wiconfig.c revision 1.25 1 1.25 thorpej /* $NetBSD: wiconfig.c,v 1.25 2002/04/09 02:56:17 thorpej Exp $ */
2 1.1 sommerfe /*
3 1.1 sommerfe * Copyright (c) 1997, 1998, 1999
4 1.1 sommerfe * Bill Paul <wpaul (at) ctr.columbia.edu>. All rights reserved.
5 1.1 sommerfe *
6 1.1 sommerfe * Redistribution and use in source and binary forms, with or without
7 1.1 sommerfe * modification, are permitted provided that the following conditions
8 1.1 sommerfe * are met:
9 1.1 sommerfe * 1. Redistributions of source code must retain the above copyright
10 1.1 sommerfe * notice, this list of conditions and the following disclaimer.
11 1.1 sommerfe * 2. Redistributions in binary form must reproduce the above copyright
12 1.1 sommerfe * notice, this list of conditions and the following disclaimer in the
13 1.1 sommerfe * documentation and/or other materials provided with the distribution.
14 1.1 sommerfe * 3. All advertising materials mentioning features or use of this software
15 1.1 sommerfe * must display the following acknowledgement:
16 1.1 sommerfe * This product includes software developed by Bill Paul.
17 1.1 sommerfe * 4. Neither the name of the author nor the names of any co-contributors
18 1.1 sommerfe * may be used to endorse or promote products derived from this software
19 1.1 sommerfe * without specific prior written permission.
20 1.1 sommerfe *
21 1.1 sommerfe * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND
22 1.1 sommerfe * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
23 1.1 sommerfe * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
24 1.1 sommerfe * ARE DISCLAIMED. IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD
25 1.1 sommerfe * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
26 1.1 sommerfe * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
27 1.1 sommerfe * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
28 1.1 sommerfe * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
29 1.1 sommerfe * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
30 1.1 sommerfe * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
31 1.1 sommerfe * THE POSSIBILITY OF SUCH DAMAGE.
32 1.1 sommerfe *
33 1.8 enami * From: Id: wicontrol.c,v 1.6 1999/05/22 16:12:49 wpaul Exp $
34 1.1 sommerfe */
35 1.1 sommerfe
36 1.1 sommerfe #include <sys/types.h>
37 1.1 sommerfe #include <sys/cdefs.h>
38 1.1 sommerfe #include <sys/param.h>
39 1.1 sommerfe #include <sys/socket.h>
40 1.1 sommerfe #include <sys/ioctl.h>
41 1.1 sommerfe #include <sys/socket.h>
42 1.1 sommerfe
43 1.1 sommerfe #include <net/if.h>
44 1.2 explorer #ifdef __FreeBSD__
45 1.2 explorer #include <net/if_var.h>
46 1.2 explorer #include <net/ethernet.h>
47 1.2 explorer
48 1.2 explorer #include <machine/if_wavelan_ieee.h>
49 1.2 explorer #else
50 1.2 explorer #include <netinet/in.h>
51 1.2 explorer #include <netinet/if_ether.h>
52 1.2 explorer #ifdef __NetBSD__
53 1.15 ichiro #include <net/if_ieee80211.h>
54 1.12 ichiro #include <dev/ic/wi_ieee.h>
55 1.2 explorer #else
56 1.2 explorer #include <dev/pcmcia/if_wavelan_ieee.h>
57 1.2 explorer #endif
58 1.2 explorer #endif
59 1.1 sommerfe
60 1.1 sommerfe #include <stdio.h>
61 1.1 sommerfe #include <string.h>
62 1.2 explorer #include <ctype.h>
63 1.1 sommerfe #include <stdlib.h>
64 1.1 sommerfe #include <unistd.h>
65 1.1 sommerfe #include <errno.h>
66 1.1 sommerfe #include <err.h>
67 1.1 sommerfe
68 1.1 sommerfe #if !defined(lint)
69 1.25 thorpej __COPYRIGHT(
70 1.25 thorpej "@(#) Copyright (c) 1997, 1998, 1999\
71 1.25 thorpej Bill Paul. All rights reserved.");
72 1.25 thorpej __RCSID("$NetBSD: wiconfig.c,v 1.25 2002/04/09 02:56:17 thorpej Exp $");
73 1.1 sommerfe #endif
74 1.1 sommerfe
75 1.7 enami struct wi_table {
76 1.7 enami int wi_type;
77 1.7 enami int wi_code;
78 1.7 enami #define WI_NONE 0x00
79 1.7 enami #define WI_STRING 0x01
80 1.7 enami #define WI_BOOL 0x02
81 1.7 enami #define WI_WORDS 0x03
82 1.7 enami #define WI_HEXBYTES 0x04
83 1.7 enami #define WI_KEYSTRUCT 0x05
84 1.22 dbj #define WI_BITS 0x06
85 1.7 enami char *wi_label; /* label used to print info */
86 1.7 enami int wi_opt; /* option character to set this */
87 1.7 enami char *wi_desc;
88 1.7 enami char *wi_optval;
89 1.7 enami };
90 1.7 enami
91 1.15 ichiro /* already define in wireg.h XXX */
92 1.15 ichiro #define WI_APRATE_0 0x00 /* NONE */
93 1.15 ichiro #define WI_APRATE_1 0x0A /* 1 Mbps */
94 1.15 ichiro #define WI_APRATE_2 0x14 /* 2 Mbps */
95 1.15 ichiro #define WI_APRATE_5 0x37 /* 5.5 Mbps */
96 1.15 ichiro #define WI_APRATE_11 0x6E /* 11 Mbps */
97 1.15 ichiro
98 1.18 christos #ifdef WI_RID_SCAN_APS
99 1.15 ichiro static void wi_apscan __P((char *));
100 1.18 christos static int get_if_flags __P((int, const char *));
101 1.18 christos static int set_if_flags __P((int, const char *, int));
102 1.18 christos #endif
103 1.1 sommerfe static void wi_getval __P((char *, struct wi_req *));
104 1.1 sommerfe static void wi_setval __P((char *, struct wi_req *));
105 1.1 sommerfe static void wi_printstr __P((struct wi_req *));
106 1.1 sommerfe static void wi_setstr __P((char *, int, char *));
107 1.1 sommerfe static void wi_setbytes __P((char *, int, char *, int));
108 1.1 sommerfe static void wi_setword __P((char *, int, int));
109 1.1 sommerfe static void wi_sethex __P((char *, int, char *));
110 1.1 sommerfe static void wi_printwords __P((struct wi_req *));
111 1.1 sommerfe static void wi_printbool __P((struct wi_req *));
112 1.1 sommerfe static void wi_printhex __P((struct wi_req *));
113 1.22 dbj static void wi_printbits __P((struct wi_req *));
114 1.1 sommerfe static void wi_dumpinfo __P((char *));
115 1.2 explorer static void wi_setkeys __P((char *, char *, int));
116 1.2 explorer static void wi_printkeys __P((struct wi_req *));
117 1.1 sommerfe static void wi_dumpstats __P((char *));
118 1.7 enami static void usage __P((void));
119 1.7 enami static struct wi_table *
120 1.7 enami wi_optlookup __P((struct wi_table *, int));
121 1.2 explorer static int wi_hex2int(char c);
122 1.2 explorer static void wi_str2key __P((char *, struct wi_key *));
123 1.1 sommerfe int main __P((int argc, char **argv));
124 1.1 sommerfe
125 1.18 christos #ifdef WI_RID_SCAN_APS
126 1.17 ichiro static int get_if_flags(s, name)
127 1.17 ichiro int s;
128 1.17 ichiro const char *name;
129 1.17 ichiro {
130 1.17 ichiro struct ifreq ifreq;
131 1.17 ichiro int flags;
132 1.17 ichiro
133 1.17 ichiro strncpy(ifreq.ifr_name, name, sizeof(ifreq.ifr_name));
134 1.17 ichiro if (ioctl(s, SIOCGIFFLAGS, (caddr_t)&ifreq) == -1)
135 1.17 ichiro err(1, "SIOCGIFFLAGS");
136 1.17 ichiro flags = ifreq.ifr_flags;
137 1.17 ichiro
138 1.17 ichiro return flags;
139 1.17 ichiro }
140 1.17 ichiro
141 1.17 ichiro static int set_if_flags(s, name, flags)
142 1.17 ichiro int s;
143 1.17 ichiro const char *name;
144 1.17 ichiro int flags;
145 1.17 ichiro {
146 1.17 ichiro struct ifreq ifreq;
147 1.17 ichiro
148 1.17 ichiro ifreq.ifr_flags = flags;
149 1.17 ichiro strncpy(ifreq.ifr_name, name, sizeof(ifreq.ifr_name));
150 1.17 ichiro if (ioctl(s, SIOCSIFFLAGS, (caddr_t)&ifreq) == -1)
151 1.17 ichiro err(1, "SIOCSIFFLAGS");
152 1.17 ichiro
153 1.17 ichiro return 0;
154 1.17 ichiro }
155 1.17 ichiro
156 1.15 ichiro static void wi_apscan(iface)
157 1.15 ichiro char *iface;
158 1.15 ichiro {
159 1.15 ichiro struct wi_req wreq;
160 1.15 ichiro struct ifreq ifr;
161 1.15 ichiro int s;
162 1.15 ichiro int naps, rate;
163 1.15 ichiro int retries = 10;
164 1.17 ichiro int flags;
165 1.15 ichiro struct wi_apinfo *w;
166 1.15 ichiro int i, j;
167 1.15 ichiro
168 1.15 ichiro if (iface == NULL)
169 1.15 ichiro errx(1, "must specify interface name");
170 1.17 ichiro
171 1.17 ichiro s = socket(AF_INET, SOCK_DGRAM, 0);
172 1.17 ichiro if (s == -1)
173 1.17 ichiro err(1, "socket");
174 1.17 ichiro flags = get_if_flags(s, iface);
175 1.17 ichiro if ((flags & IFF_UP) == 0)
176 1.17 ichiro flags = set_if_flags(s, iface, flags | IFF_UP);
177 1.17 ichiro
178 1.15 ichiro memset((char *)&wreq, 0, sizeof(wreq));
179 1.15 ichiro
180 1.15 ichiro wreq.wi_type = WI_RID_SCAN_APS;
181 1.15 ichiro wreq.wi_len = 4;
182 1.15 ichiro /* note chan. 1 is the least significant bit */
183 1.24 ichiro wreq.wi_val[0] = 0x3fff; /* 1 bit per channel, 1-14 */
184 1.24 ichiro wreq.wi_val[1] = 0xf; /* tx rate */
185 1.15 ichiro
186 1.15 ichiro /* write the request */
187 1.15 ichiro wi_setval(iface, &wreq);
188 1.15 ichiro
189 1.15 ichiro /* now poll for a result */
190 1.15 ichiro memset((char *)&wreq, 0, sizeof(wreq));
191 1.15 ichiro
192 1.15 ichiro wreq.wi_type = WI_RID_READ_APS;
193 1.15 ichiro wreq.wi_len = WI_MAX_DATALEN;
194 1.15 ichiro
195 1.15 ichiro /* we have to do this ourself as opposed to
196 1.19 ichiro * using getval, because we cannot bail if
197 1.15 ichiro * the ioctl fails
198 1.15 ichiro */
199 1.15 ichiro memset((char *)&ifr, 0, sizeof(ifr));
200 1.15 ichiro strcpy(ifr.ifr_name, iface);
201 1.15 ichiro ifr.ifr_data = (caddr_t)&wreq;
202 1.15 ichiro
203 1.15 ichiro printf("scanning ...");
204 1.17 ichiro fflush(stdout);
205 1.15 ichiro while (ioctl(s, SIOCGWAVELAN, &ifr) == -1) {
206 1.15 ichiro retries--;
207 1.15 ichiro if (retries >= 0) {
208 1.19 ichiro printf("."); fflush(stdout);
209 1.15 ichiro sleep(1);
210 1.15 ichiro } else
211 1.15 ichiro break;
212 1.15 ichiro errno = 0;
213 1.15 ichiro }
214 1.15 ichiro
215 1.15 ichiro if (errno) {
216 1.17 ichiro set_if_flags(s, iface, flags);
217 1.17 ichiro close(s);
218 1.15 ichiro err(1, "ioctl");
219 1.15 ichiro }
220 1.15 ichiro
221 1.20 dbj naps = *(int *)wreq.wi_val;
222 1.23 dbj
223 1.23 dbj if (naps > 0)
224 1.23 dbj printf("\nAP Information\n");
225 1.23 dbj else
226 1.23 dbj printf("\nNo APs available\n");
227 1.23 dbj
228 1.15 ichiro w = (struct wi_apinfo *)(((char *)&wreq.wi_val) + sizeof(int));
229 1.15 ichiro for ( i = 0; i < naps; i++, w++) {
230 1.15 ichiro printf("ap[%d]:\n", i);
231 1.15 ichiro if (w->scanreason) {
232 1.15 ichiro static char *scanm[] = {
233 1.15 ichiro "Host initiated",
234 1.15 ichiro "Firmware initiated",
235 1.15 ichiro "Inquiry request from host"
236 1.15 ichiro };
237 1.15 ichiro printf("\tScanReason:\t\t\t[ %s ]\n",
238 1.15 ichiro scanm[w->scanreason - 1]);
239 1.15 ichiro }
240 1.15 ichiro printf("\tnetname (SSID):\t\t\t[ ");
241 1.15 ichiro for (j = 0; j < w->namelen; j++) {
242 1.15 ichiro printf("%c", w->name[j]);
243 1.15 ichiro }
244 1.15 ichiro printf(" ]\n");
245 1.15 ichiro printf("\tBSSID:\t\t\t\t[ %02x:%02x:%02x:%02x:%02x:%02x ]\n",
246 1.15 ichiro w->bssid[0]&0xff, w->bssid[1]&0xff,
247 1.15 ichiro w->bssid[2]&0xff, w->bssid[3]&0xff,
248 1.15 ichiro w->bssid[4]&0xff, w->bssid[5]&0xff);
249 1.15 ichiro printf("\tChannel:\t\t\t[ %d ]\n", w->channel);
250 1.15 ichiro printf("\tQuality/Signal/Noise [signal]:\t[ %d / %d / %d ]\n"
251 1.15 ichiro "\t [dBm]:\t[ %d / %d / %d ]\n",
252 1.15 ichiro w->quality, w->signal, w->noise,
253 1.15 ichiro w->quality, w->signal - 149, w->noise - 149);
254 1.21 dbj printf("\tBSS Beacon Interval [msec]:\t[ %d ]\n", w->interval);
255 1.15 ichiro printf("\tCapinfo:\t\t\t[ ");
256 1.15 ichiro if (w->capinfo & IEEE80211_CAPINFO_ESS)
257 1.15 ichiro printf("ESS ");
258 1.15 ichiro if (w->capinfo & IEEE80211_CAPINFO_PRIVACY)
259 1.15 ichiro printf("WEP ");
260 1.15 ichiro printf("]\n");
261 1.15 ichiro
262 1.15 ichiro switch (w->rate) {
263 1.15 ichiro case WI_APRATE_1:
264 1.15 ichiro rate = 1;
265 1.15 ichiro break;
266 1.15 ichiro case WI_APRATE_2:
267 1.15 ichiro rate = 2;
268 1.15 ichiro break;
269 1.15 ichiro case WI_APRATE_5:
270 1.15 ichiro rate = 5.5;
271 1.15 ichiro break;
272 1.15 ichiro case WI_APRATE_11:
273 1.15 ichiro rate = 11;
274 1.15 ichiro break;
275 1.15 ichiro case WI_APRATE_0:
276 1.15 ichiro default:
277 1.15 ichiro rate = 0;
278 1.15 ichiro break;
279 1.15 ichiro }
280 1.15 ichiro if (rate) printf("\tDataRate [Mbps]:\t\t[ %d ]\n", rate);
281 1.15 ichiro }
282 1.17 ichiro
283 1.17 ichiro set_if_flags(s, iface, flags);
284 1.17 ichiro close(s);
285 1.15 ichiro }
286 1.18 christos #endif
287 1.15 ichiro
288 1.1 sommerfe static void wi_getval(iface, wreq)
289 1.1 sommerfe char *iface;
290 1.1 sommerfe struct wi_req *wreq;
291 1.1 sommerfe {
292 1.1 sommerfe struct ifreq ifr;
293 1.1 sommerfe int s;
294 1.1 sommerfe
295 1.1 sommerfe bzero((char *)&ifr, sizeof(ifr));
296 1.1 sommerfe
297 1.1 sommerfe strcpy(ifr.ifr_name, iface);
298 1.1 sommerfe ifr.ifr_data = (caddr_t)wreq;
299 1.1 sommerfe
300 1.1 sommerfe s = socket(AF_INET, SOCK_DGRAM, 0);
301 1.1 sommerfe
302 1.1 sommerfe if (s == -1)
303 1.1 sommerfe err(1, "socket");
304 1.1 sommerfe
305 1.1 sommerfe if (ioctl(s, SIOCGWAVELAN, &ifr) == -1)
306 1.1 sommerfe err(1, "SIOCGWAVELAN");
307 1.1 sommerfe
308 1.1 sommerfe close(s);
309 1.1 sommerfe
310 1.1 sommerfe return;
311 1.1 sommerfe }
312 1.1 sommerfe
313 1.1 sommerfe static void wi_setval(iface, wreq)
314 1.1 sommerfe char *iface;
315 1.1 sommerfe struct wi_req *wreq;
316 1.1 sommerfe {
317 1.1 sommerfe struct ifreq ifr;
318 1.1 sommerfe int s;
319 1.1 sommerfe
320 1.1 sommerfe bzero((char *)&ifr, sizeof(ifr));
321 1.1 sommerfe
322 1.1 sommerfe strcpy(ifr.ifr_name, iface);
323 1.1 sommerfe ifr.ifr_data = (caddr_t)wreq;
324 1.1 sommerfe
325 1.1 sommerfe s = socket(AF_INET, SOCK_DGRAM, 0);
326 1.1 sommerfe
327 1.1 sommerfe if (s == -1)
328 1.1 sommerfe err(1, "socket");
329 1.1 sommerfe
330 1.1 sommerfe if (ioctl(s, SIOCSWAVELAN, &ifr) == -1)
331 1.1 sommerfe err(1, "SIOCSWAVELAN");
332 1.1 sommerfe
333 1.1 sommerfe close(s);
334 1.1 sommerfe
335 1.1 sommerfe return;
336 1.1 sommerfe }
337 1.1 sommerfe
338 1.1 sommerfe void wi_printstr(wreq)
339 1.1 sommerfe struct wi_req *wreq;
340 1.1 sommerfe {
341 1.1 sommerfe char *ptr;
342 1.1 sommerfe int i;
343 1.1 sommerfe
344 1.1 sommerfe if (wreq->wi_type == WI_RID_SERIALNO) {
345 1.1 sommerfe ptr = (char *)&wreq->wi_val;
346 1.1 sommerfe for (i = 0; i < (wreq->wi_len - 1) * 2; i++) {
347 1.1 sommerfe if (ptr[i] == '\0')
348 1.1 sommerfe ptr[i] = ' ';
349 1.1 sommerfe }
350 1.1 sommerfe } else {
351 1.14 tsubai int len = le16toh(wreq->wi_val[0]);
352 1.14 tsubai
353 1.1 sommerfe ptr = (char *)&wreq->wi_val[1];
354 1.14 tsubai for (i = 0; i < len; i++) {
355 1.1 sommerfe if (ptr[i] == '\0')
356 1.1 sommerfe ptr[i] = ' ';
357 1.1 sommerfe }
358 1.1 sommerfe }
359 1.1 sommerfe
360 1.1 sommerfe ptr[i] = '\0';
361 1.1 sommerfe printf("[ %s ]", ptr);
362 1.1 sommerfe
363 1.1 sommerfe return;
364 1.1 sommerfe }
365 1.1 sommerfe
366 1.1 sommerfe void wi_setstr(iface, code, str)
367 1.1 sommerfe char *iface;
368 1.1 sommerfe int code;
369 1.1 sommerfe char *str;
370 1.1 sommerfe {
371 1.1 sommerfe struct wi_req wreq;
372 1.1 sommerfe
373 1.1 sommerfe bzero((char *)&wreq, sizeof(wreq));
374 1.1 sommerfe
375 1.1 sommerfe if (strlen(str) > 30)
376 1.1 sommerfe errx(1, "string too long");
377 1.1 sommerfe
378 1.1 sommerfe wreq.wi_type = code;
379 1.1 sommerfe wreq.wi_len = 18;
380 1.14 tsubai wreq.wi_val[0] = htole16(strlen(str));
381 1.1 sommerfe bcopy(str, (char *)&wreq.wi_val[1], strlen(str));
382 1.1 sommerfe
383 1.1 sommerfe wi_setval(iface, &wreq);
384 1.1 sommerfe
385 1.1 sommerfe return;
386 1.1 sommerfe }
387 1.1 sommerfe
388 1.1 sommerfe void wi_setbytes(iface, code, bytes, len)
389 1.1 sommerfe char *iface;
390 1.1 sommerfe int code;
391 1.1 sommerfe char *bytes;
392 1.1 sommerfe int len;
393 1.1 sommerfe {
394 1.1 sommerfe struct wi_req wreq;
395 1.1 sommerfe
396 1.1 sommerfe bzero((char *)&wreq, sizeof(wreq));
397 1.1 sommerfe
398 1.1 sommerfe wreq.wi_type = code;
399 1.1 sommerfe wreq.wi_len = (len / 2) + 1;
400 1.1 sommerfe bcopy(bytes, (char *)&wreq.wi_val[0], len);
401 1.1 sommerfe
402 1.1 sommerfe wi_setval(iface, &wreq);
403 1.1 sommerfe
404 1.1 sommerfe return;
405 1.1 sommerfe }
406 1.1 sommerfe
407 1.1 sommerfe void wi_setword(iface, code, word)
408 1.1 sommerfe char *iface;
409 1.1 sommerfe int code;
410 1.1 sommerfe int word;
411 1.1 sommerfe {
412 1.1 sommerfe struct wi_req wreq;
413 1.1 sommerfe
414 1.1 sommerfe bzero((char *)&wreq, sizeof(wreq));
415 1.1 sommerfe
416 1.1 sommerfe wreq.wi_type = code;
417 1.1 sommerfe wreq.wi_len = 2;
418 1.14 tsubai wreq.wi_val[0] = htole16(word);
419 1.1 sommerfe
420 1.1 sommerfe wi_setval(iface, &wreq);
421 1.1 sommerfe
422 1.1 sommerfe return;
423 1.1 sommerfe }
424 1.1 sommerfe
425 1.1 sommerfe void wi_sethex(iface, code, str)
426 1.1 sommerfe char *iface;
427 1.1 sommerfe int code;
428 1.1 sommerfe char *str;
429 1.1 sommerfe {
430 1.1 sommerfe struct ether_addr *addr;
431 1.1 sommerfe
432 1.1 sommerfe addr = ether_aton(str);
433 1.1 sommerfe if (addr == NULL)
434 1.1 sommerfe errx(1, "badly formatted address");
435 1.1 sommerfe
436 1.1 sommerfe wi_setbytes(iface, code, (char *)addr, ETHER_ADDR_LEN);
437 1.1 sommerfe
438 1.1 sommerfe return;
439 1.1 sommerfe }
440 1.1 sommerfe
441 1.2 explorer static int
442 1.2 explorer wi_hex2int(char c)
443 1.2 explorer {
444 1.2 explorer if (c >= '0' && c <= '9')
445 1.2 explorer return (c - '0');
446 1.2 explorer if (c >= 'A' && c <= 'F')
447 1.2 explorer return (c - 'A' + 10);
448 1.2 explorer if (c >= 'a' && c <= 'f')
449 1.2 explorer return (c - 'a' + 10);
450 1.2 explorer
451 1.2 explorer return (0);
452 1.2 explorer }
453 1.2 explorer
454 1.2 explorer static void wi_str2key(s, k)
455 1.2 explorer char *s;
456 1.2 explorer struct wi_key *k;
457 1.2 explorer {
458 1.2 explorer int n, i;
459 1.2 explorer char *p;
460 1.2 explorer
461 1.2 explorer /* Is this a hex string? */
462 1.2 explorer if (s[0] == '0' && (s[1] == 'x' || s[1] == 'X')) {
463 1.2 explorer /* Yes, convert to int. */
464 1.2 explorer n = 0;
465 1.2 explorer p = (char *)&k->wi_keydat[0];
466 1.2 explorer for (i = 2; i < strlen(s); i+= 2) {
467 1.2 explorer *p++ = (wi_hex2int(s[i]) << 4) + wi_hex2int(s[i + 1]);
468 1.2 explorer n++;
469 1.2 explorer }
470 1.14 tsubai k->wi_keylen = htole16(n);
471 1.2 explorer } else {
472 1.2 explorer /* No, just copy it in. */
473 1.2 explorer bcopy(s, k->wi_keydat, strlen(s));
474 1.14 tsubai k->wi_keylen = htole16(strlen(s));
475 1.2 explorer }
476 1.2 explorer
477 1.2 explorer return;
478 1.2 explorer }
479 1.2 explorer
480 1.2 explorer static void wi_setkeys(iface, key, idx)
481 1.2 explorer char *iface;
482 1.2 explorer char *key;
483 1.2 explorer int idx;
484 1.2 explorer {
485 1.2 explorer struct wi_req wreq;
486 1.2 explorer struct wi_ltv_keys *keys;
487 1.2 explorer struct wi_key *k;
488 1.2 explorer
489 1.2 explorer bzero((char *)&wreq, sizeof(wreq));
490 1.2 explorer wreq.wi_len = WI_MAX_DATALEN;
491 1.2 explorer wreq.wi_type = WI_RID_WEP_AVAIL;
492 1.2 explorer
493 1.2 explorer wi_getval(iface, &wreq);
494 1.14 tsubai if (le16toh(wreq.wi_val[0]) == 0)
495 1.2 explorer err(1, "no WEP option available on this card");
496 1.2 explorer
497 1.2 explorer bzero((char *)&wreq, sizeof(wreq));
498 1.2 explorer wreq.wi_len = WI_MAX_DATALEN;
499 1.2 explorer wreq.wi_type = WI_RID_DEFLT_CRYPT_KEYS;
500 1.2 explorer
501 1.2 explorer wi_getval(iface, &wreq);
502 1.2 explorer keys = (struct wi_ltv_keys *)&wreq;
503 1.2 explorer
504 1.2 explorer if (key[0] == '0' && (key[1] == 'x' || key[1] == 'X')) {
505 1.2 explorer if (strlen(key) > 30)
506 1.2 explorer err(1, "encryption key must be no "
507 1.2 explorer "more than 28 hex digits long");
508 1.2 explorer } else {
509 1.2 explorer if (strlen(key) > 14)
510 1.2 explorer err(1, "encryption key must be no "
511 1.2 explorer "more than 14 characters long");
512 1.2 explorer }
513 1.2 explorer
514 1.2 explorer if (idx > 3)
515 1.2 explorer err(1, "only 4 encryption keys available");
516 1.2 explorer
517 1.2 explorer k = &keys->wi_keys[idx];
518 1.2 explorer wi_str2key(key, k);
519 1.2 explorer
520 1.2 explorer wreq.wi_len = (sizeof(struct wi_ltv_keys) / 2) + 1;
521 1.2 explorer wreq.wi_type = WI_RID_DEFLT_CRYPT_KEYS;
522 1.2 explorer wi_setval(iface, &wreq);
523 1.2 explorer
524 1.2 explorer return;
525 1.2 explorer }
526 1.2 explorer
527 1.2 explorer static void wi_printkeys(wreq)
528 1.2 explorer struct wi_req *wreq;
529 1.2 explorer {
530 1.2 explorer int i, j, bn;
531 1.2 explorer struct wi_key *k;
532 1.2 explorer struct wi_ltv_keys *keys;
533 1.2 explorer char *ptr;
534 1.2 explorer
535 1.2 explorer keys = (struct wi_ltv_keys *)wreq;
536 1.2 explorer
537 1.2 explorer for (i = 0, bn = 0; i < 4; i++, bn = 0) {
538 1.2 explorer k = &keys->wi_keys[i];
539 1.2 explorer ptr = (char *)k->wi_keydat;
540 1.14 tsubai for (j = 0; j < le16toh(k->wi_keylen); j++) {
541 1.10 jdolecek if (!isprint((unsigned char) ptr[j])) {
542 1.2 explorer bn = 1;
543 1.2 explorer break;
544 1.2 explorer }
545 1.2 explorer }
546 1.2 explorer
547 1.2 explorer if (bn) {
548 1.2 explorer printf("[ 0x");
549 1.14 tsubai for (j = 0; j < le16toh(k->wi_keylen); j++)
550 1.2 explorer printf("%02x", ((unsigned char *) ptr)[j]);
551 1.2 explorer printf(" ]");
552 1.2 explorer } else {
553 1.2 explorer ptr[j] = '\0';
554 1.2 explorer printf("[ %s ]", ptr);
555 1.2 explorer }
556 1.2 explorer }
557 1.2 explorer
558 1.2 explorer return;
559 1.2 explorer };
560 1.2 explorer
561 1.1 sommerfe void wi_printwords(wreq)
562 1.1 sommerfe struct wi_req *wreq;
563 1.1 sommerfe {
564 1.1 sommerfe int i;
565 1.1 sommerfe
566 1.1 sommerfe printf("[ ");
567 1.1 sommerfe for (i = 0; i < wreq->wi_len - 1; i++)
568 1.14 tsubai printf("%d ", le16toh(wreq->wi_val[i]));
569 1.1 sommerfe printf("]");
570 1.1 sommerfe
571 1.1 sommerfe return;
572 1.1 sommerfe }
573 1.1 sommerfe
574 1.1 sommerfe void wi_printbool(wreq)
575 1.1 sommerfe struct wi_req *wreq;
576 1.1 sommerfe {
577 1.14 tsubai if (le16toh(wreq->wi_val[0]))
578 1.1 sommerfe printf("[ On ]");
579 1.1 sommerfe else
580 1.1 sommerfe printf("[ Off ]");
581 1.1 sommerfe
582 1.1 sommerfe return;
583 1.1 sommerfe }
584 1.1 sommerfe
585 1.1 sommerfe void wi_printhex(wreq)
586 1.1 sommerfe struct wi_req *wreq;
587 1.1 sommerfe {
588 1.1 sommerfe int i;
589 1.1 sommerfe unsigned char *c;
590 1.1 sommerfe
591 1.1 sommerfe c = (unsigned char *)&wreq->wi_val;
592 1.1 sommerfe
593 1.1 sommerfe printf("[ ");
594 1.1 sommerfe for (i = 0; i < (wreq->wi_len - 1) * 2; i++) {
595 1.1 sommerfe printf("%02x", c[i]);
596 1.1 sommerfe if (i < ((wreq->wi_len - 1) * 2) - 1)
597 1.1 sommerfe printf(":");
598 1.1 sommerfe }
599 1.1 sommerfe
600 1.1 sommerfe printf(" ]");
601 1.1 sommerfe return;
602 1.1 sommerfe }
603 1.1 sommerfe
604 1.22 dbj void wi_printbits(wreq)
605 1.22 dbj struct wi_req *wreq;
606 1.22 dbj {
607 1.22 dbj int i;
608 1.22 dbj int bits = le16toh(wreq->wi_val[0]);
609 1.22 dbj
610 1.22 dbj printf("[");
611 1.22 dbj for (i = 0; i < 16; i++) {
612 1.22 dbj if (bits & 0x1) {
613 1.22 dbj printf(" %d", i+1);
614 1.22 dbj }
615 1.22 dbj bits >>= 1;
616 1.22 dbj }
617 1.22 dbj printf(" ]");
618 1.22 dbj return;
619 1.22 dbj }
620 1.22 dbj
621 1.1 sommerfe static struct wi_table wi_table[] = {
622 1.1 sommerfe { WI_RID_SERIALNO, WI_STRING, "NIC serial number:\t\t\t" },
623 1.7 enami { WI_RID_NODENAME, WI_STRING, "Station name:\t\t\t\t",
624 1.7 enami 's', "station name" },
625 1.7 enami { WI_RID_OWN_SSID, WI_STRING, "SSID for IBSS creation:\t\t\t",
626 1.7 enami 'q', "own SSID" },
627 1.1 sommerfe { WI_RID_CURRENT_SSID, WI_STRING, "Current netname (SSID):\t\t\t" },
628 1.7 enami { WI_RID_DESIRED_SSID, WI_STRING, "Desired netname (SSID):\t\t\t",
629 1.7 enami 'n', "network name" },
630 1.1 sommerfe { WI_RID_CURRENT_BSSID, WI_HEXBYTES, "Current BSSID:\t\t\t\t" },
631 1.22 dbj { WI_RID_CHANNEL_LIST, WI_BITS, "Channel list:\t\t\t\t" },
632 1.7 enami { WI_RID_OWN_CHNL, WI_WORDS, "IBSS channel:\t\t\t\t",
633 1.7 enami 'f', "frequency" },
634 1.1 sommerfe { WI_RID_CURRENT_CHAN, WI_WORDS, "Current channel:\t\t\t" },
635 1.1 sommerfe { WI_RID_COMMS_QUALITY, WI_WORDS, "Comms quality/signal/noise:\t\t" },
636 1.1 sommerfe { WI_RID_PROMISC, WI_BOOL, "Promiscuous mode:\t\t\t" },
637 1.7 enami { WI_RID_PORTTYPE, WI_WORDS, "Port type (1=BSS, 3=ad-hoc):\t\t",
638 1.7 enami 'p', "port type" },
639 1.7 enami { WI_RID_MAC_NODE, WI_HEXBYTES, "MAC address:\t\t\t\t",
640 1.7 enami 'm', "MAC address" },
641 1.7 enami { WI_RID_TX_RATE, WI_WORDS, "TX rate (selection):\t\t\t",
642 1.7 enami 't', "TX rate" },
643 1.2 explorer { WI_RID_CUR_TX_RATE, WI_WORDS, "TX rate (actual speed):\t\t\t"},
644 1.21 dbj { WI_RID_OWN_BEACON_INT, WI_WORDS, "Beacon Interval (current) [msec]:\t"},
645 1.7 enami { WI_RID_MAX_DATALEN, WI_WORDS, "Maximum data length:\t\t\t",
646 1.7 enami 'd', "maximum data length" },
647 1.7 enami { WI_RID_RTS_THRESH, WI_WORDS, "RTS/CTS handshake threshold:\t\t",
648 1.7 enami 'r', "RTS threshold" },
649 1.7 enami { WI_RID_CREATE_IBSS, WI_BOOL, "Create IBSS:\t\t\t\t",
650 1.7 enami 'c', "create ibss" },
651 1.13 ichiro { WI_RID_MICROWAVE_OVEN, WI_WORDS, "Microwave oven robustness:\t\t",
652 1.15 ichiro 'M', "microwave oven robustness enabled" },
653 1.13 ichiro { WI_RID_ROAMING_MODE, WI_WORDS, "Roaming mode(1:firm,3:disable):\t\t",
654 1.15 ichiro 'R', "roaming mode" },
655 1.7 enami { WI_RID_SYSTEM_SCALE, WI_WORDS, "Access point density:\t\t\t",
656 1.7 enami 'a', "system scale" },
657 1.7 enami { WI_RID_PM_ENABLED, WI_WORDS, "Power Mgmt (1=on, 0=off):\t\t",
658 1.7 enami 'P', "power management enabled" },
659 1.13 ichiro { WI_RID_MAX_SLEEP, WI_WORDS, "Max sleep time (msec):\t\t\t",
660 1.7 enami 'S', "max sleep duration" },
661 1.7 enami { 0, WI_NONE }
662 1.1 sommerfe };
663 1.1 sommerfe
664 1.2 explorer static struct wi_table wi_crypt_table[] = {
665 1.7 enami { WI_RID_ENCRYPTION, WI_BOOL, "WEP encryption:\t\t\t\t",
666 1.7 enami 'e', "encryption" },
667 1.13 ichiro { WI_RID_AUTH_CNTL, WI_WORDS, "Authentication type \n(1=OpenSys, 2=Shared Key):\t\t",
668 1.13 ichiro 'A', "authentication type" },
669 1.2 explorer { WI_RID_TX_CRYPT_KEY, WI_WORDS, "TX encryption key:\t\t\t" },
670 1.2 explorer { WI_RID_DEFLT_CRYPT_KEYS, WI_KEYSTRUCT, "Encryption keys:\t\t\t" },
671 1.7 enami { 0, WI_NONE }
672 1.7 enami };
673 1.7 enami
674 1.7 enami static struct wi_table *wi_tables[] = {
675 1.7 enami wi_table,
676 1.7 enami wi_crypt_table,
677 1.7 enami NULL
678 1.2 explorer };
679 1.2 explorer
680 1.7 enami static struct wi_table *
681 1.7 enami wi_optlookup(table, opt)
682 1.7 enami struct wi_table *table;
683 1.7 enami int opt;
684 1.7 enami {
685 1.7 enami struct wi_table *wt;
686 1.7 enami
687 1.7 enami for (wt = table; wt->wi_type != 0; wt++)
688 1.7 enami if (wt->wi_opt == opt)
689 1.7 enami return (wt);
690 1.7 enami return (NULL);
691 1.7 enami }
692 1.7 enami
693 1.1 sommerfe static void wi_dumpinfo(iface)
694 1.1 sommerfe char *iface;
695 1.1 sommerfe {
696 1.1 sommerfe struct wi_req wreq;
697 1.2 explorer int i, has_wep;
698 1.1 sommerfe struct wi_table *w;
699 1.1 sommerfe
700 1.2 explorer bzero((char *)&wreq, sizeof(wreq));
701 1.2 explorer
702 1.2 explorer wreq.wi_len = WI_MAX_DATALEN;
703 1.2 explorer wreq.wi_type = WI_RID_WEP_AVAIL;
704 1.2 explorer
705 1.2 explorer wi_getval(iface, &wreq);
706 1.14 tsubai has_wep = le16toh(wreq.wi_val[0]);
707 1.2 explorer
708 1.1 sommerfe w = wi_table;
709 1.1 sommerfe
710 1.7 enami for (i = 0; w[i].wi_code != WI_NONE; i++) {
711 1.1 sommerfe bzero((char *)&wreq, sizeof(wreq));
712 1.1 sommerfe
713 1.1 sommerfe wreq.wi_len = WI_MAX_DATALEN;
714 1.7 enami wreq.wi_type = w[i].wi_type;
715 1.1 sommerfe
716 1.1 sommerfe wi_getval(iface, &wreq);
717 1.7 enami printf("%s", w[i].wi_label);
718 1.7 enami switch (w[i].wi_code) {
719 1.1 sommerfe case WI_STRING:
720 1.1 sommerfe wi_printstr(&wreq);
721 1.1 sommerfe break;
722 1.1 sommerfe case WI_WORDS:
723 1.1 sommerfe wi_printwords(&wreq);
724 1.1 sommerfe break;
725 1.1 sommerfe case WI_BOOL:
726 1.1 sommerfe wi_printbool(&wreq);
727 1.1 sommerfe break;
728 1.1 sommerfe case WI_HEXBYTES:
729 1.1 sommerfe wi_printhex(&wreq);
730 1.22 dbj break;
731 1.22 dbj case WI_BITS:
732 1.22 dbj wi_printbits(&wreq);
733 1.1 sommerfe break;
734 1.1 sommerfe default:
735 1.1 sommerfe break;
736 1.1 sommerfe }
737 1.1 sommerfe printf("\n");
738 1.1 sommerfe }
739 1.1 sommerfe
740 1.2 explorer if (has_wep) {
741 1.2 explorer w = wi_crypt_table;
742 1.7 enami for (i = 0; w[i].wi_code != WI_NONE; i++) {
743 1.2 explorer bzero((char *)&wreq, sizeof(wreq));
744 1.2 explorer
745 1.2 explorer wreq.wi_len = WI_MAX_DATALEN;
746 1.7 enami wreq.wi_type = w[i].wi_type;
747 1.2 explorer
748 1.2 explorer wi_getval(iface, &wreq);
749 1.7 enami printf("%s", w[i].wi_label);
750 1.7 enami switch (w[i].wi_code) {
751 1.2 explorer case WI_STRING:
752 1.2 explorer wi_printstr(&wreq);
753 1.2 explorer break;
754 1.2 explorer case WI_WORDS:
755 1.2 explorer if (wreq.wi_type == WI_RID_TX_CRYPT_KEY)
756 1.14 tsubai wreq.wi_val[0] =
757 1.14 tsubai htole16(le16toh(wreq.wi_val[0]) + 1);
758 1.2 explorer wi_printwords(&wreq);
759 1.2 explorer break;
760 1.2 explorer case WI_BOOL:
761 1.2 explorer wi_printbool(&wreq);
762 1.2 explorer break;
763 1.2 explorer case WI_HEXBYTES:
764 1.2 explorer wi_printhex(&wreq);
765 1.2 explorer break;
766 1.2 explorer case WI_KEYSTRUCT:
767 1.2 explorer wi_printkeys(&wreq);
768 1.2 explorer break;
769 1.2 explorer default:
770 1.2 explorer break;
771 1.2 explorer }
772 1.2 explorer printf("\n");
773 1.2 explorer }
774 1.2 explorer }
775 1.2 explorer
776 1.1 sommerfe return;
777 1.1 sommerfe }
778 1.1 sommerfe
779 1.1 sommerfe static void wi_dumpstats(iface)
780 1.1 sommerfe char *iface;
781 1.1 sommerfe {
782 1.1 sommerfe struct wi_req wreq;
783 1.1 sommerfe struct wi_counters *c;
784 1.1 sommerfe
785 1.1 sommerfe bzero((char *)&wreq, sizeof(wreq));
786 1.1 sommerfe wreq.wi_len = WI_MAX_DATALEN;
787 1.1 sommerfe wreq.wi_type = WI_RID_IFACE_STATS;
788 1.1 sommerfe
789 1.1 sommerfe wi_getval(iface, &wreq);
790 1.1 sommerfe
791 1.1 sommerfe c = (struct wi_counters *)&wreq.wi_val;
792 1.1 sommerfe
793 1.14 tsubai /* XXX native byte order */
794 1.1 sommerfe printf("Transmitted unicast frames:\t\t%d\n",
795 1.1 sommerfe c->wi_tx_unicast_frames);
796 1.1 sommerfe printf("Transmitted multicast frames:\t\t%d\n",
797 1.1 sommerfe c->wi_tx_multicast_frames);
798 1.1 sommerfe printf("Transmitted fragments:\t\t\t%d\n",
799 1.1 sommerfe c->wi_tx_fragments);
800 1.1 sommerfe printf("Transmitted unicast octets:\t\t%d\n",
801 1.1 sommerfe c->wi_tx_unicast_octets);
802 1.1 sommerfe printf("Transmitted multicast octets:\t\t%d\n",
803 1.1 sommerfe c->wi_tx_multicast_octets);
804 1.1 sommerfe printf("Single transmit retries:\t\t%d\n",
805 1.1 sommerfe c->wi_tx_single_retries);
806 1.1 sommerfe printf("Multiple transmit retries:\t\t%d\n",
807 1.1 sommerfe c->wi_tx_multi_retries);
808 1.1 sommerfe printf("Transmit retry limit exceeded:\t\t%d\n",
809 1.1 sommerfe c->wi_tx_retry_limit);
810 1.1 sommerfe printf("Transmit discards:\t\t\t%d\n",
811 1.1 sommerfe c->wi_tx_discards);
812 1.1 sommerfe printf("Transmit discards due to wrong SA:\t%d\n",
813 1.1 sommerfe c->wi_tx_discards_wrong_sa);
814 1.1 sommerfe printf("Received unicast frames:\t\t%d\n",
815 1.1 sommerfe c->wi_rx_unicast_frames);
816 1.1 sommerfe printf("Received multicast frames:\t\t%d\n",
817 1.1 sommerfe c->wi_rx_multicast_frames);
818 1.1 sommerfe printf("Received fragments:\t\t\t%d\n",
819 1.1 sommerfe c->wi_rx_fragments);
820 1.1 sommerfe printf("Received unicast octets:\t\t%d\n",
821 1.1 sommerfe c->wi_rx_unicast_octets);
822 1.1 sommerfe printf("Received multicast octets:\t\t%d\n",
823 1.1 sommerfe c->wi_rx_multicast_octets);
824 1.1 sommerfe printf("Receive FCS errors:\t\t\t%d\n",
825 1.1 sommerfe c->wi_rx_fcs_errors);
826 1.1 sommerfe printf("Receive discards due to no buffer:\t%d\n",
827 1.1 sommerfe c->wi_rx_discards_nobuf);
828 1.1 sommerfe printf("Can't decrypt WEP frame:\t\t%d\n",
829 1.1 sommerfe c->wi_rx_WEP_cant_decrypt);
830 1.1 sommerfe printf("Received message fragments:\t\t%d\n",
831 1.1 sommerfe c->wi_rx_msg_in_msg_frags);
832 1.1 sommerfe printf("Received message bad fragments:\t\t%d\n",
833 1.1 sommerfe c->wi_rx_msg_in_bad_msg_frags);
834 1.1 sommerfe
835 1.1 sommerfe return;
836 1.1 sommerfe }
837 1.1 sommerfe
838 1.7 enami static void
839 1.7 enami usage()
840 1.1 sommerfe {
841 1.7 enami
842 1.2 explorer fprintf(stderr,
843 1.7 enami "usage: %s interface "
844 1.15 ichiro "[-oD] [-t tx rate] [-n network name] [-s station name]\n"
845 1.2 explorer " [-e 0|1] [-k key [-v 1|2|3|4]] [-T 1|2|3|4]\n"
846 1.2 explorer " [-c 0|1] [-q SSID] [-p port type] [-a access point density]\n"
847 1.2 explorer " [-m MAC address] [-d max data length] [-r RTS threshold]\n"
848 1.9 jhawk " [-f frequency] [-M 0|1] [-P 0|1] [-S max sleep duration]\n"
849 1.13 ichiro " [-A 0|1 ] [-R 1|3]\n"
850 1.9 jhawk ,
851 1.11 cgd getprogname());
852 1.1 sommerfe exit(1);
853 1.1 sommerfe }
854 1.1 sommerfe
855 1.1 sommerfe int main(argc, argv)
856 1.1 sommerfe int argc;
857 1.1 sommerfe char *argv[];
858 1.1 sommerfe {
859 1.7 enami struct wi_table *wt, **table;
860 1.7 enami char *iface, *key, *keyv[4], *tx_crypt_key;
861 1.15 ichiro int ch, dumpinfo, dumpstats, modifier, oldind, apscan;
862 1.7 enami
863 1.7 enami #define SET_OPERAND(opr, desc) do { \
864 1.7 enami if ((opr) == NULL) \
865 1.7 enami (opr) = optarg; \
866 1.7 enami else \
867 1.7 enami warnx("%s is already specified to %s", \
868 1.7 enami desc, (opr)); \
869 1.7 enami } while (0)
870 1.7 enami
871 1.7 enami dumpinfo = 1;
872 1.7 enami dumpstats = 0;
873 1.15 ichiro apscan = 0;
874 1.7 enami iface = key = keyv[0] = keyv[1] = keyv[2] = keyv[3] =
875 1.7 enami tx_crypt_key = NULL;
876 1.2 explorer
877 1.2 explorer if (argc > 1 && argv[1][0] != '-') {
878 1.2 explorer iface = argv[1];
879 1.5 enami optind++;
880 1.2 explorer }
881 1.1 sommerfe
882 1.3 itojun while ((ch = getopt(argc, argv,
883 1.15 ichiro "a:c:d:e:f:hi:k:m:n:op:q:r:s:t:A:M:S:P:R:T:DZ:")) != -1) {
884 1.7 enami if (ch != 'i')
885 1.7 enami dumpinfo = 0;
886 1.7 enami /*
887 1.7 enami * Lookup generic options and remeber operand if found.
888 1.7 enami */
889 1.7 enami for (table = wi_tables; *table != NULL; table++)
890 1.7 enami if ((wt = wi_optlookup(*table, ch)) != NULL) {
891 1.7 enami SET_OPERAND(wt->wi_optval, wt->wi_desc);
892 1.7 enami break;
893 1.7 enami }
894 1.7 enami if (wt == NULL)
895 1.7 enami /*
896 1.7 enami * Handle special options.
897 1.7 enami */
898 1.7 enami switch (ch) {
899 1.7 enami case 'o':
900 1.7 enami dumpstats = 1;
901 1.7 enami break;
902 1.7 enami case 'i':
903 1.7 enami SET_OPERAND(iface, "interface");
904 1.7 enami break;
905 1.7 enami case 'k':
906 1.7 enami key = optarg;
907 1.7 enami oldind = optind;
908 1.7 enami opterr = 0;
909 1.7 enami ch = getopt(argc, argv, "v:");
910 1.7 enami opterr = 1;
911 1.7 enami switch (ch) {
912 1.7 enami case 'v':
913 1.7 enami modifier = atoi(optarg) - 1;
914 1.7 enami break;
915 1.7 enami default:
916 1.7 enami modifier = 0;
917 1.7 enami optind = oldind;
918 1.7 enami break;
919 1.7 enami }
920 1.7 enami keyv[modifier] = key;
921 1.7 enami break;
922 1.7 enami case 'T':
923 1.7 enami SET_OPERAND(tx_crypt_key, "TX encryption key");
924 1.7 enami break;
925 1.15 ichiro case 'D':
926 1.15 ichiro apscan = 1;
927 1.15 ichiro break;
928 1.7 enami case 'h':
929 1.7 enami default:
930 1.7 enami usage();
931 1.7 enami break;
932 1.7 enami }
933 1.1 sommerfe }
934 1.1 sommerfe
935 1.1 sommerfe if (iface == NULL)
936 1.7 enami usage();
937 1.2 explorer
938 1.7 enami for (table = wi_tables; *table != NULL; table++)
939 1.7 enami for (wt = *table; wt->wi_code != WI_NONE; wt++)
940 1.7 enami if (wt->wi_optval != NULL) {
941 1.7 enami switch (wt->wi_code) {
942 1.7 enami case WI_BOOL:
943 1.7 enami case WI_WORDS:
944 1.7 enami wi_setword(iface, wt->wi_type,
945 1.7 enami atoi(wt->wi_optval));
946 1.7 enami break;
947 1.7 enami case WI_STRING:
948 1.7 enami wi_setstr(iface, wt->wi_type,
949 1.7 enami wt->wi_optval);
950 1.7 enami break;
951 1.7 enami case WI_HEXBYTES:
952 1.7 enami wi_sethex(iface, wt->wi_type,
953 1.7 enami wt->wi_optval);
954 1.7 enami break;
955 1.7 enami }
956 1.7 enami }
957 1.7 enami
958 1.7 enami if (tx_crypt_key != NULL)
959 1.7 enami wi_setword(iface, WI_RID_TX_CRYPT_KEY, atoi(tx_crypt_key) - 1);
960 1.1 sommerfe
961 1.7 enami for (modifier = 0; modifier < sizeof(keyv) / sizeof(keyv[0]);
962 1.7 enami modifier++)
963 1.7 enami if (keyv[modifier] != NULL)
964 1.7 enami wi_setkeys(iface, keyv[modifier], modifier);
965 1.7 enami
966 1.7 enami if (dumpstats)
967 1.7 enami wi_dumpstats(iface);
968 1.7 enami if (dumpinfo)
969 1.7 enami wi_dumpinfo(iface);
970 1.18 christos
971 1.15 ichiro if (apscan)
972 1.18 christos #ifdef WI_RID_SCAN_APS
973 1.15 ichiro wi_apscan(iface);
974 1.18 christos #else
975 1.18 christos errx(1, "AP scan mode is not available.");
976 1.18 christos #endif
977 1.1 sommerfe
978 1.1 sommerfe exit(0);
979 1.1 sommerfe }
980