1 /*
2 * Block node draining tests
3 *
4 * Copyright (c) 2017 Kevin Wolf <kwolf@redhat.com>
5 *
6 * Permission is hereby granted, free of charge, to any person obtaining a copy
7 * of this software and associated documentation files (the "Software"), to deal
8 * in the Software without restriction, including without limitation the rights
9 * to use, copy, modify, merge, publish, distribute, sublicense, and/or sell
10 * copies of the Software, and to permit persons to whom the Software is
11 * furnished to do so, subject to the following conditions:
12 *
13 * The above copyright notice and this permission notice shall be included in
14 * all copies or substantial portions of the Software.
15 *
16 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
17 * IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
18 * FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL
19 * THE AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
20 * LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM,
21 * OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN
22 * THE SOFTWARE.
23 */
24
25 #include "qemu/osdep.h"
26 #include "block/block_int.h"
27 #include "block/blockjob_int.h"
28 #include "system/block-backend.h"
29 #include "qapi/error.h"
30 #include "qemu/main-loop.h"
31 #include "iothread.h"
32
33 static QemuEvent done_event;
34
35 typedef struct BDRVTestState {
36 int drain_count;
37 AioContext *bh_indirection_ctx;
38 bool sleep_in_drain_begin;
39 } BDRVTestState;
40
sleep_in_drain_begin(void * opaque)41 static void coroutine_fn sleep_in_drain_begin(void *opaque)
42 {
43 BlockDriverState *bs = opaque;
44
45 qemu_co_sleep_ns(QEMU_CLOCK_REALTIME, 100000);
46 bdrv_dec_in_flight(bs);
47 }
48
bdrv_test_drain_begin(BlockDriverState * bs)49 static void bdrv_test_drain_begin(BlockDriverState *bs)
50 {
51 BDRVTestState *s = bs->opaque;
52 s->drain_count++;
53 if (s->sleep_in_drain_begin) {
54 Coroutine *co = qemu_coroutine_create(sleep_in_drain_begin, bs);
55 bdrv_inc_in_flight(bs);
56 aio_co_enter(bdrv_get_aio_context(bs), co);
57 }
58 }
59
bdrv_test_drain_end(BlockDriverState * bs)60 static void bdrv_test_drain_end(BlockDriverState *bs)
61 {
62 BDRVTestState *s = bs->opaque;
63 s->drain_count--;
64 }
65
bdrv_test_close(BlockDriverState * bs)66 static void bdrv_test_close(BlockDriverState *bs)
67 {
68 BDRVTestState *s = bs->opaque;
69 g_assert_cmpint(s->drain_count, >, 0);
70 }
71
co_reenter_bh(void * opaque)72 static void co_reenter_bh(void *opaque)
73 {
74 aio_co_wake(opaque);
75 }
76
bdrv_test_co_preadv(BlockDriverState * bs,int64_t offset,int64_t bytes,QEMUIOVector * qiov,BdrvRequestFlags flags)77 static int coroutine_fn bdrv_test_co_preadv(BlockDriverState *bs,
78 int64_t offset, int64_t bytes,
79 QEMUIOVector *qiov,
80 BdrvRequestFlags flags)
81 {
82 BDRVTestState *s = bs->opaque;
83
84 /* We want this request to stay until the polling loop in drain waits for
85 * it to complete. We need to sleep a while as bdrv_drain_invoke() comes
86 * first and polls its result, too, but it shouldn't accidentally complete
87 * this request yet. */
88 qemu_co_sleep_ns(QEMU_CLOCK_REALTIME, 100000);
89
90 if (s->bh_indirection_ctx) {
91 aio_bh_schedule_oneshot(s->bh_indirection_ctx, co_reenter_bh,
92 qemu_coroutine_self());
93 qemu_coroutine_yield();
94 }
95
96 return 0;
97 }
98
bdrv_test_co_change_backing_file(BlockDriverState * bs,const char * backing_file,const char * backing_fmt)99 static int bdrv_test_co_change_backing_file(BlockDriverState *bs,
100 const char *backing_file,
101 const char *backing_fmt)
102 {
103 return 0;
104 }
105
106 static BlockDriver bdrv_test = {
107 .format_name = "test",
108 .instance_size = sizeof(BDRVTestState),
109 .supports_backing = true,
110
111 .bdrv_close = bdrv_test_close,
112 .bdrv_co_preadv = bdrv_test_co_preadv,
113
114 .bdrv_drain_begin = bdrv_test_drain_begin,
115 .bdrv_drain_end = bdrv_test_drain_end,
116
117 .bdrv_child_perm = bdrv_default_perms,
118
119 .bdrv_co_change_backing_file = bdrv_test_co_change_backing_file,
120 };
121
aio_ret_cb(void * opaque,int ret)122 static void aio_ret_cb(void *opaque, int ret)
123 {
124 int *aio_ret = opaque;
125 *aio_ret = ret;
126 }
127
128 typedef struct CallInCoroutineData {
129 void (*entry)(void);
130 bool done;
131 } CallInCoroutineData;
132
call_in_coroutine_entry(void * opaque)133 static coroutine_fn void call_in_coroutine_entry(void *opaque)
134 {
135 CallInCoroutineData *data = opaque;
136
137 data->entry();
138 data->done = true;
139 }
140
call_in_coroutine(void (* entry)(void))141 static void call_in_coroutine(void (*entry)(void))
142 {
143 Coroutine *co;
144 CallInCoroutineData data = {
145 .entry = entry,
146 .done = false,
147 };
148
149 co = qemu_coroutine_create(call_in_coroutine_entry, &data);
150 qemu_coroutine_enter(co);
151 while (!data.done) {
152 aio_poll(qemu_get_aio_context(), true);
153 }
154 }
155
156 enum drain_type {
157 BDRV_DRAIN_ALL,
158 BDRV_DRAIN,
159 DRAIN_TYPE_MAX,
160 };
161
do_drain_begin(enum drain_type drain_type,BlockDriverState * bs)162 static void do_drain_begin(enum drain_type drain_type, BlockDriverState *bs)
163 {
164 switch (drain_type) {
165 case BDRV_DRAIN_ALL: bdrv_drain_all_begin(); break;
166 case BDRV_DRAIN: bdrv_drained_begin(bs); break;
167 default: g_assert_not_reached();
168 }
169 }
170
do_drain_end(enum drain_type drain_type,BlockDriverState * bs)171 static void do_drain_end(enum drain_type drain_type, BlockDriverState *bs)
172 {
173 switch (drain_type) {
174 case BDRV_DRAIN_ALL: bdrv_drain_all_end(); break;
175 case BDRV_DRAIN: bdrv_drained_end(bs); break;
176 default: g_assert_not_reached();
177 }
178 }
179
do_drain_begin_unlocked(enum drain_type drain_type,BlockDriverState * bs)180 static void do_drain_begin_unlocked(enum drain_type drain_type, BlockDriverState *bs)
181 {
182 do_drain_begin(drain_type, bs);
183 }
184
test_setup(void)185 static BlockBackend * no_coroutine_fn test_setup(void)
186 {
187 BlockBackend *blk;
188 BlockDriverState *bs, *backing;
189
190 blk = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
191 bs = bdrv_new_open_driver(&bdrv_test, "test-node", BDRV_O_RDWR,
192 &error_abort);
193 blk_insert_bs(blk, bs, &error_abort);
194
195 backing = bdrv_new_open_driver(&bdrv_test, "backing", 0, &error_abort);
196 bdrv_set_backing_hd(bs, backing, &error_abort);
197
198 bdrv_unref(backing);
199 bdrv_unref(bs);
200
201 return blk;
202 }
203
do_drain_end_unlocked(enum drain_type drain_type,BlockDriverState * bs)204 static void do_drain_end_unlocked(enum drain_type drain_type, BlockDriverState *bs)
205 {
206 do_drain_end(drain_type, bs);
207 }
208
209 /*
210 * Locking the block graph would be a bit cumbersome here because this function
211 * is called both in coroutine and non-coroutine context. We know this is a test
212 * and nothing else is running, so don't bother with TSA.
213 */
214 static void coroutine_mixed_fn TSA_NO_TSA
test_drv_cb_common(BlockBackend * blk,enum drain_type drain_type,bool recursive)215 test_drv_cb_common(BlockBackend *blk, enum drain_type drain_type,
216 bool recursive)
217 {
218 BlockDriverState *bs = blk_bs(blk);
219 BlockDriverState *backing = bs->backing->bs;
220 BDRVTestState *s, *backing_s;
221 BlockAIOCB *acb;
222 int aio_ret;
223
224 QEMUIOVector qiov = QEMU_IOVEC_INIT_BUF(qiov, NULL, 0);
225
226 s = bs->opaque;
227 backing_s = backing->opaque;
228
229 /* Simple bdrv_drain_all_begin/end pair, check that CBs are called */
230 g_assert_cmpint(s->drain_count, ==, 0);
231 g_assert_cmpint(backing_s->drain_count, ==, 0);
232
233 do_drain_begin(drain_type, bs);
234
235 g_assert_cmpint(s->drain_count, ==, 1);
236 g_assert_cmpint(backing_s->drain_count, ==, !!recursive);
237
238 do_drain_end(drain_type, bs);
239
240 g_assert_cmpint(s->drain_count, ==, 0);
241 g_assert_cmpint(backing_s->drain_count, ==, 0);
242
243 /* Now do the same while a request is pending */
244 aio_ret = -EINPROGRESS;
245 acb = blk_aio_preadv(blk, 0, &qiov, 0, aio_ret_cb, &aio_ret);
246 g_assert(acb != NULL);
247 g_assert_cmpint(aio_ret, ==, -EINPROGRESS);
248
249 g_assert_cmpint(s->drain_count, ==, 0);
250 g_assert_cmpint(backing_s->drain_count, ==, 0);
251
252 do_drain_begin(drain_type, bs);
253
254 g_assert_cmpint(aio_ret, ==, 0);
255 g_assert_cmpint(s->drain_count, ==, 1);
256 g_assert_cmpint(backing_s->drain_count, ==, !!recursive);
257
258 do_drain_end(drain_type, bs);
259
260 g_assert_cmpint(s->drain_count, ==, 0);
261 g_assert_cmpint(backing_s->drain_count, ==, 0);
262 }
263
test_drv_cb_drain_all(void)264 static void test_drv_cb_drain_all(void)
265 {
266 BlockBackend *blk = test_setup();
267 test_drv_cb_common(blk, BDRV_DRAIN_ALL, true);
268 blk_unref(blk);
269 }
270
test_drv_cb_drain(void)271 static void test_drv_cb_drain(void)
272 {
273 BlockBackend *blk = test_setup();
274 test_drv_cb_common(blk, BDRV_DRAIN, false);
275 blk_unref(blk);
276 }
277
test_drv_cb_co_drain_all_entry(void)278 static void coroutine_fn test_drv_cb_co_drain_all_entry(void)
279 {
280 BlockBackend *blk = blk_all_next(NULL);
281 test_drv_cb_common(blk, BDRV_DRAIN_ALL, true);
282 }
283
test_drv_cb_co_drain_all(void)284 static void test_drv_cb_co_drain_all(void)
285 {
286 BlockBackend *blk = test_setup();
287 call_in_coroutine(test_drv_cb_co_drain_all_entry);
288 blk_unref(blk);
289 }
290
test_drv_cb_co_drain_entry(void)291 static void coroutine_fn test_drv_cb_co_drain_entry(void)
292 {
293 BlockBackend *blk = blk_all_next(NULL);
294 test_drv_cb_common(blk, BDRV_DRAIN, false);
295 }
296
test_drv_cb_co_drain(void)297 static void test_drv_cb_co_drain(void)
298 {
299 BlockBackend *blk = test_setup();
300 call_in_coroutine(test_drv_cb_co_drain_entry);
301 blk_unref(blk);
302 }
303
304 /*
305 * Locking the block graph would be a bit cumbersome here because this function
306 * is called both in coroutine and non-coroutine context. We know this is a test
307 * and nothing else is running, so don't bother with TSA.
308 */
309 static void coroutine_mixed_fn TSA_NO_TSA
test_quiesce_common(BlockBackend * blk,enum drain_type drain_type,bool recursive)310 test_quiesce_common(BlockBackend *blk, enum drain_type drain_type,
311 bool recursive)
312 {
313 BlockDriverState *bs = blk_bs(blk);
314 BlockDriverState *backing = bs->backing->bs;
315
316 g_assert_cmpint(bs->quiesce_counter, ==, 0);
317 g_assert_cmpint(backing->quiesce_counter, ==, 0);
318
319 do_drain_begin(drain_type, bs);
320
321 if (drain_type == BDRV_DRAIN_ALL) {
322 g_assert_cmpint(bs->quiesce_counter, ==, 2);
323 } else {
324 g_assert_cmpint(bs->quiesce_counter, ==, 1);
325 }
326 g_assert_cmpint(backing->quiesce_counter, ==, !!recursive);
327
328 do_drain_end(drain_type, bs);
329
330 g_assert_cmpint(bs->quiesce_counter, ==, 0);
331 g_assert_cmpint(backing->quiesce_counter, ==, 0);
332 }
333
test_quiesce_drain_all(void)334 static void test_quiesce_drain_all(void)
335 {
336 BlockBackend *blk = test_setup();
337 test_quiesce_common(blk, BDRV_DRAIN_ALL, true);
338 blk_unref(blk);
339 }
340
test_quiesce_drain(void)341 static void test_quiesce_drain(void)
342 {
343 BlockBackend *blk = test_setup();
344 test_quiesce_common(blk, BDRV_DRAIN, false);
345 blk_unref(blk);
346 }
347
test_quiesce_co_drain_all_entry(void)348 static void coroutine_fn test_quiesce_co_drain_all_entry(void)
349 {
350 BlockBackend *blk = blk_all_next(NULL);
351 test_quiesce_common(blk, BDRV_DRAIN_ALL, true);
352 }
353
test_quiesce_co_drain_all(void)354 static void test_quiesce_co_drain_all(void)
355 {
356 BlockBackend *blk = test_setup();
357 call_in_coroutine(test_quiesce_co_drain_all_entry);
358 blk_unref(blk);
359 }
360
test_quiesce_co_drain_entry(void)361 static void coroutine_fn test_quiesce_co_drain_entry(void)
362 {
363 BlockBackend *blk = blk_all_next(NULL);
364 test_quiesce_common(blk, BDRV_DRAIN, false);
365 }
366
test_quiesce_co_drain(void)367 static void test_quiesce_co_drain(void)
368 {
369 BlockBackend *blk = test_setup();
370 call_in_coroutine(test_quiesce_co_drain_entry);
371 blk_unref(blk);
372 }
373
test_nested(void)374 static void test_nested(void)
375 {
376 BlockBackend *blk;
377 BlockDriverState *bs, *backing;
378 BDRVTestState *s, *backing_s;
379 enum drain_type outer, inner;
380
381 blk = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
382 bs = bdrv_new_open_driver(&bdrv_test, "test-node", BDRV_O_RDWR,
383 &error_abort);
384 s = bs->opaque;
385 blk_insert_bs(blk, bs, &error_abort);
386
387 backing = bdrv_new_open_driver(&bdrv_test, "backing", 0, &error_abort);
388 backing_s = backing->opaque;
389 bdrv_set_backing_hd(bs, backing, &error_abort);
390
391 for (outer = 0; outer < DRAIN_TYPE_MAX; outer++) {
392 for (inner = 0; inner < DRAIN_TYPE_MAX; inner++) {
393 int backing_quiesce = (outer == BDRV_DRAIN_ALL) +
394 (inner == BDRV_DRAIN_ALL);
395
396 g_assert_cmpint(bs->quiesce_counter, ==, 0);
397 g_assert_cmpint(backing->quiesce_counter, ==, 0);
398 g_assert_cmpint(s->drain_count, ==, 0);
399 g_assert_cmpint(backing_s->drain_count, ==, 0);
400
401 do_drain_begin(outer, bs);
402 do_drain_begin(inner, bs);
403
404 g_assert_cmpint(bs->quiesce_counter, ==, 2 + !!backing_quiesce);
405 g_assert_cmpint(backing->quiesce_counter, ==, backing_quiesce);
406 g_assert_cmpint(s->drain_count, ==, 1);
407 g_assert_cmpint(backing_s->drain_count, ==, !!backing_quiesce);
408
409 do_drain_end(inner, bs);
410 do_drain_end(outer, bs);
411
412 g_assert_cmpint(bs->quiesce_counter, ==, 0);
413 g_assert_cmpint(backing->quiesce_counter, ==, 0);
414 g_assert_cmpint(s->drain_count, ==, 0);
415 g_assert_cmpint(backing_s->drain_count, ==, 0);
416 }
417 }
418
419 bdrv_unref(backing);
420 bdrv_unref(bs);
421 blk_unref(blk);
422 }
423
test_graph_change_drain_all(void)424 static void test_graph_change_drain_all(void)
425 {
426 BlockBackend *blk_a, *blk_b;
427 BlockDriverState *bs_a, *bs_b;
428 BDRVTestState *a_s, *b_s;
429
430 /* Create node A with a BlockBackend */
431 blk_a = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
432 bs_a = bdrv_new_open_driver(&bdrv_test, "test-node-a", BDRV_O_RDWR,
433 &error_abort);
434 a_s = bs_a->opaque;
435 blk_insert_bs(blk_a, bs_a, &error_abort);
436
437 g_assert_cmpint(bs_a->quiesce_counter, ==, 0);
438 g_assert_cmpint(a_s->drain_count, ==, 0);
439
440 /* Call bdrv_drain_all_begin() */
441 bdrv_drain_all_begin();
442
443 g_assert_cmpint(bs_a->quiesce_counter, ==, 1);
444 g_assert_cmpint(a_s->drain_count, ==, 1);
445
446 /* Create node B with a BlockBackend */
447 blk_b = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
448 bs_b = bdrv_new_open_driver(&bdrv_test, "test-node-b", BDRV_O_RDWR,
449 &error_abort);
450 b_s = bs_b->opaque;
451 blk_insert_bs(blk_b, bs_b, &error_abort);
452
453 g_assert_cmpint(bs_a->quiesce_counter, ==, 1);
454 g_assert_cmpint(bs_b->quiesce_counter, ==, 1);
455 g_assert_cmpint(a_s->drain_count, ==, 1);
456 g_assert_cmpint(b_s->drain_count, ==, 1);
457
458 /* Unref and finally delete node A */
459 blk_unref(blk_a);
460
461 g_assert_cmpint(bs_a->quiesce_counter, ==, 1);
462 g_assert_cmpint(bs_b->quiesce_counter, ==, 1);
463 g_assert_cmpint(a_s->drain_count, ==, 1);
464 g_assert_cmpint(b_s->drain_count, ==, 1);
465
466 bdrv_unref(bs_a);
467
468 g_assert_cmpint(bs_b->quiesce_counter, ==, 1);
469 g_assert_cmpint(b_s->drain_count, ==, 1);
470
471 /* End the drained section */
472 bdrv_drain_all_end();
473
474 g_assert_cmpint(bs_b->quiesce_counter, ==, 0);
475 g_assert_cmpint(b_s->drain_count, ==, 0);
476
477 bdrv_unref(bs_b);
478 blk_unref(blk_b);
479 }
480
481 struct test_iothread_data {
482 BlockDriverState *bs;
483 enum drain_type drain_type;
484 int *aio_ret;
485 bool co_done;
486 };
487
test_iothread_drain_co_entry(void * opaque)488 static void coroutine_fn test_iothread_drain_co_entry(void *opaque)
489 {
490 struct test_iothread_data *data = opaque;
491
492 do_drain_begin(data->drain_type, data->bs);
493 g_assert_cmpint(*data->aio_ret, ==, 0);
494 do_drain_end(data->drain_type, data->bs);
495
496 data->co_done = true;
497 aio_wait_kick();
498 }
499
test_iothread_aio_cb(void * opaque,int ret)500 static void test_iothread_aio_cb(void *opaque, int ret)
501 {
502 int *aio_ret = opaque;
503 *aio_ret = ret;
504 qemu_event_set(&done_event);
505 }
506
test_iothread_main_thread_bh(void * opaque)507 static void test_iothread_main_thread_bh(void *opaque)
508 {
509 struct test_iothread_data *data = opaque;
510
511 bdrv_flush(data->bs);
512 bdrv_dec_in_flight(data->bs); /* incremented by test_iothread_common() */
513 }
514
515 /*
516 * Starts an AIO request on a BDS that runs in the AioContext of iothread 1.
517 * The request involves a BH on iothread 2 before it can complete.
518 *
519 * @drain_thread = 0 means that do_drain_begin/end are called from the main
520 * thread, @drain_thread = 1 means that they are called from iothread 1. Drain
521 * for this BDS cannot be called from iothread 2 because only the main thread
522 * may do cross-AioContext polling.
523 */
test_iothread_common(enum drain_type drain_type,int drain_thread)524 static void test_iothread_common(enum drain_type drain_type, int drain_thread)
525 {
526 BlockBackend *blk;
527 BlockDriverState *bs;
528 BDRVTestState *s;
529 BlockAIOCB *acb;
530 Coroutine *co;
531 int aio_ret;
532 struct test_iothread_data data;
533
534 IOThread *a = iothread_new();
535 IOThread *b = iothread_new();
536 AioContext *ctx_a = iothread_get_aio_context(a);
537 AioContext *ctx_b = iothread_get_aio_context(b);
538
539 QEMUIOVector qiov = QEMU_IOVEC_INIT_BUF(qiov, NULL, 0);
540
541 /* bdrv_drain_all() may only be called from the main loop thread */
542 if (drain_type == BDRV_DRAIN_ALL && drain_thread != 0) {
543 goto out;
544 }
545
546 blk = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
547 bs = bdrv_new_open_driver(&bdrv_test, "test-node", BDRV_O_RDWR,
548 &error_abort);
549 s = bs->opaque;
550 blk_insert_bs(blk, bs, &error_abort);
551 blk_set_disable_request_queuing(blk, true);
552
553 blk_set_aio_context(blk, ctx_a, &error_abort);
554
555 s->bh_indirection_ctx = ctx_b;
556
557 aio_ret = -EINPROGRESS;
558 qemu_event_reset(&done_event);
559
560 if (drain_thread == 0) {
561 acb = blk_aio_preadv(blk, 0, &qiov, 0, test_iothread_aio_cb, &aio_ret);
562 } else {
563 acb = blk_aio_preadv(blk, 0, &qiov, 0, aio_ret_cb, &aio_ret);
564 }
565 g_assert(acb != NULL);
566 g_assert_cmpint(aio_ret, ==, -EINPROGRESS);
567
568 data = (struct test_iothread_data) {
569 .bs = bs,
570 .drain_type = drain_type,
571 .aio_ret = &aio_ret,
572 };
573
574 switch (drain_thread) {
575 case 0:
576 /*
577 * Increment in_flight so that do_drain_begin() waits for
578 * test_iothread_main_thread_bh(). This prevents the race between
579 * test_iothread_main_thread_bh() in IOThread a and do_drain_begin() in
580 * this thread. test_iothread_main_thread_bh() decrements in_flight.
581 */
582 bdrv_inc_in_flight(bs);
583 aio_bh_schedule_oneshot(ctx_a, test_iothread_main_thread_bh, &data);
584
585 /* The request is running on the IOThread a. Draining its block device
586 * will make sure that it has completed as far as the BDS is concerned,
587 * but the drain in this thread can continue immediately after
588 * bdrv_dec_in_flight() and aio_ret might be assigned only slightly
589 * later. */
590 do_drain_begin(drain_type, bs);
591 g_assert_cmpint(bs->in_flight, ==, 0);
592
593 qemu_event_wait(&done_event);
594
595 g_assert_cmpint(aio_ret, ==, 0);
596 do_drain_end(drain_type, bs);
597 break;
598 case 1:
599 co = qemu_coroutine_create(test_iothread_drain_co_entry, &data);
600 aio_co_enter(ctx_a, co);
601 AIO_WAIT_WHILE_UNLOCKED(NULL, !data.co_done);
602 break;
603 default:
604 g_assert_not_reached();
605 }
606
607 blk_set_aio_context(blk, qemu_get_aio_context(), &error_abort);
608
609 bdrv_unref(bs);
610 blk_unref(blk);
611
612 out:
613 iothread_join(a);
614 iothread_join(b);
615 }
616
test_iothread_drain_all(void)617 static void test_iothread_drain_all(void)
618 {
619 test_iothread_common(BDRV_DRAIN_ALL, 0);
620 test_iothread_common(BDRV_DRAIN_ALL, 1);
621 }
622
test_iothread_drain(void)623 static void test_iothread_drain(void)
624 {
625 test_iothread_common(BDRV_DRAIN, 0);
626 test_iothread_common(BDRV_DRAIN, 1);
627 }
628
629
630 typedef struct TestBlockJob {
631 BlockJob common;
632 BlockDriverState *bs;
633 int run_ret;
634 int prepare_ret;
635
636 /* Accessed with atomics */
637 bool running;
638 bool should_complete;
639 } TestBlockJob;
640
test_job_prepare(Job * job)641 static int test_job_prepare(Job *job)
642 {
643 TestBlockJob *s = container_of(job, TestBlockJob, common.job);
644
645 /* Provoke an AIO_WAIT_WHILE() call to verify there is no deadlock */
646 bdrv_flush(s->bs);
647 return s->prepare_ret;
648 }
649
test_job_commit(Job * job)650 static void test_job_commit(Job *job)
651 {
652 TestBlockJob *s = container_of(job, TestBlockJob, common.job);
653
654 /* Provoke an AIO_WAIT_WHILE() call to verify there is no deadlock */
655 bdrv_flush(s->bs);
656 }
657
test_job_abort(Job * job)658 static void test_job_abort(Job *job)
659 {
660 TestBlockJob *s = container_of(job, TestBlockJob, common.job);
661
662 /* Provoke an AIO_WAIT_WHILE() call to verify there is no deadlock */
663 bdrv_flush(s->bs);
664 }
665
test_job_run(Job * job,Error ** errp)666 static int coroutine_fn test_job_run(Job *job, Error **errp)
667 {
668 TestBlockJob *s = container_of(job, TestBlockJob, common.job);
669
670 /* We are running the actual job code past the pause point in
671 * job_co_entry(). */
672 qatomic_set(&s->running, true);
673
674 job_transition_to_ready(&s->common.job);
675 while (!qatomic_read(&s->should_complete)) {
676 /* Avoid job_sleep_ns() because it marks the job as !busy. We want to
677 * emulate some actual activity (probably some I/O) here so that drain
678 * has to wait for this activity to stop. */
679 qemu_co_sleep_ns(QEMU_CLOCK_REALTIME, 1000000);
680
681 job_pause_point(&s->common.job);
682 }
683
684 return s->run_ret;
685 }
686
test_job_complete(Job * job,Error ** errp)687 static void test_job_complete(Job *job, Error **errp)
688 {
689 TestBlockJob *s = container_of(job, TestBlockJob, common.job);
690 qatomic_set(&s->should_complete, true);
691 }
692
693 BlockJobDriver test_job_driver = {
694 .job_driver = {
695 .instance_size = sizeof(TestBlockJob),
696 .free = block_job_free,
697 .user_resume = block_job_user_resume,
698 .run = test_job_run,
699 .complete = test_job_complete,
700 .prepare = test_job_prepare,
701 .commit = test_job_commit,
702 .abort = test_job_abort,
703 },
704 };
705
706 enum test_job_result {
707 TEST_JOB_SUCCESS,
708 TEST_JOB_FAIL_RUN,
709 TEST_JOB_FAIL_PREPARE,
710 };
711
712 enum test_job_drain_node {
713 TEST_JOB_DRAIN_SRC,
714 TEST_JOB_DRAIN_SRC_CHILD,
715 };
716
test_blockjob_common_drain_node(enum drain_type drain_type,bool use_iothread,enum test_job_result result,enum test_job_drain_node drain_node)717 static void test_blockjob_common_drain_node(enum drain_type drain_type,
718 bool use_iothread,
719 enum test_job_result result,
720 enum test_job_drain_node drain_node)
721 {
722 BlockBackend *blk_src, *blk_target;
723 BlockDriverState *src, *src_backing, *src_overlay, *target, *drain_bs;
724 BlockJob *job;
725 TestBlockJob *tjob;
726 IOThread *iothread = NULL;
727 int ret = -1;
728
729 src = bdrv_new_open_driver(&bdrv_test, "source", BDRV_O_RDWR,
730 &error_abort);
731 src_backing = bdrv_new_open_driver(&bdrv_test, "source-backing",
732 BDRV_O_RDWR, &error_abort);
733 src_overlay = bdrv_new_open_driver(&bdrv_test, "source-overlay",
734 BDRV_O_RDWR, &error_abort);
735
736 bdrv_set_backing_hd(src_overlay, src, &error_abort);
737 bdrv_unref(src);
738 bdrv_set_backing_hd(src, src_backing, &error_abort);
739 bdrv_unref(src_backing);
740
741 blk_src = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
742 blk_insert_bs(blk_src, src_overlay, &error_abort);
743
744 switch (drain_node) {
745 case TEST_JOB_DRAIN_SRC:
746 drain_bs = src;
747 break;
748 case TEST_JOB_DRAIN_SRC_CHILD:
749 drain_bs = src_backing;
750 break;
751 default:
752 g_assert_not_reached();
753 }
754
755 if (use_iothread) {
756 AioContext *ctx;
757
758 iothread = iothread_new();
759 ctx = iothread_get_aio_context(iothread);
760 blk_set_aio_context(blk_src, ctx, &error_abort);
761 }
762
763 target = bdrv_new_open_driver(&bdrv_test, "target", BDRV_O_RDWR,
764 &error_abort);
765 blk_target = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
766 blk_insert_bs(blk_target, target, &error_abort);
767 blk_set_allow_aio_context_change(blk_target, true);
768
769 tjob = block_job_create("job0", &test_job_driver, NULL, src,
770 0, BLK_PERM_ALL,
771 0, 0, NULL, NULL, &error_abort);
772 tjob->bs = src;
773 job = &tjob->common;
774
775 bdrv_graph_wrlock();
776 block_job_add_bdrv(job, "target", target, 0, BLK_PERM_ALL, &error_abort);
777 bdrv_graph_wrunlock();
778
779 switch (result) {
780 case TEST_JOB_SUCCESS:
781 break;
782 case TEST_JOB_FAIL_RUN:
783 tjob->run_ret = -EIO;
784 break;
785 case TEST_JOB_FAIL_PREPARE:
786 tjob->prepare_ret = -EIO;
787 break;
788 }
789
790 job_start(&job->job);
791
792 if (use_iothread) {
793 /* job_co_entry() is run in the I/O thread, wait for the actual job
794 * code to start (we don't want to catch the job in the pause point in
795 * job_co_entry(). */
796 while (!qatomic_read(&tjob->running)) {
797 aio_poll(qemu_get_aio_context(), false);
798 }
799 }
800
801 WITH_JOB_LOCK_GUARD() {
802 g_assert_cmpint(job->job.pause_count, ==, 0);
803 g_assert_false(job->job.paused);
804 g_assert_true(qatomic_read(&tjob->running));
805 g_assert_true(job->job.busy); /* We're in qemu_co_sleep_ns() */
806 }
807
808 do_drain_begin_unlocked(drain_type, drain_bs);
809
810 WITH_JOB_LOCK_GUARD() {
811 if (drain_type == BDRV_DRAIN_ALL) {
812 /* bdrv_drain_all() drains both src and target */
813 g_assert_cmpint(job->job.pause_count, ==, 2);
814 } else {
815 g_assert_cmpint(job->job.pause_count, ==, 1);
816 }
817 g_assert_true(job->job.paused);
818 g_assert_false(job->job.busy); /* The job is paused */
819 }
820
821 do_drain_end_unlocked(drain_type, drain_bs);
822
823 if (use_iothread) {
824 /*
825 * Here we are waiting for the paused status to change,
826 * so don't bother protecting the read every time.
827 *
828 * paused is reset in the I/O thread, wait for it
829 */
830 while (job_is_paused(&job->job)) {
831 aio_poll(qemu_get_aio_context(), false);
832 }
833 }
834
835 WITH_JOB_LOCK_GUARD() {
836 g_assert_cmpint(job->job.pause_count, ==, 0);
837 g_assert_false(job->job.paused);
838 g_assert_true(job->job.busy); /* We're in qemu_co_sleep_ns() */
839 }
840
841 do_drain_begin_unlocked(drain_type, target);
842
843 WITH_JOB_LOCK_GUARD() {
844 if (drain_type == BDRV_DRAIN_ALL) {
845 /* bdrv_drain_all() drains both src and target */
846 g_assert_cmpint(job->job.pause_count, ==, 2);
847 } else {
848 g_assert_cmpint(job->job.pause_count, ==, 1);
849 }
850 g_assert_true(job->job.paused);
851 g_assert_false(job->job.busy); /* The job is paused */
852 }
853
854 do_drain_end_unlocked(drain_type, target);
855
856 if (use_iothread) {
857 /*
858 * Here we are waiting for the paused status to change,
859 * so don't bother protecting the read every time.
860 *
861 * paused is reset in the I/O thread, wait for it
862 */
863 while (job_is_paused(&job->job)) {
864 aio_poll(qemu_get_aio_context(), false);
865 }
866 }
867
868 WITH_JOB_LOCK_GUARD() {
869 g_assert_cmpint(job->job.pause_count, ==, 0);
870 g_assert_false(job->job.paused);
871 g_assert_true(job->job.busy); /* We're in qemu_co_sleep_ns() */
872 }
873
874 WITH_JOB_LOCK_GUARD() {
875 ret = job_complete_sync_locked(&job->job, &error_abort);
876 }
877 g_assert_cmpint(ret, ==, (result == TEST_JOB_SUCCESS ? 0 : -EIO));
878
879 if (use_iothread) {
880 blk_set_aio_context(blk_src, qemu_get_aio_context(), &error_abort);
881 assert(blk_get_aio_context(blk_target) == qemu_get_aio_context());
882 }
883
884 blk_unref(blk_src);
885 blk_unref(blk_target);
886 bdrv_unref(src_overlay);
887 bdrv_unref(target);
888
889 if (iothread) {
890 iothread_join(iothread);
891 }
892 }
893
test_blockjob_common(enum drain_type drain_type,bool use_iothread,enum test_job_result result)894 static void test_blockjob_common(enum drain_type drain_type, bool use_iothread,
895 enum test_job_result result)
896 {
897 test_blockjob_common_drain_node(drain_type, use_iothread, result,
898 TEST_JOB_DRAIN_SRC);
899 test_blockjob_common_drain_node(drain_type, use_iothread, result,
900 TEST_JOB_DRAIN_SRC_CHILD);
901 }
902
test_blockjob_drain_all(void)903 static void test_blockjob_drain_all(void)
904 {
905 test_blockjob_common(BDRV_DRAIN_ALL, false, TEST_JOB_SUCCESS);
906 }
907
test_blockjob_drain(void)908 static void test_blockjob_drain(void)
909 {
910 test_blockjob_common(BDRV_DRAIN, false, TEST_JOB_SUCCESS);
911 }
912
test_blockjob_error_drain_all(void)913 static void test_blockjob_error_drain_all(void)
914 {
915 test_blockjob_common(BDRV_DRAIN_ALL, false, TEST_JOB_FAIL_RUN);
916 test_blockjob_common(BDRV_DRAIN_ALL, false, TEST_JOB_FAIL_PREPARE);
917 }
918
test_blockjob_error_drain(void)919 static void test_blockjob_error_drain(void)
920 {
921 test_blockjob_common(BDRV_DRAIN, false, TEST_JOB_FAIL_RUN);
922 test_blockjob_common(BDRV_DRAIN, false, TEST_JOB_FAIL_PREPARE);
923 }
924
test_blockjob_iothread_drain_all(void)925 static void test_blockjob_iothread_drain_all(void)
926 {
927 test_blockjob_common(BDRV_DRAIN_ALL, true, TEST_JOB_SUCCESS);
928 }
929
test_blockjob_iothread_drain(void)930 static void test_blockjob_iothread_drain(void)
931 {
932 test_blockjob_common(BDRV_DRAIN, true, TEST_JOB_SUCCESS);
933 }
934
test_blockjob_iothread_error_drain_all(void)935 static void test_blockjob_iothread_error_drain_all(void)
936 {
937 test_blockjob_common(BDRV_DRAIN_ALL, true, TEST_JOB_FAIL_RUN);
938 test_blockjob_common(BDRV_DRAIN_ALL, true, TEST_JOB_FAIL_PREPARE);
939 }
940
test_blockjob_iothread_error_drain(void)941 static void test_blockjob_iothread_error_drain(void)
942 {
943 test_blockjob_common(BDRV_DRAIN, true, TEST_JOB_FAIL_RUN);
944 test_blockjob_common(BDRV_DRAIN, true, TEST_JOB_FAIL_PREPARE);
945 }
946
947
948 typedef struct BDRVTestTopState {
949 BdrvChild *wait_child;
950 } BDRVTestTopState;
951
bdrv_test_top_close(BlockDriverState * bs)952 static void bdrv_test_top_close(BlockDriverState *bs)
953 {
954 BdrvChild *c, *next_c;
955
956 bdrv_graph_wrlock();
957 QLIST_FOREACH_SAFE(c, &bs->children, next, next_c) {
958 bdrv_unref_child(bs, c);
959 }
960 bdrv_graph_wrunlock();
961 }
962
963 static int coroutine_fn GRAPH_RDLOCK
bdrv_test_top_co_preadv(BlockDriverState * bs,int64_t offset,int64_t bytes,QEMUIOVector * qiov,BdrvRequestFlags flags)964 bdrv_test_top_co_preadv(BlockDriverState *bs, int64_t offset, int64_t bytes,
965 QEMUIOVector *qiov, BdrvRequestFlags flags)
966 {
967 BDRVTestTopState *tts = bs->opaque;
968 return bdrv_co_preadv(tts->wait_child, offset, bytes, qiov, flags);
969 }
970
971 static BlockDriver bdrv_test_top_driver = {
972 .format_name = "test_top_driver",
973 .instance_size = sizeof(BDRVTestTopState),
974
975 .bdrv_close = bdrv_test_top_close,
976 .bdrv_co_preadv = bdrv_test_top_co_preadv,
977
978 .bdrv_child_perm = bdrv_default_perms,
979 };
980
981 typedef struct TestCoDeleteByDrainData {
982 BlockBackend *blk;
983 bool detach_instead_of_delete;
984 bool done;
985 } TestCoDeleteByDrainData;
986
test_co_delete_by_drain(void * opaque)987 static void coroutine_fn test_co_delete_by_drain(void *opaque)
988 {
989 TestCoDeleteByDrainData *dbdd = opaque;
990 BlockBackend *blk = dbdd->blk;
991 BlockDriverState *bs = blk_bs(blk);
992 BDRVTestTopState *tts = bs->opaque;
993 void *buffer = g_malloc(65536);
994 QEMUIOVector qiov = QEMU_IOVEC_INIT_BUF(qiov, buffer, 65536);
995
996 /* Pretend some internal write operation from parent to child.
997 * Important: We have to read from the child, not from the parent!
998 * Draining works by first propagating it all up the tree to the
999 * root and then waiting for drainage from root to the leaves
1000 * (protocol nodes). If we have a request waiting on the root,
1001 * everything will be drained before we go back down the tree, but
1002 * we do not want that. We want to be in the middle of draining
1003 * when this following requests returns. */
1004 bdrv_graph_co_rdlock();
1005 bdrv_co_preadv(tts->wait_child, 0, 65536, &qiov, 0);
1006 bdrv_graph_co_rdunlock();
1007
1008 g_assert_cmpint(bs->refcnt, ==, 1);
1009
1010 if (!dbdd->detach_instead_of_delete) {
1011 blk_co_unref(blk);
1012 } else {
1013 BdrvChild *c, *next_c;
1014 bdrv_graph_co_rdlock();
1015 QLIST_FOREACH_SAFE(c, &bs->children, next, next_c) {
1016 bdrv_graph_co_rdunlock();
1017 bdrv_co_unref_child(bs, c);
1018 bdrv_graph_co_rdlock();
1019 }
1020 bdrv_graph_co_rdunlock();
1021 }
1022
1023 dbdd->done = true;
1024 g_free(buffer);
1025 }
1026
1027 /**
1028 * Test what happens when some BDS has some children, you drain one of
1029 * them and this results in the BDS being deleted.
1030 *
1031 * If @detach_instead_of_delete is set, the BDS is not going to be
1032 * deleted but will only detach all of its children.
1033 */
do_test_delete_by_drain(bool detach_instead_of_delete,enum drain_type drain_type)1034 static void do_test_delete_by_drain(bool detach_instead_of_delete,
1035 enum drain_type drain_type)
1036 {
1037 BlockBackend *blk;
1038 BlockDriverState *bs, *child_bs, *null_bs;
1039 BDRVTestTopState *tts;
1040 TestCoDeleteByDrainData dbdd;
1041 Coroutine *co;
1042
1043 bs = bdrv_new_open_driver(&bdrv_test_top_driver, "top", BDRV_O_RDWR,
1044 &error_abort);
1045 bs->total_sectors = 65536 >> BDRV_SECTOR_BITS;
1046 tts = bs->opaque;
1047
1048 null_bs = bdrv_open("null-co://", NULL, NULL, BDRV_O_RDWR | BDRV_O_PROTOCOL,
1049 &error_abort);
1050 bdrv_graph_wrlock();
1051 bdrv_attach_child(bs, null_bs, "null-child", &child_of_bds,
1052 BDRV_CHILD_DATA, &error_abort);
1053 bdrv_graph_wrunlock();
1054
1055 /* This child will be the one to pass to requests through to, and
1056 * it will stall until a drain occurs */
1057 child_bs = bdrv_new_open_driver(&bdrv_test, "child", BDRV_O_RDWR,
1058 &error_abort);
1059 child_bs->total_sectors = 65536 >> BDRV_SECTOR_BITS;
1060 /* Takes our reference to child_bs */
1061 bdrv_graph_wrlock();
1062 tts->wait_child = bdrv_attach_child(bs, child_bs, "wait-child",
1063 &child_of_bds,
1064 BDRV_CHILD_DATA | BDRV_CHILD_PRIMARY,
1065 &error_abort);
1066 bdrv_graph_wrunlock();
1067
1068 /* This child is just there to be deleted
1069 * (for detach_instead_of_delete == true) */
1070 null_bs = bdrv_open("null-co://", NULL, NULL, BDRV_O_RDWR | BDRV_O_PROTOCOL,
1071 &error_abort);
1072 bdrv_graph_wrlock();
1073 bdrv_attach_child(bs, null_bs, "null-child", &child_of_bds, BDRV_CHILD_DATA,
1074 &error_abort);
1075 bdrv_graph_wrunlock();
1076
1077 blk = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
1078 blk_insert_bs(blk, bs, &error_abort);
1079
1080 /* Referenced by blk now */
1081 bdrv_unref(bs);
1082
1083 g_assert_cmpint(bs->refcnt, ==, 1);
1084 g_assert_cmpint(child_bs->refcnt, ==, 1);
1085 g_assert_cmpint(null_bs->refcnt, ==, 1);
1086
1087
1088 dbdd = (TestCoDeleteByDrainData){
1089 .blk = blk,
1090 .detach_instead_of_delete = detach_instead_of_delete,
1091 .done = false,
1092 };
1093 co = qemu_coroutine_create(test_co_delete_by_drain, &dbdd);
1094 qemu_coroutine_enter(co);
1095
1096 /* Drain the child while the read operation is still pending.
1097 * This should result in the operation finishing and
1098 * test_co_delete_by_drain() resuming. Thus, @bs will be deleted
1099 * and the coroutine will exit while this drain operation is still
1100 * in progress. */
1101 switch (drain_type) {
1102 case BDRV_DRAIN:
1103 bdrv_ref(child_bs);
1104 bdrv_drain(child_bs);
1105 bdrv_unref(child_bs);
1106 break;
1107 case BDRV_DRAIN_ALL:
1108 bdrv_drain_all_begin();
1109 bdrv_drain_all_end();
1110 break;
1111 default:
1112 g_assert_not_reached();
1113 }
1114
1115 while (!dbdd.done) {
1116 aio_poll(qemu_get_aio_context(), true);
1117 }
1118
1119 if (detach_instead_of_delete) {
1120 /* Here, the reference has not passed over to the coroutine,
1121 * so we have to delete the BB ourselves */
1122 blk_unref(blk);
1123 }
1124 }
1125
test_delete_by_drain(void)1126 static void test_delete_by_drain(void)
1127 {
1128 do_test_delete_by_drain(false, BDRV_DRAIN);
1129 }
1130
test_detach_by_drain_all(void)1131 static void test_detach_by_drain_all(void)
1132 {
1133 do_test_delete_by_drain(true, BDRV_DRAIN_ALL);
1134 }
1135
test_detach_by_drain(void)1136 static void test_detach_by_drain(void)
1137 {
1138 do_test_delete_by_drain(true, BDRV_DRAIN);
1139 }
1140
1141
1142 struct detach_by_parent_data {
1143 BlockDriverState *parent_b;
1144 BdrvChild *child_b;
1145 BlockDriverState *c;
1146 BdrvChild *child_c;
1147 bool by_parent_cb;
1148 bool detach_on_drain;
1149 };
1150 static struct detach_by_parent_data detach_by_parent_data;
1151
detach_indirect_bh(void * opaque)1152 static void no_coroutine_fn detach_indirect_bh(void *opaque)
1153 {
1154 struct detach_by_parent_data *data = opaque;
1155
1156 bdrv_dec_in_flight(data->child_b->bs);
1157
1158 bdrv_graph_wrlock();
1159 bdrv_unref_child(data->parent_b, data->child_b);
1160
1161 bdrv_ref(data->c);
1162 data->child_c = bdrv_attach_child(data->parent_b, data->c, "PB-C",
1163 &child_of_bds, BDRV_CHILD_DATA,
1164 &error_abort);
1165 bdrv_graph_wrunlock();
1166 }
1167
detach_by_parent_aio_cb(void * opaque,int ret)1168 static void coroutine_mixed_fn detach_by_parent_aio_cb(void *opaque, int ret)
1169 {
1170 struct detach_by_parent_data *data = &detach_by_parent_data;
1171
1172 g_assert_cmpint(ret, ==, 0);
1173 if (data->by_parent_cb) {
1174 bdrv_inc_in_flight(data->child_b->bs);
1175 aio_bh_schedule_oneshot(qemu_get_current_aio_context(),
1176 detach_indirect_bh, &detach_by_parent_data);
1177 }
1178 }
1179
detach_by_driver_cb_drained_begin(BdrvChild * child)1180 static void GRAPH_RDLOCK detach_by_driver_cb_drained_begin(BdrvChild *child)
1181 {
1182 struct detach_by_parent_data *data = &detach_by_parent_data;
1183
1184 if (!data->detach_on_drain) {
1185 return;
1186 }
1187 data->detach_on_drain = false;
1188
1189 bdrv_inc_in_flight(data->child_b->bs);
1190 aio_bh_schedule_oneshot(qemu_get_current_aio_context(),
1191 detach_indirect_bh, &detach_by_parent_data);
1192 child_of_bds.drained_begin(child);
1193 }
1194
1195 static BdrvChildClass detach_by_driver_cb_class;
1196
1197 /*
1198 * Initial graph:
1199 *
1200 * PA PB
1201 * \ / \
1202 * A B C
1203 *
1204 * by_parent_cb == true: Test that parent callbacks don't poll
1205 *
1206 * PA has a pending write request whose callback changes the child nodes of
1207 * PB: It removes B and adds C instead. The subtree of PB is drained, which
1208 * will indirectly drain the write request, too.
1209 *
1210 * by_parent_cb == false: Test that bdrv_drain_invoke() doesn't poll
1211 *
1212 * PA's BdrvChildClass has a .drained_begin callback that schedules a BH
1213 * that does the same graph change. If bdrv_drain_invoke() calls it, the
1214 * state is messed up, but if it is only polled in the single
1215 * BDRV_POLL_WHILE() at the end of the drain, this should work fine.
1216 */
test_detach_indirect(bool by_parent_cb)1217 static void TSA_NO_TSA test_detach_indirect(bool by_parent_cb)
1218 {
1219 BlockBackend *blk;
1220 BlockDriverState *parent_a, *parent_b, *a, *b, *c;
1221 BdrvChild *child_a, *child_b;
1222 BlockAIOCB *acb;
1223
1224 QEMUIOVector qiov = QEMU_IOVEC_INIT_BUF(qiov, NULL, 0);
1225
1226 if (!by_parent_cb) {
1227 detach_by_driver_cb_class = child_of_bds;
1228 detach_by_driver_cb_class.drained_begin =
1229 detach_by_driver_cb_drained_begin;
1230 detach_by_driver_cb_class.drained_end = NULL;
1231 detach_by_driver_cb_class.drained_poll = NULL;
1232 }
1233
1234 detach_by_parent_data = (struct detach_by_parent_data) {
1235 .detach_on_drain = false,
1236 };
1237
1238 /* Create all involved nodes */
1239 parent_a = bdrv_new_open_driver(&bdrv_test, "parent-a", BDRV_O_RDWR,
1240 &error_abort);
1241 parent_b = bdrv_new_open_driver(&bdrv_test, "parent-b", 0,
1242 &error_abort);
1243
1244 a = bdrv_new_open_driver(&bdrv_test, "a", BDRV_O_RDWR, &error_abort);
1245 b = bdrv_new_open_driver(&bdrv_test, "b", BDRV_O_RDWR, &error_abort);
1246 c = bdrv_new_open_driver(&bdrv_test, "c", BDRV_O_RDWR, &error_abort);
1247
1248 /* blk is a BB for parent-a */
1249 blk = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
1250 blk_insert_bs(blk, parent_a, &error_abort);
1251 bdrv_unref(parent_a);
1252
1253 /* If we want to get bdrv_drain_invoke() to call aio_poll(), the driver
1254 * callback must not return immediately. */
1255 if (!by_parent_cb) {
1256 BDRVTestState *s = parent_a->opaque;
1257 s->sleep_in_drain_begin = true;
1258 }
1259
1260 /* Set child relationships */
1261 bdrv_ref(b);
1262 bdrv_ref(a);
1263 bdrv_graph_wrlock();
1264 child_b = bdrv_attach_child(parent_b, b, "PB-B", &child_of_bds,
1265 BDRV_CHILD_DATA, &error_abort);
1266 child_a = bdrv_attach_child(parent_b, a, "PB-A", &child_of_bds,
1267 BDRV_CHILD_COW, &error_abort);
1268
1269 bdrv_ref(a);
1270 bdrv_attach_child(parent_a, a, "PA-A",
1271 by_parent_cb ? &child_of_bds : &detach_by_driver_cb_class,
1272 BDRV_CHILD_DATA, &error_abort);
1273 bdrv_graph_wrunlock();
1274
1275 g_assert_cmpint(parent_a->refcnt, ==, 1);
1276 g_assert_cmpint(parent_b->refcnt, ==, 1);
1277 g_assert_cmpint(a->refcnt, ==, 3);
1278 g_assert_cmpint(b->refcnt, ==, 2);
1279 g_assert_cmpint(c->refcnt, ==, 1);
1280
1281 g_assert(QLIST_FIRST(&parent_b->children) == child_a);
1282 g_assert(QLIST_NEXT(child_a, next) == child_b);
1283 g_assert(QLIST_NEXT(child_b, next) == NULL);
1284
1285 /* Start the evil write request */
1286 detach_by_parent_data = (struct detach_by_parent_data) {
1287 .parent_b = parent_b,
1288 .child_b = child_b,
1289 .c = c,
1290 .by_parent_cb = by_parent_cb,
1291 .detach_on_drain = true,
1292 };
1293 acb = blk_aio_preadv(blk, 0, &qiov, 0, detach_by_parent_aio_cb, NULL);
1294 g_assert(acb != NULL);
1295
1296 /* Drain and check the expected result */
1297 bdrv_drained_begin(parent_b);
1298 bdrv_drained_begin(a);
1299 bdrv_drained_begin(b);
1300 bdrv_drained_begin(c);
1301
1302 g_assert(detach_by_parent_data.child_c != NULL);
1303
1304 g_assert_cmpint(parent_a->refcnt, ==, 1);
1305 g_assert_cmpint(parent_b->refcnt, ==, 1);
1306 g_assert_cmpint(a->refcnt, ==, 3);
1307 g_assert_cmpint(b->refcnt, ==, 1);
1308 g_assert_cmpint(c->refcnt, ==, 2);
1309
1310 g_assert(QLIST_FIRST(&parent_b->children) == detach_by_parent_data.child_c);
1311 g_assert(QLIST_NEXT(detach_by_parent_data.child_c, next) == child_a);
1312 g_assert(QLIST_NEXT(child_a, next) == NULL);
1313
1314 g_assert_cmpint(parent_a->quiesce_counter, ==, 1);
1315 g_assert_cmpint(parent_b->quiesce_counter, ==, 3);
1316 g_assert_cmpint(a->quiesce_counter, ==, 1);
1317 g_assert_cmpint(b->quiesce_counter, ==, 1);
1318 g_assert_cmpint(c->quiesce_counter, ==, 1);
1319
1320 bdrv_drained_end(parent_b);
1321 bdrv_drained_end(a);
1322 bdrv_drained_end(b);
1323 bdrv_drained_end(c);
1324
1325 bdrv_unref(parent_b);
1326 blk_unref(blk);
1327
1328 g_assert_cmpint(a->refcnt, ==, 1);
1329 g_assert_cmpint(b->refcnt, ==, 1);
1330 g_assert_cmpint(c->refcnt, ==, 1);
1331 bdrv_unref(a);
1332 bdrv_unref(b);
1333 bdrv_unref(c);
1334 }
1335
test_detach_by_parent_cb(void)1336 static void test_detach_by_parent_cb(void)
1337 {
1338 test_detach_indirect(true);
1339 }
1340
test_detach_by_driver_cb(void)1341 static void test_detach_by_driver_cb(void)
1342 {
1343 test_detach_indirect(false);
1344 }
1345
test_append_to_drained(void)1346 static void test_append_to_drained(void)
1347 {
1348 BlockBackend *blk;
1349 BlockDriverState *base, *overlay;
1350 BDRVTestState *base_s, *overlay_s;
1351
1352 blk = blk_new(qemu_get_aio_context(), BLK_PERM_ALL, BLK_PERM_ALL);
1353 base = bdrv_new_open_driver(&bdrv_test, "base", BDRV_O_RDWR, &error_abort);
1354 base_s = base->opaque;
1355 blk_insert_bs(blk, base, &error_abort);
1356
1357 overlay = bdrv_new_open_driver(&bdrv_test, "overlay", BDRV_O_RDWR,
1358 &error_abort);
1359 overlay_s = overlay->opaque;
1360
1361 do_drain_begin(BDRV_DRAIN, base);
1362 g_assert_cmpint(base->quiesce_counter, ==, 1);
1363 g_assert_cmpint(base_s->drain_count, ==, 1);
1364 g_assert_cmpint(base->in_flight, ==, 0);
1365
1366 bdrv_append(overlay, base, &error_abort);
1367
1368 g_assert_cmpint(base->in_flight, ==, 0);
1369 g_assert_cmpint(overlay->in_flight, ==, 0);
1370
1371 g_assert_cmpint(base->quiesce_counter, ==, 1);
1372 g_assert_cmpint(base_s->drain_count, ==, 1);
1373 g_assert_cmpint(overlay->quiesce_counter, ==, 1);
1374 g_assert_cmpint(overlay_s->drain_count, ==, 1);
1375
1376 do_drain_end(BDRV_DRAIN, base);
1377
1378 g_assert_cmpint(base->quiesce_counter, ==, 0);
1379 g_assert_cmpint(base_s->drain_count, ==, 0);
1380 g_assert_cmpint(overlay->quiesce_counter, ==, 0);
1381 g_assert_cmpint(overlay_s->drain_count, ==, 0);
1382
1383 bdrv_unref(overlay);
1384 bdrv_unref(base);
1385 blk_unref(blk);
1386 }
1387
test_set_aio_context(void)1388 static void test_set_aio_context(void)
1389 {
1390 BlockDriverState *bs;
1391 IOThread *a = iothread_new();
1392 IOThread *b = iothread_new();
1393 AioContext *ctx_a = iothread_get_aio_context(a);
1394 AioContext *ctx_b = iothread_get_aio_context(b);
1395
1396 bs = bdrv_new_open_driver(&bdrv_test, "test-node", BDRV_O_RDWR,
1397 &error_abort);
1398
1399 bdrv_drained_begin(bs);
1400 bdrv_try_change_aio_context(bs, ctx_a, NULL, &error_abort);
1401 bdrv_drained_end(bs);
1402
1403 bdrv_drained_begin(bs);
1404 bdrv_try_change_aio_context(bs, ctx_b, NULL, &error_abort);
1405 bdrv_try_change_aio_context(bs, qemu_get_aio_context(), NULL, &error_abort);
1406 bdrv_drained_end(bs);
1407
1408 bdrv_unref(bs);
1409 iothread_join(a);
1410 iothread_join(b);
1411 }
1412
1413
1414 typedef struct TestDropBackingBlockJob {
1415 BlockJob common;
1416 bool *did_complete;
1417 BlockDriverState *detach_also;
1418 BlockDriverState *bs;
1419
1420 /* Accessed with atomics */
1421 bool should_complete;
1422 } TestDropBackingBlockJob;
1423
test_drop_backing_job_run(Job * job,Error ** errp)1424 static int coroutine_fn test_drop_backing_job_run(Job *job, Error **errp)
1425 {
1426 TestDropBackingBlockJob *s =
1427 container_of(job, TestDropBackingBlockJob, common.job);
1428
1429 while (!qatomic_read(&s->should_complete)) {
1430 job_sleep_ns(job, 0);
1431 }
1432
1433 return 0;
1434 }
1435
test_drop_backing_job_commit(Job * job)1436 static void test_drop_backing_job_commit(Job *job)
1437 {
1438 TestDropBackingBlockJob *s =
1439 container_of(job, TestDropBackingBlockJob, common.job);
1440
1441 bdrv_set_backing_hd(s->bs, NULL, &error_abort);
1442 bdrv_set_backing_hd(s->detach_also, NULL, &error_abort);
1443
1444 *s->did_complete = true;
1445 }
1446
1447 static const BlockJobDriver test_drop_backing_job_driver = {
1448 .job_driver = {
1449 .instance_size = sizeof(TestDropBackingBlockJob),
1450 .free = block_job_free,
1451 .user_resume = block_job_user_resume,
1452 .run = test_drop_backing_job_run,
1453 .commit = test_drop_backing_job_commit,
1454 }
1455 };
1456
1457 /**
1458 * Creates a child node with three parent nodes on it, and then runs a
1459 * block job on the final one, parent-node-2.
1460 *
1461 * The job is then asked to complete before a section where the child
1462 * is drained.
1463 *
1464 * Ending this section will undrain the child's parents, first
1465 * parent-node-2, then parent-node-1, then parent-node-0 -- the parent
1466 * list is in reverse order of how they were added. Ending the drain
1467 * on parent-node-2 will resume the job, thus completing it and
1468 * scheduling job_exit().
1469 *
1470 * Ending the drain on parent-node-1 will poll the AioContext, which
1471 * lets job_exit() and thus test_drop_backing_job_commit() run. That
1472 * function first removes the child as parent-node-2's backing file.
1473 *
1474 * In old (and buggy) implementations, there are two problems with
1475 * that:
1476 * (A) bdrv_drain_invoke() polls for every node that leaves the
1477 * drained section. This means that job_exit() is scheduled
1478 * before the child has left the drained section. Its
1479 * quiesce_counter is therefore still 1 when it is removed from
1480 * parent-node-2.
1481 *
1482 * (B) bdrv_replace_child_noperm() calls drained_end() on the old
1483 * child's parents as many times as the child is quiesced. This
1484 * means it will call drained_end() on parent-node-2 once.
1485 * Because parent-node-2 is no longer quiesced at this point, this
1486 * will fail.
1487 *
1488 * bdrv_replace_child_noperm() therefore must call drained_end() on
1489 * the parent only if it really is still drained because the child is
1490 * drained.
1491 *
1492 * If removing child from parent-node-2 was successful (as it should
1493 * be), test_drop_backing_job_commit() will then also remove the child
1494 * from parent-node-0.
1495 *
1496 * With an old version of our drain infrastructure ((A) above), that
1497 * resulted in the following flow:
1498 *
1499 * 1. child attempts to leave its drained section. The call recurses
1500 * to its parents.
1501 *
1502 * 2. parent-node-2 leaves the drained section. Polling in
1503 * bdrv_drain_invoke() will schedule job_exit().
1504 *
1505 * 3. parent-node-1 leaves the drained section. Polling in
1506 * bdrv_drain_invoke() will run job_exit(), thus disconnecting
1507 * parent-node-0 from the child node.
1508 *
1509 * 4. bdrv_parent_drained_end() uses a QLIST_FOREACH_SAFE() loop to
1510 * iterate over the parents. Thus, it now accesses the BdrvChild
1511 * object that used to connect parent-node-0 and the child node.
1512 * However, that object no longer exists, so it accesses a dangling
1513 * pointer.
1514 *
1515 * The solution is to only poll once when running a bdrv_drained_end()
1516 * operation, specifically at the end when all drained_end()
1517 * operations for all involved nodes have been scheduled.
1518 * Note that this also solves (A) above, thus hiding (B).
1519 */
test_blockjob_commit_by_drained_end(void)1520 static void test_blockjob_commit_by_drained_end(void)
1521 {
1522 BlockDriverState *bs_child, *bs_parents[3];
1523 TestDropBackingBlockJob *job;
1524 bool job_has_completed = false;
1525 int i;
1526
1527 bs_child = bdrv_new_open_driver(&bdrv_test, "child-node", BDRV_O_RDWR,
1528 &error_abort);
1529
1530 for (i = 0; i < 3; i++) {
1531 char name[32];
1532 snprintf(name, sizeof(name), "parent-node-%i", i);
1533 bs_parents[i] = bdrv_new_open_driver(&bdrv_test, name, BDRV_O_RDWR,
1534 &error_abort);
1535 bdrv_set_backing_hd(bs_parents[i], bs_child, &error_abort);
1536 }
1537
1538 job = block_job_create("job", &test_drop_backing_job_driver, NULL,
1539 bs_parents[2], 0, BLK_PERM_ALL, 0, 0, NULL, NULL,
1540 &error_abort);
1541 job->bs = bs_parents[2];
1542
1543 job->detach_also = bs_parents[0];
1544 job->did_complete = &job_has_completed;
1545
1546 job_start(&job->common.job);
1547
1548 qatomic_set(&job->should_complete, true);
1549 bdrv_drained_begin(bs_child);
1550 g_assert(!job_has_completed);
1551 bdrv_drained_end(bs_child);
1552 aio_poll(qemu_get_aio_context(), false);
1553 g_assert(job_has_completed);
1554
1555 bdrv_unref(bs_parents[0]);
1556 bdrv_unref(bs_parents[1]);
1557 bdrv_unref(bs_parents[2]);
1558 bdrv_unref(bs_child);
1559 }
1560
1561
1562 typedef struct TestSimpleBlockJob {
1563 BlockJob common;
1564 bool *did_complete;
1565
1566 /* Accessed with atomics */
1567 bool should_complete;
1568 } TestSimpleBlockJob;
1569
test_simple_job_run(Job * job,Error ** errp)1570 static int coroutine_fn test_simple_job_run(Job *job, Error **errp)
1571 {
1572 TestSimpleBlockJob *s = container_of(job, TestSimpleBlockJob, common.job);
1573
1574 while (!qatomic_read(&s->should_complete)) {
1575 job_sleep_ns(job, 0);
1576 }
1577
1578 return 0;
1579 }
1580
test_simple_job_clean(Job * job)1581 static void test_simple_job_clean(Job *job)
1582 {
1583 TestSimpleBlockJob *s = container_of(job, TestSimpleBlockJob, common.job);
1584 *s->did_complete = true;
1585 }
1586
1587 static const BlockJobDriver test_simple_job_driver = {
1588 .job_driver = {
1589 .instance_size = sizeof(TestSimpleBlockJob),
1590 .free = block_job_free,
1591 .user_resume = block_job_user_resume,
1592 .run = test_simple_job_run,
1593 .clean = test_simple_job_clean,
1594 },
1595 };
1596
drop_intermediate_poll_update_filename(BdrvChild * child,BlockDriverState * new_base,const char * filename,bool backing_mask_protocol,Error ** errp)1597 static int drop_intermediate_poll_update_filename(BdrvChild *child,
1598 BlockDriverState *new_base,
1599 const char *filename,
1600 bool backing_mask_protocol,
1601 Error **errp)
1602 {
1603 /*
1604 * We are free to poll here, which may change the block graph, if
1605 * it is not drained.
1606 */
1607
1608 /* If the job is not drained: Complete it, schedule job_exit() */
1609 aio_poll(qemu_get_current_aio_context(), false);
1610 /* If the job is not drained: Run job_exit(), finish the job */
1611 aio_poll(qemu_get_current_aio_context(), false);
1612
1613 return 0;
1614 }
1615
1616 /**
1617 * Test a poll in the midst of bdrv_drop_intermediate().
1618 *
1619 * bdrv_drop_intermediate() calls BdrvChildClass.update_filename(),
1620 * which can yield or poll. This may lead to graph changes, unless
1621 * the whole subtree in question is drained.
1622 *
1623 * We test this on the following graph:
1624 *
1625 * Job
1626 *
1627 * |
1628 * job-node
1629 * |
1630 * v
1631 *
1632 * job-node
1633 *
1634 * |
1635 * backing
1636 * |
1637 * v
1638 *
1639 * node-2 --chain--> node-1 --chain--> node-0
1640 *
1641 * We drop node-1 with bdrv_drop_intermediate(top=node-1, base=node-0).
1642 *
1643 * This first updates node-2's backing filename by invoking
1644 * drop_intermediate_poll_update_filename(), which polls twice. This
1645 * causes the job to finish, which in turns causes the job-node to be
1646 * deleted.
1647 *
1648 * bdrv_drop_intermediate() uses a QLIST_FOREACH_SAFE() loop, so it
1649 * already has a pointer to the BdrvChild edge between job-node and
1650 * node-1. When it tries to handle that edge, we probably get a
1651 * segmentation fault because the object no longer exists.
1652 *
1653 *
1654 * The solution is for bdrv_drop_intermediate() to drain top's
1655 * subtree. This prevents graph changes from happening just because
1656 * BdrvChildClass.update_filename() yields or polls. Thus, the block
1657 * job is paused during that drained section and must finish before or
1658 * after.
1659 *
1660 * (In addition, bdrv_replace_child() must keep the job paused.)
1661 */
test_drop_intermediate_poll(void)1662 static void test_drop_intermediate_poll(void)
1663 {
1664 static BdrvChildClass chain_child_class;
1665 BlockDriverState *chain[3];
1666 TestSimpleBlockJob *job;
1667 BlockDriverState *job_node;
1668 bool job_has_completed = false;
1669 int i;
1670 int ret;
1671
1672 chain_child_class = child_of_bds;
1673 chain_child_class.update_filename = drop_intermediate_poll_update_filename;
1674
1675 for (i = 0; i < 3; i++) {
1676 char name[32];
1677 snprintf(name, 32, "node-%i", i);
1678
1679 chain[i] = bdrv_new_open_driver(&bdrv_test, name, 0, &error_abort);
1680 }
1681
1682 job_node = bdrv_new_open_driver(&bdrv_test, "job-node", BDRV_O_RDWR,
1683 &error_abort);
1684 bdrv_set_backing_hd(job_node, chain[1], &error_abort);
1685
1686 /*
1687 * Establish the chain last, so the chain links are the first
1688 * elements in the BDS.parents lists
1689 */
1690 bdrv_graph_wrlock();
1691 for (i = 0; i < 3; i++) {
1692 if (i) {
1693 /* Takes the reference to chain[i - 1] */
1694 bdrv_attach_child(chain[i], chain[i - 1], "chain",
1695 &chain_child_class, BDRV_CHILD_COW, &error_abort);
1696 }
1697 }
1698 bdrv_graph_wrunlock();
1699
1700 job = block_job_create("job", &test_simple_job_driver, NULL, job_node,
1701 0, BLK_PERM_ALL, 0, 0, NULL, NULL, &error_abort);
1702
1703 /* The job has a reference now */
1704 bdrv_unref(job_node);
1705
1706 job->did_complete = &job_has_completed;
1707
1708 job_start(&job->common.job);
1709 qatomic_set(&job->should_complete, true);
1710
1711 g_assert(!job_has_completed);
1712 ret = bdrv_drop_intermediate(chain[1], chain[0], NULL, false);
1713 aio_poll(qemu_get_aio_context(), false);
1714 g_assert(ret == 0);
1715 g_assert(job_has_completed);
1716
1717 bdrv_unref(chain[2]);
1718 }
1719
1720
1721 typedef struct BDRVReplaceTestState {
1722 bool setup_completed;
1723 bool was_drained;
1724 bool was_undrained;
1725 bool has_read;
1726
1727 int drain_count;
1728
1729 bool yield_before_read;
1730 Coroutine *io_co;
1731 Coroutine *drain_co;
1732 } BDRVReplaceTestState;
1733
bdrv_replace_test_close(BlockDriverState * bs)1734 static void bdrv_replace_test_close(BlockDriverState *bs)
1735 {
1736 }
1737
1738 /**
1739 * If @bs has a backing file:
1740 * Yield if .yield_before_read is true (and wait for drain_begin to
1741 * wake us up).
1742 * Forward the read to bs->backing. Set .has_read to true.
1743 * If drain_begin has woken us, wake it in turn.
1744 *
1745 * Otherwise:
1746 * Set .has_read to true and return success.
1747 */
1748 static int coroutine_fn GRAPH_RDLOCK
bdrv_replace_test_co_preadv(BlockDriverState * bs,int64_t offset,int64_t bytes,QEMUIOVector * qiov,BdrvRequestFlags flags)1749 bdrv_replace_test_co_preadv(BlockDriverState *bs, int64_t offset, int64_t bytes,
1750 QEMUIOVector *qiov, BdrvRequestFlags flags)
1751 {
1752 BDRVReplaceTestState *s = bs->opaque;
1753
1754 if (bs->backing) {
1755 int ret;
1756
1757 g_assert(!s->drain_count);
1758
1759 s->io_co = qemu_coroutine_self();
1760 if (s->yield_before_read) {
1761 s->yield_before_read = false;
1762 qemu_coroutine_yield();
1763 }
1764 s->io_co = NULL;
1765
1766 ret = bdrv_co_preadv(bs->backing, offset, bytes, qiov, 0);
1767 s->has_read = true;
1768
1769 /* Wake up drain_co if it runs */
1770 if (s->drain_co) {
1771 aio_co_wake(s->drain_co);
1772 }
1773
1774 return ret;
1775 }
1776
1777 s->has_read = true;
1778 return 0;
1779 }
1780
bdrv_replace_test_drain_co(void * opaque)1781 static void coroutine_fn bdrv_replace_test_drain_co(void *opaque)
1782 {
1783 BlockDriverState *bs = opaque;
1784 BDRVReplaceTestState *s = bs->opaque;
1785
1786 /* Keep waking io_co up until it is done */
1787 while (s->io_co) {
1788 aio_co_wake(s->io_co);
1789 s->io_co = NULL;
1790 qemu_coroutine_yield();
1791 }
1792 s->drain_co = NULL;
1793 bdrv_dec_in_flight(bs);
1794 }
1795
1796 /**
1797 * If .drain_count is 0, wake up .io_co if there is one; and set
1798 * .was_drained.
1799 * Increment .drain_count.
1800 */
bdrv_replace_test_drain_begin(BlockDriverState * bs)1801 static void bdrv_replace_test_drain_begin(BlockDriverState *bs)
1802 {
1803 BDRVReplaceTestState *s = bs->opaque;
1804
1805 if (!s->setup_completed) {
1806 return;
1807 }
1808
1809 if (!s->drain_count) {
1810 s->drain_co = qemu_coroutine_create(bdrv_replace_test_drain_co, bs);
1811 bdrv_inc_in_flight(bs);
1812 aio_co_enter(bdrv_get_aio_context(bs), s->drain_co);
1813 s->was_drained = true;
1814 }
1815 s->drain_count++;
1816 }
1817
bdrv_replace_test_read_entry(void * opaque)1818 static void coroutine_fn bdrv_replace_test_read_entry(void *opaque)
1819 {
1820 BlockDriverState *bs = opaque;
1821 char data;
1822 QEMUIOVector qiov = QEMU_IOVEC_INIT_BUF(qiov, &data, 1);
1823 int ret;
1824
1825 /* Queue a read request post-drain */
1826 bdrv_graph_co_rdlock();
1827 ret = bdrv_replace_test_co_preadv(bs, 0, 1, &qiov, 0);
1828 bdrv_graph_co_rdunlock();
1829
1830 g_assert(ret >= 0);
1831 bdrv_dec_in_flight(bs);
1832 }
1833
1834 /**
1835 * Reduce .drain_count, set .was_undrained once it reaches 0.
1836 * If .drain_count reaches 0 and the node has a backing file, issue a
1837 * read request.
1838 */
bdrv_replace_test_drain_end(BlockDriverState * bs)1839 static void bdrv_replace_test_drain_end(BlockDriverState *bs)
1840 {
1841 BDRVReplaceTestState *s = bs->opaque;
1842
1843 GRAPH_RDLOCK_GUARD_MAINLOOP();
1844
1845 if (!s->setup_completed) {
1846 return;
1847 }
1848
1849 g_assert(s->drain_count > 0);
1850 if (!--s->drain_count) {
1851 s->was_undrained = true;
1852
1853 if (bs->backing) {
1854 Coroutine *co = qemu_coroutine_create(bdrv_replace_test_read_entry,
1855 bs);
1856 bdrv_inc_in_flight(bs);
1857 aio_co_enter(bdrv_get_aio_context(bs), co);
1858 }
1859 }
1860 }
1861
1862 static BlockDriver bdrv_replace_test = {
1863 .format_name = "replace_test",
1864 .instance_size = sizeof(BDRVReplaceTestState),
1865 .supports_backing = true,
1866
1867 .bdrv_close = bdrv_replace_test_close,
1868 .bdrv_co_preadv = bdrv_replace_test_co_preadv,
1869
1870 .bdrv_drain_begin = bdrv_replace_test_drain_begin,
1871 .bdrv_drain_end = bdrv_replace_test_drain_end,
1872
1873 .bdrv_child_perm = bdrv_default_perms,
1874 };
1875
test_replace_child_mid_drain_read_co(void * opaque)1876 static void coroutine_fn test_replace_child_mid_drain_read_co(void *opaque)
1877 {
1878 int ret;
1879 char data;
1880
1881 ret = blk_co_pread(opaque, 0, 1, &data, 0);
1882 g_assert(ret >= 0);
1883 }
1884
1885 /**
1886 * We test two things:
1887 * (1) bdrv_replace_child_noperm() must not undrain the parent if both
1888 * children are drained.
1889 * (2) bdrv_replace_child_noperm() must never flush I/O requests to a
1890 * drained child. If the old child is drained, it must flush I/O
1891 * requests after the new one has been attached. If the new child
1892 * is drained, it must flush I/O requests before the old one is
1893 * detached.
1894 *
1895 * To do so, we create one parent node and two child nodes; then
1896 * attach one of the children (old_child_bs) to the parent, then
1897 * drain both old_child_bs and new_child_bs according to
1898 * old_drain_count and new_drain_count, respectively, and finally
1899 * we invoke bdrv_replace_node() to replace old_child_bs by
1900 * new_child_bs.
1901 *
1902 * The test block driver we use here (bdrv_replace_test) has a read
1903 * function that:
1904 * - For the parent node, can optionally yield, and then forwards the
1905 * read to bdrv_preadv(),
1906 * - For the child node, just returns immediately.
1907 *
1908 * If the read yields, the drain_begin function will wake it up.
1909 *
1910 * The drain_end function issues a read on the parent once it is fully
1911 * undrained (which simulates requests starting to come in again).
1912 */
do_test_replace_child_mid_drain(int old_drain_count,int new_drain_count)1913 static void do_test_replace_child_mid_drain(int old_drain_count,
1914 int new_drain_count)
1915 {
1916 BlockBackend *parent_blk;
1917 BlockDriverState *parent_bs;
1918 BlockDriverState *old_child_bs, *new_child_bs;
1919 BDRVReplaceTestState *parent_s;
1920 BDRVReplaceTestState *old_child_s, *new_child_s;
1921 Coroutine *io_co;
1922 int i;
1923
1924 parent_bs = bdrv_new_open_driver(&bdrv_replace_test, "parent", 0,
1925 &error_abort);
1926 parent_s = parent_bs->opaque;
1927
1928 parent_blk = blk_new(qemu_get_aio_context(),
1929 BLK_PERM_CONSISTENT_READ, BLK_PERM_ALL);
1930 blk_insert_bs(parent_blk, parent_bs, &error_abort);
1931
1932 old_child_bs = bdrv_new_open_driver(&bdrv_replace_test, "old-child", 0,
1933 &error_abort);
1934 new_child_bs = bdrv_new_open_driver(&bdrv_replace_test, "new-child", 0,
1935 &error_abort);
1936 old_child_s = old_child_bs->opaque;
1937 new_child_s = new_child_bs->opaque;
1938
1939 /* So that we can read something */
1940 parent_bs->total_sectors = 1;
1941 old_child_bs->total_sectors = 1;
1942 new_child_bs->total_sectors = 1;
1943
1944 bdrv_ref(old_child_bs);
1945 bdrv_graph_wrlock();
1946 bdrv_attach_child(parent_bs, old_child_bs, "child", &child_of_bds,
1947 BDRV_CHILD_COW, &error_abort);
1948 bdrv_graph_wrunlock();
1949 parent_s->setup_completed = true;
1950
1951 for (i = 0; i < old_drain_count; i++) {
1952 bdrv_drained_begin(old_child_bs);
1953 }
1954 for (i = 0; i < new_drain_count; i++) {
1955 bdrv_drained_begin(new_child_bs);
1956 }
1957
1958 if (!old_drain_count) {
1959 /*
1960 * Start a read operation that will yield, so it will not
1961 * complete before the node is drained.
1962 */
1963 parent_s->yield_before_read = true;
1964 io_co = qemu_coroutine_create(test_replace_child_mid_drain_read_co,
1965 parent_blk);
1966 qemu_coroutine_enter(io_co);
1967 }
1968
1969 /* If we have started a read operation, it should have yielded */
1970 g_assert(!parent_s->has_read);
1971
1972 /* Reset drained status so we can see what bdrv_replace_node() does */
1973 parent_s->was_drained = false;
1974 parent_s->was_undrained = false;
1975
1976 g_assert(parent_bs->quiesce_counter == old_drain_count);
1977 bdrv_drained_begin(old_child_bs);
1978 bdrv_drained_begin(new_child_bs);
1979 bdrv_graph_wrlock();
1980 bdrv_replace_node(old_child_bs, new_child_bs, &error_abort);
1981 bdrv_graph_wrunlock();
1982 bdrv_drained_end(new_child_bs);
1983 bdrv_drained_end(old_child_bs);
1984 g_assert(parent_bs->quiesce_counter == new_drain_count);
1985
1986 if (!old_drain_count && !new_drain_count) {
1987 /*
1988 * From undrained to undrained drains and undrains the parent,
1989 * because bdrv_replace_node() contains a drained section for
1990 * @old_child_bs.
1991 */
1992 g_assert(parent_s->was_drained && parent_s->was_undrained);
1993 } else if (!old_drain_count && new_drain_count) {
1994 /*
1995 * From undrained to drained should drain the parent and keep
1996 * it that way.
1997 */
1998 g_assert(parent_s->was_drained && !parent_s->was_undrained);
1999 } else if (old_drain_count && !new_drain_count) {
2000 /*
2001 * From drained to undrained should undrain the parent and
2002 * keep it that way.
2003 */
2004 g_assert(!parent_s->was_drained && parent_s->was_undrained);
2005 } else /* if (old_drain_count && new_drain_count) */ {
2006 /*
2007 * From drained to drained must not undrain the parent at any
2008 * point
2009 */
2010 g_assert(!parent_s->was_drained && !parent_s->was_undrained);
2011 }
2012
2013 if (!old_drain_count || !new_drain_count) {
2014 /*
2015 * If !old_drain_count, we have started a read request before
2016 * bdrv_replace_node(). If !new_drain_count, the parent must
2017 * have been undrained at some point, and
2018 * bdrv_replace_test_co_drain_end() starts a read request
2019 * then.
2020 */
2021 g_assert(parent_s->has_read);
2022 } else {
2023 /*
2024 * If the parent was never undrained, there is no way to start
2025 * a read request.
2026 */
2027 g_assert(!parent_s->has_read);
2028 }
2029
2030 /* A drained child must have not received any request */
2031 g_assert(!(old_drain_count && old_child_s->has_read));
2032 g_assert(!(new_drain_count && new_child_s->has_read));
2033
2034 for (i = 0; i < new_drain_count; i++) {
2035 bdrv_drained_end(new_child_bs);
2036 }
2037 for (i = 0; i < old_drain_count; i++) {
2038 bdrv_drained_end(old_child_bs);
2039 }
2040
2041 /*
2042 * By now, bdrv_replace_test_co_drain_end() must have been called
2043 * at some point while the new child was attached to the parent.
2044 */
2045 g_assert(parent_s->has_read);
2046 g_assert(new_child_s->has_read);
2047
2048 blk_unref(parent_blk);
2049 bdrv_unref(parent_bs);
2050 bdrv_unref(old_child_bs);
2051 bdrv_unref(new_child_bs);
2052 }
2053
test_replace_child_mid_drain(void)2054 static void test_replace_child_mid_drain(void)
2055 {
2056 int old_drain_count, new_drain_count;
2057
2058 for (old_drain_count = 0; old_drain_count < 2; old_drain_count++) {
2059 for (new_drain_count = 0; new_drain_count < 2; new_drain_count++) {
2060 do_test_replace_child_mid_drain(old_drain_count, new_drain_count);
2061 }
2062 }
2063 }
2064
main(int argc,char ** argv)2065 int main(int argc, char **argv)
2066 {
2067 int ret;
2068
2069 bdrv_init();
2070 qemu_init_main_loop(&error_abort);
2071
2072 g_test_init(&argc, &argv, NULL);
2073 qemu_event_init(&done_event, false);
2074
2075 g_test_add_func("/bdrv-drain/driver-cb/drain_all", test_drv_cb_drain_all);
2076 g_test_add_func("/bdrv-drain/driver-cb/drain", test_drv_cb_drain);
2077
2078 g_test_add_func("/bdrv-drain/driver-cb/co/drain_all",
2079 test_drv_cb_co_drain_all);
2080 g_test_add_func("/bdrv-drain/driver-cb/co/drain", test_drv_cb_co_drain);
2081
2082 g_test_add_func("/bdrv-drain/quiesce/drain_all", test_quiesce_drain_all);
2083 g_test_add_func("/bdrv-drain/quiesce/drain", test_quiesce_drain);
2084
2085 g_test_add_func("/bdrv-drain/quiesce/co/drain_all",
2086 test_quiesce_co_drain_all);
2087 g_test_add_func("/bdrv-drain/quiesce/co/drain", test_quiesce_co_drain);
2088
2089 g_test_add_func("/bdrv-drain/nested", test_nested);
2090
2091 g_test_add_func("/bdrv-drain/graph-change/drain_all",
2092 test_graph_change_drain_all);
2093
2094 g_test_add_func("/bdrv-drain/iothread/drain_all", test_iothread_drain_all);
2095 g_test_add_func("/bdrv-drain/iothread/drain", test_iothread_drain);
2096
2097 g_test_add_func("/bdrv-drain/blockjob/drain_all", test_blockjob_drain_all);
2098 g_test_add_func("/bdrv-drain/blockjob/drain", test_blockjob_drain);
2099
2100 g_test_add_func("/bdrv-drain/blockjob/error/drain_all",
2101 test_blockjob_error_drain_all);
2102 g_test_add_func("/bdrv-drain/blockjob/error/drain",
2103 test_blockjob_error_drain);
2104
2105 g_test_add_func("/bdrv-drain/blockjob/iothread/drain_all",
2106 test_blockjob_iothread_drain_all);
2107 g_test_add_func("/bdrv-drain/blockjob/iothread/drain",
2108 test_blockjob_iothread_drain);
2109
2110 g_test_add_func("/bdrv-drain/blockjob/iothread/error/drain_all",
2111 test_blockjob_iothread_error_drain_all);
2112 g_test_add_func("/bdrv-drain/blockjob/iothread/error/drain",
2113 test_blockjob_iothread_error_drain);
2114
2115 g_test_add_func("/bdrv-drain/deletion/drain", test_delete_by_drain);
2116 g_test_add_func("/bdrv-drain/detach/drain_all", test_detach_by_drain_all);
2117 g_test_add_func("/bdrv-drain/detach/drain", test_detach_by_drain);
2118 g_test_add_func("/bdrv-drain/detach/parent_cb", test_detach_by_parent_cb);
2119 g_test_add_func("/bdrv-drain/detach/driver_cb", test_detach_by_driver_cb);
2120
2121 g_test_add_func("/bdrv-drain/attach/drain", test_append_to_drained);
2122
2123 g_test_add_func("/bdrv-drain/set_aio_context", test_set_aio_context);
2124
2125 g_test_add_func("/bdrv-drain/blockjob/commit_by_drained_end",
2126 test_blockjob_commit_by_drained_end);
2127
2128 g_test_add_func("/bdrv-drain/bdrv_drop_intermediate/poll",
2129 test_drop_intermediate_poll);
2130
2131 g_test_add_func("/bdrv-drain/replace_child/mid-drain",
2132 test_replace_child_mid_drain);
2133
2134 ret = g_test_run();
2135 qemu_event_destroy(&done_event);
2136 return ret;
2137 }
2138