xref: /openbmc/qemu/block/nvme.c (revision c8ca2a23)
1 /*
2  * NVMe block driver based on vfio
3  *
4  * Copyright 2016 - 2018 Red Hat, Inc.
5  *
6  * Authors:
7  *   Fam Zheng <famz@redhat.com>
8  *   Paolo Bonzini <pbonzini@redhat.com>
9  *
10  * This work is licensed under the terms of the GNU GPL, version 2 or later.
11  * See the COPYING file in the top-level directory.
12  */
13 
14 #include "qemu/osdep.h"
15 #include <linux/vfio.h>
16 #include "qapi/error.h"
17 #include "qapi/qmp/qdict.h"
18 #include "qapi/qmp/qstring.h"
19 #include "qemu/error-report.h"
20 #include "qemu/cutils.h"
21 #include "qemu/option.h"
22 #include "qemu/vfio-helpers.h"
23 #include "block/block_int.h"
24 #include "trace.h"
25 
26 #include "block/nvme.h"
27 
28 #define NVME_SQ_ENTRY_BYTES 64
29 #define NVME_CQ_ENTRY_BYTES 16
30 #define NVME_QUEUE_SIZE 128
31 #define NVME_BAR_SIZE 8192
32 
33 typedef struct {
34     int32_t  head, tail;
35     uint8_t  *queue;
36     uint64_t iova;
37     /* Hardware MMIO register */
38     volatile uint32_t *doorbell;
39 } NVMeQueue;
40 
41 typedef struct {
42     BlockCompletionFunc *cb;
43     void *opaque;
44     int cid;
45     void *prp_list_page;
46     uint64_t prp_list_iova;
47     bool busy;
48 } NVMeRequest;
49 
50 typedef struct {
51     CoQueue     free_req_queue;
52     QemuMutex   lock;
53 
54     /* Fields protected by BQL */
55     int         index;
56     uint8_t     *prp_list_pages;
57 
58     /* Fields protected by @lock */
59     NVMeQueue   sq, cq;
60     int         cq_phase;
61     NVMeRequest reqs[NVME_QUEUE_SIZE];
62     bool        busy;
63     int         need_kick;
64     int         inflight;
65 } NVMeQueuePair;
66 
67 /* Memory mapped registers */
68 typedef volatile struct {
69     uint64_t cap;
70     uint32_t vs;
71     uint32_t intms;
72     uint32_t intmc;
73     uint32_t cc;
74     uint32_t reserved0;
75     uint32_t csts;
76     uint32_t nssr;
77     uint32_t aqa;
78     uint64_t asq;
79     uint64_t acq;
80     uint32_t cmbloc;
81     uint32_t cmbsz;
82     uint8_t  reserved1[0xec0];
83     uint8_t  cmd_set_specfic[0x100];
84     uint32_t doorbells[];
85 } QEMU_PACKED NVMeRegs;
86 
87 QEMU_BUILD_BUG_ON(offsetof(NVMeRegs, doorbells) != 0x1000);
88 
89 typedef struct {
90     AioContext *aio_context;
91     QEMUVFIOState *vfio;
92     NVMeRegs *regs;
93     /* The submission/completion queue pairs.
94      * [0]: admin queue.
95      * [1..]: io queues.
96      */
97     NVMeQueuePair **queues;
98     int nr_queues;
99     size_t page_size;
100     /* How many uint32_t elements does each doorbell entry take. */
101     size_t doorbell_scale;
102     bool write_cache_supported;
103     EventNotifier irq_notifier;
104     uint64_t nsze; /* Namespace size reported by identify command */
105     int nsid;      /* The namespace id to read/write data. */
106     uint64_t max_transfer;
107     int plugged;
108 
109     CoMutex dma_map_lock;
110     CoQueue dma_flush_queue;
111 
112     /* Total size of mapped qiov, accessed under dma_map_lock */
113     int dma_map_count;
114 } BDRVNVMeState;
115 
116 #define NVME_BLOCK_OPT_DEVICE "device"
117 #define NVME_BLOCK_OPT_NAMESPACE "namespace"
118 
119 static QemuOptsList runtime_opts = {
120     .name = "nvme",
121     .head = QTAILQ_HEAD_INITIALIZER(runtime_opts.head),
122     .desc = {
123         {
124             .name = NVME_BLOCK_OPT_DEVICE,
125             .type = QEMU_OPT_STRING,
126             .help = "NVMe PCI device address",
127         },
128         {
129             .name = NVME_BLOCK_OPT_NAMESPACE,
130             .type = QEMU_OPT_NUMBER,
131             .help = "NVMe namespace",
132         },
133         { /* end of list */ }
134     },
135 };
136 
137 static void nvme_init_queue(BlockDriverState *bs, NVMeQueue *q,
138                             int nentries, int entry_bytes, Error **errp)
139 {
140     BDRVNVMeState *s = bs->opaque;
141     size_t bytes;
142     int r;
143 
144     bytes = ROUND_UP(nentries * entry_bytes, s->page_size);
145     q->head = q->tail = 0;
146     q->queue = qemu_try_blockalign0(bs, bytes);
147 
148     if (!q->queue) {
149         error_setg(errp, "Cannot allocate queue");
150         return;
151     }
152     r = qemu_vfio_dma_map(s->vfio, q->queue, bytes, false, &q->iova);
153     if (r) {
154         error_setg(errp, "Cannot map queue");
155     }
156 }
157 
158 static void nvme_free_queue_pair(BlockDriverState *bs, NVMeQueuePair *q)
159 {
160     qemu_vfree(q->prp_list_pages);
161     qemu_vfree(q->sq.queue);
162     qemu_vfree(q->cq.queue);
163     qemu_mutex_destroy(&q->lock);
164     g_free(q);
165 }
166 
167 static void nvme_free_req_queue_cb(void *opaque)
168 {
169     NVMeQueuePair *q = opaque;
170 
171     qemu_mutex_lock(&q->lock);
172     while (qemu_co_enter_next(&q->free_req_queue, &q->lock)) {
173         /* Retry all pending requests */
174     }
175     qemu_mutex_unlock(&q->lock);
176 }
177 
178 static NVMeQueuePair *nvme_create_queue_pair(BlockDriverState *bs,
179                                              int idx, int size,
180                                              Error **errp)
181 {
182     int i, r;
183     BDRVNVMeState *s = bs->opaque;
184     Error *local_err = NULL;
185     NVMeQueuePair *q = g_new0(NVMeQueuePair, 1);
186     uint64_t prp_list_iova;
187 
188     qemu_mutex_init(&q->lock);
189     q->index = idx;
190     qemu_co_queue_init(&q->free_req_queue);
191     q->prp_list_pages = qemu_blockalign0(bs, s->page_size * NVME_QUEUE_SIZE);
192     r = qemu_vfio_dma_map(s->vfio, q->prp_list_pages,
193                           s->page_size * NVME_QUEUE_SIZE,
194                           false, &prp_list_iova);
195     if (r) {
196         goto fail;
197     }
198     for (i = 0; i < NVME_QUEUE_SIZE; i++) {
199         NVMeRequest *req = &q->reqs[i];
200         req->cid = i + 1;
201         req->prp_list_page = q->prp_list_pages + i * s->page_size;
202         req->prp_list_iova = prp_list_iova + i * s->page_size;
203     }
204     nvme_init_queue(bs, &q->sq, size, NVME_SQ_ENTRY_BYTES, &local_err);
205     if (local_err) {
206         error_propagate(errp, local_err);
207         goto fail;
208     }
209     q->sq.doorbell = &s->regs->doorbells[idx * 2 * s->doorbell_scale];
210 
211     nvme_init_queue(bs, &q->cq, size, NVME_CQ_ENTRY_BYTES, &local_err);
212     if (local_err) {
213         error_propagate(errp, local_err);
214         goto fail;
215     }
216     q->cq.doorbell = &s->regs->doorbells[idx * 2 * s->doorbell_scale + 1];
217 
218     return q;
219 fail:
220     nvme_free_queue_pair(bs, q);
221     return NULL;
222 }
223 
224 /* With q->lock */
225 static void nvme_kick(BDRVNVMeState *s, NVMeQueuePair *q)
226 {
227     if (s->plugged || !q->need_kick) {
228         return;
229     }
230     trace_nvme_kick(s, q->index);
231     assert(!(q->sq.tail & 0xFF00));
232     /* Fence the write to submission queue entry before notifying the device. */
233     smp_wmb();
234     *q->sq.doorbell = cpu_to_le32(q->sq.tail);
235     q->inflight += q->need_kick;
236     q->need_kick = 0;
237 }
238 
239 /* Find a free request element if any, otherwise:
240  * a) if in coroutine context, try to wait for one to become available;
241  * b) if not in coroutine, return NULL;
242  */
243 static NVMeRequest *nvme_get_free_req(NVMeQueuePair *q)
244 {
245     int i;
246     NVMeRequest *req = NULL;
247 
248     qemu_mutex_lock(&q->lock);
249     while (q->inflight + q->need_kick > NVME_QUEUE_SIZE - 2) {
250         /* We have to leave one slot empty as that is the full queue case (head
251          * == tail + 1). */
252         if (qemu_in_coroutine()) {
253             trace_nvme_free_req_queue_wait(q);
254             qemu_co_queue_wait(&q->free_req_queue, &q->lock);
255         } else {
256             qemu_mutex_unlock(&q->lock);
257             return NULL;
258         }
259     }
260     for (i = 0; i < NVME_QUEUE_SIZE; i++) {
261         if (!q->reqs[i].busy) {
262             q->reqs[i].busy = true;
263             req = &q->reqs[i];
264             break;
265         }
266     }
267     /* We have checked inflight and need_kick while holding q->lock, so one
268      * free req must be available. */
269     assert(req);
270     qemu_mutex_unlock(&q->lock);
271     return req;
272 }
273 
274 static inline int nvme_translate_error(const NvmeCqe *c)
275 {
276     uint16_t status = (le16_to_cpu(c->status) >> 1) & 0xFF;
277     if (status) {
278         trace_nvme_error(le32_to_cpu(c->result),
279                          le16_to_cpu(c->sq_head),
280                          le16_to_cpu(c->sq_id),
281                          le16_to_cpu(c->cid),
282                          le16_to_cpu(status));
283     }
284     switch (status) {
285     case 0:
286         return 0;
287     case 1:
288         return -ENOSYS;
289     case 2:
290         return -EINVAL;
291     default:
292         return -EIO;
293     }
294 }
295 
296 /* With q->lock */
297 static bool nvme_process_completion(BDRVNVMeState *s, NVMeQueuePair *q)
298 {
299     bool progress = false;
300     NVMeRequest *preq;
301     NVMeRequest req;
302     NvmeCqe *c;
303 
304     trace_nvme_process_completion(s, q->index, q->inflight);
305     if (q->busy || s->plugged) {
306         trace_nvme_process_completion_queue_busy(s, q->index);
307         return false;
308     }
309     q->busy = true;
310     assert(q->inflight >= 0);
311     while (q->inflight) {
312         int16_t cid;
313         c = (NvmeCqe *)&q->cq.queue[q->cq.head * NVME_CQ_ENTRY_BYTES];
314         if (!c->cid || (le16_to_cpu(c->status) & 0x1) == q->cq_phase) {
315             break;
316         }
317         q->cq.head = (q->cq.head + 1) % NVME_QUEUE_SIZE;
318         if (!q->cq.head) {
319             q->cq_phase = !q->cq_phase;
320         }
321         cid = le16_to_cpu(c->cid);
322         if (cid == 0 || cid > NVME_QUEUE_SIZE) {
323             fprintf(stderr, "Unexpected CID in completion queue: %" PRIu32 "\n",
324                     cid);
325             continue;
326         }
327         assert(cid <= NVME_QUEUE_SIZE);
328         trace_nvme_complete_command(s, q->index, cid);
329         preq = &q->reqs[cid - 1];
330         req = *preq;
331         assert(req.cid == cid);
332         assert(req.cb);
333         preq->busy = false;
334         preq->cb = preq->opaque = NULL;
335         qemu_mutex_unlock(&q->lock);
336         req.cb(req.opaque, nvme_translate_error(c));
337         qemu_mutex_lock(&q->lock);
338         c->cid = cpu_to_le16(0);
339         q->inflight--;
340         /* Flip Phase Tag bit. */
341         c->status = cpu_to_le16(le16_to_cpu(c->status) ^ 0x1);
342         progress = true;
343     }
344     if (progress) {
345         /* Notify the device so it can post more completions. */
346         smp_mb_release();
347         *q->cq.doorbell = cpu_to_le32(q->cq.head);
348         if (!qemu_co_queue_empty(&q->free_req_queue)) {
349             aio_bh_schedule_oneshot(s->aio_context, nvme_free_req_queue_cb, q);
350         }
351     }
352     q->busy = false;
353     return progress;
354 }
355 
356 static void nvme_trace_command(const NvmeCmd *cmd)
357 {
358     int i;
359 
360     for (i = 0; i < 8; ++i) {
361         uint8_t *cmdp = (uint8_t *)cmd + i * 8;
362         trace_nvme_submit_command_raw(cmdp[0], cmdp[1], cmdp[2], cmdp[3],
363                                       cmdp[4], cmdp[5], cmdp[6], cmdp[7]);
364     }
365 }
366 
367 static void nvme_submit_command(BDRVNVMeState *s, NVMeQueuePair *q,
368                                 NVMeRequest *req,
369                                 NvmeCmd *cmd, BlockCompletionFunc cb,
370                                 void *opaque)
371 {
372     assert(!req->cb);
373     req->cb = cb;
374     req->opaque = opaque;
375     cmd->cid = cpu_to_le32(req->cid);
376 
377     trace_nvme_submit_command(s, q->index, req->cid);
378     nvme_trace_command(cmd);
379     qemu_mutex_lock(&q->lock);
380     memcpy((uint8_t *)q->sq.queue +
381            q->sq.tail * NVME_SQ_ENTRY_BYTES, cmd, sizeof(*cmd));
382     q->sq.tail = (q->sq.tail + 1) % NVME_QUEUE_SIZE;
383     q->need_kick++;
384     nvme_kick(s, q);
385     nvme_process_completion(s, q);
386     qemu_mutex_unlock(&q->lock);
387 }
388 
389 static void nvme_cmd_sync_cb(void *opaque, int ret)
390 {
391     int *pret = opaque;
392     *pret = ret;
393 }
394 
395 static int nvme_cmd_sync(BlockDriverState *bs, NVMeQueuePair *q,
396                          NvmeCmd *cmd)
397 {
398     NVMeRequest *req;
399     BDRVNVMeState *s = bs->opaque;
400     int ret = -EINPROGRESS;
401     req = nvme_get_free_req(q);
402     if (!req) {
403         return -EBUSY;
404     }
405     nvme_submit_command(s, q, req, cmd, nvme_cmd_sync_cb, &ret);
406 
407     BDRV_POLL_WHILE(bs, ret == -EINPROGRESS);
408     return ret;
409 }
410 
411 static void nvme_identify(BlockDriverState *bs, int namespace, Error **errp)
412 {
413     BDRVNVMeState *s = bs->opaque;
414     NvmeIdCtrl *idctrl;
415     NvmeIdNs *idns;
416     uint8_t *resp;
417     int r;
418     uint64_t iova;
419     NvmeCmd cmd = {
420         .opcode = NVME_ADM_CMD_IDENTIFY,
421         .cdw10 = cpu_to_le32(0x1),
422     };
423 
424     resp = qemu_try_blockalign0(bs, sizeof(NvmeIdCtrl));
425     if (!resp) {
426         error_setg(errp, "Cannot allocate buffer for identify response");
427         goto out;
428     }
429     idctrl = (NvmeIdCtrl *)resp;
430     idns = (NvmeIdNs *)resp;
431     r = qemu_vfio_dma_map(s->vfio, resp, sizeof(NvmeIdCtrl), true, &iova);
432     if (r) {
433         error_setg(errp, "Cannot map buffer for DMA");
434         goto out;
435     }
436     cmd.prp1 = cpu_to_le64(iova);
437 
438     if (nvme_cmd_sync(bs, s->queues[0], &cmd)) {
439         error_setg(errp, "Failed to identify controller");
440         goto out;
441     }
442 
443     if (le32_to_cpu(idctrl->nn) < namespace) {
444         error_setg(errp, "Invalid namespace");
445         goto out;
446     }
447     s->write_cache_supported = le32_to_cpu(idctrl->vwc) & 0x1;
448     s->max_transfer = (idctrl->mdts ? 1 << idctrl->mdts : 0) * s->page_size;
449     /* For now the page list buffer per command is one page, to hold at most
450      * s->page_size / sizeof(uint64_t) entries. */
451     s->max_transfer = MIN_NON_ZERO(s->max_transfer,
452                           s->page_size / sizeof(uint64_t) * s->page_size);
453 
454     memset(resp, 0, 4096);
455 
456     cmd.cdw10 = 0;
457     cmd.nsid = cpu_to_le32(namespace);
458     if (nvme_cmd_sync(bs, s->queues[0], &cmd)) {
459         error_setg(errp, "Failed to identify namespace");
460         goto out;
461     }
462 
463     s->nsze = le64_to_cpu(idns->nsze);
464 
465 out:
466     qemu_vfio_dma_unmap(s->vfio, resp);
467     qemu_vfree(resp);
468 }
469 
470 static bool nvme_poll_queues(BDRVNVMeState *s)
471 {
472     bool progress = false;
473     int i;
474 
475     for (i = 0; i < s->nr_queues; i++) {
476         NVMeQueuePair *q = s->queues[i];
477         qemu_mutex_lock(&q->lock);
478         while (nvme_process_completion(s, q)) {
479             /* Keep polling */
480             progress = true;
481         }
482         qemu_mutex_unlock(&q->lock);
483     }
484     return progress;
485 }
486 
487 static void nvme_handle_event(EventNotifier *n)
488 {
489     BDRVNVMeState *s = container_of(n, BDRVNVMeState, irq_notifier);
490 
491     trace_nvme_handle_event(s);
492     aio_context_acquire(s->aio_context);
493     event_notifier_test_and_clear(n);
494     nvme_poll_queues(s);
495     aio_context_release(s->aio_context);
496 }
497 
498 static bool nvme_add_io_queue(BlockDriverState *bs, Error **errp)
499 {
500     BDRVNVMeState *s = bs->opaque;
501     int n = s->nr_queues;
502     NVMeQueuePair *q;
503     NvmeCmd cmd;
504     int queue_size = NVME_QUEUE_SIZE;
505 
506     q = nvme_create_queue_pair(bs, n, queue_size, errp);
507     if (!q) {
508         return false;
509     }
510     cmd = (NvmeCmd) {
511         .opcode = NVME_ADM_CMD_CREATE_CQ,
512         .prp1 = cpu_to_le64(q->cq.iova),
513         .cdw10 = cpu_to_le32(((queue_size - 1) << 16) | (n & 0xFFFF)),
514         .cdw11 = cpu_to_le32(0x3),
515     };
516     if (nvme_cmd_sync(bs, s->queues[0], &cmd)) {
517         error_setg(errp, "Failed to create io queue [%d]", n);
518         nvme_free_queue_pair(bs, q);
519         return false;
520     }
521     cmd = (NvmeCmd) {
522         .opcode = NVME_ADM_CMD_CREATE_SQ,
523         .prp1 = cpu_to_le64(q->sq.iova),
524         .cdw10 = cpu_to_le32(((queue_size - 1) << 16) | (n & 0xFFFF)),
525         .cdw11 = cpu_to_le32(0x1 | (n << 16)),
526     };
527     if (nvme_cmd_sync(bs, s->queues[0], &cmd)) {
528         error_setg(errp, "Failed to create io queue [%d]", n);
529         nvme_free_queue_pair(bs, q);
530         return false;
531     }
532     s->queues = g_renew(NVMeQueuePair *, s->queues, n + 1);
533     s->queues[n] = q;
534     s->nr_queues++;
535     return true;
536 }
537 
538 static bool nvme_poll_cb(void *opaque)
539 {
540     EventNotifier *e = opaque;
541     BDRVNVMeState *s = container_of(e, BDRVNVMeState, irq_notifier);
542     bool progress = false;
543 
544     trace_nvme_poll_cb(s);
545     progress = nvme_poll_queues(s);
546     return progress;
547 }
548 
549 static int nvme_init(BlockDriverState *bs, const char *device, int namespace,
550                      Error **errp)
551 {
552     BDRVNVMeState *s = bs->opaque;
553     int ret;
554     uint64_t cap;
555     uint64_t timeout_ms;
556     uint64_t deadline, now;
557     Error *local_err = NULL;
558 
559     qemu_co_mutex_init(&s->dma_map_lock);
560     qemu_co_queue_init(&s->dma_flush_queue);
561     s->nsid = namespace;
562     s->aio_context = bdrv_get_aio_context(bs);
563     ret = event_notifier_init(&s->irq_notifier, 0);
564     if (ret) {
565         error_setg(errp, "Failed to init event notifier");
566         return ret;
567     }
568 
569     s->vfio = qemu_vfio_open_pci(device, errp);
570     if (!s->vfio) {
571         ret = -EINVAL;
572         goto fail;
573     }
574 
575     s->regs = qemu_vfio_pci_map_bar(s->vfio, 0, 0, NVME_BAR_SIZE, errp);
576     if (!s->regs) {
577         ret = -EINVAL;
578         goto fail;
579     }
580 
581     /* Perform initialize sequence as described in NVMe spec "7.6.1
582      * Initialization". */
583 
584     cap = le64_to_cpu(s->regs->cap);
585     if (!(cap & (1ULL << 37))) {
586         error_setg(errp, "Device doesn't support NVMe command set");
587         ret = -EINVAL;
588         goto fail;
589     }
590 
591     s->page_size = MAX(4096, 1 << (12 + ((cap >> 48) & 0xF)));
592     s->doorbell_scale = (4 << (((cap >> 32) & 0xF))) / sizeof(uint32_t);
593     bs->bl.opt_mem_alignment = s->page_size;
594     timeout_ms = MIN(500 * ((cap >> 24) & 0xFF), 30000);
595 
596     /* Reset device to get a clean state. */
597     s->regs->cc = cpu_to_le32(le32_to_cpu(s->regs->cc) & 0xFE);
598     /* Wait for CSTS.RDY = 0. */
599     deadline = qemu_clock_get_ns(QEMU_CLOCK_REALTIME) + timeout_ms * 1000000ULL;
600     while (le32_to_cpu(s->regs->csts) & 0x1) {
601         if (qemu_clock_get_ns(QEMU_CLOCK_REALTIME) > deadline) {
602             error_setg(errp, "Timeout while waiting for device to reset (%"
603                              PRId64 " ms)",
604                        timeout_ms);
605             ret = -ETIMEDOUT;
606             goto fail;
607         }
608     }
609 
610     /* Set up admin queue. */
611     s->queues = g_new(NVMeQueuePair *, 1);
612     s->nr_queues = 1;
613     s->queues[0] = nvme_create_queue_pair(bs, 0, NVME_QUEUE_SIZE, errp);
614     if (!s->queues[0]) {
615         ret = -EINVAL;
616         goto fail;
617     }
618     QEMU_BUILD_BUG_ON(NVME_QUEUE_SIZE & 0xF000);
619     s->regs->aqa = cpu_to_le32((NVME_QUEUE_SIZE << 16) | NVME_QUEUE_SIZE);
620     s->regs->asq = cpu_to_le64(s->queues[0]->sq.iova);
621     s->regs->acq = cpu_to_le64(s->queues[0]->cq.iova);
622 
623     /* After setting up all control registers we can enable device now. */
624     s->regs->cc = cpu_to_le32((ctz32(NVME_CQ_ENTRY_BYTES) << 20) |
625                               (ctz32(NVME_SQ_ENTRY_BYTES) << 16) |
626                               0x1);
627     /* Wait for CSTS.RDY = 1. */
628     now = qemu_clock_get_ns(QEMU_CLOCK_REALTIME);
629     deadline = now + timeout_ms * 1000000;
630     while (!(le32_to_cpu(s->regs->csts) & 0x1)) {
631         if (qemu_clock_get_ns(QEMU_CLOCK_REALTIME) > deadline) {
632             error_setg(errp, "Timeout while waiting for device to start (%"
633                              PRId64 " ms)",
634                        timeout_ms);
635             ret = -ETIMEDOUT;
636             goto fail_queue;
637         }
638     }
639 
640     ret = qemu_vfio_pci_init_irq(s->vfio, &s->irq_notifier,
641                                  VFIO_PCI_MSIX_IRQ_INDEX, errp);
642     if (ret) {
643         goto fail_queue;
644     }
645     aio_set_event_notifier(bdrv_get_aio_context(bs), &s->irq_notifier,
646                            false, nvme_handle_event, nvme_poll_cb);
647 
648     nvme_identify(bs, namespace, &local_err);
649     if (local_err) {
650         error_propagate(errp, local_err);
651         ret = -EIO;
652         goto fail_handler;
653     }
654 
655     /* Set up command queues. */
656     if (!nvme_add_io_queue(bs, errp)) {
657         ret = -EIO;
658         goto fail_handler;
659     }
660     return 0;
661 
662 fail_handler:
663     aio_set_event_notifier(bdrv_get_aio_context(bs), &s->irq_notifier,
664                            false, NULL, NULL);
665 fail_queue:
666     nvme_free_queue_pair(bs, s->queues[0]);
667 fail:
668     g_free(s->queues);
669     if (s->regs) {
670         qemu_vfio_pci_unmap_bar(s->vfio, 0, (void *)s->regs, 0, NVME_BAR_SIZE);
671     }
672     if (s->vfio) {
673         qemu_vfio_close(s->vfio);
674     }
675     event_notifier_cleanup(&s->irq_notifier);
676     return ret;
677 }
678 
679 /* Parse a filename in the format of nvme://XXXX:XX:XX.X/X. Example:
680  *
681  *     nvme://0000:44:00.0/1
682  *
683  * where the "nvme://" is a fixed form of the protocol prefix, the middle part
684  * is the PCI address, and the last part is the namespace number starting from
685  * 1 according to the NVMe spec. */
686 static void nvme_parse_filename(const char *filename, QDict *options,
687                                 Error **errp)
688 {
689     int pref = strlen("nvme://");
690 
691     if (strlen(filename) > pref && !strncmp(filename, "nvme://", pref)) {
692         const char *tmp = filename + pref;
693         char *device;
694         const char *namespace;
695         unsigned long ns;
696         const char *slash = strchr(tmp, '/');
697         if (!slash) {
698             qdict_put(options, NVME_BLOCK_OPT_DEVICE,
699                       qstring_from_str(tmp));
700             return;
701         }
702         device = g_strndup(tmp, slash - tmp);
703         qdict_put(options, NVME_BLOCK_OPT_DEVICE, qstring_from_str(device));
704         g_free(device);
705         namespace = slash + 1;
706         if (*namespace && qemu_strtoul(namespace, NULL, 10, &ns)) {
707             error_setg(errp, "Invalid namespace '%s', positive number expected",
708                        namespace);
709             return;
710         }
711         qdict_put(options, NVME_BLOCK_OPT_NAMESPACE,
712                   qstring_from_str(*namespace ? namespace : "1"));
713     }
714 }
715 
716 static int nvme_enable_disable_write_cache(BlockDriverState *bs, bool enable,
717                                            Error **errp)
718 {
719     int ret;
720     BDRVNVMeState *s = bs->opaque;
721     NvmeCmd cmd = {
722         .opcode = NVME_ADM_CMD_SET_FEATURES,
723         .nsid = cpu_to_le32(s->nsid),
724         .cdw10 = cpu_to_le32(0x06),
725         .cdw11 = cpu_to_le32(enable ? 0x01 : 0x00),
726     };
727 
728     ret = nvme_cmd_sync(bs, s->queues[0], &cmd);
729     if (ret) {
730         error_setg(errp, "Failed to configure NVMe write cache");
731     }
732     return ret;
733 }
734 
735 static void nvme_close(BlockDriverState *bs)
736 {
737     int i;
738     BDRVNVMeState *s = bs->opaque;
739 
740     for (i = 0; i < s->nr_queues; ++i) {
741         nvme_free_queue_pair(bs, s->queues[i]);
742     }
743     aio_set_event_notifier(bdrv_get_aio_context(bs), &s->irq_notifier,
744                            false, NULL, NULL);
745     qemu_vfio_pci_unmap_bar(s->vfio, 0, (void *)s->regs, 0, NVME_BAR_SIZE);
746     qemu_vfio_close(s->vfio);
747 }
748 
749 static int nvme_file_open(BlockDriverState *bs, QDict *options, int flags,
750                           Error **errp)
751 {
752     const char *device;
753     QemuOpts *opts;
754     int namespace;
755     int ret;
756     BDRVNVMeState *s = bs->opaque;
757 
758     opts = qemu_opts_create(&runtime_opts, NULL, 0, &error_abort);
759     qemu_opts_absorb_qdict(opts, options, &error_abort);
760     device = qemu_opt_get(opts, NVME_BLOCK_OPT_DEVICE);
761     if (!device) {
762         error_setg(errp, "'" NVME_BLOCK_OPT_DEVICE "' option is required");
763         qemu_opts_del(opts);
764         return -EINVAL;
765     }
766 
767     namespace = qemu_opt_get_number(opts, NVME_BLOCK_OPT_NAMESPACE, 1);
768     ret = nvme_init(bs, device, namespace, errp);
769     qemu_opts_del(opts);
770     if (ret) {
771         goto fail;
772     }
773     if (flags & BDRV_O_NOCACHE) {
774         if (!s->write_cache_supported) {
775             error_setg(errp,
776                        "NVMe controller doesn't support write cache configuration");
777             ret = -EINVAL;
778         } else {
779             ret = nvme_enable_disable_write_cache(bs, !(flags & BDRV_O_NOCACHE),
780                                                   errp);
781         }
782         if (ret) {
783             goto fail;
784         }
785     }
786     bs->supported_write_flags = BDRV_REQ_FUA;
787     return 0;
788 fail:
789     nvme_close(bs);
790     return ret;
791 }
792 
793 static int64_t nvme_getlength(BlockDriverState *bs)
794 {
795     BDRVNVMeState *s = bs->opaque;
796 
797     return s->nsze << BDRV_SECTOR_BITS;
798 }
799 
800 /* Called with s->dma_map_lock */
801 static coroutine_fn int nvme_cmd_unmap_qiov(BlockDriverState *bs,
802                                             QEMUIOVector *qiov)
803 {
804     int r = 0;
805     BDRVNVMeState *s = bs->opaque;
806 
807     s->dma_map_count -= qiov->size;
808     if (!s->dma_map_count && !qemu_co_queue_empty(&s->dma_flush_queue)) {
809         r = qemu_vfio_dma_reset_temporary(s->vfio);
810         if (!r) {
811             qemu_co_queue_restart_all(&s->dma_flush_queue);
812         }
813     }
814     return r;
815 }
816 
817 /* Called with s->dma_map_lock */
818 static coroutine_fn int nvme_cmd_map_qiov(BlockDriverState *bs, NvmeCmd *cmd,
819                                           NVMeRequest *req, QEMUIOVector *qiov)
820 {
821     BDRVNVMeState *s = bs->opaque;
822     uint64_t *pagelist = req->prp_list_page;
823     int i, j, r;
824     int entries = 0;
825 
826     assert(qiov->size);
827     assert(QEMU_IS_ALIGNED(qiov->size, s->page_size));
828     assert(qiov->size / s->page_size <= s->page_size / sizeof(uint64_t));
829     for (i = 0; i < qiov->niov; ++i) {
830         bool retry = true;
831         uint64_t iova;
832 try_map:
833         r = qemu_vfio_dma_map(s->vfio,
834                               qiov->iov[i].iov_base,
835                               qiov->iov[i].iov_len,
836                               true, &iova);
837         if (r == -ENOMEM && retry) {
838             retry = false;
839             trace_nvme_dma_flush_queue_wait(s);
840             if (s->dma_map_count) {
841                 trace_nvme_dma_map_flush(s);
842                 qemu_co_queue_wait(&s->dma_flush_queue, &s->dma_map_lock);
843             } else {
844                 r = qemu_vfio_dma_reset_temporary(s->vfio);
845                 if (r) {
846                     goto fail;
847                 }
848             }
849             goto try_map;
850         }
851         if (r) {
852             goto fail;
853         }
854 
855         for (j = 0; j < qiov->iov[i].iov_len / s->page_size; j++) {
856             pagelist[entries++] = iova + j * s->page_size;
857         }
858         trace_nvme_cmd_map_qiov_iov(s, i, qiov->iov[i].iov_base,
859                                     qiov->iov[i].iov_len / s->page_size);
860     }
861 
862     s->dma_map_count += qiov->size;
863 
864     assert(entries <= s->page_size / sizeof(uint64_t));
865     switch (entries) {
866     case 0:
867         abort();
868     case 1:
869         cmd->prp1 = cpu_to_le64(pagelist[0]);
870         cmd->prp2 = 0;
871         break;
872     case 2:
873         cmd->prp1 = cpu_to_le64(pagelist[0]);
874         cmd->prp2 = cpu_to_le64(pagelist[1]);;
875         break;
876     default:
877         cmd->prp1 = cpu_to_le64(pagelist[0]);
878         cmd->prp2 = cpu_to_le64(req->prp_list_iova);
879         for (i = 0; i < entries - 1; ++i) {
880             pagelist[i] = cpu_to_le64(pagelist[i + 1]);
881         }
882         pagelist[entries - 1] = 0;
883         break;
884     }
885     trace_nvme_cmd_map_qiov(s, cmd, req, qiov, entries);
886     for (i = 0; i < entries; ++i) {
887         trace_nvme_cmd_map_qiov_pages(s, i, pagelist[i]);
888     }
889     return 0;
890 fail:
891     /* No need to unmap [0 - i) iovs even if we've failed, since we don't
892      * increment s->dma_map_count. This is okay for fixed mapping memory areas
893      * because they are already mapped before calling this function; for
894      * temporary mappings, a later nvme_cmd_(un)map_qiov will reclaim by
895      * calling qemu_vfio_dma_reset_temporary when necessary. */
896     return r;
897 }
898 
899 typedef struct {
900     Coroutine *co;
901     int ret;
902     AioContext *ctx;
903 } NVMeCoData;
904 
905 static void nvme_rw_cb_bh(void *opaque)
906 {
907     NVMeCoData *data = opaque;
908     qemu_coroutine_enter(data->co);
909 }
910 
911 static void nvme_rw_cb(void *opaque, int ret)
912 {
913     NVMeCoData *data = opaque;
914     data->ret = ret;
915     if (!data->co) {
916         /* The rw coroutine hasn't yielded, don't try to enter. */
917         return;
918     }
919     aio_bh_schedule_oneshot(data->ctx, nvme_rw_cb_bh, data);
920 }
921 
922 static coroutine_fn int nvme_co_prw_aligned(BlockDriverState *bs,
923                                             uint64_t offset, uint64_t bytes,
924                                             QEMUIOVector *qiov,
925                                             bool is_write,
926                                             int flags)
927 {
928     int r;
929     BDRVNVMeState *s = bs->opaque;
930     NVMeQueuePair *ioq = s->queues[1];
931     NVMeRequest *req;
932     uint32_t cdw12 = (((bytes >> BDRV_SECTOR_BITS) - 1) & 0xFFFF) |
933                        (flags & BDRV_REQ_FUA ? 1 << 30 : 0);
934     NvmeCmd cmd = {
935         .opcode = is_write ? NVME_CMD_WRITE : NVME_CMD_READ,
936         .nsid = cpu_to_le32(s->nsid),
937         .cdw10 = cpu_to_le32((offset >> BDRV_SECTOR_BITS) & 0xFFFFFFFF),
938         .cdw11 = cpu_to_le32(((offset >> BDRV_SECTOR_BITS) >> 32) & 0xFFFFFFFF),
939         .cdw12 = cpu_to_le32(cdw12),
940     };
941     NVMeCoData data = {
942         .ctx = bdrv_get_aio_context(bs),
943         .ret = -EINPROGRESS,
944     };
945 
946     trace_nvme_prw_aligned(s, is_write, offset, bytes, flags, qiov->niov);
947     assert(s->nr_queues > 1);
948     req = nvme_get_free_req(ioq);
949     assert(req);
950 
951     qemu_co_mutex_lock(&s->dma_map_lock);
952     r = nvme_cmd_map_qiov(bs, &cmd, req, qiov);
953     qemu_co_mutex_unlock(&s->dma_map_lock);
954     if (r) {
955         req->busy = false;
956         return r;
957     }
958     nvme_submit_command(s, ioq, req, &cmd, nvme_rw_cb, &data);
959 
960     data.co = qemu_coroutine_self();
961     while (data.ret == -EINPROGRESS) {
962         qemu_coroutine_yield();
963     }
964 
965     qemu_co_mutex_lock(&s->dma_map_lock);
966     r = nvme_cmd_unmap_qiov(bs, qiov);
967     qemu_co_mutex_unlock(&s->dma_map_lock);
968     if (r) {
969         return r;
970     }
971 
972     trace_nvme_rw_done(s, is_write, offset, bytes, data.ret);
973     return data.ret;
974 }
975 
976 static inline bool nvme_qiov_aligned(BlockDriverState *bs,
977                                      const QEMUIOVector *qiov)
978 {
979     int i;
980     BDRVNVMeState *s = bs->opaque;
981 
982     for (i = 0; i < qiov->niov; ++i) {
983         if (!QEMU_PTR_IS_ALIGNED(qiov->iov[i].iov_base, s->page_size) ||
984             !QEMU_IS_ALIGNED(qiov->iov[i].iov_len, s->page_size)) {
985             trace_nvme_qiov_unaligned(qiov, i, qiov->iov[i].iov_base,
986                                       qiov->iov[i].iov_len, s->page_size);
987             return false;
988         }
989     }
990     return true;
991 }
992 
993 static int nvme_co_prw(BlockDriverState *bs, uint64_t offset, uint64_t bytes,
994                        QEMUIOVector *qiov, bool is_write, int flags)
995 {
996     BDRVNVMeState *s = bs->opaque;
997     int r;
998     uint8_t *buf = NULL;
999     QEMUIOVector local_qiov;
1000 
1001     assert(QEMU_IS_ALIGNED(offset, s->page_size));
1002     assert(QEMU_IS_ALIGNED(bytes, s->page_size));
1003     assert(bytes <= s->max_transfer);
1004     if (nvme_qiov_aligned(bs, qiov)) {
1005         return nvme_co_prw_aligned(bs, offset, bytes, qiov, is_write, flags);
1006     }
1007     trace_nvme_prw_buffered(s, offset, bytes, qiov->niov, is_write);
1008     buf = qemu_try_blockalign(bs, bytes);
1009 
1010     if (!buf) {
1011         return -ENOMEM;
1012     }
1013     qemu_iovec_init(&local_qiov, 1);
1014     if (is_write) {
1015         qemu_iovec_to_buf(qiov, 0, buf, bytes);
1016     }
1017     qemu_iovec_add(&local_qiov, buf, bytes);
1018     r = nvme_co_prw_aligned(bs, offset, bytes, &local_qiov, is_write, flags);
1019     qemu_iovec_destroy(&local_qiov);
1020     if (!r && !is_write) {
1021         qemu_iovec_from_buf(qiov, 0, buf, bytes);
1022     }
1023     qemu_vfree(buf);
1024     return r;
1025 }
1026 
1027 static coroutine_fn int nvme_co_preadv(BlockDriverState *bs,
1028                                        uint64_t offset, uint64_t bytes,
1029                                        QEMUIOVector *qiov, int flags)
1030 {
1031     return nvme_co_prw(bs, offset, bytes, qiov, false, flags);
1032 }
1033 
1034 static coroutine_fn int nvme_co_pwritev(BlockDriverState *bs,
1035                                         uint64_t offset, uint64_t bytes,
1036                                         QEMUIOVector *qiov, int flags)
1037 {
1038     return nvme_co_prw(bs, offset, bytes, qiov, true, flags);
1039 }
1040 
1041 static coroutine_fn int nvme_co_flush(BlockDriverState *bs)
1042 {
1043     BDRVNVMeState *s = bs->opaque;
1044     NVMeQueuePair *ioq = s->queues[1];
1045     NVMeRequest *req;
1046     NvmeCmd cmd = {
1047         .opcode = NVME_CMD_FLUSH,
1048         .nsid = cpu_to_le32(s->nsid),
1049     };
1050     NVMeCoData data = {
1051         .ctx = bdrv_get_aio_context(bs),
1052         .ret = -EINPROGRESS,
1053     };
1054 
1055     assert(s->nr_queues > 1);
1056     req = nvme_get_free_req(ioq);
1057     assert(req);
1058     nvme_submit_command(s, ioq, req, &cmd, nvme_rw_cb, &data);
1059 
1060     data.co = qemu_coroutine_self();
1061     if (data.ret == -EINPROGRESS) {
1062         qemu_coroutine_yield();
1063     }
1064 
1065     return data.ret;
1066 }
1067 
1068 
1069 static int nvme_reopen_prepare(BDRVReopenState *reopen_state,
1070                                BlockReopenQueue *queue, Error **errp)
1071 {
1072     return 0;
1073 }
1074 
1075 static void nvme_refresh_filename(BlockDriverState *bs, QDict *opts)
1076 {
1077     QINCREF(opts);
1078     qdict_del(opts, "filename");
1079 
1080     if (!qdict_size(opts)) {
1081         snprintf(bs->exact_filename, sizeof(bs->exact_filename), "%s://",
1082                  bs->drv->format_name);
1083     }
1084 
1085     qdict_put(opts, "driver", qstring_from_str(bs->drv->format_name));
1086     bs->full_open_options = opts;
1087 }
1088 
1089 static void nvme_refresh_limits(BlockDriverState *bs, Error **errp)
1090 {
1091     BDRVNVMeState *s = bs->opaque;
1092 
1093     bs->bl.opt_mem_alignment = s->page_size;
1094     bs->bl.request_alignment = s->page_size;
1095     bs->bl.max_transfer = s->max_transfer;
1096 }
1097 
1098 static void nvme_detach_aio_context(BlockDriverState *bs)
1099 {
1100     BDRVNVMeState *s = bs->opaque;
1101 
1102     aio_set_event_notifier(bdrv_get_aio_context(bs), &s->irq_notifier,
1103                            false, NULL, NULL);
1104 }
1105 
1106 static void nvme_attach_aio_context(BlockDriverState *bs,
1107                                     AioContext *new_context)
1108 {
1109     BDRVNVMeState *s = bs->opaque;
1110 
1111     s->aio_context = new_context;
1112     aio_set_event_notifier(new_context, &s->irq_notifier,
1113                            false, nvme_handle_event, nvme_poll_cb);
1114 }
1115 
1116 static void nvme_aio_plug(BlockDriverState *bs)
1117 {
1118     BDRVNVMeState *s = bs->opaque;
1119     s->plugged++;
1120 }
1121 
1122 static void nvme_aio_unplug(BlockDriverState *bs)
1123 {
1124     int i;
1125     BDRVNVMeState *s = bs->opaque;
1126     assert(s->plugged);
1127     if (!--s->plugged) {
1128         for (i = 1; i < s->nr_queues; i++) {
1129             NVMeQueuePair *q = s->queues[i];
1130             qemu_mutex_lock(&q->lock);
1131             nvme_kick(s, q);
1132             nvme_process_completion(s, q);
1133             qemu_mutex_unlock(&q->lock);
1134         }
1135     }
1136 }
1137 
1138 static void nvme_register_buf(BlockDriverState *bs, void *host, size_t size)
1139 {
1140     int ret;
1141     BDRVNVMeState *s = bs->opaque;
1142 
1143     ret = qemu_vfio_dma_map(s->vfio, host, size, false, NULL);
1144     if (ret) {
1145         /* FIXME: we may run out of IOVA addresses after repeated
1146          * bdrv_register_buf/bdrv_unregister_buf, because nvme_vfio_dma_unmap
1147          * doesn't reclaim addresses for fixed mappings. */
1148         error_report("nvme_register_buf failed: %s", strerror(-ret));
1149     }
1150 }
1151 
1152 static void nvme_unregister_buf(BlockDriverState *bs, void *host)
1153 {
1154     BDRVNVMeState *s = bs->opaque;
1155 
1156     qemu_vfio_dma_unmap(s->vfio, host);
1157 }
1158 
1159 static BlockDriver bdrv_nvme = {
1160     .format_name              = "nvme",
1161     .protocol_name            = "nvme",
1162     .instance_size            = sizeof(BDRVNVMeState),
1163 
1164     .bdrv_parse_filename      = nvme_parse_filename,
1165     .bdrv_file_open           = nvme_file_open,
1166     .bdrv_close               = nvme_close,
1167     .bdrv_getlength           = nvme_getlength,
1168 
1169     .bdrv_co_preadv           = nvme_co_preadv,
1170     .bdrv_co_pwritev          = nvme_co_pwritev,
1171     .bdrv_co_flush_to_disk    = nvme_co_flush,
1172     .bdrv_reopen_prepare      = nvme_reopen_prepare,
1173 
1174     .bdrv_refresh_filename    = nvme_refresh_filename,
1175     .bdrv_refresh_limits      = nvme_refresh_limits,
1176 
1177     .bdrv_detach_aio_context  = nvme_detach_aio_context,
1178     .bdrv_attach_aio_context  = nvme_attach_aio_context,
1179 
1180     .bdrv_io_plug             = nvme_aio_plug,
1181     .bdrv_io_unplug           = nvme_aio_unplug,
1182 
1183     .bdrv_register_buf        = nvme_register_buf,
1184     .bdrv_unregister_buf      = nvme_unregister_buf,
1185 };
1186 
1187 static void bdrv_nvme_init(void)
1188 {
1189     bdrv_register(&bdrv_nvme);
1190 }
1191 
1192 block_init(bdrv_nvme_init);
1193