xref: /freebsd/sys/contrib/openzfs/module/zcommon/zfs_fletcher.c (revision e92ffd9b626833ebdbf2742c8ffddc6cd94b963e)
1eda14cbcSMatt Macy /*
2eda14cbcSMatt Macy  * CDDL HEADER START
3eda14cbcSMatt Macy  *
4eda14cbcSMatt Macy  * The contents of this file are subject to the terms of the
5eda14cbcSMatt Macy  * Common Development and Distribution License (the "License").
6eda14cbcSMatt Macy  * You may not use this file except in compliance with the License.
7eda14cbcSMatt Macy  *
8eda14cbcSMatt Macy  * You can obtain a copy of the license at usr/src/OPENSOLARIS.LICENSE
9eda14cbcSMatt Macy  * or http://www.opensolaris.org/os/licensing.
10eda14cbcSMatt Macy  * See the License for the specific language governing permissions
11eda14cbcSMatt Macy  * and limitations under the License.
12eda14cbcSMatt Macy  *
13eda14cbcSMatt Macy  * When distributing Covered Code, include this CDDL HEADER in each
14eda14cbcSMatt Macy  * file and include the License file at usr/src/OPENSOLARIS.LICENSE.
15eda14cbcSMatt Macy  * If applicable, add the following below this CDDL HEADER, with the
16eda14cbcSMatt Macy  * fields enclosed by brackets "[]" replaced with your own identifying
17eda14cbcSMatt Macy  * information: Portions Copyright [yyyy] [name of copyright owner]
18eda14cbcSMatt Macy  *
19eda14cbcSMatt Macy  * CDDL HEADER END
20eda14cbcSMatt Macy  */
21eda14cbcSMatt Macy /*
22eda14cbcSMatt Macy  * Copyright 2009 Sun Microsystems, Inc.  All rights reserved.
23eda14cbcSMatt Macy  * Use is subject to license terms.
24eda14cbcSMatt Macy  * Copyright (C) 2016 Gvozden Nešković. All rights reserved.
25eda14cbcSMatt Macy  */
26eda14cbcSMatt Macy /*
27eda14cbcSMatt Macy  * Copyright 2013 Saso Kiselkov. All rights reserved.
28eda14cbcSMatt Macy  */
29eda14cbcSMatt Macy 
30eda14cbcSMatt Macy /*
31eda14cbcSMatt Macy  * Copyright (c) 2016 by Delphix. All rights reserved.
32eda14cbcSMatt Macy  */
33eda14cbcSMatt Macy 
34eda14cbcSMatt Macy /*
35eda14cbcSMatt Macy  * Fletcher Checksums
36eda14cbcSMatt Macy  * ------------------
37eda14cbcSMatt Macy  *
38eda14cbcSMatt Macy  * ZFS's 2nd and 4th order Fletcher checksums are defined by the following
39eda14cbcSMatt Macy  * recurrence relations:
40eda14cbcSMatt Macy  *
41eda14cbcSMatt Macy  *	a  = a    + f
42eda14cbcSMatt Macy  *	 i    i-1    i-1
43eda14cbcSMatt Macy  *
44eda14cbcSMatt Macy  *	b  = b    + a
45eda14cbcSMatt Macy  *	 i    i-1    i
46eda14cbcSMatt Macy  *
47eda14cbcSMatt Macy  *	c  = c    + b		(fletcher-4 only)
48eda14cbcSMatt Macy  *	 i    i-1    i
49eda14cbcSMatt Macy  *
50eda14cbcSMatt Macy  *	d  = d    + c		(fletcher-4 only)
51eda14cbcSMatt Macy  *	 i    i-1    i
52eda14cbcSMatt Macy  *
53eda14cbcSMatt Macy  * Where
54eda14cbcSMatt Macy  *	a_0 = b_0 = c_0 = d_0 = 0
55eda14cbcSMatt Macy  * and
56eda14cbcSMatt Macy  *	f_0 .. f_(n-1) are the input data.
57eda14cbcSMatt Macy  *
58eda14cbcSMatt Macy  * Using standard techniques, these translate into the following series:
59eda14cbcSMatt Macy  *
60eda14cbcSMatt Macy  *	     __n_			     __n_
61eda14cbcSMatt Macy  *	     \   |			     \   |
62eda14cbcSMatt Macy  *	a  =  >     f			b  =  >     i * f
63eda14cbcSMatt Macy  *	 n   /___|   n - i		 n   /___|	 n - i
64eda14cbcSMatt Macy  *	     i = 1			     i = 1
65eda14cbcSMatt Macy  *
66eda14cbcSMatt Macy  *
67eda14cbcSMatt Macy  *	     __n_			     __n_
68eda14cbcSMatt Macy  *	     \   |  i*(i+1)		     \   |  i*(i+1)*(i+2)
69eda14cbcSMatt Macy  *	c  =  >     ------- f		d  =  >     ------------- f
70eda14cbcSMatt Macy  *	 n   /___|     2     n - i	 n   /___|	  6	   n - i
71eda14cbcSMatt Macy  *	     i = 1			     i = 1
72eda14cbcSMatt Macy  *
73eda14cbcSMatt Macy  * For fletcher-2, the f_is are 64-bit, and [ab]_i are 64-bit accumulators.
74eda14cbcSMatt Macy  * Since the additions are done mod (2^64), errors in the high bits may not
75eda14cbcSMatt Macy  * be noticed.  For this reason, fletcher-2 is deprecated.
76eda14cbcSMatt Macy  *
77eda14cbcSMatt Macy  * For fletcher-4, the f_is are 32-bit, and [abcd]_i are 64-bit accumulators.
78eda14cbcSMatt Macy  * A conservative estimate of how big the buffer can get before we overflow
79eda14cbcSMatt Macy  * can be estimated using f_i = 0xffffffff for all i:
80eda14cbcSMatt Macy  *
81eda14cbcSMatt Macy  * % bc
82eda14cbcSMatt Macy  *  f=2^32-1;d=0; for (i = 1; d<2^64; i++) { d += f*i*(i+1)*(i+2)/6 }; (i-1)*4
83eda14cbcSMatt Macy  * 2264
84eda14cbcSMatt Macy  *  quit
85eda14cbcSMatt Macy  * %
86eda14cbcSMatt Macy  *
87eda14cbcSMatt Macy  * So blocks of up to 2k will not overflow.  Our largest block size is
88eda14cbcSMatt Macy  * 128k, which has 32k 4-byte words, so we can compute the largest possible
89eda14cbcSMatt Macy  * accumulators, then divide by 2^64 to figure the max amount of overflow:
90eda14cbcSMatt Macy  *
91eda14cbcSMatt Macy  * % bc
92eda14cbcSMatt Macy  *  a=b=c=d=0; f=2^32-1; for (i=1; i<=32*1024; i++) { a+=f; b+=a; c+=b; d+=c }
93eda14cbcSMatt Macy  *  a/2^64;b/2^64;c/2^64;d/2^64
94eda14cbcSMatt Macy  * 0
95eda14cbcSMatt Macy  * 0
96eda14cbcSMatt Macy  * 1365
97eda14cbcSMatt Macy  * 11186858
98eda14cbcSMatt Macy  *  quit
99eda14cbcSMatt Macy  * %
100eda14cbcSMatt Macy  *
101eda14cbcSMatt Macy  * So a and b cannot overflow.  To make sure each bit of input has some
102eda14cbcSMatt Macy  * effect on the contents of c and d, we can look at what the factors of
103eda14cbcSMatt Macy  * the coefficients in the equations for c_n and d_n are.  The number of 2s
104eda14cbcSMatt Macy  * in the factors determines the lowest set bit in the multiplier.  Running
105eda14cbcSMatt Macy  * through the cases for n*(n+1)/2 reveals that the highest power of 2 is
106eda14cbcSMatt Macy  * 2^14, and for n*(n+1)*(n+2)/6 it is 2^15.  So while some data may overflow
107eda14cbcSMatt Macy  * the 64-bit accumulators, every bit of every f_i effects every accumulator,
108eda14cbcSMatt Macy  * even for 128k blocks.
109eda14cbcSMatt Macy  *
110eda14cbcSMatt Macy  * If we wanted to make a stronger version of fletcher4 (fletcher4c?),
111eda14cbcSMatt Macy  * we could do our calculations mod (2^32 - 1) by adding in the carries
112eda14cbcSMatt Macy  * periodically, and store the number of carries in the top 32-bits.
113eda14cbcSMatt Macy  *
114eda14cbcSMatt Macy  * --------------------
115eda14cbcSMatt Macy  * Checksum Performance
116eda14cbcSMatt Macy  * --------------------
117eda14cbcSMatt Macy  *
118eda14cbcSMatt Macy  * There are two interesting components to checksum performance: cached and
119eda14cbcSMatt Macy  * uncached performance.  With cached data, fletcher-2 is about four times
120eda14cbcSMatt Macy  * faster than fletcher-4.  With uncached data, the performance difference is
121eda14cbcSMatt Macy  * negligible, since the cost of a cache fill dominates the processing time.
122eda14cbcSMatt Macy  * Even though fletcher-4 is slower than fletcher-2, it is still a pretty
123eda14cbcSMatt Macy  * efficient pass over the data.
124eda14cbcSMatt Macy  *
125eda14cbcSMatt Macy  * In normal operation, the data which is being checksummed is in a buffer
126eda14cbcSMatt Macy  * which has been filled either by:
127eda14cbcSMatt Macy  *
128eda14cbcSMatt Macy  *	1. a compression step, which will be mostly cached, or
129eda14cbcSMatt Macy  *	2. a bcopy() or copyin(), which will be uncached (because the
130eda14cbcSMatt Macy  *	   copy is cache-bypassing).
131eda14cbcSMatt Macy  *
132eda14cbcSMatt Macy  * For both cached and uncached data, both fletcher checksums are much faster
133eda14cbcSMatt Macy  * than sha-256, and slower than 'off', which doesn't touch the data at all.
134eda14cbcSMatt Macy  */
135eda14cbcSMatt Macy 
136eda14cbcSMatt Macy #include <sys/types.h>
137eda14cbcSMatt Macy #include <sys/sysmacros.h>
138eda14cbcSMatt Macy #include <sys/byteorder.h>
139eda14cbcSMatt Macy #include <sys/spa.h>
140eda14cbcSMatt Macy #include <sys/simd.h>
141eda14cbcSMatt Macy #include <sys/zio_checksum.h>
142eda14cbcSMatt Macy #include <sys/zfs_context.h>
143eda14cbcSMatt Macy #include <zfs_fletcher.h>
144eda14cbcSMatt Macy 
145eda14cbcSMatt Macy #define	FLETCHER_MIN_SIMD_SIZE	64
146eda14cbcSMatt Macy 
147eda14cbcSMatt Macy static void fletcher_4_scalar_init(fletcher_4_ctx_t *ctx);
148eda14cbcSMatt Macy static void fletcher_4_scalar_fini(fletcher_4_ctx_t *ctx, zio_cksum_t *zcp);
149eda14cbcSMatt Macy static void fletcher_4_scalar_native(fletcher_4_ctx_t *ctx,
150eda14cbcSMatt Macy     const void *buf, uint64_t size);
151eda14cbcSMatt Macy static void fletcher_4_scalar_byteswap(fletcher_4_ctx_t *ctx,
152eda14cbcSMatt Macy     const void *buf, uint64_t size);
153eda14cbcSMatt Macy static boolean_t fletcher_4_scalar_valid(void);
154eda14cbcSMatt Macy 
155eda14cbcSMatt Macy static const fletcher_4_ops_t fletcher_4_scalar_ops = {
156eda14cbcSMatt Macy 	.init_native = fletcher_4_scalar_init,
157eda14cbcSMatt Macy 	.fini_native = fletcher_4_scalar_fini,
158eda14cbcSMatt Macy 	.compute_native = fletcher_4_scalar_native,
159eda14cbcSMatt Macy 	.init_byteswap = fletcher_4_scalar_init,
160eda14cbcSMatt Macy 	.fini_byteswap = fletcher_4_scalar_fini,
161eda14cbcSMatt Macy 	.compute_byteswap = fletcher_4_scalar_byteswap,
162eda14cbcSMatt Macy 	.valid = fletcher_4_scalar_valid,
163eda14cbcSMatt Macy 	.name = "scalar"
164eda14cbcSMatt Macy };
165eda14cbcSMatt Macy 
166eda14cbcSMatt Macy static fletcher_4_ops_t fletcher_4_fastest_impl = {
167eda14cbcSMatt Macy 	.name = "fastest",
168eda14cbcSMatt Macy 	.valid = fletcher_4_scalar_valid
169eda14cbcSMatt Macy };
170eda14cbcSMatt Macy 
171eda14cbcSMatt Macy static const fletcher_4_ops_t *fletcher_4_impls[] = {
172eda14cbcSMatt Macy 	&fletcher_4_scalar_ops,
173eda14cbcSMatt Macy 	&fletcher_4_superscalar_ops,
174eda14cbcSMatt Macy 	&fletcher_4_superscalar4_ops,
175eda14cbcSMatt Macy #if defined(HAVE_SSE2)
176eda14cbcSMatt Macy 	&fletcher_4_sse2_ops,
177eda14cbcSMatt Macy #endif
178eda14cbcSMatt Macy #if defined(HAVE_SSE2) && defined(HAVE_SSSE3)
179eda14cbcSMatt Macy 	&fletcher_4_ssse3_ops,
180eda14cbcSMatt Macy #endif
181eda14cbcSMatt Macy #if defined(HAVE_AVX) && defined(HAVE_AVX2)
182eda14cbcSMatt Macy 	&fletcher_4_avx2_ops,
183eda14cbcSMatt Macy #endif
184eda14cbcSMatt Macy #if defined(__x86_64) && defined(HAVE_AVX512F)
185eda14cbcSMatt Macy 	&fletcher_4_avx512f_ops,
186eda14cbcSMatt Macy #endif
187eda14cbcSMatt Macy #if defined(__x86_64) && defined(HAVE_AVX512BW)
188eda14cbcSMatt Macy 	&fletcher_4_avx512bw_ops,
189eda14cbcSMatt Macy #endif
190ac0bf12eSMatt Macy #if defined(__aarch64__) && !defined(__FreeBSD__)
191eda14cbcSMatt Macy 	&fletcher_4_aarch64_neon_ops,
192eda14cbcSMatt Macy #endif
193eda14cbcSMatt Macy };
194eda14cbcSMatt Macy 
195eda14cbcSMatt Macy /* Hold all supported implementations */
196eda14cbcSMatt Macy static uint32_t fletcher_4_supp_impls_cnt = 0;
197eda14cbcSMatt Macy static fletcher_4_ops_t *fletcher_4_supp_impls[ARRAY_SIZE(fletcher_4_impls)];
198eda14cbcSMatt Macy 
199eda14cbcSMatt Macy /* Select fletcher4 implementation */
200eda14cbcSMatt Macy #define	IMPL_FASTEST	(UINT32_MAX)
201eda14cbcSMatt Macy #define	IMPL_CYCLE	(UINT32_MAX - 1)
202eda14cbcSMatt Macy #define	IMPL_SCALAR	(0)
203eda14cbcSMatt Macy 
204eda14cbcSMatt Macy static uint32_t fletcher_4_impl_chosen = IMPL_FASTEST;
205eda14cbcSMatt Macy 
206eda14cbcSMatt Macy #define	IMPL_READ(i)	(*(volatile uint32_t *) &(i))
207eda14cbcSMatt Macy 
208eda14cbcSMatt Macy static struct fletcher_4_impl_selector {
209eda14cbcSMatt Macy 	const char	*fis_name;
210eda14cbcSMatt Macy 	uint32_t	fis_sel;
211eda14cbcSMatt Macy } fletcher_4_impl_selectors[] = {
212eda14cbcSMatt Macy 	{ "cycle",	IMPL_CYCLE },
213eda14cbcSMatt Macy 	{ "fastest",	IMPL_FASTEST },
214eda14cbcSMatt Macy 	{ "scalar",	IMPL_SCALAR }
215eda14cbcSMatt Macy };
216eda14cbcSMatt Macy 
217eda14cbcSMatt Macy #if defined(_KERNEL)
218eda14cbcSMatt Macy static kstat_t *fletcher_4_kstat;
219eda14cbcSMatt Macy 
220eda14cbcSMatt Macy static struct fletcher_4_kstat {
221eda14cbcSMatt Macy 	uint64_t native;
222eda14cbcSMatt Macy 	uint64_t byteswap;
223eda14cbcSMatt Macy } fletcher_4_stat_data[ARRAY_SIZE(fletcher_4_impls) + 1];
224eda14cbcSMatt Macy #endif
225eda14cbcSMatt Macy 
226eda14cbcSMatt Macy /* Indicate that benchmark has been completed */
227eda14cbcSMatt Macy static boolean_t fletcher_4_initialized = B_FALSE;
228eda14cbcSMatt Macy 
229eda14cbcSMatt Macy void
230eda14cbcSMatt Macy fletcher_init(zio_cksum_t *zcp)
231eda14cbcSMatt Macy {
232eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(zcp, 0, 0, 0, 0);
233eda14cbcSMatt Macy }
234eda14cbcSMatt Macy 
235eda14cbcSMatt Macy int
236eda14cbcSMatt Macy fletcher_2_incremental_native(void *buf, size_t size, void *data)
237eda14cbcSMatt Macy {
238eda14cbcSMatt Macy 	zio_cksum_t *zcp = data;
239eda14cbcSMatt Macy 
240eda14cbcSMatt Macy 	const uint64_t *ip = buf;
241eda14cbcSMatt Macy 	const uint64_t *ipend = ip + (size / sizeof (uint64_t));
242eda14cbcSMatt Macy 	uint64_t a0, b0, a1, b1;
243eda14cbcSMatt Macy 
244eda14cbcSMatt Macy 	a0 = zcp->zc_word[0];
245eda14cbcSMatt Macy 	a1 = zcp->zc_word[1];
246eda14cbcSMatt Macy 	b0 = zcp->zc_word[2];
247eda14cbcSMatt Macy 	b1 = zcp->zc_word[3];
248eda14cbcSMatt Macy 
249eda14cbcSMatt Macy 	for (; ip < ipend; ip += 2) {
250eda14cbcSMatt Macy 		a0 += ip[0];
251eda14cbcSMatt Macy 		a1 += ip[1];
252eda14cbcSMatt Macy 		b0 += a0;
253eda14cbcSMatt Macy 		b1 += a1;
254eda14cbcSMatt Macy 	}
255eda14cbcSMatt Macy 
256eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(zcp, a0, a1, b0, b1);
257eda14cbcSMatt Macy 	return (0);
258eda14cbcSMatt Macy }
259eda14cbcSMatt Macy 
260eda14cbcSMatt Macy void
261eda14cbcSMatt Macy fletcher_2_native(const void *buf, uint64_t size,
262eda14cbcSMatt Macy     const void *ctx_template, zio_cksum_t *zcp)
263eda14cbcSMatt Macy {
264*e92ffd9bSMartin Matuska 	(void) ctx_template;
265eda14cbcSMatt Macy 	fletcher_init(zcp);
266eda14cbcSMatt Macy 	(void) fletcher_2_incremental_native((void *) buf, size, zcp);
267eda14cbcSMatt Macy }
268eda14cbcSMatt Macy 
269eda14cbcSMatt Macy int
270eda14cbcSMatt Macy fletcher_2_incremental_byteswap(void *buf, size_t size, void *data)
271eda14cbcSMatt Macy {
272eda14cbcSMatt Macy 	zio_cksum_t *zcp = data;
273eda14cbcSMatt Macy 
274eda14cbcSMatt Macy 	const uint64_t *ip = buf;
275eda14cbcSMatt Macy 	const uint64_t *ipend = ip + (size / sizeof (uint64_t));
276eda14cbcSMatt Macy 	uint64_t a0, b0, a1, b1;
277eda14cbcSMatt Macy 
278eda14cbcSMatt Macy 	a0 = zcp->zc_word[0];
279eda14cbcSMatt Macy 	a1 = zcp->zc_word[1];
280eda14cbcSMatt Macy 	b0 = zcp->zc_word[2];
281eda14cbcSMatt Macy 	b1 = zcp->zc_word[3];
282eda14cbcSMatt Macy 
283eda14cbcSMatt Macy 	for (; ip < ipend; ip += 2) {
284eda14cbcSMatt Macy 		a0 += BSWAP_64(ip[0]);
285eda14cbcSMatt Macy 		a1 += BSWAP_64(ip[1]);
286eda14cbcSMatt Macy 		b0 += a0;
287eda14cbcSMatt Macy 		b1 += a1;
288eda14cbcSMatt Macy 	}
289eda14cbcSMatt Macy 
290eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(zcp, a0, a1, b0, b1);
291eda14cbcSMatt Macy 	return (0);
292eda14cbcSMatt Macy }
293eda14cbcSMatt Macy 
294eda14cbcSMatt Macy void
295eda14cbcSMatt Macy fletcher_2_byteswap(const void *buf, uint64_t size,
296eda14cbcSMatt Macy     const void *ctx_template, zio_cksum_t *zcp)
297eda14cbcSMatt Macy {
298*e92ffd9bSMartin Matuska 	(void) ctx_template;
299eda14cbcSMatt Macy 	fletcher_init(zcp);
300eda14cbcSMatt Macy 	(void) fletcher_2_incremental_byteswap((void *) buf, size, zcp);
301eda14cbcSMatt Macy }
302eda14cbcSMatt Macy 
303eda14cbcSMatt Macy static void
304eda14cbcSMatt Macy fletcher_4_scalar_init(fletcher_4_ctx_t *ctx)
305eda14cbcSMatt Macy {
306eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(&ctx->scalar, 0, 0, 0, 0);
307eda14cbcSMatt Macy }
308eda14cbcSMatt Macy 
309eda14cbcSMatt Macy static void
310eda14cbcSMatt Macy fletcher_4_scalar_fini(fletcher_4_ctx_t *ctx, zio_cksum_t *zcp)
311eda14cbcSMatt Macy {
312eda14cbcSMatt Macy 	memcpy(zcp, &ctx->scalar, sizeof (zio_cksum_t));
313eda14cbcSMatt Macy }
314eda14cbcSMatt Macy 
315eda14cbcSMatt Macy static void
316eda14cbcSMatt Macy fletcher_4_scalar_native(fletcher_4_ctx_t *ctx, const void *buf,
317eda14cbcSMatt Macy     uint64_t size)
318eda14cbcSMatt Macy {
319eda14cbcSMatt Macy 	const uint32_t *ip = buf;
320eda14cbcSMatt Macy 	const uint32_t *ipend = ip + (size / sizeof (uint32_t));
321eda14cbcSMatt Macy 	uint64_t a, b, c, d;
322eda14cbcSMatt Macy 
323eda14cbcSMatt Macy 	a = ctx->scalar.zc_word[0];
324eda14cbcSMatt Macy 	b = ctx->scalar.zc_word[1];
325eda14cbcSMatt Macy 	c = ctx->scalar.zc_word[2];
326eda14cbcSMatt Macy 	d = ctx->scalar.zc_word[3];
327eda14cbcSMatt Macy 
328eda14cbcSMatt Macy 	for (; ip < ipend; ip++) {
329eda14cbcSMatt Macy 		a += ip[0];
330eda14cbcSMatt Macy 		b += a;
331eda14cbcSMatt Macy 		c += b;
332eda14cbcSMatt Macy 		d += c;
333eda14cbcSMatt Macy 	}
334eda14cbcSMatt Macy 
335eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(&ctx->scalar, a, b, c, d);
336eda14cbcSMatt Macy }
337eda14cbcSMatt Macy 
338eda14cbcSMatt Macy static void
339eda14cbcSMatt Macy fletcher_4_scalar_byteswap(fletcher_4_ctx_t *ctx, const void *buf,
340eda14cbcSMatt Macy     uint64_t size)
341eda14cbcSMatt Macy {
342eda14cbcSMatt Macy 	const uint32_t *ip = buf;
343eda14cbcSMatt Macy 	const uint32_t *ipend = ip + (size / sizeof (uint32_t));
344eda14cbcSMatt Macy 	uint64_t a, b, c, d;
345eda14cbcSMatt Macy 
346eda14cbcSMatt Macy 	a = ctx->scalar.zc_word[0];
347eda14cbcSMatt Macy 	b = ctx->scalar.zc_word[1];
348eda14cbcSMatt Macy 	c = ctx->scalar.zc_word[2];
349eda14cbcSMatt Macy 	d = ctx->scalar.zc_word[3];
350eda14cbcSMatt Macy 
351eda14cbcSMatt Macy 	for (; ip < ipend; ip++) {
352eda14cbcSMatt Macy 		a += BSWAP_32(ip[0]);
353eda14cbcSMatt Macy 		b += a;
354eda14cbcSMatt Macy 		c += b;
355eda14cbcSMatt Macy 		d += c;
356eda14cbcSMatt Macy 	}
357eda14cbcSMatt Macy 
358eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(&ctx->scalar, a, b, c, d);
359eda14cbcSMatt Macy }
360eda14cbcSMatt Macy 
361eda14cbcSMatt Macy static boolean_t
362eda14cbcSMatt Macy fletcher_4_scalar_valid(void)
363eda14cbcSMatt Macy {
364eda14cbcSMatt Macy 	return (B_TRUE);
365eda14cbcSMatt Macy }
366eda14cbcSMatt Macy 
367eda14cbcSMatt Macy int
368eda14cbcSMatt Macy fletcher_4_impl_set(const char *val)
369eda14cbcSMatt Macy {
370eda14cbcSMatt Macy 	int err = -EINVAL;
371eda14cbcSMatt Macy 	uint32_t impl = IMPL_READ(fletcher_4_impl_chosen);
372eda14cbcSMatt Macy 	size_t i, val_len;
373eda14cbcSMatt Macy 
374eda14cbcSMatt Macy 	val_len = strlen(val);
375eda14cbcSMatt Macy 	while ((val_len > 0) && !!isspace(val[val_len-1])) /* trim '\n' */
376eda14cbcSMatt Macy 		val_len--;
377eda14cbcSMatt Macy 
378eda14cbcSMatt Macy 	/* check mandatory implementations */
379eda14cbcSMatt Macy 	for (i = 0; i < ARRAY_SIZE(fletcher_4_impl_selectors); i++) {
380eda14cbcSMatt Macy 		const char *name = fletcher_4_impl_selectors[i].fis_name;
381eda14cbcSMatt Macy 
382eda14cbcSMatt Macy 		if (val_len == strlen(name) &&
383eda14cbcSMatt Macy 		    strncmp(val, name, val_len) == 0) {
384eda14cbcSMatt Macy 			impl = fletcher_4_impl_selectors[i].fis_sel;
385eda14cbcSMatt Macy 			err = 0;
386eda14cbcSMatt Macy 			break;
387eda14cbcSMatt Macy 		}
388eda14cbcSMatt Macy 	}
389eda14cbcSMatt Macy 
390eda14cbcSMatt Macy 	if (err != 0 && fletcher_4_initialized) {
391eda14cbcSMatt Macy 		/* check all supported implementations */
392eda14cbcSMatt Macy 		for (i = 0; i < fletcher_4_supp_impls_cnt; i++) {
393eda14cbcSMatt Macy 			const char *name = fletcher_4_supp_impls[i]->name;
394eda14cbcSMatt Macy 
395eda14cbcSMatt Macy 			if (val_len == strlen(name) &&
396eda14cbcSMatt Macy 			    strncmp(val, name, val_len) == 0) {
397eda14cbcSMatt Macy 				impl = i;
398eda14cbcSMatt Macy 				err = 0;
399eda14cbcSMatt Macy 				break;
400eda14cbcSMatt Macy 			}
401eda14cbcSMatt Macy 		}
402eda14cbcSMatt Macy 	}
403eda14cbcSMatt Macy 
404eda14cbcSMatt Macy 	if (err == 0) {
405eda14cbcSMatt Macy 		atomic_swap_32(&fletcher_4_impl_chosen, impl);
406eda14cbcSMatt Macy 		membar_producer();
407eda14cbcSMatt Macy 	}
408eda14cbcSMatt Macy 
409eda14cbcSMatt Macy 	return (err);
410eda14cbcSMatt Macy }
411eda14cbcSMatt Macy 
412eda14cbcSMatt Macy /*
413eda14cbcSMatt Macy  * Returns the Fletcher 4 operations for checksums.   When a SIMD
414eda14cbcSMatt Macy  * implementation is not allowed in the current context, then fallback
415eda14cbcSMatt Macy  * to the fastest generic implementation.
416eda14cbcSMatt Macy  */
417eda14cbcSMatt Macy static inline const fletcher_4_ops_t *
418eda14cbcSMatt Macy fletcher_4_impl_get(void)
419eda14cbcSMatt Macy {
420eda14cbcSMatt Macy 	if (!kfpu_allowed())
421eda14cbcSMatt Macy 		return (&fletcher_4_superscalar4_ops);
422eda14cbcSMatt Macy 
423eda14cbcSMatt Macy 	const fletcher_4_ops_t *ops = NULL;
424eda14cbcSMatt Macy 	uint32_t impl = IMPL_READ(fletcher_4_impl_chosen);
425eda14cbcSMatt Macy 
426eda14cbcSMatt Macy 	switch (impl) {
427eda14cbcSMatt Macy 	case IMPL_FASTEST:
428eda14cbcSMatt Macy 		ASSERT(fletcher_4_initialized);
429eda14cbcSMatt Macy 		ops = &fletcher_4_fastest_impl;
430eda14cbcSMatt Macy 		break;
431eda14cbcSMatt Macy 	case IMPL_CYCLE:
432eda14cbcSMatt Macy 		/* Cycle through supported implementations */
433eda14cbcSMatt Macy 		ASSERT(fletcher_4_initialized);
434eda14cbcSMatt Macy 		ASSERT3U(fletcher_4_supp_impls_cnt, >, 0);
435eda14cbcSMatt Macy 		static uint32_t cycle_count = 0;
436eda14cbcSMatt Macy 		uint32_t idx = (++cycle_count) % fletcher_4_supp_impls_cnt;
437eda14cbcSMatt Macy 		ops = fletcher_4_supp_impls[idx];
438eda14cbcSMatt Macy 		break;
439eda14cbcSMatt Macy 	default:
440eda14cbcSMatt Macy 		ASSERT3U(fletcher_4_supp_impls_cnt, >, 0);
441eda14cbcSMatt Macy 		ASSERT3U(impl, <, fletcher_4_supp_impls_cnt);
442eda14cbcSMatt Macy 		ops = fletcher_4_supp_impls[impl];
443eda14cbcSMatt Macy 		break;
444eda14cbcSMatt Macy 	}
445eda14cbcSMatt Macy 
446eda14cbcSMatt Macy 	ASSERT3P(ops, !=, NULL);
447eda14cbcSMatt Macy 
448eda14cbcSMatt Macy 	return (ops);
449eda14cbcSMatt Macy }
450eda14cbcSMatt Macy 
451eda14cbcSMatt Macy static inline void
452eda14cbcSMatt Macy fletcher_4_native_impl(const void *buf, uint64_t size, zio_cksum_t *zcp)
453eda14cbcSMatt Macy {
454eda14cbcSMatt Macy 	fletcher_4_ctx_t ctx;
455eda14cbcSMatt Macy 	const fletcher_4_ops_t *ops = fletcher_4_impl_get();
456eda14cbcSMatt Macy 
457eda14cbcSMatt Macy 	ops->init_native(&ctx);
458eda14cbcSMatt Macy 	ops->compute_native(&ctx, buf, size);
459eda14cbcSMatt Macy 	ops->fini_native(&ctx, zcp);
460eda14cbcSMatt Macy }
461eda14cbcSMatt Macy 
462eda14cbcSMatt Macy void
463eda14cbcSMatt Macy fletcher_4_native(const void *buf, uint64_t size,
464eda14cbcSMatt Macy     const void *ctx_template, zio_cksum_t *zcp)
465eda14cbcSMatt Macy {
466*e92ffd9bSMartin Matuska 	(void) ctx_template;
467eda14cbcSMatt Macy 	const uint64_t p2size = P2ALIGN(size, FLETCHER_MIN_SIMD_SIZE);
468eda14cbcSMatt Macy 
469eda14cbcSMatt Macy 	ASSERT(IS_P2ALIGNED(size, sizeof (uint32_t)));
470eda14cbcSMatt Macy 
471eda14cbcSMatt Macy 	if (size == 0 || p2size == 0) {
472eda14cbcSMatt Macy 		ZIO_SET_CHECKSUM(zcp, 0, 0, 0, 0);
473eda14cbcSMatt Macy 
474eda14cbcSMatt Macy 		if (size > 0)
475eda14cbcSMatt Macy 			fletcher_4_scalar_native((fletcher_4_ctx_t *)zcp,
476eda14cbcSMatt Macy 			    buf, size);
477eda14cbcSMatt Macy 	} else {
478eda14cbcSMatt Macy 		fletcher_4_native_impl(buf, p2size, zcp);
479eda14cbcSMatt Macy 
480eda14cbcSMatt Macy 		if (p2size < size)
481eda14cbcSMatt Macy 			fletcher_4_scalar_native((fletcher_4_ctx_t *)zcp,
482eda14cbcSMatt Macy 			    (char *)buf + p2size, size - p2size);
483eda14cbcSMatt Macy 	}
484eda14cbcSMatt Macy }
485eda14cbcSMatt Macy 
486eda14cbcSMatt Macy void
487eda14cbcSMatt Macy fletcher_4_native_varsize(const void *buf, uint64_t size, zio_cksum_t *zcp)
488eda14cbcSMatt Macy {
489eda14cbcSMatt Macy 	ZIO_SET_CHECKSUM(zcp, 0, 0, 0, 0);
490eda14cbcSMatt Macy 	fletcher_4_scalar_native((fletcher_4_ctx_t *)zcp, buf, size);
491eda14cbcSMatt Macy }
492eda14cbcSMatt Macy 
493eda14cbcSMatt Macy static inline void
494eda14cbcSMatt Macy fletcher_4_byteswap_impl(const void *buf, uint64_t size, zio_cksum_t *zcp)
495eda14cbcSMatt Macy {
496eda14cbcSMatt Macy 	fletcher_4_ctx_t ctx;
497eda14cbcSMatt Macy 	const fletcher_4_ops_t *ops = fletcher_4_impl_get();
498eda14cbcSMatt Macy 
499eda14cbcSMatt Macy 	ops->init_byteswap(&ctx);
500eda14cbcSMatt Macy 	ops->compute_byteswap(&ctx, buf, size);
501eda14cbcSMatt Macy 	ops->fini_byteswap(&ctx, zcp);
502eda14cbcSMatt Macy }
503eda14cbcSMatt Macy 
504eda14cbcSMatt Macy void
505eda14cbcSMatt Macy fletcher_4_byteswap(const void *buf, uint64_t size,
506eda14cbcSMatt Macy     const void *ctx_template, zio_cksum_t *zcp)
507eda14cbcSMatt Macy {
508*e92ffd9bSMartin Matuska 	(void) ctx_template;
509eda14cbcSMatt Macy 	const uint64_t p2size = P2ALIGN(size, FLETCHER_MIN_SIMD_SIZE);
510eda14cbcSMatt Macy 
511eda14cbcSMatt Macy 	ASSERT(IS_P2ALIGNED(size, sizeof (uint32_t)));
512eda14cbcSMatt Macy 
513eda14cbcSMatt Macy 	if (size == 0 || p2size == 0) {
514eda14cbcSMatt Macy 		ZIO_SET_CHECKSUM(zcp, 0, 0, 0, 0);
515eda14cbcSMatt Macy 
516eda14cbcSMatt Macy 		if (size > 0)
517eda14cbcSMatt Macy 			fletcher_4_scalar_byteswap((fletcher_4_ctx_t *)zcp,
518eda14cbcSMatt Macy 			    buf, size);
519eda14cbcSMatt Macy 	} else {
520eda14cbcSMatt Macy 		fletcher_4_byteswap_impl(buf, p2size, zcp);
521eda14cbcSMatt Macy 
522eda14cbcSMatt Macy 		if (p2size < size)
523eda14cbcSMatt Macy 			fletcher_4_scalar_byteswap((fletcher_4_ctx_t *)zcp,
524eda14cbcSMatt Macy 			    (char *)buf + p2size, size - p2size);
525eda14cbcSMatt Macy 	}
526eda14cbcSMatt Macy }
527eda14cbcSMatt Macy 
528eda14cbcSMatt Macy /* Incremental Fletcher 4 */
529eda14cbcSMatt Macy 
530eda14cbcSMatt Macy #define	ZFS_FLETCHER_4_INC_MAX_SIZE	(8ULL << 20)
531eda14cbcSMatt Macy 
532eda14cbcSMatt Macy static inline void
533eda14cbcSMatt Macy fletcher_4_incremental_combine(zio_cksum_t *zcp, const uint64_t size,
534eda14cbcSMatt Macy     const zio_cksum_t *nzcp)
535eda14cbcSMatt Macy {
536eda14cbcSMatt Macy 	const uint64_t c1 = size / sizeof (uint32_t);
537eda14cbcSMatt Macy 	const uint64_t c2 = c1 * (c1 + 1) / 2;
538eda14cbcSMatt Macy 	const uint64_t c3 = c2 * (c1 + 2) / 3;
539eda14cbcSMatt Macy 
540eda14cbcSMatt Macy 	/*
541eda14cbcSMatt Macy 	 * Value of 'c3' overflows on buffer sizes close to 16MiB. For that
542eda14cbcSMatt Macy 	 * reason we split incremental fletcher4 computation of large buffers
543eda14cbcSMatt Macy 	 * to steps of (ZFS_FLETCHER_4_INC_MAX_SIZE) size.
544eda14cbcSMatt Macy 	 */
545eda14cbcSMatt Macy 	ASSERT3U(size, <=, ZFS_FLETCHER_4_INC_MAX_SIZE);
546eda14cbcSMatt Macy 
547eda14cbcSMatt Macy 	zcp->zc_word[3] += nzcp->zc_word[3] + c1 * zcp->zc_word[2] +
548eda14cbcSMatt Macy 	    c2 * zcp->zc_word[1] + c3 * zcp->zc_word[0];
549eda14cbcSMatt Macy 	zcp->zc_word[2] += nzcp->zc_word[2] + c1 * zcp->zc_word[1] +
550eda14cbcSMatt Macy 	    c2 * zcp->zc_word[0];
551eda14cbcSMatt Macy 	zcp->zc_word[1] += nzcp->zc_word[1] + c1 * zcp->zc_word[0];
552eda14cbcSMatt Macy 	zcp->zc_word[0] += nzcp->zc_word[0];
553eda14cbcSMatt Macy }
554eda14cbcSMatt Macy 
555eda14cbcSMatt Macy static inline void
556eda14cbcSMatt Macy fletcher_4_incremental_impl(boolean_t native, const void *buf, uint64_t size,
557eda14cbcSMatt Macy     zio_cksum_t *zcp)
558eda14cbcSMatt Macy {
559eda14cbcSMatt Macy 	while (size > 0) {
560eda14cbcSMatt Macy 		zio_cksum_t nzc;
561eda14cbcSMatt Macy 		uint64_t len = MIN(size, ZFS_FLETCHER_4_INC_MAX_SIZE);
562eda14cbcSMatt Macy 
563eda14cbcSMatt Macy 		if (native)
564eda14cbcSMatt Macy 			fletcher_4_native(buf, len, NULL, &nzc);
565eda14cbcSMatt Macy 		else
566eda14cbcSMatt Macy 			fletcher_4_byteswap(buf, len, NULL, &nzc);
567eda14cbcSMatt Macy 
568eda14cbcSMatt Macy 		fletcher_4_incremental_combine(zcp, len, &nzc);
569eda14cbcSMatt Macy 
570eda14cbcSMatt Macy 		size -= len;
571eda14cbcSMatt Macy 		buf += len;
572eda14cbcSMatt Macy 	}
573eda14cbcSMatt Macy }
574eda14cbcSMatt Macy 
575eda14cbcSMatt Macy int
576eda14cbcSMatt Macy fletcher_4_incremental_native(void *buf, size_t size, void *data)
577eda14cbcSMatt Macy {
578eda14cbcSMatt Macy 	zio_cksum_t *zcp = data;
579eda14cbcSMatt Macy 	/* Use scalar impl to directly update cksum of small blocks */
580eda14cbcSMatt Macy 	if (size < SPA_MINBLOCKSIZE)
581eda14cbcSMatt Macy 		fletcher_4_scalar_native((fletcher_4_ctx_t *)zcp, buf, size);
582eda14cbcSMatt Macy 	else
583eda14cbcSMatt Macy 		fletcher_4_incremental_impl(B_TRUE, buf, size, zcp);
584eda14cbcSMatt Macy 	return (0);
585eda14cbcSMatt Macy }
586eda14cbcSMatt Macy 
587eda14cbcSMatt Macy int
588eda14cbcSMatt Macy fletcher_4_incremental_byteswap(void *buf, size_t size, void *data)
589eda14cbcSMatt Macy {
590eda14cbcSMatt Macy 	zio_cksum_t *zcp = data;
591eda14cbcSMatt Macy 	/* Use scalar impl to directly update cksum of small blocks */
592eda14cbcSMatt Macy 	if (size < SPA_MINBLOCKSIZE)
593eda14cbcSMatt Macy 		fletcher_4_scalar_byteswap((fletcher_4_ctx_t *)zcp, buf, size);
594eda14cbcSMatt Macy 	else
595eda14cbcSMatt Macy 		fletcher_4_incremental_impl(B_FALSE, buf, size, zcp);
596eda14cbcSMatt Macy 	return (0);
597eda14cbcSMatt Macy }
598eda14cbcSMatt Macy 
599eda14cbcSMatt Macy #if defined(_KERNEL)
600eda14cbcSMatt Macy /*
601eda14cbcSMatt Macy  * Fletcher 4 kstats
602eda14cbcSMatt Macy  */
603eda14cbcSMatt Macy static int
604eda14cbcSMatt Macy fletcher_4_kstat_headers(char *buf, size_t size)
605eda14cbcSMatt Macy {
606eda14cbcSMatt Macy 	ssize_t off = 0;
607eda14cbcSMatt Macy 
608eda14cbcSMatt Macy 	off += snprintf(buf + off, size, "%-17s", "implementation");
609eda14cbcSMatt Macy 	off += snprintf(buf + off, size - off, "%-15s", "native");
610eda14cbcSMatt Macy 	(void) snprintf(buf + off, size - off, "%-15s\n", "byteswap");
611eda14cbcSMatt Macy 
612eda14cbcSMatt Macy 	return (0);
613eda14cbcSMatt Macy }
614eda14cbcSMatt Macy 
615eda14cbcSMatt Macy static int
616eda14cbcSMatt Macy fletcher_4_kstat_data(char *buf, size_t size, void *data)
617eda14cbcSMatt Macy {
618eda14cbcSMatt Macy 	struct fletcher_4_kstat *fastest_stat =
619eda14cbcSMatt Macy 	    &fletcher_4_stat_data[fletcher_4_supp_impls_cnt];
620eda14cbcSMatt Macy 	struct fletcher_4_kstat *curr_stat = (struct fletcher_4_kstat *)data;
621eda14cbcSMatt Macy 	ssize_t off = 0;
622eda14cbcSMatt Macy 
623eda14cbcSMatt Macy 	if (curr_stat == fastest_stat) {
624eda14cbcSMatt Macy 		off += snprintf(buf + off, size - off, "%-17s", "fastest");
625eda14cbcSMatt Macy 		off += snprintf(buf + off, size - off, "%-15s",
626eda14cbcSMatt Macy 		    fletcher_4_supp_impls[fastest_stat->native]->name);
627eda14cbcSMatt Macy 		off += snprintf(buf + off, size - off, "%-15s\n",
628eda14cbcSMatt Macy 		    fletcher_4_supp_impls[fastest_stat->byteswap]->name);
629eda14cbcSMatt Macy 	} else {
630eda14cbcSMatt Macy 		ptrdiff_t id = curr_stat - fletcher_4_stat_data;
631eda14cbcSMatt Macy 
632eda14cbcSMatt Macy 		off += snprintf(buf + off, size - off, "%-17s",
633eda14cbcSMatt Macy 		    fletcher_4_supp_impls[id]->name);
634eda14cbcSMatt Macy 		off += snprintf(buf + off, size - off, "%-15llu",
635eda14cbcSMatt Macy 		    (u_longlong_t)curr_stat->native);
636eda14cbcSMatt Macy 		off += snprintf(buf + off, size - off, "%-15llu\n",
637eda14cbcSMatt Macy 		    (u_longlong_t)curr_stat->byteswap);
638eda14cbcSMatt Macy 	}
639eda14cbcSMatt Macy 
640eda14cbcSMatt Macy 	return (0);
641eda14cbcSMatt Macy }
642eda14cbcSMatt Macy 
643eda14cbcSMatt Macy static void *
644eda14cbcSMatt Macy fletcher_4_kstat_addr(kstat_t *ksp, loff_t n)
645eda14cbcSMatt Macy {
646eda14cbcSMatt Macy 	if (n <= fletcher_4_supp_impls_cnt)
647eda14cbcSMatt Macy 		ksp->ks_private = (void *) (fletcher_4_stat_data + n);
648eda14cbcSMatt Macy 	else
649eda14cbcSMatt Macy 		ksp->ks_private = NULL;
650eda14cbcSMatt Macy 
651eda14cbcSMatt Macy 	return (ksp->ks_private);
652eda14cbcSMatt Macy }
653eda14cbcSMatt Macy #endif
654eda14cbcSMatt Macy 
655eda14cbcSMatt Macy #define	FLETCHER_4_FASTEST_FN_COPY(type, src)				  \
656eda14cbcSMatt Macy {									  \
657eda14cbcSMatt Macy 	fletcher_4_fastest_impl.init_ ## type = src->init_ ## type;	  \
658eda14cbcSMatt Macy 	fletcher_4_fastest_impl.fini_ ## type = src->fini_ ## type;	  \
659eda14cbcSMatt Macy 	fletcher_4_fastest_impl.compute_ ## type = src->compute_ ## type; \
660eda14cbcSMatt Macy }
661eda14cbcSMatt Macy 
6627877fdebSMatt Macy #define	FLETCHER_4_BENCH_NS	(MSEC2NSEC(1))		/* 1ms */
663eda14cbcSMatt Macy 
664eda14cbcSMatt Macy typedef void fletcher_checksum_func_t(const void *, uint64_t, const void *,
665eda14cbcSMatt Macy 					zio_cksum_t *);
666eda14cbcSMatt Macy 
667eda14cbcSMatt Macy #if defined(_KERNEL)
668eda14cbcSMatt Macy static void
669eda14cbcSMatt Macy fletcher_4_benchmark_impl(boolean_t native, char *data, uint64_t data_size)
670eda14cbcSMatt Macy {
671eda14cbcSMatt Macy 
672eda14cbcSMatt Macy 	struct fletcher_4_kstat *fastest_stat =
673eda14cbcSMatt Macy 	    &fletcher_4_stat_data[fletcher_4_supp_impls_cnt];
674eda14cbcSMatt Macy 	hrtime_t start;
675eda14cbcSMatt Macy 	uint64_t run_bw, run_time_ns, best_run = 0;
676eda14cbcSMatt Macy 	zio_cksum_t zc;
677eda14cbcSMatt Macy 	uint32_t i, l, sel_save = IMPL_READ(fletcher_4_impl_chosen);
678eda14cbcSMatt Macy 
679eda14cbcSMatt Macy 	fletcher_checksum_func_t *fletcher_4_test = native ?
680eda14cbcSMatt Macy 	    fletcher_4_native : fletcher_4_byteswap;
681eda14cbcSMatt Macy 
682eda14cbcSMatt Macy 	for (i = 0; i < fletcher_4_supp_impls_cnt; i++) {
683eda14cbcSMatt Macy 		struct fletcher_4_kstat *stat = &fletcher_4_stat_data[i];
684eda14cbcSMatt Macy 		uint64_t run_count = 0;
685eda14cbcSMatt Macy 
686eda14cbcSMatt Macy 		/* temporary set an implementation */
687eda14cbcSMatt Macy 		fletcher_4_impl_chosen = i;
688eda14cbcSMatt Macy 
689eda14cbcSMatt Macy 		kpreempt_disable();
690eda14cbcSMatt Macy 		start = gethrtime();
691eda14cbcSMatt Macy 		do {
692eda14cbcSMatt Macy 			for (l = 0; l < 32; l++, run_count++)
693eda14cbcSMatt Macy 				fletcher_4_test(data, data_size, NULL, &zc);
694eda14cbcSMatt Macy 
695eda14cbcSMatt Macy 			run_time_ns = gethrtime() - start;
696eda14cbcSMatt Macy 		} while (run_time_ns < FLETCHER_4_BENCH_NS);
697eda14cbcSMatt Macy 		kpreempt_enable();
698eda14cbcSMatt Macy 
699eda14cbcSMatt Macy 		run_bw = data_size * run_count * NANOSEC;
700eda14cbcSMatt Macy 		run_bw /= run_time_ns;	/* B/s */
701eda14cbcSMatt Macy 
702eda14cbcSMatt Macy 		if (native)
703eda14cbcSMatt Macy 			stat->native = run_bw;
704eda14cbcSMatt Macy 		else
705eda14cbcSMatt Macy 			stat->byteswap = run_bw;
706eda14cbcSMatt Macy 
707eda14cbcSMatt Macy 		if (run_bw > best_run) {
708eda14cbcSMatt Macy 			best_run = run_bw;
709eda14cbcSMatt Macy 
710eda14cbcSMatt Macy 			if (native) {
711eda14cbcSMatt Macy 				fastest_stat->native = i;
712eda14cbcSMatt Macy 				FLETCHER_4_FASTEST_FN_COPY(native,
713eda14cbcSMatt Macy 				    fletcher_4_supp_impls[i]);
714eda14cbcSMatt Macy 			} else {
715eda14cbcSMatt Macy 				fastest_stat->byteswap = i;
716eda14cbcSMatt Macy 				FLETCHER_4_FASTEST_FN_COPY(byteswap,
717eda14cbcSMatt Macy 				    fletcher_4_supp_impls[i]);
718eda14cbcSMatt Macy 			}
719eda14cbcSMatt Macy 		}
720eda14cbcSMatt Macy 	}
721eda14cbcSMatt Macy 
722eda14cbcSMatt Macy 	/* restore original selection */
723eda14cbcSMatt Macy 	atomic_swap_32(&fletcher_4_impl_chosen, sel_save);
724eda14cbcSMatt Macy }
725eda14cbcSMatt Macy #endif /* _KERNEL */
726eda14cbcSMatt Macy 
727eda14cbcSMatt Macy /*
728eda14cbcSMatt Macy  * Initialize and benchmark all supported implementations.
729eda14cbcSMatt Macy  */
730eda14cbcSMatt Macy static void
731eda14cbcSMatt Macy fletcher_4_benchmark(void)
732eda14cbcSMatt Macy {
733eda14cbcSMatt Macy 	fletcher_4_ops_t *curr_impl;
734eda14cbcSMatt Macy 	int i, c;
735eda14cbcSMatt Macy 
736eda14cbcSMatt Macy 	/* Move supported implementations into fletcher_4_supp_impls */
737eda14cbcSMatt Macy 	for (i = 0, c = 0; i < ARRAY_SIZE(fletcher_4_impls); i++) {
738eda14cbcSMatt Macy 		curr_impl = (fletcher_4_ops_t *)fletcher_4_impls[i];
739eda14cbcSMatt Macy 
740eda14cbcSMatt Macy 		if (curr_impl->valid && curr_impl->valid())
741eda14cbcSMatt Macy 			fletcher_4_supp_impls[c++] = curr_impl;
742eda14cbcSMatt Macy 	}
743eda14cbcSMatt Macy 	membar_producer();	/* complete fletcher_4_supp_impls[] init */
744eda14cbcSMatt Macy 	fletcher_4_supp_impls_cnt = c;	/* number of supported impl */
745eda14cbcSMatt Macy 
746eda14cbcSMatt Macy #if defined(_KERNEL)
747eda14cbcSMatt Macy 	static const size_t data_size = 1 << SPA_OLD_MAXBLOCKSHIFT; /* 128kiB */
748eda14cbcSMatt Macy 	char *databuf = vmem_alloc(data_size, KM_SLEEP);
749eda14cbcSMatt Macy 
750eda14cbcSMatt Macy 	for (i = 0; i < data_size / sizeof (uint64_t); i++)
751eda14cbcSMatt Macy 		((uint64_t *)databuf)[i] = (uintptr_t)(databuf+i); /* warm-up */
752eda14cbcSMatt Macy 
753eda14cbcSMatt Macy 	fletcher_4_benchmark_impl(B_FALSE, databuf, data_size);
754eda14cbcSMatt Macy 	fletcher_4_benchmark_impl(B_TRUE, databuf, data_size);
755eda14cbcSMatt Macy 
756eda14cbcSMatt Macy 	vmem_free(databuf, data_size);
757eda14cbcSMatt Macy #else
758eda14cbcSMatt Macy 	/*
759eda14cbcSMatt Macy 	 * Skip the benchmark in user space to avoid impacting libzpool
760eda14cbcSMatt Macy 	 * consumers (zdb, zhack, zinject, ztest).  The last implementation
761eda14cbcSMatt Macy 	 * is assumed to be the fastest and used by default.
762eda14cbcSMatt Macy 	 */
763eda14cbcSMatt Macy 	memcpy(&fletcher_4_fastest_impl,
764eda14cbcSMatt Macy 	    fletcher_4_supp_impls[fletcher_4_supp_impls_cnt - 1],
765eda14cbcSMatt Macy 	    sizeof (fletcher_4_fastest_impl));
766eda14cbcSMatt Macy 	fletcher_4_fastest_impl.name = "fastest";
767eda14cbcSMatt Macy 	membar_producer();
768eda14cbcSMatt Macy #endif /* _KERNEL */
769eda14cbcSMatt Macy }
770eda14cbcSMatt Macy 
771eda14cbcSMatt Macy void
772eda14cbcSMatt Macy fletcher_4_init(void)
773eda14cbcSMatt Macy {
774eda14cbcSMatt Macy 	/* Determine the fastest available implementation. */
775eda14cbcSMatt Macy 	fletcher_4_benchmark();
776eda14cbcSMatt Macy 
777eda14cbcSMatt Macy #if defined(_KERNEL)
778eda14cbcSMatt Macy 	/* Install kstats for all implementations */
779eda14cbcSMatt Macy 	fletcher_4_kstat = kstat_create("zfs", 0, "fletcher_4_bench", "misc",
780eda14cbcSMatt Macy 	    KSTAT_TYPE_RAW, 0, KSTAT_FLAG_VIRTUAL);
781eda14cbcSMatt Macy 	if (fletcher_4_kstat != NULL) {
782eda14cbcSMatt Macy 		fletcher_4_kstat->ks_data = NULL;
783eda14cbcSMatt Macy 		fletcher_4_kstat->ks_ndata = UINT32_MAX;
784eda14cbcSMatt Macy 		kstat_set_raw_ops(fletcher_4_kstat,
785eda14cbcSMatt Macy 		    fletcher_4_kstat_headers,
786eda14cbcSMatt Macy 		    fletcher_4_kstat_data,
787eda14cbcSMatt Macy 		    fletcher_4_kstat_addr);
788eda14cbcSMatt Macy 		kstat_install(fletcher_4_kstat);
789eda14cbcSMatt Macy 	}
790eda14cbcSMatt Macy #endif
791eda14cbcSMatt Macy 
792eda14cbcSMatt Macy 	/* Finish initialization */
793eda14cbcSMatt Macy 	fletcher_4_initialized = B_TRUE;
794eda14cbcSMatt Macy }
795eda14cbcSMatt Macy 
796eda14cbcSMatt Macy void
797eda14cbcSMatt Macy fletcher_4_fini(void)
798eda14cbcSMatt Macy {
799eda14cbcSMatt Macy #if defined(_KERNEL)
800eda14cbcSMatt Macy 	if (fletcher_4_kstat != NULL) {
801eda14cbcSMatt Macy 		kstat_delete(fletcher_4_kstat);
802eda14cbcSMatt Macy 		fletcher_4_kstat = NULL;
803eda14cbcSMatt Macy 	}
804eda14cbcSMatt Macy #endif
805eda14cbcSMatt Macy }
806eda14cbcSMatt Macy 
807eda14cbcSMatt Macy /* ABD adapters */
808eda14cbcSMatt Macy 
809eda14cbcSMatt Macy static void
810eda14cbcSMatt Macy abd_fletcher_4_init(zio_abd_checksum_data_t *cdp)
811eda14cbcSMatt Macy {
812eda14cbcSMatt Macy 	const fletcher_4_ops_t *ops = fletcher_4_impl_get();
813eda14cbcSMatt Macy 	cdp->acd_private = (void *) ops;
814eda14cbcSMatt Macy 
815eda14cbcSMatt Macy 	if (cdp->acd_byteorder == ZIO_CHECKSUM_NATIVE)
816eda14cbcSMatt Macy 		ops->init_native(cdp->acd_ctx);
817eda14cbcSMatt Macy 	else
818eda14cbcSMatt Macy 		ops->init_byteswap(cdp->acd_ctx);
819eda14cbcSMatt Macy }
820eda14cbcSMatt Macy 
821eda14cbcSMatt Macy static void
822eda14cbcSMatt Macy abd_fletcher_4_fini(zio_abd_checksum_data_t *cdp)
823eda14cbcSMatt Macy {
824eda14cbcSMatt Macy 	fletcher_4_ops_t *ops = (fletcher_4_ops_t *)cdp->acd_private;
825eda14cbcSMatt Macy 
826eda14cbcSMatt Macy 	ASSERT(ops);
827eda14cbcSMatt Macy 
828eda14cbcSMatt Macy 	if (cdp->acd_byteorder == ZIO_CHECKSUM_NATIVE)
829eda14cbcSMatt Macy 		ops->fini_native(cdp->acd_ctx, cdp->acd_zcp);
830eda14cbcSMatt Macy 	else
831eda14cbcSMatt Macy 		ops->fini_byteswap(cdp->acd_ctx, cdp->acd_zcp);
832eda14cbcSMatt Macy }
833eda14cbcSMatt Macy 
834eda14cbcSMatt Macy static void
835eda14cbcSMatt Macy abd_fletcher_4_simd2scalar(boolean_t native, void *data, size_t size,
836eda14cbcSMatt Macy     zio_abd_checksum_data_t *cdp)
837eda14cbcSMatt Macy {
838eda14cbcSMatt Macy 	zio_cksum_t *zcp = cdp->acd_zcp;
839eda14cbcSMatt Macy 
840eda14cbcSMatt Macy 	ASSERT3U(size, <, FLETCHER_MIN_SIMD_SIZE);
841eda14cbcSMatt Macy 
842eda14cbcSMatt Macy 	abd_fletcher_4_fini(cdp);
843eda14cbcSMatt Macy 	cdp->acd_private = (void *)&fletcher_4_scalar_ops;
844eda14cbcSMatt Macy 
845eda14cbcSMatt Macy 	if (native)
846eda14cbcSMatt Macy 		fletcher_4_incremental_native(data, size, zcp);
847eda14cbcSMatt Macy 	else
848eda14cbcSMatt Macy 		fletcher_4_incremental_byteswap(data, size, zcp);
849eda14cbcSMatt Macy }
850eda14cbcSMatt Macy 
851eda14cbcSMatt Macy static int
852eda14cbcSMatt Macy abd_fletcher_4_iter(void *data, size_t size, void *private)
853eda14cbcSMatt Macy {
854eda14cbcSMatt Macy 	zio_abd_checksum_data_t *cdp = (zio_abd_checksum_data_t *)private;
855eda14cbcSMatt Macy 	fletcher_4_ctx_t *ctx = cdp->acd_ctx;
856eda14cbcSMatt Macy 	fletcher_4_ops_t *ops = (fletcher_4_ops_t *)cdp->acd_private;
857eda14cbcSMatt Macy 	boolean_t native = cdp->acd_byteorder == ZIO_CHECKSUM_NATIVE;
858eda14cbcSMatt Macy 	uint64_t asize = P2ALIGN(size, FLETCHER_MIN_SIMD_SIZE);
859eda14cbcSMatt Macy 
860eda14cbcSMatt Macy 	ASSERT(IS_P2ALIGNED(size, sizeof (uint32_t)));
861eda14cbcSMatt Macy 
862eda14cbcSMatt Macy 	if (asize > 0) {
863eda14cbcSMatt Macy 		if (native)
864eda14cbcSMatt Macy 			ops->compute_native(ctx, data, asize);
865eda14cbcSMatt Macy 		else
866eda14cbcSMatt Macy 			ops->compute_byteswap(ctx, data, asize);
867eda14cbcSMatt Macy 
868eda14cbcSMatt Macy 		size -= asize;
869eda14cbcSMatt Macy 		data = (char *)data + asize;
870eda14cbcSMatt Macy 	}
871eda14cbcSMatt Macy 
872eda14cbcSMatt Macy 	if (size > 0) {
873eda14cbcSMatt Macy 		ASSERT3U(size, <, FLETCHER_MIN_SIMD_SIZE);
874eda14cbcSMatt Macy 		/* At this point we have to switch to scalar impl */
875eda14cbcSMatt Macy 		abd_fletcher_4_simd2scalar(native, data, size, cdp);
876eda14cbcSMatt Macy 	}
877eda14cbcSMatt Macy 
878eda14cbcSMatt Macy 	return (0);
879eda14cbcSMatt Macy }
880eda14cbcSMatt Macy 
881eda14cbcSMatt Macy zio_abd_checksum_func_t fletcher_4_abd_ops = {
882eda14cbcSMatt Macy 	.acf_init = abd_fletcher_4_init,
883eda14cbcSMatt Macy 	.acf_fini = abd_fletcher_4_fini,
884eda14cbcSMatt Macy 	.acf_iter = abd_fletcher_4_iter
885eda14cbcSMatt Macy };
886eda14cbcSMatt Macy 
8877877fdebSMatt Macy #if defined(_KERNEL)
888eda14cbcSMatt Macy 
8897877fdebSMatt Macy #define	IMPL_FMT(impl, i)	(((impl) == (i)) ? "[%s] " : "%s ")
8907877fdebSMatt Macy 
8917877fdebSMatt Macy #if defined(__linux__)
892eda14cbcSMatt Macy 
893eda14cbcSMatt Macy static int
894eda14cbcSMatt Macy fletcher_4_param_get(char *buffer, zfs_kernel_param_t *unused)
895eda14cbcSMatt Macy {
896eda14cbcSMatt Macy 	const uint32_t impl = IMPL_READ(fletcher_4_impl_chosen);
897eda14cbcSMatt Macy 	char *fmt;
8987877fdebSMatt Macy 	int cnt = 0;
899eda14cbcSMatt Macy 
900eda14cbcSMatt Macy 	/* list fastest */
9017877fdebSMatt Macy 	fmt = IMPL_FMT(impl, IMPL_FASTEST);
902eda14cbcSMatt Macy 	cnt += sprintf(buffer + cnt, fmt, "fastest");
903eda14cbcSMatt Macy 
904eda14cbcSMatt Macy 	/* list all supported implementations */
9057877fdebSMatt Macy 	for (uint32_t i = 0; i < fletcher_4_supp_impls_cnt; ++i) {
9067877fdebSMatt Macy 		fmt = IMPL_FMT(impl, i);
907eda14cbcSMatt Macy 		cnt += sprintf(buffer + cnt, fmt,
908eda14cbcSMatt Macy 		    fletcher_4_supp_impls[i]->name);
909eda14cbcSMatt Macy 	}
910eda14cbcSMatt Macy 
911eda14cbcSMatt Macy 	return (cnt);
912eda14cbcSMatt Macy }
913eda14cbcSMatt Macy 
914eda14cbcSMatt Macy static int
915eda14cbcSMatt Macy fletcher_4_param_set(const char *val, zfs_kernel_param_t *unused)
916eda14cbcSMatt Macy {
917eda14cbcSMatt Macy 	return (fletcher_4_impl_set(val));
918eda14cbcSMatt Macy }
919eda14cbcSMatt Macy 
9207877fdebSMatt Macy #else
9217877fdebSMatt Macy 
9227877fdebSMatt Macy #include <sys/sbuf.h>
9237877fdebSMatt Macy 
9247877fdebSMatt Macy static int
9257877fdebSMatt Macy fletcher_4_param(ZFS_MODULE_PARAM_ARGS)
9267877fdebSMatt Macy {
9277877fdebSMatt Macy 	int err;
9287877fdebSMatt Macy 
9297877fdebSMatt Macy 	if (req->newptr == NULL) {
9307877fdebSMatt Macy 		const uint32_t impl = IMPL_READ(fletcher_4_impl_chosen);
9317877fdebSMatt Macy 		const int init_buflen = 64;
9327877fdebSMatt Macy 		const char *fmt;
9337877fdebSMatt Macy 		struct sbuf *s;
9347877fdebSMatt Macy 
9357877fdebSMatt Macy 		s = sbuf_new_for_sysctl(NULL, NULL, init_buflen, req);
9367877fdebSMatt Macy 
9377877fdebSMatt Macy 		/* list fastest */
9387877fdebSMatt Macy 		fmt = IMPL_FMT(impl, IMPL_FASTEST);
9397877fdebSMatt Macy 		(void) sbuf_printf(s, fmt, "fastest");
9407877fdebSMatt Macy 
9417877fdebSMatt Macy 		/* list all supported implementations */
9427877fdebSMatt Macy 		for (uint32_t i = 0; i < fletcher_4_supp_impls_cnt; ++i) {
9437877fdebSMatt Macy 			fmt = IMPL_FMT(impl, i);
9447877fdebSMatt Macy 			(void) sbuf_printf(s, fmt,
9457877fdebSMatt Macy 			    fletcher_4_supp_impls[i]->name);
9467877fdebSMatt Macy 		}
9477877fdebSMatt Macy 
9487877fdebSMatt Macy 		err = sbuf_finish(s);
9497877fdebSMatt Macy 		sbuf_delete(s);
9507877fdebSMatt Macy 
9517877fdebSMatt Macy 		return (err);
9527877fdebSMatt Macy 	}
9537877fdebSMatt Macy 
9547877fdebSMatt Macy 	char buf[16];
9557877fdebSMatt Macy 
9567877fdebSMatt Macy 	err = sysctl_handle_string(oidp, buf, sizeof (buf), req);
9577877fdebSMatt Macy 	if (err)
9587877fdebSMatt Macy 		return (err);
9597877fdebSMatt Macy 	return (-fletcher_4_impl_set(buf));
9607877fdebSMatt Macy }
9617877fdebSMatt Macy 
9627877fdebSMatt Macy #endif
9637877fdebSMatt Macy 
9647877fdebSMatt Macy #undef IMPL_FMT
9657877fdebSMatt Macy 
966eda14cbcSMatt Macy /*
967eda14cbcSMatt Macy  * Choose a fletcher 4 implementation in ZFS.
968eda14cbcSMatt Macy  * Users can choose "cycle" to exercise all implementations, but this is
969eda14cbcSMatt Macy  * for testing purpose therefore it can only be set in user space.
970eda14cbcSMatt Macy  */
9717877fdebSMatt Macy /* BEGIN CSTYLED */
9727877fdebSMatt Macy ZFS_MODULE_VIRTUAL_PARAM_CALL(zfs, zfs_, fletcher_4_impl,
9737877fdebSMatt Macy 	fletcher_4_param_set, fletcher_4_param_get, ZMOD_RW,
9747877fdebSMatt Macy 	"Select fletcher 4 implementation.");
9757877fdebSMatt Macy /* END CSTYLED */
976eda14cbcSMatt Macy 
977eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_init);
978eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_2_incremental_native);
979eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_2_incremental_byteswap);
980eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_init);
981eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_fini);
982eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_2_native);
983eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_2_byteswap);
984eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_native);
985eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_native_varsize);
986eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_byteswap);
987eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_incremental_native);
988eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_incremental_byteswap);
989eda14cbcSMatt Macy EXPORT_SYMBOL(fletcher_4_abd_ops);
990eda14cbcSMatt Macy #endif
991