common.c revision ff787d557db719adea0fdf2679667500c65cf74d
1/*
2 * wpa_supplicant/hostapd / common helper functions, etc.
3 * Copyright (c) 2002-2007, Jouni Malinen <j@w1.fi>
4 *
5 * This software may be distributed under the terms of the BSD license.
6 * See README for more details.
7 */
8
9#include "includes.h"
10
11#include "common.h"
12
13
14static int hex2num(char c)
15{
16	if (c >= '0' && c <= '9')
17		return c - '0';
18	if (c >= 'a' && c <= 'f')
19		return c - 'a' + 10;
20	if (c >= 'A' && c <= 'F')
21		return c - 'A' + 10;
22	return -1;
23}
24
25
26int hex2byte(const char *hex)
27{
28	int a, b;
29	a = hex2num(*hex++);
30	if (a < 0)
31		return -1;
32	b = hex2num(*hex++);
33	if (b < 0)
34		return -1;
35	return (a << 4) | b;
36}
37
38
39static const char * hwaddr_parse(const char *txt, u8 *addr)
40{
41	size_t i;
42
43	for (i = 0; i < ETH_ALEN; i++) {
44		int a;
45
46		a = hex2byte(txt);
47		if (a < 0)
48			return NULL;
49		txt += 2;
50		addr[i] = a;
51		if (i < ETH_ALEN - 1 && *txt++ != ':')
52			return NULL;
53	}
54	return txt;
55}
56
57
58/**
59 * hwaddr_aton - Convert ASCII string to MAC address (colon-delimited format)
60 * @txt: MAC address as a string (e.g., "00:11:22:33:44:55")
61 * @addr: Buffer for the MAC address (ETH_ALEN = 6 bytes)
62 * Returns: 0 on success, -1 on failure (e.g., string not a MAC address)
63 */
64int hwaddr_aton(const char *txt, u8 *addr)
65{
66	return hwaddr_parse(txt, addr) ? 0 : -1;
67}
68
69
70/**
71 * hwaddr_masked_aton - Convert ASCII string with optional mask to MAC address (colon-delimited format)
72 * @txt: MAC address with optional mask as a string (e.g., "00:11:22:33:44:55/ff:ff:ff:ff:00:00")
73 * @addr: Buffer for the MAC address (ETH_ALEN = 6 bytes)
74 * @mask: Buffer for the MAC address mask (ETH_ALEN = 6 bytes)
75 * @maskable: Flag to indicate whether a mask is allowed
76 * Returns: 0 on success, -1 on failure (e.g., string not a MAC address)
77 */
78int hwaddr_masked_aton(const char *txt, u8 *addr, u8 *mask, u8 maskable)
79{
80	const char *r;
81
82	/* parse address part */
83	r = hwaddr_parse(txt, addr);
84	if (!r)
85		return -1;
86
87	/* check for optional mask */
88	if (*r == '\0' || isspace(*r)) {
89		/* no mask specified, assume default */
90		os_memset(mask, 0xff, ETH_ALEN);
91	} else if (maskable && *r == '/') {
92		/* mask specified and allowed */
93		r = hwaddr_parse(r + 1, mask);
94		/* parser error? */
95		if (!r)
96			return -1;
97	} else {
98		/* mask specified but not allowed or trailing garbage */
99		return -1;
100	}
101
102	return 0;
103}
104
105
106/**
107 * hwaddr_compact_aton - Convert ASCII string to MAC address (no colon delimitors format)
108 * @txt: MAC address as a string (e.g., "001122334455")
109 * @addr: Buffer for the MAC address (ETH_ALEN = 6 bytes)
110 * Returns: 0 on success, -1 on failure (e.g., string not a MAC address)
111 */
112int hwaddr_compact_aton(const char *txt, u8 *addr)
113{
114	int i;
115
116	for (i = 0; i < 6; i++) {
117		int a, b;
118
119		a = hex2num(*txt++);
120		if (a < 0)
121			return -1;
122		b = hex2num(*txt++);
123		if (b < 0)
124			return -1;
125		*addr++ = (a << 4) | b;
126	}
127
128	return 0;
129}
130
131/**
132 * hwaddr_aton2 - Convert ASCII string to MAC address (in any known format)
133 * @txt: MAC address as a string (e.g., 00:11:22:33:44:55 or 0011.2233.4455)
134 * @addr: Buffer for the MAC address (ETH_ALEN = 6 bytes)
135 * Returns: Characters used (> 0) on success, -1 on failure
136 */
137int hwaddr_aton2(const char *txt, u8 *addr)
138{
139	int i;
140	const char *pos = txt;
141
142	for (i = 0; i < 6; i++) {
143		int a, b;
144
145		while (*pos == ':' || *pos == '.' || *pos == '-')
146			pos++;
147
148		a = hex2num(*pos++);
149		if (a < 0)
150			return -1;
151		b = hex2num(*pos++);
152		if (b < 0)
153			return -1;
154		*addr++ = (a << 4) | b;
155	}
156
157	return pos - txt;
158}
159
160
161/**
162 * hexstr2bin - Convert ASCII hex string into binary data
163 * @hex: ASCII hex string (e.g., "01ab")
164 * @buf: Buffer for the binary data
165 * @len: Length of the text to convert in bytes (of buf); hex will be double
166 * this size
167 * Returns: 0 on success, -1 on failure (invalid hex string)
168 */
169int hexstr2bin(const char *hex, u8 *buf, size_t len)
170{
171	size_t i;
172	int a;
173	const char *ipos = hex;
174	u8 *opos = buf;
175
176	for (i = 0; i < len; i++) {
177		a = hex2byte(ipos);
178		if (a < 0)
179			return -1;
180		*opos++ = a;
181		ipos += 2;
182	}
183	return 0;
184}
185
186
187int hwaddr_mask_txt(char *buf, size_t len, const u8 *addr, const u8 *mask)
188{
189	size_t i;
190	int print_mask = 0;
191	int res;
192
193	for (i = 0; i < ETH_ALEN; i++) {
194		if (mask[i] != 0xff) {
195			print_mask = 1;
196			break;
197		}
198	}
199
200	if (print_mask)
201		res = os_snprintf(buf, len, MACSTR "/" MACSTR,
202				  MAC2STR(addr), MAC2STR(mask));
203	else
204		res = os_snprintf(buf, len, MACSTR, MAC2STR(addr));
205	if (os_snprintf_error(len, res))
206		return -1;
207	return res;
208}
209
210
211/**
212 * inc_byte_array - Increment arbitrary length byte array by one
213 * @counter: Pointer to byte array
214 * @len: Length of the counter in bytes
215 *
216 * This function increments the last byte of the counter by one and continues
217 * rolling over to more significant bytes if the byte was incremented from
218 * 0xff to 0x00.
219 */
220void inc_byte_array(u8 *counter, size_t len)
221{
222	int pos = len - 1;
223	while (pos >= 0) {
224		counter[pos]++;
225		if (counter[pos] != 0)
226			break;
227		pos--;
228	}
229}
230
231
232void wpa_get_ntp_timestamp(u8 *buf)
233{
234	struct os_time now;
235	u32 sec, usec;
236	be32 tmp;
237
238	/* 64-bit NTP timestamp (time from 1900-01-01 00:00:00) */
239	os_get_time(&now);
240	sec = now.sec + 2208988800U; /* Epoch to 1900 */
241	/* Estimate 2^32/10^6 = 4295 - 1/32 - 1/512 */
242	usec = now.usec;
243	usec = 4295 * usec - (usec >> 5) - (usec >> 9);
244	tmp = host_to_be32(sec);
245	os_memcpy(buf, (u8 *) &tmp, 4);
246	tmp = host_to_be32(usec);
247	os_memcpy(buf + 4, (u8 *) &tmp, 4);
248}
249
250/**
251 * wpa_scnprintf - Simpler-to-use snprintf function
252 * @buf: Output buffer
253 * @size: Buffer size
254 * @fmt: format
255 *
256 * Simpler snprintf version that doesn't require further error checks - the
257 * return value only indicates how many bytes were actually written, excluding
258 * the NULL byte (i.e., 0 on error, size-1 if buffer is not big enough).
259 */
260int wpa_scnprintf(char *buf, size_t size, const char *fmt, ...)
261{
262	va_list ap;
263	int ret;
264
265	if (!size)
266		return 0;
267
268	va_start(ap, fmt);
269	ret = vsnprintf(buf, size, fmt, ap);
270	va_end(ap);
271
272	if (ret < 0)
273		return 0;
274	if ((size_t) ret >= size)
275		return size - 1;
276
277	return ret;
278}
279
280static inline int _wpa_snprintf_hex(char *buf, size_t buf_size, const u8 *data,
281				    size_t len, int uppercase)
282{
283	size_t i;
284	char *pos = buf, *end = buf + buf_size;
285	int ret;
286	if (buf_size == 0)
287		return 0;
288	for (i = 0; i < len; i++) {
289		ret = os_snprintf(pos, end - pos, uppercase ? "%02X" : "%02x",
290				  data[i]);
291		if (os_snprintf_error(end - pos, ret)) {
292			end[-1] = '\0';
293			return pos - buf;
294		}
295		pos += ret;
296	}
297	end[-1] = '\0';
298	return pos - buf;
299}
300
301/**
302 * wpa_snprintf_hex - Print data as a hex string into a buffer
303 * @buf: Memory area to use as the output buffer
304 * @buf_size: Maximum buffer size in bytes (should be at least 2 * len + 1)
305 * @data: Data to be printed
306 * @len: Length of data in bytes
307 * Returns: Number of bytes written
308 */
309int wpa_snprintf_hex(char *buf, size_t buf_size, const u8 *data, size_t len)
310{
311	return _wpa_snprintf_hex(buf, buf_size, data, len, 0);
312}
313
314
315/**
316 * wpa_snprintf_hex_uppercase - Print data as a upper case hex string into buf
317 * @buf: Memory area to use as the output buffer
318 * @buf_size: Maximum buffer size in bytes (should be at least 2 * len + 1)
319 * @data: Data to be printed
320 * @len: Length of data in bytes
321 * Returns: Number of bytes written
322 */
323int wpa_snprintf_hex_uppercase(char *buf, size_t buf_size, const u8 *data,
324			       size_t len)
325{
326	return _wpa_snprintf_hex(buf, buf_size, data, len, 1);
327}
328
329
330#ifdef CONFIG_ANSI_C_EXTRA
331
332#ifdef _WIN32_WCE
333void perror(const char *s)
334{
335	wpa_printf(MSG_ERROR, "%s: GetLastError: %d",
336		   s, (int) GetLastError());
337}
338#endif /* _WIN32_WCE */
339
340
341int optind = 1;
342int optopt;
343char *optarg;
344
345int getopt(int argc, char *const argv[], const char *optstring)
346{
347	static int optchr = 1;
348	char *cp;
349
350	if (optchr == 1) {
351		if (optind >= argc) {
352			/* all arguments processed */
353			return EOF;
354		}
355
356		if (argv[optind][0] != '-' || argv[optind][1] == '\0') {
357			/* no option characters */
358			return EOF;
359		}
360	}
361
362	if (os_strcmp(argv[optind], "--") == 0) {
363		/* no more options */
364		optind++;
365		return EOF;
366	}
367
368	optopt = argv[optind][optchr];
369	cp = os_strchr(optstring, optopt);
370	if (cp == NULL || optopt == ':') {
371		if (argv[optind][++optchr] == '\0') {
372			optchr = 1;
373			optind++;
374		}
375		return '?';
376	}
377
378	if (cp[1] == ':') {
379		/* Argument required */
380		optchr = 1;
381		if (argv[optind][optchr + 1]) {
382			/* No space between option and argument */
383			optarg = &argv[optind++][optchr + 1];
384		} else if (++optind >= argc) {
385			/* option requires an argument */
386			return '?';
387		} else {
388			/* Argument in the next argv */
389			optarg = argv[optind++];
390		}
391	} else {
392		/* No argument */
393		if (argv[optind][++optchr] == '\0') {
394			optchr = 1;
395			optind++;
396		}
397		optarg = NULL;
398	}
399	return *cp;
400}
401#endif /* CONFIG_ANSI_C_EXTRA */
402
403
404#ifdef CONFIG_NATIVE_WINDOWS
405/**
406 * wpa_unicode2ascii_inplace - Convert unicode string into ASCII
407 * @str: Pointer to string to convert
408 *
409 * This function converts a unicode string to ASCII using the same
410 * buffer for output. If UNICODE is not set, the buffer is not
411 * modified.
412 */
413void wpa_unicode2ascii_inplace(TCHAR *str)
414{
415#ifdef UNICODE
416	char *dst = (char *) str;
417	while (*str)
418		*dst++ = (char) *str++;
419	*dst = '\0';
420#endif /* UNICODE */
421}
422
423
424TCHAR * wpa_strdup_tchar(const char *str)
425{
426#ifdef UNICODE
427	TCHAR *buf;
428	buf = os_malloc((strlen(str) + 1) * sizeof(TCHAR));
429	if (buf == NULL)
430		return NULL;
431	wsprintf(buf, L"%S", str);
432	return buf;
433#else /* UNICODE */
434	return os_strdup(str);
435#endif /* UNICODE */
436}
437#endif /* CONFIG_NATIVE_WINDOWS */
438
439
440void printf_encode(char *txt, size_t maxlen, const u8 *data, size_t len)
441{
442	char *end = txt + maxlen;
443	size_t i;
444
445	for (i = 0; i < len; i++) {
446		if (txt + 4 >= end)
447			break;
448
449		switch (data[i]) {
450		case '\"':
451			*txt++ = '\\';
452			*txt++ = '\"';
453			break;
454		case '\\':
455			*txt++ = '\\';
456			*txt++ = '\\';
457			break;
458		case '\033':
459			*txt++ = '\\';
460			*txt++ = 'e';
461			break;
462		case '\n':
463			*txt++ = '\\';
464			*txt++ = 'n';
465			break;
466		case '\r':
467			*txt++ = '\\';
468			*txt++ = 'r';
469			break;
470		case '\t':
471			*txt++ = '\\';
472			*txt++ = 't';
473			break;
474		default:
475			if (data[i] >= 32 && data[i] <= 127) {
476				*txt++ = data[i];
477			} else {
478				txt += os_snprintf(txt, end - txt, "\\x%02x",
479						   data[i]);
480			}
481			break;
482		}
483	}
484
485	*txt = '\0';
486}
487
488
489size_t printf_decode(u8 *buf, size_t maxlen, const char *str)
490{
491	const char *pos = str;
492	size_t len = 0;
493	int val;
494
495	while (*pos) {
496		if (len + 1 >= maxlen)
497			break;
498		switch (*pos) {
499		case '\\':
500			pos++;
501			switch (*pos) {
502			case '\\':
503				buf[len++] = '\\';
504				pos++;
505				break;
506			case '"':
507				buf[len++] = '"';
508				pos++;
509				break;
510			case 'n':
511				buf[len++] = '\n';
512				pos++;
513				break;
514			case 'r':
515				buf[len++] = '\r';
516				pos++;
517				break;
518			case 't':
519				buf[len++] = '\t';
520				pos++;
521				break;
522			case 'e':
523				buf[len++] = '\033';
524				pos++;
525				break;
526			case 'x':
527				pos++;
528				val = hex2byte(pos);
529				if (val < 0) {
530					val = hex2num(*pos);
531					if (val < 0)
532						break;
533					buf[len++] = val;
534					pos++;
535				} else {
536					buf[len++] = val;
537					pos += 2;
538				}
539				break;
540			case '0':
541			case '1':
542			case '2':
543			case '3':
544			case '4':
545			case '5':
546			case '6':
547			case '7':
548				val = *pos++ - '0';
549				if (*pos >= '0' && *pos <= '7')
550					val = val * 8 + (*pos++ - '0');
551				if (*pos >= '0' && *pos <= '7')
552					val = val * 8 + (*pos++ - '0');
553				buf[len++] = val;
554				break;
555			default:
556				break;
557			}
558			break;
559		default:
560			buf[len++] = *pos++;
561			break;
562		}
563	}
564	if (maxlen > len)
565		buf[len] = '\0';
566
567	return len;
568}
569
570
571/**
572 * wpa_ssid_txt - Convert SSID to a printable string
573 * @ssid: SSID (32-octet string)
574 * @ssid_len: Length of ssid in octets
575 * Returns: Pointer to a printable string
576 *
577 * This function can be used to convert SSIDs into printable form. In most
578 * cases, SSIDs do not use unprintable characters, but IEEE 802.11 standard
579 * does not limit the used character set, so anything could be used in an SSID.
580 *
581 * This function uses a static buffer, so only one call can be used at the
582 * time, i.e., this is not re-entrant and the returned buffer must be used
583 * before calling this again.
584 */
585const char * wpa_ssid_txt(const u8 *ssid, size_t ssid_len)
586{
587	static char ssid_txt[32 * 4 + 1];
588
589	if (ssid == NULL) {
590		ssid_txt[0] = '\0';
591		return ssid_txt;
592	}
593
594	printf_encode(ssid_txt, sizeof(ssid_txt), ssid, ssid_len);
595	return ssid_txt;
596}
597
598
599void * __hide_aliasing_typecast(void *foo)
600{
601	return foo;
602}
603
604
605char * wpa_config_parse_string(const char *value, size_t *len)
606{
607	if (*value == '"') {
608		const char *pos;
609		char *str;
610		value++;
611		pos = os_strrchr(value, '"');
612		if (pos == NULL || pos[1] != '\0')
613			return NULL;
614		*len = pos - value;
615		str = dup_binstr(value, *len);
616		if (str == NULL)
617			return NULL;
618		return str;
619	} else if (*value == 'P' && value[1] == '"') {
620		const char *pos;
621		char *tstr, *str;
622		size_t tlen;
623		value += 2;
624		pos = os_strrchr(value, '"');
625		if (pos == NULL || pos[1] != '\0')
626			return NULL;
627		tlen = pos - value;
628		tstr = dup_binstr(value, tlen);
629		if (tstr == NULL)
630			return NULL;
631
632		str = os_malloc(tlen + 1);
633		if (str == NULL) {
634			os_free(tstr);
635			return NULL;
636		}
637
638		*len = printf_decode((u8 *) str, tlen + 1, tstr);
639		os_free(tstr);
640
641		return str;
642	} else {
643		u8 *str;
644		size_t tlen, hlen = os_strlen(value);
645		if (hlen & 1)
646			return NULL;
647		tlen = hlen / 2;
648		str = os_malloc(tlen + 1);
649		if (str == NULL)
650			return NULL;
651		if (hexstr2bin(value, str, tlen)) {
652			os_free(str);
653			return NULL;
654		}
655		str[tlen] = '\0';
656		*len = tlen;
657		return (char *) str;
658	}
659}
660
661
662int is_hex(const u8 *data, size_t len)
663{
664	size_t i;
665
666	for (i = 0; i < len; i++) {
667		if (data[i] < 32 || data[i] >= 127)
668			return 1;
669	}
670	return 0;
671}
672
673
674size_t merge_byte_arrays(u8 *res, size_t res_len,
675			 const u8 *src1, size_t src1_len,
676			 const u8 *src2, size_t src2_len)
677{
678	size_t len = 0;
679
680	os_memset(res, 0, res_len);
681
682	if (src1) {
683		if (src1_len >= res_len) {
684			os_memcpy(res, src1, res_len);
685			return res_len;
686		}
687
688		os_memcpy(res, src1, src1_len);
689		len += src1_len;
690	}
691
692	if (src2) {
693		if (len + src2_len >= res_len) {
694			os_memcpy(res + len, src2, res_len - len);
695			return res_len;
696		}
697
698		os_memcpy(res + len, src2, src2_len);
699		len += src2_len;
700	}
701
702	return len;
703}
704
705
706char * dup_binstr(const void *src, size_t len)
707{
708	char *res;
709
710	if (src == NULL)
711		return NULL;
712	res = os_malloc(len + 1);
713	if (res == NULL)
714		return NULL;
715	os_memcpy(res, src, len);
716	res[len] = '\0';
717
718	return res;
719}
720
721
722int freq_range_list_parse(struct wpa_freq_range_list *res, const char *value)
723{
724	struct wpa_freq_range *freq = NULL, *n;
725	unsigned int count = 0;
726	const char *pos, *pos2, *pos3;
727
728	/*
729	 * Comma separated list of frequency ranges.
730	 * For example: 2412-2432,2462,5000-6000
731	 */
732	pos = value;
733	while (pos && pos[0]) {
734		n = os_realloc_array(freq, count + 1,
735				     sizeof(struct wpa_freq_range));
736		if (n == NULL) {
737			os_free(freq);
738			return -1;
739		}
740		freq = n;
741		freq[count].min = atoi(pos);
742		pos2 = os_strchr(pos, '-');
743		pos3 = os_strchr(pos, ',');
744		if (pos2 && (!pos3 || pos2 < pos3)) {
745			pos2++;
746			freq[count].max = atoi(pos2);
747		} else
748			freq[count].max = freq[count].min;
749		pos = pos3;
750		if (pos)
751			pos++;
752		count++;
753	}
754
755	os_free(res->range);
756	res->range = freq;
757	res->num = count;
758
759	return 0;
760}
761
762
763int freq_range_list_includes(const struct wpa_freq_range_list *list,
764			     unsigned int freq)
765{
766	unsigned int i;
767
768	if (list == NULL)
769		return 0;
770
771	for (i = 0; i < list->num; i++) {
772		if (freq >= list->range[i].min && freq <= list->range[i].max)
773			return 1;
774	}
775
776	return 0;
777}
778
779
780char * freq_range_list_str(const struct wpa_freq_range_list *list)
781{
782	char *buf, *pos, *end;
783	size_t maxlen;
784	unsigned int i;
785	int res;
786
787	if (list->num == 0)
788		return NULL;
789
790	maxlen = list->num * 30;
791	buf = os_malloc(maxlen);
792	if (buf == NULL)
793		return NULL;
794	pos = buf;
795	end = buf + maxlen;
796
797	for (i = 0; i < list->num; i++) {
798		struct wpa_freq_range *range = &list->range[i];
799
800		if (range->min == range->max)
801			res = os_snprintf(pos, end - pos, "%s%u",
802					  i == 0 ? "" : ",", range->min);
803		else
804			res = os_snprintf(pos, end - pos, "%s%u-%u",
805					  i == 0 ? "" : ",",
806					  range->min, range->max);
807		if (os_snprintf_error(end - pos, res)) {
808			os_free(buf);
809			return NULL;
810		}
811		pos += res;
812	}
813
814	return buf;
815}
816
817
818int int_array_len(const int *a)
819{
820	int i;
821	for (i = 0; a && a[i]; i++)
822		;
823	return i;
824}
825
826
827void int_array_concat(int **res, const int *a)
828{
829	int reslen, alen, i;
830	int *n;
831
832	reslen = int_array_len(*res);
833	alen = int_array_len(a);
834
835	n = os_realloc_array(*res, reslen + alen + 1, sizeof(int));
836	if (n == NULL) {
837		os_free(*res);
838		*res = NULL;
839		return;
840	}
841	for (i = 0; i <= alen; i++)
842		n[reslen + i] = a[i];
843	*res = n;
844}
845
846
847static int freq_cmp(const void *a, const void *b)
848{
849	int _a = *(int *) a;
850	int _b = *(int *) b;
851
852	if (_a == 0)
853		return 1;
854	if (_b == 0)
855		return -1;
856	return _a - _b;
857}
858
859
860void int_array_sort_unique(int *a)
861{
862	int alen;
863	int i, j;
864
865	if (a == NULL)
866		return;
867
868	alen = int_array_len(a);
869	qsort(a, alen, sizeof(int), freq_cmp);
870
871	i = 0;
872	j = 1;
873	while (a[i] && a[j]) {
874		if (a[i] == a[j]) {
875			j++;
876			continue;
877		}
878		a[++i] = a[j++];
879	}
880	if (a[i])
881		i++;
882	a[i] = 0;
883}
884
885
886void int_array_add_unique(int **res, int a)
887{
888	int reslen;
889	int *n;
890
891	for (reslen = 0; *res && (*res)[reslen]; reslen++) {
892		if ((*res)[reslen] == a)
893			return; /* already in the list */
894	}
895
896	n = os_realloc_array(*res, reslen + 2, sizeof(int));
897	if (n == NULL) {
898		os_free(*res);
899		*res = NULL;
900		return;
901	}
902
903	n[reslen] = a;
904	n[reslen + 1] = 0;
905
906	*res = n;
907}
908
909
910void str_clear_free(char *str)
911{
912	if (str) {
913		size_t len = os_strlen(str);
914		os_memset(str, 0, len);
915		os_free(str);
916	}
917}
918
919
920void bin_clear_free(void *bin, size_t len)
921{
922	if (bin) {
923		os_memset(bin, 0, len);
924		os_free(bin);
925	}
926}
927
928
929int random_mac_addr(u8 *addr)
930{
931	if (os_get_random(addr, ETH_ALEN) < 0)
932		return -1;
933	addr[0] &= 0xfe; /* unicast */
934	addr[0] |= 0x02; /* locally administered */
935	return 0;
936}
937
938
939int random_mac_addr_keep_oui(u8 *addr)
940{
941	if (os_get_random(addr + 3, 3) < 0)
942		return -1;
943	addr[0] &= 0xfe; /* unicast */
944	addr[0] |= 0x02; /* locally administered */
945	return 0;
946}
947
948
949/**
950 * str_token - Get next token from a string
951 * @buf: String to tokenize. Note that the string might be modified.
952 * @delim: String of delimiters
953 * @context: Pointer to save our context. Should be initialized with
954 *	NULL on the first call, and passed for any further call.
955 * Returns: The next token, NULL if there are no more valid tokens.
956 */
957char * str_token(char *str, const char *delim, char **context)
958{
959	char *end, *pos = str;
960
961	if (*context)
962		pos = *context;
963
964	while (*pos && os_strchr(delim, *pos))
965		pos++;
966	if (!*pos)
967		return NULL;
968
969	end = pos + 1;
970	while (*end && !os_strchr(delim, *end))
971		end++;
972
973	if (*end)
974		*end++ = '\0';
975
976	*context = end;
977	return pos;
978}
979