xref: /freebsd/sys/contrib/openzfs/include/sys/vdev_raidz_impl.h (revision dd32d6b29d49838c99d38ba30846ade210b2e6f7)
1 // SPDX-License-Identifier: CDDL-1.0
2 /*
3  * CDDL HEADER START
4  *
5  * The contents of this file are subject to the terms of the
6  * Common Development and Distribution License (the "License").
7  * You may not use this file except in compliance with the License.
8  *
9  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
10  * or https://opensource.org/licenses/CDDL-1.0.
11  * See the License for the specific language governing permissions
12  * and limitations under the License.
13  *
14  * When distributing Covered Code, include this CDDL HEADER in each
15  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
16  * If applicable, add the following below this CDDL HEADER, with the
17  * fields enclosed by brackets "[]" replaced with your own identifying
18  * information: Portions Copyright [yyyy] [name of copyright owner]
19  *
20  * CDDL HEADER END
21  */
22 /*
23  * Copyright (C) 2016 Gvozden Nešković. All rights reserved.
24  */
25 
26 #ifndef _VDEV_RAIDZ_H
27 #define	_VDEV_RAIDZ_H
28 
29 #include <sys/types.h>
30 #include <sys/debug.h>
31 #include <sys/kstat.h>
32 #include <sys/abd.h>
33 #include <sys/vdev_impl.h>
34 #include <sys/abd_impl.h>
35 #include <sys/zfs_rlock.h>
36 
37 #ifdef  __cplusplus
38 extern "C" {
39 #endif
40 
41 #define	CODE_P		(0U)
42 #define	CODE_Q		(1U)
43 #define	CODE_R		(2U)
44 
45 #define	PARITY_P	(1U)
46 #define	PARITY_PQ	(2U)
47 #define	PARITY_PQR	(3U)
48 
49 #define	TARGET_X	(0U)
50 #define	TARGET_Y	(1U)
51 #define	TARGET_Z	(2U)
52 
53 /*
54  * Parity generation methods indexes
55  */
56 enum raidz_math_gen_op {
57 	RAIDZ_GEN_P = 0,
58 	RAIDZ_GEN_PQ,
59 	RAIDZ_GEN_PQR,
60 	RAIDZ_GEN_NUM = 3
61 };
62 /*
63  * Data reconstruction methods indexes
64  */
65 enum raidz_rec_op {
66 	RAIDZ_REC_P = 0,
67 	RAIDZ_REC_Q,
68 	RAIDZ_REC_R,
69 	RAIDZ_REC_PQ,
70 	RAIDZ_REC_PR,
71 	RAIDZ_REC_QR,
72 	RAIDZ_REC_PQR,
73 	RAIDZ_REC_NUM = 7
74 };
75 
76 extern const char *const raidz_gen_name[RAIDZ_GEN_NUM];
77 extern const char *const raidz_rec_name[RAIDZ_REC_NUM];
78 
79 /*
80  * Methods used to define raidz implementation
81  *
82  * @raidz_gen_f	Parity generation function
83  *     @par1	pointer to raidz_map
84  * @raidz_rec_f	Data reconstruction function
85  *     @par1	pointer to raidz_map
86  *     @par2	array of reconstruction targets
87  * @will_work_f Function returns TRUE if impl. is supported on the system
88  * @init_impl_f Function is called once on init
89  * @fini_impl_f Function is called once on fini
90  */
91 typedef void		(*raidz_gen_f)(void *);
92 typedef int		(*raidz_rec_f)(void *, const int *);
93 typedef boolean_t	(*will_work_f)(void);
94 typedef void		(*init_impl_f)(void);
95 typedef void		(*fini_impl_f)(void);
96 
97 #define	RAIDZ_IMPL_NAME_MAX	(20)
98 
99 typedef struct raidz_impl_ops {
100 	init_impl_f init;
101 	fini_impl_f fini;
102 	raidz_gen_f gen[RAIDZ_GEN_NUM];	/* Parity generate functions */
103 	raidz_rec_f rec[RAIDZ_REC_NUM];	/* Data reconstruction functions */
104 	will_work_f is_supported;	/* Support check function */
105 	char name[RAIDZ_IMPL_NAME_MAX];	/* Name of the implementation */
106 } raidz_impl_ops_t;
107 
108 
109 typedef struct raidz_col {
110 	int rc_devidx;			/* child device index for I/O */
111 	uint32_t rc_size;		/* I/O size */
112 	uint64_t rc_offset;		/* device offset */
113 	abd_t rc_abdstruct;		/* rc_abd probably points here */
114 	abd_t *rc_abd;			/* I/O data */
115 	abd_t *rc_orig_data;		/* pre-reconstruction */
116 	int rc_error;			/* I/O error for this device */
117 	uint8_t rc_tried:1;		/* Did we attempt this I/O column? */
118 	uint8_t rc_skipped:1;		/* Did we skip this I/O column? */
119 	uint8_t rc_need_orig_restore:1;	/* need to restore from orig_data? */
120 	uint8_t rc_force_repair:1;	/* Write good data to this column */
121 	uint8_t rc_allow_repair:1;	/* Allow repair I/O to this column */
122 	uint8_t rc_latency_outlier:1;	/* Latency outlier for this device */
123 	int rc_shadow_devidx;		/* for double write during expansion */
124 	int rc_shadow_error;		/* for double write during expansion */
125 	uint64_t rc_shadow_offset;	/* for double write during expansion */
126 } raidz_col_t;
127 
128 typedef struct raidz_row {
129 	int rr_cols;			/* Regular column count */
130 	int rr_scols;			/* Count including skipped columns */
131 	int rr_bigcols;			/* Remainder data column count */
132 	int rr_missingdata;		/* Count of missing data devices */
133 	int rr_missingparity;		/* Count of missing parity devices */
134 	int rr_firstdatacol;		/* First data column/parity count */
135 	abd_t *rr_abd_empty;		/* dRAID empty sector buffer */
136 	int rr_nempty;			/* empty sectors included in parity */
137 	int rr_outlier_cnt;		/* Count of latency outlier devices */
138 #ifdef ZFS_DEBUG
139 	uint64_t rr_offset;		/* Logical offset for *_io_verify() */
140 	uint64_t rr_size;		/* Physical size for *_io_verify() */
141 #endif
142 	raidz_col_t rr_col[];		/* Flexible array of I/O columns */
143 } raidz_row_t;
144 
145 typedef struct raidz_map {
146 	boolean_t rm_ecksuminjected;	/* checksum error was injected */
147 	int rm_nrows;			/* Regular row count */
148 	int rm_nskip;			/* RAIDZ sectors skipped for padding */
149 	int rm_skipstart;		/* Column index of padding start */
150 	int rm_original_width;		/* pre-expansion width of raidz vdev */
151 	int rm_nphys_cols;		/* num entries in rm_phys_col[] */
152 	zfs_locked_range_t *rm_lr;
153 	const raidz_impl_ops_t *rm_ops;	/* RAIDZ math operations */
154 	raidz_col_t *rm_phys_col;	/* if non-NULL, read i/o aggregation */
155 	raidz_row_t *rm_row[];		/* flexible array of rows */
156 } raidz_map_t;
157 
158 /*
159  * Nodes in vdev_raidz_t:vd_expand_txgs.
160  * Blocks with physical birth time of re_txg or later have the specified
161  * logical width (until the next node).
162  */
163 typedef struct reflow_node {
164 	uint64_t re_txg;
165 	uint64_t re_logical_width;
166 	avl_node_t re_link;
167 } reflow_node_t;
168 
169 
170 #define	RAIDZ_ORIGINAL_IMPL	(INT_MAX)
171 
172 extern const raidz_impl_ops_t vdev_raidz_scalar_impl;
173 extern boolean_t raidz_will_scalar_work(void);
174 
175 #if defined(__x86_64) && defined(HAVE_SSE2)	/* only x86_64 for now */
176 extern const raidz_impl_ops_t vdev_raidz_sse2_impl;
177 #endif
178 #if defined(__x86_64) && defined(HAVE_SSSE3)	/* only x86_64 for now */
179 extern const raidz_impl_ops_t vdev_raidz_ssse3_impl;
180 #endif
181 #if defined(__x86_64) && defined(HAVE_AVX2)	/* only x86_64 for now */
182 extern const raidz_impl_ops_t vdev_raidz_avx2_impl;
183 #endif
184 #if defined(__x86_64) && defined(HAVE_AVX512F)	/* only x86_64 for now */
185 extern const raidz_impl_ops_t vdev_raidz_avx512f_impl;
186 #endif
187 #if defined(__x86_64) && defined(HAVE_AVX512BW)	/* only x86_64 for now */
188 extern const raidz_impl_ops_t vdev_raidz_avx512bw_impl;
189 #endif
190 #if defined(__aarch64__)
191 extern const raidz_impl_ops_t vdev_raidz_aarch64_neon_impl;
192 extern const raidz_impl_ops_t vdev_raidz_aarch64_neonx2_impl;
193 #endif
194 #if defined(__powerpc__)
195 extern const raidz_impl_ops_t vdev_raidz_powerpc_altivec_impl;
196 #endif
197 
198 /*
199  * Commonly used raidz_map helpers
200  *
201  * raidz_parity		Returns parity of the RAIDZ block
202  * raidz_ncols		Returns number of columns the block spans
203  *			Note, all rows have the same number of columns.
204  * raidz_nbigcols	Returns number of big columns
205  * raidz_col_p		Returns pointer to a column
206  * raidz_col_size	Returns size of a column
207  * raidz_big_size	Returns size of big columns
208  * raidz_short_size	Returns size of short columns
209  */
210 #define	raidz_parity(rm)	((rm)->rm_row[0]->rr_firstdatacol)
211 #define	raidz_ncols(rm)		((rm)->rm_row[0]->rr_cols)
212 #define	raidz_nbigcols(rm)	((rm)->rm_bigcols)
213 #define	raidz_col_p(rm, c)	((rm)->rm_col + (c))
214 #define	raidz_col_size(rm, c)	((rm)->rm_col[c].rc_size)
215 #define	raidz_big_size(rm)	(raidz_col_size(rm, CODE_P))
216 #define	raidz_short_size(rm)	(raidz_col_size(rm, raidz_ncols(rm)-1))
217 
218 /*
219  * Macro defines an RAIDZ parity generation method
220  *
221  * @code	parity the function produce
222  * @impl	name of the implementation
223  */
224 #define	_RAIDZ_GEN_WRAP(code, impl)					\
225 static void								\
226 impl ## _gen_ ## code(void *rrp)					\
227 {									\
228 	raidz_row_t *rr = (raidz_row_t *)rrp;				\
229 	raidz_generate_## code ## _impl(rr);				\
230 }
231 
232 /*
233  * Macro defines an RAIDZ data reconstruction method
234  *
235  * @code	parity the function produce
236  * @impl	name of the implementation
237  */
238 #define	_RAIDZ_REC_WRAP(code, impl)					\
239 static int								\
240 impl ## _rec_ ## code(void *rrp, const int *tgtidx)			\
241 {									\
242 	raidz_row_t *rr = (raidz_row_t *)rrp;				\
243 	return (raidz_reconstruct_## code ## _impl(rr, tgtidx));	\
244 }
245 
246 /*
247  * Define all gen methods for an implementation
248  *
249  * @impl	name of the implementation
250  */
251 #define	DEFINE_GEN_METHODS(impl)					\
252 	_RAIDZ_GEN_WRAP(p, impl);					\
253 	_RAIDZ_GEN_WRAP(pq, impl);					\
254 	_RAIDZ_GEN_WRAP(pqr, impl)
255 
256 /*
257  * Define all rec functions for an implementation
258  *
259  * @impl	name of the implementation
260  */
261 #define	DEFINE_REC_METHODS(impl)					\
262 	_RAIDZ_REC_WRAP(p, impl);					\
263 	_RAIDZ_REC_WRAP(q, impl);					\
264 	_RAIDZ_REC_WRAP(r, impl);					\
265 	_RAIDZ_REC_WRAP(pq, impl);					\
266 	_RAIDZ_REC_WRAP(pr, impl);					\
267 	_RAIDZ_REC_WRAP(qr, impl);					\
268 	_RAIDZ_REC_WRAP(pqr, impl)
269 
270 #define	RAIDZ_GEN_METHODS(impl)						\
271 {									\
272 	[RAIDZ_GEN_P] = & impl ## _gen_p,				\
273 	[RAIDZ_GEN_PQ] = & impl ## _gen_pq,				\
274 	[RAIDZ_GEN_PQR] = & impl ## _gen_pqr				\
275 }
276 
277 #define	RAIDZ_REC_METHODS(impl)						\
278 {									\
279 	[RAIDZ_REC_P] = & impl ## _rec_p,				\
280 	[RAIDZ_REC_Q] = & impl ## _rec_q,				\
281 	[RAIDZ_REC_R] = & impl ## _rec_r,				\
282 	[RAIDZ_REC_PQ] = & impl ## _rec_pq,				\
283 	[RAIDZ_REC_PR] = & impl ## _rec_pr,				\
284 	[RAIDZ_REC_QR] = & impl ## _rec_qr,				\
285 	[RAIDZ_REC_PQR] = & impl ## _rec_pqr				\
286 }
287 
288 
289 typedef struct raidz_impl_kstat {
290 	uint64_t gen[RAIDZ_GEN_NUM];	/* gen method speed B/s */
291 	uint64_t rec[RAIDZ_REC_NUM];	/* rec method speed B/s */
292 } raidz_impl_kstat_t;
293 
294 /*
295  * Enumerate various multiplication constants
296  * used in reconstruction methods
297  */
298 typedef enum raidz_mul_info {
299 	/* Reconstruct Q */
300 	MUL_Q_X		= 0,
301 	/* Reconstruct R */
302 	MUL_R_X		= 0,
303 	/* Reconstruct PQ */
304 	MUL_PQ_X	= 0,
305 	MUL_PQ_Y	= 1,
306 	/* Reconstruct PR */
307 	MUL_PR_X	= 0,
308 	MUL_PR_Y	= 1,
309 	/* Reconstruct QR */
310 	MUL_QR_XQ	= 0,
311 	MUL_QR_X	= 1,
312 	MUL_QR_YQ	= 2,
313 	MUL_QR_Y	= 3,
314 	/* Reconstruct PQR */
315 	MUL_PQR_XP	= 0,
316 	MUL_PQR_XQ	= 1,
317 	MUL_PQR_XR	= 2,
318 	MUL_PQR_YU	= 3,
319 	MUL_PQR_YP	= 4,
320 	MUL_PQR_YQ	= 5,
321 
322 	MUL_CNT		= 6
323 } raidz_mul_info_t;
324 
325 /*
326  * Powers of 2 in the Galois field.
327  */
328 extern const uint8_t vdev_raidz_pow2[256] __attribute__((aligned(256)));
329 /* Logs of 2 in the Galois field defined above. */
330 extern const uint8_t vdev_raidz_log2[256] __attribute__((aligned(256)));
331 
332 /*
333  * Multiply a given number by 2 raised to the given power.
334  */
335 static inline uint8_t
vdev_raidz_exp2(const uint8_t a,const unsigned exp)336 vdev_raidz_exp2(const uint8_t a, const unsigned exp)
337 {
338 	if (a == 0)
339 		return (0);
340 
341 	return (vdev_raidz_pow2[(exp + (unsigned)vdev_raidz_log2[a]) % 255]);
342 }
343 
344 /*
345  * Galois Field operations.
346  *
347  * gf_exp2	- computes 2 raised to the given power
348  * gf_exp4	- computes 4 raised to the given power
349  * gf_mul	- multiplication
350  * gf_div	- division
351  * gf_inv	- multiplicative inverse
352  */
353 typedef unsigned gf_t;
354 typedef unsigned gf_log_t;
355 
356 static inline gf_t
gf_mul(const gf_t a,const gf_t b)357 gf_mul(const gf_t a, const gf_t b)
358 {
359 	gf_log_t logsum;
360 
361 	if (a == 0 || b == 0)
362 		return (0);
363 
364 	logsum = (gf_log_t)vdev_raidz_log2[a] + (gf_log_t)vdev_raidz_log2[b];
365 
366 	return ((gf_t)vdev_raidz_pow2[logsum % 255]);
367 }
368 
369 static inline gf_t
gf_div(const gf_t a,const gf_t b)370 gf_div(const gf_t  a, const gf_t b)
371 {
372 	gf_log_t logsum;
373 
374 	ASSERT3U(b, >, 0);
375 	if (a == 0)
376 		return (0);
377 
378 	logsum = (gf_log_t)255 + (gf_log_t)vdev_raidz_log2[a] -
379 	    (gf_log_t)vdev_raidz_log2[b];
380 
381 	return ((gf_t)vdev_raidz_pow2[logsum % 255]);
382 }
383 
384 static inline gf_t
gf_inv(const gf_t a)385 gf_inv(const gf_t a)
386 {
387 	gf_log_t logsum;
388 
389 	ASSERT3U(a, >, 0);
390 
391 	logsum = (gf_log_t)255 - (gf_log_t)vdev_raidz_log2[a];
392 
393 	return ((gf_t)vdev_raidz_pow2[logsum]);
394 }
395 
396 static inline gf_t
gf_exp2(gf_log_t exp)397 gf_exp2(gf_log_t exp)
398 {
399 	return (vdev_raidz_pow2[exp % 255]);
400 }
401 
402 static inline gf_t
gf_exp4(gf_log_t exp)403 gf_exp4(gf_log_t exp)
404 {
405 	ASSERT3U(exp, <=, 255);
406 	return ((gf_t)vdev_raidz_pow2[(2 * exp) % 255]);
407 }
408 
409 #ifdef  __cplusplus
410 }
411 #endif
412 
413 #endif /* _VDEV_RAIDZ_H */
414