xref: /freebsd-11-stable/sys/cddl/contrib/opensolaris/uts/common/fs/zfs/sys/dmu.h (revision 21e28abad816a794e991d91c2f58d30f5b141217)
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 /*
23  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
24  * Copyright (c) 2011, 2017 by Delphix. All rights reserved.
25  * Copyright 2011 Nexenta Systems, Inc. All rights reserved.
26  * Copyright (c) 2012, Joyent, Inc. All rights reserved.
27  * Copyright 2013 DEY Storage Systems, Inc.
28  * Copyright 2014 HybridCluster. All rights reserved.
29  * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
30  * Copyright 2013 Saso Kiselkov. All rights reserved.
31  * Copyright (c) 2014 Integros [integros.com]
32  */
33 
34 /* Portions Copyright 2010 Robert Milkowski */
35 
36 #ifndef	_SYS_DMU_H
37 #define	_SYS_DMU_H
38 
39 /*
40  * This file describes the interface that the DMU provides for its
41  * consumers.
42  *
43  * The DMU also interacts with the SPA.  That interface is described in
44  * dmu_spa.h.
45  */
46 
47 #include <sys/zfs_context.h>
48 #include <sys/cred.h>
49 #include <sys/fs/zfs.h>
50 #include <sys/zio_compress.h>
51 #include <sys/zio_priority.h>
52 
53 #ifdef	__cplusplus
54 extern "C" {
55 #endif
56 
57 struct uio;
58 struct xuio;
59 struct page;
60 struct vnode;
61 struct spa;
62 struct zilog;
63 struct zio;
64 struct blkptr;
65 struct zap_cursor;
66 struct dsl_dataset;
67 struct dsl_pool;
68 struct dnode;
69 struct drr_begin;
70 struct drr_end;
71 struct zbookmark_phys;
72 struct spa;
73 struct nvlist;
74 struct arc_buf;
75 struct zio_prop;
76 struct sa_handle;
77 struct file;
78 
79 typedef struct objset objset_t;
80 typedef struct dmu_tx dmu_tx_t;
81 typedef struct dsl_dir dsl_dir_t;
82 typedef struct dnode dnode_t;
83 
84 typedef enum dmu_object_byteswap {
85 	DMU_BSWAP_UINT8,
86 	DMU_BSWAP_UINT16,
87 	DMU_BSWAP_UINT32,
88 	DMU_BSWAP_UINT64,
89 	DMU_BSWAP_ZAP,
90 	DMU_BSWAP_DNODE,
91 	DMU_BSWAP_OBJSET,
92 	DMU_BSWAP_ZNODE,
93 	DMU_BSWAP_OLDACL,
94 	DMU_BSWAP_ACL,
95 	/*
96 	 * Allocating a new byteswap type number makes the on-disk format
97 	 * incompatible with any other format that uses the same number.
98 	 *
99 	 * Data can usually be structured to work with one of the
100 	 * DMU_BSWAP_UINT* or DMU_BSWAP_ZAP types.
101 	 */
102 	DMU_BSWAP_NUMFUNCS
103 } dmu_object_byteswap_t;
104 
105 #define	DMU_OT_NEWTYPE 0x80
106 #define	DMU_OT_METADATA 0x40
107 #define	DMU_OT_BYTESWAP_MASK 0x3f
108 
109 /*
110  * Defines a uint8_t object type. Object types specify if the data
111  * in the object is metadata (boolean) and how to byteswap the data
112  * (dmu_object_byteswap_t). All of the types created by this method
113  * are cached in the dbuf metadata cache.
114  */
115 #define	DMU_OT(byteswap, metadata) \
116 	(DMU_OT_NEWTYPE | \
117 	((metadata) ? DMU_OT_METADATA : 0) | \
118 	((byteswap) & DMU_OT_BYTESWAP_MASK))
119 
120 #define	DMU_OT_IS_VALID(ot) (((ot) & DMU_OT_NEWTYPE) ? \
121 	((ot) & DMU_OT_BYTESWAP_MASK) < DMU_BSWAP_NUMFUNCS : \
122 	(ot) < DMU_OT_NUMTYPES)
123 
124 #define	DMU_OT_IS_METADATA(ot) (((ot) & DMU_OT_NEWTYPE) ? \
125 	((ot) & DMU_OT_METADATA) : \
126 	dmu_ot[(ot)].ot_metadata)
127 
128 #define	DMU_OT_IS_METADATA_CACHED(ot) (((ot) & DMU_OT_NEWTYPE) ? \
129 	B_TRUE : dmu_ot[(ot)].ot_dbuf_metadata_cache)
130 
131 /*
132  * These object types use bp_fill != 1 for their L0 bp's. Therefore they can't
133  * have their data embedded (i.e. use a BP_IS_EMBEDDED() bp), because bp_fill
134  * is repurposed for embedded BPs.
135  */
136 #define	DMU_OT_HAS_FILL(ot) \
137 	((ot) == DMU_OT_DNODE || (ot) == DMU_OT_OBJSET)
138 
139 #define	DMU_OT_BYTESWAP(ot) (((ot) & DMU_OT_NEWTYPE) ? \
140 	((ot) & DMU_OT_BYTESWAP_MASK) : \
141 	dmu_ot[(ot)].ot_byteswap)
142 
143 typedef enum dmu_object_type {
144 	DMU_OT_NONE,
145 	/* general: */
146 	DMU_OT_OBJECT_DIRECTORY,	/* ZAP */
147 	DMU_OT_OBJECT_ARRAY,		/* UINT64 */
148 	DMU_OT_PACKED_NVLIST,		/* UINT8 (XDR by nvlist_pack/unpack) */
149 	DMU_OT_PACKED_NVLIST_SIZE,	/* UINT64 */
150 	DMU_OT_BPOBJ,			/* UINT64 */
151 	DMU_OT_BPOBJ_HDR,		/* UINT64 */
152 	/* spa: */
153 	DMU_OT_SPACE_MAP_HEADER,	/* UINT64 */
154 	DMU_OT_SPACE_MAP,		/* UINT64 */
155 	/* zil: */
156 	DMU_OT_INTENT_LOG,		/* UINT64 */
157 	/* dmu: */
158 	DMU_OT_DNODE,			/* DNODE */
159 	DMU_OT_OBJSET,			/* OBJSET */
160 	/* dsl: */
161 	DMU_OT_DSL_DIR,			/* UINT64 */
162 	DMU_OT_DSL_DIR_CHILD_MAP,	/* ZAP */
163 	DMU_OT_DSL_DS_SNAP_MAP,		/* ZAP */
164 	DMU_OT_DSL_PROPS,		/* ZAP */
165 	DMU_OT_DSL_DATASET,		/* UINT64 */
166 	/* zpl: */
167 	DMU_OT_ZNODE,			/* ZNODE */
168 	DMU_OT_OLDACL,			/* Old ACL */
169 	DMU_OT_PLAIN_FILE_CONTENTS,	/* UINT8 */
170 	DMU_OT_DIRECTORY_CONTENTS,	/* ZAP */
171 	DMU_OT_MASTER_NODE,		/* ZAP */
172 	DMU_OT_UNLINKED_SET,		/* ZAP */
173 	/* zvol: */
174 	DMU_OT_ZVOL,			/* UINT8 */
175 	DMU_OT_ZVOL_PROP,		/* ZAP */
176 	/* other; for testing only! */
177 	DMU_OT_PLAIN_OTHER,		/* UINT8 */
178 	DMU_OT_UINT64_OTHER,		/* UINT64 */
179 	DMU_OT_ZAP_OTHER,		/* ZAP */
180 	/* new object types: */
181 	DMU_OT_ERROR_LOG,		/* ZAP */
182 	DMU_OT_SPA_HISTORY,		/* UINT8 */
183 	DMU_OT_SPA_HISTORY_OFFSETS,	/* spa_his_phys_t */
184 	DMU_OT_POOL_PROPS,		/* ZAP */
185 	DMU_OT_DSL_PERMS,		/* ZAP */
186 	DMU_OT_ACL,			/* ACL */
187 	DMU_OT_SYSACL,			/* SYSACL */
188 	DMU_OT_FUID,			/* FUID table (Packed NVLIST UINT8) */
189 	DMU_OT_FUID_SIZE,		/* FUID table size UINT64 */
190 	DMU_OT_NEXT_CLONES,		/* ZAP */
191 	DMU_OT_SCAN_QUEUE,		/* ZAP */
192 	DMU_OT_USERGROUP_USED,		/* ZAP */
193 	DMU_OT_USERGROUP_QUOTA,		/* ZAP */
194 	DMU_OT_USERREFS,		/* ZAP */
195 	DMU_OT_DDT_ZAP,			/* ZAP */
196 	DMU_OT_DDT_STATS,		/* ZAP */
197 	DMU_OT_SA,			/* System attr */
198 	DMU_OT_SA_MASTER_NODE,		/* ZAP */
199 	DMU_OT_SA_ATTR_REGISTRATION,	/* ZAP */
200 	DMU_OT_SA_ATTR_LAYOUTS,		/* ZAP */
201 	DMU_OT_SCAN_XLATE,		/* ZAP */
202 	DMU_OT_DEDUP,			/* fake dedup BP from ddt_bp_create() */
203 	DMU_OT_DEADLIST,		/* ZAP */
204 	DMU_OT_DEADLIST_HDR,		/* UINT64 */
205 	DMU_OT_DSL_CLONES,		/* ZAP */
206 	DMU_OT_BPOBJ_SUBOBJ,		/* UINT64 */
207 	/*
208 	 * Do not allocate new object types here. Doing so makes the on-disk
209 	 * format incompatible with any other format that uses the same object
210 	 * type number.
211 	 *
212 	 * When creating an object which does not have one of the above types
213 	 * use the DMU_OTN_* type with the correct byteswap and metadata
214 	 * values.
215 	 *
216 	 * The DMU_OTN_* types do not have entries in the dmu_ot table,
217 	 * use the DMU_OT_IS_METDATA() and DMU_OT_BYTESWAP() macros instead
218 	 * of indexing into dmu_ot directly (this works for both DMU_OT_* types
219 	 * and DMU_OTN_* types).
220 	 */
221 	DMU_OT_NUMTYPES,
222 
223 	/*
224 	 * Names for valid types declared with DMU_OT().
225 	 */
226 	DMU_OTN_UINT8_DATA = DMU_OT(DMU_BSWAP_UINT8, B_FALSE),
227 	DMU_OTN_UINT8_METADATA = DMU_OT(DMU_BSWAP_UINT8, B_TRUE),
228 	DMU_OTN_UINT16_DATA = DMU_OT(DMU_BSWAP_UINT16, B_FALSE),
229 	DMU_OTN_UINT16_METADATA = DMU_OT(DMU_BSWAP_UINT16, B_TRUE),
230 	DMU_OTN_UINT32_DATA = DMU_OT(DMU_BSWAP_UINT32, B_FALSE),
231 	DMU_OTN_UINT32_METADATA = DMU_OT(DMU_BSWAP_UINT32, B_TRUE),
232 	DMU_OTN_UINT64_DATA = DMU_OT(DMU_BSWAP_UINT64, B_FALSE),
233 	DMU_OTN_UINT64_METADATA = DMU_OT(DMU_BSWAP_UINT64, B_TRUE),
234 	DMU_OTN_ZAP_DATA = DMU_OT(DMU_BSWAP_ZAP, B_FALSE),
235 	DMU_OTN_ZAP_METADATA = DMU_OT(DMU_BSWAP_ZAP, B_TRUE),
236 } dmu_object_type_t;
237 
238 /*
239  * These flags are intended to be used to specify the "txg_how"
240  * parameter when calling the dmu_tx_assign() function. See the comment
241  * above dmu_tx_assign() for more details on the meaning of these flags.
242  */
243 #define	TXG_NOWAIT	(0ULL)
244 #define	TXG_WAIT	(1ULL<<0)
245 #define	TXG_NOTHROTTLE	(1ULL<<1)
246 
247 void byteswap_uint64_array(void *buf, size_t size);
248 void byteswap_uint32_array(void *buf, size_t size);
249 void byteswap_uint16_array(void *buf, size_t size);
250 void byteswap_uint8_array(void *buf, size_t size);
251 void zap_byteswap(void *buf, size_t size);
252 void zfs_oldacl_byteswap(void *buf, size_t size);
253 void zfs_acl_byteswap(void *buf, size_t size);
254 void zfs_znode_byteswap(void *buf, size_t size);
255 
256 #define	DS_FIND_SNAPSHOTS	(1<<0)
257 #define	DS_FIND_CHILDREN	(1<<1)
258 #define	DS_FIND_SERIALIZE	(1<<2)
259 
260 /*
261  * The maximum number of bytes that can be accessed as part of one
262  * operation, including metadata.
263  */
264 #define	DMU_MAX_ACCESS (32 * 1024 * 1024) /* 32MB */
265 #define	DMU_MAX_DELETEBLKCNT (20480) /* ~5MB of indirect blocks */
266 
267 #define	DMU_USERUSED_OBJECT	(-1ULL)
268 #define	DMU_GROUPUSED_OBJECT	(-2ULL)
269 
270 /*
271  * artificial blkids for bonus buffer and spill blocks
272  */
273 #define	DMU_BONUS_BLKID		(-1ULL)
274 #define	DMU_SPILL_BLKID		(-2ULL)
275 /*
276  * Public routines to create, destroy, open, and close objsets.
277  */
278 int dmu_objset_hold(const char *name, void *tag, objset_t **osp);
279 int dmu_objset_own(const char *name, dmu_objset_type_t type,
280     boolean_t readonly, void *tag, objset_t **osp);
281 void dmu_objset_rele(objset_t *os, void *tag);
282 void dmu_objset_disown(objset_t *os, void *tag);
283 int dmu_objset_open_ds(struct dsl_dataset *ds, objset_t **osp);
284 
285 void dmu_objset_evict_dbufs(objset_t *os);
286 int dmu_objset_create(const char *name, dmu_objset_type_t type, uint64_t flags,
287     void (*func)(objset_t *os, void *arg, cred_t *cr, dmu_tx_t *tx), void *arg);
288 int dmu_get_recursive_snaps_nvl(char *fsname, const char *snapname,
289     struct nvlist *snaps);
290 int dmu_objset_clone(const char *name, const char *origin);
291 int dsl_destroy_snapshots_nvl(struct nvlist *snaps, boolean_t defer,
292     struct nvlist *errlist);
293 int dmu_objset_snapshot_one(const char *fsname, const char *snapname);
294 int dmu_objset_snapshot_tmp(const char *, const char *, int);
295 int dmu_objset_find(char *name, int func(const char *, void *), void *arg,
296     int flags);
297 void dmu_objset_byteswap(void *buf, size_t size);
298 int dsl_dataset_rename_snapshot(const char *fsname,
299     const char *oldsnapname, const char *newsnapname, boolean_t recursive);
300 int dmu_objset_remap_indirects(const char *fsname);
301 
302 typedef struct dmu_buf {
303 	uint64_t db_object;		/* object that this buffer is part of */
304 	uint64_t db_offset;		/* byte offset in this object */
305 	uint64_t db_size;		/* size of buffer in bytes */
306 	void *db_data;			/* data in buffer */
307 } dmu_buf_t;
308 
309 /*
310  * The names of zap entries in the DIRECTORY_OBJECT of the MOS.
311  */
312 #define	DMU_POOL_DIRECTORY_OBJECT	1
313 #define	DMU_POOL_CONFIG			"config"
314 #define	DMU_POOL_FEATURES_FOR_WRITE	"features_for_write"
315 #define	DMU_POOL_FEATURES_FOR_READ	"features_for_read"
316 #define	DMU_POOL_FEATURE_DESCRIPTIONS	"feature_descriptions"
317 #define	DMU_POOL_FEATURE_ENABLED_TXG	"feature_enabled_txg"
318 #define	DMU_POOL_ROOT_DATASET		"root_dataset"
319 #define	DMU_POOL_SYNC_BPOBJ		"sync_bplist"
320 #define	DMU_POOL_ERRLOG_SCRUB		"errlog_scrub"
321 #define	DMU_POOL_ERRLOG_LAST		"errlog_last"
322 #define	DMU_POOL_SPARES			"spares"
323 #define	DMU_POOL_DEFLATE		"deflate"
324 #define	DMU_POOL_HISTORY		"history"
325 #define	DMU_POOL_PROPS			"pool_props"
326 #define	DMU_POOL_L2CACHE		"l2cache"
327 #define	DMU_POOL_TMP_USERREFS		"tmp_userrefs"
328 #define	DMU_POOL_DDT			"DDT-%s-%s-%s"
329 #define	DMU_POOL_DDT_STATS		"DDT-statistics"
330 #define	DMU_POOL_CREATION_VERSION	"creation_version"
331 #define	DMU_POOL_SCAN			"scan"
332 #define	DMU_POOL_FREE_BPOBJ		"free_bpobj"
333 #define	DMU_POOL_BPTREE_OBJ		"bptree_obj"
334 #define	DMU_POOL_EMPTY_BPOBJ		"empty_bpobj"
335 #define	DMU_POOL_CHECKSUM_SALT		"org.illumos:checksum_salt"
336 #define	DMU_POOL_VDEV_ZAP_MAP		"com.delphix:vdev_zap_map"
337 #define	DMU_POOL_REMOVING		"com.delphix:removing"
338 #define	DMU_POOL_OBSOLETE_BPOBJ		"com.delphix:obsolete_bpobj"
339 #define	DMU_POOL_CONDENSING_INDIRECT	"com.delphix:condensing_indirect"
340 #define	DMU_POOL_ZPOOL_CHECKPOINT	"com.delphix:zpool_checkpoint"
341 
342 /*
343  * Allocate an object from this objset.  The range of object numbers
344  * available is (0, DN_MAX_OBJECT).  Object 0 is the meta-dnode.
345  *
346  * The transaction must be assigned to a txg.  The newly allocated
347  * object will be "held" in the transaction (ie. you can modify the
348  * newly allocated object in this transaction).
349  *
350  * dmu_object_alloc() chooses an object and returns it in *objectp.
351  *
352  * dmu_object_claim() allocates a specific object number.  If that
353  * number is already allocated, it fails and returns EEXIST.
354  *
355  * Return 0 on success, or ENOSPC or EEXIST as specified above.
356  */
357 uint64_t dmu_object_alloc(objset_t *os, dmu_object_type_t ot,
358     int blocksize, dmu_object_type_t bonus_type, int bonus_len, dmu_tx_t *tx);
359 uint64_t dmu_object_alloc_ibs(objset_t *os, dmu_object_type_t ot, int blocksize,
360     int indirect_blockshift,
361     dmu_object_type_t bonustype, int bonuslen, dmu_tx_t *tx);
362 int dmu_object_claim(objset_t *os, uint64_t object, dmu_object_type_t ot,
363     int blocksize, dmu_object_type_t bonus_type, int bonus_len, dmu_tx_t *tx);
364 int dmu_object_reclaim(objset_t *os, uint64_t object, dmu_object_type_t ot,
365     int blocksize, dmu_object_type_t bonustype, int bonuslen, dmu_tx_t *txp);
366 
367 /*
368  * Free an object from this objset.
369  *
370  * The object's data will be freed as well (ie. you don't need to call
371  * dmu_free(object, 0, -1, tx)).
372  *
373  * The object need not be held in the transaction.
374  *
375  * If there are any holds on this object's buffers (via dmu_buf_hold()),
376  * or tx holds on the object (via dmu_tx_hold_object()), you can not
377  * free it; it fails and returns EBUSY.
378  *
379  * If the object is not allocated, it fails and returns ENOENT.
380  *
381  * Return 0 on success, or EBUSY or ENOENT as specified above.
382  */
383 int dmu_object_free(objset_t *os, uint64_t object, dmu_tx_t *tx);
384 
385 /*
386  * Find the next allocated or free object.
387  *
388  * The objectp parameter is in-out.  It will be updated to be the next
389  * object which is allocated.  Ignore objects which have not been
390  * modified since txg.
391  *
392  * XXX Can only be called on a objset with no dirty data.
393  *
394  * Returns 0 on success, or ENOENT if there are no more objects.
395  */
396 int dmu_object_next(objset_t *os, uint64_t *objectp,
397     boolean_t hole, uint64_t txg);
398 
399 /*
400  * Set the data blocksize for an object.
401  *
402  * The object cannot have any blocks allcated beyond the first.  If
403  * the first block is allocated already, the new size must be greater
404  * than the current block size.  If these conditions are not met,
405  * ENOTSUP will be returned.
406  *
407  * Returns 0 on success, or EBUSY if there are any holds on the object
408  * contents, or ENOTSUP as described above.
409  */
410 int dmu_object_set_blocksize(objset_t *os, uint64_t object, uint64_t size,
411     int ibs, dmu_tx_t *tx);
412 
413 /*
414  * Set the checksum property on a dnode.  The new checksum algorithm will
415  * apply to all newly written blocks; existing blocks will not be affected.
416  */
417 void dmu_object_set_checksum(objset_t *os, uint64_t object, uint8_t checksum,
418     dmu_tx_t *tx);
419 
420 /*
421  * Set the compress property on a dnode.  The new compression algorithm will
422  * apply to all newly written blocks; existing blocks will not be affected.
423  */
424 void dmu_object_set_compress(objset_t *os, uint64_t object, uint8_t compress,
425     dmu_tx_t *tx);
426 
427 int dmu_object_remap_indirects(objset_t *os, uint64_t object, uint64_t txg);
428 
429 void
430 dmu_write_embedded(objset_t *os, uint64_t object, uint64_t offset,
431     void *data, uint8_t etype, uint8_t comp, int uncompressed_size,
432     int compressed_size, int byteorder, dmu_tx_t *tx);
433 
434 /*
435  * Decide how to write a block: checksum, compression, number of copies, etc.
436  */
437 #define	WP_NOFILL	0x1
438 #define	WP_DMU_SYNC	0x2
439 #define	WP_SPILL	0x4
440 
441 void dmu_write_policy(objset_t *os, dnode_t *dn, int level, int wp,
442     struct zio_prop *zp);
443 /*
444  * The bonus data is accessed more or less like a regular buffer.
445  * You must dmu_bonus_hold() to get the buffer, which will give you a
446  * dmu_buf_t with db_offset==-1ULL, and db_size = the size of the bonus
447  * data.  As with any normal buffer, you must call dmu_buf_will_dirty()
448  * before modifying it, and the
449  * object must be held in an assigned transaction before calling
450  * dmu_buf_will_dirty.  You may use dmu_buf_set_user() on the bonus
451  * buffer as well.  You must release your hold with dmu_buf_rele().
452  *
453  * Returns ENOENT, EIO, or 0.
454  */
455 int dmu_bonus_hold(objset_t *os, uint64_t object, void *tag, dmu_buf_t **);
456 int dmu_bonus_max(void);
457 int dmu_set_bonus(dmu_buf_t *, int, dmu_tx_t *);
458 int dmu_set_bonustype(dmu_buf_t *, dmu_object_type_t, dmu_tx_t *);
459 dmu_object_type_t dmu_get_bonustype(dmu_buf_t *);
460 int dmu_rm_spill(objset_t *, uint64_t, dmu_tx_t *);
461 
462 /*
463  * Special spill buffer support used by "SA" framework
464  */
465 
466 int dmu_spill_hold_by_bonus(dmu_buf_t *bonus, void *tag, dmu_buf_t **dbp);
467 int dmu_spill_hold_by_dnode(dnode_t *dn, uint32_t flags,
468     void *tag, dmu_buf_t **dbp);
469 int dmu_spill_hold_existing(dmu_buf_t *bonus, void *tag, dmu_buf_t **dbp);
470 
471 /*
472  * Obtain the DMU buffer from the specified object which contains the
473  * specified offset.  dmu_buf_hold() puts a "hold" on the buffer, so
474  * that it will remain in memory.  You must release the hold with
475  * dmu_buf_rele().  You musn't access the dmu_buf_t after releasing your
476  * hold.  You must have a hold on any dmu_buf_t* you pass to the DMU.
477  *
478  * You must call dmu_buf_read, dmu_buf_will_dirty, or dmu_buf_will_fill
479  * on the returned buffer before reading or writing the buffer's
480  * db_data.  The comments for those routines describe what particular
481  * operations are valid after calling them.
482  *
483  * The object number must be a valid, allocated object number.
484  */
485 int dmu_buf_hold(objset_t *os, uint64_t object, uint64_t offset,
486     void *tag, dmu_buf_t **, int flags);
487 int dmu_buf_hold_by_dnode(dnode_t *dn, uint64_t offset,
488     void *tag, dmu_buf_t **dbp, int flags);
489 
490 /*
491  * Add a reference to a dmu buffer that has already been held via
492  * dmu_buf_hold() in the current context.
493  */
494 void dmu_buf_add_ref(dmu_buf_t *db, void* tag);
495 
496 /*
497  * Attempt to add a reference to a dmu buffer that is in an unknown state,
498  * using a pointer that may have been invalidated by eviction processing.
499  * The request will succeed if the passed in dbuf still represents the
500  * same os/object/blkid, is ineligible for eviction, and has at least
501  * one hold by a user other than the syncer.
502  */
503 boolean_t dmu_buf_try_add_ref(dmu_buf_t *, objset_t *os, uint64_t object,
504     uint64_t blkid, void *tag);
505 
506 void dmu_buf_rele(dmu_buf_t *db, void *tag);
507 uint64_t dmu_buf_refcount(dmu_buf_t *db);
508 
509 /*
510  * dmu_buf_hold_array holds the DMU buffers which contain all bytes in a
511  * range of an object.  A pointer to an array of dmu_buf_t*'s is
512  * returned (in *dbpp).
513  *
514  * dmu_buf_rele_array releases the hold on an array of dmu_buf_t*'s, and
515  * frees the array.  The hold on the array of buffers MUST be released
516  * with dmu_buf_rele_array.  You can NOT release the hold on each buffer
517  * individually with dmu_buf_rele.
518  */
519 int dmu_buf_hold_array_by_bonus(dmu_buf_t *db, uint64_t offset,
520     uint64_t length, boolean_t read, void *tag,
521     int *numbufsp, dmu_buf_t ***dbpp);
522 int dmu_buf_hold_array_by_dnode(dnode_t *dn, uint64_t offset, uint64_t length,
523     boolean_t read, void *tag, int *numbufsp, dmu_buf_t ***dbpp,
524     uint32_t flags);
525 void dmu_buf_rele_array(dmu_buf_t **, int numbufs, void *tag);
526 
527 typedef void dmu_buf_evict_func_t(void *user_ptr);
528 
529 /*
530  * A DMU buffer user object may be associated with a dbuf for the
531  * duration of its lifetime.  This allows the user of a dbuf (client)
532  * to attach private data to a dbuf (e.g. in-core only data such as a
533  * dnode_children_t, zap_t, or zap_leaf_t) and be optionally notified
534  * when that dbuf has been evicted.  Clients typically respond to the
535  * eviction notification by freeing their private data, thus ensuring
536  * the same lifetime for both dbuf and private data.
537  *
538  * The mapping from a dmu_buf_user_t to any client private data is the
539  * client's responsibility.  All current consumers of the API with private
540  * data embed a dmu_buf_user_t as the first member of the structure for
541  * their private data.  This allows conversions between the two types
542  * with a simple cast.  Since the DMU buf user API never needs access
543  * to the private data, other strategies can be employed if necessary
544  * or convenient for the client (e.g. using container_of() to do the
545  * conversion for private data that cannot have the dmu_buf_user_t as
546  * its first member).
547  *
548  * Eviction callbacks are executed without the dbuf mutex held or any
549  * other type of mechanism to guarantee that the dbuf is still available.
550  * For this reason, users must assume the dbuf has already been freed
551  * and not reference the dbuf from the callback context.
552  *
553  * Users requesting "immediate eviction" are notified as soon as the dbuf
554  * is only referenced by dirty records (dirties == holds).  Otherwise the
555  * notification occurs after eviction processing for the dbuf begins.
556  */
557 typedef struct dmu_buf_user {
558 	/*
559 	 * Asynchronous user eviction callback state.
560 	 */
561 	taskq_ent_t	dbu_tqent;
562 
563 	/*
564 	 * This instance's eviction function pointers.
565 	 *
566 	 * dbu_evict_func_sync is called synchronously and then
567 	 * dbu_evict_func_async is executed asynchronously on a taskq.
568 	 */
569 	dmu_buf_evict_func_t *dbu_evict_func_sync;
570 	dmu_buf_evict_func_t *dbu_evict_func_async;
571 #ifdef ZFS_DEBUG
572 	/*
573 	 * Pointer to user's dbuf pointer.  NULL for clients that do
574 	 * not associate a dbuf with their user data.
575 	 *
576 	 * The dbuf pointer is cleared upon eviction so as to catch
577 	 * use-after-evict bugs in clients.
578 	 */
579 	dmu_buf_t **dbu_clear_on_evict_dbufp;
580 #endif
581 } dmu_buf_user_t;
582 
583 /*
584  * Initialize the given dmu_buf_user_t instance with the eviction function
585  * evict_func, to be called when the user is evicted.
586  *
587  * NOTE: This function should only be called once on a given dmu_buf_user_t.
588  *       To allow enforcement of this, dbu must already be zeroed on entry.
589  */
590 /*ARGSUSED*/
591 inline void
dmu_buf_init_user(dmu_buf_user_t * dbu,dmu_buf_evict_func_t * evict_func_sync,dmu_buf_evict_func_t * evict_func_async,dmu_buf_t ** clear_on_evict_dbufp)592 dmu_buf_init_user(dmu_buf_user_t *dbu, dmu_buf_evict_func_t *evict_func_sync,
593     dmu_buf_evict_func_t *evict_func_async, dmu_buf_t **clear_on_evict_dbufp)
594 {
595 	ASSERT(dbu->dbu_evict_func_sync == NULL);
596 	ASSERT(dbu->dbu_evict_func_async == NULL);
597 
598 	/* must have at least one evict func */
599 	IMPLY(evict_func_sync == NULL, evict_func_async != NULL);
600 	dbu->dbu_evict_func_sync = evict_func_sync;
601 	dbu->dbu_evict_func_async = evict_func_async;
602 #ifdef ZFS_DEBUG
603 	dbu->dbu_clear_on_evict_dbufp = clear_on_evict_dbufp;
604 #endif
605 }
606 
607 /*
608  * Attach user data to a dbuf and mark it for normal (when the dbuf's
609  * data is cleared or its reference count goes to zero) eviction processing.
610  *
611  * Returns NULL on success, or the existing user if another user currently
612  * owns the buffer.
613  */
614 void *dmu_buf_set_user(dmu_buf_t *db, dmu_buf_user_t *user);
615 
616 /*
617  * Attach user data to a dbuf and mark it for immediate (its dirty and
618  * reference counts are equal) eviction processing.
619  *
620  * Returns NULL on success, or the existing user if another user currently
621  * owns the buffer.
622  */
623 void *dmu_buf_set_user_ie(dmu_buf_t *db, dmu_buf_user_t *user);
624 
625 /*
626  * Replace the current user of a dbuf.
627  *
628  * If given the current user of a dbuf, replaces the dbuf's user with
629  * "new_user" and returns the user data pointer that was replaced.
630  * Otherwise returns the current, and unmodified, dbuf user pointer.
631  */
632 void *dmu_buf_replace_user(dmu_buf_t *db,
633     dmu_buf_user_t *old_user, dmu_buf_user_t *new_user);
634 
635 /*
636  * Remove the specified user data for a DMU buffer.
637  *
638  * Returns the user that was removed on success, or the current user if
639  * another user currently owns the buffer.
640  */
641 void *dmu_buf_remove_user(dmu_buf_t *db, dmu_buf_user_t *user);
642 
643 /*
644  * Returns the user data (dmu_buf_user_t *) associated with this dbuf.
645  */
646 void *dmu_buf_get_user(dmu_buf_t *db);
647 
648 objset_t *dmu_buf_get_objset(dmu_buf_t *db);
649 dnode_t *dmu_buf_dnode_enter(dmu_buf_t *db);
650 void dmu_buf_dnode_exit(dmu_buf_t *db);
651 
652 /* Block until any in-progress dmu buf user evictions complete. */
653 void dmu_buf_user_evict_wait(void);
654 
655 /*
656  * Returns the blkptr associated with this dbuf, or NULL if not set.
657  */
658 struct blkptr *dmu_buf_get_blkptr(dmu_buf_t *db);
659 
660 /*
661  * Indicate that you are going to modify the buffer's data (db_data).
662  *
663  * The transaction (tx) must be assigned to a txg (ie. you've called
664  * dmu_tx_assign()).  The buffer's object must be held in the tx
665  * (ie. you've called dmu_tx_hold_object(tx, db->db_object)).
666  */
667 void dmu_buf_will_dirty(dmu_buf_t *db, dmu_tx_t *tx);
668 
669 /*
670  * You must create a transaction, then hold the objects which you will
671  * (or might) modify as part of this transaction.  Then you must assign
672  * the transaction to a transaction group.  Once the transaction has
673  * been assigned, you can modify buffers which belong to held objects as
674  * part of this transaction.  You can't modify buffers before the
675  * transaction has been assigned; you can't modify buffers which don't
676  * belong to objects which this transaction holds; you can't hold
677  * objects once the transaction has been assigned.  You may hold an
678  * object which you are going to free (with dmu_object_free()), but you
679  * don't have to.
680  *
681  * You can abort the transaction before it has been assigned.
682  *
683  * Note that you may hold buffers (with dmu_buf_hold) at any time,
684  * regardless of transaction state.
685  */
686 
687 #define	DMU_NEW_OBJECT	(-1ULL)
688 #define	DMU_OBJECT_END	(-1ULL)
689 
690 dmu_tx_t *dmu_tx_create(objset_t *os);
691 void dmu_tx_hold_write(dmu_tx_t *tx, uint64_t object, uint64_t off, int len);
692 void dmu_tx_hold_write_by_dnode(dmu_tx_t *tx, dnode_t *dn, uint64_t off,
693     int len);
694 void dmu_tx_hold_free(dmu_tx_t *tx, uint64_t object, uint64_t off,
695     uint64_t len);
696 void dmu_tx_hold_free_by_dnode(dmu_tx_t *tx, dnode_t *dn, uint64_t off,
697     uint64_t len);
698 void dmu_tx_hold_remap_l1indirect(dmu_tx_t *tx, uint64_t object);
699 void dmu_tx_hold_zap(dmu_tx_t *tx, uint64_t object, int add, const char *name);
700 void dmu_tx_hold_zap_by_dnode(dmu_tx_t *tx, dnode_t *dn, int add,
701     const char *name);
702 void dmu_tx_hold_bonus(dmu_tx_t *tx, uint64_t object);
703 void dmu_tx_hold_bonus_by_dnode(dmu_tx_t *tx, dnode_t *dn);
704 void dmu_tx_hold_spill(dmu_tx_t *tx, uint64_t object);
705 void dmu_tx_hold_sa(dmu_tx_t *tx, struct sa_handle *hdl, boolean_t may_grow);
706 void dmu_tx_hold_sa_create(dmu_tx_t *tx, int total_size);
707 void dmu_tx_abort(dmu_tx_t *tx);
708 int dmu_tx_assign(dmu_tx_t *tx, uint64_t txg_how);
709 void dmu_tx_wait(dmu_tx_t *tx);
710 void dmu_tx_commit(dmu_tx_t *tx);
711 void dmu_tx_mark_netfree(dmu_tx_t *tx);
712 
713 /*
714  * To register a commit callback, dmu_tx_callback_register() must be called.
715  *
716  * dcb_data is a pointer to caller private data that is passed on as a
717  * callback parameter. The caller is responsible for properly allocating and
718  * freeing it.
719  *
720  * When registering a callback, the transaction must be already created, but
721  * it cannot be committed or aborted. It can be assigned to a txg or not.
722  *
723  * The callback will be called after the transaction has been safely written
724  * to stable storage and will also be called if the dmu_tx is aborted.
725  * If there is any error which prevents the transaction from being committed to
726  * disk, the callback will be called with a value of error != 0.
727  */
728 typedef void dmu_tx_callback_func_t(void *dcb_data, int error);
729 
730 void dmu_tx_callback_register(dmu_tx_t *tx, dmu_tx_callback_func_t *dcb_func,
731     void *dcb_data);
732 
733 /*
734  * Free up the data blocks for a defined range of a file.  If size is
735  * -1, the range from offset to end-of-file is freed.
736  */
737 int dmu_free_range(objset_t *os, uint64_t object, uint64_t offset,
738 	uint64_t size, dmu_tx_t *tx);
739 int dmu_free_long_range(objset_t *os, uint64_t object, uint64_t offset,
740 	uint64_t size);
741 int dmu_free_long_object(objset_t *os, uint64_t object);
742 
743 /*
744  * Convenience functions.
745  *
746  * Canfail routines will return 0 on success, or an errno if there is a
747  * nonrecoverable I/O error.
748  */
749 #define	DMU_READ_PREFETCH	0 /* prefetch */
750 #define	DMU_READ_NO_PREFETCH	1 /* don't prefetch */
751 int dmu_read(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
752 	void *buf, uint32_t flags);
753 int dmu_read_by_dnode(dnode_t *dn, uint64_t offset, uint64_t size, void *buf,
754     uint32_t flags);
755 void dmu_write(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
756 	const void *buf, dmu_tx_t *tx);
757 void dmu_write_by_dnode(dnode_t *dn, uint64_t offset, uint64_t size,
758     const void *buf, dmu_tx_t *tx);
759 void dmu_prealloc(objset_t *os, uint64_t object, uint64_t offset, uint64_t size,
760 	dmu_tx_t *tx);
761 int dmu_read_uio(objset_t *os, uint64_t object, struct uio *uio, uint64_t size);
762 int dmu_read_uio_dbuf(dmu_buf_t *zdb, struct uio *uio, uint64_t size);
763 int dmu_read_uio_dnode(dnode_t *dn, struct uio *uio, uint64_t size);
764 int dmu_write_uio(objset_t *os, uint64_t object, struct uio *uio, uint64_t size,
765     dmu_tx_t *tx);
766 int dmu_write_uio_dbuf(dmu_buf_t *zdb, struct uio *uio, uint64_t size,
767     dmu_tx_t *tx);
768 int dmu_write_uio_dnode(dnode_t *dn, struct uio *uio, uint64_t size,
769     dmu_tx_t *tx);
770 #ifdef _KERNEL
771 #ifdef illumos
772 int dmu_write_pages(objset_t *os, uint64_t object, uint64_t offset,
773     uint64_t size, struct page *pp, dmu_tx_t *tx);
774 #else
775 int dmu_write_pages(objset_t *os, uint64_t object, uint64_t offset,
776     uint64_t size, struct vm_page **ppa, dmu_tx_t *tx);
777 int dmu_read_pages(objset_t *os, uint64_t object, vm_page_t *ma, int count,
778     int *rbehind, int *rahead, int last_size);
779 #endif
780 #endif
781 struct arc_buf *dmu_request_arcbuf(dmu_buf_t *handle, int size);
782 void dmu_return_arcbuf(struct arc_buf *buf);
783 void dmu_assign_arcbuf_dnode(dnode_t *handle, uint64_t offset,
784     struct arc_buf *buf, dmu_tx_t *tx);
785 void dmu_assign_arcbuf(dmu_buf_t *handle, uint64_t offset, struct arc_buf *buf,
786     dmu_tx_t *tx);
787 int dmu_xuio_init(struct xuio *uio, int niov);
788 void dmu_xuio_fini(struct xuio *uio);
789 int dmu_xuio_add(struct xuio *uio, struct arc_buf *abuf, offset_t off,
790     size_t n);
791 int dmu_xuio_cnt(struct xuio *uio);
792 struct arc_buf *dmu_xuio_arcbuf(struct xuio *uio, int i);
793 void dmu_xuio_clear(struct xuio *uio, int i);
794 void xuio_stat_wbuf_copied(void);
795 void xuio_stat_wbuf_nocopy(void);
796 
797 extern boolean_t zfs_prefetch_disable;
798 extern int zfs_max_recordsize;
799 
800 /*
801  * Asynchronously try to read in the data.
802  */
803 void dmu_prefetch(objset_t *os, uint64_t object, int64_t level, uint64_t offset,
804     uint64_t len, enum zio_priority pri);
805 
806 typedef struct dmu_object_info {
807 	/* All sizes are in bytes unless otherwise indicated. */
808 	uint32_t doi_data_block_size;
809 	uint32_t doi_metadata_block_size;
810 	dmu_object_type_t doi_type;
811 	dmu_object_type_t doi_bonus_type;
812 	uint64_t doi_bonus_size;
813 	uint8_t doi_indirection;		/* 2 = dnode->indirect->data */
814 	uint8_t doi_checksum;
815 	uint8_t doi_compress;
816 	uint8_t doi_nblkptr;
817 	uint8_t doi_pad[4];
818 	uint64_t doi_physical_blocks_512;	/* data + metadata, 512b blks */
819 	uint64_t doi_max_offset;
820 	uint64_t doi_fill_count;		/* number of non-empty blocks */
821 } dmu_object_info_t;
822 
823 typedef void arc_byteswap_func_t(void *buf, size_t size);
824 
825 typedef struct dmu_object_type_info {
826 	dmu_object_byteswap_t	ot_byteswap;
827 	boolean_t		ot_metadata;
828 	boolean_t		ot_dbuf_metadata_cache;
829 	char			*ot_name;
830 } dmu_object_type_info_t;
831 
832 typedef struct dmu_object_byteswap_info {
833 	arc_byteswap_func_t	*ob_func;
834 	char			*ob_name;
835 } dmu_object_byteswap_info_t;
836 
837 extern const dmu_object_type_info_t dmu_ot[DMU_OT_NUMTYPES];
838 extern const dmu_object_byteswap_info_t dmu_ot_byteswap[DMU_BSWAP_NUMFUNCS];
839 
840 /*
841  * Get information on a DMU object.
842  *
843  * Return 0 on success or ENOENT if object is not allocated.
844  *
845  * If doi is NULL, just indicates whether the object exists.
846  */
847 int dmu_object_info(objset_t *os, uint64_t object, dmu_object_info_t *doi);
848 /* Like dmu_object_info, but faster if you have a held dnode in hand. */
849 void dmu_object_info_from_dnode(dnode_t *dn, dmu_object_info_t *doi);
850 /* Like dmu_object_info, but faster if you have a held dbuf in hand. */
851 void dmu_object_info_from_db(dmu_buf_t *db, dmu_object_info_t *doi);
852 /*
853  * Like dmu_object_info_from_db, but faster still when you only care about
854  * the size.  This is specifically optimized for zfs_getattr().
855  */
856 void dmu_object_size_from_db(dmu_buf_t *db, uint32_t *blksize,
857     u_longlong_t *nblk512);
858 
859 typedef struct dmu_objset_stats {
860 	uint64_t dds_num_clones; /* number of clones of this */
861 	uint64_t dds_creation_txg;
862 	uint64_t dds_guid;
863 	dmu_objset_type_t dds_type;
864 	uint8_t dds_is_snapshot;
865 	uint8_t dds_inconsistent;
866 	char dds_origin[ZFS_MAX_DATASET_NAME_LEN];
867 } dmu_objset_stats_t;
868 
869 /*
870  * Get stats on a dataset.
871  */
872 void dmu_objset_fast_stat(objset_t *os, dmu_objset_stats_t *stat);
873 
874 /*
875  * Add entries to the nvlist for all the objset's properties.  See
876  * zfs_prop_table[] and zfs(1m) for details on the properties.
877  */
878 void dmu_objset_stats(objset_t *os, struct nvlist *nv);
879 
880 /*
881  * Get the space usage statistics for statvfs().
882  *
883  * refdbytes is the amount of space "referenced" by this objset.
884  * availbytes is the amount of space available to this objset, taking
885  * into account quotas & reservations, assuming that no other objsets
886  * use the space first.  These values correspond to the 'referenced' and
887  * 'available' properties, described in the zfs(1m) manpage.
888  *
889  * usedobjs and availobjs are the number of objects currently allocated,
890  * and available.
891  */
892 void dmu_objset_space(objset_t *os, uint64_t *refdbytesp, uint64_t *availbytesp,
893     uint64_t *usedobjsp, uint64_t *availobjsp);
894 
895 /*
896  * The fsid_guid is a 56-bit ID that can change to avoid collisions.
897  * (Contrast with the ds_guid which is a 64-bit ID that will never
898  * change, so there is a small probability that it will collide.)
899  */
900 uint64_t dmu_objset_fsid_guid(objset_t *os);
901 
902 /*
903  * Get the [cm]time for an objset's snapshot dir
904  */
905 timestruc_t dmu_objset_snap_cmtime(objset_t *os);
906 
907 int dmu_objset_is_snapshot(objset_t *os);
908 
909 extern struct spa *dmu_objset_spa(objset_t *os);
910 extern struct zilog *dmu_objset_zil(objset_t *os);
911 extern struct dsl_pool *dmu_objset_pool(objset_t *os);
912 extern struct dsl_dataset *dmu_objset_ds(objset_t *os);
913 extern void dmu_objset_name(objset_t *os, char *buf);
914 extern dmu_objset_type_t dmu_objset_type(objset_t *os);
915 extern uint64_t dmu_objset_id(objset_t *os);
916 extern zfs_sync_type_t dmu_objset_syncprop(objset_t *os);
917 extern zfs_logbias_op_t dmu_objset_logbias(objset_t *os);
918 extern int dmu_snapshot_list_next(objset_t *os, int namelen, char *name,
919     uint64_t *id, uint64_t *offp, boolean_t *case_conflict);
920 extern int dmu_snapshot_realname(objset_t *os, char *name, char *real,
921     int maxlen, boolean_t *conflict);
922 extern int dmu_dir_list_next(objset_t *os, int namelen, char *name,
923     uint64_t *idp, uint64_t *offp);
924 
925 typedef int objset_used_cb_t(dmu_object_type_t bonustype,
926     void *bonus, uint64_t *userp, uint64_t *groupp);
927 extern void dmu_objset_register_type(dmu_objset_type_t ost,
928     objset_used_cb_t *cb);
929 extern void dmu_objset_set_user(objset_t *os, void *user_ptr);
930 extern void *dmu_objset_get_user(objset_t *os);
931 
932 /*
933  * Return the txg number for the given assigned transaction.
934  */
935 uint64_t dmu_tx_get_txg(dmu_tx_t *tx);
936 
937 /*
938  * Synchronous write.
939  * If a parent zio is provided this function initiates a write on the
940  * provided buffer as a child of the parent zio.
941  * In the absence of a parent zio, the write is completed synchronously.
942  * At write completion, blk is filled with the bp of the written block.
943  * Note that while the data covered by this function will be on stable
944  * storage when the write completes this new data does not become a
945  * permanent part of the file until the associated transaction commits.
946  */
947 
948 /*
949  * {zfs,zvol,ztest}_get_done() args
950  */
951 typedef struct zgd {
952 	struct lwb	*zgd_lwb;
953 	struct blkptr	*zgd_bp;
954 	dmu_buf_t	*zgd_db;
955 	struct rl	*zgd_rl;
956 	void		*zgd_private;
957 } zgd_t;
958 
959 typedef void dmu_sync_cb_t(zgd_t *arg, int error);
960 int dmu_sync(struct zio *zio, uint64_t txg, dmu_sync_cb_t *done, zgd_t *zgd);
961 
962 /*
963  * Find the next hole or data block in file starting at *off
964  * Return found offset in *off. Return ESRCH for end of file.
965  */
966 int dmu_offset_next(objset_t *os, uint64_t object, boolean_t hole,
967     uint64_t *off);
968 
969 /*
970  * Check if a DMU object has any dirty blocks. If so, sync out
971  * all pending transaction groups. Otherwise, this function
972  * does not alter DMU state. This could be improved to only sync
973  * out the necessary transaction groups for this particular
974  * object.
975  */
976 int dmu_object_wait_synced(objset_t *os, uint64_t object);
977 
978 /*
979  * Initial setup and final teardown.
980  */
981 extern void dmu_init(void);
982 extern void dmu_fini(void);
983 
984 typedef void (*dmu_traverse_cb_t)(objset_t *os, void *arg, struct blkptr *bp,
985     uint64_t object, uint64_t offset, int len);
986 void dmu_traverse_objset(objset_t *os, uint64_t txg_start,
987     dmu_traverse_cb_t cb, void *arg);
988 int dmu_diff(const char *tosnap_name, const char *fromsnap_name,
989     struct file *fp, offset_t *offp);
990 
991 /* CRC64 table */
992 #define	ZFS_CRC64_POLY	0xC96C5795D7870F42ULL	/* ECMA-182, reflected form */
993 extern uint64_t zfs_crc64_table[256];
994 
995 extern int zfs_mdcomp_disable;
996 
997 #ifdef	__cplusplus
998 }
999 #endif
1000 
1001 #endif	/* _SYS_DMU_H */
1002