1 /*
2  * CDDL HEADER START
3  *
4  * The contents of this file are subject to the terms of the
5  * Common Development and Distribution License (the "License").
6  * You may not use this file except in compliance with the License.
7  *
8  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9  * or http://www.opensolaris.org/os/licensing.
10  * See the License for the specific language governing permissions
11  * and limitations under the License.
12  *
13  * When distributing Covered Code, include this CDDL HEADER in each
14  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15  * If applicable, add the following below this CDDL HEADER, with the
16  * fields enclosed by brackets "[]" replaced with your own identifying
17  * information: Portions Copyright [yyyy] [name of copyright owner]
18  *
19  * CDDL HEADER END
20  */
21 /*
22  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
23  * Copyright (c) 2011, 2018 by Delphix. All rights reserved.
24  * Copyright (c) 2011 Nexenta Systems, Inc. All rights reserved.
25  * Copyright (c) 2014 Integros [integros.com]
26  */
27 
28 #include <sys/sysmacros.h>
29 #include <sys/zfs_context.h>
30 #include <sys/fm/fs/zfs.h>
31 #include <sys/spa.h>
32 #include <sys/txg.h>
33 #include <sys/spa_impl.h>
34 #include <sys/vdev_impl.h>
35 #include <sys/zio_impl.h>
36 #include <sys/zio_compress.h>
37 #include <sys/zio_checksum.h>
38 #include <sys/dmu_objset.h>
39 #include <sys/arc.h>
40 #include <sys/ddt.h>
41 #include <sys/trim_map.h>
42 #include <sys/blkptr.h>
43 #include <sys/zfeature.h>
44 #include <sys/dsl_scan.h>
45 #include <sys/metaslab_impl.h>
46 #include <sys/abd.h>
47 #include <sys/cityhash.h>
48 
49 SYSCTL_DECL(_vfs_zfs);
50 SYSCTL_NODE(_vfs_zfs, OID_AUTO, zio, CTLFLAG_RW, 0, "ZFS ZIO");
51 #if defined(__amd64__)
52 static int zio_use_uma = 1;
53 #else
54 static int zio_use_uma = 0;
55 #endif
56 SYSCTL_INT(_vfs_zfs_zio, OID_AUTO, use_uma, CTLFLAG_RDTUN, &zio_use_uma, 0,
57     "Use uma(9) for ZIO allocations");
58 static int zio_exclude_metadata = 0;
59 SYSCTL_INT(_vfs_zfs_zio, OID_AUTO, exclude_metadata, CTLFLAG_RDTUN, &zio_exclude_metadata, 0,
60     "Exclude metadata buffers from dumps as well");
61 
62 zio_trim_stats_t zio_trim_stats = {
63 	{ "bytes",		KSTAT_DATA_UINT64,
64 	  "Number of bytes successfully TRIMmed" },
65 	{ "success",		KSTAT_DATA_UINT64,
66 	  "Number of successful TRIM requests" },
67 	{ "unsupported",	KSTAT_DATA_UINT64,
68 	  "Number of TRIM requests that failed because TRIM is not supported" },
69 	{ "failed",		KSTAT_DATA_UINT64,
70 	  "Number of TRIM requests that failed for reasons other than not supported" },
71 };
72 
73 static kstat_t *zio_trim_ksp;
74 
75 /*
76  * ==========================================================================
77  * I/O type descriptions
78  * ==========================================================================
79  */
80 const char *zio_type_name[ZIO_TYPES] = {
81 	"zio_null", "zio_read", "zio_write", "zio_free", "zio_claim",
82 	"zio_ioctl"
83 };
84 
85 boolean_t zio_dva_throttle_enabled = B_TRUE;
86 SYSCTL_INT(_vfs_zfs_zio, OID_AUTO, dva_throttle_enabled, CTLFLAG_RWTUN,
87     &zio_dva_throttle_enabled, 0, "Enable allocation throttling");
88 
89 /*
90  * ==========================================================================
91  * I/O kmem caches
92  * ==========================================================================
93  */
94 kmem_cache_t *zio_cache;
95 kmem_cache_t *zio_link_cache;
96 kmem_cache_t *zio_buf_cache[SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT];
97 kmem_cache_t *zio_data_buf_cache[SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT];
98 
99 #ifdef _KERNEL
100 extern vmem_t *zio_alloc_arena;
101 #endif
102 
103 #define	BP_SPANB(indblkshift, level) \
104 	(((uint64_t)1) << ((level) * ((indblkshift) - SPA_BLKPTRSHIFT)))
105 #define	COMPARE_META_LEVEL	0x80000000ul
106 /*
107  * The following actions directly effect the spa's sync-to-convergence logic.
108  * The values below define the sync pass when we start performing the action.
109  * Care should be taken when changing these values as they directly impact
110  * spa_sync() performance. Tuning these values may introduce subtle performance
111  * pathologies and should only be done in the context of performance analysis.
112  * These tunables will eventually be removed and replaced with #defines once
113  * enough analysis has been done to determine optimal values.
114  *
115  * The 'zfs_sync_pass_deferred_free' pass must be greater than 1 to ensure that
116  * regular blocks are not deferred.
117  */
118 int zfs_sync_pass_deferred_free = 2; /* defer frees starting in this pass */
119 SYSCTL_INT(_vfs_zfs, OID_AUTO, sync_pass_deferred_free, CTLFLAG_RDTUN,
120     &zfs_sync_pass_deferred_free, 0, "defer frees starting in this pass");
121 int zfs_sync_pass_dont_compress = 5; /* don't compress starting in this pass */
122 SYSCTL_INT(_vfs_zfs, OID_AUTO, sync_pass_dont_compress, CTLFLAG_RDTUN,
123     &zfs_sync_pass_dont_compress, 0, "don't compress starting in this pass");
124 int zfs_sync_pass_rewrite = 2; /* rewrite new bps starting in this pass */
125 SYSCTL_INT(_vfs_zfs, OID_AUTO, sync_pass_rewrite, CTLFLAG_RDTUN,
126     &zfs_sync_pass_rewrite, 0, "rewrite new bps starting in this pass");
127 
128 /*
129  * An allocating zio is one that either currently has the DVA allocate
130  * stage set or will have it later in its lifetime.
131  */
132 #define	IO_IS_ALLOCATING(zio) ((zio)->io_orig_pipeline & ZIO_STAGE_DVA_ALLOCATE)
133 
134 boolean_t	zio_requeue_io_start_cut_in_line = B_TRUE;
135 
136 #ifdef illumos
137 #ifdef ZFS_DEBUG
138 int zio_buf_debug_limit = 16384;
139 #else
140 int zio_buf_debug_limit = 0;
141 #endif
142 #endif
143 
144 static void zio_taskq_dispatch(zio_t *, zio_taskq_type_t, boolean_t);
145 
146 void
zio_init(void)147 zio_init(void)
148 {
149 	size_t c;
150 	zio_cache = kmem_cache_create("zio_cache",
151 	    sizeof (zio_t), 0, NULL, NULL, NULL, NULL, NULL, 0);
152 	zio_link_cache = kmem_cache_create("zio_link_cache",
153 	    sizeof (zio_link_t), 0, NULL, NULL, NULL, NULL, NULL, 0);
154 	if (!zio_use_uma)
155 		goto out;
156 
157 	/*
158 	 * For small buffers, we want a cache for each multiple of
159 	 * SPA_MINBLOCKSIZE.  For larger buffers, we want a cache
160 	 * for each quarter-power of 2.
161 	 */
162 	for (c = 0; c < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT; c++) {
163 		size_t size = (c + 1) << SPA_MINBLOCKSHIFT;
164 		size_t p2 = size;
165 		size_t align = 0;
166 		int cflags = zio_exclude_metadata ? KMC_NODEBUG : 0;
167 
168 		while (!ISP2(p2))
169 			p2 &= p2 - 1;
170 
171 #ifdef illumos
172 #ifndef _KERNEL
173 		/*
174 		 * If we are using watchpoints, put each buffer on its own page,
175 		 * to eliminate the performance overhead of trapping to the
176 		 * kernel when modifying a non-watched buffer that shares the
177 		 * page with a watched buffer.
178 		 */
179 		if (arc_watch && !IS_P2ALIGNED(size, PAGESIZE))
180 			continue;
181 #endif
182 #endif /* illumos */
183 		if (size <= 4 * SPA_MINBLOCKSIZE) {
184 			align = SPA_MINBLOCKSIZE;
185 		} else if (IS_P2ALIGNED(size, p2 >> 2)) {
186 			align = MIN(p2 >> 2, PAGESIZE);
187 		}
188 
189 		if (align != 0) {
190 			char name[36];
191 			(void) sprintf(name, "zio_buf_%lu", (ulong_t)size);
192 			zio_buf_cache[c] = kmem_cache_create(name, size,
193 			    align, NULL, NULL, NULL, NULL, NULL, cflags);
194 
195 			/*
196 			 * Since zio_data bufs do not appear in crash dumps, we
197 			 * pass KMC_NOTOUCH so that no allocator metadata is
198 			 * stored with the buffers.
199 			 */
200 			(void) sprintf(name, "zio_data_buf_%lu", (ulong_t)size);
201 			zio_data_buf_cache[c] = kmem_cache_create(name, size,
202 			    align, NULL, NULL, NULL, NULL, NULL,
203 			    cflags | KMC_NOTOUCH | KMC_NODEBUG);
204 		}
205 	}
206 
207 	while (--c != 0) {
208 		ASSERT(zio_buf_cache[c] != NULL);
209 		if (zio_buf_cache[c - 1] == NULL)
210 			zio_buf_cache[c - 1] = zio_buf_cache[c];
211 
212 		ASSERT(zio_data_buf_cache[c] != NULL);
213 		if (zio_data_buf_cache[c - 1] == NULL)
214 			zio_data_buf_cache[c - 1] = zio_data_buf_cache[c];
215 	}
216 out:
217 
218 	zio_inject_init();
219 
220 	zio_trim_ksp = kstat_create("zfs", 0, "zio_trim", "misc",
221 	    KSTAT_TYPE_NAMED,
222 	    sizeof(zio_trim_stats) / sizeof(kstat_named_t),
223 	    KSTAT_FLAG_VIRTUAL);
224 
225 	if (zio_trim_ksp != NULL) {
226 		zio_trim_ksp->ks_data = &zio_trim_stats;
227 		kstat_install(zio_trim_ksp);
228 	}
229 }
230 
231 void
zio_fini(void)232 zio_fini(void)
233 {
234 	size_t c;
235 	kmem_cache_t *last_cache = NULL;
236 	kmem_cache_t *last_data_cache = NULL;
237 
238 	for (c = 0; c < SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT; c++) {
239 		if (zio_buf_cache[c] != last_cache) {
240 			last_cache = zio_buf_cache[c];
241 			kmem_cache_destroy(zio_buf_cache[c]);
242 		}
243 		zio_buf_cache[c] = NULL;
244 
245 		if (zio_data_buf_cache[c] != last_data_cache) {
246 			last_data_cache = zio_data_buf_cache[c];
247 			kmem_cache_destroy(zio_data_buf_cache[c]);
248 		}
249 		zio_data_buf_cache[c] = NULL;
250 	}
251 
252 	kmem_cache_destroy(zio_link_cache);
253 	kmem_cache_destroy(zio_cache);
254 
255 	zio_inject_fini();
256 
257 	if (zio_trim_ksp != NULL) {
258 		kstat_delete(zio_trim_ksp);
259 		zio_trim_ksp = NULL;
260 	}
261 }
262 
263 /*
264  * ==========================================================================
265  * Allocate and free I/O buffers
266  * ==========================================================================
267  */
268 
269 /*
270  * Use zio_buf_alloc to allocate ZFS metadata.  This data will appear in a
271  * crashdump if the kernel panics, so use it judiciously.  Obviously, it's
272  * useful to inspect ZFS metadata, but if possible, we should avoid keeping
273  * excess / transient data in-core during a crashdump.
274  */
275 void *
zio_buf_alloc(size_t size)276 zio_buf_alloc(size_t size)
277 {
278 	size_t c = (size - 1) >> SPA_MINBLOCKSHIFT;
279 	int flags = zio_exclude_metadata ? KM_NODEBUG : 0;
280 
281 	VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT);
282 
283 	if (zio_use_uma)
284 		return (kmem_cache_alloc(zio_buf_cache[c], KM_PUSHPAGE));
285 	else
286 		return (kmem_alloc(size, KM_SLEEP|flags));
287 }
288 
289 /*
290  * Use zio_data_buf_alloc to allocate data.  The data will not appear in a
291  * crashdump if the kernel panics.  This exists so that we will limit the amount
292  * of ZFS data that shows up in a kernel crashdump.  (Thus reducing the amount
293  * of kernel heap dumped to disk when the kernel panics)
294  */
295 void *
zio_data_buf_alloc(size_t size)296 zio_data_buf_alloc(size_t size)
297 {
298 	size_t c = (size - 1) >> SPA_MINBLOCKSHIFT;
299 
300 	VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT);
301 
302 	if (zio_use_uma)
303 		return (kmem_cache_alloc(zio_data_buf_cache[c], KM_PUSHPAGE));
304 	else
305 		return (kmem_alloc(size, KM_SLEEP | KM_NODEBUG));
306 }
307 
308 void
zio_buf_free(void * buf,size_t size)309 zio_buf_free(void *buf, size_t size)
310 {
311 	size_t c = (size - 1) >> SPA_MINBLOCKSHIFT;
312 
313 	VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT);
314 
315 	if (zio_use_uma)
316 		kmem_cache_free(zio_buf_cache[c], buf);
317 	else
318 		kmem_free(buf, size);
319 }
320 
321 void
zio_data_buf_free(void * buf,size_t size)322 zio_data_buf_free(void *buf, size_t size)
323 {
324 	size_t c = (size - 1) >> SPA_MINBLOCKSHIFT;
325 
326 	VERIFY3U(c, <, SPA_MAXBLOCKSIZE >> SPA_MINBLOCKSHIFT);
327 
328 	if (zio_use_uma)
329 		kmem_cache_free(zio_data_buf_cache[c], buf);
330 	else
331 		kmem_free(buf, size);
332 }
333 
334 /*
335  * ==========================================================================
336  * Push and pop I/O transform buffers
337  * ==========================================================================
338  */
339 void
zio_push_transform(zio_t * zio,abd_t * data,uint64_t size,uint64_t bufsize,zio_transform_func_t * transform)340 zio_push_transform(zio_t *zio, abd_t *data, uint64_t size, uint64_t bufsize,
341     zio_transform_func_t *transform)
342 {
343 	zio_transform_t *zt = kmem_alloc(sizeof (zio_transform_t), KM_SLEEP);
344 
345 	/*
346 	 * Ensure that anyone expecting this zio to contain a linear ABD isn't
347 	 * going to get a nasty surprise when they try to access the data.
348 	 */
349 #ifdef illumos
350 	IMPLY(abd_is_linear(zio->io_abd), abd_is_linear(data));
351 #else
352 	IMPLY(zio->io_abd != NULL && abd_is_linear(zio->io_abd),
353 	    abd_is_linear(data));
354 #endif
355 
356 	zt->zt_orig_abd = zio->io_abd;
357 	zt->zt_orig_size = zio->io_size;
358 	zt->zt_bufsize = bufsize;
359 	zt->zt_transform = transform;
360 
361 	zt->zt_next = zio->io_transform_stack;
362 	zio->io_transform_stack = zt;
363 
364 	zio->io_abd = data;
365 	zio->io_size = size;
366 }
367 
368 void
zio_pop_transforms(zio_t * zio)369 zio_pop_transforms(zio_t *zio)
370 {
371 	zio_transform_t *zt;
372 
373 	while ((zt = zio->io_transform_stack) != NULL) {
374 		if (zt->zt_transform != NULL)
375 			zt->zt_transform(zio,
376 			    zt->zt_orig_abd, zt->zt_orig_size);
377 
378 		if (zt->zt_bufsize != 0)
379 			abd_free(zio->io_abd);
380 
381 		zio->io_abd = zt->zt_orig_abd;
382 		zio->io_size = zt->zt_orig_size;
383 		zio->io_transform_stack = zt->zt_next;
384 
385 		kmem_free(zt, sizeof (zio_transform_t));
386 	}
387 }
388 
389 /*
390  * ==========================================================================
391  * I/O transform callbacks for subblocks and decompression
392  * ==========================================================================
393  */
394 static void
zio_subblock(zio_t * zio,abd_t * data,uint64_t size)395 zio_subblock(zio_t *zio, abd_t *data, uint64_t size)
396 {
397 	ASSERT(zio->io_size > size);
398 
399 	if (zio->io_type == ZIO_TYPE_READ)
400 		abd_copy(data, zio->io_abd, size);
401 }
402 
403 static void
zio_decompress(zio_t * zio,abd_t * data,uint64_t size)404 zio_decompress(zio_t *zio, abd_t *data, uint64_t size)
405 {
406 	if (zio->io_error == 0) {
407 		void *tmp = abd_borrow_buf(data, size);
408 		int ret = zio_decompress_data(BP_GET_COMPRESS(zio->io_bp),
409 		    zio->io_abd, tmp, zio->io_size, size);
410 		abd_return_buf_copy(data, tmp, size);
411 
412 		if (ret != 0)
413 			zio->io_error = SET_ERROR(EIO);
414 	}
415 }
416 
417 /*
418  * ==========================================================================
419  * I/O parent/child relationships and pipeline interlocks
420  * ==========================================================================
421  */
422 zio_t *
zio_walk_parents(zio_t * cio,zio_link_t ** zl)423 zio_walk_parents(zio_t *cio, zio_link_t **zl)
424 {
425 	list_t *pl = &cio->io_parent_list;
426 
427 	*zl = (*zl == NULL) ? list_head(pl) : list_next(pl, *zl);
428 	if (*zl == NULL)
429 		return (NULL);
430 
431 	ASSERT((*zl)->zl_child == cio);
432 	return ((*zl)->zl_parent);
433 }
434 
435 zio_t *
zio_walk_children(zio_t * pio,zio_link_t ** zl)436 zio_walk_children(zio_t *pio, zio_link_t **zl)
437 {
438 	list_t *cl = &pio->io_child_list;
439 
440 	ASSERT(MUTEX_HELD(&pio->io_lock));
441 
442 	*zl = (*zl == NULL) ? list_head(cl) : list_next(cl, *zl);
443 	if (*zl == NULL)
444 		return (NULL);
445 
446 	ASSERT((*zl)->zl_parent == pio);
447 	return ((*zl)->zl_child);
448 }
449 
450 zio_t *
zio_unique_parent(zio_t * cio)451 zio_unique_parent(zio_t *cio)
452 {
453 	zio_link_t *zl = NULL;
454 	zio_t *pio = zio_walk_parents(cio, &zl);
455 
456 	VERIFY3P(zio_walk_parents(cio, &zl), ==, NULL);
457 	return (pio);
458 }
459 
460 void
zio_add_child(zio_t * pio,zio_t * cio)461 zio_add_child(zio_t *pio, zio_t *cio)
462 {
463 	zio_link_t *zl = kmem_cache_alloc(zio_link_cache, KM_SLEEP);
464 
465 	/*
466 	 * Logical I/Os can have logical, gang, or vdev children.
467 	 * Gang I/Os can have gang or vdev children.
468 	 * Vdev I/Os can only have vdev children.
469 	 * The following ASSERT captures all of these constraints.
470 	 */
471 	ASSERT3S(cio->io_child_type, <=, pio->io_child_type);
472 
473 	zl->zl_parent = pio;
474 	zl->zl_child = cio;
475 
476 	mutex_enter(&pio->io_lock);
477 	mutex_enter(&cio->io_lock);
478 
479 	ASSERT(pio->io_state[ZIO_WAIT_DONE] == 0);
480 
481 	for (int w = 0; w < ZIO_WAIT_TYPES; w++)
482 		pio->io_children[cio->io_child_type][w] += !cio->io_state[w];
483 
484 	list_insert_head(&pio->io_child_list, zl);
485 	list_insert_head(&cio->io_parent_list, zl);
486 
487 	pio->io_child_count++;
488 	cio->io_parent_count++;
489 
490 	mutex_exit(&cio->io_lock);
491 	mutex_exit(&pio->io_lock);
492 }
493 
494 static void
zio_remove_child(zio_t * pio,zio_t * cio,zio_link_t * zl)495 zio_remove_child(zio_t *pio, zio_t *cio, zio_link_t *zl)
496 {
497 	ASSERT(zl->zl_parent == pio);
498 	ASSERT(zl->zl_child == cio);
499 
500 	mutex_enter(&pio->io_lock);
501 	mutex_enter(&cio->io_lock);
502 
503 	list_remove(&pio->io_child_list, zl);
504 	list_remove(&cio->io_parent_list, zl);
505 
506 	pio->io_child_count--;
507 	cio->io_parent_count--;
508 
509 	mutex_exit(&cio->io_lock);
510 	mutex_exit(&pio->io_lock);
511 	kmem_cache_free(zio_link_cache, zl);
512 }
513 
514 static boolean_t
zio_wait_for_children(zio_t * zio,uint8_t childbits,enum zio_wait_type wait)515 zio_wait_for_children(zio_t *zio, uint8_t childbits, enum zio_wait_type wait)
516 {
517 	boolean_t waiting = B_FALSE;
518 
519 	mutex_enter(&zio->io_lock);
520 	ASSERT(zio->io_stall == NULL);
521 	for (int c = 0; c < ZIO_CHILD_TYPES; c++) {
522 		if (!(ZIO_CHILD_BIT_IS_SET(childbits, c)))
523 			continue;
524 
525 		uint64_t *countp = &zio->io_children[c][wait];
526 		if (*countp != 0) {
527 			zio->io_stage >>= 1;
528 			ASSERT3U(zio->io_stage, !=, ZIO_STAGE_OPEN);
529 			zio->io_stall = countp;
530 			waiting = B_TRUE;
531 			break;
532 		}
533 	}
534 	mutex_exit(&zio->io_lock);
535 	return (waiting);
536 }
537 
538 static void
zio_notify_parent(zio_t * pio,zio_t * zio,enum zio_wait_type wait,zio_t ** next_to_executep)539 zio_notify_parent(zio_t *pio, zio_t *zio, enum zio_wait_type wait,
540     zio_t **next_to_executep)
541 {
542 	uint64_t *countp = &pio->io_children[zio->io_child_type][wait];
543 	int *errorp = &pio->io_child_error[zio->io_child_type];
544 
545 	mutex_enter(&pio->io_lock);
546 	if (zio->io_error && !(zio->io_flags & ZIO_FLAG_DONT_PROPAGATE))
547 		*errorp = zio_worst_error(*errorp, zio->io_error);
548 	pio->io_reexecute |= zio->io_reexecute;
549 	ASSERT3U(*countp, >, 0);
550 
551 	(*countp)--;
552 
553 	if (*countp == 0 && pio->io_stall == countp) {
554 		zio_taskq_type_t type =
555 		    pio->io_stage < ZIO_STAGE_VDEV_IO_START ? ZIO_TASKQ_ISSUE :
556 		    ZIO_TASKQ_INTERRUPT;
557 		pio->io_stall = NULL;
558 		mutex_exit(&pio->io_lock);
559 
560 		/*
561 		 * If we can tell the caller to execute this parent next, do
562 		 * so.  Otherwise dispatch the parent zio as its own task.
563 		 *
564 		 * Having the caller execute the parent when possible reduces
565 		 * locking on the zio taskq's, reduces context switch
566 		 * overhead, and has no recursion penalty.  Note that one
567 		 * read from disk typically causes at least 3 zio's: a
568 		 * zio_null(), the logical zio_read(), and then a physical
569 		 * zio.  When the physical ZIO completes, we are able to call
570 		 * zio_done() on all 3 of these zio's from one invocation of
571 		 * zio_execute() by returning the parent back to
572 		 * zio_execute().  Since the parent isn't executed until this
573 		 * thread returns back to zio_execute(), the caller should do
574 		 * so promptly.
575 		 *
576 		 * In other cases, dispatching the parent prevents
577 		 * overflowing the stack when we have deeply nested
578 		 * parent-child relationships, as we do with the "mega zio"
579 		 * of writes for spa_sync(), and the chain of ZIL blocks.
580 		 */
581 		if (next_to_executep != NULL && *next_to_executep == NULL) {
582 			*next_to_executep = pio;
583 		} else {
584 			zio_taskq_dispatch(pio, type, B_FALSE);
585 		}
586 	} else {
587 		mutex_exit(&pio->io_lock);
588 	}
589 }
590 
591 static void
zio_inherit_child_errors(zio_t * zio,enum zio_child c)592 zio_inherit_child_errors(zio_t *zio, enum zio_child c)
593 {
594 	if (zio->io_child_error[c] != 0 && zio->io_error == 0)
595 		zio->io_error = zio->io_child_error[c];
596 }
597 
598 int
zio_bookmark_compare(const void * x1,const void * x2)599 zio_bookmark_compare(const void *x1, const void *x2)
600 {
601 	const zio_t *z1 = x1;
602 	const zio_t *z2 = x2;
603 
604 	if (z1->io_bookmark.zb_objset < z2->io_bookmark.zb_objset)
605 		return (-1);
606 	if (z1->io_bookmark.zb_objset > z2->io_bookmark.zb_objset)
607 		return (1);
608 
609 	if (z1->io_bookmark.zb_object < z2->io_bookmark.zb_object)
610 		return (-1);
611 	if (z1->io_bookmark.zb_object > z2->io_bookmark.zb_object)
612 		return (1);
613 
614 	if (z1->io_bookmark.zb_level < z2->io_bookmark.zb_level)
615 		return (-1);
616 	if (z1->io_bookmark.zb_level > z2->io_bookmark.zb_level)
617 		return (1);
618 
619 	if (z1->io_bookmark.zb_blkid < z2->io_bookmark.zb_blkid)
620 		return (-1);
621 	if (z1->io_bookmark.zb_blkid > z2->io_bookmark.zb_blkid)
622 		return (1);
623 
624 	if (z1 < z2)
625 		return (-1);
626 	if (z1 > z2)
627 		return (1);
628 
629 	return (0);
630 }
631 
632 /*
633  * ==========================================================================
634  * Create the various types of I/O (read, write, free, etc)
635  * ==========================================================================
636  */
637 static zio_t *
zio_create(zio_t * pio,spa_t * spa,uint64_t txg,const blkptr_t * bp,abd_t * data,uint64_t lsize,uint64_t psize,zio_done_func_t * done,void * private,zio_type_t type,zio_priority_t priority,enum zio_flag flags,vdev_t * vd,uint64_t offset,const zbookmark_phys_t * zb,enum zio_stage stage,enum zio_stage pipeline)638 zio_create(zio_t *pio, spa_t *spa, uint64_t txg, const blkptr_t *bp,
639     abd_t *data, uint64_t lsize, uint64_t psize, zio_done_func_t *done,
640     void *private, zio_type_t type, zio_priority_t priority,
641     enum zio_flag flags, vdev_t *vd, uint64_t offset,
642     const zbookmark_phys_t *zb, enum zio_stage stage, enum zio_stage pipeline)
643 {
644 	zio_t *zio;
645 
646 	ASSERT3U(type == ZIO_TYPE_FREE || psize, <=, SPA_MAXBLOCKSIZE);
647 	ASSERT(P2PHASE(psize, SPA_MINBLOCKSIZE) == 0);
648 	ASSERT(P2PHASE(offset, SPA_MINBLOCKSIZE) == 0);
649 
650 	ASSERT(!vd || spa_config_held(spa, SCL_STATE_ALL, RW_READER));
651 	ASSERT(!bp || !(flags & ZIO_FLAG_CONFIG_WRITER));
652 	ASSERT(vd || stage == ZIO_STAGE_OPEN);
653 
654 	IMPLY(lsize != psize, (flags & ZIO_FLAG_RAW) != 0);
655 
656 	zio = kmem_cache_alloc(zio_cache, KM_SLEEP);
657 	bzero(zio, sizeof (zio_t));
658 
659 	mutex_init(&zio->io_lock, NULL, MUTEX_DEFAULT, NULL);
660 	cv_init(&zio->io_cv, NULL, CV_DEFAULT, NULL);
661 
662 	list_create(&zio->io_parent_list, sizeof (zio_link_t),
663 	    offsetof(zio_link_t, zl_parent_node));
664 	list_create(&zio->io_child_list, sizeof (zio_link_t),
665 	    offsetof(zio_link_t, zl_child_node));
666 	metaslab_trace_init(&zio->io_alloc_list);
667 
668 	if (vd != NULL)
669 		zio->io_child_type = ZIO_CHILD_VDEV;
670 	else if (flags & ZIO_FLAG_GANG_CHILD)
671 		zio->io_child_type = ZIO_CHILD_GANG;
672 	else if (flags & ZIO_FLAG_DDT_CHILD)
673 		zio->io_child_type = ZIO_CHILD_DDT;
674 	else
675 		zio->io_child_type = ZIO_CHILD_LOGICAL;
676 
677 	if (bp != NULL) {
678 		zio->io_bp = (blkptr_t *)bp;
679 		zio->io_bp_copy = *bp;
680 		zio->io_bp_orig = *bp;
681 		if (type != ZIO_TYPE_WRITE ||
682 		    zio->io_child_type == ZIO_CHILD_DDT)
683 			zio->io_bp = &zio->io_bp_copy;	/* so caller can free */
684 		if (zio->io_child_type == ZIO_CHILD_LOGICAL)
685 			zio->io_logical = zio;
686 		if (zio->io_child_type > ZIO_CHILD_GANG && BP_IS_GANG(bp))
687 			pipeline |= ZIO_GANG_STAGES;
688 	}
689 
690 	zio->io_spa = spa;
691 	zio->io_txg = txg;
692 	zio->io_done = done;
693 	zio->io_private = private;
694 	zio->io_type = type;
695 	zio->io_priority = priority;
696 	zio->io_vd = vd;
697 	zio->io_offset = offset;
698 	zio->io_orig_abd = zio->io_abd = data;
699 	zio->io_orig_size = zio->io_size = psize;
700 	zio->io_lsize = lsize;
701 	zio->io_orig_flags = zio->io_flags = flags;
702 	zio->io_orig_stage = zio->io_stage = stage;
703 	zio->io_orig_pipeline = zio->io_pipeline = pipeline;
704 	zio->io_pipeline_trace = ZIO_STAGE_OPEN;
705 
706 	zio->io_state[ZIO_WAIT_READY] = (stage >= ZIO_STAGE_READY);
707 	zio->io_state[ZIO_WAIT_DONE] = (stage >= ZIO_STAGE_DONE);
708 
709 	if (zb != NULL)
710 		zio->io_bookmark = *zb;
711 
712 	if (pio != NULL) {
713 		if (zio->io_logical == NULL)
714 			zio->io_logical = pio->io_logical;
715 		if (zio->io_child_type == ZIO_CHILD_GANG)
716 			zio->io_gang_leader = pio->io_gang_leader;
717 		zio_add_child(pio, zio);
718 	}
719 
720 	return (zio);
721 }
722 
723 static void
zio_destroy(zio_t * zio)724 zio_destroy(zio_t *zio)
725 {
726 	metaslab_trace_fini(&zio->io_alloc_list);
727 	list_destroy(&zio->io_parent_list);
728 	list_destroy(&zio->io_child_list);
729 	mutex_destroy(&zio->io_lock);
730 	cv_destroy(&zio->io_cv);
731 	kmem_cache_free(zio_cache, zio);
732 }
733 
734 zio_t *
zio_null(zio_t * pio,spa_t * spa,vdev_t * vd,zio_done_func_t * done,void * private,enum zio_flag flags)735 zio_null(zio_t *pio, spa_t *spa, vdev_t *vd, zio_done_func_t *done,
736     void *private, enum zio_flag flags)
737 {
738 	zio_t *zio;
739 
740 	zio = zio_create(pio, spa, 0, NULL, NULL, 0, 0, done, private,
741 	    ZIO_TYPE_NULL, ZIO_PRIORITY_NOW, flags, vd, 0, NULL,
742 	    ZIO_STAGE_OPEN, ZIO_INTERLOCK_PIPELINE);
743 
744 	return (zio);
745 }
746 
747 zio_t *
zio_root(spa_t * spa,zio_done_func_t * done,void * private,enum zio_flag flags)748 zio_root(spa_t *spa, zio_done_func_t *done, void *private, enum zio_flag flags)
749 {
750 	return (zio_null(NULL, spa, NULL, done, private, flags));
751 }
752 
753 void
zfs_blkptr_verify(spa_t * spa,const blkptr_t * bp)754 zfs_blkptr_verify(spa_t *spa, const blkptr_t *bp)
755 {
756 	if (!DMU_OT_IS_VALID(BP_GET_TYPE(bp))) {
757 		zfs_panic_recover("blkptr at %p has invalid TYPE %llu",
758 		    bp, (longlong_t)BP_GET_TYPE(bp));
759 	}
760 	if (BP_GET_CHECKSUM(bp) >= ZIO_CHECKSUM_FUNCTIONS ||
761 	    BP_GET_CHECKSUM(bp) <= ZIO_CHECKSUM_ON) {
762 		zfs_panic_recover("blkptr at %p has invalid CHECKSUM %llu",
763 		    bp, (longlong_t)BP_GET_CHECKSUM(bp));
764 	}
765 	if (BP_GET_COMPRESS(bp) >= ZIO_COMPRESS_FUNCTIONS ||
766 	    BP_GET_COMPRESS(bp) <= ZIO_COMPRESS_ON) {
767 		zfs_panic_recover("blkptr at %p has invalid COMPRESS %llu",
768 		    bp, (longlong_t)BP_GET_COMPRESS(bp));
769 	}
770 	if (BP_GET_LSIZE(bp) > SPA_MAXBLOCKSIZE) {
771 		zfs_panic_recover("blkptr at %p has invalid LSIZE %llu",
772 		    bp, (longlong_t)BP_GET_LSIZE(bp));
773 	}
774 	if (BP_GET_PSIZE(bp) > SPA_MAXBLOCKSIZE) {
775 		zfs_panic_recover("blkptr at %p has invalid PSIZE %llu",
776 		    bp, (longlong_t)BP_GET_PSIZE(bp));
777 	}
778 
779 	if (BP_IS_EMBEDDED(bp)) {
780 		if (BPE_GET_ETYPE(bp) > NUM_BP_EMBEDDED_TYPES) {
781 			zfs_panic_recover("blkptr at %p has invalid ETYPE %llu",
782 			    bp, (longlong_t)BPE_GET_ETYPE(bp));
783 		}
784 	}
785 
786 	/*
787 	 * Do not verify individual DVAs if the config is not trusted. This
788 	 * will be done once the zio is executed in vdev_mirror_map_alloc.
789 	 */
790 	if (!spa->spa_trust_config)
791 		return;
792 
793 	/*
794 	 * Pool-specific checks.
795 	 *
796 	 * Note: it would be nice to verify that the blk_birth and
797 	 * BP_PHYSICAL_BIRTH() are not too large.  However, spa_freeze()
798 	 * allows the birth time of log blocks (and dmu_sync()-ed blocks
799 	 * that are in the log) to be arbitrarily large.
800 	 */
801 	for (int i = 0; i < BP_GET_NDVAS(bp); i++) {
802 		uint64_t vdevid = DVA_GET_VDEV(&bp->blk_dva[i]);
803 		if (vdevid >= spa->spa_root_vdev->vdev_children) {
804 			zfs_panic_recover("blkptr at %p DVA %u has invalid "
805 			    "VDEV %llu",
806 			    bp, i, (longlong_t)vdevid);
807 			continue;
808 		}
809 		vdev_t *vd = spa->spa_root_vdev->vdev_child[vdevid];
810 		if (vd == NULL) {
811 			zfs_panic_recover("blkptr at %p DVA %u has invalid "
812 			    "VDEV %llu",
813 			    bp, i, (longlong_t)vdevid);
814 			continue;
815 		}
816 		if (vd->vdev_ops == &vdev_hole_ops) {
817 			zfs_panic_recover("blkptr at %p DVA %u has hole "
818 			    "VDEV %llu",
819 			    bp, i, (longlong_t)vdevid);
820 			continue;
821 		}
822 		if (vd->vdev_ops == &vdev_missing_ops) {
823 			/*
824 			 * "missing" vdevs are valid during import, but we
825 			 * don't have their detailed info (e.g. asize), so
826 			 * we can't perform any more checks on them.
827 			 */
828 			continue;
829 		}
830 		uint64_t offset = DVA_GET_OFFSET(&bp->blk_dva[i]);
831 		uint64_t asize = DVA_GET_ASIZE(&bp->blk_dva[i]);
832 		if (BP_IS_GANG(bp))
833 			asize = vdev_psize_to_asize(vd, SPA_GANGBLOCKSIZE);
834 		if (offset + asize > vd->vdev_asize) {
835 			zfs_panic_recover("blkptr at %p DVA %u has invalid "
836 			    "OFFSET %llu",
837 			    bp, i, (longlong_t)offset);
838 		}
839 	}
840 }
841 
842 boolean_t
zfs_dva_valid(spa_t * spa,const dva_t * dva,const blkptr_t * bp)843 zfs_dva_valid(spa_t *spa, const dva_t *dva, const blkptr_t *bp)
844 {
845 	uint64_t vdevid = DVA_GET_VDEV(dva);
846 
847 	if (vdevid >= spa->spa_root_vdev->vdev_children)
848 		return (B_FALSE);
849 
850 	vdev_t *vd = spa->spa_root_vdev->vdev_child[vdevid];
851 	if (vd == NULL)
852 		return (B_FALSE);
853 
854 	if (vd->vdev_ops == &vdev_hole_ops)
855 		return (B_FALSE);
856 
857 	if (vd->vdev_ops == &vdev_missing_ops) {
858 		return (B_FALSE);
859 	}
860 
861 	uint64_t offset = DVA_GET_OFFSET(dva);
862 	uint64_t asize = DVA_GET_ASIZE(dva);
863 
864 	if (BP_IS_GANG(bp))
865 		asize = vdev_psize_to_asize(vd, SPA_GANGBLOCKSIZE);
866 	if (offset + asize > vd->vdev_asize)
867 		return (B_FALSE);
868 
869 	return (B_TRUE);
870 }
871 
872 zio_t *
zio_read(zio_t * pio,spa_t * spa,const blkptr_t * bp,abd_t * data,uint64_t size,zio_done_func_t * done,void * private,zio_priority_t priority,enum zio_flag flags,const zbookmark_phys_t * zb)873 zio_read(zio_t *pio, spa_t *spa, const blkptr_t *bp,
874     abd_t *data, uint64_t size, zio_done_func_t *done, void *private,
875     zio_priority_t priority, enum zio_flag flags, const zbookmark_phys_t *zb)
876 {
877 	zio_t *zio;
878 
879 	zfs_blkptr_verify(spa, bp);
880 
881 	zio = zio_create(pio, spa, BP_PHYSICAL_BIRTH(bp), bp,
882 	    data, size, size, done, private,
883 	    ZIO_TYPE_READ, priority, flags, NULL, 0, zb,
884 	    ZIO_STAGE_OPEN, (flags & ZIO_FLAG_DDT_CHILD) ?
885 	    ZIO_DDT_CHILD_READ_PIPELINE : ZIO_READ_PIPELINE);
886 
887 	return (zio);
888 }
889 
890 zio_t *
zio_write(zio_t * pio,spa_t * spa,uint64_t txg,blkptr_t * bp,abd_t * data,uint64_t lsize,uint64_t psize,const zio_prop_t * zp,zio_done_func_t * ready,zio_done_func_t * children_ready,zio_done_func_t * physdone,zio_done_func_t * done,void * private,zio_priority_t priority,enum zio_flag flags,const zbookmark_phys_t * zb)891 zio_write(zio_t *pio, spa_t *spa, uint64_t txg, blkptr_t *bp,
892     abd_t *data, uint64_t lsize, uint64_t psize, const zio_prop_t *zp,
893     zio_done_func_t *ready, zio_done_func_t *children_ready,
894     zio_done_func_t *physdone, zio_done_func_t *done,
895     void *private, zio_priority_t priority, enum zio_flag flags,
896     const zbookmark_phys_t *zb)
897 {
898 	zio_t *zio;
899 
900 	ASSERT(zp->zp_checksum >= ZIO_CHECKSUM_OFF &&
901 	    zp->zp_checksum < ZIO_CHECKSUM_FUNCTIONS &&
902 	    zp->zp_compress >= ZIO_COMPRESS_OFF &&
903 	    zp->zp_compress < ZIO_COMPRESS_FUNCTIONS &&
904 	    DMU_OT_IS_VALID(zp->zp_type) &&
905 	    zp->zp_level < 32 &&
906 	    zp->zp_copies > 0 &&
907 	    zp->zp_copies <= spa_max_replication(spa));
908 
909 	zio = zio_create(pio, spa, txg, bp, data, lsize, psize, done, private,
910 	    ZIO_TYPE_WRITE, priority, flags, NULL, 0, zb,
911 	    ZIO_STAGE_OPEN, (flags & ZIO_FLAG_DDT_CHILD) ?
912 	    ZIO_DDT_CHILD_WRITE_PIPELINE : ZIO_WRITE_PIPELINE);
913 
914 	zio->io_ready = ready;
915 	zio->io_children_ready = children_ready;
916 	zio->io_physdone = physdone;
917 	zio->io_prop = *zp;
918 
919 	/*
920 	 * Data can be NULL if we are going to call zio_write_override() to
921 	 * provide the already-allocated BP.  But we may need the data to
922 	 * verify a dedup hit (if requested).  In this case, don't try to
923 	 * dedup (just take the already-allocated BP verbatim).
924 	 */
925 	if (data == NULL && zio->io_prop.zp_dedup_verify) {
926 		zio->io_prop.zp_dedup = zio->io_prop.zp_dedup_verify = B_FALSE;
927 	}
928 
929 	return (zio);
930 }
931 
932 zio_t *
zio_rewrite(zio_t * pio,spa_t * spa,uint64_t txg,blkptr_t * bp,abd_t * data,uint64_t size,zio_done_func_t * done,void * private,zio_priority_t priority,enum zio_flag flags,zbookmark_phys_t * zb)933 zio_rewrite(zio_t *pio, spa_t *spa, uint64_t txg, blkptr_t *bp, abd_t *data,
934     uint64_t size, zio_done_func_t *done, void *private,
935     zio_priority_t priority, enum zio_flag flags, zbookmark_phys_t *zb)
936 {
937 	zio_t *zio;
938 
939 	zio = zio_create(pio, spa, txg, bp, data, size, size, done, private,
940 	    ZIO_TYPE_WRITE, priority, flags | ZIO_FLAG_IO_REWRITE, NULL, 0, zb,
941 	    ZIO_STAGE_OPEN, ZIO_REWRITE_PIPELINE);
942 
943 	return (zio);
944 }
945 
946 void
zio_write_override(zio_t * zio,blkptr_t * bp,int copies,boolean_t nopwrite)947 zio_write_override(zio_t *zio, blkptr_t *bp, int copies, boolean_t nopwrite)
948 {
949 	ASSERT(zio->io_type == ZIO_TYPE_WRITE);
950 	ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
951 	ASSERT(zio->io_stage == ZIO_STAGE_OPEN);
952 	ASSERT(zio->io_txg == spa_syncing_txg(zio->io_spa));
953 
954 	/*
955 	 * We must reset the io_prop to match the values that existed
956 	 * when the bp was first written by dmu_sync() keeping in mind
957 	 * that nopwrite and dedup are mutually exclusive.
958 	 */
959 	zio->io_prop.zp_dedup = nopwrite ? B_FALSE : zio->io_prop.zp_dedup;
960 	zio->io_prop.zp_nopwrite = nopwrite;
961 	zio->io_prop.zp_copies = copies;
962 	zio->io_bp_override = bp;
963 }
964 
965 void
zio_free(spa_t * spa,uint64_t txg,const blkptr_t * bp)966 zio_free(spa_t *spa, uint64_t txg, const blkptr_t *bp)
967 {
968 
969 	zfs_blkptr_verify(spa, bp);
970 
971 	/*
972 	 * The check for EMBEDDED is a performance optimization.  We
973 	 * process the free here (by ignoring it) rather than
974 	 * putting it on the list and then processing it in zio_free_sync().
975 	 */
976 	if (BP_IS_EMBEDDED(bp))
977 		return;
978 	metaslab_check_free(spa, bp);
979 
980 	/*
981 	 * Frees that are for the currently-syncing txg, are not going to be
982 	 * deferred, and which will not need to do a read (i.e. not GANG or
983 	 * DEDUP), can be processed immediately.  Otherwise, put them on the
984 	 * in-memory list for later processing.
985 	 */
986 	if (zfs_trim_enabled || BP_IS_GANG(bp) || BP_GET_DEDUP(bp) ||
987 	    txg != spa->spa_syncing_txg ||
988 	    spa_sync_pass(spa) >= zfs_sync_pass_deferred_free) {
989 		bplist_append(&spa->spa_free_bplist[txg & TXG_MASK], bp);
990 	} else {
991 		VERIFY0(zio_wait(zio_free_sync(NULL, spa, txg, bp,
992 		    BP_GET_PSIZE(bp), 0)));
993 	}
994 }
995 
996 zio_t *
zio_free_sync(zio_t * pio,spa_t * spa,uint64_t txg,const blkptr_t * bp,uint64_t size,enum zio_flag flags)997 zio_free_sync(zio_t *pio, spa_t *spa, uint64_t txg, const blkptr_t *bp,
998     uint64_t size, enum zio_flag flags)
999 {
1000 	zio_t *zio;
1001 	enum zio_stage stage = ZIO_FREE_PIPELINE;
1002 
1003 	ASSERT(!BP_IS_HOLE(bp));
1004 	ASSERT(spa_syncing_txg(spa) == txg);
1005 	ASSERT(spa_sync_pass(spa) < zfs_sync_pass_deferred_free);
1006 
1007 	if (BP_IS_EMBEDDED(bp))
1008 		return (zio_null(pio, spa, NULL, NULL, NULL, 0));
1009 
1010 	metaslab_check_free(spa, bp);
1011 	arc_freed(spa, bp);
1012 	dsl_scan_freed(spa, bp);
1013 
1014 	if (zfs_trim_enabled)
1015 		stage |= ZIO_STAGE_ISSUE_ASYNC | ZIO_STAGE_VDEV_IO_START |
1016 		    ZIO_STAGE_VDEV_IO_ASSESS;
1017 	/*
1018 	 * GANG and DEDUP blocks can induce a read (for the gang block header,
1019 	 * or the DDT), so issue them asynchronously so that this thread is
1020 	 * not tied up.
1021 	 */
1022 	else if (BP_IS_GANG(bp) || BP_GET_DEDUP(bp))
1023 		stage |= ZIO_STAGE_ISSUE_ASYNC;
1024 
1025 	flags |= ZIO_FLAG_DONT_QUEUE;
1026 
1027 	zio = zio_create(pio, spa, txg, bp, NULL, size,
1028 	    size, NULL, NULL, ZIO_TYPE_FREE, ZIO_PRIORITY_NOW,
1029 	    flags, NULL, 0, NULL, ZIO_STAGE_OPEN, stage);
1030 
1031 	return (zio);
1032 }
1033 
1034 zio_t *
zio_claim(zio_t * pio,spa_t * spa,uint64_t txg,const blkptr_t * bp,zio_done_func_t * done,void * private,enum zio_flag flags)1035 zio_claim(zio_t *pio, spa_t *spa, uint64_t txg, const blkptr_t *bp,
1036     zio_done_func_t *done, void *private, enum zio_flag flags)
1037 {
1038 	zio_t *zio;
1039 
1040 	zfs_blkptr_verify(spa, bp);
1041 
1042 	if (BP_IS_EMBEDDED(bp))
1043 		return (zio_null(pio, spa, NULL, NULL, NULL, 0));
1044 
1045 	/*
1046 	 * A claim is an allocation of a specific block.  Claims are needed
1047 	 * to support immediate writes in the intent log.  The issue is that
1048 	 * immediate writes contain committed data, but in a txg that was
1049 	 * *not* committed.  Upon opening the pool after an unclean shutdown,
1050 	 * the intent log claims all blocks that contain immediate write data
1051 	 * so that the SPA knows they're in use.
1052 	 *
1053 	 * All claims *must* be resolved in the first txg -- before the SPA
1054 	 * starts allocating blocks -- so that nothing is allocated twice.
1055 	 * If txg == 0 we just verify that the block is claimable.
1056 	 */
1057 	ASSERT3U(spa->spa_uberblock.ub_rootbp.blk_birth, <,
1058 	    spa_min_claim_txg(spa));
1059 	ASSERT(txg == spa_min_claim_txg(spa) || txg == 0);
1060 	ASSERT(!BP_GET_DEDUP(bp) || !spa_writeable(spa));	/* zdb(1M) */
1061 
1062 	zio = zio_create(pio, spa, txg, bp, NULL, BP_GET_PSIZE(bp),
1063 	    BP_GET_PSIZE(bp), done, private, ZIO_TYPE_CLAIM, ZIO_PRIORITY_NOW,
1064 	    flags, NULL, 0, NULL, ZIO_STAGE_OPEN, ZIO_CLAIM_PIPELINE);
1065 	ASSERT0(zio->io_queued_timestamp);
1066 
1067 	return (zio);
1068 }
1069 
1070 zio_t *
zio_ioctl(zio_t * pio,spa_t * spa,vdev_t * vd,int cmd,uint64_t offset,uint64_t size,zio_done_func_t * done,void * private,zio_priority_t priority,enum zio_flag flags)1071 zio_ioctl(zio_t *pio, spa_t *spa, vdev_t *vd, int cmd, uint64_t offset,
1072     uint64_t size, zio_done_func_t *done, void *private,
1073     zio_priority_t priority, enum zio_flag flags)
1074 {
1075 	zio_t *zio;
1076 	int c;
1077 
1078 	if (vd->vdev_children == 0) {
1079 		zio = zio_create(pio, spa, 0, NULL, NULL, 0, 0, done, private,
1080 		    ZIO_TYPE_IOCTL, ZIO_PRIORITY_NOW, flags, vd, 0, NULL,
1081 		    ZIO_STAGE_OPEN, ZIO_IOCTL_PIPELINE);
1082 
1083 		zio->io_cmd = cmd;
1084 	} else {
1085 		zio = zio_null(pio, spa, NULL, NULL, NULL, flags);
1086 
1087 		for (c = 0; c < vd->vdev_children; c++)
1088 			zio_nowait(zio_ioctl(zio, spa, vd->vdev_child[c], cmd,
1089 			    offset, size, done, private, priority, flags));
1090 	}
1091 
1092 	return (zio);
1093 }
1094 
1095 zio_t *
zio_read_phys(zio_t * pio,vdev_t * vd,uint64_t offset,uint64_t size,abd_t * data,int checksum,zio_done_func_t * done,void * private,zio_priority_t priority,enum zio_flag flags,boolean_t labels)1096 zio_read_phys(zio_t *pio, vdev_t *vd, uint64_t offset, uint64_t size,
1097     abd_t *data, int checksum, zio_done_func_t *done, void *private,
1098     zio_priority_t priority, enum zio_flag flags, boolean_t labels)
1099 {
1100 	zio_t *zio;
1101 
1102 	ASSERT(vd->vdev_children == 0);
1103 	ASSERT(!labels || offset + size <= VDEV_LABEL_START_SIZE ||
1104 	    offset >= vd->vdev_psize - VDEV_LABEL_END_SIZE);
1105 	ASSERT3U(offset + size, <=, vd->vdev_psize);
1106 
1107 	zio = zio_create(pio, vd->vdev_spa, 0, NULL, data, size, size, done,
1108 	    private, ZIO_TYPE_READ, priority, flags | ZIO_FLAG_PHYSICAL, vd,
1109 	    offset, NULL, ZIO_STAGE_OPEN, ZIO_READ_PHYS_PIPELINE);
1110 
1111 	zio->io_prop.zp_checksum = checksum;
1112 
1113 	return (zio);
1114 }
1115 
1116 zio_t *
zio_write_phys(zio_t * pio,vdev_t * vd,uint64_t offset,uint64_t size,abd_t * data,int checksum,zio_done_func_t * done,void * private,zio_priority_t priority,enum zio_flag flags,boolean_t labels)1117 zio_write_phys(zio_t *pio, vdev_t *vd, uint64_t offset, uint64_t size,
1118     abd_t *data, int checksum, zio_done_func_t *done, void *private,
1119     zio_priority_t priority, enum zio_flag flags, boolean_t labels)
1120 {
1121 	zio_t *zio;
1122 
1123 	ASSERT(vd->vdev_children == 0);
1124 	ASSERT(!labels || offset + size <= VDEV_LABEL_START_SIZE ||
1125 	    offset >= vd->vdev_psize - VDEV_LABEL_END_SIZE);
1126 	ASSERT3U(offset + size, <=, vd->vdev_psize);
1127 
1128 	zio = zio_create(pio, vd->vdev_spa, 0, NULL, data, size, size, done,
1129 	    private, ZIO_TYPE_WRITE, priority, flags | ZIO_FLAG_PHYSICAL, vd,
1130 	    offset, NULL, ZIO_STAGE_OPEN, ZIO_WRITE_PHYS_PIPELINE);
1131 
1132 	zio->io_prop.zp_checksum = checksum;
1133 
1134 	if (zio_checksum_table[checksum].ci_flags & ZCHECKSUM_FLAG_EMBEDDED) {
1135 		/*
1136 		 * zec checksums are necessarily destructive -- they modify
1137 		 * the end of the write buffer to hold the verifier/checksum.
1138 		 * Therefore, we must make a local copy in case the data is
1139 		 * being written to multiple places in parallel.
1140 		 */
1141 		abd_t *wbuf = abd_alloc_sametype(data, size);
1142 		abd_copy(wbuf, data, size);
1143 
1144 		zio_push_transform(zio, wbuf, size, size, NULL);
1145 	}
1146 
1147 	return (zio);
1148 }
1149 
1150 /*
1151  * Create a child I/O to do some work for us.
1152  */
1153 zio_t *
zio_vdev_child_io(zio_t * pio,blkptr_t * bp,vdev_t * vd,uint64_t offset,abd_t * data,uint64_t size,int type,zio_priority_t priority,enum zio_flag flags,zio_done_func_t * done,void * private)1154 zio_vdev_child_io(zio_t *pio, blkptr_t *bp, vdev_t *vd, uint64_t offset,
1155     abd_t *data, uint64_t size, int type, zio_priority_t priority,
1156     enum zio_flag flags, zio_done_func_t *done, void *private)
1157 {
1158 	enum zio_stage pipeline = ZIO_VDEV_CHILD_PIPELINE;
1159 	zio_t *zio;
1160 
1161 	/*
1162 	 * vdev child I/Os do not propagate their error to the parent.
1163 	 * Therefore, for correct operation the caller *must* check for
1164 	 * and handle the error in the child i/o's done callback.
1165 	 * The only exceptions are i/os that we don't care about
1166 	 * (OPTIONAL or REPAIR).
1167 	 */
1168 	ASSERT((flags & ZIO_FLAG_OPTIONAL) || (flags & ZIO_FLAG_IO_REPAIR) ||
1169 	    done != NULL);
1170 
1171 	if (type == ZIO_TYPE_READ && bp != NULL) {
1172 		/*
1173 		 * If we have the bp, then the child should perform the
1174 		 * checksum and the parent need not.  This pushes error
1175 		 * detection as close to the leaves as possible and
1176 		 * eliminates redundant checksums in the interior nodes.
1177 		 */
1178 		pipeline |= ZIO_STAGE_CHECKSUM_VERIFY;
1179 		pio->io_pipeline &= ~ZIO_STAGE_CHECKSUM_VERIFY;
1180 	}
1181 
1182 	/* Not all IO types require vdev io done stage e.g. free */
1183 	if (type == ZIO_TYPE_FREE &&
1184 	    !(pio->io_pipeline & ZIO_STAGE_VDEV_IO_DONE))
1185 		pipeline &= ~ZIO_STAGE_VDEV_IO_DONE;
1186 
1187 	if (vd->vdev_ops->vdev_op_leaf) {
1188 		ASSERT0(vd->vdev_children);
1189 		offset += VDEV_LABEL_START_SIZE;
1190 	}
1191 
1192 	flags |= ZIO_VDEV_CHILD_FLAGS(pio);
1193 
1194 	/*
1195 	 * If we've decided to do a repair, the write is not speculative --
1196 	 * even if the original read was.
1197 	 */
1198 	if (flags & ZIO_FLAG_IO_REPAIR)
1199 		flags &= ~ZIO_FLAG_SPECULATIVE;
1200 
1201 	/*
1202 	 * If we're creating a child I/O that is not associated with a
1203 	 * top-level vdev, then the child zio is not an allocating I/O.
1204 	 * If this is a retried I/O then we ignore it since we will
1205 	 * have already processed the original allocating I/O.
1206 	 */
1207 	if (flags & ZIO_FLAG_IO_ALLOCATING &&
1208 	    (vd != vd->vdev_top || (flags & ZIO_FLAG_IO_RETRY))) {
1209 		metaslab_class_t *mc = spa_normal_class(pio->io_spa);
1210 
1211 		ASSERT(mc->mc_alloc_throttle_enabled);
1212 		ASSERT(type == ZIO_TYPE_WRITE);
1213 		ASSERT(priority == ZIO_PRIORITY_ASYNC_WRITE);
1214 		ASSERT(!(flags & ZIO_FLAG_IO_REPAIR));
1215 		ASSERT(!(pio->io_flags & ZIO_FLAG_IO_REWRITE) ||
1216 		    pio->io_child_type == ZIO_CHILD_GANG);
1217 
1218 		flags &= ~ZIO_FLAG_IO_ALLOCATING;
1219 	}
1220 
1221 	zio = zio_create(pio, pio->io_spa, pio->io_txg, bp, data, size, size,
1222 	    done, private, type, priority, flags, vd, offset, &pio->io_bookmark,
1223 	    ZIO_STAGE_VDEV_IO_START >> 1, pipeline);
1224 	ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_VDEV);
1225 
1226 	zio->io_physdone = pio->io_physdone;
1227 	if (vd->vdev_ops->vdev_op_leaf && zio->io_logical != NULL)
1228 		zio->io_logical->io_phys_children++;
1229 
1230 	return (zio);
1231 }
1232 
1233 zio_t *
zio_vdev_delegated_io(vdev_t * vd,uint64_t offset,abd_t * data,uint64_t size,zio_type_t type,zio_priority_t priority,enum zio_flag flags,zio_done_func_t * done,void * private)1234 zio_vdev_delegated_io(vdev_t *vd, uint64_t offset, abd_t *data, uint64_t size,
1235     zio_type_t type, zio_priority_t priority, enum zio_flag flags,
1236     zio_done_func_t *done, void *private)
1237 {
1238 	zio_t *zio;
1239 
1240 	ASSERT(vd->vdev_ops->vdev_op_leaf);
1241 
1242 	zio = zio_create(NULL, vd->vdev_spa, 0, NULL,
1243 	    data, size, size, done, private, type, priority,
1244 	    flags | ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_RETRY | ZIO_FLAG_DELEGATED,
1245 	    vd, offset, NULL,
1246 	    ZIO_STAGE_VDEV_IO_START >> 1, ZIO_VDEV_CHILD_PIPELINE);
1247 
1248 	return (zio);
1249 }
1250 
1251 void
zio_flush(zio_t * zio,vdev_t * vd)1252 zio_flush(zio_t *zio, vdev_t *vd)
1253 {
1254 	zio_nowait(zio_ioctl(zio, zio->io_spa, vd, DKIOCFLUSHWRITECACHE, 0, 0,
1255 	    NULL, NULL, ZIO_PRIORITY_NOW,
1256 	    ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_PROPAGATE | ZIO_FLAG_DONT_RETRY));
1257 }
1258 
1259 zio_t *
zio_trim(zio_t * zio,spa_t * spa,vdev_t * vd,uint64_t offset,uint64_t size)1260 zio_trim(zio_t *zio, spa_t *spa, vdev_t *vd, uint64_t offset, uint64_t size)
1261 {
1262 
1263 	ASSERT(vd->vdev_ops->vdev_op_leaf);
1264 
1265 	return (zio_create(zio, spa, 0, NULL, NULL, size, size, NULL, NULL,
1266 	    ZIO_TYPE_FREE, ZIO_PRIORITY_TRIM, ZIO_FLAG_DONT_AGGREGATE |
1267 	    ZIO_FLAG_CANFAIL | ZIO_FLAG_DONT_PROPAGATE | ZIO_FLAG_DONT_RETRY,
1268 	    vd, offset, NULL, ZIO_STAGE_OPEN, ZIO_FREE_PHYS_PIPELINE));
1269 }
1270 
1271 void
zio_shrink(zio_t * zio,uint64_t size)1272 zio_shrink(zio_t *zio, uint64_t size)
1273 {
1274 	ASSERT3P(zio->io_executor, ==, NULL);
1275 	ASSERT3P(zio->io_orig_size, ==, zio->io_size);
1276 	ASSERT3U(size, <=, zio->io_size);
1277 
1278 	/*
1279 	 * We don't shrink for raidz because of problems with the
1280 	 * reconstruction when reading back less than the block size.
1281 	 * Note, BP_IS_RAIDZ() assumes no compression.
1282 	 */
1283 	ASSERT(BP_GET_COMPRESS(zio->io_bp) == ZIO_COMPRESS_OFF);
1284 	if (!BP_IS_RAIDZ(zio->io_bp)) {
1285 		/* we are not doing a raw write */
1286 		ASSERT3U(zio->io_size, ==, zio->io_lsize);
1287 		zio->io_orig_size = zio->io_size = zio->io_lsize = size;
1288 	}
1289 }
1290 
1291 /*
1292  * ==========================================================================
1293  * Prepare to read and write logical blocks
1294  * ==========================================================================
1295  */
1296 
1297 static zio_t *
zio_read_bp_init(zio_t * zio)1298 zio_read_bp_init(zio_t *zio)
1299 {
1300 	blkptr_t *bp = zio->io_bp;
1301 
1302 	ASSERT3P(zio->io_bp, ==, &zio->io_bp_copy);
1303 
1304 	if (BP_GET_COMPRESS(bp) != ZIO_COMPRESS_OFF &&
1305 	    zio->io_child_type == ZIO_CHILD_LOGICAL &&
1306 	    !(zio->io_flags & ZIO_FLAG_RAW)) {
1307 		uint64_t psize =
1308 		    BP_IS_EMBEDDED(bp) ? BPE_GET_PSIZE(bp) : BP_GET_PSIZE(bp);
1309 		zio_push_transform(zio, abd_alloc_sametype(zio->io_abd, psize),
1310 		    psize, psize, zio_decompress);
1311 	}
1312 
1313 	if (BP_IS_EMBEDDED(bp) && BPE_GET_ETYPE(bp) == BP_EMBEDDED_TYPE_DATA) {
1314 		zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
1315 
1316 		int psize = BPE_GET_PSIZE(bp);
1317 		void *data = abd_borrow_buf(zio->io_abd, psize);
1318 		decode_embedded_bp_compressed(bp, data);
1319 		abd_return_buf_copy(zio->io_abd, data, psize);
1320 	} else {
1321 		ASSERT(!BP_IS_EMBEDDED(bp));
1322 		ASSERT3P(zio->io_bp, ==, &zio->io_bp_copy);
1323 	}
1324 
1325 	if (!DMU_OT_IS_METADATA(BP_GET_TYPE(bp)) && BP_GET_LEVEL(bp) == 0)
1326 		zio->io_flags |= ZIO_FLAG_DONT_CACHE;
1327 
1328 	if (BP_GET_TYPE(bp) == DMU_OT_DDT_ZAP)
1329 		zio->io_flags |= ZIO_FLAG_DONT_CACHE;
1330 
1331 	if (BP_GET_DEDUP(bp) && zio->io_child_type == ZIO_CHILD_LOGICAL)
1332 		zio->io_pipeline = ZIO_DDT_READ_PIPELINE;
1333 
1334 	return (zio);
1335 }
1336 
1337 static zio_t *
zio_write_bp_init(zio_t * zio)1338 zio_write_bp_init(zio_t *zio)
1339 {
1340 	if (!IO_IS_ALLOCATING(zio))
1341 		return (zio);
1342 
1343 	ASSERT(zio->io_child_type != ZIO_CHILD_DDT);
1344 
1345 	if (zio->io_bp_override) {
1346 		blkptr_t *bp = zio->io_bp;
1347 		zio_prop_t *zp = &zio->io_prop;
1348 
1349 		ASSERT(bp->blk_birth != zio->io_txg);
1350 		ASSERT(BP_GET_DEDUP(zio->io_bp_override) == 0);
1351 
1352 		*bp = *zio->io_bp_override;
1353 		zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
1354 
1355 		if (BP_IS_EMBEDDED(bp))
1356 			return (zio);
1357 
1358 		/*
1359 		 * If we've been overridden and nopwrite is set then
1360 		 * set the flag accordingly to indicate that a nopwrite
1361 		 * has already occurred.
1362 		 */
1363 		if (!BP_IS_HOLE(bp) && zp->zp_nopwrite) {
1364 			ASSERT(!zp->zp_dedup);
1365 			ASSERT3U(BP_GET_CHECKSUM(bp), ==, zp->zp_checksum);
1366 			zio->io_flags |= ZIO_FLAG_NOPWRITE;
1367 			return (zio);
1368 		}
1369 
1370 		ASSERT(!zp->zp_nopwrite);
1371 
1372 		if (BP_IS_HOLE(bp) || !zp->zp_dedup)
1373 			return (zio);
1374 
1375 		ASSERT((zio_checksum_table[zp->zp_checksum].ci_flags &
1376 		    ZCHECKSUM_FLAG_DEDUP) || zp->zp_dedup_verify);
1377 
1378 		if (BP_GET_CHECKSUM(bp) == zp->zp_checksum) {
1379 			BP_SET_DEDUP(bp, 1);
1380 			zio->io_pipeline |= ZIO_STAGE_DDT_WRITE;
1381 			return (zio);
1382 		}
1383 
1384 		/*
1385 		 * We were unable to handle this as an override bp, treat
1386 		 * it as a regular write I/O.
1387 		 */
1388 		zio->io_bp_override = NULL;
1389 		*bp = zio->io_bp_orig;
1390 		zio->io_pipeline = zio->io_orig_pipeline;
1391 	}
1392 
1393 	return (zio);
1394 }
1395 
1396 static zio_t *
zio_write_compress(zio_t * zio)1397 zio_write_compress(zio_t *zio)
1398 {
1399 	spa_t *spa = zio->io_spa;
1400 	zio_prop_t *zp = &zio->io_prop;
1401 	enum zio_compress compress = zp->zp_compress;
1402 	blkptr_t *bp = zio->io_bp;
1403 	uint64_t lsize = zio->io_lsize;
1404 	uint64_t psize = zio->io_size;
1405 	int pass = 1;
1406 
1407 	EQUIV(lsize != psize, (zio->io_flags & ZIO_FLAG_RAW) != 0);
1408 
1409 	/*
1410 	 * If our children haven't all reached the ready stage,
1411 	 * wait for them and then repeat this pipeline stage.
1412 	 */
1413 	if (zio_wait_for_children(zio, ZIO_CHILD_LOGICAL_BIT |
1414 	    ZIO_CHILD_GANG_BIT, ZIO_WAIT_READY)) {
1415 		return (NULL);
1416 	}
1417 
1418 	if (!IO_IS_ALLOCATING(zio))
1419 		return (zio);
1420 
1421 	if (zio->io_children_ready != NULL) {
1422 		/*
1423 		 * Now that all our children are ready, run the callback
1424 		 * associated with this zio in case it wants to modify the
1425 		 * data to be written.
1426 		 */
1427 		ASSERT3U(zp->zp_level, >, 0);
1428 		zio->io_children_ready(zio);
1429 	}
1430 
1431 	ASSERT(zio->io_child_type != ZIO_CHILD_DDT);
1432 	ASSERT(zio->io_bp_override == NULL);
1433 
1434 	if (!BP_IS_HOLE(bp) && bp->blk_birth == zio->io_txg) {
1435 		/*
1436 		 * We're rewriting an existing block, which means we're
1437 		 * working on behalf of spa_sync().  For spa_sync() to
1438 		 * converge, it must eventually be the case that we don't
1439 		 * have to allocate new blocks.  But compression changes
1440 		 * the blocksize, which forces a reallocate, and makes
1441 		 * convergence take longer.  Therefore, after the first
1442 		 * few passes, stop compressing to ensure convergence.
1443 		 */
1444 		pass = spa_sync_pass(spa);
1445 
1446 		ASSERT(zio->io_txg == spa_syncing_txg(spa));
1447 		ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
1448 		ASSERT(!BP_GET_DEDUP(bp));
1449 
1450 		if (pass >= zfs_sync_pass_dont_compress)
1451 			compress = ZIO_COMPRESS_OFF;
1452 
1453 		/* Make sure someone doesn't change their mind on overwrites */
1454 		ASSERT(BP_IS_EMBEDDED(bp) || MIN(zp->zp_copies + BP_IS_GANG(bp),
1455 		    spa_max_replication(spa)) == BP_GET_NDVAS(bp));
1456 	}
1457 
1458 	/* If it's a compressed write that is not raw, compress the buffer. */
1459 	if (compress != ZIO_COMPRESS_OFF && psize == lsize) {
1460 		void *cbuf = zio_buf_alloc(lsize);
1461 		psize = zio_compress_data(compress, zio->io_abd, cbuf, lsize);
1462 		if (psize == 0 || psize == lsize) {
1463 			compress = ZIO_COMPRESS_OFF;
1464 			zio_buf_free(cbuf, lsize);
1465 		} else if (!zp->zp_dedup && psize <= BPE_PAYLOAD_SIZE &&
1466 		    zp->zp_level == 0 && !DMU_OT_HAS_FILL(zp->zp_type) &&
1467 		    spa_feature_is_enabled(spa, SPA_FEATURE_EMBEDDED_DATA)) {
1468 			encode_embedded_bp_compressed(bp,
1469 			    cbuf, compress, lsize, psize);
1470 			BPE_SET_ETYPE(bp, BP_EMBEDDED_TYPE_DATA);
1471 			BP_SET_TYPE(bp, zio->io_prop.zp_type);
1472 			BP_SET_LEVEL(bp, zio->io_prop.zp_level);
1473 			zio_buf_free(cbuf, lsize);
1474 			bp->blk_birth = zio->io_txg;
1475 			zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
1476 			ASSERT(spa_feature_is_active(spa,
1477 			    SPA_FEATURE_EMBEDDED_DATA));
1478 			return (zio);
1479 		} else {
1480 			/*
1481 			 * Round up compressed size up to the ashift
1482 			 * of the smallest-ashift device, and zero the tail.
1483 			 * This ensures that the compressed size of the BP
1484 			 * (and thus compressratio property) are correct,
1485 			 * in that we charge for the padding used to fill out
1486 			 * the last sector.
1487 			 */
1488 			ASSERT3U(spa->spa_min_ashift, >=, SPA_MINBLOCKSHIFT);
1489 			size_t rounded = (size_t)P2ROUNDUP(psize,
1490 			    1ULL << spa->spa_min_ashift);
1491 			if (rounded >= lsize) {
1492 				compress = ZIO_COMPRESS_OFF;
1493 				zio_buf_free(cbuf, lsize);
1494 				psize = lsize;
1495 			} else {
1496 				abd_t *cdata = abd_get_from_buf(cbuf, lsize);
1497 				abd_take_ownership_of_buf(cdata, B_TRUE);
1498 				abd_zero_off(cdata, psize, rounded - psize);
1499 				psize = rounded;
1500 				zio_push_transform(zio, cdata,
1501 				    psize, lsize, NULL);
1502 			}
1503 		}
1504 
1505 		/*
1506 		 * We were unable to handle this as an override bp, treat
1507 		 * it as a regular write I/O.
1508 		 */
1509 		zio->io_bp_override = NULL;
1510 		*bp = zio->io_bp_orig;
1511 		zio->io_pipeline = zio->io_orig_pipeline;
1512 	} else {
1513 		ASSERT3U(psize, !=, 0);
1514 	}
1515 
1516 	/*
1517 	 * The final pass of spa_sync() must be all rewrites, but the first
1518 	 * few passes offer a trade-off: allocating blocks defers convergence,
1519 	 * but newly allocated blocks are sequential, so they can be written
1520 	 * to disk faster.  Therefore, we allow the first few passes of
1521 	 * spa_sync() to allocate new blocks, but force rewrites after that.
1522 	 * There should only be a handful of blocks after pass 1 in any case.
1523 	 */
1524 	if (!BP_IS_HOLE(bp) && bp->blk_birth == zio->io_txg &&
1525 	    BP_GET_PSIZE(bp) == psize &&
1526 	    pass >= zfs_sync_pass_rewrite) {
1527 		ASSERT(psize != 0);
1528 		enum zio_stage gang_stages = zio->io_pipeline & ZIO_GANG_STAGES;
1529 		zio->io_pipeline = ZIO_REWRITE_PIPELINE | gang_stages;
1530 		zio->io_flags |= ZIO_FLAG_IO_REWRITE;
1531 	} else {
1532 		BP_ZERO(bp);
1533 		zio->io_pipeline = ZIO_WRITE_PIPELINE;
1534 	}
1535 
1536 	if (psize == 0) {
1537 		if (zio->io_bp_orig.blk_birth != 0 &&
1538 		    spa_feature_is_active(spa, SPA_FEATURE_HOLE_BIRTH)) {
1539 			BP_SET_LSIZE(bp, lsize);
1540 			BP_SET_TYPE(bp, zp->zp_type);
1541 			BP_SET_LEVEL(bp, zp->zp_level);
1542 			BP_SET_BIRTH(bp, zio->io_txg, 0);
1543 		}
1544 		zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
1545 	} else {
1546 		ASSERT(zp->zp_checksum != ZIO_CHECKSUM_GANG_HEADER);
1547 		BP_SET_LSIZE(bp, lsize);
1548 		BP_SET_TYPE(bp, zp->zp_type);
1549 		BP_SET_LEVEL(bp, zp->zp_level);
1550 		BP_SET_PSIZE(bp, psize);
1551 		BP_SET_COMPRESS(bp, compress);
1552 		BP_SET_CHECKSUM(bp, zp->zp_checksum);
1553 		BP_SET_DEDUP(bp, zp->zp_dedup);
1554 		BP_SET_BYTEORDER(bp, ZFS_HOST_BYTEORDER);
1555 		if (zp->zp_dedup) {
1556 			ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
1557 			ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REWRITE));
1558 			zio->io_pipeline = ZIO_DDT_WRITE_PIPELINE;
1559 		}
1560 		if (zp->zp_nopwrite) {
1561 			ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
1562 			ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REWRITE));
1563 			zio->io_pipeline |= ZIO_STAGE_NOP_WRITE;
1564 		}
1565 	}
1566 	return (zio);
1567 }
1568 
1569 static zio_t *
zio_free_bp_init(zio_t * zio)1570 zio_free_bp_init(zio_t *zio)
1571 {
1572 	blkptr_t *bp = zio->io_bp;
1573 
1574 	if (zio->io_child_type == ZIO_CHILD_LOGICAL) {
1575 		if (BP_GET_DEDUP(bp))
1576 			zio->io_pipeline = ZIO_DDT_FREE_PIPELINE;
1577 	}
1578 
1579 	ASSERT3P(zio->io_bp, ==, &zio->io_bp_copy);
1580 
1581 	return (zio);
1582 }
1583 
1584 /*
1585  * ==========================================================================
1586  * Execute the I/O pipeline
1587  * ==========================================================================
1588  */
1589 
1590 static void
zio_taskq_dispatch(zio_t * zio,zio_taskq_type_t q,boolean_t cutinline)1591 zio_taskq_dispatch(zio_t *zio, zio_taskq_type_t q, boolean_t cutinline)
1592 {
1593 	spa_t *spa = zio->io_spa;
1594 	zio_type_t t = zio->io_type;
1595 	int flags = (cutinline ? TQ_FRONT : 0);
1596 
1597 	ASSERT(q == ZIO_TASKQ_ISSUE || q == ZIO_TASKQ_INTERRUPT);
1598 
1599 	/*
1600 	 * If we're a config writer or a probe, the normal issue and
1601 	 * interrupt threads may all be blocked waiting for the config lock.
1602 	 * In this case, select the otherwise-unused taskq for ZIO_TYPE_NULL.
1603 	 */
1604 	if (zio->io_flags & (ZIO_FLAG_CONFIG_WRITER | ZIO_FLAG_PROBE))
1605 		t = ZIO_TYPE_NULL;
1606 
1607 	/*
1608 	 * A similar issue exists for the L2ARC write thread until L2ARC 2.0.
1609 	 */
1610 	if (t == ZIO_TYPE_WRITE && zio->io_vd && zio->io_vd->vdev_aux)
1611 		t = ZIO_TYPE_NULL;
1612 
1613 	/*
1614 	 * If this is a high priority I/O, then use the high priority taskq if
1615 	 * available.
1616 	 */
1617 	if ((zio->io_priority == ZIO_PRIORITY_NOW ||
1618 	    zio->io_priority == ZIO_PRIORITY_SYNC_WRITE) &&
1619 	    spa->spa_zio_taskq[t][q + 1].stqs_count != 0)
1620 		q++;
1621 
1622 	ASSERT3U(q, <, ZIO_TASKQ_TYPES);
1623 
1624 	/*
1625 	 * NB: We are assuming that the zio can only be dispatched
1626 	 * to a single taskq at a time.  It would be a grievous error
1627 	 * to dispatch the zio to another taskq at the same time.
1628 	 */
1629 #if defined(illumos) || !defined(_KERNEL)
1630 	ASSERT(zio->io_tqent.tqent_next == NULL);
1631 #else
1632 	ASSERT(zio->io_tqent.tqent_task.ta_pending == 0);
1633 #endif
1634 	spa_taskq_dispatch_ent(spa, t, q, (task_func_t *)zio_execute, zio,
1635 	    flags, &zio->io_tqent);
1636 }
1637 
1638 static boolean_t
zio_taskq_member(zio_t * zio,zio_taskq_type_t q)1639 zio_taskq_member(zio_t *zio, zio_taskq_type_t q)
1640 {
1641 	kthread_t *executor = zio->io_executor;
1642 	spa_t *spa = zio->io_spa;
1643 
1644 	for (zio_type_t t = 0; t < ZIO_TYPES; t++) {
1645 		spa_taskqs_t *tqs = &spa->spa_zio_taskq[t][q];
1646 		uint_t i;
1647 		for (i = 0; i < tqs->stqs_count; i++) {
1648 			if (taskq_member(tqs->stqs_taskq[i], executor))
1649 				return (B_TRUE);
1650 		}
1651 	}
1652 
1653 	return (B_FALSE);
1654 }
1655 
1656 static zio_t *
zio_issue_async(zio_t * zio)1657 zio_issue_async(zio_t *zio)
1658 {
1659 	zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, B_FALSE);
1660 
1661 	return (NULL);
1662 }
1663 
1664 void
zio_interrupt(zio_t * zio)1665 zio_interrupt(zio_t *zio)
1666 {
1667 	zio_taskq_dispatch(zio, ZIO_TASKQ_INTERRUPT, B_FALSE);
1668 }
1669 
1670 void
zio_delay_interrupt(zio_t * zio)1671 zio_delay_interrupt(zio_t *zio)
1672 {
1673 	/*
1674 	 * The timeout_generic() function isn't defined in userspace, so
1675 	 * rather than trying to implement the function, the zio delay
1676 	 * functionality has been disabled for userspace builds.
1677 	 */
1678 
1679 #ifdef _KERNEL
1680 	/*
1681 	 * If io_target_timestamp is zero, then no delay has been registered
1682 	 * for this IO, thus jump to the end of this function and "skip" the
1683 	 * delay; issuing it directly to the zio layer.
1684 	 */
1685 	if (zio->io_target_timestamp != 0) {
1686 		hrtime_t now = gethrtime();
1687 
1688 		if (now >= zio->io_target_timestamp) {
1689 			/*
1690 			 * This IO has already taken longer than the target
1691 			 * delay to complete, so we don't want to delay it
1692 			 * any longer; we "miss" the delay and issue it
1693 			 * directly to the zio layer. This is likely due to
1694 			 * the target latency being set to a value less than
1695 			 * the underlying hardware can satisfy (e.g. delay
1696 			 * set to 1ms, but the disks take 10ms to complete an
1697 			 * IO request).
1698 			 */
1699 
1700 			DTRACE_PROBE2(zio__delay__miss, zio_t *, zio,
1701 			    hrtime_t, now);
1702 
1703 			zio_interrupt(zio);
1704 		} else {
1705 			hrtime_t diff = zio->io_target_timestamp - now;
1706 
1707 			DTRACE_PROBE3(zio__delay__hit, zio_t *, zio,
1708 			    hrtime_t, now, hrtime_t, diff);
1709 
1710 			(void) timeout_generic(CALLOUT_NORMAL,
1711 			    (void (*)(void *))zio_interrupt, zio, diff, 1, 0);
1712 		}
1713 
1714 		return;
1715 	}
1716 #endif
1717 
1718 	DTRACE_PROBE1(zio__delay__skip, zio_t *, zio);
1719 	zio_interrupt(zio);
1720 }
1721 
1722 /*
1723  * Execute the I/O pipeline until one of the following occurs:
1724  *
1725  *	(1) the I/O completes
1726  *	(2) the pipeline stalls waiting for dependent child I/Os
1727  *	(3) the I/O issues, so we're waiting for an I/O completion interrupt
1728  *	(4) the I/O is delegated by vdev-level caching or aggregation
1729  *	(5) the I/O is deferred due to vdev-level queueing
1730  *	(6) the I/O is handed off to another thread.
1731  *
1732  * In all cases, the pipeline stops whenever there's no CPU work; it never
1733  * burns a thread in cv_wait().
1734  *
1735  * There's no locking on io_stage because there's no legitimate way
1736  * for multiple threads to be attempting to process the same I/O.
1737  */
1738 static zio_pipe_stage_t *zio_pipeline[];
1739 
1740 void
zio_execute(zio_t * zio)1741 zio_execute(zio_t *zio)
1742 {
1743 	ASSERT3U(zio->io_queued_timestamp, >, 0);
1744 
1745 	while (zio->io_stage < ZIO_STAGE_DONE) {
1746 		enum zio_stage pipeline = zio->io_pipeline;
1747 		enum zio_stage stage = zio->io_stage;
1748 
1749 		zio->io_executor = curthread;
1750 
1751 		ASSERT(!MUTEX_HELD(&zio->io_lock));
1752 		ASSERT(ISP2(stage));
1753 		ASSERT(zio->io_stall == NULL);
1754 
1755 		do {
1756 			stage <<= 1;
1757 		} while ((stage & pipeline) == 0);
1758 
1759 		ASSERT(stage <= ZIO_STAGE_DONE);
1760 
1761 		/*
1762 		 * If we are in interrupt context and this pipeline stage
1763 		 * will grab a config lock that is held across I/O,
1764 		 * or may wait for an I/O that needs an interrupt thread
1765 		 * to complete, issue async to avoid deadlock.
1766 		 *
1767 		 * For VDEV_IO_START, we cut in line so that the io will
1768 		 * be sent to disk promptly.
1769 		 */
1770 		if ((stage & ZIO_BLOCKING_STAGES) && zio->io_vd == NULL &&
1771 		    zio_taskq_member(zio, ZIO_TASKQ_INTERRUPT)) {
1772 			boolean_t cut = (stage == ZIO_STAGE_VDEV_IO_START) ?
1773 			    zio_requeue_io_start_cut_in_line : B_FALSE;
1774 			zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, cut);
1775 			return;
1776 		}
1777 
1778 		zio->io_stage = stage;
1779 		zio->io_pipeline_trace |= zio->io_stage;
1780 
1781 		/*
1782 		 * The zio pipeline stage returns the next zio to execute
1783 		 * (typically the same as this one), or NULL if we should
1784 		 * stop.
1785 		 */
1786 		zio = zio_pipeline[highbit64(stage) - 1](zio);
1787 
1788 		if (zio == NULL)
1789 			return;
1790 	}
1791 }
1792 
1793 /*
1794  * ==========================================================================
1795  * Initiate I/O, either sync or async
1796  * ==========================================================================
1797  */
1798 int
zio_wait(zio_t * zio)1799 zio_wait(zio_t *zio)
1800 {
1801 	int error;
1802 
1803 	ASSERT3P(zio->io_stage, ==, ZIO_STAGE_OPEN);
1804 	ASSERT3P(zio->io_executor, ==, NULL);
1805 
1806 	zio->io_waiter = curthread;
1807 	ASSERT0(zio->io_queued_timestamp);
1808 	zio->io_queued_timestamp = gethrtime();
1809 
1810 	zio_execute(zio);
1811 
1812 	mutex_enter(&zio->io_lock);
1813 	while (zio->io_executor != NULL)
1814 		cv_wait(&zio->io_cv, &zio->io_lock);
1815 	mutex_exit(&zio->io_lock);
1816 
1817 	error = zio->io_error;
1818 	zio_destroy(zio);
1819 
1820 	return (error);
1821 }
1822 
1823 void
zio_nowait(zio_t * zio)1824 zio_nowait(zio_t *zio)
1825 {
1826 	ASSERT3P(zio->io_executor, ==, NULL);
1827 
1828 	if (zio->io_child_type == ZIO_CHILD_LOGICAL &&
1829 	    zio_unique_parent(zio) == NULL) {
1830 		/*
1831 		 * This is a logical async I/O with no parent to wait for it.
1832 		 * We add it to the spa_async_root_zio "Godfather" I/O which
1833 		 * will ensure they complete prior to unloading the pool.
1834 		 */
1835 		spa_t *spa = zio->io_spa;
1836 
1837 		zio_add_child(spa->spa_async_zio_root[CPU_SEQID], zio);
1838 	}
1839 
1840 	ASSERT0(zio->io_queued_timestamp);
1841 	zio->io_queued_timestamp = gethrtime();
1842 	zio_execute(zio);
1843 }
1844 
1845 /*
1846  * ==========================================================================
1847  * Reexecute, cancel, or suspend/resume failed I/O
1848  * ==========================================================================
1849  */
1850 
1851 static void
zio_reexecute(zio_t * pio)1852 zio_reexecute(zio_t *pio)
1853 {
1854 	zio_t *cio, *cio_next;
1855 
1856 	ASSERT(pio->io_child_type == ZIO_CHILD_LOGICAL);
1857 	ASSERT(pio->io_orig_stage == ZIO_STAGE_OPEN);
1858 	ASSERT(pio->io_gang_leader == NULL);
1859 	ASSERT(pio->io_gang_tree == NULL);
1860 
1861 	pio->io_flags = pio->io_orig_flags;
1862 	pio->io_stage = pio->io_orig_stage;
1863 	pio->io_pipeline = pio->io_orig_pipeline;
1864 	pio->io_reexecute = 0;
1865 	pio->io_flags |= ZIO_FLAG_REEXECUTED;
1866 	pio->io_pipeline_trace = 0;
1867 	pio->io_error = 0;
1868 	for (int w = 0; w < ZIO_WAIT_TYPES; w++)
1869 		pio->io_state[w] = 0;
1870 	for (int c = 0; c < ZIO_CHILD_TYPES; c++)
1871 		pio->io_child_error[c] = 0;
1872 
1873 	if (IO_IS_ALLOCATING(pio))
1874 		BP_ZERO(pio->io_bp);
1875 
1876 	/*
1877 	 * As we reexecute pio's children, new children could be created.
1878 	 * New children go to the head of pio's io_child_list, however,
1879 	 * so we will (correctly) not reexecute them.  The key is that
1880 	 * the remainder of pio's io_child_list, from 'cio_next' onward,
1881 	 * cannot be affected by any side effects of reexecuting 'cio'.
1882 	 */
1883 	zio_link_t *zl = NULL;
1884 	mutex_enter(&pio->io_lock);
1885 	for (cio = zio_walk_children(pio, &zl); cio != NULL; cio = cio_next) {
1886 		cio_next = zio_walk_children(pio, &zl);
1887 		for (int w = 0; w < ZIO_WAIT_TYPES; w++)
1888 			pio->io_children[cio->io_child_type][w]++;
1889 		mutex_exit(&pio->io_lock);
1890 		zio_reexecute(cio);
1891 		mutex_enter(&pio->io_lock);
1892 	}
1893 	mutex_exit(&pio->io_lock);
1894 
1895 	/*
1896 	 * Now that all children have been reexecuted, execute the parent.
1897 	 * We don't reexecute "The Godfather" I/O here as it's the
1898 	 * responsibility of the caller to wait on it.
1899 	 */
1900 	if (!(pio->io_flags & ZIO_FLAG_GODFATHER)) {
1901 		pio->io_queued_timestamp = gethrtime();
1902 		zio_execute(pio);
1903 	}
1904 }
1905 
1906 void
zio_suspend(spa_t * spa,zio_t * zio)1907 zio_suspend(spa_t *spa, zio_t *zio)
1908 {
1909 	if (spa_get_failmode(spa) == ZIO_FAILURE_MODE_PANIC)
1910 		fm_panic("Pool '%s' has encountered an uncorrectable I/O "
1911 		    "failure and the failure mode property for this pool "
1912 		    "is set to panic.", spa_name(spa));
1913 
1914 	zfs_ereport_post(FM_EREPORT_ZFS_IO_FAILURE, spa, NULL, NULL, 0, 0);
1915 
1916 	mutex_enter(&spa->spa_suspend_lock);
1917 
1918 	if (spa->spa_suspend_zio_root == NULL)
1919 		spa->spa_suspend_zio_root = zio_root(spa, NULL, NULL,
1920 		    ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE |
1921 		    ZIO_FLAG_GODFATHER);
1922 
1923 	spa->spa_suspended = B_TRUE;
1924 
1925 	if (zio != NULL) {
1926 		ASSERT(!(zio->io_flags & ZIO_FLAG_GODFATHER));
1927 		ASSERT(zio != spa->spa_suspend_zio_root);
1928 		ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
1929 		ASSERT(zio_unique_parent(zio) == NULL);
1930 		ASSERT(zio->io_stage == ZIO_STAGE_DONE);
1931 		zio_add_child(spa->spa_suspend_zio_root, zio);
1932 	}
1933 
1934 	mutex_exit(&spa->spa_suspend_lock);
1935 }
1936 
1937 int
zio_resume(spa_t * spa)1938 zio_resume(spa_t *spa)
1939 {
1940 	zio_t *pio;
1941 
1942 	/*
1943 	 * Reexecute all previously suspended i/o.
1944 	 */
1945 	mutex_enter(&spa->spa_suspend_lock);
1946 	spa->spa_suspended = B_FALSE;
1947 	cv_broadcast(&spa->spa_suspend_cv);
1948 	pio = spa->spa_suspend_zio_root;
1949 	spa->spa_suspend_zio_root = NULL;
1950 	mutex_exit(&spa->spa_suspend_lock);
1951 
1952 	if (pio == NULL)
1953 		return (0);
1954 
1955 	zio_reexecute(pio);
1956 	return (zio_wait(pio));
1957 }
1958 
1959 void
zio_resume_wait(spa_t * spa)1960 zio_resume_wait(spa_t *spa)
1961 {
1962 	mutex_enter(&spa->spa_suspend_lock);
1963 	while (spa_suspended(spa))
1964 		cv_wait(&spa->spa_suspend_cv, &spa->spa_suspend_lock);
1965 	mutex_exit(&spa->spa_suspend_lock);
1966 }
1967 
1968 /*
1969  * ==========================================================================
1970  * Gang blocks.
1971  *
1972  * A gang block is a collection of small blocks that looks to the DMU
1973  * like one large block.  When zio_dva_allocate() cannot find a block
1974  * of the requested size, due to either severe fragmentation or the pool
1975  * being nearly full, it calls zio_write_gang_block() to construct the
1976  * block from smaller fragments.
1977  *
1978  * A gang block consists of a gang header (zio_gbh_phys_t) and up to
1979  * three (SPA_GBH_NBLKPTRS) gang members.  The gang header is just like
1980  * an indirect block: it's an array of block pointers.  It consumes
1981  * only one sector and hence is allocatable regardless of fragmentation.
1982  * The gang header's bps point to its gang members, which hold the data.
1983  *
1984  * Gang blocks are self-checksumming, using the bp's <vdev, offset, txg>
1985  * as the verifier to ensure uniqueness of the SHA256 checksum.
1986  * Critically, the gang block bp's blk_cksum is the checksum of the data,
1987  * not the gang header.  This ensures that data block signatures (needed for
1988  * deduplication) are independent of how the block is physically stored.
1989  *
1990  * Gang blocks can be nested: a gang member may itself be a gang block.
1991  * Thus every gang block is a tree in which root and all interior nodes are
1992  * gang headers, and the leaves are normal blocks that contain user data.
1993  * The root of the gang tree is called the gang leader.
1994  *
1995  * To perform any operation (read, rewrite, free, claim) on a gang block,
1996  * zio_gang_assemble() first assembles the gang tree (minus data leaves)
1997  * in the io_gang_tree field of the original logical i/o by recursively
1998  * reading the gang leader and all gang headers below it.  This yields
1999  * an in-core tree containing the contents of every gang header and the
2000  * bps for every constituent of the gang block.
2001  *
2002  * With the gang tree now assembled, zio_gang_issue() just walks the gang tree
2003  * and invokes a callback on each bp.  To free a gang block, zio_gang_issue()
2004  * calls zio_free_gang() -- a trivial wrapper around zio_free() -- for each bp.
2005  * zio_claim_gang() provides a similarly trivial wrapper for zio_claim().
2006  * zio_read_gang() is a wrapper around zio_read() that omits reading gang
2007  * headers, since we already have those in io_gang_tree.  zio_rewrite_gang()
2008  * performs a zio_rewrite() of the data or, for gang headers, a zio_rewrite()
2009  * of the gang header plus zio_checksum_compute() of the data to update the
2010  * gang header's blk_cksum as described above.
2011  *
2012  * The two-phase assemble/issue model solves the problem of partial failure --
2013  * what if you'd freed part of a gang block but then couldn't read the
2014  * gang header for another part?  Assembling the entire gang tree first
2015  * ensures that all the necessary gang header I/O has succeeded before
2016  * starting the actual work of free, claim, or write.  Once the gang tree
2017  * is assembled, free and claim are in-memory operations that cannot fail.
2018  *
2019  * In the event that a gang write fails, zio_dva_unallocate() walks the
2020  * gang tree to immediately free (i.e. insert back into the space map)
2021  * everything we've allocated.  This ensures that we don't get ENOSPC
2022  * errors during repeated suspend/resume cycles due to a flaky device.
2023  *
2024  * Gang rewrites only happen during sync-to-convergence.  If we can't assemble
2025  * the gang tree, we won't modify the block, so we can safely defer the free
2026  * (knowing that the block is still intact).  If we *can* assemble the gang
2027  * tree, then even if some of the rewrites fail, zio_dva_unallocate() will free
2028  * each constituent bp and we can allocate a new block on the next sync pass.
2029  *
2030  * In all cases, the gang tree allows complete recovery from partial failure.
2031  * ==========================================================================
2032  */
2033 
2034 static void
zio_gang_issue_func_done(zio_t * zio)2035 zio_gang_issue_func_done(zio_t *zio)
2036 {
2037 	abd_put(zio->io_abd);
2038 }
2039 
2040 static zio_t *
zio_read_gang(zio_t * pio,blkptr_t * bp,zio_gang_node_t * gn,abd_t * data,uint64_t offset)2041 zio_read_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data,
2042     uint64_t offset)
2043 {
2044 	if (gn != NULL)
2045 		return (pio);
2046 
2047 	return (zio_read(pio, pio->io_spa, bp, abd_get_offset(data, offset),
2048 	    BP_GET_PSIZE(bp), zio_gang_issue_func_done,
2049 	    NULL, pio->io_priority, ZIO_GANG_CHILD_FLAGS(pio),
2050 	    &pio->io_bookmark));
2051 }
2052 
2053 static zio_t *
zio_rewrite_gang(zio_t * pio,blkptr_t * bp,zio_gang_node_t * gn,abd_t * data,uint64_t offset)2054 zio_rewrite_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data,
2055     uint64_t offset)
2056 {
2057 	zio_t *zio;
2058 
2059 	if (gn != NULL) {
2060 		abd_t *gbh_abd =
2061 		    abd_get_from_buf(gn->gn_gbh, SPA_GANGBLOCKSIZE);
2062 		zio = zio_rewrite(pio, pio->io_spa, pio->io_txg, bp,
2063 		    gbh_abd, SPA_GANGBLOCKSIZE, zio_gang_issue_func_done, NULL,
2064 		    pio->io_priority, ZIO_GANG_CHILD_FLAGS(pio),
2065 		    &pio->io_bookmark);
2066 		/*
2067 		 * As we rewrite each gang header, the pipeline will compute
2068 		 * a new gang block header checksum for it; but no one will
2069 		 * compute a new data checksum, so we do that here.  The one
2070 		 * exception is the gang leader: the pipeline already computed
2071 		 * its data checksum because that stage precedes gang assembly.
2072 		 * (Presently, nothing actually uses interior data checksums;
2073 		 * this is just good hygiene.)
2074 		 */
2075 		if (gn != pio->io_gang_leader->io_gang_tree) {
2076 			abd_t *buf = abd_get_offset(data, offset);
2077 
2078 			zio_checksum_compute(zio, BP_GET_CHECKSUM(bp),
2079 			    buf, BP_GET_PSIZE(bp));
2080 
2081 			abd_put(buf);
2082 		}
2083 		/*
2084 		 * If we are here to damage data for testing purposes,
2085 		 * leave the GBH alone so that we can detect the damage.
2086 		 */
2087 		if (pio->io_gang_leader->io_flags & ZIO_FLAG_INDUCE_DAMAGE)
2088 			zio->io_pipeline &= ~ZIO_VDEV_IO_STAGES;
2089 	} else {
2090 		zio = zio_rewrite(pio, pio->io_spa, pio->io_txg, bp,
2091 		    abd_get_offset(data, offset), BP_GET_PSIZE(bp),
2092 		    zio_gang_issue_func_done, NULL, pio->io_priority,
2093 		    ZIO_GANG_CHILD_FLAGS(pio), &pio->io_bookmark);
2094 	}
2095 
2096 	return (zio);
2097 }
2098 
2099 /* ARGSUSED */
2100 static zio_t *
zio_free_gang(zio_t * pio,blkptr_t * bp,zio_gang_node_t * gn,abd_t * data,uint64_t offset)2101 zio_free_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data,
2102     uint64_t offset)
2103 {
2104 	return (zio_free_sync(pio, pio->io_spa, pio->io_txg, bp,
2105 	    BP_IS_GANG(bp) ? SPA_GANGBLOCKSIZE : BP_GET_PSIZE(bp),
2106 	    ZIO_GANG_CHILD_FLAGS(pio)));
2107 }
2108 
2109 /* ARGSUSED */
2110 static zio_t *
zio_claim_gang(zio_t * pio,blkptr_t * bp,zio_gang_node_t * gn,abd_t * data,uint64_t offset)2111 zio_claim_gang(zio_t *pio, blkptr_t *bp, zio_gang_node_t *gn, abd_t *data,
2112     uint64_t offset)
2113 {
2114 	return (zio_claim(pio, pio->io_spa, pio->io_txg, bp,
2115 	    NULL, NULL, ZIO_GANG_CHILD_FLAGS(pio)));
2116 }
2117 
2118 static zio_gang_issue_func_t *zio_gang_issue_func[ZIO_TYPES] = {
2119 	NULL,
2120 	zio_read_gang,
2121 	zio_rewrite_gang,
2122 	zio_free_gang,
2123 	zio_claim_gang,
2124 	NULL
2125 };
2126 
2127 static void zio_gang_tree_assemble_done(zio_t *zio);
2128 
2129 static zio_gang_node_t *
zio_gang_node_alloc(zio_gang_node_t ** gnpp)2130 zio_gang_node_alloc(zio_gang_node_t **gnpp)
2131 {
2132 	zio_gang_node_t *gn;
2133 
2134 	ASSERT(*gnpp == NULL);
2135 
2136 	gn = kmem_zalloc(sizeof (*gn), KM_SLEEP);
2137 	gn->gn_gbh = zio_buf_alloc(SPA_GANGBLOCKSIZE);
2138 	*gnpp = gn;
2139 
2140 	return (gn);
2141 }
2142 
2143 static void
zio_gang_node_free(zio_gang_node_t ** gnpp)2144 zio_gang_node_free(zio_gang_node_t **gnpp)
2145 {
2146 	zio_gang_node_t *gn = *gnpp;
2147 
2148 	for (int g = 0; g < SPA_GBH_NBLKPTRS; g++)
2149 		ASSERT(gn->gn_child[g] == NULL);
2150 
2151 	zio_buf_free(gn->gn_gbh, SPA_GANGBLOCKSIZE);
2152 	kmem_free(gn, sizeof (*gn));
2153 	*gnpp = NULL;
2154 }
2155 
2156 static void
zio_gang_tree_free(zio_gang_node_t ** gnpp)2157 zio_gang_tree_free(zio_gang_node_t **gnpp)
2158 {
2159 	zio_gang_node_t *gn = *gnpp;
2160 
2161 	if (gn == NULL)
2162 		return;
2163 
2164 	for (int g = 0; g < SPA_GBH_NBLKPTRS; g++)
2165 		zio_gang_tree_free(&gn->gn_child[g]);
2166 
2167 	zio_gang_node_free(gnpp);
2168 }
2169 
2170 static void
zio_gang_tree_assemble(zio_t * gio,blkptr_t * bp,zio_gang_node_t ** gnpp)2171 zio_gang_tree_assemble(zio_t *gio, blkptr_t *bp, zio_gang_node_t **gnpp)
2172 {
2173 	zio_gang_node_t *gn = zio_gang_node_alloc(gnpp);
2174 	abd_t *gbh_abd = abd_get_from_buf(gn->gn_gbh, SPA_GANGBLOCKSIZE);
2175 
2176 	ASSERT(gio->io_gang_leader == gio);
2177 	ASSERT(BP_IS_GANG(bp));
2178 
2179 	zio_nowait(zio_read(gio, gio->io_spa, bp, gbh_abd, SPA_GANGBLOCKSIZE,
2180 	    zio_gang_tree_assemble_done, gn, gio->io_priority,
2181 	    ZIO_GANG_CHILD_FLAGS(gio), &gio->io_bookmark));
2182 }
2183 
2184 static void
zio_gang_tree_assemble_done(zio_t * zio)2185 zio_gang_tree_assemble_done(zio_t *zio)
2186 {
2187 	zio_t *gio = zio->io_gang_leader;
2188 	zio_gang_node_t *gn = zio->io_private;
2189 	blkptr_t *bp = zio->io_bp;
2190 
2191 	ASSERT(gio == zio_unique_parent(zio));
2192 	ASSERT(zio->io_child_count == 0);
2193 
2194 	if (zio->io_error)
2195 		return;
2196 
2197 	/* this ABD was created from a linear buf in zio_gang_tree_assemble */
2198 	if (BP_SHOULD_BYTESWAP(bp))
2199 		byteswap_uint64_array(abd_to_buf(zio->io_abd), zio->io_size);
2200 
2201 	ASSERT3P(abd_to_buf(zio->io_abd), ==, gn->gn_gbh);
2202 	ASSERT(zio->io_size == SPA_GANGBLOCKSIZE);
2203 	ASSERT(gn->gn_gbh->zg_tail.zec_magic == ZEC_MAGIC);
2204 
2205 	abd_put(zio->io_abd);
2206 
2207 	for (int g = 0; g < SPA_GBH_NBLKPTRS; g++) {
2208 		blkptr_t *gbp = &gn->gn_gbh->zg_blkptr[g];
2209 		if (!BP_IS_GANG(gbp))
2210 			continue;
2211 		zio_gang_tree_assemble(gio, gbp, &gn->gn_child[g]);
2212 	}
2213 }
2214 
2215 static void
zio_gang_tree_issue(zio_t * pio,zio_gang_node_t * gn,blkptr_t * bp,abd_t * data,uint64_t offset)2216 zio_gang_tree_issue(zio_t *pio, zio_gang_node_t *gn, blkptr_t *bp, abd_t *data,
2217     uint64_t offset)
2218 {
2219 	zio_t *gio = pio->io_gang_leader;
2220 	zio_t *zio;
2221 
2222 	ASSERT(BP_IS_GANG(bp) == !!gn);
2223 	ASSERT(BP_GET_CHECKSUM(bp) == BP_GET_CHECKSUM(gio->io_bp));
2224 	ASSERT(BP_GET_LSIZE(bp) == BP_GET_PSIZE(bp) || gn == gio->io_gang_tree);
2225 
2226 	/*
2227 	 * If you're a gang header, your data is in gn->gn_gbh.
2228 	 * If you're a gang member, your data is in 'data' and gn == NULL.
2229 	 */
2230 	zio = zio_gang_issue_func[gio->io_type](pio, bp, gn, data, offset);
2231 
2232 	if (gn != NULL) {
2233 		ASSERT(gn->gn_gbh->zg_tail.zec_magic == ZEC_MAGIC);
2234 
2235 		for (int g = 0; g < SPA_GBH_NBLKPTRS; g++) {
2236 			blkptr_t *gbp = &gn->gn_gbh->zg_blkptr[g];
2237 			if (BP_IS_HOLE(gbp))
2238 				continue;
2239 			zio_gang_tree_issue(zio, gn->gn_child[g], gbp, data,
2240 			    offset);
2241 			offset += BP_GET_PSIZE(gbp);
2242 		}
2243 	}
2244 
2245 	if (gn == gio->io_gang_tree && gio->io_abd != NULL)
2246 		ASSERT3U(gio->io_size, ==, offset);
2247 
2248 	if (zio != pio)
2249 		zio_nowait(zio);
2250 }
2251 
2252 static zio_t *
zio_gang_assemble(zio_t * zio)2253 zio_gang_assemble(zio_t *zio)
2254 {
2255 	blkptr_t *bp = zio->io_bp;
2256 
2257 	ASSERT(BP_IS_GANG(bp) && zio->io_gang_leader == NULL);
2258 	ASSERT(zio->io_child_type > ZIO_CHILD_GANG);
2259 
2260 	zio->io_gang_leader = zio;
2261 
2262 	zio_gang_tree_assemble(zio, bp, &zio->io_gang_tree);
2263 
2264 	return (zio);
2265 }
2266 
2267 static zio_t *
zio_gang_issue(zio_t * zio)2268 zio_gang_issue(zio_t *zio)
2269 {
2270 	blkptr_t *bp = zio->io_bp;
2271 
2272 	if (zio_wait_for_children(zio, ZIO_CHILD_GANG_BIT, ZIO_WAIT_DONE)) {
2273 		return (NULL);
2274 	}
2275 
2276 	ASSERT(BP_IS_GANG(bp) && zio->io_gang_leader == zio);
2277 	ASSERT(zio->io_child_type > ZIO_CHILD_GANG);
2278 
2279 	if (zio->io_child_error[ZIO_CHILD_GANG] == 0)
2280 		zio_gang_tree_issue(zio, zio->io_gang_tree, bp, zio->io_abd,
2281 		    0);
2282 	else
2283 		zio_gang_tree_free(&zio->io_gang_tree);
2284 
2285 	zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
2286 
2287 	return (zio);
2288 }
2289 
2290 static void
zio_write_gang_member_ready(zio_t * zio)2291 zio_write_gang_member_ready(zio_t *zio)
2292 {
2293 	zio_t *pio = zio_unique_parent(zio);
2294 	zio_t *gio = zio->io_gang_leader;
2295 	dva_t *cdva = zio->io_bp->blk_dva;
2296 	dva_t *pdva = pio->io_bp->blk_dva;
2297 	uint64_t asize;
2298 
2299 	if (BP_IS_HOLE(zio->io_bp))
2300 		return;
2301 
2302 	ASSERT(BP_IS_HOLE(&zio->io_bp_orig));
2303 
2304 	ASSERT(zio->io_child_type == ZIO_CHILD_GANG);
2305 	ASSERT3U(zio->io_prop.zp_copies, ==, gio->io_prop.zp_copies);
2306 	ASSERT3U(zio->io_prop.zp_copies, <=, BP_GET_NDVAS(zio->io_bp));
2307 	ASSERT3U(pio->io_prop.zp_copies, <=, BP_GET_NDVAS(pio->io_bp));
2308 	ASSERT3U(BP_GET_NDVAS(zio->io_bp), <=, BP_GET_NDVAS(pio->io_bp));
2309 
2310 	mutex_enter(&pio->io_lock);
2311 	for (int d = 0; d < BP_GET_NDVAS(zio->io_bp); d++) {
2312 		ASSERT(DVA_GET_GANG(&pdva[d]));
2313 		asize = DVA_GET_ASIZE(&pdva[d]);
2314 		asize += DVA_GET_ASIZE(&cdva[d]);
2315 		DVA_SET_ASIZE(&pdva[d], asize);
2316 	}
2317 	mutex_exit(&pio->io_lock);
2318 }
2319 
2320 static void
zio_write_gang_done(zio_t * zio)2321 zio_write_gang_done(zio_t *zio)
2322 {
2323 	/*
2324 	 * The io_abd field will be NULL for a zio with no data.  The io_flags
2325 	 * will initially have the ZIO_FLAG_NODATA bit flag set, but we can't
2326 	 * check for it here as it is cleared in zio_ready.
2327 	 */
2328 	if (zio->io_abd != NULL)
2329 		abd_put(zio->io_abd);
2330 }
2331 
2332 static zio_t *
zio_write_gang_block(zio_t * pio)2333 zio_write_gang_block(zio_t *pio)
2334 {
2335 	spa_t *spa = pio->io_spa;
2336 	metaslab_class_t *mc = spa_normal_class(spa);
2337 	blkptr_t *bp = pio->io_bp;
2338 	zio_t *gio = pio->io_gang_leader;
2339 	zio_t *zio;
2340 	zio_gang_node_t *gn, **gnpp;
2341 	zio_gbh_phys_t *gbh;
2342 	abd_t *gbh_abd;
2343 	uint64_t txg = pio->io_txg;
2344 	uint64_t resid = pio->io_size;
2345 	uint64_t lsize;
2346 	int copies = gio->io_prop.zp_copies;
2347 	int gbh_copies = MIN(copies + 1, spa_max_replication(spa));
2348 	zio_prop_t zp;
2349 	int error;
2350 	boolean_t has_data = !(pio->io_flags & ZIO_FLAG_NODATA);
2351 
2352 	int flags = METASLAB_HINTBP_FAVOR | METASLAB_GANG_HEADER;
2353 	if (pio->io_flags & ZIO_FLAG_IO_ALLOCATING) {
2354 		ASSERT(pio->io_priority == ZIO_PRIORITY_ASYNC_WRITE);
2355 		ASSERT(has_data);
2356 
2357 		flags |= METASLAB_ASYNC_ALLOC;
2358 		VERIFY(refcount_held(&mc->mc_alloc_slots[pio->io_allocator],
2359 		    pio));
2360 
2361 		/*
2362 		 * The logical zio has already placed a reservation for
2363 		 * 'copies' allocation slots but gang blocks may require
2364 		 * additional copies. These additional copies
2365 		 * (i.e. gbh_copies - copies) are guaranteed to succeed
2366 		 * since metaslab_class_throttle_reserve() always allows
2367 		 * additional reservations for gang blocks.
2368 		 */
2369 		VERIFY(metaslab_class_throttle_reserve(mc, gbh_copies - copies,
2370 		    pio->io_allocator, pio, flags));
2371 	}
2372 
2373 	error = metaslab_alloc(spa, mc, SPA_GANGBLOCKSIZE,
2374 	    bp, gbh_copies, txg, pio == gio ? NULL : gio->io_bp, flags,
2375 	    &pio->io_alloc_list, pio, pio->io_allocator);
2376 	if (error) {
2377 		if (pio->io_flags & ZIO_FLAG_IO_ALLOCATING) {
2378 			ASSERT(pio->io_priority == ZIO_PRIORITY_ASYNC_WRITE);
2379 			ASSERT(has_data);
2380 
2381 			/*
2382 			 * If we failed to allocate the gang block header then
2383 			 * we remove any additional allocation reservations that
2384 			 * we placed here. The original reservation will
2385 			 * be removed when the logical I/O goes to the ready
2386 			 * stage.
2387 			 */
2388 			metaslab_class_throttle_unreserve(mc,
2389 			    gbh_copies - copies, pio->io_allocator, pio);
2390 		}
2391 		pio->io_error = error;
2392 		return (pio);
2393 	}
2394 
2395 	if (pio == gio) {
2396 		gnpp = &gio->io_gang_tree;
2397 	} else {
2398 		gnpp = pio->io_private;
2399 		ASSERT(pio->io_ready == zio_write_gang_member_ready);
2400 	}
2401 
2402 	gn = zio_gang_node_alloc(gnpp);
2403 	gbh = gn->gn_gbh;
2404 	bzero(gbh, SPA_GANGBLOCKSIZE);
2405 	gbh_abd = abd_get_from_buf(gbh, SPA_GANGBLOCKSIZE);
2406 
2407 	/*
2408 	 * Create the gang header.
2409 	 */
2410 	zio = zio_rewrite(pio, spa, txg, bp, gbh_abd, SPA_GANGBLOCKSIZE,
2411 	    zio_write_gang_done, NULL, pio->io_priority,
2412 	    ZIO_GANG_CHILD_FLAGS(pio), &pio->io_bookmark);
2413 
2414 	/*
2415 	 * Create and nowait the gang children.
2416 	 */
2417 	for (int g = 0; resid != 0; resid -= lsize, g++) {
2418 		lsize = P2ROUNDUP(resid / (SPA_GBH_NBLKPTRS - g),
2419 		    SPA_MINBLOCKSIZE);
2420 		ASSERT(lsize >= SPA_MINBLOCKSIZE && lsize <= resid);
2421 
2422 		zp.zp_checksum = gio->io_prop.zp_checksum;
2423 		zp.zp_compress = ZIO_COMPRESS_OFF;
2424 		zp.zp_type = DMU_OT_NONE;
2425 		zp.zp_level = 0;
2426 		zp.zp_copies = gio->io_prop.zp_copies;
2427 		zp.zp_dedup = B_FALSE;
2428 		zp.zp_dedup_verify = B_FALSE;
2429 		zp.zp_nopwrite = B_FALSE;
2430 
2431 		zio_t *cio = zio_write(zio, spa, txg, &gbh->zg_blkptr[g],
2432 		    has_data ? abd_get_offset(pio->io_abd, pio->io_size -
2433 		    resid) : NULL, lsize, lsize, &zp,
2434 		    zio_write_gang_member_ready, NULL, NULL,
2435 		    zio_write_gang_done, &gn->gn_child[g], pio->io_priority,
2436 		    ZIO_GANG_CHILD_FLAGS(pio), &pio->io_bookmark);
2437 
2438 		if (pio->io_flags & ZIO_FLAG_IO_ALLOCATING) {
2439 			ASSERT(pio->io_priority == ZIO_PRIORITY_ASYNC_WRITE);
2440 			ASSERT(has_data);
2441 
2442 			/*
2443 			 * Gang children won't throttle but we should
2444 			 * account for their work, so reserve an allocation
2445 			 * slot for them here.
2446 			 */
2447 			VERIFY(metaslab_class_throttle_reserve(mc,
2448 			    zp.zp_copies, cio->io_allocator, cio, flags));
2449 		}
2450 		zio_nowait(cio);
2451 	}
2452 
2453 	/*
2454 	 * Set pio's pipeline to just wait for zio to finish.
2455 	 */
2456 	pio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
2457 
2458 	zio_nowait(zio);
2459 
2460 	return (pio);
2461 }
2462 
2463 /*
2464  * The zio_nop_write stage in the pipeline determines if allocating a
2465  * new bp is necessary.  The nopwrite feature can handle writes in
2466  * either syncing or open context (i.e. zil writes) and as a result is
2467  * mutually exclusive with dedup.
2468  *
2469  * By leveraging a cryptographically secure checksum, such as SHA256, we
2470  * can compare the checksums of the new data and the old to determine if
2471  * allocating a new block is required.  Note that our requirements for
2472  * cryptographic strength are fairly weak: there can't be any accidental
2473  * hash collisions, but we don't need to be secure against intentional
2474  * (malicious) collisions.  To trigger a nopwrite, you have to be able
2475  * to write the file to begin with, and triggering an incorrect (hash
2476  * collision) nopwrite is no worse than simply writing to the file.
2477  * That said, there are no known attacks against the checksum algorithms
2478  * used for nopwrite, assuming that the salt and the checksums
2479  * themselves remain secret.
2480  */
2481 static zio_t *
zio_nop_write(zio_t * zio)2482 zio_nop_write(zio_t *zio)
2483 {
2484 	blkptr_t *bp = zio->io_bp;
2485 	blkptr_t *bp_orig = &zio->io_bp_orig;
2486 	zio_prop_t *zp = &zio->io_prop;
2487 
2488 	ASSERT(BP_GET_LEVEL(bp) == 0);
2489 	ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REWRITE));
2490 	ASSERT(zp->zp_nopwrite);
2491 	ASSERT(!zp->zp_dedup);
2492 	ASSERT(zio->io_bp_override == NULL);
2493 	ASSERT(IO_IS_ALLOCATING(zio));
2494 
2495 	/*
2496 	 * Check to see if the original bp and the new bp have matching
2497 	 * characteristics (i.e. same checksum, compression algorithms, etc).
2498 	 * If they don't then just continue with the pipeline which will
2499 	 * allocate a new bp.
2500 	 */
2501 	if (BP_IS_HOLE(bp_orig) ||
2502 	    !(zio_checksum_table[BP_GET_CHECKSUM(bp)].ci_flags &
2503 	    ZCHECKSUM_FLAG_NOPWRITE) ||
2504 	    BP_GET_CHECKSUM(bp) != BP_GET_CHECKSUM(bp_orig) ||
2505 	    BP_GET_COMPRESS(bp) != BP_GET_COMPRESS(bp_orig) ||
2506 	    BP_GET_DEDUP(bp) != BP_GET_DEDUP(bp_orig) ||
2507 	    zp->zp_copies != BP_GET_NDVAS(bp_orig))
2508 		return (zio);
2509 
2510 	/*
2511 	 * If the checksums match then reset the pipeline so that we
2512 	 * avoid allocating a new bp and issuing any I/O.
2513 	 */
2514 	if (ZIO_CHECKSUM_EQUAL(bp->blk_cksum, bp_orig->blk_cksum)) {
2515 		ASSERT(zio_checksum_table[zp->zp_checksum].ci_flags &
2516 		    ZCHECKSUM_FLAG_NOPWRITE);
2517 		ASSERT3U(BP_GET_PSIZE(bp), ==, BP_GET_PSIZE(bp_orig));
2518 		ASSERT3U(BP_GET_LSIZE(bp), ==, BP_GET_LSIZE(bp_orig));
2519 		ASSERT(zp->zp_compress != ZIO_COMPRESS_OFF);
2520 		ASSERT(bcmp(&bp->blk_prop, &bp_orig->blk_prop,
2521 		    sizeof (uint64_t)) == 0);
2522 
2523 		*bp = *bp_orig;
2524 		zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
2525 		zio->io_flags |= ZIO_FLAG_NOPWRITE;
2526 	}
2527 
2528 	return (zio);
2529 }
2530 
2531 /*
2532  * ==========================================================================
2533  * Dedup
2534  * ==========================================================================
2535  */
2536 static void
zio_ddt_child_read_done(zio_t * zio)2537 zio_ddt_child_read_done(zio_t *zio)
2538 {
2539 	blkptr_t *bp = zio->io_bp;
2540 	ddt_entry_t *dde = zio->io_private;
2541 	ddt_phys_t *ddp;
2542 	zio_t *pio = zio_unique_parent(zio);
2543 
2544 	mutex_enter(&pio->io_lock);
2545 	ddp = ddt_phys_select(dde, bp);
2546 	if (zio->io_error == 0)
2547 		ddt_phys_clear(ddp);	/* this ddp doesn't need repair */
2548 
2549 	if (zio->io_error == 0 && dde->dde_repair_abd == NULL)
2550 		dde->dde_repair_abd = zio->io_abd;
2551 	else
2552 		abd_free(zio->io_abd);
2553 	mutex_exit(&pio->io_lock);
2554 }
2555 
2556 static zio_t *
zio_ddt_read_start(zio_t * zio)2557 zio_ddt_read_start(zio_t *zio)
2558 {
2559 	blkptr_t *bp = zio->io_bp;
2560 
2561 	ASSERT(BP_GET_DEDUP(bp));
2562 	ASSERT(BP_GET_PSIZE(bp) == zio->io_size);
2563 	ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
2564 
2565 	if (zio->io_child_error[ZIO_CHILD_DDT]) {
2566 		ddt_t *ddt = ddt_select(zio->io_spa, bp);
2567 		ddt_entry_t *dde = ddt_repair_start(ddt, bp);
2568 		ddt_phys_t *ddp = dde->dde_phys;
2569 		ddt_phys_t *ddp_self = ddt_phys_select(dde, bp);
2570 		blkptr_t blk;
2571 
2572 		ASSERT(zio->io_vsd == NULL);
2573 		zio->io_vsd = dde;
2574 
2575 		if (ddp_self == NULL)
2576 			return (zio);
2577 
2578 		for (int p = 0; p < DDT_PHYS_TYPES; p++, ddp++) {
2579 			if (ddp->ddp_phys_birth == 0 || ddp == ddp_self)
2580 				continue;
2581 			ddt_bp_create(ddt->ddt_checksum, &dde->dde_key, ddp,
2582 			    &blk);
2583 			zio_nowait(zio_read(zio, zio->io_spa, &blk,
2584 			    abd_alloc_for_io(zio->io_size, B_TRUE),
2585 			    zio->io_size, zio_ddt_child_read_done, dde,
2586 			    zio->io_priority, ZIO_DDT_CHILD_FLAGS(zio) |
2587 			    ZIO_FLAG_DONT_PROPAGATE, &zio->io_bookmark));
2588 		}
2589 		return (zio);
2590 	}
2591 
2592 	zio_nowait(zio_read(zio, zio->io_spa, bp,
2593 	    zio->io_abd, zio->io_size, NULL, NULL, zio->io_priority,
2594 	    ZIO_DDT_CHILD_FLAGS(zio), &zio->io_bookmark));
2595 
2596 	return (zio);
2597 }
2598 
2599 static zio_t *
zio_ddt_read_done(zio_t * zio)2600 zio_ddt_read_done(zio_t *zio)
2601 {
2602 	blkptr_t *bp = zio->io_bp;
2603 
2604 	if (zio_wait_for_children(zio, ZIO_CHILD_DDT_BIT, ZIO_WAIT_DONE)) {
2605 		return (NULL);
2606 	}
2607 
2608 	ASSERT(BP_GET_DEDUP(bp));
2609 	ASSERT(BP_GET_PSIZE(bp) == zio->io_size);
2610 	ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
2611 
2612 	if (zio->io_child_error[ZIO_CHILD_DDT]) {
2613 		ddt_t *ddt = ddt_select(zio->io_spa, bp);
2614 		ddt_entry_t *dde = zio->io_vsd;
2615 		if (ddt == NULL) {
2616 			ASSERT(spa_load_state(zio->io_spa) != SPA_LOAD_NONE);
2617 			return (zio);
2618 		}
2619 		if (dde == NULL) {
2620 			zio->io_stage = ZIO_STAGE_DDT_READ_START >> 1;
2621 			zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, B_FALSE);
2622 			return (NULL);
2623 		}
2624 		if (dde->dde_repair_abd != NULL) {
2625 			abd_copy(zio->io_abd, dde->dde_repair_abd,
2626 			    zio->io_size);
2627 			zio->io_child_error[ZIO_CHILD_DDT] = 0;
2628 		}
2629 		ddt_repair_done(ddt, dde);
2630 		zio->io_vsd = NULL;
2631 	}
2632 
2633 	ASSERT(zio->io_vsd == NULL);
2634 
2635 	return (zio);
2636 }
2637 
2638 static boolean_t
zio_ddt_collision(zio_t * zio,ddt_t * ddt,ddt_entry_t * dde)2639 zio_ddt_collision(zio_t *zio, ddt_t *ddt, ddt_entry_t *dde)
2640 {
2641 	spa_t *spa = zio->io_spa;
2642 	boolean_t do_raw = (zio->io_flags & ZIO_FLAG_RAW);
2643 
2644 	/* We should never get a raw, override zio */
2645 	ASSERT(!(zio->io_bp_override && do_raw));
2646 
2647 	/*
2648 	 * Note: we compare the original data, not the transformed data,
2649 	 * because when zio->io_bp is an override bp, we will not have
2650 	 * pushed the I/O transforms.  That's an important optimization
2651 	 * because otherwise we'd compress/encrypt all dmu_sync() data twice.
2652 	 */
2653 	for (int p = DDT_PHYS_SINGLE; p <= DDT_PHYS_TRIPLE; p++) {
2654 		zio_t *lio = dde->dde_lead_zio[p];
2655 
2656 		if (lio != NULL) {
2657 			return (lio->io_orig_size != zio->io_orig_size ||
2658 			    abd_cmp(zio->io_orig_abd, lio->io_orig_abd,
2659 			    zio->io_orig_size) != 0);
2660 		}
2661 	}
2662 
2663 	for (int p = DDT_PHYS_SINGLE; p <= DDT_PHYS_TRIPLE; p++) {
2664 		ddt_phys_t *ddp = &dde->dde_phys[p];
2665 
2666 		if (ddp->ddp_phys_birth != 0) {
2667 			arc_buf_t *abuf = NULL;
2668 			arc_flags_t aflags = ARC_FLAG_WAIT;
2669 			int zio_flags = ZIO_FLAG_CANFAIL | ZIO_FLAG_SPECULATIVE;
2670 			blkptr_t blk = *zio->io_bp;
2671 			int error;
2672 
2673 			ddt_bp_fill(ddp, &blk, ddp->ddp_phys_birth);
2674 
2675 			ddt_exit(ddt);
2676 
2677 			/*
2678 			 * Intuitively, it would make more sense to compare
2679 			 * io_abd than io_orig_abd in the raw case since you
2680 			 * don't want to look at any transformations that have
2681 			 * happened to the data. However, for raw I/Os the
2682 			 * data will actually be the same in io_abd and
2683 			 * io_orig_abd, so all we have to do is issue this as
2684 			 * a raw ARC read.
2685 			 */
2686 			if (do_raw) {
2687 				zio_flags |= ZIO_FLAG_RAW;
2688 				ASSERT3U(zio->io_size, ==, zio->io_orig_size);
2689 				ASSERT0(abd_cmp(zio->io_abd, zio->io_orig_abd,
2690 				    zio->io_size));
2691 				ASSERT3P(zio->io_transform_stack, ==, NULL);
2692 			}
2693 
2694 			error = arc_read(NULL, spa, &blk,
2695 			    arc_getbuf_func, &abuf, ZIO_PRIORITY_SYNC_READ,
2696 			    zio_flags, &aflags, &zio->io_bookmark);
2697 
2698 			if (error == 0) {
2699 				if (arc_buf_size(abuf) != zio->io_orig_size ||
2700 				    abd_cmp_buf(zio->io_orig_abd, abuf->b_data,
2701 				    zio->io_orig_size) != 0)
2702 					error = SET_ERROR(EEXIST);
2703 				arc_buf_destroy(abuf, &abuf);
2704 			}
2705 
2706 			ddt_enter(ddt);
2707 			return (error != 0);
2708 		}
2709 	}
2710 
2711 	return (B_FALSE);
2712 }
2713 
2714 static void
zio_ddt_child_write_ready(zio_t * zio)2715 zio_ddt_child_write_ready(zio_t *zio)
2716 {
2717 	int p = zio->io_prop.zp_copies;
2718 	ddt_t *ddt = ddt_select(zio->io_spa, zio->io_bp);
2719 	ddt_entry_t *dde = zio->io_private;
2720 	ddt_phys_t *ddp = &dde->dde_phys[p];
2721 	zio_t *pio;
2722 
2723 	if (zio->io_error)
2724 		return;
2725 
2726 	ddt_enter(ddt);
2727 
2728 	ASSERT(dde->dde_lead_zio[p] == zio);
2729 
2730 	ddt_phys_fill(ddp, zio->io_bp);
2731 
2732 	zio_link_t *zl = NULL;
2733 	while ((pio = zio_walk_parents(zio, &zl)) != NULL)
2734 		ddt_bp_fill(ddp, pio->io_bp, zio->io_txg);
2735 
2736 	ddt_exit(ddt);
2737 }
2738 
2739 static void
zio_ddt_child_write_done(zio_t * zio)2740 zio_ddt_child_write_done(zio_t *zio)
2741 {
2742 	int p = zio->io_prop.zp_copies;
2743 	ddt_t *ddt = ddt_select(zio->io_spa, zio->io_bp);
2744 	ddt_entry_t *dde = zio->io_private;
2745 	ddt_phys_t *ddp = &dde->dde_phys[p];
2746 
2747 	ddt_enter(ddt);
2748 
2749 	ASSERT(ddp->ddp_refcnt == 0);
2750 	ASSERT(dde->dde_lead_zio[p] == zio);
2751 	dde->dde_lead_zio[p] = NULL;
2752 
2753 	if (zio->io_error == 0) {
2754 		zio_link_t *zl = NULL;
2755 		while (zio_walk_parents(zio, &zl) != NULL)
2756 			ddt_phys_addref(ddp);
2757 	} else {
2758 		ddt_phys_clear(ddp);
2759 	}
2760 
2761 	ddt_exit(ddt);
2762 }
2763 
2764 static void
zio_ddt_ditto_write_done(zio_t * zio)2765 zio_ddt_ditto_write_done(zio_t *zio)
2766 {
2767 	int p = DDT_PHYS_DITTO;
2768 	zio_prop_t *zp = &zio->io_prop;
2769 	blkptr_t *bp = zio->io_bp;
2770 	ddt_t *ddt = ddt_select(zio->io_spa, bp);
2771 	ddt_entry_t *dde = zio->io_private;
2772 	ddt_phys_t *ddp = &dde->dde_phys[p];
2773 	ddt_key_t *ddk = &dde->dde_key;
2774 
2775 	ddt_enter(ddt);
2776 
2777 	ASSERT(ddp->ddp_refcnt == 0);
2778 	ASSERT(dde->dde_lead_zio[p] == zio);
2779 	dde->dde_lead_zio[p] = NULL;
2780 
2781 	if (zio->io_error == 0) {
2782 		ASSERT(ZIO_CHECKSUM_EQUAL(bp->blk_cksum, ddk->ddk_cksum));
2783 		ASSERT(zp->zp_copies < SPA_DVAS_PER_BP);
2784 		ASSERT(zp->zp_copies == BP_GET_NDVAS(bp) - BP_IS_GANG(bp));
2785 		if (ddp->ddp_phys_birth != 0)
2786 			ddt_phys_free(ddt, ddk, ddp, zio->io_txg);
2787 		ddt_phys_fill(ddp, bp);
2788 	}
2789 
2790 	ddt_exit(ddt);
2791 }
2792 
2793 static zio_t *
zio_ddt_write(zio_t * zio)2794 zio_ddt_write(zio_t *zio)
2795 {
2796 	spa_t *spa = zio->io_spa;
2797 	blkptr_t *bp = zio->io_bp;
2798 	uint64_t txg = zio->io_txg;
2799 	zio_prop_t *zp = &zio->io_prop;
2800 	int p = zp->zp_copies;
2801 	int ditto_copies;
2802 	zio_t *cio = NULL;
2803 	zio_t *dio = NULL;
2804 	ddt_t *ddt = ddt_select(spa, bp);
2805 	ddt_entry_t *dde;
2806 	ddt_phys_t *ddp;
2807 
2808 	ASSERT(BP_GET_DEDUP(bp));
2809 	ASSERT(BP_GET_CHECKSUM(bp) == zp->zp_checksum);
2810 	ASSERT(BP_IS_HOLE(bp) || zio->io_bp_override);
2811 	ASSERT(!(zio->io_bp_override && (zio->io_flags & ZIO_FLAG_RAW)));
2812 
2813 	ddt_enter(ddt);
2814 	dde = ddt_lookup(ddt, bp, B_TRUE);
2815 	ddp = &dde->dde_phys[p];
2816 
2817 	if (zp->zp_dedup_verify && zio_ddt_collision(zio, ddt, dde)) {
2818 		/*
2819 		 * If we're using a weak checksum, upgrade to a strong checksum
2820 		 * and try again.  If we're already using a strong checksum,
2821 		 * we can't resolve it, so just convert to an ordinary write.
2822 		 * (And automatically e-mail a paper to Nature?)
2823 		 */
2824 		if (!(zio_checksum_table[zp->zp_checksum].ci_flags &
2825 		    ZCHECKSUM_FLAG_DEDUP)) {
2826 			zp->zp_checksum = spa_dedup_checksum(spa);
2827 			zio_pop_transforms(zio);
2828 			zio->io_stage = ZIO_STAGE_OPEN;
2829 			BP_ZERO(bp);
2830 		} else {
2831 			zp->zp_dedup = B_FALSE;
2832 			BP_SET_DEDUP(bp, B_FALSE);
2833 		}
2834 		ASSERT(!BP_GET_DEDUP(bp));
2835 		zio->io_pipeline = ZIO_WRITE_PIPELINE;
2836 		ddt_exit(ddt);
2837 		return (zio);
2838 	}
2839 
2840 	ditto_copies = ddt_ditto_copies_needed(ddt, dde, ddp);
2841 	ASSERT(ditto_copies < SPA_DVAS_PER_BP);
2842 
2843 	if (ditto_copies > ddt_ditto_copies_present(dde) &&
2844 	    dde->dde_lead_zio[DDT_PHYS_DITTO] == NULL) {
2845 		zio_prop_t czp = *zp;
2846 
2847 		czp.zp_copies = ditto_copies;
2848 
2849 		/*
2850 		 * If we arrived here with an override bp, we won't have run
2851 		 * the transform stack, so we won't have the data we need to
2852 		 * generate a child i/o.  So, toss the override bp and restart.
2853 		 * This is safe, because using the override bp is just an
2854 		 * optimization; and it's rare, so the cost doesn't matter.
2855 		 */
2856 		if (zio->io_bp_override) {
2857 			zio_pop_transforms(zio);
2858 			zio->io_stage = ZIO_STAGE_OPEN;
2859 			zio->io_pipeline = ZIO_WRITE_PIPELINE;
2860 			zio->io_bp_override = NULL;
2861 			BP_ZERO(bp);
2862 			ddt_exit(ddt);
2863 			return (zio);
2864 		}
2865 
2866 		dio = zio_write(zio, spa, txg, bp, zio->io_orig_abd,
2867 		    zio->io_orig_size, zio->io_orig_size, &czp, NULL, NULL,
2868 		    NULL, zio_ddt_ditto_write_done, dde, zio->io_priority,
2869 		    ZIO_DDT_CHILD_FLAGS(zio), &zio->io_bookmark);
2870 
2871 		zio_push_transform(dio, zio->io_abd, zio->io_size, 0, NULL);
2872 		dde->dde_lead_zio[DDT_PHYS_DITTO] = dio;
2873 	}
2874 
2875 	if (ddp->ddp_phys_birth != 0 || dde->dde_lead_zio[p] != NULL) {
2876 		if (ddp->ddp_phys_birth != 0)
2877 			ddt_bp_fill(ddp, bp, txg);
2878 		if (dde->dde_lead_zio[p] != NULL)
2879 			zio_add_child(zio, dde->dde_lead_zio[p]);
2880 		else
2881 			ddt_phys_addref(ddp);
2882 	} else if (zio->io_bp_override) {
2883 		ASSERT(bp->blk_birth == txg);
2884 		ASSERT(BP_EQUAL(bp, zio->io_bp_override));
2885 		ddt_phys_fill(ddp, bp);
2886 		ddt_phys_addref(ddp);
2887 	} else {
2888 		cio = zio_write(zio, spa, txg, bp, zio->io_orig_abd,
2889 		    zio->io_orig_size, zio->io_orig_size, zp,
2890 		    zio_ddt_child_write_ready, NULL, NULL,
2891 		    zio_ddt_child_write_done, dde, zio->io_priority,
2892 		    ZIO_DDT_CHILD_FLAGS(zio), &zio->io_bookmark);
2893 
2894 		zio_push_transform(cio, zio->io_abd, zio->io_size, 0, NULL);
2895 		dde->dde_lead_zio[p] = cio;
2896 	}
2897 
2898 	ddt_exit(ddt);
2899 
2900 	if (cio)
2901 		zio_nowait(cio);
2902 	if (dio)
2903 		zio_nowait(dio);
2904 
2905 	return (zio);
2906 }
2907 
2908 ddt_entry_t *freedde; /* for debugging */
2909 
2910 static zio_t *
zio_ddt_free(zio_t * zio)2911 zio_ddt_free(zio_t *zio)
2912 {
2913 	spa_t *spa = zio->io_spa;
2914 	blkptr_t *bp = zio->io_bp;
2915 	ddt_t *ddt = ddt_select(spa, bp);
2916 	ddt_entry_t *dde;
2917 	ddt_phys_t *ddp;
2918 
2919 	ASSERT(BP_GET_DEDUP(bp));
2920 	ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
2921 
2922 	ddt_enter(ddt);
2923 	freedde = dde = ddt_lookup(ddt, bp, B_TRUE);
2924 	ddp = ddt_phys_select(dde, bp);
2925 	ddt_phys_decref(ddp);
2926 	ddt_exit(ddt);
2927 
2928 	return (zio);
2929 }
2930 
2931 /*
2932  * ==========================================================================
2933  * Allocate and free blocks
2934  * ==========================================================================
2935  */
2936 
2937 static zio_t *
zio_io_to_allocate(spa_t * spa,int allocator)2938 zio_io_to_allocate(spa_t *spa, int allocator)
2939 {
2940 	zio_t *zio;
2941 
2942 	ASSERT(MUTEX_HELD(&spa->spa_alloc_locks[allocator]));
2943 
2944 	zio = avl_first(&spa->spa_alloc_trees[allocator]);
2945 	if (zio == NULL)
2946 		return (NULL);
2947 
2948 	ASSERT(IO_IS_ALLOCATING(zio));
2949 
2950 	/*
2951 	 * Try to place a reservation for this zio. If we're unable to
2952 	 * reserve then we throttle.
2953 	 */
2954 	ASSERT3U(zio->io_allocator, ==, allocator);
2955 	if (!metaslab_class_throttle_reserve(spa_normal_class(spa),
2956 	    zio->io_prop.zp_copies, zio->io_allocator, zio, 0)) {
2957 		return (NULL);
2958 	}
2959 
2960 	avl_remove(&spa->spa_alloc_trees[allocator], zio);
2961 	ASSERT3U(zio->io_stage, <, ZIO_STAGE_DVA_ALLOCATE);
2962 
2963 	return (zio);
2964 }
2965 
2966 static zio_t *
zio_dva_throttle(zio_t * zio)2967 zio_dva_throttle(zio_t *zio)
2968 {
2969 	spa_t *spa = zio->io_spa;
2970 	zio_t *nio;
2971 
2972 	if (zio->io_priority == ZIO_PRIORITY_SYNC_WRITE ||
2973 	    !spa_normal_class(zio->io_spa)->mc_alloc_throttle_enabled ||
2974 	    zio->io_child_type == ZIO_CHILD_GANG ||
2975 	    zio->io_flags & ZIO_FLAG_NODATA) {
2976 		return (zio);
2977 	}
2978 
2979 	ASSERT(zio->io_child_type > ZIO_CHILD_GANG);
2980 
2981 	ASSERT3U(zio->io_queued_timestamp, >, 0);
2982 	ASSERT(zio->io_stage == ZIO_STAGE_DVA_THROTTLE);
2983 
2984 	zbookmark_phys_t *bm = &zio->io_bookmark;
2985 	/*
2986 	 * We want to try to use as many allocators as possible to help improve
2987 	 * performance, but we also want logically adjacent IOs to be physically
2988 	 * adjacent to improve sequential read performance. We chunk each object
2989 	 * into 2^20 block regions, and then hash based on the objset, object,
2990 	 * level, and region to accomplish both of these goals.
2991 	 */
2992 	zio->io_allocator = cityhash4(bm->zb_objset, bm->zb_object,
2993 	    bm->zb_level, bm->zb_blkid >> 20) % spa->spa_alloc_count;
2994 	mutex_enter(&spa->spa_alloc_locks[zio->io_allocator]);
2995 
2996 	ASSERT(zio->io_type == ZIO_TYPE_WRITE);
2997 	avl_add(&spa->spa_alloc_trees[zio->io_allocator], zio);
2998 
2999 	nio = zio_io_to_allocate(zio->io_spa, zio->io_allocator);
3000 	mutex_exit(&spa->spa_alloc_locks[zio->io_allocator]);
3001 
3002 	return (nio);
3003 }
3004 
3005 void
zio_allocate_dispatch(spa_t * spa,int allocator)3006 zio_allocate_dispatch(spa_t *spa, int allocator)
3007 {
3008 	zio_t *zio;
3009 
3010 	mutex_enter(&spa->spa_alloc_locks[allocator]);
3011 	zio = zio_io_to_allocate(spa, allocator);
3012 	mutex_exit(&spa->spa_alloc_locks[allocator]);
3013 	if (zio == NULL)
3014 		return;
3015 
3016 	ASSERT3U(zio->io_stage, ==, ZIO_STAGE_DVA_THROTTLE);
3017 	ASSERT0(zio->io_error);
3018 	zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE, B_TRUE);
3019 }
3020 
3021 static zio_t *
zio_dva_allocate(zio_t * zio)3022 zio_dva_allocate(zio_t *zio)
3023 {
3024 	spa_t *spa = zio->io_spa;
3025 	metaslab_class_t *mc = spa_normal_class(spa);
3026 	blkptr_t *bp = zio->io_bp;
3027 	int error;
3028 	int flags = 0;
3029 
3030 	if (zio->io_gang_leader == NULL) {
3031 		ASSERT(zio->io_child_type > ZIO_CHILD_GANG);
3032 		zio->io_gang_leader = zio;
3033 	}
3034 
3035 	ASSERT(BP_IS_HOLE(bp));
3036 	ASSERT0(BP_GET_NDVAS(bp));
3037 	ASSERT3U(zio->io_prop.zp_copies, >, 0);
3038 	ASSERT3U(zio->io_prop.zp_copies, <=, spa_max_replication(spa));
3039 	ASSERT3U(zio->io_size, ==, BP_GET_PSIZE(bp));
3040 
3041 	if (zio->io_flags & ZIO_FLAG_NODATA) {
3042 		flags |= METASLAB_DONT_THROTTLE;
3043 	}
3044 	if (zio->io_flags & ZIO_FLAG_GANG_CHILD) {
3045 		flags |= METASLAB_GANG_CHILD;
3046 	}
3047 	if (zio->io_priority == ZIO_PRIORITY_ASYNC_WRITE) {
3048 		flags |= METASLAB_ASYNC_ALLOC;
3049 	}
3050 
3051 	error = metaslab_alloc(spa, mc, zio->io_size, bp,
3052 	    zio->io_prop.zp_copies, zio->io_txg, NULL, flags,
3053 	    &zio->io_alloc_list, zio, zio->io_allocator);
3054 
3055 	if (error != 0) {
3056 		zfs_dbgmsg("%s: metaslab allocation failure: zio %p, "
3057 		    "size %llu, error %d", spa_name(spa), zio, zio->io_size,
3058 		    error);
3059 		if (error == ENOSPC && zio->io_size > SPA_MINBLOCKSIZE)
3060 			return (zio_write_gang_block(zio));
3061 		zio->io_error = error;
3062 	}
3063 
3064 	return (zio);
3065 }
3066 
3067 static zio_t *
zio_dva_free(zio_t * zio)3068 zio_dva_free(zio_t *zio)
3069 {
3070 	metaslab_free(zio->io_spa, zio->io_bp, zio->io_txg, B_FALSE);
3071 
3072 	return (zio);
3073 }
3074 
3075 static zio_t *
zio_dva_claim(zio_t * zio)3076 zio_dva_claim(zio_t *zio)
3077 {
3078 	int error;
3079 
3080 	error = metaslab_claim(zio->io_spa, zio->io_bp, zio->io_txg);
3081 	if (error)
3082 		zio->io_error = error;
3083 
3084 	return (zio);
3085 }
3086 
3087 /*
3088  * Undo an allocation.  This is used by zio_done() when an I/O fails
3089  * and we want to give back the block we just allocated.
3090  * This handles both normal blocks and gang blocks.
3091  */
3092 static void
zio_dva_unallocate(zio_t * zio,zio_gang_node_t * gn,blkptr_t * bp)3093 zio_dva_unallocate(zio_t *zio, zio_gang_node_t *gn, blkptr_t *bp)
3094 {
3095 	ASSERT(bp->blk_birth == zio->io_txg || BP_IS_HOLE(bp));
3096 	ASSERT(zio->io_bp_override == NULL);
3097 
3098 	if (!BP_IS_HOLE(bp))
3099 		metaslab_free(zio->io_spa, bp, bp->blk_birth, B_TRUE);
3100 
3101 	if (gn != NULL) {
3102 		for (int g = 0; g < SPA_GBH_NBLKPTRS; g++) {
3103 			zio_dva_unallocate(zio, gn->gn_child[g],
3104 			    &gn->gn_gbh->zg_blkptr[g]);
3105 		}
3106 	}
3107 }
3108 
3109 /*
3110  * Try to allocate an intent log block.  Return 0 on success, errno on failure.
3111  */
3112 int
zio_alloc_zil(spa_t * spa,uint64_t objset,uint64_t txg,blkptr_t * new_bp,blkptr_t * old_bp,uint64_t size,boolean_t * slog)3113 zio_alloc_zil(spa_t *spa, uint64_t objset, uint64_t txg, blkptr_t *new_bp,
3114     blkptr_t *old_bp, uint64_t size, boolean_t *slog)
3115 {
3116 	int error = 1;
3117 	zio_alloc_list_t io_alloc_list;
3118 
3119 	ASSERT(txg > spa_syncing_txg(spa));
3120 
3121 	metaslab_trace_init(&io_alloc_list);
3122 	/*
3123 	 * When allocating a zil block, we don't have information about
3124 	 * the final destination of the block except the objset it's part
3125 	 * of, so we just hash the objset ID to pick the allocator to get
3126 	 * some parallelism.
3127 	 */
3128 	error = metaslab_alloc(spa, spa_log_class(spa), size, new_bp, 1,
3129 	    txg, old_bp, METASLAB_HINTBP_AVOID, &io_alloc_list, NULL,
3130 	    cityhash4(0, 0, 0, objset) % spa->spa_alloc_count);
3131 	if (error == 0) {
3132 		*slog = TRUE;
3133 	} else {
3134 		error = metaslab_alloc(spa, spa_normal_class(spa), size,
3135 		    new_bp, 1, txg, old_bp, METASLAB_HINTBP_AVOID,
3136 		    &io_alloc_list, NULL, cityhash4(0, 0, 0, objset) %
3137 		    spa->spa_alloc_count);
3138 		if (error == 0)
3139 			*slog = FALSE;
3140 	}
3141 	metaslab_trace_fini(&io_alloc_list);
3142 
3143 	if (error == 0) {
3144 		BP_SET_LSIZE(new_bp, size);
3145 		BP_SET_PSIZE(new_bp, size);
3146 		BP_SET_COMPRESS(new_bp, ZIO_COMPRESS_OFF);
3147 		BP_SET_CHECKSUM(new_bp,
3148 		    spa_version(spa) >= SPA_VERSION_SLIM_ZIL
3149 		    ? ZIO_CHECKSUM_ZILOG2 : ZIO_CHECKSUM_ZILOG);
3150 		BP_SET_TYPE(new_bp, DMU_OT_INTENT_LOG);
3151 		BP_SET_LEVEL(new_bp, 0);
3152 		BP_SET_DEDUP(new_bp, 0);
3153 		BP_SET_BYTEORDER(new_bp, ZFS_HOST_BYTEORDER);
3154 	} else {
3155 		zfs_dbgmsg("%s: zil block allocation failure: "
3156 		    "size %llu, error %d", spa_name(spa), size, error);
3157 	}
3158 
3159 	return (error);
3160 }
3161 
3162 /*
3163  * ==========================================================================
3164  * Read, write and delete to physical devices
3165  * ==========================================================================
3166  */
3167 
3168 
3169 /*
3170  * Issue an I/O to the underlying vdev. Typically the issue pipeline
3171  * stops after this stage and will resume upon I/O completion.
3172  * However, there are instances where the vdev layer may need to
3173  * continue the pipeline when an I/O was not issued. Since the I/O
3174  * that was sent to the vdev layer might be different than the one
3175  * currently active in the pipeline (see vdev_queue_io()), we explicitly
3176  * force the underlying vdev layers to call either zio_execute() or
3177  * zio_interrupt() to ensure that the pipeline continues with the correct I/O.
3178  */
3179 static zio_t *
zio_vdev_io_start(zio_t * zio)3180 zio_vdev_io_start(zio_t *zio)
3181 {
3182 	vdev_t *vd = zio->io_vd;
3183 	uint64_t align;
3184 	spa_t *spa = zio->io_spa;
3185 	int ret;
3186 
3187 	ASSERT(zio->io_error == 0);
3188 	ASSERT(zio->io_child_error[ZIO_CHILD_VDEV] == 0);
3189 
3190 	if (vd == NULL) {
3191 		if (!(zio->io_flags & ZIO_FLAG_CONFIG_WRITER))
3192 			spa_config_enter(spa, SCL_ZIO, zio, RW_READER);
3193 
3194 		/*
3195 		 * The mirror_ops handle multiple DVAs in a single BP.
3196 		 */
3197 		vdev_mirror_ops.vdev_op_io_start(zio);
3198 		return (NULL);
3199 	}
3200 
3201 	if (vd->vdev_ops->vdev_op_leaf && zio->io_type == ZIO_TYPE_FREE &&
3202 	    zio->io_priority == ZIO_PRIORITY_NOW) {
3203 		trim_map_free(vd, zio->io_offset, zio->io_size, zio->io_txg);
3204 		return (zio);
3205 	}
3206 
3207 	ASSERT3P(zio->io_logical, !=, zio);
3208 	if (zio->io_type == ZIO_TYPE_WRITE) {
3209 		ASSERT(spa->spa_trust_config);
3210 
3211 		if (zio->io_vd->vdev_removing) {
3212 			/*
3213 			 * Note: the code can handle other kinds of writes,
3214 			 * but we don't expect them.
3215 			 */
3216 			ASSERT(zio->io_flags &
3217 			    (ZIO_FLAG_PHYSICAL | ZIO_FLAG_SELF_HEAL |
3218 			    ZIO_FLAG_RESILVER | ZIO_FLAG_INDUCE_DAMAGE));
3219 		}
3220 	}
3221 
3222         /*
3223          * We keep track of time-sensitive I/Os so that the scan thread
3224          * can quickly react to certain workloads.  In particular, we care
3225          * about non-scrubbing, top-level reads and writes with the following
3226          * characteristics:
3227          *      - synchronous writes of user data to non-slog devices
3228          *      - any reads of user data
3229          * When these conditions are met, adjust the timestamp of spa_last_io
3230          * which allows the scan thread to adjust its workload accordingly.
3231          */
3232         if (!(zio->io_flags & ZIO_FLAG_SCAN_THREAD) && zio->io_bp != NULL &&
3233             vd == vd->vdev_top && !vd->vdev_islog &&
3234             zio->io_bookmark.zb_objset != DMU_META_OBJSET &&
3235             zio->io_txg != spa_syncing_txg(spa)) {
3236                 uint64_t old = spa->spa_last_io;
3237                 uint64_t new = ddi_get_lbolt64();
3238                 if (old != new)
3239                         (void) atomic_cas_64(&spa->spa_last_io, old, new);
3240         }
3241 	align = 1ULL << vd->vdev_top->vdev_ashift;
3242 
3243 	if (!(zio->io_flags & ZIO_FLAG_PHYSICAL) &&
3244 	    P2PHASE(zio->io_size, align) != 0) {
3245 		/* Transform logical writes to be a full physical block size. */
3246 		uint64_t asize = P2ROUNDUP(zio->io_size, align);
3247 		abd_t *abuf = NULL;
3248 		if (zio->io_type == ZIO_TYPE_READ ||
3249 		    zio->io_type == ZIO_TYPE_WRITE)
3250 			abuf = abd_alloc_sametype(zio->io_abd, asize);
3251 		ASSERT(vd == vd->vdev_top);
3252 		if (zio->io_type == ZIO_TYPE_WRITE) {
3253 			abd_copy(abuf, zio->io_abd, zio->io_size);
3254 			abd_zero_off(abuf, zio->io_size, asize - zio->io_size);
3255 		}
3256 		zio_push_transform(zio, abuf, asize, abuf ? asize : 0,
3257 		    zio_subblock);
3258 	}
3259 
3260 	/*
3261 	 * If this is not a physical io, make sure that it is properly aligned
3262 	 * before proceeding.
3263 	 */
3264 	if (!(zio->io_flags & ZIO_FLAG_PHYSICAL)) {
3265 		ASSERT0(P2PHASE(zio->io_offset, align));
3266 		ASSERT0(P2PHASE(zio->io_size, align));
3267 	} else {
3268 		/*
3269 		 * For the physical io we allow alignment
3270 		 * to a logical block size.
3271 		 */
3272 		uint64_t log_align =
3273 		    1ULL << vd->vdev_top->vdev_logical_ashift;
3274 		ASSERT0(P2PHASE(zio->io_offset, log_align));
3275 		ASSERT0(P2PHASE(zio->io_size, log_align));
3276 	}
3277 
3278 	VERIFY(zio->io_type == ZIO_TYPE_READ || spa_writeable(spa));
3279 
3280 	/*
3281 	 * If this is a repair I/O, and there's no self-healing involved --
3282 	 * that is, we're just resilvering what we expect to resilver --
3283 	 * then don't do the I/O unless zio's txg is actually in vd's DTL.
3284 	 * This prevents spurious resilvering.
3285 	 *
3286 	 * There are a few ways that we can end up creating these spurious
3287 	 * resilver i/os:
3288 	 *
3289 	 * 1. A resilver i/o will be issued if any DVA in the BP has a
3290 	 * dirty DTL.  The mirror code will issue resilver writes to
3291 	 * each DVA, including the one(s) that are not on vdevs with dirty
3292 	 * DTLs.
3293 	 *
3294 	 * 2. With nested replication, which happens when we have a
3295 	 * "replacing" or "spare" vdev that's a child of a mirror or raidz.
3296 	 * For example, given mirror(replacing(A+B), C), it's likely that
3297 	 * only A is out of date (it's the new device). In this case, we'll
3298 	 * read from C, then use the data to resilver A+B -- but we don't
3299 	 * actually want to resilver B, just A. The top-level mirror has no
3300 	 * way to know this, so instead we just discard unnecessary repairs
3301 	 * as we work our way down the vdev tree.
3302 	 *
3303 	 * 3. ZTEST also creates mirrors of mirrors, mirrors of raidz, etc.
3304 	 * The same logic applies to any form of nested replication: ditto
3305 	 * + mirror, RAID-Z + replacing, etc.
3306 	 *
3307 	 * However, indirect vdevs point off to other vdevs which may have
3308 	 * DTL's, so we never bypass them.  The child i/os on concrete vdevs
3309 	 * will be properly bypassed instead.
3310 	 */
3311 	if ((zio->io_flags & ZIO_FLAG_IO_REPAIR) &&
3312 	    !(zio->io_flags & ZIO_FLAG_SELF_HEAL) &&
3313 	    zio->io_txg != 0 &&	/* not a delegated i/o */
3314 	    vd->vdev_ops != &vdev_indirect_ops &&
3315 	    !vdev_dtl_contains(vd, DTL_PARTIAL, zio->io_txg, 1)) {
3316 		ASSERT(zio->io_type == ZIO_TYPE_WRITE);
3317 		zio_vdev_io_bypass(zio);
3318 		return (zio);
3319 	}
3320 
3321 	if (vd->vdev_ops->vdev_op_leaf) {
3322 		switch (zio->io_type) {
3323 		case ZIO_TYPE_READ:
3324 			if (vdev_cache_read(zio))
3325 				return (zio);
3326 			/* FALLTHROUGH */
3327 		case ZIO_TYPE_WRITE:
3328 		case ZIO_TYPE_FREE:
3329 			if ((zio = vdev_queue_io(zio)) == NULL)
3330 				return (NULL);
3331 
3332 			if (!vdev_accessible(vd, zio)) {
3333 				zio->io_error = SET_ERROR(ENXIO);
3334 				zio_interrupt(zio);
3335 				return (NULL);
3336 			}
3337 			break;
3338 		}
3339 		/*
3340 		 * Note that we ignore repair writes for TRIM because they can
3341 		 * conflict with normal writes. This isn't an issue because, by
3342 		 * definition, we only repair blocks that aren't freed.
3343 		 */
3344 		if (zio->io_type == ZIO_TYPE_WRITE &&
3345 		    !(zio->io_flags & ZIO_FLAG_IO_REPAIR) &&
3346 		    !trim_map_write_start(zio))
3347 			return (NULL);
3348 	}
3349 
3350 	vd->vdev_ops->vdev_op_io_start(zio);
3351 	return (NULL);
3352 }
3353 
3354 static zio_t *
zio_vdev_io_done(zio_t * zio)3355 zio_vdev_io_done(zio_t *zio)
3356 {
3357 	vdev_t *vd = zio->io_vd;
3358 	vdev_ops_t *ops = vd ? vd->vdev_ops : &vdev_mirror_ops;
3359 	boolean_t unexpected_error = B_FALSE;
3360 
3361 	if (zio_wait_for_children(zio, ZIO_CHILD_VDEV_BIT, ZIO_WAIT_DONE)) {
3362 		return (NULL);
3363 	}
3364 
3365 	ASSERT(zio->io_type == ZIO_TYPE_READ ||
3366 	    zio->io_type == ZIO_TYPE_WRITE || zio->io_type == ZIO_TYPE_FREE);
3367 
3368 	if (vd != NULL && vd->vdev_ops->vdev_op_leaf &&
3369 	    (zio->io_type == ZIO_TYPE_READ || zio->io_type == ZIO_TYPE_WRITE ||
3370 	    zio->io_type == ZIO_TYPE_FREE)) {
3371 
3372 		if (zio->io_type == ZIO_TYPE_WRITE &&
3373 		    !(zio->io_flags & ZIO_FLAG_IO_REPAIR))
3374 			trim_map_write_done(zio);
3375 
3376 		vdev_queue_io_done(zio);
3377 
3378 		if (zio->io_type == ZIO_TYPE_WRITE)
3379 			vdev_cache_write(zio);
3380 
3381 		if (zio_injection_enabled && zio->io_error == 0)
3382 			zio->io_error = zio_handle_device_injection(vd,
3383 			    zio, EIO);
3384 
3385 		if (zio_injection_enabled && zio->io_error == 0)
3386 			zio->io_error = zio_handle_label_injection(zio, EIO);
3387 
3388 		if (zio->io_error) {
3389 			if (zio->io_error == ENOTSUP &&
3390 			    zio->io_type == ZIO_TYPE_FREE) {
3391 				/* Not all devices support TRIM. */
3392 			} else if (!vdev_accessible(vd, zio)) {
3393 				zio->io_error = SET_ERROR(ENXIO);
3394 			} else {
3395 				unexpected_error = B_TRUE;
3396 			}
3397 		}
3398 	}
3399 
3400 	ops->vdev_op_io_done(zio);
3401 
3402 	if (unexpected_error)
3403 		VERIFY(vdev_probe(vd, zio) == NULL);
3404 
3405 	return (zio);
3406 }
3407 
3408 /*
3409  * This function is used to change the priority of an existing zio that is
3410  * currently in-flight. This is used by the arc to upgrade priority in the
3411  * event that a demand read is made for a block that is currently queued
3412  * as a scrub or async read IO. Otherwise, the high priority read request
3413  * would end up having to wait for the lower priority IO.
3414  */
3415 void
zio_change_priority(zio_t * pio,zio_priority_t priority)3416 zio_change_priority(zio_t *pio, zio_priority_t priority)
3417 {
3418 	zio_t *cio, *cio_next;
3419 	zio_link_t *zl = NULL;
3420 
3421 	ASSERT3U(priority, <, ZIO_PRIORITY_NUM_QUEUEABLE);
3422 
3423 	if (pio->io_vd != NULL && pio->io_vd->vdev_ops->vdev_op_leaf) {
3424 		vdev_queue_change_io_priority(pio, priority);
3425 	} else {
3426 		pio->io_priority = priority;
3427 	}
3428 
3429 	mutex_enter(&pio->io_lock);
3430 	for (cio = zio_walk_children(pio, &zl); cio != NULL; cio = cio_next) {
3431 		cio_next = zio_walk_children(pio, &zl);
3432 		zio_change_priority(cio, priority);
3433 	}
3434 	mutex_exit(&pio->io_lock);
3435 }
3436 
3437 /*
3438  * For non-raidz ZIOs, we can just copy aside the bad data read from the
3439  * disk, and use that to finish the checksum ereport later.
3440  */
3441 static void
zio_vsd_default_cksum_finish(zio_cksum_report_t * zcr,const void * good_buf)3442 zio_vsd_default_cksum_finish(zio_cksum_report_t *zcr,
3443     const void *good_buf)
3444 {
3445 	/* no processing needed */
3446 	zfs_ereport_finish_checksum(zcr, good_buf, zcr->zcr_cbdata, B_FALSE);
3447 }
3448 
3449 /*ARGSUSED*/
3450 void
zio_vsd_default_cksum_report(zio_t * zio,zio_cksum_report_t * zcr,void * ignored)3451 zio_vsd_default_cksum_report(zio_t *zio, zio_cksum_report_t *zcr, void *ignored)
3452 {
3453 	void *buf = zio_buf_alloc(zio->io_size);
3454 
3455 	abd_copy_to_buf(buf, zio->io_abd, zio->io_size);
3456 
3457 	zcr->zcr_cbinfo = zio->io_size;
3458 	zcr->zcr_cbdata = buf;
3459 	zcr->zcr_finish = zio_vsd_default_cksum_finish;
3460 	zcr->zcr_free = zio_buf_free;
3461 }
3462 
3463 static zio_t *
zio_vdev_io_assess(zio_t * zio)3464 zio_vdev_io_assess(zio_t *zio)
3465 {
3466 	vdev_t *vd = zio->io_vd;
3467 
3468 	if (zio_wait_for_children(zio, ZIO_CHILD_VDEV_BIT, ZIO_WAIT_DONE)) {
3469 		return (NULL);
3470 	}
3471 
3472 	if (vd == NULL && !(zio->io_flags & ZIO_FLAG_CONFIG_WRITER))
3473 		spa_config_exit(zio->io_spa, SCL_ZIO, zio);
3474 
3475 	if (zio->io_vsd != NULL) {
3476 		zio->io_vsd_ops->vsd_free(zio);
3477 		zio->io_vsd = NULL;
3478 	}
3479 
3480 	if (zio_injection_enabled && zio->io_error == 0)
3481 		zio->io_error = zio_handle_fault_injection(zio, EIO);
3482 
3483 	if (zio->io_type == ZIO_TYPE_FREE &&
3484 	    zio->io_priority != ZIO_PRIORITY_NOW) {
3485 		switch (zio->io_error) {
3486 		case 0:
3487 			ZIO_TRIM_STAT_INCR(bytes, zio->io_size);
3488 			ZIO_TRIM_STAT_BUMP(success);
3489 			break;
3490 		case EOPNOTSUPP:
3491 			ZIO_TRIM_STAT_BUMP(unsupported);
3492 			break;
3493 		default:
3494 			ZIO_TRIM_STAT_BUMP(failed);
3495 			break;
3496 		}
3497 	}
3498 
3499 	/*
3500 	 * If the I/O failed, determine whether we should attempt to retry it.
3501 	 *
3502 	 * On retry, we cut in line in the issue queue, since we don't want
3503 	 * compression/checksumming/etc. work to prevent our (cheap) IO reissue.
3504 	 */
3505 	if (zio->io_error && vd == NULL &&
3506 	    !(zio->io_flags & (ZIO_FLAG_DONT_RETRY | ZIO_FLAG_IO_RETRY))) {
3507 		ASSERT(!(zio->io_flags & ZIO_FLAG_DONT_QUEUE));	/* not a leaf */
3508 		ASSERT(!(zio->io_flags & ZIO_FLAG_IO_BYPASS));	/* not a leaf */
3509 		zio->io_error = 0;
3510 		zio->io_flags |= ZIO_FLAG_IO_RETRY |
3511 		    ZIO_FLAG_DONT_CACHE | ZIO_FLAG_DONT_AGGREGATE;
3512 		zio->io_stage = ZIO_STAGE_VDEV_IO_START >> 1;
3513 		zio_taskq_dispatch(zio, ZIO_TASKQ_ISSUE,
3514 		    zio_requeue_io_start_cut_in_line);
3515 		return (NULL);
3516 	}
3517 
3518 	/*
3519 	 * If we got an error on a leaf device, convert it to ENXIO
3520 	 * if the device is not accessible at all.
3521 	 */
3522 	if (zio->io_error && vd != NULL && vd->vdev_ops->vdev_op_leaf &&
3523 	    !vdev_accessible(vd, zio))
3524 		zio->io_error = SET_ERROR(ENXIO);
3525 
3526 	/*
3527 	 * If we can't write to an interior vdev (mirror or RAID-Z),
3528 	 * set vdev_cant_write so that we stop trying to allocate from it.
3529 	 */
3530 	if (zio->io_error == ENXIO && zio->io_type == ZIO_TYPE_WRITE &&
3531 	    vd != NULL && !vd->vdev_ops->vdev_op_leaf) {
3532 		vd->vdev_cant_write = B_TRUE;
3533 	}
3534 
3535 	/*
3536 	 * If a cache flush returns ENOTSUP or ENOTTY, we know that no future
3537 	 * attempts will ever succeed. In this case we set a persistent bit so
3538 	 * that we don't bother with it in the future.
3539 	 */
3540 	if ((zio->io_error == ENOTSUP || zio->io_error == ENOTTY) &&
3541 	    zio->io_type == ZIO_TYPE_IOCTL &&
3542 	    zio->io_cmd == DKIOCFLUSHWRITECACHE && vd != NULL)
3543 		vd->vdev_nowritecache = B_TRUE;
3544 
3545 	if (zio->io_error)
3546 		zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
3547 
3548 	if (vd != NULL && vd->vdev_ops->vdev_op_leaf &&
3549 	    zio->io_physdone != NULL) {
3550 		ASSERT(!(zio->io_flags & ZIO_FLAG_DELEGATED));
3551 		ASSERT(zio->io_child_type == ZIO_CHILD_VDEV);
3552 		zio->io_physdone(zio->io_logical);
3553 	}
3554 
3555 	return (zio);
3556 }
3557 
3558 void
zio_vdev_io_reissue(zio_t * zio)3559 zio_vdev_io_reissue(zio_t *zio)
3560 {
3561 	ASSERT(zio->io_stage == ZIO_STAGE_VDEV_IO_START);
3562 	ASSERT(zio->io_error == 0);
3563 
3564 	zio->io_stage >>= 1;
3565 }
3566 
3567 void
zio_vdev_io_redone(zio_t * zio)3568 zio_vdev_io_redone(zio_t *zio)
3569 {
3570 	ASSERT(zio->io_stage == ZIO_STAGE_VDEV_IO_DONE);
3571 
3572 	zio->io_stage >>= 1;
3573 }
3574 
3575 void
zio_vdev_io_bypass(zio_t * zio)3576 zio_vdev_io_bypass(zio_t *zio)
3577 {
3578 	ASSERT(zio->io_stage == ZIO_STAGE_VDEV_IO_START);
3579 	ASSERT(zio->io_error == 0);
3580 
3581 	zio->io_flags |= ZIO_FLAG_IO_BYPASS;
3582 	zio->io_stage = ZIO_STAGE_VDEV_IO_ASSESS >> 1;
3583 }
3584 
3585 /*
3586  * ==========================================================================
3587  * Generate and verify checksums
3588  * ==========================================================================
3589  */
3590 static zio_t *
zio_checksum_generate(zio_t * zio)3591 zio_checksum_generate(zio_t *zio)
3592 {
3593 	blkptr_t *bp = zio->io_bp;
3594 	enum zio_checksum checksum;
3595 
3596 	if (bp == NULL) {
3597 		/*
3598 		 * This is zio_write_phys().
3599 		 * We're either generating a label checksum, or none at all.
3600 		 */
3601 		checksum = zio->io_prop.zp_checksum;
3602 
3603 		if (checksum == ZIO_CHECKSUM_OFF)
3604 			return (zio);
3605 
3606 		ASSERT(checksum == ZIO_CHECKSUM_LABEL);
3607 	} else {
3608 		if (BP_IS_GANG(bp) && zio->io_child_type == ZIO_CHILD_GANG) {
3609 			ASSERT(!IO_IS_ALLOCATING(zio));
3610 			checksum = ZIO_CHECKSUM_GANG_HEADER;
3611 		} else {
3612 			checksum = BP_GET_CHECKSUM(bp);
3613 		}
3614 	}
3615 
3616 	zio_checksum_compute(zio, checksum, zio->io_abd, zio->io_size);
3617 
3618 	return (zio);
3619 }
3620 
3621 static zio_t *
zio_checksum_verify(zio_t * zio)3622 zio_checksum_verify(zio_t *zio)
3623 {
3624 	zio_bad_cksum_t info;
3625 	blkptr_t *bp = zio->io_bp;
3626 	int error;
3627 
3628 	ASSERT(zio->io_vd != NULL);
3629 
3630 	if (bp == NULL) {
3631 		/*
3632 		 * This is zio_read_phys().
3633 		 * We're either verifying a label checksum, or nothing at all.
3634 		 */
3635 		if (zio->io_prop.zp_checksum == ZIO_CHECKSUM_OFF)
3636 			return (zio);
3637 
3638 		ASSERT(zio->io_prop.zp_checksum == ZIO_CHECKSUM_LABEL);
3639 	}
3640 
3641 	if ((error = zio_checksum_error(zio, &info)) != 0) {
3642 		zio->io_error = error;
3643 		if (error == ECKSUM &&
3644 		    !(zio->io_flags & ZIO_FLAG_SPECULATIVE)) {
3645 			zfs_ereport_start_checksum(zio->io_spa,
3646 			    zio->io_vd, zio, zio->io_offset,
3647 			    zio->io_size, NULL, &info);
3648 		}
3649 	}
3650 
3651 	return (zio);
3652 }
3653 
3654 /*
3655  * Called by RAID-Z to ensure we don't compute the checksum twice.
3656  */
3657 void
zio_checksum_verified(zio_t * zio)3658 zio_checksum_verified(zio_t *zio)
3659 {
3660 	zio->io_pipeline &= ~ZIO_STAGE_CHECKSUM_VERIFY;
3661 }
3662 
3663 /*
3664  * ==========================================================================
3665  * Error rank.  Error are ranked in the order 0, ENXIO, ECKSUM, EIO, other.
3666  * An error of 0 indicates success.  ENXIO indicates whole-device failure,
3667  * which may be transient (e.g. unplugged) or permament.  ECKSUM and EIO
3668  * indicate errors that are specific to one I/O, and most likely permanent.
3669  * Any other error is presumed to be worse because we weren't expecting it.
3670  * ==========================================================================
3671  */
3672 int
zio_worst_error(int e1,int e2)3673 zio_worst_error(int e1, int e2)
3674 {
3675 	static int zio_error_rank[] = { 0, ENXIO, ECKSUM, EIO };
3676 	int r1, r2;
3677 
3678 	for (r1 = 0; r1 < sizeof (zio_error_rank) / sizeof (int); r1++)
3679 		if (e1 == zio_error_rank[r1])
3680 			break;
3681 
3682 	for (r2 = 0; r2 < sizeof (zio_error_rank) / sizeof (int); r2++)
3683 		if (e2 == zio_error_rank[r2])
3684 			break;
3685 
3686 	return (r1 > r2 ? e1 : e2);
3687 }
3688 
3689 /*
3690  * ==========================================================================
3691  * I/O completion
3692  * ==========================================================================
3693  */
3694 static zio_t *
zio_ready(zio_t * zio)3695 zio_ready(zio_t *zio)
3696 {
3697 	blkptr_t *bp = zio->io_bp;
3698 	zio_t *pio, *pio_next;
3699 	zio_link_t *zl = NULL;
3700 
3701 	if (zio_wait_for_children(zio, ZIO_CHILD_GANG_BIT | ZIO_CHILD_DDT_BIT,
3702 	    ZIO_WAIT_READY)) {
3703 		return (NULL);
3704 	}
3705 
3706 	if (zio->io_ready) {
3707 		ASSERT(IO_IS_ALLOCATING(zio));
3708 		ASSERT(bp->blk_birth == zio->io_txg || BP_IS_HOLE(bp) ||
3709 		    (zio->io_flags & ZIO_FLAG_NOPWRITE));
3710 		ASSERT(zio->io_children[ZIO_CHILD_GANG][ZIO_WAIT_READY] == 0);
3711 
3712 		zio->io_ready(zio);
3713 	}
3714 
3715 	if (bp != NULL && bp != &zio->io_bp_copy)
3716 		zio->io_bp_copy = *bp;
3717 
3718 	if (zio->io_error != 0) {
3719 		zio->io_pipeline = ZIO_INTERLOCK_PIPELINE;
3720 
3721 		if (zio->io_flags & ZIO_FLAG_IO_ALLOCATING) {
3722 			ASSERT(IO_IS_ALLOCATING(zio));
3723 			ASSERT(zio->io_priority == ZIO_PRIORITY_ASYNC_WRITE);
3724 			/*
3725 			 * We were unable to allocate anything, unreserve and
3726 			 * issue the next I/O to allocate.
3727 			 */
3728 			metaslab_class_throttle_unreserve(
3729 			    spa_normal_class(zio->io_spa),
3730 			    zio->io_prop.zp_copies, zio->io_allocator, zio);
3731 			zio_allocate_dispatch(zio->io_spa, zio->io_allocator);
3732 		}
3733 	}
3734 
3735 	mutex_enter(&zio->io_lock);
3736 	zio->io_state[ZIO_WAIT_READY] = 1;
3737 	pio = zio_walk_parents(zio, &zl);
3738 	mutex_exit(&zio->io_lock);
3739 
3740 	/*
3741 	 * As we notify zio's parents, new parents could be added.
3742 	 * New parents go to the head of zio's io_parent_list, however,
3743 	 * so we will (correctly) not notify them.  The remainder of zio's
3744 	 * io_parent_list, from 'pio_next' onward, cannot change because
3745 	 * all parents must wait for us to be done before they can be done.
3746 	 */
3747 	for (; pio != NULL; pio = pio_next) {
3748 		pio_next = zio_walk_parents(zio, &zl);
3749 		zio_notify_parent(pio, zio, ZIO_WAIT_READY, NULL);
3750 	}
3751 
3752 	if (zio->io_flags & ZIO_FLAG_NODATA) {
3753 		if (BP_IS_GANG(bp)) {
3754 			zio->io_flags &= ~ZIO_FLAG_NODATA;
3755 		} else {
3756 			ASSERT((uintptr_t)zio->io_abd < SPA_MAXBLOCKSIZE);
3757 			zio->io_pipeline &= ~ZIO_VDEV_IO_STAGES;
3758 		}
3759 	}
3760 
3761 	if (zio_injection_enabled &&
3762 	    zio->io_spa->spa_syncing_txg == zio->io_txg)
3763 		zio_handle_ignored_writes(zio);
3764 
3765 	return (zio);
3766 }
3767 
3768 /*
3769  * Update the allocation throttle accounting.
3770  */
3771 static void
zio_dva_throttle_done(zio_t * zio)3772 zio_dva_throttle_done(zio_t *zio)
3773 {
3774 	zio_t *lio = zio->io_logical;
3775 	zio_t *pio = zio_unique_parent(zio);
3776 	vdev_t *vd = zio->io_vd;
3777 	int flags = METASLAB_ASYNC_ALLOC;
3778 
3779 	ASSERT3P(zio->io_bp, !=, NULL);
3780 	ASSERT3U(zio->io_type, ==, ZIO_TYPE_WRITE);
3781 	ASSERT3U(zio->io_priority, ==, ZIO_PRIORITY_ASYNC_WRITE);
3782 	ASSERT3U(zio->io_child_type, ==, ZIO_CHILD_VDEV);
3783 	ASSERT(vd != NULL);
3784 	ASSERT3P(vd, ==, vd->vdev_top);
3785 	ASSERT(!(zio->io_flags & (ZIO_FLAG_IO_REPAIR | ZIO_FLAG_IO_RETRY)));
3786 	ASSERT(zio->io_flags & ZIO_FLAG_IO_ALLOCATING);
3787 	ASSERT(!(lio->io_flags & ZIO_FLAG_IO_REWRITE));
3788 	ASSERT(!(lio->io_orig_flags & ZIO_FLAG_NODATA));
3789 
3790 	/*
3791 	 * Parents of gang children can have two flavors -- ones that
3792 	 * allocated the gang header (will have ZIO_FLAG_IO_REWRITE set)
3793 	 * and ones that allocated the constituent blocks. The allocation
3794 	 * throttle needs to know the allocating parent zio so we must find
3795 	 * it here.
3796 	 */
3797 	if (pio->io_child_type == ZIO_CHILD_GANG) {
3798 		/*
3799 		 * If our parent is a rewrite gang child then our grandparent
3800 		 * would have been the one that performed the allocation.
3801 		 */
3802 		if (pio->io_flags & ZIO_FLAG_IO_REWRITE)
3803 			pio = zio_unique_parent(pio);
3804 		flags |= METASLAB_GANG_CHILD;
3805 	}
3806 
3807 	ASSERT(IO_IS_ALLOCATING(pio));
3808 	ASSERT3P(zio, !=, zio->io_logical);
3809 	ASSERT(zio->io_logical != NULL);
3810 	ASSERT(!(zio->io_flags & ZIO_FLAG_IO_REPAIR));
3811 	ASSERT0(zio->io_flags & ZIO_FLAG_NOPWRITE);
3812 
3813 	mutex_enter(&pio->io_lock);
3814 	metaslab_group_alloc_decrement(zio->io_spa, vd->vdev_id, pio, flags,
3815 	    pio->io_allocator, B_TRUE);
3816 	mutex_exit(&pio->io_lock);
3817 
3818 	metaslab_class_throttle_unreserve(spa_normal_class(zio->io_spa),
3819 	    1, pio->io_allocator, pio);
3820 
3821 	/*
3822 	 * Call into the pipeline to see if there is more work that
3823 	 * needs to be done. If there is work to be done it will be
3824 	 * dispatched to another taskq thread.
3825 	 */
3826 	zio_allocate_dispatch(zio->io_spa, pio->io_allocator);
3827 }
3828 
3829 static zio_t *
zio_done(zio_t * zio)3830 zio_done(zio_t *zio)
3831 {
3832 	spa_t *spa = zio->io_spa;
3833 	zio_t *lio = zio->io_logical;
3834 	blkptr_t *bp = zio->io_bp;
3835 	vdev_t *vd = zio->io_vd;
3836 	uint64_t psize = zio->io_size;
3837 	zio_t *pio, *pio_next;
3838 	metaslab_class_t *mc = spa_normal_class(spa);
3839 	zio_link_t *zl = NULL;
3840 
3841 	/*
3842 	 * If our children haven't all completed,
3843 	 * wait for them and then repeat this pipeline stage.
3844 	 */
3845 	if (zio_wait_for_children(zio, ZIO_CHILD_ALL_BITS, ZIO_WAIT_DONE)) {
3846 		return (NULL);
3847 	}
3848 
3849 	/*
3850 	 * If the allocation throttle is enabled, then update the accounting.
3851 	 * We only track child I/Os that are part of an allocating async
3852 	 * write. We must do this since the allocation is performed
3853 	 * by the logical I/O but the actual write is done by child I/Os.
3854 	 */
3855 	if (zio->io_flags & ZIO_FLAG_IO_ALLOCATING &&
3856 	    zio->io_child_type == ZIO_CHILD_VDEV) {
3857 		ASSERT(mc->mc_alloc_throttle_enabled);
3858 		zio_dva_throttle_done(zio);
3859 	}
3860 
3861 	/*
3862 	 * If the allocation throttle is enabled, verify that
3863 	 * we have decremented the refcounts for every I/O that was throttled.
3864 	 */
3865 	if (zio->io_flags & ZIO_FLAG_IO_ALLOCATING) {
3866 		ASSERT(zio->io_type == ZIO_TYPE_WRITE);
3867 		ASSERT(zio->io_priority == ZIO_PRIORITY_ASYNC_WRITE);
3868 		ASSERT(bp != NULL);
3869 		metaslab_group_alloc_verify(spa, zio->io_bp, zio,
3870 		    zio->io_allocator);
3871 		VERIFY(refcount_not_held(&mc->mc_alloc_slots[zio->io_allocator],
3872 		    zio));
3873 	}
3874 
3875 	for (int c = 0; c < ZIO_CHILD_TYPES; c++)
3876 		for (int w = 0; w < ZIO_WAIT_TYPES; w++)
3877 			ASSERT(zio->io_children[c][w] == 0);
3878 
3879 	if (bp != NULL && !BP_IS_EMBEDDED(bp)) {
3880 		ASSERT(bp->blk_pad[0] == 0);
3881 		ASSERT(bp->blk_pad[1] == 0);
3882 		ASSERT(bcmp(bp, &zio->io_bp_copy, sizeof (blkptr_t)) == 0 ||
3883 		    (bp == zio_unique_parent(zio)->io_bp));
3884 		if (zio->io_type == ZIO_TYPE_WRITE && !BP_IS_HOLE(bp) &&
3885 		    zio->io_bp_override == NULL &&
3886 		    !(zio->io_flags & ZIO_FLAG_IO_REPAIR)) {
3887 			ASSERT(!BP_SHOULD_BYTESWAP(bp));
3888 			ASSERT3U(zio->io_prop.zp_copies, <=, BP_GET_NDVAS(bp));
3889 			ASSERT(BP_COUNT_GANG(bp) == 0 ||
3890 			    (BP_COUNT_GANG(bp) == BP_GET_NDVAS(bp)));
3891 		}
3892 		if (zio->io_flags & ZIO_FLAG_NOPWRITE)
3893 			VERIFY(BP_EQUAL(bp, &zio->io_bp_orig));
3894 	}
3895 
3896 	/*
3897 	 * If there were child vdev/gang/ddt errors, they apply to us now.
3898 	 */
3899 	zio_inherit_child_errors(zio, ZIO_CHILD_VDEV);
3900 	zio_inherit_child_errors(zio, ZIO_CHILD_GANG);
3901 	zio_inherit_child_errors(zio, ZIO_CHILD_DDT);
3902 
3903 	/*
3904 	 * If the I/O on the transformed data was successful, generate any
3905 	 * checksum reports now while we still have the transformed data.
3906 	 */
3907 	if (zio->io_error == 0) {
3908 		while (zio->io_cksum_report != NULL) {
3909 			zio_cksum_report_t *zcr = zio->io_cksum_report;
3910 			uint64_t align = zcr->zcr_align;
3911 			uint64_t asize = P2ROUNDUP(psize, align);
3912 			char *abuf = NULL;
3913 			abd_t *adata = zio->io_abd;
3914 
3915 			if (asize != psize) {
3916 				adata = abd_alloc_linear(asize, B_TRUE);
3917 				abd_copy(adata, zio->io_abd, psize);
3918 				abd_zero_off(adata, psize, asize - psize);
3919 			}
3920 
3921 			if (adata != NULL)
3922 				abuf = abd_borrow_buf_copy(adata, asize);
3923 
3924 			zio->io_cksum_report = zcr->zcr_next;
3925 			zcr->zcr_next = NULL;
3926 			zcr->zcr_finish(zcr, abuf);
3927 			zfs_ereport_free_checksum(zcr);
3928 
3929 			if (adata != NULL)
3930 				abd_return_buf(adata, abuf, asize);
3931 
3932 			if (asize != psize)
3933 				abd_free(adata);
3934 		}
3935 	}
3936 
3937 	zio_pop_transforms(zio);	/* note: may set zio->io_error */
3938 
3939 	vdev_stat_update(zio, psize);
3940 
3941 	if (zio->io_error) {
3942 		/*
3943 		 * If this I/O is attached to a particular vdev,
3944 		 * generate an error message describing the I/O failure
3945 		 * at the block level.  We ignore these errors if the
3946 		 * device is currently unavailable.
3947 		 */
3948 		if (zio->io_error != ECKSUM && vd != NULL && !vdev_is_dead(vd))
3949 			zfs_ereport_post(FM_EREPORT_ZFS_IO, spa, vd, zio, 0, 0);
3950 
3951 		if ((zio->io_error == EIO || !(zio->io_flags &
3952 		    (ZIO_FLAG_SPECULATIVE | ZIO_FLAG_DONT_PROPAGATE))) &&
3953 		    zio == lio) {
3954 			/*
3955 			 * For logical I/O requests, tell the SPA to log the
3956 			 * error and generate a logical data ereport.
3957 			 */
3958 			spa_log_error(spa, zio);
3959 			zfs_ereport_post(FM_EREPORT_ZFS_DATA, spa, NULL, zio,
3960 			    0, 0);
3961 		}
3962 	}
3963 
3964 	if (zio->io_error && zio == lio) {
3965 		/*
3966 		 * Determine whether zio should be reexecuted.  This will
3967 		 * propagate all the way to the root via zio_notify_parent().
3968 		 */
3969 		ASSERT(vd == NULL && bp != NULL);
3970 		ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
3971 
3972 		if (IO_IS_ALLOCATING(zio) &&
3973 		    !(zio->io_flags & ZIO_FLAG_CANFAIL)) {
3974 			if (zio->io_error != ENOSPC)
3975 				zio->io_reexecute |= ZIO_REEXECUTE_NOW;
3976 			else
3977 				zio->io_reexecute |= ZIO_REEXECUTE_SUSPEND;
3978 		}
3979 
3980 		if ((zio->io_type == ZIO_TYPE_READ ||
3981 		    zio->io_type == ZIO_TYPE_FREE) &&
3982 		    !(zio->io_flags & ZIO_FLAG_SCAN_THREAD) &&
3983 		    zio->io_error == ENXIO &&
3984 		    spa_load_state(spa) == SPA_LOAD_NONE &&
3985 		    spa_get_failmode(spa) != ZIO_FAILURE_MODE_CONTINUE)
3986 			zio->io_reexecute |= ZIO_REEXECUTE_SUSPEND;
3987 
3988 		if (!(zio->io_flags & ZIO_FLAG_CANFAIL) && !zio->io_reexecute)
3989 			zio->io_reexecute |= ZIO_REEXECUTE_SUSPEND;
3990 
3991 		/*
3992 		 * Here is a possibly good place to attempt to do
3993 		 * either combinatorial reconstruction or error correction
3994 		 * based on checksums.  It also might be a good place
3995 		 * to send out preliminary ereports before we suspend
3996 		 * processing.
3997 		 */
3998 	}
3999 
4000 	/*
4001 	 * If there were logical child errors, they apply to us now.
4002 	 * We defer this until now to avoid conflating logical child
4003 	 * errors with errors that happened to the zio itself when
4004 	 * updating vdev stats and reporting FMA events above.
4005 	 */
4006 	zio_inherit_child_errors(zio, ZIO_CHILD_LOGICAL);
4007 
4008 	if ((zio->io_error || zio->io_reexecute) &&
4009 	    IO_IS_ALLOCATING(zio) && zio->io_gang_leader == zio &&
4010 	    !(zio->io_flags & (ZIO_FLAG_IO_REWRITE | ZIO_FLAG_NOPWRITE)))
4011 		zio_dva_unallocate(zio, zio->io_gang_tree, bp);
4012 
4013 	zio_gang_tree_free(&zio->io_gang_tree);
4014 
4015 	/*
4016 	 * Godfather I/Os should never suspend.
4017 	 */
4018 	if ((zio->io_flags & ZIO_FLAG_GODFATHER) &&
4019 	    (zio->io_reexecute & ZIO_REEXECUTE_SUSPEND))
4020 		zio->io_reexecute = 0;
4021 
4022 	if (zio->io_reexecute) {
4023 		/*
4024 		 * This is a logical I/O that wants to reexecute.
4025 		 *
4026 		 * Reexecute is top-down.  When an i/o fails, if it's not
4027 		 * the root, it simply notifies its parent and sticks around.
4028 		 * The parent, seeing that it still has children in zio_done(),
4029 		 * does the same.  This percolates all the way up to the root.
4030 		 * The root i/o will reexecute or suspend the entire tree.
4031 		 *
4032 		 * This approach ensures that zio_reexecute() honors
4033 		 * all the original i/o dependency relationships, e.g.
4034 		 * parents not executing until children are ready.
4035 		 */
4036 		ASSERT(zio->io_child_type == ZIO_CHILD_LOGICAL);
4037 
4038 		zio->io_gang_leader = NULL;
4039 
4040 		mutex_enter(&zio->io_lock);
4041 		zio->io_state[ZIO_WAIT_DONE] = 1;
4042 		mutex_exit(&zio->io_lock);
4043 
4044 		/*
4045 		 * "The Godfather" I/O monitors its children but is
4046 		 * not a true parent to them. It will track them through
4047 		 * the pipeline but severs its ties whenever they get into
4048 		 * trouble (e.g. suspended). This allows "The Godfather"
4049 		 * I/O to return status without blocking.
4050 		 */
4051 		zl = NULL;
4052 		for (pio = zio_walk_parents(zio, &zl); pio != NULL;
4053 		    pio = pio_next) {
4054 			zio_link_t *remove_zl = zl;
4055 			pio_next = zio_walk_parents(zio, &zl);
4056 
4057 			if ((pio->io_flags & ZIO_FLAG_GODFATHER) &&
4058 			    (zio->io_reexecute & ZIO_REEXECUTE_SUSPEND)) {
4059 				zio_remove_child(pio, zio, remove_zl);
4060 				/*
4061 				 * This is a rare code path, so we don't
4062 				 * bother with "next_to_execute".
4063 				 */
4064 				zio_notify_parent(pio, zio, ZIO_WAIT_DONE,
4065 				    NULL);
4066 			}
4067 		}
4068 
4069 		if ((pio = zio_unique_parent(zio)) != NULL) {
4070 			/*
4071 			 * We're not a root i/o, so there's nothing to do
4072 			 * but notify our parent.  Don't propagate errors
4073 			 * upward since we haven't permanently failed yet.
4074 			 */
4075 			ASSERT(!(zio->io_flags & ZIO_FLAG_GODFATHER));
4076 			zio->io_flags |= ZIO_FLAG_DONT_PROPAGATE;
4077 			/*
4078 			 * This is a rare code path, so we don't bother with
4079 			 * "next_to_execute".
4080 			 */
4081 			zio_notify_parent(pio, zio, ZIO_WAIT_DONE, NULL);
4082 		} else if (zio->io_reexecute & ZIO_REEXECUTE_SUSPEND) {
4083 			/*
4084 			 * We'd fail again if we reexecuted now, so suspend
4085 			 * until conditions improve (e.g. device comes online).
4086 			 */
4087 			zio_suspend(spa, zio);
4088 		} else {
4089 			/*
4090 			 * Reexecution is potentially a huge amount of work.
4091 			 * Hand it off to the otherwise-unused claim taskq.
4092 			 */
4093 #if defined(illumos) || !defined(_KERNEL)
4094 			ASSERT(zio->io_tqent.tqent_next == NULL);
4095 #else
4096 			ASSERT(zio->io_tqent.tqent_task.ta_pending == 0);
4097 #endif
4098 			spa_taskq_dispatch_ent(spa, ZIO_TYPE_CLAIM,
4099 			    ZIO_TASKQ_ISSUE, (task_func_t *)zio_reexecute, zio,
4100 			    0, &zio->io_tqent);
4101 		}
4102 		return (NULL);
4103 	}
4104 
4105 	ASSERT(zio->io_child_count == 0);
4106 	ASSERT(zio->io_reexecute == 0);
4107 	ASSERT(zio->io_error == 0 || (zio->io_flags & ZIO_FLAG_CANFAIL));
4108 
4109 	/*
4110 	 * Report any checksum errors, since the I/O is complete.
4111 	 */
4112 	while (zio->io_cksum_report != NULL) {
4113 		zio_cksum_report_t *zcr = zio->io_cksum_report;
4114 		zio->io_cksum_report = zcr->zcr_next;
4115 		zcr->zcr_next = NULL;
4116 		zcr->zcr_finish(zcr, NULL);
4117 		zfs_ereport_free_checksum(zcr);
4118 	}
4119 
4120 	/*
4121 	 * It is the responsibility of the done callback to ensure that this
4122 	 * particular zio is no longer discoverable for adoption, and as
4123 	 * such, cannot acquire any new parents.
4124 	 */
4125 	if (zio->io_done)
4126 		zio->io_done(zio);
4127 
4128 	mutex_enter(&zio->io_lock);
4129 	zio->io_state[ZIO_WAIT_DONE] = 1;
4130 	mutex_exit(&zio->io_lock);
4131 
4132 	/*
4133 	 * We are done executing this zio.  We may want to execute a parent
4134 	 * next.  See the comment in zio_notify_parent().
4135 	 */
4136 	zio_t *next_to_execute = NULL;
4137 	zl = NULL;
4138 	for (pio = zio_walk_parents(zio, &zl); pio != NULL; pio = pio_next) {
4139 		zio_link_t *remove_zl = zl;
4140 		pio_next = zio_walk_parents(zio, &zl);
4141 		zio_remove_child(pio, zio, remove_zl);
4142 		zio_notify_parent(pio, zio, ZIO_WAIT_DONE, &next_to_execute);
4143 	}
4144 
4145 	if (zio->io_waiter != NULL) {
4146 		mutex_enter(&zio->io_lock);
4147 		zio->io_executor = NULL;
4148 		cv_broadcast(&zio->io_cv);
4149 		mutex_exit(&zio->io_lock);
4150 	} else {
4151 		zio_destroy(zio);
4152 	}
4153 
4154 	return (next_to_execute);
4155 }
4156 
4157 /*
4158  * ==========================================================================
4159  * I/O pipeline definition
4160  * ==========================================================================
4161  */
4162 static zio_pipe_stage_t *zio_pipeline[] = {
4163 	NULL,
4164 	zio_read_bp_init,
4165 	zio_write_bp_init,
4166 	zio_free_bp_init,
4167 	zio_issue_async,
4168 	zio_write_compress,
4169 	zio_checksum_generate,
4170 	zio_nop_write,
4171 	zio_ddt_read_start,
4172 	zio_ddt_read_done,
4173 	zio_ddt_write,
4174 	zio_ddt_free,
4175 	zio_gang_assemble,
4176 	zio_gang_issue,
4177 	zio_dva_throttle,
4178 	zio_dva_allocate,
4179 	zio_dva_free,
4180 	zio_dva_claim,
4181 	zio_ready,
4182 	zio_vdev_io_start,
4183 	zio_vdev_io_done,
4184 	zio_vdev_io_assess,
4185 	zio_checksum_verify,
4186 	zio_done
4187 };
4188 
4189 
4190 
4191 
4192 /*
4193  * Compare two zbookmark_phys_t's to see which we would reach first in a
4194  * pre-order traversal of the object tree.
4195  *
4196  * This is simple in every case aside from the meta-dnode object. For all other
4197  * objects, we traverse them in order (object 1 before object 2, and so on).
4198  * However, all of these objects are traversed while traversing object 0, since
4199  * the data it points to is the list of objects.  Thus, we need to convert to a
4200  * canonical representation so we can compare meta-dnode bookmarks to
4201  * non-meta-dnode bookmarks.
4202  *
4203  * We do this by calculating "equivalents" for each field of the zbookmark.
4204  * zbookmarks outside of the meta-dnode use their own object and level, and
4205  * calculate the level 0 equivalent (the first L0 blkid that is contained in the
4206  * blocks this bookmark refers to) by multiplying their blkid by their span
4207  * (the number of L0 blocks contained within one block at their level).
4208  * zbookmarks inside the meta-dnode calculate their object equivalent
4209  * (which is L0equiv * dnodes per data block), use 0 for their L0equiv, and use
4210  * level + 1<<31 (any value larger than a level could ever be) for their level.
4211  * This causes them to always compare before a bookmark in their object
4212  * equivalent, compare appropriately to bookmarks in other objects, and to
4213  * compare appropriately to other bookmarks in the meta-dnode.
4214  */
4215 int
zbookmark_compare(uint16_t dbss1,uint8_t ibs1,uint16_t dbss2,uint8_t ibs2,const zbookmark_phys_t * zb1,const zbookmark_phys_t * zb2)4216 zbookmark_compare(uint16_t dbss1, uint8_t ibs1, uint16_t dbss2, uint8_t ibs2,
4217     const zbookmark_phys_t *zb1, const zbookmark_phys_t *zb2)
4218 {
4219 	/*
4220 	 * These variables represent the "equivalent" values for the zbookmark,
4221 	 * after converting zbookmarks inside the meta dnode to their
4222 	 * normal-object equivalents.
4223 	 */
4224 	uint64_t zb1obj, zb2obj;
4225 	uint64_t zb1L0, zb2L0;
4226 	uint64_t zb1level, zb2level;
4227 
4228 	if (zb1->zb_object == zb2->zb_object &&
4229 	    zb1->zb_level == zb2->zb_level &&
4230 	    zb1->zb_blkid == zb2->zb_blkid)
4231 		return (0);
4232 
4233 	/*
4234 	 * BP_SPANB calculates the span in blocks.
4235 	 */
4236 	zb1L0 = (zb1->zb_blkid) * BP_SPANB(ibs1, zb1->zb_level);
4237 	zb2L0 = (zb2->zb_blkid) * BP_SPANB(ibs2, zb2->zb_level);
4238 
4239 	if (zb1->zb_object == DMU_META_DNODE_OBJECT) {
4240 		zb1obj = zb1L0 * (dbss1 << (SPA_MINBLOCKSHIFT - DNODE_SHIFT));
4241 		zb1L0 = 0;
4242 		zb1level = zb1->zb_level + COMPARE_META_LEVEL;
4243 	} else {
4244 		zb1obj = zb1->zb_object;
4245 		zb1level = zb1->zb_level;
4246 	}
4247 
4248 	if (zb2->zb_object == DMU_META_DNODE_OBJECT) {
4249 		zb2obj = zb2L0 * (dbss2 << (SPA_MINBLOCKSHIFT - DNODE_SHIFT));
4250 		zb2L0 = 0;
4251 		zb2level = zb2->zb_level + COMPARE_META_LEVEL;
4252 	} else {
4253 		zb2obj = zb2->zb_object;
4254 		zb2level = zb2->zb_level;
4255 	}
4256 
4257 	/* Now that we have a canonical representation, do the comparison. */
4258 	if (zb1obj != zb2obj)
4259 		return (zb1obj < zb2obj ? -1 : 1);
4260 	else if (zb1L0 != zb2L0)
4261 		return (zb1L0 < zb2L0 ? -1 : 1);
4262 	else if (zb1level != zb2level)
4263 		return (zb1level > zb2level ? -1 : 1);
4264 	/*
4265 	 * This can (theoretically) happen if the bookmarks have the same object
4266 	 * and level, but different blkids, if the block sizes are not the same.
4267 	 * There is presently no way to change the indirect block sizes
4268 	 */
4269 	return (0);
4270 }
4271 
4272 /*
4273  *  This function checks the following: given that last_block is the place that
4274  *  our traversal stopped last time, does that guarantee that we've visited
4275  *  every node under subtree_root?  Therefore, we can't just use the raw output
4276  *  of zbookmark_compare.  We have to pass in a modified version of
4277  *  subtree_root; by incrementing the block id, and then checking whether
4278  *  last_block is before or equal to that, we can tell whether or not having
4279  *  visited last_block implies that all of subtree_root's children have been
4280  *  visited.
4281  */
4282 boolean_t
zbookmark_subtree_completed(const dnode_phys_t * dnp,const zbookmark_phys_t * subtree_root,const zbookmark_phys_t * last_block)4283 zbookmark_subtree_completed(const dnode_phys_t *dnp,
4284     const zbookmark_phys_t *subtree_root, const zbookmark_phys_t *last_block)
4285 {
4286 	zbookmark_phys_t mod_zb = *subtree_root;
4287 	mod_zb.zb_blkid++;
4288 	ASSERT(last_block->zb_level == 0);
4289 
4290 	/* The objset_phys_t isn't before anything. */
4291 	if (dnp == NULL)
4292 		return (B_FALSE);
4293 
4294 	/*
4295 	 * We pass in 1ULL << (DNODE_BLOCK_SHIFT - SPA_MINBLOCKSHIFT) for the
4296 	 * data block size in sectors, because that variable is only used if
4297 	 * the bookmark refers to a block in the meta-dnode.  Since we don't
4298 	 * know without examining it what object it refers to, and there's no
4299 	 * harm in passing in this value in other cases, we always pass it in.
4300 	 *
4301 	 * We pass in 0 for the indirect block size shift because zb2 must be
4302 	 * level 0.  The indirect block size is only used to calculate the span
4303 	 * of the bookmark, but since the bookmark must be level 0, the span is
4304 	 * always 1, so the math works out.
4305 	 *
4306 	 * If you make changes to how the zbookmark_compare code works, be sure
4307 	 * to make sure that this code still works afterwards.
4308 	 */
4309 	return (zbookmark_compare(dnp->dn_datablkszsec, dnp->dn_indblkshift,
4310 	    1ULL << (DNODE_BLOCK_SHIFT - SPA_MINBLOCKSHIFT), 0, &mod_zb,
4311 	    last_block) <= 0);
4312 }
4313