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1 /*
2 * Copyright (C) 2009-2010 Nippon Telegraph and Telephone Corporation.
3 *
4 * This program is free software; you can redistribute it and/or
5 * modify it under the terms of the GNU General Public License version
6 * 2 as published by the Free Software Foundation.
7 *
8 * You should have received a copy of the GNU General Public License
9 * along with this program. If not, see <http://www.gnu.org/licenses/>.
10 *
11 * Contributions after 2012-01-13 are licensed under the terms of the
12 * GNU GPL, version 2 or (at your option) any later version.
13 */
14
15 #include "qemu-common.h"
16 #include "qemu/uri.h"
17 #include "qemu/error-report.h"
18 #include "qemu/sockets.h"
19 #include "block/block_int.h"
20 #include "qemu/bitops.h"
21
22 #define SD_PROTO_VER 0x01
23
24 #define SD_DEFAULT_ADDR "localhost"
25 #define SD_DEFAULT_PORT 7000
26
27 #define SD_OP_CREATE_AND_WRITE_OBJ 0x01
28 #define SD_OP_READ_OBJ 0x02
29 #define SD_OP_WRITE_OBJ 0x03
30 /* 0x04 is used internally by Sheepdog */
31 #define SD_OP_DISCARD_OBJ 0x05
32
33 #define SD_OP_NEW_VDI 0x11
34 #define SD_OP_LOCK_VDI 0x12
35 #define SD_OP_RELEASE_VDI 0x13
36 #define SD_OP_GET_VDI_INFO 0x14
37 #define SD_OP_READ_VDIS 0x15
38 #define SD_OP_FLUSH_VDI 0x16
39 #define SD_OP_DEL_VDI 0x17
40
41 #define SD_FLAG_CMD_WRITE 0x01
42 #define SD_FLAG_CMD_COW 0x02
43 #define SD_FLAG_CMD_CACHE 0x04 /* Writeback mode for cache */
44 #define SD_FLAG_CMD_DIRECT 0x08 /* Don't use cache */
45
46 #define SD_RES_SUCCESS 0x00 /* Success */
47 #define SD_RES_UNKNOWN 0x01 /* Unknown error */
48 #define SD_RES_NO_OBJ 0x02 /* No object found */
49 #define SD_RES_EIO 0x03 /* I/O error */
50 #define SD_RES_VDI_EXIST 0x04 /* Vdi exists already */
51 #define SD_RES_INVALID_PARMS 0x05 /* Invalid parameters */
52 #define SD_RES_SYSTEM_ERROR 0x06 /* System error */
53 #define SD_RES_VDI_LOCKED 0x07 /* Vdi is locked */
54 #define SD_RES_NO_VDI 0x08 /* No vdi found */
55 #define SD_RES_NO_BASE_VDI 0x09 /* No base vdi found */
56 #define SD_RES_VDI_READ 0x0A /* Cannot read requested vdi */
57 #define SD_RES_VDI_WRITE 0x0B /* Cannot write requested vdi */
58 #define SD_RES_BASE_VDI_READ 0x0C /* Cannot read base vdi */
59 #define SD_RES_BASE_VDI_WRITE 0x0D /* Cannot write base vdi */
60 #define SD_RES_NO_TAG 0x0E /* Requested tag is not found */
61 #define SD_RES_STARTUP 0x0F /* Sheepdog is on starting up */
62 #define SD_RES_VDI_NOT_LOCKED 0x10 /* Vdi is not locked */
63 #define SD_RES_SHUTDOWN 0x11 /* Sheepdog is shutting down */
64 #define SD_RES_NO_MEM 0x12 /* Cannot allocate memory */
65 #define SD_RES_FULL_VDI 0x13 /* we already have the maximum vdis */
66 #define SD_RES_VER_MISMATCH 0x14 /* Protocol version mismatch */
67 #define SD_RES_NO_SPACE 0x15 /* Server has no room for new objects */
68 #define SD_RES_WAIT_FOR_FORMAT 0x16 /* Waiting for a format operation */
69 #define SD_RES_WAIT_FOR_JOIN 0x17 /* Waiting for other nodes joining */
70 #define SD_RES_JOIN_FAILED 0x18 /* Target node had failed to join sheepdog */
71 #define SD_RES_HALT 0x19 /* Sheepdog is stopped serving IO request */
72 #define SD_RES_READONLY 0x1A /* Object is read-only */
73
74 /*
75 * Object ID rules
76 *
77 * 0 - 19 (20 bits): data object space
78 * 20 - 31 (12 bits): reserved data object space
79 * 32 - 55 (24 bits): vdi object space
80 * 56 - 59 ( 4 bits): reserved vdi object space
81 * 60 - 63 ( 4 bits): object type identifier space
82 */
83
84 #define VDI_SPACE_SHIFT 32
85 #define VDI_BIT (UINT64_C(1) << 63)
86 #define VMSTATE_BIT (UINT64_C(1) << 62)
87 #define MAX_DATA_OBJS (UINT64_C(1) << 20)
88 #define MAX_CHILDREN 1024
89 #define SD_MAX_VDI_LEN 256
90 #define SD_MAX_VDI_TAG_LEN 256
91 #define SD_NR_VDIS (1U << 24)
92 #define SD_DATA_OBJ_SIZE (UINT64_C(1) << 22)
93 #define SD_MAX_VDI_SIZE (SD_DATA_OBJ_SIZE * MAX_DATA_OBJS)
94 /*
95 * For erasure coding, we use at most SD_EC_MAX_STRIP for data strips and
96 * (SD_EC_MAX_STRIP - 1) for parity strips
97 *
98 * SD_MAX_COPIES is sum of number of data strips and parity strips.
99 */
100 #define SD_EC_MAX_STRIP 16
101 #define SD_MAX_COPIES (SD_EC_MAX_STRIP * 2 - 1)
102
103 #define SD_INODE_SIZE (sizeof(SheepdogInode))
104 #define CURRENT_VDI_ID 0
105
106 typedef struct SheepdogReq {
107 uint8_t proto_ver;
108 uint8_t opcode;
109 uint16_t flags;
110 uint32_t epoch;
111 uint32_t id;
112 uint32_t data_length;
113 uint32_t opcode_specific[8];
114 } SheepdogReq;
115
116 typedef struct SheepdogRsp {
117 uint8_t proto_ver;
118 uint8_t opcode;
119 uint16_t flags;
120 uint32_t epoch;
121 uint32_t id;
122 uint32_t data_length;
123 uint32_t result;
124 uint32_t opcode_specific[7];
125 } SheepdogRsp;
126
127 typedef struct SheepdogObjReq {
128 uint8_t proto_ver;
129 uint8_t opcode;
130 uint16_t flags;
131 uint32_t epoch;
132 uint32_t id;
133 uint32_t data_length;
134 uint64_t oid;
135 uint64_t cow_oid;
136 uint8_t copies;
137 uint8_t copy_policy;
138 uint8_t reserved[6];
139 uint64_t offset;
140 } SheepdogObjReq;
141
142 typedef struct SheepdogObjRsp {
143 uint8_t proto_ver;
144 uint8_t opcode;
145 uint16_t flags;
146 uint32_t epoch;
147 uint32_t id;
148 uint32_t data_length;
149 uint32_t result;
150 uint8_t copies;
151 uint8_t copy_policy;
152 uint8_t reserved[2];
153 uint32_t pad[6];
154 } SheepdogObjRsp;
155
156 typedef struct SheepdogVdiReq {
157 uint8_t proto_ver;
158 uint8_t opcode;
159 uint16_t flags;
160 uint32_t epoch;
161 uint32_t id;
162 uint32_t data_length;
163 uint64_t vdi_size;
164 uint32_t base_vdi_id;
165 uint8_t copies;
166 uint8_t copy_policy;
167 uint8_t reserved[2];
168 uint32_t snapid;
169 uint32_t pad[3];
170 } SheepdogVdiReq;
171
172 typedef struct SheepdogVdiRsp {
173 uint8_t proto_ver;
174 uint8_t opcode;
175 uint16_t flags;
176 uint32_t epoch;
177 uint32_t id;
178 uint32_t data_length;
179 uint32_t result;
180 uint32_t rsvd;
181 uint32_t vdi_id;
182 uint32_t pad[5];
183 } SheepdogVdiRsp;
184
185 typedef struct SheepdogInode {
186 char name[SD_MAX_VDI_LEN];
187 char tag[SD_MAX_VDI_TAG_LEN];
188 uint64_t ctime;
189 uint64_t snap_ctime;
190 uint64_t vm_clock_nsec;
191 uint64_t vdi_size;
192 uint64_t vm_state_size;
193 uint16_t copy_policy;
194 uint8_t nr_copies;
195 uint8_t block_size_shift;
196 uint32_t snap_id;
197 uint32_t vdi_id;
198 uint32_t parent_vdi_id;
199 uint32_t child_vdi_id[MAX_CHILDREN];
200 uint32_t data_vdi_id[MAX_DATA_OBJS];
201 } SheepdogInode;
202
203 /*
204 * 64 bit FNV-1a non-zero initial basis
205 */
206 #define FNV1A_64_INIT ((uint64_t)0xcbf29ce484222325ULL)
207
208 /*
209 * 64 bit Fowler/Noll/Vo FNV-1a hash code
210 */
211 static inline uint64_t fnv_64a_buf(void *buf, size_t len, uint64_t hval)
212 {
213 unsigned char *bp = buf;
214 unsigned char *be = bp + len;
215 while (bp < be) {
216 hval ^= (uint64_t) *bp++;
217 hval += (hval << 1) + (hval << 4) + (hval << 5) +
218 (hval << 7) + (hval << 8) + (hval << 40);
219 }
220 return hval;
221 }
222
223 static inline bool is_data_obj_writable(SheepdogInode *inode, unsigned int idx)
224 {
225 return inode->vdi_id == inode->data_vdi_id[idx];
226 }
227
228 static inline bool is_data_obj(uint64_t oid)
229 {
230 return !(VDI_BIT & oid);
231 }
232
233 static inline uint64_t data_oid_to_idx(uint64_t oid)
234 {
235 return oid & (MAX_DATA_OBJS - 1);
236 }
237
238 static inline uint32_t oid_to_vid(uint64_t oid)
239 {
240 return (oid & ~VDI_BIT) >> VDI_SPACE_SHIFT;
241 }
242
243 static inline uint64_t vid_to_vdi_oid(uint32_t vid)
244 {
245 return VDI_BIT | ((uint64_t)vid << VDI_SPACE_SHIFT);
246 }
247
248 static inline uint64_t vid_to_vmstate_oid(uint32_t vid, uint32_t idx)
249 {
250 return VMSTATE_BIT | ((uint64_t)vid << VDI_SPACE_SHIFT) | idx;
251 }
252
253 static inline uint64_t vid_to_data_oid(uint32_t vid, uint32_t idx)
254 {
255 return ((uint64_t)vid << VDI_SPACE_SHIFT) | idx;
256 }
257
258 static inline bool is_snapshot(struct SheepdogInode *inode)
259 {
260 return !!inode->snap_ctime;
261 }
262
263 #undef DPRINTF
264 #ifdef DEBUG_SDOG
265 #define DPRINTF(fmt, args...) \
266 do { \
267 fprintf(stdout, "%s %d: " fmt, __func__, __LINE__, ##args); \
268 } while (0)
269 #else
270 #define DPRINTF(fmt, args...)
271 #endif
272
273 typedef struct SheepdogAIOCB SheepdogAIOCB;
274
275 typedef struct AIOReq {
276 SheepdogAIOCB *aiocb;
277 unsigned int iov_offset;
278
279 uint64_t oid;
280 uint64_t base_oid;
281 uint64_t offset;
282 unsigned int data_len;
283 uint8_t flags;
284 uint32_t id;
285
286 QLIST_ENTRY(AIOReq) aio_siblings;
287 } AIOReq;
288
289 enum AIOCBState {
290 AIOCB_WRITE_UDATA,
291 AIOCB_READ_UDATA,
292 AIOCB_FLUSH_CACHE,
293 AIOCB_DISCARD_OBJ,
294 };
295
296 struct SheepdogAIOCB {
297 BlockDriverAIOCB common;
298
299 QEMUIOVector *qiov;
300
301 int64_t sector_num;
302 int nb_sectors;
303
304 int ret;
305 enum AIOCBState aiocb_type;
306
307 Coroutine *coroutine;
308 void (*aio_done_func)(SheepdogAIOCB *);
309
310 bool cancelable;
311 bool *finished;
312 int nr_pending;
313 };
314
315 typedef struct BDRVSheepdogState {
316 BlockDriverState *bs;
317
318 SheepdogInode inode;
319
320 uint32_t min_dirty_data_idx;
321 uint32_t max_dirty_data_idx;
322
323 char name[SD_MAX_VDI_LEN];
324 bool is_snapshot;
325 uint32_t cache_flags;
326 bool discard_supported;
327
328 char *host_spec;
329 bool is_unix;
330 int fd;
331
332 CoMutex lock;
333 Coroutine *co_send;
334 Coroutine *co_recv;
335
336 uint32_t aioreq_seq_num;
337
338 /* Every aio request must be linked to either of these queues. */
339 QLIST_HEAD(inflight_aio_head, AIOReq) inflight_aio_head;
340 QLIST_HEAD(pending_aio_head, AIOReq) pending_aio_head;
341 QLIST_HEAD(failed_aio_head, AIOReq) failed_aio_head;
342 } BDRVSheepdogState;
343
344 static const char * sd_strerror(int err)
345 {
346 int i;
347
348 static const struct {
349 int err;
350 const char *desc;
351 } errors[] = {
352 {SD_RES_SUCCESS, "Success"},
353 {SD_RES_UNKNOWN, "Unknown error"},
354 {SD_RES_NO_OBJ, "No object found"},
355 {SD_RES_EIO, "I/O error"},
356 {SD_RES_VDI_EXIST, "VDI exists already"},
357 {SD_RES_INVALID_PARMS, "Invalid parameters"},
358 {SD_RES_SYSTEM_ERROR, "System error"},
359 {SD_RES_VDI_LOCKED, "VDI is already locked"},
360 {SD_RES_NO_VDI, "No vdi found"},
361 {SD_RES_NO_BASE_VDI, "No base VDI found"},
362 {SD_RES_VDI_READ, "Failed read the requested VDI"},
363 {SD_RES_VDI_WRITE, "Failed to write the requested VDI"},
364 {SD_RES_BASE_VDI_READ, "Failed to read the base VDI"},
365 {SD_RES_BASE_VDI_WRITE, "Failed to write the base VDI"},
366 {SD_RES_NO_TAG, "Failed to find the requested tag"},
367 {SD_RES_STARTUP, "The system is still booting"},
368 {SD_RES_VDI_NOT_LOCKED, "VDI isn't locked"},
369 {SD_RES_SHUTDOWN, "The system is shutting down"},
370 {SD_RES_NO_MEM, "Out of memory on the server"},
371 {SD_RES_FULL_VDI, "We already have the maximum vdis"},
372 {SD_RES_VER_MISMATCH, "Protocol version mismatch"},
373 {SD_RES_NO_SPACE, "Server has no space for new objects"},
374 {SD_RES_WAIT_FOR_FORMAT, "Sheepdog is waiting for a format operation"},
375 {SD_RES_WAIT_FOR_JOIN, "Sheepdog is waiting for other nodes joining"},
376 {SD_RES_JOIN_FAILED, "Target node had failed to join sheepdog"},
377 {SD_RES_HALT, "Sheepdog is stopped serving IO request"},
378 {SD_RES_READONLY, "Object is read-only"},
379 };
380
381 for (i = 0; i < ARRAY_SIZE(errors); ++i) {
382 if (errors[i].err == err) {
383 return errors[i].desc;
384 }
385 }
386
387 return "Invalid error code";
388 }
389
390 /*
391 * Sheepdog I/O handling:
392 *
393 * 1. In sd_co_rw_vector, we send the I/O requests to the server and
394 * link the requests to the inflight_list in the
395 * BDRVSheepdogState. The function exits without waiting for
396 * receiving the response.
397 *
398 * 2. We receive the response in aio_read_response, the fd handler to
399 * the sheepdog connection. If metadata update is needed, we send
400 * the write request to the vdi object in sd_write_done, the write
401 * completion function. We switch back to sd_co_readv/writev after
402 * all the requests belonging to the AIOCB are finished.
403 */
404
405 static inline AIOReq *alloc_aio_req(BDRVSheepdogState *s, SheepdogAIOCB *acb,
406 uint64_t oid, unsigned int data_len,
407 uint64_t offset, uint8_t flags,
408 uint64_t base_oid, unsigned int iov_offset)
409 {
410 AIOReq *aio_req;
411
412 aio_req = g_malloc(sizeof(*aio_req));
413 aio_req->aiocb = acb;
414 aio_req->iov_offset = iov_offset;
415 aio_req->oid = oid;
416 aio_req->base_oid = base_oid;
417 aio_req->offset = offset;
418 aio_req->data_len = data_len;
419 aio_req->flags = flags;
420 aio_req->id = s->aioreq_seq_num++;
421
422 acb->nr_pending++;
423 return aio_req;
424 }
425
426 static inline void free_aio_req(BDRVSheepdogState *s, AIOReq *aio_req)
427 {
428 SheepdogAIOCB *acb = aio_req->aiocb;
429
430 acb->cancelable = false;
431 QLIST_REMOVE(aio_req, aio_siblings);
432 g_free(aio_req);
433
434 acb->nr_pending--;
435 }
436
437 static void coroutine_fn sd_finish_aiocb(SheepdogAIOCB *acb)
438 {
439 qemu_coroutine_enter(acb->coroutine, NULL);
440 if (acb->finished) {
441 *acb->finished = true;
442 }
443 qemu_aio_release(acb);
444 }
445
446 /*
447 * Check whether the specified acb can be canceled
448 *
449 * We can cancel aio when any request belonging to the acb is:
450 * - Not processed by the sheepdog server.
451 * - Not linked to the inflight queue.
452 */
453 static bool sd_acb_cancelable(const SheepdogAIOCB *acb)
454 {
455 BDRVSheepdogState *s = acb->common.bs->opaque;
456 AIOReq *aioreq;
457
458 if (!acb->cancelable) {
459 return false;
460 }
461
462 QLIST_FOREACH(aioreq, &s->inflight_aio_head, aio_siblings) {
463 if (aioreq->aiocb == acb) {
464 return false;
465 }
466 }
467
468 return true;
469 }
470
471 static void sd_aio_cancel(BlockDriverAIOCB *blockacb)
472 {
473 SheepdogAIOCB *acb = (SheepdogAIOCB *)blockacb;
474 BDRVSheepdogState *s = acb->common.bs->opaque;
475 AIOReq *aioreq, *next;
476 bool finished = false;
477
478 acb->finished = &finished;
479 while (!finished) {
480 if (sd_acb_cancelable(acb)) {
481 /* Remove outstanding requests from pending and failed queues. */
482 QLIST_FOREACH_SAFE(aioreq, &s->pending_aio_head, aio_siblings,
483 next) {
484 if (aioreq->aiocb == acb) {
485 free_aio_req(s, aioreq);
486 }
487 }
488 QLIST_FOREACH_SAFE(aioreq, &s->failed_aio_head, aio_siblings,
489 next) {
490 if (aioreq->aiocb == acb) {
491 free_aio_req(s, aioreq);
492 }
493 }
494
495 assert(acb->nr_pending == 0);
496 sd_finish_aiocb(acb);
497 return;
498 }
499 qemu_aio_wait();
500 }
501 }
502
503 static const AIOCBInfo sd_aiocb_info = {
504 .aiocb_size = sizeof(SheepdogAIOCB),
505 .cancel = sd_aio_cancel,
506 };
507
508 static SheepdogAIOCB *sd_aio_setup(BlockDriverState *bs, QEMUIOVector *qiov,
509 int64_t sector_num, int nb_sectors)
510 {
511 SheepdogAIOCB *acb;
512
513 acb = qemu_aio_get(&sd_aiocb_info, bs, NULL, NULL);
514
515 acb->qiov = qiov;
516
517 acb->sector_num = sector_num;
518 acb->nb_sectors = nb_sectors;
519
520 acb->aio_done_func = NULL;
521 acb->cancelable = true;
522 acb->finished = NULL;
523 acb->coroutine = qemu_coroutine_self();
524 acb->ret = 0;
525 acb->nr_pending = 0;
526 return acb;
527 }
528
529 static int connect_to_sdog(BDRVSheepdogState *s, Error **errp)
530 {
531 int fd;
532
533 if (s->is_unix) {
534 fd = unix_connect(s->host_spec, errp);
535 } else {
536 fd = inet_connect(s->host_spec, errp);
537
538 if (fd >= 0) {
539 int ret = socket_set_nodelay(fd);
540 if (ret < 0) {
541 error_report("%s", strerror(errno));
542 }
543 }
544 }
545
546 if (fd >= 0) {
547 qemu_set_nonblock(fd);
548 }
549
550 return fd;
551 }
552
553 static coroutine_fn int send_co_req(int sockfd, SheepdogReq *hdr, void *data,
554 unsigned int *wlen)
555 {
556 int ret;
557
558 ret = qemu_co_send(sockfd, hdr, sizeof(*hdr));
559 if (ret != sizeof(*hdr)) {
560 error_report("failed to send a req, %s", strerror(errno));
561 return ret;
562 }
563
564 ret = qemu_co_send(sockfd, data, *wlen);
565 if (ret != *wlen) {
566 error_report("failed to send a req, %s", strerror(errno));
567 }
568
569 return ret;
570 }
571
572 static void restart_co_req(void *opaque)
573 {
574 Coroutine *co = opaque;
575
576 qemu_coroutine_enter(co, NULL);
577 }
578
579 typedef struct SheepdogReqCo {
580 int sockfd;
581 SheepdogReq *hdr;
582 void *data;
583 unsigned int *wlen;
584 unsigned int *rlen;
585 int ret;
586 bool finished;
587 } SheepdogReqCo;
588
589 static coroutine_fn void do_co_req(void *opaque)
590 {
591 int ret;
592 Coroutine *co;
593 SheepdogReqCo *srco = opaque;
594 int sockfd = srco->sockfd;
595 SheepdogReq *hdr = srco->hdr;
596 void *data = srco->data;
597 unsigned int *wlen = srco->wlen;
598 unsigned int *rlen = srco->rlen;
599
600 co = qemu_coroutine_self();
601 qemu_aio_set_fd_handler(sockfd, NULL, restart_co_req, co);
602
603 ret = send_co_req(sockfd, hdr, data, wlen);
604 if (ret < 0) {
605 goto out;
606 }
607
608 qemu_aio_set_fd_handler(sockfd, restart_co_req, NULL, co);
609
610 ret = qemu_co_recv(sockfd, hdr, sizeof(*hdr));
611 if (ret != sizeof(*hdr)) {
612 error_report("failed to get a rsp, %s", strerror(errno));
613 ret = -errno;
614 goto out;
615 }
616
617 if (*rlen > hdr->data_length) {
618 *rlen = hdr->data_length;
619 }
620
621 if (*rlen) {
622 ret = qemu_co_recv(sockfd, data, *rlen);
623 if (ret != *rlen) {
624 error_report("failed to get the data, %s", strerror(errno));
625 ret = -errno;
626 goto out;
627 }
628 }
629 ret = 0;
630 out:
631 /* there is at most one request for this sockfd, so it is safe to
632 * set each handler to NULL. */
633 qemu_aio_set_fd_handler(sockfd, NULL, NULL, NULL);
634
635 srco->ret = ret;
636 srco->finished = true;
637 }
638
639 static int do_req(int sockfd, SheepdogReq *hdr, void *data,
640 unsigned int *wlen, unsigned int *rlen)
641 {
642 Coroutine *co;
643 SheepdogReqCo srco = {
644 .sockfd = sockfd,
645 .hdr = hdr,
646 .data = data,
647 .wlen = wlen,
648 .rlen = rlen,
649 .ret = 0,
650 .finished = false,
651 };
652
653 if (qemu_in_coroutine()) {
654 do_co_req(&srco);
655 } else {
656 co = qemu_coroutine_create(do_co_req);
657 qemu_coroutine_enter(co, &srco);
658 while (!srco.finished) {
659 qemu_aio_wait();
660 }
661 }
662
663 return srco.ret;
664 }
665
666 static void coroutine_fn add_aio_request(BDRVSheepdogState *s, AIOReq *aio_req,
667 struct iovec *iov, int niov, bool create,
668 enum AIOCBState aiocb_type);
669 static void coroutine_fn resend_aioreq(BDRVSheepdogState *s, AIOReq *aio_req);
670 static int reload_inode(BDRVSheepdogState *s, uint32_t snapid, const char *tag);
671 static int get_sheep_fd(BDRVSheepdogState *s, Error **errp);
672 static void co_write_request(void *opaque);
673
674 static AIOReq *find_pending_req(BDRVSheepdogState *s, uint64_t oid)
675 {
676 AIOReq *aio_req;
677
678 QLIST_FOREACH(aio_req, &s->pending_aio_head, aio_siblings) {
679 if (aio_req->oid == oid) {
680 return aio_req;
681 }
682 }
683
684 return NULL;
685 }
686
687 /*
688 * This function searchs pending requests to the object `oid', and
689 * sends them.
690 */
691 static void coroutine_fn send_pending_req(BDRVSheepdogState *s, uint64_t oid)
692 {
693 AIOReq *aio_req;
694 SheepdogAIOCB *acb;
695
696 while ((aio_req = find_pending_req(s, oid)) != NULL) {
697 acb = aio_req->aiocb;
698 /* move aio_req from pending list to inflight one */
699 QLIST_REMOVE(aio_req, aio_siblings);
700 QLIST_INSERT_HEAD(&s->inflight_aio_head, aio_req, aio_siblings);
701 add_aio_request(s, aio_req, acb->qiov->iov, acb->qiov->niov, false,
702 acb->aiocb_type);
703 }
704 }
705
706 static coroutine_fn void reconnect_to_sdog(void *opaque)
707 {
708 Error *local_err = NULL;
709 BDRVSheepdogState *s = opaque;
710 AIOReq *aio_req, *next;
711
712 qemu_aio_set_fd_handler(s->fd, NULL, NULL, NULL);
713 close(s->fd);
714 s->fd = -1;
715
716 /* Wait for outstanding write requests to be completed. */
717 while (s->co_send != NULL) {
718 co_write_request(opaque);
719 }
720
721 /* Try to reconnect the sheepdog server every one second. */
722 while (s->fd < 0) {
723 s->fd = get_sheep_fd(s, &local_err);
724 if (s->fd < 0) {
725 DPRINTF("Wait for connection to be established\n");
726 qerror_report_err(local_err);
727 error_free(local_err);
728 co_aio_sleep_ns(bdrv_get_aio_context(s->bs), QEMU_CLOCK_REALTIME,
729 1000000000ULL);
730 }
731 };
732
733 /*
734 * Now we have to resend all the request in the inflight queue. However,
735 * resend_aioreq() can yield and newly created requests can be added to the
736 * inflight queue before the coroutine is resumed. To avoid mixing them, we
737 * have to move all the inflight requests to the failed queue before
738 * resend_aioreq() is called.
739 */
740 QLIST_FOREACH_SAFE(aio_req, &s->inflight_aio_head, aio_siblings, next) {
741 QLIST_REMOVE(aio_req, aio_siblings);
742 QLIST_INSERT_HEAD(&s->failed_aio_head, aio_req, aio_siblings);
743 }
744
745 /* Resend all the failed aio requests. */
746 while (!QLIST_EMPTY(&s->failed_aio_head)) {
747 aio_req = QLIST_FIRST(&s->failed_aio_head);
748 QLIST_REMOVE(aio_req, aio_siblings);
749 QLIST_INSERT_HEAD(&s->inflight_aio_head, aio_req, aio_siblings);
750 resend_aioreq(s, aio_req);
751 }
752 }
753
754 /*
755 * Receive responses of the I/O requests.
756 *
757 * This function is registered as a fd handler, and called from the
758 * main loop when s->fd is ready for reading responses.
759 */
760 static void coroutine_fn aio_read_response(void *opaque)
761 {
762 SheepdogObjRsp rsp;
763 BDRVSheepdogState *s = opaque;
764 int fd = s->fd;
765 int ret;
766 AIOReq *aio_req = NULL;
767 SheepdogAIOCB *acb;
768 uint64_t idx;
769
770 /* read a header */
771 ret = qemu_co_recv(fd, &rsp, sizeof(rsp));
772 if (ret != sizeof(rsp)) {
773 error_report("failed to get the header, %s", strerror(errno));
774 goto err;
775 }
776
777 /* find the right aio_req from the inflight aio list */
778 QLIST_FOREACH(aio_req, &s->inflight_aio_head, aio_siblings) {
779 if (aio_req->id == rsp.id) {
780 break;
781 }
782 }
783 if (!aio_req) {
784 error_report("cannot find aio_req %x", rsp.id);
785 goto err;
786 }
787
788 acb = aio_req->aiocb;
789
790 switch (acb->aiocb_type) {
791 case AIOCB_WRITE_UDATA:
792 /* this coroutine context is no longer suitable for co_recv
793 * because we may send data to update vdi objects */
794 s->co_recv = NULL;
795 if (!is_data_obj(aio_req->oid)) {
796 break;
797 }
798 idx = data_oid_to_idx(aio_req->oid);
799
800 if (s->inode.data_vdi_id[idx] != s->inode.vdi_id) {
801 /*
802 * If the object is newly created one, we need to update
803 * the vdi object (metadata object). min_dirty_data_idx
804 * and max_dirty_data_idx are changed to include updated
805 * index between them.
806 */
807 if (rsp.result == SD_RES_SUCCESS) {
808 s->inode.data_vdi_id[idx] = s->inode.vdi_id;
809 s->max_dirty_data_idx = MAX(idx, s->max_dirty_data_idx);
810 s->min_dirty_data_idx = MIN(idx, s->min_dirty_data_idx);
811 }
812 /*
813 * Some requests may be blocked because simultaneous
814 * create requests are not allowed, so we search the
815 * pending requests here.
816 */
817 send_pending_req(s, aio_req->oid);
818 }
819 break;
820 case AIOCB_READ_UDATA:
821 ret = qemu_co_recvv(fd, acb->qiov->iov, acb->qiov->niov,
822 aio_req->iov_offset, rsp.data_length);
823 if (ret != rsp.data_length) {
824 error_report("failed to get the data, %s", strerror(errno));
825 goto err;
826 }
827 break;
828 case AIOCB_FLUSH_CACHE:
829 if (rsp.result == SD_RES_INVALID_PARMS) {
830 DPRINTF("disable cache since the server doesn't support it\n");
831 s->cache_flags = SD_FLAG_CMD_DIRECT;
832 rsp.result = SD_RES_SUCCESS;
833 }
834 break;
835 case AIOCB_DISCARD_OBJ:
836 switch (rsp.result) {
837 case SD_RES_INVALID_PARMS:
838 error_report("sheep(%s) doesn't support discard command",
839 s->host_spec);
840 rsp.result = SD_RES_SUCCESS;
841 s->discard_supported = false;
842 break;
843 case SD_RES_SUCCESS:
844 idx = data_oid_to_idx(aio_req->oid);
845 s->inode.data_vdi_id[idx] = 0;
846 break;
847 default:
848 break;
849 }
850 }
851
852 switch (rsp.result) {
853 case SD_RES_SUCCESS:
854 break;
855 case SD_RES_READONLY:
856 if (s->inode.vdi_id == oid_to_vid(aio_req->oid)) {
857 ret = reload_inode(s, 0, "");
858 if (ret < 0) {
859 goto err;
860 }
861 }
862 if (is_data_obj(aio_req->oid)) {
863 aio_req->oid = vid_to_data_oid(s->inode.vdi_id,
864 data_oid_to_idx(aio_req->oid));
865 } else {
866 aio_req->oid = vid_to_vdi_oid(s->inode.vdi_id);
867 }
868 resend_aioreq(s, aio_req);
869 goto out;
870 default:
871 acb->ret = -EIO;
872 error_report("%s", sd_strerror(rsp.result));
873 break;
874 }
875
876 free_aio_req(s, aio_req);
877 if (!acb->nr_pending) {
878 /*
879 * We've finished all requests which belong to the AIOCB, so
880 * we can switch back to sd_co_readv/writev now.
881 */
882 acb->aio_done_func(acb);
883 }
884 out:
885 s->co_recv = NULL;
886 return;
887 err:
888 s->co_recv = NULL;
889 reconnect_to_sdog(opaque);
890 }
891
892 static void co_read_response(void *opaque)
893 {
894 BDRVSheepdogState *s = opaque;
895
896 if (!s->co_recv) {
897 s->co_recv = qemu_coroutine_create(aio_read_response);
898 }
899
900 qemu_coroutine_enter(s->co_recv, opaque);
901 }
902
903 static void co_write_request(void *opaque)
904 {
905 BDRVSheepdogState *s = opaque;
906
907 qemu_coroutine_enter(s->co_send, NULL);
908 }
909
910 /*
911 * Return a socket descriptor to read/write objects.
912 *
913 * We cannot use this descriptor for other operations because
914 * the block driver may be on waiting response from the server.
915 */
916 static int get_sheep_fd(BDRVSheepdogState *s, Error **errp)
917 {
918 int fd;
919
920 fd = connect_to_sdog(s, errp);
921 if (fd < 0) {
922 return fd;
923 }
924
925 qemu_aio_set_fd_handler(fd, co_read_response, NULL, s);
926 return fd;
927 }
928
929 static int sd_parse_uri(BDRVSheepdogState *s, const char *filename,
930 char *vdi, uint32_t *snapid, char *tag)
931 {
932 URI *uri;
933 QueryParams *qp = NULL;
934 int ret = 0;
935
936 uri = uri_parse(filename);
937 if (!uri) {
938 return -EINVAL;
939 }
940
941 /* transport */
942 if (!strcmp(uri->scheme, "sheepdog")) {
943 s->is_unix = false;
944 } else if (!strcmp(uri->scheme, "sheepdog+tcp")) {
945 s->is_unix = false;
946 } else if (!strcmp(uri->scheme, "sheepdog+unix")) {
947 s->is_unix = true;
948 } else {
949 ret = -EINVAL;
950 goto out;
951 }
952
953 if (uri->path == NULL || !strcmp(uri->path, "/")) {
954 ret = -EINVAL;
955 goto out;
956 }
957 pstrcpy(vdi, SD_MAX_VDI_LEN, uri->path + 1);
958
959 qp = query_params_parse(uri->query);
960 if (qp->n > 1 || (s->is_unix && !qp->n) || (!s->is_unix && qp->n)) {
961 ret = -EINVAL;
962 goto out;
963 }
964
965 if (s->is_unix) {
966 /* sheepdog+unix:///vdiname?socket=path */
967 if (uri->server || uri->port || strcmp(qp->p[0].name, "socket")) {
968 ret = -EINVAL;
969 goto out;
970 }
971 s->host_spec = g_strdup(qp->p[0].value);
972 } else {
973 /* sheepdog[+tcp]://[host:port]/vdiname */
974 s->host_spec = g_strdup_printf("%s:%d", uri->server ?: SD_DEFAULT_ADDR,
975 uri->port ?: SD_DEFAULT_PORT);
976 }
977
978 /* snapshot tag */
979 if (uri->fragment) {
980 *snapid = strtoul(uri->fragment, NULL, 10);
981 if (*snapid == 0) {
982 pstrcpy(tag, SD_MAX_VDI_TAG_LEN, uri->fragment);
983 }
984 } else {
985 *snapid = CURRENT_VDI_ID; /* search current vdi */
986 }
987
988 out:
989 if (qp) {
990 query_params_free(qp);
991 }
992 uri_free(uri);
993 return ret;
994 }
995
996 /*
997 * Parse a filename (old syntax)
998 *
999 * filename must be one of the following formats:
1000 * 1. [vdiname]
1001 * 2. [vdiname]:[snapid]
1002 * 3. [vdiname]:[tag]
1003 * 4. [hostname]:[port]:[vdiname]
1004 * 5. [hostname]:[port]:[vdiname]:[snapid]
1005 * 6. [hostname]:[port]:[vdiname]:[tag]
1006 *
1007 * You can boot from the snapshot images by specifying `snapid` or
1008 * `tag'.
1009 *
1010 * You can run VMs outside the Sheepdog cluster by specifying
1011 * `hostname' and `port' (experimental).
1012 */
1013 static int parse_vdiname(BDRVSheepdogState *s, const char *filename,
1014 char *vdi, uint32_t *snapid, char *tag)
1015 {
1016 char *p, *q, *uri;
1017 const char *host_spec, *vdi_spec;
1018 int nr_sep, ret;
1019
1020 strstart(filename, "sheepdog:", (const char **)&filename);
1021 p = q = g_strdup(filename);
1022
1023 /* count the number of separators */
1024 nr_sep = 0;
1025 while (*p) {
1026 if (*p == ':') {
1027 nr_sep++;
1028 }
1029 p++;
1030 }
1031 p = q;
1032
1033 /* use the first two tokens as host_spec. */
1034 if (nr_sep >= 2) {
1035 host_spec = p;
1036 p = strchr(p, ':');
1037 p++;
1038 p = strchr(p, ':');
1039 *p++ = '\0';
1040 } else {
1041 host_spec = "";
1042 }
1043
1044 vdi_spec = p;
1045
1046 p = strchr(vdi_spec, ':');
1047 if (p) {
1048 *p++ = '#';
1049 }
1050
1051 uri = g_strdup_printf("sheepdog://%s/%s", host_spec, vdi_spec);
1052
1053 ret = sd_parse_uri(s, uri, vdi, snapid, tag);
1054
1055 g_free(q);
1056 g_free(uri);
1057
1058 return ret;
1059 }
1060
1061 static int find_vdi_name(BDRVSheepdogState *s, const char *filename,
1062 uint32_t snapid, const char *tag, uint32_t *vid,
1063 bool lock, Error **errp)
1064 {
1065 int ret, fd;
1066 SheepdogVdiReq hdr;
1067 SheepdogVdiRsp *rsp = (SheepdogVdiRsp *)&hdr;
1068 unsigned int wlen, rlen = 0;
1069 char buf[SD_MAX_VDI_LEN + SD_MAX_VDI_TAG_LEN];
1070
1071 fd = connect_to_sdog(s, errp);
1072 if (fd < 0) {
1073 return fd;
1074 }
1075
1076 /* This pair of strncpy calls ensures that the buffer is zero-filled,
1077 * which is desirable since we'll soon be sending those bytes, and
1078 * don't want the send_req to read uninitialized data.
1079 */
1080 strncpy(buf, filename, SD_MAX_VDI_LEN);
1081 strncpy(buf + SD_MAX_VDI_LEN, tag, SD_MAX_VDI_TAG_LEN);
1082
1083 memset(&hdr, 0, sizeof(hdr));
1084 if (lock) {
1085 hdr.opcode = SD_OP_LOCK_VDI;
1086 } else {
1087 hdr.opcode = SD_OP_GET_VDI_INFO;
1088 }
1089 wlen = SD_MAX_VDI_LEN + SD_MAX_VDI_TAG_LEN;
1090 hdr.proto_ver = SD_PROTO_VER;
1091 hdr.data_length = wlen;
1092 hdr.snapid = snapid;
1093 hdr.flags = SD_FLAG_CMD_WRITE;
1094
1095 ret = do_req(fd, (SheepdogReq *)&hdr, buf, &wlen, &rlen);
1096 if (ret) {
1097 error_setg_errno(errp, -ret, "cannot get vdi info");
1098 goto out;
1099 }
1100
1101 if (rsp->result != SD_RES_SUCCESS) {
1102 error_setg(errp, "cannot get vdi info, %s, %s %" PRIu32 " %s",
1103 sd_strerror(rsp->result), filename, snapid, tag);
1104 if (rsp->result == SD_RES_NO_VDI) {
1105 ret = -ENOENT;
1106 } else {
1107 ret = -EIO;
1108 }
1109 goto out;
1110 }
1111 *vid = rsp->vdi_id;
1112
1113 ret = 0;
1114 out:
1115 closesocket(fd);
1116 return ret;
1117 }
1118
1119 static void coroutine_fn add_aio_request(BDRVSheepdogState *s, AIOReq *aio_req,
1120 struct iovec *iov, int niov, bool create,
1121 enum AIOCBState aiocb_type)
1122 {
1123 int nr_copies = s->inode.nr_copies;
1124 SheepdogObjReq hdr;
1125 unsigned int wlen = 0;
1126 int ret;
1127 uint64_t oid = aio_req->oid;
1128 unsigned int datalen = aio_req->data_len;
1129 uint64_t offset = aio_req->offset;
1130 uint8_t flags = aio_req->flags;
1131 uint64_t old_oid = aio_req->base_oid;
1132
1133 if (!nr_copies) {
1134 error_report("bug");
1135 }
1136
1137 memset(&hdr, 0, sizeof(hdr));
1138
1139 switch (aiocb_type) {
1140 case AIOCB_FLUSH_CACHE:
1141 hdr.opcode = SD_OP_FLUSH_VDI;
1142 break;
1143 case AIOCB_READ_UDATA:
1144 hdr.opcode = SD_OP_READ_OBJ;
1145 hdr.flags = flags;
1146 break;
1147 case AIOCB_WRITE_UDATA:
1148 if (create) {
1149 hdr.opcode = SD_OP_CREATE_AND_WRITE_OBJ;
1150 } else {
1151 hdr.opcode = SD_OP_WRITE_OBJ;
1152 }
1153 wlen = datalen;
1154 hdr.flags = SD_FLAG_CMD_WRITE | flags;
1155 break;
1156 case AIOCB_DISCARD_OBJ:
1157 hdr.opcode = SD_OP_DISCARD_OBJ;
1158 break;
1159 }
1160
1161 if (s->cache_flags) {
1162 hdr.flags |= s->cache_flags;
1163 }
1164
1165 hdr.oid = oid;
1166 hdr.cow_oid = old_oid;
1167 hdr.copies = s->inode.nr_copies;
1168
1169 hdr.data_length = datalen;
1170 hdr.offset = offset;
1171
1172 hdr.id = aio_req->id;
1173
1174 qemu_co_mutex_lock(&s->lock);
1175 s->co_send = qemu_coroutine_self();
1176 qemu_aio_set_fd_handler(s->fd, co_read_response, co_write_request, s);
1177 socket_set_cork(s->fd, 1);
1178
1179 /* send a header */
1180 ret = qemu_co_send(s->fd, &hdr, sizeof(hdr));
1181 if (ret != sizeof(hdr)) {
1182 error_report("failed to send a req, %s", strerror(errno));
1183 goto out;
1184 }
1185
1186 if (wlen) {
1187 ret = qemu_co_sendv(s->fd, iov, niov, aio_req->iov_offset, wlen);
1188 if (ret != wlen) {
1189 error_report("failed to send a data, %s", strerror(errno));
1190 }
1191 }
1192 out:
1193 socket_set_cork(s->fd, 0);
1194 qemu_aio_set_fd_handler(s->fd, co_read_response, NULL, s);
1195 s->co_send = NULL;
1196 qemu_co_mutex_unlock(&s->lock);
1197 }
1198
1199 static int read_write_object(int fd, char *buf, uint64_t oid, uint8_t copies,
1200 unsigned int datalen, uint64_t offset,
1201 bool write, bool create, uint32_t cache_flags)
1202 {
1203 SheepdogObjReq hdr;
1204 SheepdogObjRsp *rsp = (SheepdogObjRsp *)&hdr;
1205 unsigned int wlen, rlen;
1206 int ret;
1207
1208 memset(&hdr, 0, sizeof(hdr));
1209
1210 if (write) {
1211 wlen = datalen;
1212 rlen = 0;
1213 hdr.flags = SD_FLAG_CMD_WRITE;
1214 if (create) {
1215 hdr.opcode = SD_OP_CREATE_AND_WRITE_OBJ;
1216 } else {
1217 hdr.opcode = SD_OP_WRITE_OBJ;
1218 }
1219 } else {
1220 wlen = 0;
1221 rlen = datalen;
1222 hdr.opcode = SD_OP_READ_OBJ;
1223 }
1224
1225 hdr.flags |= cache_flags;
1226
1227 hdr.oid = oid;
1228 hdr.data_length = datalen;
1229 hdr.offset = offset;
1230 hdr.copies = copies;
1231
1232 ret = do_req(fd, (SheepdogReq *)&hdr, buf, &wlen, &rlen);
1233 if (ret) {
1234 error_report("failed to send a request to the sheep");
1235 return ret;
1236 }
1237
1238 switch (rsp->result) {
1239 case SD_RES_SUCCESS:
1240 return 0;
1241 default:
1242 error_report("%s", sd_strerror(rsp->result));
1243 return -EIO;
1244 }
1245 }
1246
1247 static int read_object(int fd, char *buf, uint64_t oid, uint8_t copies,
1248 unsigned int datalen, uint64_t offset,
1249 uint32_t cache_flags)
1250 {
1251 return read_write_object(fd, buf, oid, copies, datalen, offset, false,
1252 false, cache_flags);
1253 }
1254
1255 static int write_object(int fd, char *buf, uint64_t oid, uint8_t copies,
1256 unsigned int datalen, uint64_t offset, bool create,
1257 uint32_t cache_flags)
1258 {
1259 return read_write_object(fd, buf, oid, copies, datalen, offset, true,
1260 create, cache_flags);
1261 }
1262
1263 /* update inode with the latest state */
1264 static int reload_inode(BDRVSheepdogState *s, uint32_t snapid, const char *tag)
1265 {
1266 Error *local_err = NULL;
1267 SheepdogInode *inode;
1268 int ret = 0, fd;
1269 uint32_t vid = 0;
1270
1271 fd = connect_to_sdog(s, &local_err);
1272 if (fd < 0) {
1273 qerror_report_err(local_err);
1274 error_free(local_err);
1275 return -EIO;
1276 }
1277
1278 inode = g_malloc(sizeof(s->inode));
1279
1280 ret = find_vdi_name(s, s->name, snapid, tag, &vid, false, &local_err);
1281 if (ret) {
1282 qerror_report_err(local_err);
1283 error_free(local_err);
1284 goto out;
1285 }
1286
1287 ret = read_object(fd, (char *)inode, vid_to_vdi_oid(vid),
1288 s->inode.nr_copies, sizeof(*inode), 0, s->cache_flags);
1289 if (ret < 0) {
1290 goto out;
1291 }
1292
1293 if (inode->vdi_id != s->inode.vdi_id) {
1294 memcpy(&s->inode, inode, sizeof(s->inode));
1295 }
1296
1297 out:
1298 g_free(inode);
1299 closesocket(fd);
1300
1301 return ret;
1302 }
1303
1304 /* Return true if the specified request is linked to the pending list. */
1305 static bool check_simultaneous_create(BDRVSheepdogState *s, AIOReq *aio_req)
1306 {
1307 AIOReq *areq;
1308 QLIST_FOREACH(areq, &s->inflight_aio_head, aio_siblings) {
1309 if (areq != aio_req && areq->oid == aio_req->oid) {
1310 /*
1311 * Sheepdog cannot handle simultaneous create requests to the same
1312 * object, so we cannot send the request until the previous request
1313 * finishes.
1314 */
1315 DPRINTF("simultaneous create to %" PRIx64 "\n", aio_req->oid);
1316 aio_req->flags = 0;
1317 aio_req->base_oid = 0;
1318 QLIST_REMOVE(aio_req, aio_siblings);
1319 QLIST_INSERT_HEAD(&s->pending_aio_head, aio_req, aio_siblings);
1320 return true;
1321 }
1322 }
1323
1324 return false;
1325 }
1326
1327 static void coroutine_fn resend_aioreq(BDRVSheepdogState *s, AIOReq *aio_req)
1328 {
1329 SheepdogAIOCB *acb = aio_req->aiocb;
1330 bool create = false;
1331
1332 /* check whether this request becomes a CoW one */
1333 if (acb->aiocb_type == AIOCB_WRITE_UDATA && is_data_obj(aio_req->oid)) {
1334 int idx = data_oid_to_idx(aio_req->oid);
1335
1336 if (is_data_obj_writable(&s->inode, idx)) {
1337 goto out;
1338 }
1339
1340 if (check_simultaneous_create(s, aio_req)) {
1341 return;
1342 }
1343
1344 if (s->inode.data_vdi_id[idx]) {
1345 aio_req->base_oid = vid_to_data_oid(s->inode.data_vdi_id[idx], idx);
1346 aio_req->flags |= SD_FLAG_CMD_COW;
1347 }
1348 create = true;
1349 }
1350 out:
1351 if (is_data_obj(aio_req->oid)) {
1352 add_aio_request(s, aio_req, acb->qiov->iov, acb->qiov->niov, create,
1353 acb->aiocb_type);
1354 } else {
1355 struct iovec iov;
1356 iov.iov_base = &s->inode;
1357 iov.iov_len = sizeof(s->inode);
1358 add_aio_request(s, aio_req, &iov, 1, false, AIOCB_WRITE_UDATA);
1359 }
1360 }
1361
1362 /* TODO Convert to fine grained options */
1363 static QemuOptsList runtime_opts = {
1364 .name = "sheepdog",
1365 .head = QTAILQ_HEAD_INITIALIZER(runtime_opts.head),
1366 .desc = {
1367 {
1368 .name = "filename",
1369 .type = QEMU_OPT_STRING,
1370 .help = "URL to the sheepdog image",
1371 },
1372 { /* end of list */ }
1373 },
1374 };
1375
1376 static int sd_open(BlockDriverState *bs, QDict *options, int flags,
1377 Error **errp)
1378 {
1379 int ret, fd;
1380 uint32_t vid = 0;
1381 BDRVSheepdogState *s = bs->opaque;
1382 char vdi[SD_MAX_VDI_LEN], tag[SD_MAX_VDI_TAG_LEN];
1383 uint32_t snapid;
1384 char *buf = NULL;
1385 QemuOpts *opts;
1386 Error *local_err = NULL;
1387 const char *filename;
1388
1389 s->bs = bs;
1390
1391 opts = qemu_opts_create(&runtime_opts, NULL, 0, &error_abort);
1392 qemu_opts_absorb_qdict(opts, options, &local_err);
1393 if (local_err) {
1394 error_propagate(errp, local_err);
1395 ret = -EINVAL;
1396 goto out;
1397 }
1398
1399 filename = qemu_opt_get(opts, "filename");
1400
1401 QLIST_INIT(&s->inflight_aio_head);
1402 QLIST_INIT(&s->pending_aio_head);
1403 QLIST_INIT(&s->failed_aio_head);
1404 s->fd = -1;
1405
1406 memset(vdi, 0, sizeof(vdi));
1407 memset(tag, 0, sizeof(tag));
1408
1409 if (strstr(filename, "://")) {
1410 ret = sd_parse_uri(s, filename, vdi, &snapid, tag);
1411 } else {
1412 ret = parse_vdiname(s, filename, vdi, &snapid, tag);
1413 }
1414 if (ret < 0) {
1415 goto out;
1416 }
1417 s->fd = get_sheep_fd(s, errp);
1418 if (s->fd < 0) {
1419 ret = s->fd;
1420 goto out;
1421 }
1422
1423 ret = find_vdi_name(s, vdi, snapid, tag, &vid, true, errp);
1424 if (ret) {
1425 goto out;
1426 }
1427
1428 /*
1429 * QEMU block layer emulates writethrough cache as 'writeback + flush', so
1430 * we always set SD_FLAG_CMD_CACHE (writeback cache) as default.
1431 */
1432 s->cache_flags = SD_FLAG_CMD_CACHE;
1433 if (flags & BDRV_O_NOCACHE) {
1434 s->cache_flags = SD_FLAG_CMD_DIRECT;
1435 }
1436 s->discard_supported = true;
1437
1438 if (snapid || tag[0] != '\0') {
1439 DPRINTF("%" PRIx32 " snapshot inode was open.\n", vid);
1440 s->is_snapshot = true;
1441 }
1442
1443 fd = connect_to_sdog(s, errp);
1444 if (fd < 0) {
1445 ret = fd;
1446 goto out;
1447 }
1448
1449 buf = g_malloc(SD_INODE_SIZE);
1450 ret = read_object(fd, buf, vid_to_vdi_oid(vid), 0, SD_INODE_SIZE, 0,
1451 s->cache_flags);
1452
1453 closesocket(fd);
1454
1455 if (ret) {
1456 goto out;
1457 }
1458
1459 memcpy(&s->inode, buf, sizeof(s->inode));
1460 s->min_dirty_data_idx = UINT32_MAX;
1461 s->max_dirty_data_idx = 0;
1462
1463 bs->total_sectors = s->inode.vdi_size / BDRV_SECTOR_SIZE;
1464 pstrcpy(s->name, sizeof(s->name), vdi);
1465 qemu_co_mutex_init(&s->lock);
1466 qemu_opts_del(opts);
1467 g_free(buf);
1468 return 0;
1469 out:
1470 qemu_aio_set_fd_handler(s->fd, NULL, NULL, NULL);
1471 if (s->fd >= 0) {
1472 closesocket(s->fd);
1473 }
1474 qemu_opts_del(opts);
1475 g_free(buf);
1476 return ret;
1477 }
1478
1479 static int do_sd_create(BDRVSheepdogState *s, uint32_t *vdi_id, int snapshot,
1480 Error **errp)
1481 {
1482 SheepdogVdiReq hdr;
1483 SheepdogVdiRsp *rsp = (SheepdogVdiRsp *)&hdr;
1484 int fd, ret;
1485 unsigned int wlen, rlen = 0;
1486 char buf[SD_MAX_VDI_LEN];
1487
1488 fd = connect_to_sdog(s, errp);
1489 if (fd < 0) {
1490 return fd;
1491 }
1492
1493 /* FIXME: would it be better to fail (e.g., return -EIO) when filename
1494 * does not fit in buf? For now, just truncate and avoid buffer overrun.
1495 */
1496 memset(buf, 0, sizeof(buf));
1497 pstrcpy(buf, sizeof(buf), s->name);
1498
1499 memset(&hdr, 0, sizeof(hdr));
1500 hdr.opcode = SD_OP_NEW_VDI;
1501 hdr.base_vdi_id = s->inode.vdi_id;
1502
1503 wlen = SD_MAX_VDI_LEN;
1504
1505 hdr.flags = SD_FLAG_CMD_WRITE;
1506 hdr.snapid = snapshot;
1507
1508 hdr.data_length = wlen;
1509 hdr.vdi_size = s->inode.vdi_size;
1510 hdr.copy_policy = s->inode.copy_policy;
1511 hdr.copies = s->inode.nr_copies;
1512
1513 ret = do_req(fd, (SheepdogReq *)&hdr, buf, &wlen, &rlen);
1514
1515 closesocket(fd);
1516
1517 if (ret) {
1518 error_setg_errno(errp, -ret, "create failed");
1519 return ret;
1520 }
1521
1522 if (rsp->result != SD_RES_SUCCESS) {
1523 error_setg(errp, "%s, %s", sd_strerror(rsp->result), s->inode.name);
1524 return -EIO;
1525 }
1526
1527 if (vdi_id) {
1528 *vdi_id = rsp->vdi_id;
1529 }
1530
1531 return 0;
1532 }
1533
1534 static int sd_prealloc(const char *filename, Error **errp)
1535 {
1536 BlockDriverState *bs = NULL;
1537 uint32_t idx, max_idx;
1538 int64_t vdi_size;
1539 void *buf = g_malloc0(SD_DATA_OBJ_SIZE);
1540 int ret;
1541
1542 ret = bdrv_open(&bs, filename, NULL, NULL, BDRV_O_RDWR | BDRV_O_PROTOCOL,
1543 NULL, errp);
1544 if (ret < 0) {
1545 goto out_with_err_set;
1546 }
1547
1548 vdi_size = bdrv_getlength(bs);
1549 if (vdi_size < 0) {
1550 ret = vdi_size;
1551 goto out;
1552 }
1553 max_idx = DIV_ROUND_UP(vdi_size, SD_DATA_OBJ_SIZE);
1554
1555 for (idx = 0; idx < max_idx; idx++) {
1556 /*
1557 * The created image can be a cloned image, so we need to read
1558 * a data from the source image.
1559 */
1560 ret = bdrv_pread(bs, idx * SD_DATA_OBJ_SIZE, buf, SD_DATA_OBJ_SIZE);
1561 if (ret < 0) {
1562 goto out;
1563 }
1564 ret = bdrv_pwrite(bs, idx * SD_DATA_OBJ_SIZE, buf, SD_DATA_OBJ_SIZE);
1565 if (ret < 0) {
1566 goto out;
1567 }
1568 }
1569
1570 out:
1571 if (ret < 0) {
1572 error_setg_errno(errp, -ret, "Can't pre-allocate");
1573 }
1574 out_with_err_set:
1575 if (bs) {
1576 bdrv_unref(bs);
1577 }
1578 g_free(buf);
1579
1580 return ret;
1581 }
1582
1583 /*
1584 * Sheepdog support two kinds of redundancy, full replication and erasure
1585 * coding.
1586 *
1587 * # create a fully replicated vdi with x copies
1588 * -o redundancy=x (1 <= x <= SD_MAX_COPIES)
1589 *
1590 * # create a erasure coded vdi with x data strips and y parity strips
1591 * -o redundancy=x:y (x must be one of {2,4,8,16} and 1 <= y < SD_EC_MAX_STRIP)
1592 */
1593 static int parse_redundancy(BDRVSheepdogState *s, const char *opt)
1594 {
1595 struct SheepdogInode *inode = &s->inode;
1596 const char *n1, *n2;
1597 long copy, parity;
1598 char p[10];
1599
1600 pstrcpy(p, sizeof(p), opt);
1601 n1 = strtok(p, ":");
1602 n2 = strtok(NULL, ":");
1603
1604 if (!n1) {
1605 return -EINVAL;
1606 }
1607
1608 copy = strtol(n1, NULL, 10);
1609 if (copy > SD_MAX_COPIES || copy < 1) {
1610 return -EINVAL;
1611 }
1612 if (!n2) {
1613 inode->copy_policy = 0;
1614 inode->nr_copies = copy;
1615 return 0;
1616 }
1617
1618 if (copy != 2 && copy != 4 && copy != 8 && copy != 16) {
1619 return -EINVAL;
1620 }
1621
1622 parity = strtol(n2, NULL, 10);
1623 if (parity >= SD_EC_MAX_STRIP || parity < 1) {
1624 return -EINVAL;
1625 }
1626
1627 /*
1628 * 4 bits for parity and 4 bits for data.
1629 * We have to compress upper data bits because it can't represent 16
1630 */
1631 inode->copy_policy = ((copy / 2) << 4) + parity;
1632 inode->nr_copies = copy + parity;
1633
1634 return 0;
1635 }
1636
1637 static int sd_create(const char *filename, QEMUOptionParameter *options,
1638 Error **errp)
1639 {
1640 int ret = 0;
1641 uint32_t vid = 0;
1642 char *backing_file = NULL;
1643 BDRVSheepdogState *s;
1644 char tag[SD_MAX_VDI_TAG_LEN];
1645 uint32_t snapid;
1646 bool prealloc = false;
1647
1648 s = g_malloc0(sizeof(BDRVSheepdogState));
1649
1650 memset(tag, 0, sizeof(tag));
1651 if (strstr(filename, "://")) {
1652 ret = sd_parse_uri(s, filename, s->name, &snapid, tag);
1653 } else {
1654 ret = parse_vdiname(s, filename, s->name, &snapid, tag);
1655 }
1656 if (ret < 0) {
1657 goto out;
1658 }
1659
1660 while (options && options->name) {
1661 if (!strcmp(options->name, BLOCK_OPT_SIZE)) {
1662 s->inode.vdi_size = options->value.n;
1663 } else if (!strcmp(options->name, BLOCK_OPT_BACKING_FILE)) {
1664 backing_file = options->value.s;
1665 } else if (!strcmp(options->name, BLOCK_OPT_PREALLOC)) {
1666 if (!options->value.s || !strcmp(options->value.s, "off")) {
1667 prealloc = false;
1668 } else if (!strcmp(options->value.s, "full")) {
1669 prealloc = true;
1670 } else {
1671 error_setg(errp, "Invalid preallocation mode: '%s'",
1672 options->value.s);
1673 ret = -EINVAL;
1674 goto out;
1675 }
1676 } else if (!strcmp(options->name, BLOCK_OPT_REDUNDANCY)) {
1677 if (options->value.s) {
1678 ret = parse_redundancy(s, options->value.s);
1679 if (ret < 0) {
1680 goto out;
1681 }
1682 }
1683 }
1684 options++;
1685 }
1686
1687 if (s->inode.vdi_size > SD_MAX_VDI_SIZE) {
1688 error_setg(errp, "too big image size");
1689 ret = -EINVAL;
1690 goto out;
1691 }
1692
1693 if (backing_file) {
1694 BlockDriverState *bs;
1695 BDRVSheepdogState *base;
1696 BlockDriver *drv;
1697
1698 /* Currently, only Sheepdog backing image is supported. */
1699 drv = bdrv_find_protocol(backing_file, true);
1700 if (!drv || strcmp(drv->protocol_name, "sheepdog") != 0) {
1701 error_setg(errp, "backing_file must be a sheepdog image");
1702 ret = -EINVAL;
1703 goto out;
1704 }
1705
1706 bs = NULL;
1707 ret = bdrv_open(&bs, backing_file, NULL, NULL, BDRV_O_PROTOCOL, NULL,
1708 errp);
1709 if (ret < 0) {
1710 goto out;
1711 }
1712
1713 base = bs->opaque;
1714
1715 if (!is_snapshot(&base->inode)) {
1716 error_setg(errp, "cannot clone from a non snapshot vdi");
1717 bdrv_unref(bs);
1718 ret = -EINVAL;
1719 goto out;
1720 }
1721 s->inode.vdi_id = base->inode.vdi_id;
1722 bdrv_unref(bs);
1723 }
1724
1725 ret = do_sd_create(s, &vid, 0, errp);
1726 if (ret) {
1727 goto out;
1728 }
1729
1730 if (prealloc) {
1731 ret = sd_prealloc(filename, errp);
1732 }
1733 out:
1734 g_free(s);
1735 return ret;
1736 }
1737
1738 static void sd_close(BlockDriverState *bs)
1739 {
1740 Error *local_err = NULL;
1741 BDRVSheepdogState *s = bs->opaque;
1742 SheepdogVdiReq hdr;
1743 SheepdogVdiRsp *rsp = (SheepdogVdiRsp *)&hdr;
1744 unsigned int wlen, rlen = 0;
1745 int fd, ret;
1746
1747 DPRINTF("%s\n", s->name);
1748
1749 fd = connect_to_sdog(s, &local_err);
1750 if (fd < 0) {
1751 qerror_report_err(local_err);
1752 error_free(local_err);
1753 return;
1754 }
1755
1756 memset(&hdr, 0, sizeof(hdr));
1757
1758 hdr.opcode = SD_OP_RELEASE_VDI;
1759 hdr.base_vdi_id = s->inode.vdi_id;
1760 wlen = strlen(s->name) + 1;
1761 hdr.data_length = wlen;
1762 hdr.flags = SD_FLAG_CMD_WRITE;
1763
1764 ret = do_req(fd, (SheepdogReq *)&hdr, s->name, &wlen, &rlen);
1765
1766 closesocket(fd);
1767
1768 if (!ret && rsp->result != SD_RES_SUCCESS &&
1769 rsp->result != SD_RES_VDI_NOT_LOCKED) {
1770 error_report("%s, %s", sd_strerror(rsp->result), s->name);
1771 }
1772
1773 qemu_aio_set_fd_handler(s->fd, NULL, NULL, NULL);
1774 closesocket(s->fd);
1775 g_free(s->host_spec);
1776 }
1777
1778 static int64_t sd_getlength(BlockDriverState *bs)
1779 {
1780 BDRVSheepdogState *s = bs->opaque;
1781
1782 return s->inode.vdi_size;
1783 }
1784
1785 static int sd_truncate(BlockDriverState *bs, int64_t offset)
1786 {
1787 Error *local_err = NULL;
1788 BDRVSheepdogState *s = bs->opaque;
1789 int ret, fd;
1790 unsigned int datalen;
1791
1792 if (offset < s->inode.vdi_size) {
1793 error_report("shrinking is not supported");
1794 return -EINVAL;
1795 } else if (offset > SD_MAX_VDI_SIZE) {
1796 error_report("too big image size");
1797 return -EINVAL;
1798 }
1799
1800 fd = connect_to_sdog(s, &local_err);
1801 if (fd < 0) {
1802 qerror_report_err(local_err);
1803 error_free(local_err);
1804 return fd;
1805 }
1806
1807 /* we don't need to update entire object */
1808 datalen = SD_INODE_SIZE - sizeof(s->inode.data_vdi_id);
1809 s->inode.vdi_size = offset;
1810 ret = write_object(fd, (char *)&s->inode, vid_to_vdi_oid(s->inode.vdi_id),
1811 s->inode.nr_copies, datalen, 0, false, s->cache_flags);
1812 close(fd);
1813
1814 if (ret < 0) {
1815 error_report("failed to update an inode.");
1816 }
1817
1818 return ret;
1819 }
1820
1821 /*
1822 * This function is called after writing data objects. If we need to
1823 * update metadata, this sends a write request to the vdi object.
1824 * Otherwise, this switches back to sd_co_readv/writev.
1825 */
1826 static void coroutine_fn sd_write_done(SheepdogAIOCB *acb)
1827 {
1828 BDRVSheepdogState *s = acb->common.bs->opaque;
1829 struct iovec iov;
1830 AIOReq *aio_req;
1831 uint32_t offset, data_len, mn, mx;
1832
1833 mn = s->min_dirty_data_idx;
1834 mx = s->max_dirty_data_idx;
1835 if (mn <= mx) {
1836 /* we need to update the vdi object. */
1837 offset = sizeof(s->inode) - sizeof(s->inode.data_vdi_id) +
1838 mn * sizeof(s->inode.data_vdi_id[0]);
1839 data_len = (mx - mn + 1) * sizeof(s->inode.data_vdi_id[0]);
1840
1841 s->min_dirty_data_idx = UINT32_MAX;
1842 s->max_dirty_data_idx = 0;
1843
1844 iov.iov_base = &s->inode;
1845 iov.iov_len = sizeof(s->inode);
1846 aio_req = alloc_aio_req(s, acb, vid_to_vdi_oid(s->inode.vdi_id),
1847 data_len, offset, 0, 0, offset);
1848 QLIST_INSERT_HEAD(&s->inflight_aio_head, aio_req, aio_siblings);
1849 add_aio_request(s, aio_req, &iov, 1, false, AIOCB_WRITE_UDATA);
1850
1851 acb->aio_done_func = sd_finish_aiocb;
1852 acb->aiocb_type = AIOCB_WRITE_UDATA;
1853 return;
1854 }
1855
1856 sd_finish_aiocb(acb);
1857 }
1858
1859 /* Delete current working VDI on the snapshot chain */
1860 static bool sd_delete(BDRVSheepdogState *s)
1861 {
1862 Error *local_err = NULL;
1863 unsigned int wlen = SD_MAX_VDI_LEN, rlen = 0;
1864 SheepdogVdiReq hdr = {
1865 .opcode = SD_OP_DEL_VDI,
1866 .base_vdi_id = s->inode.vdi_id,
1867 .data_length = wlen,
1868 .flags = SD_FLAG_CMD_WRITE,
1869 };
1870 SheepdogVdiRsp *rsp = (SheepdogVdiRsp *)&hdr;
1871 int fd, ret;
1872
1873 fd = connect_to_sdog(s, &local_err);
1874 if (fd < 0) {
1875 qerror_report_err(local_err);
1876 error_free(local_err);
1877 return false;
1878 }
1879
1880 ret = do_req(fd, (SheepdogReq *)&hdr, s->name, &wlen, &rlen);
1881 closesocket(fd);
1882 if (ret) {
1883 return false;
1884 }
1885 switch (rsp->result) {
1886 case SD_RES_NO_VDI:
1887 error_report("%s was already deleted", s->name);
1888 /* fall through */
1889 case SD_RES_SUCCESS:
1890 break;
1891 default:
1892 error_report("%s, %s", sd_strerror(rsp->result), s->name);
1893 return false;
1894 }
1895
1896 return true;
1897 }
1898
1899 /*
1900 * Create a writable VDI from a snapshot
1901 */
1902 static int sd_create_branch(BDRVSheepdogState *s)
1903 {
1904 Error *local_err = NULL;
1905 int ret, fd;
1906 uint32_t vid;
1907 char *buf;
1908 bool deleted;
1909
1910 DPRINTF("%" PRIx32 " is snapshot.\n", s->inode.vdi_id);
1911
1912 buf = g_malloc(SD_INODE_SIZE);
1913
1914 /*
1915 * Even If deletion fails, we will just create extra snapshot based on
1916 * the working VDI which was supposed to be deleted. So no need to
1917 * false bail out.
1918 */
1919 deleted = sd_delete(s);
1920 ret = do_sd_create(s, &vid, !deleted, &local_err);
1921 if (ret) {
1922 qerror_report_err(local_err);
1923 error_free(local_err);
1924 goto out;
1925 }
1926
1927 DPRINTF("%" PRIx32 " is created.\n", vid);
1928
1929 fd = connect_to_sdog(s, &local_err);
1930 if (fd < 0) {
1931 qerror_report_err(local_err);
1932 error_free(local_err);
1933 ret = fd;
1934 goto out;
1935 }
1936
1937 ret = read_object(fd, buf, vid_to_vdi_oid(vid), s->inode.nr_copies,
1938 SD_INODE_SIZE, 0, s->cache_flags);
1939
1940 closesocket(fd);
1941
1942 if (ret < 0) {
1943 goto out;
1944 }
1945
1946 memcpy(&s->inode, buf, sizeof(s->inode));
1947
1948 s->is_snapshot = false;
1949 ret = 0;
1950 DPRINTF("%" PRIx32 " was newly created.\n", s->inode.vdi_id);
1951
1952 out:
1953 g_free(buf);
1954
1955 return ret;
1956 }
1957
1958 /*
1959 * Send I/O requests to the server.
1960 *
1961 * This function sends requests to the server, links the requests to
1962 * the inflight_list in BDRVSheepdogState, and exits without
1963 * waiting the response. The responses are received in the
1964 * `aio_read_response' function which is called from the main loop as
1965 * a fd handler.
1966 *
1967 * Returns 1 when we need to wait a response, 0 when there is no sent
1968 * request and -errno in error cases.
1969 */
1970 static int coroutine_fn sd_co_rw_vector(void *p)
1971 {
1972 SheepdogAIOCB *acb = p;
1973 int ret = 0;
1974 unsigned long len, done = 0, total = acb->nb_sectors * BDRV_SECTOR_SIZE;
1975 unsigned long idx = acb->sector_num * BDRV_SECTOR_SIZE / SD_DATA_OBJ_SIZE;
1976 uint64_t oid;
1977 uint64_t offset = (acb->sector_num * BDRV_SECTOR_SIZE) % SD_DATA_OBJ_SIZE;
1978 BDRVSheepdogState *s = acb->common.bs->opaque;
1979 SheepdogInode *inode = &s->inode;
1980 AIOReq *aio_req;
1981
1982 if (acb->aiocb_type == AIOCB_WRITE_UDATA && s->is_snapshot) {
1983 /*
1984 * In the case we open the snapshot VDI, Sheepdog creates the
1985 * writable VDI when we do a write operation first.
1986 */
1987 ret = sd_create_branch(s);
1988 if (ret) {
1989 acb->ret = -EIO;
1990 goto out;
1991 }
1992 }
1993
1994 /*
1995 * Make sure we don't free the aiocb before we are done with all requests.
1996 * This additional reference is dropped at the end of this function.
1997 */
1998 acb->nr_pending++;
1999
2000 while (done != total) {
2001 uint8_t flags = 0;
2002 uint64_t old_oid = 0;
2003 bool create = false;
2004
2005 oid = vid_to_data_oid(inode->data_vdi_id[idx], idx);
2006
2007 len = MIN(total - done, SD_DATA_OBJ_SIZE - offset);
2008
2009 switch (acb->aiocb_type) {
2010 case AIOCB_READ_UDATA:
2011 if (!inode->data_vdi_id[idx]) {
2012 qemu_iovec_memset(acb->qiov, done, 0, len);
2013 goto done;
2014 }
2015 break;
2016 case AIOCB_WRITE_UDATA:
2017 if (!inode->data_vdi_id[idx]) {
2018 create = true;
2019 } else if (!is_data_obj_writable(inode, idx)) {
2020 /* Copy-On-Write */
2021 create = true;
2022 old_oid = oid;
2023 flags = SD_FLAG_CMD_COW;
2024 }
2025 break;
2026 case AIOCB_DISCARD_OBJ:
2027 /*
2028 * We discard the object only when the whole object is
2029 * 1) allocated 2) trimmed. Otherwise, simply skip it.
2030 */
2031 if (len != SD_DATA_OBJ_SIZE || inode->data_vdi_id[idx] == 0) {
2032 goto done;
2033 }
2034 break;
2035 default:
2036 break;
2037 }
2038
2039 if (create) {
2040 DPRINTF("update ino (%" PRIu32 ") %" PRIu64 " %" PRIu64 " %ld\n",
2041 inode->vdi_id, oid,
2042 vid_to_data_oid(inode->data_vdi_id[idx], idx), idx);
2043 oid = vid_to_data_oid(inode->vdi_id, idx);
2044 DPRINTF("new oid %" PRIx64 "\n", oid);
2045 }
2046
2047 aio_req = alloc_aio_req(s, acb, oid, len, offset, flags, old_oid, done);
2048 QLIST_INSERT_HEAD(&s->inflight_aio_head, aio_req, aio_siblings);
2049
2050 if (create) {
2051 if (check_simultaneous_create(s, aio_req)) {
2052 goto done;
2053 }
2054 }
2055
2056 add_aio_request(s, aio_req, acb->qiov->iov, acb->qiov->niov, create,
2057 acb->aiocb_type);
2058 done:
2059 offset = 0;
2060 idx++;
2061 done += len;
2062 }
2063 out:
2064 if (!--acb->nr_pending) {
2065 return acb->ret;
2066 }
2067 return 1;
2068 }
2069
2070 static coroutine_fn int sd_co_writev(BlockDriverState *bs, int64_t sector_num,
2071 int nb_sectors, QEMUIOVector *qiov)
2072 {
2073 SheepdogAIOCB *acb;
2074 int ret;
2075 int64_t offset = (sector_num + nb_sectors) * BDRV_SECTOR_SIZE;
2076 BDRVSheepdogState *s = bs->opaque;
2077
2078 if (bs->growable && offset > s->inode.vdi_size) {
2079 ret = sd_truncate(bs, offset);
2080 if (ret < 0) {
2081 return ret;
2082 }
2083 }
2084
2085 acb = sd_aio_setup(bs, qiov, sector_num, nb_sectors);
2086 acb->aio_done_func = sd_write_done;
2087 acb->aiocb_type = AIOCB_WRITE_UDATA;
2088
2089 ret = sd_co_rw_vector(acb);
2090 if (ret <= 0) {
2091 qemu_aio_release(acb);
2092 return ret;
2093 }
2094
2095 qemu_coroutine_yield();
2096
2097 return acb->ret;
2098 }
2099
2100 static coroutine_fn int sd_co_readv(BlockDriverState *bs, int64_t sector_num,
2101 int nb_sectors, QEMUIOVector *qiov)
2102 {
2103 SheepdogAIOCB *acb;
2104 int ret;
2105
2106 acb = sd_aio_setup(bs, qiov, sector_num, nb_sectors);
2107 acb->aiocb_type = AIOCB_READ_UDATA;
2108 acb->aio_done_func = sd_finish_aiocb;
2109
2110 ret = sd_co_rw_vector(acb);
2111 if (ret <= 0) {
2112 qemu_aio_release(acb);
2113 return ret;
2114 }
2115
2116 qemu_coroutine_yield();
2117
2118 return acb->ret;
2119 }
2120
2121 static int coroutine_fn sd_co_flush_to_disk(BlockDriverState *bs)
2122 {
2123 BDRVSheepdogState *s = bs->opaque;
2124 SheepdogAIOCB *acb;
2125 AIOReq *aio_req;
2126
2127 if (s->cache_flags != SD_FLAG_CMD_CACHE) {
2128 return 0;
2129 }
2130
2131 acb = sd_aio_setup(bs, NULL, 0, 0);
2132 acb->aiocb_type = AIOCB_FLUSH_CACHE;
2133 acb->aio_done_func = sd_finish_aiocb;
2134
2135 aio_req = alloc_aio_req(s, acb, vid_to_vdi_oid(s->inode.vdi_id),
2136 0, 0, 0, 0, 0);
2137 QLIST_INSERT_HEAD(&s->inflight_aio_head, aio_req, aio_siblings);
2138 add_aio_request(s, aio_req, NULL, 0, false, acb->aiocb_type);
2139
2140 qemu_coroutine_yield();
2141 return acb->ret;
2142 }
2143
2144 static int sd_snapshot_create(BlockDriverState *bs, QEMUSnapshotInfo *sn_info)
2145 {
2146 Error *local_err = NULL;
2147 BDRVSheepdogState *s = bs->opaque;
2148 int ret, fd;
2149 uint32_t new_vid;
2150 SheepdogInode *inode;
2151 unsigned int datalen;
2152
2153 DPRINTF("sn_info: name %s id_str %s s: name %s vm_state_size %" PRId64 " "
2154 "is_snapshot %d\n", sn_info->name, sn_info->id_str,
2155 s->name, sn_info->vm_state_size, s->is_snapshot);
2156
2157 if (s->is_snapshot) {
2158 error_report("You can't create a snapshot of a snapshot VDI, "
2159 "%s (%" PRIu32 ").", s->name, s->inode.vdi_id);
2160
2161 return -EINVAL;
2162 }
2163
2164 DPRINTF("%s %s\n", sn_info->name, sn_info->id_str);
2165
2166 s->inode.vm_state_size = sn_info->vm_state_size;
2167 s->inode.vm_clock_nsec = sn_info->vm_clock_nsec;
2168 /* It appears that inode.tag does not require a NUL terminator,
2169 * which means this use of strncpy is ok.
2170 */
2171 strncpy(s->inode.tag, sn_info->name, sizeof(s->inode.tag));
2172 /* we don't need to update entire object */
2173 datalen = SD_INODE_SIZE - sizeof(s->inode.data_vdi_id);
2174
2175 /* refresh inode. */
2176 fd = connect_to_sdog(s, &local_err);
2177 if (fd < 0) {
2178 qerror_report_err(local_err);
2179 error_free(local_err);
2180 ret = fd;
2181 goto cleanup;
2182 }
2183
2184 ret = write_object(fd, (char *)&s->inode, vid_to_vdi_oid(s->inode.vdi_id),
2185 s->inode.nr_copies, datalen, 0, false, s->cache_flags);
2186 if (ret < 0) {
2187 error_report("failed to write snapshot's inode.");
2188 goto cleanup;
2189 }
2190
2191 ret = do_sd_create(s, &new_vid, 1, &local_err);
2192 if (ret < 0) {
2193 qerror_report_err(local_err);
2194 error_free(local_err);
2195 error_report("failed to create inode for snapshot. %s",
2196 strerror(errno));
2197 goto cleanup;
2198 }
2199
2200 inode = (SheepdogInode *)g_malloc(datalen);
2201
2202 ret = read_object(fd, (char *)inode, vid_to_vdi_oid(new_vid),
2203 s->inode.nr_copies, datalen, 0, s->cache_flags);
2204
2205 if (ret < 0) {
2206 error_report("failed to read new inode info. %s", strerror(errno));
2207 goto cleanup;
2208 }
2209
2210 memcpy(&s->inode, inode, datalen);
2211 DPRINTF("s->inode: name %s snap_id %x oid %x\n",
2212 s->inode.name, s->inode.snap_id, s->inode.vdi_id);
2213
2214 cleanup:
2215 closesocket(fd);
2216 return ret;
2217 }
2218
2219 /*
2220 * We implement rollback(loadvm) operation to the specified snapshot by
2221 * 1) switch to the snapshot
2222 * 2) rely on sd_create_branch to delete working VDI and
2223 * 3) create a new working VDI based on the specified snapshot
2224 */
2225 static int sd_snapshot_goto(BlockDriverState *bs, const char *snapshot_id)
2226 {
2227 BDRVSheepdogState *s = bs->opaque;
2228 BDRVSheepdogState *old_s;
2229 char tag[SD_MAX_VDI_TAG_LEN];
2230 uint32_t snapid = 0;
2231 int ret = 0;
2232
2233 old_s = g_malloc(sizeof(BDRVSheepdogState));
2234
2235 memcpy(old_s, s, sizeof(BDRVSheepdogState));
2236
2237 snapid = strtoul(snapshot_id, NULL, 10);
2238 if (snapid) {
2239 tag[0] = 0;
2240 } else {
2241 pstrcpy(tag, sizeof(tag), snapshot_id);
2242 }
2243
2244 ret = reload_inode(s, snapid, tag);
2245 if (ret) {
2246 goto out;
2247 }
2248
2249 ret = sd_create_branch(s);
2250 if (ret) {
2251 goto out;
2252 }
2253
2254 g_free(old_s);
2255
2256 return 0;
2257 out:
2258 /* recover bdrv_sd_state */
2259 memcpy(s, old_s, sizeof(BDRVSheepdogState));
2260 g_free(old_s);
2261
2262 error_report("failed to open. recover old bdrv_sd_state.");
2263
2264 return ret;
2265 }
2266
2267 static int sd_snapshot_delete(BlockDriverState *bs,
2268 const char *snapshot_id,
2269 const char *name,
2270 Error **errp)
2271 {
2272 /* FIXME: Delete specified snapshot id. */
2273 return 0;
2274 }
2275
2276 static int sd_snapshot_list(BlockDriverState *bs, QEMUSnapshotInfo **psn_tab)
2277 {
2278 Error *local_err = NULL;
2279 BDRVSheepdogState *s = bs->opaque;
2280 SheepdogReq req;
2281 int fd, nr = 1024, ret, max = BITS_TO_LONGS(SD_NR_VDIS) * sizeof(long);
2282 QEMUSnapshotInfo *sn_tab = NULL;
2283 unsigned wlen, rlen;
2284 int found = 0;
2285 static SheepdogInode inode;
2286 unsigned long *vdi_inuse;
2287 unsigned int start_nr;
2288 uint64_t hval;
2289 uint32_t vid;
2290
2291 vdi_inuse = g_malloc(max);
2292
2293 fd = connect_to_sdog(s, &local_err);
2294 if (fd < 0) {
2295 qerror_report_err(local_err);
2296 error_free(local_err);
2297 ret = fd;
2298 goto out;
2299 }
2300
2301 rlen = max;
2302 wlen = 0;
2303
2304 memset(&req, 0, sizeof(req));
2305
2306 req.opcode = SD_OP_READ_VDIS;
2307 req.data_length = max;
2308
2309 ret = do_req(fd, (SheepdogReq *)&req, vdi_inuse, &wlen, &rlen);
2310
2311 closesocket(fd);
2312 if (ret) {
2313 goto out;
2314 }
2315
2316 sn_tab = g_malloc0(nr * sizeof(*sn_tab));
2317
2318 /* calculate a vdi id with hash function */
2319 hval = fnv_64a_buf(s->name, strlen(s->name), FNV1A_64_INIT);
2320 start_nr = hval & (SD_NR_VDIS - 1);
2321
2322 fd = connect_to_sdog(s, &local_err);
2323 if (fd < 0) {
2324 qerror_report_err(local_err);
2325 error_free(local_err);
2326 ret = fd;
2327 goto out;
2328 }
2329
2330 for (vid = start_nr; found < nr; vid = (vid + 1) % SD_NR_VDIS) {
2331 if (!test_bit(vid, vdi_inuse)) {
2332 break;
2333 }
2334
2335 /* we don't need to read entire object */
2336 ret = read_object(fd, (char *)&inode, vid_to_vdi_oid(vid),
2337 0, SD_INODE_SIZE - sizeof(inode.data_vdi_id), 0,
2338 s->cache_flags);
2339
2340 if (ret) {
2341 continue;
2342 }
2343
2344 if (!strcmp(inode.name, s->name) && is_snapshot(&inode)) {
2345 sn_tab[found].date_sec = inode.snap_ctime >> 32;
2346 sn_tab[found].date_nsec = inode.snap_ctime & 0xffffffff;
2347 sn_tab[found].vm_state_size = inode.vm_state_size;
2348 sn_tab[found].vm_clock_nsec = inode.vm_clock_nsec;
2349
2350 snprintf(sn_tab[found].id_str, sizeof(sn_tab[found].id_str),
2351 "%" PRIu32, inode.snap_id);
2352 pstrcpy(sn_tab[found].name,
2353 MIN(sizeof(sn_tab[found].name), sizeof(inode.tag)),
2354 inode.tag);
2355 found++;
2356 }
2357 }
2358
2359 closesocket(fd);
2360 out:
2361 *psn_tab = sn_tab;
2362
2363 g_free(vdi_inuse);
2364
2365 if (ret < 0) {
2366 return ret;
2367 }
2368
2369 return found;
2370 }
2371
2372 static int do_load_save_vmstate(BDRVSheepdogState *s, uint8_t *data,
2373 int64_t pos, int size, int load)
2374 {
2375 Error *local_err = NULL;
2376 bool create;
2377 int fd, ret = 0, remaining = size;
2378 unsigned int data_len;
2379 uint64_t vmstate_oid;
2380 uint64_t offset;
2381 uint32_t vdi_index;
2382 uint32_t vdi_id = load ? s->inode.parent_vdi_id : s->inode.vdi_id;
2383
2384 fd = connect_to_sdog(s, &local_err);
2385 if (fd < 0) {
2386 qerror_report_err(local_err);
2387 error_free(local_err);
2388 return fd;
2389 }
2390
2391 while (remaining) {
2392 vdi_index = pos / SD_DATA_OBJ_SIZE;
2393 offset = pos % SD_DATA_OBJ_SIZE;
2394
2395 data_len = MIN(remaining, SD_DATA_OBJ_SIZE - offset);
2396
2397 vmstate_oid = vid_to_vmstate_oid(vdi_id, vdi_index);
2398
2399 create = (offset == 0);
2400 if (load) {
2401 ret = read_object(fd, (char *)data, vmstate_oid,
2402 s->inode.nr_copies, data_len, offset,
2403 s->cache_flags);
2404 } else {
2405 ret = write_object(fd, (char *)data, vmstate_oid,
2406 s->inode.nr_copies, data_len, offset, create,
2407 s->cache_flags);
2408 }
2409
2410 if (ret < 0) {
2411 error_report("failed to save vmstate %s", strerror(errno));
2412 goto cleanup;
2413 }
2414
2415 pos += data_len;
2416 data += data_len;
2417 remaining -= data_len;
2418 }
2419 ret = size;
2420 cleanup:
2421 closesocket(fd);
2422 return ret;
2423 }
2424
2425 static int sd_save_vmstate(BlockDriverState *bs, QEMUIOVector *qiov,
2426 int64_t pos)
2427 {
2428 BDRVSheepdogState *s = bs->opaque;
2429 void *buf;
2430 int ret;
2431
2432 buf = qemu_blockalign(bs, qiov->size);
2433 qemu_iovec_to_buf(qiov, 0, buf, qiov->size);
2434 ret = do_load_save_vmstate(s, (uint8_t *) buf, pos, qiov->size, 0);
2435 qemu_vfree(buf);
2436
2437 return ret;
2438 }
2439
2440 static int sd_load_vmstate(BlockDriverState *bs, uint8_t *data,
2441 int64_t pos, int size)
2442 {
2443 BDRVSheepdogState *s = bs->opaque;
2444
2445 return do_load_save_vmstate(s, data, pos, size, 1);
2446 }
2447
2448
2449 static coroutine_fn int sd_co_discard(BlockDriverState *bs, int64_t sector_num,
2450 int nb_sectors)
2451 {
2452 SheepdogAIOCB *acb;
2453 QEMUIOVector dummy;
2454 BDRVSheepdogState *s = bs->opaque;
2455 int ret;
2456
2457 if (!s->discard_supported) {
2458 return 0;
2459 }
2460
2461 acb = sd_aio_setup(bs, &dummy, sector_num, nb_sectors);
2462 acb->aiocb_type = AIOCB_DISCARD_OBJ;
2463 acb->aio_done_func = sd_finish_aiocb;
2464
2465 ret = sd_co_rw_vector(acb);
2466 if (ret <= 0) {
2467 qemu_aio_release(acb);
2468 return ret;
2469 }
2470
2471 qemu_coroutine_yield();
2472
2473 return acb->ret;
2474 }
2475
2476 static coroutine_fn int64_t
2477 sd_co_get_block_status(BlockDriverState *bs, int64_t sector_num, int nb_sectors,
2478 int *pnum)
2479 {
2480 BDRVSheepdogState *s = bs->opaque;
2481 SheepdogInode *inode = &s->inode;
2482 uint64_t offset = sector_num * BDRV_SECTOR_SIZE;
2483 unsigned long start = offset / SD_DATA_OBJ_SIZE,
2484 end = DIV_ROUND_UP((sector_num + nb_sectors) *
2485 BDRV_SECTOR_SIZE, SD_DATA_OBJ_SIZE);
2486 unsigned long idx;
2487 int64_t ret = BDRV_BLOCK_DATA | BDRV_BLOCK_OFFSET_VALID | offset;
2488
2489 for (idx = start; idx < end; idx++) {
2490 if (inode->data_vdi_id[idx] == 0) {
2491 break;
2492 }
2493 }
2494 if (idx == start) {
2495 /* Get the longest length of unallocated sectors */
2496 ret = 0;
2497 for (idx = start + 1; idx < end; idx++) {
2498 if (inode->data_vdi_id[idx] != 0) {
2499 break;
2500 }
2501 }
2502 }
2503
2504 *pnum = (idx - start) * SD_DATA_OBJ_SIZE / BDRV_SECTOR_SIZE;
2505 if (*pnum > nb_sectors) {
2506 *pnum = nb_sectors;
2507 }
2508 return ret;
2509 }
2510
2511 static int64_t sd_get_allocated_file_size(BlockDriverState *bs)
2512 {
2513 BDRVSheepdogState *s = bs->opaque;
2514 SheepdogInode *inode = &s->inode;
2515 unsigned long i, last = DIV_ROUND_UP(inode->vdi_size, SD_DATA_OBJ_SIZE);
2516 uint64_t size = 0;
2517
2518 for (i = 0; i < last; i++) {
2519 if (inode->data_vdi_id[i] == 0) {
2520 continue;
2521 }
2522 size += SD_DATA_OBJ_SIZE;
2523 }
2524 return size;
2525 }
2526
2527 static QEMUOptionParameter sd_create_options[] = {
2528 {
2529 .name = BLOCK_OPT_SIZE,
2530 .type = OPT_SIZE,
2531 .help = "Virtual disk size"
2532 },
2533 {
2534 .name = BLOCK_OPT_BACKING_FILE,
2535 .type = OPT_STRING,
2536 .help = "File name of a base image"
2537 },
2538 {
2539 .name = BLOCK_OPT_PREALLOC,
2540 .type = OPT_STRING,
2541 .help = "Preallocation mode (allowed values: off, full)"
2542 },
2543 {
2544 .name = BLOCK_OPT_REDUNDANCY,
2545 .type = OPT_STRING,
2546 .help = "Redundancy of the image"
2547 },
2548 { NULL }
2549 };
2550
2551 static BlockDriver bdrv_sheepdog = {
2552 .format_name = "sheepdog",
2553 .protocol_name = "sheepdog",
2554 .instance_size = sizeof(BDRVSheepdogState),
2555 .bdrv_needs_filename = true,
2556 .bdrv_file_open = sd_open,
2557 .bdrv_close = sd_close,
2558 .bdrv_create = sd_create,
2559 .bdrv_has_zero_init = bdrv_has_zero_init_1,
2560 .bdrv_getlength = sd_getlength,
2561 .bdrv_get_allocated_file_size = sd_get_allocated_file_size,
2562 .bdrv_truncate = sd_truncate,
2563
2564 .bdrv_co_readv = sd_co_readv,
2565 .bdrv_co_writev = sd_co_writev,
2566 .bdrv_co_flush_to_disk = sd_co_flush_to_disk,
2567 .bdrv_co_discard = sd_co_discard,
2568 .bdrv_co_get_block_status = sd_co_get_block_status,
2569
2570 .bdrv_snapshot_create = sd_snapshot_create,
2571 .bdrv_snapshot_goto = sd_snapshot_goto,
2572 .bdrv_snapshot_delete = sd_snapshot_delete,
2573 .bdrv_snapshot_list = sd_snapshot_list,
2574
2575 .bdrv_save_vmstate = sd_save_vmstate,
2576 .bdrv_load_vmstate = sd_load_vmstate,
2577
2578 .create_options = sd_create_options,
2579 };
2580
2581 static BlockDriver bdrv_sheepdog_tcp = {
2582 .format_name = "sheepdog",
2583 .protocol_name = "sheepdog+tcp",
2584 .instance_size = sizeof(BDRVSheepdogState),
2585 .bdrv_needs_filename = true,
2586 .bdrv_file_open = sd_open,
2587 .bdrv_close = sd_close,
2588 .bdrv_create = sd_create,
2589 .bdrv_has_zero_init = bdrv_has_zero_init_1,
2590 .bdrv_getlength = sd_getlength,
2591 .bdrv_get_allocated_file_size = sd_get_allocated_file_size,
2592 .bdrv_truncate = sd_truncate,
2593
2594 .bdrv_co_readv = sd_co_readv,
2595 .bdrv_co_writev = sd_co_writev,
2596 .bdrv_co_flush_to_disk = sd_co_flush_to_disk,
2597 .bdrv_co_discard = sd_co_discard,
2598 .bdrv_co_get_block_status = sd_co_get_block_status,
2599
2600 .bdrv_snapshot_create = sd_snapshot_create,
2601 .bdrv_snapshot_goto = sd_snapshot_goto,
2602 .bdrv_snapshot_delete = sd_snapshot_delete,
2603 .bdrv_snapshot_list = sd_snapshot_list,
2604
2605 .bdrv_save_vmstate = sd_save_vmstate,
2606 .bdrv_load_vmstate = sd_load_vmstate,
2607
2608 .create_options = sd_create_options,
2609 };
2610
2611 static BlockDriver bdrv_sheepdog_unix = {
2612 .format_name = "sheepdog",
2613 .protocol_name = "sheepdog+unix",
2614 .instance_size = sizeof(BDRVSheepdogState),
2615 .bdrv_needs_filename = true,
2616 .bdrv_file_open = sd_open,
2617 .bdrv_close = sd_close,
2618 .bdrv_create = sd_create,
2619 .bdrv_has_zero_init = bdrv_has_zero_init_1,
2620 .bdrv_getlength = sd_getlength,
2621 .bdrv_get_allocated_file_size = sd_get_allocated_file_size,
2622 .bdrv_truncate = sd_truncate,
2623
2624 .bdrv_co_readv = sd_co_readv,
2625 .bdrv_co_writev = sd_co_writev,
2626 .bdrv_co_flush_to_disk = sd_co_flush_to_disk,
2627 .bdrv_co_discard = sd_co_discard,
2628 .bdrv_co_get_block_status = sd_co_get_block_status,
2629
2630 .bdrv_snapshot_create = sd_snapshot_create,
2631 .bdrv_snapshot_goto = sd_snapshot_goto,
2632 .bdrv_snapshot_delete = sd_snapshot_delete,
2633 .bdrv_snapshot_list = sd_snapshot_list,
2634
2635 .bdrv_save_vmstate = sd_save_vmstate,
2636 .bdrv_load_vmstate = sd_load_vmstate,
2637
2638 .create_options = sd_create_options,
2639 };
2640
2641 static void bdrv_sheepdog_init(void)
2642 {
2643 bdrv_register(&bdrv_sheepdog);
2644 bdrv_register(&bdrv_sheepdog_tcp);
2645 bdrv_register(&bdrv_sheepdog_unix);
2646 }
2647 block_init(bdrv_sheepdog_init);