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arc4random.c revision 1.20
      1  1.20       dsl /*	$NetBSD: arc4random.c,v 1.20 2012/08/20 21:38:09 dsl Exp $	*/
      2   1.1    itojun /*	$OpenBSD: arc4random.c,v 1.6 2001/06/05 05:05:38 pvalchev Exp $	*/
      3   1.1    itojun 
      4   1.1    itojun /*
      5   1.1    itojun  * Arc4 random number generator for OpenBSD.
      6   1.1    itojun  * Copyright 1996 David Mazieres <dm (at) lcs.mit.edu>.
      7   1.1    itojun  *
      8   1.1    itojun  * Modification and redistribution in source and binary forms is
      9   1.1    itojun  * permitted provided that due credit is given to the author and the
     10   1.1    itojun  * OpenBSD project by leaving this copyright notice intact.
     11   1.1    itojun  */
     12   1.1    itojun 
     13   1.1    itojun /*
     14   1.1    itojun  * This code is derived from section 17.1 of Applied Cryptography,
     15   1.1    itojun  * second edition, which describes a stream cipher allegedly
     16   1.1    itojun  * compatible with RSA Labs "RC4" cipher (the actual description of
     17   1.1    itojun  * which is a trade secret).  The same algorithm is used as a stream
     18   1.1    itojun  * cipher called "arcfour" in Tatu Ylonen's ssh package.
     19   1.1    itojun  *
     20   1.1    itojun  * Here the stream cipher has been modified always to include the time
     21   1.1    itojun  * when initializing the state.  That makes it impossible to
     22   1.1    itojun  * regenerate the same random sequence twice, so this can't be used
     23   1.1    itojun  * for encryption, but will generate good random numbers.
     24   1.1    itojun  *
     25   1.1    itojun  * RC4 is a registered trademark of RSA Laboratories.
     26   1.1    itojun  */
     27   1.1    itojun 
     28   1.8     lukem #include <sys/cdefs.h>
     29   1.8     lukem #if defined(LIBC_SCCS) && !defined(lint)
     30  1.20       dsl __RCSID("$NetBSD: arc4random.c,v 1.20 2012/08/20 21:38:09 dsl Exp $");
     31   1.8     lukem #endif /* LIBC_SCCS and not lint */
     32   1.8     lukem 
     33   1.7    kleink #include "namespace.h"
     34  1.11       tls #include "reentrant.h"
     35   1.1    itojun #include <fcntl.h>
     36   1.1    itojun #include <stdlib.h>
     37   1.1    itojun #include <unistd.h>
     38   1.1    itojun #include <sys/types.h>
     39   1.1    itojun #include <sys/param.h>
     40   1.1    itojun #include <sys/time.h>
     41   1.1    itojun #include <sys/sysctl.h>
     42   1.1    itojun 
     43   1.7    kleink #ifdef __weak_alias
     44   1.7    kleink __weak_alias(arc4random,_arc4random)
     45  1.20       dsl __weak_alias(arc4random_addrandom,_arc4random_addrandom)
     46  1.20       dsl __weak_alias(arc4random_buf,_arc4random_buf)
     47  1.20       dsl __weak_alias(arc4random_stir,_arc4random_stir)
     48  1.20       dsl __weak_alias(arc4random_uniform,_arc4random_uniform)
     49   1.7    kleink #endif
     50   1.7    kleink 
     51   1.1    itojun struct arc4_stream {
     52  1.18       dsl 	uint8_t stirred;
     53  1.18       dsl 	uint8_t pad;
     54  1.10  christos 	uint8_t i;
     55  1.10  christos 	uint8_t j;
     56  1.18       dsl 	uint8_t s[(uint8_t)~0u + 1u];	/* 256 to you and me */
     57  1.18       dsl 	mutex_t mtx;
     58   1.1    itojun };
     59   1.1    itojun 
     60  1.16       dsl #ifdef _REENTRANT
     61  1.16       dsl #define LOCK(rs) { \
     62  1.16       dsl 		int isthreaded = __isthreaded; \
     63  1.16       dsl 		if (isthreaded)        \
     64  1.16       dsl 			mutex_lock(&(rs)->mtx);
     65  1.16       dsl #define UNLOCK(rs) \
     66  1.16       dsl 		if (isthreaded)        \
     67  1.16       dsl 			mutex_unlock(&(rs)->mtx);      \
     68  1.16       dsl 	}
     69  1.16       dsl #else
     70  1.16       dsl #define LOCK(rs)
     71  1.16       dsl #define UNLOCK(rs)
     72  1.16       dsl #endif
     73  1.16       dsl 
     74  1.18       dsl #define S(n) (n)
     75  1.18       dsl #define S4(n) S(n), S(n + 1), S(n + 2), S(n + 3)
     76  1.18       dsl #define S16(n) S4(n), S4(n + 4), S4(n + 8), S4(n + 12)
     77  1.18       dsl #define S64(n) S16(n), S16(n + 16), S16(n + 32), S16(n + 48)
     78  1.18       dsl #define S256 S64(0), S64(64), S64(128), S64(192)
     79  1.18       dsl 
     80  1.18       dsl static struct arc4_stream rs = { .i = 0xff, .j = 0, .s = { S256 },
     81  1.18       dsl 		.stirred = 0, .mtx = MUTEX_INITIALIZER };
     82  1.18       dsl 
     83  1.18       dsl #undef S
     84  1.18       dsl #undef S4
     85  1.18       dsl #undef S16
     86  1.18       dsl #undef S64
     87  1.18       dsl #undef S256
     88   1.1    itojun 
     89   1.1    itojun static inline void arc4_addrandom(struct arc4_stream *, u_char *, int);
     90  1.18       dsl static __noinline void arc4_stir(struct arc4_stream *);
     91  1.10  christos static inline uint8_t arc4_getbyte(struct arc4_stream *);
     92  1.10  christos static inline uint32_t arc4_getword(struct arc4_stream *);
     93   1.1    itojun 
     94  1.15       dsl static inline int
     95  1.15       dsl arc4_check_init(struct arc4_stream *as)
     96  1.15       dsl {
     97  1.18       dsl 	if (__predict_true(rs.stirred))
     98  1.15       dsl 		return 0;
     99  1.15       dsl 
    100  1.18       dsl 	arc4_stir(as);
    101  1.15       dsl 	return 1;
    102  1.15       dsl }
    103  1.15       dsl 
    104   1.1    itojun static inline void
    105  1.10  christos arc4_addrandom(struct arc4_stream *as, u_char *dat, int datlen)
    106   1.1    itojun {
    107  1.10  christos 	uint8_t si;
    108  1.18       dsl 	size_t n;
    109   1.1    itojun 
    110  1.18       dsl 	for (n = 0; n < __arraycount(as->s); n++) {
    111   1.1    itojun 		as->i = (as->i + 1);
    112   1.1    itojun 		si = as->s[as->i];
    113   1.1    itojun 		as->j = (as->j + si + dat[n % datlen]);
    114   1.1    itojun 		as->s[as->i] = as->s[as->j];
    115   1.1    itojun 		as->s[as->j] = si;
    116   1.1    itojun 	}
    117   1.1    itojun }
    118   1.1    itojun 
    119  1.18       dsl static __noinline void
    120  1.10  christos arc4_stir(struct arc4_stream *as)
    121   1.1    itojun {
    122  1.13  christos 	int rdat[32];
    123  1.14       dsl 	int mib[] = { CTL_KERN, KERN_URND };
    124  1.11       tls 	size_t len;
    125  1.14       dsl 	size_t i, j;
    126   1.1    itojun 
    127  1.11       tls 	/*
    128  1.11       tls 	 * This code once opened and read /dev/urandom on each
    129  1.11       tls 	 * call.  That causes repeated rekeying of the kernel stream
    130  1.11       tls 	 * generator, which is very wasteful.  Because of application
    131  1.11       tls 	 * behavior, caching the fd doesn't really help.  So we just
    132  1.11       tls 	 * fill up the tank from sysctl, which is a tiny bit slower
    133  1.11       tls 	 * for us but much friendlier to other entropy consumers.
    134  1.11       tls 	 */
    135  1.11       tls 
    136  1.14       dsl 	for (i = 0; i < __arraycount(rdat); i++) {
    137  1.11       tls 		len = sizeof(rdat[i]);
    138  1.11       tls 		if (sysctl(mib, 2, &rdat[i], &len, NULL, 0) == -1)
    139  1.11       tls 			abort();
    140   1.1    itojun 	}
    141   1.1    itojun 
    142  1.13  christos 	arc4_addrandom(as, (void *) &rdat, (int)sizeof(rdat));
    143   1.3    itojun 
    144   1.3    itojun 	/*
    145   1.3    itojun 	 * Throw away the first N words of output, as suggested in the
    146   1.3    itojun 	 * paper "Weaknesses in the Key Scheduling Algorithm of RC4"
    147   1.3    itojun 	 * by Fluher, Mantin, and Shamir.  (N = 256 in our case.)
    148   1.3    itojun 	 */
    149  1.18       dsl 	for (j = 0; j < __arraycount(as->s) * 4; j++)
    150   1.3    itojun 		arc4_getbyte(as);
    151  1.18       dsl 
    152  1.18       dsl 	as->stirred = 1;
    153   1.1    itojun }
    154   1.1    itojun 
    155  1.17       dsl static __always_inline uint8_t
    156  1.17       dsl arc4_getbyte_ij(struct arc4_stream *as, uint8_t *i, uint8_t *j)
    157   1.1    itojun {
    158  1.10  christos 	uint8_t si, sj;
    159   1.1    itojun 
    160  1.17       dsl 	*i = *i + 1;
    161  1.17       dsl 	si = as->s[*i];
    162  1.17       dsl 	*j = *j + si;
    163  1.17       dsl 	sj = as->s[*j];
    164  1.17       dsl 	as->s[*i] = sj;
    165  1.17       dsl 	as->s[*j] = si;
    166   1.1    itojun 	return (as->s[(si + sj) & 0xff]);
    167   1.1    itojun }
    168   1.1    itojun 
    169  1.17       dsl static inline uint8_t
    170  1.17       dsl arc4_getbyte(struct arc4_stream *as)
    171  1.17       dsl {
    172  1.17       dsl 	return arc4_getbyte_ij(as, &as->i, &as->j);
    173  1.17       dsl }
    174  1.17       dsl 
    175  1.10  christos static inline uint32_t
    176  1.10  christos arc4_getword(struct arc4_stream *as)
    177   1.1    itojun {
    178  1.10  christos 	uint32_t val;
    179   1.1    itojun 	val = arc4_getbyte(as) << 24;
    180   1.1    itojun 	val |= arc4_getbyte(as) << 16;
    181   1.1    itojun 	val |= arc4_getbyte(as) << 8;
    182   1.1    itojun 	val |= arc4_getbyte(as);
    183   1.1    itojun 	return val;
    184   1.1    itojun }
    185   1.1    itojun 
    186  1.16       dsl void
    187  1.16       dsl arc4random_stir(void)
    188   1.1    itojun {
    189  1.16       dsl 	LOCK(&rs);
    190  1.18       dsl 	arc4_stir(&rs);
    191  1.16       dsl 	UNLOCK(&rs);
    192   1.1    itojun }
    193   1.1    itojun 
    194   1.1    itojun void
    195  1.16       dsl arc4random_addrandom(u_char *dat, int datlen)
    196  1.11       tls {
    197  1.16       dsl 	LOCK(&rs);
    198  1.15       dsl 	arc4_check_init(&rs);
    199  1.11       tls 	arc4_addrandom(&rs, dat, datlen);
    200  1.16       dsl 	UNLOCK(&rs);
    201   1.1    itojun }
    202   1.1    itojun 
    203  1.10  christos uint32_t
    204  1.10  christos arc4random(void)
    205   1.1    itojun {
    206  1.11       tls 	uint32_t v;
    207  1.16       dsl 
    208  1.16       dsl 	LOCK(&rs);
    209  1.16       dsl 	arc4_check_init(&rs);
    210  1.16       dsl 	v = arc4_getword(&rs);
    211  1.16       dsl 	UNLOCK(&rs);
    212  1.11       tls 	return v;
    213   1.1    itojun }
    214   1.1    itojun 
    215  1.16       dsl void
    216  1.16       dsl arc4random_buf(void *buf, size_t len)
    217  1.10  christos {
    218  1.10  christos 	uint8_t *bp = buf;
    219  1.10  christos 	uint8_t *ep = bp + len;
    220  1.17       dsl 	uint8_t i, j;
    221  1.10  christos 
    222  1.16       dsl 	LOCK(&rs);
    223  1.15       dsl 	arc4_check_init(&rs);
    224  1.12       tls 
    225  1.17       dsl 	/* cache i and j - compiler can't know 'buf' doesn't alias them */
    226  1.17       dsl 	i = rs.i;
    227  1.17       dsl 	j = rs.j;
    228  1.17       dsl 
    229  1.10  christos 	while (bp < ep)
    230  1.17       dsl 		*bp++ = arc4_getbyte_ij(&rs, &i, &j);
    231  1.17       dsl 	rs.i = i;
    232  1.17       dsl 	rs.j = j;
    233  1.17       dsl 
    234  1.16       dsl 	UNLOCK(&rs);
    235  1.11       tls }
    236  1.11       tls 
    237  1.10  christos /*-
    238  1.10  christos  * Written by Damien Miller.
    239  1.10  christos  * With simplifications by Jinmei Tatuya.
    240  1.10  christos  */
    241  1.10  christos 
    242  1.10  christos /*
    243  1.10  christos  * Calculate a uniformly distributed random number less than
    244  1.10  christos  * upper_bound avoiding "modulo bias".
    245  1.10  christos  *
    246  1.10  christos  * Uniformity is achieved by generating new random numbers
    247  1.10  christos  * until the one returned is outside the range
    248  1.10  christos  * [0, 2^32 % upper_bound[. This guarantees the selected
    249  1.10  christos  * random number will be inside the range
    250  1.10  christos  * [2^32 % upper_bound, 2^32[ which maps back to
    251  1.10  christos  * [0, upper_bound[ after reduction modulo upper_bound.
    252  1.10  christos  */
    253  1.16       dsl uint32_t
    254  1.16       dsl arc4random_uniform(uint32_t upper_bound)
    255  1.10  christos {
    256  1.10  christos 	uint32_t r, min;
    257  1.10  christos 
    258  1.10  christos 	if (upper_bound < 2)
    259  1.10  christos 		return 0;
    260  1.10  christos 
    261  1.10  christos 	/* calculate (2^32 % upper_bound) avoiding 64-bit math */
    262  1.16       dsl 	/* ((2^32 - x) % x) == (2^32 % x) when x <= 2^31 */
    263  1.16       dsl 	min = (0xFFFFFFFFU - upper_bound + 1) % upper_bound;
    264  1.16       dsl 
    265  1.16       dsl 	LOCK(&rs);
    266  1.16       dsl 	arc4_check_init(&rs);
    267  1.16       dsl 
    268  1.10  christos 	/*
    269  1.10  christos 	 * This could theoretically loop forever but each retry has
    270  1.10  christos 	 * p > 0.5 (worst case, usually far better) of selecting a
    271  1.10  christos 	 * number inside the range we need, so it should rarely need
    272  1.10  christos 	 * to re-roll (at all).
    273  1.10  christos 	 */
    274  1.10  christos 	do
    275  1.10  christos 		r = arc4_getword(&rs);
    276  1.10  christos 	while (r < min);
    277  1.16       dsl 	UNLOCK(&rs);
    278  1.10  christos 
    279  1.10  christos 	return r % upper_bound;
    280  1.10  christos }
    281