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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 https://opensource.org/licenses/CDDL-1.0.
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 /*
23 * Copyright (c) 2010, Oracle and/or its affiliates. All rights reserved.
24 * Copyright (c) 2013, 2017 by Delphix. All rights reserved.
25 * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
26 * Copyright 2023 RackTop Systems, Inc.
27 */
28
29 #include <sys/zfs_context.h>
30 #include <sys/types.h>
31 #include <sys/param.h>
32 #include <sys/sysmacros.h>
33 #include <sys/dmu.h>
34 #include <sys/dmu_impl.h>
35 #include <sys/dmu_objset.h>
36 #include <sys/dmu_tx.h>
37 #include <sys/dbuf.h>
38 #include <sys/dnode.h>
39 #include <sys/zap.h>
40 #include <sys/sa.h>
41 #include <sys/sunddi.h>
42 #include <sys/sa_impl.h>
43 #include <sys/errno.h>
44 #include <sys/zfs_context.h>
45
46 #ifdef _KERNEL
47 #include <sys/zfs_znode.h>
48 #endif
49
50 /*
51 * ZFS System attributes:
52 *
53 * A generic mechanism to allow for arbitrary attributes
54 * to be stored in a dnode. The data will be stored in the bonus buffer of
55 * the dnode and if necessary a special "spill" block will be used to handle
56 * overflow situations. The spill block will be sized to fit the data
57 * from 512 - 128K. When a spill block is used the BP (blkptr_t) for the
58 * spill block is stored at the end of the current bonus buffer. Any
59 * attributes that would be in the way of the blkptr_t will be relocated
60 * into the spill block.
61 *
62 * Attribute registration:
63 *
64 * Stored persistently on a per dataset basis
65 * a mapping between attribute "string" names and their actual attribute
66 * numeric values, length, and byteswap function. The names are only used
67 * during registration. All attributes are known by their unique attribute
68 * id value. If an attribute can have a variable size then the value
69 * 0 will be used to indicate this.
70 *
71 * Attribute Layout:
72 *
73 * Attribute layouts are a way to compactly store multiple attributes, but
74 * without taking the overhead associated with managing each attribute
75 * individually. Since you will typically have the same set of attributes
76 * stored in the same order a single table will be used to represent that
77 * layout. The ZPL for example will usually have only about 10 different
78 * layouts (regular files, device files, symlinks,
79 * regular files + scanstamp, files/dir with extended attributes, and then
80 * you have the possibility of all of those minus ACL, because it would
81 * be kicked out into the spill block)
82 *
83 * Layouts are simply an array of the attributes and their
84 * ordering i.e. [0, 1, 4, 5, 2]
85 *
86 * Each distinct layout is given a unique layout number and that is what's
87 * stored in the header at the beginning of the SA data buffer.
88 *
89 * A layout only covers a single dbuf (bonus or spill). If a set of
90 * attributes is split up between the bonus buffer and a spill buffer then
91 * two different layouts will be used. This allows us to byteswap the
92 * spill without looking at the bonus buffer and keeps the on disk format of
93 * the bonus and spill buffer the same.
94 *
95 * Adding a single attribute will cause the entire set of attributes to
96 * be rewritten and could result in a new layout number being constructed
97 * as part of the rewrite if no such layout exists for the new set of
98 * attributes. The new attribute will be appended to the end of the already
99 * existing attributes.
100 *
101 * Both the attribute registration and attribute layout information are
102 * stored in normal ZAP attributes. Their should be a small number of
103 * known layouts and the set of attributes is assumed to typically be quite
104 * small.
105 *
106 * The registered attributes and layout "table" information is maintained
107 * in core and a special "sa_os_t" is attached to the objset_t.
108 *
109 * A special interface is provided to allow for quickly applying
110 * a large set of attributes at once. sa_replace_all_by_template() is
111 * used to set an array of attributes. This is used by the ZPL when
112 * creating a brand new file. The template that is passed into the function
113 * specifies the attribute, size for variable length attributes, location of
114 * data and special "data locator" function if the data isn't in a contiguous
115 * location.
116 *
117 * Byteswap implications:
118 *
119 * Since the SA attributes are not entirely self describing we can't do
120 * the normal byteswap processing. The special ZAP layout attribute and
121 * attribute registration attributes define the byteswap function and the
122 * size of the attributes, unless it is variable sized.
123 * The normal ZFS byteswapping infrastructure assumes you don't need
124 * to read any objects in order to do the necessary byteswapping. Whereas
125 * SA attributes can only be properly byteswapped if the dataset is opened
126 * and the layout/attribute ZAP attributes are available. Because of this
127 * the SA attributes will be byteswapped when they are first accessed by
128 * the SA code that will read the SA data.
129 */
130
131 typedef void (sa_iterfunc_t)(void *hdr, void *addr, sa_attr_type_t,
132 uint16_t length, int length_idx, boolean_t, void *userp);
133
134 static int sa_build_index(sa_handle_t *hdl, sa_buf_type_t buftype);
135 static void sa_idx_tab_hold(objset_t *os, sa_idx_tab_t *idx_tab);
136 static sa_idx_tab_t *sa_find_idx_tab(objset_t *os, dmu_object_type_t bonustype,
137 sa_hdr_phys_t *hdr);
138 static void sa_idx_tab_rele(objset_t *os, void *arg);
139 static void sa_copy_data(sa_data_locator_t *func, void *start, void *target,
140 int buflen);
141 static int sa_modify_attrs(sa_handle_t *hdl, sa_attr_type_t newattr,
142 sa_data_op_t action, sa_data_locator_t *locator, void *datastart,
143 uint16_t buflen, dmu_tx_t *tx);
144
145 static arc_byteswap_func_t sa_bswap_table[] = {
146 byteswap_uint64_array,
147 byteswap_uint32_array,
148 byteswap_uint16_array,
149 byteswap_uint8_array,
150 zfs_acl_byteswap,
151 };
152
153 #ifdef HAVE_EFFICIENT_UNALIGNED_ACCESS
154 #define SA_COPY_DATA(f, s, t, l) \
155 do { \
156 if (f == NULL) { \
157 if (l == 8) { \
158 *(uint64_t *)t = *(uint64_t *)s; \
159 } else if (l == 16) { \
160 *(uint64_t *)t = *(uint64_t *)s; \
161 *(uint64_t *)((uintptr_t)t + 8) = \
162 *(uint64_t *)((uintptr_t)s + 8); \
163 } else { \
164 memcpy(t, s, l); \
165 } \
166 } else { \
167 sa_copy_data(f, s, t, l); \
168 } \
169 } while (0)
170 #else
171 #define SA_COPY_DATA(f, s, t, l) sa_copy_data(f, s, t, l)
172 #endif
173
174 /*
175 * This table is fixed and cannot be changed. Its purpose is to
176 * allow the SA code to work with both old/new ZPL file systems.
177 * It contains the list of legacy attributes. These attributes aren't
178 * stored in the "attribute" registry zap objects, since older ZPL file systems
179 * won't have the registry. Only objsets of type ZFS_TYPE_FILESYSTEM will
180 * use this static table.
181 */
182 static const sa_attr_reg_t sa_legacy_attrs[] = {
183 {"ZPL_ATIME", sizeof (uint64_t) * 2, SA_UINT64_ARRAY, 0},
184 {"ZPL_MTIME", sizeof (uint64_t) * 2, SA_UINT64_ARRAY, 1},
185 {"ZPL_CTIME", sizeof (uint64_t) * 2, SA_UINT64_ARRAY, 2},
186 {"ZPL_CRTIME", sizeof (uint64_t) * 2, SA_UINT64_ARRAY, 3},
187 {"ZPL_GEN", sizeof (uint64_t), SA_UINT64_ARRAY, 4},
188 {"ZPL_MODE", sizeof (uint64_t), SA_UINT64_ARRAY, 5},
189 {"ZPL_SIZE", sizeof (uint64_t), SA_UINT64_ARRAY, 6},
190 {"ZPL_PARENT", sizeof (uint64_t), SA_UINT64_ARRAY, 7},
191 {"ZPL_LINKS", sizeof (uint64_t), SA_UINT64_ARRAY, 8},
192 {"ZPL_XATTR", sizeof (uint64_t), SA_UINT64_ARRAY, 9},
193 {"ZPL_RDEV", sizeof (uint64_t), SA_UINT64_ARRAY, 10},
194 {"ZPL_FLAGS", sizeof (uint64_t), SA_UINT64_ARRAY, 11},
195 {"ZPL_UID", sizeof (uint64_t), SA_UINT64_ARRAY, 12},
196 {"ZPL_GID", sizeof (uint64_t), SA_UINT64_ARRAY, 13},
197 {"ZPL_PAD", sizeof (uint64_t) * 4, SA_UINT64_ARRAY, 14},
198 {"ZPL_ZNODE_ACL", 88, SA_UINT8_ARRAY, 15},
199 };
200
201 /*
202 * This is only used for objects of type DMU_OT_ZNODE
203 */
204 static const sa_attr_type_t sa_legacy_zpl_layout[] = {
205 0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15
206 };
207
208 /*
209 * Special dummy layout used for buffers with no attributes.
210 */
211 static const sa_attr_type_t sa_dummy_zpl_layout[] = { 0 };
212
213 static const size_t sa_legacy_attr_count = ARRAY_SIZE(sa_legacy_attrs);
214 static kmem_cache_t *sa_cache = NULL;
215
216 static int
217 sa_cache_constructor(void *buf, void *unused, int kmflag)
218 {
219 (void) unused, (void) kmflag;
220 sa_handle_t *hdl = buf;
221
222 mutex_init(&hdl->sa_lock, NULL, MUTEX_DEFAULT, NULL);
223 return (0);
224 }
225
226 static void
227 sa_cache_destructor(void *buf, void *unused)
228 {
229 (void) unused;
230 sa_handle_t *hdl = buf;
231 mutex_destroy(&hdl->sa_lock);
232 }
233
234 void
235 sa_cache_init(void)
236 {
237 sa_cache = kmem_cache_create("sa_cache",
238 sizeof (sa_handle_t), 0, sa_cache_constructor,
239 sa_cache_destructor, NULL, NULL, NULL, 0);
240 }
241
242 void
243 sa_cache_fini(void)
244 {
245 if (sa_cache)
246 kmem_cache_destroy(sa_cache);
247 }
248
249 static int
250 layout_num_compare(const void *arg1, const void *arg2)
251 {
252 const sa_lot_t *node1 = (const sa_lot_t *)arg1;
253 const sa_lot_t *node2 = (const sa_lot_t *)arg2;
254
255 return (TREE_CMP(node1->lot_num, node2->lot_num));
256 }
257
258 static int
259 layout_hash_compare(const void *arg1, const void *arg2)
260 {
261 const sa_lot_t *node1 = (const sa_lot_t *)arg1;
262 const sa_lot_t *node2 = (const sa_lot_t *)arg2;
263
264 int cmp = TREE_CMP(node1->lot_hash, node2->lot_hash);
265 if (likely(cmp))
266 return (cmp);
267
268 return (TREE_CMP(node1->lot_instance, node2->lot_instance));
269 }
270
271 static boolean_t
272 sa_layout_equal(sa_lot_t *tbf, sa_attr_type_t *attrs, int count)
273 {
274 int i;
275
276 if (count != tbf->lot_attr_count)
277 return (1);
278
279 for (i = 0; i != count; i++) {
280 if (attrs[i] != tbf->lot_attrs[i])
281 return (1);
282 }
283 return (0);
284 }
285
286 #define SA_ATTR_HASH(attr) (zfs_crc64_table[(-1ULL ^ attr) & 0xFF])
287
288 static uint64_t
289 sa_layout_info_hash(const sa_attr_type_t *attrs, int attr_count)
290 {
291 uint64_t crc = -1ULL;
292
293 for (int i = 0; i != attr_count; i++)
294 crc ^= SA_ATTR_HASH(attrs[i]);
295
296 return (crc);
297 }
298
299 static int
300 sa_get_spill(sa_handle_t *hdl)
301 {
302 int rc;
303 if (hdl->sa_spill == NULL) {
304 if ((rc = dmu_spill_hold_existing(hdl->sa_bonus, NULL,
305 &hdl->sa_spill)) == 0)
306 VERIFY(0 == sa_build_index(hdl, SA_SPILL));
307 } else {
308 rc = 0;
309 }
310
311 return (rc);
312 }
313
314 /*
315 * Main attribute lookup/update function
316 * returns 0 for success or non zero for failures
317 *
318 * Operates on bulk array, first failure will abort further processing
319 */
320 static int
321 sa_attr_op(sa_handle_t *hdl, sa_bulk_attr_t *bulk, int count,
322 sa_data_op_t data_op, dmu_tx_t *tx)
323 {
324 sa_os_t *sa = hdl->sa_os->os_sa;
325 int i;
326 int error = 0;
327 sa_buf_type_t buftypes;
328
329 buftypes = 0;
330
331 ASSERT(count > 0);
332 for (i = 0; i != count; i++) {
333 ASSERT(bulk[i].sa_attr <= hdl->sa_os->os_sa->sa_num_attrs);
334
335 bulk[i].sa_addr = NULL;
336 /* First check the bonus buffer */
337
338 if (hdl->sa_bonus_tab && TOC_ATTR_PRESENT(
339 hdl->sa_bonus_tab->sa_idx_tab[bulk[i].sa_attr])) {
340 SA_ATTR_INFO(sa, hdl->sa_bonus_tab,
341 SA_GET_HDR(hdl, SA_BONUS),
342 bulk[i].sa_attr, bulk[i], SA_BONUS, hdl);
343 if (tx && !(buftypes & SA_BONUS)) {
344 dmu_buf_will_dirty(hdl->sa_bonus, tx);
345 buftypes |= SA_BONUS;
346 }
347 }
348 if (bulk[i].sa_addr == NULL &&
349 ((error = sa_get_spill(hdl)) == 0)) {
350 if (TOC_ATTR_PRESENT(
351 hdl->sa_spill_tab->sa_idx_tab[bulk[i].sa_attr])) {
352 SA_ATTR_INFO(sa, hdl->sa_spill_tab,
353 SA_GET_HDR(hdl, SA_SPILL),
354 bulk[i].sa_attr, bulk[i], SA_SPILL, hdl);
355 if (tx && !(buftypes & SA_SPILL) &&
356 bulk[i].sa_size == bulk[i].sa_length) {
357 dmu_buf_will_dirty(hdl->sa_spill, tx);
358 buftypes |= SA_SPILL;
359 }
360 }
361 }
362 if (error && error != ENOENT) {
363 return ((error == ECKSUM) ? EIO : error);
364 }
365
366 switch (data_op) {
367 case SA_LOOKUP:
368 if (bulk[i].sa_addr == NULL)
369 return (SET_ERROR(ENOENT));
370 if (bulk[i].sa_data) {
371 SA_COPY_DATA(bulk[i].sa_data_func,
372 bulk[i].sa_addr, bulk[i].sa_data,
373 MIN(bulk[i].sa_size, bulk[i].sa_length));
374 }
375 continue;
376
377 case SA_UPDATE:
378 /* existing rewrite of attr */
379 if (bulk[i].sa_addr &&
380 bulk[i].sa_size == bulk[i].sa_length) {
381 SA_COPY_DATA(bulk[i].sa_data_func,
382 bulk[i].sa_data, bulk[i].sa_addr,
383 bulk[i].sa_length);
384 continue;
385 } else if (bulk[i].sa_addr) { /* attr size change */
386 error = sa_modify_attrs(hdl, bulk[i].sa_attr,
387 SA_REPLACE, bulk[i].sa_data_func,
388 bulk[i].sa_data, bulk[i].sa_length, tx);
389 } else { /* adding new attribute */
390 error = sa_modify_attrs(hdl, bulk[i].sa_attr,
391 SA_ADD, bulk[i].sa_data_func,
392 bulk[i].sa_data, bulk[i].sa_length, tx);
393 }
394 if (error)
395 return (error);
396 break;
397 default:
398 break;
399 }
400 }
401 return (error);
402 }
403
404 static sa_lot_t *
405 sa_add_layout_entry(objset_t *os, const sa_attr_type_t *attrs, int attr_count,
406 uint64_t lot_num, uint64_t hash, boolean_t zapadd, dmu_tx_t *tx)
407 {
408 sa_os_t *sa = os->os_sa;
409 sa_lot_t *tb, *findtb;
410 int i;
411 avl_index_t loc;
412
413 ASSERT(MUTEX_HELD(&sa->sa_lock));
414 tb = kmem_zalloc(sizeof (sa_lot_t), KM_SLEEP);
415 tb->lot_attr_count = attr_count;
416 tb->lot_attrs = kmem_alloc(sizeof (sa_attr_type_t) * attr_count,
417 KM_SLEEP);
418 memcpy(tb->lot_attrs, attrs, sizeof (sa_attr_type_t) * attr_count);
419 tb->lot_num = lot_num;
420 tb->lot_hash = hash;
421 tb->lot_instance = 0;
422
423 if (zapadd) {
424 char attr_name[8];
425
426 if (sa->sa_layout_attr_obj == 0) {
427 sa->sa_layout_attr_obj = zap_create_link(os,
428 DMU_OT_SA_ATTR_LAYOUTS,
429 sa->sa_master_obj, SA_LAYOUTS, tx);
430 }
431
432 (void) snprintf(attr_name, sizeof (attr_name),
433 "%d", (int)lot_num);
434 VERIFY(0 == zap_update(os, os->os_sa->sa_layout_attr_obj,
435 attr_name, 2, attr_count, attrs, tx));
436 }
437
438 list_create(&tb->lot_idx_tab, sizeof (sa_idx_tab_t),
439 offsetof(sa_idx_tab_t, sa_next));
440
441 for (i = 0; i != attr_count; i++) {
442 if (sa->sa_attr_table[tb->lot_attrs[i]].sa_length == 0)
443 tb->lot_var_sizes++;
444 }
445
446 avl_add(&sa->sa_layout_num_tree, tb);
447
448 /* verify we don't have a hash collision */
449 if ((findtb = avl_find(&sa->sa_layout_hash_tree, tb, &loc)) != NULL) {
450 for (; findtb && findtb->lot_hash == hash;
451 findtb = AVL_NEXT(&sa->sa_layout_hash_tree, findtb)) {
452 if (findtb->lot_instance != tb->lot_instance)
453 break;
454 tb->lot_instance++;
455 }
456 }
457 avl_add(&sa->sa_layout_hash_tree, tb);
458 return (tb);
459 }
460
461 static void
462 sa_find_layout(objset_t *os, uint64_t hash, sa_attr_type_t *attrs,
463 int count, dmu_tx_t *tx, sa_lot_t **lot)
464 {
465 sa_lot_t *tb, tbsearch;
466 avl_index_t loc;
467 sa_os_t *sa = os->os_sa;
468 boolean_t found = B_FALSE;
469
470 mutex_enter(&sa->sa_lock);
471 tbsearch.lot_hash = hash;
472 tbsearch.lot_instance = 0;
473 tb = avl_find(&sa->sa_layout_hash_tree, &tbsearch, &loc);
474 if (tb) {
475 for (; tb && tb->lot_hash == hash;
476 tb = AVL_NEXT(&sa->sa_layout_hash_tree, tb)) {
477 if (sa_layout_equal(tb, attrs, count) == 0) {
478 found = B_TRUE;
479 break;
480 }
481 }
482 }
483 if (!found) {
484 tb = sa_add_layout_entry(os, attrs, count,
485 avl_numnodes(&sa->sa_layout_num_tree), hash, B_TRUE, tx);
486 }
487 mutex_exit(&sa->sa_lock);
488 *lot = tb;
489 }
490
491 static int
492 sa_resize_spill(sa_handle_t *hdl, uint32_t size, dmu_tx_t *tx)
493 {
494 int error;
495 uint32_t blocksize;
496
497 if (size == 0) {
498 blocksize = SPA_MINBLOCKSIZE;
499 } else if (size > SPA_OLD_MAXBLOCKSIZE) {
500 ASSERT(0);
501 return (SET_ERROR(EFBIG));
502 } else {
503 blocksize = P2ROUNDUP_TYPED(size, SPA_MINBLOCKSIZE, uint32_t);
504 }
505
506 error = dbuf_spill_set_blksz(hdl->sa_spill, blocksize, tx);
507 ASSERT(error == 0);
508 return (error);
509 }
510
511 static void
512 sa_copy_data(sa_data_locator_t *func, void *datastart, void *target, int buflen)
513 {
514 if (func == NULL) {
515 memcpy(target, datastart, buflen);
516 } else {
517 boolean_t start;
518 int bytes;
519 void *dataptr;
520 void *saptr = target;
521 uint32_t length;
522
523 start = B_TRUE;
524 bytes = 0;
525 while (bytes < buflen) {
526 func(&dataptr, &length, buflen, start, datastart);
527 memcpy(saptr, dataptr, length);
528 saptr = (void *)((caddr_t)saptr + length);
529 bytes += length;
530 start = B_FALSE;
531 }
532 }
533 }
534
535 /*
536 * Determine several different values pertaining to system attribute
537 * buffers.
538 *
539 * Return the size of the sa_hdr_phys_t header for the buffer. Each
540 * variable length attribute except the first contributes two bytes to
541 * the header size, which is then rounded up to an 8-byte boundary.
542 *
543 * The following output parameters are also computed.
544 *
545 * index - The index of the first attribute in attr_desc that will
546 * spill over. Only valid if will_spill is set.
547 *
548 * total - The total number of bytes of all system attributes described
549 * in attr_desc.
550 *
551 * will_spill - Set when spilling is necessary. It is only set when
552 * the buftype is SA_BONUS.
553 */
554 static int
555 sa_find_sizes(sa_os_t *sa, sa_bulk_attr_t *attr_desc, int attr_count,
556 dmu_buf_t *db, sa_buf_type_t buftype, int full_space, int *index,
557 int *total, boolean_t *will_spill)
558 {
559 int var_size_count = 0;
560 int i;
561 int hdrsize;
562 int extra_hdrsize;
563
564 if (buftype == SA_BONUS && sa->sa_force_spill) {
565 *total = 0;
566 *index = 0;
567 *will_spill = B_TRUE;
568 return (0);
569 }
570
571 *index = -1;
572 *total = 0;
573 *will_spill = B_FALSE;
574
575 extra_hdrsize = 0;
576 hdrsize = (SA_BONUSTYPE_FROM_DB(db) == DMU_OT_ZNODE) ? 0 :
577 sizeof (sa_hdr_phys_t);
578
579 ASSERT(IS_P2ALIGNED(full_space, 8));
580
581 for (i = 0; i != attr_count; i++) {
582 boolean_t is_var_sz, might_spill_here;
583 int tmp_hdrsize;
584
585 *total = P2ROUNDUP(*total, 8);
586 *total += attr_desc[i].sa_length;
587 if (*will_spill)
588 continue;
589
590 is_var_sz = (SA_REGISTERED_LEN(sa, attr_desc[i].sa_attr) == 0);
591 if (is_var_sz)
592 var_size_count++;
593
594 /*
595 * Calculate what the SA header size would be if this
596 * attribute doesn't spill.
597 */
598 tmp_hdrsize = hdrsize + ((is_var_sz && var_size_count > 1) ?
599 sizeof (uint16_t) : 0);
600
601 /*
602 * Check whether this attribute spans into the space
603 * that would be used by the spill block pointer should
604 * a spill block be needed.
605 */
606 might_spill_here =
607 buftype == SA_BONUS && *index == -1 &&
608 (*total + P2ROUNDUP(tmp_hdrsize, 8)) >
609 (full_space - sizeof (blkptr_t));
610
611 if (is_var_sz && var_size_count > 1) {
612 if (buftype == SA_SPILL ||
613 tmp_hdrsize + *total < full_space) {
614 /*
615 * Record the extra header size in case this
616 * increase needs to be reversed due to
617 * spill-over.
618 */
619 hdrsize = tmp_hdrsize;
620 if (*index != -1 || might_spill_here)
621 extra_hdrsize += sizeof (uint16_t);
622 } else {
623 ASSERT(buftype == SA_BONUS);
624 if (*index == -1)
625 *index = i;
626 *will_spill = B_TRUE;
627 continue;
628 }
629 }
630
631 /*
632 * Store index of where spill *could* occur. Then
633 * continue to count the remaining attribute sizes. The
634 * sum is used later for sizing bonus and spill buffer.
635 */
636 if (might_spill_here)
637 *index = i;
638
639 if ((*total + P2ROUNDUP(hdrsize, 8)) > full_space &&
640 buftype == SA_BONUS)
641 *will_spill = B_TRUE;
642 }
643
644 if (*will_spill)
645 hdrsize -= extra_hdrsize;
646
647 hdrsize = P2ROUNDUP(hdrsize, 8);
648 return (hdrsize);
649 }
650
651 #define BUF_SPACE_NEEDED(total, header) (total + header)
652
653 /*
654 * Find layout that corresponds to ordering of attributes
655 * If not found a new layout number is created and added to
656 * persistent layout tables.
657 */
658 static int
659 sa_build_layouts(sa_handle_t *hdl, sa_bulk_attr_t *attr_desc, int attr_count,
660 dmu_tx_t *tx)
661 {
662 sa_os_t *sa = hdl->sa_os->os_sa;
663 uint64_t hash;
664 sa_buf_type_t buftype;
665 sa_hdr_phys_t *sahdr;
666 void *data_start;
667 sa_attr_type_t *attrs, *attrs_start;
668 int i, lot_count;
669 int dnodesize;
670 int spill_idx;
671 int hdrsize;
672 int spillhdrsize = 0;
673 int used;
674 dmu_object_type_t bonustype;
675 sa_lot_t *lot;
676 int len_idx;
677 int spill_used;
678 int bonuslen;
679 boolean_t spilling;
680
681 dmu_buf_will_dirty(hdl->sa_bonus, tx);
682 bonustype = SA_BONUSTYPE_FROM_DB(hdl->sa_bonus);
683 dmu_object_dnsize_from_db(hdl->sa_bonus, &dnodesize);
684 bonuslen = DN_BONUS_SIZE(dnodesize);
685
686 /* first determine bonus header size and sum of all attributes */
687 hdrsize = sa_find_sizes(sa, attr_desc, attr_count, hdl->sa_bonus,
688 SA_BONUS, bonuslen, &spill_idx, &used, &spilling);
689
690 if (used > SPA_OLD_MAXBLOCKSIZE)
691 return (SET_ERROR(EFBIG));
692
693 VERIFY0(dmu_set_bonus(hdl->sa_bonus, spilling ?
694 MIN(bonuslen - sizeof (blkptr_t), used + hdrsize) :
695 used + hdrsize, tx));
696
697 ASSERT((bonustype == DMU_OT_ZNODE && spilling == 0) ||
698 bonustype == DMU_OT_SA);
699
700 /* setup and size spill buffer when needed */
701 if (spilling) {
702 boolean_t dummy;
703
704 if (hdl->sa_spill == NULL) {
705 VERIFY(dmu_spill_hold_by_bonus(hdl->sa_bonus, 0, NULL,
706 &hdl->sa_spill) == 0);
707 }
708 dmu_buf_will_dirty(hdl->sa_spill, tx);
709
710 spillhdrsize = sa_find_sizes(sa, &attr_desc[spill_idx],
711 attr_count - spill_idx, hdl->sa_spill, SA_SPILL,
712 hdl->sa_spill->db_size, &i, &spill_used, &dummy);
713
714 if (spill_used > SPA_OLD_MAXBLOCKSIZE)
715 return (SET_ERROR(EFBIG));
716
717 if (BUF_SPACE_NEEDED(spill_used, spillhdrsize) >
718 hdl->sa_spill->db_size)
719 VERIFY(0 == sa_resize_spill(hdl,
720 BUF_SPACE_NEEDED(spill_used, spillhdrsize), tx));
721 }
722
723 /* setup starting pointers to lay down data */
724 data_start = (void *)((uintptr_t)hdl->sa_bonus->db_data + hdrsize);
725 sahdr = (sa_hdr_phys_t *)hdl->sa_bonus->db_data;
726 buftype = SA_BONUS;
727
728 attrs_start = attrs = kmem_alloc(sizeof (sa_attr_type_t) * attr_count,
729 KM_SLEEP);
730 lot_count = 0;
731
732 for (i = 0, len_idx = 0, hash = -1ULL; i != attr_count; i++) {
733 uint16_t length;
734
735 ASSERT(IS_P2ALIGNED(data_start, 8));
736 attrs[i] = attr_desc[i].sa_attr;
737 length = SA_REGISTERED_LEN(sa, attrs[i]);
738 if (length == 0)
739 length = attr_desc[i].sa_length;
740
741 if (spilling && i == spill_idx) { /* switch to spill buffer */
742 VERIFY(bonustype == DMU_OT_SA);
743 if (buftype == SA_BONUS && !sa->sa_force_spill) {
744 sa_find_layout(hdl->sa_os, hash, attrs_start,
745 lot_count, tx, &lot);
746 SA_SET_HDR(sahdr, lot->lot_num, hdrsize);
747 }
748
749 buftype = SA_SPILL;
750 hash = -1ULL;
751 len_idx = 0;
752
753 sahdr = (sa_hdr_phys_t *)hdl->sa_spill->db_data;
754 sahdr->sa_magic = SA_MAGIC;
755 data_start = (void *)((uintptr_t)sahdr +
756 spillhdrsize);
757 attrs_start = &attrs[i];
758 lot_count = 0;
759 }
760 hash ^= SA_ATTR_HASH(attrs[i]);
761 attr_desc[i].sa_addr = data_start;
762 attr_desc[i].sa_size = length;
763 SA_COPY_DATA(attr_desc[i].sa_data_func, attr_desc[i].sa_data,
764 data_start, length);
765 if (sa->sa_attr_table[attrs[i]].sa_length == 0) {
766 sahdr->sa_lengths[len_idx++] = length;
767 }
768 data_start = (void *)P2ROUNDUP(((uintptr_t)data_start +
769 length), 8);
770 lot_count++;
771 }
772
773 sa_find_layout(hdl->sa_os, hash, attrs_start, lot_count, tx, &lot);
774
775 /*
776 * Verify that old znodes always have layout number 0.
777 * Must be DMU_OT_SA for arbitrary layouts
778 */
779 VERIFY((bonustype == DMU_OT_ZNODE && lot->lot_num == 0) ||
780 (bonustype == DMU_OT_SA && lot->lot_num > 1));
781
782 if (bonustype == DMU_OT_SA) {
783 SA_SET_HDR(sahdr, lot->lot_num,
784 buftype == SA_BONUS ? hdrsize : spillhdrsize);
785 }
786
787 kmem_free(attrs, sizeof (sa_attr_type_t) * attr_count);
788 if (hdl->sa_bonus_tab) {
789 sa_idx_tab_rele(hdl->sa_os, hdl->sa_bonus_tab);
790 hdl->sa_bonus_tab = NULL;
791 }
792 if (!sa->sa_force_spill)
793 VERIFY(0 == sa_build_index(hdl, SA_BONUS));
794 if (hdl->sa_spill) {
795 sa_idx_tab_rele(hdl->sa_os, hdl->sa_spill_tab);
796 if (!spilling) {
797 /*
798 * remove spill block that is no longer needed.
799 */
800 dmu_buf_rele(hdl->sa_spill, NULL);
801 hdl->sa_spill = NULL;
802 hdl->sa_spill_tab = NULL;
803 VERIFY(0 == dmu_rm_spill(hdl->sa_os,
804 sa_handle_object(hdl), tx));
805 } else {
806 VERIFY(0 == sa_build_index(hdl, SA_SPILL));
807 }
808 }
809
810 return (0);
811 }
812
813 static void
814 sa_free_attr_table(sa_os_t *sa)
815 {
816 int i;
817
818 if (sa->sa_attr_table == NULL)
819 return;
820
821 for (i = 0; i != sa->sa_num_attrs; i++) {
822 if (sa->sa_attr_table[i].sa_name)
823 kmem_free(sa->sa_attr_table[i].sa_name,
824 strlen(sa->sa_attr_table[i].sa_name) + 1);
825 }
826
827 kmem_free(sa->sa_attr_table,
828 sizeof (sa_attr_table_t) * sa->sa_num_attrs);
829
830 sa->sa_attr_table = NULL;
831 }
832
833 static int
834 sa_attr_table_setup(objset_t *os, const sa_attr_reg_t *reg_attrs, int count)
835 {
836 sa_os_t *sa = os->os_sa;
837 uint64_t sa_attr_count = 0;
838 uint64_t sa_reg_count = 0;
839 int error = 0;
840 uint64_t attr_value;
841 sa_attr_table_t *tb;
842 zap_cursor_t zc;
843 zap_attribute_t za;
844 int registered_count = 0;
845 int i;
846 dmu_objset_type_t ostype = dmu_objset_type(os);
847
848 sa->sa_user_table =
849 kmem_zalloc(count * sizeof (sa_attr_type_t), KM_SLEEP);
850 sa->sa_user_table_sz = count * sizeof (sa_attr_type_t);
851
852 if (sa->sa_reg_attr_obj != 0) {
853 error = zap_count(os, sa->sa_reg_attr_obj,
854 &sa_attr_count);
855
856 /*
857 * Make sure we retrieved a count and that it isn't zero
858 */
859 if (error || (error == 0 && sa_attr_count == 0)) {
860 if (error == 0)
861 error = SET_ERROR(EINVAL);
862 goto bail;
863 }
864 sa_reg_count = sa_attr_count;
865 }
866
867 if (ostype == DMU_OST_ZFS && sa_attr_count == 0)
868 sa_attr_count += sa_legacy_attr_count;
869
870 /* Allocate attribute numbers for attributes that aren't registered */
871 for (i = 0; i != count; i++) {
872 boolean_t found = B_FALSE;
873 int j;
874
875 if (ostype == DMU_OST_ZFS) {
876 for (j = 0; j != sa_legacy_attr_count; j++) {
877 if (strcmp(reg_attrs[i].sa_name,
878 sa_legacy_attrs[j].sa_name) == 0) {
879 sa->sa_user_table[i] =
880 sa_legacy_attrs[j].sa_attr;
881 found = B_TRUE;
882 }
883 }
884 }
885 if (found)
886 continue;
887
888 if (sa->sa_reg_attr_obj)
889 error = zap_lookup(os, sa->sa_reg_attr_obj,
890 reg_attrs[i].sa_name, 8, 1, &attr_value);
891 else
892 error = SET_ERROR(ENOENT);
893 switch (error) {
894 case ENOENT:
895 sa->sa_user_table[i] = (sa_attr_type_t)sa_attr_count;
896 sa_attr_count++;
897 break;
898 case 0:
899 sa->sa_user_table[i] = ATTR_NUM(attr_value);
900 break;
901 default:
902 goto bail;
903 }
904 }
905
906 sa->sa_num_attrs = sa_attr_count;
907 tb = sa->sa_attr_table =
908 kmem_zalloc(sizeof (sa_attr_table_t) * sa_attr_count, KM_SLEEP);
909
910 /*
911 * Attribute table is constructed from requested attribute list,
912 * previously foreign registered attributes, and also the legacy
913 * ZPL set of attributes.
914 */
915
916 if (sa->sa_reg_attr_obj) {
917 for (zap_cursor_init(&zc, os, sa->sa_reg_attr_obj);
918 (error = zap_cursor_retrieve(&zc, &za)) == 0;
919 zap_cursor_advance(&zc)) {
920 uint64_t value;
921 value = za.za_first_integer;
922
923 registered_count++;
924 tb[ATTR_NUM(value)].sa_attr = ATTR_NUM(value);
925 tb[ATTR_NUM(value)].sa_length = ATTR_LENGTH(value);
926 tb[ATTR_NUM(value)].sa_byteswap = ATTR_BSWAP(value);
927 tb[ATTR_NUM(value)].sa_registered = B_TRUE;
928
929 if (tb[ATTR_NUM(value)].sa_name) {
930 continue;
931 }
932 tb[ATTR_NUM(value)].sa_name =
933 kmem_zalloc(strlen(za.za_name) +1, KM_SLEEP);
934 (void) strlcpy(tb[ATTR_NUM(value)].sa_name, za.za_name,
935 strlen(za.za_name) +1);
936 }
937 zap_cursor_fini(&zc);
938 /*
939 * Make sure we processed the correct number of registered
940 * attributes
941 */
942 if (registered_count != sa_reg_count) {
943 ASSERT(error != 0);
944 goto bail;
945 }
946
947 }
948
949 if (ostype == DMU_OST_ZFS) {
950 for (i = 0; i != sa_legacy_attr_count; i++) {
951 if (tb[i].sa_name)
952 continue;
953 tb[i].sa_attr = sa_legacy_attrs[i].sa_attr;
954 tb[i].sa_length = sa_legacy_attrs[i].sa_length;
955 tb[i].sa_byteswap = sa_legacy_attrs[i].sa_byteswap;
956 tb[i].sa_registered = B_FALSE;
957 tb[i].sa_name =
958 kmem_zalloc(strlen(sa_legacy_attrs[i].sa_name) +1,
959 KM_SLEEP);
960 (void) strlcpy(tb[i].sa_name,
961 sa_legacy_attrs[i].sa_name,
962 strlen(sa_legacy_attrs[i].sa_name) + 1);
963 }
964 }
965
966 for (i = 0; i != count; i++) {
967 sa_attr_type_t attr_id;
968
969 attr_id = sa->sa_user_table[i];
970 if (tb[attr_id].sa_name)
971 continue;
972
973 tb[attr_id].sa_length = reg_attrs[i].sa_length;
974 tb[attr_id].sa_byteswap = reg_attrs[i].sa_byteswap;
975 tb[attr_id].sa_attr = attr_id;
976 tb[attr_id].sa_name =
977 kmem_zalloc(strlen(reg_attrs[i].sa_name) + 1, KM_SLEEP);
978 (void) strlcpy(tb[attr_id].sa_name, reg_attrs[i].sa_name,
979 strlen(reg_attrs[i].sa_name) + 1);
980 }
981
982 sa->sa_need_attr_registration =
983 (sa_attr_count != registered_count);
984
985 return (0);
986 bail:
987 kmem_free(sa->sa_user_table, count * sizeof (sa_attr_type_t));
988 sa->sa_user_table = NULL;
989 sa_free_attr_table(sa);
990 ASSERT(error != 0);
991 return (error);
992 }
993
994 int
995 sa_setup(objset_t *os, uint64_t sa_obj, const sa_attr_reg_t *reg_attrs,
996 int count, sa_attr_type_t **user_table)
997 {
998 zap_cursor_t zc;
999 zap_attribute_t za;
1000 sa_os_t *sa;
1001 dmu_objset_type_t ostype = dmu_objset_type(os);
1002 sa_attr_type_t *tb;
1003 int error;
1004
1005 mutex_enter(&os->os_user_ptr_lock);
1006 if (os->os_sa) {
1007 mutex_enter(&os->os_sa->sa_lock);
1008 mutex_exit(&os->os_user_ptr_lock);
1009 tb = os->os_sa->sa_user_table;
1010 mutex_exit(&os->os_sa->sa_lock);
1011 *user_table = tb;
1012 return (0);
1013 }
1014
1015 sa = kmem_zalloc(sizeof (sa_os_t), KM_SLEEP);
1016 mutex_init(&sa->sa_lock, NULL, MUTEX_NOLOCKDEP, NULL);
1017 sa->sa_master_obj = sa_obj;
1018
1019 os->os_sa = sa;
1020 mutex_enter(&sa->sa_lock);
1021 mutex_exit(&os->os_user_ptr_lock);
1022 avl_create(&sa->sa_layout_num_tree, layout_num_compare,
1023 sizeof (sa_lot_t), offsetof(sa_lot_t, lot_num_node));
1024 avl_create(&sa->sa_layout_hash_tree, layout_hash_compare,
1025 sizeof (sa_lot_t), offsetof(sa_lot_t, lot_hash_node));
1026
1027 if (sa_obj) {
1028 error = zap_lookup(os, sa_obj, SA_LAYOUTS,
1029 8, 1, &sa->sa_layout_attr_obj);
1030 if (error != 0 && error != ENOENT)
1031 goto fail;
1032 error = zap_lookup(os, sa_obj, SA_REGISTRY,
1033 8, 1, &sa->sa_reg_attr_obj);
1034 if (error != 0 && error != ENOENT)
1035 goto fail;
1036 }
1037
1038 if ((error = sa_attr_table_setup(os, reg_attrs, count)) != 0)
1039 goto fail;
1040
1041 if (sa->sa_layout_attr_obj != 0) {
1042 uint64_t layout_count;
1043
1044 error = zap_count(os, sa->sa_layout_attr_obj,
1045 &layout_count);
1046
1047 /*
1048 * Layout number count should be > 0
1049 */
1050 if (error || (error == 0 && layout_count == 0)) {
1051 if (error == 0)
1052 error = SET_ERROR(EINVAL);
1053 goto fail;
1054 }
1055
1056 for (zap_cursor_init(&zc, os, sa->sa_layout_attr_obj);
1057 (error = zap_cursor_retrieve(&zc, &za)) == 0;
1058 zap_cursor_advance(&zc)) {
1059 sa_attr_type_t *lot_attrs;
1060 uint64_t lot_num;
1061
1062 lot_attrs = kmem_zalloc(sizeof (sa_attr_type_t) *
1063 za.za_num_integers, KM_SLEEP);
1064
1065 if ((error = (zap_lookup(os, sa->sa_layout_attr_obj,
1066 za.za_name, 2, za.za_num_integers,
1067 lot_attrs))) != 0) {
1068 kmem_free(lot_attrs, sizeof (sa_attr_type_t) *
1069 za.za_num_integers);
1070 break;
1071 }
1072 VERIFY0(ddi_strtoull(za.za_name, NULL, 10,
1073 (unsigned long long *)&lot_num));
1074
1075 (void) sa_add_layout_entry(os, lot_attrs,
1076 za.za_num_integers, lot_num,
1077 sa_layout_info_hash(lot_attrs,
1078 za.za_num_integers), B_FALSE, NULL);
1079 kmem_free(lot_attrs, sizeof (sa_attr_type_t) *
1080 za.za_num_integers);
1081 }
1082 zap_cursor_fini(&zc);
1083
1084 /*
1085 * Make sure layout count matches number of entries added
1086 * to AVL tree
1087 */
1088 if (avl_numnodes(&sa->sa_layout_num_tree) != layout_count) {
1089 ASSERT(error != 0);
1090 goto fail;
1091 }
1092 }
1093
1094 /* Add special layout number for old ZNODES */
1095 if (ostype == DMU_OST_ZFS) {
1096 (void) sa_add_layout_entry(os, sa_legacy_zpl_layout,
1097 sa_legacy_attr_count, 0,
1098 sa_layout_info_hash(sa_legacy_zpl_layout,
1099 sa_legacy_attr_count), B_FALSE, NULL);
1100
1101 (void) sa_add_layout_entry(os, sa_dummy_zpl_layout, 0, 1,
1102 0, B_FALSE, NULL);
1103 }
1104 *user_table = os->os_sa->sa_user_table;
1105 mutex_exit(&sa->sa_lock);
1106 return (0);
1107 fail:
1108 os->os_sa = NULL;
1109 sa_free_attr_table(sa);
1110 if (sa->sa_user_table)
1111 kmem_free(sa->sa_user_table, sa->sa_user_table_sz);
1112 mutex_exit(&sa->sa_lock);
1113 avl_destroy(&sa->sa_layout_hash_tree);
1114 avl_destroy(&sa->sa_layout_num_tree);
1115 mutex_destroy(&sa->sa_lock);
1116 kmem_free(sa, sizeof (sa_os_t));
1117 return ((error == ECKSUM) ? EIO : error);
1118 }
1119
1120 void
1121 sa_tear_down(objset_t *os)
1122 {
1123 sa_os_t *sa = os->os_sa;
1124 sa_lot_t *layout;
1125 void *cookie;
1126
1127 kmem_free(sa->sa_user_table, sa->sa_user_table_sz);
1128
1129 /* Free up attr table */
1130
1131 sa_free_attr_table(sa);
1132
1133 cookie = NULL;
1134 while ((layout =
1135 avl_destroy_nodes(&sa->sa_layout_hash_tree, &cookie))) {
1136 sa_idx_tab_t *tab;
1137 while ((tab = list_head(&layout->lot_idx_tab))) {
1138 ASSERT(zfs_refcount_count(&tab->sa_refcount));
1139 sa_idx_tab_rele(os, tab);
1140 }
1141 }
1142
1143 cookie = NULL;
1144 while ((layout = avl_destroy_nodes(&sa->sa_layout_num_tree, &cookie))) {
1145 kmem_free(layout->lot_attrs,
1146 sizeof (sa_attr_type_t) * layout->lot_attr_count);
1147 kmem_free(layout, sizeof (sa_lot_t));
1148 }
1149
1150 avl_destroy(&sa->sa_layout_hash_tree);
1151 avl_destroy(&sa->sa_layout_num_tree);
1152 mutex_destroy(&sa->sa_lock);
1153
1154 kmem_free(sa, sizeof (sa_os_t));
1155 os->os_sa = NULL;
1156 }
1157
1158 static void
1159 sa_build_idx_tab(void *hdr, void *attr_addr, sa_attr_type_t attr,
1160 uint16_t length, int length_idx, boolean_t var_length, void *userp)
1161 {
1162 sa_idx_tab_t *idx_tab = userp;
1163
1164 if (var_length) {
1165 ASSERT(idx_tab->sa_variable_lengths);
1166 idx_tab->sa_variable_lengths[length_idx] = length;
1167 }
1168 TOC_ATTR_ENCODE(idx_tab->sa_idx_tab[attr], length_idx,
1169 (uint32_t)((uintptr_t)attr_addr - (uintptr_t)hdr));
1170 }
1171
1172 static void
1173 sa_attr_iter(objset_t *os, sa_hdr_phys_t *hdr, dmu_object_type_t type,
1174 sa_iterfunc_t func, sa_lot_t *tab, void *userp)
1175 {
1176 void *data_start;
1177 sa_lot_t *tb = tab;
1178 sa_lot_t search;
1179 avl_index_t loc;
1180 sa_os_t *sa = os->os_sa;
1181 int i;
1182 uint16_t *length_start = NULL;
1183 uint8_t length_idx = 0;
1184
1185 if (tab == NULL) {
1186 search.lot_num = SA_LAYOUT_NUM(hdr, type);
1187 tb = avl_find(&sa->sa_layout_num_tree, &search, &loc);
1188 ASSERT(tb);
1189 }
1190
1191 if (IS_SA_BONUSTYPE(type)) {
1192 data_start = (void *)P2ROUNDUP(((uintptr_t)hdr +
1193 offsetof(sa_hdr_phys_t, sa_lengths) +
1194 (sizeof (uint16_t) * tb->lot_var_sizes)), 8);
1195 length_start = hdr->sa_lengths;
1196 } else {
1197 data_start = hdr;
1198 }
1199
1200 for (i = 0; i != tb->lot_attr_count; i++) {
1201 int attr_length, reg_length;
1202 uint8_t idx_len;
1203
1204 reg_length = sa->sa_attr_table[tb->lot_attrs[i]].sa_length;
1205 IMPLY(reg_length == 0, IS_SA_BONUSTYPE(type));
1206 if (reg_length) {
1207 attr_length = reg_length;
1208 idx_len = 0;
1209 } else {
1210 attr_length = length_start[length_idx];
1211 idx_len = length_idx++;
1212 }
1213
1214 func(hdr, data_start, tb->lot_attrs[i], attr_length,
1215 idx_len, reg_length == 0 ? B_TRUE : B_FALSE, userp);
1216
1217 data_start = (void *)P2ROUNDUP(((uintptr_t)data_start +
1218 attr_length), 8);
1219 }
1220 }
1221
1222 static void
1223 sa_byteswap_cb(void *hdr, void *attr_addr, sa_attr_type_t attr,
1224 uint16_t length, int length_idx, boolean_t variable_length, void *userp)
1225 {
1226 (void) hdr, (void) length_idx, (void) variable_length;
1227 sa_handle_t *hdl = userp;
1228 sa_os_t *sa = hdl->sa_os->os_sa;
1229
1230 sa_bswap_table[sa->sa_attr_table[attr].sa_byteswap](attr_addr, length);
1231 }
1232
1233 static void
1234 sa_byteswap(sa_handle_t *hdl, sa_buf_type_t buftype)
1235 {
1236 sa_hdr_phys_t *sa_hdr_phys = SA_GET_HDR(hdl, buftype);
1237 dmu_buf_impl_t *db;
1238 int num_lengths = 1;
1239 int i;
1240 sa_os_t *sa __maybe_unused = hdl->sa_os->os_sa;
1241
1242 ASSERT(MUTEX_HELD(&sa->sa_lock));
1243 if (sa_hdr_phys->sa_magic == SA_MAGIC)
1244 return;
1245
1246 db = SA_GET_DB(hdl, buftype);
1247
1248 if (buftype == SA_SPILL) {
1249 arc_release(db->db_buf, NULL);
1250 arc_buf_thaw(db->db_buf);
1251 }
1252
1253 sa_hdr_phys->sa_magic = BSWAP_32(sa_hdr_phys->sa_magic);
1254 sa_hdr_phys->sa_layout_info = BSWAP_16(sa_hdr_phys->sa_layout_info);
1255
1256 /*
1257 * Determine number of variable lengths in header
1258 * The standard 8 byte header has one for free and a
1259 * 16 byte header would have 4 + 1;
1260 */
1261 if (SA_HDR_SIZE(sa_hdr_phys) > 8)
1262 num_lengths += (SA_HDR_SIZE(sa_hdr_phys) - 8) >> 1;
1263 for (i = 0; i != num_lengths; i++)
1264 sa_hdr_phys->sa_lengths[i] =
1265 BSWAP_16(sa_hdr_phys->sa_lengths[i]);
1266
1267 sa_attr_iter(hdl->sa_os, sa_hdr_phys, DMU_OT_SA,
1268 sa_byteswap_cb, NULL, hdl);
1269
1270 if (buftype == SA_SPILL)
1271 arc_buf_freeze(((dmu_buf_impl_t *)hdl->sa_spill)->db_buf);
1272 }
1273
1274 static int
1275 sa_build_index(sa_handle_t *hdl, sa_buf_type_t buftype)
1276 {
1277 sa_hdr_phys_t *sa_hdr_phys;
1278 dmu_buf_impl_t *db = SA_GET_DB(hdl, buftype);
1279 dmu_object_type_t bonustype = SA_BONUSTYPE_FROM_DB(db);
1280 sa_os_t *sa = hdl->sa_os->os_sa;
1281 sa_idx_tab_t *idx_tab;
1282
1283 sa_hdr_phys = SA_GET_HDR(hdl, buftype);
1284
1285 mutex_enter(&sa->sa_lock);
1286
1287 /* Do we need to byteswap? */
1288
1289 /* only check if not old znode */
1290 if (IS_SA_BONUSTYPE(bonustype) && sa_hdr_phys->sa_magic != SA_MAGIC &&
1291 sa_hdr_phys->sa_magic != 0) {
1292 if (BSWAP_32(sa_hdr_phys->sa_magic) != SA_MAGIC) {
1293 mutex_exit(&sa->sa_lock);
1294 zfs_dbgmsg("Buffer Header: %x != SA_MAGIC:%x "
1295 "object=%#llx\n", sa_hdr_phys->sa_magic, SA_MAGIC,
1296 (u_longlong_t)db->db.db_object);
1297 return (SET_ERROR(EIO));
1298 }
1299 sa_byteswap(hdl, buftype);
1300 }
1301
1302 idx_tab = sa_find_idx_tab(hdl->sa_os, bonustype, sa_hdr_phys);
1303
1304 if (buftype == SA_BONUS)
1305 hdl->sa_bonus_tab = idx_tab;
1306 else
1307 hdl->sa_spill_tab = idx_tab;
1308
1309 mutex_exit(&sa->sa_lock);
1310 return (0);
1311 }
1312
1313 static void
1314 sa_evict_sync(void *dbu)
1315 {
1316 (void) dbu;
1317 panic("evicting sa dbuf\n");
1318 }
1319
1320 static void
1321 sa_idx_tab_rele(objset_t *os, void *arg)
1322 {
1323 sa_os_t *sa = os->os_sa;
1324 sa_idx_tab_t *idx_tab = arg;
1325
1326 if (idx_tab == NULL)
1327 return;
1328
1329 mutex_enter(&sa->sa_lock);
1330 if (zfs_refcount_remove(&idx_tab->sa_refcount, NULL) == 0) {
1331 list_remove(&idx_tab->sa_layout->lot_idx_tab, idx_tab);
1332 if (idx_tab->sa_variable_lengths)
1333 kmem_free(idx_tab->sa_variable_lengths,
1334 sizeof (uint16_t) *
1335 idx_tab->sa_layout->lot_var_sizes);
1336 zfs_refcount_destroy(&idx_tab->sa_refcount);
1337 kmem_free(idx_tab->sa_idx_tab,
1338 sizeof (uint32_t) * sa->sa_num_attrs);
1339 kmem_free(idx_tab, sizeof (sa_idx_tab_t));
1340 }
1341 mutex_exit(&sa->sa_lock);
1342 }
1343
1344 static void
1345 sa_idx_tab_hold(objset_t *os, sa_idx_tab_t *idx_tab)
1346 {
1347 sa_os_t *sa __maybe_unused = os->os_sa;
1348
1349 ASSERT(MUTEX_HELD(&sa->sa_lock));
1350 (void) zfs_refcount_add(&idx_tab->sa_refcount, NULL);
1351 }
1352
1353 void
1354 sa_spill_rele(sa_handle_t *hdl)
1355 {
1356 mutex_enter(&hdl->sa_lock);
1357 if (hdl->sa_spill) {
1358 sa_idx_tab_rele(hdl->sa_os, hdl->sa_spill_tab);
1359 dmu_buf_rele(hdl->sa_spill, NULL);
1360 hdl->sa_spill = NULL;
1361 hdl->sa_spill_tab = NULL;
1362 }
1363 mutex_exit(&hdl->sa_lock);
1364 }
1365
1366 void
1367 sa_handle_destroy(sa_handle_t *hdl)
1368 {
1369 dmu_buf_t *db = hdl->sa_bonus;
1370
1371 mutex_enter(&hdl->sa_lock);
1372 (void) dmu_buf_remove_user(db, &hdl->sa_dbu);
1373
1374 if (hdl->sa_bonus_tab)
1375 sa_idx_tab_rele(hdl->sa_os, hdl->sa_bonus_tab);
1376
1377 if (hdl->sa_spill_tab)
1378 sa_idx_tab_rele(hdl->sa_os, hdl->sa_spill_tab);
1379
1380 dmu_buf_rele(hdl->sa_bonus, NULL);
1381
1382 if (hdl->sa_spill)
1383 dmu_buf_rele(hdl->sa_spill, NULL);
1384 mutex_exit(&hdl->sa_lock);
1385
1386 kmem_cache_free(sa_cache, hdl);
1387 }
1388
1389 int
1390 sa_handle_get_from_db(objset_t *os, dmu_buf_t *db, void *userp,
1391 sa_handle_type_t hdl_type, sa_handle_t **handlepp)
1392 {
1393 int error = 0;
1394 sa_handle_t *handle = NULL;
1395 #ifdef ZFS_DEBUG
1396 dmu_object_info_t doi;
1397
1398 dmu_object_info_from_db(db, &doi);
1399 ASSERT(doi.doi_bonus_type == DMU_OT_SA ||
1400 doi.doi_bonus_type == DMU_OT_ZNODE);
1401 #endif
1402 /* find handle, if it exists */
1403 /* if one doesn't exist then create a new one, and initialize it */
1404
1405 if (hdl_type == SA_HDL_SHARED)
1406 handle = dmu_buf_get_user(db);
1407
1408 if (handle == NULL) {
1409 sa_handle_t *winner = NULL;
1410
1411 handle = kmem_cache_alloc(sa_cache, KM_SLEEP);
1412 handle->sa_dbu.dbu_evict_func_sync = NULL;
1413 handle->sa_dbu.dbu_evict_func_async = NULL;
1414 handle->sa_userp = userp;
1415 handle->sa_bonus = db;
1416 handle->sa_os = os;
1417 handle->sa_spill = NULL;
1418 handle->sa_bonus_tab = NULL;
1419 handle->sa_spill_tab = NULL;
1420
1421 error = sa_build_index(handle, SA_BONUS);
1422
1423 if (hdl_type == SA_HDL_SHARED) {
1424 dmu_buf_init_user(&handle->sa_dbu, sa_evict_sync, NULL,
1425 NULL);
1426 winner = dmu_buf_set_user_ie(db, &handle->sa_dbu);
1427 }
1428
1429 if (winner != NULL) {
1430 kmem_cache_free(sa_cache, handle);
1431 handle = winner;
1432 }
1433 }
1434 *handlepp = handle;
1435
1436 return (error);
1437 }
1438
1439 int
1440 sa_handle_get(objset_t *objset, uint64_t objid, void *userp,
1441 sa_handle_type_t hdl_type, sa_handle_t **handlepp)
1442 {
1443 dmu_buf_t *db;
1444 int error;
1445
1446 if ((error = dmu_bonus_hold(objset, objid, NULL, &db)))
1447 return (error);
1448
1449 return (sa_handle_get_from_db(objset, db, userp, hdl_type,
1450 handlepp));
1451 }
1452
1453 int
1454 sa_buf_hold(objset_t *objset, uint64_t obj_num, const void *tag, dmu_buf_t **db)
1455 {
1456 return (dmu_bonus_hold(objset, obj_num, tag, db));
1457 }
1458
1459 void
1460 sa_buf_rele(dmu_buf_t *db, const void *tag)
1461 {
1462 dmu_buf_rele(db, tag);
1463 }
1464
1465 static int
1466 sa_lookup_impl(sa_handle_t *hdl, sa_bulk_attr_t *bulk, int count)
1467 {
1468 ASSERT(hdl);
1469 ASSERT(MUTEX_HELD(&hdl->sa_lock));
1470 return (sa_attr_op(hdl, bulk, count, SA_LOOKUP, NULL));
1471 }
1472
1473 static int
1474 sa_lookup_locked(sa_handle_t *hdl, sa_attr_type_t attr, void *buf,
1475 uint32_t buflen)
1476 {
1477 int error;
1478 sa_bulk_attr_t bulk;
1479
1480 VERIFY3U(buflen, <=, SA_ATTR_MAX_LEN);
1481
1482 bulk.sa_attr = attr;
1483 bulk.sa_data = buf;
1484 bulk.sa_length = buflen;
1485 bulk.sa_data_func = NULL;
1486
1487 ASSERT(hdl);
1488 error = sa_lookup_impl(hdl, &bulk, 1);
1489 return (error);
1490 }
1491
1492 int
1493 sa_lookup(sa_handle_t *hdl, sa_attr_type_t attr, void *buf, uint32_t buflen)
1494 {
1495 int error;
1496
1497 mutex_enter(&hdl->sa_lock);
1498 error = sa_lookup_locked(hdl, attr, buf, buflen);
1499 mutex_exit(&hdl->sa_lock);
1500
1501 return (error);
1502 }
1503
1504 #ifdef _KERNEL
1505 int
1506 sa_lookup_uio(sa_handle_t *hdl, sa_attr_type_t attr, zfs_uio_t *uio)
1507 {
1508 int error;
1509 sa_bulk_attr_t bulk;
1510
1511 bulk.sa_data = NULL;
1512 bulk.sa_attr = attr;
1513 bulk.sa_data_func = NULL;
1514
1515 ASSERT(hdl);
1516
1517 mutex_enter(&hdl->sa_lock);
1518 if ((error = sa_attr_op(hdl, &bulk, 1, SA_LOOKUP, NULL)) == 0) {
1519 error = zfs_uiomove((void *)bulk.sa_addr, MIN(bulk.sa_size,
1520 zfs_uio_resid(uio)), UIO_READ, uio);
1521 }
1522 mutex_exit(&hdl->sa_lock);
1523 return (error);
1524 }
1525
1526 /*
1527 * For the existed object that is upgraded from old system, its ondisk layout
1528 * has no slot for the project ID attribute. But quota accounting logic needs
1529 * to access related slots by offset directly. So we need to adjust these old
1530 * objects' layout to make the project ID to some unified and fixed offset.
1531 */
1532 int
1533 sa_add_projid(sa_handle_t *hdl, dmu_tx_t *tx, uint64_t projid)
1534 {
1535 znode_t *zp = sa_get_userdata(hdl);
1536 dmu_buf_t *db = sa_get_db(hdl);
1537 zfsvfs_t *zfsvfs = ZTOZSB(zp);
1538 int count = 0, err = 0;
1539 sa_bulk_attr_t *bulk, *attrs;
1540 zfs_acl_locator_cb_t locate = { 0 };
1541 uint64_t uid, gid, mode, rdev, xattr = 0, parent, gen, links;
1542 uint64_t crtime[2], mtime[2], ctime[2], atime[2];
1543 zfs_acl_phys_t znode_acl = { 0 };
1544 char scanstamp[AV_SCANSTAMP_SZ];
1545
1546 if (zp->z_acl_cached == NULL) {
1547 zfs_acl_t *aclp;
1548
1549 mutex_enter(&zp->z_acl_lock);
1550 err = zfs_acl_node_read(zp, B_FALSE, &aclp, B_FALSE);
1551 mutex_exit(&zp->z_acl_lock);
1552 if (err != 0 && err != ENOENT)
1553 return (err);
1554 }
1555
1556 bulk = kmem_zalloc(sizeof (sa_bulk_attr_t) * ZPL_END, KM_SLEEP);
1557 attrs = kmem_zalloc(sizeof (sa_bulk_attr_t) * ZPL_END, KM_SLEEP);
1558 mutex_enter(&hdl->sa_lock);
1559 mutex_enter(&zp->z_lock);
1560
1561 err = sa_lookup_locked(hdl, SA_ZPL_PROJID(zfsvfs), &projid,
1562 sizeof (uint64_t));
1563 if (unlikely(err == 0))
1564 /* Someone has added project ID attr by race. */
1565 err = EEXIST;
1566 if (err != ENOENT)
1567 goto out;
1568
1569 /* First do a bulk query of the attributes that aren't cached */
1570 if (zp->z_is_sa) {
1571 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_MODE(zfsvfs), NULL,
1572 &mode, 8);
1573 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_GEN(zfsvfs), NULL,
1574 &gen, 8);
1575 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_UID(zfsvfs), NULL,
1576 &uid, 8);
1577 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_GID(zfsvfs), NULL,
1578 &gid, 8);
1579 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_PARENT(zfsvfs), NULL,
1580 &parent, 8);
1581 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_ATIME(zfsvfs), NULL,
1582 &atime, 16);
1583 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_MTIME(zfsvfs), NULL,
1584 &mtime, 16);
1585 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_CTIME(zfsvfs), NULL,
1586 &ctime, 16);
1587 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_CRTIME(zfsvfs), NULL,
1588 &crtime, 16);
1589 if (Z_ISBLK(ZTOTYPE(zp)) || Z_ISCHR(ZTOTYPE(zp)))
1590 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_RDEV(zfsvfs), NULL,
1591 &rdev, 8);
1592 } else {
1593 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_ATIME(zfsvfs), NULL,
1594 &atime, 16);
1595 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_MTIME(zfsvfs), NULL,
1596 &mtime, 16);
1597 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_CTIME(zfsvfs), NULL,
1598 &ctime, 16);
1599 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_CRTIME(zfsvfs), NULL,
1600 &crtime, 16);
1601 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_GEN(zfsvfs), NULL,
1602 &gen, 8);
1603 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_MODE(zfsvfs), NULL,
1604 &mode, 8);
1605 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_PARENT(zfsvfs), NULL,
1606 &parent, 8);
1607 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_XATTR(zfsvfs), NULL,
1608 &xattr, 8);
1609 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_RDEV(zfsvfs), NULL,
1610 &rdev, 8);
1611 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_UID(zfsvfs), NULL,
1612 &uid, 8);
1613 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_GID(zfsvfs), NULL,
1614 &gid, 8);
1615 SA_ADD_BULK_ATTR(bulk, count, SA_ZPL_ZNODE_ACL(zfsvfs), NULL,
1616 &znode_acl, 88);
1617 }
1618 err = sa_bulk_lookup_locked(hdl, bulk, count);
1619 if (err != 0)
1620 goto out;
1621
1622 err = sa_lookup_locked(hdl, SA_ZPL_XATTR(zfsvfs), &xattr, 8);
1623 if (err != 0 && err != ENOENT)
1624 goto out;
1625
1626 zp->z_projid = projid;
1627 zp->z_pflags |= ZFS_PROJID;
1628 links = ZTONLNK(zp);
1629 count = 0;
1630 err = 0;
1631
1632 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_MODE(zfsvfs), NULL, &mode, 8);
1633 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_SIZE(zfsvfs), NULL,
1634 &zp->z_size, 8);
1635 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_GEN(zfsvfs), NULL, &gen, 8);
1636 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_UID(zfsvfs), NULL, &uid, 8);
1637 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_GID(zfsvfs), NULL, &gid, 8);
1638 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_PARENT(zfsvfs), NULL, &parent, 8);
1639 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_FLAGS(zfsvfs), NULL,
1640 &zp->z_pflags, 8);
1641 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_ATIME(zfsvfs), NULL, &atime, 16);
1642 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_MTIME(zfsvfs), NULL, &mtime, 16);
1643 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_CTIME(zfsvfs), NULL, &ctime, 16);
1644 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_CRTIME(zfsvfs), NULL,
1645 &crtime, 16);
1646 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_LINKS(zfsvfs), NULL, &links, 8);
1647 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_PROJID(zfsvfs), NULL, &projid, 8);
1648
1649 if (Z_ISBLK(ZTOTYPE(zp)) || Z_ISCHR(ZTOTYPE(zp)))
1650 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_RDEV(zfsvfs), NULL,
1651 &rdev, 8);
1652
1653 if (zp->z_acl_cached != NULL) {
1654 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_DACL_COUNT(zfsvfs), NULL,
1655 &zp->z_acl_cached->z_acl_count, 8);
1656 if (zp->z_acl_cached->z_version < ZFS_ACL_VERSION_FUID)
1657 zfs_acl_xform(zp, zp->z_acl_cached, CRED());
1658 locate.cb_aclp = zp->z_acl_cached;
1659 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_DACL_ACES(zfsvfs),
1660 zfs_acl_data_locator, &locate,
1661 zp->z_acl_cached->z_acl_bytes);
1662 }
1663
1664 if (xattr)
1665 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_XATTR(zfsvfs), NULL,
1666 &xattr, 8);
1667
1668 if (zp->z_pflags & ZFS_BONUS_SCANSTAMP) {
1669 memcpy(scanstamp,
1670 (caddr_t)db->db_data + ZFS_OLD_ZNODE_PHYS_SIZE,
1671 AV_SCANSTAMP_SZ);
1672 SA_ADD_BULK_ATTR(attrs, count, SA_ZPL_SCANSTAMP(zfsvfs), NULL,
1673 scanstamp, AV_SCANSTAMP_SZ);
1674 zp->z_pflags &= ~ZFS_BONUS_SCANSTAMP;
1675 }
1676
1677 VERIFY(dmu_set_bonustype(db, DMU_OT_SA, tx) == 0);
1678 VERIFY(sa_replace_all_by_template_locked(hdl, attrs, count, tx) == 0);
1679 if (znode_acl.z_acl_extern_obj) {
1680 VERIFY(0 == dmu_object_free(zfsvfs->z_os,
1681 znode_acl.z_acl_extern_obj, tx));
1682 }
1683
1684 zp->z_is_sa = B_TRUE;
1685
1686 out:
1687 mutex_exit(&zp->z_lock);
1688 mutex_exit(&hdl->sa_lock);
1689 kmem_free(attrs, sizeof (sa_bulk_attr_t) * ZPL_END);
1690 kmem_free(bulk, sizeof (sa_bulk_attr_t) * ZPL_END);
1691 return (err);
1692 }
1693 #endif
1694
1695 static sa_idx_tab_t *
1696 sa_find_idx_tab(objset_t *os, dmu_object_type_t bonustype, sa_hdr_phys_t *hdr)
1697 {
1698 sa_idx_tab_t *idx_tab;
1699 sa_os_t *sa = os->os_sa;
1700 sa_lot_t *tb, search;
1701 avl_index_t loc;
1702
1703 /*
1704 * Deterimine layout number. If SA node and header == 0 then
1705 * force the index table to the dummy "1" empty layout.
1706 *
1707 * The layout number would only be zero for a newly created file
1708 * that has not added any attributes yet, or with crypto enabled which
1709 * doesn't write any attributes to the bonus buffer.
1710 */
1711
1712 search.lot_num = SA_LAYOUT_NUM(hdr, bonustype);
1713
1714 tb = avl_find(&sa->sa_layout_num_tree, &search, &loc);
1715
1716 /* Verify header size is consistent with layout information */
1717 ASSERT(tb);
1718 ASSERT((IS_SA_BONUSTYPE(bonustype) &&
1719 SA_HDR_SIZE_MATCH_LAYOUT(hdr, tb)) || !IS_SA_BONUSTYPE(bonustype) ||
1720 (IS_SA_BONUSTYPE(bonustype) && hdr->sa_layout_info == 0));
1721
1722 /*
1723 * See if any of the already existing TOC entries can be reused?
1724 */
1725
1726 for (idx_tab = list_head(&tb->lot_idx_tab); idx_tab;
1727 idx_tab = list_next(&tb->lot_idx_tab, idx_tab)) {
1728 boolean_t valid_idx = B_TRUE;
1729 int i;
1730
1731 if (tb->lot_var_sizes != 0 &&
1732 idx_tab->sa_variable_lengths != NULL) {
1733 for (i = 0; i != tb->lot_var_sizes; i++) {
1734 if (hdr->sa_lengths[i] !=
1735 idx_tab->sa_variable_lengths[i]) {
1736 valid_idx = B_FALSE;
1737 break;
1738 }
1739 }
1740 }
1741 if (valid_idx) {
1742 sa_idx_tab_hold(os, idx_tab);
1743 return (idx_tab);
1744 }
1745 }
1746
1747 /* No such luck, create a new entry */
1748 idx_tab = kmem_zalloc(sizeof (sa_idx_tab_t), KM_SLEEP);
1749 idx_tab->sa_idx_tab =
1750 kmem_zalloc(sizeof (uint32_t) * sa->sa_num_attrs, KM_SLEEP);
1751 idx_tab->sa_layout = tb;
1752 zfs_refcount_create(&idx_tab->sa_refcount);
1753 if (tb->lot_var_sizes)
1754 idx_tab->sa_variable_lengths = kmem_alloc(sizeof (uint16_t) *
1755 tb->lot_var_sizes, KM_SLEEP);
1756
1757 sa_attr_iter(os, hdr, bonustype, sa_build_idx_tab,
1758 tb, idx_tab);
1759 sa_idx_tab_hold(os, idx_tab); /* one hold for consumer */
1760 sa_idx_tab_hold(os, idx_tab); /* one for layout */
1761 list_insert_tail(&tb->lot_idx_tab, idx_tab);
1762 return (idx_tab);
1763 }
1764
1765 void
1766 sa_default_locator(void **dataptr, uint32_t *len, uint32_t total_len,
1767 boolean_t start, void *userdata)
1768 {
1769 ASSERT(start);
1770
1771 *dataptr = userdata;
1772 *len = total_len;
1773 }
1774
1775 static void
1776 sa_attr_register_sync(sa_handle_t *hdl, dmu_tx_t *tx)
1777 {
1778 uint64_t attr_value = 0;
1779 sa_os_t *sa = hdl->sa_os->os_sa;
1780 sa_attr_table_t *tb = sa->sa_attr_table;
1781 int i;
1782
1783 mutex_enter(&sa->sa_lock);
1784
1785 if (!sa->sa_need_attr_registration || sa->sa_master_obj == 0) {
1786 mutex_exit(&sa->sa_lock);
1787 return;
1788 }
1789
1790 if (sa->sa_reg_attr_obj == 0) {
1791 sa->sa_reg_attr_obj = zap_create_link(hdl->sa_os,
1792 DMU_OT_SA_ATTR_REGISTRATION,
1793 sa->sa_master_obj, SA_REGISTRY, tx);
1794 }
1795 for (i = 0; i != sa->sa_num_attrs; i++) {
1796 if (sa->sa_attr_table[i].sa_registered)
1797 continue;
1798 ATTR_ENCODE(attr_value, tb[i].sa_attr, tb[i].sa_length,
1799 tb[i].sa_byteswap);
1800 VERIFY(0 == zap_update(hdl->sa_os, sa->sa_reg_attr_obj,
1801 tb[i].sa_name, 8, 1, &attr_value, tx));
1802 tb[i].sa_registered = B_TRUE;
1803 }
1804 sa->sa_need_attr_registration = B_FALSE;
1805 mutex_exit(&sa->sa_lock);
1806 }
1807
1808 /*
1809 * Replace all attributes with attributes specified in template.
1810 * If dnode had a spill buffer then those attributes will be
1811 * also be replaced, possibly with just an empty spill block
1812 *
1813 * This interface is intended to only be used for bulk adding of
1814 * attributes for a new file. It will also be used by the ZPL
1815 * when converting and old formatted znode to native SA support.
1816 */
1817 int
1818 sa_replace_all_by_template_locked(sa_handle_t *hdl, sa_bulk_attr_t *attr_desc,
1819 int attr_count, dmu_tx_t *tx)
1820 {
1821 sa_os_t *sa = hdl->sa_os->os_sa;
1822
1823 if (sa->sa_need_attr_registration)
1824 sa_attr_register_sync(hdl, tx);
1825 return (sa_build_layouts(hdl, attr_desc, attr_count, tx));
1826 }
1827
1828 int
1829 sa_replace_all_by_template(sa_handle_t *hdl, sa_bulk_attr_t *attr_desc,
1830 int attr_count, dmu_tx_t *tx)
1831 {
1832 int error;
1833
1834 mutex_enter(&hdl->sa_lock);
1835 error = sa_replace_all_by_template_locked(hdl, attr_desc,
1836 attr_count, tx);
1837 mutex_exit(&hdl->sa_lock);
1838 return (error);
1839 }
1840
1841 /*
1842 * Add/remove a single attribute or replace a variable-sized attribute value
1843 * with a value of a different size, and then rewrite the entire set
1844 * of attributes.
1845 * Same-length attribute value replacement (including fixed-length attributes)
1846 * is handled more efficiently by the upper layers.
1847 */
1848 static int
1849 sa_modify_attrs(sa_handle_t *hdl, sa_attr_type_t newattr,
1850 sa_data_op_t action, sa_data_locator_t *locator, void *datastart,
1851 uint16_t buflen, dmu_tx_t *tx)
1852 {
1853 sa_os_t *sa = hdl->sa_os->os_sa;
1854 dmu_buf_impl_t *db = (dmu_buf_impl_t *)hdl->sa_bonus;
1855 dnode_t *dn;
1856 sa_bulk_attr_t *attr_desc;
1857 void *old_data[2];
1858 int bonus_attr_count = 0;
1859 int bonus_data_size = 0;
1860 int spill_data_size = 0;
1861 int spill_attr_count = 0;
1862 int error;
1863 uint16_t length, reg_length;
1864 int i, j, k, length_idx;
1865 sa_hdr_phys_t *hdr;
1866 sa_idx_tab_t *idx_tab;
1867 int attr_count;
1868 int count;
1869
1870 ASSERT(MUTEX_HELD(&hdl->sa_lock));
1871
1872 /* First make of copy of the old data */
1873
1874 DB_DNODE_ENTER(db);
1875 dn = DB_DNODE(db);
1876 if (dn->dn_bonuslen != 0) {
1877 bonus_data_size = hdl->sa_bonus->db_size;
1878 old_data[0] = kmem_alloc(bonus_data_size, KM_SLEEP);
1879 memcpy(old_data[0], hdl->sa_bonus->db_data,
1880 hdl->sa_bonus->db_size);
1881 bonus_attr_count = hdl->sa_bonus_tab->sa_layout->lot_attr_count;
1882 } else {
1883 old_data[0] = NULL;
1884 }
1885 DB_DNODE_EXIT(db);
1886
1887 /* Bring spill buffer online if it isn't currently */
1888
1889 if ((error = sa_get_spill(hdl)) == 0) {
1890 spill_data_size = hdl->sa_spill->db_size;
1891 old_data[1] = vmem_alloc(spill_data_size, KM_SLEEP);
1892 memcpy(old_data[1], hdl->sa_spill->db_data,
1893 hdl->sa_spill->db_size);
1894 spill_attr_count =
1895 hdl->sa_spill_tab->sa_layout->lot_attr_count;
1896 } else if (error && error != ENOENT) {
1897 if (old_data[0])
1898 kmem_free(old_data[0], bonus_data_size);
1899 return (error);
1900 } else {
1901 old_data[1] = NULL;
1902 }
1903
1904 /* build descriptor of all attributes */
1905
1906 attr_count = bonus_attr_count + spill_attr_count;
1907 if (action == SA_ADD)
1908 attr_count++;
1909 else if (action == SA_REMOVE)
1910 attr_count--;
1911
1912 attr_desc = kmem_zalloc(sizeof (sa_bulk_attr_t) * attr_count, KM_SLEEP);
1913
1914 /*
1915 * loop through bonus and spill buffer if it exists, and
1916 * build up new attr_descriptor to reset the attributes
1917 */
1918 k = j = 0;
1919 count = bonus_attr_count;
1920 hdr = SA_GET_HDR(hdl, SA_BONUS);
1921 idx_tab = SA_IDX_TAB_GET(hdl, SA_BONUS);
1922 for (; ; k++) {
1923 /*
1924 * Iterate over each attribute in layout. Fetch the
1925 * size of variable-length attributes needing rewrite
1926 * from sa_lengths[].
1927 */
1928 for (i = 0, length_idx = 0; i != count; i++) {
1929 sa_attr_type_t attr;
1930
1931 attr = idx_tab->sa_layout->lot_attrs[i];
1932 reg_length = SA_REGISTERED_LEN(sa, attr);
1933 if (reg_length == 0) {
1934 length = hdr->sa_lengths[length_idx];
1935 length_idx++;
1936 } else {
1937 length = reg_length;
1938 }
1939 if (attr == newattr) {
1940 /*
1941 * There is nothing to do for SA_REMOVE,
1942 * so it is just skipped.
1943 */
1944 if (action == SA_REMOVE)
1945 continue;
1946
1947 /*
1948 * Duplicate attributes are not allowed, so the
1949 * action can not be SA_ADD here.
1950 */
1951 ASSERT3S(action, ==, SA_REPLACE);
1952
1953 /*
1954 * Only a variable-sized attribute can be
1955 * replaced here, and its size must be changing.
1956 */
1957 ASSERT3U(reg_length, ==, 0);
1958 ASSERT3U(length, !=, buflen);
1959 SA_ADD_BULK_ATTR(attr_desc, j, attr,
1960 locator, datastart, buflen);
1961 } else {
1962 SA_ADD_BULK_ATTR(attr_desc, j, attr,
1963 NULL, (void *)
1964 (TOC_OFF(idx_tab->sa_idx_tab[attr]) +
1965 (uintptr_t)old_data[k]), length);
1966 }
1967 }
1968 if (k == 0 && hdl->sa_spill) {
1969 hdr = SA_GET_HDR(hdl, SA_SPILL);
1970 idx_tab = SA_IDX_TAB_GET(hdl, SA_SPILL);
1971 count = spill_attr_count;
1972 } else {
1973 break;
1974 }
1975 }
1976 if (action == SA_ADD) {
1977 reg_length = SA_REGISTERED_LEN(sa, newattr);
1978 IMPLY(reg_length != 0, reg_length == buflen);
1979 SA_ADD_BULK_ATTR(attr_desc, j, newattr, locator,
1980 datastart, buflen);
1981 }
1982 ASSERT3U(j, ==, attr_count);
1983
1984 error = sa_build_layouts(hdl, attr_desc, attr_count, tx);
1985
1986 if (old_data[0])
1987 kmem_free(old_data[0], bonus_data_size);
1988 if (old_data[1])
1989 vmem_free(old_data[1], spill_data_size);
1990 kmem_free(attr_desc, sizeof (sa_bulk_attr_t) * attr_count);
1991
1992 return (error);
1993 }
1994
1995 static int
1996 sa_bulk_update_impl(sa_handle_t *hdl, sa_bulk_attr_t *bulk, int count,
1997 dmu_tx_t *tx)
1998 {
1999 int error;
2000 sa_os_t *sa = hdl->sa_os->os_sa;
2001 dmu_object_type_t bonustype;
2002 dmu_buf_t *saved_spill;
2003
2004 ASSERT(hdl);
2005 ASSERT(MUTEX_HELD(&hdl->sa_lock));
2006
2007 bonustype = SA_BONUSTYPE_FROM_DB(SA_GET_DB(hdl, SA_BONUS));
2008 saved_spill = hdl->sa_spill;
2009
2010 /* sync out registration table if necessary */
2011 if (sa->sa_need_attr_registration)
2012 sa_attr_register_sync(hdl, tx);
2013
2014 error = sa_attr_op(hdl, bulk, count, SA_UPDATE, tx);
2015 if (error == 0 && !IS_SA_BONUSTYPE(bonustype) && sa->sa_update_cb)
2016 sa->sa_update_cb(hdl, tx);
2017
2018 /*
2019 * If saved_spill is NULL and current sa_spill is not NULL that
2020 * means we increased the refcount of the spill buffer through
2021 * sa_get_spill() or dmu_spill_hold_by_dnode(). Therefore we
2022 * must release the hold before calling dmu_tx_commit() to avoid
2023 * making a copy of this buffer in dbuf_sync_leaf() due to the
2024 * reference count now being greater than 1.
2025 */
2026 if (!saved_spill && hdl->sa_spill) {
2027 if (hdl->sa_spill_tab) {
2028 sa_idx_tab_rele(hdl->sa_os, hdl->sa_spill_tab);
2029 hdl->sa_spill_tab = NULL;
2030 }
2031
2032 dmu_buf_rele(hdl->sa_spill, NULL);
2033 hdl->sa_spill = NULL;
2034 }
2035
2036 return (error);
2037 }
2038
2039 /*
2040 * update or add new attribute
2041 */
2042 int
2043 sa_update(sa_handle_t *hdl, sa_attr_type_t type,
2044 void *buf, uint32_t buflen, dmu_tx_t *tx)
2045 {
2046 int error;
2047 sa_bulk_attr_t bulk;
2048
2049 VERIFY3U(buflen, <=, SA_ATTR_MAX_LEN);
2050
2051 bulk.sa_attr = type;
2052 bulk.sa_data_func = NULL;
2053 bulk.sa_length = buflen;
2054 bulk.sa_data = buf;
2055
2056 mutex_enter(&hdl->sa_lock);
2057 error = sa_bulk_update_impl(hdl, &bulk, 1, tx);
2058 mutex_exit(&hdl->sa_lock);
2059 return (error);
2060 }
2061
2062 /*
2063 * Return size of an attribute
2064 */
2065
2066 int
2067 sa_size(sa_handle_t *hdl, sa_attr_type_t attr, int *size)
2068 {
2069 sa_bulk_attr_t bulk;
2070 int error;
2071
2072 bulk.sa_data = NULL;
2073 bulk.sa_attr = attr;
2074 bulk.sa_data_func = NULL;
2075
2076 ASSERT(hdl);
2077 mutex_enter(&hdl->sa_lock);
2078 if ((error = sa_attr_op(hdl, &bulk, 1, SA_LOOKUP, NULL)) != 0) {
2079 mutex_exit(&hdl->sa_lock);
2080 return (error);
2081 }
2082 *size = bulk.sa_size;
2083
2084 mutex_exit(&hdl->sa_lock);
2085 return (0);
2086 }
2087
2088 int
2089 sa_bulk_lookup_locked(sa_handle_t *hdl, sa_bulk_attr_t *attrs, int count)
2090 {
2091 ASSERT(hdl);
2092 ASSERT(MUTEX_HELD(&hdl->sa_lock));
2093 return (sa_lookup_impl(hdl, attrs, count));
2094 }
2095
2096 int
2097 sa_bulk_lookup(sa_handle_t *hdl, sa_bulk_attr_t *attrs, int count)
2098 {
2099 int error;
2100
2101 ASSERT(hdl);
2102 mutex_enter(&hdl->sa_lock);
2103 error = sa_bulk_lookup_locked(hdl, attrs, count);
2104 mutex_exit(&hdl->sa_lock);
2105 return (error);
2106 }
2107
2108 int
2109 sa_bulk_update(sa_handle_t *hdl, sa_bulk_attr_t *attrs, int count, dmu_tx_t *tx)
2110 {
2111 int error;
2112
2113 ASSERT(hdl);
2114 mutex_enter(&hdl->sa_lock);
2115 error = sa_bulk_update_impl(hdl, attrs, count, tx);
2116 mutex_exit(&hdl->sa_lock);
2117 return (error);
2118 }
2119
2120 int
2121 sa_remove(sa_handle_t *hdl, sa_attr_type_t attr, dmu_tx_t *tx)
2122 {
2123 int error;
2124
2125 mutex_enter(&hdl->sa_lock);
2126 error = sa_modify_attrs(hdl, attr, SA_REMOVE, NULL,
2127 NULL, 0, tx);
2128 mutex_exit(&hdl->sa_lock);
2129 return (error);
2130 }
2131
2132 void
2133 sa_object_info(sa_handle_t *hdl, dmu_object_info_t *doi)
2134 {
2135 dmu_object_info_from_db(hdl->sa_bonus, doi);
2136 }
2137
2138 void
2139 sa_object_size(sa_handle_t *hdl, uint32_t *blksize, u_longlong_t *nblocks)
2140 {
2141 dmu_object_size_from_db(hdl->sa_bonus,
2142 blksize, nblocks);
2143 }
2144
2145 void
2146 sa_set_userp(sa_handle_t *hdl, void *ptr)
2147 {
2148 hdl->sa_userp = ptr;
2149 }
2150
2151 dmu_buf_t *
2152 sa_get_db(sa_handle_t *hdl)
2153 {
2154 return (hdl->sa_bonus);
2155 }
2156
2157 void *
2158 sa_get_userdata(sa_handle_t *hdl)
2159 {
2160 return (hdl->sa_userp);
2161 }
2162
2163 void
2164 sa_register_update_callback_locked(objset_t *os, sa_update_cb_t *func)
2165 {
2166 ASSERT(MUTEX_HELD(&os->os_sa->sa_lock));
2167 os->os_sa->sa_update_cb = func;
2168 }
2169
2170 void
2171 sa_register_update_callback(objset_t *os, sa_update_cb_t *func)
2172 {
2173
2174 mutex_enter(&os->os_sa->sa_lock);
2175 sa_register_update_callback_locked(os, func);
2176 mutex_exit(&os->os_sa->sa_lock);
2177 }
2178
2179 uint64_t
2180 sa_handle_object(sa_handle_t *hdl)
2181 {
2182 return (hdl->sa_bonus->db_object);
2183 }
2184
2185 boolean_t
2186 sa_enabled(objset_t *os)
2187 {
2188 return (os->os_sa == NULL);
2189 }
2190
2191 int
2192 sa_set_sa_object(objset_t *os, uint64_t sa_object)
2193 {
2194 sa_os_t *sa = os->os_sa;
2195
2196 if (sa->sa_master_obj)
2197 return (1);
2198
2199 sa->sa_master_obj = sa_object;
2200
2201 return (0);
2202 }
2203
2204 int
2205 sa_hdrsize(void *arg)
2206 {
2207 sa_hdr_phys_t *hdr = arg;
2208
2209 return (SA_HDR_SIZE(hdr));
2210 }
2211
2212 void
2213 sa_handle_lock(sa_handle_t *hdl)
2214 {
2215 ASSERT(hdl);
2216 mutex_enter(&hdl->sa_lock);
2217 }
2218
2219 void
2220 sa_handle_unlock(sa_handle_t *hdl)
2221 {
2222 ASSERT(hdl);
2223 mutex_exit(&hdl->sa_lock);
2224 }
2225
2226 #ifdef _KERNEL
2227 EXPORT_SYMBOL(sa_handle_get);
2228 EXPORT_SYMBOL(sa_handle_get_from_db);
2229 EXPORT_SYMBOL(sa_handle_destroy);
2230 EXPORT_SYMBOL(sa_buf_hold);
2231 EXPORT_SYMBOL(sa_buf_rele);
2232 EXPORT_SYMBOL(sa_spill_rele);
2233 EXPORT_SYMBOL(sa_lookup);
2234 EXPORT_SYMBOL(sa_update);
2235 EXPORT_SYMBOL(sa_remove);
2236 EXPORT_SYMBOL(sa_bulk_lookup);
2237 EXPORT_SYMBOL(sa_bulk_lookup_locked);
2238 EXPORT_SYMBOL(sa_bulk_update);
2239 EXPORT_SYMBOL(sa_size);
2240 EXPORT_SYMBOL(sa_object_info);
2241 EXPORT_SYMBOL(sa_object_size);
2242 EXPORT_SYMBOL(sa_get_userdata);
2243 EXPORT_SYMBOL(sa_set_userp);
2244 EXPORT_SYMBOL(sa_get_db);
2245 EXPORT_SYMBOL(sa_handle_object);
2246 EXPORT_SYMBOL(sa_register_update_callback);
2247 EXPORT_SYMBOL(sa_setup);
2248 EXPORT_SYMBOL(sa_replace_all_by_template);
2249 EXPORT_SYMBOL(sa_replace_all_by_template_locked);
2250 EXPORT_SYMBOL(sa_enabled);
2251 EXPORT_SYMBOL(sa_cache_init);
2252 EXPORT_SYMBOL(sa_cache_fini);
2253 EXPORT_SYMBOL(sa_set_sa_object);
2254 EXPORT_SYMBOL(sa_hdrsize);
2255 EXPORT_SYMBOL(sa_handle_lock);
2256 EXPORT_SYMBOL(sa_handle_unlock);
2257 EXPORT_SYMBOL(sa_lookup_uio);
2258 EXPORT_SYMBOL(sa_add_projid);
2259 #endif /* _KERNEL */