1 /* Broadcom NetXtreme-C/E network driver.
2  *
3  * Copyright (c) 2014-2015 Broadcom Corporation
4  *
5  * This program is free software; you can redistribute it and/or modify
6  * it under the terms of the GNU General Public License as published by
7  * the Free Software Foundation.
8  */
9 
10 #include <linux/module.h>
11 #include <linux/pci.h>
12 #include <linux/netdevice.h>
13 #include <linux/if_vlan.h>
14 #include <linux/interrupt.h>
15 #include <linux/etherdevice.h>
16 #include "bnxt_hsi.h"
17 #include "bnxt.h"
18 #include "bnxt_sriov.h"
19 #include "bnxt_ethtool.h"
20 
21 #ifdef CONFIG_BNXT_SRIOV
22 static int bnxt_vf_ndo_prep(struct bnxt *bp, int vf_id)
23 {
24 	if (!test_bit(BNXT_STATE_OPEN, &bp->state)) {
25 		netdev_err(bp->dev, "vf ndo called though PF is down\n");
26 		return -EINVAL;
27 	}
28 	if (!bp->pf.active_vfs) {
29 		netdev_err(bp->dev, "vf ndo called though sriov is disabled\n");
30 		return -EINVAL;
31 	}
32 	if (vf_id >= bp->pf.max_vfs) {
33 		netdev_err(bp->dev, "Invalid VF id %d\n", vf_id);
34 		return -EINVAL;
35 	}
36 	return 0;
37 }
38 
39 int bnxt_set_vf_spoofchk(struct net_device *dev, int vf_id, bool setting)
40 {
41 	struct hwrm_func_cfg_input req = {0};
42 	struct bnxt *bp = netdev_priv(dev);
43 	struct bnxt_vf_info *vf;
44 	bool old_setting = false;
45 	u32 func_flags;
46 	int rc;
47 
48 	rc = bnxt_vf_ndo_prep(bp, vf_id);
49 	if (rc)
50 		return rc;
51 
52 	vf = &bp->pf.vf[vf_id];
53 	if (vf->flags & BNXT_VF_SPOOFCHK)
54 		old_setting = true;
55 	if (old_setting == setting)
56 		return 0;
57 
58 	func_flags = vf->func_flags;
59 	if (setting)
60 		func_flags |= FUNC_CFG_REQ_FLAGS_SRC_MAC_ADDR_CHECK;
61 	else
62 		func_flags &= ~FUNC_CFG_REQ_FLAGS_SRC_MAC_ADDR_CHECK;
63 	/*TODO: if the driver supports VLAN filter on guest VLAN,
64 	 * the spoof check should also include vlan anti-spoofing
65 	 */
66 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_CFG, -1, -1);
67 	req.vf_id = cpu_to_le16(vf->fw_fid);
68 	req.flags = cpu_to_le32(func_flags);
69 	rc = hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
70 	if (!rc) {
71 		vf->func_flags = func_flags;
72 		if (setting)
73 			vf->flags |= BNXT_VF_SPOOFCHK;
74 		else
75 			vf->flags &= ~BNXT_VF_SPOOFCHK;
76 	}
77 	return rc;
78 }
79 
80 int bnxt_get_vf_config(struct net_device *dev, int vf_id,
81 		       struct ifla_vf_info *ivi)
82 {
83 	struct bnxt *bp = netdev_priv(dev);
84 	struct bnxt_vf_info *vf;
85 	int rc;
86 
87 	rc = bnxt_vf_ndo_prep(bp, vf_id);
88 	if (rc)
89 		return rc;
90 
91 	ivi->vf = vf_id;
92 	vf = &bp->pf.vf[vf_id];
93 
94 	memcpy(&ivi->mac, vf->mac_addr, ETH_ALEN);
95 	ivi->max_tx_rate = vf->max_tx_rate;
96 	ivi->min_tx_rate = vf->min_tx_rate;
97 	ivi->vlan = vf->vlan;
98 	ivi->qos = vf->flags & BNXT_VF_QOS;
99 	ivi->spoofchk = vf->flags & BNXT_VF_SPOOFCHK;
100 	if (!(vf->flags & BNXT_VF_LINK_FORCED))
101 		ivi->linkstate = IFLA_VF_LINK_STATE_AUTO;
102 	else if (vf->flags & BNXT_VF_LINK_UP)
103 		ivi->linkstate = IFLA_VF_LINK_STATE_ENABLE;
104 	else
105 		ivi->linkstate = IFLA_VF_LINK_STATE_DISABLE;
106 
107 	return 0;
108 }
109 
110 int bnxt_set_vf_mac(struct net_device *dev, int vf_id, u8 *mac)
111 {
112 	struct hwrm_func_cfg_input req = {0};
113 	struct bnxt *bp = netdev_priv(dev);
114 	struct bnxt_vf_info *vf;
115 	int rc;
116 
117 	rc = bnxt_vf_ndo_prep(bp, vf_id);
118 	if (rc)
119 		return rc;
120 	/* reject bc or mc mac addr, zero mac addr means allow
121 	 * VF to use its own mac addr
122 	 */
123 	if (is_multicast_ether_addr(mac)) {
124 		netdev_err(dev, "Invalid VF ethernet address\n");
125 		return -EINVAL;
126 	}
127 	vf = &bp->pf.vf[vf_id];
128 
129 	memcpy(vf->mac_addr, mac, ETH_ALEN);
130 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_CFG, -1, -1);
131 	req.vf_id = cpu_to_le16(vf->fw_fid);
132 	req.flags = cpu_to_le32(vf->func_flags);
133 	req.enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_DFLT_MAC_ADDR);
134 	memcpy(req.dflt_mac_addr, mac, ETH_ALEN);
135 	return hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
136 }
137 
138 int bnxt_set_vf_vlan(struct net_device *dev, int vf_id, u16 vlan_id, u8 qos)
139 {
140 	struct hwrm_func_cfg_input req = {0};
141 	struct bnxt *bp = netdev_priv(dev);
142 	struct bnxt_vf_info *vf;
143 	u16 vlan_tag;
144 	int rc;
145 
146 	rc = bnxt_vf_ndo_prep(bp, vf_id);
147 	if (rc)
148 		return rc;
149 
150 	/* TODO: needed to implement proper handling of user priority,
151 	 * currently fail the command if there is valid priority
152 	 */
153 	if (vlan_id > 4095 || qos)
154 		return -EINVAL;
155 
156 	vf = &bp->pf.vf[vf_id];
157 	vlan_tag = vlan_id;
158 	if (vlan_tag == vf->vlan)
159 		return 0;
160 
161 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_CFG, -1, -1);
162 	req.vf_id = cpu_to_le16(vf->fw_fid);
163 	req.flags = cpu_to_le32(vf->func_flags);
164 	req.dflt_vlan = cpu_to_le16(vlan_tag);
165 	req.enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_DFLT_VLAN);
166 	rc = hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
167 	if (!rc)
168 		vf->vlan = vlan_tag;
169 	return rc;
170 }
171 
172 int bnxt_set_vf_bw(struct net_device *dev, int vf_id, int min_tx_rate,
173 		   int max_tx_rate)
174 {
175 	struct hwrm_func_cfg_input req = {0};
176 	struct bnxt *bp = netdev_priv(dev);
177 	struct bnxt_vf_info *vf;
178 	u32 pf_link_speed;
179 	int rc;
180 
181 	rc = bnxt_vf_ndo_prep(bp, vf_id);
182 	if (rc)
183 		return rc;
184 
185 	vf = &bp->pf.vf[vf_id];
186 	pf_link_speed = bnxt_fw_to_ethtool_speed(bp->link_info.link_speed);
187 	if (max_tx_rate > pf_link_speed) {
188 		netdev_info(bp->dev, "max tx rate %d exceed PF link speed for VF %d\n",
189 			    max_tx_rate, vf_id);
190 		return -EINVAL;
191 	}
192 
193 	if (min_tx_rate > pf_link_speed || min_tx_rate > max_tx_rate) {
194 		netdev_info(bp->dev, "min tx rate %d is invalid for VF %d\n",
195 			    min_tx_rate, vf_id);
196 		return -EINVAL;
197 	}
198 	if (min_tx_rate == vf->min_tx_rate && max_tx_rate == vf->max_tx_rate)
199 		return 0;
200 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_CFG, -1, -1);
201 	req.vf_id = cpu_to_le16(vf->fw_fid);
202 	req.flags = cpu_to_le32(vf->func_flags);
203 	req.enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_MAX_BW);
204 	req.max_bw = cpu_to_le32(max_tx_rate);
205 	req.enables |= cpu_to_le32(FUNC_CFG_REQ_ENABLES_MIN_BW);
206 	req.min_bw = cpu_to_le32(min_tx_rate);
207 	rc = hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
208 	if (!rc) {
209 		vf->min_tx_rate = min_tx_rate;
210 		vf->max_tx_rate = max_tx_rate;
211 	}
212 	return rc;
213 }
214 
215 int bnxt_set_vf_link_state(struct net_device *dev, int vf_id, int link)
216 {
217 	struct bnxt *bp = netdev_priv(dev);
218 	struct bnxt_vf_info *vf;
219 	int rc;
220 
221 	rc = bnxt_vf_ndo_prep(bp, vf_id);
222 	if (rc)
223 		return rc;
224 
225 	vf = &bp->pf.vf[vf_id];
226 
227 	vf->flags &= ~(BNXT_VF_LINK_UP | BNXT_VF_LINK_FORCED);
228 	switch (link) {
229 	case IFLA_VF_LINK_STATE_AUTO:
230 		vf->flags |= BNXT_VF_LINK_UP;
231 		break;
232 	case IFLA_VF_LINK_STATE_DISABLE:
233 		vf->flags |= BNXT_VF_LINK_FORCED;
234 		break;
235 	case IFLA_VF_LINK_STATE_ENABLE:
236 		vf->flags |= BNXT_VF_LINK_UP | BNXT_VF_LINK_FORCED;
237 		break;
238 	default:
239 		netdev_err(bp->dev, "Invalid link option\n");
240 		rc = -EINVAL;
241 		break;
242 	}
243 	/* CHIMP TODO: send msg to VF to update new link state */
244 
245 	return rc;
246 }
247 
248 static int bnxt_set_vf_attr(struct bnxt *bp, int num_vfs)
249 {
250 	int i;
251 	struct bnxt_vf_info *vf;
252 
253 	for (i = 0; i < num_vfs; i++) {
254 		vf = &bp->pf.vf[i];
255 		memset(vf, 0, sizeof(*vf));
256 		vf->flags = BNXT_VF_QOS | BNXT_VF_LINK_UP;
257 	}
258 	return 0;
259 }
260 
261 static int bnxt_hwrm_func_vf_resource_free(struct bnxt *bp, int num_vfs)
262 {
263 	int i, rc = 0;
264 	struct bnxt_pf_info *pf = &bp->pf;
265 	struct hwrm_func_vf_resc_free_input req = {0};
266 
267 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_VF_RESC_FREE, -1, -1);
268 
269 	mutex_lock(&bp->hwrm_cmd_lock);
270 	for (i = pf->first_vf_id; i < pf->first_vf_id + num_vfs; i++) {
271 		req.vf_id = cpu_to_le16(i);
272 		rc = _hwrm_send_message(bp, &req, sizeof(req),
273 					HWRM_CMD_TIMEOUT);
274 		if (rc)
275 			break;
276 	}
277 	mutex_unlock(&bp->hwrm_cmd_lock);
278 	return rc;
279 }
280 
281 static void bnxt_free_vf_resources(struct bnxt *bp)
282 {
283 	struct pci_dev *pdev = bp->pdev;
284 	int i;
285 
286 	kfree(bp->pf.vf_event_bmap);
287 	bp->pf.vf_event_bmap = NULL;
288 
289 	for (i = 0; i < 4; i++) {
290 		if (bp->pf.hwrm_cmd_req_addr[i]) {
291 			dma_free_coherent(&pdev->dev, BNXT_PAGE_SIZE,
292 					  bp->pf.hwrm_cmd_req_addr[i],
293 					  bp->pf.hwrm_cmd_req_dma_addr[i]);
294 			bp->pf.hwrm_cmd_req_addr[i] = NULL;
295 		}
296 	}
297 
298 	kfree(bp->pf.vf);
299 	bp->pf.vf = NULL;
300 }
301 
302 static int bnxt_alloc_vf_resources(struct bnxt *bp, int num_vfs)
303 {
304 	struct pci_dev *pdev = bp->pdev;
305 	u32 nr_pages, size, i, j, k = 0;
306 
307 	bp->pf.vf = kcalloc(num_vfs, sizeof(struct bnxt_vf_info), GFP_KERNEL);
308 	if (!bp->pf.vf)
309 		return -ENOMEM;
310 
311 	bnxt_set_vf_attr(bp, num_vfs);
312 
313 	size = num_vfs * BNXT_HWRM_REQ_MAX_SIZE;
314 	nr_pages = size / BNXT_PAGE_SIZE;
315 	if (size & (BNXT_PAGE_SIZE - 1))
316 		nr_pages++;
317 
318 	for (i = 0; i < nr_pages; i++) {
319 		bp->pf.hwrm_cmd_req_addr[i] =
320 			dma_alloc_coherent(&pdev->dev, BNXT_PAGE_SIZE,
321 					   &bp->pf.hwrm_cmd_req_dma_addr[i],
322 					   GFP_KERNEL);
323 
324 		if (!bp->pf.hwrm_cmd_req_addr[i])
325 			return -ENOMEM;
326 
327 		for (j = 0; j < BNXT_HWRM_REQS_PER_PAGE && k < num_vfs; j++) {
328 			struct bnxt_vf_info *vf = &bp->pf.vf[k];
329 
330 			vf->hwrm_cmd_req_addr = bp->pf.hwrm_cmd_req_addr[i] +
331 						j * BNXT_HWRM_REQ_MAX_SIZE;
332 			vf->hwrm_cmd_req_dma_addr =
333 				bp->pf.hwrm_cmd_req_dma_addr[i] + j *
334 				BNXT_HWRM_REQ_MAX_SIZE;
335 			k++;
336 		}
337 	}
338 
339 	/* Max 128 VF's */
340 	bp->pf.vf_event_bmap = kzalloc(16, GFP_KERNEL);
341 	if (!bp->pf.vf_event_bmap)
342 		return -ENOMEM;
343 
344 	bp->pf.hwrm_cmd_req_pages = nr_pages;
345 	return 0;
346 }
347 
348 static int bnxt_hwrm_func_buf_rgtr(struct bnxt *bp)
349 {
350 	struct hwrm_func_buf_rgtr_input req = {0};
351 
352 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_BUF_RGTR, -1, -1);
353 
354 	req.req_buf_num_pages = cpu_to_le16(bp->pf.hwrm_cmd_req_pages);
355 	req.req_buf_page_size = cpu_to_le16(BNXT_PAGE_SHIFT);
356 	req.req_buf_len = cpu_to_le16(BNXT_HWRM_REQ_MAX_SIZE);
357 	req.req_buf_page_addr0 = cpu_to_le64(bp->pf.hwrm_cmd_req_dma_addr[0]);
358 	req.req_buf_page_addr1 = cpu_to_le64(bp->pf.hwrm_cmd_req_dma_addr[1]);
359 	req.req_buf_page_addr2 = cpu_to_le64(bp->pf.hwrm_cmd_req_dma_addr[2]);
360 	req.req_buf_page_addr3 = cpu_to_le64(bp->pf.hwrm_cmd_req_dma_addr[3]);
361 
362 	return hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
363 }
364 
365 /* only call by PF to reserve resources for VF */
366 static int bnxt_hwrm_func_cfg(struct bnxt *bp, int *num_vfs)
367 {
368 	u32 rc = 0, mtu, i;
369 	u16 vf_tx_rings, vf_rx_rings, vf_cp_rings, vf_stat_ctx, vf_vnics;
370 	struct hwrm_func_cfg_input req = {0};
371 	struct bnxt_pf_info *pf = &bp->pf;
372 
373 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_CFG, -1, -1);
374 
375 	/* Remaining rings are distributed equally amongs VF's for now */
376 	/* TODO: the following workaroud is needed to restrict total number
377 	 * of vf_cp_rings not exceed number of HW ring groups. This WA should
378 	 * be removed once new HWRM provides HW ring groups capability in
379 	 * hwrm_func_qcap.
380 	 */
381 	vf_cp_rings = min_t(u16, bp->pf.max_cp_rings, bp->pf.max_stat_ctxs);
382 	vf_cp_rings = (vf_cp_rings - bp->cp_nr_rings) / *num_vfs;
383 	/* TODO: restore this logic below once the WA above is removed */
384 	/* vf_cp_rings = (bp->pf.max_cp_rings - bp->cp_nr_rings) / *num_vfs; */
385 	vf_stat_ctx = (bp->pf.max_stat_ctxs - bp->num_stat_ctxs) / *num_vfs;
386 	if (bp->flags & BNXT_FLAG_AGG_RINGS)
387 		vf_rx_rings = (bp->pf.max_rx_rings - bp->rx_nr_rings * 2) /
388 			      *num_vfs;
389 	else
390 		vf_rx_rings = (bp->pf.max_rx_rings - bp->rx_nr_rings) /
391 			      *num_vfs;
392 	vf_tx_rings = (bp->pf.max_tx_rings - bp->tx_nr_rings) / *num_vfs;
393 
394 	req.enables = cpu_to_le32(FUNC_CFG_REQ_ENABLES_MTU |
395 				  FUNC_CFG_REQ_ENABLES_MRU |
396 				  FUNC_CFG_REQ_ENABLES_NUM_RSSCOS_CTXS |
397 				  FUNC_CFG_REQ_ENABLES_NUM_STAT_CTXS |
398 				  FUNC_CFG_REQ_ENABLES_NUM_CMPL_RINGS |
399 				  FUNC_CFG_REQ_ENABLES_NUM_TX_RINGS |
400 				  FUNC_CFG_REQ_ENABLES_NUM_RX_RINGS |
401 				  FUNC_CFG_REQ_ENABLES_NUM_L2_CTXS |
402 				  FUNC_CFG_REQ_ENABLES_NUM_VNICS);
403 
404 	mtu = bp->dev->mtu + ETH_HLEN + ETH_FCS_LEN + VLAN_HLEN;
405 	req.mru = cpu_to_le16(mtu);
406 	req.mtu = cpu_to_le16(mtu);
407 
408 	req.num_rsscos_ctxs = cpu_to_le16(1);
409 	req.num_cmpl_rings = cpu_to_le16(vf_cp_rings);
410 	req.num_tx_rings = cpu_to_le16(vf_tx_rings);
411 	req.num_rx_rings = cpu_to_le16(vf_rx_rings);
412 	req.num_l2_ctxs = cpu_to_le16(4);
413 	vf_vnics = 1;
414 
415 	req.num_vnics = cpu_to_le16(vf_vnics);
416 	/* FIXME spec currently uses 1 bit for stats ctx */
417 	req.num_stat_ctxs = cpu_to_le16(vf_stat_ctx);
418 
419 	mutex_lock(&bp->hwrm_cmd_lock);
420 	for (i = 0; i < *num_vfs; i++) {
421 		req.vf_id = cpu_to_le16(pf->first_vf_id + i);
422 		rc = _hwrm_send_message(bp, &req, sizeof(req),
423 					HWRM_CMD_TIMEOUT);
424 		if (rc)
425 			break;
426 		bp->pf.active_vfs = i + 1;
427 		bp->pf.vf[i].fw_fid = le16_to_cpu(req.vf_id);
428 	}
429 	mutex_unlock(&bp->hwrm_cmd_lock);
430 	if (!rc) {
431 		bp->pf.max_pf_tx_rings = bp->tx_nr_rings;
432 		if (bp->flags & BNXT_FLAG_AGG_RINGS)
433 			bp->pf.max_pf_rx_rings = bp->rx_nr_rings * 2;
434 		else
435 			bp->pf.max_pf_rx_rings = bp->rx_nr_rings;
436 	}
437 	return rc;
438 }
439 
440 static int bnxt_sriov_enable(struct bnxt *bp, int *num_vfs)
441 {
442 	int rc = 0, vfs_supported;
443 	int min_rx_rings, min_tx_rings, min_rss_ctxs;
444 	int tx_ok = 0, rx_ok = 0, rss_ok = 0;
445 
446 	/* Check if we can enable requested num of vf's. At a mininum
447 	 * we require 1 RX 1 TX rings for each VF. In this minimum conf
448 	 * features like TPA will not be available.
449 	 */
450 	vfs_supported = *num_vfs;
451 
452 	while (vfs_supported) {
453 		min_rx_rings = vfs_supported;
454 		min_tx_rings = vfs_supported;
455 		min_rss_ctxs = vfs_supported;
456 
457 		if (bp->flags & BNXT_FLAG_AGG_RINGS) {
458 			if (bp->pf.max_rx_rings - bp->rx_nr_rings * 2 >=
459 			    min_rx_rings)
460 				rx_ok = 1;
461 		} else {
462 			if (bp->pf.max_rx_rings - bp->rx_nr_rings >=
463 			    min_rx_rings)
464 				rx_ok = 1;
465 		}
466 
467 		if (bp->pf.max_tx_rings - bp->tx_nr_rings >= min_tx_rings)
468 			tx_ok = 1;
469 
470 		if (bp->pf.max_rsscos_ctxs - bp->rsscos_nr_ctxs >= min_rss_ctxs)
471 			rss_ok = 1;
472 
473 		if (tx_ok && rx_ok && rss_ok)
474 			break;
475 
476 		vfs_supported--;
477 	}
478 
479 	if (!vfs_supported) {
480 		netdev_err(bp->dev, "Cannot enable VF's as all resources are used by PF\n");
481 		return -EINVAL;
482 	}
483 
484 	if (vfs_supported != *num_vfs) {
485 		netdev_info(bp->dev, "Requested VFs %d, can enable %d\n",
486 			    *num_vfs, vfs_supported);
487 		*num_vfs = vfs_supported;
488 	}
489 
490 	rc = bnxt_alloc_vf_resources(bp, *num_vfs);
491 	if (rc)
492 		goto err_out1;
493 
494 	/* Reserve resources for VFs */
495 	rc = bnxt_hwrm_func_cfg(bp, num_vfs);
496 	if (rc)
497 		goto err_out2;
498 
499 	/* Register buffers for VFs */
500 	rc = bnxt_hwrm_func_buf_rgtr(bp);
501 	if (rc)
502 		goto err_out2;
503 
504 	rc = pci_enable_sriov(bp->pdev, *num_vfs);
505 	if (rc)
506 		goto err_out2;
507 
508 	return 0;
509 
510 err_out2:
511 	/* Free the resources reserved for various VF's */
512 	bnxt_hwrm_func_vf_resource_free(bp, *num_vfs);
513 
514 err_out1:
515 	bnxt_free_vf_resources(bp);
516 
517 	return rc;
518 }
519 
520 void bnxt_sriov_disable(struct bnxt *bp)
521 {
522 	u16 num_vfs = pci_num_vf(bp->pdev);
523 
524 	if (!num_vfs)
525 		return;
526 
527 	if (pci_vfs_assigned(bp->pdev)) {
528 		netdev_warn(bp->dev, "Unable to free %d VFs because some are assigned to VMs.\n",
529 			    num_vfs);
530 	} else {
531 		pci_disable_sriov(bp->pdev);
532 		/* Free the HW resources reserved for various VF's */
533 		bnxt_hwrm_func_vf_resource_free(bp, num_vfs);
534 	}
535 
536 	bnxt_free_vf_resources(bp);
537 
538 	bp->pf.active_vfs = 0;
539 	bp->pf.max_pf_rx_rings = bp->pf.max_rx_rings;
540 	bp->pf.max_pf_tx_rings = bp->pf.max_tx_rings;
541 }
542 
543 int bnxt_sriov_configure(struct pci_dev *pdev, int num_vfs)
544 {
545 	struct net_device *dev = pci_get_drvdata(pdev);
546 	struct bnxt *bp = netdev_priv(dev);
547 
548 	if (!(bp->flags & BNXT_FLAG_USING_MSIX)) {
549 		netdev_warn(dev, "Not allow SRIOV if the irq mode is not MSIX\n");
550 		return 0;
551 	}
552 
553 	rtnl_lock();
554 	if (!netif_running(dev)) {
555 		netdev_warn(dev, "Reject SRIOV config request since if is down!\n");
556 		rtnl_unlock();
557 		return 0;
558 	}
559 	bp->sriov_cfg = true;
560 	rtnl_unlock();
561 
562 	if (pci_vfs_assigned(bp->pdev)) {
563 		netdev_warn(dev, "Unable to configure SRIOV since some VFs are assigned to VMs.\n");
564 		num_vfs = 0;
565 		goto sriov_cfg_exit;
566 	}
567 
568 	/* Check if enabled VFs is same as requested */
569 	if (num_vfs && num_vfs == bp->pf.active_vfs)
570 		goto sriov_cfg_exit;
571 
572 	/* if there are previous existing VFs, clean them up */
573 	bnxt_sriov_disable(bp);
574 	if (!num_vfs)
575 		goto sriov_cfg_exit;
576 
577 	bnxt_sriov_enable(bp, &num_vfs);
578 
579 sriov_cfg_exit:
580 	bp->sriov_cfg = false;
581 	wake_up(&bp->sriov_cfg_wait);
582 
583 	return num_vfs;
584 }
585 
586 static int bnxt_hwrm_fwd_resp(struct bnxt *bp, struct bnxt_vf_info *vf,
587 			      void *encap_resp, __le64 encap_resp_addr,
588 			      __le16 encap_resp_cpr, u32 msg_size)
589 {
590 	int rc = 0;
591 	struct hwrm_fwd_resp_input req = {0};
592 	struct hwrm_fwd_resp_output *resp = bp->hwrm_cmd_resp_addr;
593 
594 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FWD_RESP, -1, -1);
595 
596 	/* Set the new target id */
597 	req.target_id = cpu_to_le16(vf->fw_fid);
598 	req.encap_resp_len = cpu_to_le16(msg_size);
599 	req.encap_resp_addr = encap_resp_addr;
600 	req.encap_resp_cmpl_ring = encap_resp_cpr;
601 	memcpy(req.encap_resp, encap_resp, msg_size);
602 
603 	mutex_lock(&bp->hwrm_cmd_lock);
604 	rc = _hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
605 
606 	if (rc) {
607 		netdev_err(bp->dev, "hwrm_fwd_resp failed. rc:%d\n", rc);
608 		goto fwd_resp_exit;
609 	}
610 
611 	if (resp->error_code) {
612 		netdev_err(bp->dev, "hwrm_fwd_resp error %d\n",
613 			   resp->error_code);
614 		rc = -1;
615 	}
616 
617 fwd_resp_exit:
618 	mutex_unlock(&bp->hwrm_cmd_lock);
619 	return rc;
620 }
621 
622 static int bnxt_hwrm_fwd_err_resp(struct bnxt *bp, struct bnxt_vf_info *vf,
623 				  u32 msg_size)
624 {
625 	int rc = 0;
626 	struct hwrm_reject_fwd_resp_input req = {0};
627 	struct hwrm_reject_fwd_resp_output *resp = bp->hwrm_cmd_resp_addr;
628 
629 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_REJECT_FWD_RESP, -1, -1);
630 	/* Set the new target id */
631 	req.target_id = cpu_to_le16(vf->fw_fid);
632 	memcpy(req.encap_request, vf->hwrm_cmd_req_addr, msg_size);
633 
634 	mutex_lock(&bp->hwrm_cmd_lock);
635 	rc = _hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
636 
637 	if (rc) {
638 		netdev_err(bp->dev, "hwrm_fwd_err_resp failed. rc:%d\n", rc);
639 		goto fwd_err_resp_exit;
640 	}
641 
642 	if (resp->error_code) {
643 		netdev_err(bp->dev, "hwrm_fwd_err_resp error %d\n",
644 			   resp->error_code);
645 		rc = -1;
646 	}
647 
648 fwd_err_resp_exit:
649 	mutex_unlock(&bp->hwrm_cmd_lock);
650 	return rc;
651 }
652 
653 static int bnxt_hwrm_exec_fwd_resp(struct bnxt *bp, struct bnxt_vf_info *vf,
654 				   u32 msg_size)
655 {
656 	int rc = 0;
657 	struct hwrm_exec_fwd_resp_input req = {0};
658 	struct hwrm_exec_fwd_resp_output *resp = bp->hwrm_cmd_resp_addr;
659 
660 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_EXEC_FWD_RESP, -1, -1);
661 	/* Set the new target id */
662 	req.target_id = cpu_to_le16(vf->fw_fid);
663 	memcpy(req.encap_request, vf->hwrm_cmd_req_addr, msg_size);
664 
665 	mutex_lock(&bp->hwrm_cmd_lock);
666 	rc = _hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT);
667 
668 	if (rc) {
669 		netdev_err(bp->dev, "hwrm_exec_fw_resp failed. rc:%d\n", rc);
670 		goto exec_fwd_resp_exit;
671 	}
672 
673 	if (resp->error_code) {
674 		netdev_err(bp->dev, "hwrm_exec_fw_resp error %d\n",
675 			   resp->error_code);
676 		rc = -1;
677 	}
678 
679 exec_fwd_resp_exit:
680 	mutex_unlock(&bp->hwrm_cmd_lock);
681 	return rc;
682 }
683 
684 static int bnxt_vf_validate_set_mac(struct bnxt *bp, struct bnxt_vf_info *vf)
685 {
686 	u32 msg_size = sizeof(struct hwrm_cfa_l2_filter_alloc_input);
687 	struct hwrm_cfa_l2_filter_alloc_input *req =
688 		(struct hwrm_cfa_l2_filter_alloc_input *)vf->hwrm_cmd_req_addr;
689 
690 	if (!is_valid_ether_addr(vf->mac_addr) ||
691 	    ether_addr_equal((const u8 *)req->l2_addr, vf->mac_addr))
692 		return bnxt_hwrm_exec_fwd_resp(bp, vf, msg_size);
693 	else
694 		return bnxt_hwrm_fwd_err_resp(bp, vf, msg_size);
695 }
696 
697 static int bnxt_vf_set_link(struct bnxt *bp, struct bnxt_vf_info *vf)
698 {
699 	int rc = 0;
700 
701 	if (!(vf->flags & BNXT_VF_LINK_FORCED)) {
702 		/* real link */
703 		rc = bnxt_hwrm_exec_fwd_resp(
704 			bp, vf, sizeof(struct hwrm_port_phy_qcfg_input));
705 	} else {
706 		struct hwrm_port_phy_qcfg_output phy_qcfg_resp;
707 		struct hwrm_port_phy_qcfg_input *phy_qcfg_req;
708 
709 		phy_qcfg_req =
710 		(struct hwrm_port_phy_qcfg_input *)vf->hwrm_cmd_req_addr;
711 		mutex_lock(&bp->hwrm_cmd_lock);
712 		memcpy(&phy_qcfg_resp, &bp->link_info.phy_qcfg_resp,
713 		       sizeof(phy_qcfg_resp));
714 		mutex_unlock(&bp->hwrm_cmd_lock);
715 		phy_qcfg_resp.seq_id = phy_qcfg_req->seq_id;
716 
717 		if (vf->flags & BNXT_VF_LINK_UP) {
718 			/* if physical link is down, force link up on VF */
719 			if (phy_qcfg_resp.link ==
720 			    PORT_PHY_QCFG_RESP_LINK_NO_LINK) {
721 				phy_qcfg_resp.link =
722 					PORT_PHY_QCFG_RESP_LINK_LINK;
723 				if (phy_qcfg_resp.auto_link_speed)
724 					phy_qcfg_resp.link_speed =
725 						phy_qcfg_resp.auto_link_speed;
726 				else
727 					phy_qcfg_resp.link_speed =
728 						phy_qcfg_resp.force_link_speed;
729 				phy_qcfg_resp.duplex =
730 					PORT_PHY_QCFG_RESP_DUPLEX_FULL;
731 				phy_qcfg_resp.pause =
732 					(PORT_PHY_QCFG_RESP_PAUSE_TX |
733 					 PORT_PHY_QCFG_RESP_PAUSE_RX);
734 			}
735 		} else {
736 			/* force link down */
737 			phy_qcfg_resp.link = PORT_PHY_QCFG_RESP_LINK_NO_LINK;
738 			phy_qcfg_resp.link_speed = 0;
739 			phy_qcfg_resp.duplex = PORT_PHY_QCFG_RESP_DUPLEX_HALF;
740 			phy_qcfg_resp.pause = 0;
741 		}
742 		rc = bnxt_hwrm_fwd_resp(bp, vf, &phy_qcfg_resp,
743 					phy_qcfg_req->resp_addr,
744 					phy_qcfg_req->cmpl_ring,
745 					sizeof(phy_qcfg_resp));
746 	}
747 	return rc;
748 }
749 
750 static int bnxt_vf_req_validate_snd(struct bnxt *bp, struct bnxt_vf_info *vf)
751 {
752 	int rc = 0;
753 	struct hwrm_cmd_req_hdr *encap_req = vf->hwrm_cmd_req_addr;
754 	u32 req_type = le32_to_cpu(encap_req->cmpl_ring_req_type) & 0xffff;
755 
756 	switch (req_type) {
757 	case HWRM_CFA_L2_FILTER_ALLOC:
758 		rc = bnxt_vf_validate_set_mac(bp, vf);
759 		break;
760 	case HWRM_FUNC_CFG:
761 		/* TODO Validate if VF is allowed to change mac address,
762 		 * mtu, num of rings etc
763 		 */
764 		rc = bnxt_hwrm_exec_fwd_resp(
765 			bp, vf, sizeof(struct hwrm_func_cfg_input));
766 		break;
767 	case HWRM_PORT_PHY_QCFG:
768 		rc = bnxt_vf_set_link(bp, vf);
769 		break;
770 	default:
771 		break;
772 	}
773 	return rc;
774 }
775 
776 void bnxt_hwrm_exec_fwd_req(struct bnxt *bp)
777 {
778 	u32 i = 0, active_vfs = bp->pf.active_vfs, vf_id;
779 
780 	/* Scan through VF's and process commands */
781 	while (1) {
782 		vf_id = find_next_bit(bp->pf.vf_event_bmap, active_vfs, i);
783 		if (vf_id >= active_vfs)
784 			break;
785 
786 		clear_bit(vf_id, bp->pf.vf_event_bmap);
787 		bnxt_vf_req_validate_snd(bp, &bp->pf.vf[vf_id]);
788 		i = vf_id + 1;
789 	}
790 }
791 
792 void bnxt_update_vf_mac(struct bnxt *bp)
793 {
794 	struct hwrm_func_qcaps_input req = {0};
795 	struct hwrm_func_qcaps_output *resp = bp->hwrm_cmd_resp_addr;
796 
797 	bnxt_hwrm_cmd_hdr_init(bp, &req, HWRM_FUNC_QCAPS, -1, -1);
798 	req.fid = cpu_to_le16(0xffff);
799 
800 	mutex_lock(&bp->hwrm_cmd_lock);
801 	if (_hwrm_send_message(bp, &req, sizeof(req), HWRM_CMD_TIMEOUT))
802 		goto update_vf_mac_exit;
803 
804 	if (!is_valid_ether_addr(resp->perm_mac_address))
805 		goto update_vf_mac_exit;
806 
807 	if (!ether_addr_equal(resp->perm_mac_address, bp->vf.mac_addr))
808 		memcpy(bp->vf.mac_addr, resp->perm_mac_address, ETH_ALEN);
809 	/* overwrite netdev dev_adr with admin VF MAC */
810 	memcpy(bp->dev->dev_addr, bp->vf.mac_addr, ETH_ALEN);
811 update_vf_mac_exit:
812 	mutex_unlock(&bp->hwrm_cmd_lock);
813 }
814 
815 #else
816 
817 void bnxt_sriov_disable(struct bnxt *bp)
818 {
819 }
820 
821 void bnxt_hwrm_exec_fwd_req(struct bnxt *bp)
822 {
823 	netdev_err(bp->dev, "Invalid VF message received when SRIOV is not enable\n");
824 }
825 
826 void bnxt_update_vf_mac(struct bnxt *bp)
827 {
828 }
829 #endif
830