]> git.proxmox.com Git - qemu.git/blame - block/rbd.c
target-sparc: Fix compiler errors (format strings)
[qemu.git] / block / rbd.c
CommitLineData
f27aaf4b
CB
1/*
2 * QEMU Block driver for RADOS (Ceph)
3 *
ad32e9c0
JD
4 * Copyright (C) 2010-2011 Christian Brunner <chb@muc.de>,
5 * Josh Durgin <josh.durgin@dreamhost.com>
f27aaf4b
CB
6 *
7 * This work is licensed under the terms of the GNU GPL, version 2. See
8 * the COPYING file in the top-level directory.
9 *
10 */
11
ad32e9c0
JD
12#include <inttypes.h>
13
f27aaf4b
CB
14#include "qemu-common.h"
15#include "qemu-error.h"
16
f27aaf4b
CB
17#include "block_int.h"
18
ad32e9c0 19#include <rbd/librbd.h>
f27aaf4b
CB
20
21
22
23/*
24 * When specifying the image filename use:
25 *
fab5cf59 26 * rbd:poolname/devicename[@snapshotname][:option1=value1[:option2=value2...]]
f27aaf4b
CB
27 *
28 * poolname must be the name of an existing rados pool
29 *
30 * devicename is the basename for all objects used to
31 * emulate the raw device.
32 *
fab5cf59
JD
33 * Each option given is used to configure rados, and may be
34 * any Ceph option, or "conf". The "conf" option specifies
35 * a Ceph configuration file to read.
36 *
f27aaf4b
CB
37 * Metadata information (image size, ...) is stored in an
38 * object with the name "devicename.rbd".
39 *
40 * The raw device is split into 4MB sized objects by default.
41 * The sequencenumber is encoded in a 12 byte long hex-string,
42 * and is attached to the devicename, separated by a dot.
43 * e.g. "devicename.1234567890ab"
44 *
45 */
46
47#define OBJ_MAX_SIZE (1UL << OBJ_DEFAULT_OBJ_ORDER)
48
ad32e9c0
JD
49#define RBD_MAX_CONF_NAME_SIZE 128
50#define RBD_MAX_CONF_VAL_SIZE 512
51#define RBD_MAX_CONF_SIZE 1024
52#define RBD_MAX_POOL_NAME_SIZE 128
53#define RBD_MAX_SNAP_NAME_SIZE 128
54#define RBD_MAX_SNAPS 100
55
f27aaf4b
CB
56typedef struct RBDAIOCB {
57 BlockDriverAIOCB common;
58 QEMUBH *bh;
59 int ret;
60 QEMUIOVector *qiov;
61 char *bounce;
62 int write;
63 int64_t sector_num;
f27aaf4b
CB
64 int error;
65 struct BDRVRBDState *s;
66 int cancelled;
67} RBDAIOCB;
68
69typedef struct RADOSCB {
70 int rcbid;
71 RBDAIOCB *acb;
72 struct BDRVRBDState *s;
73 int done;
ad32e9c0 74 int64_t size;
f27aaf4b
CB
75 char *buf;
76 int ret;
77} RADOSCB;
78
79#define RBD_FD_READ 0
80#define RBD_FD_WRITE 1
81
82typedef struct BDRVRBDState {
83 int fds[2];
ad32e9c0
JD
84 rados_t cluster;
85 rados_ioctx_t io_ctx;
86 rbd_image_t image;
87 char name[RBD_MAX_IMAGE_NAME_SIZE];
f27aaf4b 88 int qemu_aio_count;
ad32e9c0 89 char *snap;
f27aaf4b
CB
90 int event_reader_pos;
91 RADOSCB *event_rcb;
92} BDRVRBDState;
93
f27aaf4b
CB
94static void rbd_aio_bh_cb(void *opaque);
95
ad32e9c0
JD
96static int qemu_rbd_next_tok(char *dst, int dst_len,
97 char *src, char delim,
98 const char *name,
99 char **p)
f27aaf4b
CB
100{
101 int l;
102 char *end;
103
104 *p = NULL;
105
106 if (delim != '\0') {
107 end = strchr(src, delim);
108 if (end) {
109 *p = end + 1;
110 *end = '\0';
111 }
112 }
113 l = strlen(src);
114 if (l >= dst_len) {
115 error_report("%s too long", name);
116 return -EINVAL;
117 } else if (l == 0) {
118 error_report("%s too short", name);
119 return -EINVAL;
120 }
121
122 pstrcpy(dst, dst_len, src);
123
124 return 0;
125}
126
ad32e9c0
JD
127static int qemu_rbd_parsename(const char *filename,
128 char *pool, int pool_len,
129 char *snap, int snap_len,
fab5cf59
JD
130 char *name, int name_len,
131 char *conf, int conf_len)
f27aaf4b
CB
132{
133 const char *start;
134 char *p, *buf;
135 int ret;
136
137 if (!strstart(filename, "rbd:", &start)) {
138 return -EINVAL;
139 }
140
141 buf = qemu_strdup(start);
142 p = buf;
fab5cf59
JD
143 *snap = '\0';
144 *conf = '\0';
f27aaf4b 145
ad32e9c0 146 ret = qemu_rbd_next_tok(pool, pool_len, p, '/', "pool name", &p);
f27aaf4b
CB
147 if (ret < 0 || !p) {
148 ret = -EINVAL;
149 goto done;
150 }
fab5cf59
JD
151
152 if (strchr(p, '@')) {
153 ret = qemu_rbd_next_tok(name, name_len, p, '@', "object name", &p);
154 if (ret < 0) {
155 goto done;
156 }
157 ret = qemu_rbd_next_tok(snap, snap_len, p, ':', "snap name", &p);
158 } else {
159 ret = qemu_rbd_next_tok(name, name_len, p, ':', "object name", &p);
f27aaf4b 160 }
fab5cf59 161 if (ret < 0 || !p) {
f27aaf4b
CB
162 goto done;
163 }
164
fab5cf59 165 ret = qemu_rbd_next_tok(conf, conf_len, p, '\0', "configuration", &p);
f27aaf4b
CB
166
167done:
168 qemu_free(buf);
169 return ret;
170}
171
fab5cf59
JD
172static int qemu_rbd_set_conf(rados_t cluster, const char *conf)
173{
174 char *p, *buf;
175 char name[RBD_MAX_CONF_NAME_SIZE];
176 char value[RBD_MAX_CONF_VAL_SIZE];
177 int ret = 0;
178
179 buf = qemu_strdup(conf);
180 p = buf;
181
182 while (p) {
183 ret = qemu_rbd_next_tok(name, sizeof(name), p,
184 '=', "conf option name", &p);
185 if (ret < 0) {
186 break;
187 }
188
189 if (!p) {
190 error_report("conf option %s has no value", name);
191 ret = -EINVAL;
192 break;
193 }
194
195 ret = qemu_rbd_next_tok(value, sizeof(value), p,
196 ':', "conf option value", &p);
197 if (ret < 0) {
198 break;
199 }
200
201 if (strcmp(name, "conf")) {
202 ret = rados_conf_set(cluster, name, value);
203 if (ret < 0) {
204 error_report("invalid conf option %s", name);
205 ret = -EINVAL;
206 break;
207 }
208 } else {
209 ret = rados_conf_read_file(cluster, value);
210 if (ret < 0) {
211 error_report("error reading conf file %s", value);
212 break;
213 }
214 }
215 }
216
217 qemu_free(buf);
218 return ret;
219}
220
ad32e9c0 221static int qemu_rbd_create(const char *filename, QEMUOptionParameter *options)
f27aaf4b
CB
222{
223 int64_t bytes = 0;
224 int64_t objsize;
ad32e9c0
JD
225 int obj_order = 0;
226 char pool[RBD_MAX_POOL_NAME_SIZE];
227 char name[RBD_MAX_IMAGE_NAME_SIZE];
228 char snap_buf[RBD_MAX_SNAP_NAME_SIZE];
fab5cf59 229 char conf[RBD_MAX_CONF_SIZE];
ad32e9c0
JD
230 rados_t cluster;
231 rados_ioctx_t io_ctx;
f27aaf4b
CB
232 int ret;
233
ad32e9c0
JD
234 if (qemu_rbd_parsename(filename, pool, sizeof(pool),
235 snap_buf, sizeof(snap_buf),
fab5cf59
JD
236 name, sizeof(name),
237 conf, sizeof(conf)) < 0) {
f27aaf4b
CB
238 return -EINVAL;
239 }
f27aaf4b 240
f27aaf4b
CB
241 /* Read out options */
242 while (options && options->name) {
243 if (!strcmp(options->name, BLOCK_OPT_SIZE)) {
244 bytes = options->value.n;
245 } else if (!strcmp(options->name, BLOCK_OPT_CLUSTER_SIZE)) {
246 if (options->value.n) {
247 objsize = options->value.n;
248 if ((objsize - 1) & objsize) { /* not a power of 2? */
249 error_report("obj size needs to be power of 2");
250 return -EINVAL;
251 }
252 if (objsize < 4096) {
253 error_report("obj size too small");
254 return -EINVAL;
255 }
ad32e9c0 256 obj_order = ffs(objsize) - 1;
f27aaf4b
CB
257 }
258 }
259 options++;
260 }
261
ad32e9c0 262 if (rados_create(&cluster, NULL) < 0) {
f27aaf4b
CB
263 error_report("error initializing");
264 return -EIO;
265 }
266
fab5cf59
JD
267 if (strstr(conf, "conf=") == NULL) {
268 if (rados_conf_read_file(cluster, NULL) < 0) {
269 error_report("error reading config file");
270 rados_shutdown(cluster);
271 return -EIO;
272 }
273 }
274
275 if (conf[0] != '\0' &&
276 qemu_rbd_set_conf(cluster, conf) < 0) {
277 error_report("error setting config options");
ad32e9c0 278 rados_shutdown(cluster);
f27aaf4b
CB
279 return -EIO;
280 }
281
ad32e9c0
JD
282 if (rados_connect(cluster) < 0) {
283 error_report("error connecting");
284 rados_shutdown(cluster);
f27aaf4b
CB
285 return -EIO;
286 }
f27aaf4b 287
ad32e9c0
JD
288 if (rados_ioctx_create(cluster, pool, &io_ctx) < 0) {
289 error_report("error opening pool %s", pool);
290 rados_shutdown(cluster);
291 return -EIO;
f27aaf4b
CB
292 }
293
ad32e9c0
JD
294 ret = rbd_create(io_ctx, name, bytes, &obj_order);
295 rados_ioctx_destroy(io_ctx);
296 rados_shutdown(cluster);
f27aaf4b
CB
297
298 return ret;
299}
300
301/*
ad32e9c0
JD
302 * This aio completion is being called from qemu_rbd_aio_event_reader()
303 * and runs in qemu context. It schedules a bh, but just in case the aio
f27aaf4b
CB
304 * was not cancelled before.
305 */
ad32e9c0 306static void qemu_rbd_complete_aio(RADOSCB *rcb)
f27aaf4b
CB
307{
308 RBDAIOCB *acb = rcb->acb;
309 int64_t r;
310
f27aaf4b 311 if (acb->cancelled) {
ad32e9c0
JD
312 qemu_vfree(acb->bounce);
313 qemu_aio_release(acb);
f27aaf4b
CB
314 goto done;
315 }
316
317 r = rcb->ret;
318
319 if (acb->write) {
320 if (r < 0) {
321 acb->ret = r;
322 acb->error = 1;
323 } else if (!acb->error) {
ad32e9c0 324 acb->ret = rcb->size;
f27aaf4b
CB
325 }
326 } else {
ad32e9c0
JD
327 if (r < 0) {
328 memset(rcb->buf, 0, rcb->size);
f27aaf4b
CB
329 acb->ret = r;
330 acb->error = 1;
ad32e9c0
JD
331 } else if (r < rcb->size) {
332 memset(rcb->buf + r, 0, rcb->size - r);
f27aaf4b 333 if (!acb->error) {
ad32e9c0 334 acb->ret = rcb->size;
f27aaf4b
CB
335 }
336 } else if (!acb->error) {
ad32e9c0 337 acb->ret = r;
f27aaf4b
CB
338 }
339 }
340 /* Note that acb->bh can be NULL in case where the aio was cancelled */
ad32e9c0
JD
341 acb->bh = qemu_bh_new(rbd_aio_bh_cb, acb);
342 qemu_bh_schedule(acb->bh);
f27aaf4b
CB
343done:
344 qemu_free(rcb);
345}
346
347/*
348 * aio fd read handler. It runs in the qemu context and calls the
349 * completion handling of completed rados aio operations.
350 */
ad32e9c0 351static void qemu_rbd_aio_event_reader(void *opaque)
f27aaf4b
CB
352{
353 BDRVRBDState *s = opaque;
354
355 ssize_t ret;
356
357 do {
358 char *p = (char *)&s->event_rcb;
359
360 /* now read the rcb pointer that was sent from a non qemu thread */
361 if ((ret = read(s->fds[RBD_FD_READ], p + s->event_reader_pos,
362 sizeof(s->event_rcb) - s->event_reader_pos)) > 0) {
363 if (ret > 0) {
364 s->event_reader_pos += ret;
365 if (s->event_reader_pos == sizeof(s->event_rcb)) {
366 s->event_reader_pos = 0;
ad32e9c0
JD
367 qemu_rbd_complete_aio(s->event_rcb);
368 s->qemu_aio_count--;
f27aaf4b
CB
369 }
370 }
371 }
372 } while (ret < 0 && errno == EINTR);
373}
374
ad32e9c0 375static int qemu_rbd_aio_flush_cb(void *opaque)
f27aaf4b
CB
376{
377 BDRVRBDState *s = opaque;
378
379 return (s->qemu_aio_count > 0);
380}
381
ad32e9c0 382static int qemu_rbd_open(BlockDriverState *bs, const char *filename, int flags)
f27aaf4b
CB
383{
384 BDRVRBDState *s = bs->opaque;
ad32e9c0
JD
385 char pool[RBD_MAX_POOL_NAME_SIZE];
386 char snap_buf[RBD_MAX_SNAP_NAME_SIZE];
fab5cf59 387 char conf[RBD_MAX_CONF_SIZE];
f27aaf4b
CB
388 int r;
389
ad32e9c0
JD
390 if (qemu_rbd_parsename(filename, pool, sizeof(pool),
391 snap_buf, sizeof(snap_buf),
fab5cf59
JD
392 s->name, sizeof(s->name),
393 conf, sizeof(conf)) < 0) {
f27aaf4b
CB
394 return -EINVAL;
395 }
ad32e9c0 396 s->snap = NULL;
f27aaf4b 397 if (snap_buf[0] != '\0') {
ad32e9c0 398 s->snap = qemu_strdup(snap_buf);
f27aaf4b
CB
399 }
400
ad32e9c0
JD
401 r = rados_create(&s->cluster, NULL);
402 if (r < 0) {
f27aaf4b
CB
403 error_report("error initializing");
404 return r;
405 }
406
fab5cf59
JD
407 if (strstr(conf, "conf=") == NULL) {
408 r = rados_conf_read_file(s->cluster, NULL);
409 if (r < 0) {
410 error_report("error reading config file");
411 rados_shutdown(s->cluster);
412 return r;
413 }
414 }
415
416 if (conf[0] != '\0') {
417 r = qemu_rbd_set_conf(s->cluster, conf);
418 if (r < 0) {
419 error_report("error setting config options");
420 rados_shutdown(s->cluster);
421 return r;
422 }
f27aaf4b
CB
423 }
424
ad32e9c0
JD
425 r = rados_connect(s->cluster);
426 if (r < 0) {
427 error_report("error connecting");
428 rados_shutdown(s->cluster);
f27aaf4b
CB
429 return r;
430 }
431
ad32e9c0
JD
432 r = rados_ioctx_create(s->cluster, pool, &s->io_ctx);
433 if (r < 0) {
434 error_report("error opening pool %s", pool);
435 rados_shutdown(s->cluster);
436 return r;
f27aaf4b
CB
437 }
438
ad32e9c0 439 r = rbd_open(s->io_ctx, s->name, &s->image, s->snap);
f27aaf4b 440 if (r < 0) {
ad32e9c0
JD
441 error_report("error reading header from %s", s->name);
442 rados_ioctx_destroy(s->io_ctx);
443 rados_shutdown(s->cluster);
444 return r;
f27aaf4b
CB
445 }
446
ad32e9c0 447 bs->read_only = (s->snap != NULL);
f27aaf4b
CB
448
449 s->event_reader_pos = 0;
450 r = qemu_pipe(s->fds);
451 if (r < 0) {
452 error_report("error opening eventfd");
453 goto failed;
454 }
455 fcntl(s->fds[0], F_SETFL, O_NONBLOCK);
456 fcntl(s->fds[1], F_SETFL, O_NONBLOCK);
ad32e9c0
JD
457 qemu_aio_set_fd_handler(s->fds[RBD_FD_READ], qemu_rbd_aio_event_reader,
458 NULL, qemu_rbd_aio_flush_cb, NULL, s);
f27aaf4b 459
f27aaf4b
CB
460
461 return 0;
462
463failed:
ad32e9c0
JD
464 rbd_close(s->image);
465 rados_ioctx_destroy(s->io_ctx);
466 rados_shutdown(s->cluster);
f27aaf4b
CB
467 return r;
468}
469
ad32e9c0 470static void qemu_rbd_close(BlockDriverState *bs)
f27aaf4b
CB
471{
472 BDRVRBDState *s = bs->opaque;
473
474 close(s->fds[0]);
475 close(s->fds[1]);
476 qemu_aio_set_fd_handler(s->fds[RBD_FD_READ], NULL , NULL, NULL, NULL,
477 NULL);
478
ad32e9c0
JD
479 rbd_close(s->image);
480 rados_ioctx_destroy(s->io_ctx);
481 qemu_free(s->snap);
482 rados_shutdown(s->cluster);
f27aaf4b
CB
483}
484
485/*
486 * Cancel aio. Since we don't reference acb in a non qemu threads,
487 * it is safe to access it here.
488 */
ad32e9c0 489static void qemu_rbd_aio_cancel(BlockDriverAIOCB *blockacb)
f27aaf4b
CB
490{
491 RBDAIOCB *acb = (RBDAIOCB *) blockacb;
492 acb->cancelled = 1;
493}
494
495static AIOPool rbd_aio_pool = {
496 .aiocb_size = sizeof(RBDAIOCB),
ad32e9c0 497 .cancel = qemu_rbd_aio_cancel,
f27aaf4b
CB
498};
499
ad32e9c0 500static int qemu_rbd_send_pipe(BDRVRBDState *s, RADOSCB *rcb)
f27aaf4b 501{
ad32e9c0 502 int ret = 0;
f27aaf4b
CB
503 while (1) {
504 fd_set wfd;
ad32e9c0 505 int fd = s->fds[RBD_FD_WRITE];
f27aaf4b 506
ad32e9c0
JD
507 /* send the op pointer to the qemu thread that is responsible
508 for the aio/op completion. Must do it in a qemu thread context */
f27aaf4b
CB
509 ret = write(fd, (void *)&rcb, sizeof(rcb));
510 if (ret >= 0) {
511 break;
512 }
513 if (errno == EINTR) {
514 continue;
ad32e9c0 515 }
f27aaf4b
CB
516 if (errno != EAGAIN) {
517 break;
ad32e9c0 518 }
f27aaf4b
CB
519
520 FD_ZERO(&wfd);
521 FD_SET(fd, &wfd);
522 do {
523 ret = select(fd + 1, NULL, &wfd, NULL, NULL);
524 } while (ret < 0 && errno == EINTR);
525 }
526
ad32e9c0
JD
527 return ret;
528}
529
530/*
531 * This is the callback function for rbd_aio_read and _write
532 *
533 * Note: this function is being called from a non qemu thread so
534 * we need to be careful about what we do here. Generally we only
535 * write to the block notification pipe, and do the rest of the
536 * io completion handling from qemu_rbd_aio_event_reader() which
537 * runs in a qemu context.
538 */
539static void rbd_finish_aiocb(rbd_completion_t c, RADOSCB *rcb)
540{
541 int ret;
542 rcb->ret = rbd_aio_get_return_value(c);
543 rbd_aio_release(c);
544 ret = qemu_rbd_send_pipe(rcb->s, rcb);
f27aaf4b 545 if (ret < 0) {
ad32e9c0 546 error_report("failed writing to acb->s->fds");
f27aaf4b
CB
547 qemu_free(rcb);
548 }
549}
550
ad32e9c0 551/* Callback when all queued rbd_aio requests are complete */
f27aaf4b
CB
552
553static void rbd_aio_bh_cb(void *opaque)
554{
555 RBDAIOCB *acb = opaque;
556
557 if (!acb->write) {
558 qemu_iovec_from_buffer(acb->qiov, acb->bounce, acb->qiov->size);
559 }
560 qemu_vfree(acb->bounce);
561 acb->common.cb(acb->common.opaque, (acb->ret > 0 ? 0 : acb->ret));
562 qemu_bh_delete(acb->bh);
563 acb->bh = NULL;
564
565 qemu_aio_release(acb);
566}
567
568static BlockDriverAIOCB *rbd_aio_rw_vector(BlockDriverState *bs,
569 int64_t sector_num,
570 QEMUIOVector *qiov,
571 int nb_sectors,
572 BlockDriverCompletionFunc *cb,
573 void *opaque, int write)
574{
575 RBDAIOCB *acb;
576 RADOSCB *rcb;
ad32e9c0 577 rbd_completion_t c;
f27aaf4b
CB
578 int64_t off, size;
579 char *buf;
51a13528 580 int r;
f27aaf4b
CB
581
582 BDRVRBDState *s = bs->opaque;
583
584 acb = qemu_aio_get(&rbd_aio_pool, bs, cb, opaque);
51a13528
JD
585 if (!acb) {
586 return NULL;
587 }
f27aaf4b
CB
588 acb->write = write;
589 acb->qiov = qiov;
590 acb->bounce = qemu_blockalign(bs, qiov->size);
f27aaf4b
CB
591 acb->ret = 0;
592 acb->error = 0;
593 acb->s = s;
594 acb->cancelled = 0;
595 acb->bh = NULL;
596
597 if (write) {
598 qemu_iovec_to_buffer(acb->qiov, acb->bounce);
599 }
600
601 buf = acb->bounce;
602
603 off = sector_num * BDRV_SECTOR_SIZE;
604 size = nb_sectors * BDRV_SECTOR_SIZE;
f27aaf4b 605
ad32e9c0 606 s->qemu_aio_count++; /* All the RADOSCB */
f27aaf4b 607
ad32e9c0
JD
608 rcb = qemu_malloc(sizeof(RADOSCB));
609 rcb->done = 0;
610 rcb->acb = acb;
611 rcb->buf = buf;
612 rcb->s = acb->s;
613 rcb->size = size;
51a13528
JD
614 r = rbd_aio_create_completion(rcb, (rbd_callback_t) rbd_finish_aiocb, &c);
615 if (r < 0) {
616 goto failed;
617 }
f27aaf4b 618
ad32e9c0 619 if (write) {
51a13528 620 r = rbd_aio_write(s->image, off, size, buf, c);
ad32e9c0 621 } else {
51a13528
JD
622 r = rbd_aio_read(s->image, off, size, buf, c);
623 }
624
625 if (r < 0) {
626 goto failed;
f27aaf4b
CB
627 }
628
629 return &acb->common;
51a13528
JD
630
631failed:
632 qemu_free(rcb);
633 s->qemu_aio_count--;
634 qemu_aio_release(acb);
635 return NULL;
f27aaf4b
CB
636}
637
ad32e9c0
JD
638static BlockDriverAIOCB *qemu_rbd_aio_readv(BlockDriverState *bs,
639 int64_t sector_num,
640 QEMUIOVector *qiov,
641 int nb_sectors,
642 BlockDriverCompletionFunc *cb,
643 void *opaque)
f27aaf4b
CB
644{
645 return rbd_aio_rw_vector(bs, sector_num, qiov, nb_sectors, cb, opaque, 0);
646}
647
ad32e9c0
JD
648static BlockDriverAIOCB *qemu_rbd_aio_writev(BlockDriverState *bs,
649 int64_t sector_num,
650 QEMUIOVector *qiov,
651 int nb_sectors,
652 BlockDriverCompletionFunc *cb,
653 void *opaque)
f27aaf4b
CB
654{
655 return rbd_aio_rw_vector(bs, sector_num, qiov, nb_sectors, cb, opaque, 1);
656}
657
ad32e9c0 658static int qemu_rbd_getinfo(BlockDriverState *bs, BlockDriverInfo *bdi)
f27aaf4b
CB
659{
660 BDRVRBDState *s = bs->opaque;
ad32e9c0
JD
661 rbd_image_info_t info;
662 int r;
663
664 r = rbd_stat(s->image, &info, sizeof(info));
665 if (r < 0) {
666 return r;
667 }
668
669 bdi->cluster_size = info.obj_size;
f27aaf4b
CB
670 return 0;
671}
672
ad32e9c0 673static int64_t qemu_rbd_getlength(BlockDriverState *bs)
f27aaf4b
CB
674{
675 BDRVRBDState *s = bs->opaque;
ad32e9c0
JD
676 rbd_image_info_t info;
677 int r;
f27aaf4b 678
ad32e9c0
JD
679 r = rbd_stat(s->image, &info, sizeof(info));
680 if (r < 0) {
681 return r;
682 }
683
684 return info.size;
f27aaf4b
CB
685}
686
30cdc48c
JD
687static int qemu_rbd_truncate(BlockDriverState *bs, int64_t offset)
688{
689 BDRVRBDState *s = bs->opaque;
690 int r;
691
692 r = rbd_resize(s->image, offset);
693 if (r < 0) {
694 return r;
695 }
696
697 return 0;
698}
699
ad32e9c0
JD
700static int qemu_rbd_snap_create(BlockDriverState *bs,
701 QEMUSnapshotInfo *sn_info)
f27aaf4b
CB
702{
703 BDRVRBDState *s = bs->opaque;
f27aaf4b 704 int r;
f27aaf4b
CB
705
706 if (sn_info->name[0] == '\0') {
707 return -EINVAL; /* we need a name for rbd snapshots */
708 }
709
710 /*
711 * rbd snapshots are using the name as the user controlled unique identifier
712 * we can't use the rbd snapid for that purpose, as it can't be set
713 */
714 if (sn_info->id_str[0] != '\0' &&
715 strcmp(sn_info->id_str, sn_info->name) != 0) {
716 return -EINVAL;
717 }
718
719 if (strlen(sn_info->name) >= sizeof(sn_info->id_str)) {
720 return -ERANGE;
721 }
722
ad32e9c0 723 r = rbd_snap_create(s->image, sn_info->name);
f27aaf4b 724 if (r < 0) {
ad32e9c0 725 error_report("failed to create snap: %s", strerror(-r));
f27aaf4b
CB
726 return r;
727 }
728
f27aaf4b
CB
729 return 0;
730}
731
ad32e9c0
JD
732static int qemu_rbd_snap_list(BlockDriverState *bs,
733 QEMUSnapshotInfo **psn_tab)
f27aaf4b
CB
734{
735 BDRVRBDState *s = bs->opaque;
f27aaf4b 736 QEMUSnapshotInfo *sn_info, *sn_tab = NULL;
ad32e9c0
JD
737 int i, snap_count;
738 rbd_snap_info_t *snaps;
739 int max_snaps = RBD_MAX_SNAPS;
f27aaf4b 740
ad32e9c0
JD
741 do {
742 snaps = qemu_malloc(sizeof(*snaps) * max_snaps);
743 snap_count = rbd_snap_list(s->image, snaps, &max_snaps);
744 if (snap_count < 0) {
745 qemu_free(snaps);
f27aaf4b 746 }
ad32e9c0 747 } while (snap_count == -ERANGE);
f27aaf4b 748
ad32e9c0
JD
749 if (snap_count <= 0) {
750 return snap_count;
f27aaf4b
CB
751 }
752
753 sn_tab = qemu_mallocz(snap_count * sizeof(QEMUSnapshotInfo));
f27aaf4b 754
ad32e9c0
JD
755 for (i = 0; i < snap_count; i++) {
756 const char *snap_name = snaps[i].name;
f27aaf4b
CB
757
758 sn_info = sn_tab + i;
759 pstrcpy(sn_info->id_str, sizeof(sn_info->id_str), snap_name);
760 pstrcpy(sn_info->name, sizeof(sn_info->name), snap_name);
f27aaf4b 761
ad32e9c0 762 sn_info->vm_state_size = snaps[i].size;
f27aaf4b
CB
763 sn_info->date_sec = 0;
764 sn_info->date_nsec = 0;
765 sn_info->vm_clock_nsec = 0;
766 }
ad32e9c0
JD
767 rbd_snap_list_end(snaps);
768
f27aaf4b 769 *psn_tab = sn_tab;
f27aaf4b 770 return snap_count;
f27aaf4b
CB
771}
772
ad32e9c0 773static QEMUOptionParameter qemu_rbd_create_options[] = {
f27aaf4b
CB
774 {
775 .name = BLOCK_OPT_SIZE,
776 .type = OPT_SIZE,
777 .help = "Virtual disk size"
778 },
779 {
780 .name = BLOCK_OPT_CLUSTER_SIZE,
781 .type = OPT_SIZE,
782 .help = "RBD object size"
783 },
784 {NULL}
785};
786
787static BlockDriver bdrv_rbd = {
788 .format_name = "rbd",
789 .instance_size = sizeof(BDRVRBDState),
ad32e9c0
JD
790 .bdrv_file_open = qemu_rbd_open,
791 .bdrv_close = qemu_rbd_close,
792 .bdrv_create = qemu_rbd_create,
793 .bdrv_get_info = qemu_rbd_getinfo,
794 .create_options = qemu_rbd_create_options,
795 .bdrv_getlength = qemu_rbd_getlength,
30cdc48c 796 .bdrv_truncate = qemu_rbd_truncate,
f27aaf4b
CB
797 .protocol_name = "rbd",
798
ad32e9c0
JD
799 .bdrv_aio_readv = qemu_rbd_aio_readv,
800 .bdrv_aio_writev = qemu_rbd_aio_writev,
f27aaf4b 801
ad32e9c0
JD
802 .bdrv_snapshot_create = qemu_rbd_snap_create,
803 .bdrv_snapshot_list = qemu_rbd_snap_list,
f27aaf4b
CB
804};
805
806static void bdrv_rbd_init(void)
807{
808 bdrv_register(&bdrv_rbd);
809}
810
811block_init(bdrv_rbd_init);