1 /* SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause */
2 /*
3  * Copyright (C) 2003-2015, 2018-2021 Intel Corporation
4  * Copyright (C) 2013-2015 Intel Mobile Communications GmbH
5  * Copyright (C) 2016-2017 Intel Deutschland GmbH
6  */
7 #ifndef __iwl_trans_int_pcie_h__
8 #define __iwl_trans_int_pcie_h__
9 
10 #include <linux/spinlock.h>
11 #include <linux/interrupt.h>
12 #include <linux/skbuff.h>
13 #include <linux/wait.h>
14 #include <linux/pci.h>
15 #include <linux/timer.h>
16 #include <linux/cpu.h>
17 
18 #include "iwl-fh.h"
19 #include "iwl-csr.h"
20 #include "iwl-trans.h"
21 #include "iwl-debug.h"
22 #include "iwl-io.h"
23 #include "iwl-op-mode.h"
24 #include "iwl-drv.h"
25 #include "queue/tx.h"
26 
27 /*
28  * RX related structures and functions
29  */
30 #define RX_NUM_QUEUES 1
31 #define RX_POST_REQ_ALLOC 2
32 #define RX_CLAIM_REQ_ALLOC 8
33 #define RX_PENDING_WATERMARK 16
34 #define FIRST_RX_QUEUE 512
35 
36 struct iwl_host_cmd;
37 
38 /*This file includes the declaration that are internal to the
39  * trans_pcie layer */
40 
41 /**
42  * struct iwl_rx_mem_buffer
43  * @page_dma: bus address of rxb page
44  * @page: driver's pointer to the rxb page
45  * @list: list entry for the membuffer
46  * @invalid: rxb is in driver ownership - not owned by HW
47  * @vid: index of this rxb in the global table
48  * @offset: indicates which offset of the page (in bytes)
49  *	this buffer uses (if multiple RBs fit into one page)
50  */
51 struct iwl_rx_mem_buffer {
52 	dma_addr_t page_dma;
53 	struct page *page;
54 	struct list_head list;
55 	u32 offset;
56 	u16 vid;
57 	bool invalid;
58 };
59 
60 /**
61  * struct isr_statistics - interrupt statistics
62  *
63  */
64 struct isr_statistics {
65 	u32 hw;
66 	u32 sw;
67 	u32 err_code;
68 	u32 sch;
69 	u32 alive;
70 	u32 rfkill;
71 	u32 ctkill;
72 	u32 wakeup;
73 	u32 rx;
74 	u32 tx;
75 	u32 unhandled;
76 };
77 
78 /**
79  * struct iwl_rx_transfer_desc - transfer descriptor
80  * @addr: ptr to free buffer start address
81  * @rbid: unique tag of the buffer
82  * @reserved: reserved
83  */
84 struct iwl_rx_transfer_desc {
85 	__le16 rbid;
86 	__le16 reserved[3];
87 	__le64 addr;
88 } __packed;
89 
90 #define IWL_RX_CD_FLAGS_FRAGMENTED	BIT(0)
91 
92 /**
93  * struct iwl_rx_completion_desc - completion descriptor
94  * @reserved1: reserved
95  * @rbid: unique tag of the received buffer
96  * @flags: flags (0: fragmented, all others: reserved)
97  * @reserved2: reserved
98  */
99 struct iwl_rx_completion_desc {
100 	__le32 reserved1;
101 	__le16 rbid;
102 	u8 flags;
103 	u8 reserved2[25];
104 } __packed;
105 
106 /**
107  * struct iwl_rxq - Rx queue
108  * @id: queue index
109  * @bd: driver's pointer to buffer of receive buffer descriptors (rbd).
110  *	Address size is 32 bit in pre-9000 devices and 64 bit in 9000 devices.
111  *	In AX210 devices it is a pointer to a list of iwl_rx_transfer_desc's
112  * @bd_dma: bus address of buffer of receive buffer descriptors (rbd)
113  * @used_bd: driver's pointer to buffer of used receive buffer descriptors (rbd)
114  * @used_bd_dma: physical address of buffer of used receive buffer descriptors (rbd)
115  * @read: Shared index to newest available Rx buffer
116  * @write: Shared index to oldest written Rx packet
117  * @free_count: Number of pre-allocated buffers in rx_free
118  * @used_count: Number of RBDs handled to allocator to use for allocation
119  * @write_actual:
120  * @rx_free: list of RBDs with allocated RB ready for use
121  * @rx_used: list of RBDs with no RB attached
122  * @need_update: flag to indicate we need to update read/write index
123  * @rb_stts: driver's pointer to receive buffer status
124  * @rb_stts_dma: bus address of receive buffer status
125  * @lock:
126  * @queue: actual rx queue. Not used for multi-rx queue.
127  * @next_rb_is_fragment: indicates that the previous RB that we handled set
128  *	the fragmented flag, so the next one is still another fragment
129  *
130  * NOTE:  rx_free and rx_used are used as a FIFO for iwl_rx_mem_buffers
131  */
132 struct iwl_rxq {
133 	int id;
134 	void *bd;
135 	dma_addr_t bd_dma;
136 	union {
137 		void *used_bd;
138 		__le32 *bd_32;
139 		struct iwl_rx_completion_desc *cd;
140 	};
141 	dma_addr_t used_bd_dma;
142 	u32 read;
143 	u32 write;
144 	u32 free_count;
145 	u32 used_count;
146 	u32 write_actual;
147 	u32 queue_size;
148 	struct list_head rx_free;
149 	struct list_head rx_used;
150 	bool need_update, next_rb_is_fragment;
151 	void *rb_stts;
152 	dma_addr_t rb_stts_dma;
153 	spinlock_t lock;
154 	struct napi_struct napi;
155 	struct iwl_rx_mem_buffer *queue[RX_QUEUE_SIZE];
156 };
157 
158 /**
159  * struct iwl_rb_allocator - Rx allocator
160  * @req_pending: number of requests the allcator had not processed yet
161  * @req_ready: number of requests honored and ready for claiming
162  * @rbd_allocated: RBDs with pages allocated and ready to be handled to
163  *	the queue. This is a list of &struct iwl_rx_mem_buffer
164  * @rbd_empty: RBDs with no page attached for allocator use. This is a list
165  *	of &struct iwl_rx_mem_buffer
166  * @lock: protects the rbd_allocated and rbd_empty lists
167  * @alloc_wq: work queue for background calls
168  * @rx_alloc: work struct for background calls
169  */
170 struct iwl_rb_allocator {
171 	atomic_t req_pending;
172 	atomic_t req_ready;
173 	struct list_head rbd_allocated;
174 	struct list_head rbd_empty;
175 	spinlock_t lock;
176 	struct workqueue_struct *alloc_wq;
177 	struct work_struct rx_alloc;
178 };
179 
180 /**
181  * iwl_get_closed_rb_stts - get closed rb stts from different structs
182  * @rxq - the rxq to get the rb stts from
183  */
184 static inline __le16 iwl_get_closed_rb_stts(struct iwl_trans *trans,
185 					    struct iwl_rxq *rxq)
186 {
187 	if (trans->trans_cfg->device_family >= IWL_DEVICE_FAMILY_AX210) {
188 		__le16 *rb_stts = rxq->rb_stts;
189 
190 		return READ_ONCE(*rb_stts);
191 	} else {
192 		struct iwl_rb_status *rb_stts = rxq->rb_stts;
193 
194 		return READ_ONCE(rb_stts->closed_rb_num);
195 	}
196 }
197 
198 #ifdef CONFIG_IWLWIFI_DEBUGFS
199 /**
200  * enum iwl_fw_mon_dbgfs_state - the different states of the monitor_data
201  * debugfs file
202  *
203  * @IWL_FW_MON_DBGFS_STATE_CLOSED: the file is closed.
204  * @IWL_FW_MON_DBGFS_STATE_OPEN: the file is open.
205  * @IWL_FW_MON_DBGFS_STATE_DISABLED: the file is disabled, once this state is
206  *	set the file can no longer be used.
207  */
208 enum iwl_fw_mon_dbgfs_state {
209 	IWL_FW_MON_DBGFS_STATE_CLOSED,
210 	IWL_FW_MON_DBGFS_STATE_OPEN,
211 	IWL_FW_MON_DBGFS_STATE_DISABLED,
212 };
213 #endif
214 
215 /**
216  * enum iwl_shared_irq_flags - level of sharing for irq
217  * @IWL_SHARED_IRQ_NON_RX: interrupt vector serves non rx causes.
218  * @IWL_SHARED_IRQ_FIRST_RSS: interrupt vector serves first RSS queue.
219  */
220 enum iwl_shared_irq_flags {
221 	IWL_SHARED_IRQ_NON_RX		= BIT(0),
222 	IWL_SHARED_IRQ_FIRST_RSS	= BIT(1),
223 };
224 
225 /**
226  * enum iwl_image_response_code - image response values
227  * @IWL_IMAGE_RESP_DEF: the default value of the register
228  * @IWL_IMAGE_RESP_SUCCESS: iml was read successfully
229  * @IWL_IMAGE_RESP_FAIL: iml reading failed
230  */
231 enum iwl_image_response_code {
232 	IWL_IMAGE_RESP_DEF		= 0,
233 	IWL_IMAGE_RESP_SUCCESS		= 1,
234 	IWL_IMAGE_RESP_FAIL		= 2,
235 };
236 
237 /**
238  * struct cont_rec: continuous recording data structure
239  * @prev_wr_ptr: the last address that was read in monitor_data
240  *	debugfs file
241  * @prev_wrap_cnt: the wrap count that was used during the last read in
242  *	monitor_data debugfs file
243  * @state: the state of monitor_data debugfs file as described
244  *	in &iwl_fw_mon_dbgfs_state enum
245  * @mutex: locked while reading from monitor_data debugfs file
246  */
247 #ifdef CONFIG_IWLWIFI_DEBUGFS
248 struct cont_rec {
249 	u32 prev_wr_ptr;
250 	u32 prev_wrap_cnt;
251 	u8  state;
252 	/* Used to sync monitor_data debugfs file with driver unload flow */
253 	struct mutex mutex;
254 };
255 #endif
256 
257 enum iwl_pcie_fw_reset_state {
258 	FW_RESET_IDLE,
259 	FW_RESET_REQUESTED,
260 	FW_RESET_OK,
261 	FW_RESET_ERROR,
262 };
263 
264 /**
265  * struct iwl_trans_pcie - PCIe transport specific data
266  * @rxq: all the RX queue data
267  * @rx_pool: initial pool of iwl_rx_mem_buffer for all the queues
268  * @global_table: table mapping received VID from hw to rxb
269  * @rba: allocator for RX replenishing
270  * @ctxt_info: context information for FW self init
271  * @ctxt_info_gen3: context information for gen3 devices
272  * @prph_info: prph info for self init
273  * @prph_scratch: prph scratch for self init
274  * @ctxt_info_dma_addr: dma addr of context information
275  * @prph_info_dma_addr: dma addr of prph info
276  * @prph_scratch_dma_addr: dma addr of prph scratch
277  * @ctxt_info_dma_addr: dma addr of context information
278  * @init_dram: DRAM data of firmware image (including paging).
279  *	Context information addresses will be taken from here.
280  *	This is driver's local copy for keeping track of size and
281  *	count for allocating and freeing the memory.
282  * @iml: image loader image virtual address
283  * @iml_dma_addr: image loader image DMA address
284  * @trans: pointer to the generic transport area
285  * @scd_base_addr: scheduler sram base address in SRAM
286  * @kw: keep warm address
287  * @pnvm_dram: DRAM area that contains the PNVM data
288  * @pci_dev: basic pci-network driver stuff
289  * @hw_base: pci hardware address support
290  * @ucode_write_complete: indicates that the ucode has been copied.
291  * @ucode_write_waitq: wait queue for uCode load
292  * @cmd_queue - command queue number
293  * @def_rx_queue - default rx queue number
294  * @rx_buf_size: Rx buffer size
295  * @scd_set_active: should the transport configure the SCD for HCMD queue
296  * @rx_page_order: page order for receive buffer size
297  * @rx_buf_bytes: RX buffer (RB) size in bytes
298  * @reg_lock: protect hw register access
299  * @mutex: to protect stop_device / start_fw / start_hw
300  * @cmd_in_flight: true when we have a host command in flight
301 #ifdef CONFIG_IWLWIFI_DEBUGFS
302  * @fw_mon_data: fw continuous recording data
303 #endif
304  * @msix_entries: array of MSI-X entries
305  * @msix_enabled: true if managed to enable MSI-X
306  * @shared_vec_mask: the type of causes the shared vector handles
307  *	(see iwl_shared_irq_flags).
308  * @alloc_vecs: the number of interrupt vectors allocated by the OS
309  * @def_irq: default irq for non rx causes
310  * @fh_init_mask: initial unmasked fh causes
311  * @hw_init_mask: initial unmasked hw causes
312  * @fh_mask: current unmasked fh causes
313  * @hw_mask: current unmasked hw causes
314  * @in_rescan: true if we have triggered a device rescan
315  * @base_rb_stts: base virtual address of receive buffer status for all queues
316  * @base_rb_stts_dma: base physical address of receive buffer status
317  * @supported_dma_mask: DMA mask to validate the actual address against,
318  *	will be DMA_BIT_MASK(11) or DMA_BIT_MASK(12) depending on the device
319  * @alloc_page_lock: spinlock for the page allocator
320  * @alloc_page: allocated page to still use parts of
321  * @alloc_page_used: how much of the allocated page was already used (bytes)
322  * @rf_name: name/version of the CRF, if any
323  */
324 struct iwl_trans_pcie {
325 	struct iwl_rxq *rxq;
326 	struct iwl_rx_mem_buffer *rx_pool;
327 	struct iwl_rx_mem_buffer **global_table;
328 	struct iwl_rb_allocator rba;
329 	union {
330 		struct iwl_context_info *ctxt_info;
331 		struct iwl_context_info_gen3 *ctxt_info_gen3;
332 	};
333 	struct iwl_prph_info *prph_info;
334 	struct iwl_prph_scratch *prph_scratch;
335 	void *iml;
336 	dma_addr_t ctxt_info_dma_addr;
337 	dma_addr_t prph_info_dma_addr;
338 	dma_addr_t prph_scratch_dma_addr;
339 	dma_addr_t iml_dma_addr;
340 	struct iwl_trans *trans;
341 
342 	struct net_device napi_dev;
343 
344 	/* INT ICT Table */
345 	__le32 *ict_tbl;
346 	dma_addr_t ict_tbl_dma;
347 	int ict_index;
348 	bool use_ict;
349 	bool is_down, opmode_down;
350 	s8 debug_rfkill;
351 	struct isr_statistics isr_stats;
352 
353 	spinlock_t irq_lock;
354 	struct mutex mutex;
355 	u32 inta_mask;
356 	u32 scd_base_addr;
357 	struct iwl_dma_ptr kw;
358 
359 	struct iwl_dram_data pnvm_dram;
360 	struct iwl_dram_data reduce_power_dram;
361 
362 	struct iwl_txq *txq_memory;
363 
364 	/* PCI bus related data */
365 	struct pci_dev *pci_dev;
366 	void __iomem *hw_base;
367 
368 	bool ucode_write_complete;
369 	bool sx_complete;
370 	wait_queue_head_t ucode_write_waitq;
371 	wait_queue_head_t sx_waitq;
372 
373 	u8 def_rx_queue;
374 	u8 n_no_reclaim_cmds;
375 	u8 no_reclaim_cmds[MAX_NO_RECLAIM_CMDS];
376 	u16 num_rx_bufs;
377 
378 	enum iwl_amsdu_size rx_buf_size;
379 	bool scd_set_active;
380 	bool pcie_dbg_dumped_once;
381 	u32 rx_page_order;
382 	u32 rx_buf_bytes;
383 	u32 supported_dma_mask;
384 
385 	/* allocator lock for the two values below */
386 	spinlock_t alloc_page_lock;
387 	struct page *alloc_page;
388 	u32 alloc_page_used;
389 
390 	/*protect hw register */
391 	spinlock_t reg_lock;
392 	bool cmd_hold_nic_awake;
393 
394 #ifdef CONFIG_IWLWIFI_DEBUGFS
395 	struct cont_rec fw_mon_data;
396 #endif
397 
398 	struct msix_entry msix_entries[IWL_MAX_RX_HW_QUEUES];
399 	bool msix_enabled;
400 	u8 shared_vec_mask;
401 	u32 alloc_vecs;
402 	u32 def_irq;
403 	u32 fh_init_mask;
404 	u32 hw_init_mask;
405 	u32 fh_mask;
406 	u32 hw_mask;
407 	cpumask_t affinity_mask[IWL_MAX_RX_HW_QUEUES];
408 	u16 tx_cmd_queue_size;
409 	bool in_rescan;
410 
411 	void *base_rb_stts;
412 	dma_addr_t base_rb_stts_dma;
413 
414 	bool fw_reset_handshake;
415 	enum iwl_pcie_fw_reset_state fw_reset_state;
416 	wait_queue_head_t fw_reset_waitq;
417 
418 	char rf_name[32];
419 };
420 
421 static inline struct iwl_trans_pcie *
422 IWL_TRANS_GET_PCIE_TRANS(struct iwl_trans *trans)
423 {
424 	return (void *)trans->trans_specific;
425 }
426 
427 static inline void iwl_pcie_clear_irq(struct iwl_trans *trans, int queue)
428 {
429 	/*
430 	 * Before sending the interrupt the HW disables it to prevent
431 	 * a nested interrupt. This is done by writing 1 to the corresponding
432 	 * bit in the mask register. After handling the interrupt, it should be
433 	 * re-enabled by clearing this bit. This register is defined as
434 	 * write 1 clear (W1C) register, meaning that it's being clear
435 	 * by writing 1 to the bit.
436 	 */
437 	iwl_write32(trans, CSR_MSIX_AUTOMASK_ST_AD, BIT(queue));
438 }
439 
440 static inline struct iwl_trans *
441 iwl_trans_pcie_get_trans(struct iwl_trans_pcie *trans_pcie)
442 {
443 	return container_of((void *)trans_pcie, struct iwl_trans,
444 			    trans_specific);
445 }
446 
447 /*
448  * Convention: trans API functions: iwl_trans_pcie_XXX
449  *	Other functions: iwl_pcie_XXX
450  */
451 struct iwl_trans
452 *iwl_trans_pcie_alloc(struct pci_dev *pdev,
453 		      const struct pci_device_id *ent,
454 		      const struct iwl_cfg_trans_params *cfg_trans);
455 void iwl_trans_pcie_free(struct iwl_trans *trans);
456 
457 bool __iwl_trans_pcie_grab_nic_access(struct iwl_trans *trans);
458 #define _iwl_trans_pcie_grab_nic_access(trans)			\
459 	__cond_lock(nic_access_nobh,				\
460 		    likely(__iwl_trans_pcie_grab_nic_access(trans)))
461 
462 /*****************************************************
463 * RX
464 ******************************************************/
465 int iwl_pcie_rx_init(struct iwl_trans *trans);
466 int iwl_pcie_gen2_rx_init(struct iwl_trans *trans);
467 irqreturn_t iwl_pcie_msix_isr(int irq, void *data);
468 irqreturn_t iwl_pcie_irq_handler(int irq, void *dev_id);
469 irqreturn_t iwl_pcie_irq_msix_handler(int irq, void *dev_id);
470 irqreturn_t iwl_pcie_irq_rx_msix_handler(int irq, void *dev_id);
471 int iwl_pcie_rx_stop(struct iwl_trans *trans);
472 void iwl_pcie_rx_free(struct iwl_trans *trans);
473 void iwl_pcie_free_rbs_pool(struct iwl_trans *trans);
474 void iwl_pcie_rx_init_rxb_lists(struct iwl_rxq *rxq);
475 void iwl_pcie_rxq_alloc_rbs(struct iwl_trans *trans, gfp_t priority,
476 			    struct iwl_rxq *rxq);
477 
478 /*****************************************************
479 * ICT - interrupt handling
480 ******************************************************/
481 irqreturn_t iwl_pcie_isr(int irq, void *data);
482 int iwl_pcie_alloc_ict(struct iwl_trans *trans);
483 void iwl_pcie_free_ict(struct iwl_trans *trans);
484 void iwl_pcie_reset_ict(struct iwl_trans *trans);
485 void iwl_pcie_disable_ict(struct iwl_trans *trans);
486 
487 /*****************************************************
488 * TX / HCMD
489 ******************************************************/
490 int iwl_pcie_tx_init(struct iwl_trans *trans);
491 void iwl_pcie_tx_start(struct iwl_trans *trans, u32 scd_base_addr);
492 int iwl_pcie_tx_stop(struct iwl_trans *trans);
493 void iwl_pcie_tx_free(struct iwl_trans *trans);
494 bool iwl_trans_pcie_txq_enable(struct iwl_trans *trans, int queue, u16 ssn,
495 			       const struct iwl_trans_txq_scd_cfg *cfg,
496 			       unsigned int wdg_timeout);
497 void iwl_trans_pcie_txq_disable(struct iwl_trans *trans, int queue,
498 				bool configure_scd);
499 void iwl_trans_pcie_txq_set_shared_mode(struct iwl_trans *trans, u32 txq_id,
500 					bool shared_mode);
501 int iwl_trans_pcie_tx(struct iwl_trans *trans, struct sk_buff *skb,
502 		      struct iwl_device_tx_cmd *dev_cmd, int txq_id);
503 void iwl_pcie_txq_check_wrptrs(struct iwl_trans *trans);
504 int iwl_trans_pcie_send_hcmd(struct iwl_trans *trans, struct iwl_host_cmd *cmd);
505 void iwl_pcie_hcmd_complete(struct iwl_trans *trans,
506 			    struct iwl_rx_cmd_buffer *rxb);
507 void iwl_trans_pcie_tx_reset(struct iwl_trans *trans);
508 
509 /*****************************************************
510 * Error handling
511 ******************************************************/
512 void iwl_pcie_dump_csr(struct iwl_trans *trans);
513 
514 /*****************************************************
515 * Helpers
516 ******************************************************/
517 static inline void _iwl_disable_interrupts(struct iwl_trans *trans)
518 {
519 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
520 
521 	clear_bit(STATUS_INT_ENABLED, &trans->status);
522 	if (!trans_pcie->msix_enabled) {
523 		/* disable interrupts from uCode/NIC to host */
524 		iwl_write32(trans, CSR_INT_MASK, 0x00000000);
525 
526 		/* acknowledge/clear/reset any interrupts still pending
527 		 * from uCode or flow handler (Rx/Tx DMA) */
528 		iwl_write32(trans, CSR_INT, 0xffffffff);
529 		iwl_write32(trans, CSR_FH_INT_STATUS, 0xffffffff);
530 	} else {
531 		/* disable all the interrupt we might use */
532 		iwl_write32(trans, CSR_MSIX_FH_INT_MASK_AD,
533 			    trans_pcie->fh_init_mask);
534 		iwl_write32(trans, CSR_MSIX_HW_INT_MASK_AD,
535 			    trans_pcie->hw_init_mask);
536 	}
537 	IWL_DEBUG_ISR(trans, "Disabled interrupts\n");
538 }
539 
540 static inline int iwl_pcie_get_num_sections(const struct fw_img *fw,
541 					    int start)
542 {
543 	int i = 0;
544 
545 	while (start < fw->num_sec &&
546 	       fw->sec[start].offset != CPU1_CPU2_SEPARATOR_SECTION &&
547 	       fw->sec[start].offset != PAGING_SEPARATOR_SECTION) {
548 		start++;
549 		i++;
550 	}
551 
552 	return i;
553 }
554 
555 static inline void iwl_pcie_ctxt_info_free_fw_img(struct iwl_trans *trans)
556 {
557 	struct iwl_self_init_dram *dram = &trans->init_dram;
558 	int i;
559 
560 	if (!dram->fw) {
561 		WARN_ON(dram->fw_cnt);
562 		return;
563 	}
564 
565 	for (i = 0; i < dram->fw_cnt; i++)
566 		dma_free_coherent(trans->dev, dram->fw[i].size,
567 				  dram->fw[i].block, dram->fw[i].physical);
568 
569 	kfree(dram->fw);
570 	dram->fw_cnt = 0;
571 	dram->fw = NULL;
572 }
573 
574 static inline void iwl_disable_interrupts(struct iwl_trans *trans)
575 {
576 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
577 
578 	spin_lock_bh(&trans_pcie->irq_lock);
579 	_iwl_disable_interrupts(trans);
580 	spin_unlock_bh(&trans_pcie->irq_lock);
581 }
582 
583 static inline void _iwl_enable_interrupts(struct iwl_trans *trans)
584 {
585 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
586 
587 	IWL_DEBUG_ISR(trans, "Enabling interrupts\n");
588 	set_bit(STATUS_INT_ENABLED, &trans->status);
589 	if (!trans_pcie->msix_enabled) {
590 		trans_pcie->inta_mask = CSR_INI_SET_MASK;
591 		iwl_write32(trans, CSR_INT_MASK, trans_pcie->inta_mask);
592 	} else {
593 		/*
594 		 * fh/hw_mask keeps all the unmasked causes.
595 		 * Unlike msi, in msix cause is enabled when it is unset.
596 		 */
597 		trans_pcie->hw_mask = trans_pcie->hw_init_mask;
598 		trans_pcie->fh_mask = trans_pcie->fh_init_mask;
599 		iwl_write32(trans, CSR_MSIX_FH_INT_MASK_AD,
600 			    ~trans_pcie->fh_mask);
601 		iwl_write32(trans, CSR_MSIX_HW_INT_MASK_AD,
602 			    ~trans_pcie->hw_mask);
603 	}
604 }
605 
606 static inline void iwl_enable_interrupts(struct iwl_trans *trans)
607 {
608 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
609 
610 	spin_lock_bh(&trans_pcie->irq_lock);
611 	_iwl_enable_interrupts(trans);
612 	spin_unlock_bh(&trans_pcie->irq_lock);
613 }
614 static inline void iwl_enable_hw_int_msk_msix(struct iwl_trans *trans, u32 msk)
615 {
616 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
617 
618 	iwl_write32(trans, CSR_MSIX_HW_INT_MASK_AD, ~msk);
619 	trans_pcie->hw_mask = msk;
620 }
621 
622 static inline void iwl_enable_fh_int_msk_msix(struct iwl_trans *trans, u32 msk)
623 {
624 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
625 
626 	iwl_write32(trans, CSR_MSIX_FH_INT_MASK_AD, ~msk);
627 	trans_pcie->fh_mask = msk;
628 }
629 
630 static inline void iwl_enable_fw_load_int(struct iwl_trans *trans)
631 {
632 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
633 
634 	IWL_DEBUG_ISR(trans, "Enabling FW load interrupt\n");
635 	if (!trans_pcie->msix_enabled) {
636 		trans_pcie->inta_mask = CSR_INT_BIT_FH_TX;
637 		iwl_write32(trans, CSR_INT_MASK, trans_pcie->inta_mask);
638 	} else {
639 		iwl_write32(trans, CSR_MSIX_HW_INT_MASK_AD,
640 			    trans_pcie->hw_init_mask);
641 		iwl_enable_fh_int_msk_msix(trans,
642 					   MSIX_FH_INT_CAUSES_D2S_CH0_NUM);
643 	}
644 }
645 
646 static inline void iwl_enable_fw_load_int_ctx_info(struct iwl_trans *trans)
647 {
648 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
649 
650 	IWL_DEBUG_ISR(trans, "Enabling ALIVE interrupt only\n");
651 
652 	if (!trans_pcie->msix_enabled) {
653 		/*
654 		 * When we'll receive the ALIVE interrupt, the ISR will call
655 		 * iwl_enable_fw_load_int_ctx_info again to set the ALIVE
656 		 * interrupt (which is not really needed anymore) but also the
657 		 * RX interrupt which will allow us to receive the ALIVE
658 		 * notification (which is Rx) and continue the flow.
659 		 */
660 		trans_pcie->inta_mask =  CSR_INT_BIT_ALIVE | CSR_INT_BIT_FH_RX;
661 		iwl_write32(trans, CSR_INT_MASK, trans_pcie->inta_mask);
662 	} else {
663 		iwl_enable_hw_int_msk_msix(trans,
664 					   MSIX_HW_INT_CAUSES_REG_ALIVE);
665 		/*
666 		 * Leave all the FH causes enabled to get the ALIVE
667 		 * notification.
668 		 */
669 		iwl_enable_fh_int_msk_msix(trans, trans_pcie->fh_init_mask);
670 	}
671 }
672 
673 static inline const char *queue_name(struct device *dev,
674 				     struct iwl_trans_pcie *trans_p, int i)
675 {
676 	if (trans_p->shared_vec_mask) {
677 		int vec = trans_p->shared_vec_mask &
678 			  IWL_SHARED_IRQ_FIRST_RSS ? 1 : 0;
679 
680 		if (i == 0)
681 			return DRV_NAME ":shared_IRQ";
682 
683 		return devm_kasprintf(dev, GFP_KERNEL,
684 				      DRV_NAME ":queue_%d", i + vec);
685 	}
686 	if (i == 0)
687 		return DRV_NAME ":default_queue";
688 
689 	if (i == trans_p->alloc_vecs - 1)
690 		return DRV_NAME ":exception";
691 
692 	return devm_kasprintf(dev, GFP_KERNEL,
693 			      DRV_NAME  ":queue_%d", i);
694 }
695 
696 static inline void iwl_enable_rfkill_int(struct iwl_trans *trans)
697 {
698 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
699 
700 	IWL_DEBUG_ISR(trans, "Enabling rfkill interrupt\n");
701 	if (!trans_pcie->msix_enabled) {
702 		trans_pcie->inta_mask = CSR_INT_BIT_RF_KILL;
703 		iwl_write32(trans, CSR_INT_MASK, trans_pcie->inta_mask);
704 	} else {
705 		iwl_write32(trans, CSR_MSIX_FH_INT_MASK_AD,
706 			    trans_pcie->fh_init_mask);
707 		iwl_enable_hw_int_msk_msix(trans,
708 					   MSIX_HW_INT_CAUSES_REG_RF_KILL);
709 	}
710 
711 	if (trans->trans_cfg->device_family >= IWL_DEVICE_FAMILY_9000) {
712 		/*
713 		 * On 9000-series devices this bit isn't enabled by default, so
714 		 * when we power down the device we need set the bit to allow it
715 		 * to wake up the PCI-E bus for RF-kill interrupts.
716 		 */
717 		iwl_set_bit(trans, CSR_GP_CNTRL,
718 			    CSR_GP_CNTRL_REG_FLAG_RFKILL_WAKE_L1A_EN);
719 	}
720 }
721 
722 void iwl_pcie_handle_rfkill_irq(struct iwl_trans *trans);
723 
724 static inline bool iwl_is_rfkill_set(struct iwl_trans *trans)
725 {
726 	struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
727 
728 	lockdep_assert_held(&trans_pcie->mutex);
729 
730 	if (trans_pcie->debug_rfkill == 1)
731 		return true;
732 
733 	return !(iwl_read32(trans, CSR_GP_CNTRL) &
734 		CSR_GP_CNTRL_REG_FLAG_HW_RF_KILL_SW);
735 }
736 
737 static inline void __iwl_trans_pcie_set_bits_mask(struct iwl_trans *trans,
738 						  u32 reg, u32 mask, u32 value)
739 {
740 	u32 v;
741 
742 #ifdef CONFIG_IWLWIFI_DEBUG
743 	WARN_ON_ONCE(value & ~mask);
744 #endif
745 
746 	v = iwl_read32(trans, reg);
747 	v &= ~mask;
748 	v |= value;
749 	iwl_write32(trans, reg, v);
750 }
751 
752 static inline void __iwl_trans_pcie_clear_bit(struct iwl_trans *trans,
753 					      u32 reg, u32 mask)
754 {
755 	__iwl_trans_pcie_set_bits_mask(trans, reg, mask, 0);
756 }
757 
758 static inline void __iwl_trans_pcie_set_bit(struct iwl_trans *trans,
759 					    u32 reg, u32 mask)
760 {
761 	__iwl_trans_pcie_set_bits_mask(trans, reg, mask, mask);
762 }
763 
764 static inline bool iwl_pcie_dbg_on(struct iwl_trans *trans)
765 {
766 	return (trans->dbg.dest_tlv || iwl_trans_dbg_ini_valid(trans));
767 }
768 
769 void iwl_trans_pcie_rf_kill(struct iwl_trans *trans, bool state);
770 void iwl_trans_pcie_dump_regs(struct iwl_trans *trans);
771 
772 #ifdef CONFIG_IWLWIFI_DEBUGFS
773 void iwl_trans_pcie_dbgfs_register(struct iwl_trans *trans);
774 #else
775 static inline void iwl_trans_pcie_dbgfs_register(struct iwl_trans *trans) { }
776 #endif
777 
778 void iwl_pcie_rx_allocator_work(struct work_struct *data);
779 
780 /* common functions that are used by gen2 transport */
781 int iwl_pcie_gen2_apm_init(struct iwl_trans *trans);
782 void iwl_pcie_apm_config(struct iwl_trans *trans);
783 int iwl_pcie_prepare_card_hw(struct iwl_trans *trans);
784 void iwl_pcie_synchronize_irqs(struct iwl_trans *trans);
785 bool iwl_pcie_check_hw_rf_kill(struct iwl_trans *trans);
786 void iwl_trans_pcie_handle_stop_rfkill(struct iwl_trans *trans,
787 				       bool was_in_rfkill);
788 void iwl_pcie_apm_stop_master(struct iwl_trans *trans);
789 void iwl_pcie_conf_msix_hw(struct iwl_trans_pcie *trans_pcie);
790 int iwl_pcie_alloc_dma_ptr(struct iwl_trans *trans,
791 			   struct iwl_dma_ptr *ptr, size_t size);
792 void iwl_pcie_free_dma_ptr(struct iwl_trans *trans, struct iwl_dma_ptr *ptr);
793 void iwl_pcie_apply_destination(struct iwl_trans *trans);
794 
795 /* common functions that are used by gen3 transport */
796 void iwl_pcie_alloc_fw_monitor(struct iwl_trans *trans, u8 max_power);
797 
798 /* transport gen 2 exported functions */
799 int iwl_trans_pcie_gen2_start_fw(struct iwl_trans *trans,
800 				 const struct fw_img *fw, bool run_in_rfkill);
801 void iwl_trans_pcie_gen2_fw_alive(struct iwl_trans *trans, u32 scd_addr);
802 int iwl_trans_pcie_gen2_send_hcmd(struct iwl_trans *trans,
803 				  struct iwl_host_cmd *cmd);
804 void iwl_trans_pcie_gen2_stop_device(struct iwl_trans *trans);
805 void _iwl_trans_pcie_gen2_stop_device(struct iwl_trans *trans);
806 void iwl_pcie_d3_complete_suspend(struct iwl_trans *trans,
807 				  bool test, bool reset);
808 int iwl_pcie_gen2_enqueue_hcmd(struct iwl_trans *trans,
809 			       struct iwl_host_cmd *cmd);
810 int iwl_pcie_enqueue_hcmd(struct iwl_trans *trans,
811 			  struct iwl_host_cmd *cmd);
812 #endif /* __iwl_trans_int_pcie_h__ */
813