xref: /freebsd/sys/contrib/openzfs/include/sys/spa.h (revision 2f10ffc003be396f3fc23cd2888023896560252b)
1 // SPDX-License-Identifier: CDDL-1.0
2 /*
3  * This file and its contents are supplied under the terms of the
4  * Common Development and Distribution License ("CDDL"), version 1.0.
5  * You may only use this file in accordance with the terms of version
6  * 1.0 of the CDDL.
7  *
8  * A full copy of the text of the CDDL should have accompanied this
9  * source.  A copy of the CDDL is also available via the Internet at
10  * https://opensource.org/license/CDDL-1.0.
11  */
12 /*
13  * Copyright (c) 2005, 2010, Oracle and/or its affiliates. All rights reserved.
14  * Copyright (c) 2011, 2024 by Delphix. All rights reserved.
15  * Copyright 2011 Nexenta Systems, Inc.  All rights reserved.
16  * Copyright (c) 2014 Spectra Logic Corporation, All rights reserved.
17  * Copyright 2013 Saso Kiselkov. All rights reserved.
18  * Copyright (c) 2014 Integros [integros.com]
19  * Copyright 2017 Joyent, Inc.
20  * Copyright (c) 2017, Intel Corporation.
21  * Copyright (c) 2019, Allan Jude
22  * Copyright (c) 2019, 2024-2026, Klara, Inc.
23  * Copyright (c) 2019, Datto Inc.
24  * Copyright (c) 2026, TrueNAS.
25  */
26 
27 #ifndef _SYS_SPA_H
28 #define	_SYS_SPA_H
29 
30 #include <sys/zfs_context.h>
31 #include <sys/avl.h>
32 #include <sys/kstat.h>
33 #include <sys/nvpair.h>
34 #include <sys/types.h>
35 #include <sys/fs/zfs.h>
36 #include <sys/spa_checksum.h>
37 #include <sys/dmu.h>
38 #include <sys/space_map.h>
39 #include <sys/bitops.h>
40 
41 #ifdef	__cplusplus
42 extern "C" {
43 #endif
44 
45 /*
46  * Forward references that lots of things need.
47  */
48 typedef struct brt_vdev brt_vdev_t;
49 typedef struct brt_dedup_shard brt_dedup_shard_t;
50 typedef struct spa spa_t;
51 typedef struct vdev vdev_t;
52 typedef struct metaslab metaslab_t;
53 typedef struct metaslab_group metaslab_group_t;
54 typedef struct metaslab_class metaslab_class_t;
55 typedef struct zio zio_t;
56 typedef struct zilog zilog_t;
57 typedef struct spa_aux_vdev spa_aux_vdev_t;
58 typedef struct zbookmark_phys zbookmark_phys_t;
59 typedef struct zbookmark_err_phys zbookmark_err_phys_t;
60 
61 struct bpobj;
62 struct bplist;
63 struct dsl_pool;
64 struct dsl_dataset;
65 struct dsl_crypto_params;
66 
67 /*
68  * Alignment Shift (ashift) is an immutable, internal top-level vdev property
69  * which can only be set at vdev creation time. Physical writes are always done
70  * according to it, which makes 2^ashift the smallest possible IO on a vdev.
71  *
72  * We currently allow values ranging from 512 bytes (2^9 = 512) to 64 KiB
73  * (2^16 = 65,536).
74  */
75 #define	ASHIFT_MIN		9
76 #define	ASHIFT_MAX		16
77 
78 /*
79  * Size of block to hold the configuration data (a packed nvlist)
80  */
81 #define	SPA_CONFIG_BLOCKSIZE	(1ULL << 14)
82 
83 /*
84  * The DVA size encodings for LSIZE and PSIZE support blocks up to 32MB.
85  * The ASIZE encoding should be at least 64 times larger (6 more bits)
86  * to support up to 4-way RAID-Z mirror mode with worst-case gang block
87  * overhead, three DVAs per bp, plus one more bit in case we do anything
88  * else that expands the ASIZE.
89  */
90 #define	SPA_LSIZEBITS		16	/* LSIZE up to 32M (2^16 * 512)	*/
91 #define	SPA_PSIZEBITS		16	/* PSIZE up to 32M (2^16 * 512)	*/
92 #define	SPA_ASIZEBITS		24	/* ASIZE up to 64 times larger	*/
93 
94 #define	SPA_COMPRESSBITS	7
95 #define	SPA_VDEVBITS		24
96 #define	SPA_COMPRESSMASK	((1U << SPA_COMPRESSBITS) - 1)
97 
98 /*
99  * All SPA data is represented by 128-bit data virtual addresses (DVAs).
100  * The members of the dva_t should be considered opaque outside the SPA.
101  */
102 typedef struct dva {
103 	uint64_t	dva_word[2];
104 } dva_t;
105 
106 
107 /*
108  * Some checksums/hashes need a 256-bit initialization salt. This salt is kept
109  * secret and is suitable for use in MAC algorithms as the key.
110  */
111 typedef struct zio_cksum_salt {
112 	uint8_t		zcs_bytes[32];
113 } zio_cksum_salt_t;
114 
115 /*
116  * Each block is described by its DVAs, time of birth, checksum, etc.
117  * The word-by-word, bit-by-bit layout of the blkptr is as follows:
118  *
119  *	64	56	48	40	32	24	16	8	0
120  *	+-------+-------+-------+-------+-------+-------+-------+-------+
121  * 0	|  pad  |	  vdev1         | pad   |	  ASIZE		|
122  *	+-------+-------+-------+-------+-------+-------+-------+-------+
123  * 1	|G|			 offset1				|
124  *	+-------+-------+-------+-------+-------+-------+-------+-------+
125  * 2	|  pad  |	  vdev2         | pad   |	  ASIZE		|
126  *	+-------+-------+-------+-------+-------+-------+-------+-------+
127  * 3	|G|			 offset2				|
128  *	+-------+-------+-------+-------+-------+-------+-------+-------+
129  * 4	|  pad  |	  vdev3         | pad   |	  ASIZE		|
130  *	+-------+-------+-------+-------+-------+-------+-------+-------+
131  * 5	|G|			 offset3				|
132  *	+-------+-------+-------+-------+-------+-------+-------+-------+
133  * 6	|BDX|lvl| type	| cksum |E| comp|    PSIZE	|     LSIZE	|
134  *	+-------+-------+-------+-------+-------+-------+-------+-------+
135  * 7	|R|			padding					|
136  *	+-------+-------+-------+-------+-------+-------+-------+-------+
137  * 8	|			padding					|
138  *	+-------+-------+-------+-------+-------+-------+-------+-------+
139  * 9	|			physical birth txg			|
140  *	+-------+-------+-------+-------+-------+-------+-------+-------+
141  * a	|			logical birth txg			|
142  *	+-------+-------+-------+-------+-------+-------+-------+-------+
143  * b	|			fill count				|
144  *	+-------+-------+-------+-------+-------+-------+-------+-------+
145  * c	|			checksum[0]				|
146  *	+-------+-------+-------+-------+-------+-------+-------+-------+
147  * d	|			checksum[1]				|
148  *	+-------+-------+-------+-------+-------+-------+-------+-------+
149  * e	|			checksum[2]				|
150  *	+-------+-------+-------+-------+-------+-------+-------+-------+
151  * f	|			checksum[3]				|
152  *	+-------+-------+-------+-------+-------+-------+-------+-------+
153  *
154  * Legend:
155  *
156  * vdev		virtual device ID
157  * offset	offset into virtual device
158  * LSIZE	logical size
159  * PSIZE	physical size (after compression)
160  * ASIZE	allocated size (including RAID-Z parity and gang block headers)
161  * cksum	checksum function
162  * comp		compression function
163  * G		gang block indicator
164  * B		byteorder (endianness)
165  * D		dedup
166  * X		encryption
167  * E		blkptr_t contains embedded data (see below)
168  * lvl		level of indirection
169  * type		DMU object type
170  * R		rewrite (reallocated/rewritten at phys birth TXG)
171  * phys birth	txg when dva[0] was written; zero if same as logical birth txg
172  *              note that typically all the dva's would be written in this
173  *              txg, but they could be different if they were moved by
174  *              device removal.
175  * log. birth	transaction group in which the block was logically born
176  * fill count	number of non-zero blocks under this bp
177  * checksum[4]	256-bit checksum of the data this bp describes
178  */
179 
180 /*
181  * The blkptr_t's of encrypted blocks also need to store the encryption
182  * parameters so that the block can be decrypted. This layout is as follows:
183  *
184  *	64	56	48	40	32	24	16	8	0
185  *	+-------+-------+-------+-------+-------+-------+-------+-------+
186  * 0	|  pad  |	  vdev1         | pad   |	  ASIZE		|
187  *	+-------+-------+-------+-------+-------+-------+-------+-------+
188  * 1	|G|			 offset1				|
189  *	+-------+-------+-------+-------+-------+-------+-------+-------+
190  * 2	|  pad  |	  vdev2         | pad   |	  ASIZE		|
191  *	+-------+-------+-------+-------+-------+-------+-------+-------+
192  * 3	|G|			 offset2				|
193  *	+-------+-------+-------+-------+-------+-------+-------+-------+
194  * 4	|			salt					|
195  *	+-------+-------+-------+-------+-------+-------+-------+-------+
196  * 5	|			IV1					|
197  *	+-------+-------+-------+-------+-------+-------+-------+-------+
198  * 6	|BDX|lvl| type	| cksum |E| comp|    PSIZE	|     LSIZE	|
199  *	+-------+-------+-------+-------+-------+-------+-------+-------+
200  * 7	|R|			padding					|
201  *	+-------+-------+-------+-------+-------+-------+-------+-------+
202  * 8	|			padding					|
203  *	+-------+-------+-------+-------+-------+-------+-------+-------+
204  * 9	|			physical birth txg			|
205  *	+-------+-------+-------+-------+-------+-------+-------+-------+
206  * a	|			logical birth txg			|
207  *	+-------+-------+-------+-------+-------+-------+-------+-------+
208  * b	|		IV2		|	    fill count		|
209  *	+-------+-------+-------+-------+-------+-------+-------+-------+
210  * c	|			checksum[0]				|
211  *	+-------+-------+-------+-------+-------+-------+-------+-------+
212  * d	|			checksum[1]				|
213  *	+-------+-------+-------+-------+-------+-------+-------+-------+
214  * e	|			MAC[0]					|
215  *	+-------+-------+-------+-------+-------+-------+-------+-------+
216  * f	|			MAC[1]					|
217  *	+-------+-------+-------+-------+-------+-------+-------+-------+
218  *
219  * Legend:
220  *
221  * salt		Salt for generating encryption keys
222  * IV1		First 64 bits of encryption IV
223  * X		Block requires encryption handling (set to 1)
224  * E		blkptr_t contains embedded data (set to 0, see below)
225  * fill count	number of non-zero blocks under this bp (truncated to 32 bits)
226  * IV2		Last 32 bits of encryption IV
227  * checksum[2]	128-bit checksum of the data this bp describes
228  * MAC[2]	128-bit message authentication code for this data
229  *
230  * The X bit being set indicates that this block is one of 3 types. If this is
231  * a level 0 block with an encrypted object type, the block is encrypted
232  * (see BP_IS_ENCRYPTED()). If this is a level 0 block with an unencrypted
233  * object type, this block is authenticated with an HMAC (see
234  * BP_IS_AUTHENTICATED()). Otherwise (if level > 0), this bp will use the MAC
235  * words to store a checksum-of-MACs from the level below (see
236  * BP_HAS_INDIRECT_MAC_CKSUM()). For convenience in the code, BP_IS_PROTECTED()
237  * refers to both encrypted and authenticated blocks and BP_USES_CRYPT()
238  * refers to any of these 3 kinds of blocks.
239  *
240  * The additional encryption parameters are the salt, IV, and MAC which are
241  * explained in greater detail in the block comment at the top of zio_crypt.c.
242  * The MAC occupies half of the checksum space since it serves a very similar
243  * purpose: to prevent data corruption on disk. The only functional difference
244  * is that the checksum is used to detect on-disk corruption whether or not the
245  * encryption key is loaded and the MAC provides additional protection against
246  * malicious disk tampering. We use the 3rd DVA to store the salt and first
247  * 64 bits of the IV. As a result encrypted blocks can only have 2 copies
248  * maximum instead of the normal 3. The last 32 bits of the IV are stored in
249  * the upper bits of what is usually the fill count. Note that only blocks at
250  * level 0 or -2 are ever encrypted, which allows us to guarantee that these
251  * 32 bits are not trampled over by other code (see zio_crypt.c for details).
252  * The salt and IV are not used for authenticated bps or bps with an indirect
253  * MAC checksum, so these blocks can utilize all 3 DVAs and the full 64 bits
254  * for the fill count.
255  */
256 
257 /*
258  * "Embedded" blkptr_t's don't actually point to a block, instead they
259  * have a data payload embedded in the blkptr_t itself.  See the comment
260  * in blkptr.c for more details.
261  *
262  * The blkptr_t is laid out as follows:
263  *
264  *	64	56	48	40	32	24	16	8	0
265  *	+-------+-------+-------+-------+-------+-------+-------+-------+
266  * 0	|      payload                                                  |
267  * 1	|      payload                                                  |
268  * 2	|      payload                                                  |
269  * 3	|      payload                                                  |
270  * 4	|      payload                                                  |
271  * 5	|      payload                                                  |
272  *	+-------+-------+-------+-------+-------+-------+-------+-------+
273  * 6	|BDX|lvl| type	| etype |E| comp| PSIZE|              LSIZE	|
274  *	+-------+-------+-------+-------+-------+-------+-------+-------+
275  * 7	|      payload                                                  |
276  * 8	|      payload                                                  |
277  * 9	|      payload                                                  |
278  *	+-------+-------+-------+-------+-------+-------+-------+-------+
279  * a	|			logical birth txg			|
280  *	+-------+-------+-------+-------+-------+-------+-------+-------+
281  * b	|      payload                                                  |
282  * c	|      payload                                                  |
283  * d	|      payload                                                  |
284  * e	|      payload                                                  |
285  * f	|      payload                                                  |
286  *	+-------+-------+-------+-------+-------+-------+-------+-------+
287  *
288  * Legend:
289  *
290  * payload		contains the embedded data
291  * B (byteorder)	byteorder (endianness)
292  * D (dedup)		padding (set to zero)
293  * X			encryption (set to zero)
294  * E (embedded)		set to one
295  * lvl			indirection level
296  * type			DMU object type
297  * etype		how to interpret embedded data (BP_EMBEDDED_TYPE_*)
298  * comp			compression function of payload
299  * PSIZE		size of payload after compression, in bytes
300  * LSIZE		logical size of payload, in bytes
301  *			note that 25 bits is enough to store the largest
302  *			"normal" BP's LSIZE (2^16 * 2^9) in bytes
303  * log. birth		transaction group in which the block was logically born
304  *
305  * Note that LSIZE and PSIZE are stored in bytes, whereas for non-embedded
306  * bp's they are stored in units of SPA_MINBLOCKSHIFT.
307  * Generally, the generic BP_GET_*() macros can be used on embedded BP's.
308  * The B, D, X, lvl, type, and comp fields are stored the same as with normal
309  * BP's so the BP_SET_* macros can be used with them.  etype, PSIZE, LSIZE must
310  * be set with the BPE_SET_* macros.  BP_SET_EMBEDDED() should be called before
311  * other macros, as they assert that they are only used on BP's of the correct
312  * "embedded-ness". Encrypted blkptr_t's cannot be embedded because they use
313  * the payload space for encryption parameters (see the comment above on
314  * how encryption parameters are stored).
315  */
316 
317 #define	BPE_GET_ETYPE(bp)	\
318 	(ASSERT(BP_IS_EMBEDDED(bp)), \
319 	BF64_GET((bp)->blk_prop, 40, 8))
320 #define	BPE_SET_ETYPE(bp, t)	do { \
321 	ASSERT(BP_IS_EMBEDDED(bp)); \
322 	BF64_SET((bp)->blk_prop, 40, 8, t); \
323 } while (0)
324 
325 #define	BPE_GET_LSIZE(bp)	\
326 	(ASSERT(BP_IS_EMBEDDED(bp)), \
327 	BF64_GET_SB((bp)->blk_prop, 0, 25, 0, 1))
328 #define	BPE_SET_LSIZE(bp, x)	do { \
329 	ASSERT(BP_IS_EMBEDDED(bp)); \
330 	BF64_SET_SB((bp)->blk_prop, 0, 25, 0, 1, x); \
331 } while (0)
332 
333 #define	BPE_GET_PSIZE(bp)	\
334 	(ASSERT(BP_IS_EMBEDDED(bp)), \
335 	BF64_GET_SB((bp)->blk_prop, 25, 7, 0, 1))
336 #define	BPE_SET_PSIZE(bp, x)	do { \
337 	ASSERT(BP_IS_EMBEDDED(bp)); \
338 	BF64_SET_SB((bp)->blk_prop, 25, 7, 0, 1, x); \
339 } while (0)
340 
341 typedef enum bp_embedded_type {
342 	BP_EMBEDDED_TYPE_DATA,
343 	BP_EMBEDDED_TYPE_RESERVED, /* Reserved for Delphix byteswap feature. */
344 	BP_EMBEDDED_TYPE_REDACTED,
345 	NUM_BP_EMBEDDED_TYPES
346 } bp_embedded_type_t;
347 
348 #define	BPE_NUM_WORDS 14
349 #define	BPE_PAYLOAD_SIZE (BPE_NUM_WORDS * sizeof (uint64_t))
350 #define	BPE_IS_PAYLOADWORD(bp, wp) \
351 	((wp) != &(bp)->blk_prop && (wp) != (&(bp)->blk_birth_word[1]))
352 
353 #define	SPA_BLKPTRSHIFT	7		/* blkptr_t is 128 bytes	*/
354 #define	SPA_DVAS_PER_BP	3		/* Number of DVAs in a bp	*/
355 #define	SPA_SYNC_MIN_VDEVS 3		/* min vdevs to update during sync */
356 
357 /*
358  * A block is a hole when it has either 1) never been written to, or
359  * 2) is zero-filled. In both cases, ZFS can return all zeroes for all reads
360  * without physically allocating disk space. Holes are represented in the
361  * blkptr_t structure by zeroed blk_dva. Correct checking for holes is
362  * done through the BP_IS_HOLE macro. For holes, the logical size, level,
363  * DMU object type, and birth times are all also stored for holes that
364  * were written to at some point (i.e. were punched after having been filled).
365  */
366 typedef struct blkptr {
367 	dva_t		blk_dva[SPA_DVAS_PER_BP]; /* Data Virtual Addresses */
368 	uint64_t	blk_prop;	/* size, compression, type, etc	    */
369 	uint64_t	blk_prop2;	/* additional properties	    */
370 	uint64_t	blk_pad;	/* Extra space for the future	    */
371 	uint64_t	blk_birth_word[2];
372 	uint64_t	blk_fill;	/* fill count			    */
373 	zio_cksum_t	blk_cksum;	/* 256-bit checksum		    */
374 } blkptr_t;
375 
376 /*
377  * Macros to get and set fields in a bp or DVA.
378  */
379 
380 /*
381  * Note, for gang blocks, DVA_GET_ASIZE() is the total space allocated for
382  * this gang DVA including its children BP's.  The space allocated at this
383  * DVA's vdev/offset is vdev_gang_header_asize(vdev).
384  */
385 #define	DVA_GET_ASIZE(dva)	\
386 	BF64_GET_SB((dva)->dva_word[0], 0, SPA_ASIZEBITS, SPA_MINBLOCKSHIFT, 0)
387 #define	DVA_SET_ASIZE(dva, x)	\
388 	BF64_SET_SB((dva)->dva_word[0], 0, SPA_ASIZEBITS, \
389 	SPA_MINBLOCKSHIFT, 0, x)
390 
391 #define	DVA_GET_VDEV(dva)	BF64_GET((dva)->dva_word[0], 32, SPA_VDEVBITS)
392 #define	DVA_SET_VDEV(dva, x)	\
393 	BF64_SET((dva)->dva_word[0], 32, SPA_VDEVBITS, x)
394 
395 #define	DVA_GET_OFFSET(dva)	\
396 	BF64_GET_SB((dva)->dva_word[1], 0, 63, SPA_MINBLOCKSHIFT, 0)
397 #define	DVA_SET_OFFSET(dva, x)	\
398 	BF64_SET_SB((dva)->dva_word[1], 0, 63, SPA_MINBLOCKSHIFT, 0, x)
399 
400 #define	DVA_GET_GANG(dva)	BF64_GET((dva)->dva_word[1], 63, 1)
401 #define	DVA_SET_GANG(dva, x)	BF64_SET((dva)->dva_word[1], 63, 1, x)
402 
403 #define	BP_GET_LSIZE(bp)	\
404 	(BP_IS_EMBEDDED(bp) ?	\
405 	(BPE_GET_ETYPE(bp) == BP_EMBEDDED_TYPE_DATA ? BPE_GET_LSIZE(bp) : 0): \
406 	BF64_GET_SB((bp)->blk_prop, 0, SPA_LSIZEBITS, SPA_MINBLOCKSHIFT, 1))
407 #define	BP_SET_LSIZE(bp, x)	do { \
408 	ASSERT(!BP_IS_EMBEDDED(bp)); \
409 	BF64_SET_SB((bp)->blk_prop, \
410 	    0, SPA_LSIZEBITS, SPA_MINBLOCKSHIFT, 1, x); \
411 } while (0)
412 
413 #define	BP_GET_PSIZE(bp)	\
414 	(BP_IS_EMBEDDED(bp) ? 0 : \
415 	BF64_GET_SB((bp)->blk_prop, 16, SPA_PSIZEBITS, SPA_MINBLOCKSHIFT, 1))
416 #define	BP_SET_PSIZE(bp, x)	do { \
417 	ASSERT(!BP_IS_EMBEDDED(bp)); \
418 	BF64_SET_SB((bp)->blk_prop, \
419 	    16, SPA_PSIZEBITS, SPA_MINBLOCKSHIFT, 1, x); \
420 } while (0)
421 
422 #define	BP_GET_COMPRESS(bp)		\
423 	BF64_GET((bp)->blk_prop, 32, SPA_COMPRESSBITS)
424 #define	BP_SET_COMPRESS(bp, x)		\
425 	BF64_SET((bp)->blk_prop, 32, SPA_COMPRESSBITS, x)
426 
427 #define	BP_IS_EMBEDDED(bp)		BF64_GET((bp)->blk_prop, 39, 1)
428 #define	BP_SET_EMBEDDED(bp, x)		BF64_SET((bp)->blk_prop, 39, 1, x)
429 
430 #define	BP_GET_CHECKSUM(bp)		\
431 	(BP_IS_EMBEDDED(bp) ? ZIO_CHECKSUM_OFF : \
432 	BF64_GET((bp)->blk_prop, 40, 8))
433 #define	BP_SET_CHECKSUM(bp, x)		do { \
434 	ASSERT(!BP_IS_EMBEDDED(bp)); \
435 	BF64_SET((bp)->blk_prop, 40, 8, x); \
436 } while (0)
437 
438 #define	BP_GET_TYPE(bp)			BF64_GET((bp)->blk_prop, 48, 8)
439 #define	BP_SET_TYPE(bp, x)		BF64_SET((bp)->blk_prop, 48, 8, x)
440 
441 #define	BP_GET_LEVEL(bp)		BF64_GET((bp)->blk_prop, 56, 5)
442 #define	BP_SET_LEVEL(bp, x)		BF64_SET((bp)->blk_prop, 56, 5, x)
443 
444 /* encrypted, authenticated, and MAC cksum bps use the same bit */
445 #define	BP_USES_CRYPT(bp)		BF64_GET((bp)->blk_prop, 61, 1)
446 #define	BP_SET_CRYPT(bp, x)		BF64_SET((bp)->blk_prop, 61, 1, x)
447 
448 #define	BP_IS_ENCRYPTED(bp)			\
449 	(BP_USES_CRYPT(bp) &&			\
450 	BP_GET_LEVEL(bp) <= 0 &&		\
451 	DMU_OT_IS_ENCRYPTED(BP_GET_TYPE(bp)))
452 
453 #define	BP_IS_AUTHENTICATED(bp)			\
454 	(BP_USES_CRYPT(bp) &&			\
455 	BP_GET_LEVEL(bp) <= 0 &&		\
456 	!DMU_OT_IS_ENCRYPTED(BP_GET_TYPE(bp)))
457 
458 #define	BP_HAS_INDIRECT_MAC_CKSUM(bp)		\
459 	(BP_USES_CRYPT(bp) && BP_GET_LEVEL(bp) > 0)
460 
461 #define	BP_IS_PROTECTED(bp)			\
462 	(BP_IS_ENCRYPTED(bp) || BP_IS_AUTHENTICATED(bp))
463 
464 #define	BP_GET_DEDUP(bp)		BF64_GET((bp)->blk_prop, 62, 1)
465 #define	BP_SET_DEDUP(bp, x)		BF64_SET((bp)->blk_prop, 62, 1, x)
466 
467 #define	BP_GET_BYTEORDER(bp)		BF64_GET((bp)->blk_prop, 63, 1)
468 #define	BP_SET_BYTEORDER(bp, x)		BF64_SET((bp)->blk_prop, 63, 1, x)
469 
470 #define	BP_GET_FREE(bp)			BF64_GET((bp)->blk_fill, 0, 1)
471 #define	BP_SET_FREE(bp, x)		BF64_SET((bp)->blk_fill, 0, 1, x)
472 
473 /*
474  * Block birth time macros for different use cases:
475  * - BP_GET_LOGICAL_BIRTH(): When the block was logically modified by user.
476  *   To be used with a focus on user data, like incremental replication.
477  * - BP_GET_PHYSICAL_BIRTH(): When the block was physically written to disks.
478  *   For regular writes is equal to logical birth.  For dedup and block cloning
479  *   can be smaller than logical birth.  For remapped and rewritten blocks can
480  *   be bigger. To be used with focus on physical disk content: ARC, DDT, scrub.
481  * - BP_GET_RAW_PHYSICAL_BIRTH(): Raw physical birth value.  Zero if equal
482  *   to logical birth.  Should only be used for BP copying and debugging.
483  * - BP_GET_BIRTH(): When the block was allocated, which is a physical birth
484  *   for rewritten blocks (rewrite flag set) or logical birth otherwise.
485  */
486 #define	BP_GET_LOGICAL_BIRTH(bp)	(bp)->blk_birth_word[1]
487 #define	BP_SET_LOGICAL_BIRTH(bp, x)	((bp)->blk_birth_word[1] = (x))
488 
489 #define	BP_GET_RAW_PHYSICAL_BIRTH(bp)	(bp)->blk_birth_word[0]
490 #define	BP_SET_PHYSICAL_BIRTH(bp, x)	((bp)->blk_birth_word[0] = (x))
491 
492 #define	BP_GET_PHYSICAL_BIRTH(bp)					\
493 	(BP_IS_EMBEDDED(bp) ? 0 : 					\
494 	BP_GET_RAW_PHYSICAL_BIRTH(bp) ? BP_GET_RAW_PHYSICAL_BIRTH(bp) :	\
495 	BP_GET_LOGICAL_BIRTH(bp))
496 
497 #define	BP_GET_BIRTH(bp)					\
498 	((BP_IS_EMBEDDED(bp) || !BP_GET_REWRITE(bp)) ?		\
499 	BP_GET_LOGICAL_BIRTH(bp) : BP_GET_PHYSICAL_BIRTH(bp))
500 
501 #define	BP_SET_BIRTH(bp, logical, physical)			\
502 {								\
503 	ASSERT(!BP_IS_EMBEDDED(bp));				\
504 	BP_SET_LOGICAL_BIRTH(bp, logical);			\
505 	BP_SET_PHYSICAL_BIRTH(bp, 				\
506 	    ((logical) == (physical) ? 0 : (physical)));	\
507 }
508 
509 #define	BP_GET_FILL(bp)				\
510 	(BP_IS_EMBEDDED(bp) ? 1 : 			\
511 	BP_IS_ENCRYPTED(bp) ? BF64_GET((bp)->blk_fill, 0, 32) : \
512 	(bp)->blk_fill)
513 
514 #define	BP_SET_FILL(bp, fill)			\
515 {						\
516 	ASSERT(!BP_IS_EMBEDDED(bp));		\
517 	if (BP_IS_ENCRYPTED(bp))		\
518 		BF64_SET((bp)->blk_fill, 0, 32, fill); \
519 	else					\
520 		(bp)->blk_fill = fill;		\
521 }
522 
523 #define	BP_GET_IV2(bp)				\
524 	(ASSERT(BP_IS_ENCRYPTED(bp)),		\
525 	BF64_GET((bp)->blk_fill, 32, 32))
526 #define	BP_SET_IV2(bp, iv2)			\
527 {						\
528 	ASSERT(BP_IS_ENCRYPTED(bp));		\
529 	BF64_SET((bp)->blk_fill, 32, 32, iv2);	\
530 }
531 
532 #define	BP_GET_REWRITE(bp)			\
533 	(BP_IS_EMBEDDED(bp) ? 0 : BF64_GET((bp)->blk_prop2, 63, 1))
534 
535 #define	BP_SET_REWRITE(bp, x)			\
536 {						\
537 	ASSERT(!BP_IS_EMBEDDED(bp));		\
538 	BF64_SET((bp)->blk_prop2, 63, 1, x);	\
539 }
540 
541 #define	BP_IS_METADATA(bp)	\
542 	(BP_GET_LEVEL(bp) > 0 || DMU_OT_IS_METADATA(BP_GET_TYPE(bp)))
543 
544 #define	BP_GET_ASIZE(bp)	\
545 	(BP_IS_EMBEDDED(bp) ? 0 : \
546 	DVA_GET_ASIZE(&(bp)->blk_dva[0]) + \
547 	DVA_GET_ASIZE(&(bp)->blk_dva[1]) + \
548 	(DVA_GET_ASIZE(&(bp)->blk_dva[2]) * !BP_IS_ENCRYPTED(bp)))
549 
550 #define	BP_GET_UCSIZE(bp)	\
551 	(BP_IS_METADATA(bp) ? BP_GET_PSIZE(bp) : BP_GET_LSIZE(bp))
552 
553 #define	BP_GET_NDVAS(bp)	\
554 	(BP_IS_EMBEDDED(bp) ? 0 : \
555 	!!DVA_GET_ASIZE(&(bp)->blk_dva[0]) + \
556 	!!DVA_GET_ASIZE(&(bp)->blk_dva[1]) + \
557 	(!!DVA_GET_ASIZE(&(bp)->blk_dva[2]) * !BP_IS_ENCRYPTED(bp)))
558 
559 #define	BP_COUNT_GANG(bp)	\
560 	(BP_IS_EMBEDDED(bp) ? 0 : \
561 	(DVA_GET_GANG(&(bp)->blk_dva[0]) + \
562 	DVA_GET_GANG(&(bp)->blk_dva[1]) + \
563 	(DVA_GET_GANG(&(bp)->blk_dva[2]) * !BP_IS_ENCRYPTED(bp))))
564 
565 #define	DVA_EQUAL(dva1, dva2)	\
566 	((dva1)->dva_word[1] == (dva2)->dva_word[1] && \
567 	(dva1)->dva_word[0] == (dva2)->dva_word[0])
568 
569 #define	BP_EQUAL(bp1, bp2)	\
570 	(BP_GET_PHYSICAL_BIRTH(bp1) == BP_GET_PHYSICAL_BIRTH(bp2) &&	\
571 	BP_GET_LOGICAL_BIRTH(bp1) == BP_GET_LOGICAL_BIRTH(bp2) &&	\
572 	DVA_EQUAL(&(bp1)->blk_dva[0], &(bp2)->blk_dva[0]) &&	\
573 	DVA_EQUAL(&(bp1)->blk_dva[1], &(bp2)->blk_dva[1]) &&	\
574 	DVA_EQUAL(&(bp1)->blk_dva[2], &(bp2)->blk_dva[2]))
575 
576 
577 #define	DVA_IS_VALID(dva)	(DVA_GET_ASIZE(dva) != 0)
578 
579 #define	BP_IDENTITY(bp)		(ASSERT(!BP_IS_EMBEDDED(bp)), &(bp)->blk_dva[0])
580 #define	BP_IS_GANG(bp)		\
581 	(BP_IS_EMBEDDED(bp) ? B_FALSE : DVA_GET_GANG(BP_IDENTITY(bp)))
582 #define	DVA_IS_EMPTY(dva)	((dva)->dva_word[0] == 0ULL &&	\
583 				(dva)->dva_word[1] == 0ULL)
584 #define	BP_IS_HOLE(bp) \
585 	(!BP_IS_EMBEDDED(bp) && DVA_IS_EMPTY(BP_IDENTITY(bp)))
586 
587 #define	BP_SET_REDACTED(bp) \
588 {							\
589 	BP_SET_EMBEDDED(bp, B_TRUE);			\
590 	BPE_SET_ETYPE(bp, BP_EMBEDDED_TYPE_REDACTED);	\
591 }
592 #define	BP_IS_REDACTED(bp) \
593 	(BP_IS_EMBEDDED(bp) && BPE_GET_ETYPE(bp) == BP_EMBEDDED_TYPE_REDACTED)
594 
595 /* BP_IS_RAIDZ(bp) assumes no block compression */
596 #define	BP_IS_RAIDZ(bp)		(DVA_GET_ASIZE(&(bp)->blk_dva[0]) > \
597 				BP_GET_PSIZE(bp))
598 
599 #define	BP_ZERO_DVAS(bp)			\
600 {						\
601 	(bp)->blk_dva[0].dva_word[0] = 0;	\
602 	(bp)->blk_dva[0].dva_word[1] = 0;	\
603 	(bp)->blk_dva[1].dva_word[0] = 0;	\
604 	(bp)->blk_dva[1].dva_word[1] = 0;	\
605 	(bp)->blk_dva[2].dva_word[0] = 0;	\
606 	(bp)->blk_dva[2].dva_word[1] = 0;	\
607 }
608 
609 #define	BP_ZERO(bp)				\
610 {						\
611 	BP_ZERO_DVAS(bp);			\
612 	(bp)->blk_prop = 0;			\
613 	(bp)->blk_prop2 = 0;			\
614 	(bp)->blk_pad = 0;			\
615 	(bp)->blk_birth_word[0] = 0;		\
616 	(bp)->blk_birth_word[1] = 0;		\
617 	(bp)->blk_fill = 0;			\
618 	ZIO_SET_CHECKSUM(&(bp)->blk_cksum, 0, 0, 0, 0);	\
619 }
620 
621 #ifdef _ZFS_BIG_ENDIAN
622 #define	ZFS_HOST_BYTEORDER	(0ULL)
623 #else
624 #define	ZFS_HOST_BYTEORDER	(1ULL)
625 #endif
626 
627 #define	BP_SHOULD_BYTESWAP(bp)	(BP_GET_BYTEORDER(bp) != ZFS_HOST_BYTEORDER)
628 
629 #define	BP_SPRINTF_LEN	400
630 
631 /*
632  * This macro allows code sharing between zfs, libzpool, and mdb.
633  * 'func' is either kmem_scnprintf() or mdb_snprintf().
634  * 'ws' (whitespace) can be ' ' for single-line format, '\n' for multi-line.
635  */
636 
637 #define	SNPRINTF_BLKPTR(func, ws, buf, size, bp, type, checksum, compress) \
638 {									\
639 	static const char *const copyname[] =				\
640 	    { "zero", "single", "double", "triple" };			\
641 	int len = 0;							\
642 	int copies = 0;							\
643 	const char *crypt_type;						\
644 	if (bp != NULL) {						\
645 		if (BP_IS_ENCRYPTED(bp)) {				\
646 			crypt_type = "encrypted";			\
647 			/* LINTED E_SUSPICIOUS_COMPARISON */		\
648 		} else if (BP_IS_AUTHENTICATED(bp)) {			\
649 			crypt_type = "authenticated";			\
650 		} else if (BP_HAS_INDIRECT_MAC_CKSUM(bp)) {		\
651 			crypt_type = "indirect-MAC";			\
652 		} else {						\
653 			crypt_type = "unencrypted";			\
654 		}							\
655 	}								\
656 	if (bp == NULL) {						\
657 		len += func(buf + len, size - len, "<NULL>");		\
658 	} else if (BP_IS_HOLE(bp)) {					\
659 		len += func(buf + len, size - len,			\
660 		    "HOLE [L%llu %s] "					\
661 		    "size=%llxL birth=%lluL",				\
662 		    (u_longlong_t)BP_GET_LEVEL(bp),			\
663 		    type,						\
664 		    (u_longlong_t)BP_GET_LSIZE(bp),			\
665 		    (u_longlong_t)BP_GET_LOGICAL_BIRTH(bp));		\
666 	} else if (BP_IS_EMBEDDED(bp)) {				\
667 		len = func(buf + len, size - len,			\
668 		    "EMBEDDED [L%llu %s] et=%u %s "			\
669 		    "size=%llxL/%llxP birth=%lluL",			\
670 		    (u_longlong_t)BP_GET_LEVEL(bp),			\
671 		    type,						\
672 		    (int)BPE_GET_ETYPE(bp),				\
673 		    compress,						\
674 		    (u_longlong_t)BPE_GET_LSIZE(bp),			\
675 		    (u_longlong_t)BPE_GET_PSIZE(bp),			\
676 		    (u_longlong_t)BP_GET_LOGICAL_BIRTH(bp));		\
677 	} else if (BP_IS_REDACTED(bp)) {				\
678 		len += func(buf + len, size - len,			\
679 		    "REDACTED [L%llu %s] size=%llxL birth=%lluL",	\
680 		    (u_longlong_t)BP_GET_LEVEL(bp),			\
681 		    type,						\
682 		    (u_longlong_t)BP_GET_LSIZE(bp),			\
683 		    (u_longlong_t)BP_GET_LOGICAL_BIRTH(bp));		\
684 	} else {							\
685 		for (int d = 0; d < BP_GET_NDVAS(bp); d++) {		\
686 			const dva_t *dva = &bp->blk_dva[d];		\
687 			if (DVA_IS_VALID(dva))				\
688 				copies++;				\
689 			len += func(buf + len, size - len,		\
690 			    "DVA[%d]=<%llu:%llx:%llx>%c", d,		\
691 			    (u_longlong_t)DVA_GET_VDEV(dva),		\
692 			    (u_longlong_t)DVA_GET_OFFSET(dva),		\
693 			    (u_longlong_t)DVA_GET_ASIZE(dva),		\
694 			    ws);					\
695 		}							\
696 		if (BP_IS_ENCRYPTED(bp)) {				\
697 			len += func(buf + len, size - len,		\
698 			    "salt=%llx iv=%llx:%llx%c",			\
699 			    (u_longlong_t)bp->blk_dva[2].dva_word[0],	\
700 			    (u_longlong_t)bp->blk_dva[2].dva_word[1],	\
701 			    (u_longlong_t)BP_GET_IV2(bp),		\
702 			    ws);					\
703 		}							\
704 		len += func(buf + len, size - len,			\
705 		    "[L%llu %s] %s %s %s %s %s %s %s%c"			\
706 		    "size=%llxL/%llxP birth=%lluL/%lluP fill=%llu%c"	\
707 		    "cksum=%016llx:%016llx:%016llx:%016llx",		\
708 		    (u_longlong_t)BP_GET_LEVEL(bp),			\
709 		    type,						\
710 		    checksum,						\
711 		    compress,						\
712 		    crypt_type,						\
713 		    BP_GET_BYTEORDER(bp) == 0 ? "BE" : "LE",		\
714 		    BP_IS_GANG(bp) ? "gang" : "contiguous",		\
715 		    BP_GET_DEDUP(bp) ? "dedup" : "unique",		\
716 		    copyname[copies],					\
717 		    ws,							\
718 		    (u_longlong_t)BP_GET_LSIZE(bp),			\
719 		    (u_longlong_t)BP_GET_PSIZE(bp),			\
720 		    (u_longlong_t)BP_GET_LOGICAL_BIRTH(bp),		\
721 		    (u_longlong_t)BP_GET_PHYSICAL_BIRTH(bp),		\
722 		    (u_longlong_t)BP_GET_FILL(bp),			\
723 		    ws,							\
724 		    (u_longlong_t)bp->blk_cksum.zc_word[0],		\
725 		    (u_longlong_t)bp->blk_cksum.zc_word[1],		\
726 		    (u_longlong_t)bp->blk_cksum.zc_word[2],		\
727 		    (u_longlong_t)bp->blk_cksum.zc_word[3]);		\
728 	}								\
729 	ASSERT(len < size);						\
730 }
731 
732 #define	BP_GET_BUFC_TYPE(bp)						\
733 	(BP_IS_METADATA(bp) ? ARC_BUFC_METADATA : ARC_BUFC_DATA)
734 
735 typedef enum spa_import_type {
736 	SPA_IMPORT_EXISTING,
737 	SPA_IMPORT_ASSEMBLE
738 } spa_import_type_t;
739 
740 typedef enum spa_mode {
741 	SPA_MODE_UNINIT = 0,
742 	SPA_MODE_READ = 1,
743 	SPA_MODE_WRITE = 2,
744 } spa_mode_t;
745 
746 /*
747  * Send TRIM commands in-line during normal pool operation while deleting.
748  *	OFF: no
749  *	ON: yes
750  */
751 typedef enum {
752 	SPA_AUTOTRIM_OFF = 0,	/* default */
753 	SPA_AUTOTRIM_ON,
754 } spa_autotrim_t;
755 
756 /*
757  * Reason TRIM command was issued, used internally for accounting purposes.
758  */
759 typedef enum trim_type {
760 	TRIM_TYPE_MANUAL = 0,
761 	TRIM_TYPE_AUTO = 1,
762 	TRIM_TYPE_SIMPLE = 2
763 } trim_type_t;
764 
765 /* state manipulation functions */
766 extern int spa_open(const char *pool, spa_t **, const void *tag);
767 extern int spa_open_rewind(const char *pool, spa_t **, const void *tag,
768     nvlist_t *policy, nvlist_t **config);
769 extern int spa_get_stats(const char *pool, nvlist_t **config, char *altroot,
770     size_t buflen);
771 extern int spa_create(const char *pool, nvlist_t *nvroot, nvlist_t *props,
772     nvlist_t *zplprops, struct dsl_crypto_params *dcp, nvlist_t **errinfo);
773 extern int spa_import(char *pool, nvlist_t *config, nvlist_t *props,
774     uint64_t flags);
775 extern nvlist_t *spa_tryimport(nvlist_t *tryconfig);
776 extern int spa_destroy(const char *pool);
777 extern int spa_checkpoint(const char *pool);
778 extern int spa_checkpoint_discard(const char *pool);
779 extern int spa_export(const char *pool, nvlist_t **oldconfig, boolean_t force,
780     boolean_t hardforce);
781 extern int spa_reset(const char *pool);
782 extern void spa_async_request(spa_t *spa, int flag);
783 extern void spa_async_unrequest(spa_t *spa, int flag);
784 extern void spa_async_suspend(spa_t *spa);
785 extern void spa_async_resume(spa_t *spa);
786 extern int spa_async_tasks(spa_t *spa);
787 extern spa_t *spa_inject_addref(char *pool);
788 extern void spa_inject_delref(spa_t *spa);
789 extern void spa_scan_stat_init(spa_t *spa);
790 extern int spa_scan_get_stats(spa_t *spa, pool_scan_stat_t *ps);
791 extern int bpobj_enqueue_alloc_cb(void *arg, const blkptr_t *bp, dmu_tx_t *tx);
792 extern int bpobj_enqueue_free_cb(void *arg, const blkptr_t *bp, dmu_tx_t *tx);
793 
794 #define	SPA_ASYNC_CONFIG_UPDATE			0x01
795 #define	SPA_ASYNC_REMOVE			0x02
796 #define	SPA_ASYNC_FAULT_VDEV			0x04
797 #define	SPA_ASYNC_RESILVER_DONE			0x08
798 #define	SPA_ASYNC_RESILVER			0x10
799 #define	SPA_ASYNC_AUTOEXPAND			0x20
800 #define	SPA_ASYNC_REMOVE_DONE			0x40
801 #define	SPA_ASYNC_REMOVE_STOP			0x80
802 #define	SPA_ASYNC_INITIALIZE_RESTART		0x100
803 #define	SPA_ASYNC_TRIM_RESTART			0x200
804 #define	SPA_ASYNC_AUTOTRIM_RESTART		0x400
805 #define	SPA_ASYNC_L2CACHE_REBUILD		0x800
806 #define	SPA_ASYNC_L2CACHE_TRIM			0x1000
807 #define	SPA_ASYNC_REBUILD_DONE			0x2000
808 #define	SPA_ASYNC_DETACH_SPARE			0x4000
809 #define	SPA_ASYNC_REMOVE_BY_USER		0x8000
810 #define	SPA_ASYNC_DEFER_DESTROY			0x10000
811 
812 /* device manipulation */
813 extern int spa_vdev_add(spa_t *spa, nvlist_t *nvroot, boolean_t ashift_check);
814 extern int spa_vdev_attach(spa_t *spa, uint64_t guid, nvlist_t *nvroot,
815     int replacing, int rebuild);
816 extern int spa_vdev_detach(spa_t *spa, uint64_t guid, uint64_t pguid,
817     int replace_done);
818 extern int spa_vdev_alloc(spa_t *spa, uint64_t guid);
819 extern int spa_vdev_noalloc(spa_t *spa, uint64_t guid);
820 extern boolean_t spa_vdev_remove_active(spa_t *spa);
821 extern int spa_vdev_initialize(spa_t *spa, nvlist_t *nv, uint64_t cmd_type,
822     uint64_t value, boolean_t value_provided, nvlist_t *vdev_errlist);
823 extern int spa_vdev_trim(spa_t *spa, nvlist_t *nv, uint64_t cmd_type,
824     uint64_t rate, boolean_t partial, boolean_t secure, nvlist_t *vdev_errlist);
825 extern int spa_vdev_setpath(spa_t *spa, uint64_t guid, const char *newpath);
826 extern int spa_vdev_setfru(spa_t *spa, uint64_t guid, const char *newfru);
827 extern int spa_vdev_split_mirror(spa_t *spa, const char *newname,
828     nvlist_t *config, nvlist_t *props, boolean_t exp);
829 
830 /* spare state (which is global across all pools) */
831 extern void spa_spare_add(vdev_t *vd);
832 extern void spa_spare_remove(vdev_t *vd);
833 extern boolean_t spa_spare_exists(uint64_t guid, uint64_t *pool, int *refcnt);
834 extern void spa_spare_activate(vdev_t *vd);
835 
836 /* L2ARC state (which is global across all pools) */
837 extern void spa_l2cache_add(vdev_t *vd);
838 extern void spa_l2cache_remove(vdev_t *vd);
839 extern boolean_t spa_l2cache_exists(uint64_t guid, uint64_t *pool);
840 extern void spa_l2cache_activate(vdev_t *vd);
841 extern void spa_l2cache_drop(spa_t *spa);
842 
843 /* scanning */
844 extern int spa_scan(spa_t *spa, pool_scan_func_t func,
845     pool_scrub_flags_t flags);
846 extern int spa_scan_range(spa_t *spa, pool_scan_func_t func, uint64_t txgstart,
847     uint64_t txgend, pool_scrub_flags_t flags);
848 extern int spa_scan_stop(spa_t *spa);
849 extern int spa_scrub_pause_resume(spa_t *spa, pool_scrub_cmd_t flag);
850 
851 /* spa syncing */
852 extern void spa_sync(spa_t *spa, uint64_t txg); /* only for DMU use */
853 extern void spa_sync_allpools(void);
854 
855 extern uint_t zfs_sync_pass_deferred_free;
856 
857 /* spa sync taskqueues */
858 taskq_t *spa_sync_tq_create(spa_t *spa, const char *name);
859 void spa_sync_tq_destroy(spa_t *spa);
860 uint_t spa_acq_allocator(spa_t *spa);
861 void spa_rel_allocator(spa_t *spa, uint_t allocator);
862 void spa_select_allocator(zio_t *zio);
863 
864 /* spa namespace global lock */
865 extern void spa_namespace_enter(const void *tag);
866 extern boolean_t spa_namespace_tryenter(const void *tag);
867 extern int spa_namespace_enter_interruptible(const void *tag);
868 extern void spa_namespace_exit(const void *tag);
869 extern boolean_t spa_namespace_held(void);
870 extern void spa_namespace_wait(void);
871 extern void spa_namespace_broadcast(void);
872 
873 /*
874  * SPA configuration functions in spa_config.c
875  */
876 
877 #define	SPA_CONFIG_UPDATE_POOL	0
878 #define	SPA_CONFIG_UPDATE_VDEVS	1
879 
880 extern void spa_write_cachefile(spa_t *, boolean_t, boolean_t, boolean_t);
881 extern int spa_all_configs(uint64_t *generation, nvlist_t **pools);
882 extern void spa_config_set(spa_t *spa, nvlist_t *config);
883 extern nvlist_t *spa_config_generate(spa_t *spa, vdev_t *vd, uint64_t txg,
884     int getstats);
885 extern void spa_config_update(spa_t *spa, int what);
886 extern int spa_config_parse(spa_t *spa, vdev_t **vdp, nvlist_t *nv,
887     vdev_t *parent, uint_t id, int atype);
888 
889 
890 /*
891  * Miscellaneous SPA routines in spa_misc.c
892  */
893 
894 /* Namespace manipulation */
895 extern spa_t *spa_lookup(const char *name);
896 extern spa_t *spa_add(const char *name, nvlist_t *config, const char *altroot);
897 extern void spa_remove(spa_t *spa);
898 extern spa_t *spa_next(spa_t *prev);
899 
900 /* Refcount functions */
901 extern void spa_open_ref(spa_t *spa, const void *tag);
902 extern void spa_close(spa_t *spa, const void *tag);
903 extern void spa_async_close(spa_t *spa, const void *tag);
904 extern boolean_t spa_refcount_zero(spa_t *spa);
905 
906 #define	SCL_NONE	0x00
907 #define	SCL_CONFIG	0x01
908 #define	SCL_STATE	0x02
909 #define	SCL_L2ARC	0x04		/* hack until L2ARC 2.0 */
910 #define	SCL_ALLOC	0x08
911 #define	SCL_ZIO		0x10
912 #define	SCL_FREE	0x20
913 #define	SCL_VDEV	0x40
914 #define	SCL_LOCKS	7
915 #define	SCL_ALL		((1 << SCL_LOCKS) - 1)
916 #define	SCL_STATE_ALL	(SCL_STATE | SCL_L2ARC | SCL_ZIO)
917 
918 /* Historical pool statistics */
919 typedef struct spa_history_kstat {
920 	kmutex_t		lock;
921 	uint64_t		count;
922 	uint64_t		size;
923 	kstat_t			*kstat;
924 	void			*priv;
925 	list_t			list;
926 } spa_history_kstat_t;
927 
928 typedef struct spa_history_list {
929 	uint64_t		size;
930 	procfs_list_t		procfs_list;
931 } spa_history_list_t;
932 
933 typedef struct spa_stats {
934 	spa_history_list_t	read_history;
935 	spa_history_list_t	txg_history;
936 	spa_history_kstat_t	tx_assign_histogram;
937 	spa_history_list_t	mmp_history;
938 	spa_history_kstat_t	state;		/* pool state */
939 	spa_history_kstat_t	guid;		/* pool guid */
940 	spa_history_kstat_t	iostats;
941 	spa_history_kstat_t	log_spacemaps;
942 } spa_stats_t;
943 
944 typedef enum txg_state {
945 	TXG_STATE_BIRTH		= 0,
946 	TXG_STATE_OPEN		= 1,
947 	TXG_STATE_QUIESCED	= 2,
948 	TXG_STATE_WAIT_FOR_SYNC	= 3,
949 	TXG_STATE_SYNCED	= 4,
950 	TXG_STATE_COMMITTED	= 5,
951 } txg_state_t;
952 
953 typedef struct txg_stat {
954 	vdev_stat_t		vs1;
955 	vdev_stat_t		vs2;
956 	uint64_t		txg;
957 	uint64_t		ndirty;
958 } txg_stat_t;
959 
960 /* Assorted pool IO kstats */
961 typedef struct spa_iostats {
962 	kstat_named_t	trim_extents_written;
963 	kstat_named_t	trim_bytes_written;
964 	kstat_named_t	trim_extents_skipped;
965 	kstat_named_t	trim_bytes_skipped;
966 	kstat_named_t	trim_extents_failed;
967 	kstat_named_t	trim_bytes_failed;
968 	kstat_named_t	autotrim_extents_written;
969 	kstat_named_t	autotrim_bytes_written;
970 	kstat_named_t	autotrim_extents_skipped;
971 	kstat_named_t	autotrim_bytes_skipped;
972 	kstat_named_t	autotrim_extents_failed;
973 	kstat_named_t	autotrim_bytes_failed;
974 	kstat_named_t	simple_trim_extents_written;
975 	kstat_named_t	simple_trim_bytes_written;
976 	kstat_named_t	simple_trim_extents_skipped;
977 	kstat_named_t	simple_trim_bytes_skipped;
978 	kstat_named_t	simple_trim_extents_failed;
979 	kstat_named_t	simple_trim_bytes_failed;
980 	kstat_named_t	arc_read_count;
981 	kstat_named_t	arc_read_bytes;
982 	kstat_named_t	arc_write_count;
983 	kstat_named_t	arc_write_bytes;
984 	kstat_named_t	direct_read_count;
985 	kstat_named_t	direct_read_bytes;
986 	kstat_named_t	direct_write_count;
987 	kstat_named_t	direct_write_bytes;
988 } spa_iostats_t;
989 
990 extern void spa_stats_init(spa_t *spa);
991 extern void spa_stats_destroy(spa_t *spa);
992 extern void spa_read_history_add(spa_t *spa, const zbookmark_phys_t *zb,
993     uint32_t aflags);
994 extern void spa_txg_history_add(spa_t *spa, uint64_t txg, hrtime_t birth_time);
995 extern int spa_txg_history_set(spa_t *spa,  uint64_t txg,
996     txg_state_t completed_state, hrtime_t completed_time);
997 extern txg_stat_t *spa_txg_history_init_io(spa_t *, uint64_t,
998     struct dsl_pool *);
999 extern void spa_txg_history_fini_io(spa_t *, txg_stat_t *);
1000 extern void spa_tx_assign_add_nsecs(spa_t *spa, uint64_t nsecs);
1001 extern int spa_mmp_history_set_skip(spa_t *spa, uint64_t mmp_kstat_id);
1002 extern int spa_mmp_history_set(spa_t *spa, uint64_t mmp_kstat_id, int io_error,
1003     hrtime_t duration);
1004 extern void spa_mmp_history_add(spa_t *spa, uint64_t txg, uint64_t timestamp,
1005     uint64_t mmp_delay, vdev_t *vd, int label, uint64_t mmp_kstat_id,
1006     int error);
1007 extern void spa_iostats_trim_add(spa_t *spa, trim_type_t type,
1008     uint64_t extents_written, uint64_t bytes_written,
1009     uint64_t extents_skipped, uint64_t bytes_skipped,
1010     uint64_t extents_failed, uint64_t bytes_failed);
1011 extern void spa_iostats_read_add(spa_t *spa, uint64_t size, uint64_t iops,
1012     dmu_flags_t flags);
1013 extern void spa_iostats_write_add(spa_t *spa, uint64_t size, uint64_t iops,
1014     dmu_flags_t flags);
1015 extern void spa_import_progress_add(spa_t *spa);
1016 extern void spa_import_progress_remove(uint64_t spa_guid);
1017 extern int spa_import_progress_set_mmp_check(uint64_t pool_guid,
1018     uint64_t mmp_sec_remaining);
1019 extern int spa_import_progress_set_max_txg(uint64_t pool_guid,
1020     uint64_t max_txg);
1021 extern int spa_import_progress_set_state(uint64_t pool_guid,
1022     spa_load_state_t spa_load_state);
1023 extern void spa_import_progress_set_notes(spa_t *spa,
1024     const char *fmt, ...) __printflike(2, 3);
1025 extern void spa_import_progress_set_notes_nolog(spa_t *spa,
1026     const char *fmt, ...) __printflike(2, 3);
1027 
1028 /* Pool configuration locks */
1029 extern int spa_config_tryenter(spa_t *spa, int locks, const void *tag,
1030     krw_t rw);
1031 extern void spa_config_enter(spa_t *spa, int locks, const void *tag, krw_t rw);
1032 extern void spa_config_enter_priority(spa_t *spa, int locks, const void *tag,
1033     krw_t rw);
1034 extern void spa_config_exit(spa_t *spa, int locks, const void *tag);
1035 extern int spa_config_held(spa_t *spa, int locks, krw_t rw);
1036 
1037 /* Pool vdev add/remove lock */
1038 extern uint64_t spa_vdev_enter(spa_t *spa);
1039 extern uint64_t spa_vdev_detach_enter(spa_t *spa, uint64_t guid);
1040 extern uint64_t spa_vdev_config_enter(spa_t *spa);
1041 extern void spa_vdev_config_exit(spa_t *spa, vdev_t *vd, uint64_t txg,
1042     int error, const char *tag);
1043 extern int spa_vdev_exit(spa_t *spa, vdev_t *vd, uint64_t txg, int error);
1044 
1045 /* Pool vdev state change lock */
1046 extern void spa_vdev_state_enter(spa_t *spa, int oplock);
1047 extern int spa_vdev_state_exit(spa_t *spa, vdev_t *vd, int error);
1048 
1049 /* Log state */
1050 typedef enum spa_log_state {
1051 	SPA_LOG_UNKNOWN = 0,	/* unknown log state */
1052 	SPA_LOG_MISSING,	/* missing log(s) */
1053 	SPA_LOG_CLEAR,		/* clear the log(s) */
1054 	SPA_LOG_GOOD,		/* log(s) are good */
1055 } spa_log_state_t;
1056 
1057 extern spa_log_state_t spa_get_log_state(spa_t *spa);
1058 extern void spa_set_log_state(spa_t *spa, spa_log_state_t state);
1059 extern int spa_reset_logs(spa_t *spa);
1060 extern void spa_log_sm_stats_update(spa_t *spa);
1061 
1062 /* Log claim callback */
1063 extern void spa_claim_notify(zio_t *zio);
1064 extern void spa_deadman(void *);
1065 
1066 /* Accessor functions */
1067 extern boolean_t spa_shutting_down(spa_t *spa);
1068 extern struct dsl_pool *spa_get_dsl(spa_t *spa);
1069 extern boolean_t spa_is_initializing(spa_t *spa);
1070 extern boolean_t spa_indirect_vdevs_loaded(spa_t *spa);
1071 extern blkptr_t *spa_get_rootblkptr(spa_t *spa);
1072 extern void spa_set_rootblkptr(spa_t *spa, const blkptr_t *bp);
1073 extern void spa_altroot(spa_t *, char *, size_t);
1074 extern uint32_t spa_sync_pass(spa_t *spa);
1075 extern char *spa_name(spa_t *spa);
1076 extern char *spa_load_name(spa_t *spa);
1077 extern uint64_t spa_guid(spa_t *spa);
1078 extern uint64_t spa_load_guid(spa_t *spa);
1079 extern uint64_t spa_last_synced_txg(spa_t *spa);
1080 extern uint64_t spa_first_txg(spa_t *spa);
1081 extern uint64_t spa_open_txg(spa_t *spa);
1082 extern uint64_t spa_syncing_txg(spa_t *spa);
1083 extern uint64_t spa_final_dirty_txg(spa_t *spa);
1084 extern uint64_t spa_version(spa_t *spa);
1085 extern pool_state_t spa_state(spa_t *spa);
1086 extern spa_load_state_t spa_load_state(spa_t *spa);
1087 extern uint64_t spa_freeze_txg(spa_t *spa);
1088 extern uint64_t spa_get_worst_case_asize(spa_t *spa, uint64_t lsize);
1089 extern void spa_get_min_alloc_range(spa_t *spa, uint64_t *min, uint64_t *max);
1090 extern uint64_t spa_get_dspace(spa_t *spa);
1091 extern uint64_t spa_get_checkpoint_space(spa_t *spa);
1092 extern uint64_t spa_get_slop_space(spa_t *spa);
1093 extern void spa_update_dspace(spa_t *spa);
1094 extern uint64_t spa_version(spa_t *spa);
1095 extern boolean_t spa_deflate(spa_t *spa);
1096 extern metaslab_class_t *spa_normal_class(spa_t *spa);
1097 extern metaslab_class_t *spa_log_class(spa_t *spa);
1098 extern metaslab_class_t *spa_embedded_log_class(spa_t *spa);
1099 extern metaslab_class_t *spa_special_class(spa_t *spa);
1100 extern metaslab_class_t *spa_special_embedded_log_class(spa_t *spa);
1101 extern metaslab_class_t *spa_dedup_class(spa_t *spa);
1102 extern metaslab_class_t *spa_preferred_class(spa_t *spa, const zio_t *zio);
1103 extern boolean_t spa_special_has_ddt(spa_t *spa);
1104 
1105 extern void spa_evicting_os_register(spa_t *, objset_t *os);
1106 extern void spa_evicting_os_deregister(spa_t *, objset_t *os);
1107 extern void spa_evicting_os_wait(spa_t *spa);
1108 extern int spa_max_replication(spa_t *spa);
1109 extern int spa_prev_software_version(spa_t *spa);
1110 extern uint64_t spa_get_failmode(spa_t *spa);
1111 extern uint64_t spa_get_deadman_failmode(spa_t *spa);
1112 extern void spa_set_deadman_failmode(spa_t *spa, const char *failmode);
1113 extern boolean_t spa_suspended(spa_t *spa);
1114 extern uint64_t spa_bootfs(spa_t *spa);
1115 extern uint64_t spa_get_last_scrubbed_txg(spa_t *spa);
1116 extern uint64_t spa_delegation(spa_t *spa);
1117 extern objset_t *spa_meta_objset(spa_t *spa);
1118 extern space_map_t *spa_syncing_log_sm(spa_t *spa);
1119 extern uint64_t spa_deadman_synctime(spa_t *spa);
1120 extern uint64_t spa_deadman_ziotime(spa_t *spa);
1121 extern uint64_t spa_dirty_data(spa_t *spa);
1122 extern spa_autotrim_t spa_get_autotrim(spa_t *spa);
1123 extern int spa_get_allocator(spa_t *spa);
1124 extern void spa_set_allocator(spa_t *spa, const char *allocator);
1125 
1126 /* Miscellaneous support routines */
1127 extern void spa_load_failed(spa_t *spa, const char *fmt, ...)
1128     __attribute__((format(__printf__, 2, 3)));
1129 extern void spa_load_note(spa_t *spa, const char *fmt, ...)
1130     __attribute__((format(__printf__, 2, 3)));
1131 extern void spa_activate_mos_feature(spa_t *spa, const char *feature,
1132     dmu_tx_t *tx);
1133 extern void spa_deactivate_mos_feature(spa_t *spa, const char *feature);
1134 extern spa_t *spa_by_guid(uint64_t pool_guid, uint64_t device_guid);
1135 extern boolean_t spa_guid_exists(uint64_t pool_guid, uint64_t device_guid);
1136 extern char *spa_strdup(const char *);
1137 extern void spa_strfree(char *);
1138 extern uint64_t spa_generate_guid(spa_t *spa);
1139 extern uint64_t spa_generate_load_guid(void);
1140 extern void snprintf_blkptr(char *buf, size_t buflen, const blkptr_t *bp);
1141 extern void spa_freeze(spa_t *spa);
1142 extern int spa_change_guid(spa_t *spa, const uint64_t *guidp);
1143 extern void spa_upgrade(spa_t *spa, uint64_t version);
1144 extern void spa_evict_all(void);
1145 extern vdev_t *spa_lookup_by_guid(spa_t *spa, uint64_t guid,
1146     boolean_t l2cache);
1147 extern boolean_t spa_has_l2cache(spa_t *, uint64_t guid);
1148 extern boolean_t spa_has_spare(spa_t *, uint64_t guid);
1149 extern uint64_t dva_get_dsize_sync(spa_t *spa, const dva_t *dva);
1150 extern uint64_t bp_get_dsize_sync(spa_t *spa, const blkptr_t *bp);
1151 extern uint64_t bp_get_dsize(spa_t *spa, const blkptr_t *bp);
1152 extern boolean_t spa_has_dedup(spa_t *spa);
1153 extern boolean_t spa_has_slogs(spa_t *spa);
1154 extern boolean_t spa_has_special(spa_t *spa);
1155 extern boolean_t spa_is_root(spa_t *spa);
1156 extern boolean_t spa_writeable(spa_t *spa);
1157 extern boolean_t spa_has_pending_synctask(spa_t *spa);
1158 extern int spa_maxblocksize(spa_t *spa);
1159 extern int spa_maxdnodesize(spa_t *spa);
1160 extern boolean_t spa_has_checkpoint(spa_t *spa);
1161 extern boolean_t spa_importing_readonly_checkpoint(spa_t *spa);
1162 extern boolean_t spa_suspend_async_destroy(spa_t *spa);
1163 extern uint64_t spa_min_claim_txg(spa_t *spa);
1164 extern boolean_t zfs_dva_valid(spa_t *spa, const dva_t *dva,
1165     const blkptr_t *bp);
1166 typedef void (*spa_remap_cb_t)(uint64_t vdev, uint64_t offset, uint64_t size,
1167     void *arg);
1168 extern boolean_t spa_remap_blkptr(spa_t *spa, blkptr_t *bp,
1169     spa_remap_cb_t callback, void *arg);
1170 extern uint64_t spa_get_last_removal_txg(spa_t *spa);
1171 extern boolean_t spa_trust_config(spa_t *spa);
1172 extern uint64_t spa_missing_tvds_allowed(spa_t *spa);
1173 extern void spa_set_missing_tvds(spa_t *spa, uint64_t missing);
1174 extern boolean_t spa_top_vdevs_spacemap_addressable(spa_t *spa);
1175 extern uint64_t spa_total_metaslabs(spa_t *spa);
1176 extern boolean_t spa_multihost(spa_t *spa);
1177 extern uint32_t spa_get_hostid(spa_t *spa);
1178 extern void spa_activate_allocation_classes(spa_t *, dmu_tx_t *);
1179 extern boolean_t spa_livelist_delete_check(spa_t *spa);
1180 
1181 extern boolean_t spa_mmp_remote_host_activity(spa_t *spa);
1182 
1183 extern spa_mode_t spa_mode(spa_t *spa);
1184 extern uint64_t zfs_strtonum(const char *str, char **nptr);
1185 
1186 extern char *spa_his_ievent_table[];
1187 
1188 extern void spa_history_create_obj(spa_t *spa, dmu_tx_t *tx);
1189 extern int spa_history_get(spa_t *spa, uint64_t *offset, uint64_t *len_read,
1190     char *his_buf);
1191 extern int spa_history_log(spa_t *spa, const char *his_buf);
1192 extern int spa_history_log_nvl(spa_t *spa, nvlist_t *nvl);
1193 extern void spa_history_log_version(spa_t *spa, const char *operation,
1194     dmu_tx_t *tx);
1195 extern void spa_history_log_internal(spa_t *spa, const char *operation,
1196     dmu_tx_t *tx, const char *fmt, ...) __printflike(4, 5);
1197 extern void spa_history_log_internal_ds(struct dsl_dataset *ds, const char *op,
1198     dmu_tx_t *tx, const char *fmt, ...)  __printflike(4, 5);
1199 extern void spa_history_log_internal_dd(dsl_dir_t *dd, const char *operation,
1200     dmu_tx_t *tx, const char *fmt, ...) __printflike(4, 5);
1201 
1202 extern const char *spa_state_to_name(spa_t *spa);
1203 
1204 /* error handling */
1205 struct zbookmark_phys;
1206 extern void spa_log_error(spa_t *spa, const zbookmark_phys_t *zb,
1207     const uint64_t birth);
1208 extern void spa_remove_error(spa_t *spa, zbookmark_phys_t *zb,
1209     uint64_t birth);
1210 extern int zfs_ereport_post(const char *clazz, spa_t *spa, vdev_t *vd,
1211     const zbookmark_phys_t *zb, zio_t *zio, uint64_t state);
1212 extern boolean_t zfs_ereport_is_valid(const char *clazz, spa_t *spa, vdev_t *vd,
1213     zio_t *zio);
1214 extern void zfs_ereport_taskq_fini(void);
1215 extern void zfs_ereport_clear(spa_t *spa, vdev_t *vd);
1216 extern nvlist_t *zfs_event_create(spa_t *spa, vdev_t *vd, const char *type,
1217     const char *name, nvlist_t *aux);
1218 extern void zfs_post_remove(spa_t *spa, vdev_t *vd, boolean_t by_kernel);
1219 extern void zfs_post_state_change(spa_t *spa, vdev_t *vd, uint64_t laststate);
1220 extern void zfs_post_autoreplace(spa_t *spa, vdev_t *vd);
1221 extern uint64_t spa_approx_errlog_size(spa_t *spa);
1222 extern int spa_get_errlog(spa_t *spa, void *uaddr, uint64_t *count);
1223 extern uint64_t spa_get_last_errlog_size(spa_t *spa);
1224 extern void spa_errlog_rotate(spa_t *spa);
1225 extern void spa_errlog_drain(spa_t *spa);
1226 extern void spa_errlog_sync(spa_t *spa, uint64_t txg);
1227 extern void spa_get_errlists(spa_t *spa, avl_tree_t *last, avl_tree_t *scrub);
1228 extern void spa_delete_dataset_errlog(spa_t *spa, uint64_t ds, dmu_tx_t *tx);
1229 extern void spa_swap_errlog(spa_t *spa, uint64_t new_head_ds,
1230     uint64_t old_head_ds, dmu_tx_t *tx);
1231 extern void sync_error_list(spa_t *spa, avl_tree_t *t, uint64_t *obj,
1232     dmu_tx_t *tx);
1233 extern void spa_upgrade_errlog(spa_t *spa, dmu_tx_t *tx);
1234 extern int find_top_affected_fs(spa_t *spa, uint64_t head_ds,
1235     zbookmark_err_phys_t *zep, uint64_t *top_affected_fs);
1236 extern int find_birth_txg(struct dsl_dataset *ds, zbookmark_err_phys_t *zep,
1237     uint64_t *birth_txg);
1238 extern void zep_to_zb(uint64_t dataset, zbookmark_err_phys_t *zep,
1239     zbookmark_phys_t *zb);
1240 extern void name_to_errphys(char *buf, zbookmark_err_phys_t *zep);
1241 
1242 /* vdev mirror */
1243 extern void vdev_mirror_stat_init(void);
1244 extern void vdev_mirror_stat_fini(void);
1245 
1246 /* Initialization and termination */
1247 extern void spa_init(spa_mode_t mode);
1248 extern void spa_fini(void);
1249 
1250 /* properties */
1251 extern int spa_prop_set(spa_t *spa, nvlist_t *nvp);
1252 extern int spa_prop_get(spa_t *spa, nvlist_t *nvp);
1253 extern int spa_prop_get_nvlist(spa_t *spa, char **props,
1254     unsigned int n_props, nvlist_t *outnvl);
1255 extern void spa_prop_clear_bootfs(spa_t *spa, uint64_t obj, dmu_tx_t *tx);
1256 extern void spa_configfile_set(spa_t *, nvlist_t *, boolean_t);
1257 
1258 /* asynchronous event notification */
1259 extern void spa_event_notify(spa_t *spa, vdev_t *vdev, nvlist_t *hist_nvl,
1260     const char *name);
1261 extern void zfs_ereport_zvol_post(const char *subclass, const char *name,
1262     const char *device_name, const char *raw_name);
1263 
1264 /* waiting for pool activities to complete */
1265 extern int spa_wait(const char *pool, zpool_wait_activity_t activity,
1266     boolean_t *waited);
1267 extern int spa_wait_tag(const char *name, zpool_wait_activity_t activity,
1268     uint64_t tag, boolean_t *waited);
1269 extern void spa_notify_waiters(spa_t *spa);
1270 extern void spa_wake_waiters(spa_t *spa);
1271 
1272 /* a no-op condense op for test & debug */
1273 #ifdef ZFS_DEBUG
1274 extern void spa_condense_debug_start(spa_t *spa);
1275 extern void spa_condense_debug_cancel(spa_t *spa);
1276 #endif
1277 
1278 extern void spa_import_os(spa_t *spa);
1279 extern void spa_export_os(spa_t *spa);
1280 extern void spa_activate_os(spa_t *spa);
1281 extern void spa_deactivate_os(spa_t *spa);
1282 
1283 /* module param call functions */
1284 int param_set_deadman_ziotime(ZFS_MODULE_PARAM_ARGS);
1285 int param_set_deadman_synctime(ZFS_MODULE_PARAM_ARGS);
1286 int param_set_slop_shift(ZFS_MODULE_PARAM_ARGS);
1287 int param_set_deadman_failmode(ZFS_MODULE_PARAM_ARGS);
1288 int param_set_active_allocator(ZFS_MODULE_PARAM_ARGS);
1289 
1290 #ifdef ZFS_DEBUG
1291 #define	dprintf_bp(bp, fmt, ...) do {				\
1292 	if (zfs_flags & ZFS_DEBUG_DPRINTF) {			\
1293 	char *__blkbuf = kmem_alloc(BP_SPRINTF_LEN, KM_SLEEP);	\
1294 	snprintf_blkptr(__blkbuf, BP_SPRINTF_LEN, (bp));	\
1295 	dprintf(fmt " %s\n", __VA_ARGS__, __blkbuf);		\
1296 	kmem_free(__blkbuf, BP_SPRINTF_LEN);			\
1297 	} \
1298 } while (0)
1299 #else
1300 #define	dprintf_bp(bp, fmt, ...)
1301 #endif
1302 
1303 extern spa_mode_t spa_mode_global;
1304 extern int zfs_deadman_enabled;
1305 extern uint64_t zfs_deadman_synctime_ms;
1306 extern uint64_t zfs_deadman_ziotime_ms;
1307 extern uint64_t zfs_deadman_checktime_ms;
1308 
1309 extern kmem_cache_t *zio_buf_cache[];
1310 extern kmem_cache_t *zio_data_buf_cache[];
1311 
1312 #ifdef	__cplusplus
1313 }
1314 #endif
1315 
1316 #endif	/* _SYS_SPA_H */
1317