid) {
12868 				uplink_veb = pf->veb[veb_idx];
12869 				break;
12870 			}
12871 		}
12872 		if (!uplink_veb) {
12873 			dev_info(&pf->pdev->dev,
12874 				 "uplink seid %d not found\n", uplink_seid);
12875 			return NULL;
12876 		}
12877 	}
12878 
12879 	/* get veb sw struct */
12880 	veb_idx = i40e_veb_mem_alloc(pf);
12881 	if (veb_idx < 0)
12882 		goto err_alloc;
12883 	veb = pf->veb[veb_idx];
12884 	veb->flags = flags;
12885 	veb->uplink_seid = uplink_seid;
12886 	veb->veb_idx = (uplink_veb ? uplink_veb->idx : I40E_NO_VEB);
12887 	veb->enabled_tc = (enabled_tc ? enabled_tc : 0x1);
12888 
12889 	/* create the VEB in the switch */
12890 	ret = i40e_add_veb(veb, pf->vsi[vsi_idx]);
12891 	if (ret)
12892 		goto err_veb;
12893 	if (vsi_idx == pf->lan_vsi)
12894 		pf->lan_veb = veb->idx;
12895 
12896 	return veb;
12897 
12898 err_veb:
12899 	i40e_veb_clear(veb);
12900 err_alloc:
12901 	return NULL;
12902 }
12903 
12904 /**
12905  * i40e_setup_pf_switch_element - set PF vars based on switch type
12906  * @pf: board private structure
12907  * @ele: element we are building info from
12908  * @num_reported: total number of elements
12909  * @printconfig: should we print the contents
12910  *
12911  * helper function to assist in extracting a few useful SEID values.
12912  **/
12913 static void i40e_setup_pf_switch_element(struct i40e_pf *pf,
12914 				struct i40e_aqc_switch_config_element_resp *ele,
12915 				u16 num_reported, bool printconfig)
12916 {
12917 	u16 downlink_seid = le16_to_cpu(ele->downlink_seid);
12918 	u16 uplink_seid = le16_to_cpu(ele->uplink_seid);
12919 	u8 element_type = ele->element_type;
12920 	u16 seid = le16_to_cpu(ele->seid);
12921 
12922 	if (printconfig)
12923 		dev_info(&pf->pdev->dev,
12924 			 "type=%d seid=%d uplink=%d downlink=%d\n",
12925 			 element_type, seid, uplink_seid, downlink_seid);
12926 
12927 	switch (element_type) {
12928 	case I40E_SWITCH_ELEMENT_TYPE_MAC:
12929 		pf->mac_seid = seid;
12930 		break;
12931 	case I40E_SWITCH_ELEMENT_TYPE_VEB:
12932 		/* Main VEB? */
12933 		if (uplink_seid != pf->mac_seid)
12934 			break;
12935 		if (pf->lan_veb == I40E_NO_VEB) {
12936 			int v;
12937 
12938 			/* find existing or else empty VEB */
12939 			for (v = 0; v < I40E_MAX_VEB; v++) {
12940 				if (pf->veb[v] && (pf->veb[v]->seid == seid)) {
12941 					pf->lan_veb = v;
12942 					break;
12943 				}
12944 			}
12945 			if (pf->lan_veb == I40E_NO_VEB) {
12946 				v = i40e_veb_mem_alloc(pf);
12947 				if (v < 0)
12948 					break;
12949 				pf->lan_veb = v;
12950 			}
12951 		}
12952 
12953 		pf->veb[pf->lan_veb]->seid = seid;
12954 		pf->veb[pf->lan_veb]->uplink_seid = pf->mac_seid;
12955 		pf->veb[pf->lan_veb]->pf = pf;
12956 		pf->veb[pf->lan_veb]->veb_idx = I40E_NO_VEB;
12957 		break;
12958 	case I40E_SWITCH_ELEMENT_TYPE_VSI:
12959 		if (num_reported != 1)
12960 			break;
12961 		/* This is immediately after a reset so we can assume this is
12962 		 * the PF's VSI
12963 		 */
12964 		pf->mac_seid = uplink_seid;
12965 		pf->pf_seid = downlink_seid;
12966 		pf->main_vsi_seid = seid;
12967 		if (printconfig)
12968 			dev_info(&pf->pdev->dev,
12969 				 "pf_seid=%d main_vsi_seid=%d\n",
12970 				 pf->pf_seid, pf->main_vsi_seid);
12971 		break;
12972 	case I40E_SWITCH_ELEMENT_TYPE_PF:
12973 	case I40E_SWITCH_ELEMENT_TYPE_VF:
12974 	case I40E_SWITCH_ELEMENT_TYPE_EMP:
12975 	case I40E_SWITCH_ELEMENT_TYPE_BMC:
12976 	case I40E_SWITCH_ELEMENT_TYPE_PE:
12977 	case I40E_SWITCH_ELEMENT_TYPE_PA:
12978 		/* ignore these for now */
12979 		break;
12980 	default:
12981 		dev_info(&pf->pdev->dev, "unknown element type=%d seid=%d\n",
12982 			 element_type, seid);
12983 		break;
12984 	}
12985 }
12986 
12987 /**
12988  * i40e_fetch_switch_configuration - Get switch config from firmware
12989  * @pf: board private structure
12990  * @printconfig: should we print the contents
12991  *
12992  * Get the current switch configuration from the device and
12993  * extract a few useful SEID values.
12994  **/
12995 int i40e_fetch_switch_configuration(struct i40e_pf *pf, bool printconfig)
12996 {
12997 	struct i40e_aqc_get_switch_config_resp *sw_config;
12998 	u16 next_seid = 0;
12999 	int ret = 0;
13000 	u8 *aq_buf;
13001 	int i;
13002 
13003 	aq_buf = kzalloc(I40E_AQ_LARGE_BUF, GFP_KERNEL);
13004 	if (!aq_buf)
13005 		return -ENOMEM;
13006 
13007 	sw_config = (struct i40e_aqc_get_switch_config_resp *)aq_buf;
13008 	do {
13009 		u16 num_reported, num_total;
13010 
13011 		ret = i40e_aq_get_switch_config(&pf->hw, sw_config,
13012 						I40E_AQ_LARGE_BUF,
13013 						&next_seid, NULL);
13014 		if (ret) {
13015 			dev_info(&pf->pdev->dev,
13016 				 "get switch config failed err %s aq_err %s\n",
13017 				 i40e_stat_str(&pf->hw, ret),
13018 				 i40e_aq_str(&pf->hw,
13019 					     pf->hw.aq.asq_last_status));
13020 			kfree(aq_buf);
13021 			return -ENOENT;
13022 		}
13023 
13024 		num_reported = le16_to_cpu(sw_config->header.num_reported);
13025 		num_total = le16_to_cpu(sw_config->header.num_total);
13026 
13027 		if (printconfig)
13028 			dev_info(&pf->pdev->dev,
13029 				 "header: %d reported %d total\n",
13030 				 num_reported, num_total);
13031 
13032 		for (i = 0; i < num_reported; i++) {
13033 			struct i40e_aqc_switch_config_element_resp *ele =
13034 				&sw_config->element[i];
13035 
13036 			i40e_setup_pf_switch_element(pf, ele, num_reported,
13037 						     printconfig);
13038 		}
13039 	} while (next_seid != 0);
13040 
13041 	kfree(aq_buf);
13042 	return ret;
13043 }
13044 
13045 /**
13046  * i40e_setup_pf_switch - Setup the HW switch on startup or after reset
13047  * @pf: board private structure
13048  * @reinit: if the Main VSI needs to re-initialized.
13049  *
13050  * Returns 0 on success, negative value on failure
13051  **/
13052 static int i40e_setup_pf_switch(struct i40e_pf *pf, bool reinit)
13053 {
13054 	u16 flags = 0;
13055 	int ret;
13056 
13057 	/* find out what's out there already */
13058 	ret = i40e_fetch_switch_configuration(pf, false);
13059 	if (ret) {
13060 		dev_info(&pf->pdev->dev,
13061 			 "couldn't fetch switch config, err %s aq_err %s\n",
13062 			 i40e_stat_str(&pf->hw, ret),
13063 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
13064 		return ret;
13065 	}
13066 	i40e_pf_reset_stats(pf);
13067 
13068 	/* set the switch config bit for the whole device to
13069 	 * support limited promisc or true promisc
13070 	 * when user requests promisc. The default is limited
13071 	 * promisc.
13072 	*/
13073 
13074 	if ((pf->hw.pf_id == 0) &&
13075 	    !(pf->flags & I40E_FLAG_TRUE_PROMISC_SUPPORT)) {
13076 		flags = I40E_AQ_SET_SWITCH_CFG_PROMISC;
13077 		pf->last_sw_conf_flags = flags;
13078 	}
13079 
13080 	if (pf->hw.pf_id == 0) {
13081 		u16 valid_flags;
13082 
13083 		valid_flags = I40E_AQ_SET_SWITCH_CFG_PROMISC;
13084 		ret = i40e_aq_set_switch_config(&pf->hw, flags, valid_flags, 0,
13085 						NULL);
13086 		if (ret && pf->hw.aq.asq_last_status != I40E_AQ_RC_ESRCH) {
13087 			dev_info(&pf->pdev->dev,
13088 				 "couldn't set switch config bits, err %s aq_err %s\n",
13089 				 i40e_stat_str(&pf->hw, ret),
13090 				 i40e_aq_str(&pf->hw,
13091 					     pf->hw.aq.asq_last_status));
13092 			/* not a fatal problem, just keep going */
13093 		}
13094 		pf->last_sw_conf_valid_flags = valid_flags;
13095 	}
13096 
13097 	/* first time setup */
13098 	if (pf->lan_vsi == I40E_NO_VSI || reinit) {
13099 		struct i40e_vsi *vsi = NULL;
13100 		u16 uplink_seid;
13101 
13102 		/* Set up the PF VSI associated with the PF's main VSI
13103 		 * that is already in the HW switch
13104 		 */
13105 		if (pf->lan_veb != I40E_NO_VEB && pf->veb[pf->lan_veb])
13106 			uplink_seid = pf->veb[pf->lan_veb]->seid;
13107 		else
13108 			uplink_seid = pf->mac_seid;
13109 		if (pf->lan_vsi == I40E_NO_VSI)
13110 			vsi = i40e_vsi_setup(pf, I40E_VSI_MAIN, uplink_seid, 0);
13111 		else if (reinit)
13112 			vsi = i40e_vsi_reinit_setup(pf->vsi[pf->lan_vsi]);
13113 		if (!vsi) {
13114 			dev_info(&pf->pdev->dev, "setup of MAIN VSI failed\n");
13115 			i40e_cloud_filter_exit(pf);
13116 			i40e_fdir_teardown(pf);
13117 			return -EAGAIN;
13118 		}
13119 	} else {
13120 		/* force a reset of TC and queue layout configurations */
13121 		u8 enabled_tc = pf->vsi[pf->lan_vsi]->tc_config.enabled_tc;
13122 
13123 		pf->vsi[pf->lan_vsi]->tc_config.enabled_tc = 0;
13124 		pf->vsi[pf->lan_vsi]->seid = pf->main_vsi_seid;
13125 		i40e_vsi_config_tc(pf->vsi[pf->lan_vsi], enabled_tc);
13126 	}
13127 	i40e_vlan_stripping_disable(pf->vsi[pf->lan_vsi]);
13128 
13129 	i40e_fdir_sb_setup(pf);
13130 
13131 	/* Setup static PF queue filter control settings */
13132 	ret = i40e_setup_pf_filter_control(pf);
13133 	if (ret) {
13134 		dev_info(&pf->pdev->dev, "setup_pf_filter_control failed: %d\n",
13135 			 ret);
13136 		/* Failure here should not stop continuing other steps */
13137 	}
13138 
13139 	/* enable RSS in the HW, even for only one queue, as the stack can use
13140 	 * the hash
13141 	 */
13142 	if ((pf->flags & I40E_FLAG_RSS_ENABLED))
13143 		i40e_pf_config_rss(pf);
13144 
13145 	/* fill in link information and enable LSE reporting */
13146 	i40e_link_event(pf);
13147 
13148 	/* Initialize user-specific link properties */
13149 	pf->fc_autoneg_status = ((pf->hw.phy.link_info.an_info &
13150 				  I40E_AQ_AN_COMPLETED) ? true : false);
13151 
13152 	i40e_ptp_init(pf);
13153 
13154 	/* repopulate tunnel port filters */
13155 	i40e_sync_udp_filters(pf);
13156 
13157 	return ret;
13158 }
13159 
13160 /**
13161  * i40e_determine_queue_usage - Work out queue distribution
13162  * @pf: board private structure
13163  **/
13164 static void i40e_determine_queue_usage(struct i40e_pf *pf)
13165 {
13166 	int queues_left;
13167 	int q_max;
13168 
13169 	pf->num_lan_qps = 0;
13170 
13171 	/* Find the max queues to be put into basic use.  We'll always be
13172 	 * using TC0, whether or not DCB is running, and TC0 will get the
13173 	 * big RSS set.
13174 	 */
13175 	queues_left = pf->hw.func_caps.num_tx_qp;
13176 
13177 	if ((queues_left == 1) ||
13178 	    !(pf->flags & I40E_FLAG_MSIX_ENABLED)) {
13179 		/* one qp for PF, no queues for anything else */
13180 		queues_left = 0;
13181 		pf->alloc_rss_size = pf->num_lan_qps = 1;
13182 
13183 		/* make sure all the fancies are disabled */
13184 		pf->flags &= ~(I40E_FLAG_RSS_ENABLED	|
13185 			       I40E_FLAG_IWARP_ENABLED	|
13186 			       I40E_FLAG_FD_SB_ENABLED	|
13187 			       I40E_FLAG_FD_ATR_ENABLED	|
13188 			       I40E_FLAG_DCB_CAPABLE	|
13189 			       I40E_FLAG_DCB_ENABLED	|
13190 			       I40E_FLAG_SRIOV_ENABLED	|
13191 			       I40E_FLAG_VMDQ_ENABLED);
13192 		pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
13193 	} else if (!(pf->flags & (I40E_FLAG_RSS_ENABLED |
13194 				  I40E_FLAG_FD_SB_ENABLED |
13195 				  I40E_FLAG_FD_ATR_ENABLED |
13196 				  I40E_FLAG_DCB_CAPABLE))) {
13197 		/* one qp for PF */
13198 		pf->alloc_rss_size = pf->num_lan_qps = 1;
13199 		queues_left -= pf->num_lan_qps;
13200 
13201 		pf->flags &= ~(I40E_FLAG_RSS_ENABLED	|
13202 			       I40E_FLAG_IWARP_ENABLED	|
13203 			       I40E_FLAG_FD_SB_ENABLED	|
13204 			       I40E_FLAG_FD_ATR_ENABLED	|
13205 			       I40E_FLAG_DCB_ENABLED	|
13206 			       I40E_FLAG_VMDQ_ENABLED);
13207 		pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
13208 	} else {
13209 		/* Not enough queues for all TCs */
13210 		if ((pf->flags & I40E_FLAG_DCB_CAPABLE) &&
13211 		    (queues_left < I40E_MAX_TRAFFIC_CLASS)) {
13212 			pf->flags &= ~(I40E_FLAG_DCB_CAPABLE |
13213 					I40E_FLAG_DCB_ENABLED);
13214 			dev_info(&pf->pdev->dev, "not enough queues for DCB. DCB is disabled.\n");
13215 		}
13216 
13217 		/* limit lan qps to the smaller of qps, cpus or msix */
13218 		q_max = max_t(int, pf->rss_size_max, num_online_cpus());
13219 		q_max = min_t(int, q_max, pf->hw.func_caps.num_tx_qp);
13220 		q_max = min_t(int, q_max, pf->hw.func_caps.num_msix_vectors);
13221 		pf->num_lan_qps = q_max;
13222 
13223 		queues_left -= pf->num_lan_qps;
13224 	}
13225 
13226 	if (pf->flags & I40E_FLAG_FD_SB_ENABLED) {
13227 		if (queues_left > 1) {
13228 			queues_left -= 1; /* save 1 queue for FD */
13229 		} else {
13230 			pf->flags &= ~I40E_FLAG_FD_SB_ENABLED;
13231 			pf->flags |= I40E_FLAG_FD_SB_INACTIVE;
13232 			dev_info(&pf->pdev->dev, "not enough queues for Flow Director. Flow Director feature is disabled\n");
13233 		}
13234 	}
13235 
13236 	if ((pf->flags & I40E_FLAG_SRIOV_ENABLED) &&
13237 	    pf->num_vf_qps && pf->num_req_vfs && queues_left) {
13238 		pf->num_req_vfs = min_t(int, pf->num_req_vfs,
13239 					(queues_left / pf->num_vf_qps));
13240 		queues_left -= (pf->num_req_vfs * pf->num_vf_qps);
13241 	}
13242 
13243 	if ((pf->flags & I40E_FLAG_VMDQ_ENABLED) &&
13244 	    pf->num_vmdq_vsis && pf->num_vmdq_qps && queues_left) {
13245 		pf->num_vmdq_vsis = min_t(int, pf->num_vmdq_vsis,
13246 					  (queues_left / pf->num_vmdq_qps));
13247 		queues_left -= (pf->num_vmdq_vsis * pf->num_vmdq_qps);
13248 	}
13249 
13250 	pf->queues_left = queues_left;
13251 	dev_dbg(&pf->pdev->dev,
13252 		"qs_avail=%d FD SB=%d lan_qs=%d lan_tc0=%d vf=%d*%d vmdq=%d*%d, remaining=%d\n",
13253 		pf->hw.func_caps.num_tx_qp,
13254 		!!(pf->flags & I40E_FLAG_FD_SB_ENABLED),
13255 		pf->num_lan_qps, pf->alloc_rss_size, pf->num_req_vfs,
13256 		pf->num_vf_qps, pf->num_vmdq_vsis, pf->num_vmdq_qps,
13257 		queues_left);
13258 }
13259 
13260 /**
13261  * i40e_setup_pf_filter_control - Setup PF static filter control
13262  * @pf: PF to be setup
13263  *
13264  * i40e_setup_pf_filter_control sets up a PF's initial filter control
13265  * settings. If PE/FCoE are enabled then it will also set the per PF
13266  * based filter sizes required for them. It also enables Flow director,
13267  * ethertype and macvlan type filter settings for the pf.
13268  *
13269  * Returns 0 on success, negative on failure
13270  **/
13271 static int i40e_setup_pf_filter_control(struct i40e_pf *pf)
13272 {
13273 	struct i40e_filter_control_settings *settings = &pf->filter_settings;
13274 
13275 	settings->hash_lut_size = I40E_HASH_LUT_SIZE_128;
13276 
13277 	/* Flow Director is enabled */
13278 	if (pf->flags & (I40E_FLAG_FD_SB_ENABLED | I40E_FLAG_FD_ATR_ENABLED))
13279 		settings->enable_fdir = true;
13280 
13281 	/* Ethtype and MACVLAN filters enabled for PF */
13282 	settings->enable_ethtype = true;
13283 	settings->enable_macvlan = true;
13284 
13285 	if (i40e_set_filter_control(&pf->hw, settings))
13286 		return -ENOENT;
13287 
13288 	return 0;
13289 }
13290 
13291 #define INFO_STRING_LEN 255
13292 #define REMAIN(__x) (INFO_STRING_LEN - (__x))
13293 static void i40e_print_features(struct i40e_pf *pf)
13294 {
13295 	struct i40e_hw *hw = &pf->hw;
13296 	char *buf;
13297 	int i;
13298 
13299 	buf = kmalloc(INFO_STRING_LEN, GFP_KERNEL);
13300 	if (!buf)
13301 		return;
13302 
13303 	i = snprintf(buf, INFO_STRING_LEN, "Features: PF-id[%d]", hw->pf_id);
13304 #ifdef CONFIG_PCI_IOV
13305 	i += snprintf(&buf[i], REMAIN(i), " VFs: %d", pf->num_req_vfs);
13306 #endif
13307 	i += snprintf(&buf[i], REMAIN(i), " VSIs: %d QP: %d",
13308 		      pf->hw.func_caps.num_vsis,
13309 		      pf->vsi[pf->lan_vsi]->num_queue_pairs);
13310 	if (pf->flags & I40E_FLAG_RSS_ENABLED)
13311 		i += snprintf(&buf[i], REMAIN(i), " RSS");
13312 	if (pf->flags & I40E_FLAG_FD_ATR_ENABLED)
13313 		i += snprintf(&buf[i], REMAIN(i), " FD_ATR");
13314 	if (pf->flags & I40E_FLAG_FD_SB_ENABLED) {
13315 		i += snprintf(&buf[i], REMAIN(i), " FD_SB");
13316 		i += snprintf(&buf[i], REMAIN(i), " NTUPLE");
13317 	}
13318 	if (pf->flags & I40E_FLAG_DCB_CAPABLE)
13319 		i += snprintf(&buf[i], REMAIN(i), " DCB");
13320 	i += snprintf(&buf[i], REMAIN(i), " VxLAN");
13321 	i += snprintf(&buf[i], REMAIN(i), " Geneve");
13322 	if (pf->flags & I40E_FLAG_PTP)
13323 		i += snprintf(&buf[i], REMAIN(i), " PTP");
13324 	if (pf->flags & I40E_FLAG_VEB_MODE_ENABLED)
13325 		i += snprintf(&buf[i], REMAIN(i), " VEB");
13326 	else
13327 		i += snprintf(&buf[i], REMAIN(i), " VEPA");
13328 
13329 	dev_info(&pf->pdev->dev, "%s\n", buf);
13330 	kfree(buf);
13331 	WARN_ON(i > INFO_STRING_LEN);
13332 }
13333 
13334 /**
13335  * i40e_get_platform_mac_addr - get platform-specific MAC address
13336  * @pdev: PCI device information struct
13337  * @pf: board private structure
13338  *
13339  * Look up the MAC address for the device. First we'll try
13340  * eth_platform_get_mac_address, which will check Open Firmware, or arch
13341  * specific fallback. Otherwise, we'll default to the stored value in
13342  * firmware.
13343  **/
13344 static void i40e_get_platform_mac_addr(struct pci_dev *pdev, struct i40e_pf *pf)
13345 {
13346 	if (eth_platform_get_mac_address(&pdev->dev, pf->hw.mac.addr))
13347 		i40e_get_mac_addr(&pf->hw, pf->hw.mac.addr);
13348 }
13349 
13350 /**
13351  * i40e_probe - Device initialization routine
13352  * @pdev: PCI device information struct
13353  * @ent: entry in i40e_pci_tbl
13354  *
13355  * i40e_probe initializes a PF identified by a pci_dev structure.
13356  * The OS initialization, configuring of the PF private structure,
13357  * and a hardware reset occur.
13358  *
13359  * Returns 0 on success, negative on failure
13360  **/
13361 static int i40e_probe(struct pci_dev *pdev, const struct pci_device_id *ent)
13362 {
13363 	struct i40e_aq_get_phy_abilities_resp abilities;
13364 	struct i40e_pf *pf;
13365 	struct i40e_hw *hw;
13366 	static u16 pfs_found;
13367 	u16 wol_nvm_bits;
13368 	u16 link_status;
13369 	int err;
13370 	u32 val;
13371 	u32 i;
13372 	u8 set_fc_aq_fail;
13373 
13374 	err = pci_enable_device_mem(pdev);
13375 	if (err)
13376 		return err;
13377 
13378 	/* set up for high or low dma */
13379 	err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(64));
13380 	if (err) {
13381 		err = dma_set_mask_and_coherent(&pdev->dev, DMA_BIT_MASK(32));
13382 		if (err) {
13383 			dev_err(&pdev->dev,
13384 				"DMA configuration failed: 0x%x\n", err);
13385 			goto err_dma;
13386 		}
13387 	}
13388 
13389 	/* set up pci connections */
13390 	err = pci_request_mem_regions(pdev, i40e_driver_name);
13391 	if (err) {
13392 		dev_info(&pdev->dev,
13393 			 "pci_request_selected_regions failed %d\n", err);
13394 		goto err_pci_reg;
13395 	}
13396 
13397 	pci_enable_pcie_error_reporting(pdev);
13398 	pci_set_master(pdev);
13399 
13400 	/* Now that we have a PCI connection, we need to do the
13401 	 * low level device setup.  This is primarily setting up
13402 	 * the Admin Queue structures and then querying for the
13403 	 * device's current profile information.
13404 	 */
13405 	pf = kzalloc(sizeof(*pf), GFP_KERNEL);
13406 	if (!pf) {
13407 		err = -ENOMEM;
13408 		goto err_pf_alloc;
13409 	}
13410 	pf->next_vsi = 0;
13411 	pf->pdev = pdev;
13412 	set_bit(__I40E_DOWN, pf->state);
13413 
13414 	hw = &pf->hw;
13415 	hw->back = pf;
13416 
13417 	pf->ioremap_len = min_t(int, pci_resource_len(pdev, 0),
13418 				I40E_MAX_CSR_SPACE);
13419 
13420 	hw->hw_addr = ioremap(pci_resource_start(pdev, 0), pf->ioremap_len);
13421 	if (!hw->hw_addr) {
13422 		err = -EIO;
13423 		dev_info(&pdev->dev, "ioremap(0x%04x, 0x%04x) failed: 0x%x\n",
13424 			 (unsigned int)pci_resource_start(pdev, 0),
13425 			 pf->ioremap_len, err);
13426 		goto err_ioremap;
13427 	}
13428 	hw->vendor_id = pdev->vendor;
13429 	hw->device_id = pdev->device;
13430 	pci_read_config_byte(pdev, PCI_REVISION_ID, &hw->revision_id);
13431 	hw->subsystem_vendor_id = pdev->subsystem_vendor;
13432 	hw->subsystem_device_id = pdev->subsystem_device;
13433 	hw->bus.device = PCI_SLOT(pdev->devfn);
13434 	hw->bus.func = PCI_FUNC(pdev->devfn);
13435 	hw->bus.bus_id = pdev->bus->number;
13436 	pf->instance = pfs_found;
13437 
13438 	/* Select something other than the 802.1ad ethertype for the
13439 	 * switch to use internally and drop on ingress.
13440 	 */
13441 	hw->switch_tag = 0xffff;
13442 	hw->first_tag = ETH_P_8021AD;
13443 	hw->second_tag = ETH_P_8021Q;
13444 
13445 	INIT_LIST_HEAD(&pf->l3_flex_pit_list);
13446 	INIT_LIST_HEAD(&pf->l4_flex_pit_list);
13447 
13448 	/* set up the locks for the AQ, do this only once in probe
13449 	 * and destroy them only once in remove
13450 	 */
13451 	mutex_init(&hw->aq.asq_mutex);
13452 	mutex_init(&hw->aq.arq_mutex);
13453 
13454 	pf->msg_enable = netif_msg_init(debug,
13455 					NETIF_MSG_DRV |
13456 					NETIF_MSG_PROBE |
13457 					NETIF_MSG_LINK);
13458 	if (debug < -1)
13459 		pf->hw.debug_mask = debug;
13460 
13461 	/* do a special CORER for clearing PXE mode once at init */
13462 	if (hw->revision_id == 0 &&
13463 	    (rd32(hw, I40E_GLLAN_RCTL_0) & I40E_GLLAN_RCTL_0_PXE_MODE_MASK)) {
13464 		wr32(hw, I40E_GLGEN_RTRIG, I40E_GLGEN_RTRIG_CORER_MASK);
13465 		i40e_flush(hw);
13466 		msleep(200);
13467 		pf->corer_count++;
13468 
13469 		i40e_clear_pxe_mode(hw);
13470 	}
13471 
13472 	/* Reset here to make sure all is clean and to define PF 'n' */
13473 	i40e_clear_hw(hw);
13474 	err = i40e_pf_reset(hw);
13475 	if (err) {
13476 		dev_info(&pdev->dev, "Initial pf_reset failed: %d\n", err);
13477 		goto err_pf_reset;
13478 	}
13479 	pf->pfr_count++;
13480 
13481 	hw->aq.num_arq_entries = I40E_AQ_LEN;
13482 	hw->aq.num_asq_entries = I40E_AQ_LEN;
13483 	hw->aq.arq_buf_size = I40E_MAX_AQ_BUF_SIZE;
13484 	hw->aq.asq_buf_size = I40E_MAX_AQ_BUF_SIZE;
13485 	pf->adminq_work_limit = I40E_AQ_WORK_LIMIT;
13486 
13487 	snprintf(pf->int_name, sizeof(pf->int_name) - 1,
13488 		 "%s-%s:misc",
13489 		 dev_driver_string(&pf->pdev->dev), dev_name(&pdev->dev));
13490 
13491 	err = i40e_init_shared_code(hw);
13492 	if (err) {
13493 		dev_warn(&pdev->dev, "unidentified MAC or BLANK NVM: %d\n",
13494 			 err);
13495 		goto err_pf_reset;
13496 	}
13497 
13498 	/* set up a default setting for link flow control */
13499 	pf->hw.fc.requested_mode = I40E_FC_NONE;
13500 
13501 	err = i40e_init_adminq(hw);
13502 	if (err) {
13503 		if (err == I40E_ERR_FIRMWARE_API_VERSION)
13504 			dev_info(&pdev->dev,
13505 				 "The driver for the device stopped because the NVM image is newer than expected. You must install the most recent version of the network driver.\n");
13506 		else
13507 			dev_info(&pdev->dev,
13508 				 "The driver for the device stopped because the device firmware failed to init. Try updating your NVM image.\n");
13509 
13510 		goto err_pf_reset;
13511 	}
13512 	i40e_get_oem_version(hw);
13513 
13514 	/* provide nvm, fw, api versions */
13515 	dev_info(&pdev->dev, "fw %d.%d.%05d api %d.%d nvm %s\n",
13516 		 hw->aq.fw_maj_ver, hw->aq.fw_min_ver, hw->aq.fw_build,
13517 		 hw->aq.api_maj_ver, hw->aq.api_min_ver,
13518 		 i40e_nvm_version_str(hw));
13519 
13520 	if (hw->aq.api_maj_ver == I40E_FW_API_VERSION_MAJOR &&
13521 	    hw->aq.api_min_ver > I40E_FW_MINOR_VERSION(hw))
13522 		dev_info(&pdev->dev,
13523 			 "The driver for the device detected a newer version of the NVM image than expected. Please install the most recent version of the network driver.\n");
13524 	else if (hw->aq.api_maj_ver == 1 && hw->aq.api_min_ver < 4)
13525 		dev_info(&pdev->dev,
13526 			 "The driver for the device detected an older version of the NVM image than expected. Please update the NVM image.\n");
13527 
13528 	i40e_verify_eeprom(pf);
13529 
13530 	/* Rev 0 hardware was never productized */
13531 	if (hw->revision_id < 1)
13532 		dev_warn(&pdev->dev, "This device is a pre-production adapter/LOM. Please be aware there may be issues with your hardware. If you are experiencing problems please contact your Intel or hardware representative who provided you with this hardware.\n");
13533 
13534 	i40e_clear_pxe_mode(hw);
13535 	err = i40e_get_capabilities(pf, i40e_aqc_opc_list_func_capabilities);
13536 	if (err)
13537 		goto err_adminq_setup;
13538 
13539 	err = i40e_sw_init(pf);
13540 	if (err) {
13541 		dev_info(&pdev->dev, "sw_init failed: %d\n", err);
13542 		goto err_sw_init;
13543 	}
13544 
13545 	err = i40e_init_lan_hmc(hw, hw->func_caps.num_tx_qp,
13546 				hw->func_caps.num_rx_qp, 0, 0);
13547 	if (err) {
13548 		dev_info(&pdev->dev, "init_lan_hmc failed: %d\n", err);
13549 		goto err_init_lan_hmc;
13550 	}
13551 
13552 	err = i40e_configure_lan_hmc(hw, I40E_HMC_MODEL_DIRECT_ONLY);
13553 	if (err) {
13554 		dev_info(&pdev->dev, "configure_lan_hmc failed: %d\n", err);
13555 		err = -ENOENT;
13556 		goto err_configure_lan_hmc;
13557 	}
13558 
13559 	/* Disable LLDP for NICs that have firmware versions lower than v4.3.
13560 	 * Ignore error return codes because if it was already disabled via
13561 	 * hardware settings this will fail
13562 	 */
13563 	if (pf->hw_features & I40E_HW_STOP_FW_LLDP) {
13564 		dev_info(&pdev->dev, "Stopping firmware LLDP agent.\n");
13565 		i40e_aq_stop_lldp(hw, true, NULL);
13566 	}
13567 
13568 	/* allow a platform config to override the HW addr */
13569 	i40e_get_platform_mac_addr(pdev, pf);
13570 
13571 	if (!is_valid_ether_addr(hw->mac.addr)) {
13572 		dev_info(&pdev->dev, "invalid MAC address %pM\n", hw->mac.addr);
13573 		err = -EIO;
13574 		goto err_mac_addr;
13575 	}
13576 	dev_info(&pdev->dev, "MAC address: %pM\n", hw->mac.addr);
13577 	ether_addr_copy(hw->mac.perm_addr, hw->mac.addr);
13578 	i40e_get_port_mac_addr(hw, hw->mac.port_addr);
13579 	if (is_valid_ether_addr(hw->mac.port_addr))
13580 		pf->hw_features |= I40E_HW_PORT_ID_VALID;
13581 
13582 	pci_set_drvdata(pdev, pf);
13583 	pci_save_state(pdev);
13584 #ifdef CONFIG_I40E_DCB
13585 	err = i40e_init_pf_dcb(pf);
13586 	if (err) {
13587 		dev_info(&pdev->dev, "DCB init failed %d, disabled\n", err);
13588 		pf->flags &= ~(I40E_FLAG_DCB_CAPABLE | I40E_FLAG_DCB_ENABLED);
13589 		/* Continue without DCB enabled */
13590 	}
13591 #endif /* CONFIG_I40E_DCB */
13592 
13593 	/* set up periodic task facility */
13594 	timer_setup(&pf->service_timer, i40e_service_timer, 0);
13595 	pf->service_timer_period = HZ;
13596 
13597 	INIT_WORK(&pf->service_task, i40e_service_task);
13598 	clear_bit(__I40E_SERVICE_SCHED, pf->state);
13599 
13600 	/* NVM bit on means WoL disabled for the port */
13601 	i40e_read_nvm_word(hw, I40E_SR_NVM_WAKE_ON_LAN, &wol_nvm_bits);
13602 	if (BIT (hw->port) & wol_nvm_bits || hw->partition_id != 1)
13603 		pf->wol_en = false;
13604 	else
13605 		pf->wol_en = true;
13606 	device_set_wakeup_enable(&pf->pdev->dev, pf->wol_en);
13607 
13608 	/* set up the main switch operations */
13609 	i40e_determine_queue_usage(pf);
13610 	err = i40e_init_interrupt_scheme(pf);
13611 	if (err)
13612 		goto err_switch_setup;
13613 
13614 	/* The number of VSIs reported by the FW is the minimum guaranteed
13615 	 * to us; HW supports far more and we share the remaining pool with
13616 	 * the other PFs. We allocate space for more than the guarantee with
13617 	 * the understanding that we might not get them all later.
13618 	 */
13619 	if (pf->hw.func_caps.num_vsis < I40E_MIN_VSI_ALLOC)
13620 		pf->num_alloc_vsi = I40E_MIN_VSI_ALLOC;
13621 	else
13622 		pf->num_alloc_vsi = pf->hw.func_caps.num_vsis;
13623 
13624 	/* Set up the *vsi struct and our local tracking of the MAIN PF vsi. */
13625 	pf->vsi = kcalloc(pf->num_alloc_vsi, sizeof(struct i40e_vsi *),
13626 			  GFP_KERNEL);
13627 	if (!pf->vsi) {
13628 		err = -ENOMEM;
13629 		goto err_switch_setup;
13630 	}
13631 
13632 #ifdef CONFIG_PCI_IOV
13633 	/* prep for VF support */
13634 	if ((pf->flags & I40E_FLAG_SRIOV_ENABLED) &&
13635 	    (pf->flags & I40E_FLAG_MSIX_ENABLED) &&
13636 	    !test_bit(__I40E_BAD_EEPROM, pf->state)) {
13637 		if (pci_num_vf(pdev))
13638 			pf->flags |= I40E_FLAG_VEB_MODE_ENABLED;
13639 	}
13640 #endif
13641 	err = i40e_setup_pf_switch(pf, false);
13642 	if (err) {
13643 		dev_info(&pdev->dev, "setup_pf_switch failed: %d\n", err);
13644 		goto err_vsis;
13645 	}
13646 	INIT_LIST_HEAD(&pf->vsi[pf->lan_vsi]->ch_list);
13647 
13648 	/* Make sure flow control is set according to current settings */
13649 	err = i40e_set_fc(hw, &set_fc_aq_fail, true);
13650 	if (set_fc_aq_fail & I40E_SET_FC_AQ_FAIL_GET)
13651 		dev_dbg(&pf->pdev->dev,
13652 			"Set fc with err %s aq_err %s on get_phy_cap\n",
13653 			i40e_stat_str(hw, err),
13654 			i40e_aq_str(hw, hw->aq.asq_last_status));
13655 	if (set_fc_aq_fail & I40E_SET_FC_AQ_FAIL_SET)
13656 		dev_dbg(&pf->pdev->dev,
13657 			"Set fc with err %s aq_err %s on set_phy_config\n",
13658 			i40e_stat_str(hw, err),
13659 			i40e_aq_str(hw, hw->aq.asq_last_status));
13660 	if (set_fc_aq_fail & I40E_SET_FC_AQ_FAIL_UPDATE)
13661 		dev_dbg(&pf->pdev->dev,
13662 			"Set fc with err %s aq_err %s on get_link_info\n",
13663 			i40e_stat_str(hw, err),
13664 			i40e_aq_str(hw, hw->aq.asq_last_status));
13665 
13666 	/* if FDIR VSI was set up, start it now */
13667 	for (i = 0; i < pf->num_alloc_vsi; i++) {
13668 		if (pf->vsi[i] && pf->vsi[i]->type == I40E_VSI_FDIR) {
13669 			i40e_vsi_open(pf->vsi[i]);
13670 			break;
13671 		}
13672 	}
13673 
13674 	/* The driver only wants link up/down and module qualification
13675 	 * reports from firmware.  Note the negative logic.
13676 	 */
13677 	err = i40e_aq_set_phy_int_mask(&pf->hw,
13678 				       ~(I40E_AQ_EVENT_LINK_UPDOWN |
13679 					 I40E_AQ_EVENT_MEDIA_NA |
13680 					 I40E_AQ_EVENT_MODULE_QUAL_FAIL), NULL);
13681 	if (err)
13682 		dev_info(&pf->pdev->dev, "set phy mask fail, err %s aq_err %s\n",
13683 			 i40e_stat_str(&pf->hw, err),
13684 			 i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
13685 
13686 	/* Reconfigure hardware for allowing smaller MSS in the case
13687 	 * of TSO, so that we avoid the MDD being fired and causing
13688 	 * a reset in the case of small MSS+TSO.
13689 	 */
13690 	val = rd32(hw, I40E_REG_MSS);
13691 	if ((val & I40E_REG_MSS_MIN_MASK) > I40E_64BYTE_MSS) {
13692 		val &= ~I40E_REG_MSS_MIN_MASK;
13693 		val |= I40E_64BYTE_MSS;
13694 		wr32(hw, I40E_REG_MSS, val);
13695 	}
13696 
13697 	if (pf->hw_features & I40E_HW_RESTART_AUTONEG) {
13698 		msleep(75);
13699 		err = i40e_aq_set_link_restart_an(&pf->hw, true, NULL);
13700 		if (err)
13701 			dev_info(&pf->pdev->dev, "link restart failed, err %s aq_err %s\n",
13702 				 i40e_stat_str(&pf->hw, err),
13703 				 i40e_aq_str(&pf->hw,
13704 					     pf->hw.aq.asq_last_status));
13705 	}
13706 	/* The main driver is (mostly) up and happy. We need to set this state
13707 	 * before setting up the misc vector or we get a race and the vector
13708 	 * ends up disabled forever.
13709 	 */
13710 	clear_bit(__I40E_DOWN, pf->state);
13711 
13712 	/* In case of MSIX we are going to setup the misc vector right here
13713 	 * to handle admin queue events etc. In case of legacy and MSI
13714 	 * the misc functionality and queue processing is combined in
13715 	 * the same vector and that gets setup at open.
13716 	 */
13717 	if (pf->flags & I40E_FLAG_MSIX_ENABLED) {
13718 		err = i40e_setup_misc_vector(pf);
13719 		if (err) {
13720 			dev_info(&pdev->dev,
13721 				 "setup of misc vector failed: %d\n", err);
13722 			goto err_vsis;
13723 		}
13724 	}
13725 
13726 #ifdef CONFIG_PCI_IOV
13727 	/* prep for VF support */
13728 	if ((pf->flags & I40E_FLAG_SRIOV_ENABLED) &&
13729 	    (pf->flags & I40E_FLAG_MSIX_ENABLED) &&
13730 	    !test_bit(__I40E_BAD_EEPROM, pf->state)) {
13731 		/* disable link interrupts for VFs */
13732 		val = rd32(hw, I40E_PFGEN_PORTMDIO_NUM);
13733 		val &= ~I40E_PFGEN_PORTMDIO_NUM_VFLINK_STAT_ENA_MASK;
13734 		wr32(hw, I40E_PFGEN_PORTMDIO_NUM, val);
13735 		i40e_flush(hw);
13736 
13737 		if (pci_num_vf(pdev)) {
13738 			dev_info(&pdev->dev,
13739 				 "Active VFs found, allocating resources.\n");
13740 			err = i40e_alloc_vfs(pf, pci_num_vf(pdev));
13741 			if (err)
13742 				dev_info(&pdev->dev,
13743 					 "Error %d allocating resources for existing VFs\n",
13744 					 err);
13745 		}
13746 	}
13747 #endif /* CONFIG_PCI_IOV */
13748 
13749 	if (pf->flags & I40E_FLAG_IWARP_ENABLED) {
13750 		pf->iwarp_base_vector = i40e_get_lump(pf, pf->irq_pile,
13751 						      pf->num_iwarp_msix,
13752 						      I40E_IWARP_IRQ_PILE_ID);
13753 		if (pf->iwarp_base_vector < 0) {
13754 			dev_info(&pdev->dev,
13755 				 "failed to get tracking for %d vectors for IWARP err=%d\n",
13756 				 pf->num_iwarp_msix, pf->iwarp_base_vector);
13757 			pf->flags &= ~I40E_FLAG_IWARP_ENABLED;
13758 		}
13759 	}
13760 
13761 	i40e_dbg_pf_init(pf);
13762 
13763 	/* tell the firmware that we're starting */
13764 	i40e_send_version(pf);
13765 
13766 	/* since everything's happy, start the service_task timer */
13767 	mod_timer(&pf->service_timer,
13768 		  round_jiffies(jiffies + pf->service_timer_period));
13769 
13770 	/* add this PF to client device list and launch a client service task */
13771 	if (pf->flags & I40E_FLAG_IWARP_ENABLED) {
13772 		err = i40e_lan_add_device(pf);
13773 		if (err)
13774 			dev_info(&pdev->dev, "Failed to add PF to client API service list: %d\n",
13775 				 err);
13776 	}
13777 
13778 #define PCI_SPEED_SIZE 8
13779 #define PCI_WIDTH_SIZE 8
13780 	/* Devices on the IOSF bus do not have this information
13781 	 * and will report PCI Gen 1 x 1 by default so don't bother
13782 	 * checking them.
13783 	 */
13784 	if (!(pf->hw_features & I40E_HW_NO_PCI_LINK_CHECK)) {
13785 		char speed[PCI_SPEED_SIZE] = "Unknown";
13786 		char width[PCI_WIDTH_SIZE] = "Unknown";
13787 
13788 		/* Get the negotiated link width and speed from PCI config
13789 		 * space
13790 		 */
13791 		pcie_capability_read_word(pf->pdev, PCI_EXP_LNKSTA,
13792 					  &link_status);
13793 
13794 		i40e_set_pci_config_data(hw, link_status);
13795 
13796 		switch (hw->bus.speed) {
13797 		case i40e_bus_speed_8000:
13798 			strncpy(speed, "8.0", PCI_SPEED_SIZE); break;
13799 		case i40e_bus_speed_5000:
13800 			strncpy(speed, "5.0", PCI_SPEED_SIZE); break;
13801 		case i40e_bus_speed_2500:
13802 			strncpy(speed, "2.5", PCI_SPEED_SIZE); break;
13803 		default:
13804 			break;
13805 		}
13806 		switch (hw->bus.width) {
13807 		case i40e_bus_width_pcie_x8:
13808 			strncpy(width, "8", PCI_WIDTH_SIZE); break;
13809 		case i40e_bus_width_pcie_x4:
13810 			strncpy(width, "4", PCI_WIDTH_SIZE); break;
13811 		case i40e_bus_width_pcie_x2:
13812 			strncpy(width, "2", PCI_WIDTH_SIZE); break;
13813 		case i40e_bus_width_pcie_x1:
13814 			strncpy(width, "1", PCI_WIDTH_SIZE); break;
13815 		default:
13816 			break;
13817 		}
13818 
13819 		dev_info(&pdev->dev, "PCI-Express: Speed %sGT/s Width x%s\n",
13820 			 speed, width);
13821 
13822 		if (hw->bus.width < i40e_bus_width_pcie_x8 ||
13823 		    hw->bus.speed < i40e_bus_speed_8000) {
13824 			dev_warn(&pdev->dev, "PCI-Express bandwidth available for this device may be insufficient for optimal performance.\n");
13825 			dev_warn(&pdev->dev, "Please move the device to a different PCI-e link with more lanes and/or higher transfer rate.\n");
13826 		}
13827 	}
13828 
13829 	/* get the requested speeds from the fw */
13830 	err = i40e_aq_get_phy_capabilities(hw, false, false, &abilities, NULL);
13831 	if (err)
13832 		dev_dbg(&pf->pdev->dev, "get requested speeds ret =  %s last_status =  %s\n",
13833 			i40e_stat_str(&pf->hw, err),
13834 			i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
13835 	pf->hw.phy.link_info.requested_speeds = abilities.link_speed;
13836 
13837 	/* get the supported phy types from the fw */
13838 	err = i40e_aq_get_phy_capabilities(hw, false, true, &abilities, NULL);
13839 	if (err)
13840 		dev_dbg(&pf->pdev->dev, "get supported phy types ret =  %s last_status =  %s\n",
13841 			i40e_stat_str(&pf->hw, err),
13842 			i40e_aq_str(&pf->hw, pf->hw.aq.asq_last_status));
13843 
13844 	/* Add a filter to drop all Flow control frames from any VSI from being
13845 	 * transmitted. By doing so we stop a malicious VF from sending out
13846 	 * PAUSE or PFC frames and potentially controlling traffic for other
13847 	 * PF/VF VSIs.
13848 	 * The FW can still send Flow control frames if enabled.
13849 	 */
13850 	i40e_add_filter_to_drop_tx_flow_control_frames(&pf->hw,
13851 						       pf->main_vsi_seid);
13852 
13853 	if ((pf->hw.device_id == I40E_DEV_ID_10G_BASE_T) ||
13854 		(pf->hw.device_id == I40E_DEV_ID_10G_BASE_T4))
13855 		pf->hw_features |= I40E_HW_PHY_CONTROLS_LEDS;
13856 	if (pf->hw.device_id == I40E_DEV_ID_SFP_I_X722)
13857 		pf->hw_features |= I40E_HW_HAVE_CRT_RETIMER;
13858 	/* print a string summarizing features */
13859 	i40e_print_features(pf);
13860 
13861 	return 0;
13862 
13863 	/* Unwind what we've done if something failed in the setup */
13864 err_vsis:
13865 	set_bit(__I40E_DOWN, pf->state);
13866 	i40e_clear_interrupt_scheme(pf);
13867 	kfree(pf->vsi);
13868 err_switch_setup:
13869 	i40e_reset_interrupt_capability(pf);
13870 	del_timer_sync(&pf->service_timer);
13871 err_mac_addr:
13872 err_configure_lan_hmc:
13873 	(void)i40e_shutdown_lan_hmc(hw);
13874 err_init_lan_hmc:
13875 	kfree(pf->qp_pile);
13876 err_sw_init:
13877 err_adminq_setup:
13878 err_pf_reset:
13879 	iounmap(hw->hw_addr);
13880 err_ioremap:
13881 	kfree(pf);
13882 err_pf_alloc:
13883 	pci_disable_pcie_error_reporting(pdev);
13884 	pci_release_mem_regions(pdev);
13885 err_pci_reg:
13886 err_dma:
13887 	pci_disable_device(pdev);
13888 	return err;
13889 }
13890 
13891 /**
13892  * i40e_remove - Device removal routine
13893  * @pdev: PCI device information struct
13894  *
13895  * i40e_remove is called by the PCI subsystem to alert the driver
13896  * that is should release a PCI device.  This could be caused by a
13897  * Hot-Plug event, or because the driver is going to be removed from
13898  * memory.
13899  **/
13900 static void i40e_remove(struct pci_dev *pdev)
13901 {
13902 	struct i40e_pf *pf = pci_get_drvdata(pdev);
13903 	struct i40e_hw *hw = &pf->hw;
13904 	i40e_status ret_code;
13905 	int i;
13906 
13907 	i40e_dbg_pf_exit(pf);
13908 
13909 	i40e_ptp_stop(pf);
13910 
13911 	/* Disable RSS in hw */
13912 	i40e_write_rx_ctl(hw, I40E_PFQF_HENA(0), 0);
13913 	i40e_write_rx_ctl(hw, I40E_PFQF_HENA(1), 0);
13914 
13915 	/* no more scheduling of any task */
13916 	set_bit(__I40E_SUSPENDED, pf->state);
13917 	set_bit(__I40E_DOWN, pf->state);
13918 	if (pf->service_timer.function)
13919 		del_timer_sync(&pf->service_timer);
13920 	if (pf->service_task.func)
13921 		cancel_work_sync(&pf->service_task);
13922 
13923 	/* Client close must be called explicitly here because the timer
13924 	 * has been stopped.
13925 	 */
13926 	i40e_notify_client_of_netdev_close(pf->vsi[pf->lan_vsi], false);
13927 
13928 	if (pf->flags & I40E_FLAG_SRIOV_ENABLED) {
13929 		i40e_free_vfs(pf);
13930 		pf->flags &= ~I40E_FLAG_SRIOV_ENABLED;
13931 	}
13932 
13933 	i40e_fdir_teardown(pf);
13934 
13935 	/* If there is a switch structure or any orphans, remove them.
13936 	 * This will leave only the PF's VSI remaining.
13937 	 */
13938 	for (i = 0; i < I40E_MAX_VEB; i++) {
13939 		if (!pf->veb[i])
13940 			continue;
13941 
13942 		if (pf->veb[i]->uplink_seid == pf->mac_seid ||
13943 		    pf->veb[i]->uplink_seid == 0)
13944 			i40e_switch_branch_release(pf->veb[i]);
13945 	}
13946 
13947 	/* Now we can shutdown the PF's VSI, just before we kill
13948 	 * adminq and hmc.
13949 	 */
13950 	if (pf->vsi[pf->lan_vsi])
13951 		i40e_vsi_release(pf->vsi[pf->lan_vsi]);
13952 
13953 	i40e_cloud_filter_exit(pf);
13954 
13955 	/* remove attached clients */
13956 	if (pf->flags & I40E_FLAG_IWARP_ENABLED) {
13957 		ret_code = i40e_lan_del_device(pf);
13958 		if (ret_code)
13959 			dev_warn(&pdev->dev, "Failed to delete client device: %d\n",
13960 				 ret_code);
13961 	}
13962 
13963 	/* shutdown and destroy the HMC */
13964 	if (hw->hmc.hmc_obj) {
13965 		ret_code = i40e_shutdown_lan_hmc(hw);
13966 		if (ret_code)
13967 			dev_warn(&pdev->dev,
13968 				 "Failed to destroy the HMC resources: %d\n",
13969 				 ret_code);
13970 	}
13971 
13972 	/* shutdown the adminq */
13973 	i40e_shutdown_adminq(hw);
13974 
13975 	/* destroy the locks only once, here */
13976 	mutex_destroy(&hw->aq.arq_mutex);
13977 	mutex_destroy(&hw->aq.asq_mutex);
13978 
13979 	/* Clear all dynamic memory lists of rings, q_vectors, and VSIs */
13980 	i40e_clear_interrupt_scheme(pf);
13981 	for (i = 0; i < pf->num_alloc_vsi; i++) {
13982 		if (pf->vsi[i]) {
13983 			i40e_vsi_clear_rings(pf->vsi[i]);
13984 			i40e_vsi_clear(pf->vsi[i]);
13985 			pf->vsi[i] = NULL;
13986 		}
13987 	}
13988 
13989 	for (i = 0; i < I40E_MAX_VEB; i++) {
13990 		kfree(pf->veb[i]);
13991 		pf->veb[i] = NULL;
13992 	}
13993 
13994 	kfree(pf->qp_pile);
13995 	kfree(pf->vsi);
13996 
13997 	iounmap(hw->hw_addr);
13998 	kfree(pf);
13999 	pci_release_mem_regions(pdev);
14000 
14001 	pci_disable_pcie_error_reporting(pdev);
14002 	pci_disable_device(pdev);
14003 }
14004 
14005 /**
14006  * i40e_pci_error_detected - warning that something funky happened in PCI land
14007  * @pdev: PCI device information struct
14008  *
14009  * Called to warn that something happened and the error handling steps
14010  * are in progress.  Allows the driver to quiesce things, be ready for
14011  * remediation.
14012  **/
14013 static pci_ers_result_t i40e_pci_error_detected(struct pci_dev *pdev,
14014 						enum pci_channel_state error)
14015 {
14016 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14017 
14018 	dev_info(&pdev->dev, "%s: error %d\n", __func__, error);
14019 
14020 	if (!pf) {
14021 		dev_info(&pdev->dev,
14022 			 "Cannot recover - error happened during device probe\n");
14023 		return PCI_ERS_RESULT_DISCONNECT;
14024 	}
14025 
14026 	/* shutdown all operations */
14027 	if (!test_bit(__I40E_SUSPENDED, pf->state))
14028 		i40e_prep_for_reset(pf, false);
14029 
14030 	/* Request a slot reset */
14031 	return PCI_ERS_RESULT_NEED_RESET;
14032 }
14033 
14034 /**
14035  * i40e_pci_error_slot_reset - a PCI slot reset just happened
14036  * @pdev: PCI device information struct
14037  *
14038  * Called to find if the driver can work with the device now that
14039  * the pci slot has been reset.  If a basic connection seems good
14040  * (registers are readable and have sane content) then return a
14041  * happy little PCI_ERS_RESULT_xxx.
14042  **/
14043 static pci_ers_result_t i40e_pci_error_slot_reset(struct pci_dev *pdev)
14044 {
14045 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14046 	pci_ers_result_t result;
14047 	int err;
14048 	u32 reg;
14049 
14050 	dev_dbg(&pdev->dev, "%s\n", __func__);
14051 	if (pci_enable_device_mem(pdev)) {
14052 		dev_info(&pdev->dev,
14053 			 "Cannot re-enable PCI device after reset.\n");
14054 		result = PCI_ERS_RESULT_DISCONNECT;
14055 	} else {
14056 		pci_set_master(pdev);
14057 		pci_restore_state(pdev);
14058 		pci_save_state(pdev);
14059 		pci_wake_from_d3(pdev, false);
14060 
14061 		reg = rd32(&pf->hw, I40E_GLGEN_RTRIG);
14062 		if (reg == 0)
14063 			result = PCI_ERS_RESULT_RECOVERED;
14064 		else
14065 			result = PCI_ERS_RESULT_DISCONNECT;
14066 	}
14067 
14068 	err = pci_cleanup_aer_uncorrect_error_status(pdev);
14069 	if (err) {
14070 		dev_info(&pdev->dev,
14071 			 "pci_cleanup_aer_uncorrect_error_status failed 0x%0x\n",
14072 			 err);
14073 		/* non-fatal, continue */
14074 	}
14075 
14076 	return result;
14077 }
14078 
14079 /**
14080  * i40e_pci_error_reset_prepare - prepare device driver for pci reset
14081  * @pdev: PCI device information struct
14082  */
14083 static void i40e_pci_error_reset_prepare(struct pci_dev *pdev)
14084 {
14085 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14086 
14087 	i40e_prep_for_reset(pf, false);
14088 }
14089 
14090 /**
14091  * i40e_pci_error_reset_done - pci reset done, device driver reset can begin
14092  * @pdev: PCI device information struct
14093  */
14094 static void i40e_pci_error_reset_done(struct pci_dev *pdev)
14095 {
14096 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14097 
14098 	i40e_reset_and_rebuild(pf, false, false);
14099 }
14100 
14101 /**
14102  * i40e_pci_error_resume - restart operations after PCI error recovery
14103  * @pdev: PCI device information struct
14104  *
14105  * Called to allow the driver to bring things back up after PCI error
14106  * and/or reset recovery has finished.
14107  **/
14108 static void i40e_pci_error_resume(struct pci_dev *pdev)
14109 {
14110 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14111 
14112 	dev_dbg(&pdev->dev, "%s\n", __func__);
14113 	if (test_bit(__I40E_SUSPENDED, pf->state))
14114 		return;
14115 
14116 	i40e_handle_reset_warning(pf, false);
14117 }
14118 
14119 /**
14120  * i40e_enable_mc_magic_wake - enable multicast magic packet wake up
14121  * using the mac_address_write admin q function
14122  * @pf: pointer to i40e_pf struct
14123  **/
14124 static void i40e_enable_mc_magic_wake(struct i40e_pf *pf)
14125 {
14126 	struct i40e_hw *hw = &pf->hw;
14127 	i40e_status ret;
14128 	u8 mac_addr[6];
14129 	u16 flags = 0;
14130 
14131 	/* Get current MAC address in case it's an LAA */
14132 	if (pf->vsi[pf->lan_vsi] && pf->vsi[pf->lan_vsi]->netdev) {
14133 		ether_addr_copy(mac_addr,
14134 				pf->vsi[pf->lan_vsi]->netdev->dev_addr);
14135 	} else {
14136 		dev_err(&pf->pdev->dev,
14137 			"Failed to retrieve MAC address; using default\n");
14138 		ether_addr_copy(mac_addr, hw->mac.addr);
14139 	}
14140 
14141 	/* The FW expects the mac address write cmd to first be called with
14142 	 * one of these flags before calling it again with the multicast
14143 	 * enable flags.
14144 	 */
14145 	flags = I40E_AQC_WRITE_TYPE_LAA_WOL;
14146 
14147 	if (hw->func_caps.flex10_enable && hw->partition_id != 1)
14148 		flags = I40E_AQC_WRITE_TYPE_LAA_ONLY;
14149 
14150 	ret = i40e_aq_mac_address_write(hw, flags, mac_addr, NULL);
14151 	if (ret) {
14152 		dev_err(&pf->pdev->dev,
14153 			"Failed to update MAC address registers; cannot enable Multicast Magic packet wake up");
14154 		return;
14155 	}
14156 
14157 	flags = I40E_AQC_MC_MAG_EN
14158 			| I40E_AQC_WOL_PRESERVE_ON_PFR
14159 			| I40E_AQC_WRITE_TYPE_UPDATE_MC_MAG;
14160 	ret = i40e_aq_mac_address_write(hw, flags, mac_addr, NULL);
14161 	if (ret)
14162 		dev_err(&pf->pdev->dev,
14163 			"Failed to enable Multicast Magic Packet wake up\n");
14164 }
14165 
14166 /**
14167  * i40e_shutdown - PCI callback for shutting down
14168  * @pdev: PCI device information struct
14169  **/
14170 static void i40e_shutdown(struct pci_dev *pdev)
14171 {
14172 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14173 	struct i40e_hw *hw = &pf->hw;
14174 
14175 	set_bit(__I40E_SUSPENDED, pf->state);
14176 	set_bit(__I40E_DOWN, pf->state);
14177 	rtnl_lock();
14178 	i40e_prep_for_reset(pf, true);
14179 	rtnl_unlock();
14180 
14181 	wr32(hw, I40E_PFPM_APM, (pf->wol_en ? I40E_PFPM_APM_APME_MASK : 0));
14182 	wr32(hw, I40E_PFPM_WUFC, (pf->wol_en ? I40E_PFPM_WUFC_MAG_MASK : 0));
14183 
14184 	del_timer_sync(&pf->service_timer);
14185 	cancel_work_sync(&pf->service_task);
14186 	i40e_cloud_filter_exit(pf);
14187 	i40e_fdir_teardown(pf);
14188 
14189 	/* Client close must be called explicitly here because the timer
14190 	 * has been stopped.
14191 	 */
14192 	i40e_notify_client_of_netdev_close(pf->vsi[pf->lan_vsi], false);
14193 
14194 	if (pf->wol_en && (pf->hw_features & I40E_HW_WOL_MC_MAGIC_PKT_WAKE))
14195 		i40e_enable_mc_magic_wake(pf);
14196 
14197 	i40e_prep_for_reset(pf, false);
14198 
14199 	wr32(hw, I40E_PFPM_APM,
14200 	     (pf->wol_en ? I40E_PFPM_APM_APME_MASK : 0));
14201 	wr32(hw, I40E_PFPM_WUFC,
14202 	     (pf->wol_en ? I40E_PFPM_WUFC_MAG_MASK : 0));
14203 
14204 	i40e_clear_interrupt_scheme(pf);
14205 
14206 	if (system_state == SYSTEM_POWER_OFF) {
14207 		pci_wake_from_d3(pdev, pf->wol_en);
14208 		pci_set_power_state(pdev, PCI_D3hot);
14209 	}
14210 }
14211 
14212 /**
14213  * i40e_suspend - PM callback for moving to D3
14214  * @dev: generic device information structure
14215  **/
14216 static int __maybe_unused i40e_suspend(struct device *dev)
14217 {
14218 	struct pci_dev *pdev = to_pci_dev(dev);
14219 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14220 	struct i40e_hw *hw = &pf->hw;
14221 
14222 	/* If we're already suspended, then there is nothing to do */
14223 	if (test_and_set_bit(__I40E_SUSPENDED, pf->state))
14224 		return 0;
14225 
14226 	set_bit(__I40E_DOWN, pf->state);
14227 
14228 	/* Ensure service task will not be running */
14229 	del_timer_sync(&pf->service_timer);
14230 	cancel_work_sync(&pf->service_task);
14231 
14232 	if (pf->wol_en && (pf->hw_features & I40E_HW_WOL_MC_MAGIC_PKT_WAKE))
14233 		i40e_enable_mc_magic_wake(pf);
14234 
14235 	i40e_prep_for_reset(pf, false);
14236 
14237 	wr32(hw, I40E_PFPM_APM, (pf->wol_en ? I40E_PFPM_APM_APME_MASK : 0));
14238 	wr32(hw, I40E_PFPM_WUFC, (pf->wol_en ? I40E_PFPM_WUFC_MAG_MASK : 0));
14239 
14240 	/* Clear the interrupt scheme and release our IRQs so that the system
14241 	 * can safely hibernate even when there are a large number of CPUs.
14242 	 * Otherwise hibernation might fail when mapping all the vectors back
14243 	 * to CPU0.
14244 	 */
14245 	i40e_clear_interrupt_scheme(pf);
14246 
14247 	return 0;
14248 }
14249 
14250 /**
14251  * i40e_resume - PM callback for waking up from D3
14252  * @dev: generic device information structure
14253  **/
14254 static int __maybe_unused i40e_resume(struct device *dev)
14255 {
14256 	struct pci_dev *pdev = to_pci_dev(dev);
14257 	struct i40e_pf *pf = pci_get_drvdata(pdev);
14258 	int err;
14259 
14260 	/* If we're not suspended, then there is nothing to do */
14261 	if (!test_bit(__I40E_SUSPENDED, pf->state))
14262 		return 0;
14263 
14264 	/* We cleared the interrupt scheme when we suspended, so we need to
14265 	 * restore it now to resume device functionality.
14266 	 */
14267 	err = i40e_restore_interrupt_scheme(pf);
14268 	if (err) {
14269 		dev_err(&pdev->dev, "Cannot restore interrupt scheme: %d\n",
14270 			err);
14271 	}
14272 
14273 	clear_bit(__I40E_DOWN, pf->state);
14274 	i40e_reset_and_rebuild(pf, false, false);
14275 
14276 	/* Clear suspended state last after everything is recovered */
14277 	clear_bit(__I40E_SUSPENDED, pf->state);
14278 
14279 	/* Restart the service task */
14280 	mod_timer(&pf->service_timer,
14281 		  round_jiffies(jiffies + pf->service_timer_period));
14282 
14283 	return 0;
14284 }
14285 
14286 static const struct pci_error_handlers i40e_err_handler = {
14287 	.error_detected = i40e_pci_error_detected,
14288 	.slot_reset = i40e_pci_error_slot_reset,
14289 	.reset_prepare = i40e_pci_error_reset_prepare,
14290 	.reset_done = i40e_pci_error_reset_done,
14291 	.resume = i40e_pci_error_resume,
14292 };
14293 
14294 static SIMPLE_DEV_PM_OPS(i40e_pm_ops, i40e_suspend, i40e_resume);
14295 
14296 static struct pci_driver i40e_driver = {
14297 	.name     = i40e_driver_name,
14298 	.id_table = i40e_pci_tbl,
14299 	.probe    = i40e_probe,
14300 	.remove   = i40e_remove,
14301 	.driver   = {
14302 		.pm = &i40e_pm_ops,
14303 	},
14304 	.shutdown = i40e_shutdown,
14305 	.err_handler = &i40e_err_handler,
14306 	.sriov_configure = i40e_pci_sriov_configure,
14307 };
14308 
14309 /**
14310  * i40e_init_module - Driver registration routine
14311  *
14312  * i40e_init_module is the first routine called when the driver is
14313  * loaded. All it does is register with the PCI subsystem.
14314  **/
14315 static int __init i40e_init_module(void)
14316 {
14317 	pr_info("%s: %s - version %s\n", i40e_driver_name,
14318 		i40e_driver_string, i40e_driver_version_str);
14319 	pr_info("%s: %s\n", i40e_driver_name, i40e_copyright);
14320 
14321 	/* There is no need to throttle the number of active tasks because
14322 	 * each device limits its own task using a state bit for scheduling
14323 	 * the service task, and the device tasks do not interfere with each
14324 	 * other, so we don't set a max task limit. We must set WQ_MEM_RECLAIM
14325 	 * since we need to be able to guarantee forward progress even under
14326 	 * memory pressure.
14327 	 */
14328 	i40e_wq = alloc_workqueue("%s", WQ_MEM_RECLAIM, 0, i40e_driver_name);
14329 	if (!i40e_wq) {
14330 		pr_err("%s: Failed to create workqueue\n", i40e_driver_name);
14331 		return -ENOMEM;
14332 	}
14333 
14334 	i40e_dbg_init();
14335 	return pci_register_driver(&i40e_driver);
14336 }
14337 module_init(i40e_init_module);
14338 
14339 /**
14340  * i40e_exit_module - Driver exit cleanup routine
14341  *
14342  * i40e_exit_module is called just before the driver is removed
14343  * from memory.
14344  **/
14345 static void __exit i40e_exit_module(void)
14346 {
14347 	pci_unregister_driver(&i40e_driver);
14348 	destroy_workqueue(i40e_wq);
14349 	i40e_dbg_exit();
14350 }
14351 module_exit(i40e_exit_module);
14352