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kern_uuid.c revision 1.11.8.1
      1  1.11.8.1       mjf /*	$NetBSD: kern_uuid.c,v 1.11.8.1 2008/02/18 21:06:46 mjf Exp $	*/
      2       1.1    tsarna 
      3       1.1    tsarna /*
      4       1.1    tsarna  * Copyright (c) 2002 Marcel Moolenaar
      5       1.1    tsarna  * All rights reserved.
      6       1.1    tsarna  *
      7       1.1    tsarna  * Redistribution and use in source and binary forms, with or without
      8       1.1    tsarna  * modification, are permitted provided that the following conditions
      9       1.1    tsarna  * are met:
     10       1.1    tsarna  *
     11       1.1    tsarna  * 1. Redistributions of source code must retain the above copyright
     12       1.1    tsarna  *    notice, this list of conditions and the following disclaimer.
     13       1.1    tsarna  * 2. Redistributions in binary form must reproduce the above copyright
     14       1.1    tsarna  *    notice, this list of conditions and the following disclaimer in the
     15       1.1    tsarna  *    documentation and/or other materials provided with the distribution.
     16       1.1    tsarna  *
     17       1.1    tsarna  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
     18       1.1    tsarna  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
     19       1.1    tsarna  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
     20       1.1    tsarna  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
     21       1.1    tsarna  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
     22       1.1    tsarna  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
     23       1.1    tsarna  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
     24       1.1    tsarna  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
     25       1.1    tsarna  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
     26       1.1    tsarna  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
     27       1.2   thorpej  *
     28       1.2   thorpej  * $FreeBSD: /repoman/r/ncvs/src/sys/kern/kern_uuid.c,v 1.7 2004/01/12 13:34:11 rse Exp $
     29       1.1    tsarna  */
     30       1.1    tsarna 
     31       1.1    tsarna #include <sys/cdefs.h>
     32  1.11.8.1       mjf __KERNEL_RCSID(0, "$NetBSD: kern_uuid.c,v 1.11.8.1 2008/02/18 21:06:46 mjf Exp $");
     33       1.1    tsarna 
     34       1.1    tsarna #include <sys/param.h>
     35       1.1    tsarna #include <sys/endian.h>
     36       1.1    tsarna #include <sys/kernel.h>
     37      1.10        ad #include <sys/mutex.h>
     38       1.1    tsarna #include <sys/socket.h>
     39       1.1    tsarna #include <sys/systm.h>
     40       1.1    tsarna #include <sys/uuid.h>
     41       1.1    tsarna 
     42       1.1    tsarna /* NetBSD */
     43       1.1    tsarna #include <sys/proc.h>
     44       1.1    tsarna #include <sys/mount.h>
     45       1.1    tsarna #include <sys/syscallargs.h>
     46       1.1    tsarna #include <sys/uio.h>
     47       1.1    tsarna 
     48       1.1    tsarna #include <net/if.h>
     49       1.1    tsarna #include <net/if_dl.h>
     50       1.1    tsarna #include <net/if_types.h>
     51       1.1    tsarna 
     52       1.1    tsarna /*
     53       1.1    tsarna  * See also:
     54       1.1    tsarna  *	http://www.opengroup.org/dce/info/draft-leach-uuids-guids-01.txt
     55       1.1    tsarna  *	http://www.opengroup.org/onlinepubs/009629399/apdxa.htm
     56       1.1    tsarna  *
     57       1.1    tsarna  * Note that the generator state is itself an UUID, but the time and clock
     58       1.1    tsarna  * sequence fields are written in the native byte order.
     59       1.1    tsarna  */
     60       1.1    tsarna 
     61       1.1    tsarna /* XXX Do we have a similar ASSERT()? */
     62       1.1    tsarna #define CTASSERT(x)
     63       1.1    tsarna 
     64       1.1    tsarna CTASSERT(sizeof(struct uuid) == 16);
     65       1.1    tsarna 
     66       1.1    tsarna /* We use an alternative, more convenient representation in the generator. */
     67       1.1    tsarna struct uuid_private {
     68       1.1    tsarna 	union {
     69       1.1    tsarna 		uint64_t	ll;		/* internal. */
     70       1.1    tsarna 		struct {
     71       1.1    tsarna 			uint32_t	low;
     72       1.1    tsarna 			uint16_t	mid;
     73       1.1    tsarna 			uint16_t	hi;
     74       1.1    tsarna 		} x;
     75       1.1    tsarna 	} time;
     76       1.1    tsarna 	uint16_t	seq;			/* Big-endian. */
     77       1.1    tsarna 	uint16_t	node[UUID_NODE_LEN>>1];
     78       1.1    tsarna };
     79       1.1    tsarna 
     80       1.1    tsarna CTASSERT(sizeof(struct uuid_private) == 16);
     81       1.1    tsarna 
     82       1.1    tsarna static struct uuid_private uuid_last;
     83       1.1    tsarna 
     84       1.1    tsarna /* "UUID generator mutex lock" */
     85      1.10        ad static kmutex_t uuid_mutex;
     86      1.10        ad 
     87      1.10        ad void
     88      1.10        ad uuid_init(void)
     89      1.10        ad {
     90      1.10        ad 
     91      1.10        ad 	mutex_init(&uuid_mutex, MUTEX_DEFAULT, IPL_NONE);
     92      1.10        ad }
     93       1.1    tsarna 
     94       1.1    tsarna /*
     95       1.1    tsarna  * Return the first MAC address we encounter or, if none was found,
     96       1.1    tsarna  * construct a sufficiently random multicast address. We don't try
     97       1.1    tsarna  * to return the same MAC address as previously returned. We always
     98       1.1    tsarna  * generate a new multicast address if no MAC address exists in the
     99       1.1    tsarna  * system.
    100       1.1    tsarna  * It would be nice to know if 'ifnet' or any of its sub-structures
    101       1.1    tsarna  * has been changed in any way. If not, we could simply skip the
    102       1.1    tsarna  * scan and safely return the MAC address we returned before.
    103       1.1    tsarna  */
    104       1.1    tsarna static void
    105       1.1    tsarna uuid_node(uint16_t *node)
    106       1.1    tsarna {
    107       1.1    tsarna 	struct ifnet *ifp;
    108       1.1    tsarna 	struct ifaddr *ifa;
    109       1.1    tsarna 	struct sockaddr_dl *sdl;
    110       1.1    tsarna 	int i, s;
    111       1.1    tsarna 
    112       1.1    tsarna 	s = splnet();
    113  1.11.8.1       mjf 	KERNEL_LOCK(1, NULL);
    114       1.4      matt 	IFNET_FOREACH(ifp) {
    115       1.1    tsarna 		/* Walk the address list */
    116       1.4      matt 		IFADDR_FOREACH(ifa, ifp) {
    117       1.1    tsarna 			sdl = (struct sockaddr_dl*)ifa->ifa_addr;
    118       1.1    tsarna 			if (sdl != NULL && sdl->sdl_family == AF_LINK &&
    119       1.1    tsarna 			    sdl->sdl_type == IFT_ETHER) {
    120       1.1    tsarna 				/* Got a MAC address. */
    121      1.11    dyoung 				memcpy(node, CLLADDR(sdl), UUID_NODE_LEN);
    122  1.11.8.1       mjf 				KERNEL_UNLOCK_ONE(NULL);
    123       1.1    tsarna 				splx(s);
    124       1.1    tsarna 				return;
    125       1.1    tsarna 			}
    126       1.1    tsarna 		}
    127       1.1    tsarna 	}
    128  1.11.8.1       mjf 	KERNEL_UNLOCK_ONE(NULL);
    129       1.1    tsarna 	splx(s);
    130       1.1    tsarna 
    131       1.1    tsarna 	for (i = 0; i < (UUID_NODE_LEN>>1); i++)
    132       1.1    tsarna 		node[i] = (uint16_t)arc4random();
    133       1.1    tsarna 	*((uint8_t*)node) |= 0x01;
    134       1.1    tsarna }
    135       1.1    tsarna 
    136       1.1    tsarna /*
    137       1.1    tsarna  * Get the current time as a 60 bit count of 100-nanosecond intervals
    138       1.1    tsarna  * since 00:00:00.00, October 15,1582. We apply a magic offset to convert
    139       1.1    tsarna  * the Unix time since 00:00:00.00, January 1, 1970 to the date of the
    140       1.1    tsarna  * Gregorian reform to the Christian calendar.
    141       1.1    tsarna  */
    142       1.1    tsarna /*
    143       1.1    tsarna  * At present, NetBSD has no timespec source, only timeval sources.  So,
    144       1.1    tsarna  * we use timeval.
    145       1.1    tsarna  */
    146       1.1    tsarna static uint64_t
    147       1.1    tsarna uuid_time(void)
    148       1.1    tsarna {
    149       1.1    tsarna 	struct timeval tv;
    150       1.5  christos 	uint64_t xtime = 0x01B21DD213814000LL;
    151       1.1    tsarna 
    152       1.1    tsarna 	microtime(&tv);
    153       1.5  christos 	xtime += (uint64_t)tv.tv_sec * 10000000LL;
    154       1.5  christos 	xtime += (uint64_t)(10 * tv.tv_usec);
    155       1.5  christos 	return (xtime & ((1LL << 60) - 1LL));
    156       1.1    tsarna }
    157       1.1    tsarna 
    158       1.2   thorpej /*
    159       1.2   thorpej  * Internal routine to actually generate the UUID.
    160       1.2   thorpej  */
    161       1.2   thorpej static void
    162       1.2   thorpej uuid_generate(struct uuid_private *uuid, uint64_t *timep, int count)
    163       1.2   thorpej {
    164       1.5  christos 	uint64_t xtime;
    165       1.2   thorpej 
    166      1.10        ad 	mutex_enter(&uuid_mutex);
    167       1.2   thorpej 
    168       1.2   thorpej 	uuid_node(uuid->node);
    169       1.5  christos 	xtime = uuid_time();
    170       1.5  christos 	*timep = xtime;
    171       1.2   thorpej 
    172       1.2   thorpej 	if (uuid_last.time.ll == 0LL || uuid_last.node[0] != uuid->node[0] ||
    173       1.2   thorpej 	    uuid_last.node[1] != uuid->node[1] ||
    174       1.2   thorpej 	    uuid_last.node[2] != uuid->node[2])
    175       1.2   thorpej 		uuid->seq = (uint16_t)arc4random() & 0x3fff;
    176       1.5  christos 	else if (uuid_last.time.ll >= xtime)
    177       1.2   thorpej 		uuid->seq = (uuid_last.seq + 1) & 0x3fff;
    178       1.2   thorpej 	else
    179       1.2   thorpej 		uuid->seq = uuid_last.seq;
    180       1.2   thorpej 
    181       1.2   thorpej 	uuid_last = *uuid;
    182       1.5  christos 	uuid_last.time.ll = (xtime + count - 1) & ((1LL << 60) - 1LL);
    183       1.2   thorpej 
    184      1.10        ad 	mutex_exit(&uuid_mutex);
    185       1.2   thorpej }
    186       1.2   thorpej 
    187       1.1    tsarna int
    188       1.8      yamt sys_uuidgen(struct lwp *l, void *v, register_t *retval)
    189       1.1    tsarna {
    190       1.1    tsarna 	struct sys_uuidgen_args *uap = v;
    191       1.1    tsarna 	struct uuid_private uuid;
    192       1.5  christos 	uint64_t xtime;
    193       1.1    tsarna 	int error;
    194       1.1    tsarna 
    195       1.1    tsarna 	/*
    196       1.1    tsarna 	 * Limit the number of UUIDs that can be created at the same time
    197       1.1    tsarna 	 * to some arbitrary number. This isn't really necessary, but I
    198       1.1    tsarna 	 * like to have some sort of upper-bound that's less than 2G :-)
    199       1.1    tsarna 	 * XXX needs to be tunable.
    200       1.1    tsarna 	 */
    201       1.1    tsarna 	if (SCARG(uap,count) < 1 || SCARG(uap,count) > 2048)
    202       1.1    tsarna 		return (EINVAL);
    203       1.1    tsarna 
    204       1.1    tsarna 	/* XXX: pre-validate accessibility to the whole of the UUID store? */
    205       1.1    tsarna 
    206       1.2   thorpej 	/* Generate the base UUID. */
    207       1.5  christos 	uuid_generate(&uuid, &xtime, SCARG(uap, count));
    208       1.1    tsarna 
    209       1.1    tsarna 	/* Set sequence and variant and deal with byte order. */
    210       1.1    tsarna 	uuid.seq = htobe16(uuid.seq | 0x8000);
    211       1.1    tsarna 
    212       1.1    tsarna 	/* XXX: this should copyout larger chunks at a time. */
    213       1.1    tsarna 	do {
    214       1.1    tsarna 		/* Set time and version (=1) and deal with byte order. */
    215       1.5  christos 		uuid.time.x.low = (uint32_t)xtime;
    216       1.5  christos 		uuid.time.x.mid = (uint16_t)(xtime >> 32);
    217       1.5  christos 		uuid.time.x.hi = ((uint16_t)(xtime >> 48) & 0xfff) | (1 << 12);
    218       1.1    tsarna 		error = copyout(&uuid, SCARG(uap,store), sizeof(uuid));
    219       1.2   thorpej 		SCARG(uap, store)++;
    220       1.2   thorpej 		SCARG(uap, count)--;
    221       1.5  christos 		xtime++;
    222       1.2   thorpej 	} while (SCARG(uap, count) > 0 && error == 0);
    223       1.1    tsarna 
    224       1.1    tsarna 	return (error);
    225       1.1    tsarna }
    226       1.1    tsarna 
    227       1.1    tsarna int
    228       1.2   thorpej uuid_snprintf(char *buf, size_t sz, const struct uuid *uuid)
    229       1.1    tsarna {
    230       1.2   thorpej 	const struct uuid_private *id;
    231       1.1    tsarna 	int cnt;
    232       1.1    tsarna 
    233       1.2   thorpej 	id = (const struct uuid_private *)uuid;
    234       1.1    tsarna 	cnt = snprintf(buf, sz, "%08x-%04x-%04x-%04x-%04x%04x%04x",
    235       1.1    tsarna 	    id->time.x.low, id->time.x.mid, id->time.x.hi, be16toh(id->seq),
    236       1.1    tsarna 	    be16toh(id->node[0]), be16toh(id->node[1]), be16toh(id->node[2]));
    237       1.1    tsarna 	return (cnt);
    238       1.1    tsarna }
    239       1.1    tsarna 
    240       1.1    tsarna int
    241       1.2   thorpej uuid_printf(const struct uuid *uuid)
    242       1.1    tsarna {
    243       1.2   thorpej 	char buf[UUID_STR_LEN];
    244       1.1    tsarna 
    245       1.2   thorpej 	(void) uuid_snprintf(buf, sizeof(buf), uuid);
    246       1.1    tsarna 	printf("%s", buf);
    247       1.2   thorpej 	return (0);
    248       1.1    tsarna }
    249       1.1    tsarna 
    250       1.1    tsarna /*
    251       1.2   thorpej  * Encode/Decode UUID into octet-stream.
    252       1.1    tsarna  *   http://www.opengroup.org/dce/info/draft-leach-uuids-guids-01.txt
    253       1.1    tsarna  *
    254       1.1    tsarna  * 0                   1                   2                   3
    255       1.1    tsarna  *   0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1 2 3 4 5 6 7 8 9 0 1
    256       1.1    tsarna  *  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    257       1.1    tsarna  *  |                          time_low                             |
    258       1.1    tsarna  *  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    259       1.1    tsarna  *  |       time_mid                |         time_hi_and_version   |
    260       1.1    tsarna  *  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    261       1.1    tsarna  *  |clk_seq_hi_res |  clk_seq_low  |         node (0-1)            |
    262       1.1    tsarna  *  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    263       1.1    tsarna  *  |                         node (2-5)                            |
    264       1.1    tsarna  *  +-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+-+
    265       1.1    tsarna  */
    266       1.1    tsarna 
    267       1.1    tsarna void
    268       1.2   thorpej uuid_enc_le(void *buf, const struct uuid *uuid)
    269       1.1    tsarna {
    270       1.2   thorpej 	uint8_t *p = buf;
    271       1.1    tsarna 	int i;
    272       1.1    tsarna 
    273       1.1    tsarna 	le32enc(p, uuid->time_low);
    274       1.1    tsarna 	le16enc(p + 4, uuid->time_mid);
    275       1.1    tsarna 	le16enc(p + 6, uuid->time_hi_and_version);
    276       1.1    tsarna 	p[8] = uuid->clock_seq_hi_and_reserved;
    277       1.1    tsarna 	p[9] = uuid->clock_seq_low;
    278       1.1    tsarna 	for (i = 0; i < _UUID_NODE_LEN; i++)
    279       1.1    tsarna 		p[10 + i] = uuid->node[i];
    280       1.1    tsarna }
    281       1.1    tsarna 
    282       1.1    tsarna void
    283       1.2   thorpej uuid_dec_le(void const *buf, struct uuid *uuid)
    284       1.1    tsarna {
    285       1.2   thorpej 	const uint8_t *p = buf;
    286       1.1    tsarna 	int i;
    287       1.1    tsarna 
    288       1.1    tsarna 	uuid->time_low = le32dec(p);
    289       1.1    tsarna 	uuid->time_mid = le16dec(p + 4);
    290       1.1    tsarna 	uuid->time_hi_and_version = le16dec(p + 6);
    291       1.1    tsarna 	uuid->clock_seq_hi_and_reserved = p[8];
    292       1.1    tsarna 	uuid->clock_seq_low = p[9];
    293       1.1    tsarna 	for (i = 0; i < _UUID_NODE_LEN; i++)
    294       1.1    tsarna 		uuid->node[i] = p[10 + i];
    295       1.1    tsarna }
    296       1.2   thorpej 
    297       1.1    tsarna void
    298       1.2   thorpej uuid_enc_be(void *buf, const struct uuid *uuid)
    299       1.1    tsarna {
    300       1.2   thorpej 	uint8_t *p = buf;
    301       1.1    tsarna 	int i;
    302       1.1    tsarna 
    303       1.1    tsarna 	be32enc(p, uuid->time_low);
    304       1.1    tsarna 	be16enc(p + 4, uuid->time_mid);
    305       1.1    tsarna 	be16enc(p + 6, uuid->time_hi_and_version);
    306       1.1    tsarna 	p[8] = uuid->clock_seq_hi_and_reserved;
    307       1.1    tsarna 	p[9] = uuid->clock_seq_low;
    308       1.1    tsarna 	for (i = 0; i < _UUID_NODE_LEN; i++)
    309       1.1    tsarna 		p[10 + i] = uuid->node[i];
    310       1.1    tsarna }
    311       1.1    tsarna 
    312       1.1    tsarna void
    313       1.2   thorpej uuid_dec_be(void const *buf, struct uuid *uuid)
    314       1.1    tsarna {
    315       1.2   thorpej 	const uint8_t *p = buf;
    316       1.1    tsarna 	int i;
    317       1.1    tsarna 
    318       1.1    tsarna 	uuid->time_low = be32dec(p);
    319       1.1    tsarna 	uuid->time_mid = le16dec(p + 4);
    320       1.1    tsarna 	uuid->time_hi_and_version = be16dec(p + 6);
    321       1.1    tsarna 	uuid->clock_seq_hi_and_reserved = p[8];
    322       1.1    tsarna 	uuid->clock_seq_low = p[9];
    323       1.1    tsarna 	for (i = 0; i < _UUID_NODE_LEN; i++)
    324       1.1    tsarna 		uuid->node[i] = p[10 + i];
    325       1.1    tsarna }
    326