1 // SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause
2 /*
3 * Copyright (C) 2003-2014, 2018-2024 Intel Corporation
4 * Copyright (C) 2013-2015 Intel Mobile Communications GmbH
5 * Copyright (C) 2016-2017 Intel Deutschland GmbH
6 */
7 #include <linux/sched.h>
8 #include <linux/wait.h>
9 #include <linux/gfp.h>
10
11 #include "iwl-prph.h"
12 #include "iwl-io.h"
13 #include "internal.h"
14 #include "iwl-op-mode.h"
15 #include "pcie/iwl-context-info-v2.h"
16 #include "fw/dbg.h"
17
18 /******************************************************************************
19 *
20 * RX path functions
21 *
22 ******************************************************************************/
23
24 /*
25 * Rx theory of operation
26 *
27 * Driver allocates a circular buffer of Receive Buffer Descriptors (RBDs),
28 * each of which point to Receive Buffers to be filled by the NIC. These get
29 * used not only for Rx frames, but for any command response or notification
30 * from the NIC. The driver and NIC manage the Rx buffers by means
31 * of indexes into the circular buffer.
32 *
33 * Rx Queue Indexes
34 * The host/firmware share two index registers for managing the Rx buffers.
35 *
36 * The READ index maps to the first position that the firmware may be writing
37 * to -- the driver can read up to (but not including) this position and get
38 * good data.
39 * The READ index is managed by the firmware once the card is enabled.
40 *
41 * The WRITE index maps to the last position the driver has read from -- the
42 * position preceding WRITE is the last slot the firmware can place a packet.
43 *
44 * The queue is empty (no good data) if WRITE = READ - 1, and is full if
45 * WRITE = READ.
46 *
47 * During initialization, the host sets up the READ queue position to the first
48 * INDEX position, and WRITE to the last (READ - 1 wrapped)
49 *
50 * When the firmware places a packet in a buffer, it will advance the READ index
51 * and fire the RX interrupt. The driver can then query the READ index and
52 * process as many packets as possible, moving the WRITE index forward as it
53 * resets the Rx queue buffers with new memory.
54 *
55 * The management in the driver is as follows:
56 * + A list of pre-allocated RBDs is stored in iwl->rxq->rx_free.
57 * When the interrupt handler is called, the request is processed.
58 * The page is either stolen - transferred to the upper layer
59 * or reused - added immediately to the iwl->rxq->rx_free list.
60 * + When the page is stolen - the driver updates the matching queue's used
61 * count, detaches the RBD and transfers it to the queue used list.
62 * When there are two used RBDs - they are transferred to the allocator empty
63 * list. Work is then scheduled for the allocator to start allocating
64 * eight buffers.
65 * When there are another 6 used RBDs - they are transferred to the allocator
66 * empty list and the driver tries to claim the pre-allocated buffers and
67 * add them to iwl->rxq->rx_free. If it fails - it continues to claim them
68 * until ready.
69 * When there are 8+ buffers in the free list - either from allocation or from
70 * 8 reused unstolen pages - restock is called to update the FW and indexes.
71 * + In order to make sure the allocator always has RBDs to use for allocation
72 * the allocator has initial pool in the size of num_queues*(8-2) - the
73 * maximum missing RBDs per allocation request (request posted with 2
74 * empty RBDs, there is no guarantee when the other 6 RBDs are supplied).
75 * The queues supplies the recycle of the rest of the RBDs.
76 * + A received packet is processed and handed to the kernel network stack,
77 * detached from the iwl->rxq. The driver 'processed' index is updated.
78 * + If there are no allocated buffers in iwl->rxq->rx_free,
79 * the READ INDEX is not incremented and iwl->status(RX_STALLED) is set.
80 * If there were enough free buffers and RX_STALLED is set it is cleared.
81 *
82 *
83 * Driver sequence:
84 *
85 * iwl_rxq_alloc() Allocates rx_free
86 * iwl_pcie_rx_replenish() Replenishes rx_free list from rx_used, and calls
87 * iwl_pcie_rxq_restock.
88 * Used only during initialization.
89 * iwl_pcie_rxq_restock() Moves available buffers from rx_free into Rx
90 * queue, updates firmware pointers, and updates
91 * the WRITE index.
92 * iwl_pcie_rx_allocator() Background work for allocating pages.
93 *
94 * -- enable interrupts --
95 * ISR - iwl_rx() Detach iwl_rx_mem_buffers from pool up to the
96 * READ INDEX, detaching the SKB from the pool.
97 * Moves the packet buffer from queue to rx_used.
98 * Posts and claims requests to the allocator.
99 * Calls iwl_pcie_rxq_restock to refill any empty
100 * slots.
101 *
102 * RBD life-cycle:
103 *
104 * Init:
105 * rxq.pool -> rxq.rx_used -> rxq.rx_free -> rxq.queue
106 *
107 * Regular Receive interrupt:
108 * Page Stolen:
109 * rxq.queue -> rxq.rx_used -> allocator.rbd_empty ->
110 * allocator.rbd_allocated -> rxq.rx_free -> rxq.queue
111 * Page not Stolen:
112 * rxq.queue -> rxq.rx_free -> rxq.queue
113 * ...
114 *
115 */
116
117 /*
118 * iwl_rxq_space - Return number of free slots available in queue.
119 */
iwl_rxq_space(const struct iwl_rxq * rxq)120 static int iwl_rxq_space(const struct iwl_rxq *rxq)
121 {
122 /* Make sure rx queue size is a power of 2 */
123 WARN_ON(rxq->queue_size & (rxq->queue_size - 1));
124
125 /*
126 * There can be up to (RX_QUEUE_SIZE - 1) free slots, to avoid ambiguity
127 * between empty and completely full queues.
128 * The following is equivalent to modulo by RX_QUEUE_SIZE and is well
129 * defined for negative dividends.
130 */
131 return (rxq->read - rxq->write - 1) & (rxq->queue_size - 1);
132 }
133
134 /*
135 * iwl_dma_addr2rbd_ptr - convert a DMA address to a uCode read buffer ptr
136 */
iwl_pcie_dma_addr2rbd_ptr(dma_addr_t dma_addr)137 static inline __le32 iwl_pcie_dma_addr2rbd_ptr(dma_addr_t dma_addr)
138 {
139 return cpu_to_le32((u32)(dma_addr >> 8));
140 }
141
142 /*
143 * iwl_pcie_rx_stop - stops the Rx DMA
144 */
iwl_pcie_rx_stop(struct iwl_trans * trans)145 int iwl_pcie_rx_stop(struct iwl_trans *trans)
146 {
147 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_AX210) {
148 /* TODO: remove this once fw does it */
149 iwl_write_umac_prph(trans, RFH_RXF_DMA_CFG_AX210, 0);
150 return iwl_poll_umac_prph_bit(trans, RFH_GEN_STATUS_AX210,
151 RXF_DMA_IDLE, RXF_DMA_IDLE, 1000);
152 } else if (trans->mac_cfg->mq_rx_supported) {
153 iwl_write_prph(trans, RFH_RXF_DMA_CFG, 0);
154 return iwl_poll_prph_bit(trans, RFH_GEN_STATUS,
155 RXF_DMA_IDLE, RXF_DMA_IDLE, 1000);
156 } else {
157 iwl_write_direct32(trans, FH_MEM_RCSR_CHNL0_CONFIG_REG, 0);
158 return iwl_poll_direct_bit(trans, FH_MEM_RSSR_RX_STATUS_REG,
159 FH_RSSR_CHNL0_RX_STATUS_CHNL_IDLE,
160 1000);
161 }
162 }
163
164 /*
165 * iwl_pcie_rxq_inc_wr_ptr - Update the write pointer for the RX queue
166 */
iwl_pcie_rxq_inc_wr_ptr(struct iwl_trans * trans,struct iwl_rxq * rxq)167 static void iwl_pcie_rxq_inc_wr_ptr(struct iwl_trans *trans,
168 struct iwl_rxq *rxq)
169 {
170 u32 reg;
171
172 lockdep_assert_held(&rxq->lock);
173
174 /*
175 * explicitly wake up the NIC if:
176 * 1. shadow registers aren't enabled
177 * 2. there is a chance that the NIC is asleep
178 */
179 if (!trans->mac_cfg->base->shadow_reg_enable &&
180 test_bit(STATUS_TPOWER_PMI, &trans->status)) {
181 reg = iwl_read32(trans, CSR_UCODE_DRV_GP1);
182
183 if (reg & CSR_UCODE_DRV_GP1_BIT_MAC_SLEEP) {
184 IWL_DEBUG_INFO(trans, "Rx queue requesting wakeup, GP1 = 0x%x\n",
185 reg);
186 iwl_set_bit(trans, CSR_GP_CNTRL,
187 CSR_GP_CNTRL_REG_FLAG_MAC_ACCESS_REQ);
188 rxq->need_update = true;
189 return;
190 }
191 }
192
193 rxq->write_actual = round_down(rxq->write, 8);
194 if (!trans->mac_cfg->mq_rx_supported)
195 iwl_write32(trans, FH_RSCSR_CHNL0_WPTR, rxq->write_actual);
196 else if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_BZ)
197 iwl_write32(trans, HBUS_TARG_WRPTR, rxq->write_actual |
198 HBUS_TARG_WRPTR_RX_Q(rxq->id));
199 else
200 iwl_write32(trans, RFH_Q_FRBDCB_WIDX_TRG(rxq->id),
201 rxq->write_actual);
202 }
203
iwl_pcie_rxq_check_wrptr(struct iwl_trans * trans)204 static void iwl_pcie_rxq_check_wrptr(struct iwl_trans *trans)
205 {
206 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
207 int i;
208
209 for (i = 0; i < trans->info.num_rxqs; i++) {
210 struct iwl_rxq *rxq = &trans_pcie->rxq[i];
211
212 if (!rxq->need_update)
213 continue;
214 spin_lock_bh(&rxq->lock);
215 iwl_pcie_rxq_inc_wr_ptr(trans, rxq);
216 rxq->need_update = false;
217 spin_unlock_bh(&rxq->lock);
218 }
219 }
220
iwl_pcie_restock_bd(struct iwl_trans * trans,struct iwl_rxq * rxq,struct iwl_rx_mem_buffer * rxb)221 static void iwl_pcie_restock_bd(struct iwl_trans *trans,
222 struct iwl_rxq *rxq,
223 struct iwl_rx_mem_buffer *rxb)
224 {
225 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_AX210) {
226 struct iwl_rx_transfer_desc *bd = rxq->bd;
227
228 BUILD_BUG_ON(sizeof(*bd) != 2 * sizeof(u64));
229
230 bd[rxq->write].addr = cpu_to_le64(rxb->page_dma);
231 bd[rxq->write].rbid = cpu_to_le16(rxb->vid);
232 } else {
233 __le64 *bd = rxq->bd;
234
235 bd[rxq->write] = cpu_to_le64(rxb->page_dma | rxb->vid);
236 }
237
238 IWL_DEBUG_RX(trans, "Assigned virtual RB ID %u to queue %d index %d\n",
239 (u32)rxb->vid, rxq->id, rxq->write);
240 }
241
242 /*
243 * iwl_pcie_rxmq_restock - restock implementation for multi-queue rx
244 */
iwl_pcie_rxmq_restock(struct iwl_trans * trans,struct iwl_rxq * rxq)245 static void iwl_pcie_rxmq_restock(struct iwl_trans *trans,
246 struct iwl_rxq *rxq)
247 {
248 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
249 struct iwl_rx_mem_buffer *rxb;
250
251 /*
252 * If the device isn't enabled - no need to try to add buffers...
253 * This can happen when we stop the device and still have an interrupt
254 * pending. We stop the APM before we sync the interrupts because we
255 * have to (see comment there). On the other hand, since the APM is
256 * stopped, we cannot access the HW (in particular not prph).
257 * So don't try to restock if the APM has been already stopped.
258 */
259 if (!test_bit(STATUS_DEVICE_ENABLED, &trans->status))
260 return;
261
262 spin_lock_bh(&rxq->lock);
263 while (rxq->free_count) {
264 /* Get next free Rx buffer, remove from free list */
265 rxb = list_first_entry(&rxq->rx_free, struct iwl_rx_mem_buffer,
266 list);
267 list_del(&rxb->list);
268 rxb->invalid = false;
269 /* some low bits are expected to be unset (depending on hw) */
270 WARN_ON(rxb->page_dma & trans_pcie->supported_dma_mask);
271 /* Point to Rx buffer via next RBD in circular buffer */
272 iwl_pcie_restock_bd(trans, rxq, rxb);
273 rxq->write = (rxq->write + 1) & (rxq->queue_size - 1);
274 rxq->free_count--;
275 }
276 spin_unlock_bh(&rxq->lock);
277
278 /*
279 * If we've added more space for the firmware to place data, tell it.
280 * Increment device's write pointer in multiples of 8.
281 */
282 if (rxq->write_actual != (rxq->write & ~0x7)) {
283 spin_lock_bh(&rxq->lock);
284 iwl_pcie_rxq_inc_wr_ptr(trans, rxq);
285 spin_unlock_bh(&rxq->lock);
286 }
287 }
288
289 /*
290 * iwl_pcie_rxsq_restock - restock implementation for single queue rx
291 */
iwl_pcie_rxsq_restock(struct iwl_trans * trans,struct iwl_rxq * rxq)292 static void iwl_pcie_rxsq_restock(struct iwl_trans *trans,
293 struct iwl_rxq *rxq)
294 {
295 struct iwl_rx_mem_buffer *rxb;
296
297 /*
298 * If the device isn't enabled - not need to try to add buffers...
299 * This can happen when we stop the device and still have an interrupt
300 * pending. We stop the APM before we sync the interrupts because we
301 * have to (see comment there). On the other hand, since the APM is
302 * stopped, we cannot access the HW (in particular not prph).
303 * So don't try to restock if the APM has been already stopped.
304 */
305 if (!test_bit(STATUS_DEVICE_ENABLED, &trans->status))
306 return;
307
308 spin_lock_bh(&rxq->lock);
309 while ((iwl_rxq_space(rxq) > 0) && (rxq->free_count)) {
310 __le32 *bd = (__le32 *)rxq->bd;
311 /* The overwritten rxb must be a used one */
312 rxb = rxq->queue[rxq->write];
313 BUG_ON(rxb && rxb->page);
314
315 /* Get next free Rx buffer, remove from free list */
316 rxb = list_first_entry(&rxq->rx_free, struct iwl_rx_mem_buffer,
317 list);
318 list_del(&rxb->list);
319 rxb->invalid = false;
320
321 /* Point to Rx buffer via next RBD in circular buffer */
322 bd[rxq->write] = iwl_pcie_dma_addr2rbd_ptr(rxb->page_dma);
323 rxq->queue[rxq->write] = rxb;
324 rxq->write = (rxq->write + 1) & RX_QUEUE_MASK;
325 rxq->free_count--;
326 }
327 spin_unlock_bh(&rxq->lock);
328
329 /* If we've added more space for the firmware to place data, tell it.
330 * Increment device's write pointer in multiples of 8. */
331 if (rxq->write_actual != (rxq->write & ~0x7)) {
332 spin_lock_bh(&rxq->lock);
333 iwl_pcie_rxq_inc_wr_ptr(trans, rxq);
334 spin_unlock_bh(&rxq->lock);
335 }
336 }
337
338 /*
339 * iwl_pcie_rxq_restock - refill RX queue from pre-allocated pool
340 *
341 * If there are slots in the RX queue that need to be restocked,
342 * and we have free pre-allocated buffers, fill the ranks as much
343 * as we can, pulling from rx_free.
344 *
345 * This moves the 'write' index forward to catch up with 'processed', and
346 * also updates the memory address in the firmware to reference the new
347 * target buffer.
348 */
349 static
iwl_pcie_rxq_restock(struct iwl_trans * trans,struct iwl_rxq * rxq)350 void iwl_pcie_rxq_restock(struct iwl_trans *trans, struct iwl_rxq *rxq)
351 {
352 if (trans->mac_cfg->mq_rx_supported)
353 iwl_pcie_rxmq_restock(trans, rxq);
354 else
355 iwl_pcie_rxsq_restock(trans, rxq);
356 }
357
358 /*
359 * iwl_pcie_rx_alloc_page - allocates and returns a page.
360 *
361 */
iwl_pcie_rx_alloc_page(struct iwl_trans * trans,u32 * offset,gfp_t priority)362 static struct page *iwl_pcie_rx_alloc_page(struct iwl_trans *trans,
363 u32 *offset, gfp_t priority)
364 {
365 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
366 unsigned int allocsize = PAGE_SIZE << trans_pcie->rx_page_order;
367 unsigned int rbsize = trans_pcie->rx_buf_bytes;
368 struct page *page;
369 gfp_t gfp_mask = priority;
370
371 if (trans_pcie->rx_page_order > 0)
372 gfp_mask |= __GFP_COMP;
373
374 if (trans_pcie->alloc_page) {
375 spin_lock_bh(&trans_pcie->alloc_page_lock);
376 /* recheck */
377 if (trans_pcie->alloc_page) {
378 *offset = trans_pcie->alloc_page_used;
379 page = trans_pcie->alloc_page;
380 trans_pcie->alloc_page_used += rbsize;
381 if (trans_pcie->alloc_page_used >= allocsize)
382 trans_pcie->alloc_page = NULL;
383 else
384 get_page(page);
385 spin_unlock_bh(&trans_pcie->alloc_page_lock);
386 return page;
387 }
388 spin_unlock_bh(&trans_pcie->alloc_page_lock);
389 }
390
391 /* Alloc a new receive buffer */
392 page = alloc_pages(gfp_mask, trans_pcie->rx_page_order);
393 if (!page) {
394 if (net_ratelimit())
395 IWL_DEBUG_INFO(trans, "alloc_pages failed, order: %d\n",
396 trans_pcie->rx_page_order);
397 /*
398 * Issue an error if we don't have enough pre-allocated
399 * buffers.
400 */
401 if (!(gfp_mask & __GFP_NOWARN) && net_ratelimit())
402 IWL_CRIT(trans,
403 "Failed to alloc_pages\n");
404 return NULL;
405 }
406
407 if (2 * rbsize <= allocsize) {
408 spin_lock_bh(&trans_pcie->alloc_page_lock);
409 if (!trans_pcie->alloc_page) {
410 get_page(page);
411 trans_pcie->alloc_page = page;
412 trans_pcie->alloc_page_used = rbsize;
413 }
414 spin_unlock_bh(&trans_pcie->alloc_page_lock);
415 }
416
417 *offset = 0;
418 return page;
419 }
420
421 /*
422 * iwl_pcie_rxq_alloc_rbs - allocate a page for each used RBD
423 *
424 * A used RBD is an Rx buffer that has been given to the stack. To use it again
425 * a page must be allocated and the RBD must point to the page. This function
426 * doesn't change the HW pointer but handles the list of pages that is used by
427 * iwl_pcie_rxq_restock. The latter function will update the HW to use the newly
428 * allocated buffers.
429 */
iwl_pcie_rxq_alloc_rbs(struct iwl_trans * trans,gfp_t priority,struct iwl_rxq * rxq)430 void iwl_pcie_rxq_alloc_rbs(struct iwl_trans *trans, gfp_t priority,
431 struct iwl_rxq *rxq)
432 {
433 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
434 struct iwl_rx_mem_buffer *rxb;
435 struct page *page;
436
437 while (1) {
438 unsigned int offset;
439
440 spin_lock_bh(&rxq->lock);
441 if (list_empty(&rxq->rx_used)) {
442 spin_unlock_bh(&rxq->lock);
443 return;
444 }
445 spin_unlock_bh(&rxq->lock);
446
447 page = iwl_pcie_rx_alloc_page(trans, &offset, priority);
448 if (!page)
449 return;
450
451 spin_lock_bh(&rxq->lock);
452
453 if (list_empty(&rxq->rx_used)) {
454 spin_unlock_bh(&rxq->lock);
455 __free_pages(page, trans_pcie->rx_page_order);
456 return;
457 }
458 rxb = list_first_entry(&rxq->rx_used, struct iwl_rx_mem_buffer,
459 list);
460 list_del(&rxb->list);
461 spin_unlock_bh(&rxq->lock);
462
463 BUG_ON(rxb->page);
464 rxb->page = page;
465 rxb->offset = offset;
466 /* Get physical address of the RB */
467 rxb->page_dma =
468 dma_map_page(trans->dev, page, rxb->offset,
469 trans_pcie->rx_buf_bytes,
470 DMA_FROM_DEVICE);
471 if (dma_mapping_error(trans->dev, rxb->page_dma)) {
472 rxb->page = NULL;
473 spin_lock_bh(&rxq->lock);
474 list_add(&rxb->list, &rxq->rx_used);
475 spin_unlock_bh(&rxq->lock);
476 __free_pages(page, trans_pcie->rx_page_order);
477 return;
478 }
479
480 spin_lock_bh(&rxq->lock);
481
482 list_add_tail(&rxb->list, &rxq->rx_free);
483 rxq->free_count++;
484
485 spin_unlock_bh(&rxq->lock);
486 }
487 }
488
iwl_pcie_free_rbs_pool(struct iwl_trans * trans)489 void iwl_pcie_free_rbs_pool(struct iwl_trans *trans)
490 {
491 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
492 int i;
493
494 if (!trans_pcie->rx_pool)
495 return;
496
497 for (i = 0; i < RX_POOL_SIZE(trans_pcie->num_rx_bufs); i++) {
498 if (!trans_pcie->rx_pool[i].page)
499 continue;
500 dma_unmap_page(trans->dev, trans_pcie->rx_pool[i].page_dma,
501 trans_pcie->rx_buf_bytes, DMA_FROM_DEVICE);
502 __free_pages(trans_pcie->rx_pool[i].page,
503 trans_pcie->rx_page_order);
504 trans_pcie->rx_pool[i].page = NULL;
505 }
506 }
507
508 /*
509 * iwl_pcie_rx_allocator - Allocates pages in the background for RX queues
510 *
511 * Allocates for each received request 8 pages
512 * Called as a scheduled work item.
513 */
iwl_pcie_rx_allocator(struct iwl_trans * trans)514 static void iwl_pcie_rx_allocator(struct iwl_trans *trans)
515 {
516 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
517 struct iwl_rb_allocator *rba = &trans_pcie->rba;
518 struct list_head local_empty;
519 int pending = atomic_read(&rba->req_pending);
520
521 IWL_DEBUG_TPT(trans, "Pending allocation requests = %d\n", pending);
522
523 /* If we were scheduled - there is at least one request */
524 spin_lock_bh(&rba->lock);
525 /* swap out the rba->rbd_empty to a local list */
526 list_replace_init(&rba->rbd_empty, &local_empty);
527 spin_unlock_bh(&rba->lock);
528
529 while (pending) {
530 int i;
531 LIST_HEAD(local_allocated);
532 gfp_t gfp_mask = GFP_KERNEL;
533
534 /* Do not post a warning if there are only a few requests */
535 if (pending < RX_PENDING_WATERMARK)
536 gfp_mask |= __GFP_NOWARN;
537
538 for (i = 0; i < RX_CLAIM_REQ_ALLOC;) {
539 struct iwl_rx_mem_buffer *rxb;
540 struct page *page;
541
542 /* List should never be empty - each reused RBD is
543 * returned to the list, and initial pool covers any
544 * possible gap between the time the page is allocated
545 * to the time the RBD is added.
546 */
547 BUG_ON(list_empty(&local_empty));
548 /* Get the first rxb from the rbd list */
549 rxb = list_first_entry(&local_empty,
550 struct iwl_rx_mem_buffer, list);
551 BUG_ON(rxb->page);
552
553 /* Alloc a new receive buffer */
554 page = iwl_pcie_rx_alloc_page(trans, &rxb->offset,
555 gfp_mask);
556 if (!page)
557 continue;
558 rxb->page = page;
559
560 /* Get physical address of the RB */
561 rxb->page_dma = dma_map_page(trans->dev, page,
562 rxb->offset,
563 trans_pcie->rx_buf_bytes,
564 DMA_FROM_DEVICE);
565 if (dma_mapping_error(trans->dev, rxb->page_dma)) {
566 rxb->page = NULL;
567 __free_pages(page, trans_pcie->rx_page_order);
568 continue;
569 }
570
571 /* move the allocated entry to the out list */
572 list_move(&rxb->list, &local_allocated);
573 i++;
574 }
575
576 atomic_dec(&rba->req_pending);
577 pending--;
578
579 if (!pending) {
580 pending = atomic_read(&rba->req_pending);
581 if (pending)
582 IWL_DEBUG_TPT(trans,
583 "Got more pending allocation requests = %d\n",
584 pending);
585 }
586
587 spin_lock_bh(&rba->lock);
588 /* add the allocated rbds to the allocator allocated list */
589 list_splice_tail(&local_allocated, &rba->rbd_allocated);
590 /* get more empty RBDs for current pending requests */
591 list_splice_tail_init(&rba->rbd_empty, &local_empty);
592 spin_unlock_bh(&rba->lock);
593
594 atomic_inc(&rba->req_ready);
595
596 }
597
598 spin_lock_bh(&rba->lock);
599 /* return unused rbds to the allocator empty list */
600 list_splice_tail(&local_empty, &rba->rbd_empty);
601 spin_unlock_bh(&rba->lock);
602
603 IWL_DEBUG_TPT(trans, "%s, exit.\n", __func__);
604 }
605
606 /*
607 * iwl_pcie_rx_allocator_get - returns the pre-allocated pages
608 .*
609 .* Called by queue when the queue posted allocation request and
610 * has freed 8 RBDs in order to restock itself.
611 * This function directly moves the allocated RBs to the queue's ownership
612 * and updates the relevant counters.
613 */
iwl_pcie_rx_allocator_get(struct iwl_trans * trans,struct iwl_rxq * rxq)614 static void iwl_pcie_rx_allocator_get(struct iwl_trans *trans,
615 struct iwl_rxq *rxq)
616 {
617 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
618 struct iwl_rb_allocator *rba = &trans_pcie->rba;
619 int i;
620
621 lockdep_assert_held(&rxq->lock);
622
623 /*
624 * atomic_dec_if_positive returns req_ready - 1 for any scenario.
625 * If req_ready is 0 atomic_dec_if_positive will return -1 and this
626 * function will return early, as there are no ready requests.
627 * atomic_dec_if_positive will perofrm the *actual* decrement only if
628 * req_ready > 0, i.e. - there are ready requests and the function
629 * hands one request to the caller.
630 */
631 if (atomic_dec_if_positive(&rba->req_ready) < 0)
632 return;
633
634 spin_lock(&rba->lock);
635 for (i = 0; i < RX_CLAIM_REQ_ALLOC; i++) {
636 /* Get next free Rx buffer, remove it from free list */
637 struct iwl_rx_mem_buffer *rxb =
638 list_first_entry(&rba->rbd_allocated,
639 struct iwl_rx_mem_buffer, list);
640
641 list_move(&rxb->list, &rxq->rx_free);
642 }
643 spin_unlock(&rba->lock);
644
645 rxq->used_count -= RX_CLAIM_REQ_ALLOC;
646 rxq->free_count += RX_CLAIM_REQ_ALLOC;
647 }
648
iwl_pcie_rx_allocator_work(struct work_struct * data)649 void iwl_pcie_rx_allocator_work(struct work_struct *data)
650 {
651 struct iwl_rb_allocator *rba_p =
652 container_of(data, struct iwl_rb_allocator, rx_alloc);
653 struct iwl_trans_pcie *trans_pcie =
654 container_of(rba_p, struct iwl_trans_pcie, rba);
655
656 iwl_pcie_rx_allocator(trans_pcie->trans);
657 }
658
iwl_pcie_free_bd_size(struct iwl_trans * trans)659 static int iwl_pcie_free_bd_size(struct iwl_trans *trans)
660 {
661 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_AX210)
662 return sizeof(struct iwl_rx_transfer_desc);
663
664 return trans->mac_cfg->mq_rx_supported ?
665 sizeof(__le64) : sizeof(__le32);
666 }
667
iwl_pcie_used_bd_size(struct iwl_trans * trans)668 static int iwl_pcie_used_bd_size(struct iwl_trans *trans)
669 {
670 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_BZ)
671 return sizeof(struct iwl_rx_completion_desc_bz);
672
673 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_AX210)
674 return sizeof(struct iwl_rx_completion_desc);
675
676 return sizeof(__le32);
677 }
678
iwl_pcie_free_rxq_dma(struct iwl_trans * trans,struct iwl_rxq * rxq)679 static void iwl_pcie_free_rxq_dma(struct iwl_trans *trans,
680 struct iwl_rxq *rxq)
681 {
682 int free_size = iwl_pcie_free_bd_size(trans);
683
684 if (rxq->bd)
685 dma_free_coherent(trans->dev,
686 free_size * rxq->queue_size,
687 rxq->bd, rxq->bd_dma);
688 rxq->bd_dma = 0;
689 rxq->bd = NULL;
690
691 rxq->rb_stts_dma = 0;
692 rxq->rb_stts = NULL;
693
694 if (rxq->used_bd)
695 dma_free_coherent(trans->dev,
696 iwl_pcie_used_bd_size(trans) *
697 rxq->queue_size,
698 rxq->used_bd, rxq->used_bd_dma);
699 rxq->used_bd_dma = 0;
700 rxq->used_bd = NULL;
701 }
702
iwl_pcie_rb_stts_size(struct iwl_trans * trans)703 static size_t iwl_pcie_rb_stts_size(struct iwl_trans *trans)
704 {
705 bool use_rx_td = (trans->mac_cfg->device_family >=
706 IWL_DEVICE_FAMILY_AX210);
707
708 if (use_rx_td)
709 return sizeof(__le16);
710
711 return sizeof(struct iwl_rb_status);
712 }
713
iwl_pcie_alloc_rxq_dma(struct iwl_trans * trans,struct iwl_rxq * rxq)714 static int iwl_pcie_alloc_rxq_dma(struct iwl_trans *trans,
715 struct iwl_rxq *rxq)
716 {
717 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
718 size_t rb_stts_size = iwl_pcie_rb_stts_size(trans);
719 struct device *dev = trans->dev;
720 int i;
721 int free_size;
722
723 spin_lock_init(&rxq->lock);
724 if (trans->mac_cfg->mq_rx_supported)
725 rxq->queue_size = iwl_trans_get_num_rbds(trans);
726 else
727 rxq->queue_size = RX_QUEUE_SIZE;
728
729 free_size = iwl_pcie_free_bd_size(trans);
730
731 /*
732 * Allocate the circular buffer of Read Buffer Descriptors
733 * (RBDs)
734 */
735 rxq->bd = dma_alloc_coherent(dev, free_size * rxq->queue_size,
736 &rxq->bd_dma, GFP_KERNEL);
737 if (!rxq->bd)
738 goto err;
739
740 if (trans->mac_cfg->mq_rx_supported) {
741 rxq->used_bd = dma_alloc_coherent(dev,
742 iwl_pcie_used_bd_size(trans) *
743 rxq->queue_size,
744 &rxq->used_bd_dma,
745 GFP_KERNEL);
746 if (!rxq->used_bd)
747 goto err;
748 }
749
750 rxq->rb_stts = (u8 *)trans_pcie->base_rb_stts + rxq->id * rb_stts_size;
751 rxq->rb_stts_dma =
752 trans_pcie->base_rb_stts_dma + rxq->id * rb_stts_size;
753
754 return 0;
755
756 err:
757 for (i = 0; i < trans->info.num_rxqs; i++) {
758 struct iwl_rxq *rxq = &trans_pcie->rxq[i];
759
760 iwl_pcie_free_rxq_dma(trans, rxq);
761 }
762
763 return -ENOMEM;
764 }
765
iwl_pcie_rx_alloc(struct iwl_trans * trans)766 static int iwl_pcie_rx_alloc(struct iwl_trans *trans)
767 {
768 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
769 size_t rb_stts_size = iwl_pcie_rb_stts_size(trans);
770 struct iwl_rb_allocator *rba = &trans_pcie->rba;
771 int i, ret;
772
773 if (WARN_ON(trans_pcie->rxq))
774 return -EINVAL;
775
776 trans_pcie->rxq = kzalloc_objs(struct iwl_rxq, trans->info.num_rxqs);
777 trans_pcie->rx_pool = kzalloc_objs(trans_pcie->rx_pool[0],
778 RX_POOL_SIZE(trans_pcie->num_rx_bufs));
779 trans_pcie->global_table =
780 kzalloc_objs(trans_pcie->global_table[0],
781 RX_POOL_SIZE(trans_pcie->num_rx_bufs));
782 if (!trans_pcie->rxq || !trans_pcie->rx_pool ||
783 !trans_pcie->global_table) {
784 ret = -ENOMEM;
785 goto err;
786 }
787
788 spin_lock_init(&rba->lock);
789
790 /*
791 * Allocate the driver's pointer to receive buffer status.
792 * Allocate for all queues continuously (HW requirement).
793 */
794 trans_pcie->base_rb_stts =
795 dma_alloc_coherent(trans->dev,
796 rb_stts_size * trans->info.num_rxqs,
797 &trans_pcie->base_rb_stts_dma,
798 GFP_KERNEL);
799 if (!trans_pcie->base_rb_stts) {
800 ret = -ENOMEM;
801 goto err;
802 }
803
804 for (i = 0; i < trans->info.num_rxqs; i++) {
805 struct iwl_rxq *rxq = &trans_pcie->rxq[i];
806
807 rxq->id = i;
808 ret = iwl_pcie_alloc_rxq_dma(trans, rxq);
809 if (ret)
810 goto err;
811 }
812 return 0;
813
814 err:
815 if (trans_pcie->base_rb_stts) {
816 dma_free_coherent(trans->dev,
817 rb_stts_size * trans->info.num_rxqs,
818 trans_pcie->base_rb_stts,
819 trans_pcie->base_rb_stts_dma);
820 trans_pcie->base_rb_stts = NULL;
821 trans_pcie->base_rb_stts_dma = 0;
822 }
823 kfree(trans_pcie->rx_pool);
824 trans_pcie->rx_pool = NULL;
825 kfree(trans_pcie->global_table);
826 trans_pcie->global_table = NULL;
827 kfree(trans_pcie->rxq);
828 trans_pcie->rxq = NULL;
829
830 return ret;
831 }
832
iwl_pcie_rx_hw_init(struct iwl_trans * trans,struct iwl_rxq * rxq)833 static void iwl_pcie_rx_hw_init(struct iwl_trans *trans, struct iwl_rxq *rxq)
834 {
835 u32 rb_size;
836 const u32 rfdnlog = RX_QUEUE_SIZE_LOG; /* 256 RBDs */
837
838 switch (trans->conf.rx_buf_size) {
839 case IWL_AMSDU_4K:
840 rb_size = FH_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_4K;
841 break;
842 case IWL_AMSDU_8K:
843 rb_size = FH_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_8K;
844 break;
845 case IWL_AMSDU_12K:
846 rb_size = FH_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_12K;
847 break;
848 default:
849 WARN_ON(1);
850 rb_size = FH_RCSR_RX_CONFIG_REG_VAL_RB_SIZE_4K;
851 }
852
853 if (!iwl_trans_grab_nic_access(trans))
854 return;
855
856 /* Stop Rx DMA */
857 iwl_write32(trans, FH_MEM_RCSR_CHNL0_CONFIG_REG, 0);
858 /* reset and flush pointers */
859 iwl_write32(trans, FH_MEM_RCSR_CHNL0_RBDCB_WPTR, 0);
860 iwl_write32(trans, FH_MEM_RCSR_CHNL0_FLUSH_RB_REQ, 0);
861 iwl_write32(trans, FH_RSCSR_CHNL0_RDPTR, 0);
862
863 /* Reset driver's Rx queue write index */
864 iwl_write32(trans, FH_RSCSR_CHNL0_RBDCB_WPTR_REG, 0);
865
866 /* Tell device where to find RBD circular buffer in DRAM */
867 iwl_write32(trans, FH_RSCSR_CHNL0_RBDCB_BASE_REG,
868 (u32)(rxq->bd_dma >> 8));
869
870 /* Tell device where in DRAM to update its Rx status */
871 iwl_write32(trans, FH_RSCSR_CHNL0_STTS_WPTR_REG,
872 rxq->rb_stts_dma >> 4);
873
874 /* Enable Rx DMA
875 * FH_RCSR_CHNL0_RX_IGNORE_RXF_EMPTY is set because of HW bug in
876 * the credit mechanism in 5000 HW RX FIFO
877 * Direct rx interrupts to hosts
878 * Rx buffer size 4 or 8k or 12k
879 * RB timeout 0x10
880 * 256 RBDs
881 */
882 iwl_write32(trans, FH_MEM_RCSR_CHNL0_CONFIG_REG,
883 FH_RCSR_RX_CONFIG_CHNL_EN_ENABLE_VAL |
884 FH_RCSR_CHNL0_RX_IGNORE_RXF_EMPTY |
885 FH_RCSR_CHNL0_RX_CONFIG_IRQ_DEST_INT_HOST_VAL |
886 rb_size |
887 (RX_RB_TIMEOUT << FH_RCSR_RX_CONFIG_REG_IRQ_RBTH_POS) |
888 (rfdnlog << FH_RCSR_RX_CONFIG_RBDCB_SIZE_POS));
889
890 iwl_trans_release_nic_access(trans);
891
892 /* Set interrupt coalescing timer to default (2048 usecs) */
893 iwl_write8(trans, CSR_INT_COALESCING, IWL_HOST_INT_TIMEOUT_DEF);
894
895 /* W/A for interrupt coalescing bug in 7260 and 3160 */
896 if (trans->cfg->host_interrupt_operation_mode)
897 iwl_set_bit(trans, CSR_INT_COALESCING, IWL_HOST_INT_OPER_MODE);
898 }
899
iwl_pcie_rx_mq_hw_init(struct iwl_trans * trans)900 static void iwl_pcie_rx_mq_hw_init(struct iwl_trans *trans)
901 {
902 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
903 u32 rb_size, enabled = 0;
904 int i;
905
906 switch (trans->conf.rx_buf_size) {
907 case IWL_AMSDU_2K:
908 rb_size = RFH_RXF_DMA_RB_SIZE_2K;
909 break;
910 case IWL_AMSDU_4K:
911 rb_size = RFH_RXF_DMA_RB_SIZE_4K;
912 break;
913 case IWL_AMSDU_8K:
914 rb_size = RFH_RXF_DMA_RB_SIZE_8K;
915 break;
916 case IWL_AMSDU_12K:
917 rb_size = RFH_RXF_DMA_RB_SIZE_12K;
918 break;
919 default:
920 WARN_ON(1);
921 rb_size = RFH_RXF_DMA_RB_SIZE_4K;
922 }
923
924 if (!iwl_trans_grab_nic_access(trans))
925 return;
926
927 /* Stop Rx DMA */
928 iwl_write_prph_no_grab(trans, RFH_RXF_DMA_CFG, 0);
929 /* disable free amd used rx queue operation */
930 iwl_write_prph_no_grab(trans, RFH_RXF_RXQ_ACTIVE, 0);
931
932 for (i = 0; i < trans->info.num_rxqs; i++) {
933 /* Tell device where to find RBD free table in DRAM */
934 iwl_write_prph64_no_grab(trans,
935 RFH_Q_FRBDCB_BA_LSB(i),
936 trans_pcie->rxq[i].bd_dma);
937 /* Tell device where to find RBD used table in DRAM */
938 iwl_write_prph64_no_grab(trans,
939 RFH_Q_URBDCB_BA_LSB(i),
940 trans_pcie->rxq[i].used_bd_dma);
941 /* Tell device where in DRAM to update its Rx status */
942 iwl_write_prph64_no_grab(trans,
943 RFH_Q_URBD_STTS_WPTR_LSB(i),
944 trans_pcie->rxq[i].rb_stts_dma);
945 /* Reset device indice tables */
946 iwl_write_prph_no_grab(trans, RFH_Q_FRBDCB_WIDX(i), 0);
947 iwl_write_prph_no_grab(trans, RFH_Q_FRBDCB_RIDX(i), 0);
948 iwl_write_prph_no_grab(trans, RFH_Q_URBDCB_WIDX(i), 0);
949
950 enabled |= BIT(i) | BIT(i + 16);
951 }
952
953 /*
954 * Enable Rx DMA
955 * Rx buffer size 4 or 8k or 12k
956 * Min RB size 4 or 8
957 * Drop frames that exceed RB size
958 * 512 RBDs
959 */
960 iwl_write_prph_no_grab(trans, RFH_RXF_DMA_CFG,
961 RFH_DMA_EN_ENABLE_VAL | rb_size |
962 RFH_RXF_DMA_MIN_RB_4_8 |
963 RFH_RXF_DMA_DROP_TOO_LARGE_MASK |
964 RFH_RXF_DMA_RBDCB_SIZE_512);
965
966 /*
967 * Activate DMA snooping.
968 * Set RX DMA chunk size to 64B for IOSF and 128B for PCIe
969 * Default queue is 0
970 */
971 iwl_write_prph_no_grab(trans, RFH_GEN_CFG,
972 RFH_GEN_CFG_RFH_DMA_SNOOP |
973 RFH_GEN_CFG_VAL(DEFAULT_RXQ_NUM, 0) |
974 RFH_GEN_CFG_SERVICE_DMA_SNOOP |
975 RFH_GEN_CFG_VAL(RB_CHUNK_SIZE,
976 trans->mac_cfg->integrated ?
977 RFH_GEN_CFG_RB_CHUNK_SIZE_64 :
978 RFH_GEN_CFG_RB_CHUNK_SIZE_128));
979 /* Enable the relevant rx queues */
980 iwl_write_prph_no_grab(trans, RFH_RXF_RXQ_ACTIVE, enabled);
981
982 iwl_trans_release_nic_access(trans);
983
984 /* Set interrupt coalescing timer to default (2048 usecs) */
985 iwl_write8(trans, CSR_INT_COALESCING, IWL_HOST_INT_TIMEOUT_DEF);
986 }
987
iwl_pcie_rx_init_rxb_lists(struct iwl_rxq * rxq)988 void iwl_pcie_rx_init_rxb_lists(struct iwl_rxq *rxq)
989 {
990 lockdep_assert_held(&rxq->lock);
991
992 INIT_LIST_HEAD(&rxq->rx_free);
993 INIT_LIST_HEAD(&rxq->rx_used);
994 rxq->free_count = 0;
995 rxq->used_count = 0;
996 }
997
998 static int iwl_pcie_rx_handle(struct iwl_trans *trans, int queue, int budget);
999
iwl_netdev_to_trans_pcie(struct net_device * dev)1000 static inline struct iwl_trans_pcie *iwl_netdev_to_trans_pcie(struct net_device *dev)
1001 {
1002 return *(struct iwl_trans_pcie **)netdev_priv(dev);
1003 }
1004
iwl_pcie_napi_poll(struct napi_struct * napi,int budget)1005 static int iwl_pcie_napi_poll(struct napi_struct *napi, int budget)
1006 {
1007 struct iwl_rxq *rxq = container_of(napi, struct iwl_rxq, napi);
1008 struct iwl_trans_pcie *trans_pcie;
1009 struct iwl_trans *trans;
1010 int ret;
1011
1012 trans_pcie = iwl_netdev_to_trans_pcie(napi->dev);
1013 trans = trans_pcie->trans;
1014
1015 ret = iwl_pcie_rx_handle(trans, rxq->id, budget);
1016
1017 IWL_DEBUG_ISR(trans, "[%d] handled %d, budget %d\n",
1018 rxq->id, ret, budget);
1019
1020 if (ret < budget) {
1021 spin_lock(&trans_pcie->irq_lock);
1022 if (test_bit(STATUS_INT_ENABLED, &trans->status))
1023 _iwl_enable_interrupts(trans);
1024 spin_unlock(&trans_pcie->irq_lock);
1025
1026 napi_complete_done(&rxq->napi, ret);
1027 }
1028
1029 return ret;
1030 }
1031
iwl_pcie_napi_poll_msix(struct napi_struct * napi,int budget)1032 static int iwl_pcie_napi_poll_msix(struct napi_struct *napi, int budget)
1033 {
1034 struct iwl_rxq *rxq = container_of(napi, struct iwl_rxq, napi);
1035 struct iwl_trans_pcie *trans_pcie;
1036 struct iwl_trans *trans;
1037 int ret;
1038
1039 trans_pcie = iwl_netdev_to_trans_pcie(napi->dev);
1040 trans = trans_pcie->trans;
1041
1042 ret = iwl_pcie_rx_handle(trans, rxq->id, budget);
1043 IWL_DEBUG_ISR(trans, "[%d] handled %d, budget %d\n", rxq->id, ret,
1044 budget);
1045
1046 if (ret < budget) {
1047 int irq_line = rxq->id;
1048
1049 /* FIRST_RSS is shared with line 0 */
1050 if (trans_pcie->shared_vec_mask & IWL_SHARED_IRQ_FIRST_RSS &&
1051 rxq->id == 1)
1052 irq_line = 0;
1053
1054 spin_lock(&trans_pcie->irq_lock);
1055 iwl_pcie_clear_irq(trans, irq_line);
1056 spin_unlock(&trans_pcie->irq_lock);
1057
1058 napi_complete_done(&rxq->napi, ret);
1059 }
1060
1061 return ret;
1062 }
1063
iwl_pcie_rx_napi_sync(struct iwl_trans * trans)1064 void iwl_pcie_rx_napi_sync(struct iwl_trans *trans)
1065 {
1066 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1067 int i;
1068
1069 if (unlikely(!trans_pcie->rxq))
1070 return;
1071
1072 for (i = 0; i < trans->info.num_rxqs; i++) {
1073 struct iwl_rxq *rxq = &trans_pcie->rxq[i];
1074
1075 if (rxq && rxq->napi.poll)
1076 napi_synchronize(&rxq->napi);
1077 }
1078 }
1079
_iwl_pcie_rx_init(struct iwl_trans * trans)1080 static int _iwl_pcie_rx_init(struct iwl_trans *trans)
1081 {
1082 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1083 struct iwl_rxq *def_rxq;
1084 struct iwl_rb_allocator *rba = &trans_pcie->rba;
1085 int i, err, queue_size, allocator_pool_size, num_alloc;
1086
1087 if (!trans_pcie->rxq) {
1088 err = iwl_pcie_rx_alloc(trans);
1089 if (err)
1090 return err;
1091 }
1092 def_rxq = trans_pcie->rxq;
1093
1094 cancel_work_sync(&rba->rx_alloc);
1095
1096 spin_lock_bh(&rba->lock);
1097 atomic_set(&rba->req_pending, 0);
1098 atomic_set(&rba->req_ready, 0);
1099 INIT_LIST_HEAD(&rba->rbd_allocated);
1100 INIT_LIST_HEAD(&rba->rbd_empty);
1101 spin_unlock_bh(&rba->lock);
1102
1103 /* free all first - we overwrite everything here */
1104 iwl_pcie_free_rbs_pool(trans);
1105
1106 for (i = 0; i < RX_QUEUE_SIZE; i++)
1107 def_rxq->queue[i] = NULL;
1108
1109 for (i = 0; i < trans->info.num_rxqs; i++) {
1110 struct iwl_rxq *rxq = &trans_pcie->rxq[i];
1111
1112 spin_lock_bh(&rxq->lock);
1113 /*
1114 * Set read write pointer to reflect that we have processed
1115 * and used all buffers, but have not restocked the Rx queue
1116 * with fresh buffers
1117 */
1118 rxq->read = 0;
1119 rxq->write = 0;
1120 rxq->write_actual = 0;
1121 memset(rxq->rb_stts, 0,
1122 (trans->mac_cfg->device_family >=
1123 IWL_DEVICE_FAMILY_AX210) ?
1124 sizeof(__le16) : sizeof(struct iwl_rb_status));
1125
1126 iwl_pcie_rx_init_rxb_lists(rxq);
1127
1128 spin_unlock_bh(&rxq->lock);
1129
1130 if (!rxq->napi.poll) {
1131 int (*poll)(struct napi_struct *, int) = iwl_pcie_napi_poll;
1132
1133 if (trans_pcie->msix_enabled)
1134 poll = iwl_pcie_napi_poll_msix;
1135
1136 netif_napi_add(trans_pcie->napi_dev, &rxq->napi,
1137 poll);
1138 napi_enable(&rxq->napi);
1139 }
1140
1141 }
1142
1143 /* move the pool to the default queue and allocator ownerships */
1144 queue_size = trans->mac_cfg->mq_rx_supported ?
1145 trans_pcie->num_rx_bufs - 1 : RX_QUEUE_SIZE;
1146 allocator_pool_size = trans->info.num_rxqs *
1147 (RX_CLAIM_REQ_ALLOC - RX_POST_REQ_ALLOC);
1148 num_alloc = queue_size + allocator_pool_size;
1149
1150 for (i = 0; i < num_alloc; i++) {
1151 struct iwl_rx_mem_buffer *rxb = &trans_pcie->rx_pool[i];
1152
1153 if (i < allocator_pool_size)
1154 list_add(&rxb->list, &rba->rbd_empty);
1155 else
1156 list_add(&rxb->list, &def_rxq->rx_used);
1157 trans_pcie->global_table[i] = rxb;
1158 rxb->vid = (u16)(i + 1);
1159 rxb->invalid = true;
1160 }
1161
1162 iwl_pcie_rxq_alloc_rbs(trans, GFP_KERNEL, def_rxq);
1163
1164 return 0;
1165 }
1166
iwl_pcie_rx_init(struct iwl_trans * trans)1167 int iwl_pcie_rx_init(struct iwl_trans *trans)
1168 {
1169 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1170 int ret = _iwl_pcie_rx_init(trans);
1171
1172 if (ret)
1173 return ret;
1174
1175 if (trans->mac_cfg->mq_rx_supported)
1176 iwl_pcie_rx_mq_hw_init(trans);
1177 else
1178 iwl_pcie_rx_hw_init(trans, trans_pcie->rxq);
1179
1180 iwl_pcie_rxq_restock(trans, trans_pcie->rxq);
1181
1182 spin_lock_bh(&trans_pcie->rxq->lock);
1183 iwl_pcie_rxq_inc_wr_ptr(trans, trans_pcie->rxq);
1184 spin_unlock_bh(&trans_pcie->rxq->lock);
1185
1186 return 0;
1187 }
1188
iwl_pcie_gen2_rx_init(struct iwl_trans * trans)1189 int iwl_pcie_gen2_rx_init(struct iwl_trans *trans)
1190 {
1191 /* Set interrupt coalescing timer to default (2048 usecs) */
1192 iwl_write8(trans, CSR_INT_COALESCING, IWL_HOST_INT_TIMEOUT_DEF);
1193
1194 /*
1195 * We don't configure the RFH.
1196 * Restock will be done at alive, after firmware configured the RFH.
1197 */
1198 return _iwl_pcie_rx_init(trans);
1199 }
1200
iwl_pcie_rx_free(struct iwl_trans * trans)1201 void iwl_pcie_rx_free(struct iwl_trans *trans)
1202 {
1203 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1204 size_t rb_stts_size = iwl_pcie_rb_stts_size(trans);
1205 struct iwl_rb_allocator *rba = &trans_pcie->rba;
1206 int i;
1207
1208 /*
1209 * if rxq is NULL, it means that nothing has been allocated,
1210 * exit now
1211 */
1212 if (!trans_pcie->rxq) {
1213 IWL_DEBUG_INFO(trans, "Free NULL rx context\n");
1214 return;
1215 }
1216
1217 cancel_work_sync(&rba->rx_alloc);
1218
1219 iwl_pcie_free_rbs_pool(trans);
1220
1221 if (trans_pcie->base_rb_stts) {
1222 dma_free_coherent(trans->dev,
1223 rb_stts_size * trans->info.num_rxqs,
1224 trans_pcie->base_rb_stts,
1225 trans_pcie->base_rb_stts_dma);
1226 trans_pcie->base_rb_stts = NULL;
1227 trans_pcie->base_rb_stts_dma = 0;
1228 }
1229
1230 for (i = 0; i < trans->info.num_rxqs; i++) {
1231 struct iwl_rxq *rxq = &trans_pcie->rxq[i];
1232
1233 iwl_pcie_free_rxq_dma(trans, rxq);
1234
1235 if (rxq->napi.poll) {
1236 napi_disable(&rxq->napi);
1237 netif_napi_del(&rxq->napi);
1238 }
1239 }
1240 kfree(trans_pcie->rx_pool);
1241 kfree(trans_pcie->global_table);
1242 kfree(trans_pcie->rxq);
1243
1244 if (trans_pcie->alloc_page)
1245 __free_pages(trans_pcie->alloc_page, trans_pcie->rx_page_order);
1246 }
1247
iwl_pcie_rx_move_to_allocator(struct iwl_rxq * rxq,struct iwl_rb_allocator * rba)1248 static void iwl_pcie_rx_move_to_allocator(struct iwl_rxq *rxq,
1249 struct iwl_rb_allocator *rba)
1250 {
1251 spin_lock(&rba->lock);
1252 list_splice_tail_init(&rxq->rx_used, &rba->rbd_empty);
1253 spin_unlock(&rba->lock);
1254 }
1255
1256 /*
1257 * iwl_pcie_rx_reuse_rbd - Recycle used RBDs
1258 *
1259 * Called when a RBD can be reused. The RBD is transferred to the allocator.
1260 * When there are 2 empty RBDs - a request for allocation is posted
1261 */
iwl_pcie_rx_reuse_rbd(struct iwl_trans * trans,struct iwl_rx_mem_buffer * rxb,struct iwl_rxq * rxq,bool emergency)1262 static void iwl_pcie_rx_reuse_rbd(struct iwl_trans *trans,
1263 struct iwl_rx_mem_buffer *rxb,
1264 struct iwl_rxq *rxq, bool emergency)
1265 {
1266 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1267 struct iwl_rb_allocator *rba = &trans_pcie->rba;
1268
1269 /* Move the RBD to the used list, will be moved to allocator in batches
1270 * before claiming or posting a request*/
1271 list_add_tail(&rxb->list, &rxq->rx_used);
1272
1273 if (unlikely(emergency))
1274 return;
1275
1276 /* Count the allocator owned RBDs */
1277 rxq->used_count++;
1278
1279 /* If we have RX_POST_REQ_ALLOC new released rx buffers -
1280 * issue a request for allocator. Modulo RX_CLAIM_REQ_ALLOC is
1281 * used for the case we failed to claim RX_CLAIM_REQ_ALLOC,
1282 * after but we still need to post another request.
1283 */
1284 if ((rxq->used_count % RX_CLAIM_REQ_ALLOC) == RX_POST_REQ_ALLOC) {
1285 /* Move the 2 RBDs to the allocator ownership.
1286 Allocator has another 6 from pool for the request completion*/
1287 iwl_pcie_rx_move_to_allocator(rxq, rba);
1288
1289 atomic_inc(&rba->req_pending);
1290 queue_work(rba->alloc_wq, &rba->rx_alloc);
1291 }
1292 }
1293
iwl_pcie_rx_handle_rb(struct iwl_trans * trans,struct iwl_rxq * rxq,struct iwl_rx_mem_buffer * rxb,bool emergency,int i)1294 static void iwl_pcie_rx_handle_rb(struct iwl_trans *trans,
1295 struct iwl_rxq *rxq,
1296 struct iwl_rx_mem_buffer *rxb,
1297 bool emergency,
1298 int i)
1299 {
1300 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1301 struct iwl_txq *txq = trans_pcie->txqs.txq[trans->conf.cmd_queue];
1302 bool page_stolen = false;
1303 int max_len = trans_pcie->rx_buf_bytes;
1304 u32 offset = 0;
1305
1306 if (WARN_ON(!rxb))
1307 return;
1308
1309 dma_unmap_page(trans->dev, rxb->page_dma, max_len, DMA_FROM_DEVICE);
1310
1311 while (offset + sizeof(u32) + sizeof(struct iwl_cmd_header) < max_len) {
1312 struct iwl_rx_packet *pkt;
1313 bool reclaim;
1314 int len;
1315 struct iwl_rx_cmd_buffer rxcb = {
1316 ._offset = rxb->offset + offset,
1317 ._rx_page_order = trans_pcie->rx_page_order,
1318 ._page = rxb->page,
1319 ._page_stolen = false,
1320 .truesize = max_len,
1321 };
1322
1323 pkt = rxb_addr(&rxcb);
1324
1325 if (pkt->len_n_flags == cpu_to_le32(FH_RSCSR_FRAME_INVALID)) {
1326 IWL_DEBUG_RX(trans,
1327 "Q %d: RB end marker at offset %d\n",
1328 rxq->id, offset);
1329 break;
1330 }
1331
1332 WARN((le32_to_cpu(pkt->len_n_flags) & FH_RSCSR_RXQ_MASK) >>
1333 FH_RSCSR_RXQ_POS != rxq->id,
1334 "frame on invalid queue - is on %d and indicates %d\n",
1335 rxq->id,
1336 (le32_to_cpu(pkt->len_n_flags) & FH_RSCSR_RXQ_MASK) >>
1337 FH_RSCSR_RXQ_POS);
1338
1339 IWL_DEBUG_RX(trans,
1340 "Q %d: cmd at offset %d: %s (%.2x.%2x, seq 0x%x)\n",
1341 rxq->id, offset,
1342 iwl_get_cmd_string(trans,
1343 WIDE_ID(pkt->hdr.group_id, pkt->hdr.cmd)),
1344 pkt->hdr.group_id, pkt->hdr.cmd,
1345 le16_to_cpu(pkt->hdr.sequence));
1346
1347 len = iwl_rx_packet_len(pkt);
1348 len += sizeof(u32); /* account for status word */
1349
1350 offset += ALIGN(len, FH_RSCSR_FRAME_ALIGN);
1351
1352 /* check that what the device tells us made sense */
1353 if (len < sizeof(*pkt) || offset > max_len)
1354 break;
1355
1356 maybe_trace_iwlwifi_dev_rx(trans, pkt, len);
1357
1358 /* Reclaim a command buffer only if this packet is a response
1359 * to a (driver-originated) command.
1360 * If the packet (e.g. Rx frame) originated from uCode,
1361 * there is no command buffer to reclaim.
1362 * Ucode should set SEQ_RX_FRAME bit if ucode-originated,
1363 * but apparently a few don't get set; catch them here. */
1364 reclaim = !(pkt->hdr.sequence & SEQ_RX_FRAME);
1365 if (reclaim && !pkt->hdr.group_id) {
1366 int i;
1367
1368 for (i = 0; i < trans->conf.n_no_reclaim_cmds; i++) {
1369 if (trans->conf.no_reclaim_cmds[i] ==
1370 pkt->hdr.cmd) {
1371 reclaim = false;
1372 break;
1373 }
1374 }
1375 }
1376
1377 if (rxq->id == IWL_DEFAULT_RX_QUEUE)
1378 iwl_op_mode_rx(trans->op_mode, &rxq->napi,
1379 &rxcb);
1380 else
1381 iwl_op_mode_rx_rss(trans->op_mode, &rxq->napi,
1382 &rxcb, rxq->id);
1383
1384 /*
1385 * After here, we should always check rxcb._page_stolen,
1386 * if it is true then one of the handlers took the page.
1387 */
1388
1389 if (reclaim && txq) {
1390 u16 sequence = le16_to_cpu(pkt->hdr.sequence);
1391 int index = SEQ_TO_INDEX(sequence);
1392 int cmd_index = iwl_txq_get_cmd_index(txq, index);
1393
1394 kfree_sensitive(txq->entries[cmd_index].free_buf);
1395 txq->entries[cmd_index].free_buf = NULL;
1396
1397 /* Invoke any callbacks, transfer the buffer to caller,
1398 * and fire off the (possibly) blocking
1399 * iwl_trans_send_cmd()
1400 * as we reclaim the driver command queue */
1401 if (!rxcb._page_stolen)
1402 iwl_pcie_hcmd_complete(trans, &rxcb);
1403 else
1404 IWL_WARN(trans, "Claim null rxb?\n");
1405 }
1406
1407 page_stolen |= rxcb._page_stolen;
1408 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_AX210)
1409 break;
1410 }
1411
1412 /* page was stolen from us -- free our reference */
1413 if (page_stolen) {
1414 __free_pages(rxb->page, trans_pcie->rx_page_order);
1415 rxb->page = NULL;
1416 }
1417
1418 /* Reuse the page if possible. For notification packets and
1419 * SKBs that fail to Rx correctly, add them back into the
1420 * rx_free list for reuse later. */
1421 if (rxb->page != NULL) {
1422 rxb->page_dma =
1423 dma_map_page(trans->dev, rxb->page, rxb->offset,
1424 trans_pcie->rx_buf_bytes,
1425 DMA_FROM_DEVICE);
1426 if (dma_mapping_error(trans->dev, rxb->page_dma)) {
1427 /*
1428 * free the page(s) as well to not break
1429 * the invariant that the items on the used
1430 * list have no page(s)
1431 */
1432 __free_pages(rxb->page, trans_pcie->rx_page_order);
1433 rxb->page = NULL;
1434 iwl_pcie_rx_reuse_rbd(trans, rxb, rxq, emergency);
1435 } else {
1436 list_add_tail(&rxb->list, &rxq->rx_free);
1437 rxq->free_count++;
1438 }
1439 } else
1440 iwl_pcie_rx_reuse_rbd(trans, rxb, rxq, emergency);
1441 }
1442
iwl_pcie_get_rxb(struct iwl_trans * trans,struct iwl_rxq * rxq,int i,bool * join)1443 static struct iwl_rx_mem_buffer *iwl_pcie_get_rxb(struct iwl_trans *trans,
1444 struct iwl_rxq *rxq, int i,
1445 bool *join)
1446 {
1447 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1448 struct iwl_rx_mem_buffer *rxb;
1449 u16 vid;
1450
1451 BUILD_BUG_ON(sizeof(struct iwl_rx_completion_desc) != 32);
1452 BUILD_BUG_ON(sizeof(struct iwl_rx_completion_desc_bz) != 4);
1453
1454 if (!trans->mac_cfg->mq_rx_supported) {
1455 rxb = rxq->queue[i];
1456 rxq->queue[i] = NULL;
1457 return rxb;
1458 }
1459
1460 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_BZ) {
1461 struct iwl_rx_completion_desc_bz *cd = rxq->used_bd;
1462
1463 vid = le16_to_cpu(cd[i].rbid);
1464 *join = cd[i].flags & IWL_RX_CD_FLAGS_FRAGMENTED;
1465 } else if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_AX210) {
1466 struct iwl_rx_completion_desc *cd = rxq->used_bd;
1467
1468 vid = le16_to_cpu(cd[i].rbid);
1469 *join = cd[i].flags & IWL_RX_CD_FLAGS_FRAGMENTED;
1470 } else {
1471 __le32 *cd = rxq->used_bd;
1472
1473 vid = le32_to_cpu(cd[i]) & 0x0FFF; /* 12-bit VID */
1474 }
1475
1476 if (!vid || vid > RX_POOL_SIZE(trans_pcie->num_rx_bufs))
1477 goto out_err;
1478
1479 rxb = trans_pcie->global_table[vid - 1];
1480 if (rxb->invalid)
1481 goto out_err;
1482
1483 IWL_DEBUG_RX(trans, "Got virtual RB ID %u\n", (u32)rxb->vid);
1484
1485 rxb->invalid = true;
1486
1487 return rxb;
1488
1489 out_err:
1490 WARN(1, "Invalid rxb from HW %u\n", (u32)vid);
1491 iwl_force_nmi(trans);
1492 return NULL;
1493 }
1494
1495 /*
1496 * iwl_pcie_rx_handle - Main entry function for receiving responses from fw
1497 */
iwl_pcie_rx_handle(struct iwl_trans * trans,int queue,int budget)1498 static int iwl_pcie_rx_handle(struct iwl_trans *trans, int queue, int budget)
1499 {
1500 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1501 struct iwl_rxq *rxq;
1502 u32 r, i, count = 0, handled = 0;
1503 bool emergency = false;
1504
1505 if (WARN_ON_ONCE(!trans_pcie->rxq || !trans_pcie->rxq[queue].bd))
1506 return budget;
1507
1508 rxq = &trans_pcie->rxq[queue];
1509
1510 restart:
1511 spin_lock(&rxq->lock);
1512 /* uCode's read index (stored in shared DRAM) indicates the last Rx
1513 * buffer that the driver may process (last buffer filled by ucode). */
1514 r = iwl_get_closed_rb_stts(trans, rxq);
1515 i = rxq->read;
1516
1517 /* W/A 9000 device step A0 wrap-around bug */
1518 r &= (rxq->queue_size - 1);
1519
1520 /* Rx interrupt, but nothing sent from uCode */
1521 if (i == r)
1522 IWL_DEBUG_RX(trans, "Q %d: HW = SW = %d\n", rxq->id, r);
1523
1524 while (i != r && ++handled < budget) {
1525 struct iwl_rb_allocator *rba = &trans_pcie->rba;
1526 struct iwl_rx_mem_buffer *rxb;
1527 /* number of RBDs still waiting for page allocation */
1528 u32 rb_pending_alloc =
1529 atomic_read(&trans_pcie->rba.req_pending) *
1530 RX_CLAIM_REQ_ALLOC;
1531 bool join = false;
1532
1533 if (unlikely(rb_pending_alloc >= rxq->queue_size / 2 &&
1534 !emergency)) {
1535 iwl_pcie_rx_move_to_allocator(rxq, rba);
1536 emergency = true;
1537 IWL_DEBUG_TPT(trans,
1538 "RX path is in emergency. Pending allocations %d\n",
1539 rb_pending_alloc);
1540 }
1541
1542 IWL_DEBUG_RX(trans, "Q %d: HW = %d, SW = %d\n", rxq->id, r, i);
1543
1544 rxb = iwl_pcie_get_rxb(trans, rxq, i, &join);
1545 if (!rxb)
1546 goto out;
1547
1548 if (unlikely(join || rxq->next_rb_is_fragment)) {
1549 rxq->next_rb_is_fragment = join;
1550 /*
1551 * We can only get a multi-RB in the following cases:
1552 * - firmware issue, sending a too big notification
1553 * - sniffer mode with a large A-MSDU
1554 * - large MTU frames (>2k)
1555 * since the multi-RB functionality is limited to newer
1556 * hardware that cannot put multiple entries into a
1557 * single RB.
1558 *
1559 * Right now, the higher layers aren't set up to deal
1560 * with that, so discard all of these.
1561 */
1562 list_add_tail(&rxb->list, &rxq->rx_free);
1563 rxq->free_count++;
1564 } else {
1565 iwl_pcie_rx_handle_rb(trans, rxq, rxb, emergency, i);
1566 }
1567
1568 i = (i + 1) & (rxq->queue_size - 1);
1569
1570 /*
1571 * If we have RX_CLAIM_REQ_ALLOC released rx buffers -
1572 * try to claim the pre-allocated buffers from the allocator.
1573 * If not ready - will try to reclaim next time.
1574 * There is no need to reschedule work - allocator exits only
1575 * on success
1576 */
1577 if (rxq->used_count >= RX_CLAIM_REQ_ALLOC)
1578 iwl_pcie_rx_allocator_get(trans, rxq);
1579
1580 if (rxq->used_count % RX_CLAIM_REQ_ALLOC == 0 && !emergency) {
1581 /* Add the remaining empty RBDs for allocator use */
1582 iwl_pcie_rx_move_to_allocator(rxq, rba);
1583 } else if (emergency) {
1584 count++;
1585 if (count == 8) {
1586 count = 0;
1587 if (rb_pending_alloc < rxq->queue_size / 3) {
1588 IWL_DEBUG_TPT(trans,
1589 "RX path exited emergency. Pending allocations %d\n",
1590 rb_pending_alloc);
1591 emergency = false;
1592 }
1593
1594 rxq->read = i;
1595 spin_unlock(&rxq->lock);
1596 iwl_pcie_rxq_alloc_rbs(trans, GFP_ATOMIC, rxq);
1597 iwl_pcie_rxq_restock(trans, rxq);
1598 goto restart;
1599 }
1600 }
1601 }
1602 out:
1603 /* Backtrack one entry */
1604 rxq->read = i;
1605 spin_unlock(&rxq->lock);
1606
1607 /*
1608 * handle a case where in emergency there are some unallocated RBDs.
1609 * those RBDs are in the used list, but are not tracked by the queue's
1610 * used_count which counts allocator owned RBDs.
1611 * unallocated emergency RBDs must be allocated on exit, otherwise
1612 * when called again the function may not be in emergency mode and
1613 * they will be handed to the allocator with no tracking in the RBD
1614 * allocator counters, which will lead to them never being claimed back
1615 * by the queue.
1616 * by allocating them here, they are now in the queue free list, and
1617 * will be restocked by the next call of iwl_pcie_rxq_restock.
1618 */
1619 if (unlikely(emergency && count))
1620 iwl_pcie_rxq_alloc_rbs(trans, GFP_ATOMIC, rxq);
1621
1622 iwl_pcie_rxq_restock(trans, rxq);
1623
1624 return handled;
1625 }
1626
iwl_pcie_get_trans_pcie(struct msix_entry * entry)1627 static struct iwl_trans_pcie *iwl_pcie_get_trans_pcie(struct msix_entry *entry)
1628 {
1629 u8 queue = entry->entry;
1630 struct msix_entry *entries = entry - queue;
1631
1632 return container_of(entries, struct iwl_trans_pcie, msix_entries[0]);
1633 }
1634
1635 /*
1636 * iwl_pcie_rx_msix_handle - Main entry function for receiving responses from fw
1637 * This interrupt handler should be used with RSS queue only.
1638 */
iwl_pcie_irq_rx_msix_handler(int irq,void * dev_id)1639 irqreturn_t iwl_pcie_irq_rx_msix_handler(int irq, void *dev_id)
1640 {
1641 struct msix_entry *entry = dev_id;
1642 struct iwl_trans_pcie *trans_pcie = iwl_pcie_get_trans_pcie(entry);
1643 struct iwl_trans *trans = trans_pcie->trans;
1644 struct iwl_rxq *rxq;
1645
1646 trace_iwlwifi_dev_irq_msix(trans->dev, entry, false, 0, 0);
1647
1648 if (WARN_ON(entry->entry >= trans->info.num_rxqs))
1649 return IRQ_NONE;
1650
1651 if (!trans_pcie->rxq) {
1652 if (net_ratelimit())
1653 IWL_ERR(trans,
1654 "[%d] Got MSI-X interrupt before we have Rx queues\n",
1655 entry->entry);
1656 return IRQ_NONE;
1657 }
1658
1659 rxq = &trans_pcie->rxq[entry->entry];
1660 lock_map_acquire(&trans->sync_cmd_lockdep_map);
1661 IWL_DEBUG_ISR(trans, "[%d] Got interrupt\n", entry->entry);
1662
1663 local_bh_disable();
1664 if (!napi_schedule(&rxq->napi))
1665 iwl_pcie_clear_irq(trans, entry->entry);
1666 local_bh_enable();
1667
1668 lock_map_release(&trans->sync_cmd_lockdep_map);
1669
1670 return IRQ_HANDLED;
1671 }
1672
1673 /*
1674 * iwl_pcie_irq_handle_error - called for HW or SW error interrupt from card
1675 */
iwl_pcie_irq_handle_error(struct iwl_trans * trans)1676 static void iwl_pcie_irq_handle_error(struct iwl_trans *trans)
1677 {
1678 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1679 int i;
1680
1681 /* W/A for WiFi/WiMAX coex and WiMAX own the RF */
1682 if (trans->cfg->internal_wimax_coex &&
1683 !trans->mac_cfg->base->apmg_not_supported &&
1684 (!(iwl_read_prph(trans, APMG_CLK_CTRL_REG) &
1685 APMS_CLK_VAL_MRB_FUNC_MODE) ||
1686 (iwl_read_prph(trans, APMG_PS_CTRL_REG) &
1687 APMG_PS_CTRL_VAL_RESET_REQ))) {
1688 clear_bit(STATUS_SYNC_HCMD_ACTIVE, &trans->status);
1689 iwl_op_mode_wimax_active(trans->op_mode);
1690 wake_up(&trans_pcie->wait_command_queue);
1691 return;
1692 }
1693
1694 for (i = 0; i < trans->mac_cfg->base->num_of_queues; i++) {
1695 if (!trans_pcie->txqs.txq[i])
1696 continue;
1697 timer_delete(&trans_pcie->txqs.txq[i]->stuck_timer);
1698 }
1699
1700 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_SC) {
1701 u32 val = iwl_read32(trans, CSR_IPC_STATE);
1702
1703 if (val & CSR_IPC_STATE_TOP_RESET_REQ) {
1704 IWL_ERR(trans, "FW requested TOP reset for FSEQ\n");
1705 trans->do_top_reset = 1;
1706 }
1707 }
1708
1709 /* The STATUS_FW_ERROR bit is set in this function. This must happen
1710 * before we wake up the command caller, to ensure a proper cleanup. */
1711 iwl_trans_fw_error(trans, IWL_ERR_TYPE_IRQ);
1712
1713 clear_bit(STATUS_SYNC_HCMD_ACTIVE, &trans->status);
1714 wake_up(&trans_pcie->wait_command_queue);
1715 }
1716
iwl_pcie_int_cause_non_ict(struct iwl_trans * trans)1717 static u32 iwl_pcie_int_cause_non_ict(struct iwl_trans *trans)
1718 {
1719 u32 inta;
1720
1721 lockdep_assert_held(&IWL_TRANS_GET_PCIE_TRANS(trans)->irq_lock);
1722
1723 trace_iwlwifi_dev_irq(trans->dev);
1724
1725 /* Discover which interrupts are active/pending */
1726 inta = iwl_read32(trans, CSR_INT);
1727
1728 /* the thread will service interrupts and re-enable them */
1729 return inta;
1730 }
1731
1732 /* a device (PCI-E) page is 4096 bytes long */
1733 #define ICT_SHIFT 12
1734 #define ICT_SIZE (1 << ICT_SHIFT)
1735 #define ICT_COUNT (ICT_SIZE / sizeof(u32))
1736
1737 /* interrupt handler using ict table, with this interrupt driver will
1738 * stop using INTA register to get device's interrupt, reading this register
1739 * is expensive, device will write interrupts in ICT dram table, increment
1740 * index then will fire interrupt to driver, driver will OR all ICT table
1741 * entries from current index up to table entry with 0 value. the result is
1742 * the interrupt we need to service, driver will set the entries back to 0 and
1743 * set index.
1744 */
iwl_pcie_int_cause_ict(struct iwl_trans * trans)1745 static u32 iwl_pcie_int_cause_ict(struct iwl_trans *trans)
1746 {
1747 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1748 u32 inta;
1749 u32 val = 0;
1750 u32 read;
1751
1752 trace_iwlwifi_dev_irq(trans->dev);
1753
1754 /* Ignore interrupt if there's nothing in NIC to service.
1755 * This may be due to IRQ shared with another device,
1756 * or due to sporadic interrupts thrown from our NIC. */
1757 read = le32_to_cpu(trans_pcie->ict_tbl[trans_pcie->ict_index]);
1758 trace_iwlwifi_dev_ict_read(trans->dev, trans_pcie->ict_index, read);
1759 if (!read)
1760 return 0;
1761
1762 /*
1763 * Collect all entries up to the first 0, starting from ict_index;
1764 * note we already read at ict_index.
1765 */
1766 do {
1767 val |= read;
1768 IWL_DEBUG_ISR(trans, "ICT index %d value 0x%08X\n",
1769 trans_pcie->ict_index, read);
1770 trans_pcie->ict_tbl[trans_pcie->ict_index] = 0;
1771 trans_pcie->ict_index =
1772 ((trans_pcie->ict_index + 1) & (ICT_COUNT - 1));
1773
1774 read = le32_to_cpu(trans_pcie->ict_tbl[trans_pcie->ict_index]);
1775 trace_iwlwifi_dev_ict_read(trans->dev, trans_pcie->ict_index,
1776 read);
1777 } while (read);
1778
1779 /* We should not get this value, just ignore it. */
1780 if (val == 0xffffffff)
1781 val = 0;
1782
1783 /*
1784 * this is a w/a for a h/w bug. the h/w bug may cause the Rx bit
1785 * (bit 15 before shifting it to 31) to clear when using interrupt
1786 * coalescing. fortunately, bits 18 and 19 stay set when this happens
1787 * so we use them to decide on the real state of the Rx bit.
1788 * In order words, bit 15 is set if bit 18 or bit 19 are set.
1789 */
1790 if (val & 0xC0000)
1791 val |= 0x8000;
1792
1793 inta = (0xff & val) | ((0xff00 & val) << 16);
1794 return inta;
1795 }
1796
iwl_pcie_handle_rfkill_irq(struct iwl_trans * trans,bool from_irq)1797 void iwl_pcie_handle_rfkill_irq(struct iwl_trans *trans, bool from_irq)
1798 {
1799 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1800 struct isr_statistics *isr_stats = &trans_pcie->isr_stats;
1801 bool hw_rfkill, prev, report;
1802
1803 mutex_lock(&trans_pcie->mutex);
1804 prev = test_bit(STATUS_RFKILL_OPMODE, &trans->status);
1805 hw_rfkill = iwl_is_rfkill_set(trans);
1806 if (hw_rfkill) {
1807 set_bit(STATUS_RFKILL_OPMODE, &trans->status);
1808 set_bit(STATUS_RFKILL_HW, &trans->status);
1809 }
1810 if (trans_pcie->opmode_down)
1811 report = hw_rfkill;
1812 else
1813 report = test_bit(STATUS_RFKILL_OPMODE, &trans->status);
1814
1815 IWL_WARN(trans, "RF_KILL bit toggled to %s.\n",
1816 hw_rfkill ? "disable radio" : "enable radio");
1817
1818 isr_stats->rfkill++;
1819
1820 if (prev != report)
1821 iwl_trans_pcie_rf_kill(trans, report, from_irq);
1822 mutex_unlock(&trans_pcie->mutex);
1823
1824 if (hw_rfkill) {
1825 if (test_and_clear_bit(STATUS_SYNC_HCMD_ACTIVE,
1826 &trans->status))
1827 IWL_DEBUG_RF_KILL(trans,
1828 "Rfkill while SYNC HCMD in flight\n");
1829 wake_up(&trans_pcie->wait_command_queue);
1830 } else {
1831 clear_bit(STATUS_RFKILL_HW, &trans->status);
1832 if (trans_pcie->opmode_down)
1833 clear_bit(STATUS_RFKILL_OPMODE, &trans->status);
1834 }
1835 }
1836
iwl_trans_pcie_handle_reset_interrupt(struct iwl_trans * trans)1837 static void iwl_trans_pcie_handle_reset_interrupt(struct iwl_trans *trans)
1838 {
1839 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1840 u32 state;
1841
1842 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_SC) {
1843 u32 val = iwl_read32(trans, CSR_IPC_STATE);
1844
1845 state = u32_get_bits(val, CSR_IPC_STATE_RESET);
1846 IWL_DEBUG_ISR(trans, "IPC state = 0x%x/%d\n", val, state);
1847 } else {
1848 state = CSR_IPC_STATE_RESET_SW_READY;
1849 }
1850
1851 switch (state) {
1852 case CSR_IPC_STATE_RESET_SW_READY:
1853 if (trans_pcie->fw_reset_state == FW_RESET_REQUESTED) {
1854 IWL_DEBUG_ISR(trans, "Reset flow completed\n");
1855 trans_pcie->fw_reset_state = FW_RESET_OK;
1856 wake_up(&trans_pcie->fw_reset_waitq);
1857 break;
1858 }
1859 fallthrough;
1860 case CSR_IPC_STATE_RESET_TOP_READY:
1861 if (trans_pcie->fw_reset_state == FW_RESET_TOP_REQUESTED) {
1862 IWL_DEBUG_ISR(trans, "TOP Reset continues\n");
1863 trans_pcie->fw_reset_state = FW_RESET_OK;
1864 wake_up(&trans_pcie->fw_reset_waitq);
1865 break;
1866 }
1867 fallthrough;
1868 case CSR_IPC_STATE_RESET_NONE:
1869 IWL_FW_CHECK_FAILED(trans,
1870 "Invalid reset interrupt (state=%d)!\n",
1871 state);
1872 break;
1873 case CSR_IPC_STATE_RESET_TOP_FOLLOWER:
1874 if (trans_pcie->fw_reset_state == FW_RESET_REQUESTED) {
1875 /* if we were in reset, wake that up */
1876 IWL_INFO(trans,
1877 "TOP reset from BT while doing reset\n");
1878 trans_pcie->fw_reset_state = FW_RESET_OK;
1879 wake_up(&trans_pcie->fw_reset_waitq);
1880 } else {
1881 IWL_INFO(trans, "TOP reset from BT\n");
1882 trans->state = IWL_TRANS_NO_FW;
1883 iwl_trans_schedule_reset(trans,
1884 IWL_ERR_TYPE_TOP_RESET_BY_BT);
1885 }
1886 break;
1887 }
1888 }
1889
iwl_pcie_irq_handler(int irq,void * dev_id)1890 irqreturn_t iwl_pcie_irq_handler(int irq, void *dev_id)
1891 {
1892 struct iwl_trans *trans = dev_id;
1893 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
1894 struct isr_statistics *isr_stats = &trans_pcie->isr_stats;
1895 u32 inta = 0;
1896 u32 handled = 0;
1897 bool polling = false;
1898
1899 lock_map_acquire(&trans->sync_cmd_lockdep_map);
1900
1901 spin_lock_bh(&trans_pcie->irq_lock);
1902
1903 /* dram interrupt table not set yet,
1904 * use legacy interrupt.
1905 */
1906 if (likely(trans_pcie->use_ict))
1907 inta = iwl_pcie_int_cause_ict(trans);
1908 else
1909 inta = iwl_pcie_int_cause_non_ict(trans);
1910
1911 #ifdef CONFIG_IWLWIFI_DEBUG
1912 if (iwl_have_debug_level(IWL_DL_ISR)) {
1913 IWL_DEBUG_ISR(trans,
1914 "ISR inta 0x%08x, enabled 0x%08x(sw), enabled(hw) 0x%08x, fh 0x%08x\n",
1915 inta, trans_pcie->inta_mask,
1916 iwl_read32(trans, CSR_INT_MASK),
1917 iwl_read32(trans, CSR_FH_INT_STATUS));
1918 if (inta & (~trans_pcie->inta_mask))
1919 IWL_DEBUG_ISR(trans,
1920 "We got a masked interrupt (0x%08x)\n",
1921 inta & (~trans_pcie->inta_mask));
1922 }
1923 #endif
1924
1925 inta &= trans_pcie->inta_mask;
1926
1927 /*
1928 * Ignore interrupt if there's nothing in NIC to service.
1929 * This may be due to IRQ shared with another device,
1930 * or due to sporadic interrupts thrown from our NIC.
1931 */
1932 if (unlikely(!inta)) {
1933 IWL_DEBUG_ISR(trans, "Ignore interrupt, inta == 0\n");
1934 /*
1935 * Re-enable interrupts here since we don't
1936 * have anything to service
1937 */
1938 if (test_bit(STATUS_INT_ENABLED, &trans->status))
1939 _iwl_enable_interrupts(trans);
1940 spin_unlock_bh(&trans_pcie->irq_lock);
1941 lock_map_release(&trans->sync_cmd_lockdep_map);
1942 return IRQ_NONE;
1943 }
1944
1945 if (unlikely(inta == 0xFFFFFFFF || iwl_trans_is_hw_error_value(inta))) {
1946 /*
1947 * Hardware disappeared. It might have
1948 * already raised an interrupt.
1949 */
1950 IWL_WARN(trans, "HARDWARE GONE?? INTA == 0x%08x\n", inta);
1951 spin_unlock_bh(&trans_pcie->irq_lock);
1952 goto out;
1953 }
1954
1955 /* Ack/clear/reset pending uCode interrupts.
1956 * Note: Some bits in CSR_INT are "OR" of bits in CSR_FH_INT_STATUS,
1957 */
1958 /* There is a hardware bug in the interrupt mask function that some
1959 * interrupts (i.e. CSR_INT_BIT_SCD) can still be generated even if
1960 * they are disabled in the CSR_INT_MASK register. Furthermore the
1961 * ICT interrupt handling mechanism has another bug that might cause
1962 * these unmasked interrupts fail to be detected. We workaround the
1963 * hardware bugs here by ACKing all the possible interrupts so that
1964 * interrupt coalescing can still be achieved.
1965 */
1966 iwl_write32(trans, CSR_INT, inta | ~trans_pcie->inta_mask);
1967
1968 #ifdef CONFIG_IWLWIFI_DEBUG
1969 if (iwl_have_debug_level(IWL_DL_ISR))
1970 IWL_DEBUG_ISR(trans, "inta 0x%08x, enabled 0x%08x\n",
1971 inta, iwl_read32(trans, CSR_INT_MASK));
1972 #endif
1973
1974 spin_unlock_bh(&trans_pcie->irq_lock);
1975
1976 /* Now service all interrupt bits discovered above. */
1977 if (inta & CSR_INT_BIT_HW_ERR) {
1978 IWL_ERR(trans, "Hardware error detected. Restarting.\n");
1979
1980 /* Tell the device to stop sending interrupts */
1981 iwl_disable_interrupts(trans);
1982
1983 isr_stats->hw++;
1984 iwl_pcie_irq_handle_error(trans);
1985
1986 handled |= CSR_INT_BIT_HW_ERR;
1987
1988 goto out;
1989 }
1990
1991 /* NIC fires this, but we don't use it, redundant with WAKEUP */
1992 if (inta & CSR_INT_BIT_SCD) {
1993 IWL_DEBUG_ISR(trans,
1994 "Scheduler finished to transmit the frame/frames.\n");
1995 isr_stats->sch++;
1996 }
1997
1998 /* Alive notification via Rx interrupt will do the real work */
1999 if (inta & CSR_INT_BIT_ALIVE) {
2000 IWL_DEBUG_ISR(trans, "Alive interrupt\n");
2001 isr_stats->alive++;
2002 if (trans->mac_cfg->gen2) {
2003 /*
2004 * We can restock, since firmware configured
2005 * the RFH
2006 */
2007 iwl_pcie_rxmq_restock(trans, trans_pcie->rxq);
2008 }
2009
2010 handled |= CSR_INT_BIT_ALIVE;
2011 }
2012
2013 if (inta & CSR_INT_BIT_RESET_DONE) {
2014 iwl_trans_pcie_handle_reset_interrupt(trans);
2015 handled |= CSR_INT_BIT_RESET_DONE;
2016 }
2017
2018 /* Safely ignore these bits for debug checks below */
2019 inta &= ~(CSR_INT_BIT_SCD | CSR_INT_BIT_ALIVE);
2020
2021 /* HW RF KILL switch toggled */
2022 if (inta & CSR_INT_BIT_RF_KILL) {
2023 iwl_pcie_handle_rfkill_irq(trans, true);
2024 handled |= CSR_INT_BIT_RF_KILL;
2025 }
2026
2027 /* Chip got too hot and stopped itself */
2028 if (inta & CSR_INT_BIT_CT_KILL) {
2029 IWL_ERR(trans, "Microcode CT kill error detected.\n");
2030 isr_stats->ctkill++;
2031 handled |= CSR_INT_BIT_CT_KILL;
2032 }
2033
2034 /* Error detected by uCode */
2035 if (inta & CSR_INT_BIT_SW_ERR) {
2036 IWL_ERR(trans, "Microcode SW error detected. "
2037 " Restarting 0x%X.\n", inta);
2038 isr_stats->sw++;
2039 if (trans_pcie->fw_reset_state == FW_RESET_REQUESTED) {
2040 trans_pcie->fw_reset_state = FW_RESET_ERROR;
2041 wake_up(&trans_pcie->fw_reset_waitq);
2042 } else {
2043 iwl_pcie_irq_handle_error(trans);
2044 }
2045 handled |= CSR_INT_BIT_SW_ERR;
2046 }
2047
2048 /* uCode wakes up after power-down sleep */
2049 if (inta & CSR_INT_BIT_WAKEUP) {
2050 IWL_DEBUG_ISR(trans, "Wakeup interrupt\n");
2051 iwl_pcie_rxq_check_wrptr(trans);
2052 iwl_pcie_txq_check_wrptrs(trans);
2053
2054 isr_stats->wakeup++;
2055
2056 handled |= CSR_INT_BIT_WAKEUP;
2057 }
2058
2059 /* All uCode command responses, including Tx command responses,
2060 * Rx "responses" (frame-received notification), and other
2061 * notifications from uCode come through here*/
2062 if (inta & (CSR_INT_BIT_FH_RX | CSR_INT_BIT_SW_RX |
2063 CSR_INT_BIT_RX_PERIODIC)) {
2064 IWL_DEBUG_ISR(trans, "Rx interrupt\n");
2065 if (inta & (CSR_INT_BIT_FH_RX | CSR_INT_BIT_SW_RX)) {
2066 handled |= (CSR_INT_BIT_FH_RX | CSR_INT_BIT_SW_RX);
2067 iwl_write32(trans, CSR_FH_INT_STATUS,
2068 CSR_FH_INT_RX_MASK);
2069 }
2070 if (inta & CSR_INT_BIT_RX_PERIODIC) {
2071 handled |= CSR_INT_BIT_RX_PERIODIC;
2072 iwl_write32(trans,
2073 CSR_INT, CSR_INT_BIT_RX_PERIODIC);
2074 }
2075 /* Sending RX interrupt require many steps to be done in the
2076 * device:
2077 * 1- write interrupt to current index in ICT table.
2078 * 2- dma RX frame.
2079 * 3- update RX shared data to indicate last write index.
2080 * 4- send interrupt.
2081 * This could lead to RX race, driver could receive RX interrupt
2082 * but the shared data changes does not reflect this;
2083 * periodic interrupt will detect any dangling Rx activity.
2084 */
2085
2086 /* Disable periodic interrupt; we use it as just a one-shot. */
2087 iwl_write8(trans, CSR_INT_PERIODIC_REG,
2088 CSR_INT_PERIODIC_DIS);
2089
2090 /*
2091 * Enable periodic interrupt in 8 msec only if we received
2092 * real RX interrupt (instead of just periodic int), to catch
2093 * any dangling Rx interrupt. If it was just the periodic
2094 * interrupt, there was no dangling Rx activity, and no need
2095 * to extend the periodic interrupt; one-shot is enough.
2096 */
2097 if (inta & (CSR_INT_BIT_FH_RX | CSR_INT_BIT_SW_RX))
2098 iwl_write8(trans, CSR_INT_PERIODIC_REG,
2099 CSR_INT_PERIODIC_ENA);
2100
2101 isr_stats->rx++;
2102
2103 local_bh_disable();
2104 if (napi_schedule_prep(&trans_pcie->rxq[0].napi)) {
2105 polling = true;
2106 __napi_schedule(&trans_pcie->rxq[0].napi);
2107 }
2108 local_bh_enable();
2109 }
2110
2111 /* This "Tx" DMA channel is used only for loading uCode */
2112 if (inta & CSR_INT_BIT_FH_TX) {
2113 iwl_write32(trans, CSR_FH_INT_STATUS, CSR_FH_INT_TX_MASK);
2114 IWL_DEBUG_ISR(trans, "uCode load interrupt\n");
2115 isr_stats->tx++;
2116 handled |= CSR_INT_BIT_FH_TX;
2117 /* Wake up uCode load routine, now that load is complete */
2118 trans_pcie->ucode_write_complete = true;
2119 wake_up(&trans_pcie->ucode_write_waitq);
2120 /* Wake up IMR write routine, now that write to SRAM is complete */
2121 if (trans_pcie->imr_status == IMR_D2S_REQUESTED) {
2122 trans_pcie->imr_status = IMR_D2S_COMPLETED;
2123 wake_up(&trans_pcie->ucode_write_waitq);
2124 }
2125 }
2126
2127 if (inta & ~handled) {
2128 IWL_ERR(trans, "Unhandled INTA bits 0x%08x\n", inta & ~handled);
2129 isr_stats->unhandled++;
2130 }
2131
2132 if (inta & ~(trans_pcie->inta_mask)) {
2133 IWL_WARN(trans, "Disabled INTA bits 0x%08x were pending\n",
2134 inta & ~trans_pcie->inta_mask);
2135 }
2136
2137 if (!polling) {
2138 spin_lock_bh(&trans_pcie->irq_lock);
2139 /* only Re-enable all interrupt if disabled by irq */
2140 if (test_bit(STATUS_INT_ENABLED, &trans->status))
2141 _iwl_enable_interrupts(trans);
2142 /* we are loading the firmware, enable FH_TX interrupt only */
2143 else if (handled & CSR_INT_BIT_FH_TX)
2144 iwl_enable_fw_load_int(trans);
2145 /* Re-enable RF_KILL if it occurred */
2146 else if (handled & CSR_INT_BIT_RF_KILL)
2147 iwl_enable_rfkill_int(trans);
2148 /* Re-enable the ALIVE / Rx interrupt if it occurred */
2149 else if (handled & (CSR_INT_BIT_ALIVE | CSR_INT_BIT_FH_RX))
2150 iwl_enable_fw_load_int_ctx_info(trans, false);
2151 spin_unlock_bh(&trans_pcie->irq_lock);
2152 }
2153
2154 out:
2155 lock_map_release(&trans->sync_cmd_lockdep_map);
2156 return IRQ_HANDLED;
2157 }
2158
2159 /******************************************************************************
2160 *
2161 * ICT functions
2162 *
2163 ******************************************************************************/
2164
2165 /* Free dram table */
iwl_pcie_free_ict(struct iwl_trans * trans)2166 void iwl_pcie_free_ict(struct iwl_trans *trans)
2167 {
2168 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2169
2170 if (trans_pcie->ict_tbl) {
2171 dma_free_coherent(trans->dev, ICT_SIZE,
2172 trans_pcie->ict_tbl,
2173 trans_pcie->ict_tbl_dma);
2174 trans_pcie->ict_tbl = NULL;
2175 trans_pcie->ict_tbl_dma = 0;
2176 }
2177 }
2178
2179 /*
2180 * allocate dram shared table, it is an aligned memory
2181 * block of ICT_SIZE.
2182 * also reset all data related to ICT table interrupt.
2183 */
iwl_pcie_alloc_ict(struct iwl_trans * trans)2184 int iwl_pcie_alloc_ict(struct iwl_trans *trans)
2185 {
2186 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2187
2188 trans_pcie->ict_tbl =
2189 dma_alloc_coherent(trans->dev, ICT_SIZE,
2190 &trans_pcie->ict_tbl_dma, GFP_KERNEL);
2191 if (!trans_pcie->ict_tbl)
2192 return -ENOMEM;
2193
2194 /* just an API sanity check ... it is guaranteed to be aligned */
2195 if (WARN_ON(trans_pcie->ict_tbl_dma & (ICT_SIZE - 1))) {
2196 iwl_pcie_free_ict(trans);
2197 return -EINVAL;
2198 }
2199
2200 return 0;
2201 }
2202
2203 /* Device is going up inform it about using ICT interrupt table,
2204 * also we need to tell the driver to start using ICT interrupt.
2205 */
iwl_pcie_reset_ict(struct iwl_trans * trans)2206 void iwl_pcie_reset_ict(struct iwl_trans *trans)
2207 {
2208 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2209 u32 val;
2210
2211 if (!trans_pcie->ict_tbl)
2212 return;
2213
2214 spin_lock_bh(&trans_pcie->irq_lock);
2215 _iwl_disable_interrupts(trans);
2216
2217 memset(trans_pcie->ict_tbl, 0, ICT_SIZE);
2218
2219 val = trans_pcie->ict_tbl_dma >> ICT_SHIFT;
2220
2221 val |= CSR_DRAM_INT_TBL_ENABLE |
2222 CSR_DRAM_INIT_TBL_WRAP_CHECK |
2223 CSR_DRAM_INIT_TBL_WRITE_POINTER;
2224
2225 IWL_DEBUG_ISR(trans, "CSR_DRAM_INT_TBL_REG =0x%x\n", val);
2226
2227 iwl_write32(trans, CSR_DRAM_INT_TBL_REG, val);
2228 trans_pcie->use_ict = true;
2229 trans_pcie->ict_index = 0;
2230 iwl_write32(trans, CSR_INT, trans_pcie->inta_mask);
2231 _iwl_enable_interrupts(trans);
2232 spin_unlock_bh(&trans_pcie->irq_lock);
2233 }
2234
2235 /* Device is going down disable ict interrupt usage */
iwl_pcie_disable_ict(struct iwl_trans * trans)2236 void iwl_pcie_disable_ict(struct iwl_trans *trans)
2237 {
2238 struct iwl_trans_pcie *trans_pcie = IWL_TRANS_GET_PCIE_TRANS(trans);
2239
2240 spin_lock_bh(&trans_pcie->irq_lock);
2241 trans_pcie->use_ict = false;
2242 spin_unlock_bh(&trans_pcie->irq_lock);
2243 }
2244
iwl_pcie_isr(int irq,void * data)2245 irqreturn_t iwl_pcie_isr(int irq, void *data)
2246 {
2247 struct iwl_trans *trans = data;
2248
2249 if (!trans)
2250 return IRQ_NONE;
2251
2252 /* Disable (but don't clear!) interrupts here to avoid
2253 * back-to-back ISRs and sporadic interrupts from our NIC.
2254 * If we have something to service, the tasklet will re-enable ints.
2255 * If we *don't* have something, we'll re-enable before leaving here.
2256 */
2257 iwl_write32(trans, CSR_INT_MASK, 0x00000000);
2258
2259 return IRQ_WAKE_THREAD;
2260 }
2261
iwl_pcie_msix_isr(int irq,void * data)2262 irqreturn_t iwl_pcie_msix_isr(int irq, void *data)
2263 {
2264 return IRQ_WAKE_THREAD;
2265 }
2266
iwl_pcie_irq_msix_handler(int irq,void * dev_id)2267 irqreturn_t iwl_pcie_irq_msix_handler(int irq, void *dev_id)
2268 {
2269 struct msix_entry *entry = dev_id;
2270 struct iwl_trans_pcie *trans_pcie = iwl_pcie_get_trans_pcie(entry);
2271 struct iwl_trans *trans = trans_pcie->trans;
2272 struct isr_statistics *isr_stats = &trans_pcie->isr_stats;
2273 u32 inta_fh_msk = ~MSIX_FH_INT_CAUSES_DATA_QUEUE;
2274 u32 inta_fh, inta_hw;
2275 bool polling = false;
2276 bool sw_err;
2277
2278 if (trans_pcie->shared_vec_mask & IWL_SHARED_IRQ_NON_RX)
2279 inta_fh_msk |= MSIX_FH_INT_CAUSES_Q0;
2280
2281 if (trans_pcie->shared_vec_mask & IWL_SHARED_IRQ_FIRST_RSS)
2282 inta_fh_msk |= MSIX_FH_INT_CAUSES_Q1;
2283
2284 lock_map_acquire(&trans->sync_cmd_lockdep_map);
2285
2286 spin_lock_bh(&trans_pcie->irq_lock);
2287 inta_fh = iwl_read32(trans, CSR_MSIX_FH_INT_CAUSES_AD);
2288 inta_hw = iwl_read32(trans, CSR_MSIX_HW_INT_CAUSES_AD);
2289 /*
2290 * Clear causes registers to avoid being handling the same cause.
2291 */
2292 iwl_write32(trans, CSR_MSIX_FH_INT_CAUSES_AD, inta_fh & inta_fh_msk);
2293 iwl_write32(trans, CSR_MSIX_HW_INT_CAUSES_AD, inta_hw);
2294 spin_unlock_bh(&trans_pcie->irq_lock);
2295
2296 trace_iwlwifi_dev_irq_msix(trans->dev, entry, true, inta_fh, inta_hw);
2297
2298 if (unlikely(!(inta_fh | inta_hw))) {
2299 IWL_DEBUG_ISR(trans, "Ignore interrupt, inta == 0\n");
2300 lock_map_release(&trans->sync_cmd_lockdep_map);
2301 return IRQ_NONE;
2302 }
2303
2304 #ifdef CONFIG_IWLWIFI_DEBUG
2305 if (iwl_have_debug_level(IWL_DL_ISR)) {
2306 IWL_DEBUG_ISR(trans,
2307 "ISR[%d] inta_fh 0x%08x, enabled (sw) 0x%08x (hw) 0x%08x\n",
2308 entry->entry, inta_fh, trans_pcie->fh_mask,
2309 iwl_read32(trans, CSR_MSIX_FH_INT_MASK_AD));
2310 if (inta_fh & ~trans_pcie->fh_mask)
2311 IWL_DEBUG_ISR(trans,
2312 "We got a masked interrupt (0x%08x)\n",
2313 inta_fh & ~trans_pcie->fh_mask);
2314 }
2315 #endif
2316
2317 inta_fh &= trans_pcie->fh_mask;
2318
2319 if ((trans_pcie->shared_vec_mask & IWL_SHARED_IRQ_NON_RX) &&
2320 inta_fh & MSIX_FH_INT_CAUSES_Q0) {
2321 local_bh_disable();
2322 if (napi_schedule_prep(&trans_pcie->rxq[0].napi)) {
2323 polling = true;
2324 __napi_schedule(&trans_pcie->rxq[0].napi);
2325 }
2326 local_bh_enable();
2327 }
2328
2329 if ((trans_pcie->shared_vec_mask & IWL_SHARED_IRQ_FIRST_RSS) &&
2330 inta_fh & MSIX_FH_INT_CAUSES_Q1) {
2331 local_bh_disable();
2332 if (napi_schedule_prep(&trans_pcie->rxq[1].napi)) {
2333 polling = true;
2334 __napi_schedule(&trans_pcie->rxq[1].napi);
2335 }
2336 local_bh_enable();
2337 }
2338
2339 /* This "Tx" DMA channel is used only for loading uCode */
2340 if (inta_fh & MSIX_FH_INT_CAUSES_D2S_CH0_NUM &&
2341 trans_pcie->imr_status == IMR_D2S_REQUESTED) {
2342 IWL_DEBUG_ISR(trans, "IMR Complete interrupt\n");
2343 isr_stats->tx++;
2344
2345 /* Wake up IMR routine once write to SRAM is complete */
2346 if (trans_pcie->imr_status == IMR_D2S_REQUESTED) {
2347 trans_pcie->imr_status = IMR_D2S_COMPLETED;
2348 wake_up(&trans_pcie->ucode_write_waitq);
2349 }
2350 } else if (inta_fh & MSIX_FH_INT_CAUSES_D2S_CH0_NUM) {
2351 IWL_DEBUG_ISR(trans, "uCode load interrupt\n");
2352 isr_stats->tx++;
2353 /*
2354 * Wake up uCode load routine,
2355 * now that load is complete
2356 */
2357 trans_pcie->ucode_write_complete = true;
2358 wake_up(&trans_pcie->ucode_write_waitq);
2359
2360 /* Wake up IMR routine once write to SRAM is complete */
2361 if (trans_pcie->imr_status == IMR_D2S_REQUESTED) {
2362 trans_pcie->imr_status = IMR_D2S_COMPLETED;
2363 wake_up(&trans_pcie->ucode_write_waitq);
2364 }
2365 }
2366
2367 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_BZ)
2368 sw_err = inta_hw & MSIX_HW_INT_CAUSES_REG_SW_ERR_BZ;
2369 else
2370 sw_err = inta_hw & MSIX_HW_INT_CAUSES_REG_SW_ERR;
2371
2372 if (inta_hw & MSIX_HW_INT_CAUSES_REG_TOP_FATAL_ERR) {
2373 IWL_ERR(trans, "TOP Fatal error detected, inta_hw=0x%x.\n",
2374 inta_hw);
2375 if (trans->mac_cfg->device_family >= IWL_DEVICE_FAMILY_BZ) {
2376 trans->request_top_reset = 1;
2377 iwl_op_mode_nic_error(trans->op_mode,
2378 IWL_ERR_TYPE_TOP_FATAL_ERROR);
2379 iwl_trans_schedule_reset(trans,
2380 IWL_ERR_TYPE_TOP_FATAL_ERROR);
2381 }
2382 }
2383
2384 /* Error detected by uCode */
2385 if ((inta_fh & MSIX_FH_INT_CAUSES_FH_ERR) || sw_err) {
2386 IWL_ERR(trans,
2387 "Microcode SW error detected. Restarting 0x%X.\n",
2388 inta_fh);
2389 isr_stats->sw++;
2390 /* during FW reset flow report errors from there */
2391 if (trans_pcie->imr_status == IMR_D2S_REQUESTED) {
2392 trans_pcie->imr_status = IMR_D2S_ERROR;
2393 wake_up(&trans_pcie->imr_waitq);
2394 } else if (trans_pcie->fw_reset_state == FW_RESET_REQUESTED) {
2395 trans_pcie->fw_reset_state = FW_RESET_ERROR;
2396 wake_up(&trans_pcie->fw_reset_waitq);
2397 } else {
2398 iwl_pcie_irq_handle_error(trans);
2399 }
2400
2401 if (trans_pcie->sx_state == IWL_SX_WAITING) {
2402 trans_pcie->sx_state = IWL_SX_ERROR;
2403 wake_up(&trans_pcie->sx_waitq);
2404 }
2405 }
2406
2407 /* After checking FH register check HW register */
2408 #ifdef CONFIG_IWLWIFI_DEBUG
2409 if (iwl_have_debug_level(IWL_DL_ISR)) {
2410 IWL_DEBUG_ISR(trans,
2411 "ISR[%d] inta_hw 0x%08x, enabled (sw) 0x%08x (hw) 0x%08x\n",
2412 entry->entry, inta_hw, trans_pcie->hw_mask,
2413 iwl_read32(trans, CSR_MSIX_HW_INT_MASK_AD));
2414 if (inta_hw & ~trans_pcie->hw_mask)
2415 IWL_DEBUG_ISR(trans,
2416 "We got a masked interrupt 0x%08x\n",
2417 inta_hw & ~trans_pcie->hw_mask);
2418 }
2419 #endif
2420
2421 inta_hw &= trans_pcie->hw_mask;
2422
2423 /* Alive notification via Rx interrupt will do the real work */
2424 if (inta_hw & MSIX_HW_INT_CAUSES_REG_ALIVE) {
2425 IWL_DEBUG_ISR(trans, "Alive interrupt\n");
2426 isr_stats->alive++;
2427 if (trans->mac_cfg->gen2) {
2428 /* We can restock, since firmware configured the RFH */
2429 iwl_pcie_rxmq_restock(trans, trans_pcie->rxq);
2430 }
2431 }
2432
2433 /*
2434 * In some rare cases when the HW is in a bad state, we may
2435 * get this interrupt too early, when prph_info is still NULL.
2436 * So make sure that it's not NULL to prevent crashing.
2437 */
2438 if (inta_hw & MSIX_HW_INT_CAUSES_REG_WAKEUP && trans_pcie->prph_info) {
2439 u32 sleep_notif =
2440 le32_to_cpu(trans_pcie->prph_info->sleep_notif);
2441
2442 if (sleep_notif == IWL_D3_SLEEP_STATUS_SUSPEND ||
2443 sleep_notif == IWL_D3_SLEEP_STATUS_RESUME) {
2444 IWL_DEBUG_ISR(trans,
2445 "Sx interrupt: sleep notification = 0x%x\n",
2446 sleep_notif);
2447 if (trans_pcie->sx_state == IWL_SX_WAITING) {
2448 trans_pcie->sx_state = IWL_SX_COMPLETE;
2449 wake_up(&trans_pcie->sx_waitq);
2450 } else {
2451 IWL_ERR(trans,
2452 "unexpected Sx interrupt (0x%x)\n",
2453 sleep_notif);
2454 }
2455 } else {
2456 /* uCode wakes up after power-down sleep */
2457 IWL_DEBUG_ISR(trans, "Wakeup interrupt\n");
2458 iwl_pcie_rxq_check_wrptr(trans);
2459 iwl_pcie_txq_check_wrptrs(trans);
2460
2461 isr_stats->wakeup++;
2462 }
2463 }
2464
2465 /* Chip got too hot and stopped itself */
2466 if (inta_hw & MSIX_HW_INT_CAUSES_REG_CT_KILL) {
2467 IWL_ERR(trans, "Microcode CT kill error detected.\n");
2468 isr_stats->ctkill++;
2469 }
2470
2471 /* HW RF KILL switch toggled */
2472 if (inta_hw & MSIX_HW_INT_CAUSES_REG_RF_KILL)
2473 iwl_pcie_handle_rfkill_irq(trans, true);
2474
2475 if (inta_hw & MSIX_HW_INT_CAUSES_REG_HW_ERR) {
2476 IWL_ERR(trans,
2477 "Hardware error detected. Restarting.\n");
2478
2479 isr_stats->hw++;
2480 trans->dbg.hw_error = true;
2481 iwl_pcie_irq_handle_error(trans);
2482 }
2483
2484 if (inta_hw & MSIX_HW_INT_CAUSES_REG_RESET_DONE)
2485 iwl_trans_pcie_handle_reset_interrupt(trans);
2486
2487 if (!polling)
2488 iwl_pcie_clear_irq(trans, entry->entry);
2489
2490 lock_map_release(&trans->sync_cmd_lockdep_map);
2491
2492 return IRQ_HANDLED;
2493 }
2494