awi.c revision 1.36.2.1 1 1.36.2.1 fvdl /* $NetBSD: awi.c,v 1.36.2.1 2001/10/01 12:45:29 fvdl Exp $ */
2 1.3 sommerfe
3 1.19 onoe /*-
4 1.36.2.1 fvdl * Copyright (c) 1999,2000,2001 The NetBSD Foundation, Inc.
5 1.1 sommerfe * All rights reserved.
6 1.1 sommerfe *
7 1.1 sommerfe * This code is derived from software contributed to The NetBSD Foundation
8 1.19 onoe * by Bill Sommerfeld
9 1.1 sommerfe *
10 1.1 sommerfe * Redistribution and use in source and binary forms, with or without
11 1.1 sommerfe * modification, are permitted provided that the following conditions
12 1.1 sommerfe * are met:
13 1.1 sommerfe * 1. Redistributions of source code must retain the above copyright
14 1.1 sommerfe * notice, this list of conditions and the following disclaimer.
15 1.1 sommerfe * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 sommerfe * notice, this list of conditions and the following disclaimer in the
17 1.1 sommerfe * documentation and/or other materials provided with the distribution.
18 1.1 sommerfe * 3. All advertising materials mentioning features or use of this software
19 1.1 sommerfe * must display the following acknowledgement:
20 1.19 onoe * This product includes software developed by the NetBSD
21 1.19 onoe * Foundation, Inc. and its contributors.
22 1.1 sommerfe * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.1 sommerfe * contributors may be used to endorse or promote products derived
24 1.1 sommerfe * from this software without specific prior written permission.
25 1.1 sommerfe *
26 1.1 sommerfe * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.1 sommerfe * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.1 sommerfe * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.1 sommerfe * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.1 sommerfe * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.1 sommerfe * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.1 sommerfe * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.1 sommerfe * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.1 sommerfe * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.1 sommerfe * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.1 sommerfe * POSSIBILITY OF SUCH DAMAGE.
37 1.1 sommerfe */
38 1.19 onoe /*
39 1.19 onoe * Driver for AMD 802.11 firmware.
40 1.19 onoe * Uses am79c930 chip driver to talk to firmware running on the am79c930.
41 1.19 onoe *
42 1.19 onoe * More-or-less a generic ethernet-like if driver, with 802.11 gorp added.
43 1.19 onoe */
44 1.19 onoe
45 1.19 onoe /*
46 1.19 onoe * todo:
47 1.19 onoe * - flush tx queue on resynch.
48 1.19 onoe * - clear oactive on "down".
49 1.19 onoe * - rewrite copy-into-mbuf code
50 1.19 onoe * - mgmt state machine gets stuck retransmitting assoc requests.
51 1.19 onoe * - multicast filter.
52 1.19 onoe * - fix device reset so it's more likely to work
53 1.19 onoe * - show status goo through ifmedia.
54 1.19 onoe *
55 1.19 onoe * more todo:
56 1.19 onoe * - deal with more 802.11 frames.
57 1.19 onoe * - send reassoc request
58 1.19 onoe * - deal with reassoc response
59 1.19 onoe * - send/deal with disassociation
60 1.19 onoe * - deal with "full" access points (no room for me).
61 1.19 onoe * - power save mode
62 1.19 onoe *
63 1.19 onoe * later:
64 1.19 onoe * - SSID preferences
65 1.19 onoe * - need ioctls for poking at the MIBs
66 1.19 onoe * - implement ad-hoc mode (including bss creation).
67 1.19 onoe * - decide when to do "ad hoc" vs. infrastructure mode (IFF_LINK flags?)
68 1.19 onoe * (focus on inf. mode since that will be needed for ietf)
69 1.19 onoe * - deal with DH vs. FH versions of the card
70 1.19 onoe * - deal with faster cards (2mb/s)
71 1.19 onoe * - ?WEP goo (mmm, rc4) (it looks not particularly useful).
72 1.19 onoe * - ifmedia revision.
73 1.19 onoe * - common 802.11 mibish things.
74 1.19 onoe * - common 802.11 media layer.
75 1.19 onoe */
76 1.10 onoe
77 1.1 sommerfe /*
78 1.10 onoe * Driver for AMD 802.11 PCnetMobile firmware.
79 1.1 sommerfe * Uses am79c930 chip driver to talk to firmware running on the am79c930.
80 1.1 sommerfe *
81 1.10 onoe * The initial version of the driver was written by
82 1.10 onoe * Bill Sommerfeld <sommerfeld (at) netbsd.org>.
83 1.10 onoe * Then the driver module completely rewritten to support cards with DS phy
84 1.10 onoe * and to support adhoc mode by Atsushi Onoe <onoe (at) netbsd.org>
85 1.1 sommerfe */
86 1.1 sommerfe
87 1.1 sommerfe #include "opt_inet.h"
88 1.10 onoe #include "bpfilter.h"
89 1.1 sommerfe
90 1.1 sommerfe #include <sys/param.h>
91 1.1 sommerfe #include <sys/systm.h>
92 1.1 sommerfe #include <sys/kernel.h>
93 1.1 sommerfe #include <sys/mbuf.h>
94 1.10 onoe #include <sys/malloc.h>
95 1.10 onoe #include <sys/proc.h>
96 1.1 sommerfe #include <sys/socket.h>
97 1.10 onoe #include <sys/sockio.h>
98 1.1 sommerfe #include <sys/errno.h>
99 1.1 sommerfe #include <sys/device.h>
100 1.1 sommerfe
101 1.1 sommerfe #include <net/if.h>
102 1.1 sommerfe #include <net/if_dl.h>
103 1.1 sommerfe #include <net/if_ether.h>
104 1.1 sommerfe #include <net/if_media.h>
105 1.10 onoe #include <net/if_llc.h>
106 1.10 onoe #include <net/if_ieee80211.h>
107 1.1 sommerfe
108 1.1 sommerfe #ifdef INET
109 1.1 sommerfe #include <netinet/in.h>
110 1.1 sommerfe #include <netinet/in_systm.h>
111 1.10 onoe #ifdef __NetBSD__
112 1.1 sommerfe #include <netinet/if_inarp.h>
113 1.10 onoe #else
114 1.10 onoe #include <netinet/if_ether.h>
115 1.10 onoe #endif
116 1.1 sommerfe #endif
117 1.1 sommerfe
118 1.1 sommerfe #if NBPFILTER > 0
119 1.1 sommerfe #include <net/bpf.h>
120 1.1 sommerfe #endif
121 1.1 sommerfe
122 1.1 sommerfe #include <machine/cpu.h>
123 1.1 sommerfe #include <machine/bus.h>
124 1.1 sommerfe #include <machine/intr.h>
125 1.1 sommerfe
126 1.1 sommerfe #include <dev/ic/am79c930reg.h>
127 1.1 sommerfe #include <dev/ic/am79c930var.h>
128 1.1 sommerfe #include <dev/ic/awireg.h>
129 1.1 sommerfe #include <dev/ic/awivar.h>
130 1.10 onoe
131 1.36.2.1 fvdl static int awi_init(struct ifnet *);
132 1.36.2.1 fvdl static void awi_stop(struct ifnet *, int);
133 1.36.2.1 fvdl static void awi_start(struct ifnet *);
134 1.36.2.1 fvdl static void awi_watchdog(struct ifnet *);
135 1.36.2.1 fvdl static int awi_ioctl(struct ifnet *, u_long, caddr_t);
136 1.36.2.1 fvdl static int awi_media_change(struct ifnet *);
137 1.36.2.1 fvdl static void awi_media_status(struct ifnet *, struct ifmediareq *);
138 1.36.2.1 fvdl static int awi_mode_init(struct awi_softc *);
139 1.36.2.1 fvdl static int awi_media_rate2opt(struct awi_softc *, int);
140 1.36.2.1 fvdl static int awi_media_opt2rate(struct awi_softc *, int);
141 1.36.2.1 fvdl static void awi_rx_int(struct awi_softc *);
142 1.36.2.1 fvdl static void awi_tx_int(struct awi_softc *);
143 1.36.2.1 fvdl static struct mbuf *awi_devget(struct awi_softc *, u_int32_t, u_int16_t);
144 1.36.2.1 fvdl static int awi_hw_init(struct awi_softc *);
145 1.36.2.1 fvdl static int awi_init_mibs(struct awi_softc *);
146 1.36.2.1 fvdl static int awi_chan_check(void *, u_char *);
147 1.36.2.1 fvdl static int awi_mib(struct awi_softc *, u_int8_t, u_int8_t, int);
148 1.36.2.1 fvdl static int awi_cmd(struct awi_softc *, u_int8_t, int);
149 1.36.2.1 fvdl static int awi_cmd_wait(struct awi_softc *);
150 1.36.2.1 fvdl static void awi_cmd_done(struct awi_softc *);
151 1.36.2.1 fvdl static int awi_next_txd(struct awi_softc *, int, u_int32_t *, u_int32_t *);
152 1.36.2.1 fvdl static int awi_lock(struct awi_softc *);
153 1.36.2.1 fvdl static void awi_unlock(struct awi_softc *);
154 1.36.2.1 fvdl static int awi_intr_lock(struct awi_softc *);
155 1.36.2.1 fvdl static void awi_intr_unlock(struct awi_softc *);
156 1.36.2.1 fvdl static int awi_newstate(void *, enum ieee80211_state);
157 1.36.2.1 fvdl static struct mbuf *awi_ether_encap(struct awi_softc *, struct mbuf *);
158 1.36.2.1 fvdl static struct mbuf *awi_ether_modcap(struct awi_softc *, struct mbuf *);
159 1.36.2.1 fvdl
160 1.36.2.1 fvdl /* unalligned little endian access */
161 1.36.2.1 fvdl #define LE_READ_2(p) \
162 1.36.2.1 fvdl ((((u_int8_t *)(p))[0] ) | (((u_int8_t *)(p))[1] << 8))
163 1.36.2.1 fvdl #define LE_READ_4(p) \
164 1.36.2.1 fvdl ((((u_int8_t *)(p))[0] ) | (((u_int8_t *)(p))[1] << 8) | \
165 1.36.2.1 fvdl (((u_int8_t *)(p))[2] << 16) | (((u_int8_t *)(p))[3] << 24))
166 1.36.2.1 fvdl #define LE_WRITE_2(p, v) \
167 1.36.2.1 fvdl ((((u_int8_t *)(p))[0] = (((u_int32_t)(v) ) & 0xff)), \
168 1.36.2.1 fvdl (((u_int8_t *)(p))[1] = (((u_int32_t)(v) >> 8) & 0xff)))
169 1.36.2.1 fvdl #define LE_WRITE_4(p, v) \
170 1.36.2.1 fvdl ((((u_int8_t *)(p))[0] = (((u_int32_t)(v) ) & 0xff)), \
171 1.36.2.1 fvdl (((u_int8_t *)(p))[1] = (((u_int32_t)(v) >> 8) & 0xff)), \
172 1.36.2.1 fvdl (((u_int8_t *)(p))[2] = (((u_int32_t)(v) >> 16) & 0xff)), \
173 1.36.2.1 fvdl (((u_int8_t *)(p))[3] = (((u_int32_t)(v) >> 24) & 0xff)))
174 1.36.2.1 fvdl
175 1.36.2.1 fvdl struct awi_chanset awi_chanset[] = {
176 1.36.2.1 fvdl /* PHY type domain min max def */
177 1.36.2.1 fvdl { AWI_PHY_TYPE_FH, AWI_REG_DOMAIN_JP, 6, 17, 6 },
178 1.36.2.1 fvdl { AWI_PHY_TYPE_FH, AWI_REG_DOMAIN_ES, 0, 26, 1 },
179 1.36.2.1 fvdl { AWI_PHY_TYPE_FH, AWI_REG_DOMAIN_FR, 0, 32, 1 },
180 1.36.2.1 fvdl { AWI_PHY_TYPE_FH, AWI_REG_DOMAIN_US, 0, 77, 1 },
181 1.36.2.1 fvdl { AWI_PHY_TYPE_FH, AWI_REG_DOMAIN_CA, 0, 77, 1 },
182 1.36.2.1 fvdl { AWI_PHY_TYPE_FH, AWI_REG_DOMAIN_EU, 0, 77, 1 },
183 1.36.2.1 fvdl { AWI_PHY_TYPE_DS, AWI_REG_DOMAIN_JP, 14, 14, 14 },
184 1.36.2.1 fvdl { AWI_PHY_TYPE_DS, AWI_REG_DOMAIN_ES, 10, 11, 10 },
185 1.36.2.1 fvdl { AWI_PHY_TYPE_DS, AWI_REG_DOMAIN_FR, 10, 13, 10 },
186 1.36.2.1 fvdl { AWI_PHY_TYPE_DS, AWI_REG_DOMAIN_US, 1, 11, 3 },
187 1.36.2.1 fvdl { AWI_PHY_TYPE_DS, AWI_REG_DOMAIN_CA, 1, 11, 3 },
188 1.36.2.1 fvdl { AWI_PHY_TYPE_DS, AWI_REG_DOMAIN_EU, 1, 13, 3 },
189 1.36.2.1 fvdl { 0, 0 }
190 1.36.2.1 fvdl };
191 1.10 onoe
192 1.10 onoe #ifdef AWI_DEBUG
193 1.36.2.1 fvdl int awi_debug;
194 1.1 sommerfe
195 1.36.2.1 fvdl #define DPRINTF(X) if (awi_debug) printf X
196 1.36.2.1 fvdl #define DPRINTF2(X) if (awi_debug > 1) printf X
197 1.10 onoe #else
198 1.36.2.1 fvdl #define DPRINTF(X)
199 1.36.2.1 fvdl #define DPRINTF2(X)
200 1.10 onoe #endif
201 1.1 sommerfe
202 1.10 onoe int
203 1.36.2.1 fvdl awi_attach(struct awi_softc *sc)
204 1.1 sommerfe {
205 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
206 1.36.2.1 fvdl struct ifnet *ifp = &ic->ic_if;
207 1.36.2.1 fvdl int s, i, error, nrate;
208 1.10 onoe int mword;
209 1.10 onoe struct ifmediareq imr;
210 1.1 sommerfe
211 1.10 onoe s = splnet();
212 1.10 onoe sc->sc_busy = 1;
213 1.36.2.1 fvdl ic->ic_state = IEEE80211_S_INIT;
214 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
215 1.36.2.1 fvdl if ((error = awi_hw_init(sc)) != 0) {
216 1.10 onoe sc->sc_invalid = 1;
217 1.10 onoe splx(s);
218 1.10 onoe return error;
219 1.10 onoe }
220 1.10 onoe error = awi_init_mibs(sc);
221 1.36.2.1 fvdl if (error != 0) {
222 1.10 onoe sc->sc_invalid = 1;
223 1.36.2.1 fvdl splx(s);
224 1.10 onoe return error;
225 1.10 onoe }
226 1.10 onoe ifp->if_softc = sc;
227 1.36.2.1 fvdl ifp->if_flags =
228 1.36.2.1 fvdl IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST | IFF_NOTRAILERS;
229 1.10 onoe ifp->if_ioctl = awi_ioctl;
230 1.36.2.1 fvdl ifp->if_start = awi_start;
231 1.35 onoe ifp->if_init = awi_init;
232 1.35 onoe ifp->if_stop = awi_stop;
233 1.36.2.1 fvdl ifp->if_watchdog = awi_watchdog;
234 1.29 thorpej IFQ_SET_READY(&ifp->if_snd);
235 1.36.2.1 fvdl memcpy(ifp->if_xname, sc->sc_dev.dv_xname, IFNAMSIZ);
236 1.36.2.1 fvdl
237 1.36.2.1 fvdl ic->ic_flags = IEEE80211_F_HASWEP | IEEE80211_F_HASIBSS;
238 1.36.2.1 fvdl ic->ic_newstate = awi_newstate;
239 1.36.2.1 fvdl ic->ic_chancheck = awi_chan_check;
240 1.36.2.1 fvdl nrate = sc->sc_mib_phy.aSuprt_Data_Rates[1];
241 1.36.2.1 fvdl memcpy(ic->ic_sup_rates, sc->sc_mib_phy.aSuprt_Data_Rates + 2, nrate);
242 1.36.2.1 fvdl memcpy(ic->ic_myaddr, sc->sc_mib_addr.aMAC_Address, IEEE80211_ADDR_LEN);
243 1.1 sommerfe
244 1.18 onoe printf("%s: IEEE802.11 %s %dMbps (firmware %s)\n",
245 1.10 onoe sc->sc_dev.dv_xname,
246 1.10 onoe sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_FH ? "FH" : "DS",
247 1.36.2.1 fvdl (ic->ic_sup_rates[nrate - 1] & IEEE80211_RATE_VAL) / 2,
248 1.36.2.1 fvdl sc->sc_banner);
249 1.36.2.1 fvdl printf("%s: 802.11 address: %s\n", sc->sc_dev.dv_xname,
250 1.36.2.1 fvdl ether_sprintf(ic->ic_myaddr));
251 1.36.2.1 fvdl
252 1.10 onoe if_attach(ifp);
253 1.36.2.1 fvdl ieee80211_ifattach(ifp);
254 1.1 sommerfe
255 1.10 onoe ifmedia_init(&sc->sc_media, 0, awi_media_change, awi_media_status);
256 1.36.2.1 fvdl mword = IFM_MAKEWORD(IFM_IEEE80211, IFM_AUTO, 0, 0);
257 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword, 0, NULL);
258 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword | IFM_FLAG0, 0, NULL);
259 1.36.2.1 fvdl mword |= IFM_IEEE80211_ADHOC;
260 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword, 0, NULL);
261 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword | IFM_FLAG0, 0, NULL);
262 1.36.2.1 fvdl for (i = 0; i < nrate; i++) {
263 1.36.2.1 fvdl mword = awi_media_rate2opt(sc, ic->ic_sup_rates[i]);
264 1.10 onoe if (mword == 0)
265 1.10 onoe continue;
266 1.10 onoe mword |= IFM_IEEE80211;
267 1.10 onoe ifmedia_add(&sc->sc_media, mword, 0, NULL);
268 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword | IFM_FLAG0, 0, NULL);
269 1.36.2.1 fvdl mword |= IFM_IEEE80211_ADHOC;
270 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword, 0, NULL);
271 1.20 onoe if (sc->sc_mib_phy.IEEE_PHY_Type != AWI_PHY_TYPE_FH)
272 1.36.2.1 fvdl ifmedia_add(&sc->sc_media, mword | IFM_FLAG0, 0, NULL);
273 1.1 sommerfe }
274 1.10 onoe awi_media_status(ifp, &imr);
275 1.10 onoe ifmedia_set(&sc->sc_media, imr.ifm_active);
276 1.36.2.1 fvdl
277 1.36.2.1 fvdl if ((sc->sc_sdhook = shutdownhook_establish(awi_shutdown, sc)) == NULL)
278 1.36.2.1 fvdl printf("%s: WARNING: unable to establish shutdown hook\n",
279 1.36.2.1 fvdl sc->sc_dev.dv_xname);
280 1.36.2.1 fvdl if ((sc->sc_powerhook = powerhook_establish(awi_power, sc)) == NULL)
281 1.36.2.1 fvdl printf("%s: WARNING: unable to establish power hook\n",
282 1.36.2.1 fvdl sc->sc_dev.dv_xname);
283 1.36.2.1 fvdl sc->sc_attached = 1;
284 1.36.2.1 fvdl splx(s);
285 1.1 sommerfe
286 1.10 onoe /* ready to accept ioctl */
287 1.10 onoe awi_unlock(sc);
288 1.17 jhawk
289 1.10 onoe return 0;
290 1.1 sommerfe }
291 1.1 sommerfe
292 1.10 onoe int
293 1.36.2.1 fvdl awi_detach(struct awi_softc *sc)
294 1.1 sommerfe {
295 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
296 1.10 onoe int s;
297 1.17 jhawk
298 1.17 jhawk if (!sc->sc_attached)
299 1.36.2.1 fvdl return 0;
300 1.1 sommerfe
301 1.10 onoe s = splnet();
302 1.10 onoe sc->sc_invalid = 1;
303 1.35 onoe awi_stop(ifp, 1);
304 1.10 onoe while (sc->sc_sleep_cnt > 0) {
305 1.10 onoe wakeup(sc);
306 1.10 onoe (void)tsleep(sc, PWAIT, "awidet", 1);
307 1.1 sommerfe }
308 1.10 onoe ifmedia_delete_instance(&sc->sc_media, IFM_INST_ANY);
309 1.36.2.1 fvdl ieee80211_ifdetach(ifp);
310 1.10 onoe if_detach(ifp);
311 1.36.2.1 fvdl shutdownhook_disestablish(sc->sc_sdhook);
312 1.36.2.1 fvdl powerhook_disestablish(sc->sc_powerhook);
313 1.10 onoe splx(s);
314 1.10 onoe return 0;
315 1.1 sommerfe }
316 1.1 sommerfe
317 1.1 sommerfe int
318 1.36.2.1 fvdl awi_activate(struct device *self, enum devact act)
319 1.1 sommerfe {
320 1.10 onoe struct awi_softc *sc = (struct awi_softc *)self;
321 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
322 1.10 onoe int s, error = 0;
323 1.10 onoe
324 1.10 onoe s = splnet();
325 1.10 onoe switch (act) {
326 1.10 onoe case DVACT_ACTIVATE:
327 1.10 onoe error = EOPNOTSUPP;
328 1.10 onoe break;
329 1.10 onoe case DVACT_DEACTIVATE:
330 1.10 onoe sc->sc_invalid = 1;
331 1.36.2.1 fvdl if_deactivate(ifp);
332 1.10 onoe break;
333 1.1 sommerfe }
334 1.10 onoe splx(s);
335 1.10 onoe return error;
336 1.1 sommerfe }
337 1.1 sommerfe
338 1.1 sommerfe void
339 1.36.2.1 fvdl awi_power(int why, void *arg)
340 1.1 sommerfe {
341 1.36.2.1 fvdl struct awi_softc *sc = arg;
342 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
343 1.10 onoe int s;
344 1.18 onoe int ocansleep;
345 1.10 onoe
346 1.36.2.1 fvdl DPRINTF(("awi_power: %d\n", why));
347 1.10 onoe s = splnet();
348 1.18 onoe ocansleep = sc->sc_cansleep;
349 1.18 onoe sc->sc_cansleep = 0;
350 1.28 takemura switch (why) {
351 1.28 takemura case PWR_SUSPEND:
352 1.28 takemura case PWR_STANDBY:
353 1.35 onoe awi_stop(ifp, 1);
354 1.28 takemura break;
355 1.28 takemura case PWR_RESUME:
356 1.35 onoe if (ifp->if_flags & IFF_UP) {
357 1.35 onoe awi_init(ifp);
358 1.36.2.1 fvdl (void)awi_intr(sc); /* make sure */
359 1.34 onoe }
360 1.28 takemura break;
361 1.28 takemura case PWR_SOFTSUSPEND:
362 1.28 takemura case PWR_SOFTSTANDBY:
363 1.28 takemura case PWR_SOFTRESUME:
364 1.28 takemura break;
365 1.18 onoe }
366 1.18 onoe sc->sc_cansleep = ocansleep;
367 1.10 onoe splx(s);
368 1.1 sommerfe }
369 1.1 sommerfe
370 1.36.2.1 fvdl void
371 1.36.2.1 fvdl awi_shutdown(void *arg)
372 1.1 sommerfe {
373 1.36.2.1 fvdl struct awi_softc *sc = arg;
374 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
375 1.1 sommerfe
376 1.36.2.1 fvdl if (sc->sc_attached)
377 1.36.2.1 fvdl awi_stop(ifp, 1);
378 1.1 sommerfe }
379 1.1 sommerfe
380 1.1 sommerfe int
381 1.36.2.1 fvdl awi_intr(void *arg)
382 1.1 sommerfe {
383 1.1 sommerfe struct awi_softc *sc = arg;
384 1.10 onoe u_int16_t status;
385 1.10 onoe int error, handled = 0, ocansleep;
386 1.36.2.1 fvdl #ifdef AWI_DEBUG
387 1.36.2.1 fvdl static const char *intname[] = {
388 1.36.2.1 fvdl "CMD", "RX", "TX", "SCAN_CMPLT",
389 1.36.2.1 fvdl "CFP_START", "DTIM", "CFP_ENDING", "GROGGY",
390 1.36.2.1 fvdl "TXDATA", "TXBCAST", "TXPS", "TXCF",
391 1.36.2.1 fvdl "TXMGT", "#13", "RXDATA", "RXMGT"
392 1.36.2.1 fvdl };
393 1.36.2.1 fvdl #endif
394 1.1 sommerfe
395 1.15 onoe if (!sc->sc_enabled || !sc->sc_enab_intr || sc->sc_invalid)
396 1.10 onoe return 0;
397 1.1 sommerfe
398 1.10 onoe am79c930_gcr_setbits(&sc->sc_chip,
399 1.10 onoe AM79C930_GCR_DISPWDN | AM79C930_GCR_ECINT);
400 1.1 sommerfe awi_write_1(sc, AWI_DIS_PWRDN, 1);
401 1.10 onoe ocansleep = sc->sc_cansleep;
402 1.10 onoe sc->sc_cansleep = 0;
403 1.10 onoe
404 1.1 sommerfe for (;;) {
405 1.36.2.1 fvdl if ((error = awi_intr_lock(sc)) != 0)
406 1.10 onoe break;
407 1.10 onoe status = awi_read_1(sc, AWI_INTSTAT);
408 1.10 onoe awi_write_1(sc, AWI_INTSTAT, 0);
409 1.10 onoe awi_write_1(sc, AWI_INTSTAT, 0);
410 1.10 onoe status |= awi_read_1(sc, AWI_INTSTAT2) << 8;
411 1.10 onoe awi_write_1(sc, AWI_INTSTAT2, 0);
412 1.10 onoe DELAY(10);
413 1.10 onoe awi_intr_unlock(sc);
414 1.10 onoe if (!sc->sc_cmd_inprog)
415 1.10 onoe status &= ~AWI_INT_CMD; /* make sure */
416 1.10 onoe if (status == 0)
417 1.1 sommerfe break;
418 1.36.2.1 fvdl #ifdef AWI_DEBUG
419 1.36.2.1 fvdl if (awi_debug > 1) {
420 1.36.2.1 fvdl int i;
421 1.36.2.1 fvdl
422 1.36.2.1 fvdl printf("awi_intr: status 0x%04x", status);
423 1.36.2.1 fvdl for (i = 0; i < sizeof(intname)/sizeof(intname[0]);
424 1.36.2.1 fvdl i++) {
425 1.36.2.1 fvdl if (status & (1 << i))
426 1.36.2.1 fvdl printf(" %s", intname[i]);
427 1.36.2.1 fvdl }
428 1.36.2.1 fvdl printf("\n");
429 1.36.2.1 fvdl }
430 1.36.2.1 fvdl #endif
431 1.1 sommerfe handled = 1;
432 1.10 onoe if (status & AWI_INT_RX)
433 1.36.2.1 fvdl awi_rx_int(sc);
434 1.10 onoe if (status & AWI_INT_TX)
435 1.36.2.1 fvdl awi_tx_int(sc);
436 1.10 onoe if (status & AWI_INT_CMD)
437 1.10 onoe awi_cmd_done(sc);
438 1.10 onoe if (status & AWI_INT_SCAN_CMPLT) {
439 1.36.2.1 fvdl if (sc->sc_ic.ic_state == IEEE80211_S_SCAN)
440 1.36.2.1 fvdl ieee80211_next_scan(&sc->sc_ic.ic_if);
441 1.1 sommerfe }
442 1.1 sommerfe }
443 1.10 onoe sc->sc_cansleep = ocansleep;
444 1.1 sommerfe am79c930_gcr_clearbits(&sc->sc_chip, AM79C930_GCR_DISPWDN);
445 1.1 sommerfe awi_write_1(sc, AWI_DIS_PWRDN, 0);
446 1.1 sommerfe return handled;
447 1.1 sommerfe }
448 1.1 sommerfe
449 1.36.2.1 fvdl static int
450 1.36.2.1 fvdl awi_init(struct ifnet *ifp)
451 1.8 sommerfe {
452 1.35 onoe struct awi_softc *sc = ifp->if_softc;
453 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
454 1.36.2.1 fvdl struct ieee80211_bss *bs = &ic->ic_bss;
455 1.36.2.1 fvdl int i, error;
456 1.8 sommerfe
457 1.36.2.1 fvdl DPRINTF(("awi_init: enabled=%d\n", sc->sc_enabled));
458 1.36.2.1 fvdl if (sc->sc_enabled) {
459 1.36.2.1 fvdl awi_stop(ifp, 0);
460 1.36.2.1 fvdl } else {
461 1.10 onoe if (sc->sc_enable)
462 1.10 onoe (*sc->sc_enable)(sc);
463 1.36.2.1 fvdl sc->sc_enabled = 1;
464 1.36.2.1 fvdl if ((error = awi_hw_init(sc)) != 0) {
465 1.35 onoe awi_stop(ifp, 1);
466 1.10 onoe return error;
467 1.35 onoe }
468 1.10 onoe }
469 1.36.2.1 fvdl ic->ic_state = IEEE80211_S_INIT;
470 1.36.2.1 fvdl
471 1.36.2.1 fvdl sc->sc_mib_local.Network_Mode =
472 1.36.2.1 fvdl (ic->ic_flags & IEEE80211_F_ADHOC) ? 0 : 1;
473 1.36.2.1 fvdl
474 1.36.2.1 fvdl if ((error = awi_mode_init(sc)) != 0) {
475 1.36.2.1 fvdl DPRINTF(("awi_init: awi_mode_init failed %d\n", error));
476 1.35 onoe awi_stop(ifp, 1);
477 1.10 onoe return error;
478 1.10 onoe }
479 1.8 sommerfe
480 1.36.2.1 fvdl /* start transmitter */
481 1.36.2.1 fvdl sc->sc_txdone = sc->sc_txnext = sc->sc_txbase;
482 1.36.2.1 fvdl awi_write_4(sc, sc->sc_txbase + AWI_TXD_START, 0);
483 1.36.2.1 fvdl awi_write_4(sc, sc->sc_txbase + AWI_TXD_NEXT, 0);
484 1.36.2.1 fvdl awi_write_4(sc, sc->sc_txbase + AWI_TXD_LENGTH, 0);
485 1.36.2.1 fvdl awi_write_1(sc, sc->sc_txbase + AWI_TXD_RATE, 0);
486 1.36.2.1 fvdl awi_write_4(sc, sc->sc_txbase + AWI_TXD_NDA, 0);
487 1.36.2.1 fvdl awi_write_4(sc, sc->sc_txbase + AWI_TXD_NRA, 0);
488 1.36.2.1 fvdl awi_write_1(sc, sc->sc_txbase + AWI_TXD_STATE, 0);
489 1.36.2.1 fvdl awi_write_4(sc, AWI_CA_TX_DATA, sc->sc_txbase);
490 1.36.2.1 fvdl awi_write_4(sc, AWI_CA_TX_MGT, 0);
491 1.36.2.1 fvdl awi_write_4(sc, AWI_CA_TX_BCAST, 0);
492 1.36.2.1 fvdl awi_write_4(sc, AWI_CA_TX_PS, 0);
493 1.36.2.1 fvdl awi_write_4(sc, AWI_CA_TX_CF, 0);
494 1.36.2.1 fvdl if ((error = awi_cmd(sc, AWI_CMD_INIT_TX, AWI_WAIT)) != 0) {
495 1.36.2.1 fvdl DPRINTF(("awi_init: failed to start transmitter: %d\n", error));
496 1.36.2.1 fvdl awi_stop(ifp, 1);
497 1.36.2.1 fvdl return error;
498 1.10 onoe }
499 1.36.2.1 fvdl
500 1.36.2.1 fvdl /* start receiver */
501 1.36.2.1 fvdl if ((error = awi_cmd(sc, AWI_CMD_INIT_RX, AWI_WAIT)) != 0) {
502 1.36.2.1 fvdl DPRINTF(("awi_init: failed to start receiver: %d\n", error));
503 1.36.2.1 fvdl awi_stop(ifp, 1);
504 1.36.2.1 fvdl return error;
505 1.35 onoe }
506 1.36.2.1 fvdl sc->sc_rxdoff = awi_read_4(sc, AWI_CA_IRX_DATA_DESC);
507 1.36.2.1 fvdl sc->sc_rxmoff = awi_read_4(sc, AWI_CA_IRX_PS_DESC);
508 1.36.2.1 fvdl
509 1.36.2.1 fvdl ifp->if_flags |= IFF_RUNNING;
510 1.36.2.1 fvdl ifp->if_flags &= ~IFF_OACTIVE;
511 1.36.2.1 fvdl
512 1.36.2.1 fvdl if ((sc->sc_ic.ic_flags & IEEE80211_F_ADHOC) && sc->sc_no_bssid) {
513 1.36.2.1 fvdl bs->bs_chan = ic->ic_ibss_chan;
514 1.36.2.1 fvdl bs->bs_intval = ic->ic_lintval;
515 1.36.2.1 fvdl bs->bs_nrate = 0;
516 1.36.2.1 fvdl for (i = 0; i < IEEE80211_RATE_SIZE; i++) {
517 1.36.2.1 fvdl if (ic->ic_sup_rates[i])
518 1.36.2.1 fvdl bs->bs_rates[bs->bs_nrate++] =
519 1.36.2.1 fvdl ic->ic_sup_rates[i];
520 1.36.2.1 fvdl }
521 1.36.2.1 fvdl memcpy(bs->bs_macaddr, ic->ic_myaddr, IEEE80211_ADDR_LEN);
522 1.36.2.1 fvdl memset(bs->bs_bssid, 0, IEEE80211_ADDR_LEN);
523 1.36.2.1 fvdl bs->bs_esslen = 0;
524 1.36.2.1 fvdl ic->ic_flags |= IEEE80211_F_SIBSS;
525 1.36.2.1 fvdl ic->ic_state = IEEE80211_S_SCAN; /*XXX*/
526 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
527 1.36.2.1 fvdl ieee80211_new_state(&ic->ic_if, IEEE80211_S_RUN, -1);
528 1.36.2.1 fvdl } else {
529 1.36.2.1 fvdl bs->bs_chan = sc->sc_cur_chan;
530 1.36.2.1 fvdl ieee80211_new_state(&ic->ic_if, IEEE80211_S_SCAN, -1);
531 1.18 onoe }
532 1.36.2.1 fvdl return 0;
533 1.1 sommerfe }
534 1.1 sommerfe
535 1.10 onoe static void
536 1.36.2.1 fvdl awi_stop(struct ifnet *ifp, int disable)
537 1.1 sommerfe {
538 1.1 sommerfe struct awi_softc *sc = ifp->if_softc;
539 1.1 sommerfe
540 1.36.2.1 fvdl if (!sc->sc_enabled)
541 1.1 sommerfe return;
542 1.1 sommerfe
543 1.36.2.1 fvdl DPRINTF(("awi_stop(%d)\n", disable));
544 1.36.2.1 fvdl
545 1.36.2.1 fvdl ieee80211_new_state(&sc->sc_ic.ic_if, IEEE80211_S_INIT, -1);
546 1.36.2.1 fvdl
547 1.36.2.1 fvdl if (!sc->sc_invalid) {
548 1.36.2.1 fvdl if (sc->sc_cmd_inprog)
549 1.36.2.1 fvdl (void)awi_cmd_wait(sc);
550 1.36.2.1 fvdl (void)awi_cmd(sc, AWI_CMD_KILL_RX, AWI_WAIT);
551 1.36.2.1 fvdl sc->sc_cmd_inprog = AWI_CMD_FLUSH_TX;
552 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_FTX_DATA, 1);
553 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_FTX_MGT, 0);
554 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_FTX_BCAST, 0);
555 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_FTX_PS, 0);
556 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_FTX_CF, 0);
557 1.36.2.1 fvdl (void)awi_cmd(sc, AWI_CMD_FLUSH_TX, AWI_WAIT);
558 1.36.2.1 fvdl }
559 1.36.2.1 fvdl ifp->if_flags &= ~(IFF_RUNNING|IFF_OACTIVE);
560 1.36.2.1 fvdl ifp->if_timer = 0;
561 1.36.2.1 fvdl sc->sc_tx_timer = sc->sc_rx_timer = 0;
562 1.36.2.1 fvdl if (sc->sc_rxpend != NULL) {
563 1.36.2.1 fvdl m_freem(sc->sc_rxpend);
564 1.36.2.1 fvdl sc->sc_rxpend = NULL;
565 1.1 sommerfe }
566 1.36.2.1 fvdl IFQ_PURGE(&ifp->if_snd);
567 1.1 sommerfe
568 1.36.2.1 fvdl if (disable) {
569 1.36.2.1 fvdl if (sc->sc_disable)
570 1.36.2.1 fvdl (*sc->sc_disable)(sc);
571 1.36.2.1 fvdl sc->sc_enabled = 0;
572 1.36.2.1 fvdl }
573 1.1 sommerfe }
574 1.1 sommerfe
575 1.10 onoe static void
576 1.36.2.1 fvdl awi_start(struct ifnet *ifp)
577 1.1 sommerfe {
578 1.1 sommerfe struct awi_softc *sc = ifp->if_softc;
579 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
580 1.36.2.1 fvdl struct mbuf *m, *m0;
581 1.36.2.1 fvdl int len;
582 1.10 onoe u_int32_t txd, frame, ntxd;
583 1.10 onoe u_int8_t rate;
584 1.36.2.1 fvdl
585 1.36.2.1 fvdl if (!sc->sc_enabled || sc->sc_invalid)
586 1.36.2.1 fvdl return;
587 1.1 sommerfe
588 1.10 onoe for (;;) {
589 1.10 onoe txd = sc->sc_txnext;
590 1.36.2.1 fvdl IF_POLL(&ic->ic_mgtq, m0);
591 1.10 onoe if (m0 != NULL) {
592 1.10 onoe if (awi_next_txd(sc, m0->m_pkthdr.len, &frame, &ntxd)) {
593 1.10 onoe ifp->if_flags |= IFF_OACTIVE;
594 1.10 onoe break;
595 1.10 onoe }
596 1.36.2.1 fvdl IF_DEQUEUE(&ic->ic_mgtq, m0);
597 1.10 onoe } else {
598 1.36.2.1 fvdl if (ic->ic_state != IEEE80211_S_RUN)
599 1.10 onoe break;
600 1.29 thorpej IFQ_POLL(&ifp->if_snd, m0);
601 1.10 onoe if (m0 == NULL)
602 1.10 onoe break;
603 1.36.2.1 fvdl /*
604 1.36.2.1 fvdl * Need to calculate the real length to determine
605 1.36.2.1 fvdl * if the transmit buffer has a room for the packet.
606 1.36.2.1 fvdl */
607 1.18 onoe len = m0->m_pkthdr.len + sizeof(struct ieee80211_frame);
608 1.36.2.1 fvdl if (!(ifp->if_flags & IFF_LINK0) && !sc->sc_adhoc_ap)
609 1.18 onoe len += sizeof(struct llc) -
610 1.18 onoe sizeof(struct ether_header);
611 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_WEPON)
612 1.18 onoe len += IEEE80211_WEP_IVLEN +
613 1.18 onoe IEEE80211_WEP_KIDLEN + IEEE80211_WEP_CRCLEN;
614 1.18 onoe if (awi_next_txd(sc, len, &frame, &ntxd)) {
615 1.10 onoe ifp->if_flags |= IFF_OACTIVE;
616 1.1 sommerfe break;
617 1.10 onoe }
618 1.29 thorpej IFQ_DEQUEUE(&ifp->if_snd, m0);
619 1.36.2.1 fvdl ifp->if_opackets++;
620 1.36.2.1 fvdl #if NBPFILTER > 0
621 1.36.2.1 fvdl if (ifp->if_bpf)
622 1.36.2.1 fvdl bpf_mtap(ifp->if_bpf, m0);
623 1.33 onoe #endif
624 1.36.2.1 fvdl if ((ifp->if_flags & IFF_LINK0) || sc->sc_adhoc_ap)
625 1.36.2.1 fvdl m0 = awi_ether_encap(sc, m0);
626 1.36.2.1 fvdl else
627 1.36.2.1 fvdl m0 = ieee80211_encap(ifp, m0);
628 1.36.2.1 fvdl if ((ic->ic_flags & IEEE80211_F_WEPON) && m0 != NULL)
629 1.36.2.1 fvdl m0 = ieee80211_wep_crypt(ifp, m0, 1);
630 1.10 onoe if (m0 == NULL) {
631 1.10 onoe ifp->if_oerrors++;
632 1.10 onoe continue;
633 1.10 onoe }
634 1.36.2.1 fvdl #ifdef DIAGNOSTIC
635 1.36.2.1 fvdl if (m0->m_pkthdr.len != len) {
636 1.36.2.1 fvdl printf("%s: length %d should be %d\n",
637 1.36.2.1 fvdl ifp->if_xname, m0->m_pkthdr.len, len);
638 1.36.2.1 fvdl m_freem(m0);
639 1.36.2.1 fvdl ifp->if_oerrors++;
640 1.36.2.1 fvdl continue;
641 1.36.2.1 fvdl }
642 1.36.2.1 fvdl #endif
643 1.1 sommerfe }
644 1.36.2.1 fvdl
645 1.36.2.1 fvdl if ((ifp->if_flags & IFF_DEBUG) && (ifp->if_flags & IFF_LINK2))
646 1.36.2.1 fvdl ieee80211_dump_pkt(m0->m_data, m0->m_len,
647 1.36.2.1 fvdl ic->ic_bss.bs_rates[ic->ic_bss.bs_txrate] &
648 1.36.2.1 fvdl IEEE80211_RATE_VAL, -1);
649 1.36.2.1 fvdl
650 1.36.2.1 fvdl for (m = m0, len = 0; m != NULL; m = m->m_next) {
651 1.10 onoe awi_write_bytes(sc, frame + len, mtod(m, u_int8_t *),
652 1.10 onoe m->m_len);
653 1.10 onoe len += m->m_len;
654 1.4 sommerfe }
655 1.10 onoe m_freem(m0);
656 1.36.2.1 fvdl rate = (ic->ic_bss.bs_rates[ic->ic_bss.bs_txrate] &
657 1.36.2.1 fvdl IEEE80211_RATE_VAL) * 5;
658 1.10 onoe awi_write_1(sc, ntxd + AWI_TXD_STATE, 0);
659 1.10 onoe awi_write_4(sc, txd + AWI_TXD_START, frame);
660 1.10 onoe awi_write_4(sc, txd + AWI_TXD_NEXT, ntxd);
661 1.10 onoe awi_write_4(sc, txd + AWI_TXD_LENGTH, len);
662 1.10 onoe awi_write_1(sc, txd + AWI_TXD_RATE, rate);
663 1.10 onoe awi_write_4(sc, txd + AWI_TXD_NDA, 0);
664 1.10 onoe awi_write_4(sc, txd + AWI_TXD_NRA, 0);
665 1.10 onoe awi_write_1(sc, txd + AWI_TXD_STATE, AWI_TXD_ST_OWN);
666 1.10 onoe sc->sc_txnext = ntxd;
667 1.36.2.1 fvdl
668 1.36.2.1 fvdl sc->sc_tx_timer = 5;
669 1.10 onoe ifp->if_timer = 1;
670 1.1 sommerfe }
671 1.1 sommerfe }
672 1.1 sommerfe
673 1.10 onoe static void
674 1.36.2.1 fvdl awi_watchdog(struct ifnet *ifp)
675 1.1 sommerfe {
676 1.36.2.1 fvdl struct awi_softc *sc = ifp->if_softc;
677 1.36.2.1 fvdl u_int32_t prevdone;
678 1.36.2.1 fvdl int ocansleep;
679 1.9 sommerfe
680 1.36.2.1 fvdl ifp->if_timer = 0;
681 1.36.2.1 fvdl if (!sc->sc_enabled || sc->sc_invalid)
682 1.36.2.1 fvdl return;
683 1.36.2.1 fvdl
684 1.36.2.1 fvdl ocansleep = sc->sc_cansleep;
685 1.36.2.1 fvdl sc->sc_cansleep = 0;
686 1.36.2.1 fvdl if (sc->sc_tx_timer) {
687 1.36.2.1 fvdl if (--sc->sc_tx_timer == 0) {
688 1.36.2.1 fvdl printf("%s: device timeout\n", ifp->if_xname);
689 1.36.2.1 fvdl prevdone = sc->sc_txdone;
690 1.36.2.1 fvdl awi_tx_int(sc);
691 1.36.2.1 fvdl if (sc->sc_txdone == prevdone) {
692 1.36.2.1 fvdl ifp->if_oerrors++;
693 1.36.2.1 fvdl awi_init(ifp);
694 1.36.2.1 fvdl goto out;
695 1.36.2.1 fvdl }
696 1.36.2.1 fvdl }
697 1.36.2.1 fvdl ifp->if_timer = 1;
698 1.10 onoe }
699 1.36.2.1 fvdl if (sc->sc_rx_timer) {
700 1.36.2.1 fvdl if (--sc->sc_rx_timer == 0) {
701 1.36.2.1 fvdl if (sc->sc_ic.ic_state == IEEE80211_S_RUN) {
702 1.36.2.1 fvdl ieee80211_new_state(ifp, IEEE80211_S_SCAN, -1);
703 1.36.2.1 fvdl goto out;
704 1.36.2.1 fvdl }
705 1.36.2.1 fvdl } else
706 1.36.2.1 fvdl ifp->if_timer = 1;
707 1.36.2.1 fvdl }
708 1.36.2.1 fvdl /* TODO: rate control */
709 1.36.2.1 fvdl ieee80211_watchdog(ifp);
710 1.36.2.1 fvdl out:
711 1.36.2.1 fvdl sc->sc_cansleep = ocansleep;
712 1.10 onoe }
713 1.9 sommerfe
714 1.36.2.1 fvdl static int
715 1.36.2.1 fvdl awi_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
716 1.10 onoe {
717 1.36.2.1 fvdl struct awi_softc *sc = ifp->if_softc;
718 1.36.2.1 fvdl struct ifreq *ifr = (struct ifreq *)data;
719 1.36.2.1 fvdl int s, error;
720 1.10 onoe
721 1.36.2.1 fvdl s = splnet();
722 1.36.2.1 fvdl /* serialize ioctl, since we may sleep */
723 1.36.2.1 fvdl if ((error = awi_lock(sc)) != 0)
724 1.36.2.1 fvdl goto cantlock;
725 1.1 sommerfe
726 1.36.2.1 fvdl switch (cmd) {
727 1.36.2.1 fvdl case SIOCSIFFLAGS:
728 1.36.2.1 fvdl if (ifp->if_flags & IFF_UP) {
729 1.36.2.1 fvdl if (sc->sc_enabled) {
730 1.36.2.1 fvdl /*
731 1.36.2.1 fvdl * To avoid rescanning another access point,
732 1.36.2.1 fvdl * do not call awi_init() here. Instead,
733 1.36.2.1 fvdl * only reflect promisc mode settings.
734 1.36.2.1 fvdl */
735 1.36.2.1 fvdl error = awi_mode_init(sc);
736 1.36.2.1 fvdl } else
737 1.36.2.1 fvdl error = awi_init(ifp);
738 1.36.2.1 fvdl } else if (sc->sc_enabled)
739 1.36.2.1 fvdl awi_stop(ifp, 1);
740 1.36.2.1 fvdl break;
741 1.36.2.1 fvdl case SIOCSIFMEDIA:
742 1.36.2.1 fvdl case SIOCGIFMEDIA:
743 1.36.2.1 fvdl error = ifmedia_ioctl(ifp, ifr, &sc->sc_media, cmd);
744 1.36.2.1 fvdl break;
745 1.36.2.1 fvdl case SIOCADDMULTI:
746 1.36.2.1 fvdl case SIOCDELMULTI:
747 1.36.2.1 fvdl error = (cmd == SIOCADDMULTI) ?
748 1.36.2.1 fvdl ether_addmulti(ifr, &sc->sc_ic.ic_ec) :
749 1.36.2.1 fvdl ether_delmulti(ifr, &sc->sc_ic.ic_ec);
750 1.36.2.1 fvdl if (error == ENETRESET) {
751 1.36.2.1 fvdl /* do not rescan */
752 1.36.2.1 fvdl if (sc->sc_enabled)
753 1.36.2.1 fvdl error = awi_mode_init(sc);
754 1.36.2.1 fvdl else
755 1.36.2.1 fvdl error = 0;
756 1.36.2.1 fvdl }
757 1.36.2.1 fvdl break;
758 1.36.2.1 fvdl default:
759 1.36.2.1 fvdl error = ieee80211_ioctl(ifp, cmd, data);
760 1.36.2.1 fvdl if (error == ENETRESET) {
761 1.36.2.1 fvdl if (sc->sc_enabled)
762 1.36.2.1 fvdl error = awi_init(ifp);
763 1.36.2.1 fvdl else
764 1.36.2.1 fvdl error = 0;
765 1.36.2.1 fvdl }
766 1.36.2.1 fvdl break;
767 1.1 sommerfe }
768 1.36.2.1 fvdl awi_unlock(sc);
769 1.36.2.1 fvdl cantlock:
770 1.36.2.1 fvdl splx(s);
771 1.36.2.1 fvdl return error;
772 1.10 onoe }
773 1.9 sommerfe
774 1.36.2.1 fvdl /*
775 1.36.2.1 fvdl * Called from ifmedia_ioctl via awi_ioctl with lock obtained.
776 1.36.2.1 fvdl */
777 1.36.2.1 fvdl static int
778 1.36.2.1 fvdl awi_media_change(struct ifnet *ifp)
779 1.10 onoe {
780 1.36.2.1 fvdl struct awi_softc *sc = ifp->if_softc;
781 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
782 1.36.2.1 fvdl struct ifmedia_entry *ime;
783 1.36.2.1 fvdl int i, rate, error = 0;
784 1.1 sommerfe
785 1.36.2.1 fvdl ime = sc->sc_media.ifm_cur;
786 1.36.2.1 fvdl if (IFM_SUBTYPE(ime->ifm_media) == IFM_AUTO) {
787 1.36.2.1 fvdl ic->ic_fixed_rate = -1;
788 1.36.2.1 fvdl } else {
789 1.36.2.1 fvdl rate = awi_media_opt2rate(sc, ime->ifm_media);
790 1.36.2.1 fvdl if (rate == 0)
791 1.36.2.1 fvdl return EINVAL;
792 1.36.2.1 fvdl for (i = 0; i < IEEE80211_RATE_SIZE; i++) {
793 1.36.2.1 fvdl if ((ic->ic_sup_rates[i] & IEEE80211_RATE_VAL) == rate)
794 1.36.2.1 fvdl break;
795 1.36.2.1 fvdl }
796 1.36.2.1 fvdl if (i == IEEE80211_RATE_SIZE)
797 1.36.2.1 fvdl return EINVAL;
798 1.36.2.1 fvdl ic->ic_fixed_rate = i;
799 1.10 onoe }
800 1.36.2.1 fvdl
801 1.36.2.1 fvdl /*
802 1.36.2.1 fvdl * ADHOC,-FLAG0 ADHOC, !no_bssid, !adhoc_ap IBSS
803 1.36.2.1 fvdl * ADHOC, FLAG0 ADHOC no_bssid, !adhoc_ap WaveLAN adhoc
804 1.36.2.1 fvdl * -ADHOC,-FLAG0 ~ADHOC, !no_bssid, !adhoc_ap Infra
805 1.36.2.1 fvdl * -ADHOC, FLAG0 ADHOC, !no_bssid, adhoc_ap Melco old AP
806 1.36.2.1 fvdl * also LINK0
807 1.36.2.1 fvdl */
808 1.36.2.1 fvdl if (ime->ifm_media & IFM_IEEE80211_ADHOC) {
809 1.36.2.1 fvdl if ((ic->ic_flags & IEEE80211_F_ADHOC) == 0) {
810 1.36.2.1 fvdl ic->ic_flags |= IEEE80211_F_ADHOC;
811 1.36.2.1 fvdl error = ENETRESET;
812 1.36.2.1 fvdl }
813 1.36.2.1 fvdl ic->ic_flags |= IEEE80211_F_IBSSON;
814 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type != AWI_PHY_TYPE_FH &&
815 1.36.2.1 fvdl (ime->ifm_media & IFM_FLAG0)) {
816 1.36.2.1 fvdl if (sc->sc_no_bssid == 0) {
817 1.36.2.1 fvdl sc->sc_no_bssid = 1;
818 1.36.2.1 fvdl error = ENETRESET;
819 1.36.2.1 fvdl }
820 1.36.2.1 fvdl } else {
821 1.36.2.1 fvdl if (sc->sc_no_bssid) {
822 1.36.2.1 fvdl sc->sc_no_bssid = 0;
823 1.36.2.1 fvdl error = ENETRESET;
824 1.36.2.1 fvdl }
825 1.36.2.1 fvdl }
826 1.36.2.1 fvdl if (sc->sc_adhoc_ap) {
827 1.36.2.1 fvdl sc->sc_adhoc_ap = 0;
828 1.36.2.1 fvdl error = ENETRESET;
829 1.10 onoe }
830 1.10 onoe } else {
831 1.36.2.1 fvdl ic->ic_flags &= ~IEEE80211_F_IBSSON;
832 1.36.2.1 fvdl if (sc->sc_no_bssid) {
833 1.36.2.1 fvdl sc->sc_no_bssid = 0;
834 1.36.2.1 fvdl error = ENETRESET;
835 1.36.2.1 fvdl }
836 1.36.2.1 fvdl if (ime->ifm_media & IFM_FLAG0) {
837 1.36.2.1 fvdl if ((ic->ic_flags & IEEE80211_F_ADHOC) == 0) {
838 1.36.2.1 fvdl ic->ic_flags |= IEEE80211_F_ADHOC;
839 1.36.2.1 fvdl error = ENETRESET;
840 1.36.2.1 fvdl }
841 1.36.2.1 fvdl if (!sc->sc_adhoc_ap) {
842 1.36.2.1 fvdl sc->sc_adhoc_ap = 1;
843 1.36.2.1 fvdl error = ENETRESET;
844 1.36.2.1 fvdl }
845 1.36.2.1 fvdl } else {
846 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ADHOC) {
847 1.36.2.1 fvdl ic->ic_flags &= ~IEEE80211_F_ADHOC;
848 1.36.2.1 fvdl error = ENETRESET;
849 1.36.2.1 fvdl }
850 1.36.2.1 fvdl if (sc->sc_adhoc_ap) {
851 1.36.2.1 fvdl sc->sc_adhoc_ap = 0;
852 1.36.2.1 fvdl error = ENETRESET;
853 1.20 onoe }
854 1.20 onoe }
855 1.20 onoe }
856 1.36.2.1 fvdl if (error == ENETRESET) {
857 1.36.2.1 fvdl if (sc->sc_enabled)
858 1.36.2.1 fvdl error = awi_init(ifp);
859 1.36.2.1 fvdl else
860 1.36.2.1 fvdl error = 0;
861 1.36.2.1 fvdl }
862 1.36.2.1 fvdl return error;
863 1.1 sommerfe }
864 1.1 sommerfe
865 1.10 onoe static void
866 1.36.2.1 fvdl awi_media_status(struct ifnet *ifp, struct ifmediareq *imr)
867 1.1 sommerfe {
868 1.36.2.1 fvdl struct awi_softc *sc = ifp->if_softc;
869 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
870 1.36.2.1 fvdl int rate;
871 1.1 sommerfe
872 1.36.2.1 fvdl imr->ifm_status = IFM_AVALID;
873 1.36.2.1 fvdl if (ic->ic_state == IEEE80211_S_RUN)
874 1.36.2.1 fvdl imr->ifm_status |= IFM_ACTIVE;
875 1.36.2.1 fvdl imr->ifm_active = IFM_IEEE80211;
876 1.36.2.1 fvdl if (ic->ic_state == IEEE80211_S_RUN)
877 1.36.2.1 fvdl rate = ic->ic_bss.bs_rates[ic->ic_bss.bs_txrate] &
878 1.36.2.1 fvdl IEEE80211_RATE_VAL;
879 1.36.2.1 fvdl else {
880 1.36.2.1 fvdl if (ic->ic_fixed_rate == -1)
881 1.36.2.1 fvdl rate = 0;
882 1.36.2.1 fvdl else
883 1.36.2.1 fvdl rate = ic->ic_sup_rates[ic->ic_fixed_rate] &
884 1.36.2.1 fvdl IEEE80211_RATE_VAL;
885 1.10 onoe }
886 1.36.2.1 fvdl imr->ifm_active |= awi_media_rate2opt(sc, rate);
887 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ADHOC) {
888 1.36.2.1 fvdl if (sc->sc_adhoc_ap)
889 1.36.2.1 fvdl imr->ifm_active |= IFM_FLAG0;
890 1.36.2.1 fvdl else {
891 1.36.2.1 fvdl imr->ifm_active |= IFM_IEEE80211_ADHOC;
892 1.36.2.1 fvdl if (sc->sc_no_bssid)
893 1.36.2.1 fvdl imr->ifm_active |= IFM_FLAG0;
894 1.18 onoe }
895 1.18 onoe }
896 1.36.2.1 fvdl }
897 1.10 onoe
898 1.36.2.1 fvdl static int
899 1.36.2.1 fvdl awi_mode_init(struct awi_softc *sc)
900 1.36.2.1 fvdl {
901 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
902 1.36.2.1 fvdl int n, error;
903 1.36.2.1 fvdl struct ether_multi *enm;
904 1.36.2.1 fvdl struct ether_multistep step;
905 1.36.2.1 fvdl
906 1.36.2.1 fvdl /* reinitialize muticast filter */
907 1.36.2.1 fvdl n = 0;
908 1.36.2.1 fvdl sc->sc_mib_local.Accept_All_Multicast_Dis = 0;
909 1.36.2.1 fvdl if (ifp->if_flags & IFF_PROMISC) {
910 1.36.2.1 fvdl sc->sc_mib_mac.aPromiscuous_Enable = 1;
911 1.36.2.1 fvdl goto set_mib;
912 1.10 onoe }
913 1.36.2.1 fvdl sc->sc_mib_mac.aPromiscuous_Enable = 0;
914 1.36.2.1 fvdl ETHER_FIRST_MULTI(step, &sc->sc_ic.ic_ec, enm);
915 1.36.2.1 fvdl while (enm != NULL) {
916 1.36.2.1 fvdl if (n == AWI_GROUP_ADDR_SIZE ||
917 1.36.2.1 fvdl memcmp(enm->enm_addrlo, enm->enm_addrhi, IEEE80211_ADDR_LEN)
918 1.36.2.1 fvdl != 0)
919 1.36.2.1 fvdl goto set_mib;
920 1.36.2.1 fvdl memcpy(sc->sc_mib_addr.aGroup_Addresses[n], enm->enm_addrlo,
921 1.36.2.1 fvdl IEEE80211_ADDR_LEN);
922 1.36.2.1 fvdl n++;
923 1.36.2.1 fvdl ETHER_NEXT_MULTI(step, enm);
924 1.36.2.1 fvdl }
925 1.36.2.1 fvdl for (; n < AWI_GROUP_ADDR_SIZE; n++)
926 1.36.2.1 fvdl memset(sc->sc_mib_addr.aGroup_Addresses[n], 0, IEEE80211_ADDR_LEN);
927 1.36.2.1 fvdl sc->sc_mib_local.Accept_All_Multicast_Dis = 1;
928 1.36.2.1 fvdl
929 1.36.2.1 fvdl set_mib:
930 1.36.2.1 fvdl if (sc->sc_mib_local.Accept_All_Multicast_Dis)
931 1.36.2.1 fvdl ifp->if_flags &= ~IFF_ALLMULTI;
932 1.36.2.1 fvdl else
933 1.36.2.1 fvdl ifp->if_flags |= IFF_ALLMULTI;
934 1.36.2.1 fvdl sc->sc_mib_mgt.Wep_Required =
935 1.36.2.1 fvdl (sc->sc_ic.ic_flags & IEEE80211_F_WEPON) ? 1 : 0;
936 1.36.2.1 fvdl
937 1.36.2.1 fvdl if ((error = awi_mib(sc, AWI_CMD_SET_MIB, AWI_MIB_LOCAL, AWI_WAIT)) ||
938 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_SET_MIB, AWI_MIB_ADDR, AWI_WAIT)) ||
939 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_SET_MIB, AWI_MIB_MAC, AWI_WAIT)) ||
940 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_SET_MIB, AWI_MIB_MGT, AWI_WAIT)) ||
941 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_SET_MIB, AWI_MIB_PHY, AWI_WAIT))) {
942 1.36.2.1 fvdl DPRINTF(("awi_mode_init: MIB set failed: %d\n", error));
943 1.36.2.1 fvdl return error;
944 1.36.2.1 fvdl }
945 1.36.2.1 fvdl return 0;
946 1.36.2.1 fvdl }
947 1.36.2.1 fvdl
948 1.36.2.1 fvdl /* XXX should be moved to if_ieee80211subr.c ? */
949 1.36.2.1 fvdl static int
950 1.36.2.1 fvdl awi_media_rate2opt(struct awi_softc *sc, int rate)
951 1.36.2.1 fvdl {
952 1.36.2.1 fvdl int mword;
953 1.36.2.1 fvdl
954 1.36.2.1 fvdl mword = 0;
955 1.36.2.1 fvdl switch (rate & IEEE80211_RATE_VAL) {
956 1.36.2.1 fvdl case 2:
957 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_FH)
958 1.36.2.1 fvdl mword = IFM_IEEE80211_FH1;
959 1.36.2.1 fvdl else
960 1.36.2.1 fvdl mword = IFM_IEEE80211_DS1;
961 1.10 onoe break;
962 1.36.2.1 fvdl case 4:
963 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_FH)
964 1.36.2.1 fvdl mword = IFM_IEEE80211_FH2;
965 1.36.2.1 fvdl else
966 1.36.2.1 fvdl mword = IFM_IEEE80211_DS2;
967 1.10 onoe break;
968 1.36.2.1 fvdl case 11:
969 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_DS)
970 1.36.2.1 fvdl mword = IFM_IEEE80211_DS5;
971 1.36.2.1 fvdl break;
972 1.36.2.1 fvdl case 22:
973 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_DS)
974 1.36.2.1 fvdl mword = IFM_IEEE80211_DS11;
975 1.36.2.1 fvdl break;
976 1.36.2.1 fvdl }
977 1.36.2.1 fvdl return mword;
978 1.36.2.1 fvdl }
979 1.36.2.1 fvdl
980 1.36.2.1 fvdl static int
981 1.36.2.1 fvdl awi_media_opt2rate(struct awi_softc *sc, int opt)
982 1.36.2.1 fvdl {
983 1.36.2.1 fvdl int rate;
984 1.36.2.1 fvdl
985 1.36.2.1 fvdl rate = 0;
986 1.36.2.1 fvdl switch (IFM_SUBTYPE(opt)) {
987 1.36.2.1 fvdl case IFM_IEEE80211_FH1:
988 1.36.2.1 fvdl case IFM_IEEE80211_FH2:
989 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type != AWI_PHY_TYPE_FH)
990 1.36.2.1 fvdl return 0;
991 1.36.2.1 fvdl break;
992 1.36.2.1 fvdl case IFM_IEEE80211_DS1:
993 1.36.2.1 fvdl case IFM_IEEE80211_DS2:
994 1.36.2.1 fvdl case IFM_IEEE80211_DS5:
995 1.36.2.1 fvdl case IFM_IEEE80211_DS11:
996 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type != AWI_PHY_TYPE_DS)
997 1.36.2.1 fvdl return 0;
998 1.36.2.1 fvdl break;
999 1.36.2.1 fvdl }
1000 1.36.2.1 fvdl
1001 1.36.2.1 fvdl switch (IFM_SUBTYPE(opt)) {
1002 1.36.2.1 fvdl case IFM_IEEE80211_FH1:
1003 1.36.2.1 fvdl case IFM_IEEE80211_DS1:
1004 1.36.2.1 fvdl rate = 2;
1005 1.36.2.1 fvdl break;
1006 1.36.2.1 fvdl case IFM_IEEE80211_FH2:
1007 1.36.2.1 fvdl case IFM_IEEE80211_DS2:
1008 1.36.2.1 fvdl rate = 4;
1009 1.36.2.1 fvdl break;
1010 1.36.2.1 fvdl case IFM_IEEE80211_DS5:
1011 1.36.2.1 fvdl rate = 11;
1012 1.36.2.1 fvdl break;
1013 1.36.2.1 fvdl case IFM_IEEE80211_DS11:
1014 1.36.2.1 fvdl rate = 22;
1015 1.10 onoe break;
1016 1.10 onoe }
1017 1.36.2.1 fvdl return rate;
1018 1.1 sommerfe }
1019 1.9 sommerfe
1020 1.10 onoe static void
1021 1.36.2.1 fvdl awi_rx_int(struct awi_softc *sc)
1022 1.9 sommerfe {
1023 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
1024 1.10 onoe u_int8_t state, rate, rssi;
1025 1.10 onoe u_int16_t len;
1026 1.36.2.1 fvdl u_int32_t frame, next, timoff, rxoff;
1027 1.10 onoe struct mbuf *m;
1028 1.10 onoe
1029 1.10 onoe rxoff = sc->sc_rxdoff;
1030 1.10 onoe for (;;) {
1031 1.10 onoe state = awi_read_1(sc, rxoff + AWI_RXD_HOST_DESC_STATE);
1032 1.10 onoe if (state & AWI_RXD_ST_OWN)
1033 1.10 onoe break;
1034 1.10 onoe if (!(state & AWI_RXD_ST_CONSUMED)) {
1035 1.36.2.1 fvdl if (state & AWI_RXD_ST_RXERROR) {
1036 1.36.2.1 fvdl ifp->if_ierrors++;
1037 1.36.2.1 fvdl goto rx_next;
1038 1.36.2.1 fvdl }
1039 1.36.2.1 fvdl len = awi_read_2(sc, rxoff + AWI_RXD_LEN);
1040 1.36.2.1 fvdl rate = awi_read_1(sc, rxoff + AWI_RXD_RATE);
1041 1.36.2.1 fvdl rssi = awi_read_1(sc, rxoff + AWI_RXD_RSSI);
1042 1.36.2.1 fvdl frame = awi_read_4(sc, rxoff + AWI_RXD_START_FRAME) &
1043 1.36.2.1 fvdl 0x7fff;
1044 1.36.2.1 fvdl timoff = awi_read_4(sc, rxoff + AWI_RXD_LOCALTIME);
1045 1.36.2.1 fvdl m = awi_devget(sc, frame, len);
1046 1.36.2.1 fvdl if (m == NULL) {
1047 1.36.2.1 fvdl ifp->if_ierrors++;
1048 1.36.2.1 fvdl goto rx_next;
1049 1.10 onoe }
1050 1.36.2.1 fvdl if (state & AWI_RXD_ST_LF) {
1051 1.36.2.1 fvdl /* TODO check my bss */
1052 1.36.2.1 fvdl if (!(sc->sc_ic.ic_flags & IEEE80211_F_SIBSS) &&
1053 1.36.2.1 fvdl sc->sc_ic.ic_state == IEEE80211_S_RUN) {
1054 1.36.2.1 fvdl sc->sc_rx_timer = 10;
1055 1.36.2.1 fvdl ifp->if_timer = 1;
1056 1.36.2.1 fvdl }
1057 1.36.2.1 fvdl if ((ifp->if_flags & IFF_DEBUG) &&
1058 1.36.2.1 fvdl (ifp->if_flags & IFF_LINK2))
1059 1.36.2.1 fvdl ieee80211_dump_pkt(m->m_data, m->m_len,
1060 1.36.2.1 fvdl rate / 5, rssi);
1061 1.36.2.1 fvdl if ((ifp->if_flags & IFF_LINK0) ||
1062 1.36.2.1 fvdl sc->sc_adhoc_ap)
1063 1.36.2.1 fvdl m = awi_ether_modcap(sc, m);
1064 1.36.2.1 fvdl if (m == NULL)
1065 1.36.2.1 fvdl ifp->if_ierrors++;
1066 1.36.2.1 fvdl else
1067 1.36.2.1 fvdl ieee80211_input(ifp, m, rssi, timoff);
1068 1.36.2.1 fvdl } else
1069 1.36.2.1 fvdl sc->sc_rxpend = m;
1070 1.36.2.1 fvdl rx_next:
1071 1.10 onoe state |= AWI_RXD_ST_CONSUMED;
1072 1.10 onoe awi_write_1(sc, rxoff + AWI_RXD_HOST_DESC_STATE, state);
1073 1.10 onoe }
1074 1.36.2.1 fvdl next = awi_read_4(sc, rxoff + AWI_RXD_NEXT);
1075 1.10 onoe if (next & AWI_RXD_NEXT_LAST)
1076 1.10 onoe break;
1077 1.10 onoe /* make sure the next pointer is correct */
1078 1.10 onoe if (next != awi_read_4(sc, rxoff + AWI_RXD_NEXT))
1079 1.10 onoe break;
1080 1.36.2.1 fvdl state |= AWI_RXD_ST_OWN;
1081 1.36.2.1 fvdl awi_write_1(sc, rxoff + AWI_RXD_HOST_DESC_STATE, state);
1082 1.36.2.1 fvdl rxoff = next & 0x7fff;
1083 1.36.2.1 fvdl }
1084 1.36.2.1 fvdl sc->sc_rxdoff = rxoff;
1085 1.36.2.1 fvdl }
1086 1.36.2.1 fvdl
1087 1.36.2.1 fvdl static void
1088 1.36.2.1 fvdl awi_tx_int(struct awi_softc *sc)
1089 1.36.2.1 fvdl {
1090 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
1091 1.36.2.1 fvdl u_int8_t flags;
1092 1.36.2.1 fvdl
1093 1.36.2.1 fvdl while (sc->sc_txdone != sc->sc_txnext) {
1094 1.36.2.1 fvdl flags = awi_read_1(sc, sc->sc_txdone + AWI_TXD_STATE);
1095 1.36.2.1 fvdl if ((flags & AWI_TXD_ST_OWN) || !(flags & AWI_TXD_ST_DONE))
1096 1.36.2.1 fvdl break;
1097 1.36.2.1 fvdl if (flags & AWI_TXD_ST_ERROR)
1098 1.36.2.1 fvdl ifp->if_oerrors++;
1099 1.36.2.1 fvdl sc->sc_txdone = awi_read_4(sc, sc->sc_txdone + AWI_TXD_NEXT) &
1100 1.36.2.1 fvdl 0x7fff;
1101 1.10 onoe }
1102 1.36.2.1 fvdl DPRINTF2(("awi_txint: txdone %d txnext %d txbase %d txend %d\n",
1103 1.36.2.1 fvdl sc->sc_txdone, sc->sc_txnext, sc->sc_txbase, sc->sc_txend));
1104 1.36.2.1 fvdl sc->sc_tx_timer = 0;
1105 1.36.2.1 fvdl ifp->if_flags &= ~IFF_OACTIVE;
1106 1.36.2.1 fvdl awi_start(ifp);
1107 1.9 sommerfe }
1108 1.9 sommerfe
1109 1.18 onoe static struct mbuf *
1110 1.36.2.1 fvdl awi_devget(struct awi_softc *sc, u_int32_t off, u_int16_t len)
1111 1.1 sommerfe {
1112 1.36.2.1 fvdl struct ifnet *ifp = &sc->sc_ic.ic_if;
1113 1.10 onoe struct mbuf *m;
1114 1.18 onoe struct mbuf *top, **mp;
1115 1.10 onoe u_int tlen;
1116 1.10 onoe
1117 1.10 onoe top = sc->sc_rxpend;
1118 1.18 onoe mp = ⊤
1119 1.10 onoe if (top != NULL) {
1120 1.10 onoe sc->sc_rxpend = NULL;
1121 1.10 onoe top->m_pkthdr.len += len;
1122 1.20 onoe m = top;
1123 1.18 onoe while (*mp != NULL) {
1124 1.18 onoe m = *mp;
1125 1.10 onoe mp = &m->m_next;
1126 1.18 onoe }
1127 1.10 onoe if (m->m_flags & M_EXT)
1128 1.10 onoe tlen = m->m_ext.ext_size;
1129 1.10 onoe else if (m->m_flags & M_PKTHDR)
1130 1.10 onoe tlen = MHLEN;
1131 1.10 onoe else
1132 1.10 onoe tlen = MLEN;
1133 1.10 onoe tlen -= m->m_len;
1134 1.10 onoe if (tlen > len)
1135 1.10 onoe tlen = len;
1136 1.10 onoe awi_read_bytes(sc, off, mtod(m, u_int8_t *) + m->m_len, tlen);
1137 1.10 onoe off += tlen;
1138 1.10 onoe len -= tlen;
1139 1.10 onoe }
1140 1.10 onoe
1141 1.10 onoe while (len > 0) {
1142 1.10 onoe if (top == NULL) {
1143 1.10 onoe MGETHDR(m, M_DONTWAIT, MT_DATA);
1144 1.10 onoe if (m == NULL)
1145 1.10 onoe return NULL;
1146 1.36.2.1 fvdl m->m_pkthdr.rcvif = ifp;
1147 1.10 onoe m->m_pkthdr.len = len;
1148 1.10 onoe m->m_len = MHLEN;
1149 1.36.2.1 fvdl m->m_flags |= M_HASFCS;
1150 1.10 onoe } else {
1151 1.10 onoe MGET(m, M_DONTWAIT, MT_DATA);
1152 1.10 onoe if (m == NULL) {
1153 1.10 onoe m_freem(top);
1154 1.10 onoe return NULL;
1155 1.10 onoe }
1156 1.10 onoe m->m_len = MLEN;
1157 1.10 onoe }
1158 1.10 onoe if (len >= MINCLSIZE) {
1159 1.10 onoe MCLGET(m, M_DONTWAIT);
1160 1.10 onoe if (m->m_flags & M_EXT)
1161 1.10 onoe m->m_len = m->m_ext.ext_size;
1162 1.10 onoe }
1163 1.20 onoe if (top == NULL) {
1164 1.20 onoe int hdrlen = sizeof(struct ieee80211_frame) +
1165 1.36.2.1 fvdl sizeof(struct llc);
1166 1.20 onoe caddr_t newdata = (caddr_t)
1167 1.20 onoe ALIGN(m->m_data + hdrlen) - hdrlen;
1168 1.20 onoe m->m_len -= newdata - m->m_data;
1169 1.20 onoe m->m_data = newdata;
1170 1.20 onoe }
1171 1.10 onoe if (m->m_len > len)
1172 1.10 onoe m->m_len = len;
1173 1.10 onoe awi_read_bytes(sc, off, mtod(m, u_int8_t *), m->m_len);
1174 1.10 onoe off += m->m_len;
1175 1.10 onoe len -= m->m_len;
1176 1.10 onoe *mp = m;
1177 1.10 onoe mp = &m->m_next;
1178 1.10 onoe }
1179 1.10 onoe return top;
1180 1.1 sommerfe }
1181 1.1 sommerfe
1182 1.10 onoe /*
1183 1.10 onoe * Initialize hardware and start firmware to accept commands.
1184 1.10 onoe * Called everytime after power on firmware.
1185 1.10 onoe */
1186 1.10 onoe
1187 1.10 onoe static int
1188 1.36.2.1 fvdl awi_hw_init(struct awi_softc *sc)
1189 1.1 sommerfe {
1190 1.10 onoe u_int8_t status;
1191 1.10 onoe u_int16_t intmask;
1192 1.10 onoe int i, error;
1193 1.1 sommerfe
1194 1.15 onoe sc->sc_enab_intr = 0;
1195 1.20 onoe sc->sc_invalid = 0; /* XXX: really? */
1196 1.10 onoe awi_drvstate(sc, AWI_DRV_RESET);
1197 1.1 sommerfe
1198 1.10 onoe /* reset firmware */
1199 1.10 onoe am79c930_gcr_setbits(&sc->sc_chip, AM79C930_GCR_CORESET);
1200 1.10 onoe DELAY(100);
1201 1.10 onoe awi_write_1(sc, AWI_SELFTEST, 0);
1202 1.20 onoe awi_write_1(sc, AWI_CMD, 0);
1203 1.20 onoe awi_write_1(sc, AWI_BANNER, 0);
1204 1.10 onoe am79c930_gcr_clearbits(&sc->sc_chip, AM79C930_GCR_CORESET);
1205 1.10 onoe DELAY(100);
1206 1.10 onoe
1207 1.10 onoe /* wait for selftest completion */
1208 1.10 onoe for (i = 0; ; i++) {
1209 1.10 onoe if (i >= AWI_SELFTEST_TIMEOUT*hz/1000) {
1210 1.10 onoe printf("%s: failed to complete selftest (timeout)\n",
1211 1.10 onoe sc->sc_dev.dv_xname);
1212 1.10 onoe return ENXIO;
1213 1.10 onoe }
1214 1.10 onoe status = awi_read_1(sc, AWI_SELFTEST);
1215 1.10 onoe if ((status & 0xf0) == 0xf0)
1216 1.10 onoe break;
1217 1.10 onoe if (sc->sc_cansleep) {
1218 1.10 onoe sc->sc_sleep_cnt++;
1219 1.10 onoe (void)tsleep(sc, PWAIT, "awitst", 1);
1220 1.10 onoe sc->sc_sleep_cnt--;
1221 1.10 onoe } else {
1222 1.10 onoe DELAY(1000*1000/hz);
1223 1.10 onoe }
1224 1.10 onoe }
1225 1.10 onoe if (status != AWI_SELFTEST_PASSED) {
1226 1.10 onoe printf("%s: failed to complete selftest (code %x)\n",
1227 1.10 onoe sc->sc_dev.dv_xname, status);
1228 1.10 onoe return ENXIO;
1229 1.10 onoe }
1230 1.1 sommerfe
1231 1.10 onoe /* check banner to confirm firmware write it */
1232 1.18 onoe awi_read_bytes(sc, AWI_BANNER, sc->sc_banner, AWI_BANNER_LEN);
1233 1.18 onoe if (memcmp(sc->sc_banner, "PCnetMobile:", 12) != 0) {
1234 1.10 onoe printf("%s: failed to complete selftest (bad banner)\n",
1235 1.10 onoe sc->sc_dev.dv_xname);
1236 1.10 onoe for (i = 0; i < AWI_BANNER_LEN; i++)
1237 1.18 onoe printf("%s%02x", i ? ":" : "\t", sc->sc_banner[i]);
1238 1.10 onoe printf("\n");
1239 1.10 onoe return ENXIO;
1240 1.10 onoe }
1241 1.1 sommerfe
1242 1.10 onoe /* initializing interrupt */
1243 1.15 onoe sc->sc_enab_intr = 1;
1244 1.10 onoe error = awi_intr_lock(sc);
1245 1.10 onoe if (error)
1246 1.10 onoe return error;
1247 1.10 onoe intmask = AWI_INT_GROGGY | AWI_INT_SCAN_CMPLT |
1248 1.10 onoe AWI_INT_TX | AWI_INT_RX | AWI_INT_CMD;
1249 1.10 onoe awi_write_1(sc, AWI_INTMASK, ~intmask & 0xff);
1250 1.10 onoe awi_write_1(sc, AWI_INTMASK2, 0);
1251 1.10 onoe awi_write_1(sc, AWI_INTSTAT, 0);
1252 1.10 onoe awi_write_1(sc, AWI_INTSTAT2, 0);
1253 1.10 onoe awi_intr_unlock(sc);
1254 1.10 onoe am79c930_gcr_setbits(&sc->sc_chip, AM79C930_GCR_ENECINT);
1255 1.1 sommerfe
1256 1.36 wiz /* issuing interface test command */
1257 1.36.2.1 fvdl error = awi_cmd(sc, AWI_CMD_NOP, AWI_WAIT);
1258 1.10 onoe if (error) {
1259 1.10 onoe printf("%s: failed to complete selftest", sc->sc_dev.dv_xname);
1260 1.20 onoe if (error == ENXIO)
1261 1.20 onoe printf(" (no hardware)\n");
1262 1.20 onoe else if (error != EWOULDBLOCK)
1263 1.10 onoe printf(" (error %d)\n", error);
1264 1.10 onoe else if (sc->sc_cansleep)
1265 1.10 onoe printf(" (lost interrupt)\n");
1266 1.10 onoe else
1267 1.10 onoe printf(" (command timeout)\n");
1268 1.10 onoe }
1269 1.10 onoe return error;
1270 1.10 onoe }
1271 1.1 sommerfe
1272 1.10 onoe /*
1273 1.10 onoe * Extract the factory default MIB value from firmware and assign the driver
1274 1.10 onoe * default value.
1275 1.10 onoe * Called once at attaching the interface.
1276 1.36.2.1 fvdl */
1277 1.1 sommerfe
1278 1.36.2.1 fvdl static int
1279 1.36.2.1 fvdl awi_init_mibs(struct awi_softc *sc)
1280 1.1 sommerfe {
1281 1.36.2.1 fvdl int i, error;
1282 1.36.2.1 fvdl struct awi_chanset *cs;
1283 1.1 sommerfe
1284 1.36.2.1 fvdl if ((error = awi_mib(sc, AWI_CMD_GET_MIB, AWI_MIB_LOCAL, AWI_WAIT)) ||
1285 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_GET_MIB, AWI_MIB_ADDR, AWI_WAIT)) ||
1286 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_GET_MIB, AWI_MIB_MAC, AWI_WAIT)) ||
1287 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_GET_MIB, AWI_MIB_MGT, AWI_WAIT)) ||
1288 1.36.2.1 fvdl (error = awi_mib(sc, AWI_CMD_GET_MIB, AWI_MIB_PHY, AWI_WAIT))) {
1289 1.36.2.1 fvdl printf("%s: failed to get default mib value (error %d)\n",
1290 1.36.2.1 fvdl sc->sc_dev.dv_xname, error);
1291 1.36.2.1 fvdl return error;
1292 1.36.2.1 fvdl }
1293 1.10 onoe
1294 1.36.2.1 fvdl memset(&sc->sc_ic.ic_chan_avail, 0, sizeof(sc->sc_ic.ic_chan_avail));
1295 1.36.2.1 fvdl for (cs = awi_chanset; ; cs++) {
1296 1.36.2.1 fvdl if (cs->cs_type == 0) {
1297 1.36.2.1 fvdl printf("%s: failed to set available channel\n",
1298 1.36.2.1 fvdl sc->sc_dev.dv_xname);
1299 1.36.2.1 fvdl return ENXIO;
1300 1.36.2.1 fvdl }
1301 1.36.2.1 fvdl if (cs->cs_type == sc->sc_mib_phy.IEEE_PHY_Type &&
1302 1.36.2.1 fvdl cs->cs_region == sc->sc_mib_phy.aCurrent_Reg_Domain)
1303 1.36.2.1 fvdl break;
1304 1.36.2.1 fvdl }
1305 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_FH) {
1306 1.36.2.1 fvdl for (i = cs->cs_min; i <= cs->cs_max; i++) {
1307 1.36.2.1 fvdl setbit(sc->sc_ic.ic_chan_avail,
1308 1.36.2.1 fvdl IEEE80211_FH_CHAN(i % 3 + 1, i));
1309 1.36.2.1 fvdl /*
1310 1.36.2.1 fvdl * According to the IEEE 802.11 specification,
1311 1.36.2.1 fvdl * hop pattern parameter for FH phy should be
1312 1.36.2.1 fvdl * incremented by 3 for given hop chanset, i.e.,
1313 1.36.2.1 fvdl * the chanset parameter is calculated for given
1314 1.36.2.1 fvdl * hop patter. However, BayStack 650 Access Points
1315 1.36.2.1 fvdl * apparently use fixed hop chanset parameter value
1316 1.36.2.1 fvdl * 1 for any hop pattern. So we also try this
1317 1.36.2.1 fvdl * combination of hop chanset and pattern.
1318 1.36.2.1 fvdl */
1319 1.36.2.1 fvdl setbit(sc->sc_ic.ic_chan_avail,
1320 1.36.2.1 fvdl IEEE80211_FH_CHAN(1, i));
1321 1.36.2.1 fvdl }
1322 1.36.2.1 fvdl } else {
1323 1.36.2.1 fvdl for (i = cs->cs_min; i <= cs->cs_max; i++)
1324 1.36.2.1 fvdl setbit(sc->sc_ic.ic_chan_avail, i);
1325 1.36.2.1 fvdl }
1326 1.36.2.1 fvdl sc->sc_cur_chan = cs->cs_def;
1327 1.1 sommerfe
1328 1.36.2.1 fvdl memset(&sc->sc_mib_mac.aDesired_ESS_ID, 0, AWI_ESS_ID_SIZE);
1329 1.36.2.1 fvdl sc->sc_mib_mac.aDesired_ESS_ID[0] = IEEE80211_ELEMID_SSID;
1330 1.36.2.1 fvdl sc->sc_mib_local.Fragmentation_Dis = 1;
1331 1.36.2.1 fvdl sc->sc_mib_local.Accept_All_Multicast_Dis = 1;
1332 1.36.2.1 fvdl sc->sc_mib_local.Power_Saving_Mode_Dis = 1;
1333 1.1 sommerfe
1334 1.36.2.1 fvdl /* allocate buffers */
1335 1.36.2.1 fvdl sc->sc_txbase = AWI_BUFFERS;
1336 1.36.2.1 fvdl sc->sc_txend = sc->sc_txbase +
1337 1.36.2.1 fvdl (AWI_TXD_SIZE + sizeof(struct ieee80211_frame) +
1338 1.36.2.1 fvdl sizeof(struct ether_header) + ETHERMTU) * AWI_NTXBUFS;
1339 1.36.2.1 fvdl LE_WRITE_4(&sc->sc_mib_local.Tx_Buffer_Offset, sc->sc_txbase);
1340 1.36.2.1 fvdl LE_WRITE_4(&sc->sc_mib_local.Tx_Buffer_Size,
1341 1.36.2.1 fvdl sc->sc_txend - sc->sc_txbase);
1342 1.36.2.1 fvdl LE_WRITE_4(&sc->sc_mib_local.Rx_Buffer_Offset, sc->sc_txend);
1343 1.36.2.1 fvdl LE_WRITE_4(&sc->sc_mib_local.Rx_Buffer_Size,
1344 1.36.2.1 fvdl AWI_BUFFERS_END - sc->sc_txend);
1345 1.36.2.1 fvdl sc->sc_mib_local.Network_Mode = 1;
1346 1.36.2.1 fvdl sc->sc_mib_local.Acting_as_AP = 0;
1347 1.36.2.1 fvdl return 0;
1348 1.1 sommerfe }
1349 1.1 sommerfe
1350 1.36.2.1 fvdl static int
1351 1.36.2.1 fvdl awi_chan_check(void *arg, u_char *chanreq)
1352 1.1 sommerfe {
1353 1.36.2.1 fvdl struct awi_softc *sc = arg;
1354 1.36.2.1 fvdl int i;
1355 1.36.2.1 fvdl struct awi_chanset *cs;
1356 1.36.2.1 fvdl u_char chanlist[(IEEE80211_CHAN_MAX+1)/NBBY];
1357 1.1 sommerfe
1358 1.36.2.1 fvdl for (cs = awi_chanset; cs->cs_type != 0; cs++) {
1359 1.36.2.1 fvdl if (cs->cs_type != sc->sc_mib_phy.IEEE_PHY_Type)
1360 1.10 onoe continue;
1361 1.36.2.1 fvdl memset(chanlist, 0, sizeof(chanlist));
1362 1.36.2.1 fvdl for (i = 0; ; i++) {
1363 1.36.2.1 fvdl if (i == IEEE80211_CHAN_MAX) {
1364 1.36.2.1 fvdl sc->sc_mib_phy.aCurrent_Reg_Domain =
1365 1.36.2.1 fvdl cs->cs_region;
1366 1.36.2.1 fvdl memcpy(sc->sc_ic.ic_chan_avail, chanlist,
1367 1.36.2.1 fvdl sizeof(sc->sc_ic.ic_chan_avail));
1368 1.36.2.1 fvdl sc->sc_cur_chan = cs->cs_def;
1369 1.36.2.1 fvdl return 0;
1370 1.36.2.1 fvdl }
1371 1.36.2.1 fvdl if (i >= cs->cs_min && i <= cs->cs_max)
1372 1.36.2.1 fvdl setbit(chanlist, i);
1373 1.36.2.1 fvdl else if (isset(chanreq, i))
1374 1.36.2.1 fvdl break;
1375 1.10 onoe }
1376 1.10 onoe }
1377 1.36.2.1 fvdl return EINVAL;
1378 1.1 sommerfe }
1379 1.1 sommerfe
1380 1.10 onoe static int
1381 1.36.2.1 fvdl awi_mib(struct awi_softc *sc, u_int8_t cmd, u_int8_t mib, int wflag)
1382 1.1 sommerfe {
1383 1.10 onoe int error;
1384 1.10 onoe u_int8_t size, *ptr;
1385 1.1 sommerfe
1386 1.10 onoe switch (mib) {
1387 1.10 onoe case AWI_MIB_LOCAL:
1388 1.10 onoe ptr = (u_int8_t *)&sc->sc_mib_local;
1389 1.10 onoe size = sizeof(sc->sc_mib_local);
1390 1.10 onoe break;
1391 1.10 onoe case AWI_MIB_ADDR:
1392 1.10 onoe ptr = (u_int8_t *)&sc->sc_mib_addr;
1393 1.10 onoe size = sizeof(sc->sc_mib_addr);
1394 1.10 onoe break;
1395 1.10 onoe case AWI_MIB_MAC:
1396 1.10 onoe ptr = (u_int8_t *)&sc->sc_mib_mac;
1397 1.10 onoe size = sizeof(sc->sc_mib_mac);
1398 1.10 onoe break;
1399 1.10 onoe case AWI_MIB_STAT:
1400 1.10 onoe ptr = (u_int8_t *)&sc->sc_mib_stat;
1401 1.10 onoe size = sizeof(sc->sc_mib_stat);
1402 1.10 onoe break;
1403 1.10 onoe case AWI_MIB_MGT:
1404 1.10 onoe ptr = (u_int8_t *)&sc->sc_mib_mgt;
1405 1.10 onoe size = sizeof(sc->sc_mib_mgt);
1406 1.10 onoe break;
1407 1.10 onoe case AWI_MIB_PHY:
1408 1.10 onoe ptr = (u_int8_t *)&sc->sc_mib_phy;
1409 1.10 onoe size = sizeof(sc->sc_mib_phy);
1410 1.10 onoe break;
1411 1.10 onoe default:
1412 1.10 onoe return EINVAL;
1413 1.1 sommerfe }
1414 1.10 onoe if (sc->sc_cmd_inprog) {
1415 1.36.2.1 fvdl if ((error = awi_cmd_wait(sc)) != 0) {
1416 1.20 onoe if (error == EWOULDBLOCK)
1417 1.36.2.1 fvdl DPRINTF(("awi_mib: cmd %d inprog",
1418 1.36.2.1 fvdl sc->sc_cmd_inprog));
1419 1.10 onoe return error;
1420 1.10 onoe }
1421 1.10 onoe }
1422 1.20 onoe sc->sc_cmd_inprog = cmd;
1423 1.10 onoe if (cmd == AWI_CMD_SET_MIB)
1424 1.36.2.1 fvdl awi_write_bytes(sc, AWI_CA_MIB_DATA, ptr, size);
1425 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_MIB_TYPE, mib);
1426 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_MIB_SIZE, size);
1427 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_MIB_INDEX, 0);
1428 1.36.2.1 fvdl if ((error = awi_cmd(sc, cmd, wflag)) != 0)
1429 1.10 onoe return error;
1430 1.10 onoe if (cmd == AWI_CMD_GET_MIB) {
1431 1.36.2.1 fvdl awi_read_bytes(sc, AWI_CA_MIB_DATA, ptr, size);
1432 1.10 onoe #ifdef AWI_DEBUG
1433 1.36.2.1 fvdl if (awi_debug) {
1434 1.10 onoe int i;
1435 1.1 sommerfe
1436 1.10 onoe printf("awi_mib: #%d:", mib);
1437 1.10 onoe for (i = 0; i < size; i++)
1438 1.10 onoe printf(" %02x", ptr[i]);
1439 1.10 onoe printf("\n");
1440 1.10 onoe }
1441 1.1 sommerfe #endif
1442 1.10 onoe }
1443 1.10 onoe return 0;
1444 1.1 sommerfe }
1445 1.1 sommerfe
1446 1.10 onoe static int
1447 1.36.2.1 fvdl awi_cmd(struct awi_softc *sc, u_int8_t cmd, int wflag)
1448 1.1 sommerfe {
1449 1.10 onoe u_int8_t status;
1450 1.10 onoe int error = 0;
1451 1.36.2.1 fvdl #ifdef AWI_DEBUG
1452 1.36.2.1 fvdl static const char *cmdname[] = {
1453 1.36.2.1 fvdl "IDLE", "NOP", "SET_MIB", "INIT_TX", "FLUSH_TX", "INIT_RX",
1454 1.36.2.1 fvdl "KILL_RX", "SLEEP", "WAKE", "GET_MIB", "SCAN", "SYNC", "RESUME"
1455 1.36.2.1 fvdl };
1456 1.36.2.1 fvdl #endif
1457 1.10 onoe
1458 1.36.2.1 fvdl #ifdef AWI_DEBUG
1459 1.36.2.1 fvdl if (awi_debug > 1) {
1460 1.36.2.1 fvdl if (cmd >= sizeof(cmdname)/sizeof(cmdname[0]))
1461 1.36.2.1 fvdl printf("awi_cmd: #%d", cmd);
1462 1.36.2.1 fvdl else
1463 1.36.2.1 fvdl printf("awi_cmd: %s", cmdname[cmd]);
1464 1.36.2.1 fvdl printf(" %s\n", wflag == AWI_NOWAIT ? "nowait" : "wait");
1465 1.36.2.1 fvdl }
1466 1.36.2.1 fvdl #endif
1467 1.20 onoe sc->sc_cmd_inprog = cmd;
1468 1.10 onoe awi_write_1(sc, AWI_CMD_STATUS, AWI_STAT_IDLE);
1469 1.10 onoe awi_write_1(sc, AWI_CMD, cmd);
1470 1.36.2.1 fvdl if (wflag == AWI_NOWAIT)
1471 1.36.2.1 fvdl return EINPROGRESS;
1472 1.36.2.1 fvdl if ((error = awi_cmd_wait(sc)) != 0)
1473 1.10 onoe return error;
1474 1.10 onoe status = awi_read_1(sc, AWI_CMD_STATUS);
1475 1.10 onoe awi_write_1(sc, AWI_CMD, 0);
1476 1.10 onoe switch (status) {
1477 1.10 onoe case AWI_STAT_OK:
1478 1.10 onoe break;
1479 1.10 onoe case AWI_STAT_BADPARM:
1480 1.10 onoe return EINVAL;
1481 1.10 onoe default:
1482 1.10 onoe printf("%s: command %d failed %x\n",
1483 1.10 onoe sc->sc_dev.dv_xname, cmd, status);
1484 1.10 onoe return ENXIO;
1485 1.10 onoe }
1486 1.10 onoe return 0;
1487 1.1 sommerfe }
1488 1.1 sommerfe
1489 1.36.2.1 fvdl static int
1490 1.36.2.1 fvdl awi_cmd_wait(struct awi_softc *sc)
1491 1.36.2.1 fvdl {
1492 1.36.2.1 fvdl int i, error = 0;
1493 1.36.2.1 fvdl
1494 1.36.2.1 fvdl i = 0;
1495 1.36.2.1 fvdl while (sc->sc_cmd_inprog) {
1496 1.36.2.1 fvdl if (sc->sc_invalid)
1497 1.36.2.1 fvdl return ENXIO;
1498 1.36.2.1 fvdl if (awi_read_1(sc, AWI_CMD) != sc->sc_cmd_inprog) {
1499 1.36.2.1 fvdl printf("%s: failed to access hardware\n",
1500 1.36.2.1 fvdl sc->sc_dev.dv_xname);
1501 1.36.2.1 fvdl sc->sc_invalid = 1;
1502 1.36.2.1 fvdl return ENXIO;
1503 1.36.2.1 fvdl }
1504 1.36.2.1 fvdl if (sc->sc_cansleep) {
1505 1.36.2.1 fvdl sc->sc_sleep_cnt++;
1506 1.36.2.1 fvdl error = tsleep(sc, PWAIT, "awicmd",
1507 1.36.2.1 fvdl AWI_CMD_TIMEOUT*hz/1000);
1508 1.36.2.1 fvdl sc->sc_sleep_cnt--;
1509 1.36.2.1 fvdl } else {
1510 1.36.2.1 fvdl if (awi_read_1(sc, AWI_CMD_STATUS) != AWI_STAT_IDLE) {
1511 1.36.2.1 fvdl awi_cmd_done(sc);
1512 1.36.2.1 fvdl break;
1513 1.36.2.1 fvdl }
1514 1.36.2.1 fvdl if (i++ >= AWI_CMD_TIMEOUT*1000/10)
1515 1.36.2.1 fvdl error = EWOULDBLOCK;
1516 1.36.2.1 fvdl else
1517 1.36.2.1 fvdl DELAY(10);
1518 1.36.2.1 fvdl }
1519 1.36.2.1 fvdl if (error)
1520 1.36.2.1 fvdl break;
1521 1.36.2.1 fvdl }
1522 1.36.2.1 fvdl if (error) {
1523 1.36.2.1 fvdl DPRINTF(("awi_cmd_wait: cmd 0x%x, error %d\n",
1524 1.36.2.1 fvdl sc->sc_cmd_inprog, error));
1525 1.36.2.1 fvdl }
1526 1.36.2.1 fvdl return error;
1527 1.36.2.1 fvdl }
1528 1.36.2.1 fvdl
1529 1.10 onoe static void
1530 1.36.2.1 fvdl awi_cmd_done(struct awi_softc *sc)
1531 1.1 sommerfe {
1532 1.10 onoe u_int8_t cmd, status;
1533 1.10 onoe
1534 1.10 onoe status = awi_read_1(sc, AWI_CMD_STATUS);
1535 1.10 onoe if (status == AWI_STAT_IDLE)
1536 1.10 onoe return; /* stray interrupt */
1537 1.10 onoe
1538 1.20 onoe cmd = sc->sc_cmd_inprog;
1539 1.10 onoe sc->sc_cmd_inprog = 0;
1540 1.36.2.1 fvdl wakeup(sc);
1541 1.10 onoe awi_write_1(sc, AWI_CMD, 0);
1542 1.10 onoe
1543 1.10 onoe if (status != AWI_STAT_OK) {
1544 1.10 onoe printf("%s: command %d failed %x\n",
1545 1.10 onoe sc->sc_dev.dv_xname, cmd, status);
1546 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1547 1.10 onoe return;
1548 1.10 onoe }
1549 1.36.2.1 fvdl if (sc->sc_substate != AWI_ST_NONE)
1550 1.36.2.1 fvdl (void)ieee80211_new_state(&sc->sc_ic.ic_if, sc->sc_nstate, -1);
1551 1.1 sommerfe }
1552 1.1 sommerfe
1553 1.10 onoe static int
1554 1.36.2.1 fvdl awi_next_txd(struct awi_softc *sc, int len, u_int32_t *framep, u_int32_t *ntxdp)
1555 1.1 sommerfe {
1556 1.10 onoe u_int32_t txd, ntxd, frame;
1557 1.1 sommerfe
1558 1.10 onoe txd = sc->sc_txnext;
1559 1.10 onoe frame = txd + AWI_TXD_SIZE;
1560 1.10 onoe if (frame + len > sc->sc_txend)
1561 1.10 onoe frame = sc->sc_txbase;
1562 1.10 onoe ntxd = frame + len;
1563 1.10 onoe if (ntxd + AWI_TXD_SIZE > sc->sc_txend)
1564 1.10 onoe ntxd = sc->sc_txbase;
1565 1.10 onoe *framep = frame;
1566 1.10 onoe *ntxdp = ntxd;
1567 1.10 onoe /*
1568 1.10 onoe * Determine if there are any room in ring buffer.
1569 1.10 onoe * --- send wait, === new data, +++ conflict (ENOBUFS)
1570 1.10 onoe * base........................end
1571 1.10 onoe * done----txd=====ntxd OK
1572 1.10 onoe * --txd=====done++++ntxd-- full
1573 1.10 onoe * --txd=====ntxd done-- OK
1574 1.10 onoe * ==ntxd done----txd=== OK
1575 1.10 onoe * ==done++++ntxd----txd=== full
1576 1.10 onoe * ++ntxd txd=====done++ full
1577 1.10 onoe */
1578 1.10 onoe if (txd < ntxd) {
1579 1.10 onoe if (txd < sc->sc_txdone && ntxd + AWI_TXD_SIZE > sc->sc_txdone)
1580 1.10 onoe return ENOBUFS;
1581 1.10 onoe } else {
1582 1.10 onoe if (txd < sc->sc_txdone || ntxd + AWI_TXD_SIZE > sc->sc_txdone)
1583 1.10 onoe return ENOBUFS;
1584 1.1 sommerfe }
1585 1.10 onoe return 0;
1586 1.1 sommerfe }
1587 1.1 sommerfe
1588 1.10 onoe static int
1589 1.36.2.1 fvdl awi_lock(struct awi_softc *sc)
1590 1.1 sommerfe {
1591 1.10 onoe int error = 0;
1592 1.1 sommerfe
1593 1.10 onoe if (curproc == NULL) {
1594 1.10 onoe /*
1595 1.10 onoe * XXX
1596 1.10 onoe * Though driver ioctl should be called with context,
1597 1.10 onoe * KAME ipv6 stack calls ioctl in interrupt for now.
1598 1.10 onoe * We simply abort the request if there are other
1599 1.10 onoe * ioctl requests in progress.
1600 1.10 onoe */
1601 1.20 onoe if (sc->sc_busy) {
1602 1.10 onoe return EWOULDBLOCK;
1603 1.20 onoe if (sc->sc_invalid)
1604 1.20 onoe return ENXIO;
1605 1.20 onoe }
1606 1.10 onoe sc->sc_busy = 1;
1607 1.10 onoe sc->sc_cansleep = 0;
1608 1.10 onoe return 0;
1609 1.1 sommerfe }
1610 1.10 onoe while (sc->sc_busy) {
1611 1.20 onoe if (sc->sc_invalid)
1612 1.20 onoe return ENXIO;
1613 1.10 onoe sc->sc_sleep_cnt++;
1614 1.10 onoe error = tsleep(sc, PWAIT | PCATCH, "awilck", 0);
1615 1.10 onoe sc->sc_sleep_cnt--;
1616 1.10 onoe if (error)
1617 1.10 onoe return error;
1618 1.6 sommerfe }
1619 1.10 onoe sc->sc_busy = 1;
1620 1.10 onoe sc->sc_cansleep = 1;
1621 1.10 onoe return 0;
1622 1.10 onoe }
1623 1.1 sommerfe
1624 1.10 onoe static void
1625 1.36.2.1 fvdl awi_unlock(struct awi_softc *sc)
1626 1.10 onoe {
1627 1.10 onoe sc->sc_busy = 0;
1628 1.10 onoe sc->sc_cansleep = 0;
1629 1.10 onoe if (sc->sc_sleep_cnt)
1630 1.10 onoe wakeup(sc);
1631 1.1 sommerfe }
1632 1.1 sommerfe
1633 1.10 onoe static int
1634 1.36.2.1 fvdl awi_intr_lock(struct awi_softc *sc)
1635 1.10 onoe {
1636 1.1 sommerfe u_int8_t status;
1637 1.10 onoe int i, retry;
1638 1.10 onoe
1639 1.10 onoe status = 1;
1640 1.10 onoe for (retry = 0; retry < 10; retry++) {
1641 1.10 onoe for (i = 0; i < AWI_LOCKOUT_TIMEOUT*1000/5; i++) {
1642 1.36.2.1 fvdl if ((status = awi_read_1(sc, AWI_LOCKOUT_HOST)) == 0)
1643 1.10 onoe break;
1644 1.10 onoe DELAY(5);
1645 1.10 onoe }
1646 1.10 onoe if (status != 0)
1647 1.10 onoe break;
1648 1.10 onoe awi_write_1(sc, AWI_LOCKOUT_MAC, 1);
1649 1.36.2.1 fvdl if ((status = awi_read_1(sc, AWI_LOCKOUT_HOST)) == 0)
1650 1.10 onoe break;
1651 1.10 onoe awi_write_1(sc, AWI_LOCKOUT_MAC, 0);
1652 1.1 sommerfe }
1653 1.10 onoe if (status != 0) {
1654 1.10 onoe printf("%s: failed to lock interrupt\n",
1655 1.6 sommerfe sc->sc_dev.dv_xname);
1656 1.10 onoe return ENXIO;
1657 1.6 sommerfe }
1658 1.10 onoe return 0;
1659 1.1 sommerfe }
1660 1.1 sommerfe
1661 1.10 onoe static void
1662 1.36.2.1 fvdl awi_intr_unlock(struct awi_softc *sc)
1663 1.1 sommerfe {
1664 1.1 sommerfe
1665 1.10 onoe awi_write_1(sc, AWI_LOCKOUT_MAC, 0);
1666 1.1 sommerfe }
1667 1.1 sommerfe
1668 1.10 onoe static int
1669 1.36.2.1 fvdl awi_newstate(void *arg, enum ieee80211_state nstate)
1670 1.1 sommerfe {
1671 1.36.2.1 fvdl struct awi_softc *sc = arg;
1672 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
1673 1.36.2.1 fvdl struct ieee80211_bss *bs = &ic->ic_bss;
1674 1.36.2.1 fvdl struct ifnet *ifp = &ic->ic_if;
1675 1.36.2.1 fvdl int error;
1676 1.36.2.1 fvdl u_int8_t newmode;
1677 1.36.2.1 fvdl enum ieee80211_state ostate;
1678 1.36.2.1 fvdl #ifdef AWI_DEBUG
1679 1.36.2.1 fvdl static const char *stname[] =
1680 1.36.2.1 fvdl { "INIT", "SCAN", "AUTH", "ASSOC", "RUN" };
1681 1.36.2.1 fvdl static const char *substname[] =
1682 1.36.2.1 fvdl { "NONE", "SCAN_INIT", "SCAN_SETMIB", "SCAN_SCCMD",
1683 1.36.2.1 fvdl "SUB_INIT", "SUB_SETSS", "SUB_SYNC" };
1684 1.36.2.1 fvdl #endif /* AWI_DEBUG */
1685 1.36.2.1 fvdl
1686 1.36.2.1 fvdl ostate = ic->ic_state;
1687 1.36.2.1 fvdl DPRINTF(("awi_newstate: %s (%s/%s) -> %s\n", stname[ostate],
1688 1.36.2.1 fvdl stname[sc->sc_nstate], substname[sc->sc_substate], stname[nstate]));
1689 1.36.2.1 fvdl
1690 1.36.2.1 fvdl /* set LED */
1691 1.36.2.1 fvdl switch (nstate) {
1692 1.36.2.1 fvdl case IEEE80211_S_INIT:
1693 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_RESET);
1694 1.36.2.1 fvdl break;
1695 1.36.2.1 fvdl case IEEE80211_S_SCAN:
1696 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ADHOC)
1697 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_ADHSC);
1698 1.36.2.1 fvdl else
1699 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_INFSY);
1700 1.36.2.1 fvdl break;
1701 1.36.2.1 fvdl case IEEE80211_S_AUTH:
1702 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_INFSY);
1703 1.36.2.1 fvdl break;
1704 1.36.2.1 fvdl case IEEE80211_S_ASSOC:
1705 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_INFAUTH);
1706 1.36.2.1 fvdl break;
1707 1.36.2.1 fvdl case IEEE80211_S_RUN:
1708 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ADHOC)
1709 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_ADHSY);
1710 1.36.2.1 fvdl else
1711 1.36.2.1 fvdl awi_drvstate(sc, AWI_DRV_INFASSOC);
1712 1.36.2.1 fvdl break;
1713 1.36.2.1 fvdl }
1714 1.10 onoe
1715 1.36.2.1 fvdl if (nstate == IEEE80211_S_INIT) {
1716 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1717 1.36.2.1 fvdl ic->ic_flags &= ~IEEE80211_F_SIBSS;
1718 1.36.2.1 fvdl return 0;
1719 1.36.2.1 fvdl }
1720 1.36.2.1 fvdl
1721 1.36.2.1 fvdl /* state transition */
1722 1.36.2.1 fvdl if (nstate == IEEE80211_S_SCAN) {
1723 1.36.2.1 fvdl /* SCAN substate */
1724 1.36.2.1 fvdl if (sc->sc_substate == AWI_ST_NONE) {
1725 1.36.2.1 fvdl sc->sc_nstate = nstate; /* next state in transition */
1726 1.36.2.1 fvdl sc->sc_substate = AWI_ST_SCAN_INIT;
1727 1.36.2.1 fvdl }
1728 1.36.2.1 fvdl switch (sc->sc_substate) {
1729 1.36.2.1 fvdl case AWI_ST_SCAN_INIT:
1730 1.36.2.1 fvdl sc->sc_substate = AWI_ST_SCAN_SETMIB;
1731 1.36.2.1 fvdl switch (ostate) {
1732 1.36.2.1 fvdl case IEEE80211_S_RUN:
1733 1.36.2.1 fvdl /* beacon miss */
1734 1.36.2.1 fvdl if (ifp->if_flags & IFF_DEBUG)
1735 1.36.2.1 fvdl printf("%s: no recent beacons from %s;"
1736 1.36.2.1 fvdl " rescanning\n",
1737 1.36.2.1 fvdl ifp->if_xname,
1738 1.36.2.1 fvdl ether_sprintf(ic->ic_bss.bs_bssid));
1739 1.36.2.1 fvdl /* FALLTHRU */
1740 1.36.2.1 fvdl case IEEE80211_S_AUTH:
1741 1.36.2.1 fvdl case IEEE80211_S_ASSOC:
1742 1.36.2.1 fvdl /* timeout restart scan */
1743 1.36.2.1 fvdl ieee80211_free_scan(ifp);
1744 1.36.2.1 fvdl /* FALLTHRU */
1745 1.36.2.1 fvdl case IEEE80211_S_INIT:
1746 1.36.2.1 fvdl ic->ic_flags |= IEEE80211_F_ASCAN;
1747 1.36.2.1 fvdl ic->ic_scan_timer = 0;
1748 1.36.2.1 fvdl /* FALLTHRU */
1749 1.36.2.1 fvdl case IEEE80211_S_SCAN:
1750 1.36.2.1 fvdl /* scan next */
1751 1.10 onoe break;
1752 1.10 onoe }
1753 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ASCAN)
1754 1.36.2.1 fvdl newmode = AWI_SCAN_ACTIVE;
1755 1.10 onoe else
1756 1.36.2.1 fvdl newmode = AWI_SCAN_PASSIVE;
1757 1.36.2.1 fvdl if (sc->sc_mib_mgt.aScan_Mode != newmode) {
1758 1.36.2.1 fvdl sc->sc_mib_mgt.aScan_Mode = newmode;
1759 1.36.2.1 fvdl if ((error = awi_mib(sc, AWI_CMD_SET_MIB,
1760 1.36.2.1 fvdl AWI_MIB_MGT, AWI_NOWAIT)) != 0)
1761 1.36.2.1 fvdl break;
1762 1.36.2.1 fvdl }
1763 1.36.2.1 fvdl /* FALLTHRU */
1764 1.36.2.1 fvdl case AWI_ST_SCAN_SETMIB:
1765 1.36.2.1 fvdl sc->sc_substate = AWI_ST_SCAN_SCCMD;
1766 1.36.2.1 fvdl if (sc->sc_cmd_inprog) {
1767 1.36.2.1 fvdl if ((error = awi_cmd_wait(sc)) != 0)
1768 1.36.2.1 fvdl break;
1769 1.36.2.1 fvdl }
1770 1.36.2.1 fvdl sc->sc_cmd_inprog = AWI_CMD_SCAN;
1771 1.36.2.1 fvdl awi_write_2(sc, AWI_CA_SCAN_DURATION,
1772 1.36.2.1 fvdl (ic->ic_flags & IEEE80211_F_ASCAN) ?
1773 1.36.2.1 fvdl AWI_ASCAN_DURATION : AWI_PSCAN_DURATION);
1774 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_FH) {
1775 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_SET,
1776 1.36.2.1 fvdl IEEE80211_FH_CHANSET(bs->bs_chan));
1777 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_PATTERN,
1778 1.36.2.1 fvdl IEEE80211_FH_CHANPAT(bs->bs_chan));
1779 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_IDX, 1);
1780 1.36.2.1 fvdl } else {
1781 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_SET, bs->bs_chan);
1782 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_PATTERN, 0);
1783 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_IDX, 0);
1784 1.36.2.1 fvdl }
1785 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SCAN_SUSP, 0);
1786 1.36.2.1 fvdl sc->sc_cur_chan = bs->bs_chan;
1787 1.36.2.1 fvdl if ((error = awi_cmd(sc, AWI_CMD_SCAN, AWI_NOWAIT))
1788 1.36.2.1 fvdl != 0)
1789 1.36.2.1 fvdl break;
1790 1.36.2.1 fvdl /* FALLTHRU */
1791 1.36.2.1 fvdl case AWI_ST_SCAN_SCCMD:
1792 1.36.2.1 fvdl if (ic->ic_scan_timer == 0)
1793 1.36.2.1 fvdl ic->ic_scan_timer =
1794 1.36.2.1 fvdl (ic->ic_flags & IEEE80211_F_ASCAN) ?
1795 1.36.2.1 fvdl IEEE80211_ASCAN_WAIT : IEEE80211_PSCAN_WAIT;
1796 1.36.2.1 fvdl ifp->if_timer = 1;
1797 1.36.2.1 fvdl ic->ic_state = nstate;
1798 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1799 1.36.2.1 fvdl error = EINPROGRESS;
1800 1.36.2.1 fvdl break;
1801 1.36.2.1 fvdl default:
1802 1.36.2.1 fvdl DPRINTF(("awi_newstate: unexpected state %s/%s\n",
1803 1.36.2.1 fvdl stname[nstate], substname[sc->sc_substate]));
1804 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1805 1.36.2.1 fvdl error = EIO;
1806 1.36.2.1 fvdl break;
1807 1.10 onoe }
1808 1.36.2.1 fvdl return error;
1809 1.36.2.1 fvdl }
1810 1.36.2.1 fvdl
1811 1.36.2.1 fvdl if (ostate == IEEE80211_S_SCAN) {
1812 1.36.2.1 fvdl /* set SSID and channel */
1813 1.36.2.1 fvdl /* substate */
1814 1.36.2.1 fvdl if (sc->sc_substate == AWI_ST_NONE) {
1815 1.36.2.1 fvdl sc->sc_nstate = nstate; /* next state in transition */
1816 1.36.2.1 fvdl sc->sc_substate = AWI_ST_SUB_INIT;
1817 1.36.2.1 fvdl }
1818 1.36.2.1 fvdl switch (sc->sc_substate) {
1819 1.36.2.1 fvdl case AWI_ST_SUB_INIT:
1820 1.36.2.1 fvdl sc->sc_substate = AWI_ST_SUB_SETSS;
1821 1.36.2.1 fvdl memcpy(&sc->sc_mib_mgt.aCurrent_BSS_ID, bs->bs_bssid,
1822 1.36.2.1 fvdl IEEE80211_ADDR_LEN);
1823 1.36.2.1 fvdl memset(&sc->sc_mib_mgt.aCurrent_ESS_ID, 0,
1824 1.36.2.1 fvdl AWI_ESS_ID_SIZE);
1825 1.36.2.1 fvdl sc->sc_mib_mgt.aCurrent_ESS_ID[0] =
1826 1.36.2.1 fvdl IEEE80211_ELEMID_SSID;
1827 1.36.2.1 fvdl sc->sc_mib_mgt.aCurrent_ESS_ID[1] = bs->bs_esslen;
1828 1.36.2.1 fvdl memcpy(&sc->sc_mib_mgt.aCurrent_ESS_ID[2],
1829 1.36.2.1 fvdl bs->bs_essid, bs->bs_esslen);
1830 1.36.2.1 fvdl LE_WRITE_2(&sc->sc_mib_mgt.aBeacon_Period,
1831 1.36.2.1 fvdl bs->bs_intval);
1832 1.36.2.1 fvdl if ((error = awi_mib(sc, AWI_CMD_SET_MIB, AWI_MIB_MGT,
1833 1.36.2.1 fvdl AWI_NOWAIT)) != 0)
1834 1.36.2.1 fvdl break;
1835 1.36.2.1 fvdl /* FALLTHRU */
1836 1.36.2.1 fvdl case AWI_ST_SUB_SETSS:
1837 1.36.2.1 fvdl sc->sc_substate = AWI_ST_SUB_SYNC;
1838 1.36.2.1 fvdl if (sc->sc_cmd_inprog) {
1839 1.36.2.1 fvdl if (awi_cmd_wait(sc))
1840 1.36.2.1 fvdl break;
1841 1.36.2.1 fvdl }
1842 1.36.2.1 fvdl sc->sc_cmd_inprog = AWI_CMD_SYNC;
1843 1.36.2.1 fvdl if (sc->sc_mib_phy.IEEE_PHY_Type == AWI_PHY_TYPE_FH) {
1844 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_SET,
1845 1.36.2.1 fvdl IEEE80211_FH_CHANSET(bs->bs_chan));
1846 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_PATTERN,
1847 1.36.2.1 fvdl IEEE80211_FH_CHANPAT(bs->bs_chan));
1848 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_IDX,
1849 1.36.2.1 fvdl bs->bs_fhindex);
1850 1.36.2.1 fvdl awi_write_2(sc, AWI_CA_SYNC_DWELL,
1851 1.36.2.1 fvdl bs->bs_fhdwell);
1852 1.36.2.1 fvdl } else {
1853 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_SET, bs->bs_chan);
1854 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_PATTERN, 0);
1855 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_IDX, 0);
1856 1.36.2.1 fvdl awi_write_2(sc, AWI_CA_SYNC_DWELL, 0);
1857 1.36.2.1 fvdl }
1858 1.36.2.1 fvdl if ((ic->ic_flags & IEEE80211_F_SIBSS) &&
1859 1.36.2.1 fvdl !sc->sc_no_bssid)
1860 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_STARTBSS, 1);
1861 1.36.2.1 fvdl else
1862 1.36.2.1 fvdl awi_write_1(sc, AWI_CA_SYNC_STARTBSS, 0);
1863 1.36.2.1 fvdl awi_write_2(sc, AWI_CA_SYNC_MBZ, 0);
1864 1.36.2.1 fvdl awi_write_bytes(sc, AWI_CA_SYNC_TIMESTAMP,
1865 1.36.2.1 fvdl bs->bs_tstamp, 8);
1866 1.36.2.1 fvdl awi_write_4(sc, AWI_CA_SYNC_REFTIME, bs->bs_timoff);
1867 1.36.2.1 fvdl sc->sc_cur_chan = bs->bs_chan;
1868 1.36.2.1 fvdl if ((error = awi_cmd(sc, AWI_CMD_SYNC, AWI_NOWAIT))
1869 1.36.2.1 fvdl != 0)
1870 1.36.2.1 fvdl break;
1871 1.36.2.1 fvdl /* FALLTHRU */
1872 1.36.2.1 fvdl case AWI_ST_SUB_SYNC:
1873 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1874 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_SIBSS) {
1875 1.36.2.1 fvdl if ((error = awi_mib(sc, AWI_CMD_GET_MIB,
1876 1.36.2.1 fvdl AWI_MIB_MGT, AWI_WAIT)) != 0)
1877 1.36.2.1 fvdl break;
1878 1.36.2.1 fvdl memcpy(bs->bs_bssid,
1879 1.36.2.1 fvdl &sc->sc_mib_mgt.aCurrent_BSS_ID,
1880 1.36.2.1 fvdl IEEE80211_ADDR_LEN);
1881 1.36.2.1 fvdl } else {
1882 1.36.2.1 fvdl if (nstate == IEEE80211_S_RUN) {
1883 1.36.2.1 fvdl sc->sc_rx_timer = 10;
1884 1.36.2.1 fvdl ifp->if_timer = 1;
1885 1.36.2.1 fvdl }
1886 1.36.2.1 fvdl }
1887 1.36.2.1 fvdl error = 0;
1888 1.10 onoe break;
1889 1.36.2.1 fvdl default:
1890 1.36.2.1 fvdl DPRINTF(("awi_newstate: unexpected state %s/%s\n",
1891 1.36.2.1 fvdl stname[nstate], substname[sc->sc_substate]));
1892 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1893 1.36.2.1 fvdl error = EIO;
1894 1.36.2.1 fvdl break;
1895 1.36.2.1 fvdl }
1896 1.36.2.1 fvdl return error;
1897 1.1 sommerfe }
1898 1.36.2.1 fvdl
1899 1.36.2.1 fvdl sc->sc_substate = AWI_ST_NONE;
1900 1.36.2.1 fvdl
1901 1.36.2.1 fvdl return 0;
1902 1.1 sommerfe }
1903 1.1 sommerfe
1904 1.36.2.1 fvdl static struct mbuf *
1905 1.36.2.1 fvdl awi_ether_encap(struct awi_softc *sc, struct mbuf *m)
1906 1.20 onoe {
1907 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
1908 1.36.2.1 fvdl struct ieee80211_bss *bs = &ic->ic_bss;
1909 1.36.2.1 fvdl struct ether_header *eh;
1910 1.36.2.1 fvdl struct ieee80211_frame *wh;
1911 1.20 onoe
1912 1.36.2.1 fvdl if (m->m_len < sizeof(struct ether_header)) {
1913 1.36.2.1 fvdl m = m_pullup(m, sizeof(struct ether_header));
1914 1.36.2.1 fvdl if (m == NULL)
1915 1.36.2.1 fvdl return NULL;
1916 1.20 onoe }
1917 1.36.2.1 fvdl eh = mtod(m, struct ether_header *);
1918 1.36.2.1 fvdl M_PREPEND(m, sizeof(struct ieee80211_frame), M_DONTWAIT);
1919 1.36.2.1 fvdl if (m == NULL)
1920 1.36.2.1 fvdl return NULL;
1921 1.36.2.1 fvdl wh = mtod(m, struct ieee80211_frame *);
1922 1.36.2.1 fvdl wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_DATA;
1923 1.36.2.1 fvdl *(u_int16_t *)wh->i_dur = 0;
1924 1.36.2.1 fvdl *(u_int16_t *)wh->i_seq =
1925 1.36.2.1 fvdl htole16(bs->bs_txseq << IEEE80211_SEQ_SEQ_SHIFT);
1926 1.36.2.1 fvdl bs->bs_txseq++;
1927 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ADHOC) {
1928 1.36.2.1 fvdl wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
1929 1.36.2.1 fvdl if (sc->sc_adhoc_ap)
1930 1.36.2.1 fvdl memcpy(wh->i_addr1, bs->bs_macaddr, IEEE80211_ADDR_LEN);
1931 1.36.2.1 fvdl else
1932 1.36.2.1 fvdl memcpy(wh->i_addr1, eh->ether_dhost,
1933 1.36.2.1 fvdl IEEE80211_ADDR_LEN);
1934 1.36.2.1 fvdl memcpy(wh->i_addr2, eh->ether_shost, IEEE80211_ADDR_LEN);
1935 1.36.2.1 fvdl memcpy(wh->i_addr3, bs->bs_bssid, IEEE80211_ADDR_LEN);
1936 1.20 onoe } else {
1937 1.36.2.1 fvdl wh->i_fc[1] = IEEE80211_FC1_DIR_TODS;
1938 1.36.2.1 fvdl memcpy(wh->i_addr1, bs->bs_bssid, IEEE80211_ADDR_LEN);
1939 1.36.2.1 fvdl memcpy(wh->i_addr2, eh->ether_shost, IEEE80211_ADDR_LEN);
1940 1.36.2.1 fvdl memcpy(wh->i_addr3, eh->ether_dhost, IEEE80211_ADDR_LEN);
1941 1.20 onoe }
1942 1.36.2.1 fvdl return m;
1943 1.20 onoe }
1944 1.20 onoe
1945 1.36.2.1 fvdl static struct mbuf *
1946 1.36.2.1 fvdl awi_ether_modcap(struct awi_softc *sc, struct mbuf *m)
1947 1.1 sommerfe {
1948 1.36.2.1 fvdl struct ieee80211com *ic = &sc->sc_ic;
1949 1.36.2.1 fvdl struct ether_header eh;
1950 1.36.2.1 fvdl struct ieee80211_frame wh;
1951 1.36.2.1 fvdl struct llc *llc;
1952 1.1 sommerfe
1953 1.36.2.1 fvdl if (m->m_len < sizeof(wh) + sizeof(eh)) {
1954 1.36.2.1 fvdl m = m_pullup(m, sizeof(wh) + sizeof(eh));
1955 1.36.2.1 fvdl if (m == NULL)
1956 1.36.2.1 fvdl return NULL;
1957 1.10 onoe }
1958 1.36.2.1 fvdl memcpy(&wh, mtod(m, caddr_t), sizeof(wh));
1959 1.36.2.1 fvdl if (wh.i_fc[0] != (IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_DATA))
1960 1.36.2.1 fvdl return m;
1961 1.36.2.1 fvdl memcpy(&eh, mtod(m, caddr_t) + sizeof(wh), sizeof(eh));
1962 1.36.2.1 fvdl m_adj(m, sizeof(eh) - sizeof(*llc));
1963 1.36.2.1 fvdl if (ic->ic_flags & IEEE80211_F_ADHOC)
1964 1.36.2.1 fvdl memcpy(wh.i_addr2, eh.ether_shost, IEEE80211_ADDR_LEN);
1965 1.36.2.1 fvdl memcpy(mtod(m, caddr_t), &wh, sizeof(wh));
1966 1.36.2.1 fvdl llc = (struct llc *)(mtod(m, caddr_t) + sizeof(wh));
1967 1.36.2.1 fvdl llc->llc_dsap = llc->llc_ssap = LLC_SNAP_LSAP;
1968 1.36.2.1 fvdl llc->llc_control = LLC_UI;
1969 1.36.2.1 fvdl llc->llc_snap.org_code[0] = 0;
1970 1.36.2.1 fvdl llc->llc_snap.org_code[1] = 0;
1971 1.36.2.1 fvdl llc->llc_snap.org_code[2] = 0;
1972 1.36.2.1 fvdl llc->llc_snap.ether_type = eh.ether_type;
1973 1.36.2.1 fvdl return m;
1974 1.1 sommerfe }
1975