wi.c revision 1.159.2.1 1 /* $NetBSD: wi.c,v 1.159.2.1 2004/06/07 06:37:28 jdc Exp $ */
2
3 /*
4 * Copyright (c) 1997, 1998, 1999
5 * Bill Paul <wpaul (at) ctr.columbia.edu>. All rights reserved.
6 *
7 * Redistribution and use in source and binary forms, with or without
8 * modification, are permitted provided that the following conditions
9 * are met:
10 * 1. Redistributions of source code must retain the above copyright
11 * notice, this list of conditions and the following disclaimer.
12 * 2. Redistributions in binary form must reproduce the above copyright
13 * notice, this list of conditions and the following disclaimer in the
14 * documentation and/or other materials provided with the distribution.
15 * 3. All advertising materials mentioning features or use of this software
16 * must display the following acknowledgement:
17 * This product includes software developed by Bill Paul.
18 * 4. Neither the name of the author nor the names of any co-contributors
19 * may be used to endorse or promote products derived from this software
20 * without specific prior written permission.
21 *
22 * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND
23 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE
24 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE
25 * ARE DISCLAIMED. IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD
26 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
27 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
28 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
29 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
30 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
31 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF
32 * THE POSSIBILITY OF SUCH DAMAGE.
33 */
34
35 /*
36 * Lucent WaveLAN/IEEE 802.11 PCMCIA driver for NetBSD.
37 *
38 * Original FreeBSD driver written by Bill Paul <wpaul (at) ctr.columbia.edu>
39 * Electrical Engineering Department
40 * Columbia University, New York City
41 */
42
43 /*
44 * The WaveLAN/IEEE adapter is the second generation of the WaveLAN
45 * from Lucent. Unlike the older cards, the new ones are programmed
46 * entirely via a firmware-driven controller called the Hermes.
47 * Unfortunately, Lucent will not release the Hermes programming manual
48 * without an NDA (if at all). What they do release is an API library
49 * called the HCF (Hardware Control Functions) which is supposed to
50 * do the device-specific operations of a device driver for you. The
51 * publically available version of the HCF library (the 'HCF Light') is
52 * a) extremely gross, b) lacks certain features, particularly support
53 * for 802.11 frames, and c) is contaminated by the GNU Public License.
54 *
55 * This driver does not use the HCF or HCF Light at all. Instead, it
56 * programs the Hermes controller directly, using information gleaned
57 * from the HCF Light code and corresponding documentation.
58 *
59 * This driver supports both the PCMCIA and ISA versions of the
60 * WaveLAN/IEEE cards. Note however that the ISA card isn't really
61 * anything of the sort: it's actually a PCMCIA bridge adapter
62 * that fits into an ISA slot, into which a PCMCIA WaveLAN card is
63 * inserted. Consequently, you need to use the pccard support for
64 * both the ISA and PCMCIA adapters.
65 */
66
67 /*
68 * FreeBSD driver ported to NetBSD by Bill Sommerfeld in the back of the
69 * Oslo IETF plenary meeting.
70 */
71
72 #include <sys/cdefs.h>
73 __KERNEL_RCSID(0, "$NetBSD: wi.c,v 1.159.2.1 2004/06/07 06:37:28 jdc Exp $");
74
75 #define WI_HERMES_AUTOINC_WAR /* Work around data write autoinc bug. */
76 #define WI_HERMES_STATS_WAR /* Work around stats counter bug. */
77
78 #include "bpfilter.h"
79
80 #include <sys/param.h>
81 #include <sys/systm.h>
82 #include <sys/callout.h>
83 #include <sys/device.h>
84 #include <sys/socket.h>
85 #include <sys/mbuf.h>
86 #include <sys/ioctl.h>
87 #include <sys/kernel.h> /* for hz */
88 #include <sys/proc.h>
89
90 #include <net/if.h>
91 #include <net/if_dl.h>
92 #include <net/if_llc.h>
93 #include <net/if_media.h>
94 #include <net/if_ether.h>
95
96 #include <net80211/ieee80211_var.h>
97 #include <net80211/ieee80211_compat.h>
98 #include <net80211/ieee80211_ioctl.h>
99 #include <net80211/ieee80211_radiotap.h>
100 #include <net80211/ieee80211_rssadapt.h>
101
102 #if NBPFILTER > 0
103 #include <net/bpf.h>
104 #include <net/bpfdesc.h>
105 #endif
106
107 #include <machine/bus.h>
108
109 #include <dev/ic/wi_ieee.h>
110 #include <dev/ic/wireg.h>
111 #include <dev/ic/wivar.h>
112
113 static int wi_init(struct ifnet *);
114 static void wi_stop(struct ifnet *, int);
115 static void wi_start(struct ifnet *);
116 static int wi_reset(struct wi_softc *);
117 static void wi_watchdog(struct ifnet *);
118 static int wi_ioctl(struct ifnet *, u_long, caddr_t);
119 static int wi_media_change(struct ifnet *);
120 static void wi_media_status(struct ifnet *, struct ifmediareq *);
121
122 static struct ieee80211_node *wi_node_alloc(struct ieee80211com *);
123 static void wi_node_copy(struct ieee80211com *, struct ieee80211_node *,
124 const struct ieee80211_node *);
125 static void wi_node_free(struct ieee80211com *, struct ieee80211_node *);
126
127 static void wi_raise_rate(struct ieee80211com *, struct ieee80211_rssdesc *);
128 static void wi_lower_rate(struct ieee80211com *, struct ieee80211_rssdesc *);
129 static void wi_choose_rate(struct ieee80211com *, struct ieee80211_node *,
130 struct ieee80211_frame *, u_int);
131 static void wi_rssadapt_updatestats_cb(void *, struct ieee80211_node *);
132 static void wi_rssadapt_updatestats(void *);
133
134 static void wi_rx_intr(struct wi_softc *);
135 static void wi_txalloc_intr(struct wi_softc *);
136 static void wi_tx_intr(struct wi_softc *);
137 static void wi_tx_ex_intr(struct wi_softc *);
138 static void wi_info_intr(struct wi_softc *);
139
140 static int wi_get_cfg(struct ifnet *, u_long, caddr_t);
141 static int wi_set_cfg(struct ifnet *, u_long, caddr_t);
142 static int wi_cfg_txrate(struct wi_softc *);
143 static int wi_write_txrate(struct wi_softc *, int);
144 static int wi_write_wep(struct wi_softc *);
145 static int wi_write_multi(struct wi_softc *);
146 static int wi_alloc_fid(struct wi_softc *, int, int *);
147 static void wi_read_nicid(struct wi_softc *);
148 static int wi_write_ssid(struct wi_softc *, int, u_int8_t *, int);
149
150 static int wi_cmd(struct wi_softc *, int, int, int, int);
151 static int wi_seek_bap(struct wi_softc *, int, int);
152 static int wi_read_bap(struct wi_softc *, int, int, void *, int);
153 static int wi_write_bap(struct wi_softc *, int, int, void *, int);
154 static int wi_mwrite_bap(struct wi_softc *, int, int, struct mbuf *, int);
155 static int wi_read_rid(struct wi_softc *, int, void *, int *);
156 static int wi_write_rid(struct wi_softc *, int, void *, int);
157
158 static int wi_newstate(struct ieee80211com *, enum ieee80211_state, int);
159 static int wi_set_tim(struct ieee80211com *, int, int);
160
161 static int wi_scan_ap(struct wi_softc *, u_int16_t, u_int16_t);
162 static void wi_scan_result(struct wi_softc *, int, int);
163
164 static void wi_dump_pkt(struct wi_frame *, struct ieee80211_node *, int rssi);
165
166 static inline int
167 wi_write_val(struct wi_softc *sc, int rid, u_int16_t val)
168 {
169
170 val = htole16(val);
171 return wi_write_rid(sc, rid, &val, sizeof(val));
172 }
173
174 static struct timeval lasttxerror; /* time of last tx error msg */
175 static int curtxeps = 0; /* current tx error msgs/sec */
176 static int wi_txerate = 0; /* tx error rate: max msgs/sec */
177
178 #ifdef WI_DEBUG
179 int wi_debug = 0;
180
181 #define DPRINTF(X) if (wi_debug) printf X
182 #define DPRINTF2(X) if (wi_debug > 1) printf X
183 #define IFF_DUMPPKTS(_ifp) \
184 (((_ifp)->if_flags & (IFF_DEBUG|IFF_LINK2)) == (IFF_DEBUG|IFF_LINK2))
185 #else
186 #define DPRINTF(X)
187 #define DPRINTF2(X)
188 #define IFF_DUMPPKTS(_ifp) 0
189 #endif
190
191 #define WI_INTRS (WI_EV_RX | WI_EV_ALLOC | WI_EV_INFO | \
192 WI_EV_TX | WI_EV_TX_EXC)
193
194 struct wi_card_ident
195 wi_card_ident[] = {
196 /* CARD_ID CARD_NAME FIRM_TYPE */
197 { WI_NIC_LUCENT_ID, WI_NIC_LUCENT_STR, WI_LUCENT },
198 { WI_NIC_SONY_ID, WI_NIC_SONY_STR, WI_LUCENT },
199 { WI_NIC_LUCENT_EMB_ID, WI_NIC_LUCENT_EMB_STR, WI_LUCENT },
200 { WI_NIC_EVB2_ID, WI_NIC_EVB2_STR, WI_INTERSIL },
201 { WI_NIC_HWB3763_ID, WI_NIC_HWB3763_STR, WI_INTERSIL },
202 { WI_NIC_HWB3163_ID, WI_NIC_HWB3163_STR, WI_INTERSIL },
203 { WI_NIC_HWB3163B_ID, WI_NIC_HWB3163B_STR, WI_INTERSIL },
204 { WI_NIC_EVB3_ID, WI_NIC_EVB3_STR, WI_INTERSIL },
205 { WI_NIC_HWB1153_ID, WI_NIC_HWB1153_STR, WI_INTERSIL },
206 { WI_NIC_P2_SST_ID, WI_NIC_P2_SST_STR, WI_INTERSIL },
207 { WI_NIC_EVB2_SST_ID, WI_NIC_EVB2_SST_STR, WI_INTERSIL },
208 { WI_NIC_3842_EVA_ID, WI_NIC_3842_EVA_STR, WI_INTERSIL },
209 { WI_NIC_3842_PCMCIA_AMD_ID, WI_NIC_3842_PCMCIA_STR, WI_INTERSIL },
210 { WI_NIC_3842_PCMCIA_SST_ID, WI_NIC_3842_PCMCIA_STR, WI_INTERSIL },
211 { WI_NIC_3842_PCMCIA_ATM_ID, WI_NIC_3842_PCMCIA_STR, WI_INTERSIL },
212 { WI_NIC_3842_MINI_AMD_ID, WI_NIC_3842_MINI_STR, WI_INTERSIL },
213 { WI_NIC_3842_MINI_SST_ID, WI_NIC_3842_MINI_STR, WI_INTERSIL },
214 { WI_NIC_3842_MINI_ATM_ID, WI_NIC_3842_MINI_STR, WI_INTERSIL },
215 { WI_NIC_3842_PCI_AMD_ID, WI_NIC_3842_PCI_STR, WI_INTERSIL },
216 { WI_NIC_3842_PCI_SST_ID, WI_NIC_3842_PCI_STR, WI_INTERSIL },
217 { WI_NIC_3842_PCI_ATM_ID, WI_NIC_3842_PCI_STR, WI_INTERSIL },
218 { WI_NIC_P3_PCMCIA_AMD_ID, WI_NIC_P3_PCMCIA_STR, WI_INTERSIL },
219 { WI_NIC_P3_PCMCIA_SST_ID, WI_NIC_P3_PCMCIA_STR, WI_INTERSIL },
220 { WI_NIC_P3_MINI_AMD_ID, WI_NIC_P3_MINI_STR, WI_INTERSIL },
221 { WI_NIC_P3_MINI_SST_ID, WI_NIC_P3_MINI_STR, WI_INTERSIL },
222 { 0, NULL, 0 },
223 };
224
225 int
226 wi_attach(struct wi_softc *sc)
227 {
228 struct ieee80211com *ic = &sc->sc_ic;
229 struct ifnet *ifp = &ic->ic_if;
230 int chan, nrate, buflen;
231 u_int16_t val, chanavail;
232 struct {
233 u_int16_t nrates;
234 char rates[IEEE80211_RATE_SIZE];
235 } ratebuf;
236 static const u_int8_t empty_macaddr[IEEE80211_ADDR_LEN] = {
237 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
238 };
239 int s;
240
241 s = splnet();
242
243 /* Make sure interrupts are disabled. */
244 CSR_WRITE_2(sc, WI_INT_EN, 0);
245 CSR_WRITE_2(sc, WI_EVENT_ACK, ~0);
246
247 sc->sc_invalid = 0;
248
249 /* Reset the NIC. */
250 if (wi_reset(sc) != 0) {
251 sc->sc_invalid = 1;
252 splx(s);
253 return 1;
254 }
255
256 buflen = IEEE80211_ADDR_LEN;
257 if (wi_read_rid(sc, WI_RID_MAC_NODE, ic->ic_myaddr, &buflen) != 0 ||
258 IEEE80211_ADDR_EQ(ic->ic_myaddr, empty_macaddr)) {
259 printf(" could not get mac address, attach failed\n");
260 splx(s);
261 return 1;
262 }
263
264 printf(" 802.11 address %s\n", ether_sprintf(ic->ic_myaddr));
265
266 /* Read NIC identification */
267 wi_read_nicid(sc);
268
269 memcpy(ifp->if_xname, sc->sc_dev.dv_xname, IFNAMSIZ);
270 ifp->if_softc = sc;
271 ifp->if_start = wi_start;
272 ifp->if_ioctl = wi_ioctl;
273 ifp->if_watchdog = wi_watchdog;
274 ifp->if_init = wi_init;
275 ifp->if_stop = wi_stop;
276 ifp->if_flags =
277 IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST | IFF_NOTRAILERS;
278 IFQ_SET_READY(&ifp->if_snd);
279
280 ic->ic_phytype = IEEE80211_T_DS;
281 ic->ic_opmode = IEEE80211_M_STA;
282 ic->ic_caps = IEEE80211_C_PMGT | IEEE80211_C_AHDEMO;
283 ic->ic_state = IEEE80211_S_INIT;
284 ic->ic_max_aid = WI_MAX_AID;
285
286 /* Find available channel */
287 buflen = sizeof(chanavail);
288 if (wi_read_rid(sc, WI_RID_CHANNEL_LIST, &chanavail, &buflen) != 0)
289 chanavail = htole16(0x1fff); /* assume 1-11 */
290 for (chan = 16; chan > 0; chan--) {
291 if (!isset((u_int8_t*)&chanavail, chan - 1))
292 continue;
293 ic->ic_ibss_chan = &ic->ic_channels[chan];
294 ic->ic_channels[chan].ic_freq =
295 ieee80211_ieee2mhz(chan, IEEE80211_CHAN_2GHZ);
296 ic->ic_channels[chan].ic_flags = IEEE80211_CHAN_B;
297 }
298
299 /* Find default IBSS channel */
300 buflen = sizeof(val);
301 if (wi_read_rid(sc, WI_RID_OWN_CHNL, &val, &buflen) == 0) {
302 chan = le16toh(val);
303 if (isset((u_int8_t*)&chanavail, chan - 1))
304 ic->ic_ibss_chan = &ic->ic_channels[chan];
305 }
306 if (ic->ic_ibss_chan == NULL)
307 panic("%s: no available channel\n", sc->sc_dev.dv_xname);
308
309 if (sc->sc_firmware_type == WI_LUCENT) {
310 sc->sc_dbm_offset = WI_LUCENT_DBM_OFFSET;
311 } else {
312 buflen = sizeof(val);
313 if ((sc->sc_flags & WI_FLAGS_HAS_DBMADJUST) &&
314 wi_read_rid(sc, WI_RID_DBM_ADJUST, &val, &buflen) == 0)
315 sc->sc_dbm_offset = le16toh(val);
316 else
317 sc->sc_dbm_offset = WI_PRISM_DBM_OFFSET;
318 }
319
320 sc->sc_flags |= WI_FLAGS_RSSADAPTSTA;
321
322 /*
323 * Set flags based on firmware version.
324 */
325 switch (sc->sc_firmware_type) {
326 case WI_LUCENT:
327 sc->sc_flags |= WI_FLAGS_HAS_SYSSCALE;
328 #ifdef WI_HERMES_AUTOINC_WAR
329 /* XXX: not confirmed, but never seen for recent firmware */
330 if (sc->sc_sta_firmware_ver < 40000) {
331 sc->sc_flags |= WI_FLAGS_BUG_AUTOINC;
332 }
333 #endif
334 if (sc->sc_sta_firmware_ver >= 60000)
335 sc->sc_flags |= WI_FLAGS_HAS_MOR;
336 if (sc->sc_sta_firmware_ver >= 60006) {
337 ic->ic_caps |= IEEE80211_C_IBSS;
338 ic->ic_caps |= IEEE80211_C_MONITOR;
339 }
340 sc->sc_ibss_port = 1;
341 break;
342
343 case WI_INTERSIL:
344 sc->sc_flags |= WI_FLAGS_HAS_FRAGTHR;
345 sc->sc_flags |= WI_FLAGS_HAS_ROAMING;
346 sc->sc_flags |= WI_FLAGS_HAS_SYSSCALE;
347 if (sc->sc_sta_firmware_ver > 10101)
348 sc->sc_flags |= WI_FLAGS_HAS_DBMADJUST;
349 if (sc->sc_sta_firmware_ver >= 800) {
350 if (sc->sc_sta_firmware_ver != 10402)
351 ic->ic_caps |= IEEE80211_C_HOSTAP;
352 ic->ic_caps |= IEEE80211_C_IBSS;
353 ic->ic_caps |= IEEE80211_C_MONITOR;
354 }
355 sc->sc_ibss_port = 0;
356 sc->sc_alt_retry = 2;
357 break;
358
359 case WI_SYMBOL:
360 sc->sc_flags |= WI_FLAGS_HAS_DIVERSITY;
361 if (sc->sc_sta_firmware_ver >= 20000)
362 ic->ic_caps |= IEEE80211_C_IBSS;
363 sc->sc_ibss_port = 4;
364 break;
365 }
366
367 /*
368 * Find out if we support WEP on this card.
369 */
370 buflen = sizeof(val);
371 if (wi_read_rid(sc, WI_RID_WEP_AVAIL, &val, &buflen) == 0 &&
372 val != htole16(0))
373 ic->ic_caps |= IEEE80211_C_WEP;
374
375 /* Find supported rates. */
376 buflen = sizeof(ratebuf);
377 if (wi_read_rid(sc, WI_RID_DATA_RATES, &ratebuf, &buflen) == 0) {
378 nrate = le16toh(ratebuf.nrates);
379 if (nrate > IEEE80211_RATE_SIZE)
380 nrate = IEEE80211_RATE_SIZE;
381 memcpy(ic->ic_sup_rates[IEEE80211_MODE_11B].rs_rates,
382 &ratebuf.rates[0], nrate);
383 ic->ic_sup_rates[IEEE80211_MODE_11B].rs_nrates = nrate;
384 }
385 buflen = sizeof(val);
386
387 sc->sc_max_datalen = 2304;
388 sc->sc_rts_thresh = 2347;
389 sc->sc_frag_thresh = 2346;
390 sc->sc_system_scale = 1;
391 sc->sc_cnfauthmode = IEEE80211_AUTH_OPEN;
392 sc->sc_roaming_mode = 1;
393
394 callout_init(&sc->sc_rssadapt_ch);
395
396 /*
397 * Call MI attach routines.
398 */
399 if_attach(ifp);
400 ieee80211_ifattach(ifp);
401
402 sc->sc_newstate = ic->ic_newstate;
403 ic->ic_newstate = wi_newstate;
404 ic->ic_node_alloc = wi_node_alloc;
405 ic->ic_node_free = wi_node_free;
406 ic->ic_node_copy = wi_node_copy;
407 ic->ic_set_tim = wi_set_tim;
408
409 ieee80211_media_init(ifp, wi_media_change, wi_media_status);
410
411 #if NBPFILTER > 0
412 bpfattach2(ifp, DLT_IEEE802_11_RADIO,
413 sizeof(struct ieee80211_frame) + 64, &sc->sc_drvbpf);
414 #endif
415
416 memset(&sc->sc_rxtapu, 0, sizeof(sc->sc_rxtapu));
417 sc->sc_rxtap.wr_ihdr.it_len = sizeof(sc->sc_rxtapu);
418 sc->sc_rxtap.wr_ihdr.it_present = WI_RX_RADIOTAP_PRESENT;
419
420 memset(&sc->sc_txtapu, 0, sizeof(sc->sc_txtapu));
421 sc->sc_txtap.wt_ihdr.it_len = sizeof(sc->sc_txtapu);
422 sc->sc_txtap.wt_ihdr.it_present = WI_TX_RADIOTAP_PRESENT;
423
424 /* Attach is successful. */
425 sc->sc_attached = 1;
426
427 splx(s);
428 return 0;
429 }
430
431 int
432 wi_detach(struct wi_softc *sc)
433 {
434 struct ifnet *ifp = &sc->sc_ic.ic_if;
435 int s;
436
437 if (!sc->sc_attached)
438 return 0;
439
440 s = splnet();
441
442 sc->sc_invalid = 1;
443 wi_stop(ifp, 1);
444
445 /* Delete all remaining media. */
446 ifmedia_delete_instance(&sc->sc_ic.ic_media, IFM_INST_ANY);
447
448 ieee80211_ifdetach(ifp);
449 if_detach(ifp);
450 splx(s);
451 return 0;
452 }
453
454 #ifdef __NetBSD__
455 int
456 wi_activate(struct device *self, enum devact act)
457 {
458 struct wi_softc *sc = (struct wi_softc *)self;
459 int rv = 0, s;
460
461 s = splnet();
462 switch (act) {
463 case DVACT_ACTIVATE:
464 rv = EOPNOTSUPP;
465 break;
466
467 case DVACT_DEACTIVATE:
468 if_deactivate(&sc->sc_ic.ic_if);
469 break;
470 }
471 splx(s);
472 return rv;
473 }
474
475 void
476 wi_power(struct wi_softc *sc, int why)
477 {
478 struct ifnet *ifp = &sc->sc_ic.ic_if;
479 int s;
480
481 s = splnet();
482 switch (why) {
483 case PWR_SUSPEND:
484 case PWR_STANDBY:
485 wi_stop(ifp, 1);
486 break;
487 case PWR_RESUME:
488 if (ifp->if_flags & IFF_UP) {
489 wi_init(ifp);
490 (void)wi_intr(sc);
491 }
492 break;
493 case PWR_SOFTSUSPEND:
494 case PWR_SOFTSTANDBY:
495 case PWR_SOFTRESUME:
496 break;
497 }
498 splx(s);
499 }
500 #endif /* __NetBSD__ */
501
502 void
503 wi_shutdown(struct wi_softc *sc)
504 {
505 struct ifnet *ifp = &sc->sc_ic.ic_if;
506
507 if (sc->sc_attached)
508 wi_stop(ifp, 1);
509 }
510
511 int
512 wi_intr(void *arg)
513 {
514 int i;
515 struct wi_softc *sc = arg;
516 struct ifnet *ifp = &sc->sc_ic.ic_if;
517 u_int16_t status;
518
519 if (sc->sc_enabled == 0 ||
520 (sc->sc_dev.dv_flags & DVF_ACTIVE) == 0 ||
521 (ifp->if_flags & IFF_RUNNING) == 0)
522 return 0;
523
524 if ((ifp->if_flags & IFF_UP) == 0) {
525 CSR_WRITE_2(sc, WI_INT_EN, 0);
526 CSR_WRITE_2(sc, WI_EVENT_ACK, ~0);
527 return 1;
528 }
529
530 /* This is superfluous on Prism, but Lucent breaks if we
531 * do not disable interrupts.
532 */
533 CSR_WRITE_2(sc, WI_INT_EN, 0);
534
535 /* maximum 10 loops per interrupt */
536 for (i = 0; i < 10; i++) {
537 /*
538 * Only believe a status bit when we enter wi_intr, or when
539 * the bit was "off" the last time through the loop. This is
540 * my strategy to avoid racing the hardware/firmware if I
541 * can re-read the event status register more quickly than
542 * it is updated.
543 */
544 status = CSR_READ_2(sc, WI_EVENT_STAT);
545 if ((status & WI_INTRS) == 0)
546 break;
547
548 if (status & WI_EV_RX)
549 wi_rx_intr(sc);
550
551 if (status & WI_EV_ALLOC)
552 wi_txalloc_intr(sc);
553
554 if (status & WI_EV_TX)
555 wi_tx_intr(sc);
556
557 if (status & WI_EV_TX_EXC)
558 wi_tx_ex_intr(sc);
559
560 if (status & WI_EV_INFO)
561 wi_info_intr(sc);
562
563 if ((ifp->if_flags & IFF_OACTIVE) == 0 &&
564 (sc->sc_flags & WI_FLAGS_OUTRANGE) == 0 &&
565 !IFQ_IS_EMPTY(&ifp->if_snd))
566 wi_start(ifp);
567 }
568
569 /* re-enable interrupts */
570 CSR_WRITE_2(sc, WI_INT_EN, WI_INTRS);
571
572 return 1;
573 }
574
575 #define arraylen(a) (sizeof(a) / sizeof((a)[0]))
576
577 static void
578 wi_rssdescs_init(struct wi_rssdesc (*rssd)[WI_NTXRSS], wi_rssdescq_t *rssdfree)
579 {
580 int i;
581 SLIST_INIT(rssdfree);
582 for (i = 0; i < arraylen(*rssd); i++) {
583 SLIST_INSERT_HEAD(rssdfree, &(*rssd)[i], rd_next);
584 }
585 }
586
587 static void
588 wi_rssdescs_reset(struct ieee80211com *ic, struct wi_rssdesc (*rssd)[WI_NTXRSS],
589 wi_rssdescq_t *rssdfree, u_int8_t (*txpending)[IEEE80211_RATE_MAXSIZE])
590 {
591 struct ieee80211_node *ni;
592 int i;
593 for (i = 0; i < arraylen(*rssd); i++) {
594 ni = (*rssd)[i].rd_desc.id_node;
595 (*rssd)[i].rd_desc.id_node = NULL;
596 if (ni != NULL && (ic->ic_if.if_flags & IFF_DEBUG) != 0)
597 printf("%s: cleaning outstanding rssadapt "
598 "descriptor for %s\n",
599 ic->ic_if.if_xname, ether_sprintf(ni->ni_macaddr));
600 if (ni != NULL && ni != ic->ic_bss)
601 ieee80211_free_node(ic, ni);
602 }
603 memset(*txpending, 0, sizeof(*txpending));
604 wi_rssdescs_init(rssd, rssdfree);
605 }
606
607 static int
608 wi_init(struct ifnet *ifp)
609 {
610 struct wi_softc *sc = ifp->if_softc;
611 struct ieee80211com *ic = &sc->sc_ic;
612 struct wi_joinreq join;
613 int i;
614 int error = 0, wasenabled;
615
616 DPRINTF(("wi_init: enabled %d\n", sc->sc_enabled));
617 wasenabled = sc->sc_enabled;
618 if (!sc->sc_enabled) {
619 if ((error = (*sc->sc_enable)(sc)) != 0)
620 goto out;
621 sc->sc_enabled = 1;
622 } else
623 wi_stop(ifp, 0);
624
625 /* Symbol firmware cannot be initialized more than once */
626 if (sc->sc_firmware_type != WI_SYMBOL || !wasenabled)
627 if ((error = wi_reset(sc)) != 0)
628 goto out;
629
630 /* common 802.11 configuration */
631 ic->ic_flags &= ~IEEE80211_F_IBSSON;
632 sc->sc_flags &= ~WI_FLAGS_OUTRANGE;
633 switch (ic->ic_opmode) {
634 case IEEE80211_M_STA:
635 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_BSS);
636 break;
637 case IEEE80211_M_IBSS:
638 wi_write_val(sc, WI_RID_PORTTYPE, sc->sc_ibss_port);
639 ic->ic_flags |= IEEE80211_F_IBSSON;
640 sc->sc_syn_timer = 5;
641 ifp->if_timer = 1;
642 break;
643 case IEEE80211_M_AHDEMO:
644 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_ADHOC);
645 break;
646 case IEEE80211_M_HOSTAP:
647 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_HOSTAP);
648 break;
649 case IEEE80211_M_MONITOR:
650 if (sc->sc_firmware_type == WI_LUCENT)
651 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_ADHOC);
652 wi_cmd(sc, WI_CMD_TEST | (WI_TEST_MONITOR << 8), 0, 0, 0);
653 break;
654 }
655
656 /* Intersil interprets this RID as joining ESS even in IBSS mode */
657 if (sc->sc_firmware_type == WI_LUCENT &&
658 (ic->ic_flags & IEEE80211_F_IBSSON) && ic->ic_des_esslen > 0)
659 wi_write_val(sc, WI_RID_CREATE_IBSS, 1);
660 else
661 wi_write_val(sc, WI_RID_CREATE_IBSS, 0);
662 wi_write_val(sc, WI_RID_MAX_SLEEP, ic->ic_lintval);
663 wi_write_ssid(sc, WI_RID_DESIRED_SSID, ic->ic_des_essid,
664 ic->ic_des_esslen);
665 wi_write_val(sc, WI_RID_OWN_CHNL,
666 ieee80211_chan2ieee(ic, ic->ic_ibss_chan));
667 wi_write_ssid(sc, WI_RID_OWN_SSID, ic->ic_des_essid, ic->ic_des_esslen);
668 IEEE80211_ADDR_COPY(ic->ic_myaddr, LLADDR(ifp->if_sadl));
669 wi_write_rid(sc, WI_RID_MAC_NODE, ic->ic_myaddr, IEEE80211_ADDR_LEN);
670 wi_write_val(sc, WI_RID_PM_ENABLED,
671 (ic->ic_flags & IEEE80211_F_PMGTON) ? 1 : 0);
672
673 /* not yet common 802.11 configuration */
674 wi_write_val(sc, WI_RID_MAX_DATALEN, sc->sc_max_datalen);
675 wi_write_val(sc, WI_RID_RTS_THRESH, sc->sc_rts_thresh);
676 if (sc->sc_flags & WI_FLAGS_HAS_FRAGTHR)
677 wi_write_val(sc, WI_RID_FRAG_THRESH, sc->sc_frag_thresh);
678
679 /* driver specific 802.11 configuration */
680 if (sc->sc_flags & WI_FLAGS_HAS_SYSSCALE)
681 wi_write_val(sc, WI_RID_SYSTEM_SCALE, sc->sc_system_scale);
682 if (sc->sc_flags & WI_FLAGS_HAS_ROAMING)
683 wi_write_val(sc, WI_RID_ROAMING_MODE, sc->sc_roaming_mode);
684 if (sc->sc_flags & WI_FLAGS_HAS_MOR)
685 wi_write_val(sc, WI_RID_MICROWAVE_OVEN, sc->sc_microwave_oven);
686 wi_cfg_txrate(sc);
687 wi_write_ssid(sc, WI_RID_NODENAME, sc->sc_nodename, sc->sc_nodelen);
688
689 if (ic->ic_opmode == IEEE80211_M_HOSTAP &&
690 sc->sc_firmware_type == WI_INTERSIL) {
691 wi_write_val(sc, WI_RID_OWN_BEACON_INT, ic->ic_lintval);
692 wi_write_val(sc, WI_RID_BASIC_RATE, 0x03); /* 1, 2 */
693 wi_write_val(sc, WI_RID_SUPPORT_RATE, 0x0f); /* 1, 2, 5.5, 11 */
694 wi_write_val(sc, WI_RID_DTIM_PERIOD, 1);
695 }
696
697 if (sc->sc_firmware_type == WI_INTERSIL)
698 wi_write_val(sc, WI_RID_ALT_RETRY_COUNT, sc->sc_alt_retry);
699
700 /*
701 * Initialize promisc mode.
702 * Being in Host-AP mode causes a great
703 * deal of pain if promiscuous mode is set.
704 * Therefore we avoid confusing the firmware
705 * and always reset promisc mode in Host-AP
706 * mode. Host-AP sees all the packets anyway.
707 */
708 if (ic->ic_opmode != IEEE80211_M_HOSTAP &&
709 (ifp->if_flags & IFF_PROMISC) != 0) {
710 wi_write_val(sc, WI_RID_PROMISC, 1);
711 } else {
712 wi_write_val(sc, WI_RID_PROMISC, 0);
713 }
714
715 /* Configure WEP. */
716 if (ic->ic_caps & IEEE80211_C_WEP)
717 wi_write_wep(sc);
718
719 /* Set multicast filter. */
720 wi_write_multi(sc);
721
722 if (sc->sc_firmware_type != WI_SYMBOL || !wasenabled) {
723 sc->sc_buflen = IEEE80211_MAX_LEN + sizeof(struct wi_frame);
724 if (sc->sc_firmware_type == WI_SYMBOL)
725 sc->sc_buflen = 1585; /* XXX */
726 for (i = 0; i < WI_NTXBUF; i++) {
727 error = wi_alloc_fid(sc, sc->sc_buflen,
728 &sc->sc_txd[i].d_fid);
729 if (error) {
730 printf("%s: tx buffer allocation failed\n",
731 sc->sc_dev.dv_xname);
732 goto out;
733 }
734 DPRINTF2(("wi_init: txbuf %d allocated %x\n", i,
735 sc->sc_txd[i].d_fid));
736 sc->sc_txd[i].d_len = 0;
737 }
738 }
739 sc->sc_txcur = sc->sc_txnext = 0;
740
741 wi_rssdescs_init(&sc->sc_rssd, &sc->sc_rssdfree);
742
743 /* Enable desired port */
744 wi_cmd(sc, WI_CMD_ENABLE | sc->sc_portnum, 0, 0, 0);
745 ifp->if_flags |= IFF_RUNNING;
746 ifp->if_flags &= ~IFF_OACTIVE;
747 ic->ic_state = IEEE80211_S_INIT;
748
749 if (ic->ic_opmode == IEEE80211_M_AHDEMO ||
750 ic->ic_opmode == IEEE80211_M_MONITOR ||
751 ic->ic_opmode == IEEE80211_M_HOSTAP)
752 ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
753
754 /* Enable interrupts */
755 CSR_WRITE_2(sc, WI_INT_EN, WI_INTRS);
756
757 if (!wasenabled &&
758 ic->ic_opmode == IEEE80211_M_HOSTAP &&
759 sc->sc_firmware_type == WI_INTERSIL) {
760 /* XXX: some card need to be re-enabled for hostap */
761 wi_cmd(sc, WI_CMD_DISABLE | WI_PORT0, 0, 0, 0);
762 wi_cmd(sc, WI_CMD_ENABLE | WI_PORT0, 0, 0, 0);
763 }
764
765 if (ic->ic_opmode == IEEE80211_M_STA &&
766 ((ic->ic_flags & IEEE80211_F_DESBSSID) ||
767 ic->ic_des_chan != IEEE80211_CHAN_ANYC)) {
768 memset(&join, 0, sizeof(join));
769 if (ic->ic_flags & IEEE80211_F_DESBSSID)
770 IEEE80211_ADDR_COPY(&join.wi_bssid, ic->ic_des_bssid);
771 if (ic->ic_des_chan != IEEE80211_CHAN_ANYC)
772 join.wi_chan =
773 htole16(ieee80211_chan2ieee(ic, ic->ic_des_chan));
774 /* Lucent firmware does not support the JOIN RID. */
775 if (sc->sc_firmware_type != WI_LUCENT)
776 wi_write_rid(sc, WI_RID_JOIN_REQ, &join, sizeof(join));
777 }
778
779 out:
780 if (error) {
781 printf("%s: interface not running\n", sc->sc_dev.dv_xname);
782 wi_stop(ifp, 0);
783 }
784 DPRINTF(("wi_init: return %d\n", error));
785 return error;
786 }
787
788 static void
789 wi_stop(struct ifnet *ifp, int disable)
790 {
791 struct wi_softc *sc = ifp->if_softc;
792 struct ieee80211com *ic = &sc->sc_ic;
793 int s;
794
795 if (!sc->sc_enabled)
796 return;
797
798 s = splnet();
799
800 DPRINTF(("wi_stop: disable %d\n", disable));
801
802 ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
803 if (!sc->sc_invalid) {
804 CSR_WRITE_2(sc, WI_INT_EN, 0);
805 wi_cmd(sc, WI_CMD_DISABLE | sc->sc_portnum, 0, 0, 0);
806 }
807
808 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree,
809 &sc->sc_txpending);
810
811 sc->sc_tx_timer = 0;
812 sc->sc_scan_timer = 0;
813 sc->sc_syn_timer = 0;
814 sc->sc_false_syns = 0;
815 sc->sc_naps = 0;
816 ifp->if_flags &= ~(IFF_OACTIVE | IFF_RUNNING);
817 ifp->if_timer = 0;
818
819 if (disable) {
820 if (sc->sc_disable)
821 (*sc->sc_disable)(sc);
822 sc->sc_enabled = 0;
823 }
824 splx(s);
825 }
826
827 /*
828 * Choose a data rate for a packet len bytes long that suits the packet
829 * type and the wireless conditions.
830 *
831 * TBD Adapt fragmentation threshold.
832 */
833 static void
834 wi_choose_rate(struct ieee80211com *ic, struct ieee80211_node *ni,
835 struct ieee80211_frame *wh, u_int len)
836 {
837 struct wi_softc *sc = ic->ic_if.if_softc;
838 struct wi_node *wn = (void*)ni;
839 struct ieee80211_rssadapt *ra = &wn->wn_rssadapt;
840 int do_not_adapt, i, rateidx, s;
841
842 do_not_adapt = (ic->ic_opmode != IEEE80211_M_HOSTAP) &&
843 (sc->sc_flags & WI_FLAGS_RSSADAPTSTA) == 0;
844
845 s = splnet();
846
847 rateidx = ieee80211_rssadapt_choose(ra, &ni->ni_rates, wh, len,
848 ic->ic_fixed_rate,
849 ((ic->ic_if.if_flags & IFF_DEBUG) == 0) ? NULL : ic->ic_if.if_xname,
850 do_not_adapt);
851
852 if (ic->ic_opmode != IEEE80211_M_HOSTAP) {
853 /* choose the slowest pending rate so that we don't
854 * accidentally send a packet on the MAC's queue
855 * too fast. TBD find out if the MAC labels Tx
856 * packets w/ rate when enqueued or dequeued.
857 */
858 for (i = 0; i < rateidx && sc->sc_txpending[i] == 0; i++);
859 ni->ni_txrate = i;
860 } else
861 ni->ni_txrate = rateidx;
862 splx(s);
863 return;
864 }
865
866 static void
867 wi_raise_rate(struct ieee80211com *ic, struct ieee80211_rssdesc *id)
868 {
869 struct wi_node *wn;
870 if (id->id_node == NULL)
871 return;
872
873 wn = (void*)id->id_node;
874 ieee80211_rssadapt_raise_rate(ic, &wn->wn_rssadapt, id);
875 }
876
877 static void
878 wi_lower_rate(struct ieee80211com *ic, struct ieee80211_rssdesc *id)
879 {
880 struct ieee80211_node *ni;
881 struct wi_node *wn;
882 int s;
883
884 s = splnet();
885
886 if ((ni = id->id_node) == NULL) {
887 DPRINTF(("wi_lower_rate: missing node\n"));
888 goto out;
889 }
890
891 wn = (void *)ni;
892
893 ieee80211_rssadapt_lower_rate(ic, ni, &wn->wn_rssadapt, id);
894 out:
895 splx(s);
896 return;
897 }
898
899 static void
900 wi_start(struct ifnet *ifp)
901 {
902 struct wi_softc *sc = ifp->if_softc;
903 struct ieee80211com *ic = &sc->sc_ic;
904 struct ieee80211_node *ni;
905 struct ieee80211_frame *wh;
906 struct ieee80211_rateset *rs;
907 struct wi_rssdesc *rd;
908 struct ieee80211_rssdesc *id;
909 struct mbuf *m0;
910 struct wi_frame frmhdr;
911 int cur, fid, off;
912
913 if (!sc->sc_enabled || sc->sc_invalid)
914 return;
915 if (sc->sc_flags & WI_FLAGS_OUTRANGE)
916 return;
917
918 memset(&frmhdr, 0, sizeof(frmhdr));
919 cur = sc->sc_txnext;
920 for (;;) {
921 ni = ic->ic_bss;
922 if (!IF_IS_EMPTY(&ic->ic_mgtq)) {
923 if (sc->sc_txd[cur].d_len != 0 ||
924 SLIST_EMPTY(&sc->sc_rssdfree)) {
925 ifp->if_flags |= IFF_OACTIVE;
926 break;
927 }
928 IF_DEQUEUE(&ic->ic_mgtq, m0);
929 m_copydata(m0, 4, ETHER_ADDR_LEN * 2,
930 (caddr_t)&frmhdr.wi_ehdr);
931 frmhdr.wi_ehdr.ether_type = 0;
932 wh = mtod(m0, struct ieee80211_frame *);
933 ni = (struct ieee80211_node *)m0->m_pkthdr.rcvif;
934 m0->m_pkthdr.rcvif = NULL;
935 } else if (!IF_IS_EMPTY(&ic->ic_pwrsaveq)) {
936 struct llc *llc;
937
938 /*
939 * Should these packets be processed after the
940 * regular packets or before? Since they are being
941 * probed for, they are probably less time critical
942 * than other packets, but, on the other hand,
943 * we want the power saving nodes to go back to
944 * sleep as quickly as possible to save power...
945 */
946
947 if (ic->ic_state != IEEE80211_S_RUN)
948 break;
949
950 if (sc->sc_txd[cur].d_len != 0 ||
951 SLIST_EMPTY(&sc->sc_rssdfree)) {
952 ifp->if_flags |= IFF_OACTIVE;
953 break;
954 }
955 IF_DEQUEUE(&ic->ic_pwrsaveq, m0);
956 wh = mtod(m0, struct ieee80211_frame *);
957 llc = (struct llc *) (wh + 1);
958 m_copydata(m0, 4, ETHER_ADDR_LEN * 2,
959 (caddr_t)&frmhdr.wi_ehdr);
960 frmhdr.wi_ehdr.ether_type = llc->llc_snap.ether_type;
961 ni = (struct ieee80211_node *)m0->m_pkthdr.rcvif;
962 m0->m_pkthdr.rcvif = NULL;
963 } else {
964 if (ic->ic_state != IEEE80211_S_RUN) {
965 break;
966 }
967 IFQ_POLL(&ifp->if_snd, m0);
968 if (m0 == NULL) {
969 break;
970 }
971 if (sc->sc_txd[cur].d_len != 0 ||
972 SLIST_EMPTY(&sc->sc_rssdfree)) {
973 ifp->if_flags |= IFF_OACTIVE;
974 break;
975 }
976 IFQ_DEQUEUE(&ifp->if_snd, m0);
977 ifp->if_opackets++;
978 m_copydata(m0, 0, ETHER_HDR_LEN,
979 (caddr_t)&frmhdr.wi_ehdr);
980 #if NBPFILTER > 0
981 if (ifp->if_bpf)
982 bpf_mtap(ifp->if_bpf, m0);
983 #endif
984
985 if ((m0 = ieee80211_encap(ifp, m0, &ni)) == NULL) {
986 ifp->if_oerrors++;
987 continue;
988 }
989 wh = mtod(m0, struct ieee80211_frame *);
990 if (ic->ic_flags & IEEE80211_F_WEPON)
991 wh->i_fc[1] |= IEEE80211_FC1_WEP;
992 if (ic->ic_opmode == IEEE80211_M_HOSTAP &&
993 !IEEE80211_IS_MULTICAST(wh->i_addr1) &&
994 (wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) ==
995 IEEE80211_FC0_TYPE_DATA) {
996 if (ni->ni_associd == 0) {
997 m_freem(m0);
998 ifp->if_oerrors++;
999 goto next;
1000 }
1001 if (ni->ni_pwrsave & IEEE80211_PS_SLEEP) {
1002 ieee80211_pwrsave(ic, ni, m0);
1003 continue; /* don't free node. */
1004 }
1005 }
1006 }
1007 #if NBPFILTER > 0
1008 if (ic->ic_rawbpf)
1009 bpf_mtap(ic->ic_rawbpf, m0);
1010 #endif
1011 frmhdr.wi_tx_ctl =
1012 htole16(WI_ENC_TX_802_11|WI_TXCNTL_TX_EX|WI_TXCNTL_TX_OK);
1013 if (ic->ic_opmode == IEEE80211_M_HOSTAP)
1014 frmhdr.wi_tx_ctl |= htole16(WI_TXCNTL_ALTRTRY);
1015 if (ic->ic_opmode == IEEE80211_M_HOSTAP &&
1016 (wh->i_fc[1] & IEEE80211_FC1_WEP)) {
1017 if ((m0 = ieee80211_wep_crypt(ifp, m0, 1)) == NULL) {
1018 ifp->if_oerrors++;
1019 goto next;
1020 }
1021 frmhdr.wi_tx_ctl |= htole16(WI_TXCNTL_NOCRYPT);
1022 }
1023
1024 wi_choose_rate(ic, ni, wh, m0->m_pkthdr.len);
1025
1026 #if NBPFILTER > 0
1027 if (sc->sc_drvbpf) {
1028 struct mbuf mb;
1029
1030 struct wi_tx_radiotap_header *tap = &sc->sc_txtap;
1031
1032 tap->wt_rate = ni->ni_rates.rs_rates[ni->ni_txrate];
1033 tap->wt_chan_freq =
1034 htole16(ic->ic_bss->ni_chan->ic_freq);
1035 tap->wt_chan_flags =
1036 htole16(ic->ic_bss->ni_chan->ic_flags);
1037
1038 /* TBD tap->wt_flags */
1039
1040 M_COPY_PKTHDR(&mb, m0);
1041 mb.m_data = (caddr_t)tap;
1042 mb.m_len = tap->wt_ihdr.it_len;
1043 mb.m_next = m0;
1044 mb.m_pkthdr.len += mb.m_len;
1045 bpf_mtap(sc->sc_drvbpf, &mb);
1046 }
1047 #endif
1048 rs = &ni->ni_rates;
1049 rd = SLIST_FIRST(&sc->sc_rssdfree);
1050 id = &rd->rd_desc;
1051 id->id_len = m0->m_pkthdr.len;
1052 sc->sc_txd[cur].d_rate = id->id_rateidx = ni->ni_txrate;
1053 id->id_rssi = ni->ni_rssi;
1054
1055 frmhdr.wi_tx_idx = rd - sc->sc_rssd;
1056
1057 if (ic->ic_opmode == IEEE80211_M_HOSTAP)
1058 frmhdr.wi_tx_rate = 5 * (rs->rs_rates[ni->ni_txrate] &
1059 IEEE80211_RATE_VAL);
1060 else if (sc->sc_flags & WI_FLAGS_RSSADAPTSTA)
1061 (void)wi_write_txrate(sc, rs->rs_rates[ni->ni_txrate]);
1062
1063 m_copydata(m0, 0, sizeof(struct ieee80211_frame),
1064 (caddr_t)&frmhdr.wi_whdr);
1065 m_adj(m0, sizeof(struct ieee80211_frame));
1066 frmhdr.wi_dat_len = htole16(m0->m_pkthdr.len);
1067 if (IFF_DUMPPKTS(ifp))
1068 wi_dump_pkt(&frmhdr, ni, -1);
1069 fid = sc->sc_txd[cur].d_fid;
1070 off = sizeof(frmhdr);
1071 if (wi_write_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr)) != 0 ||
1072 wi_mwrite_bap(sc, fid, off, m0, m0->m_pkthdr.len) != 0) {
1073 ifp->if_oerrors++;
1074 m_freem(m0);
1075 goto next;
1076 }
1077 m_freem(m0);
1078 sc->sc_txd[cur].d_len = off;
1079 if (sc->sc_txcur == cur) {
1080 if (wi_cmd(sc, WI_CMD_TX | WI_RECLAIM, fid, 0, 0)) {
1081 printf("%s: xmit failed\n",
1082 sc->sc_dev.dv_xname);
1083 sc->sc_txd[cur].d_len = 0;
1084 goto next;
1085 }
1086 sc->sc_txpending[ni->ni_txrate]++;
1087 sc->sc_tx_timer = 5;
1088 ifp->if_timer = 1;
1089 }
1090 sc->sc_txnext = cur = (cur + 1) % WI_NTXBUF;
1091 SLIST_REMOVE_HEAD(&sc->sc_rssdfree, rd_next);
1092 id->id_node = ni;
1093 continue;
1094 next:
1095 if (ni != NULL && ni != ic->ic_bss)
1096 ieee80211_free_node(ic, ni);
1097 }
1098 }
1099
1100
1101 static int
1102 wi_reset(struct wi_softc *sc)
1103 {
1104 int i, error;
1105
1106 DPRINTF(("wi_reset\n"));
1107
1108 if (sc->sc_reset)
1109 (*sc->sc_reset)(sc);
1110
1111 error = 0;
1112 for (i = 0; i < 5; i++) {
1113 DELAY(20*1000); /* XXX: way too long! */
1114 if ((error = wi_cmd(sc, WI_CMD_INI, 0, 0, 0)) == 0)
1115 break;
1116 }
1117 if (error) {
1118 printf("%s: init failed\n", sc->sc_dev.dv_xname);
1119 return error;
1120 }
1121 CSR_WRITE_2(sc, WI_INT_EN, 0);
1122 CSR_WRITE_2(sc, WI_EVENT_ACK, ~0);
1123
1124 /* Calibrate timer. */
1125 wi_write_val(sc, WI_RID_TICK_TIME, 0);
1126 return 0;
1127 }
1128
1129 static void
1130 wi_watchdog(struct ifnet *ifp)
1131 {
1132 struct wi_softc *sc = ifp->if_softc;
1133 struct ieee80211com *ic = &sc->sc_ic;
1134
1135 ifp->if_timer = 0;
1136 if (!sc->sc_enabled)
1137 return;
1138
1139 if (sc->sc_tx_timer) {
1140 if (--sc->sc_tx_timer == 0) {
1141 printf("%s: device timeout\n", ifp->if_xname);
1142 ifp->if_oerrors++;
1143 wi_init(ifp);
1144 return;
1145 }
1146 ifp->if_timer = 1;
1147 }
1148
1149 if (sc->sc_scan_timer) {
1150 if (--sc->sc_scan_timer <= WI_SCAN_WAIT - WI_SCAN_INQWAIT &&
1151 sc->sc_firmware_type == WI_INTERSIL) {
1152 DPRINTF(("wi_watchdog: inquire scan\n"));
1153 wi_cmd(sc, WI_CMD_INQUIRE, WI_INFO_SCAN_RESULTS, 0, 0);
1154 }
1155 if (sc->sc_scan_timer)
1156 ifp->if_timer = 1;
1157 }
1158
1159 if (sc->sc_syn_timer) {
1160 if (--sc->sc_syn_timer == 0) {
1161 DPRINTF2(("%s: %d false syns\n",
1162 sc->sc_dev.dv_xname, sc->sc_false_syns));
1163 sc->sc_false_syns = 0;
1164 ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
1165 sc->sc_syn_timer = 5;
1166 }
1167 ifp->if_timer = 1;
1168 }
1169
1170 /* TODO: rate control */
1171 ieee80211_watchdog(ifp);
1172 }
1173
1174 static int
1175 wi_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
1176 {
1177 struct wi_softc *sc = ifp->if_softc;
1178 struct ieee80211com *ic = &sc->sc_ic;
1179 struct ifreq *ifr = (struct ifreq *)data;
1180 int s, error = 0;
1181
1182 if ((sc->sc_dev.dv_flags & DVF_ACTIVE) == 0)
1183 return ENXIO;
1184
1185 s = splnet();
1186
1187 switch (cmd) {
1188 case SIOCSIFFLAGS:
1189 /*
1190 * Can't do promisc and hostap at the same time. If all that's
1191 * changing is the promisc flag, try to short-circuit a call to
1192 * wi_init() by just setting PROMISC in the hardware.
1193 */
1194 if (ifp->if_flags & IFF_UP) {
1195 if (sc->sc_enabled) {
1196 if (ic->ic_opmode != IEEE80211_M_HOSTAP &&
1197 (ifp->if_flags & IFF_PROMISC) != 0)
1198 wi_write_val(sc, WI_RID_PROMISC, 1);
1199 else
1200 wi_write_val(sc, WI_RID_PROMISC, 0);
1201 } else
1202 error = wi_init(ifp);
1203 } else if (sc->sc_enabled)
1204 wi_stop(ifp, 1);
1205 break;
1206 case SIOCSIFMEDIA:
1207 case SIOCGIFMEDIA:
1208 error = ifmedia_ioctl(ifp, ifr, &ic->ic_media, cmd);
1209 break;
1210 case SIOCADDMULTI:
1211 case SIOCDELMULTI:
1212 error = (cmd == SIOCADDMULTI) ?
1213 ether_addmulti(ifr, &sc->sc_ic.ic_ec) :
1214 ether_delmulti(ifr, &sc->sc_ic.ic_ec);
1215 if (error == ENETRESET) {
1216 if (sc->sc_enabled) {
1217 /* do not rescan */
1218 error = wi_write_multi(sc);
1219 } else
1220 error = 0;
1221 }
1222 break;
1223 case SIOCGIFGENERIC:
1224 error = wi_get_cfg(ifp, cmd, data);
1225 break;
1226 case SIOCSIFGENERIC:
1227 error = suser(curproc->p_ucred, &curproc->p_acflag);
1228 if (error)
1229 break;
1230 error = wi_set_cfg(ifp, cmd, data);
1231 if (error == ENETRESET) {
1232 if (sc->sc_enabled)
1233 error = wi_init(ifp);
1234 else
1235 error = 0;
1236 }
1237 break;
1238 case SIOCS80211BSSID:
1239 if (sc->sc_firmware_type == WI_LUCENT) {
1240 error = ENODEV;
1241 break;
1242 }
1243 /* fall through */
1244 default:
1245 error = ieee80211_ioctl(ifp, cmd, data);
1246 if (error == ENETRESET) {
1247 if (sc->sc_enabled)
1248 error = wi_init(ifp);
1249 else
1250 error = 0;
1251 }
1252 break;
1253 }
1254 splx(s);
1255 return error;
1256 }
1257
1258 static int
1259 wi_media_change(struct ifnet *ifp)
1260 {
1261 struct wi_softc *sc = ifp->if_softc;
1262 struct ieee80211com *ic = &sc->sc_ic;
1263 int error;
1264
1265 error = ieee80211_media_change(ifp);
1266 if (error == ENETRESET) {
1267 if (sc->sc_enabled)
1268 error = wi_init(ifp);
1269 else
1270 error = 0;
1271 }
1272 ifp->if_baudrate = ifmedia_baudrate(ic->ic_media.ifm_cur->ifm_media);
1273
1274 return error;
1275 }
1276
1277 static void
1278 wi_media_status(struct ifnet *ifp, struct ifmediareq *imr)
1279 {
1280 struct wi_softc *sc = ifp->if_softc;
1281 struct ieee80211com *ic = &sc->sc_ic;
1282 u_int16_t val;
1283 int rate, len;
1284
1285 if (sc->sc_enabled == 0) {
1286 imr->ifm_active = IFM_IEEE80211 | IFM_NONE;
1287 imr->ifm_status = 0;
1288 return;
1289 }
1290
1291 imr->ifm_status = IFM_AVALID;
1292 imr->ifm_active = IFM_IEEE80211;
1293 if (ic->ic_state == IEEE80211_S_RUN &&
1294 (sc->sc_flags & WI_FLAGS_OUTRANGE) == 0)
1295 imr->ifm_status |= IFM_ACTIVE;
1296 len = sizeof(val);
1297 if (wi_read_rid(sc, WI_RID_CUR_TX_RATE, &val, &len) != 0)
1298 rate = 0;
1299 else {
1300 /* convert to 802.11 rate */
1301 val = le16toh(val);
1302 rate = val * 2;
1303 if (sc->sc_firmware_type == WI_LUCENT) {
1304 if (rate == 10)
1305 rate = 11; /* 5.5Mbps */
1306 } else {
1307 if (rate == 4*2)
1308 rate = 11; /* 5.5Mbps */
1309 else if (rate == 8*2)
1310 rate = 22; /* 11Mbps */
1311 }
1312 }
1313 imr->ifm_active |= ieee80211_rate2media(ic, rate, IEEE80211_MODE_11B);
1314 switch (ic->ic_opmode) {
1315 case IEEE80211_M_STA:
1316 break;
1317 case IEEE80211_M_IBSS:
1318 imr->ifm_active |= IFM_IEEE80211_ADHOC;
1319 break;
1320 case IEEE80211_M_AHDEMO:
1321 imr->ifm_active |= IFM_IEEE80211_ADHOC | IFM_FLAG0;
1322 break;
1323 case IEEE80211_M_HOSTAP:
1324 imr->ifm_active |= IFM_IEEE80211_HOSTAP;
1325 break;
1326 case IEEE80211_M_MONITOR:
1327 imr->ifm_active |= IFM_IEEE80211_MONITOR;
1328 break;
1329 }
1330 }
1331
1332 static struct ieee80211_node *
1333 wi_node_alloc(struct ieee80211com *ic)
1334 {
1335 struct wi_node *wn =
1336 malloc(sizeof(struct wi_node), M_DEVBUF, M_NOWAIT | M_ZERO);
1337 return wn ? &wn->wn_node : NULL;
1338 }
1339
1340 static void
1341 wi_node_free(struct ieee80211com *ic, struct ieee80211_node *ni)
1342 {
1343 struct wi_softc *sc = ic->ic_if.if_softc;
1344 int i;
1345
1346 for (i = 0; i < WI_NTXRSS; i++) {
1347 if (sc->sc_rssd[i].rd_desc.id_node == ni)
1348 sc->sc_rssd[i].rd_desc.id_node = NULL;
1349 }
1350 free(ni, M_DEVBUF);
1351 }
1352
1353 static void
1354 wi_node_copy(struct ieee80211com *ic, struct ieee80211_node *dst,
1355 const struct ieee80211_node *src)
1356 {
1357 *(struct wi_node *)dst = *(const struct wi_node *)src;
1358 }
1359
1360 static void
1361 wi_sync_bssid(struct wi_softc *sc, u_int8_t new_bssid[IEEE80211_ADDR_LEN])
1362 {
1363 struct ieee80211com *ic = &sc->sc_ic;
1364 struct ieee80211_node *ni = ic->ic_bss;
1365 struct ifnet *ifp = &ic->ic_if;
1366
1367 if (IEEE80211_ADDR_EQ(new_bssid, ni->ni_bssid))
1368 return;
1369
1370 DPRINTF(("wi_sync_bssid: bssid %s -> ", ether_sprintf(ni->ni_bssid)));
1371 DPRINTF(("%s ?\n", ether_sprintf(new_bssid)));
1372
1373 /* In promiscuous mode, the BSSID field is not a reliable
1374 * indicator of the firmware's BSSID. Damp spurious
1375 * change-of-BSSID indications.
1376 */
1377 if ((ifp->if_flags & IFF_PROMISC) != 0 &&
1378 sc->sc_false_syns >= WI_MAX_FALSE_SYNS)
1379 return;
1380
1381 ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
1382 }
1383
1384 static __inline void
1385 wi_rssadapt_input(struct ieee80211com *ic, struct ieee80211_node *ni,
1386 struct ieee80211_frame *wh, int rssi)
1387 {
1388 struct wi_node *wn;
1389
1390 if (ni == NULL) {
1391 printf("%s: null node", __func__);
1392 return;
1393 }
1394
1395 wn = (void*)ni;
1396 ieee80211_rssadapt_input(ic, ni, &wn->wn_rssadapt, rssi);
1397 }
1398
1399 static void
1400 wi_rx_intr(struct wi_softc *sc)
1401 {
1402 struct ieee80211com *ic = &sc->sc_ic;
1403 struct ifnet *ifp = &ic->ic_if;
1404 struct ieee80211_node *ni;
1405 struct wi_frame frmhdr;
1406 struct mbuf *m;
1407 struct ieee80211_frame *wh;
1408 int fid, len, off, rssi;
1409 u_int8_t dir;
1410 u_int16_t status;
1411 u_int32_t rstamp;
1412
1413 fid = CSR_READ_2(sc, WI_RX_FID);
1414
1415 /* First read in the frame header */
1416 if (wi_read_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr))) {
1417 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_RX);
1418 ifp->if_ierrors++;
1419 DPRINTF(("wi_rx_intr: read fid %x failed\n", fid));
1420 return;
1421 }
1422
1423 if (IFF_DUMPPKTS(ifp))
1424 wi_dump_pkt(&frmhdr, NULL, frmhdr.wi_rx_signal);
1425
1426 /*
1427 * Drop undecryptable or packets with receive errors here
1428 */
1429 status = le16toh(frmhdr.wi_status);
1430 if ((status & WI_STAT_ERRSTAT) != 0 &&
1431 ic->ic_opmode != IEEE80211_M_MONITOR) {
1432 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_RX);
1433 ifp->if_ierrors++;
1434 DPRINTF(("wi_rx_intr: fid %x error status %x\n", fid, status));
1435 return;
1436 }
1437 rssi = frmhdr.wi_rx_signal;
1438 rstamp = (le16toh(frmhdr.wi_rx_tstamp0) << 16) |
1439 le16toh(frmhdr.wi_rx_tstamp1);
1440
1441 len = le16toh(frmhdr.wi_dat_len);
1442 off = ALIGN(sizeof(struct ieee80211_frame));
1443
1444 /* Sometimes the PRISM2.x returns bogusly large frames. Except
1445 * in monitor mode, just throw them away.
1446 */
1447 if (off + len > MCLBYTES) {
1448 if (ic->ic_opmode != IEEE80211_M_MONITOR) {
1449 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_RX);
1450 ifp->if_ierrors++;
1451 DPRINTF(("wi_rx_intr: oversized packet\n"));
1452 return;
1453 } else
1454 len = 0;
1455 }
1456
1457 MGETHDR(m, M_DONTWAIT, MT_DATA);
1458 if (m == NULL) {
1459 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_RX);
1460 ifp->if_ierrors++;
1461 DPRINTF(("wi_rx_intr: MGET failed\n"));
1462 return;
1463 }
1464 if (off + len > MHLEN) {
1465 MCLGET(m, M_DONTWAIT);
1466 if ((m->m_flags & M_EXT) == 0) {
1467 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_RX);
1468 m_freem(m);
1469 ifp->if_ierrors++;
1470 DPRINTF(("wi_rx_intr: MCLGET failed\n"));
1471 return;
1472 }
1473 }
1474
1475 m->m_data += off - sizeof(struct ieee80211_frame);
1476 memcpy(m->m_data, &frmhdr.wi_whdr, sizeof(struct ieee80211_frame));
1477 wi_read_bap(sc, fid, sizeof(frmhdr),
1478 m->m_data + sizeof(struct ieee80211_frame), len);
1479 m->m_pkthdr.len = m->m_len = sizeof(struct ieee80211_frame) + len;
1480 m->m_pkthdr.rcvif = ifp;
1481
1482 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_RX);
1483
1484 #if NBPFILTER > 0
1485 if (sc->sc_drvbpf) {
1486 struct mbuf mb;
1487 struct wi_rx_radiotap_header *tap = &sc->sc_rxtap;
1488
1489 tap->wr_rate = frmhdr.wi_rx_rate / 5;
1490 tap->wr_antsignal = WI_RSSI_TO_DBM(sc, frmhdr.wi_rx_signal);
1491 tap->wr_antnoise = WI_RSSI_TO_DBM(sc, frmhdr.wi_rx_silence);
1492
1493 tap->wr_chan_freq = htole16(ic->ic_bss->ni_chan->ic_freq);
1494 tap->wr_chan_flags = htole16(ic->ic_bss->ni_chan->ic_flags);
1495 if (frmhdr.wi_status & WI_STAT_PCF)
1496 tap->wr_flags |= IEEE80211_RADIOTAP_F_CFP;
1497
1498 M_COPY_PKTHDR(&mb, m);
1499 mb.m_data = (caddr_t)tap;
1500 mb.m_len = tap->wr_ihdr.it_len;
1501 mb.m_next = m;
1502 mb.m_pkthdr.len += mb.m_len;
1503 bpf_mtap(sc->sc_drvbpf, &mb);
1504 }
1505 #endif
1506 wh = mtod(m, struct ieee80211_frame *);
1507 if (wh->i_fc[1] & IEEE80211_FC1_WEP) {
1508 /*
1509 * WEP is decrypted by hardware. Clear WEP bit
1510 * header for ieee80211_input().
1511 */
1512 wh->i_fc[1] &= ~IEEE80211_FC1_WEP;
1513 }
1514
1515 /* synchronize driver's BSSID with firmware's BSSID */
1516 dir = wh->i_fc[1] & IEEE80211_FC1_DIR_MASK;
1517 if (ic->ic_opmode == IEEE80211_M_IBSS && dir == IEEE80211_FC1_DIR_NODS)
1518 wi_sync_bssid(sc, wh->i_addr3);
1519
1520 ni = ieee80211_find_rxnode(ic, wh);
1521
1522 ieee80211_input(ifp, m, ni, rssi, rstamp);
1523
1524 wi_rssadapt_input(ic, ni, wh, rssi);
1525
1526 /*
1527 * The frame may have caused the node to be marked for
1528 * reclamation (e.g. in response to a DEAUTH message)
1529 * so use free_node here instead of unref_node.
1530 */
1531 if (ni == ic->ic_bss)
1532 ieee80211_unref_node(&ni);
1533 else
1534 ieee80211_free_node(ic, ni);
1535 }
1536
1537 static void
1538 wi_tx_ex_intr(struct wi_softc *sc)
1539 {
1540 struct ieee80211com *ic = &sc->sc_ic;
1541 struct ifnet *ifp = &ic->ic_if;
1542 struct ieee80211_node *ni;
1543 struct ieee80211_rssdesc *id;
1544 struct wi_rssdesc *rssd;
1545 struct wi_frame frmhdr;
1546 int fid;
1547 u_int16_t status;
1548
1549 fid = CSR_READ_2(sc, WI_TX_CMP_FID);
1550 /* Read in the frame header */
1551 if (wi_read_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr)) != 0) {
1552 printf("%s: %s read fid %x failed\n", sc->sc_dev.dv_xname,
1553 __func__, fid);
1554 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree,
1555 &sc->sc_txpending);
1556 goto out;
1557 }
1558
1559 if (frmhdr.wi_tx_idx >= WI_NTXRSS) {
1560 printf("%s: %s bad idx %02x\n",
1561 sc->sc_dev.dv_xname, __func__, frmhdr.wi_tx_idx);
1562 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree,
1563 &sc->sc_txpending);
1564 goto out;
1565 }
1566
1567 status = le16toh(frmhdr.wi_status);
1568
1569 /*
1570 * Spontaneous station disconnects appear as xmit
1571 * errors. Don't announce them and/or count them
1572 * as an output error.
1573 */
1574 if (ppsratecheck(&lasttxerror, &curtxeps, wi_txerate)) {
1575 printf("%s: tx failed", sc->sc_dev.dv_xname);
1576 if (status & WI_TXSTAT_RET_ERR)
1577 printf(", retry limit exceeded");
1578 if (status & WI_TXSTAT_AGED_ERR)
1579 printf(", max transmit lifetime exceeded");
1580 if (status & WI_TXSTAT_DISCONNECT)
1581 printf(", port disconnected");
1582 if (status & WI_TXSTAT_FORM_ERR)
1583 printf(", invalid format (data len %u src %s)",
1584 le16toh(frmhdr.wi_dat_len),
1585 ether_sprintf(frmhdr.wi_ehdr.ether_shost));
1586 if (status & ~0xf)
1587 printf(", status=0x%x", status);
1588 printf("\n");
1589 }
1590 ifp->if_oerrors++;
1591 rssd = &sc->sc_rssd[frmhdr.wi_tx_idx];
1592 id = &rssd->rd_desc;
1593 if ((status & WI_TXSTAT_RET_ERR) != 0)
1594 wi_lower_rate(ic, id);
1595
1596 ni = id->id_node;
1597 id->id_node = NULL;
1598
1599 if (ni == NULL) {
1600 printf("%s: %s null node, rssdesc %02x\n",
1601 sc->sc_dev.dv_xname, __func__, frmhdr.wi_tx_idx);
1602 goto out;
1603 }
1604
1605 if (sc->sc_txpending[id->id_rateidx]-- == 0) {
1606 printf("%s: %s txpending[%i] wraparound", sc->sc_dev.dv_xname,
1607 __func__, id->id_rateidx);
1608 sc->sc_txpending[id->id_rateidx] = 0;
1609 }
1610 if (ni != NULL && ni != ic->ic_bss)
1611 ieee80211_free_node(ic, ni);
1612 SLIST_INSERT_HEAD(&sc->sc_rssdfree, rssd, rd_next);
1613 out:
1614 ifp->if_flags &= ~IFF_OACTIVE;
1615 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_TX_EXC);
1616 }
1617
1618 static void
1619 wi_txalloc_intr(struct wi_softc *sc)
1620 {
1621 struct ieee80211com *ic = &sc->sc_ic;
1622 struct ifnet *ifp = &ic->ic_if;
1623 int fid, cur;
1624
1625 fid = CSR_READ_2(sc, WI_ALLOC_FID);
1626 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_ALLOC);
1627
1628 cur = sc->sc_txcur;
1629 if (sc->sc_txd[cur].d_fid != fid) {
1630 printf("%s: bad alloc %x != %x, cur %d nxt %d\n",
1631 sc->sc_dev.dv_xname, fid, sc->sc_txd[cur].d_fid, cur,
1632 sc->sc_txnext);
1633 return;
1634 }
1635 sc->sc_tx_timer = 0;
1636 sc->sc_txd[cur].d_len = 0;
1637 sc->sc_txcur = cur = (cur + 1) % WI_NTXBUF;
1638 if (sc->sc_txd[cur].d_len == 0)
1639 ifp->if_flags &= ~IFF_OACTIVE;
1640 else {
1641 if (wi_cmd(sc, WI_CMD_TX | WI_RECLAIM, sc->sc_txd[cur].d_fid,
1642 0, 0)) {
1643 printf("%s: xmit failed\n", sc->sc_dev.dv_xname);
1644 sc->sc_txd[cur].d_len = 0;
1645 } else {
1646 sc->sc_txpending[sc->sc_txd[cur].d_rate]++;
1647 sc->sc_tx_timer = 5;
1648 ifp->if_timer = 1;
1649 }
1650 }
1651 }
1652
1653 static void
1654 wi_tx_intr(struct wi_softc *sc)
1655 {
1656 struct ieee80211com *ic = &sc->sc_ic;
1657 struct ifnet *ifp = &ic->ic_if;
1658 struct ieee80211_node *ni;
1659 struct ieee80211_rssdesc *id;
1660 struct wi_rssdesc *rssd;
1661 struct wi_frame frmhdr;
1662 int fid;
1663
1664 fid = CSR_READ_2(sc, WI_TX_CMP_FID);
1665 /* Read in the frame header */
1666 if (wi_read_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr)) != 0) {
1667 printf("%s: %s read fid %x failed\n", sc->sc_dev.dv_xname,
1668 __func__, fid);
1669 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree,
1670 &sc->sc_txpending);
1671 goto out;
1672 }
1673
1674 if (frmhdr.wi_tx_idx >= WI_NTXRSS) {
1675 printf("%s: %s bad idx %02x\n",
1676 sc->sc_dev.dv_xname, __func__, frmhdr.wi_tx_idx);
1677 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree,
1678 &sc->sc_txpending);
1679 goto out;
1680 }
1681
1682 rssd = &sc->sc_rssd[frmhdr.wi_tx_idx];
1683 id = &rssd->rd_desc;
1684 wi_raise_rate(ic, id);
1685
1686 ni = id->id_node;
1687 id->id_node = NULL;
1688
1689 if (ni == NULL) {
1690 printf("%s: %s null node, rssdesc %02x\n",
1691 sc->sc_dev.dv_xname, __func__, frmhdr.wi_tx_idx);
1692 goto out;
1693 }
1694
1695 if (sc->sc_txpending[id->id_rateidx]-- == 0) {
1696 printf("%s: %s txpending[%i] wraparound", sc->sc_dev.dv_xname,
1697 __func__, id->id_rateidx);
1698 sc->sc_txpending[id->id_rateidx] = 0;
1699 }
1700 if (ni != NULL && ni != ic->ic_bss)
1701 ieee80211_free_node(ic, ni);
1702 SLIST_INSERT_HEAD(&sc->sc_rssdfree, rssd, rd_next);
1703 out:
1704 ifp->if_flags &= ~IFF_OACTIVE;
1705 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_TX);
1706 }
1707
1708 static void
1709 wi_info_intr(struct wi_softc *sc)
1710 {
1711 struct ieee80211com *ic = &sc->sc_ic;
1712 struct ifnet *ifp = &ic->ic_if;
1713 int i, fid, len, off;
1714 u_int16_t ltbuf[2];
1715 u_int16_t stat;
1716 u_int32_t *ptr;
1717
1718 fid = CSR_READ_2(sc, WI_INFO_FID);
1719 wi_read_bap(sc, fid, 0, ltbuf, sizeof(ltbuf));
1720
1721 switch (le16toh(ltbuf[1])) {
1722
1723 case WI_INFO_LINK_STAT:
1724 wi_read_bap(sc, fid, sizeof(ltbuf), &stat, sizeof(stat));
1725 DPRINTF(("wi_info_intr: LINK_STAT 0x%x\n", le16toh(stat)));
1726 switch (le16toh(stat)) {
1727 case CONNECTED:
1728 sc->sc_flags &= ~WI_FLAGS_OUTRANGE;
1729 if (ic->ic_state == IEEE80211_S_RUN &&
1730 ic->ic_opmode != IEEE80211_M_IBSS)
1731 break;
1732 /* FALLTHROUGH */
1733 case AP_CHANGE:
1734 ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
1735 break;
1736 case AP_IN_RANGE:
1737 sc->sc_flags &= ~WI_FLAGS_OUTRANGE;
1738 break;
1739 case AP_OUT_OF_RANGE:
1740 if (sc->sc_firmware_type == WI_SYMBOL &&
1741 sc->sc_scan_timer > 0) {
1742 if (wi_cmd(sc, WI_CMD_INQUIRE,
1743 WI_INFO_HOST_SCAN_RESULTS, 0, 0) != 0)
1744 sc->sc_scan_timer = 0;
1745 break;
1746 }
1747 if (ic->ic_opmode == IEEE80211_M_STA)
1748 sc->sc_flags |= WI_FLAGS_OUTRANGE;
1749 break;
1750 case DISCONNECTED:
1751 case ASSOC_FAILED:
1752 if (ic->ic_opmode == IEEE80211_M_STA)
1753 ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
1754 break;
1755 }
1756 break;
1757
1758 case WI_INFO_COUNTERS:
1759 /* some card versions have a larger stats structure */
1760 len = min(le16toh(ltbuf[0]) - 1, sizeof(sc->sc_stats) / 4);
1761 ptr = (u_int32_t *)&sc->sc_stats;
1762 off = sizeof(ltbuf);
1763 for (i = 0; i < len; i++, off += 2, ptr++) {
1764 wi_read_bap(sc, fid, off, &stat, sizeof(stat));
1765 stat = le16toh(stat);
1766 #ifdef WI_HERMES_STATS_WAR
1767 if (stat & 0xf000)
1768 stat = ~stat;
1769 #endif
1770 *ptr += stat;
1771 }
1772 ifp->if_collisions = sc->sc_stats.wi_tx_single_retries +
1773 sc->sc_stats.wi_tx_multi_retries +
1774 sc->sc_stats.wi_tx_retry_limit;
1775 break;
1776
1777 case WI_INFO_SCAN_RESULTS:
1778 case WI_INFO_HOST_SCAN_RESULTS:
1779 wi_scan_result(sc, fid, le16toh(ltbuf[0]));
1780 break;
1781
1782 default:
1783 DPRINTF(("wi_info_intr: got fid %x type %x len %d\n", fid,
1784 le16toh(ltbuf[1]), le16toh(ltbuf[0])));
1785 break;
1786 }
1787 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_INFO);
1788 }
1789
1790 static int
1791 wi_write_multi(struct wi_softc *sc)
1792 {
1793 struct ifnet *ifp = &sc->sc_ic.ic_if;
1794 int n;
1795 struct wi_mcast mlist;
1796 struct ether_multi *enm;
1797 struct ether_multistep estep;
1798
1799 if ((ifp->if_flags & IFF_PROMISC) != 0) {
1800 allmulti:
1801 ifp->if_flags |= IFF_ALLMULTI;
1802 memset(&mlist, 0, sizeof(mlist));
1803 return wi_write_rid(sc, WI_RID_MCAST_LIST, &mlist,
1804 sizeof(mlist));
1805 }
1806
1807 n = 0;
1808 ETHER_FIRST_MULTI(estep, &sc->sc_ic.ic_ec, enm);
1809 while (enm != NULL) {
1810 /* Punt on ranges or too many multicast addresses. */
1811 if (!IEEE80211_ADDR_EQ(enm->enm_addrlo, enm->enm_addrhi) ||
1812 n >= sizeof(mlist) / sizeof(mlist.wi_mcast[0]))
1813 goto allmulti;
1814
1815 IEEE80211_ADDR_COPY(&mlist.wi_mcast[n], enm->enm_addrlo);
1816 n++;
1817 ETHER_NEXT_MULTI(estep, enm);
1818 }
1819 ifp->if_flags &= ~IFF_ALLMULTI;
1820 return wi_write_rid(sc, WI_RID_MCAST_LIST, &mlist,
1821 IEEE80211_ADDR_LEN * n);
1822 }
1823
1824
1825 static void
1826 wi_read_nicid(struct wi_softc *sc)
1827 {
1828 struct wi_card_ident *id;
1829 char *p;
1830 int len;
1831 u_int16_t ver[4];
1832
1833 /* getting chip identity */
1834 memset(ver, 0, sizeof(ver));
1835 len = sizeof(ver);
1836 wi_read_rid(sc, WI_RID_CARD_ID, ver, &len);
1837 printf("%s: using ", sc->sc_dev.dv_xname);
1838 DPRINTF2(("wi_read_nicid: CARD_ID: %x %x %x %x\n", le16toh(ver[0]), le16toh(ver[1]), le16toh(ver[2]), le16toh(ver[3])));
1839
1840 sc->sc_firmware_type = WI_NOTYPE;
1841 for (id = wi_card_ident; id->card_name != NULL; id++) {
1842 if (le16toh(ver[0]) == id->card_id) {
1843 printf("%s", id->card_name);
1844 sc->sc_firmware_type = id->firm_type;
1845 break;
1846 }
1847 }
1848 if (sc->sc_firmware_type == WI_NOTYPE) {
1849 if (le16toh(ver[0]) & 0x8000) {
1850 printf("Unknown PRISM2 chip");
1851 sc->sc_firmware_type = WI_INTERSIL;
1852 } else {
1853 printf("Unknown Lucent chip");
1854 sc->sc_firmware_type = WI_LUCENT;
1855 }
1856 }
1857
1858 /* get primary firmware version (Only Prism chips) */
1859 if (sc->sc_firmware_type != WI_LUCENT) {
1860 memset(ver, 0, sizeof(ver));
1861 len = sizeof(ver);
1862 wi_read_rid(sc, WI_RID_PRI_IDENTITY, ver, &len);
1863 sc->sc_pri_firmware_ver = le16toh(ver[2]) * 10000 +
1864 le16toh(ver[3]) * 100 + le16toh(ver[1]);
1865 }
1866
1867 /* get station firmware version */
1868 memset(ver, 0, sizeof(ver));
1869 len = sizeof(ver);
1870 wi_read_rid(sc, WI_RID_STA_IDENTITY, ver, &len);
1871 sc->sc_sta_firmware_ver = le16toh(ver[2]) * 10000 +
1872 le16toh(ver[3]) * 100 + le16toh(ver[1]);
1873 if (sc->sc_firmware_type == WI_INTERSIL &&
1874 (sc->sc_sta_firmware_ver == 10102 ||
1875 sc->sc_sta_firmware_ver == 20102)) {
1876 char ident[12];
1877 memset(ident, 0, sizeof(ident));
1878 len = sizeof(ident);
1879 /* value should be the format like "V2.00-11" */
1880 if (wi_read_rid(sc, WI_RID_SYMBOL_IDENTITY, ident, &len) == 0 &&
1881 *(p = (char *)ident) >= 'A' &&
1882 p[2] == '.' && p[5] == '-' && p[8] == '\0') {
1883 sc->sc_firmware_type = WI_SYMBOL;
1884 sc->sc_sta_firmware_ver = (p[1] - '0') * 10000 +
1885 (p[3] - '0') * 1000 + (p[4] - '0') * 100 +
1886 (p[6] - '0') * 10 + (p[7] - '0');
1887 }
1888 }
1889
1890 printf("\n%s: %s Firmware: ", sc->sc_dev.dv_xname,
1891 sc->sc_firmware_type == WI_LUCENT ? "Lucent" :
1892 (sc->sc_firmware_type == WI_SYMBOL ? "Symbol" : "Intersil"));
1893 if (sc->sc_firmware_type != WI_LUCENT) /* XXX */
1894 printf("Primary (%u.%u.%u), ",
1895 sc->sc_pri_firmware_ver / 10000,
1896 (sc->sc_pri_firmware_ver % 10000) / 100,
1897 sc->sc_pri_firmware_ver % 100);
1898 printf("Station (%u.%u.%u)\n",
1899 sc->sc_sta_firmware_ver / 10000,
1900 (sc->sc_sta_firmware_ver % 10000) / 100,
1901 sc->sc_sta_firmware_ver % 100);
1902 }
1903
1904 static int
1905 wi_write_ssid(struct wi_softc *sc, int rid, u_int8_t *buf, int buflen)
1906 {
1907 struct wi_ssid ssid;
1908
1909 if (buflen > IEEE80211_NWID_LEN)
1910 return ENOBUFS;
1911 memset(&ssid, 0, sizeof(ssid));
1912 ssid.wi_len = htole16(buflen);
1913 memcpy(ssid.wi_ssid, buf, buflen);
1914 return wi_write_rid(sc, rid, &ssid, sizeof(ssid));
1915 }
1916
1917 static int
1918 wi_get_cfg(struct ifnet *ifp, u_long cmd, caddr_t data)
1919 {
1920 struct wi_softc *sc = ifp->if_softc;
1921 struct ieee80211com *ic = &sc->sc_ic;
1922 struct ifreq *ifr = (struct ifreq *)data;
1923 struct wi_req wreq;
1924 int len, n, error;
1925
1926 error = copyin(ifr->ifr_data, &wreq, sizeof(wreq));
1927 if (error)
1928 return error;
1929 len = (wreq.wi_len - 1) * 2;
1930 if (len < sizeof(u_int16_t))
1931 return ENOSPC;
1932 if (len > sizeof(wreq.wi_val))
1933 len = sizeof(wreq.wi_val);
1934
1935 switch (wreq.wi_type) {
1936
1937 case WI_RID_IFACE_STATS:
1938 memcpy(wreq.wi_val, &sc->sc_stats, sizeof(sc->sc_stats));
1939 if (len < sizeof(sc->sc_stats))
1940 error = ENOSPC;
1941 else
1942 len = sizeof(sc->sc_stats);
1943 break;
1944
1945 case WI_RID_ENCRYPTION:
1946 case WI_RID_TX_CRYPT_KEY:
1947 case WI_RID_DEFLT_CRYPT_KEYS:
1948 case WI_RID_TX_RATE:
1949 return ieee80211_cfgget(ifp, cmd, data);
1950
1951 case WI_RID_MICROWAVE_OVEN:
1952 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_MOR)) {
1953 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val,
1954 &len);
1955 break;
1956 }
1957 wreq.wi_val[0] = htole16(sc->sc_microwave_oven);
1958 len = sizeof(u_int16_t);
1959 break;
1960
1961 case WI_RID_DBM_ADJUST:
1962 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_DBMADJUST)) {
1963 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val,
1964 &len);
1965 break;
1966 }
1967 wreq.wi_val[0] = htole16(sc->sc_dbm_offset);
1968 len = sizeof(u_int16_t);
1969 break;
1970
1971 case WI_RID_ROAMING_MODE:
1972 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_ROAMING)) {
1973 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val,
1974 &len);
1975 break;
1976 }
1977 wreq.wi_val[0] = htole16(sc->sc_roaming_mode);
1978 len = sizeof(u_int16_t);
1979 break;
1980
1981 case WI_RID_SYSTEM_SCALE:
1982 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_SYSSCALE)) {
1983 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val,
1984 &len);
1985 break;
1986 }
1987 wreq.wi_val[0] = htole16(sc->sc_system_scale);
1988 len = sizeof(u_int16_t);
1989 break;
1990
1991 case WI_RID_FRAG_THRESH:
1992 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_FRAGTHR)) {
1993 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val,
1994 &len);
1995 break;
1996 }
1997 wreq.wi_val[0] = htole16(sc->sc_frag_thresh);
1998 len = sizeof(u_int16_t);
1999 break;
2000
2001 case WI_RID_READ_APS:
2002 if (ic->ic_opmode == IEEE80211_M_HOSTAP)
2003 return ieee80211_cfgget(ifp, cmd, data);
2004 if (sc->sc_scan_timer > 0) {
2005 error = EINPROGRESS;
2006 break;
2007 }
2008 n = sc->sc_naps;
2009 if (len < sizeof(n)) {
2010 error = ENOSPC;
2011 break;
2012 }
2013 if (len < sizeof(n) + sizeof(struct wi_apinfo) * n)
2014 n = (len - sizeof(n)) / sizeof(struct wi_apinfo);
2015 len = sizeof(n) + sizeof(struct wi_apinfo) * n;
2016 memcpy(wreq.wi_val, &n, sizeof(n));
2017 memcpy((caddr_t)wreq.wi_val + sizeof(n), sc->sc_aps,
2018 sizeof(struct wi_apinfo) * n);
2019 break;
2020
2021 default:
2022 if (sc->sc_enabled) {
2023 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val,
2024 &len);
2025 break;
2026 }
2027 switch (wreq.wi_type) {
2028 case WI_RID_MAX_DATALEN:
2029 wreq.wi_val[0] = htole16(sc->sc_max_datalen);
2030 len = sizeof(u_int16_t);
2031 break;
2032 case WI_RID_FRAG_THRESH:
2033 wreq.wi_val[0] = htole16(sc->sc_frag_thresh);
2034 len = sizeof(u_int16_t);
2035 break;
2036 case WI_RID_RTS_THRESH:
2037 wreq.wi_val[0] = htole16(sc->sc_rts_thresh);
2038 len = sizeof(u_int16_t);
2039 break;
2040 case WI_RID_CNFAUTHMODE:
2041 wreq.wi_val[0] = htole16(sc->sc_cnfauthmode);
2042 len = sizeof(u_int16_t);
2043 break;
2044 case WI_RID_NODENAME:
2045 if (len < sc->sc_nodelen + sizeof(u_int16_t)) {
2046 error = ENOSPC;
2047 break;
2048 }
2049 len = sc->sc_nodelen + sizeof(u_int16_t);
2050 wreq.wi_val[0] = htole16((sc->sc_nodelen + 1) / 2);
2051 memcpy(&wreq.wi_val[1], sc->sc_nodename,
2052 sc->sc_nodelen);
2053 break;
2054 default:
2055 return ieee80211_cfgget(ifp, cmd, data);
2056 }
2057 break;
2058 }
2059 if (error)
2060 return error;
2061 wreq.wi_len = (len + 1) / 2 + 1;
2062 return copyout(&wreq, ifr->ifr_data, (wreq.wi_len + 1) * 2);
2063 }
2064
2065 static int
2066 wi_set_cfg(struct ifnet *ifp, u_long cmd, caddr_t data)
2067 {
2068 struct wi_softc *sc = ifp->if_softc;
2069 struct ieee80211com *ic = &sc->sc_ic;
2070 struct ifreq *ifr = (struct ifreq *)data;
2071 struct ieee80211_rateset *rs = &ic->ic_sup_rates[IEEE80211_MODE_11B];
2072 struct wi_req wreq;
2073 struct mbuf *m;
2074 int i, len, error;
2075
2076 error = copyin(ifr->ifr_data, &wreq, sizeof(wreq));
2077 if (error)
2078 return error;
2079 len = (wreq.wi_len - 1) * 2;
2080 switch (wreq.wi_type) {
2081 case WI_RID_DBM_ADJUST:
2082 return ENODEV;
2083
2084 case WI_RID_NODENAME:
2085 if (le16toh(wreq.wi_val[0]) * 2 > len ||
2086 le16toh(wreq.wi_val[0]) > sizeof(sc->sc_nodename)) {
2087 error = ENOSPC;
2088 break;
2089 }
2090 if (sc->sc_enabled) {
2091 error = wi_write_rid(sc, wreq.wi_type, wreq.wi_val,
2092 len);
2093 if (error)
2094 break;
2095 }
2096 sc->sc_nodelen = le16toh(wreq.wi_val[0]) * 2;
2097 memcpy(sc->sc_nodename, &wreq.wi_val[1], sc->sc_nodelen);
2098 break;
2099
2100 case WI_RID_MICROWAVE_OVEN:
2101 case WI_RID_ROAMING_MODE:
2102 case WI_RID_SYSTEM_SCALE:
2103 case WI_RID_FRAG_THRESH:
2104 if (wreq.wi_type == WI_RID_MICROWAVE_OVEN &&
2105 (sc->sc_flags & WI_FLAGS_HAS_MOR) == 0)
2106 break;
2107 if (wreq.wi_type == WI_RID_ROAMING_MODE &&
2108 (sc->sc_flags & WI_FLAGS_HAS_ROAMING) == 0)
2109 break;
2110 if (wreq.wi_type == WI_RID_SYSTEM_SCALE &&
2111 (sc->sc_flags & WI_FLAGS_HAS_SYSSCALE) == 0)
2112 break;
2113 if (wreq.wi_type == WI_RID_FRAG_THRESH &&
2114 (sc->sc_flags & WI_FLAGS_HAS_FRAGTHR) == 0)
2115 break;
2116 /* FALLTHROUGH */
2117 case WI_RID_RTS_THRESH:
2118 case WI_RID_CNFAUTHMODE:
2119 case WI_RID_MAX_DATALEN:
2120 if (sc->sc_enabled) {
2121 error = wi_write_rid(sc, wreq.wi_type, wreq.wi_val,
2122 sizeof(u_int16_t));
2123 if (error)
2124 break;
2125 }
2126 switch (wreq.wi_type) {
2127 case WI_RID_FRAG_THRESH:
2128 sc->sc_frag_thresh = le16toh(wreq.wi_val[0]);
2129 break;
2130 case WI_RID_RTS_THRESH:
2131 sc->sc_rts_thresh = le16toh(wreq.wi_val[0]);
2132 break;
2133 case WI_RID_MICROWAVE_OVEN:
2134 sc->sc_microwave_oven = le16toh(wreq.wi_val[0]);
2135 break;
2136 case WI_RID_ROAMING_MODE:
2137 sc->sc_roaming_mode = le16toh(wreq.wi_val[0]);
2138 break;
2139 case WI_RID_SYSTEM_SCALE:
2140 sc->sc_system_scale = le16toh(wreq.wi_val[0]);
2141 break;
2142 case WI_RID_CNFAUTHMODE:
2143 sc->sc_cnfauthmode = le16toh(wreq.wi_val[0]);
2144 break;
2145 case WI_RID_MAX_DATALEN:
2146 sc->sc_max_datalen = le16toh(wreq.wi_val[0]);
2147 break;
2148 }
2149 break;
2150
2151 case WI_RID_TX_RATE:
2152 switch (le16toh(wreq.wi_val[0])) {
2153 case 3:
2154 ic->ic_fixed_rate = -1;
2155 break;
2156 default:
2157 for (i = 0; i < IEEE80211_RATE_SIZE; i++) {
2158 if ((rs->rs_rates[i] & IEEE80211_RATE_VAL)
2159 / 2 == le16toh(wreq.wi_val[0]))
2160 break;
2161 }
2162 if (i == IEEE80211_RATE_SIZE)
2163 return EINVAL;
2164 ic->ic_fixed_rate = i;
2165 }
2166 if (sc->sc_enabled)
2167 error = wi_cfg_txrate(sc);
2168 break;
2169
2170 case WI_RID_SCAN_APS:
2171 if (sc->sc_enabled && ic->ic_opmode != IEEE80211_M_HOSTAP)
2172 error = wi_scan_ap(sc, 0x3fff, 0x000f);
2173 break;
2174
2175 case WI_RID_MGMT_XMIT:
2176 if (!sc->sc_enabled) {
2177 error = ENETDOWN;
2178 break;
2179 }
2180 if (ic->ic_mgtq.ifq_len > 5) {
2181 error = EAGAIN;
2182 break;
2183 }
2184 /* XXX wi_len looks in u_int8_t, not in u_int16_t */
2185 m = m_devget((char *)&wreq.wi_val, wreq.wi_len, 0, ifp, NULL);
2186 if (m == NULL) {
2187 error = ENOMEM;
2188 break;
2189 }
2190 IF_ENQUEUE(&ic->ic_mgtq, m);
2191 break;
2192
2193 default:
2194 if (sc->sc_enabled) {
2195 error = wi_write_rid(sc, wreq.wi_type, wreq.wi_val,
2196 len);
2197 if (error)
2198 break;
2199 }
2200 error = ieee80211_cfgset(ifp, cmd, data);
2201 break;
2202 }
2203 return error;
2204 }
2205
2206 /* Rate is 0 for hardware auto-select, otherwise rate is
2207 * 2, 4, 11, or 22 (units of 500Kbps).
2208 */
2209 static int
2210 wi_write_txrate(struct wi_softc *sc, int rate)
2211 {
2212 u_int16_t hwrate;
2213 int i;
2214
2215 rate = (rate & IEEE80211_RATE_VAL) / 2;
2216
2217 /* rate: 0, 1, 2, 5, 11 */
2218 switch (sc->sc_firmware_type) {
2219 case WI_LUCENT:
2220 switch (rate) {
2221 case 0:
2222 hwrate = 3; /* auto */
2223 break;
2224 case 5:
2225 hwrate = 4;
2226 break;
2227 case 11:
2228 hwrate = 5;
2229 break;
2230 default:
2231 hwrate = rate;
2232 break;
2233 }
2234 break;
2235 default:
2236 /* Choose a bit according to this table.
2237 *
2238 * bit | data rate
2239 * ----+-------------------
2240 * 0 | 1Mbps
2241 * 1 | 2Mbps
2242 * 2 | 5.5Mbps
2243 * 3 | 11Mbps
2244 */
2245 for (i = 8; i > 0; i >>= 1) {
2246 if (rate >= i)
2247 break;
2248 }
2249 if (i == 0)
2250 hwrate = 0xf; /* auto */
2251 else
2252 hwrate = i;
2253 break;
2254 }
2255
2256 if (sc->sc_tx_rate == hwrate)
2257 return 0;
2258
2259 if (sc->sc_if.if_flags & IFF_DEBUG)
2260 printf("%s: tx rate %d -> %d (%d)\n", __func__, sc->sc_tx_rate,
2261 hwrate, rate);
2262
2263 sc->sc_tx_rate = hwrate;
2264
2265 return wi_write_val(sc, WI_RID_TX_RATE, sc->sc_tx_rate);
2266 }
2267
2268 static int
2269 wi_cfg_txrate(struct wi_softc *sc)
2270 {
2271 struct ieee80211com *ic = &sc->sc_ic;
2272 struct ieee80211_rateset *rs;
2273 int rate;
2274
2275 rs = &ic->ic_sup_rates[IEEE80211_MODE_11B];
2276
2277 sc->sc_tx_rate = 0; /* force write to RID */
2278
2279 if (ic->ic_fixed_rate < 0)
2280 rate = 0; /* auto */
2281 else
2282 rate = rs->rs_rates[ic->ic_fixed_rate];
2283
2284 return wi_write_txrate(sc, rate);
2285 }
2286
2287 static int
2288 wi_write_wep(struct wi_softc *sc)
2289 {
2290 struct ieee80211com *ic = &sc->sc_ic;
2291 int error = 0;
2292 int i, keylen;
2293 u_int16_t val;
2294 struct wi_key wkey[IEEE80211_WEP_NKID];
2295
2296 switch (sc->sc_firmware_type) {
2297 case WI_LUCENT:
2298 val = (ic->ic_flags & IEEE80211_F_WEPON) ? 1 : 0;
2299 error = wi_write_val(sc, WI_RID_ENCRYPTION, val);
2300 if (error)
2301 break;
2302 error = wi_write_val(sc, WI_RID_TX_CRYPT_KEY, ic->ic_wep_txkey);
2303 if (error)
2304 break;
2305 memset(wkey, 0, sizeof(wkey));
2306 for (i = 0; i < IEEE80211_WEP_NKID; i++) {
2307 keylen = ic->ic_nw_keys[i].wk_len;
2308 wkey[i].wi_keylen = htole16(keylen);
2309 memcpy(wkey[i].wi_keydat, ic->ic_nw_keys[i].wk_key,
2310 keylen);
2311 }
2312 error = wi_write_rid(sc, WI_RID_DEFLT_CRYPT_KEYS,
2313 wkey, sizeof(wkey));
2314 break;
2315
2316 case WI_INTERSIL:
2317 case WI_SYMBOL:
2318 if (ic->ic_flags & IEEE80211_F_WEPON) {
2319 /*
2320 * ONLY HWB3163 EVAL-CARD Firmware version
2321 * less than 0.8 variant2
2322 *
2323 * If promiscuous mode disable, Prism2 chip
2324 * does not work with WEP .
2325 * It is under investigation for details.
2326 * (ichiro (at) NetBSD.org)
2327 */
2328 if (sc->sc_firmware_type == WI_INTERSIL &&
2329 sc->sc_sta_firmware_ver < 802 ) {
2330 /* firm ver < 0.8 variant 2 */
2331 wi_write_val(sc, WI_RID_PROMISC, 1);
2332 }
2333 wi_write_val(sc, WI_RID_CNFAUTHMODE,
2334 sc->sc_cnfauthmode);
2335 val = PRIVACY_INVOKED | EXCLUDE_UNENCRYPTED;
2336 /*
2337 * Encryption firmware has a bug for HostAP mode.
2338 */
2339 if (sc->sc_firmware_type == WI_INTERSIL &&
2340 ic->ic_opmode == IEEE80211_M_HOSTAP)
2341 val |= HOST_ENCRYPT;
2342 } else {
2343 wi_write_val(sc, WI_RID_CNFAUTHMODE,
2344 IEEE80211_AUTH_OPEN);
2345 val = HOST_ENCRYPT | HOST_DECRYPT;
2346 }
2347 error = wi_write_val(sc, WI_RID_P2_ENCRYPTION, val);
2348 if (error)
2349 break;
2350 error = wi_write_val(sc, WI_RID_P2_TX_CRYPT_KEY,
2351 ic->ic_wep_txkey);
2352 if (error)
2353 break;
2354 /*
2355 * It seems that the firmware accept 104bit key only if
2356 * all the keys have 104bit length. We get the length of
2357 * the transmit key and use it for all other keys.
2358 * Perhaps we should use software WEP for such situation.
2359 */
2360 keylen = ic->ic_nw_keys[ic->ic_wep_txkey].wk_len;
2361 if (keylen > IEEE80211_WEP_KEYLEN)
2362 keylen = 13; /* 104bit keys */
2363 else
2364 keylen = IEEE80211_WEP_KEYLEN;
2365 for (i = 0; i < IEEE80211_WEP_NKID; i++) {
2366 error = wi_write_rid(sc, WI_RID_P2_CRYPT_KEY0 + i,
2367 ic->ic_nw_keys[i].wk_key, keylen);
2368 if (error)
2369 break;
2370 }
2371 break;
2372 }
2373 return error;
2374 }
2375
2376 /* Must be called at proper protection level! */
2377 static int
2378 wi_cmd(struct wi_softc *sc, int cmd, int val0, int val1, int val2)
2379 {
2380 int i, status;
2381
2382 /* wait for the busy bit to clear */
2383 for (i = 500; i > 0; i--) { /* 5s */
2384 if ((CSR_READ_2(sc, WI_COMMAND) & WI_CMD_BUSY) == 0)
2385 break;
2386 DELAY(10*1000); /* 10 m sec */
2387 }
2388 if (i == 0) {
2389 printf("%s: wi_cmd: busy bit won't clear.\n",
2390 sc->sc_dev.dv_xname);
2391 return(ETIMEDOUT);
2392 }
2393 CSR_WRITE_2(sc, WI_PARAM0, val0);
2394 CSR_WRITE_2(sc, WI_PARAM1, val1);
2395 CSR_WRITE_2(sc, WI_PARAM2, val2);
2396 CSR_WRITE_2(sc, WI_COMMAND, cmd);
2397
2398 if (cmd == WI_CMD_INI) {
2399 /* XXX: should sleep here. */
2400 DELAY(100*1000);
2401 }
2402 /* wait for the cmd completed bit */
2403 for (i = 0; i < WI_TIMEOUT; i++) {
2404 if (CSR_READ_2(sc, WI_EVENT_STAT) & WI_EV_CMD)
2405 break;
2406 DELAY(WI_DELAY);
2407 }
2408
2409 status = CSR_READ_2(sc, WI_STATUS);
2410
2411 /* Ack the command */
2412 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_CMD);
2413
2414 if (i == WI_TIMEOUT) {
2415 printf("%s: command timed out, cmd=0x%x, arg=0x%x\n",
2416 sc->sc_dev.dv_xname, cmd, val0);
2417 return ETIMEDOUT;
2418 }
2419
2420 if (status & WI_STAT_CMD_RESULT) {
2421 printf("%s: command failed, cmd=0x%x, arg=0x%x\n",
2422 sc->sc_dev.dv_xname, cmd, val0);
2423 return EIO;
2424 }
2425 return 0;
2426 }
2427
2428 static int
2429 wi_seek_bap(struct wi_softc *sc, int id, int off)
2430 {
2431 int i, status;
2432
2433 CSR_WRITE_2(sc, WI_SEL0, id);
2434 CSR_WRITE_2(sc, WI_OFF0, off);
2435
2436 for (i = 0; ; i++) {
2437 status = CSR_READ_2(sc, WI_OFF0);
2438 if ((status & WI_OFF_BUSY) == 0)
2439 break;
2440 if (i == WI_TIMEOUT) {
2441 printf("%s: timeout in wi_seek to %x/%x\n",
2442 sc->sc_dev.dv_xname, id, off);
2443 sc->sc_bap_off = WI_OFF_ERR; /* invalidate */
2444 return ETIMEDOUT;
2445 }
2446 DELAY(1);
2447 }
2448 if (status & WI_OFF_ERR) {
2449 printf("%s: failed in wi_seek to %x/%x\n",
2450 sc->sc_dev.dv_xname, id, off);
2451 sc->sc_bap_off = WI_OFF_ERR; /* invalidate */
2452 return EIO;
2453 }
2454 sc->sc_bap_id = id;
2455 sc->sc_bap_off = off;
2456 return 0;
2457 }
2458
2459 static int
2460 wi_read_bap(struct wi_softc *sc, int id, int off, void *buf, int buflen)
2461 {
2462 int error, cnt;
2463
2464 if (buflen == 0)
2465 return 0;
2466 if (id != sc->sc_bap_id || off != sc->sc_bap_off) {
2467 if ((error = wi_seek_bap(sc, id, off)) != 0)
2468 return error;
2469 }
2470 cnt = (buflen + 1) / 2;
2471 CSR_READ_MULTI_STREAM_2(sc, WI_DATA0, (u_int16_t *)buf, cnt);
2472 sc->sc_bap_off += cnt * 2;
2473 return 0;
2474 }
2475
2476 static int
2477 wi_write_bap(struct wi_softc *sc, int id, int off, void *buf, int buflen)
2478 {
2479 int error, cnt;
2480
2481 if (buflen == 0)
2482 return 0;
2483
2484 #ifdef WI_HERMES_AUTOINC_WAR
2485 again:
2486 #endif
2487 if (id != sc->sc_bap_id || off != sc->sc_bap_off) {
2488 if ((error = wi_seek_bap(sc, id, off)) != 0)
2489 return error;
2490 }
2491 cnt = (buflen + 1) / 2;
2492 CSR_WRITE_MULTI_STREAM_2(sc, WI_DATA0, (u_int16_t *)buf, cnt);
2493 sc->sc_bap_off += cnt * 2;
2494
2495 #ifdef WI_HERMES_AUTOINC_WAR
2496 /*
2497 * According to the comments in the HCF Light code, there is a bug
2498 * in the Hermes (or possibly in certain Hermes firmware revisions)
2499 * where the chip's internal autoincrement counter gets thrown off
2500 * during data writes: the autoincrement is missed, causing one
2501 * data word to be overwritten and subsequent words to be written to
2502 * the wrong memory locations. The end result is that we could end
2503 * up transmitting bogus frames without realizing it. The workaround
2504 * for this is to write a couple of extra guard words after the end
2505 * of the transfer, then attempt to read then back. If we fail to
2506 * locate the guard words where we expect them, we preform the
2507 * transfer over again.
2508 */
2509 if ((sc->sc_flags & WI_FLAGS_BUG_AUTOINC) && (id & 0xf000) == 0) {
2510 CSR_WRITE_2(sc, WI_DATA0, 0x1234);
2511 CSR_WRITE_2(sc, WI_DATA0, 0x5678);
2512 wi_seek_bap(sc, id, sc->sc_bap_off);
2513 sc->sc_bap_off = WI_OFF_ERR; /* invalidate */
2514 if (CSR_READ_2(sc, WI_DATA0) != 0x1234 ||
2515 CSR_READ_2(sc, WI_DATA0) != 0x5678) {
2516 printf("%s: detect auto increment bug, try again\n",
2517 sc->sc_dev.dv_xname);
2518 goto again;
2519 }
2520 }
2521 #endif
2522 return 0;
2523 }
2524
2525 static int
2526 wi_mwrite_bap(struct wi_softc *sc, int id, int off, struct mbuf *m0, int totlen)
2527 {
2528 int error, len;
2529 struct mbuf *m;
2530
2531 for (m = m0; m != NULL && totlen > 0; m = m->m_next) {
2532 if (m->m_len == 0)
2533 continue;
2534
2535 len = min(m->m_len, totlen);
2536
2537 if (((u_long)m->m_data) % 2 != 0 || len % 2 != 0) {
2538 m_copydata(m, 0, totlen, (caddr_t)&sc->sc_txbuf);
2539 return wi_write_bap(sc, id, off, (caddr_t)&sc->sc_txbuf,
2540 totlen);
2541 }
2542
2543 if ((error = wi_write_bap(sc, id, off, m->m_data, len)) != 0)
2544 return error;
2545
2546 off += m->m_len;
2547 totlen -= len;
2548 }
2549 return 0;
2550 }
2551
2552 static int
2553 wi_alloc_fid(struct wi_softc *sc, int len, int *idp)
2554 {
2555 int i;
2556
2557 if (wi_cmd(sc, WI_CMD_ALLOC_MEM, len, 0, 0)) {
2558 printf("%s: failed to allocate %d bytes on NIC\n",
2559 sc->sc_dev.dv_xname, len);
2560 return ENOMEM;
2561 }
2562
2563 for (i = 0; i < WI_TIMEOUT; i++) {
2564 if (CSR_READ_2(sc, WI_EVENT_STAT) & WI_EV_ALLOC)
2565 break;
2566 if (i == WI_TIMEOUT) {
2567 printf("%s: timeout in alloc\n", sc->sc_dev.dv_xname);
2568 return ETIMEDOUT;
2569 }
2570 DELAY(1);
2571 }
2572 *idp = CSR_READ_2(sc, WI_ALLOC_FID);
2573 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_ALLOC);
2574 return 0;
2575 }
2576
2577 static int
2578 wi_read_rid(struct wi_softc *sc, int rid, void *buf, int *buflenp)
2579 {
2580 int error, len;
2581 u_int16_t ltbuf[2];
2582
2583 /* Tell the NIC to enter record read mode. */
2584 error = wi_cmd(sc, WI_CMD_ACCESS | WI_ACCESS_READ, rid, 0, 0);
2585 if (error)
2586 return error;
2587
2588 error = wi_read_bap(sc, rid, 0, ltbuf, sizeof(ltbuf));
2589 if (error)
2590 return error;
2591
2592 if (le16toh(ltbuf[1]) != rid) {
2593 printf("%s: record read mismatch, rid=%x, got=%x\n",
2594 sc->sc_dev.dv_xname, rid, le16toh(ltbuf[1]));
2595 return EIO;
2596 }
2597 len = max(0, le16toh(ltbuf[0]) - 1) * 2; /* already got rid */
2598 if (*buflenp < len) {
2599 printf("%s: record buffer is too small, "
2600 "rid=%x, size=%d, len=%d\n",
2601 sc->sc_dev.dv_xname, rid, *buflenp, len);
2602 return ENOSPC;
2603 }
2604 *buflenp = len;
2605 return wi_read_bap(sc, rid, sizeof(ltbuf), buf, len);
2606 }
2607
2608 static int
2609 wi_write_rid(struct wi_softc *sc, int rid, void *buf, int buflen)
2610 {
2611 int error;
2612 u_int16_t ltbuf[2];
2613
2614 ltbuf[0] = htole16((buflen + 1) / 2 + 1); /* includes rid */
2615 ltbuf[1] = htole16(rid);
2616
2617 error = wi_write_bap(sc, rid, 0, ltbuf, sizeof(ltbuf));
2618 if (error)
2619 return error;
2620 error = wi_write_bap(sc, rid, sizeof(ltbuf), buf, buflen);
2621 if (error)
2622 return error;
2623
2624 return wi_cmd(sc, WI_CMD_ACCESS | WI_ACCESS_WRITE, rid, 0, 0);
2625 }
2626
2627 static void
2628 wi_rssadapt_updatestats_cb(void *arg, struct ieee80211_node *ni)
2629 {
2630 struct wi_node *wn = (void*)ni;
2631 ieee80211_rssadapt_updatestats(&wn->wn_rssadapt);
2632 }
2633
2634 static void
2635 wi_rssadapt_updatestats(void *arg)
2636 {
2637 struct wi_softc *sc = arg;
2638 struct ieee80211com *ic = &sc->sc_ic;
2639 ieee80211_iterate_nodes(ic, wi_rssadapt_updatestats_cb, arg);
2640 if (ic->ic_opmode != IEEE80211_M_MONITOR &&
2641 ic->ic_state == IEEE80211_S_RUN)
2642 callout_reset(&sc->sc_rssadapt_ch, hz / 10,
2643 wi_rssadapt_updatestats, arg);
2644 }
2645
2646 static int
2647 wi_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
2648 {
2649 struct wi_softc *sc = ic->ic_softc;
2650 struct ieee80211_node *ni = ic->ic_bss;
2651 int buflen;
2652 u_int16_t val;
2653 struct wi_ssid ssid;
2654 struct wi_macaddr bssid, old_bssid;
2655 enum ieee80211_state ostate;
2656 #ifdef WI_DEBUG
2657 static const char *stname[] =
2658 { "INIT", "SCAN", "AUTH", "ASSOC", "RUN" };
2659 #endif /* WI_DEBUG */
2660
2661 ostate = ic->ic_state;
2662 DPRINTF(("wi_newstate: %s -> %s\n", stname[ostate], stname[nstate]));
2663
2664 switch (nstate) {
2665 case IEEE80211_S_INIT:
2666 if (ic->ic_opmode != IEEE80211_M_MONITOR)
2667 callout_stop(&sc->sc_rssadapt_ch);
2668 ic->ic_flags &= ~IEEE80211_F_SIBSS;
2669 sc->sc_flags &= ~WI_FLAGS_OUTRANGE;
2670 return (*sc->sc_newstate)(ic, nstate, arg);
2671
2672 case IEEE80211_S_RUN:
2673 sc->sc_flags &= ~WI_FLAGS_OUTRANGE;
2674 buflen = IEEE80211_ADDR_LEN;
2675 IEEE80211_ADDR_COPY(old_bssid.wi_mac_addr, ni->ni_bssid);
2676 wi_read_rid(sc, WI_RID_CURRENT_BSSID, &bssid, &buflen);
2677 IEEE80211_ADDR_COPY(ni->ni_bssid, &bssid);
2678 IEEE80211_ADDR_COPY(ni->ni_macaddr, &bssid);
2679 buflen = sizeof(val);
2680 wi_read_rid(sc, WI_RID_CURRENT_CHAN, &val, &buflen);
2681 if (!isset(ic->ic_chan_avail, le16toh(val)))
2682 panic("%s: invalid channel %d\n", sc->sc_dev.dv_xname,
2683 le16toh(val));
2684 ni->ni_chan = &ic->ic_channels[le16toh(val)];
2685
2686 if (IEEE80211_ADDR_EQ(old_bssid.wi_mac_addr, ni->ni_bssid))
2687 sc->sc_false_syns++;
2688 else
2689 sc->sc_false_syns = 0;
2690
2691 if (ic->ic_opmode == IEEE80211_M_HOSTAP) {
2692 ni->ni_esslen = ic->ic_des_esslen;
2693 memcpy(ni->ni_essid, ic->ic_des_essid, ni->ni_esslen);
2694 ni->ni_rates = ic->ic_sup_rates[
2695 ieee80211_chan2mode(ic, ni->ni_chan)];
2696 ni->ni_intval = ic->ic_lintval;
2697 ni->ni_capinfo = IEEE80211_CAPINFO_ESS;
2698 if (ic->ic_flags & IEEE80211_F_WEPON)
2699 ni->ni_capinfo |= IEEE80211_CAPINFO_PRIVACY;
2700 } else {
2701 buflen = sizeof(ssid);
2702 wi_read_rid(sc, WI_RID_CURRENT_SSID, &ssid, &buflen);
2703 ni->ni_esslen = le16toh(ssid.wi_len);
2704 if (ni->ni_esslen > IEEE80211_NWID_LEN)
2705 ni->ni_esslen = IEEE80211_NWID_LEN; /*XXX*/
2706 memcpy(ni->ni_essid, ssid.wi_ssid, ni->ni_esslen);
2707 ni->ni_rates = ic->ic_sup_rates[
2708 ieee80211_chan2mode(ic, ni->ni_chan)]; /*XXX*/
2709 }
2710 if (ic->ic_opmode != IEEE80211_M_MONITOR)
2711 callout_reset(&sc->sc_rssadapt_ch, hz / 10,
2712 wi_rssadapt_updatestats, sc);
2713 break;
2714
2715 case IEEE80211_S_SCAN:
2716 case IEEE80211_S_AUTH:
2717 case IEEE80211_S_ASSOC:
2718 break;
2719 }
2720
2721 ic->ic_state = nstate;
2722 /* skip standard ieee80211 handling */
2723 return 0;
2724 }
2725
2726 static int
2727 wi_set_tim(struct ieee80211com *ic, int aid, int which)
2728 {
2729 struct wi_softc *sc = ic->ic_softc;
2730
2731 aid &= ~0xc000;
2732 if (which)
2733 aid |= 0x8000;
2734
2735 return wi_write_val(sc, WI_RID_SET_TIM, aid);
2736 }
2737
2738 static int
2739 wi_scan_ap(struct wi_softc *sc, u_int16_t chanmask, u_int16_t txrate)
2740 {
2741 int error = 0;
2742 u_int16_t val[2];
2743
2744 if (!sc->sc_enabled)
2745 return ENXIO;
2746 switch (sc->sc_firmware_type) {
2747 case WI_LUCENT:
2748 (void)wi_cmd(sc, WI_CMD_INQUIRE, WI_INFO_SCAN_RESULTS, 0, 0);
2749 break;
2750 case WI_INTERSIL:
2751 val[0] = htole16(chanmask); /* channel */
2752 val[1] = htole16(txrate); /* tx rate */
2753 error = wi_write_rid(sc, WI_RID_SCAN_REQ, val, sizeof(val));
2754 break;
2755 case WI_SYMBOL:
2756 /*
2757 * XXX only supported on 3.x ?
2758 */
2759 val[0] = BSCAN_BCAST | BSCAN_ONETIME;
2760 error = wi_write_rid(sc, WI_RID_BCAST_SCAN_REQ,
2761 val, sizeof(val[0]));
2762 break;
2763 }
2764 if (error == 0) {
2765 sc->sc_scan_timer = WI_SCAN_WAIT;
2766 sc->sc_ic.ic_if.if_timer = 1;
2767 DPRINTF(("wi_scan_ap: start scanning, "
2768 "chanmask 0x%x txrate 0x%x\n", chanmask, txrate));
2769 }
2770 return error;
2771 }
2772
2773 static void
2774 wi_scan_result(struct wi_softc *sc, int fid, int cnt)
2775 {
2776 #define N(a) (sizeof (a) / sizeof (a[0]))
2777 int i, naps, off, szbuf;
2778 struct wi_scan_header ws_hdr; /* Prism2 header */
2779 struct wi_scan_data_p2 ws_dat; /* Prism2 scantable*/
2780 struct wi_apinfo *ap;
2781
2782 off = sizeof(u_int16_t) * 2;
2783 memset(&ws_hdr, 0, sizeof(ws_hdr));
2784 switch (sc->sc_firmware_type) {
2785 case WI_INTERSIL:
2786 wi_read_bap(sc, fid, off, &ws_hdr, sizeof(ws_hdr));
2787 off += sizeof(ws_hdr);
2788 szbuf = sizeof(struct wi_scan_data_p2);
2789 break;
2790 case WI_SYMBOL:
2791 szbuf = sizeof(struct wi_scan_data_p2) + 6;
2792 break;
2793 case WI_LUCENT:
2794 szbuf = sizeof(struct wi_scan_data);
2795 break;
2796 default:
2797 printf("%s: wi_scan_result: unknown firmware type %u\n",
2798 sc->sc_dev.dv_xname, sc->sc_firmware_type);
2799 naps = 0;
2800 goto done;
2801 }
2802 naps = (cnt * 2 + 2 - off) / szbuf;
2803 if (naps > N(sc->sc_aps))
2804 naps = N(sc->sc_aps);
2805 sc->sc_naps = naps;
2806 /* Read Data */
2807 ap = sc->sc_aps;
2808 memset(&ws_dat, 0, sizeof(ws_dat));
2809 for (i = 0; i < naps; i++, ap++) {
2810 wi_read_bap(sc, fid, off, &ws_dat,
2811 (sizeof(ws_dat) < szbuf ? sizeof(ws_dat) : szbuf));
2812 DPRINTF2(("wi_scan_result: #%d: off %d bssid %s\n", i, off,
2813 ether_sprintf(ws_dat.wi_bssid)));
2814 off += szbuf;
2815 ap->scanreason = le16toh(ws_hdr.wi_reason);
2816 memcpy(ap->bssid, ws_dat.wi_bssid, sizeof(ap->bssid));
2817 ap->channel = le16toh(ws_dat.wi_chid);
2818 ap->signal = le16toh(ws_dat.wi_signal);
2819 ap->noise = le16toh(ws_dat.wi_noise);
2820 ap->quality = ap->signal - ap->noise;
2821 ap->capinfo = le16toh(ws_dat.wi_capinfo);
2822 ap->interval = le16toh(ws_dat.wi_interval);
2823 ap->rate = le16toh(ws_dat.wi_rate);
2824 ap->namelen = le16toh(ws_dat.wi_namelen);
2825 if (ap->namelen > sizeof(ap->name))
2826 ap->namelen = sizeof(ap->name);
2827 memcpy(ap->name, ws_dat.wi_name, ap->namelen);
2828 }
2829 done:
2830 /* Done scanning */
2831 sc->sc_scan_timer = 0;
2832 DPRINTF(("wi_scan_result: scan complete: ap %d\n", naps));
2833 #undef N
2834 }
2835
2836 static void
2837 wi_dump_pkt(struct wi_frame *wh, struct ieee80211_node *ni, int rssi)
2838 {
2839 ieee80211_dump_pkt((u_int8_t *) &wh->wi_whdr, sizeof(wh->wi_whdr),
2840 ni ? ni->ni_rates.rs_rates[ni->ni_txrate] & IEEE80211_RATE_VAL
2841 : -1,
2842 rssi);
2843 printf(" status 0x%x rx_tstamp1 %u rx_tstamp0 0x%u rx_silence %u\n",
2844 le16toh(wh->wi_status), le16toh(wh->wi_rx_tstamp1),
2845 le16toh(wh->wi_rx_tstamp0), wh->wi_rx_silence);
2846 printf(" rx_signal %u rx_rate %u rx_flow %u\n",
2847 wh->wi_rx_signal, wh->wi_rx_rate, wh->wi_rx_flow);
2848 printf(" tx_rtry %u tx_rate %u tx_ctl 0x%x dat_len %u\n",
2849 wh->wi_tx_rtry, wh->wi_tx_rate,
2850 le16toh(wh->wi_tx_ctl), le16toh(wh->wi_dat_len));
2851 printf(" ehdr dst %s src %s type 0x%x\n",
2852 ether_sprintf(wh->wi_ehdr.ether_dhost),
2853 ether_sprintf(wh->wi_ehdr.ether_shost),
2854 wh->wi_ehdr.ether_type);
2855 }
2856