arc4random.c revision 1.50 1 1.50 riastrad /* $NetBSD: arc4random.c,v 1.50 2025/03/11 14:30:27 riastradh Exp $ */
2 1.1 itojun
3 1.26 riastrad /*-
4 1.26 riastrad * Copyright (c) 2014 The NetBSD Foundation, Inc.
5 1.26 riastrad * All rights reserved.
6 1.26 riastrad *
7 1.26 riastrad * This code is derived from software contributed to The NetBSD Foundation
8 1.26 riastrad * by Taylor R. Campbell.
9 1.26 riastrad *
10 1.26 riastrad * Redistribution and use in source and binary forms, with or without
11 1.26 riastrad * modification, are permitted provided that the following conditions
12 1.26 riastrad * are met:
13 1.26 riastrad * 1. Redistributions of source code must retain the above copyright
14 1.26 riastrad * notice, this list of conditions and the following disclaimer.
15 1.26 riastrad * 2. Redistributions in binary form must reproduce the above copyright
16 1.26 riastrad * notice, this list of conditions and the following disclaimer in the
17 1.26 riastrad * documentation and/or other materials provided with the distribution.
18 1.1 itojun *
19 1.26 riastrad * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
20 1.26 riastrad * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
21 1.26 riastrad * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
22 1.26 riastrad * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
23 1.26 riastrad * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
24 1.26 riastrad * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
25 1.26 riastrad * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
26 1.26 riastrad * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
27 1.26 riastrad * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
28 1.26 riastrad * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
29 1.26 riastrad * POSSIBILITY OF SUCH DAMAGE.
30 1.1 itojun */
31 1.1 itojun
32 1.1 itojun /*
33 1.26 riastrad * Legacy arc4random(3) API from OpenBSD reimplemented using the
34 1.26 riastrad * ChaCha20 PRF, with per-thread state.
35 1.26 riastrad *
36 1.26 riastrad * Security model:
37 1.26 riastrad * - An attacker who sees some outputs cannot predict past or future
38 1.26 riastrad * outputs.
39 1.26 riastrad * - An attacker who sees the PRNG state cannot predict past outputs.
40 1.26 riastrad * - An attacker who sees a child's PRNG state cannot predict past or
41 1.26 riastrad * future outputs in the parent, or in other children.
42 1.26 riastrad *
43 1.26 riastrad * The arc4random(3) API may abort the process if:
44 1.1 itojun *
45 1.46 riastrad * (a) the crypto self-test fails, or
46 1.46 riastrad * (b) sysctl(KERN_ARND) fails when reseeding the PRNG.
47 1.1 itojun *
48 1.46 riastrad * The crypto self-test occurs only once, on the first use of any of
49 1.46 riastrad * the arc4random(3) API. KERN_ARND is unlikely to fail later unless
50 1.46 riastrad * the kernel is seriously broken.
51 1.1 itojun */
52 1.1 itojun
53 1.8 lukem #include <sys/cdefs.h>
54 1.50 riastrad __RCSID("$NetBSD: arc4random.c,v 1.50 2025/03/11 14:30:27 riastradh Exp $");
55 1.8 lukem
56 1.7 kleink #include "namespace.h"
57 1.11 tls #include "reentrant.h"
58 1.26 riastrad
59 1.26 riastrad #include <sys/bitops.h>
60 1.26 riastrad #include <sys/endian.h>
61 1.26 riastrad #include <sys/errno.h>
62 1.26 riastrad #include <sys/mman.h>
63 1.26 riastrad #include <sys/sysctl.h>
64 1.26 riastrad
65 1.26 riastrad #include <assert.h>
66 1.26 riastrad #include <sha2.h>
67 1.22 roy #include <stdbool.h>
68 1.26 riastrad #include <stdint.h>
69 1.1 itojun #include <stdlib.h>
70 1.26 riastrad #include <string.h>
71 1.1 itojun #include <unistd.h>
72 1.1 itojun
73 1.37 riastrad #include "arc4random.h"
74 1.37 riastrad #include "reentrant.h"
75 1.37 riastrad
76 1.7 kleink #ifdef __weak_alias
77 1.7 kleink __weak_alias(arc4random,_arc4random)
78 1.20 dsl __weak_alias(arc4random_addrandom,_arc4random_addrandom)
79 1.20 dsl __weak_alias(arc4random_buf,_arc4random_buf)
80 1.20 dsl __weak_alias(arc4random_stir,_arc4random_stir)
81 1.20 dsl __weak_alias(arc4random_uniform,_arc4random_uniform)
82 1.7 kleink #endif
83 1.7 kleink
84 1.26 riastrad /*
85 1.26 riastrad * For standard ChaCha, use le32dec/le32enc. We don't need that for
86 1.26 riastrad * the purposes of a nondeterministic random number generator -- we
87 1.26 riastrad * don't need to be bit-for-bit compatible over any wire.
88 1.26 riastrad */
89 1.26 riastrad
90 1.26 riastrad static inline uint32_t
91 1.26 riastrad crypto_le32dec(const void *p)
92 1.26 riastrad {
93 1.26 riastrad uint32_t v;
94 1.26 riastrad
95 1.26 riastrad (void)memcpy(&v, p, sizeof v);
96 1.23 apb
97 1.26 riastrad return v;
98 1.26 riastrad }
99 1.26 riastrad
100 1.26 riastrad static inline void
101 1.26 riastrad crypto_le32enc(void *p, uint32_t v)
102 1.26 riastrad {
103 1.26 riastrad
104 1.26 riastrad (void)memcpy(p, &v, sizeof v);
105 1.26 riastrad }
106 1.26 riastrad
107 1.26 riastrad /* ChaCha core */
108 1.26 riastrad
109 1.26 riastrad #define crypto_core_OUTPUTBYTES 64
110 1.26 riastrad #define crypto_core_INPUTBYTES 16
111 1.26 riastrad #define crypto_core_KEYBYTES 32
112 1.26 riastrad #define crypto_core_CONSTBYTES 16
113 1.26 riastrad
114 1.28 riastrad #define crypto_core_ROUNDS 20
115 1.26 riastrad
116 1.26 riastrad static uint32_t
117 1.26 riastrad rotate(uint32_t u, unsigned c)
118 1.26 riastrad {
119 1.26 riastrad
120 1.26 riastrad return (u << c) | (u >> (32 - c));
121 1.26 riastrad }
122 1.26 riastrad
123 1.26 riastrad #define QUARTERROUND(a, b, c, d) do { \
124 1.26 riastrad (a) += (b); (d) ^= (a); (d) = rotate((d), 16); \
125 1.26 riastrad (c) += (d); (b) ^= (c); (b) = rotate((b), 12); \
126 1.26 riastrad (a) += (b); (d) ^= (a); (d) = rotate((d), 8); \
127 1.26 riastrad (c) += (d); (b) ^= (c); (b) = rotate((b), 7); \
128 1.33 rillig } while (0)
129 1.26 riastrad
130 1.34 christos static const uint8_t crypto_core_constant32[16] = "expand 32-byte k";
131 1.26 riastrad
132 1.26 riastrad static void
133 1.26 riastrad crypto_core(uint8_t *out, const uint8_t *in, const uint8_t *k,
134 1.26 riastrad const uint8_t *c)
135 1.26 riastrad {
136 1.26 riastrad uint32_t x0,x1,x2,x3,x4,x5,x6,x7,x8,x9,x10,x11,x12,x13,x14,x15;
137 1.26 riastrad uint32_t j0,j1,j2,j3,j4,j5,j6,j7,j8,j9,j10,j11,j12,j13,j14,j15;
138 1.26 riastrad int i;
139 1.26 riastrad
140 1.26 riastrad j0 = x0 = crypto_le32dec(c + 0);
141 1.26 riastrad j1 = x1 = crypto_le32dec(c + 4);
142 1.26 riastrad j2 = x2 = crypto_le32dec(c + 8);
143 1.26 riastrad j3 = x3 = crypto_le32dec(c + 12);
144 1.26 riastrad j4 = x4 = crypto_le32dec(k + 0);
145 1.26 riastrad j5 = x5 = crypto_le32dec(k + 4);
146 1.26 riastrad j6 = x6 = crypto_le32dec(k + 8);
147 1.26 riastrad j7 = x7 = crypto_le32dec(k + 12);
148 1.26 riastrad j8 = x8 = crypto_le32dec(k + 16);
149 1.26 riastrad j9 = x9 = crypto_le32dec(k + 20);
150 1.26 riastrad j10 = x10 = crypto_le32dec(k + 24);
151 1.26 riastrad j11 = x11 = crypto_le32dec(k + 28);
152 1.26 riastrad j12 = x12 = crypto_le32dec(in + 0);
153 1.26 riastrad j13 = x13 = crypto_le32dec(in + 4);
154 1.26 riastrad j14 = x14 = crypto_le32dec(in + 8);
155 1.26 riastrad j15 = x15 = crypto_le32dec(in + 12);
156 1.26 riastrad
157 1.26 riastrad for (i = crypto_core_ROUNDS; i > 0; i -= 2) {
158 1.26 riastrad QUARTERROUND( x0, x4, x8,x12);
159 1.26 riastrad QUARTERROUND( x1, x5, x9,x13);
160 1.26 riastrad QUARTERROUND( x2, x6,x10,x14);
161 1.26 riastrad QUARTERROUND( x3, x7,x11,x15);
162 1.26 riastrad QUARTERROUND( x0, x5,x10,x15);
163 1.26 riastrad QUARTERROUND( x1, x6,x11,x12);
164 1.26 riastrad QUARTERROUND( x2, x7, x8,x13);
165 1.26 riastrad QUARTERROUND( x3, x4, x9,x14);
166 1.26 riastrad }
167 1.26 riastrad
168 1.26 riastrad crypto_le32enc(out + 0, x0 + j0);
169 1.26 riastrad crypto_le32enc(out + 4, x1 + j1);
170 1.26 riastrad crypto_le32enc(out + 8, x2 + j2);
171 1.26 riastrad crypto_le32enc(out + 12, x3 + j3);
172 1.26 riastrad crypto_le32enc(out + 16, x4 + j4);
173 1.26 riastrad crypto_le32enc(out + 20, x5 + j5);
174 1.26 riastrad crypto_le32enc(out + 24, x6 + j6);
175 1.26 riastrad crypto_le32enc(out + 28, x7 + j7);
176 1.26 riastrad crypto_le32enc(out + 32, x8 + j8);
177 1.26 riastrad crypto_le32enc(out + 36, x9 + j9);
178 1.26 riastrad crypto_le32enc(out + 40, x10 + j10);
179 1.26 riastrad crypto_le32enc(out + 44, x11 + j11);
180 1.26 riastrad crypto_le32enc(out + 48, x12 + j12);
181 1.26 riastrad crypto_le32enc(out + 52, x13 + j13);
182 1.26 riastrad crypto_le32enc(out + 56, x14 + j14);
183 1.26 riastrad crypto_le32enc(out + 60, x15 + j15);
184 1.26 riastrad }
185 1.26 riastrad
186 1.26 riastrad /* ChaCha self-test */
187 1.26 riastrad
188 1.26 riastrad /*
189 1.26 riastrad * Test vector for ChaCha20 from
190 1.26 riastrad * <http://tools.ietf.org/html/draft-strombergson-chacha-test-vectors-00>,
191 1.26 riastrad * test vectors for ChaCha12 and ChaCha8 and for big-endian machines
192 1.26 riastrad * generated by the same crypto_core code with crypto_core_ROUNDS and
193 1.26 riastrad * crypto_le32enc/dec varied.
194 1.26 riastrad */
195 1.1 itojun
196 1.26 riastrad static const uint8_t crypto_core_selftest_vector[64] = {
197 1.26 riastrad #if _BYTE_ORDER == _LITTLE_ENDIAN
198 1.26 riastrad # if crypto_core_ROUNDS == 8
199 1.26 riastrad 0x3e,0x00,0xef,0x2f,0x89,0x5f,0x40,0xd6,
200 1.26 riastrad 0x7f,0x5b,0xb8,0xe8,0x1f,0x09,0xa5,0xa1,
201 1.26 riastrad 0x2c,0x84,0x0e,0xc3,0xce,0x9a,0x7f,0x3b,
202 1.26 riastrad 0x18,0x1b,0xe1,0x88,0xef,0x71,0x1a,0x1e,
203 1.26 riastrad 0x98,0x4c,0xe1,0x72,0xb9,0x21,0x6f,0x41,
204 1.26 riastrad 0x9f,0x44,0x53,0x67,0x45,0x6d,0x56,0x19,
205 1.26 riastrad 0x31,0x4a,0x42,0xa3,0xda,0x86,0xb0,0x01,
206 1.26 riastrad 0x38,0x7b,0xfd,0xb8,0x0e,0x0c,0xfe,0x42,
207 1.26 riastrad # elif crypto_core_ROUNDS == 12
208 1.26 riastrad 0x9b,0xf4,0x9a,0x6a,0x07,0x55,0xf9,0x53,
209 1.26 riastrad 0x81,0x1f,0xce,0x12,0x5f,0x26,0x83,0xd5,
210 1.26 riastrad 0x04,0x29,0xc3,0xbb,0x49,0xe0,0x74,0x14,
211 1.26 riastrad 0x7e,0x00,0x89,0xa5,0x2e,0xae,0x15,0x5f,
212 1.26 riastrad 0x05,0x64,0xf8,0x79,0xd2,0x7a,0xe3,0xc0,
213 1.26 riastrad 0x2c,0xe8,0x28,0x34,0xac,0xfa,0x8c,0x79,
214 1.26 riastrad 0x3a,0x62,0x9f,0x2c,0xa0,0xde,0x69,0x19,
215 1.26 riastrad 0x61,0x0b,0xe8,0x2f,0x41,0x13,0x26,0xbe,
216 1.26 riastrad # elif crypto_core_ROUNDS == 20
217 1.26 riastrad 0x76,0xb8,0xe0,0xad,0xa0,0xf1,0x3d,0x90,
218 1.26 riastrad 0x40,0x5d,0x6a,0xe5,0x53,0x86,0xbd,0x28,
219 1.26 riastrad 0xbd,0xd2,0x19,0xb8,0xa0,0x8d,0xed,0x1a,
220 1.26 riastrad 0xa8,0x36,0xef,0xcc,0x8b,0x77,0x0d,0xc7,
221 1.26 riastrad 0xda,0x41,0x59,0x7c,0x51,0x57,0x48,0x8d,
222 1.26 riastrad 0x77,0x24,0xe0,0x3f,0xb8,0xd8,0x4a,0x37,
223 1.26 riastrad 0x6a,0x43,0xb8,0xf4,0x15,0x18,0xa1,0x1c,
224 1.26 riastrad 0xc3,0x87,0xb6,0x69,0xb2,0xee,0x65,0x86,
225 1.26 riastrad # else
226 1.26 riastrad # error crypto_core_ROUNDS must be 8, 12, or 20.
227 1.26 riastrad # endif
228 1.26 riastrad #elif _BYTE_ORDER == _BIG_ENDIAN
229 1.26 riastrad # if crypto_core_ROUNDS == 8
230 1.26 riastrad 0x9a,0x13,0x07,0xe3,0x38,0x18,0x9e,0x99,
231 1.26 riastrad 0x15,0x37,0x16,0x4d,0x04,0xe6,0x48,0x9a,
232 1.26 riastrad 0x07,0xd6,0xe8,0x7a,0x02,0xf9,0xf5,0xc7,
233 1.26 riastrad 0x3f,0xa9,0xc2,0x0a,0xe1,0xc6,0x62,0xea,
234 1.26 riastrad 0x80,0xaf,0xb6,0x51,0xca,0x52,0x43,0x87,
235 1.26 riastrad 0xe3,0xa6,0xa6,0x61,0x11,0xf5,0xe6,0xcf,
236 1.26 riastrad 0x09,0x0f,0xdc,0x9d,0xc3,0xc3,0xbb,0x43,
237 1.26 riastrad 0xd7,0xfa,0x70,0x42,0xbf,0xa5,0xee,0xa2,
238 1.26 riastrad # elif crypto_core_ROUNDS == 12
239 1.26 riastrad 0xcf,0x6c,0x16,0x48,0xbf,0xf4,0xba,0x85,
240 1.26 riastrad 0x32,0x69,0xd3,0x98,0xc8,0x7d,0xcd,0x3f,
241 1.26 riastrad 0xdc,0x76,0x6b,0xa2,0x7b,0xcb,0x17,0x4d,
242 1.26 riastrad 0x05,0xda,0xdd,0xd8,0x62,0x54,0xbf,0xe0,
243 1.26 riastrad 0x65,0xed,0x0e,0xf4,0x01,0x7e,0x3c,0x05,
244 1.26 riastrad 0x35,0xb2,0x7a,0x60,0xf3,0x8f,0x12,0x33,
245 1.26 riastrad 0x24,0x60,0xcd,0x85,0xfe,0x4c,0xf3,0x39,
246 1.26 riastrad 0xb1,0x0e,0x3e,0xe0,0xba,0xa6,0x2f,0xa9,
247 1.26 riastrad # elif crypto_core_ROUNDS == 20
248 1.26 riastrad 0x83,0x8b,0xf8,0x75,0xf7,0xde,0x9d,0x8c,
249 1.26 riastrad 0x33,0x14,0x72,0x28,0xd1,0xbe,0x88,0xe5,
250 1.26 riastrad 0x94,0xb5,0xed,0xb8,0x56,0xb5,0x9e,0x0c,
251 1.26 riastrad 0x64,0x6a,0xaf,0xd9,0xa7,0x49,0x10,0x59,
252 1.26 riastrad 0xba,0x3a,0x82,0xf8,0x4a,0x70,0x9c,0x00,
253 1.26 riastrad 0x82,0x2c,0xae,0xc6,0xd7,0x1c,0x2e,0xda,
254 1.26 riastrad 0x2a,0xfb,0x61,0x70,0x2b,0xd1,0xbf,0x8b,
255 1.26 riastrad 0x95,0xbc,0x23,0xb6,0x4b,0x60,0x02,0xec,
256 1.26 riastrad # else
257 1.26 riastrad # error crypto_core_ROUNDS must be 8, 12, or 20.
258 1.26 riastrad # endif
259 1.16 dsl #else
260 1.26 riastrad # error Byte order must be little-endian or big-endian.
261 1.16 dsl #endif
262 1.26 riastrad };
263 1.16 dsl
264 1.26 riastrad static int
265 1.26 riastrad crypto_core_selftest(void)
266 1.26 riastrad {
267 1.26 riastrad const uint8_t nonce[crypto_core_INPUTBYTES] = {0};
268 1.26 riastrad const uint8_t key[crypto_core_KEYBYTES] = {0};
269 1.26 riastrad uint8_t block[64];
270 1.26 riastrad unsigned i;
271 1.26 riastrad
272 1.26 riastrad crypto_core(block, nonce, key, crypto_core_constant32);
273 1.26 riastrad for (i = 0; i < 64; i++) {
274 1.26 riastrad if (block[i] != crypto_core_selftest_vector[i])
275 1.26 riastrad return EIO;
276 1.26 riastrad }
277 1.1 itojun
278 1.26 riastrad return 0;
279 1.26 riastrad }
280 1.26 riastrad
281 1.26 riastrad /* PRNG */
282 1.26 riastrad
283 1.26 riastrad /*
284 1.26 riastrad * For a state s, rather than use ChaCha20 as a stream cipher to
285 1.26 riastrad * generate the concatenation ChaCha20_s(0) || ChaCha20_s(1) || ..., we
286 1.26 riastrad * split ChaCha20_s(0) into s' || x and yield x for the first request,
287 1.26 riastrad * split ChaCha20_s'(0) into s'' || y and yield y for the second
288 1.26 riastrad * request, &c. This provides backtracking resistance: an attacker who
289 1.26 riastrad * finds s'' can't recover s' or x.
290 1.26 riastrad */
291 1.26 riastrad
292 1.26 riastrad #define crypto_prng_SEEDBYTES crypto_core_KEYBYTES
293 1.26 riastrad #define crypto_prng_MAXOUTPUTBYTES \
294 1.26 riastrad (crypto_core_OUTPUTBYTES - crypto_prng_SEEDBYTES)
295 1.26 riastrad
296 1.37 riastrad __CTASSERT(sizeof(struct crypto_prng) == crypto_prng_SEEDBYTES);
297 1.26 riastrad
298 1.22 roy static void
299 1.26 riastrad crypto_prng_seed(struct crypto_prng *prng, const void *seed)
300 1.22 roy {
301 1.22 roy
302 1.26 riastrad (void)memcpy(prng->state, seed, crypto_prng_SEEDBYTES);
303 1.22 roy }
304 1.22 roy
305 1.22 roy static void
306 1.26 riastrad crypto_prng_buf(struct crypto_prng *prng, void *buf, size_t n)
307 1.22 roy {
308 1.26 riastrad const uint8_t nonce[crypto_core_INPUTBYTES] = {0};
309 1.26 riastrad uint8_t output[crypto_core_OUTPUTBYTES];
310 1.26 riastrad
311 1.26 riastrad _DIAGASSERT(n <= crypto_prng_MAXOUTPUTBYTES);
312 1.26 riastrad __CTASSERT(sizeof prng->state + crypto_prng_MAXOUTPUTBYTES
313 1.26 riastrad <= sizeof output);
314 1.22 roy
315 1.26 riastrad crypto_core(output, nonce, prng->state, crypto_core_constant32);
316 1.26 riastrad (void)memcpy(prng->state, output, sizeof prng->state);
317 1.26 riastrad (void)memcpy(buf, output + sizeof prng->state, n);
318 1.26 riastrad (void)explicit_memset(output, 0, sizeof output);
319 1.22 roy }
320 1.22 roy
321 1.47 riastrad static int
322 1.47 riastrad crypto_prng_selftest(void)
323 1.47 riastrad {
324 1.47 riastrad const uint8_t expected[32] = {
325 1.47 riastrad #if _BYTE_ORDER == _LITTLE_ENDIAN
326 1.47 riastrad # if crypto_core_ROUNDS == 20
327 1.47 riastrad 0x2b, /* first call */
328 1.47 riastrad 0x2d,0x41,0xa5,0x9c,0x90,0xe4,0x1a,0x8e, /* second call */
329 1.47 riastrad 0x7a,0x4d,0xcc,0xaa,0x1c,0x46,0x06,0x99,
330 1.47 riastrad 0x83,0xb1,0xa3,0x33,0xce,0x25,0x71,0x9e,
331 1.47 riastrad 0xc3,0x43,0x77,0x68,0xab,0x57,
332 1.47 riastrad 0x5f, /* third call */
333 1.47 riastrad # else
334 1.47 riastrad # error crypto_core_ROUNDS other than 20 left as exercise for reader.
335 1.47 riastrad # endif
336 1.47 riastrad #elif _BYTE_ORDER == _BIG_ENDIAN
337 1.47 riastrad # if crypto_core_ROUNDS == 20
338 1.47 riastrad 0xae, /* first call */
339 1.47 riastrad 0x97,0x14,0x5a,0x05,0xad,0xa8,0x48,0xf1, /* second call */
340 1.47 riastrad 0x3a,0x81,0x84,0xd7,0x05,0xda,0x20,0x5d,
341 1.47 riastrad 0xc0,0xef,0x86,0x65,0x98,0xbd,0xb0,0x16,
342 1.47 riastrad 0x1b,0xfc,0xff,0xc4,0xc2,0xfd,
343 1.47 riastrad 0xa0, /* third call */
344 1.47 riastrad # else
345 1.47 riastrad # error crypto_core_ROUNDS other than 20 left as exercise for reader.
346 1.47 riastrad # endif
347 1.47 riastrad #else
348 1.47 riastrad # error Byte order must be little-endian or big-endian.
349 1.47 riastrad #endif
350 1.47 riastrad };
351 1.47 riastrad uint8_t seed[crypto_prng_SEEDBYTES];
352 1.47 riastrad struct crypto_prng prng;
353 1.47 riastrad uint8_t output[32];
354 1.47 riastrad unsigned i;
355 1.47 riastrad
356 1.47 riastrad for (i = 0; i < __arraycount(seed); i++)
357 1.47 riastrad seed[i] = i;
358 1.47 riastrad crypto_prng_seed(&prng, seed);
359 1.47 riastrad crypto_prng_buf(&prng, output, 1);
360 1.47 riastrad crypto_prng_buf(&prng, output + 1, 30);
361 1.47 riastrad crypto_prng_buf(&prng, output + 31, 1);
362 1.47 riastrad if (memcmp(output, expected, 32) != 0)
363 1.47 riastrad return EIO;
364 1.47 riastrad return 0;
365 1.47 riastrad }
366 1.47 riastrad
367 1.26 riastrad /* One-time stream: expand short single-use secret into long secret */
368 1.26 riastrad
369 1.26 riastrad #define crypto_onetimestream_SEEDBYTES crypto_core_KEYBYTES
370 1.26 riastrad
371 1.26 riastrad static void
372 1.26 riastrad crypto_onetimestream(const void *seed, void *buf, size_t n)
373 1.15 dsl {
374 1.26 riastrad uint32_t nonce[crypto_core_INPUTBYTES / sizeof(uint32_t)] = {0};
375 1.26 riastrad uint8_t block[crypto_core_OUTPUTBYTES];
376 1.26 riastrad uint8_t *p8, *p32;
377 1.27 christos const uint8_t *nonce8 = (const uint8_t *)(void *)nonce;
378 1.26 riastrad size_t ni, nb, nf;
379 1.26 riastrad
380 1.25 roy /*
381 1.26 riastrad * Guarantee we can generate up to n bytes. We have
382 1.26 riastrad * 2^(8*INPUTBYTES) possible inputs yielding output of
383 1.26 riastrad * OUTPUTBYTES*2^(8*INPUTBYTES) bytes. It suffices to require
384 1.26 riastrad * that sizeof n > (1/CHAR_BIT) log_2 n be less than
385 1.26 riastrad * (1/CHAR_BIT) log_2 of the total output stream length. We
386 1.26 riastrad * have
387 1.26 riastrad *
388 1.26 riastrad * log_2 (o 2^(8 i)) = log_2 o + log_2 2^(8 i)
389 1.26 riastrad * = log_2 o + 8 i.
390 1.25 roy */
391 1.32 christos #ifndef __lint__
392 1.32 christos __CTASSERT(CHAR_BIT * sizeof n <= (ilog2(crypto_core_OUTPUTBYTES) +
393 1.32 christos 8 * crypto_core_INPUTBYTES));
394 1.32 christos #endif
395 1.15 dsl
396 1.26 riastrad p8 = buf;
397 1.26 riastrad p32 = (uint8_t *)roundup2((uintptr_t)p8, 4);
398 1.26 riastrad ni = p32 - p8;
399 1.26 riastrad if (n < ni)
400 1.26 riastrad ni = n;
401 1.26 riastrad nb = (n - ni) / sizeof block;
402 1.26 riastrad nf = (n - ni) % sizeof block;
403 1.26 riastrad
404 1.26 riastrad _DIAGASSERT(((uintptr_t)p32 & 3) == 0);
405 1.26 riastrad _DIAGASSERT(ni <= n);
406 1.26 riastrad _DIAGASSERT(nb <= (n / sizeof block));
407 1.26 riastrad _DIAGASSERT(nf <= n);
408 1.26 riastrad _DIAGASSERT(n == (ni + (nb * sizeof block) + nf));
409 1.26 riastrad _DIAGASSERT(ni < 4);
410 1.26 riastrad _DIAGASSERT(nf < sizeof block);
411 1.26 riastrad
412 1.26 riastrad if (ni) {
413 1.26 riastrad crypto_core(block, nonce8, seed, crypto_core_constant32);
414 1.49 riastrad crypto_le32enc(&nonce[0], 1 + crypto_le32dec(&nonce[0]));
415 1.26 riastrad (void)memcpy(p8, block, ni);
416 1.26 riastrad }
417 1.26 riastrad while (nb--) {
418 1.26 riastrad crypto_core(p32, nonce8, seed, crypto_core_constant32);
419 1.49 riastrad crypto_le32enc(&nonce[0], 1 + crypto_le32dec(&nonce[0]));
420 1.49 riastrad if (crypto_le32dec(&nonce[0]) == 0) {
421 1.49 riastrad crypto_le32enc(&nonce[1],
422 1.49 riastrad 1 + crypto_le32dec(&nonce[1]));
423 1.49 riastrad }
424 1.26 riastrad p32 += crypto_core_OUTPUTBYTES;
425 1.26 riastrad }
426 1.26 riastrad if (nf) {
427 1.26 riastrad crypto_core(block, nonce8, seed, crypto_core_constant32);
428 1.49 riastrad crypto_le32enc(&nonce[0], 1 + crypto_le32dec(&nonce[0]));
429 1.49 riastrad if (crypto_le32dec(&nonce[0]) == 0) {
430 1.49 riastrad crypto_le32enc(&nonce[1],
431 1.49 riastrad 1 + crypto_le32dec(&nonce[1]));
432 1.49 riastrad }
433 1.26 riastrad (void)memcpy(p32, block, nf);
434 1.22 roy }
435 1.26 riastrad
436 1.26 riastrad if (ni | nf)
437 1.26 riastrad (void)explicit_memset(block, 0, sizeof block);
438 1.15 dsl }
439 1.15 dsl
440 1.47 riastrad static int
441 1.47 riastrad crypto_onetimestream_selftest(void)
442 1.47 riastrad {
443 1.47 riastrad const uint8_t expected[70] = {
444 1.47 riastrad 0x5a, /* guard byte */
445 1.47 riastrad #if _BYTE_ORDER == _LITTLE_ENDIAN
446 1.47 riastrad # if crypto_core_ROUNDS == 20
447 1.47 riastrad 0x39,0xfd,0x2b, /* initial block */
448 1.47 riastrad 0x18,0xb8,0x42,0x31,0xad,0xe6,0xa6,0xd1,
449 1.47 riastrad 0x13,0x61,0x5c,0x61,0xaf,0x43,0x4e,0x27,
450 1.47 riastrad 0xf8,0xb1,0xf3,0xf5,0xe1,0xad,0x5b,0x5c,
451 1.47 riastrad 0xec,0xf8,0xfc,0x12,0x2a,0x35,0x75,0x5c,
452 1.47 riastrad 0x72,0x08,0x08,0x6d,0xd1,0xee,0x3c,0x5d,
453 1.47 riastrad 0x9d,0x81,0x58,0x24,0x64,0x0e,0x00,0x3c,
454 1.47 riastrad 0x9b,0xa0,0xf6,0x5e,0xde,0x5d,0x59,0xce,
455 1.47 riastrad 0x0d,0x2a,0x4a,0x7f,0x31,0x95,0x5a,0xcd,
456 1.47 riastrad 0x42, /* final block */
457 1.47 riastrad # else
458 1.47 riastrad # error crypto_core_ROUNDS other than 20 left as exercise for reader.
459 1.47 riastrad # endif
460 1.47 riastrad #elif _BYTE_ORDER == _BIG_ENDIAN
461 1.47 riastrad # if crypto_core_ROUNDS == 20
462 1.47 riastrad 0x20,0xf0,0x66, /* initial block */
463 1.48 riastrad 0x1a,0x82,0xda,0xb6,0xba,0x90,0x42,0x19,
464 1.48 riastrad 0x39,0xc2,0x4e,0x4d,0xaf,0xbc,0x67,0xcf,
465 1.48 riastrad 0xe3,0xe4,0xe2,0x80,0x38,0x80,0x8e,0x53,
466 1.48 riastrad 0x19,0x25,0x37,0x67,0x66,0x57,0x7c,0x78,
467 1.48 riastrad 0xac,0xb3,0x8b,0x97,0x54,0x20,0xc4,0x46,
468 1.48 riastrad 0xff,0x90,0x76,0x56,0xcc,0xde,0xe5,0xb9,
469 1.48 riastrad 0xdf,0x82,0x8c,0x05,0x9d,0xf0,0x69,0x99,
470 1.48 riastrad 0x42,0x53,0x74,0x5e,0x80,0x81,0xdb,0x9b,
471 1.48 riastrad 0xb1, /* final block */
472 1.47 riastrad # else
473 1.47 riastrad # error crypto_core_ROUNDS other than 20 left as exercise for reader.
474 1.47 riastrad # endif
475 1.47 riastrad #else
476 1.47 riastrad # error Byte order must be little-endian or big-endian.
477 1.47 riastrad #endif
478 1.47 riastrad 0xcc, /* guard byte */
479 1.47 riastrad };
480 1.47 riastrad uint8_t seed[crypto_prng_SEEDBYTES];
481 1.47 riastrad uint8_t output[70] __aligned(4);
482 1.47 riastrad unsigned i;
483 1.47 riastrad
484 1.47 riastrad for (i = 0; i < __arraycount(seed); i++)
485 1.47 riastrad seed[i] = i;
486 1.47 riastrad output[0] = 0x5a;
487 1.47 riastrad output[69] = 0xcc;
488 1.47 riastrad crypto_onetimestream(seed, output + 1, 68);
489 1.47 riastrad if (memcmp(output, expected, 70) != 0)
490 1.47 riastrad return EIO;
491 1.47 riastrad return 0;
492 1.47 riastrad }
493 1.47 riastrad
494 1.35 riastrad /*
495 1.35 riastrad * entropy_epoch()
496 1.35 riastrad *
497 1.35 riastrad * Return the current entropy epoch, from the sysctl node
498 1.35 riastrad * kern.entropy.epoch.
499 1.35 riastrad *
500 1.35 riastrad * The entropy epoch is never zero. Initially, or on error, it is
501 1.35 riastrad * (unsigned)-1. It may wrap around but it skips (unsigned)-1 and
502 1.35 riastrad * 0 when it does. Changes happen less than once per second, so
503 1.35 riastrad * wraparound will only affect systems after 136 years of uptime.
504 1.35 riastrad *
505 1.35 riastrad * XXX This should get it from a page shared read-only by kernel
506 1.35 riastrad * with userland, but until we implement such a mechanism, this
507 1.35 riastrad * sysctl -- incurring the cost of a syscall -- will have to
508 1.35 riastrad * serve.
509 1.35 riastrad */
510 1.35 riastrad static unsigned
511 1.35 riastrad entropy_epoch(void)
512 1.35 riastrad {
513 1.50 riastrad const int mib[] = { CTL_KERN, KERN_ENTROPY, KERN_ENTROPY_EPOCH };
514 1.38 riastrad unsigned epoch = (unsigned)-1;
515 1.35 riastrad size_t epochlen = sizeof(epoch);
516 1.35 riastrad
517 1.35 riastrad if (sysctl(mib, __arraycount(mib), &epoch, &epochlen, NULL, 0) == -1)
518 1.38 riastrad return (unsigned)-1;
519 1.35 riastrad if (epochlen != sizeof(epoch))
520 1.38 riastrad return (unsigned)-1;
521 1.35 riastrad
522 1.35 riastrad return epoch;
523 1.35 riastrad }
524 1.35 riastrad
525 1.26 riastrad /* arc4random state: per-thread, per-process (zeroed in child on fork) */
526 1.26 riastrad
527 1.26 riastrad static void
528 1.26 riastrad arc4random_prng_addrandom(struct arc4random_prng *prng, const void *data,
529 1.26 riastrad size_t datalen)
530 1.26 riastrad {
531 1.26 riastrad const int mib[] = { CTL_KERN, KERN_ARND };
532 1.26 riastrad SHA256_CTX ctx;
533 1.26 riastrad uint8_t buf[crypto_prng_SEEDBYTES];
534 1.26 riastrad size_t buflen = sizeof buf;
535 1.35 riastrad unsigned epoch = entropy_epoch();
536 1.26 riastrad
537 1.26 riastrad __CTASSERT(sizeof buf == SHA256_DIGEST_LENGTH);
538 1.26 riastrad
539 1.26 riastrad SHA256_Init(&ctx);
540 1.26 riastrad
541 1.26 riastrad crypto_prng_buf(&prng->arc4_prng, buf, sizeof buf);
542 1.26 riastrad SHA256_Update(&ctx, buf, sizeof buf);
543 1.26 riastrad
544 1.27 christos if (sysctl(mib, (u_int)__arraycount(mib), buf, &buflen, NULL, 0) == -1)
545 1.26 riastrad abort();
546 1.26 riastrad if (buflen != sizeof buf)
547 1.26 riastrad abort();
548 1.26 riastrad SHA256_Update(&ctx, buf, sizeof buf);
549 1.26 riastrad
550 1.26 riastrad if (data != NULL)
551 1.26 riastrad SHA256_Update(&ctx, data, datalen);
552 1.26 riastrad
553 1.26 riastrad SHA256_Final(buf, &ctx);
554 1.26 riastrad (void)explicit_memset(&ctx, 0, sizeof ctx);
555 1.26 riastrad
556 1.26 riastrad /* reseed(SHA256(prng() || sysctl(KERN_ARND) || data)) */
557 1.26 riastrad crypto_prng_seed(&prng->arc4_prng, buf);
558 1.26 riastrad (void)explicit_memset(buf, 0, sizeof buf);
559 1.35 riastrad prng->arc4_epoch = epoch;
560 1.26 riastrad }
561 1.26 riastrad
562 1.26 riastrad #ifdef _REENTRANT
563 1.26 riastrad static struct arc4random_prng *
564 1.26 riastrad arc4random_prng_create(void)
565 1.1 itojun {
566 1.26 riastrad struct arc4random_prng *prng;
567 1.26 riastrad const size_t size = roundup(sizeof(*prng), sysconf(_SC_PAGESIZE));
568 1.1 itojun
569 1.31 riastrad prng = mmap(NULL, size, PROT_READ|PROT_WRITE, MAP_PRIVATE|MAP_ANON, -1,
570 1.31 riastrad 0);
571 1.26 riastrad if (prng == MAP_FAILED)
572 1.26 riastrad goto fail0;
573 1.26 riastrad if (minherit(prng, size, MAP_INHERIT_ZERO) == -1)
574 1.26 riastrad goto fail1;
575 1.26 riastrad
576 1.26 riastrad return prng;
577 1.26 riastrad
578 1.26 riastrad fail1: (void)munmap(prng, size);
579 1.26 riastrad fail0: return NULL;
580 1.1 itojun }
581 1.26 riastrad #endif
582 1.1 itojun
583 1.26 riastrad #ifdef _REENTRANT
584 1.26 riastrad static void
585 1.26 riastrad arc4random_prng_destroy(struct arc4random_prng *prng)
586 1.1 itojun {
587 1.26 riastrad const size_t size = roundup(sizeof(*prng), sysconf(_SC_PAGESIZE));
588 1.1 itojun
589 1.26 riastrad (void)explicit_memset(prng, 0, sizeof(*prng));
590 1.26 riastrad (void)munmap(prng, size);
591 1.26 riastrad }
592 1.26 riastrad #endif
593 1.22 roy
594 1.26 riastrad /* Library state */
595 1.11 tls
596 1.37 riastrad struct arc4random_global_state arc4random_global = {
597 1.26 riastrad #ifdef _REENTRANT
598 1.26 riastrad .lock = MUTEX_INITIALIZER,
599 1.26 riastrad #endif
600 1.44 riastrad .once = ONCE_INITIALIZER,
601 1.26 riastrad };
602 1.3 itojun
603 1.26 riastrad static void
604 1.26 riastrad arc4random_atfork_prepare(void)
605 1.26 riastrad {
606 1.18 dsl
607 1.26 riastrad mutex_lock(&arc4random_global.lock);
608 1.26 riastrad (void)explicit_memset(&arc4random_global.prng, 0,
609 1.26 riastrad sizeof arc4random_global.prng);
610 1.22 roy }
611 1.22 roy
612 1.26 riastrad static void
613 1.26 riastrad arc4random_atfork_parent(void)
614 1.22 roy {
615 1.22 roy
616 1.26 riastrad mutex_unlock(&arc4random_global.lock);
617 1.1 itojun }
618 1.1 itojun
619 1.26 riastrad static void
620 1.26 riastrad arc4random_atfork_child(void)
621 1.1 itojun {
622 1.1 itojun
623 1.26 riastrad mutex_unlock(&arc4random_global.lock);
624 1.1 itojun }
625 1.1 itojun
626 1.26 riastrad #ifdef _REENTRANT
627 1.26 riastrad static void
628 1.26 riastrad arc4random_tsd_destructor(void *p)
629 1.17 dsl {
630 1.26 riastrad struct arc4random_prng *const prng = p;
631 1.22 roy
632 1.26 riastrad arc4random_prng_destroy(prng);
633 1.17 dsl }
634 1.26 riastrad #endif
635 1.17 dsl
636 1.26 riastrad static void
637 1.26 riastrad arc4random_initialize(void)
638 1.1 itojun {
639 1.22 roy
640 1.44 riastrad /*
641 1.44 riastrad * If the crypto software is broken, abort -- something is
642 1.44 riastrad * severely wrong with this process image.
643 1.44 riastrad */
644 1.47 riastrad if (crypto_core_selftest() != 0 ||
645 1.47 riastrad crypto_prng_selftest() != 0 ||
646 1.47 riastrad crypto_onetimestream_selftest() != 0)
647 1.44 riastrad abort();
648 1.44 riastrad
649 1.44 riastrad /*
650 1.44 riastrad * Set up a pthread_atfork handler to lock the global state
651 1.44 riastrad * around fork so that if forked children can't use the
652 1.44 riastrad * per-thread state, they can take the lock and use the global
653 1.46 riastrad * state without deadlock. If this fails, we will fall back to
654 1.46 riastrad * PRNG state on the stack reinitialized from the kernel
655 1.46 riastrad * entropy pool at every call.
656 1.44 riastrad */
657 1.44 riastrad if (pthread_atfork(&arc4random_atfork_prepare,
658 1.44 riastrad &arc4random_atfork_parent, &arc4random_atfork_child)
659 1.46 riastrad == 0)
660 1.46 riastrad arc4random_global.forksafe = true;
661 1.44 riastrad
662 1.44 riastrad /*
663 1.44 riastrad * For multithreaded builds, try to allocate a per-thread PRNG
664 1.44 riastrad * state to avoid contention due to arc4random.
665 1.44 riastrad */
666 1.26 riastrad #ifdef _REENTRANT
667 1.44 riastrad if (thr_keycreate(&arc4random_global.thread_key,
668 1.44 riastrad &arc4random_tsd_destructor) == 0)
669 1.44 riastrad arc4random_global.per_thread = true;
670 1.26 riastrad #endif
671 1.44 riastrad
672 1.44 riastrad /*
673 1.44 riastrad * Note that the arc4random library state has been initialized
674 1.44 riastrad * for the sake of automatic tests.
675 1.44 riastrad */
676 1.44 riastrad arc4random_global.initialized = true;
677 1.1 itojun }
678 1.1 itojun
679 1.26 riastrad static struct arc4random_prng *
680 1.46 riastrad arc4random_prng_get(struct arc4random_prng *fallback)
681 1.1 itojun {
682 1.26 riastrad struct arc4random_prng *prng = NULL;
683 1.26 riastrad
684 1.26 riastrad /* Make sure the library is initialized. */
685 1.44 riastrad thr_once(&arc4random_global.once, &arc4random_initialize);
686 1.26 riastrad
687 1.26 riastrad #ifdef _REENTRANT
688 1.26 riastrad /* Get or create the per-thread PRNG state. */
689 1.39 riastrad prng = __predict_true(arc4random_global.per_thread)
690 1.39 riastrad ? thr_getspecific(arc4random_global.thread_key)
691 1.39 riastrad : NULL;
692 1.39 riastrad if (__predict_false(prng == NULL) && arc4random_global.per_thread) {
693 1.26 riastrad prng = arc4random_prng_create();
694 1.26 riastrad thr_setspecific(arc4random_global.thread_key, prng);
695 1.26 riastrad }
696 1.26 riastrad #endif
697 1.26 riastrad
698 1.46 riastrad /*
699 1.46 riastrad * If we can't create it, fall back to the global PRNG -- or an
700 1.46 riastrad * on-stack PRNG, in the unlikely event that pthread_atfork
701 1.46 riastrad * failed, which we have to seed from scratch each time
702 1.46 riastrad * (suboptimal, but unlikely, so not worth optimizing).
703 1.46 riastrad */
704 1.26 riastrad if (__predict_false(prng == NULL)) {
705 1.46 riastrad if (__predict_true(arc4random_global.forksafe)) {
706 1.46 riastrad mutex_lock(&arc4random_global.lock);
707 1.46 riastrad prng = &arc4random_global.prng;
708 1.46 riastrad } else {
709 1.46 riastrad prng = fallback;
710 1.46 riastrad memset(prng, 0, sizeof(*prng));
711 1.46 riastrad }
712 1.26 riastrad }
713 1.22 roy
714 1.26 riastrad /* Guarantee the PRNG is seeded. */
715 1.35 riastrad if (__predict_false(prng->arc4_epoch != entropy_epoch()))
716 1.26 riastrad arc4random_prng_addrandom(prng, NULL, 0);
717 1.26 riastrad
718 1.26 riastrad return prng;
719 1.1 itojun }
720 1.1 itojun
721 1.26 riastrad static void
722 1.46 riastrad arc4random_prng_put(struct arc4random_prng *prng,
723 1.46 riastrad struct arc4random_prng *fallback)
724 1.11 tls {
725 1.22 roy
726 1.46 riastrad /*
727 1.46 riastrad * If we had to use a stack fallback, zero it before we return
728 1.46 riastrad * so that after we return we avoid leaving secrets on the
729 1.46 riastrad * stack that could recover the parent's future outputs in an
730 1.46 riastrad * unprivileged forked child (of course, we can't guarantee
731 1.46 riastrad * that the compiler hasn't spilled anything; this is
732 1.46 riastrad * best-effort, not a guarantee).
733 1.46 riastrad */
734 1.46 riastrad if (__predict_false(prng == fallback))
735 1.46 riastrad explicit_memset(fallback, 0, sizeof(*fallback));
736 1.46 riastrad
737 1.26 riastrad /* If we had fallen back to the global PRNG, unlock it. */
738 1.26 riastrad if (__predict_false(prng == &arc4random_global.prng))
739 1.26 riastrad mutex_unlock(&arc4random_global.lock);
740 1.1 itojun }
741 1.1 itojun
742 1.26 riastrad /* Public API */
743 1.26 riastrad
744 1.10 christos uint32_t
745 1.10 christos arc4random(void)
746 1.1 itojun {
747 1.46 riastrad struct arc4random_prng *prng, fallback;
748 1.11 tls uint32_t v;
749 1.16 dsl
750 1.46 riastrad prng = arc4random_prng_get(&fallback);
751 1.26 riastrad crypto_prng_buf(&prng->arc4_prng, &v, sizeof v);
752 1.46 riastrad arc4random_prng_put(prng, &fallback);
753 1.26 riastrad
754 1.11 tls return v;
755 1.1 itojun }
756 1.1 itojun
757 1.16 dsl void
758 1.16 dsl arc4random_buf(void *buf, size_t len)
759 1.10 christos {
760 1.46 riastrad struct arc4random_prng *prng, fallback;
761 1.26 riastrad
762 1.26 riastrad if (len <= crypto_prng_MAXOUTPUTBYTES) {
763 1.46 riastrad prng = arc4random_prng_get(&fallback);
764 1.26 riastrad crypto_prng_buf(&prng->arc4_prng, buf, len);
765 1.46 riastrad arc4random_prng_put(prng, &fallback);
766 1.26 riastrad } else {
767 1.26 riastrad uint8_t seed[crypto_onetimestream_SEEDBYTES];
768 1.26 riastrad
769 1.46 riastrad prng = arc4random_prng_get(&fallback);
770 1.26 riastrad crypto_prng_buf(&prng->arc4_prng, seed, sizeof seed);
771 1.46 riastrad arc4random_prng_put(prng, &fallback);
772 1.26 riastrad
773 1.26 riastrad crypto_onetimestream(seed, buf, len);
774 1.26 riastrad (void)explicit_memset(seed, 0, sizeof seed);
775 1.26 riastrad }
776 1.26 riastrad }
777 1.26 riastrad
778 1.26 riastrad uint32_t
779 1.26 riastrad arc4random_uniform(uint32_t bound)
780 1.26 riastrad {
781 1.46 riastrad struct arc4random_prng *prng, fallback;
782 1.26 riastrad uint32_t minimum, r;
783 1.26 riastrad
784 1.26 riastrad /*
785 1.26 riastrad * We want a uniform random choice in [0, n), and arc4random()
786 1.26 riastrad * makes a uniform random choice in [0, 2^32). If we reduce
787 1.26 riastrad * that modulo n, values in [0, 2^32 mod n) will be represented
788 1.26 riastrad * slightly more than values in [2^32 mod n, n). Instead we
789 1.26 riastrad * choose only from [2^32 mod n, 2^32) by rejecting samples in
790 1.26 riastrad * [0, 2^32 mod n), to avoid counting the extra representative
791 1.26 riastrad * of [0, 2^32 mod n). To compute 2^32 mod n, note that
792 1.26 riastrad *
793 1.26 riastrad * 2^32 mod n = 2^32 mod n - 0
794 1.26 riastrad * = 2^32 mod n - n mod n
795 1.26 riastrad * = (2^32 - n) mod n,
796 1.26 riastrad *
797 1.26 riastrad * the last of which is what we compute in 32-bit arithmetic.
798 1.26 riastrad */
799 1.26 riastrad minimum = (-bound % bound);
800 1.26 riastrad
801 1.46 riastrad prng = arc4random_prng_get(&fallback);
802 1.26 riastrad do crypto_prng_buf(&prng->arc4_prng, &r, sizeof r);
803 1.26 riastrad while (__predict_false(r < minimum));
804 1.46 riastrad arc4random_prng_put(prng, &fallback);
805 1.17 dsl
806 1.26 riastrad return (r % bound);
807 1.11 tls }
808 1.11 tls
809 1.26 riastrad void
810 1.26 riastrad arc4random_stir(void)
811 1.26 riastrad {
812 1.46 riastrad struct arc4random_prng *prng, fallback;
813 1.26 riastrad
814 1.46 riastrad prng = arc4random_prng_get(&fallback);
815 1.26 riastrad arc4random_prng_addrandom(prng, NULL, 0);
816 1.46 riastrad arc4random_prng_put(prng, &fallback);
817 1.26 riastrad }
818 1.10 christos
819 1.10 christos /*
820 1.26 riastrad * Silly signature here is for hysterical raisins. Should instead be
821 1.26 riastrad * const void *data and size_t datalen.
822 1.10 christos */
823 1.26 riastrad void
824 1.26 riastrad arc4random_addrandom(u_char *data, int datalen)
825 1.10 christos {
826 1.46 riastrad struct arc4random_prng *prng, fallback;
827 1.10 christos
828 1.26 riastrad _DIAGASSERT(0 <= datalen);
829 1.10 christos
830 1.46 riastrad prng = arc4random_prng_get(&fallback);
831 1.26 riastrad arc4random_prng_addrandom(prng, data, datalen);
832 1.46 riastrad arc4random_prng_put(prng, &fallback);
833 1.26 riastrad }
834 1.26 riastrad
835 1.26 riastrad #ifdef _ARC4RANDOM_TEST
836 1.26 riastrad
837 1.26 riastrad #include <sys/wait.h>
838 1.26 riastrad
839 1.26 riastrad #include <err.h>
840 1.26 riastrad #include <stdio.h>
841 1.26 riastrad
842 1.26 riastrad int
843 1.26 riastrad main(int argc __unused, char **argv __unused)
844 1.26 riastrad {
845 1.26 riastrad unsigned char gubbish[] = "random gubbish";
846 1.26 riastrad const uint8_t zero64[64] = {0};
847 1.26 riastrad uint8_t buf[2048];
848 1.26 riastrad unsigned i, a, n;
849 1.26 riastrad
850 1.26 riastrad /* Test arc4random: should not be deterministic. */
851 1.26 riastrad if (printf("arc4random: %08"PRIx32"\n", arc4random()) < 0)
852 1.26 riastrad err(1, "printf");
853 1.26 riastrad
854 1.26 riastrad /* Test stirring: should definitely not be deterministic. */
855 1.26 riastrad arc4random_stir();
856 1.26 riastrad
857 1.26 riastrad /* Test small buffer. */
858 1.26 riastrad arc4random_buf(buf, 8);
859 1.26 riastrad if (printf("arc4randombuf small:") < 0)
860 1.26 riastrad err(1, "printf");
861 1.26 riastrad for (i = 0; i < 8; i++)
862 1.26 riastrad if (printf(" %02x", buf[i]) < 0)
863 1.26 riastrad err(1, "printf");
864 1.26 riastrad if (printf("\n") < 0)
865 1.26 riastrad err(1, "printf");
866 1.26 riastrad
867 1.26 riastrad /* Test addrandom: should not make the rest deterministic. */
868 1.26 riastrad arc4random_addrandom(gubbish, sizeof gubbish);
869 1.26 riastrad
870 1.26 riastrad /* Test large buffer. */
871 1.26 riastrad arc4random_buf(buf, sizeof buf);
872 1.26 riastrad if (printf("arc4randombuf_large:") < 0)
873 1.26 riastrad err(1, "printf");
874 1.26 riastrad for (i = 0; i < sizeof buf; i++)
875 1.26 riastrad if (printf(" %02x", buf[i]) < 0)
876 1.26 riastrad err(1, "printf");
877 1.26 riastrad if (printf("\n") < 0)
878 1.26 riastrad err(1, "printf");
879 1.26 riastrad
880 1.26 riastrad /* Test misaligned small and large. */
881 1.26 riastrad for (a = 0; a < 64; a++) {
882 1.26 riastrad for (n = a; n < sizeof buf; n++) {
883 1.26 riastrad (void)memset(buf, 0, sizeof buf);
884 1.26 riastrad arc4random_buf(buf, n - a);
885 1.26 riastrad if (memcmp(buf + n - a, zero64, a) != 0)
886 1.26 riastrad errx(1, "arc4random buffer overflow 0");
887 1.26 riastrad
888 1.26 riastrad (void)memset(buf, 0, sizeof buf);
889 1.26 riastrad arc4random_buf(buf + a, n - a);
890 1.26 riastrad if (memcmp(buf, zero64, a) != 0)
891 1.26 riastrad errx(1, "arc4random buffer overflow 1");
892 1.26 riastrad
893 1.26 riastrad if ((2*a) <= n) {
894 1.26 riastrad (void)memset(buf, 0, sizeof buf);
895 1.26 riastrad arc4random_buf(buf + a, n - a - a);
896 1.26 riastrad if (memcmp(buf + n - a, zero64, a) != 0)
897 1.26 riastrad errx(1,
898 1.26 riastrad "arc4random buffer overflow 2");
899 1.26 riastrad }
900 1.26 riastrad }
901 1.26 riastrad }
902 1.16 dsl
903 1.26 riastrad /* Test fork-safety. */
904 1.26 riastrad {
905 1.26 riastrad pid_t pid, rpid;
906 1.26 riastrad int status;
907 1.26 riastrad
908 1.26 riastrad pid = fork();
909 1.26 riastrad switch (pid) {
910 1.26 riastrad case -1:
911 1.26 riastrad err(1, "fork");
912 1.36 riastrad case 0: {
913 1.36 riastrad /*
914 1.36 riastrad * Verify the epoch has been set to zero by fork.
915 1.36 riastrad */
916 1.36 riastrad struct arc4random_prng *prng = NULL;
917 1.36 riastrad #ifdef _REENTRANT
918 1.45 riastrad prng = arc4random_global.per_thread
919 1.45 riastrad ? thr_getspecific(arc4random_global.thread_key)
920 1.45 riastrad : NULL;
921 1.36 riastrad #endif
922 1.36 riastrad if (prng == NULL)
923 1.36 riastrad prng = &arc4random_global.prng;
924 1.36 riastrad _exit(prng->arc4_epoch != 0);
925 1.36 riastrad }
926 1.26 riastrad default:
927 1.26 riastrad rpid = waitpid(pid, &status, 0);
928 1.26 riastrad if (rpid == -1)
929 1.26 riastrad err(1, "waitpid");
930 1.26 riastrad if (rpid != pid)
931 1.26 riastrad errx(1, "waitpid returned wrong pid"
932 1.26 riastrad ": %"PRIdMAX" != %"PRIdMAX,
933 1.26 riastrad (intmax_t)rpid,
934 1.26 riastrad (intmax_t)pid);
935 1.26 riastrad if (WIFEXITED(status)) {
936 1.26 riastrad if (WEXITSTATUS(status) != 0)
937 1.26 riastrad errx(1, "child exited with %d",
938 1.26 riastrad WEXITSTATUS(status));
939 1.26 riastrad } else if (WIFSIGNALED(status)) {
940 1.26 riastrad errx(1, "child terminated on signal %d",
941 1.26 riastrad WTERMSIG(status));
942 1.26 riastrad } else {
943 1.26 riastrad errx(1, "child died mysteriously: %d", status);
944 1.26 riastrad }
945 1.26 riastrad }
946 1.26 riastrad }
947 1.16 dsl
948 1.26 riastrad /* XXX Test multithreaded fork safety...? */
949 1.10 christos
950 1.26 riastrad return 0;
951 1.10 christos }
952 1.26 riastrad #endif
953