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1 /*
2 * NVM Express device driver
3 * Copyright (c) 2011-2014, Intel Corporation.
4 *
5 * This program is free software; you can redistribute it and/or modify it
6 * under the terms and conditions of the GNU General Public License,
7 * version 2, as published by the Free Software Foundation.
8 *
9 * This program is distributed in the hope it will be useful, but WITHOUT
10 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
11 * FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License for
12 * more details.
13 */
14
15 #include <linux/aer.h>
16 #include <linux/bitops.h>
17 #include <linux/blkdev.h>
18 #include <linux/blk-mq.h>
19 #include <linux/blk-mq-pci.h>
20 #include <linux/cpu.h>
21 #include <linux/delay.h>
22 #include <linux/errno.h>
23 #include <linux/fs.h>
24 #include <linux/genhd.h>
25 #include <linux/hdreg.h>
26 #include <linux/idr.h>
27 #include <linux/init.h>
28 #include <linux/interrupt.h>
29 #include <linux/io.h>
30 #include <linux/kdev_t.h>
31 #include <linux/kernel.h>
32 #include <linux/mm.h>
33 #include <linux/module.h>
34 #include <linux/moduleparam.h>
35 #include <linux/mutex.h>
36 #include <linux/pci.h>
37 #include <linux/poison.h>
38 #include <linux/ptrace.h>
39 #include <linux/sched.h>
40 #include <linux/slab.h>
41 #include <linux/t10-pi.h>
42 #include <linux/timer.h>
43 #include <linux/types.h>
44 #include <linux/io-64-nonatomic-lo-hi.h>
45 #include <asm/unaligned.h>
46
47 #include "nvme.h"
48
49 #define NVME_Q_DEPTH 1024
50 #define NVME_AQ_DEPTH 256
51 #define SQ_SIZE(depth) (depth * sizeof(struct nvme_command))
52 #define CQ_SIZE(depth) (depth * sizeof(struct nvme_completion))
53
54 /*
55 * We handle AEN commands ourselves and don't even let the
56 * block layer know about them.
57 */
58 #define NVME_AQ_BLKMQ_DEPTH (NVME_AQ_DEPTH - NVME_NR_AERS)
59
60 static int use_threaded_interrupts;
61 module_param(use_threaded_interrupts, int, 0);
62
63 static bool use_cmb_sqes = true;
64 module_param(use_cmb_sqes, bool, 0644);
65 MODULE_PARM_DESC(use_cmb_sqes, "use controller's memory buffer for I/O SQes");
66
67 static struct workqueue_struct *nvme_workq;
68
69 struct nvme_dev;
70 struct nvme_queue;
71
72 static int nvme_reset(struct nvme_dev *dev);
73 static void nvme_process_cq(struct nvme_queue *nvmeq);
74 static void nvme_dev_disable(struct nvme_dev *dev, bool shutdown);
75
76 /*
77 * Represents an NVM Express device. Each nvme_dev is a PCI function.
78 */
79 struct nvme_dev {
80 struct nvme_queue **queues;
81 struct blk_mq_tag_set tagset;
82 struct blk_mq_tag_set admin_tagset;
83 u32 __iomem *dbs;
84 struct device *dev;
85 struct dma_pool *prp_page_pool;
86 struct dma_pool *prp_small_pool;
87 unsigned queue_count;
88 unsigned online_queues;
89 unsigned max_qid;
90 int q_depth;
91 u32 db_stride;
92 void __iomem *bar;
93 struct work_struct reset_work;
94 struct work_struct remove_work;
95 struct timer_list watchdog_timer;
96 struct mutex shutdown_lock;
97 bool subsystem;
98 void __iomem *cmb;
99 dma_addr_t cmb_dma_addr;
100 u64 cmb_size;
101 u32 cmbsz;
102 u32 cmbloc;
103 struct nvme_ctrl ctrl;
104 struct completion ioq_wait;
105 };
106
107 static inline struct nvme_dev *to_nvme_dev(struct nvme_ctrl *ctrl)
108 {
109 return container_of(ctrl, struct nvme_dev, ctrl);
110 }
111
112 /*
113 * An NVM Express queue. Each device has at least two (one for admin
114 * commands and one for I/O commands).
115 */
116 struct nvme_queue {
117 struct device *q_dmadev;
118 struct nvme_dev *dev;
119 char irqname[24]; /* nvme4294967295-65535\0 */
120 spinlock_t q_lock;
121 struct nvme_command *sq_cmds;
122 struct nvme_command __iomem *sq_cmds_io;
123 volatile struct nvme_completion *cqes;
124 struct blk_mq_tags **tags;
125 dma_addr_t sq_dma_addr;
126 dma_addr_t cq_dma_addr;
127 u32 __iomem *q_db;
128 u16 q_depth;
129 s16 cq_vector;
130 u16 sq_tail;
131 u16 cq_head;
132 u16 qid;
133 u8 cq_phase;
134 u8 cqe_seen;
135 };
136
137 /*
138 * The nvme_iod describes the data in an I/O, including the list of PRP
139 * entries. You can't see it in this data structure because C doesn't let
140 * me express that. Use nvme_init_iod to ensure there's enough space
141 * allocated to store the PRP list.
142 */
143 struct nvme_iod {
144 struct nvme_request req;
145 struct nvme_queue *nvmeq;
146 int aborted;
147 int npages; /* In the PRP list. 0 means small pool in use */
148 int nents; /* Used in scatterlist */
149 int length; /* Of data, in bytes */
150 dma_addr_t first_dma;
151 struct scatterlist meta_sg; /* metadata requires single contiguous buffer */
152 struct scatterlist *sg;
153 struct scatterlist inline_sg[0];
154 };
155
156 /*
157 * Check we didin't inadvertently grow the command struct
158 */
159 static inline void _nvme_check_size(void)
160 {
161 BUILD_BUG_ON(sizeof(struct nvme_rw_command) != 64);
162 BUILD_BUG_ON(sizeof(struct nvme_create_cq) != 64);
163 BUILD_BUG_ON(sizeof(struct nvme_create_sq) != 64);
164 BUILD_BUG_ON(sizeof(struct nvme_delete_queue) != 64);
165 BUILD_BUG_ON(sizeof(struct nvme_features) != 64);
166 BUILD_BUG_ON(sizeof(struct nvme_format_cmd) != 64);
167 BUILD_BUG_ON(sizeof(struct nvme_abort_cmd) != 64);
168 BUILD_BUG_ON(sizeof(struct nvme_command) != 64);
169 BUILD_BUG_ON(sizeof(struct nvme_id_ctrl) != 4096);
170 BUILD_BUG_ON(sizeof(struct nvme_id_ns) != 4096);
171 BUILD_BUG_ON(sizeof(struct nvme_lba_range_type) != 64);
172 BUILD_BUG_ON(sizeof(struct nvme_smart_log) != 512);
173 }
174
175 /*
176 * Max size of iod being embedded in the request payload
177 */
178 #define NVME_INT_PAGES 2
179 #define NVME_INT_BYTES(dev) (NVME_INT_PAGES * (dev)->ctrl.page_size)
180
181 /*
182 * Will slightly overestimate the number of pages needed. This is OK
183 * as it only leads to a small amount of wasted memory for the lifetime of
184 * the I/O.
185 */
186 static int nvme_npages(unsigned size, struct nvme_dev *dev)
187 {
188 unsigned nprps = DIV_ROUND_UP(size + dev->ctrl.page_size,
189 dev->ctrl.page_size);
190 return DIV_ROUND_UP(8 * nprps, PAGE_SIZE - 8);
191 }
192
193 static unsigned int nvme_iod_alloc_size(struct nvme_dev *dev,
194 unsigned int size, unsigned int nseg)
195 {
196 return sizeof(__le64 *) * nvme_npages(size, dev) +
197 sizeof(struct scatterlist) * nseg;
198 }
199
200 static unsigned int nvme_cmd_size(struct nvme_dev *dev)
201 {
202 return sizeof(struct nvme_iod) +
203 nvme_iod_alloc_size(dev, NVME_INT_BYTES(dev), NVME_INT_PAGES);
204 }
205
206 static int nvmeq_irq(struct nvme_queue *nvmeq)
207 {
208 return pci_irq_vector(to_pci_dev(nvmeq->dev->dev), nvmeq->cq_vector);
209 }
210
211 static int nvme_admin_init_hctx(struct blk_mq_hw_ctx *hctx, void *data,
212 unsigned int hctx_idx)
213 {
214 struct nvme_dev *dev = data;
215 struct nvme_queue *nvmeq = dev->queues[0];
216
217 WARN_ON(hctx_idx != 0);
218 WARN_ON(dev->admin_tagset.tags[0] != hctx->tags);
219 WARN_ON(nvmeq->tags);
220
221 hctx->driver_data = nvmeq;
222 nvmeq->tags = &dev->admin_tagset.tags[0];
223 return 0;
224 }
225
226 static void nvme_admin_exit_hctx(struct blk_mq_hw_ctx *hctx, unsigned int hctx_idx)
227 {
228 struct nvme_queue *nvmeq = hctx->driver_data;
229
230 nvmeq->tags = NULL;
231 }
232
233 static int nvme_admin_init_request(void *data, struct request *req,
234 unsigned int hctx_idx, unsigned int rq_idx,
235 unsigned int numa_node)
236 {
237 struct nvme_dev *dev = data;
238 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
239 struct nvme_queue *nvmeq = dev->queues[0];
240
241 BUG_ON(!nvmeq);
242 iod->nvmeq = nvmeq;
243 return 0;
244 }
245
246 static int nvme_init_hctx(struct blk_mq_hw_ctx *hctx, void *data,
247 unsigned int hctx_idx)
248 {
249 struct nvme_dev *dev = data;
250 struct nvme_queue *nvmeq = dev->queues[hctx_idx + 1];
251
252 if (!nvmeq->tags)
253 nvmeq->tags = &dev->tagset.tags[hctx_idx];
254
255 WARN_ON(dev->tagset.tags[hctx_idx] != hctx->tags);
256 hctx->driver_data = nvmeq;
257 return 0;
258 }
259
260 static int nvme_init_request(void *data, struct request *req,
261 unsigned int hctx_idx, unsigned int rq_idx,
262 unsigned int numa_node)
263 {
264 struct nvme_dev *dev = data;
265 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
266 struct nvme_queue *nvmeq = dev->queues[hctx_idx + 1];
267
268 BUG_ON(!nvmeq);
269 iod->nvmeq = nvmeq;
270 return 0;
271 }
272
273 static int nvme_pci_map_queues(struct blk_mq_tag_set *set)
274 {
275 struct nvme_dev *dev = set->driver_data;
276
277 return blk_mq_pci_map_queues(set, to_pci_dev(dev->dev));
278 }
279
280 /**
281 * __nvme_submit_cmd() - Copy a command into a queue and ring the doorbell
282 * @nvmeq: The queue to use
283 * @cmd: The command to send
284 *
285 * Safe to use from interrupt context
286 */
287 static void __nvme_submit_cmd(struct nvme_queue *nvmeq,
288 struct nvme_command *cmd)
289 {
290 u16 tail = nvmeq->sq_tail;
291
292 if (nvmeq->sq_cmds_io)
293 memcpy_toio(&nvmeq->sq_cmds_io[tail], cmd, sizeof(*cmd));
294 else
295 memcpy(&nvmeq->sq_cmds[tail], cmd, sizeof(*cmd));
296
297 if (++tail == nvmeq->q_depth)
298 tail = 0;
299 writel(tail, nvmeq->q_db);
300 nvmeq->sq_tail = tail;
301 }
302
303 static __le64 **iod_list(struct request *req)
304 {
305 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
306 return (__le64 **)(iod->sg + blk_rq_nr_phys_segments(req));
307 }
308
309 static int nvme_init_iod(struct request *rq, unsigned size,
310 struct nvme_dev *dev)
311 {
312 struct nvme_iod *iod = blk_mq_rq_to_pdu(rq);
313 int nseg = blk_rq_nr_phys_segments(rq);
314
315 if (nseg > NVME_INT_PAGES || size > NVME_INT_BYTES(dev)) {
316 iod->sg = kmalloc(nvme_iod_alloc_size(dev, size, nseg), GFP_ATOMIC);
317 if (!iod->sg)
318 return BLK_MQ_RQ_QUEUE_BUSY;
319 } else {
320 iod->sg = iod->inline_sg;
321 }
322
323 iod->aborted = 0;
324 iod->npages = -1;
325 iod->nents = 0;
326 iod->length = size;
327
328 if (!(rq->rq_flags & RQF_DONTPREP)) {
329 rq->retries = 0;
330 rq->rq_flags |= RQF_DONTPREP;
331 }
332 return BLK_MQ_RQ_QUEUE_OK;
333 }
334
335 static void nvme_free_iod(struct nvme_dev *dev, struct request *req)
336 {
337 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
338 const int last_prp = dev->ctrl.page_size / 8 - 1;
339 int i;
340 __le64 **list = iod_list(req);
341 dma_addr_t prp_dma = iod->first_dma;
342
343 if (iod->npages == 0)
344 dma_pool_free(dev->prp_small_pool, list[0], prp_dma);
345 for (i = 0; i < iod->npages; i++) {
346 __le64 *prp_list = list[i];
347 dma_addr_t next_prp_dma = le64_to_cpu(prp_list[last_prp]);
348 dma_pool_free(dev->prp_page_pool, prp_list, prp_dma);
349 prp_dma = next_prp_dma;
350 }
351
352 if (iod->sg != iod->inline_sg)
353 kfree(iod->sg);
354 }
355
356 #ifdef CONFIG_BLK_DEV_INTEGRITY
357 static void nvme_dif_prep(u32 p, u32 v, struct t10_pi_tuple *pi)
358 {
359 if (be32_to_cpu(pi->ref_tag) == v)
360 pi->ref_tag = cpu_to_be32(p);
361 }
362
363 static void nvme_dif_complete(u32 p, u32 v, struct t10_pi_tuple *pi)
364 {
365 if (be32_to_cpu(pi->ref_tag) == p)
366 pi->ref_tag = cpu_to_be32(v);
367 }
368
369 /**
370 * nvme_dif_remap - remaps ref tags to bip seed and physical lba
371 *
372 * The virtual start sector is the one that was originally submitted by the
373 * block layer. Due to partitioning, MD/DM cloning, etc. the actual physical
374 * start sector may be different. Remap protection information to match the
375 * physical LBA on writes, and back to the original seed on reads.
376 *
377 * Type 0 and 3 do not have a ref tag, so no remapping required.
378 */
379 static void nvme_dif_remap(struct request *req,
380 void (*dif_swap)(u32 p, u32 v, struct t10_pi_tuple *pi))
381 {
382 struct nvme_ns *ns = req->rq_disk->private_data;
383 struct bio_integrity_payload *bip;
384 struct t10_pi_tuple *pi;
385 void *p, *pmap;
386 u32 i, nlb, ts, phys, virt;
387
388 if (!ns->pi_type || ns->pi_type == NVME_NS_DPS_PI_TYPE3)
389 return;
390
391 bip = bio_integrity(req->bio);
392 if (!bip)
393 return;
394
395 pmap = kmap_atomic(bip->bip_vec->bv_page) + bip->bip_vec->bv_offset;
396
397 p = pmap;
398 virt = bip_get_seed(bip);
399 phys = nvme_block_nr(ns, blk_rq_pos(req));
400 nlb = (blk_rq_bytes(req) >> ns->lba_shift);
401 ts = ns->disk->queue->integrity.tuple_size;
402
403 for (i = 0; i < nlb; i++, virt++, phys++) {
404 pi = (struct t10_pi_tuple *)p;
405 dif_swap(phys, virt, pi);
406 p += ts;
407 }
408 kunmap_atomic(pmap);
409 }
410 #else /* CONFIG_BLK_DEV_INTEGRITY */
411 static void nvme_dif_remap(struct request *req,
412 void (*dif_swap)(u32 p, u32 v, struct t10_pi_tuple *pi))
413 {
414 }
415 static void nvme_dif_prep(u32 p, u32 v, struct t10_pi_tuple *pi)
416 {
417 }
418 static void nvme_dif_complete(u32 p, u32 v, struct t10_pi_tuple *pi)
419 {
420 }
421 #endif
422
423 static bool nvme_setup_prps(struct nvme_dev *dev, struct request *req,
424 int total_len)
425 {
426 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
427 struct dma_pool *pool;
428 int length = total_len;
429 struct scatterlist *sg = iod->sg;
430 int dma_len = sg_dma_len(sg);
431 u64 dma_addr = sg_dma_address(sg);
432 u32 page_size = dev->ctrl.page_size;
433 int offset = dma_addr & (page_size - 1);
434 __le64 *prp_list;
435 __le64 **list = iod_list(req);
436 dma_addr_t prp_dma;
437 int nprps, i;
438
439 length -= (page_size - offset);
440 if (length <= 0)
441 return true;
442
443 dma_len -= (page_size - offset);
444 if (dma_len) {
445 dma_addr += (page_size - offset);
446 } else {
447 sg = sg_next(sg);
448 dma_addr = sg_dma_address(sg);
449 dma_len = sg_dma_len(sg);
450 }
451
452 if (length <= page_size) {
453 iod->first_dma = dma_addr;
454 return true;
455 }
456
457 nprps = DIV_ROUND_UP(length, page_size);
458 if (nprps <= (256 / 8)) {
459 pool = dev->prp_small_pool;
460 iod->npages = 0;
461 } else {
462 pool = dev->prp_page_pool;
463 iod->npages = 1;
464 }
465
466 prp_list = dma_pool_alloc(pool, GFP_ATOMIC, &prp_dma);
467 if (!prp_list) {
468 iod->first_dma = dma_addr;
469 iod->npages = -1;
470 return false;
471 }
472 list[0] = prp_list;
473 iod->first_dma = prp_dma;
474 i = 0;
475 for (;;) {
476 if (i == page_size >> 3) {
477 __le64 *old_prp_list = prp_list;
478 prp_list = dma_pool_alloc(pool, GFP_ATOMIC, &prp_dma);
479 if (!prp_list)
480 return false;
481 list[iod->npages++] = prp_list;
482 prp_list[0] = old_prp_list[i - 1];
483 old_prp_list[i - 1] = cpu_to_le64(prp_dma);
484 i = 1;
485 }
486 prp_list[i++] = cpu_to_le64(dma_addr);
487 dma_len -= page_size;
488 dma_addr += page_size;
489 length -= page_size;
490 if (length <= 0)
491 break;
492 if (dma_len > 0)
493 continue;
494 BUG_ON(dma_len < 0);
495 sg = sg_next(sg);
496 dma_addr = sg_dma_address(sg);
497 dma_len = sg_dma_len(sg);
498 }
499
500 return true;
501 }
502
503 static int nvme_map_data(struct nvme_dev *dev, struct request *req,
504 unsigned size, struct nvme_command *cmnd)
505 {
506 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
507 struct request_queue *q = req->q;
508 enum dma_data_direction dma_dir = rq_data_dir(req) ?
509 DMA_TO_DEVICE : DMA_FROM_DEVICE;
510 int ret = BLK_MQ_RQ_QUEUE_ERROR;
511
512 sg_init_table(iod->sg, blk_rq_nr_phys_segments(req));
513 iod->nents = blk_rq_map_sg(q, req, iod->sg);
514 if (!iod->nents)
515 goto out;
516
517 ret = BLK_MQ_RQ_QUEUE_BUSY;
518 if (!dma_map_sg_attrs(dev->dev, iod->sg, iod->nents, dma_dir,
519 DMA_ATTR_NO_WARN))
520 goto out;
521
522 if (!nvme_setup_prps(dev, req, size))
523 goto out_unmap;
524
525 ret = BLK_MQ_RQ_QUEUE_ERROR;
526 if (blk_integrity_rq(req)) {
527 if (blk_rq_count_integrity_sg(q, req->bio) != 1)
528 goto out_unmap;
529
530 sg_init_table(&iod->meta_sg, 1);
531 if (blk_rq_map_integrity_sg(q, req->bio, &iod->meta_sg) != 1)
532 goto out_unmap;
533
534 if (rq_data_dir(req))
535 nvme_dif_remap(req, nvme_dif_prep);
536
537 if (!dma_map_sg(dev->dev, &iod->meta_sg, 1, dma_dir))
538 goto out_unmap;
539 }
540
541 cmnd->rw.dptr.prp1 = cpu_to_le64(sg_dma_address(iod->sg));
542 cmnd->rw.dptr.prp2 = cpu_to_le64(iod->first_dma);
543 if (blk_integrity_rq(req))
544 cmnd->rw.metadata = cpu_to_le64(sg_dma_address(&iod->meta_sg));
545 return BLK_MQ_RQ_QUEUE_OK;
546
547 out_unmap:
548 dma_unmap_sg(dev->dev, iod->sg, iod->nents, dma_dir);
549 out:
550 return ret;
551 }
552
553 static void nvme_unmap_data(struct nvme_dev *dev, struct request *req)
554 {
555 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
556 enum dma_data_direction dma_dir = rq_data_dir(req) ?
557 DMA_TO_DEVICE : DMA_FROM_DEVICE;
558
559 if (iod->nents) {
560 dma_unmap_sg(dev->dev, iod->sg, iod->nents, dma_dir);
561 if (blk_integrity_rq(req)) {
562 if (!rq_data_dir(req))
563 nvme_dif_remap(req, nvme_dif_complete);
564 dma_unmap_sg(dev->dev, &iod->meta_sg, 1, dma_dir);
565 }
566 }
567
568 nvme_cleanup_cmd(req);
569 nvme_free_iod(dev, req);
570 }
571
572 /*
573 * NOTE: ns is NULL when called on the admin queue.
574 */
575 static int nvme_queue_rq(struct blk_mq_hw_ctx *hctx,
576 const struct blk_mq_queue_data *bd)
577 {
578 struct nvme_ns *ns = hctx->queue->queuedata;
579 struct nvme_queue *nvmeq = hctx->driver_data;
580 struct nvme_dev *dev = nvmeq->dev;
581 struct request *req = bd->rq;
582 struct nvme_command cmnd;
583 unsigned map_len;
584 int ret = BLK_MQ_RQ_QUEUE_OK;
585
586 /*
587 * If formated with metadata, require the block layer provide a buffer
588 * unless this namespace is formated such that the metadata can be
589 * stripped/generated by the controller with PRACT=1.
590 */
591 if (ns && ns->ms && !blk_integrity_rq(req)) {
592 if (!(ns->pi_type && ns->ms == 8) &&
593 req->cmd_type != REQ_TYPE_DRV_PRIV) {
594 blk_mq_end_request(req, -EFAULT);
595 return BLK_MQ_RQ_QUEUE_OK;
596 }
597 }
598
599 ret = nvme_setup_cmd(ns, req, &cmnd);
600 if (ret != BLK_MQ_RQ_QUEUE_OK)
601 return ret;
602
603 map_len = nvme_map_len(req);
604 ret = nvme_init_iod(req, map_len, dev);
605 if (ret != BLK_MQ_RQ_QUEUE_OK)
606 goto out_free_cmd;
607
608 if (blk_rq_nr_phys_segments(req))
609 ret = nvme_map_data(dev, req, map_len, &cmnd);
610
611 if (ret != BLK_MQ_RQ_QUEUE_OK)
612 goto out_cleanup_iod;
613
614 blk_mq_start_request(req);
615
616 spin_lock_irq(&nvmeq->q_lock);
617 if (unlikely(nvmeq->cq_vector < 0)) {
618 if (ns && !test_bit(NVME_NS_DEAD, &ns->flags))
619 ret = BLK_MQ_RQ_QUEUE_BUSY;
620 else
621 ret = BLK_MQ_RQ_QUEUE_ERROR;
622 spin_unlock_irq(&nvmeq->q_lock);
623 goto out_cleanup_iod;
624 }
625 __nvme_submit_cmd(nvmeq, &cmnd);
626 nvme_process_cq(nvmeq);
627 spin_unlock_irq(&nvmeq->q_lock);
628 return BLK_MQ_RQ_QUEUE_OK;
629 out_cleanup_iod:
630 nvme_free_iod(dev, req);
631 out_free_cmd:
632 nvme_cleanup_cmd(req);
633 return ret;
634 }
635
636 static void nvme_complete_rq(struct request *req)
637 {
638 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
639 struct nvme_dev *dev = iod->nvmeq->dev;
640 int error = 0;
641
642 nvme_unmap_data(dev, req);
643
644 if (unlikely(req->errors)) {
645 if (nvme_req_needs_retry(req, req->errors)) {
646 req->retries++;
647 nvme_requeue_req(req);
648 return;
649 }
650
651 if (req->cmd_type == REQ_TYPE_DRV_PRIV)
652 error = req->errors;
653 else
654 error = nvme_error_status(req->errors);
655 }
656
657 if (unlikely(iod->aborted)) {
658 dev_warn(dev->ctrl.device,
659 "completing aborted command with status: %04x\n",
660 req->errors);
661 }
662
663 blk_mq_end_request(req, error);
664 }
665
666 /* We read the CQE phase first to check if the rest of the entry is valid */
667 static inline bool nvme_cqe_valid(struct nvme_queue *nvmeq, u16 head,
668 u16 phase)
669 {
670 return (le16_to_cpu(nvmeq->cqes[head].status) & 1) == phase;
671 }
672
673 static void __nvme_process_cq(struct nvme_queue *nvmeq, unsigned int *tag)
674 {
675 u16 head, phase;
676
677 head = nvmeq->cq_head;
678 phase = nvmeq->cq_phase;
679
680 while (nvme_cqe_valid(nvmeq, head, phase)) {
681 struct nvme_completion cqe = nvmeq->cqes[head];
682 struct request *req;
683
684 if (++head == nvmeq->q_depth) {
685 head = 0;
686 phase = !phase;
687 }
688
689 if (tag && *tag == cqe.command_id)
690 *tag = -1;
691
692 if (unlikely(cqe.command_id >= nvmeq->q_depth)) {
693 dev_warn(nvmeq->dev->ctrl.device,
694 "invalid id %d completed on queue %d\n",
695 cqe.command_id, le16_to_cpu(cqe.sq_id));
696 continue;
697 }
698
699 /*
700 * AEN requests are special as they don't time out and can
701 * survive any kind of queue freeze and often don't respond to
702 * aborts. We don't even bother to allocate a struct request
703 * for them but rather special case them here.
704 */
705 if (unlikely(nvmeq->qid == 0 &&
706 cqe.command_id >= NVME_AQ_BLKMQ_DEPTH)) {
707 nvme_complete_async_event(&nvmeq->dev->ctrl,
708 cqe.status, &cqe.result);
709 continue;
710 }
711
712 req = blk_mq_tag_to_rq(*nvmeq->tags, cqe.command_id);
713 nvme_req(req)->result = cqe.result;
714 blk_mq_complete_request(req, le16_to_cpu(cqe.status) >> 1);
715 }
716
717 if (head == nvmeq->cq_head && phase == nvmeq->cq_phase)
718 return;
719
720 if (likely(nvmeq->cq_vector >= 0))
721 writel(head, nvmeq->q_db + nvmeq->dev->db_stride);
722 nvmeq->cq_head = head;
723 nvmeq->cq_phase = phase;
724
725 nvmeq->cqe_seen = 1;
726 }
727
728 static void nvme_process_cq(struct nvme_queue *nvmeq)
729 {
730 __nvme_process_cq(nvmeq, NULL);
731 }
732
733 static irqreturn_t nvme_irq(int irq, void *data)
734 {
735 irqreturn_t result;
736 struct nvme_queue *nvmeq = data;
737 spin_lock(&nvmeq->q_lock);
738 nvme_process_cq(nvmeq);
739 result = nvmeq->cqe_seen ? IRQ_HANDLED : IRQ_NONE;
740 nvmeq->cqe_seen = 0;
741 spin_unlock(&nvmeq->q_lock);
742 return result;
743 }
744
745 static irqreturn_t nvme_irq_check(int irq, void *data)
746 {
747 struct nvme_queue *nvmeq = data;
748 if (nvme_cqe_valid(nvmeq, nvmeq->cq_head, nvmeq->cq_phase))
749 return IRQ_WAKE_THREAD;
750 return IRQ_NONE;
751 }
752
753 static int nvme_poll(struct blk_mq_hw_ctx *hctx, unsigned int tag)
754 {
755 struct nvme_queue *nvmeq = hctx->driver_data;
756
757 if (nvme_cqe_valid(nvmeq, nvmeq->cq_head, nvmeq->cq_phase)) {
758 spin_lock_irq(&nvmeq->q_lock);
759 __nvme_process_cq(nvmeq, &tag);
760 spin_unlock_irq(&nvmeq->q_lock);
761
762 if (tag == -1)
763 return 1;
764 }
765
766 return 0;
767 }
768
769 static void nvme_pci_submit_async_event(struct nvme_ctrl *ctrl, int aer_idx)
770 {
771 struct nvme_dev *dev = to_nvme_dev(ctrl);
772 struct nvme_queue *nvmeq = dev->queues[0];
773 struct nvme_command c;
774
775 memset(&c, 0, sizeof(c));
776 c.common.opcode = nvme_admin_async_event;
777 c.common.command_id = NVME_AQ_BLKMQ_DEPTH + aer_idx;
778
779 spin_lock_irq(&nvmeq->q_lock);
780 __nvme_submit_cmd(nvmeq, &c);
781 spin_unlock_irq(&nvmeq->q_lock);
782 }
783
784 static int adapter_delete_queue(struct nvme_dev *dev, u8 opcode, u16 id)
785 {
786 struct nvme_command c;
787
788 memset(&c, 0, sizeof(c));
789 c.delete_queue.opcode = opcode;
790 c.delete_queue.qid = cpu_to_le16(id);
791
792 return nvme_submit_sync_cmd(dev->ctrl.admin_q, &c, NULL, 0);
793 }
794
795 static int adapter_alloc_cq(struct nvme_dev *dev, u16 qid,
796 struct nvme_queue *nvmeq)
797 {
798 struct nvme_command c;
799 int flags = NVME_QUEUE_PHYS_CONTIG | NVME_CQ_IRQ_ENABLED;
800
801 /*
802 * Note: we (ab)use the fact the the prp fields survive if no data
803 * is attached to the request.
804 */
805 memset(&c, 0, sizeof(c));
806 c.create_cq.opcode = nvme_admin_create_cq;
807 c.create_cq.prp1 = cpu_to_le64(nvmeq->cq_dma_addr);
808 c.create_cq.cqid = cpu_to_le16(qid);
809 c.create_cq.qsize = cpu_to_le16(nvmeq->q_depth - 1);
810 c.create_cq.cq_flags = cpu_to_le16(flags);
811 c.create_cq.irq_vector = cpu_to_le16(nvmeq->cq_vector);
812
813 return nvme_submit_sync_cmd(dev->ctrl.admin_q, &c, NULL, 0);
814 }
815
816 static int adapter_alloc_sq(struct nvme_dev *dev, u16 qid,
817 struct nvme_queue *nvmeq)
818 {
819 struct nvme_command c;
820 int flags = NVME_QUEUE_PHYS_CONTIG | NVME_SQ_PRIO_MEDIUM;
821
822 /*
823 * Note: we (ab)use the fact the the prp fields survive if no data
824 * is attached to the request.
825 */
826 memset(&c, 0, sizeof(c));
827 c.create_sq.opcode = nvme_admin_create_sq;
828 c.create_sq.prp1 = cpu_to_le64(nvmeq->sq_dma_addr);
829 c.create_sq.sqid = cpu_to_le16(qid);
830 c.create_sq.qsize = cpu_to_le16(nvmeq->q_depth - 1);
831 c.create_sq.sq_flags = cpu_to_le16(flags);
832 c.create_sq.cqid = cpu_to_le16(qid);
833
834 return nvme_submit_sync_cmd(dev->ctrl.admin_q, &c, NULL, 0);
835 }
836
837 static int adapter_delete_cq(struct nvme_dev *dev, u16 cqid)
838 {
839 return adapter_delete_queue(dev, nvme_admin_delete_cq, cqid);
840 }
841
842 static int adapter_delete_sq(struct nvme_dev *dev, u16 sqid)
843 {
844 return adapter_delete_queue(dev, nvme_admin_delete_sq, sqid);
845 }
846
847 static void abort_endio(struct request *req, int error)
848 {
849 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
850 struct nvme_queue *nvmeq = iod->nvmeq;
851 u16 status = req->errors;
852
853 dev_warn(nvmeq->dev->ctrl.device, "Abort status: 0x%x", status);
854 atomic_inc(&nvmeq->dev->ctrl.abort_limit);
855 blk_mq_free_request(req);
856 }
857
858 static enum blk_eh_timer_return nvme_timeout(struct request *req, bool reserved)
859 {
860 struct nvme_iod *iod = blk_mq_rq_to_pdu(req);
861 struct nvme_queue *nvmeq = iod->nvmeq;
862 struct nvme_dev *dev = nvmeq->dev;
863 struct request *abort_req;
864 struct nvme_command cmd;
865
866 /*
867 * Shutdown immediately if controller times out while starting. The
868 * reset work will see the pci device disabled when it gets the forced
869 * cancellation error. All outstanding requests are completed on
870 * shutdown, so we return BLK_EH_HANDLED.
871 */
872 if (dev->ctrl.state == NVME_CTRL_RESETTING) {
873 dev_warn(dev->ctrl.device,
874 "I/O %d QID %d timeout, disable controller\n",
875 req->tag, nvmeq->qid);
876 nvme_dev_disable(dev, false);
877 req->errors = NVME_SC_CANCELLED;
878 return BLK_EH_HANDLED;
879 }
880
881 /*
882 * Shutdown the controller immediately and schedule a reset if the
883 * command was already aborted once before and still hasn't been
884 * returned to the driver, or if this is the admin queue.
885 */
886 if (!nvmeq->qid || iod->aborted) {
887 dev_warn(dev->ctrl.device,
888 "I/O %d QID %d timeout, reset controller\n",
889 req->tag, nvmeq->qid);
890 nvme_dev_disable(dev, false);
891 nvme_reset(dev);
892
893 /*
894 * Mark the request as handled, since the inline shutdown
895 * forces all outstanding requests to complete.
896 */
897 req->errors = NVME_SC_CANCELLED;
898 return BLK_EH_HANDLED;
899 }
900
901 iod->aborted = 1;
902
903 if (atomic_dec_return(&dev->ctrl.abort_limit) < 0) {
904 atomic_inc(&dev->ctrl.abort_limit);
905 return BLK_EH_RESET_TIMER;
906 }
907
908 memset(&cmd, 0, sizeof(cmd));
909 cmd.abort.opcode = nvme_admin_abort_cmd;
910 cmd.abort.cid = req->tag;
911 cmd.abort.sqid = cpu_to_le16(nvmeq->qid);
912
913 dev_warn(nvmeq->dev->ctrl.device,
914 "I/O %d QID %d timeout, aborting\n",
915 req->tag, nvmeq->qid);
916
917 abort_req = nvme_alloc_request(dev->ctrl.admin_q, &cmd,
918 BLK_MQ_REQ_NOWAIT, NVME_QID_ANY);
919 if (IS_ERR(abort_req)) {
920 atomic_inc(&dev->ctrl.abort_limit);
921 return BLK_EH_RESET_TIMER;
922 }
923
924 abort_req->timeout = ADMIN_TIMEOUT;
925 abort_req->end_io_data = NULL;
926 blk_execute_rq_nowait(abort_req->q, NULL, abort_req, 0, abort_endio);
927
928 /*
929 * The aborted req will be completed on receiving the abort req.
930 * We enable the timer again. If hit twice, it'll cause a device reset,
931 * as the device then is in a faulty state.
932 */
933 return BLK_EH_RESET_TIMER;
934 }
935
936 static void nvme_free_queue(struct nvme_queue *nvmeq)
937 {
938 dma_free_coherent(nvmeq->q_dmadev, CQ_SIZE(nvmeq->q_depth),
939 (void *)nvmeq->cqes, nvmeq->cq_dma_addr);
940 if (nvmeq->sq_cmds)
941 dma_free_coherent(nvmeq->q_dmadev, SQ_SIZE(nvmeq->q_depth),
942 nvmeq->sq_cmds, nvmeq->sq_dma_addr);
943 kfree(nvmeq);
944 }
945
946 static void nvme_free_queues(struct nvme_dev *dev, int lowest)
947 {
948 int i;
949
950 for (i = dev->queue_count - 1; i >= lowest; i--) {
951 struct nvme_queue *nvmeq = dev->queues[i];
952 dev->queue_count--;
953 dev->queues[i] = NULL;
954 nvme_free_queue(nvmeq);
955 }
956 }
957
958 /**
959 * nvme_suspend_queue - put queue into suspended state
960 * @nvmeq - queue to suspend
961 */
962 static int nvme_suspend_queue(struct nvme_queue *nvmeq)
963 {
964 int vector;
965
966 spin_lock_irq(&nvmeq->q_lock);
967 if (nvmeq->cq_vector == -1) {
968 spin_unlock_irq(&nvmeq->q_lock);
969 return 1;
970 }
971 vector = nvmeq_irq(nvmeq);
972 nvmeq->dev->online_queues--;
973 nvmeq->cq_vector = -1;
974 spin_unlock_irq(&nvmeq->q_lock);
975
976 if (!nvmeq->qid && nvmeq->dev->ctrl.admin_q)
977 blk_mq_stop_hw_queues(nvmeq->dev->ctrl.admin_q);
978
979 free_irq(vector, nvmeq);
980
981 return 0;
982 }
983
984 static void nvme_disable_admin_queue(struct nvme_dev *dev, bool shutdown)
985 {
986 struct nvme_queue *nvmeq = dev->queues[0];
987
988 if (!nvmeq)
989 return;
990 if (nvme_suspend_queue(nvmeq))
991 return;
992
993 if (shutdown)
994 nvme_shutdown_ctrl(&dev->ctrl);
995 else
996 nvme_disable_ctrl(&dev->ctrl, lo_hi_readq(
997 dev->bar + NVME_REG_CAP));
998
999 spin_lock_irq(&nvmeq->q_lock);
1000 nvme_process_cq(nvmeq);
1001 spin_unlock_irq(&nvmeq->q_lock);
1002 }
1003
1004 static int nvme_cmb_qdepth(struct nvme_dev *dev, int nr_io_queues,
1005 int entry_size)
1006 {
1007 int q_depth = dev->q_depth;
1008 unsigned q_size_aligned = roundup(q_depth * entry_size,
1009 dev->ctrl.page_size);
1010
1011 if (q_size_aligned * nr_io_queues > dev->cmb_size) {
1012 u64 mem_per_q = div_u64(dev->cmb_size, nr_io_queues);
1013 mem_per_q = round_down(mem_per_q, dev->ctrl.page_size);
1014 q_depth = div_u64(mem_per_q, entry_size);
1015
1016 /*
1017 * Ensure the reduced q_depth is above some threshold where it
1018 * would be better to map queues in system memory with the
1019 * original depth
1020 */
1021 if (q_depth < 64)
1022 return -ENOMEM;
1023 }
1024
1025 return q_depth;
1026 }
1027
1028 static int nvme_alloc_sq_cmds(struct nvme_dev *dev, struct nvme_queue *nvmeq,
1029 int qid, int depth)
1030 {
1031 if (qid && dev->cmb && use_cmb_sqes && NVME_CMB_SQS(dev->cmbsz)) {
1032 unsigned offset = (qid - 1) * roundup(SQ_SIZE(depth),
1033 dev->ctrl.page_size);
1034 nvmeq->sq_dma_addr = dev->cmb_dma_addr + offset;
1035 nvmeq->sq_cmds_io = dev->cmb + offset;
1036 } else {
1037 nvmeq->sq_cmds = dma_alloc_coherent(dev->dev, SQ_SIZE(depth),
1038 &nvmeq->sq_dma_addr, GFP_KERNEL);
1039 if (!nvmeq->sq_cmds)
1040 return -ENOMEM;
1041 }
1042
1043 return 0;
1044 }
1045
1046 static struct nvme_queue *nvme_alloc_queue(struct nvme_dev *dev, int qid,
1047 int depth)
1048 {
1049 struct nvme_queue *nvmeq = kzalloc(sizeof(*nvmeq), GFP_KERNEL);
1050 if (!nvmeq)
1051 return NULL;
1052
1053 nvmeq->cqes = dma_zalloc_coherent(dev->dev, CQ_SIZE(depth),
1054 &nvmeq->cq_dma_addr, GFP_KERNEL);
1055 if (!nvmeq->cqes)
1056 goto free_nvmeq;
1057
1058 if (nvme_alloc_sq_cmds(dev, nvmeq, qid, depth))
1059 goto free_cqdma;
1060
1061 nvmeq->q_dmadev = dev->dev;
1062 nvmeq->dev = dev;
1063 snprintf(nvmeq->irqname, sizeof(nvmeq->irqname), "nvme%dq%d",
1064 dev->ctrl.instance, qid);
1065 spin_lock_init(&nvmeq->q_lock);
1066 nvmeq->cq_head = 0;
1067 nvmeq->cq_phase = 1;
1068 nvmeq->q_db = &dev->dbs[qid * 2 * dev->db_stride];
1069 nvmeq->q_depth = depth;
1070 nvmeq->qid = qid;
1071 nvmeq->cq_vector = -1;
1072 dev->queues[qid] = nvmeq;
1073 dev->queue_count++;
1074
1075 return nvmeq;
1076
1077 free_cqdma:
1078 dma_free_coherent(dev->dev, CQ_SIZE(depth), (void *)nvmeq->cqes,
1079 nvmeq->cq_dma_addr);
1080 free_nvmeq:
1081 kfree(nvmeq);
1082 return NULL;
1083 }
1084
1085 static int queue_request_irq(struct nvme_queue *nvmeq)
1086 {
1087 if (use_threaded_interrupts)
1088 return request_threaded_irq(nvmeq_irq(nvmeq), nvme_irq_check,
1089 nvme_irq, IRQF_SHARED, nvmeq->irqname, nvmeq);
1090 else
1091 return request_irq(nvmeq_irq(nvmeq), nvme_irq, IRQF_SHARED,
1092 nvmeq->irqname, nvmeq);
1093 }
1094
1095 static void nvme_init_queue(struct nvme_queue *nvmeq, u16 qid)
1096 {
1097 struct nvme_dev *dev = nvmeq->dev;
1098
1099 spin_lock_irq(&nvmeq->q_lock);
1100 nvmeq->sq_tail = 0;
1101 nvmeq->cq_head = 0;
1102 nvmeq->cq_phase = 1;
1103 nvmeq->q_db = &dev->dbs[qid * 2 * dev->db_stride];
1104 memset((void *)nvmeq->cqes, 0, CQ_SIZE(nvmeq->q_depth));
1105 dev->online_queues++;
1106 spin_unlock_irq(&nvmeq->q_lock);
1107 }
1108
1109 static int nvme_create_queue(struct nvme_queue *nvmeq, int qid)
1110 {
1111 struct nvme_dev *dev = nvmeq->dev;
1112 int result;
1113
1114 nvmeq->cq_vector = qid - 1;
1115 result = adapter_alloc_cq(dev, qid, nvmeq);
1116 if (result < 0)
1117 return result;
1118
1119 result = adapter_alloc_sq(dev, qid, nvmeq);
1120 if (result < 0)
1121 goto release_cq;
1122
1123 result = queue_request_irq(nvmeq);
1124 if (result < 0)
1125 goto release_sq;
1126
1127 nvme_init_queue(nvmeq, qid);
1128 return result;
1129
1130 release_sq:
1131 adapter_delete_sq(dev, qid);
1132 release_cq:
1133 adapter_delete_cq(dev, qid);
1134 return result;
1135 }
1136
1137 static struct blk_mq_ops nvme_mq_admin_ops = {
1138 .queue_rq = nvme_queue_rq,
1139 .complete = nvme_complete_rq,
1140 .init_hctx = nvme_admin_init_hctx,
1141 .exit_hctx = nvme_admin_exit_hctx,
1142 .init_request = nvme_admin_init_request,
1143 .timeout = nvme_timeout,
1144 };
1145
1146 static struct blk_mq_ops nvme_mq_ops = {
1147 .queue_rq = nvme_queue_rq,
1148 .complete = nvme_complete_rq,
1149 .init_hctx = nvme_init_hctx,
1150 .init_request = nvme_init_request,
1151 .map_queues = nvme_pci_map_queues,
1152 .timeout = nvme_timeout,
1153 .poll = nvme_poll,
1154 };
1155
1156 static void nvme_dev_remove_admin(struct nvme_dev *dev)
1157 {
1158 if (dev->ctrl.admin_q && !blk_queue_dying(dev->ctrl.admin_q)) {
1159 /*
1160 * If the controller was reset during removal, it's possible
1161 * user requests may be waiting on a stopped queue. Start the
1162 * queue to flush these to completion.
1163 */
1164 blk_mq_start_stopped_hw_queues(dev->ctrl.admin_q, true);
1165 blk_cleanup_queue(dev->ctrl.admin_q);
1166 blk_mq_free_tag_set(&dev->admin_tagset);
1167 }
1168 }
1169
1170 static int nvme_alloc_admin_tags(struct nvme_dev *dev)
1171 {
1172 if (!dev->ctrl.admin_q) {
1173 dev->admin_tagset.ops = &nvme_mq_admin_ops;
1174 dev->admin_tagset.nr_hw_queues = 1;
1175
1176 /*
1177 * Subtract one to leave an empty queue entry for 'Full Queue'
1178 * condition. See NVM-Express 1.2 specification, section 4.1.2.
1179 */
1180 dev->admin_tagset.queue_depth = NVME_AQ_BLKMQ_DEPTH - 1;
1181 dev->admin_tagset.timeout = ADMIN_TIMEOUT;
1182 dev->admin_tagset.numa_node = dev_to_node(dev->dev);
1183 dev->admin_tagset.cmd_size = nvme_cmd_size(dev);
1184 dev->admin_tagset.flags = BLK_MQ_F_NO_SCHED;
1185 dev->admin_tagset.driver_data = dev;
1186
1187 if (blk_mq_alloc_tag_set(&dev->admin_tagset))
1188 return -ENOMEM;
1189
1190 dev->ctrl.admin_q = blk_mq_init_queue(&dev->admin_tagset);
1191 if (IS_ERR(dev->ctrl.admin_q)) {
1192 blk_mq_free_tag_set(&dev->admin_tagset);
1193 return -ENOMEM;
1194 }
1195 if (!blk_get_queue(dev->ctrl.admin_q)) {
1196 nvme_dev_remove_admin(dev);
1197 dev->ctrl.admin_q = NULL;
1198 return -ENODEV;
1199 }
1200 } else
1201 blk_mq_start_stopped_hw_queues(dev->ctrl.admin_q, true);
1202
1203 return 0;
1204 }
1205
1206 static int nvme_configure_admin_queue(struct nvme_dev *dev)
1207 {
1208 int result;
1209 u32 aqa;
1210 u64 cap = lo_hi_readq(dev->bar + NVME_REG_CAP);
1211 struct nvme_queue *nvmeq;
1212
1213 dev->subsystem = readl(dev->bar + NVME_REG_VS) >= NVME_VS(1, 1, 0) ?
1214 NVME_CAP_NSSRC(cap) : 0;
1215
1216 if (dev->subsystem &&
1217 (readl(dev->bar + NVME_REG_CSTS) & NVME_CSTS_NSSRO))
1218 writel(NVME_CSTS_NSSRO, dev->bar + NVME_REG_CSTS);
1219
1220 result = nvme_disable_ctrl(&dev->ctrl, cap);
1221 if (result < 0)
1222 return result;
1223
1224 nvmeq = dev->queues[0];
1225 if (!nvmeq) {
1226 nvmeq = nvme_alloc_queue(dev, 0, NVME_AQ_DEPTH);
1227 if (!nvmeq)
1228 return -ENOMEM;
1229 }
1230
1231 aqa = nvmeq->q_depth - 1;
1232 aqa |= aqa << 16;
1233
1234 writel(aqa, dev->bar + NVME_REG_AQA);
1235 lo_hi_writeq(nvmeq->sq_dma_addr, dev->bar + NVME_REG_ASQ);
1236 lo_hi_writeq(nvmeq->cq_dma_addr, dev->bar + NVME_REG_ACQ);
1237
1238 result = nvme_enable_ctrl(&dev->ctrl, cap);
1239 if (result)
1240 return result;
1241
1242 nvmeq->cq_vector = 0;
1243 result = queue_request_irq(nvmeq);
1244 if (result) {
1245 nvmeq->cq_vector = -1;
1246 return result;
1247 }
1248
1249 return result;
1250 }
1251
1252 static bool nvme_should_reset(struct nvme_dev *dev, u32 csts)
1253 {
1254
1255 /* If true, indicates loss of adapter communication, possibly by a
1256 * NVMe Subsystem reset.
1257 */
1258 bool nssro = dev->subsystem && (csts & NVME_CSTS_NSSRO);
1259
1260 /* If there is a reset ongoing, we shouldn't reset again. */
1261 if (work_busy(&dev->reset_work))
1262 return false;
1263
1264 /* We shouldn't reset unless the controller is on fatal error state
1265 * _or_ if we lost the communication with it.
1266 */
1267 if (!(csts & NVME_CSTS_CFS) && !nssro)
1268 return false;
1269
1270 /* If PCI error recovery process is happening, we cannot reset or
1271 * the recovery mechanism will surely fail.
1272 */
1273 if (pci_channel_offline(to_pci_dev(dev->dev)))
1274 return false;
1275
1276 return true;
1277 }
1278
1279 static void nvme_warn_reset(struct nvme_dev *dev, u32 csts)
1280 {
1281 /* Read a config register to help see what died. */
1282 u16 pci_status;
1283 int result;
1284
1285 result = pci_read_config_word(to_pci_dev(dev->dev), PCI_STATUS,
1286 &pci_status);
1287 if (result == PCIBIOS_SUCCESSFUL)
1288 dev_warn(dev->dev,
1289 "controller is down; will reset: CSTS=0x%x, PCI_STATUS=0x%hx\n",
1290 csts, pci_status);
1291 else
1292 dev_warn(dev->dev,
1293 "controller is down; will reset: CSTS=0x%x, PCI_STATUS read failed (%d)\n",
1294 csts, result);
1295 }
1296
1297 static void nvme_watchdog_timer(unsigned long data)
1298 {
1299 struct nvme_dev *dev = (struct nvme_dev *)data;
1300 u32 csts = readl(dev->bar + NVME_REG_CSTS);
1301
1302 /* Skip controllers under certain specific conditions. */
1303 if (nvme_should_reset(dev, csts)) {
1304 if (!nvme_reset(dev))
1305 nvme_warn_reset(dev, csts);
1306 return;
1307 }
1308
1309 mod_timer(&dev->watchdog_timer, round_jiffies(jiffies + HZ));
1310 }
1311
1312 static int nvme_create_io_queues(struct nvme_dev *dev)
1313 {
1314 unsigned i, max;
1315 int ret = 0;
1316
1317 for (i = dev->queue_count; i <= dev->max_qid; i++) {
1318 if (!nvme_alloc_queue(dev, i, dev->q_depth)) {
1319 ret = -ENOMEM;
1320 break;
1321 }
1322 }
1323
1324 max = min(dev->max_qid, dev->queue_count - 1);
1325 for (i = dev->online_queues; i <= max; i++) {
1326 ret = nvme_create_queue(dev->queues[i], i);
1327 if (ret)
1328 break;
1329 }
1330
1331 /*
1332 * Ignore failing Create SQ/CQ commands, we can continue with less
1333 * than the desired aount of queues, and even a controller without
1334 * I/O queues an still be used to issue admin commands. This might
1335 * be useful to upgrade a buggy firmware for example.
1336 */
1337 return ret >= 0 ? 0 : ret;
1338 }
1339
1340 static ssize_t nvme_cmb_show(struct device *dev,
1341 struct device_attribute *attr,
1342 char *buf)
1343 {
1344 struct nvme_dev *ndev = to_nvme_dev(dev_get_drvdata(dev));
1345
1346 return scnprintf(buf, PAGE_SIZE, "cmbloc : x%08x\ncmbsz : x%08x\n",
1347 ndev->cmbloc, ndev->cmbsz);
1348 }
1349 static DEVICE_ATTR(cmb, S_IRUGO, nvme_cmb_show, NULL);
1350
1351 static void __iomem *nvme_map_cmb(struct nvme_dev *dev)
1352 {
1353 u64 szu, size, offset;
1354 resource_size_t bar_size;
1355 struct pci_dev *pdev = to_pci_dev(dev->dev);
1356 void __iomem *cmb;
1357 dma_addr_t dma_addr;
1358
1359 dev->cmbsz = readl(dev->bar + NVME_REG_CMBSZ);
1360 if (!(NVME_CMB_SZ(dev->cmbsz)))
1361 return NULL;
1362 dev->cmbloc = readl(dev->bar + NVME_REG_CMBLOC);
1363
1364 if (!use_cmb_sqes)
1365 return NULL;
1366
1367 szu = (u64)1 << (12 + 4 * NVME_CMB_SZU(dev->cmbsz));
1368 size = szu * NVME_CMB_SZ(dev->cmbsz);
1369 offset = szu * NVME_CMB_OFST(dev->cmbloc);
1370 bar_size = pci_resource_len(pdev, NVME_CMB_BIR(dev->cmbloc));
1371
1372 if (offset > bar_size)
1373 return NULL;
1374
1375 /*
1376 * Controllers may support a CMB size larger than their BAR,
1377 * for example, due to being behind a bridge. Reduce the CMB to
1378 * the reported size of the BAR
1379 */
1380 if (size > bar_size - offset)
1381 size = bar_size - offset;
1382
1383 dma_addr = pci_resource_start(pdev, NVME_CMB_BIR(dev->cmbloc)) + offset;
1384 cmb = ioremap_wc(dma_addr, size);
1385 if (!cmb)
1386 return NULL;
1387
1388 dev->cmb_dma_addr = dma_addr;
1389 dev->cmb_size = size;
1390 return cmb;
1391 }
1392
1393 static inline void nvme_release_cmb(struct nvme_dev *dev)
1394 {
1395 if (dev->cmb) {
1396 iounmap(dev->cmb);
1397 dev->cmb = NULL;
1398 }
1399 }
1400
1401 static size_t db_bar_size(struct nvme_dev *dev, unsigned nr_io_queues)
1402 {
1403 return 4096 + ((nr_io_queues + 1) * 8 * dev->db_stride);
1404 }
1405
1406 static int nvme_setup_io_queues(struct nvme_dev *dev)
1407 {
1408 struct nvme_queue *adminq = dev->queues[0];
1409 struct pci_dev *pdev = to_pci_dev(dev->dev);
1410 int result, nr_io_queues, size;
1411
1412 nr_io_queues = num_online_cpus();
1413 result = nvme_set_queue_count(&dev->ctrl, &nr_io_queues);
1414 if (result < 0)
1415 return result;
1416
1417 if (nr_io_queues == 0)
1418 return 0;
1419
1420 if (dev->cmb && NVME_CMB_SQS(dev->cmbsz)) {
1421 result = nvme_cmb_qdepth(dev, nr_io_queues,
1422 sizeof(struct nvme_command));
1423 if (result > 0)
1424 dev->q_depth = result;
1425 else
1426 nvme_release_cmb(dev);
1427 }
1428
1429 size = db_bar_size(dev, nr_io_queues);
1430 if (size > 8192) {
1431 iounmap(dev->bar);
1432 do {
1433 dev->bar = ioremap(pci_resource_start(pdev, 0), size);
1434 if (dev->bar)
1435 break;
1436 if (!--nr_io_queues)
1437 return -ENOMEM;
1438 size = db_bar_size(dev, nr_io_queues);
1439 } while (1);
1440 dev->dbs = dev->bar + 4096;
1441 adminq->q_db = dev->dbs;
1442 }
1443
1444 /* Deregister the admin queue's interrupt */
1445 free_irq(pci_irq_vector(pdev, 0), adminq);
1446
1447 /*
1448 * If we enable msix early due to not intx, disable it again before
1449 * setting up the full range we need.
1450 */
1451 pci_free_irq_vectors(pdev);
1452 nr_io_queues = pci_alloc_irq_vectors(pdev, 1, nr_io_queues,
1453 PCI_IRQ_ALL_TYPES | PCI_IRQ_AFFINITY);
1454 if (nr_io_queues <= 0)
1455 return -EIO;
1456 dev->max_qid = nr_io_queues;
1457
1458 /*
1459 * Should investigate if there's a performance win from allocating
1460 * more queues than interrupt vectors; it might allow the submission
1461 * path to scale better, even if the receive path is limited by the
1462 * number of interrupts.
1463 */
1464
1465 result = queue_request_irq(adminq);
1466 if (result) {
1467 adminq->cq_vector = -1;
1468 return result;
1469 }
1470 return nvme_create_io_queues(dev);
1471 }
1472
1473 static void nvme_del_queue_end(struct request *req, int error)
1474 {
1475 struct nvme_queue *nvmeq = req->end_io_data;
1476
1477 blk_mq_free_request(req);
1478 complete(&nvmeq->dev->ioq_wait);
1479 }
1480
1481 static void nvme_del_cq_end(struct request *req, int error)
1482 {
1483 struct nvme_queue *nvmeq = req->end_io_data;
1484
1485 if (!error) {
1486 unsigned long flags;
1487
1488 /*
1489 * We might be called with the AQ q_lock held
1490 * and the I/O queue q_lock should always
1491 * nest inside the AQ one.
1492 */
1493 spin_lock_irqsave_nested(&nvmeq->q_lock, flags,
1494 SINGLE_DEPTH_NESTING);
1495 nvme_process_cq(nvmeq);
1496 spin_unlock_irqrestore(&nvmeq->q_lock, flags);
1497 }
1498
1499 nvme_del_queue_end(req, error);
1500 }
1501
1502 static int nvme_delete_queue(struct nvme_queue *nvmeq, u8 opcode)
1503 {
1504 struct request_queue *q = nvmeq->dev->ctrl.admin_q;
1505 struct request *req;
1506 struct nvme_command cmd;
1507
1508 memset(&cmd, 0, sizeof(cmd));
1509 cmd.delete_queue.opcode = opcode;
1510 cmd.delete_queue.qid = cpu_to_le16(nvmeq->qid);
1511
1512 req = nvme_alloc_request(q, &cmd, BLK_MQ_REQ_NOWAIT, NVME_QID_ANY);
1513 if (IS_ERR(req))
1514 return PTR_ERR(req);
1515
1516 req->timeout = ADMIN_TIMEOUT;
1517 req->end_io_data = nvmeq;
1518
1519 blk_execute_rq_nowait(q, NULL, req, false,
1520 opcode == nvme_admin_delete_cq ?
1521 nvme_del_cq_end : nvme_del_queue_end);
1522 return 0;
1523 }
1524
1525 static void nvme_disable_io_queues(struct nvme_dev *dev, int queues)
1526 {
1527 int pass;
1528 unsigned long timeout;
1529 u8 opcode = nvme_admin_delete_sq;
1530
1531 for (pass = 0; pass < 2; pass++) {
1532 int sent = 0, i = queues;
1533
1534 reinit_completion(&dev->ioq_wait);
1535 retry:
1536 timeout = ADMIN_TIMEOUT;
1537 for (; i > 0; i--, sent++)
1538 if (nvme_delete_queue(dev->queues[i], opcode))
1539 break;
1540
1541 while (sent--) {
1542 timeout = wait_for_completion_io_timeout(&dev->ioq_wait, timeout);
1543 if (timeout == 0)
1544 return;
1545 if (i)
1546 goto retry;
1547 }
1548 opcode = nvme_admin_delete_cq;
1549 }
1550 }
1551
1552 /*
1553 * Return: error value if an error occurred setting up the queues or calling
1554 * Identify Device. 0 if these succeeded, even if adding some of the
1555 * namespaces failed. At the moment, these failures are silent. TBD which
1556 * failures should be reported.
1557 */
1558 static int nvme_dev_add(struct nvme_dev *dev)
1559 {
1560 if (!dev->ctrl.tagset) {
1561 dev->tagset.ops = &nvme_mq_ops;
1562 dev->tagset.nr_hw_queues = dev->online_queues - 1;
1563 dev->tagset.timeout = NVME_IO_TIMEOUT;
1564 dev->tagset.numa_node = dev_to_node(dev->dev);
1565 dev->tagset.queue_depth =
1566 min_t(int, dev->q_depth, BLK_MQ_MAX_DEPTH) - 1;
1567 dev->tagset.cmd_size = nvme_cmd_size(dev);
1568 dev->tagset.flags = BLK_MQ_F_SHOULD_MERGE;
1569 dev->tagset.driver_data = dev;
1570
1571 if (blk_mq_alloc_tag_set(&dev->tagset))
1572 return 0;
1573 dev->ctrl.tagset = &dev->tagset;
1574 } else {
1575 blk_mq_update_nr_hw_queues(&dev->tagset, dev->online_queues - 1);
1576
1577 /* Free previously allocated queues that are no longer usable */
1578 nvme_free_queues(dev, dev->online_queues);
1579 }
1580
1581 return 0;
1582 }
1583
1584 static int nvme_pci_enable(struct nvme_dev *dev)
1585 {
1586 u64 cap;
1587 int result = -ENOMEM;
1588 struct pci_dev *pdev = to_pci_dev(dev->dev);
1589
1590 if (pci_enable_device_mem(pdev))
1591 return result;
1592
1593 pci_set_master(pdev);
1594
1595 if (dma_set_mask_and_coherent(dev->dev, DMA_BIT_MASK(64)) &&
1596 dma_set_mask_and_coherent(dev->dev, DMA_BIT_MASK(32)))
1597 goto disable;
1598
1599 if (readl(dev->bar + NVME_REG_CSTS) == -1) {
1600 result = -ENODEV;
1601 goto disable;
1602 }
1603
1604 /*
1605 * Some devices and/or platforms don't advertise or work with INTx
1606 * interrupts. Pre-enable a single MSIX or MSI vec for setup. We'll
1607 * adjust this later.
1608 */
1609 result = pci_alloc_irq_vectors(pdev, 1, 1, PCI_IRQ_ALL_TYPES);
1610 if (result < 0)
1611 return result;
1612
1613 cap = lo_hi_readq(dev->bar + NVME_REG_CAP);
1614
1615 dev->q_depth = min_t(int, NVME_CAP_MQES(cap) + 1, NVME_Q_DEPTH);
1616 dev->db_stride = 1 << NVME_CAP_STRIDE(cap);
1617 dev->dbs = dev->bar + 4096;
1618
1619 /*
1620 * Temporary fix for the Apple controller found in the MacBook8,1 and
1621 * some MacBook7,1 to avoid controller resets and data loss.
1622 */
1623 if (pdev->vendor == PCI_VENDOR_ID_APPLE && pdev->device == 0x2001) {
1624 dev->q_depth = 2;
1625 dev_warn(dev->dev, "detected Apple NVMe controller, set "
1626 "queue depth=%u to work around controller resets\n",
1627 dev->q_depth);
1628 }
1629
1630 /*
1631 * CMBs can currently only exist on >=1.2 PCIe devices. We only
1632 * populate sysfs if a CMB is implemented. Note that we add the
1633 * CMB attribute to the nvme_ctrl kobj which removes the need to remove
1634 * it on exit. Since nvme_dev_attrs_group has no name we can pass
1635 * NULL as final argument to sysfs_add_file_to_group.
1636 */
1637
1638 if (readl(dev->bar + NVME_REG_VS) >= NVME_VS(1, 2, 0)) {
1639 dev->cmb = nvme_map_cmb(dev);
1640
1641 if (dev->cmbsz) {
1642 if (sysfs_add_file_to_group(&dev->ctrl.device->kobj,
1643 &dev_attr_cmb.attr, NULL))
1644 dev_warn(dev->dev,
1645 "failed to add sysfs attribute for CMB\n");
1646 }
1647 }
1648
1649 pci_enable_pcie_error_reporting(pdev);
1650 pci_save_state(pdev);
1651 return 0;
1652
1653 disable:
1654 pci_disable_device(pdev);
1655 return result;
1656 }
1657
1658 static void nvme_dev_unmap(struct nvme_dev *dev)
1659 {
1660 if (dev->bar)
1661 iounmap(dev->bar);
1662 pci_release_mem_regions(to_pci_dev(dev->dev));
1663 }
1664
1665 static void nvme_pci_disable(struct nvme_dev *dev)
1666 {
1667 struct pci_dev *pdev = to_pci_dev(dev->dev);
1668
1669 pci_free_irq_vectors(pdev);
1670
1671 if (pci_is_enabled(pdev)) {
1672 pci_disable_pcie_error_reporting(pdev);
1673 pci_disable_device(pdev);
1674 }
1675 }
1676
1677 static void nvme_dev_disable(struct nvme_dev *dev, bool shutdown)
1678 {
1679 int i, queues;
1680 u32 csts = -1;
1681
1682 del_timer_sync(&dev->watchdog_timer);
1683
1684 mutex_lock(&dev->shutdown_lock);
1685 if (pci_is_enabled(to_pci_dev(dev->dev))) {
1686 nvme_stop_queues(&dev->ctrl);
1687 csts = readl(dev->bar + NVME_REG_CSTS);
1688 }
1689
1690 queues = dev->online_queues - 1;
1691 for (i = dev->queue_count - 1; i > 0; i--)
1692 nvme_suspend_queue(dev->queues[i]);
1693
1694 if (csts & NVME_CSTS_CFS || !(csts & NVME_CSTS_RDY)) {
1695 /* A device might become IO incapable very soon during
1696 * probe, before the admin queue is configured. Thus,
1697 * queue_count can be 0 here.
1698 */
1699 if (dev->queue_count)
1700 nvme_suspend_queue(dev->queues[0]);
1701 } else {
1702 nvme_disable_io_queues(dev, queues);
1703 nvme_disable_admin_queue(dev, shutdown);
1704 }
1705 nvme_pci_disable(dev);
1706
1707 blk_mq_tagset_busy_iter(&dev->tagset, nvme_cancel_request, &dev->ctrl);
1708 blk_mq_tagset_busy_iter(&dev->admin_tagset, nvme_cancel_request, &dev->ctrl);
1709 mutex_unlock(&dev->shutdown_lock);
1710 }
1711
1712 static int nvme_setup_prp_pools(struct nvme_dev *dev)
1713 {
1714 dev->prp_page_pool = dma_pool_create("prp list page", dev->dev,
1715 PAGE_SIZE, PAGE_SIZE, 0);
1716 if (!dev->prp_page_pool)
1717 return -ENOMEM;
1718
1719 /* Optimisation for I/Os between 4k and 128k */
1720 dev->prp_small_pool = dma_pool_create("prp list 256", dev->dev,
1721 256, 256, 0);
1722 if (!dev->prp_small_pool) {
1723 dma_pool_destroy(dev->prp_page_pool);
1724 return -ENOMEM;
1725 }
1726 return 0;
1727 }
1728
1729 static void nvme_release_prp_pools(struct nvme_dev *dev)
1730 {
1731 dma_pool_destroy(dev->prp_page_pool);
1732 dma_pool_destroy(dev->prp_small_pool);
1733 }
1734
1735 static void nvme_pci_free_ctrl(struct nvme_ctrl *ctrl)
1736 {
1737 struct nvme_dev *dev = to_nvme_dev(ctrl);
1738
1739 put_device(dev->dev);
1740 if (dev->tagset.tags)
1741 blk_mq_free_tag_set(&dev->tagset);
1742 if (dev->ctrl.admin_q)
1743 blk_put_queue(dev->ctrl.admin_q);
1744 kfree(dev->queues);
1745 kfree(dev);
1746 }
1747
1748 static void nvme_remove_dead_ctrl(struct nvme_dev *dev, int status)
1749 {
1750 dev_warn(dev->ctrl.device, "Removing after probe failure status: %d\n", status);
1751
1752 kref_get(&dev->ctrl.kref);
1753 nvme_dev_disable(dev, false);
1754 if (!schedule_work(&dev->remove_work))
1755 nvme_put_ctrl(&dev->ctrl);
1756 }
1757
1758 static void nvme_reset_work(struct work_struct *work)
1759 {
1760 struct nvme_dev *dev = container_of(work, struct nvme_dev, reset_work);
1761 int result = -ENODEV;
1762
1763 if (WARN_ON(dev->ctrl.state == NVME_CTRL_RESETTING))
1764 goto out;
1765
1766 /*
1767 * If we're called to reset a live controller first shut it down before
1768 * moving on.
1769 */
1770 if (dev->ctrl.ctrl_config & NVME_CC_ENABLE)
1771 nvme_dev_disable(dev, false);
1772
1773 if (!nvme_change_ctrl_state(&dev->ctrl, NVME_CTRL_RESETTING))
1774 goto out;
1775
1776 result = nvme_pci_enable(dev);
1777 if (result)
1778 goto out;
1779
1780 result = nvme_configure_admin_queue(dev);
1781 if (result)
1782 goto out;
1783
1784 nvme_init_queue(dev->queues[0], 0);
1785 result = nvme_alloc_admin_tags(dev);
1786 if (result)
1787 goto out;
1788
1789 result = nvme_init_identify(&dev->ctrl);
1790 if (result)
1791 goto out;
1792
1793 result = nvme_setup_io_queues(dev);
1794 if (result)
1795 goto out;
1796
1797 /*
1798 * A controller that can not execute IO typically requires user
1799 * intervention to correct. For such degraded controllers, the driver
1800 * should not submit commands the user did not request, so skip
1801 * registering for asynchronous event notification on this condition.
1802 */
1803 if (dev->online_queues > 1)
1804 nvme_queue_async_events(&dev->ctrl);
1805
1806 mod_timer(&dev->watchdog_timer, round_jiffies(jiffies + HZ));
1807
1808 /*
1809 * Keep the controller around but remove all namespaces if we don't have
1810 * any working I/O queue.
1811 */
1812 if (dev->online_queues < 2) {
1813 dev_warn(dev->ctrl.device, "IO queues not created\n");
1814 nvme_kill_queues(&dev->ctrl);
1815 nvme_remove_namespaces(&dev->ctrl);
1816 } else {
1817 nvme_start_queues(&dev->ctrl);
1818 nvme_dev_add(dev);
1819 }
1820
1821 if (!nvme_change_ctrl_state(&dev->ctrl, NVME_CTRL_LIVE)) {
1822 dev_warn(dev->ctrl.device, "failed to mark controller live\n");
1823 goto out;
1824 }
1825
1826 if (dev->online_queues > 1)
1827 nvme_queue_scan(&dev->ctrl);
1828 return;
1829
1830 out:
1831 nvme_remove_dead_ctrl(dev, result);
1832 }
1833
1834 static void nvme_remove_dead_ctrl_work(struct work_struct *work)
1835 {
1836 struct nvme_dev *dev = container_of(work, struct nvme_dev, remove_work);
1837 struct pci_dev *pdev = to_pci_dev(dev->dev);
1838
1839 nvme_kill_queues(&dev->ctrl);
1840 if (pci_get_drvdata(pdev))
1841 device_release_driver(&pdev->dev);
1842 nvme_put_ctrl(&dev->ctrl);
1843 }
1844
1845 static int nvme_reset(struct nvme_dev *dev)
1846 {
1847 if (!dev->ctrl.admin_q || blk_queue_dying(dev->ctrl.admin_q))
1848 return -ENODEV;
1849 if (work_busy(&dev->reset_work))
1850 return -ENODEV;
1851 if (!queue_work(nvme_workq, &dev->reset_work))
1852 return -EBUSY;
1853 return 0;
1854 }
1855
1856 static int nvme_pci_reg_read32(struct nvme_ctrl *ctrl, u32 off, u32 *val)
1857 {
1858 *val = readl(to_nvme_dev(ctrl)->bar + off);
1859 return 0;
1860 }
1861
1862 static int nvme_pci_reg_write32(struct nvme_ctrl *ctrl, u32 off, u32 val)
1863 {
1864 writel(val, to_nvme_dev(ctrl)->bar + off);
1865 return 0;
1866 }
1867
1868 static int nvme_pci_reg_read64(struct nvme_ctrl *ctrl, u32 off, u64 *val)
1869 {
1870 *val = readq(to_nvme_dev(ctrl)->bar + off);
1871 return 0;
1872 }
1873
1874 static int nvme_pci_reset_ctrl(struct nvme_ctrl *ctrl)
1875 {
1876 struct nvme_dev *dev = to_nvme_dev(ctrl);
1877 int ret = nvme_reset(dev);
1878
1879 if (!ret)
1880 flush_work(&dev->reset_work);
1881 return ret;
1882 }
1883
1884 static const struct nvme_ctrl_ops nvme_pci_ctrl_ops = {
1885 .name = "pcie",
1886 .module = THIS_MODULE,
1887 .reg_read32 = nvme_pci_reg_read32,
1888 .reg_write32 = nvme_pci_reg_write32,
1889 .reg_read64 = nvme_pci_reg_read64,
1890 .reset_ctrl = nvme_pci_reset_ctrl,
1891 .free_ctrl = nvme_pci_free_ctrl,
1892 .submit_async_event = nvme_pci_submit_async_event,
1893 };
1894
1895 static int nvme_dev_map(struct nvme_dev *dev)
1896 {
1897 struct pci_dev *pdev = to_pci_dev(dev->dev);
1898
1899 if (pci_request_mem_regions(pdev, "nvme"))
1900 return -ENODEV;
1901
1902 dev->bar = ioremap(pci_resource_start(pdev, 0), 8192);
1903 if (!dev->bar)
1904 goto release;
1905
1906 return 0;
1907 release:
1908 pci_release_mem_regions(pdev);
1909 return -ENODEV;
1910 }
1911
1912 static int nvme_probe(struct pci_dev *pdev, const struct pci_device_id *id)
1913 {
1914 int node, result = -ENOMEM;
1915 struct nvme_dev *dev;
1916
1917 node = dev_to_node(&pdev->dev);
1918 if (node == NUMA_NO_NODE)
1919 set_dev_node(&pdev->dev, first_memory_node);
1920
1921 dev = kzalloc_node(sizeof(*dev), GFP_KERNEL, node);
1922 if (!dev)
1923 return -ENOMEM;
1924 dev->queues = kzalloc_node((num_possible_cpus() + 1) * sizeof(void *),
1925 GFP_KERNEL, node);
1926 if (!dev->queues)
1927 goto free;
1928
1929 dev->dev = get_device(&pdev->dev);
1930 pci_set_drvdata(pdev, dev);
1931
1932 result = nvme_dev_map(dev);
1933 if (result)
1934 goto free;
1935
1936 INIT_WORK(&dev->reset_work, nvme_reset_work);
1937 INIT_WORK(&dev->remove_work, nvme_remove_dead_ctrl_work);
1938 setup_timer(&dev->watchdog_timer, nvme_watchdog_timer,
1939 (unsigned long)dev);
1940 mutex_init(&dev->shutdown_lock);
1941 init_completion(&dev->ioq_wait);
1942
1943 result = nvme_setup_prp_pools(dev);
1944 if (result)
1945 goto put_pci;
1946
1947 result = nvme_init_ctrl(&dev->ctrl, &pdev->dev, &nvme_pci_ctrl_ops,
1948 id->driver_data);
1949 if (result)
1950 goto release_pools;
1951
1952 dev_info(dev->ctrl.device, "pci function %s\n", dev_name(&pdev->dev));
1953
1954 queue_work(nvme_workq, &dev->reset_work);
1955 return 0;
1956
1957 release_pools:
1958 nvme_release_prp_pools(dev);
1959 put_pci:
1960 put_device(dev->dev);
1961 nvme_dev_unmap(dev);
1962 free:
1963 kfree(dev->queues);
1964 kfree(dev);
1965 return result;
1966 }
1967
1968 static void nvme_reset_notify(struct pci_dev *pdev, bool prepare)
1969 {
1970 struct nvme_dev *dev = pci_get_drvdata(pdev);
1971
1972 if (prepare)
1973 nvme_dev_disable(dev, false);
1974 else
1975 nvme_reset(dev);
1976 }
1977
1978 static void nvme_shutdown(struct pci_dev *pdev)
1979 {
1980 struct nvme_dev *dev = pci_get_drvdata(pdev);
1981 nvme_dev_disable(dev, true);
1982 }
1983
1984 /*
1985 * The driver's remove may be called on a device in a partially initialized
1986 * state. This function must not have any dependencies on the device state in
1987 * order to proceed.
1988 */
1989 static void nvme_remove(struct pci_dev *pdev)
1990 {
1991 struct nvme_dev *dev = pci_get_drvdata(pdev);
1992
1993 nvme_change_ctrl_state(&dev->ctrl, NVME_CTRL_DELETING);
1994
1995 pci_set_drvdata(pdev, NULL);
1996
1997 if (!pci_device_is_present(pdev))
1998 nvme_change_ctrl_state(&dev->ctrl, NVME_CTRL_DEAD);
1999
2000 flush_work(&dev->reset_work);
2001 nvme_uninit_ctrl(&dev->ctrl);
2002 nvme_dev_disable(dev, true);
2003 nvme_dev_remove_admin(dev);
2004 nvme_free_queues(dev, 0);
2005 nvme_release_cmb(dev);
2006 nvme_release_prp_pools(dev);
2007 nvme_dev_unmap(dev);
2008 nvme_put_ctrl(&dev->ctrl);
2009 }
2010
2011 static int nvme_pci_sriov_configure(struct pci_dev *pdev, int numvfs)
2012 {
2013 int ret = 0;
2014
2015 if (numvfs == 0) {
2016 if (pci_vfs_assigned(pdev)) {
2017 dev_warn(&pdev->dev,
2018 "Cannot disable SR-IOV VFs while assigned\n");
2019 return -EPERM;
2020 }
2021 pci_disable_sriov(pdev);
2022 return 0;
2023 }
2024
2025 ret = pci_enable_sriov(pdev, numvfs);
2026 return ret ? ret : numvfs;
2027 }
2028
2029 #ifdef CONFIG_PM_SLEEP
2030 static int nvme_suspend(struct device *dev)
2031 {
2032 struct pci_dev *pdev = to_pci_dev(dev);
2033 struct nvme_dev *ndev = pci_get_drvdata(pdev);
2034
2035 nvme_dev_disable(ndev, true);
2036 return 0;
2037 }
2038
2039 static int nvme_resume(struct device *dev)
2040 {
2041 struct pci_dev *pdev = to_pci_dev(dev);
2042 struct nvme_dev *ndev = pci_get_drvdata(pdev);
2043
2044 nvme_reset(ndev);
2045 return 0;
2046 }
2047 #endif
2048
2049 static SIMPLE_DEV_PM_OPS(nvme_dev_pm_ops, nvme_suspend, nvme_resume);
2050
2051 static pci_ers_result_t nvme_error_detected(struct pci_dev *pdev,
2052 pci_channel_state_t state)
2053 {
2054 struct nvme_dev *dev = pci_get_drvdata(pdev);
2055
2056 /*
2057 * A frozen channel requires a reset. When detected, this method will
2058 * shutdown the controller to quiesce. The controller will be restarted
2059 * after the slot reset through driver's slot_reset callback.
2060 */
2061 switch (state) {
2062 case pci_channel_io_normal:
2063 return PCI_ERS_RESULT_CAN_RECOVER;
2064 case pci_channel_io_frozen:
2065 dev_warn(dev->ctrl.device,
2066 "frozen state error detected, reset controller\n");
2067 nvme_dev_disable(dev, false);
2068 return PCI_ERS_RESULT_NEED_RESET;
2069 case pci_channel_io_perm_failure:
2070 dev_warn(dev->ctrl.device,
2071 "failure state error detected, request disconnect\n");
2072 return PCI_ERS_RESULT_DISCONNECT;
2073 }
2074 return PCI_ERS_RESULT_NEED_RESET;
2075 }
2076
2077 static pci_ers_result_t nvme_slot_reset(struct pci_dev *pdev)
2078 {
2079 struct nvme_dev *dev = pci_get_drvdata(pdev);
2080
2081 dev_info(dev->ctrl.device, "restart after slot reset\n");
2082 pci_restore_state(pdev);
2083 nvme_reset(dev);
2084 return PCI_ERS_RESULT_RECOVERED;
2085 }
2086
2087 static void nvme_error_resume(struct pci_dev *pdev)
2088 {
2089 pci_cleanup_aer_uncorrect_error_status(pdev);
2090 }
2091
2092 static const struct pci_error_handlers nvme_err_handler = {
2093 .error_detected = nvme_error_detected,
2094 .slot_reset = nvme_slot_reset,
2095 .resume = nvme_error_resume,
2096 .reset_notify = nvme_reset_notify,
2097 };
2098
2099 static const struct pci_device_id nvme_id_table[] = {
2100 { PCI_VDEVICE(INTEL, 0x0953),
2101 .driver_data = NVME_QUIRK_STRIPE_SIZE |
2102 NVME_QUIRK_DISCARD_ZEROES, },
2103 { PCI_VDEVICE(INTEL, 0x0a53),
2104 .driver_data = NVME_QUIRK_STRIPE_SIZE |
2105 NVME_QUIRK_DISCARD_ZEROES, },
2106 { PCI_VDEVICE(INTEL, 0x0a54),
2107 .driver_data = NVME_QUIRK_STRIPE_SIZE |
2108 NVME_QUIRK_DISCARD_ZEROES, },
2109 { PCI_VDEVICE(INTEL, 0x5845), /* Qemu emulated controller */
2110 .driver_data = NVME_QUIRK_IDENTIFY_CNS, },
2111 { PCI_DEVICE(0x1c58, 0x0003), /* HGST adapter */
2112 .driver_data = NVME_QUIRK_DELAY_BEFORE_CHK_RDY, },
2113 { PCI_DEVICE(0x1c5f, 0x0540), /* Memblaze Pblaze4 adapter */
2114 .driver_data = NVME_QUIRK_DELAY_BEFORE_CHK_RDY, },
2115 { PCI_DEVICE_CLASS(PCI_CLASS_STORAGE_EXPRESS, 0xffffff) },
2116 { PCI_DEVICE(PCI_VENDOR_ID_APPLE, 0x2001) },
2117 { 0, }
2118 };
2119 MODULE_DEVICE_TABLE(pci, nvme_id_table);
2120
2121 static struct pci_driver nvme_driver = {
2122 .name = "nvme",
2123 .id_table = nvme_id_table,
2124 .probe = nvme_probe,
2125 .remove = nvme_remove,
2126 .shutdown = nvme_shutdown,
2127 .driver = {
2128 .pm = &nvme_dev_pm_ops,
2129 },
2130 .sriov_configure = nvme_pci_sriov_configure,
2131 .err_handler = &nvme_err_handler,
2132 };
2133
2134 static int __init nvme_init(void)
2135 {
2136 int result;
2137
2138 nvme_workq = alloc_workqueue("nvme", WQ_UNBOUND | WQ_MEM_RECLAIM, 0);
2139 if (!nvme_workq)
2140 return -ENOMEM;
2141
2142 result = pci_register_driver(&nvme_driver);
2143 if (result)
2144 destroy_workqueue(nvme_workq);
2145 return result;
2146 }
2147
2148 static void __exit nvme_exit(void)
2149 {
2150 pci_unregister_driver(&nvme_driver);
2151 destroy_workqueue(nvme_workq);
2152 _nvme_check_size();
2153 }
2154
2155 MODULE_AUTHOR("Matthew Wilcox <willy@linux.intel.com>");
2156 MODULE_LICENSE("GPL");
2157 MODULE_VERSION("1.0");
2158 module_init(nvme_init);
2159 module_exit(nvme_exit);