atw.c revision 1.68 1 1.68 dyoung /* $NetBSD: atw.c,v 1.68 2004/07/23 06:57:50 dyoung Exp $ */
2 1.1 dyoung
3 1.1 dyoung /*-
4 1.1 dyoung * Copyright (c) 1998, 1999, 2000, 2002, 2003, 2004 The NetBSD Foundation, Inc.
5 1.1 dyoung * All rights reserved.
6 1.1 dyoung *
7 1.1 dyoung * This code is derived from software contributed to The NetBSD Foundation
8 1.1 dyoung * by David Young, by Jason R. Thorpe, and by Charles M. Hannum.
9 1.1 dyoung *
10 1.1 dyoung * Redistribution and use in source and binary forms, with or without
11 1.1 dyoung * modification, are permitted provided that the following conditions
12 1.1 dyoung * are met:
13 1.1 dyoung * 1. Redistributions of source code must retain the above copyright
14 1.1 dyoung * notice, this list of conditions and the following disclaimer.
15 1.1 dyoung * 2. Redistributions in binary form must reproduce the above copyright
16 1.1 dyoung * notice, this list of conditions and the following disclaimer in the
17 1.1 dyoung * documentation and/or other materials provided with the distribution.
18 1.1 dyoung * 3. All advertising materials mentioning features or use of this software
19 1.1 dyoung * must display the following acknowledgement:
20 1.1 dyoung * This product includes software developed by the NetBSD
21 1.1 dyoung * Foundation, Inc. and its contributors.
22 1.1 dyoung * 4. Neither the name of The NetBSD Foundation nor the names of its
23 1.1 dyoung * contributors may be used to endorse or promote products derived
24 1.1 dyoung * from this software without specific prior written permission.
25 1.1 dyoung *
26 1.1 dyoung * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS
27 1.1 dyoung * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED
28 1.1 dyoung * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR
29 1.1 dyoung * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS
30 1.1 dyoung * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR
31 1.1 dyoung * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF
32 1.1 dyoung * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS
33 1.1 dyoung * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN
34 1.1 dyoung * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE)
35 1.1 dyoung * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE
36 1.1 dyoung * POSSIBILITY OF SUCH DAMAGE.
37 1.1 dyoung */
38 1.1 dyoung
39 1.1 dyoung /*
40 1.1 dyoung * Device driver for the ADMtek ADM8211 802.11 MAC/BBP.
41 1.1 dyoung */
42 1.1 dyoung
43 1.1 dyoung #include <sys/cdefs.h>
44 1.68 dyoung __KERNEL_RCSID(0, "$NetBSD: atw.c,v 1.68 2004/07/23 06:57:50 dyoung Exp $");
45 1.1 dyoung
46 1.1 dyoung #include "bpfilter.h"
47 1.1 dyoung
48 1.1 dyoung #include <sys/param.h>
49 1.1 dyoung #include <sys/systm.h>
50 1.1 dyoung #include <sys/callout.h>
51 1.1 dyoung #include <sys/mbuf.h>
52 1.1 dyoung #include <sys/malloc.h>
53 1.1 dyoung #include <sys/kernel.h>
54 1.1 dyoung #include <sys/socket.h>
55 1.1 dyoung #include <sys/ioctl.h>
56 1.1 dyoung #include <sys/errno.h>
57 1.1 dyoung #include <sys/device.h>
58 1.1 dyoung #include <sys/time.h>
59 1.1 dyoung
60 1.1 dyoung #include <machine/endian.h>
61 1.1 dyoung
62 1.1 dyoung #include <uvm/uvm_extern.h>
63 1.1 dyoung
64 1.1 dyoung #include <net/if.h>
65 1.1 dyoung #include <net/if_dl.h>
66 1.1 dyoung #include <net/if_media.h>
67 1.1 dyoung #include <net/if_ether.h>
68 1.3 dyoung
69 1.3 dyoung #include <net80211/ieee80211_var.h>
70 1.3 dyoung #include <net80211/ieee80211_compat.h>
71 1.12 dyoung #include <net80211/ieee80211_radiotap.h>
72 1.1 dyoung
73 1.1 dyoung #if NBPFILTER > 0
74 1.1 dyoung #include <net/bpf.h>
75 1.1 dyoung #endif
76 1.1 dyoung
77 1.1 dyoung #include <machine/bus.h>
78 1.1 dyoung #include <machine/intr.h>
79 1.1 dyoung
80 1.1 dyoung #include <dev/ic/atwreg.h>
81 1.24 dyoung #include <dev/ic/rf3000reg.h>
82 1.24 dyoung #include <dev/ic/si4136reg.h>
83 1.1 dyoung #include <dev/ic/atwvar.h>
84 1.1 dyoung #include <dev/ic/smc93cx6var.h>
85 1.1 dyoung
86 1.1 dyoung /* XXX TBD open questions
87 1.1 dyoung *
88 1.1 dyoung *
89 1.1 dyoung * When should I set DSSS PAD in reg 0x15 of RF3000? In 1-2Mbps
90 1.1 dyoung * modes only, or all modes (5.5-11 Mbps CCK modes, too?) Does the MAC
91 1.1 dyoung * handle this for me?
92 1.1 dyoung *
93 1.1 dyoung */
94 1.1 dyoung /* device attachment
95 1.1 dyoung *
96 1.1 dyoung * print TOFS[012]
97 1.1 dyoung *
98 1.1 dyoung * device initialization
99 1.1 dyoung *
100 1.1 dyoung * clear ATW_FRCTL_MAXPSP to disable max power saving
101 1.1 dyoung * set ATW_TXBR_ALCUPDATE to enable ALC
102 1.1 dyoung * set TOFS[012]? (hope not)
103 1.1 dyoung * disable rx/tx
104 1.1 dyoung * set ATW_PAR_SWR (software reset)
105 1.1 dyoung * wait for ATW_PAR_SWR clear
106 1.1 dyoung * disable interrupts
107 1.1 dyoung * ack status register
108 1.1 dyoung * enable interrupts
109 1.1 dyoung *
110 1.1 dyoung * rx/tx initialization
111 1.1 dyoung *
112 1.1 dyoung * disable rx/tx w/ ATW_NAR_SR, ATW_NAR_ST
113 1.1 dyoung * allocate and init descriptor rings
114 1.1 dyoung * write ATW_PAR_DSL (descriptor skip length)
115 1.1 dyoung * write descriptor base addrs: ATW_TDBD, ATW_TDBP, write ATW_RDB
116 1.1 dyoung * write ATW_NAR_SQ for one/both transmit descriptor rings
117 1.1 dyoung * write ATW_NAR_SQ for one/both transmit descriptor rings
118 1.1 dyoung * enable rx/tx w/ ATW_NAR_SR, ATW_NAR_ST
119 1.1 dyoung *
120 1.1 dyoung * rx/tx end
121 1.1 dyoung *
122 1.1 dyoung * stop DMA
123 1.1 dyoung * disable rx/tx w/ ATW_NAR_SR, ATW_NAR_ST
124 1.1 dyoung * flush tx w/ ATW_NAR_HF
125 1.1 dyoung *
126 1.1 dyoung * scan
127 1.1 dyoung *
128 1.1 dyoung * initialize rx/tx
129 1.1 dyoung *
130 1.1 dyoung * BSS join: (re)association response
131 1.1 dyoung *
132 1.1 dyoung * set ATW_FRCTL_AID
133 1.1 dyoung *
134 1.1 dyoung * optimizations ???
135 1.1 dyoung *
136 1.1 dyoung */
137 1.1 dyoung
138 1.59 dyoung #define ATW_REFSLAVE /* slavishly do what the reference driver does */
139 1.59 dyoung
140 1.1 dyoung #define VOODOO_DUR_11_ROUNDING 0x01 /* necessary */
141 1.1 dyoung #define VOODOO_DUR_2_4_SPECIALCASE 0x02 /* NOT necessary */
142 1.1 dyoung int atw_voodoo = VOODOO_DUR_11_ROUNDING;
143 1.1 dyoung
144 1.59 dyoung int atw_bbp_io_enable_delay = 20 * 1000;
145 1.59 dyoung int atw_bbp_io_disable_delay = 2 * 1000;
146 1.59 dyoung int atw_writewep_delay = 1000;
147 1.1 dyoung int atw_beacon_len_adjust = 4;
148 1.3 dyoung int atw_dwelltime = 200;
149 1.59 dyoung int atw_xindiv2 = 0;
150 1.1 dyoung
151 1.1 dyoung #ifdef ATW_DEBUG
152 1.1 dyoung int atw_debug = 0;
153 1.1 dyoung
154 1.1 dyoung #define ATW_DPRINTF(x) if (atw_debug > 0) printf x
155 1.1 dyoung #define ATW_DPRINTF2(x) if (atw_debug > 1) printf x
156 1.1 dyoung #define ATW_DPRINTF3(x) if (atw_debug > 2) printf x
157 1.1 dyoung #define DPRINTF(sc, x) if ((sc)->sc_ic.ic_if.if_flags & IFF_DEBUG) printf x
158 1.1 dyoung #define DPRINTF2(sc, x) if ((sc)->sc_ic.ic_if.if_flags & IFF_DEBUG) ATW_DPRINTF2(x)
159 1.1 dyoung #define DPRINTF3(sc, x) if ((sc)->sc_ic.ic_if.if_flags & IFF_DEBUG) ATW_DPRINTF3(x)
160 1.39 dyoung
161 1.1 dyoung static void atw_print_regs(struct atw_softc *, const char *);
162 1.39 dyoung static void atw_dump_pkt(struct ifnet *, struct mbuf *);
163 1.39 dyoung
164 1.39 dyoung /* Note well: I never got atw_rf3000_read or atw_si4126_read to work. */
165 1.39 dyoung # ifdef ATW_BBPDEBUG
166 1.39 dyoung static int atw_rf3000_read(struct atw_softc *sc, u_int, u_int *);
167 1.1 dyoung static void atw_rf3000_print(struct atw_softc *);
168 1.39 dyoung # endif /* ATW_BBPDEBUG */
169 1.39 dyoung
170 1.39 dyoung # ifdef ATW_SYNDEBUG
171 1.39 dyoung static int atw_si4126_read(struct atw_softc *, u_int, u_int *);
172 1.1 dyoung static void atw_si4126_print(struct atw_softc *);
173 1.39 dyoung # endif /* ATW_SYNDEBUG */
174 1.39 dyoung
175 1.1 dyoung #else
176 1.1 dyoung #define ATW_DPRINTF(x)
177 1.1 dyoung #define ATW_DPRINTF2(x)
178 1.1 dyoung #define ATW_DPRINTF3(x)
179 1.1 dyoung #define DPRINTF(sc, x) /* nothing */
180 1.1 dyoung #define DPRINTF2(sc, x) /* nothing */
181 1.1 dyoung #define DPRINTF3(sc, x) /* nothing */
182 1.1 dyoung #endif
183 1.1 dyoung
184 1.61 dyoung /* ifnet methods */
185 1.23 dyoung void atw_start(struct ifnet *);
186 1.23 dyoung void atw_watchdog(struct ifnet *);
187 1.23 dyoung int atw_ioctl(struct ifnet *, u_long, caddr_t);
188 1.23 dyoung int atw_init(struct ifnet *);
189 1.23 dyoung void atw_stop(struct ifnet *, int);
190 1.23 dyoung
191 1.61 dyoung /* Device attachment */
192 1.61 dyoung void atw_attach(struct atw_softc *);
193 1.61 dyoung int atw_detach(struct atw_softc *);
194 1.23 dyoung
195 1.61 dyoung /* Rx/Tx process */
196 1.23 dyoung void atw_rxdrain(struct atw_softc *);
197 1.61 dyoung void atw_txdrain(struct atw_softc *);
198 1.23 dyoung int atw_add_rxbuf(struct atw_softc *, int);
199 1.23 dyoung void atw_idle(struct atw_softc *, u_int32_t);
200 1.23 dyoung
201 1.61 dyoung /* Device (de)activation and power state */
202 1.23 dyoung int atw_enable(struct atw_softc *);
203 1.23 dyoung void atw_disable(struct atw_softc *);
204 1.23 dyoung void atw_power(int, void *);
205 1.61 dyoung void atw_shutdown(void *);
206 1.61 dyoung void atw_reset(struct atw_softc *);
207 1.23 dyoung
208 1.61 dyoung /* Interrupt handlers */
209 1.23 dyoung void atw_rxintr(struct atw_softc *);
210 1.23 dyoung void atw_txintr(struct atw_softc *);
211 1.23 dyoung void atw_linkintr(struct atw_softc *, u_int32_t);
212 1.1 dyoung
213 1.61 dyoung /* 802.11 state machine */
214 1.61 dyoung static int atw_newstate(struct ieee80211com *, enum ieee80211_state, int);
215 1.61 dyoung static int atw_tune(struct atw_softc *);
216 1.61 dyoung static void atw_recv_mgmt(struct ieee80211com *, struct mbuf *,
217 1.61 dyoung struct ieee80211_node *, int, int, u_int32_t);
218 1.61 dyoung
219 1.61 dyoung /* Device initialization */
220 1.61 dyoung static void atw_wcsr_init(struct atw_softc *);
221 1.61 dyoung static void atw_cmdr_init(struct atw_softc *);
222 1.61 dyoung static void atw_tofs2_init(struct atw_softc *);
223 1.61 dyoung static void atw_txlmt_init(struct atw_softc *);
224 1.61 dyoung static void atw_test1_init(struct atw_softc *);
225 1.61 dyoung static void atw_rf_reset(struct atw_softc *);
226 1.61 dyoung static void atw_cfp_init(struct atw_softc *);
227 1.61 dyoung static void atw_tofs0_init(struct atw_softc *);
228 1.61 dyoung static void atw_ifs_init(struct atw_softc *);
229 1.61 dyoung static void atw_response_times_init(struct atw_softc *);
230 1.61 dyoung static void atw_bbp_io_init(struct atw_softc *);
231 1.61 dyoung
232 1.61 dyoung /* RAM/ROM utilities */
233 1.61 dyoung static void atw_clear_sram(struct atw_softc *);
234 1.61 dyoung static void atw_write_sram(struct atw_softc *, u_int, u_int8_t *, u_int);
235 1.61 dyoung static int atw_read_srom(struct atw_softc *);
236 1.61 dyoung
237 1.61 dyoung /* BSS setup */
238 1.61 dyoung static void atw_tsf(struct atw_softc *);
239 1.61 dyoung static void atw_start_beacon(struct atw_softc *, int);
240 1.61 dyoung static void atw_write_bssid(struct atw_softc *);
241 1.61 dyoung static void atw_write_ssid(struct atw_softc *);
242 1.61 dyoung static void atw_write_sup_rates(struct atw_softc *);
243 1.61 dyoung static void atw_write_wep(struct atw_softc *);
244 1.61 dyoung
245 1.61 dyoung /* Media */
246 1.61 dyoung static int atw_media_change(struct ifnet *);
247 1.61 dyoung static void atw_media_status(struct ifnet *, struct ifmediareq *);
248 1.61 dyoung
249 1.61 dyoung static void atw_filter_setup(struct atw_softc *);
250 1.61 dyoung
251 1.61 dyoung /* 802.11 utilities */
252 1.61 dyoung static void atw_frame_setdurs(struct atw_softc *,
253 1.61 dyoung struct atw_frame *, int, int);
254 1.61 dyoung static struct ieee80211_node *atw_node_alloc(struct ieee80211com *);
255 1.61 dyoung static void atw_node_free(struct ieee80211com *,
256 1.61 dyoung struct ieee80211_node *);
257 1.61 dyoung static void atw_recv_beacon(struct ieee80211com *, struct mbuf *,
258 1.61 dyoung struct ieee80211_node *, int, int,
259 1.61 dyoung u_int32_t);
260 1.61 dyoung static __inline uint32_t atw_last_even_tsft(uint32_t, uint32_t,
261 1.61 dyoung uint32_t);
262 1.61 dyoung static __inline void atw_tsft(struct atw_softc *, uint32_t *,
263 1.61 dyoung uint32_t *);
264 1.1 dyoung
265 1.61 dyoung /*
266 1.61 dyoung * Tuner/transceiver/modem
267 1.61 dyoung */
268 1.61 dyoung static void atw_bbp_io_enable(struct atw_softc *, int);
269 1.1 dyoung
270 1.1 dyoung /* RFMD RF3000 Baseband Processor */
271 1.1 dyoung static int atw_rf3000_init(struct atw_softc *);
272 1.61 dyoung static int atw_rf3000_tune(struct atw_softc *, u_int);
273 1.1 dyoung static int atw_rf3000_write(struct atw_softc *, u_int, u_int);
274 1.1 dyoung
275 1.1 dyoung /* Silicon Laboratories Si4126 RF/IF Synthesizer */
276 1.61 dyoung static void atw_si4126_tune(struct atw_softc *, u_int);
277 1.61 dyoung static void atw_si4126_write(struct atw_softc *, u_int, u_int);
278 1.1 dyoung
279 1.1 dyoung const struct atw_txthresh_tab atw_txthresh_tab_lo[] = ATW_TXTHRESH_TAB_LO_RATE;
280 1.1 dyoung const struct atw_txthresh_tab atw_txthresh_tab_hi[] = ATW_TXTHRESH_TAB_HI_RATE;
281 1.1 dyoung
282 1.1 dyoung const char *atw_tx_state[] = {
283 1.1 dyoung "STOPPED",
284 1.26 dyoung "RUNNING - read descriptor",
285 1.26 dyoung "RUNNING - transmitting",
286 1.26 dyoung "RUNNING - filling fifo", /* XXX */
287 1.1 dyoung "SUSPENDED",
288 1.26 dyoung "RUNNING -- write descriptor",
289 1.26 dyoung "RUNNING -- write last descriptor",
290 1.26 dyoung "RUNNING - fifo full"
291 1.1 dyoung };
292 1.1 dyoung
293 1.1 dyoung const char *atw_rx_state[] = {
294 1.1 dyoung "STOPPED",
295 1.26 dyoung "RUNNING - read descriptor",
296 1.26 dyoung "RUNNING - check this packet, pre-fetch next",
297 1.26 dyoung "RUNNING - wait for reception",
298 1.1 dyoung "SUSPENDED",
299 1.26 dyoung "RUNNING - write descriptor",
300 1.26 dyoung "RUNNING - flush fifo",
301 1.26 dyoung "RUNNING - fifo drain"
302 1.1 dyoung };
303 1.1 dyoung
304 1.1 dyoung int
305 1.1 dyoung atw_activate(struct device *self, enum devact act)
306 1.1 dyoung {
307 1.1 dyoung struct atw_softc *sc = (struct atw_softc *)self;
308 1.1 dyoung int rv = 0, s;
309 1.1 dyoung
310 1.1 dyoung s = splnet();
311 1.1 dyoung switch (act) {
312 1.1 dyoung case DVACT_ACTIVATE:
313 1.1 dyoung rv = EOPNOTSUPP;
314 1.1 dyoung break;
315 1.1 dyoung
316 1.1 dyoung case DVACT_DEACTIVATE:
317 1.1 dyoung if_deactivate(&sc->sc_ic.ic_if);
318 1.1 dyoung break;
319 1.1 dyoung }
320 1.1 dyoung splx(s);
321 1.1 dyoung return rv;
322 1.1 dyoung }
323 1.1 dyoung
324 1.1 dyoung /*
325 1.1 dyoung * atw_enable:
326 1.1 dyoung *
327 1.1 dyoung * Enable the ADM8211 chip.
328 1.1 dyoung */
329 1.1 dyoung int
330 1.23 dyoung atw_enable(struct atw_softc *sc)
331 1.1 dyoung {
332 1.1 dyoung
333 1.1 dyoung if (ATW_IS_ENABLED(sc) == 0) {
334 1.1 dyoung if (sc->sc_enable != NULL && (*sc->sc_enable)(sc) != 0) {
335 1.1 dyoung printf("%s: device enable failed\n",
336 1.1 dyoung sc->sc_dev.dv_xname);
337 1.1 dyoung return (EIO);
338 1.1 dyoung }
339 1.1 dyoung sc->sc_flags |= ATWF_ENABLED;
340 1.1 dyoung }
341 1.1 dyoung return (0);
342 1.1 dyoung }
343 1.1 dyoung
344 1.1 dyoung /*
345 1.1 dyoung * atw_disable:
346 1.1 dyoung *
347 1.1 dyoung * Disable the ADM8211 chip.
348 1.1 dyoung */
349 1.1 dyoung void
350 1.23 dyoung atw_disable(struct atw_softc *sc)
351 1.1 dyoung {
352 1.1 dyoung if (!ATW_IS_ENABLED(sc))
353 1.1 dyoung return;
354 1.1 dyoung if (sc->sc_disable != NULL)
355 1.1 dyoung (*sc->sc_disable)(sc);
356 1.1 dyoung sc->sc_flags &= ~ATWF_ENABLED;
357 1.1 dyoung }
358 1.1 dyoung
359 1.1 dyoung /* Returns -1 on failure. */
360 1.62 dyoung static int
361 1.1 dyoung atw_read_srom(struct atw_softc *sc)
362 1.1 dyoung {
363 1.1 dyoung struct seeprom_descriptor sd;
364 1.1 dyoung u_int32_t reg;
365 1.1 dyoung
366 1.1 dyoung (void)memset(&sd, 0, sizeof(sd));
367 1.1 dyoung
368 1.1 dyoung reg = ATW_READ(sc, ATW_TEST0);
369 1.1 dyoung
370 1.1 dyoung if ((reg & (ATW_TEST0_EPNE|ATW_TEST0_EPSNM)) != 0) {
371 1.1 dyoung printf("%s: bad or missing/bad SROM\n", sc->sc_dev.dv_xname);
372 1.1 dyoung return -1;
373 1.1 dyoung }
374 1.1 dyoung
375 1.1 dyoung switch (reg & ATW_TEST0_EPTYP_MASK) {
376 1.1 dyoung case ATW_TEST0_EPTYP_93c66:
377 1.1 dyoung ATW_DPRINTF(("%s: 93c66 SROM\n", sc->sc_dev.dv_xname));
378 1.1 dyoung sc->sc_sromsz = 512;
379 1.1 dyoung sd.sd_chip = C56_66;
380 1.1 dyoung break;
381 1.1 dyoung case ATW_TEST0_EPTYP_93c46:
382 1.1 dyoung ATW_DPRINTF(("%s: 93c46 SROM\n", sc->sc_dev.dv_xname));
383 1.1 dyoung sc->sc_sromsz = 128;
384 1.1 dyoung sd.sd_chip = C46;
385 1.1 dyoung break;
386 1.1 dyoung default:
387 1.1 dyoung printf("%s: unknown SROM type %d\n", sc->sc_dev.dv_xname,
388 1.1 dyoung MASK_AND_RSHIFT(reg, ATW_TEST0_EPTYP_MASK));
389 1.1 dyoung return -1;
390 1.1 dyoung }
391 1.1 dyoung
392 1.1 dyoung sc->sc_srom = malloc(sc->sc_sromsz, M_DEVBUF, M_NOWAIT);
393 1.1 dyoung
394 1.1 dyoung if (sc->sc_srom == NULL) {
395 1.1 dyoung printf("%s: unable to allocate SROM buffer\n",
396 1.1 dyoung sc->sc_dev.dv_xname);
397 1.1 dyoung return -1;
398 1.1 dyoung }
399 1.1 dyoung
400 1.1 dyoung (void)memset(sc->sc_srom, 0, sc->sc_sromsz);
401 1.1 dyoung
402 1.1 dyoung /* ADM8211 has a single 32-bit register for controlling the
403 1.1 dyoung * 93cx6 SROM. Bit SRS enables the serial port. There is no
404 1.1 dyoung * "ready" bit. The ADM8211 input/output sense is the reverse
405 1.1 dyoung * of read_seeprom's.
406 1.1 dyoung */
407 1.1 dyoung sd.sd_tag = sc->sc_st;
408 1.1 dyoung sd.sd_bsh = sc->sc_sh;
409 1.1 dyoung sd.sd_regsize = 4;
410 1.1 dyoung sd.sd_control_offset = ATW_SPR;
411 1.1 dyoung sd.sd_status_offset = ATW_SPR;
412 1.1 dyoung sd.sd_dataout_offset = ATW_SPR;
413 1.1 dyoung sd.sd_CK = ATW_SPR_SCLK;
414 1.1 dyoung sd.sd_CS = ATW_SPR_SCS;
415 1.1 dyoung sd.sd_DI = ATW_SPR_SDO;
416 1.1 dyoung sd.sd_DO = ATW_SPR_SDI;
417 1.1 dyoung sd.sd_MS = ATW_SPR_SRS;
418 1.1 dyoung sd.sd_RDY = 0;
419 1.1 dyoung
420 1.1 dyoung if (!read_seeprom(&sd, sc->sc_srom, 0, sc->sc_sromsz/2)) {
421 1.1 dyoung printf("%s: could not read SROM\n", sc->sc_dev.dv_xname);
422 1.1 dyoung free(sc->sc_srom, M_DEVBUF);
423 1.1 dyoung return -1;
424 1.1 dyoung }
425 1.1 dyoung #ifdef ATW_DEBUG
426 1.1 dyoung {
427 1.1 dyoung int i;
428 1.15 dyoung ATW_DPRINTF(("\nSerial EEPROM:\n\t"));
429 1.1 dyoung for (i = 0; i < sc->sc_sromsz/2; i = i + 1) {
430 1.1 dyoung if (((i % 8) == 0) && (i != 0)) {
431 1.15 dyoung ATW_DPRINTF(("\n\t"));
432 1.1 dyoung }
433 1.15 dyoung ATW_DPRINTF((" 0x%x", sc->sc_srom[i]));
434 1.1 dyoung }
435 1.15 dyoung ATW_DPRINTF(("\n"));
436 1.1 dyoung }
437 1.1 dyoung #endif /* ATW_DEBUG */
438 1.1 dyoung return 0;
439 1.1 dyoung }
440 1.1 dyoung
441 1.1 dyoung #ifdef ATW_DEBUG
442 1.1 dyoung static void
443 1.1 dyoung atw_print_regs(struct atw_softc *sc, const char *where)
444 1.1 dyoung {
445 1.1 dyoung #define PRINTREG(sc, reg) \
446 1.1 dyoung ATW_DPRINTF2(("%s: reg[ " #reg " / %03x ] = %08x\n", \
447 1.1 dyoung sc->sc_dev.dv_xname, reg, ATW_READ(sc, reg)))
448 1.1 dyoung
449 1.1 dyoung ATW_DPRINTF2(("%s: %s\n", sc->sc_dev.dv_xname, where));
450 1.1 dyoung
451 1.1 dyoung PRINTREG(sc, ATW_PAR);
452 1.1 dyoung PRINTREG(sc, ATW_FRCTL);
453 1.1 dyoung PRINTREG(sc, ATW_TDR);
454 1.1 dyoung PRINTREG(sc, ATW_WTDP);
455 1.1 dyoung PRINTREG(sc, ATW_RDR);
456 1.1 dyoung PRINTREG(sc, ATW_WRDP);
457 1.1 dyoung PRINTREG(sc, ATW_RDB);
458 1.1 dyoung PRINTREG(sc, ATW_CSR3A);
459 1.1 dyoung PRINTREG(sc, ATW_TDBD);
460 1.1 dyoung PRINTREG(sc, ATW_TDBP);
461 1.1 dyoung PRINTREG(sc, ATW_STSR);
462 1.1 dyoung PRINTREG(sc, ATW_CSR5A);
463 1.1 dyoung PRINTREG(sc, ATW_NAR);
464 1.1 dyoung PRINTREG(sc, ATW_CSR6A);
465 1.1 dyoung PRINTREG(sc, ATW_IER);
466 1.1 dyoung PRINTREG(sc, ATW_CSR7A);
467 1.1 dyoung PRINTREG(sc, ATW_LPC);
468 1.1 dyoung PRINTREG(sc, ATW_TEST1);
469 1.1 dyoung PRINTREG(sc, ATW_SPR);
470 1.1 dyoung PRINTREG(sc, ATW_TEST0);
471 1.1 dyoung PRINTREG(sc, ATW_WCSR);
472 1.1 dyoung PRINTREG(sc, ATW_WPDR);
473 1.1 dyoung PRINTREG(sc, ATW_GPTMR);
474 1.1 dyoung PRINTREG(sc, ATW_GPIO);
475 1.1 dyoung PRINTREG(sc, ATW_BBPCTL);
476 1.1 dyoung PRINTREG(sc, ATW_SYNCTL);
477 1.1 dyoung PRINTREG(sc, ATW_PLCPHD);
478 1.1 dyoung PRINTREG(sc, ATW_MMIWADDR);
479 1.1 dyoung PRINTREG(sc, ATW_MMIRADDR1);
480 1.1 dyoung PRINTREG(sc, ATW_MMIRADDR2);
481 1.1 dyoung PRINTREG(sc, ATW_TXBR);
482 1.1 dyoung PRINTREG(sc, ATW_CSR15A);
483 1.1 dyoung PRINTREG(sc, ATW_ALCSTAT);
484 1.1 dyoung PRINTREG(sc, ATW_TOFS2);
485 1.1 dyoung PRINTREG(sc, ATW_CMDR);
486 1.1 dyoung PRINTREG(sc, ATW_PCIC);
487 1.1 dyoung PRINTREG(sc, ATW_PMCSR);
488 1.1 dyoung PRINTREG(sc, ATW_PAR0);
489 1.1 dyoung PRINTREG(sc, ATW_PAR1);
490 1.1 dyoung PRINTREG(sc, ATW_MAR0);
491 1.1 dyoung PRINTREG(sc, ATW_MAR1);
492 1.1 dyoung PRINTREG(sc, ATW_ATIMDA0);
493 1.1 dyoung PRINTREG(sc, ATW_ABDA1);
494 1.1 dyoung PRINTREG(sc, ATW_BSSID0);
495 1.1 dyoung PRINTREG(sc, ATW_TXLMT);
496 1.1 dyoung PRINTREG(sc, ATW_MIBCNT);
497 1.1 dyoung PRINTREG(sc, ATW_BCNT);
498 1.1 dyoung PRINTREG(sc, ATW_TSFTH);
499 1.1 dyoung PRINTREG(sc, ATW_TSC);
500 1.1 dyoung PRINTREG(sc, ATW_SYNRF);
501 1.1 dyoung PRINTREG(sc, ATW_BPLI);
502 1.1 dyoung PRINTREG(sc, ATW_CAP0);
503 1.1 dyoung PRINTREG(sc, ATW_CAP1);
504 1.1 dyoung PRINTREG(sc, ATW_RMD);
505 1.1 dyoung PRINTREG(sc, ATW_CFPP);
506 1.1 dyoung PRINTREG(sc, ATW_TOFS0);
507 1.1 dyoung PRINTREG(sc, ATW_TOFS1);
508 1.1 dyoung PRINTREG(sc, ATW_IFST);
509 1.1 dyoung PRINTREG(sc, ATW_RSPT);
510 1.1 dyoung PRINTREG(sc, ATW_TSFTL);
511 1.1 dyoung PRINTREG(sc, ATW_WEPCTL);
512 1.1 dyoung PRINTREG(sc, ATW_WESK);
513 1.1 dyoung PRINTREG(sc, ATW_WEPCNT);
514 1.1 dyoung PRINTREG(sc, ATW_MACTEST);
515 1.1 dyoung PRINTREG(sc, ATW_FER);
516 1.1 dyoung PRINTREG(sc, ATW_FEMR);
517 1.1 dyoung PRINTREG(sc, ATW_FPSR);
518 1.1 dyoung PRINTREG(sc, ATW_FFER);
519 1.1 dyoung #undef PRINTREG
520 1.1 dyoung }
521 1.1 dyoung #endif /* ATW_DEBUG */
522 1.1 dyoung
523 1.1 dyoung /*
524 1.1 dyoung * Finish attaching an ADMtek ADM8211 MAC. Called by bus-specific front-end.
525 1.1 dyoung */
526 1.1 dyoung void
527 1.1 dyoung atw_attach(struct atw_softc *sc)
528 1.1 dyoung {
529 1.14 dyoung static const u_int8_t empty_macaddr[IEEE80211_ADDR_LEN] = {
530 1.14 dyoung 0x00, 0x00, 0x00, 0x00, 0x00, 0x00
531 1.14 dyoung };
532 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
533 1.1 dyoung struct ifnet *ifp = &ic->ic_if;
534 1.1 dyoung int country_code, error, i, nrate;
535 1.1 dyoung u_int32_t reg;
536 1.1 dyoung static const char *type_strings[] = {"Intersil (not supported)",
537 1.1 dyoung "RFMD", "Marvel (not supported)"};
538 1.1 dyoung
539 1.1 dyoung sc->sc_txth = atw_txthresh_tab_lo;
540 1.1 dyoung
541 1.1 dyoung SIMPLEQ_INIT(&sc->sc_txfreeq);
542 1.1 dyoung SIMPLEQ_INIT(&sc->sc_txdirtyq);
543 1.1 dyoung
544 1.1 dyoung #ifdef ATW_DEBUG
545 1.1 dyoung atw_print_regs(sc, "atw_attach");
546 1.1 dyoung #endif /* ATW_DEBUG */
547 1.1 dyoung
548 1.1 dyoung /*
549 1.1 dyoung * Allocate the control data structures, and create and load the
550 1.1 dyoung * DMA map for it.
551 1.1 dyoung */
552 1.1 dyoung if ((error = bus_dmamem_alloc(sc->sc_dmat,
553 1.1 dyoung sizeof(struct atw_control_data), PAGE_SIZE, 0, &sc->sc_cdseg,
554 1.1 dyoung 1, &sc->sc_cdnseg, 0)) != 0) {
555 1.1 dyoung printf("%s: unable to allocate control data, error = %d\n",
556 1.1 dyoung sc->sc_dev.dv_xname, error);
557 1.1 dyoung goto fail_0;
558 1.1 dyoung }
559 1.1 dyoung
560 1.1 dyoung if ((error = bus_dmamem_map(sc->sc_dmat, &sc->sc_cdseg, sc->sc_cdnseg,
561 1.1 dyoung sizeof(struct atw_control_data), (caddr_t *)&sc->sc_control_data,
562 1.1 dyoung BUS_DMA_COHERENT)) != 0) {
563 1.1 dyoung printf("%s: unable to map control data, error = %d\n",
564 1.1 dyoung sc->sc_dev.dv_xname, error);
565 1.1 dyoung goto fail_1;
566 1.1 dyoung }
567 1.1 dyoung
568 1.1 dyoung if ((error = bus_dmamap_create(sc->sc_dmat,
569 1.1 dyoung sizeof(struct atw_control_data), 1,
570 1.1 dyoung sizeof(struct atw_control_data), 0, 0, &sc->sc_cddmamap)) != 0) {
571 1.1 dyoung printf("%s: unable to create control data DMA map, "
572 1.1 dyoung "error = %d\n", sc->sc_dev.dv_xname, error);
573 1.1 dyoung goto fail_2;
574 1.1 dyoung }
575 1.1 dyoung
576 1.1 dyoung if ((error = bus_dmamap_load(sc->sc_dmat, sc->sc_cddmamap,
577 1.1 dyoung sc->sc_control_data, sizeof(struct atw_control_data), NULL,
578 1.1 dyoung 0)) != 0) {
579 1.1 dyoung printf("%s: unable to load control data DMA map, error = %d\n",
580 1.1 dyoung sc->sc_dev.dv_xname, error);
581 1.1 dyoung goto fail_3;
582 1.1 dyoung }
583 1.1 dyoung
584 1.1 dyoung /*
585 1.1 dyoung * Create the transmit buffer DMA maps.
586 1.1 dyoung */
587 1.1 dyoung sc->sc_ntxsegs = ATW_NTXSEGS;
588 1.1 dyoung for (i = 0; i < ATW_TXQUEUELEN; i++) {
589 1.1 dyoung if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES,
590 1.1 dyoung sc->sc_ntxsegs, MCLBYTES, 0, 0,
591 1.1 dyoung &sc->sc_txsoft[i].txs_dmamap)) != 0) {
592 1.1 dyoung printf("%s: unable to create tx DMA map %d, "
593 1.1 dyoung "error = %d\n", sc->sc_dev.dv_xname, i, error);
594 1.1 dyoung goto fail_4;
595 1.1 dyoung }
596 1.1 dyoung }
597 1.1 dyoung
598 1.1 dyoung /*
599 1.1 dyoung * Create the receive buffer DMA maps.
600 1.1 dyoung */
601 1.1 dyoung for (i = 0; i < ATW_NRXDESC; i++) {
602 1.1 dyoung if ((error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, 1,
603 1.1 dyoung MCLBYTES, 0, 0, &sc->sc_rxsoft[i].rxs_dmamap)) != 0) {
604 1.1 dyoung printf("%s: unable to create rx DMA map %d, "
605 1.1 dyoung "error = %d\n", sc->sc_dev.dv_xname, i, error);
606 1.1 dyoung goto fail_5;
607 1.1 dyoung }
608 1.14 dyoung }
609 1.14 dyoung for (i = 0; i < ATW_NRXDESC; i++) {
610 1.1 dyoung sc->sc_rxsoft[i].rxs_mbuf = NULL;
611 1.1 dyoung }
612 1.1 dyoung
613 1.1 dyoung /* Reset the chip to a known state. */
614 1.1 dyoung atw_reset(sc);
615 1.1 dyoung
616 1.1 dyoung if (atw_read_srom(sc) == -1)
617 1.1 dyoung return;
618 1.1 dyoung
619 1.1 dyoung sc->sc_rftype = MASK_AND_RSHIFT(sc->sc_srom[ATW_SR_CSR20],
620 1.1 dyoung ATW_SR_RFTYPE_MASK);
621 1.1 dyoung
622 1.1 dyoung sc->sc_bbptype = MASK_AND_RSHIFT(sc->sc_srom[ATW_SR_CSR20],
623 1.1 dyoung ATW_SR_BBPTYPE_MASK);
624 1.1 dyoung
625 1.1 dyoung if (sc->sc_rftype > sizeof(type_strings)/sizeof(type_strings[0])) {
626 1.1 dyoung printf("%s: unknown RF\n", sc->sc_dev.dv_xname);
627 1.1 dyoung return;
628 1.1 dyoung }
629 1.1 dyoung if (sc->sc_bbptype > sizeof(type_strings)/sizeof(type_strings[0])) {
630 1.1 dyoung printf("%s: unknown BBP\n", sc->sc_dev.dv_xname);
631 1.1 dyoung return;
632 1.1 dyoung }
633 1.1 dyoung
634 1.1 dyoung printf("%s: %s RF, %s BBP", sc->sc_dev.dv_xname,
635 1.1 dyoung type_strings[sc->sc_rftype], type_strings[sc->sc_bbptype]);
636 1.1 dyoung
637 1.1 dyoung /* XXX There exists a Linux driver which seems to use RFType = 0 for
638 1.1 dyoung * MARVEL. My bug, or theirs?
639 1.1 dyoung */
640 1.1 dyoung
641 1.1 dyoung reg = LSHIFT(sc->sc_rftype, ATW_SYNCTL_RFTYPE_MASK);
642 1.1 dyoung
643 1.1 dyoung switch (sc->sc_rftype) {
644 1.1 dyoung case ATW_RFTYPE_INTERSIL:
645 1.1 dyoung reg |= ATW_SYNCTL_CS1;
646 1.1 dyoung break;
647 1.1 dyoung case ATW_RFTYPE_RFMD:
648 1.1 dyoung reg |= ATW_SYNCTL_CS0;
649 1.1 dyoung break;
650 1.1 dyoung case ATW_RFTYPE_MARVEL:
651 1.1 dyoung break;
652 1.1 dyoung }
653 1.1 dyoung
654 1.1 dyoung sc->sc_synctl_rd = reg | ATW_SYNCTL_RD;
655 1.1 dyoung sc->sc_synctl_wr = reg | ATW_SYNCTL_WR;
656 1.1 dyoung
657 1.1 dyoung reg = LSHIFT(sc->sc_bbptype, ATW_BBPCTL_TYPE_MASK);
658 1.1 dyoung
659 1.1 dyoung switch (sc->sc_bbptype) {
660 1.33 dyoung case ATW_BBPTYPE_INTERSIL:
661 1.1 dyoung reg |= ATW_BBPCTL_TWI;
662 1.1 dyoung break;
663 1.33 dyoung case ATW_BBPTYPE_RFMD:
664 1.1 dyoung reg |= ATW_BBPCTL_RF3KADDR_ADDR | ATW_BBPCTL_NEGEDGE_DO |
665 1.1 dyoung ATW_BBPCTL_CCA_ACTLO;
666 1.1 dyoung break;
667 1.33 dyoung case ATW_BBPTYPE_MARVEL:
668 1.1 dyoung break;
669 1.35 dyoung case ATW_C_BBPTYPE_RFMD:
670 1.35 dyoung printf("%s: ADM8211C MAC/RFMD BBP not supported yet.\n",
671 1.35 dyoung sc->sc_dev.dv_xname);
672 1.35 dyoung break;
673 1.1 dyoung }
674 1.1 dyoung
675 1.1 dyoung sc->sc_bbpctl_wr = reg | ATW_BBPCTL_WR;
676 1.1 dyoung sc->sc_bbpctl_rd = reg | ATW_BBPCTL_RD;
677 1.1 dyoung
678 1.1 dyoung /*
679 1.1 dyoung * From this point forward, the attachment cannot fail. A failure
680 1.1 dyoung * before this point releases all resources that may have been
681 1.1 dyoung * allocated.
682 1.1 dyoung */
683 1.1 dyoung sc->sc_flags |= ATWF_ATTACHED /* | ATWF_RTSCTS */;
684 1.1 dyoung
685 1.15 dyoung ATW_DPRINTF((" SROM MAC %04x%04x%04x",
686 1.1 dyoung htole16(sc->sc_srom[ATW_SR_MAC00]),
687 1.1 dyoung htole16(sc->sc_srom[ATW_SR_MAC01]),
688 1.1 dyoung htole16(sc->sc_srom[ATW_SR_MAC10])));
689 1.1 dyoung
690 1.1 dyoung country_code = MASK_AND_RSHIFT(sc->sc_srom[ATW_SR_CTRY_CR29],
691 1.1 dyoung ATW_SR_CTRY_MASK);
692 1.1 dyoung
693 1.3 dyoung #define ADD_CHANNEL(_ic, _chan) do { \
694 1.3 dyoung _ic->ic_channels[_chan].ic_flags = IEEE80211_CHAN_B; \
695 1.3 dyoung _ic->ic_channels[_chan].ic_freq = \
696 1.3 dyoung ieee80211_ieee2mhz(_chan, _ic->ic_channels[_chan].ic_flags);\
697 1.3 dyoung } while (0)
698 1.3 dyoung
699 1.1 dyoung /* Find available channels */
700 1.1 dyoung switch (country_code) {
701 1.1 dyoung case COUNTRY_MMK2: /* 1-14 */
702 1.3 dyoung ADD_CHANNEL(ic, 14);
703 1.2 dyoung /*FALLTHROUGH*/
704 1.1 dyoung case COUNTRY_ETSI: /* 1-13 */
705 1.1 dyoung for (i = 1; i <= 13; i++)
706 1.3 dyoung ADD_CHANNEL(ic, i);
707 1.1 dyoung break;
708 1.1 dyoung case COUNTRY_FCC: /* 1-11 */
709 1.1 dyoung case COUNTRY_IC: /* 1-11 */
710 1.1 dyoung for (i = 1; i <= 11; i++)
711 1.3 dyoung ADD_CHANNEL(ic, i);
712 1.1 dyoung break;
713 1.1 dyoung case COUNTRY_MMK: /* 14 */
714 1.3 dyoung ADD_CHANNEL(ic, 14);
715 1.1 dyoung break;
716 1.1 dyoung case COUNTRY_FRANCE: /* 10-13 */
717 1.1 dyoung for (i = 10; i <= 13; i++)
718 1.3 dyoung ADD_CHANNEL(ic, i);
719 1.1 dyoung break;
720 1.1 dyoung default: /* assume channels 10-11 */
721 1.1 dyoung case COUNTRY_SPAIN: /* 10-11 */
722 1.1 dyoung for (i = 10; i <= 11; i++)
723 1.3 dyoung ADD_CHANNEL(ic, i);
724 1.1 dyoung break;
725 1.1 dyoung }
726 1.1 dyoung
727 1.1 dyoung /* Read the MAC address. */
728 1.1 dyoung reg = ATW_READ(sc, ATW_PAR0);
729 1.1 dyoung ic->ic_myaddr[0] = MASK_AND_RSHIFT(reg, ATW_PAR0_PAB0_MASK);
730 1.1 dyoung ic->ic_myaddr[1] = MASK_AND_RSHIFT(reg, ATW_PAR0_PAB1_MASK);
731 1.1 dyoung ic->ic_myaddr[2] = MASK_AND_RSHIFT(reg, ATW_PAR0_PAB2_MASK);
732 1.1 dyoung ic->ic_myaddr[3] = MASK_AND_RSHIFT(reg, ATW_PAR0_PAB3_MASK);
733 1.1 dyoung reg = ATW_READ(sc, ATW_PAR1);
734 1.1 dyoung ic->ic_myaddr[4] = MASK_AND_RSHIFT(reg, ATW_PAR1_PAB4_MASK);
735 1.1 dyoung ic->ic_myaddr[5] = MASK_AND_RSHIFT(reg, ATW_PAR1_PAB5_MASK);
736 1.1 dyoung
737 1.1 dyoung if (IEEE80211_ADDR_EQ(ic->ic_myaddr, empty_macaddr)) {
738 1.1 dyoung printf(" could not get mac address, attach failed\n");
739 1.1 dyoung return;
740 1.1 dyoung }
741 1.1 dyoung
742 1.1 dyoung printf(" 802.11 address %s\n", ether_sprintf(ic->ic_myaddr));
743 1.1 dyoung
744 1.1 dyoung memcpy(ifp->if_xname, sc->sc_dev.dv_xname, IFNAMSIZ);
745 1.1 dyoung ifp->if_softc = sc;
746 1.1 dyoung ifp->if_flags = IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST |
747 1.1 dyoung IFF_NOTRAILERS;
748 1.1 dyoung ifp->if_ioctl = atw_ioctl;
749 1.1 dyoung ifp->if_start = atw_start;
750 1.1 dyoung ifp->if_watchdog = atw_watchdog;
751 1.1 dyoung ifp->if_init = atw_init;
752 1.1 dyoung ifp->if_stop = atw_stop;
753 1.1 dyoung IFQ_SET_READY(&ifp->if_snd);
754 1.1 dyoung
755 1.1 dyoung ic->ic_phytype = IEEE80211_T_DS;
756 1.1 dyoung ic->ic_opmode = IEEE80211_M_STA;
757 1.3 dyoung ic->ic_caps = IEEE80211_C_PMGT | IEEE80211_C_IBSS |
758 1.3 dyoung IEEE80211_C_HOSTAP | IEEE80211_C_MONITOR | IEEE80211_C_WEP;
759 1.1 dyoung
760 1.1 dyoung nrate = 0;
761 1.3 dyoung ic->ic_sup_rates[IEEE80211_MODE_11B].rs_rates[nrate++] = 2;
762 1.3 dyoung ic->ic_sup_rates[IEEE80211_MODE_11B].rs_rates[nrate++] = 4;
763 1.3 dyoung ic->ic_sup_rates[IEEE80211_MODE_11B].rs_rates[nrate++] = 11;
764 1.3 dyoung ic->ic_sup_rates[IEEE80211_MODE_11B].rs_rates[nrate++] = 22;
765 1.3 dyoung ic->ic_sup_rates[IEEE80211_MODE_11B].rs_nrates = nrate;
766 1.1 dyoung
767 1.1 dyoung /*
768 1.1 dyoung * Call MI attach routines.
769 1.1 dyoung */
770 1.1 dyoung
771 1.1 dyoung if_attach(ifp);
772 1.1 dyoung ieee80211_ifattach(ifp);
773 1.1 dyoung
774 1.3 dyoung sc->sc_newstate = ic->ic_newstate;
775 1.3 dyoung ic->ic_newstate = atw_newstate;
776 1.1 dyoung
777 1.3 dyoung sc->sc_recv_mgmt = ic->ic_recv_mgmt;
778 1.3 dyoung ic->ic_recv_mgmt = atw_recv_mgmt;
779 1.1 dyoung
780 1.3 dyoung sc->sc_node_free = ic->ic_node_free;
781 1.3 dyoung ic->ic_node_free = atw_node_free;
782 1.3 dyoung
783 1.3 dyoung sc->sc_node_alloc = ic->ic_node_alloc;
784 1.3 dyoung ic->ic_node_alloc = atw_node_alloc;
785 1.1 dyoung
786 1.1 dyoung /* possibly we should fill in our own sc_send_prresp, since
787 1.1 dyoung * the ADM8211 is probably sending probe responses in ad hoc
788 1.1 dyoung * mode.
789 1.1 dyoung */
790 1.1 dyoung
791 1.3 dyoung /* complete initialization */
792 1.3 dyoung ieee80211_media_init(ifp, atw_media_change, atw_media_status);
793 1.3 dyoung callout_init(&sc->sc_scan_ch);
794 1.3 dyoung
795 1.1 dyoung #if NBPFILTER > 0
796 1.12 dyoung bpfattach2(ifp, DLT_IEEE802_11_RADIO,
797 1.12 dyoung sizeof(struct ieee80211_frame) + 64, &sc->sc_radiobpf);
798 1.1 dyoung #endif
799 1.1 dyoung
800 1.1 dyoung /*
801 1.1 dyoung * Make sure the interface is shutdown during reboot.
802 1.1 dyoung */
803 1.1 dyoung sc->sc_sdhook = shutdownhook_establish(atw_shutdown, sc);
804 1.1 dyoung if (sc->sc_sdhook == NULL)
805 1.1 dyoung printf("%s: WARNING: unable to establish shutdown hook\n",
806 1.1 dyoung sc->sc_dev.dv_xname);
807 1.1 dyoung
808 1.1 dyoung /*
809 1.1 dyoung * Add a suspend hook to make sure we come back up after a
810 1.1 dyoung * resume.
811 1.1 dyoung */
812 1.1 dyoung sc->sc_powerhook = powerhook_establish(atw_power, sc);
813 1.1 dyoung if (sc->sc_powerhook == NULL)
814 1.1 dyoung printf("%s: WARNING: unable to establish power hook\n",
815 1.1 dyoung sc->sc_dev.dv_xname);
816 1.1 dyoung
817 1.12 dyoung memset(&sc->sc_rxtapu, 0, sizeof(sc->sc_rxtapu));
818 1.12 dyoung sc->sc_rxtap.ar_ihdr.it_len = sizeof(sc->sc_rxtapu);
819 1.12 dyoung sc->sc_rxtap.ar_ihdr.it_present = ATW_RX_RADIOTAP_PRESENT;
820 1.12 dyoung
821 1.12 dyoung memset(&sc->sc_txtapu, 0, sizeof(sc->sc_txtapu));
822 1.12 dyoung sc->sc_txtap.at_ihdr.it_len = sizeof(sc->sc_txtapu);
823 1.12 dyoung sc->sc_txtap.at_ihdr.it_present = ATW_TX_RADIOTAP_PRESENT;
824 1.12 dyoung
825 1.1 dyoung return;
826 1.1 dyoung
827 1.1 dyoung /*
828 1.1 dyoung * Free any resources we've allocated during the failed attach
829 1.1 dyoung * attempt. Do this in reverse order and fall through.
830 1.1 dyoung */
831 1.1 dyoung fail_5:
832 1.1 dyoung for (i = 0; i < ATW_NRXDESC; i++) {
833 1.1 dyoung if (sc->sc_rxsoft[i].rxs_dmamap == NULL)
834 1.1 dyoung continue;
835 1.1 dyoung bus_dmamap_destroy(sc->sc_dmat, sc->sc_rxsoft[i].rxs_dmamap);
836 1.1 dyoung }
837 1.1 dyoung fail_4:
838 1.1 dyoung for (i = 0; i < ATW_TXQUEUELEN; i++) {
839 1.1 dyoung if (sc->sc_txsoft[i].txs_dmamap == NULL)
840 1.1 dyoung continue;
841 1.1 dyoung bus_dmamap_destroy(sc->sc_dmat, sc->sc_txsoft[i].txs_dmamap);
842 1.1 dyoung }
843 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, sc->sc_cddmamap);
844 1.1 dyoung fail_3:
845 1.1 dyoung bus_dmamap_destroy(sc->sc_dmat, sc->sc_cddmamap);
846 1.1 dyoung fail_2:
847 1.1 dyoung bus_dmamem_unmap(sc->sc_dmat, (caddr_t)sc->sc_control_data,
848 1.1 dyoung sizeof(struct atw_control_data));
849 1.1 dyoung fail_1:
850 1.1 dyoung bus_dmamem_free(sc->sc_dmat, &sc->sc_cdseg, sc->sc_cdnseg);
851 1.1 dyoung fail_0:
852 1.1 dyoung return;
853 1.1 dyoung }
854 1.1 dyoung
855 1.3 dyoung static struct ieee80211_node *
856 1.3 dyoung atw_node_alloc(struct ieee80211com *ic)
857 1.3 dyoung {
858 1.3 dyoung struct atw_softc *sc = (struct atw_softc *)ic->ic_if.if_softc;
859 1.3 dyoung struct ieee80211_node *ni = (*sc->sc_node_alloc)(ic);
860 1.3 dyoung
861 1.3 dyoung DPRINTF(sc, ("%s: alloc node %p\n", sc->sc_dev.dv_xname, ni));
862 1.3 dyoung return ni;
863 1.3 dyoung }
864 1.3 dyoung
865 1.3 dyoung static void
866 1.3 dyoung atw_node_free(struct ieee80211com *ic, struct ieee80211_node *ni)
867 1.3 dyoung {
868 1.3 dyoung struct atw_softc *sc = (struct atw_softc *)ic->ic_if.if_softc;
869 1.3 dyoung
870 1.3 dyoung DPRINTF(sc, ("%s: freeing node %p %s\n", sc->sc_dev.dv_xname, ni,
871 1.3 dyoung ether_sprintf(ni->ni_bssid)));
872 1.3 dyoung (*sc->sc_node_free)(ic, ni);
873 1.3 dyoung }
874 1.3 dyoung
875 1.1 dyoung /*
876 1.1 dyoung * atw_reset:
877 1.1 dyoung *
878 1.1 dyoung * Perform a soft reset on the ADM8211.
879 1.1 dyoung */
880 1.1 dyoung void
881 1.23 dyoung atw_reset(struct atw_softc *sc)
882 1.1 dyoung {
883 1.1 dyoung int i;
884 1.63 dyoung uint32_t lpc;
885 1.63 dyoung
886 1.63 dyoung ATW_WRITE(sc, ATW_NAR, 0x0);
887 1.63 dyoung DELAY(20 * 1000);
888 1.63 dyoung
889 1.63 dyoung /* Reference driver has a cryptic remark indicating that this might
890 1.63 dyoung * power-on the chip. I know that it turns off power-saving....
891 1.63 dyoung */
892 1.63 dyoung ATW_WRITE(sc, ATW_FRCTL, 0x0);
893 1.1 dyoung
894 1.1 dyoung ATW_WRITE(sc, ATW_PAR, ATW_PAR_SWR);
895 1.1 dyoung
896 1.63 dyoung for (i = 0; i < 50; i++) {
897 1.63 dyoung if (ATW_READ(sc, ATW_PAR) == 0)
898 1.1 dyoung break;
899 1.63 dyoung DELAY(1000);
900 1.1 dyoung }
901 1.1 dyoung
902 1.63 dyoung /* ... and then pause 100ms longer for good measure. */
903 1.63 dyoung DELAY(100 * 1000);
904 1.63 dyoung
905 1.1 dyoung DPRINTF2(sc, ("%s: atw_reset %d iterations\n", sc->sc_dev.dv_xname, i));
906 1.1 dyoung
907 1.1 dyoung if (ATW_ISSET(sc, ATW_PAR, ATW_PAR_SWR))
908 1.1 dyoung printf("%s: reset failed to complete\n", sc->sc_dev.dv_xname);
909 1.1 dyoung
910 1.63 dyoung /*
911 1.63 dyoung * Initialize the PCI Access Register.
912 1.63 dyoung */
913 1.63 dyoung sc->sc_busmode = ATW_PAR_PBL_8DW;
914 1.63 dyoung
915 1.63 dyoung ATW_WRITE(sc, ATW_PAR, sc->sc_busmode);
916 1.63 dyoung DPRINTF(sc, ("%s: ATW_PAR %08x busmode %08x\n", sc->sc_dev.dv_xname,
917 1.63 dyoung ATW_READ(sc, ATW_PAR), sc->sc_busmode));
918 1.63 dyoung
919 1.63 dyoung /* Turn off maximum power saving, etc.
920 1.63 dyoung *
921 1.63 dyoung * XXX Following example of reference driver, should I set
922 1.63 dyoung * an AID of 1? It didn't seem to help....
923 1.63 dyoung */
924 1.63 dyoung ATW_WRITE(sc, ATW_FRCTL, 0x0);
925 1.63 dyoung
926 1.63 dyoung DELAY(100 * 1000);
927 1.1 dyoung
928 1.1 dyoung /* Recall EEPROM. */
929 1.1 dyoung ATW_SET(sc, ATW_TEST0, ATW_TEST0_EPRLD);
930 1.1 dyoung
931 1.1 dyoung DELAY(10 * 1000);
932 1.1 dyoung
933 1.63 dyoung lpc = ATW_READ(sc, ATW_LPC);
934 1.63 dyoung
935 1.63 dyoung DPRINTF(sc, ("%s: ATW_LPC %#08x\n", __func__, lpc));
936 1.63 dyoung
937 1.1 dyoung /* A reset seems to affect the SRAM contents, so put them into
938 1.1 dyoung * a known state.
939 1.1 dyoung */
940 1.1 dyoung atw_clear_sram(sc);
941 1.1 dyoung
942 1.63 dyoung memset(sc->sc_bssid, 0xff, sizeof(sc->sc_bssid));
943 1.1 dyoung }
944 1.1 dyoung
945 1.1 dyoung static void
946 1.23 dyoung atw_clear_sram(struct atw_softc *sc)
947 1.1 dyoung {
948 1.1 dyoung memset(sc->sc_sram, 0, sizeof(sc->sc_sram));
949 1.1 dyoung /* XXX not for revision 0x20. */
950 1.1 dyoung atw_write_sram(sc, 0, sc->sc_sram, sizeof(sc->sc_sram));
951 1.1 dyoung }
952 1.1 dyoung
953 1.1 dyoung /* TBD atw_init
954 1.1 dyoung *
955 1.3 dyoung * set MAC based on ic->ic_bss->myaddr
956 1.1 dyoung * write WEP keys
957 1.1 dyoung * set TX rate
958 1.1 dyoung */
959 1.1 dyoung
960 1.64 dyoung /* Tell the ADM8211 to raise ATW_INTR_LINKOFF if 7 beacon intervals pass
961 1.64 dyoung * without receiving a beacon with the preferred BSSID & SSID.
962 1.64 dyoung * atw_write_bssid & atw_write_ssid set the BSSID & SSID.
963 1.1 dyoung */
964 1.64 dyoung static void
965 1.64 dyoung atw_wcsr_init(struct atw_softc *sc)
966 1.1 dyoung {
967 1.64 dyoung uint32_t wcsr;
968 1.1 dyoung
969 1.64 dyoung wcsr = ATW_READ(sc, ATW_WCSR);
970 1.64 dyoung wcsr &= ~(ATW_WCSR_BLN_MASK|ATW_WCSR_LSOE|ATW_WCSR_MPRE|ATW_WCSR_LSOE);
971 1.64 dyoung wcsr |= LSHIFT(7, ATW_WCSR_BLN_MASK);
972 1.64 dyoung ATW_WRITE(sc, ATW_WCSR, wcsr); /* XXX resets wake-up status bits */
973 1.1 dyoung
974 1.64 dyoung DPRINTF(sc, ("%s: %s reg[WCSR] = %08x\n",
975 1.64 dyoung sc->sc_dev.dv_xname, __func__, ATW_READ(sc, ATW_WCSR)));
976 1.64 dyoung }
977 1.1 dyoung
978 1.64 dyoung /* Turn off power management. Set Rx store-and-forward mode. */
979 1.64 dyoung static void
980 1.64 dyoung atw_cmdr_init(struct atw_softc *sc)
981 1.64 dyoung {
982 1.64 dyoung uint32_t cmdr;
983 1.64 dyoung cmdr = ATW_READ(sc, ATW_CMDR);
984 1.64 dyoung cmdr &= ~ATW_CMDR_APM;
985 1.64 dyoung cmdr |= ATW_CMDR_RTE;
986 1.64 dyoung cmdr &= ~ATW_CMDR_DRT_MASK;
987 1.64 dyoung cmdr |= ATW_CMDR_DRT_SF;
988 1.3 dyoung
989 1.64 dyoung ATW_WRITE(sc, ATW_CMDR, cmdr);
990 1.64 dyoung }
991 1.1 dyoung
992 1.64 dyoung static void
993 1.64 dyoung atw_tofs2_init(struct atw_softc *sc)
994 1.64 dyoung {
995 1.64 dyoung uint32_t tofs2;
996 1.14 dyoung /* XXX this magic can probably be figured out from the RFMD docs */
997 1.64 dyoung #ifndef ATW_REFSLAVE
998 1.64 dyoung tofs2 = LSHIFT(4, ATW_TOFS2_PWR1UP_MASK) | /* 8 ms = 4 * 2 ms */
999 1.1 dyoung LSHIFT(13, ATW_TOFS2_PWR0PAPE_MASK) | /* 13 us */
1000 1.1 dyoung LSHIFT(8, ATW_TOFS2_PWR1PAPE_MASK) | /* 8 us */
1001 1.1 dyoung LSHIFT(5, ATW_TOFS2_PWR0TRSW_MASK) | /* 5 us */
1002 1.1 dyoung LSHIFT(12, ATW_TOFS2_PWR1TRSW_MASK) | /* 12 us */
1003 1.1 dyoung LSHIFT(13, ATW_TOFS2_PWR0PE2_MASK) | /* 13 us */
1004 1.1 dyoung LSHIFT(4, ATW_TOFS2_PWR1PE2_MASK) | /* 4 us */
1005 1.1 dyoung LSHIFT(5, ATW_TOFS2_PWR0TXPE_MASK); /* 5 us */
1006 1.64 dyoung #else
1007 1.64 dyoung /* XXX new magic from reference driver source */
1008 1.64 dyoung tofs2 = LSHIFT(8, ATW_TOFS2_PWR1UP_MASK) | /* 8 ms = 4 * 2 ms */
1009 1.64 dyoung LSHIFT(8, ATW_TOFS2_PWR0PAPE_MASK) | /* 13 us */
1010 1.64 dyoung LSHIFT(1, ATW_TOFS2_PWR1PAPE_MASK) | /* 8 us */
1011 1.64 dyoung LSHIFT(5, ATW_TOFS2_PWR0TRSW_MASK) | /* 5 us */
1012 1.64 dyoung LSHIFT(12, ATW_TOFS2_PWR1TRSW_MASK) | /* 12 us */
1013 1.64 dyoung LSHIFT(13, ATW_TOFS2_PWR0PE2_MASK) | /* 13 us */
1014 1.64 dyoung LSHIFT(1, ATW_TOFS2_PWR1PE2_MASK) | /* 4 us */
1015 1.64 dyoung LSHIFT(8, ATW_TOFS2_PWR0TXPE_MASK); /* 5 us */
1016 1.64 dyoung #endif
1017 1.64 dyoung ATW_WRITE(sc, ATW_TOFS2, tofs2);
1018 1.64 dyoung }
1019 1.1 dyoung
1020 1.64 dyoung static void
1021 1.64 dyoung atw_nar_init(struct atw_softc *sc)
1022 1.64 dyoung {
1023 1.64 dyoung ATW_WRITE(sc, ATW_NAR, ATW_NAR_SF|ATW_NAR_PB);
1024 1.64 dyoung }
1025 1.64 dyoung
1026 1.64 dyoung static void
1027 1.64 dyoung atw_txlmt_init(struct atw_softc *sc)
1028 1.64 dyoung {
1029 1.1 dyoung ATW_WRITE(sc, ATW_TXLMT, LSHIFT(512, ATW_TXLMT_MTMLT_MASK) |
1030 1.64 dyoung LSHIFT(1, ATW_TXLMT_SRTYLIM_MASK));
1031 1.64 dyoung }
1032 1.1 dyoung
1033 1.64 dyoung static void
1034 1.64 dyoung atw_test1_init(struct atw_softc *sc)
1035 1.64 dyoung {
1036 1.64 dyoung uint32_t test1;
1037 1.64 dyoung
1038 1.64 dyoung test1 = ATW_READ(sc, ATW_TEST1);
1039 1.64 dyoung test1 &= ~(ATW_TEST1_DBGREAD_MASK|ATW_TEST1_CONTROL);
1040 1.64 dyoung /* XXX magic 0x1 */
1041 1.64 dyoung test1 |= LSHIFT(0x1, ATW_TEST1_DBGREAD_MASK) | ATW_TEST1_CONTROL;
1042 1.64 dyoung ATW_WRITE(sc, ATW_TEST1, test1);
1043 1.64 dyoung }
1044 1.64 dyoung
1045 1.64 dyoung static void
1046 1.64 dyoung atw_rf_reset(struct atw_softc *sc)
1047 1.64 dyoung {
1048 1.1 dyoung /* XXX this resets an Intersil RF front-end? */
1049 1.1 dyoung /* TBD condition on Intersil RFType? */
1050 1.1 dyoung ATW_WRITE(sc, ATW_SYNRF, ATW_SYNRF_INTERSIL_EN);
1051 1.1 dyoung DELAY(10 * 1000);
1052 1.1 dyoung ATW_WRITE(sc, ATW_SYNRF, 0);
1053 1.1 dyoung DELAY(5 * 1000);
1054 1.64 dyoung }
1055 1.64 dyoung
1056 1.64 dyoung /* Set 16 TU max duration for the contention-free period (CFP). */
1057 1.64 dyoung static void
1058 1.64 dyoung atw_cfp_init(struct atw_softc *sc)
1059 1.64 dyoung {
1060 1.64 dyoung uint32_t cfpp;
1061 1.1 dyoung
1062 1.64 dyoung cfpp = ATW_READ(sc, ATW_CFPP);
1063 1.64 dyoung cfpp &= ~ATW_CFPP_CFPMD;
1064 1.64 dyoung cfpp |= LSHIFT(16, ATW_CFPP_CFPMD);
1065 1.64 dyoung ATW_WRITE(sc, ATW_CFPP, cfpp);
1066 1.64 dyoung }
1067 1.1 dyoung
1068 1.64 dyoung static void
1069 1.64 dyoung atw_tofs0_init(struct atw_softc *sc)
1070 1.64 dyoung {
1071 1.1 dyoung /* XXX I guess that the Cardbus clock is 22MHz?
1072 1.1 dyoung * I am assuming that the role of ATW_TOFS0_USCNT is
1073 1.1 dyoung * to divide the bus clock to get a 1MHz clock---the datasheet is not
1074 1.1 dyoung * very clear on this point. It says in the datasheet that it is
1075 1.1 dyoung * possible for the ADM8211 to accomodate bus speeds between 22MHz
1076 1.1 dyoung * and 33MHz; maybe this is the way? I see a binary-only driver write
1077 1.1 dyoung * these values. These values are also the power-on default.
1078 1.1 dyoung */
1079 1.1 dyoung ATW_WRITE(sc, ATW_TOFS0,
1080 1.1 dyoung LSHIFT(22, ATW_TOFS0_USCNT_MASK) |
1081 1.1 dyoung ATW_TOFS0_TUCNT_MASK /* set all bits in TUCNT */);
1082 1.64 dyoung }
1083 1.1 dyoung
1084 1.64 dyoung /* Initialize interframe spacing: 802.11b slot time, SIFS, DIFS, EIFS. */
1085 1.64 dyoung static void
1086 1.64 dyoung atw_ifs_init(struct atw_softc *sc)
1087 1.64 dyoung {
1088 1.64 dyoung uint32_t ifst;
1089 1.64 dyoung /* XXX EIFS=0x64, SIFS=110 are used by the reference driver.
1090 1.64 dyoung * Go figure.
1091 1.1 dyoung */
1092 1.64 dyoung ifst = LSHIFT(IEEE80211_DUR_DS_SLOT, ATW_IFST_SLOT_MASK) |
1093 1.64 dyoung LSHIFT(22 * 5 /* IEEE80211_DUR_DS_SIFS */ /* # of 22MHz cycles */,
1094 1.1 dyoung ATW_IFST_SIFS_MASK) |
1095 1.1 dyoung LSHIFT(IEEE80211_DUR_DS_DIFS, ATW_IFST_DIFS_MASK) |
1096 1.1 dyoung LSHIFT(0x64 /* IEEE80211_DUR_DS_EIFS */, ATW_IFST_EIFS_MASK);
1097 1.1 dyoung
1098 1.64 dyoung ATW_WRITE(sc, ATW_IFST, ifst);
1099 1.64 dyoung }
1100 1.1 dyoung
1101 1.64 dyoung static void
1102 1.64 dyoung atw_response_times_init(struct atw_softc *sc)
1103 1.64 dyoung {
1104 1.64 dyoung /* XXX More magic. Relates to ACK timing? The datasheet seems to
1105 1.64 dyoung * indicate that the MAC expects at least SIFS + MIRT microseconds
1106 1.64 dyoung * to pass after it transmits a frame that requires a response;
1107 1.64 dyoung * it waits at most SIFS + MART microseconds for the response.
1108 1.64 dyoung * Surely this is not the ACK timeout?
1109 1.64 dyoung */
1110 1.1 dyoung ATW_WRITE(sc, ATW_RSPT, LSHIFT(0xffff, ATW_RSPT_MART_MASK) |
1111 1.1 dyoung LSHIFT(0xff, ATW_RSPT_MIRT_MASK));
1112 1.64 dyoung }
1113 1.1 dyoung
1114 1.64 dyoung /* Set up the MMI read/write addresses for the baseband. The Tx/Rx
1115 1.64 dyoung * engines read and write baseband registers after Rx and before
1116 1.64 dyoung * Tx, respectively.
1117 1.64 dyoung */
1118 1.64 dyoung static void
1119 1.64 dyoung atw_bbp_io_init(struct atw_softc *sc)
1120 1.64 dyoung {
1121 1.1 dyoung switch (sc->sc_bbptype) {
1122 1.1 dyoung case ATW_BBPTYPE_INTERSIL:
1123 1.1 dyoung ATW_WRITE(sc, ATW_MMIWADDR, ATW_MMIWADDR_INTERSIL);
1124 1.1 dyoung ATW_WRITE(sc, ATW_MMIRADDR1, ATW_MMIRADDR1_INTERSIL);
1125 1.1 dyoung ATW_WRITE(sc, ATW_MMIRADDR2, ATW_MMIRADDR2_INTERSIL);
1126 1.1 dyoung break;
1127 1.1 dyoung case ATW_BBPTYPE_MARVEL:
1128 1.64 dyoung /* TBD find out the Marvel settings. */
1129 1.1 dyoung break;
1130 1.1 dyoung case ATW_BBPTYPE_RFMD:
1131 1.64 dyoung default:
1132 1.1 dyoung ATW_WRITE(sc, ATW_MMIWADDR, ATW_MMIWADDR_RFMD);
1133 1.1 dyoung ATW_WRITE(sc, ATW_MMIRADDR1, ATW_MMIRADDR1_RFMD);
1134 1.1 dyoung ATW_WRITE(sc, ATW_MMIRADDR2, ATW_MMIRADDR2_RFMD);
1135 1.1 dyoung break;
1136 1.1 dyoung }
1137 1.64 dyoung ATW_WRITE(sc, ATW_MACTEST, ATW_MACTEST_MMI_USETXCLK);
1138 1.64 dyoung }
1139 1.1 dyoung
1140 1.64 dyoung /*
1141 1.64 dyoung * atw_init: [ ifnet interface function ]
1142 1.64 dyoung *
1143 1.64 dyoung * Initialize the interface. Must be called at splnet().
1144 1.64 dyoung */
1145 1.64 dyoung int
1146 1.64 dyoung atw_init(struct ifnet *ifp)
1147 1.64 dyoung {
1148 1.64 dyoung struct atw_softc *sc = ifp->if_softc;
1149 1.64 dyoung struct ieee80211com *ic = &sc->sc_ic;
1150 1.64 dyoung struct atw_txsoft *txs;
1151 1.64 dyoung struct atw_rxsoft *rxs;
1152 1.64 dyoung int i, error = 0;
1153 1.1 dyoung
1154 1.64 dyoung if ((error = atw_enable(sc)) != 0)
1155 1.1 dyoung goto out;
1156 1.1 dyoung
1157 1.1 dyoung /*
1158 1.64 dyoung * Cancel any pending I/O. This also resets.
1159 1.1 dyoung */
1160 1.64 dyoung atw_stop(ifp, 0);
1161 1.64 dyoung
1162 1.64 dyoung ic->ic_bss->ni_chan = ic->ic_ibss_chan;
1163 1.64 dyoung DPRINTF(sc, ("%s: channel %d freq %d flags 0x%04x\n",
1164 1.64 dyoung __func__, ieee80211_chan2ieee(ic, ic->ic_bss->ni_chan),
1165 1.64 dyoung ic->ic_bss->ni_chan->ic_freq, ic->ic_bss->ni_chan->ic_flags));
1166 1.1 dyoung
1167 1.64 dyoung atw_wcsr_init(sc);
1168 1.64 dyoung
1169 1.64 dyoung atw_cmdr_init(sc);
1170 1.64 dyoung
1171 1.64 dyoung /* Set data rate for PLCP Signal field, 1Mbps = 10 x 100Kb/s.
1172 1.1 dyoung *
1173 1.64 dyoung * XXX Set transmit power for ATIM, RTS, Beacon.
1174 1.1 dyoung */
1175 1.64 dyoung ATW_WRITE(sc, ATW_PLCPHD, LSHIFT(10, ATW_PLCPHD_SIGNAL_MASK) |
1176 1.64 dyoung LSHIFT(0xb0, ATW_PLCPHD_SERVICE_MASK));
1177 1.64 dyoung
1178 1.64 dyoung atw_tofs2_init(sc);
1179 1.64 dyoung
1180 1.64 dyoung atw_nar_init(sc);
1181 1.64 dyoung
1182 1.64 dyoung atw_txlmt_init(sc);
1183 1.64 dyoung
1184 1.64 dyoung atw_test1_init(sc);
1185 1.64 dyoung
1186 1.64 dyoung atw_rf_reset(sc);
1187 1.64 dyoung
1188 1.64 dyoung atw_cfp_init(sc);
1189 1.64 dyoung
1190 1.64 dyoung atw_tofs0_init(sc);
1191 1.64 dyoung
1192 1.64 dyoung atw_ifs_init(sc);
1193 1.64 dyoung
1194 1.64 dyoung /* XXX Fall asleep after one second of inactivity.
1195 1.64 dyoung * XXX A frame may only dribble in for 65536us.
1196 1.64 dyoung */
1197 1.64 dyoung ATW_WRITE(sc, ATW_RMD,
1198 1.64 dyoung LSHIFT(1, ATW_RMD_PCNT) | LSHIFT(0xffff, ATW_RMD_RMRD_MASK));
1199 1.64 dyoung
1200 1.64 dyoung atw_response_times_init(sc);
1201 1.64 dyoung
1202 1.64 dyoung atw_bbp_io_init(sc);
1203 1.64 dyoung
1204 1.64 dyoung ATW_WRITE(sc, ATW_STSR, 0xffffffff);
1205 1.1 dyoung
1206 1.64 dyoung if ((error = atw_rf3000_init(sc)) != 0)
1207 1.64 dyoung goto out;
1208 1.1 dyoung
1209 1.1 dyoung ATW_WRITE(sc, ATW_PAR, sc->sc_busmode);
1210 1.1 dyoung DPRINTF(sc, ("%s: ATW_PAR %08x busmode %08x\n", sc->sc_dev.dv_xname,
1211 1.1 dyoung ATW_READ(sc, ATW_PAR), sc->sc_busmode));
1212 1.1 dyoung
1213 1.1 dyoung /*
1214 1.1 dyoung * Initialize the transmit descriptor ring.
1215 1.1 dyoung */
1216 1.1 dyoung memset(sc->sc_txdescs, 0, sizeof(sc->sc_txdescs));
1217 1.1 dyoung for (i = 0; i < ATW_NTXDESC; i++) {
1218 1.51 dyoung sc->sc_txdescs[i].at_ctl = 0;
1219 1.1 dyoung /* no transmit chaining */
1220 1.51 dyoung sc->sc_txdescs[i].at_flags = 0 /* ATW_TXFLAG_TCH */;
1221 1.1 dyoung sc->sc_txdescs[i].at_buf2 =
1222 1.1 dyoung htole32(ATW_CDTXADDR(sc, ATW_NEXTTX(i)));
1223 1.1 dyoung }
1224 1.1 dyoung /* use ring mode */
1225 1.51 dyoung sc->sc_txdescs[ATW_NTXDESC - 1].at_flags |= htole32(ATW_TXFLAG_TER);
1226 1.1 dyoung ATW_CDTXSYNC(sc, 0, ATW_NTXDESC,
1227 1.1 dyoung BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
1228 1.1 dyoung sc->sc_txfree = ATW_NTXDESC;
1229 1.1 dyoung sc->sc_txnext = 0;
1230 1.1 dyoung
1231 1.1 dyoung /*
1232 1.1 dyoung * Initialize the transmit job descriptors.
1233 1.1 dyoung */
1234 1.1 dyoung SIMPLEQ_INIT(&sc->sc_txfreeq);
1235 1.1 dyoung SIMPLEQ_INIT(&sc->sc_txdirtyq);
1236 1.1 dyoung for (i = 0; i < ATW_TXQUEUELEN; i++) {
1237 1.1 dyoung txs = &sc->sc_txsoft[i];
1238 1.1 dyoung txs->txs_mbuf = NULL;
1239 1.1 dyoung SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
1240 1.1 dyoung }
1241 1.1 dyoung
1242 1.1 dyoung /*
1243 1.1 dyoung * Initialize the receive descriptor and receive job
1244 1.1 dyoung * descriptor rings.
1245 1.1 dyoung */
1246 1.1 dyoung for (i = 0; i < ATW_NRXDESC; i++) {
1247 1.1 dyoung rxs = &sc->sc_rxsoft[i];
1248 1.1 dyoung if (rxs->rxs_mbuf == NULL) {
1249 1.1 dyoung if ((error = atw_add_rxbuf(sc, i)) != 0) {
1250 1.1 dyoung printf("%s: unable to allocate or map rx "
1251 1.1 dyoung "buffer %d, error = %d\n",
1252 1.1 dyoung sc->sc_dev.dv_xname, i, error);
1253 1.1 dyoung /*
1254 1.1 dyoung * XXX Should attempt to run with fewer receive
1255 1.1 dyoung * XXX buffers instead of just failing.
1256 1.1 dyoung */
1257 1.1 dyoung atw_rxdrain(sc);
1258 1.1 dyoung goto out;
1259 1.1 dyoung }
1260 1.1 dyoung } else
1261 1.1 dyoung ATW_INIT_RXDESC(sc, i);
1262 1.1 dyoung }
1263 1.1 dyoung sc->sc_rxptr = 0;
1264 1.1 dyoung
1265 1.1 dyoung /*
1266 1.1 dyoung * Initialize the interrupt mask and enable interrupts.
1267 1.1 dyoung */
1268 1.1 dyoung /* normal interrupts */
1269 1.1 dyoung sc->sc_inten = ATW_INTR_TCI | ATW_INTR_TDU | ATW_INTR_RCI |
1270 1.1 dyoung ATW_INTR_NISS | ATW_INTR_LINKON | ATW_INTR_BCNTC;
1271 1.1 dyoung
1272 1.1 dyoung /* abnormal interrupts */
1273 1.1 dyoung sc->sc_inten |= ATW_INTR_TPS | ATW_INTR_TLT | ATW_INTR_TRT |
1274 1.1 dyoung ATW_INTR_TUF | ATW_INTR_RDU | ATW_INTR_RPS | ATW_INTR_AISS |
1275 1.1 dyoung ATW_INTR_FBE | ATW_INTR_LINKOFF | ATW_INTR_TSFTF | ATW_INTR_TSCZ;
1276 1.1 dyoung
1277 1.1 dyoung sc->sc_linkint_mask = ATW_INTR_LINKON | ATW_INTR_LINKOFF |
1278 1.1 dyoung ATW_INTR_BCNTC | ATW_INTR_TSFTF | ATW_INTR_TSCZ;
1279 1.1 dyoung sc->sc_rxint_mask = ATW_INTR_RCI | ATW_INTR_RDU;
1280 1.1 dyoung sc->sc_txint_mask = ATW_INTR_TCI | ATW_INTR_TUF | ATW_INTR_TLT |
1281 1.1 dyoung ATW_INTR_TRT;
1282 1.1 dyoung
1283 1.1 dyoung sc->sc_linkint_mask &= sc->sc_inten;
1284 1.1 dyoung sc->sc_rxint_mask &= sc->sc_inten;
1285 1.1 dyoung sc->sc_txint_mask &= sc->sc_inten;
1286 1.1 dyoung
1287 1.1 dyoung ATW_WRITE(sc, ATW_IER, sc->sc_inten);
1288 1.1 dyoung ATW_WRITE(sc, ATW_STSR, 0xffffffff);
1289 1.1 dyoung
1290 1.1 dyoung DPRINTF(sc, ("%s: ATW_IER %08x, inten %08x\n",
1291 1.1 dyoung sc->sc_dev.dv_xname, ATW_READ(sc, ATW_IER), sc->sc_inten));
1292 1.1 dyoung
1293 1.1 dyoung /*
1294 1.1 dyoung * Give the transmit and receive rings to the ADM8211.
1295 1.1 dyoung */
1296 1.64 dyoung ATW_WRITE(sc, ATW_RDB, ATW_CDRXADDR(sc, sc->sc_rxptr));
1297 1.1 dyoung ATW_WRITE(sc, ATW_TDBD, ATW_CDTXADDR(sc, sc->sc_txnext));
1298 1.64 dyoung
1299 1.64 dyoung sc->sc_txthresh = 0;
1300 1.64 dyoung sc->sc_opmode = ATW_NAR_SR | ATW_NAR_ST |
1301 1.64 dyoung sc->sc_txth[sc->sc_txthresh].txth_opmode;
1302 1.1 dyoung
1303 1.1 dyoung /* common 802.11 configuration */
1304 1.1 dyoung ic->ic_flags &= ~IEEE80211_F_IBSSON;
1305 1.1 dyoung switch (ic->ic_opmode) {
1306 1.1 dyoung case IEEE80211_M_STA:
1307 1.1 dyoung break;
1308 1.1 dyoung case IEEE80211_M_AHDEMO: /* XXX */
1309 1.1 dyoung case IEEE80211_M_IBSS:
1310 1.16 dyoung ic->ic_flags |= IEEE80211_F_IBSSON;
1311 1.16 dyoung /*FALLTHROUGH*/
1312 1.16 dyoung case IEEE80211_M_HOSTAP: /* XXX */
1313 1.1 dyoung break;
1314 1.1 dyoung case IEEE80211_M_MONITOR: /* XXX */
1315 1.1 dyoung break;
1316 1.1 dyoung }
1317 1.1 dyoung
1318 1.1 dyoung switch (ic->ic_opmode) {
1319 1.1 dyoung case IEEE80211_M_AHDEMO:
1320 1.1 dyoung case IEEE80211_M_HOSTAP:
1321 1.3 dyoung ic->ic_bss->ni_intval = ic->ic_lintval;
1322 1.3 dyoung ic->ic_bss->ni_rssi = 0;
1323 1.3 dyoung ic->ic_bss->ni_rstamp = 0;
1324 1.1 dyoung break;
1325 1.10 dyoung default: /* XXX */
1326 1.1 dyoung break;
1327 1.1 dyoung }
1328 1.1 dyoung
1329 1.64 dyoung sc->sc_wepctl = 0;
1330 1.64 dyoung
1331 1.1 dyoung atw_write_ssid(sc);
1332 1.1 dyoung atw_write_sup_rates(sc);
1333 1.3 dyoung if (ic->ic_caps & IEEE80211_C_WEP)
1334 1.1 dyoung atw_write_wep(sc);
1335 1.1 dyoung
1336 1.64 dyoung ic->ic_state = IEEE80211_S_INIT;
1337 1.64 dyoung
1338 1.1 dyoung /*
1339 1.1 dyoung * Set the receive filter. This will start the transmit and
1340 1.1 dyoung * receive processes.
1341 1.1 dyoung */
1342 1.1 dyoung atw_filter_setup(sc);
1343 1.1 dyoung
1344 1.1 dyoung /*
1345 1.1 dyoung * Start the receive process.
1346 1.1 dyoung */
1347 1.1 dyoung ATW_WRITE(sc, ATW_RDR, 0x1);
1348 1.1 dyoung
1349 1.1 dyoung /*
1350 1.1 dyoung * Note that the interface is now running.
1351 1.1 dyoung */
1352 1.1 dyoung ifp->if_flags |= IFF_RUNNING;
1353 1.1 dyoung ifp->if_flags &= ~IFF_OACTIVE;
1354 1.1 dyoung
1355 1.64 dyoung /* send no beacons, yet. */
1356 1.64 dyoung atw_start_beacon(sc, 0);
1357 1.64 dyoung
1358 1.64 dyoung if (ic->ic_opmode == IEEE80211_M_MONITOR)
1359 1.64 dyoung error = ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
1360 1.64 dyoung else
1361 1.10 dyoung error = ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
1362 1.1 dyoung out:
1363 1.1 dyoung if (error) {
1364 1.1 dyoung ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
1365 1.1 dyoung ifp->if_timer = 0;
1366 1.1 dyoung printf("%s: interface not running\n", sc->sc_dev.dv_xname);
1367 1.1 dyoung }
1368 1.1 dyoung #ifdef ATW_DEBUG
1369 1.1 dyoung atw_print_regs(sc, "end of init");
1370 1.1 dyoung #endif /* ATW_DEBUG */
1371 1.1 dyoung
1372 1.1 dyoung return (error);
1373 1.1 dyoung }
1374 1.1 dyoung
1375 1.1 dyoung /* enable == 1: host control of RF3000/Si4126 through ATW_SYNCTL.
1376 1.1 dyoung * 0: MAC control of RF3000/Si4126.
1377 1.1 dyoung *
1378 1.1 dyoung * Applies power, or selects RF front-end? Sets reset condition.
1379 1.1 dyoung *
1380 1.1 dyoung * TBD support non-RFMD BBP, non-SiLabs synth.
1381 1.1 dyoung */
1382 1.1 dyoung static void
1383 1.59 dyoung atw_bbp_io_enable(struct atw_softc *sc, int enable)
1384 1.1 dyoung {
1385 1.1 dyoung if (enable) {
1386 1.1 dyoung ATW_WRITE(sc, ATW_SYNRF,
1387 1.1 dyoung ATW_SYNRF_SELRF|ATW_SYNRF_PE1|ATW_SYNRF_PHYRST);
1388 1.59 dyoung DELAY(atw_bbp_io_enable_delay);
1389 1.1 dyoung } else {
1390 1.1 dyoung ATW_WRITE(sc, ATW_SYNRF, 0);
1391 1.59 dyoung DELAY(atw_bbp_io_disable_delay); /* shorter for some reason */
1392 1.1 dyoung }
1393 1.1 dyoung }
1394 1.1 dyoung
1395 1.1 dyoung static int
1396 1.23 dyoung atw_tune(struct atw_softc *sc)
1397 1.1 dyoung {
1398 1.1 dyoung int rc;
1399 1.59 dyoung u_int chan;
1400 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1401 1.1 dyoung
1402 1.3 dyoung chan = ieee80211_chan2ieee(ic, ic->ic_bss->ni_chan);
1403 1.3 dyoung if (chan == IEEE80211_CHAN_ANY)
1404 1.3 dyoung panic("%s: chan == IEEE80211_CHAN_ANY\n", __func__);
1405 1.3 dyoung
1406 1.3 dyoung if (chan == sc->sc_cur_chan)
1407 1.3 dyoung return 0;
1408 1.1 dyoung
1409 1.1 dyoung DPRINTF(sc, ("%s: chan %d -> %d\n", sc->sc_dev.dv_xname,
1410 1.1 dyoung sc->sc_cur_chan, chan));
1411 1.1 dyoung
1412 1.1 dyoung atw_idle(sc, ATW_NAR_SR|ATW_NAR_ST);
1413 1.1 dyoung
1414 1.59 dyoung atw_si4126_tune(sc, chan);
1415 1.59 dyoung if ((rc = atw_rf3000_tune(sc, chan)) != 0)
1416 1.1 dyoung printf("%s: failed to tune channel %d\n", sc->sc_dev.dv_xname,
1417 1.1 dyoung chan);
1418 1.1 dyoung
1419 1.1 dyoung ATW_WRITE(sc, ATW_NAR, sc->sc_opmode);
1420 1.59 dyoung DELAY(20 * 1000);
1421 1.59 dyoung ATW_WRITE(sc, ATW_RDR, 0x1);
1422 1.1 dyoung
1423 1.1 dyoung if (rc == 0)
1424 1.1 dyoung sc->sc_cur_chan = chan;
1425 1.1 dyoung
1426 1.1 dyoung return rc;
1427 1.1 dyoung }
1428 1.1 dyoung
1429 1.59 dyoung #ifdef ATW_SYNDEBUG
1430 1.1 dyoung static void
1431 1.23 dyoung atw_si4126_print(struct atw_softc *sc)
1432 1.1 dyoung {
1433 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
1434 1.1 dyoung u_int addr, val;
1435 1.1 dyoung
1436 1.1 dyoung if (atw_debug < 3 || (ifp->if_flags & IFF_DEBUG) == 0)
1437 1.1 dyoung return;
1438 1.1 dyoung
1439 1.1 dyoung for (addr = 0; addr <= 8; addr++) {
1440 1.1 dyoung printf("%s: synth[%d] = ", sc->sc_dev.dv_xname, addr);
1441 1.1 dyoung if (atw_si4126_read(sc, addr, &val) == 0) {
1442 1.1 dyoung printf("<unknown> (quitting print-out)\n");
1443 1.1 dyoung break;
1444 1.1 dyoung }
1445 1.1 dyoung printf("%05x\n", val);
1446 1.1 dyoung }
1447 1.1 dyoung }
1448 1.59 dyoung #endif /* ATW_SYNDEBUG */
1449 1.1 dyoung
1450 1.1 dyoung /* Tune to channel chan by adjusting the Si4126 RF/IF synthesizer.
1451 1.1 dyoung *
1452 1.1 dyoung * The RF/IF synthesizer produces two reference frequencies for
1453 1.1 dyoung * the RF2948B transceiver. The first frequency the RF2948B requires
1454 1.1 dyoung * is two times the so-called "intermediate frequency" (IF). Since
1455 1.1 dyoung * a SAW filter on the radio fixes the IF at 374MHz, I program the
1456 1.1 dyoung * Si4126 to generate IF LO = 374MHz x 2 = 748MHz. The second
1457 1.1 dyoung * frequency required by the transceiver is the radio frequency
1458 1.1 dyoung * (RF). This is a superheterodyne transceiver; for f(chan) the
1459 1.1 dyoung * center frequency of the channel we are tuning, RF = f(chan) -
1460 1.1 dyoung * IF.
1461 1.1 dyoung *
1462 1.1 dyoung * XXX I am told by SiLabs that the Si4126 will accept a broader range
1463 1.1 dyoung * of XIN than the 2-25MHz mentioned by the datasheet, even *without*
1464 1.1 dyoung * XINDIV2 = 1. I've tried this (it is necessary to double R) and it
1465 1.1 dyoung * works, but I have still programmed for XINDIV2 = 1 to be safe.
1466 1.1 dyoung */
1467 1.59 dyoung static void
1468 1.59 dyoung atw_si4126_tune(struct atw_softc *sc, u_int chan)
1469 1.1 dyoung {
1470 1.1 dyoung u_int mhz;
1471 1.1 dyoung u_int R;
1472 1.59 dyoung u_int32_t gpio;
1473 1.1 dyoung u_int16_t gain;
1474 1.1 dyoung
1475 1.59 dyoung #ifdef ATW_SYNDEBUG
1476 1.1 dyoung atw_si4126_print(sc);
1477 1.59 dyoung #endif /* ATW_SYNDEBUG */
1478 1.1 dyoung
1479 1.1 dyoung if (chan == 14)
1480 1.1 dyoung mhz = 2484;
1481 1.1 dyoung else
1482 1.1 dyoung mhz = 2412 + 5 * (chan - 1);
1483 1.1 dyoung
1484 1.1 dyoung /* Tune IF to 748MHz to suit the IF LO input of the
1485 1.1 dyoung * RF2494B, which is 2 x IF. No need to set an IF divider
1486 1.1 dyoung * because an IF in 526MHz - 952MHz is allowed.
1487 1.1 dyoung *
1488 1.1 dyoung * XIN is 44.000MHz, so divide it by two to get allowable
1489 1.1 dyoung * range of 2-25MHz. SiLabs tells me that this is not
1490 1.1 dyoung * strictly necessary.
1491 1.1 dyoung */
1492 1.1 dyoung
1493 1.59 dyoung if (atw_xindiv2)
1494 1.59 dyoung R = 44;
1495 1.59 dyoung else
1496 1.59 dyoung R = 88;
1497 1.1 dyoung
1498 1.59 dyoung /* Power-up RF, IF synthesizers. */
1499 1.59 dyoung atw_si4126_write(sc, SI4126_POWER,
1500 1.59 dyoung SI4126_POWER_PDIB|SI4126_POWER_PDRB);
1501 1.1 dyoung
1502 1.59 dyoung /* set LPWR, too? */
1503 1.59 dyoung atw_si4126_write(sc, SI4126_MAIN,
1504 1.59 dyoung (atw_xindiv2) ? SI4126_MAIN_XINDIV2 : 0);
1505 1.1 dyoung
1506 1.59 dyoung /* Set the phase-locked loop gain. If RF2 N > 2047, then
1507 1.59 dyoung * set KP2 to 1.
1508 1.59 dyoung *
1509 1.59 dyoung * REFDIF This is different from the reference driver, which
1510 1.59 dyoung * always sets SI4126_GAIN to 0.
1511 1.59 dyoung */
1512 1.1 dyoung gain = LSHIFT(((mhz - 374) > 2047) ? 1 : 0, SI4126_GAIN_KP2_MASK);
1513 1.1 dyoung
1514 1.59 dyoung atw_si4126_write(sc, SI4126_GAIN, gain);
1515 1.1 dyoung
1516 1.59 dyoung /* XIN = 44MHz.
1517 1.59 dyoung *
1518 1.59 dyoung * If XINDIV2 = 1, IF = N/(2 * R) * XIN. I choose N = 1496,
1519 1.59 dyoung * R = 44 so that 1496/(2 * 44) * 44MHz = 748MHz.
1520 1.59 dyoung *
1521 1.59 dyoung * If XINDIV2 = 0, IF = N/R * XIN. I choose N = 1496, R = 88
1522 1.59 dyoung * so that 1496/88 * 44MHz = 748MHz.
1523 1.1 dyoung */
1524 1.59 dyoung atw_si4126_write(sc, SI4126_IFN, 1496);
1525 1.1 dyoung
1526 1.59 dyoung atw_si4126_write(sc, SI4126_IFR, R);
1527 1.1 dyoung
1528 1.59 dyoung #ifndef ATW_REFSLAVE
1529 1.1 dyoung /* Set RF1 arbitrarily. DO NOT configure RF1 after RF2, because
1530 1.1 dyoung * then RF1 becomes the active RF synthesizer, even on the Si4126,
1531 1.1 dyoung * which has no RF1!
1532 1.1 dyoung */
1533 1.59 dyoung atw_si4126_write(sc, SI4126_RF1R, R);
1534 1.1 dyoung
1535 1.59 dyoung atw_si4126_write(sc, SI4126_RF1N, mhz - 374);
1536 1.59 dyoung #endif
1537 1.1 dyoung
1538 1.1 dyoung /* N/R * XIN = RF. XIN = 44MHz. We desire RF = mhz - IF,
1539 1.1 dyoung * where IF = 374MHz. Let's divide XIN to 1MHz. So R = 44.
1540 1.1 dyoung * Now let's multiply it to mhz. So mhz - IF = N.
1541 1.1 dyoung */
1542 1.59 dyoung atw_si4126_write(sc, SI4126_RF2R, R);
1543 1.1 dyoung
1544 1.59 dyoung atw_si4126_write(sc, SI4126_RF2N, mhz - 374);
1545 1.1 dyoung
1546 1.1 dyoung /* wait 100us from power-up for RF, IF to settle */
1547 1.1 dyoung DELAY(100);
1548 1.1 dyoung
1549 1.59 dyoung gpio = ATW_READ(sc, ATW_GPIO);
1550 1.59 dyoung gpio &= ~(ATW_GPIO_EN_MASK|ATW_GPIO_O_MASK|ATW_GPIO_I_MASK);
1551 1.59 dyoung gpio |= LSHIFT(1, ATW_GPIO_EN_MASK);
1552 1.59 dyoung
1553 1.59 dyoung if ((sc->sc_if.if_flags & IFF_LINK1) != 0 && chan != 14) {
1554 1.59 dyoung /* Set a Prism RF front-end to a special mode for channel 14?
1555 1.59 dyoung *
1556 1.59 dyoung * Apparently the SMC2635W needs this, although I don't think
1557 1.59 dyoung * it has a Prism RF.
1558 1.59 dyoung */
1559 1.59 dyoung gpio |= LSHIFT(1, ATW_GPIO_O_MASK);
1560 1.1 dyoung }
1561 1.59 dyoung ATW_WRITE(sc, ATW_GPIO, gpio);
1562 1.1 dyoung
1563 1.59 dyoung #ifdef ATW_SYNDEBUG
1564 1.1 dyoung atw_si4126_print(sc);
1565 1.59 dyoung #endif /* ATW_SYNDEBUG */
1566 1.1 dyoung }
1567 1.1 dyoung
1568 1.14 dyoung /* Baseline initialization of RF3000 BBP: set CCA mode and enable antenna
1569 1.14 dyoung * diversity.
1570 1.1 dyoung *
1571 1.59 dyoung * !!!
1572 1.59 dyoung * !!! Call this w/ Tx/Rx suspended, atw_idle(, ATW_NAR_ST|ATW_NAR_SR).
1573 1.59 dyoung * !!!
1574 1.1 dyoung */
1575 1.1 dyoung static int
1576 1.23 dyoung atw_rf3000_init(struct atw_softc *sc)
1577 1.1 dyoung {
1578 1.1 dyoung int rc = 0;
1579 1.1 dyoung
1580 1.59 dyoung atw_bbp_io_enable(sc, 1);
1581 1.59 dyoung
1582 1.59 dyoung /* CCA is acquisition sensitive */
1583 1.59 dyoung rc = atw_rf3000_write(sc, RF3000_CCACTL,
1584 1.59 dyoung LSHIFT(RF3000_CCACTL_MODE_BOTH, RF3000_CCACTL_MODE_MASK));
1585 1.1 dyoung
1586 1.59 dyoung if (rc != 0)
1587 1.59 dyoung goto out;
1588 1.1 dyoung
1589 1.1 dyoung /* enable diversity */
1590 1.1 dyoung rc = atw_rf3000_write(sc, RF3000_DIVCTL, RF3000_DIVCTL_ENABLE);
1591 1.1 dyoung
1592 1.1 dyoung if (rc != 0)
1593 1.1 dyoung goto out;
1594 1.1 dyoung
1595 1.1 dyoung /* sensible setting from a binary-only driver */
1596 1.1 dyoung rc = atw_rf3000_write(sc, RF3000_GAINCTL,
1597 1.1 dyoung LSHIFT(0x1d, RF3000_GAINCTL_TXVGC_MASK));
1598 1.1 dyoung
1599 1.1 dyoung if (rc != 0)
1600 1.1 dyoung goto out;
1601 1.1 dyoung
1602 1.1 dyoung /* magic from a binary-only driver */
1603 1.1 dyoung rc = atw_rf3000_write(sc, RF3000_LOGAINCAL,
1604 1.1 dyoung LSHIFT(0x38, RF3000_LOGAINCAL_CAL_MASK));
1605 1.1 dyoung
1606 1.1 dyoung if (rc != 0)
1607 1.1 dyoung goto out;
1608 1.1 dyoung
1609 1.1 dyoung rc = atw_rf3000_write(sc, RF3000_HIGAINCAL, RF3000_HIGAINCAL_DSSSPAD);
1610 1.1 dyoung
1611 1.1 dyoung if (rc != 0)
1612 1.1 dyoung goto out;
1613 1.1 dyoung
1614 1.59 dyoung /* XXX Reference driver remarks that Abocom sets this to 50.
1615 1.59 dyoung * Meaning 0x50, I think.... 50 = 0x32, which would set a bit
1616 1.59 dyoung * in the "reserved" area of register RF3000_OPTIONS1.
1617 1.59 dyoung *
1618 1.59 dyoung * EEPROMs for the ADM8211B contain a setting for this register.
1619 1.59 dyoung */
1620 1.13 dyoung rc = atw_rf3000_write(sc, RF3000_OPTIONS1, 0x0);
1621 1.1 dyoung
1622 1.1 dyoung if (rc != 0)
1623 1.1 dyoung goto out;
1624 1.1 dyoung
1625 1.13 dyoung rc = atw_rf3000_write(sc, RF3000_OPTIONS2, RF3000_OPTIONS2_LNAGS_DELAY);
1626 1.1 dyoung
1627 1.1 dyoung if (rc != 0)
1628 1.1 dyoung goto out;
1629 1.1 dyoung
1630 1.1 dyoung out:
1631 1.59 dyoung atw_bbp_io_enable(sc, 0);
1632 1.1 dyoung return rc;
1633 1.1 dyoung }
1634 1.1 dyoung
1635 1.59 dyoung #ifdef ATW_BBPDEBUG
1636 1.1 dyoung static void
1637 1.23 dyoung atw_rf3000_print(struct atw_softc *sc)
1638 1.1 dyoung {
1639 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
1640 1.1 dyoung u_int addr, val;
1641 1.1 dyoung
1642 1.1 dyoung if (atw_debug < 3 || (ifp->if_flags & IFF_DEBUG) == 0)
1643 1.1 dyoung return;
1644 1.1 dyoung
1645 1.1 dyoung for (addr = 0x01; addr <= 0x15; addr++) {
1646 1.1 dyoung printf("%s: bbp[%d] = \n", sc->sc_dev.dv_xname, addr);
1647 1.1 dyoung if (atw_rf3000_read(sc, addr, &val) != 0) {
1648 1.1 dyoung printf("<unknown> (quitting print-out)\n");
1649 1.1 dyoung break;
1650 1.1 dyoung }
1651 1.1 dyoung printf("%08x\n", val);
1652 1.1 dyoung }
1653 1.1 dyoung }
1654 1.59 dyoung #endif /* ATW_BBPDEBUG */
1655 1.1 dyoung
1656 1.1 dyoung /* Set the power settings on the BBP for channel `chan'. */
1657 1.1 dyoung static int
1658 1.59 dyoung atw_rf3000_tune(struct atw_softc *sc, u_int chan)
1659 1.1 dyoung {
1660 1.1 dyoung int rc = 0;
1661 1.1 dyoung u_int32_t reg;
1662 1.1 dyoung u_int16_t txpower, lpf_cutoff, lna_gs_thresh;
1663 1.1 dyoung
1664 1.1 dyoung txpower = sc->sc_srom[ATW_SR_TXPOWER(chan)];
1665 1.1 dyoung lpf_cutoff = sc->sc_srom[ATW_SR_LPF_CUTOFF(chan)];
1666 1.1 dyoung lna_gs_thresh = sc->sc_srom[ATW_SR_LNA_GS_THRESH(chan)];
1667 1.1 dyoung
1668 1.1 dyoung /* odd channels: LSB, even channels: MSB */
1669 1.1 dyoung if (chan % 2 == 1) {
1670 1.1 dyoung txpower &= 0xFF;
1671 1.1 dyoung lpf_cutoff &= 0xFF;
1672 1.1 dyoung lna_gs_thresh &= 0xFF;
1673 1.1 dyoung } else {
1674 1.1 dyoung txpower >>= 8;
1675 1.1 dyoung lpf_cutoff >>= 8;
1676 1.1 dyoung lna_gs_thresh >>= 8;
1677 1.1 dyoung }
1678 1.1 dyoung
1679 1.59 dyoung #ifdef ATW_BBPDEBUG
1680 1.1 dyoung atw_rf3000_print(sc);
1681 1.59 dyoung #endif /* ATW_BBPDEBUG */
1682 1.1 dyoung
1683 1.1 dyoung DPRINTF(sc, ("%s: chan %d txpower %02x, lpf_cutoff %02x, "
1684 1.1 dyoung "lna_gs_thresh %02x\n",
1685 1.1 dyoung sc->sc_dev.dv_xname, chan, txpower, lpf_cutoff, lna_gs_thresh));
1686 1.1 dyoung
1687 1.59 dyoung atw_bbp_io_enable(sc, 1);
1688 1.17 dyoung
1689 1.1 dyoung if ((rc = atw_rf3000_write(sc, RF3000_GAINCTL,
1690 1.1 dyoung LSHIFT(txpower, RF3000_GAINCTL_TXVGC_MASK))) != 0)
1691 1.1 dyoung goto out;
1692 1.1 dyoung
1693 1.1 dyoung if ((rc = atw_rf3000_write(sc, RF3000_LOGAINCAL, lpf_cutoff)) != 0)
1694 1.1 dyoung goto out;
1695 1.1 dyoung
1696 1.1 dyoung if ((rc = atw_rf3000_write(sc, RF3000_HIGAINCAL, lna_gs_thresh)) != 0)
1697 1.1 dyoung goto out;
1698 1.1 dyoung
1699 1.59 dyoung rc = atw_rf3000_write(sc, RF3000_OPTIONS1, 0x0);
1700 1.59 dyoung
1701 1.59 dyoung if (rc != 0)
1702 1.59 dyoung goto out;
1703 1.59 dyoung
1704 1.59 dyoung rc = atw_rf3000_write(sc, RF3000_OPTIONS2, RF3000_OPTIONS2_LNAGS_DELAY);
1705 1.59 dyoung
1706 1.59 dyoung if (rc != 0)
1707 1.59 dyoung goto out;
1708 1.59 dyoung
1709 1.59 dyoung #ifdef ATW_BBPDEBUG
1710 1.59 dyoung atw_rf3000_print(sc);
1711 1.59 dyoung #endif /* ATW_BBPDEBUG */
1712 1.59 dyoung
1713 1.59 dyoung out:
1714 1.59 dyoung atw_bbp_io_enable(sc, 0);
1715 1.59 dyoung
1716 1.59 dyoung /* set beacon, rts, atim transmit power */
1717 1.1 dyoung reg = ATW_READ(sc, ATW_PLCPHD);
1718 1.1 dyoung reg &= ~ATW_PLCPHD_SERVICE_MASK;
1719 1.28 dyoung reg |= LSHIFT(LSHIFT(txpower, RF3000_GAINCTL_TXVGC_MASK),
1720 1.28 dyoung ATW_PLCPHD_SERVICE_MASK);
1721 1.1 dyoung ATW_WRITE(sc, ATW_PLCPHD, reg);
1722 1.59 dyoung DELAY(2 * 1000);
1723 1.1 dyoung
1724 1.1 dyoung return rc;
1725 1.1 dyoung }
1726 1.1 dyoung
1727 1.1 dyoung /* Write a register on the RF3000 baseband processor using the
1728 1.1 dyoung * registers provided by the ADM8211 for this purpose.
1729 1.1 dyoung *
1730 1.1 dyoung * Return 0 on success.
1731 1.1 dyoung */
1732 1.1 dyoung static int
1733 1.23 dyoung atw_rf3000_write(struct atw_softc *sc, u_int addr, u_int val)
1734 1.1 dyoung {
1735 1.1 dyoung u_int32_t reg;
1736 1.1 dyoung int i;
1737 1.1 dyoung
1738 1.1 dyoung reg = sc->sc_bbpctl_wr |
1739 1.1 dyoung LSHIFT(val & 0xff, ATW_BBPCTL_DATA_MASK) |
1740 1.1 dyoung LSHIFT(addr & 0x7f, ATW_BBPCTL_ADDR_MASK);
1741 1.1 dyoung
1742 1.58 dyoung for (i = 10; --i >= 0; ) {
1743 1.58 dyoung ATW_WRITE(sc, ATW_BBPCTL, reg);
1744 1.58 dyoung DELAY(2000);
1745 1.1 dyoung if (ATW_ISSET(sc, ATW_BBPCTL, ATW_BBPCTL_WR) == 0)
1746 1.1 dyoung break;
1747 1.1 dyoung }
1748 1.1 dyoung
1749 1.1 dyoung if (i < 0) {
1750 1.58 dyoung printf("%s: BBPCTL still busy\n", sc->sc_dev.dv_xname);
1751 1.1 dyoung return ETIMEDOUT;
1752 1.1 dyoung }
1753 1.1 dyoung return 0;
1754 1.1 dyoung }
1755 1.1 dyoung
1756 1.1 dyoung /* Read a register on the RF3000 baseband processor using the registers
1757 1.1 dyoung * the ADM8211 provides for this purpose.
1758 1.1 dyoung *
1759 1.1 dyoung * The 7-bit register address is addr. Record the 8-bit data in the register
1760 1.1 dyoung * in *val.
1761 1.1 dyoung *
1762 1.1 dyoung * Return 0 on success.
1763 1.1 dyoung *
1764 1.1 dyoung * XXX This does not seem to work. The ADM8211 must require more or
1765 1.1 dyoung * different magic to read the chip than to write it. Possibly some
1766 1.1 dyoung * of the magic I have derived from a binary-only driver concerns
1767 1.1 dyoung * the "chip address" (see the RF3000 manual).
1768 1.1 dyoung */
1769 1.59 dyoung #ifdef ATW_BBPDEBUG
1770 1.1 dyoung static int
1771 1.23 dyoung atw_rf3000_read(struct atw_softc *sc, u_int addr, u_int *val)
1772 1.1 dyoung {
1773 1.1 dyoung u_int32_t reg;
1774 1.1 dyoung int i;
1775 1.1 dyoung
1776 1.1 dyoung for (i = 1000; --i >= 0; ) {
1777 1.1 dyoung if (ATW_ISSET(sc, ATW_BBPCTL, ATW_BBPCTL_RD|ATW_BBPCTL_WR) == 0)
1778 1.1 dyoung break;
1779 1.1 dyoung DELAY(100);
1780 1.1 dyoung }
1781 1.1 dyoung
1782 1.1 dyoung if (i < 0) {
1783 1.1 dyoung printf("%s: start atw_rf3000_read, BBPCTL busy\n",
1784 1.1 dyoung sc->sc_dev.dv_xname);
1785 1.1 dyoung return ETIMEDOUT;
1786 1.1 dyoung }
1787 1.1 dyoung
1788 1.1 dyoung reg = sc->sc_bbpctl_rd | LSHIFT(addr & 0x7f, ATW_BBPCTL_ADDR_MASK);
1789 1.1 dyoung
1790 1.1 dyoung ATW_WRITE(sc, ATW_BBPCTL, reg);
1791 1.1 dyoung
1792 1.1 dyoung for (i = 1000; --i >= 0; ) {
1793 1.1 dyoung DELAY(100);
1794 1.1 dyoung if (ATW_ISSET(sc, ATW_BBPCTL, ATW_BBPCTL_RD) == 0)
1795 1.1 dyoung break;
1796 1.1 dyoung }
1797 1.1 dyoung
1798 1.1 dyoung ATW_CLR(sc, ATW_BBPCTL, ATW_BBPCTL_RD);
1799 1.1 dyoung
1800 1.1 dyoung if (i < 0) {
1801 1.1 dyoung printf("%s: atw_rf3000_read wrote %08x; BBPCTL still busy\n",
1802 1.1 dyoung sc->sc_dev.dv_xname, reg);
1803 1.1 dyoung return ETIMEDOUT;
1804 1.1 dyoung }
1805 1.1 dyoung if (val != NULL)
1806 1.1 dyoung *val = MASK_AND_RSHIFT(reg, ATW_BBPCTL_DATA_MASK);
1807 1.1 dyoung return 0;
1808 1.1 dyoung }
1809 1.59 dyoung #endif /* ATW_BBPDEBUG */
1810 1.1 dyoung
1811 1.1 dyoung /* Write a register on the Si4126 RF/IF synthesizer using the registers
1812 1.1 dyoung * provided by the ADM8211 for that purpose.
1813 1.1 dyoung *
1814 1.1 dyoung * val is 18 bits of data, and val is the 4-bit address of the register.
1815 1.1 dyoung *
1816 1.1 dyoung * Return 0 on success.
1817 1.1 dyoung */
1818 1.59 dyoung static void
1819 1.23 dyoung atw_si4126_write(struct atw_softc *sc, u_int addr, u_int val)
1820 1.1 dyoung {
1821 1.59 dyoung uint32_t bits, mask, reg;
1822 1.59 dyoung const int nbits = 22;
1823 1.1 dyoung
1824 1.24 dyoung KASSERT((addr & ~PRESHIFT(SI4126_TWI_ADDR_MASK)) == 0);
1825 1.24 dyoung KASSERT((val & ~PRESHIFT(SI4126_TWI_DATA_MASK)) == 0);
1826 1.24 dyoung
1827 1.24 dyoung bits = LSHIFT(val, SI4126_TWI_DATA_MASK) |
1828 1.24 dyoung LSHIFT(addr, SI4126_TWI_ADDR_MASK);
1829 1.24 dyoung
1830 1.59 dyoung reg = ATW_SYNRF_SELSYN;
1831 1.59 dyoung /* reference driver: reset Si4126 serial bus to initial
1832 1.59 dyoung * conditions?
1833 1.59 dyoung */
1834 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, reg | ATW_SYNRF_LEIF);
1835 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, reg);
1836 1.59 dyoung
1837 1.59 dyoung for (mask = BIT(nbits - 1); mask != 0; mask >>= 1) {
1838 1.59 dyoung if ((bits & mask) != 0)
1839 1.59 dyoung reg |= ATW_SYNRF_SYNDATA;
1840 1.59 dyoung else
1841 1.59 dyoung reg &= ~ATW_SYNRF_SYNDATA;
1842 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, reg);
1843 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, reg | ATW_SYNRF_SYNCLK);
1844 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, reg);
1845 1.1 dyoung }
1846 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, reg | ATW_SYNRF_LEIF);
1847 1.59 dyoung ATW_WRITE(sc, ATW_SYNRF, 0x0);
1848 1.1 dyoung }
1849 1.1 dyoung
1850 1.1 dyoung /* Read 18-bit data from the 4-bit address addr in Si4126
1851 1.1 dyoung * RF synthesizer and write the data to *val. Return 0 on success.
1852 1.1 dyoung *
1853 1.1 dyoung * XXX This does not seem to work. The ADM8211 must require more or
1854 1.1 dyoung * different magic to read the chip than to write it.
1855 1.1 dyoung */
1856 1.59 dyoung #ifdef ATW_SYNDEBUG
1857 1.1 dyoung static int
1858 1.23 dyoung atw_si4126_read(struct atw_softc *sc, u_int addr, u_int *val)
1859 1.1 dyoung {
1860 1.1 dyoung u_int32_t reg;
1861 1.1 dyoung int i;
1862 1.1 dyoung
1863 1.24 dyoung KASSERT((addr & ~PRESHIFT(SI4126_TWI_ADDR_MASK)) == 0);
1864 1.24 dyoung
1865 1.1 dyoung for (i = 1000; --i >= 0; ) {
1866 1.1 dyoung if (ATW_ISSET(sc, ATW_SYNCTL, ATW_SYNCTL_RD|ATW_SYNCTL_WR) == 0)
1867 1.1 dyoung break;
1868 1.1 dyoung DELAY(100);
1869 1.1 dyoung }
1870 1.1 dyoung
1871 1.1 dyoung if (i < 0) {
1872 1.1 dyoung printf("%s: start atw_si4126_read, SYNCTL busy\n",
1873 1.1 dyoung sc->sc_dev.dv_xname);
1874 1.1 dyoung return ETIMEDOUT;
1875 1.1 dyoung }
1876 1.1 dyoung
1877 1.24 dyoung reg = sc->sc_synctl_rd | LSHIFT(addr, ATW_SYNCTL_DATA_MASK);
1878 1.1 dyoung
1879 1.1 dyoung ATW_WRITE(sc, ATW_SYNCTL, reg);
1880 1.1 dyoung
1881 1.1 dyoung for (i = 1000; --i >= 0; ) {
1882 1.1 dyoung DELAY(100);
1883 1.1 dyoung if (ATW_ISSET(sc, ATW_SYNCTL, ATW_SYNCTL_RD) == 0)
1884 1.1 dyoung break;
1885 1.1 dyoung }
1886 1.1 dyoung
1887 1.1 dyoung ATW_CLR(sc, ATW_SYNCTL, ATW_SYNCTL_RD);
1888 1.1 dyoung
1889 1.1 dyoung if (i < 0) {
1890 1.59 dyoung printf("%s: atw_si4126_read wrote %#08x, SYNCTL still busy\n",
1891 1.1 dyoung sc->sc_dev.dv_xname, reg);
1892 1.1 dyoung return ETIMEDOUT;
1893 1.1 dyoung }
1894 1.1 dyoung if (val != NULL)
1895 1.1 dyoung *val = MASK_AND_RSHIFT(ATW_READ(sc, ATW_SYNCTL),
1896 1.1 dyoung ATW_SYNCTL_DATA_MASK);
1897 1.1 dyoung return 0;
1898 1.1 dyoung }
1899 1.59 dyoung #endif /* ATW_SYNDEBUG */
1900 1.1 dyoung
1901 1.1 dyoung /* XXX is the endianness correct? test. */
1902 1.1 dyoung #define atw_calchash(addr) \
1903 1.1 dyoung (ether_crc32_le((addr), IEEE80211_ADDR_LEN) & BITS(5, 0))
1904 1.1 dyoung
1905 1.1 dyoung /*
1906 1.1 dyoung * atw_filter_setup:
1907 1.1 dyoung *
1908 1.1 dyoung * Set the ADM8211's receive filter.
1909 1.1 dyoung */
1910 1.1 dyoung static void
1911 1.23 dyoung atw_filter_setup(struct atw_softc *sc)
1912 1.1 dyoung {
1913 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1914 1.1 dyoung struct ethercom *ec = &ic->ic_ec;
1915 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
1916 1.1 dyoung int hash;
1917 1.57 dyoung u_int32_t hashes[2];
1918 1.1 dyoung struct ether_multi *enm;
1919 1.1 dyoung struct ether_multistep step;
1920 1.1 dyoung
1921 1.57 dyoung /* According to comments in tlp_al981_filter_setup
1922 1.57 dyoung * (dev/ic/tulip.c) the ADMtek AL981 does not like for its
1923 1.57 dyoung * multicast filter to be set while it is running. Hopefully
1924 1.57 dyoung * the ADM8211 is not the same!
1925 1.1 dyoung */
1926 1.57 dyoung if ((ifp->if_flags & IFF_RUNNING) != 0)
1927 1.1 dyoung atw_idle(sc, ATW_NAR_SR);
1928 1.1 dyoung
1929 1.1 dyoung sc->sc_opmode &= ~(ATW_NAR_PR|ATW_NAR_MM);
1930 1.1 dyoung
1931 1.57 dyoung /* XXX in scan mode, do not filter packets. Maybe this is
1932 1.57 dyoung * unnecessary.
1933 1.57 dyoung */
1934 1.57 dyoung if (ic->ic_state == IEEE80211_S_SCAN ||
1935 1.57 dyoung (ifp->if_flags & IFF_PROMISC) != 0) {
1936 1.1 dyoung sc->sc_opmode |= ATW_NAR_PR;
1937 1.57 dyoung goto allmulti;
1938 1.1 dyoung }
1939 1.1 dyoung
1940 1.57 dyoung hashes[0] = hashes[1] = 0x0;
1941 1.57 dyoung
1942 1.1 dyoung /*
1943 1.1 dyoung * Program the 64-bit multicast hash filter.
1944 1.1 dyoung */
1945 1.1 dyoung ETHER_FIRST_MULTI(step, ec, enm);
1946 1.1 dyoung while (enm != NULL) {
1947 1.1 dyoung if (memcmp(enm->enm_addrlo, enm->enm_addrhi,
1948 1.1 dyoung ETHER_ADDR_LEN) != 0)
1949 1.1 dyoung goto allmulti;
1950 1.1 dyoung
1951 1.1 dyoung hash = atw_calchash(enm->enm_addrlo);
1952 1.1 dyoung hashes[hash >> 5] |= 1 << (hash & 0x1f);
1953 1.1 dyoung ETHER_NEXT_MULTI(step, enm);
1954 1.1 dyoung }
1955 1.57 dyoung ifp->if_flags &= ~IFF_ALLMULTI;
1956 1.57 dyoung goto setit;
1957 1.1 dyoung
1958 1.57 dyoung allmulti:
1959 1.57 dyoung ifp->if_flags |= IFF_ALLMULTI;
1960 1.57 dyoung hashes[0] = hashes[1] = 0xffffffff;
1961 1.1 dyoung
1962 1.57 dyoung setit:
1963 1.1 dyoung ATW_WRITE(sc, ATW_MAR0, hashes[0]);
1964 1.1 dyoung ATW_WRITE(sc, ATW_MAR1, hashes[1]);
1965 1.1 dyoung ATW_WRITE(sc, ATW_NAR, sc->sc_opmode);
1966 1.57 dyoung DELAY(20 * 1000);
1967 1.57 dyoung
1968 1.1 dyoung DPRINTF(sc, ("%s: ATW_NAR %08x opmode %08x\n", sc->sc_dev.dv_xname,
1969 1.1 dyoung ATW_READ(sc, ATW_NAR), sc->sc_opmode));
1970 1.1 dyoung }
1971 1.1 dyoung
1972 1.1 dyoung /* Tell the ADM8211 our preferred BSSID. The ADM8211 must match
1973 1.1 dyoung * a beacon's BSSID and SSID against the preferred BSSID and SSID
1974 1.1 dyoung * before it will raise ATW_INTR_LINKON. When the ADM8211 receives
1975 1.1 dyoung * no beacon with the preferred BSSID and SSID in the number of
1976 1.1 dyoung * beacon intervals given in ATW_BPLI, then it raises ATW_INTR_LINKOFF.
1977 1.1 dyoung */
1978 1.1 dyoung static void
1979 1.23 dyoung atw_write_bssid(struct atw_softc *sc)
1980 1.1 dyoung {
1981 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1982 1.1 dyoung u_int8_t *bssid;
1983 1.1 dyoung
1984 1.3 dyoung bssid = ic->ic_bss->ni_bssid;
1985 1.1 dyoung
1986 1.52 dyoung ATW_WRITE(sc, ATW_BSSID0,
1987 1.52 dyoung LSHIFT(bssid[0], ATW_BSSID0_BSSIDB0_MASK) |
1988 1.52 dyoung LSHIFT(bssid[1], ATW_BSSID0_BSSIDB1_MASK) |
1989 1.52 dyoung LSHIFT(bssid[2], ATW_BSSID0_BSSIDB2_MASK) |
1990 1.52 dyoung LSHIFT(bssid[3], ATW_BSSID0_BSSIDB3_MASK));
1991 1.52 dyoung
1992 1.1 dyoung ATW_WRITE(sc, ATW_ABDA1,
1993 1.1 dyoung (ATW_READ(sc, ATW_ABDA1) &
1994 1.1 dyoung ~(ATW_ABDA1_BSSIDB4_MASK|ATW_ABDA1_BSSIDB5_MASK)) |
1995 1.1 dyoung LSHIFT(bssid[4], ATW_ABDA1_BSSIDB4_MASK) |
1996 1.1 dyoung LSHIFT(bssid[5], ATW_ABDA1_BSSIDB5_MASK));
1997 1.1 dyoung
1998 1.1 dyoung DPRINTF(sc, ("%s: BSSID %s -> ", sc->sc_dev.dv_xname,
1999 1.1 dyoung ether_sprintf(sc->sc_bssid)));
2000 1.1 dyoung DPRINTF(sc, ("%s\n", ether_sprintf(bssid)));
2001 1.1 dyoung
2002 1.1 dyoung memcpy(sc->sc_bssid, bssid, sizeof(sc->sc_bssid));
2003 1.1 dyoung }
2004 1.1 dyoung
2005 1.1 dyoung /* Write buflen bytes from buf to SRAM starting at the SRAM's ofs'th
2006 1.1 dyoung * 16-bit word.
2007 1.1 dyoung */
2008 1.1 dyoung static void
2009 1.23 dyoung atw_write_sram(struct atw_softc *sc, u_int ofs, u_int8_t *buf, u_int buflen)
2010 1.1 dyoung {
2011 1.1 dyoung u_int i;
2012 1.1 dyoung u_int8_t *ptr;
2013 1.1 dyoung
2014 1.1 dyoung memcpy(&sc->sc_sram[ofs], buf, buflen);
2015 1.1 dyoung
2016 1.65 dyoung KASSERT(ofs % 2 == 0 && buflen % 2 == 0);
2017 1.1 dyoung
2018 1.67 dyoung KASSERT(buflen + ofs <= ATW_SRAM_A_SIZE);
2019 1.1 dyoung
2020 1.1 dyoung ptr = &sc->sc_sram[ofs];
2021 1.1 dyoung
2022 1.1 dyoung for (i = 0; i < buflen; i += 2) {
2023 1.1 dyoung ATW_WRITE(sc, ATW_WEPCTL, ATW_WEPCTL_WR |
2024 1.1 dyoung LSHIFT((ofs + i) / 2, ATW_WEPCTL_TBLADD_MASK));
2025 1.1 dyoung DELAY(atw_writewep_delay);
2026 1.1 dyoung
2027 1.1 dyoung ATW_WRITE(sc, ATW_WESK,
2028 1.1 dyoung LSHIFT((ptr[i + 1] << 8) | ptr[i], ATW_WESK_DATA_MASK));
2029 1.1 dyoung DELAY(atw_writewep_delay);
2030 1.1 dyoung }
2031 1.1 dyoung ATW_WRITE(sc, ATW_WEPCTL, sc->sc_wepctl); /* restore WEP condition */
2032 1.1 dyoung
2033 1.1 dyoung if (sc->sc_if.if_flags & IFF_DEBUG) {
2034 1.1 dyoung int n_octets = 0;
2035 1.1 dyoung printf("%s: wrote %d bytes at 0x%x wepctl 0x%08x\n",
2036 1.1 dyoung sc->sc_dev.dv_xname, buflen, ofs, sc->sc_wepctl);
2037 1.1 dyoung for (i = 0; i < buflen; i++) {
2038 1.1 dyoung printf(" %02x", ptr[i]);
2039 1.1 dyoung if (++n_octets % 24 == 0)
2040 1.1 dyoung printf("\n");
2041 1.1 dyoung }
2042 1.1 dyoung if (n_octets % 24 != 0)
2043 1.1 dyoung printf("\n");
2044 1.1 dyoung }
2045 1.1 dyoung }
2046 1.1 dyoung
2047 1.1 dyoung /* Write WEP keys from the ieee80211com to the ADM8211's SRAM. */
2048 1.1 dyoung static void
2049 1.23 dyoung atw_write_wep(struct atw_softc *sc)
2050 1.1 dyoung {
2051 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2052 1.1 dyoung /* SRAM shared-key record format: key0 flags key1 ... key12 */
2053 1.1 dyoung u_int8_t buf[IEEE80211_WEP_NKID]
2054 1.1 dyoung [1 /* key[0] */ + 1 /* flags */ + 12 /* key[1 .. 12] */];
2055 1.1 dyoung u_int32_t reg;
2056 1.1 dyoung int i;
2057 1.1 dyoung
2058 1.1 dyoung sc->sc_wepctl = 0;
2059 1.1 dyoung ATW_WRITE(sc, ATW_WEPCTL, sc->sc_wepctl);
2060 1.1 dyoung
2061 1.1 dyoung if ((ic->ic_flags & IEEE80211_F_WEPON) == 0)
2062 1.1 dyoung return;
2063 1.1 dyoung
2064 1.1 dyoung memset(&buf[0][0], 0, sizeof(buf));
2065 1.1 dyoung
2066 1.1 dyoung for (i = 0; i < IEEE80211_WEP_NKID; i++) {
2067 1.1 dyoung if (ic->ic_nw_keys[i].wk_len > 5) {
2068 1.1 dyoung buf[i][1] = ATW_WEP_ENABLED | ATW_WEP_104BIT;
2069 1.1 dyoung } else if (ic->ic_nw_keys[i].wk_len != 0) {
2070 1.1 dyoung buf[i][1] = ATW_WEP_ENABLED;
2071 1.1 dyoung } else {
2072 1.1 dyoung buf[i][1] = 0;
2073 1.1 dyoung continue;
2074 1.1 dyoung }
2075 1.1 dyoung buf[i][0] = ic->ic_nw_keys[i].wk_key[0];
2076 1.1 dyoung memcpy(&buf[i][2], &ic->ic_nw_keys[i].wk_key[1],
2077 1.1 dyoung ic->ic_nw_keys[i].wk_len - 1);
2078 1.1 dyoung }
2079 1.1 dyoung
2080 1.1 dyoung reg = ATW_READ(sc, ATW_MACTEST);
2081 1.1 dyoung reg |= ATW_MACTEST_MMI_USETXCLK | ATW_MACTEST_FORCE_KEYID;
2082 1.1 dyoung reg &= ~ATW_MACTEST_KEYID_MASK;
2083 1.1 dyoung reg |= LSHIFT(ic->ic_wep_txkey, ATW_MACTEST_KEYID_MASK);
2084 1.1 dyoung ATW_WRITE(sc, ATW_MACTEST, reg);
2085 1.1 dyoung
2086 1.1 dyoung /* RX bypass WEP if revision != 0x20. (I assume revision != 0x20
2087 1.1 dyoung * throughout.)
2088 1.1 dyoung */
2089 1.1 dyoung sc->sc_wepctl = ATW_WEPCTL_WEPENABLE | ATW_WEPCTL_WEPRXBYP;
2090 1.1 dyoung if (sc->sc_if.if_flags & IFF_LINK2)
2091 1.1 dyoung sc->sc_wepctl &= ~ATW_WEPCTL_WEPRXBYP;
2092 1.1 dyoung
2093 1.1 dyoung atw_write_sram(sc, ATW_SRAM_ADDR_SHARED_KEY, (u_int8_t*)&buf[0][0],
2094 1.1 dyoung sizeof(buf));
2095 1.1 dyoung }
2096 1.1 dyoung
2097 1.68 dyoung const struct timeval atw_beacon_mininterval = {.tv_sec = 1, .tv_usec = 0};
2098 1.1 dyoung
2099 1.3 dyoung static void
2100 1.3 dyoung atw_recv_mgmt(struct ieee80211com *ic, struct mbuf *m,
2101 1.3 dyoung struct ieee80211_node *ni, int subtype, int rssi, u_int32_t rstamp)
2102 1.3 dyoung {
2103 1.3 dyoung struct atw_softc *sc = (struct atw_softc*)ic->ic_softc;
2104 1.3 dyoung
2105 1.3 dyoung switch (subtype) {
2106 1.3 dyoung case IEEE80211_FC0_SUBTYPE_PROBE_REQ:
2107 1.3 dyoung /* do nothing: hardware answers probe request */
2108 1.3 dyoung break;
2109 1.3 dyoung case IEEE80211_FC0_SUBTYPE_PROBE_RESP:
2110 1.3 dyoung case IEEE80211_FC0_SUBTYPE_BEACON:
2111 1.3 dyoung atw_recv_beacon(ic, m, ni, subtype, rssi, rstamp);
2112 1.3 dyoung break;
2113 1.3 dyoung default:
2114 1.3 dyoung (*sc->sc_recv_mgmt)(ic, m, ni, subtype, rssi, rstamp);
2115 1.3 dyoung break;
2116 1.3 dyoung }
2117 1.3 dyoung return;
2118 1.3 dyoung }
2119 1.3 dyoung
2120 1.68 dyoung static int
2121 1.68 dyoung do_slow_print(struct atw_softc *sc, int *did_print)
2122 1.68 dyoung {
2123 1.68 dyoung if ((sc->sc_if.if_flags & IFF_LINK0) == 0)
2124 1.68 dyoung return 0;
2125 1.68 dyoung if (!*did_print && (sc->sc_if.if_flags & IFF_DEBUG) == 0 &&
2126 1.68 dyoung !ratecheck(&sc->sc_last_beacon, &atw_beacon_mininterval))
2127 1.68 dyoung return 0;
2128 1.68 dyoung
2129 1.68 dyoung *did_print = 1;
2130 1.68 dyoung return 1;
2131 1.68 dyoung }
2132 1.68 dyoung
2133 1.1 dyoung /* In ad hoc mode, atw_recv_beacon is responsible for the coalescence
2134 1.1 dyoung * of IBSSs with like SSID/channel but different BSSID. It joins the
2135 1.1 dyoung * oldest IBSS (i.e., with greatest TSF time), since that is the WECA
2136 1.1 dyoung * convention. Possibly the ADMtek chip does this for us; I will have
2137 1.1 dyoung * to test to find out.
2138 1.1 dyoung *
2139 1.1 dyoung * XXX we should add the duration field of the received beacon to
2140 1.1 dyoung * the TSF time it contains before comparing it with the ADM8211's
2141 1.1 dyoung * TSF.
2142 1.1 dyoung */
2143 1.1 dyoung static void
2144 1.3 dyoung atw_recv_beacon(struct ieee80211com *ic, struct mbuf *m0,
2145 1.3 dyoung struct ieee80211_node *ni, int subtype, int rssi, u_int32_t rstamp)
2146 1.1 dyoung {
2147 1.1 dyoung struct atw_softc *sc;
2148 1.1 dyoung struct ieee80211_frame *wh;
2149 1.56 dyoung uint32_t tsftl, tsfth;
2150 1.56 dyoung uint32_t bcn_tsftl, bcn_tsfth;
2151 1.68 dyoung int did_print = 0, sign;
2152 1.56 dyoung union {
2153 1.56 dyoung uint32_t words[2];
2154 1.56 dyoung uint8_t tstamp[8];
2155 1.56 dyoung } u;
2156 1.1 dyoung
2157 1.1 dyoung sc = (struct atw_softc*)ic->ic_if.if_softc;
2158 1.1 dyoung
2159 1.3 dyoung (*sc->sc_recv_mgmt)(ic, m0, ni, subtype, rssi, rstamp);
2160 1.1 dyoung
2161 1.54 dyoung if (ic->ic_state != IEEE80211_S_RUN)
2162 1.1 dyoung return;
2163 1.1 dyoung
2164 1.68 dyoung atw_tsft(sc, &tsfth, &tsftl);
2165 1.68 dyoung
2166 1.68 dyoung (void)memcpy(&u, &ni->ni_tstamp[0], sizeof(u));
2167 1.68 dyoung bcn_tsftl = le32toh(u.words[0]);
2168 1.68 dyoung bcn_tsfth = le32toh(u.words[1]);
2169 1.68 dyoung
2170 1.68 dyoung /* we are faster, let the other guy catch up */
2171 1.68 dyoung if (bcn_tsfth < tsfth)
2172 1.68 dyoung sign = -1;
2173 1.68 dyoung else if (bcn_tsfth == tsfth && bcn_tsftl < tsftl)
2174 1.68 dyoung sign = -1;
2175 1.68 dyoung else
2176 1.68 dyoung sign = 1;
2177 1.68 dyoung
2178 1.68 dyoung if (memcmp(ni->ni_bssid, ic->ic_bss->ni_bssid,
2179 1.68 dyoung IEEE80211_ADDR_LEN) == 0) {
2180 1.68 dyoung if (!do_slow_print(sc, &did_print))
2181 1.68 dyoung return;
2182 1.68 dyoung printf("%s: tsft offset %s%" PRIu64 "\n", sc->sc_dev.dv_xname,
2183 1.68 dyoung (sign < 0) ? "-" : "",
2184 1.68 dyoung (sign < 0)
2185 1.68 dyoung ? ((((uint64_t)tsfth << 32) | tsftl) -
2186 1.68 dyoung (((uint64_t)bcn_tsfth << 32) | bcn_tsftl))
2187 1.68 dyoung : ((((uint64_t)bcn_tsfth << 32) | bcn_tsftl) -
2188 1.68 dyoung (((uint64_t)tsfth << 32) | tsftl)));
2189 1.1 dyoung return;
2190 1.1 dyoung }
2191 1.1 dyoung
2192 1.68 dyoung if (sign < 0)
2193 1.1 dyoung return;
2194 1.1 dyoung
2195 1.68 dyoung if (ieee80211_match_bss(ic, ni) != 0)
2196 1.1 dyoung return;
2197 1.1 dyoung
2198 1.68 dyoung if (do_slow_print(sc, &did_print)) {
2199 1.1 dyoung printf("%s: atw_recv_beacon: bssid mismatch %s\n",
2200 1.1 dyoung sc->sc_dev.dv_xname, ether_sprintf(ni->ni_bssid));
2201 1.68 dyoung }
2202 1.1 dyoung
2203 1.9 dyoung if (ic->ic_opmode != IEEE80211_M_IBSS)
2204 1.1 dyoung return;
2205 1.1 dyoung
2206 1.68 dyoung if (do_slow_print(sc, &did_print)) {
2207 1.1 dyoung printf("%s: my tsft %" PRIu64 " beacon tsft %" PRIu64 "\n",
2208 1.56 dyoung sc->sc_dev.dv_xname, ((uint64_t)tsfth << 32) | tsftl,
2209 1.56 dyoung ((uint64_t)bcn_tsfth << 32) | bcn_tsftl);
2210 1.68 dyoung }
2211 1.1 dyoung
2212 1.68 dyoung wh = mtod(m0, struct ieee80211_frame *);
2213 1.1 dyoung
2214 1.68 dyoung if (do_slow_print(sc, &did_print)) {
2215 1.68 dyoung printf("%s: sync TSF with %s\n",
2216 1.68 dyoung sc->sc_dev.dv_xname, ether_sprintf(wh->i_addr2));
2217 1.68 dyoung }
2218 1.1 dyoung
2219 1.1 dyoung ic->ic_flags &= ~IEEE80211_F_SIBSS;
2220 1.1 dyoung
2221 1.68 dyoung (void)memcpy(&ic->ic_bss->ni_tstamp[0], &u, sizeof(u));
2222 1.68 dyoung
2223 1.1 dyoung atw_tsf(sc);
2224 1.1 dyoung
2225 1.1 dyoung /* negotiate rates with new IBSS */
2226 1.3 dyoung ieee80211_fix_rate(ic, ni, IEEE80211_F_DOFRATE |
2227 1.1 dyoung IEEE80211_F_DONEGO | IEEE80211_F_DODEL);
2228 1.3 dyoung if (ni->ni_rates.rs_nrates == 0) {
2229 1.68 dyoung if (do_slow_print(sc, &did_print)) {
2230 1.68 dyoung printf("%s: rates mismatch, BSSID %s\n",
2231 1.68 dyoung sc->sc_dev.dv_xname, ether_sprintf(ni->ni_bssid));
2232 1.68 dyoung }
2233 1.1 dyoung return;
2234 1.1 dyoung }
2235 1.1 dyoung
2236 1.68 dyoung if (do_slow_print(sc, &did_print)) {
2237 1.68 dyoung printf("%s: sync BSSID %s -> ",
2238 1.68 dyoung sc->sc_dev.dv_xname, ether_sprintf(ic->ic_bss->ni_bssid));
2239 1.1 dyoung printf("%s ", ether_sprintf(ni->ni_bssid));
2240 1.1 dyoung printf("(from %s)\n", ether_sprintf(wh->i_addr2));
2241 1.1 dyoung }
2242 1.1 dyoung
2243 1.3 dyoung (*ic->ic_node_copy)(ic, ic->ic_bss, ni);
2244 1.1 dyoung
2245 1.1 dyoung atw_write_bssid(sc);
2246 1.1 dyoung atw_start_beacon(sc, 1);
2247 1.1 dyoung }
2248 1.1 dyoung
2249 1.1 dyoung /* Write the SSID in the ieee80211com to the SRAM on the ADM8211.
2250 1.1 dyoung * In ad hoc mode, the SSID is written to the beacons sent by the
2251 1.1 dyoung * ADM8211. In both ad hoc and infrastructure mode, beacons received
2252 1.1 dyoung * with matching SSID affect ATW_INTR_LINKON/ATW_INTR_LINKOFF
2253 1.1 dyoung * indications.
2254 1.1 dyoung */
2255 1.1 dyoung static void
2256 1.23 dyoung atw_write_ssid(struct atw_softc *sc)
2257 1.1 dyoung {
2258 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2259 1.53 dyoung /* 34 bytes are reserved in ADM8211 SRAM for the SSID, but
2260 1.53 dyoung * it only expects the element length, not its ID.
2261 1.53 dyoung */
2262 1.18 dyoung u_int8_t buf[roundup(1 /* length */ + IEEE80211_NWID_LEN, 2)];
2263 1.1 dyoung
2264 1.1 dyoung memset(buf, 0, sizeof(buf));
2265 1.3 dyoung buf[0] = ic->ic_bss->ni_esslen;
2266 1.3 dyoung memcpy(&buf[1], ic->ic_bss->ni_essid, ic->ic_bss->ni_esslen);
2267 1.1 dyoung
2268 1.53 dyoung atw_write_sram(sc, ATW_SRAM_ADDR_SSID, buf,
2269 1.53 dyoung roundup(1 + ic->ic_bss->ni_esslen, 2));
2270 1.1 dyoung }
2271 1.1 dyoung
2272 1.1 dyoung /* Write the supported rates in the ieee80211com to the SRAM of the ADM8211.
2273 1.1 dyoung * In ad hoc mode, the supported rates are written to beacons sent by the
2274 1.1 dyoung * ADM8211.
2275 1.1 dyoung */
2276 1.1 dyoung static void
2277 1.23 dyoung atw_write_sup_rates(struct atw_softc *sc)
2278 1.1 dyoung {
2279 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2280 1.1 dyoung /* 14 bytes are probably (XXX) reserved in the ADM8211 SRAM for
2281 1.1 dyoung * supported rates
2282 1.1 dyoung */
2283 1.18 dyoung u_int8_t buf[roundup(1 /* length */ + IEEE80211_RATE_SIZE, 2)];
2284 1.1 dyoung
2285 1.1 dyoung memset(buf, 0, sizeof(buf));
2286 1.1 dyoung
2287 1.3 dyoung buf[0] = ic->ic_bss->ni_rates.rs_nrates;
2288 1.1 dyoung
2289 1.3 dyoung memcpy(&buf[1], ic->ic_bss->ni_rates.rs_rates,
2290 1.3 dyoung ic->ic_bss->ni_rates.rs_nrates);
2291 1.1 dyoung
2292 1.1 dyoung atw_write_sram(sc, ATW_SRAM_ADDR_SUPRATES, buf, sizeof(buf));
2293 1.1 dyoung }
2294 1.1 dyoung
2295 1.1 dyoung /* Start/stop sending beacons. */
2296 1.1 dyoung void
2297 1.1 dyoung atw_start_beacon(struct atw_softc *sc, int start)
2298 1.1 dyoung {
2299 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2300 1.55 dyoung uint16_t chan;
2301 1.55 dyoung uint32_t bcnt, bpli, cap0, cap1, capinfo;
2302 1.55 dyoung size_t len;
2303 1.1 dyoung
2304 1.1 dyoung if (ATW_IS_ENABLED(sc) == 0)
2305 1.1 dyoung return;
2306 1.1 dyoung
2307 1.1 dyoung /* start beacons */
2308 1.1 dyoung len = sizeof(struct ieee80211_frame) +
2309 1.1 dyoung 8 /* timestamp */ + 2 /* beacon interval */ +
2310 1.1 dyoung 2 /* capability info */ +
2311 1.3 dyoung 2 + ic->ic_bss->ni_esslen /* SSID element */ +
2312 1.3 dyoung 2 + ic->ic_bss->ni_rates.rs_nrates /* rates element */ +
2313 1.1 dyoung 3 /* DS parameters */ +
2314 1.1 dyoung IEEE80211_CRC_LEN;
2315 1.1 dyoung
2316 1.55 dyoung bcnt = ATW_READ(sc, ATW_BCNT) & ~ATW_BCNT_BCNT_MASK;
2317 1.55 dyoung cap0 = ATW_READ(sc, ATW_CAP0) & ~ATW_CAP0_CHN_MASK;
2318 1.55 dyoung cap1 = ATW_READ(sc, ATW_CAP1) & ~ATW_CAP1_CAPI_MASK;
2319 1.1 dyoung
2320 1.55 dyoung ATW_WRITE(sc, ATW_BCNT, bcnt);
2321 1.55 dyoung ATW_WRITE(sc, ATW_CAP1, cap1);
2322 1.1 dyoung
2323 1.1 dyoung if (!start)
2324 1.1 dyoung return;
2325 1.1 dyoung
2326 1.1 dyoung /* TBD use ni_capinfo */
2327 1.1 dyoung
2328 1.55 dyoung capinfo = 0;
2329 1.1 dyoung if (sc->sc_flags & ATWF_SHORT_PREAMBLE)
2330 1.1 dyoung capinfo |= IEEE80211_CAPINFO_SHORT_PREAMBLE;
2331 1.1 dyoung if (ic->ic_flags & IEEE80211_F_WEPON)
2332 1.1 dyoung capinfo |= IEEE80211_CAPINFO_PRIVACY;
2333 1.1 dyoung
2334 1.1 dyoung switch (ic->ic_opmode) {
2335 1.1 dyoung case IEEE80211_M_IBSS:
2336 1.1 dyoung len += 4; /* IBSS parameters */
2337 1.1 dyoung capinfo |= IEEE80211_CAPINFO_IBSS;
2338 1.1 dyoung break;
2339 1.1 dyoung case IEEE80211_M_HOSTAP:
2340 1.1 dyoung /* XXX 6-byte minimum TIM */
2341 1.1 dyoung len += atw_beacon_len_adjust;
2342 1.1 dyoung capinfo |= IEEE80211_CAPINFO_ESS;
2343 1.1 dyoung break;
2344 1.1 dyoung default:
2345 1.1 dyoung return;
2346 1.1 dyoung }
2347 1.1 dyoung
2348 1.55 dyoung /* set listen interval
2349 1.55 dyoung * XXX do software units agree w/ hardware?
2350 1.55 dyoung */
2351 1.55 dyoung bpli = LSHIFT(ic->ic_bss->ni_intval, ATW_BPLI_BP_MASK) |
2352 1.55 dyoung LSHIFT(ic->ic_lintval / ic->ic_bss->ni_intval, ATW_BPLI_LI_MASK);
2353 1.55 dyoung
2354 1.55 dyoung chan = ieee80211_chan2ieee(ic, ic->ic_bss->ni_chan);
2355 1.1 dyoung
2356 1.55 dyoung bcnt |= LSHIFT(len, ATW_BCNT_BCNT_MASK);
2357 1.55 dyoung cap0 |= LSHIFT(chan, ATW_CAP0_CHN_MASK);
2358 1.55 dyoung cap1 |= LSHIFT(capinfo, ATW_CAP1_CAPI_MASK);
2359 1.55 dyoung
2360 1.55 dyoung ATW_WRITE(sc, ATW_BCNT, bcnt);
2361 1.55 dyoung ATW_WRITE(sc, ATW_BPLI, bpli);
2362 1.55 dyoung ATW_WRITE(sc, ATW_CAP0, cap0);
2363 1.55 dyoung ATW_WRITE(sc, ATW_CAP1, cap1);
2364 1.1 dyoung
2365 1.1 dyoung DPRINTF(sc, ("%s: atw_start_beacon reg[ATW_BCNT] = %08x\n",
2366 1.55 dyoung sc->sc_dev.dv_xname, bcnt));
2367 1.1 dyoung
2368 1.1 dyoung DPRINTF(sc, ("%s: atw_start_beacon reg[ATW_CAP1] = %08x\n",
2369 1.55 dyoung sc->sc_dev.dv_xname, cap1));
2370 1.1 dyoung }
2371 1.1 dyoung
2372 1.56 dyoung /* Return the 32 lsb of the last TSFT divisible by ival. */
2373 1.56 dyoung static __inline uint32_t
2374 1.56 dyoung atw_last_even_tsft(uint32_t tsfth, uint32_t tsftl, uint32_t ival)
2375 1.56 dyoung {
2376 1.56 dyoung /* Following the reference driver's lead, I compute
2377 1.56 dyoung *
2378 1.56 dyoung * (uint32_t)((((uint64_t)tsfth << 32) | tsftl) % ival)
2379 1.56 dyoung *
2380 1.56 dyoung * without using 64-bit arithmetic, using the following
2381 1.56 dyoung * relationship:
2382 1.56 dyoung *
2383 1.56 dyoung * (0x100000000 * H + L) % m
2384 1.56 dyoung * = ((0x100000000 % m) * H + L) % m
2385 1.56 dyoung * = (((0xffffffff + 1) % m) * H + L) % m
2386 1.56 dyoung * = ((0xffffffff % m + 1 % m) * H + L) % m
2387 1.56 dyoung * = ((0xffffffff % m + 1) * H + L) % m
2388 1.56 dyoung */
2389 1.56 dyoung return ((0xFFFFFFFF % ival + 1) * tsfth + tsftl) % ival;
2390 1.56 dyoung }
2391 1.56 dyoung
2392 1.56 dyoung static __inline void
2393 1.56 dyoung atw_tsft(struct atw_softc *sc, uint32_t *tsfth, uint32_t *tsftl)
2394 1.1 dyoung {
2395 1.56 dyoung int i;
2396 1.56 dyoung for (i = 0; i < 2; i++) {
2397 1.56 dyoung *tsfth = ATW_READ(sc, ATW_TSFTH);
2398 1.56 dyoung *tsftl = ATW_READ(sc, ATW_TSFTL);
2399 1.56 dyoung if (ATW_READ(sc, ATW_TSFTH) == *tsfth)
2400 1.56 dyoung break;
2401 1.56 dyoung }
2402 1.1 dyoung }
2403 1.1 dyoung
2404 1.1 dyoung /* If we've created an IBSS, write the TSF time in the ADM8211 to
2405 1.1 dyoung * the ieee80211com.
2406 1.1 dyoung *
2407 1.1 dyoung * Predict the next target beacon transmission time (TBTT) and
2408 1.1 dyoung * write it to the ADM8211.
2409 1.1 dyoung */
2410 1.1 dyoung static void
2411 1.1 dyoung atw_tsf(struct atw_softc *sc)
2412 1.1 dyoung {
2413 1.1 dyoung #define TBTTOFS 20 /* TU */
2414 1.1 dyoung
2415 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2416 1.56 dyoung uint32_t ival, past_even, tbtt, tsfth, tsftl;
2417 1.56 dyoung union {
2418 1.56 dyoung uint32_t words[2];
2419 1.56 dyoung uint8_t tstamp[8];
2420 1.56 dyoung } u;
2421 1.1 dyoung
2422 1.1 dyoung if ((ic->ic_opmode == IEEE80211_M_HOSTAP) ||
2423 1.1 dyoung ((ic->ic_opmode == IEEE80211_M_IBSS) &&
2424 1.1 dyoung (ic->ic_flags & IEEE80211_F_SIBSS))) {
2425 1.56 dyoung atw_tsft(sc, &tsfth, &tsftl);
2426 1.56 dyoung u.words[0] = htole32(tsftl);
2427 1.56 dyoung u.words[1] = htole32(tsfth);
2428 1.56 dyoung (void)memcpy(&ic->ic_bss->ni_tstamp[0], &u,
2429 1.56 dyoung sizeof(ic->ic_bss->ni_tstamp));
2430 1.56 dyoung } else {
2431 1.56 dyoung (void)memcpy(&u, &ic->ic_bss->ni_tstamp[0], sizeof(u));
2432 1.56 dyoung tsftl = le32toh(u.words[0]);
2433 1.56 dyoung tsfth = le32toh(u.words[1]);
2434 1.56 dyoung }
2435 1.56 dyoung
2436 1.56 dyoung ival = ic->ic_bss->ni_intval * IEEE80211_DUR_TU;
2437 1.56 dyoung
2438 1.56 dyoung /* We sent/received the last beacon `past' microseconds
2439 1.56 dyoung * after the interval divided the TSF timer.
2440 1.1 dyoung */
2441 1.56 dyoung past_even = tsftl - atw_last_even_tsft(tsfth, tsftl, ival);
2442 1.1 dyoung
2443 1.56 dyoung /* Skip ten beacons so that the TBTT cannot pass before
2444 1.56 dyoung * we've programmed it. Ten is an arbitrary number.
2445 1.56 dyoung */
2446 1.56 dyoung tbtt = past_even + ival * 10;
2447 1.1 dyoung
2448 1.1 dyoung ATW_WRITE(sc, ATW_TOFS1,
2449 1.1 dyoung LSHIFT(1, ATW_TOFS1_TSFTOFSR_MASK) |
2450 1.1 dyoung LSHIFT(TBTTOFS, ATW_TOFS1_TBTTOFS_MASK) |
2451 1.56 dyoung LSHIFT(MASK_AND_RSHIFT(tbtt - TBTTOFS * IEEE80211_DUR_TU,
2452 1.56 dyoung ATW_TBTTPRE_MASK), ATW_TOFS1_TBTTPRE_MASK));
2453 1.1 dyoung #undef TBTTOFS
2454 1.1 dyoung }
2455 1.1 dyoung
2456 1.3 dyoung static void
2457 1.3 dyoung atw_next_scan(void *arg)
2458 1.3 dyoung {
2459 1.3 dyoung struct atw_softc *sc = arg;
2460 1.3 dyoung struct ieee80211com *ic = &sc->sc_ic;
2461 1.3 dyoung struct ifnet *ifp = &ic->ic_if;
2462 1.3 dyoung int s;
2463 1.3 dyoung
2464 1.3 dyoung /* don't call atw_start w/o network interrupts blocked */
2465 1.3 dyoung s = splnet();
2466 1.3 dyoung if (ic->ic_state == IEEE80211_S_SCAN)
2467 1.3 dyoung ieee80211_next_scan(ifp);
2468 1.3 dyoung splx(s);
2469 1.3 dyoung }
2470 1.3 dyoung
2471 1.1 dyoung /* Synchronize the hardware state with the software state. */
2472 1.1 dyoung static int
2473 1.3 dyoung atw_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
2474 1.1 dyoung {
2475 1.3 dyoung struct ifnet *ifp = &ic->ic_if;
2476 1.3 dyoung struct atw_softc *sc = ifp->if_softc;
2477 1.1 dyoung enum ieee80211_state ostate;
2478 1.3 dyoung int error;
2479 1.1 dyoung
2480 1.1 dyoung ostate = ic->ic_state;
2481 1.1 dyoung
2482 1.3 dyoung if (nstate == IEEE80211_S_INIT) {
2483 1.3 dyoung callout_stop(&sc->sc_scan_ch);
2484 1.3 dyoung sc->sc_cur_chan = IEEE80211_CHAN_ANY;
2485 1.3 dyoung atw_start_beacon(sc, 0);
2486 1.3 dyoung return (*sc->sc_newstate)(ic, nstate, arg);
2487 1.3 dyoung }
2488 1.3 dyoung
2489 1.3 dyoung if ((error = atw_tune(sc)) != 0)
2490 1.3 dyoung return error;
2491 1.3 dyoung
2492 1.1 dyoung switch (nstate) {
2493 1.3 dyoung case IEEE80211_S_ASSOC:
2494 1.3 dyoung break;
2495 1.1 dyoung case IEEE80211_S_INIT:
2496 1.3 dyoung panic("%s: unexpected state IEEE80211_S_INIT\n", __func__);
2497 1.1 dyoung break;
2498 1.1 dyoung case IEEE80211_S_SCAN:
2499 1.3 dyoung callout_reset(&sc->sc_scan_ch, atw_dwelltime * hz / 1000,
2500 1.3 dyoung atw_next_scan, sc);
2501 1.1 dyoung
2502 1.1 dyoung break;
2503 1.1 dyoung case IEEE80211_S_RUN:
2504 1.1 dyoung if (ic->ic_opmode == IEEE80211_M_STA)
2505 1.1 dyoung break;
2506 1.1 dyoung /*FALLTHROUGH*/
2507 1.1 dyoung case IEEE80211_S_AUTH:
2508 1.1 dyoung atw_write_bssid(sc);
2509 1.1 dyoung atw_write_ssid(sc);
2510 1.1 dyoung atw_write_sup_rates(sc);
2511 1.1 dyoung
2512 1.3 dyoung if (ic->ic_opmode == IEEE80211_M_AHDEMO ||
2513 1.3 dyoung ic->ic_opmode == IEEE80211_M_MONITOR)
2514 1.3 dyoung break;
2515 1.1 dyoung
2516 1.3 dyoung /* set listen interval
2517 1.3 dyoung * XXX do software units agree w/ hardware?
2518 1.3 dyoung */
2519 1.3 dyoung ATW_WRITE(sc, ATW_BPLI,
2520 1.3 dyoung LSHIFT(ic->ic_bss->ni_intval, ATW_BPLI_BP_MASK) |
2521 1.3 dyoung LSHIFT(ic->ic_lintval / ic->ic_bss->ni_intval,
2522 1.3 dyoung ATW_BPLI_LI_MASK));
2523 1.1 dyoung
2524 1.3 dyoung DPRINTF(sc, ("%s: reg[ATW_BPLI] = %08x\n",
2525 1.3 dyoung sc->sc_dev.dv_xname, ATW_READ(sc, ATW_BPLI)));
2526 1.1 dyoung
2527 1.3 dyoung atw_tsf(sc);
2528 1.1 dyoung break;
2529 1.1 dyoung }
2530 1.1 dyoung
2531 1.11 dyoung if (nstate != IEEE80211_S_SCAN)
2532 1.3 dyoung callout_stop(&sc->sc_scan_ch);
2533 1.1 dyoung
2534 1.3 dyoung if (nstate == IEEE80211_S_RUN &&
2535 1.3 dyoung (ic->ic_opmode == IEEE80211_M_HOSTAP ||
2536 1.3 dyoung ic->ic_opmode == IEEE80211_M_IBSS))
2537 1.3 dyoung atw_start_beacon(sc, 1);
2538 1.3 dyoung else
2539 1.3 dyoung atw_start_beacon(sc, 0);
2540 1.1 dyoung
2541 1.43 dyoung error = (*sc->sc_newstate)(ic, nstate, arg);
2542 1.43 dyoung
2543 1.43 dyoung if (ostate == IEEE80211_S_INIT && nstate == IEEE80211_S_SCAN)
2544 1.43 dyoung atw_write_bssid(sc);
2545 1.43 dyoung
2546 1.43 dyoung return error;
2547 1.1 dyoung }
2548 1.1 dyoung
2549 1.1 dyoung /*
2550 1.1 dyoung * atw_add_rxbuf:
2551 1.1 dyoung *
2552 1.1 dyoung * Add a receive buffer to the indicated descriptor.
2553 1.1 dyoung */
2554 1.1 dyoung int
2555 1.23 dyoung atw_add_rxbuf(struct atw_softc *sc, int idx)
2556 1.1 dyoung {
2557 1.1 dyoung struct atw_rxsoft *rxs = &sc->sc_rxsoft[idx];
2558 1.1 dyoung struct mbuf *m;
2559 1.1 dyoung int error;
2560 1.1 dyoung
2561 1.1 dyoung MGETHDR(m, M_DONTWAIT, MT_DATA);
2562 1.1 dyoung if (m == NULL)
2563 1.1 dyoung return (ENOBUFS);
2564 1.1 dyoung
2565 1.1 dyoung MCLGET(m, M_DONTWAIT);
2566 1.1 dyoung if ((m->m_flags & M_EXT) == 0) {
2567 1.1 dyoung m_freem(m);
2568 1.1 dyoung return (ENOBUFS);
2569 1.1 dyoung }
2570 1.1 dyoung
2571 1.1 dyoung if (rxs->rxs_mbuf != NULL)
2572 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
2573 1.1 dyoung
2574 1.1 dyoung rxs->rxs_mbuf = m;
2575 1.1 dyoung
2576 1.1 dyoung error = bus_dmamap_load(sc->sc_dmat, rxs->rxs_dmamap,
2577 1.1 dyoung m->m_ext.ext_buf, m->m_ext.ext_size, NULL,
2578 1.1 dyoung BUS_DMA_READ|BUS_DMA_NOWAIT);
2579 1.1 dyoung if (error) {
2580 1.1 dyoung printf("%s: can't load rx DMA map %d, error = %d\n",
2581 1.1 dyoung sc->sc_dev.dv_xname, idx, error);
2582 1.1 dyoung panic("atw_add_rxbuf"); /* XXX */
2583 1.1 dyoung }
2584 1.1 dyoung
2585 1.1 dyoung bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
2586 1.1 dyoung rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
2587 1.1 dyoung
2588 1.1 dyoung ATW_INIT_RXDESC(sc, idx);
2589 1.1 dyoung
2590 1.1 dyoung return (0);
2591 1.1 dyoung }
2592 1.1 dyoung
2593 1.1 dyoung /*
2594 1.36 dyoung * Release any queued transmit buffers.
2595 1.36 dyoung */
2596 1.36 dyoung void
2597 1.36 dyoung atw_txdrain(struct atw_softc *sc)
2598 1.36 dyoung {
2599 1.36 dyoung struct atw_txsoft *txs;
2600 1.36 dyoung
2601 1.36 dyoung while ((txs = SIMPLEQ_FIRST(&sc->sc_txdirtyq)) != NULL) {
2602 1.36 dyoung SIMPLEQ_REMOVE_HEAD(&sc->sc_txdirtyq, txs_q);
2603 1.36 dyoung if (txs->txs_mbuf != NULL) {
2604 1.36 dyoung bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
2605 1.36 dyoung m_freem(txs->txs_mbuf);
2606 1.36 dyoung txs->txs_mbuf = NULL;
2607 1.36 dyoung }
2608 1.36 dyoung SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
2609 1.36 dyoung }
2610 1.36 dyoung sc->sc_tx_timer = 0;
2611 1.36 dyoung }
2612 1.36 dyoung
2613 1.36 dyoung /*
2614 1.1 dyoung * atw_stop: [ ifnet interface function ]
2615 1.1 dyoung *
2616 1.1 dyoung * Stop transmission on the interface.
2617 1.1 dyoung */
2618 1.1 dyoung void
2619 1.23 dyoung atw_stop(struct ifnet *ifp, int disable)
2620 1.1 dyoung {
2621 1.1 dyoung struct atw_softc *sc = ifp->if_softc;
2622 1.3 dyoung struct ieee80211com *ic = &sc->sc_ic;
2623 1.1 dyoung
2624 1.3 dyoung ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
2625 1.1 dyoung
2626 1.1 dyoung /* Disable interrupts. */
2627 1.1 dyoung ATW_WRITE(sc, ATW_IER, 0);
2628 1.1 dyoung
2629 1.1 dyoung /* Stop the transmit and receive processes. */
2630 1.1 dyoung sc->sc_opmode = 0;
2631 1.1 dyoung ATW_WRITE(sc, ATW_NAR, 0);
2632 1.49 dyoung DELAY(20 * 1000);
2633 1.1 dyoung ATW_WRITE(sc, ATW_TDBD, 0);
2634 1.1 dyoung ATW_WRITE(sc, ATW_TDBP, 0);
2635 1.1 dyoung ATW_WRITE(sc, ATW_RDB, 0);
2636 1.1 dyoung
2637 1.36 dyoung atw_txdrain(sc);
2638 1.1 dyoung
2639 1.1 dyoung if (disable) {
2640 1.1 dyoung atw_rxdrain(sc);
2641 1.1 dyoung atw_disable(sc);
2642 1.1 dyoung }
2643 1.1 dyoung
2644 1.1 dyoung /*
2645 1.1 dyoung * Mark the interface down and cancel the watchdog timer.
2646 1.1 dyoung */
2647 1.1 dyoung ifp->if_flags &= ~(IFF_RUNNING | IFF_OACTIVE);
2648 1.1 dyoung ifp->if_timer = 0;
2649 1.1 dyoung
2650 1.36 dyoung if (!disable)
2651 1.36 dyoung atw_reset(sc);
2652 1.1 dyoung }
2653 1.1 dyoung
2654 1.1 dyoung /*
2655 1.1 dyoung * atw_rxdrain:
2656 1.1 dyoung *
2657 1.1 dyoung * Drain the receive queue.
2658 1.1 dyoung */
2659 1.1 dyoung void
2660 1.23 dyoung atw_rxdrain(struct atw_softc *sc)
2661 1.1 dyoung {
2662 1.1 dyoung struct atw_rxsoft *rxs;
2663 1.1 dyoung int i;
2664 1.1 dyoung
2665 1.1 dyoung for (i = 0; i < ATW_NRXDESC; i++) {
2666 1.1 dyoung rxs = &sc->sc_rxsoft[i];
2667 1.1 dyoung if (rxs->rxs_mbuf == NULL)
2668 1.1 dyoung continue;
2669 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
2670 1.1 dyoung m_freem(rxs->rxs_mbuf);
2671 1.1 dyoung rxs->rxs_mbuf = NULL;
2672 1.1 dyoung }
2673 1.1 dyoung }
2674 1.1 dyoung
2675 1.1 dyoung /*
2676 1.1 dyoung * atw_detach:
2677 1.1 dyoung *
2678 1.1 dyoung * Detach an ADM8211 interface.
2679 1.1 dyoung */
2680 1.1 dyoung int
2681 1.23 dyoung atw_detach(struct atw_softc *sc)
2682 1.1 dyoung {
2683 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
2684 1.1 dyoung struct atw_rxsoft *rxs;
2685 1.1 dyoung struct atw_txsoft *txs;
2686 1.1 dyoung int i;
2687 1.1 dyoung
2688 1.1 dyoung /*
2689 1.1 dyoung * Succeed now if there isn't any work to do.
2690 1.1 dyoung */
2691 1.1 dyoung if ((sc->sc_flags & ATWF_ATTACHED) == 0)
2692 1.1 dyoung return (0);
2693 1.1 dyoung
2694 1.1 dyoung ieee80211_ifdetach(ifp);
2695 1.1 dyoung if_detach(ifp);
2696 1.1 dyoung
2697 1.1 dyoung for (i = 0; i < ATW_NRXDESC; i++) {
2698 1.1 dyoung rxs = &sc->sc_rxsoft[i];
2699 1.1 dyoung if (rxs->rxs_mbuf != NULL) {
2700 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, rxs->rxs_dmamap);
2701 1.1 dyoung m_freem(rxs->rxs_mbuf);
2702 1.1 dyoung rxs->rxs_mbuf = NULL;
2703 1.1 dyoung }
2704 1.1 dyoung bus_dmamap_destroy(sc->sc_dmat, rxs->rxs_dmamap);
2705 1.1 dyoung }
2706 1.1 dyoung for (i = 0; i < ATW_TXQUEUELEN; i++) {
2707 1.1 dyoung txs = &sc->sc_txsoft[i];
2708 1.1 dyoung if (txs->txs_mbuf != NULL) {
2709 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
2710 1.1 dyoung m_freem(txs->txs_mbuf);
2711 1.1 dyoung txs->txs_mbuf = NULL;
2712 1.1 dyoung }
2713 1.1 dyoung bus_dmamap_destroy(sc->sc_dmat, txs->txs_dmamap);
2714 1.1 dyoung }
2715 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, sc->sc_cddmamap);
2716 1.1 dyoung bus_dmamap_destroy(sc->sc_dmat, sc->sc_cddmamap);
2717 1.1 dyoung bus_dmamem_unmap(sc->sc_dmat, (caddr_t)sc->sc_control_data,
2718 1.1 dyoung sizeof(struct atw_control_data));
2719 1.1 dyoung bus_dmamem_free(sc->sc_dmat, &sc->sc_cdseg, sc->sc_cdnseg);
2720 1.1 dyoung
2721 1.1 dyoung shutdownhook_disestablish(sc->sc_sdhook);
2722 1.1 dyoung powerhook_disestablish(sc->sc_powerhook);
2723 1.1 dyoung
2724 1.1 dyoung if (sc->sc_srom)
2725 1.1 dyoung free(sc->sc_srom, M_DEVBUF);
2726 1.1 dyoung
2727 1.1 dyoung return (0);
2728 1.1 dyoung }
2729 1.1 dyoung
2730 1.1 dyoung /* atw_shutdown: make sure the interface is stopped at reboot time. */
2731 1.1 dyoung void
2732 1.23 dyoung atw_shutdown(void *arg)
2733 1.1 dyoung {
2734 1.1 dyoung struct atw_softc *sc = arg;
2735 1.1 dyoung
2736 1.1 dyoung atw_stop(&sc->sc_ic.ic_if, 1);
2737 1.1 dyoung }
2738 1.1 dyoung
2739 1.1 dyoung int
2740 1.23 dyoung atw_intr(void *arg)
2741 1.1 dyoung {
2742 1.1 dyoung struct atw_softc *sc = arg;
2743 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
2744 1.1 dyoung u_int32_t status, rxstatus, txstatus, linkstatus;
2745 1.1 dyoung int handled = 0, txthresh;
2746 1.1 dyoung
2747 1.1 dyoung #ifdef DEBUG
2748 1.1 dyoung if (ATW_IS_ENABLED(sc) == 0)
2749 1.1 dyoung panic("%s: atw_intr: not enabled", sc->sc_dev.dv_xname);
2750 1.1 dyoung #endif
2751 1.1 dyoung
2752 1.1 dyoung /*
2753 1.1 dyoung * If the interface isn't running, the interrupt couldn't
2754 1.1 dyoung * possibly have come from us.
2755 1.1 dyoung */
2756 1.1 dyoung if ((ifp->if_flags & IFF_RUNNING) == 0 ||
2757 1.1 dyoung (sc->sc_dev.dv_flags & DVF_ACTIVE) == 0)
2758 1.1 dyoung return (0);
2759 1.1 dyoung
2760 1.1 dyoung for (;;) {
2761 1.1 dyoung status = ATW_READ(sc, ATW_STSR);
2762 1.1 dyoung
2763 1.1 dyoung if (status)
2764 1.1 dyoung ATW_WRITE(sc, ATW_STSR, status);
2765 1.1 dyoung
2766 1.1 dyoung #ifdef ATW_DEBUG
2767 1.1 dyoung #define PRINTINTR(flag) do { \
2768 1.1 dyoung if ((status & flag) != 0) { \
2769 1.1 dyoung printf("%s" #flag, delim); \
2770 1.1 dyoung delim = ","; \
2771 1.1 dyoung } \
2772 1.1 dyoung } while (0)
2773 1.1 dyoung
2774 1.1 dyoung if (atw_debug > 1 && status) {
2775 1.1 dyoung const char *delim = "<";
2776 1.1 dyoung
2777 1.1 dyoung printf("%s: reg[STSR] = %x",
2778 1.1 dyoung sc->sc_dev.dv_xname, status);
2779 1.1 dyoung
2780 1.1 dyoung PRINTINTR(ATW_INTR_FBE);
2781 1.1 dyoung PRINTINTR(ATW_INTR_LINKOFF);
2782 1.1 dyoung PRINTINTR(ATW_INTR_LINKON);
2783 1.1 dyoung PRINTINTR(ATW_INTR_RCI);
2784 1.1 dyoung PRINTINTR(ATW_INTR_RDU);
2785 1.15 dyoung PRINTINTR(ATW_INTR_REIS);
2786 1.1 dyoung PRINTINTR(ATW_INTR_RPS);
2787 1.1 dyoung PRINTINTR(ATW_INTR_TCI);
2788 1.1 dyoung PRINTINTR(ATW_INTR_TDU);
2789 1.1 dyoung PRINTINTR(ATW_INTR_TLT);
2790 1.1 dyoung PRINTINTR(ATW_INTR_TPS);
2791 1.1 dyoung PRINTINTR(ATW_INTR_TRT);
2792 1.1 dyoung PRINTINTR(ATW_INTR_TUF);
2793 1.1 dyoung PRINTINTR(ATW_INTR_BCNTC);
2794 1.1 dyoung PRINTINTR(ATW_INTR_ATIME);
2795 1.1 dyoung PRINTINTR(ATW_INTR_TBTT);
2796 1.1 dyoung PRINTINTR(ATW_INTR_TSCZ);
2797 1.1 dyoung PRINTINTR(ATW_INTR_TSFTF);
2798 1.1 dyoung printf(">\n");
2799 1.1 dyoung }
2800 1.1 dyoung #undef PRINTINTR
2801 1.1 dyoung #endif /* ATW_DEBUG */
2802 1.1 dyoung
2803 1.1 dyoung if ((status & sc->sc_inten) == 0)
2804 1.1 dyoung break;
2805 1.1 dyoung
2806 1.1 dyoung handled = 1;
2807 1.1 dyoung
2808 1.1 dyoung rxstatus = status & sc->sc_rxint_mask;
2809 1.1 dyoung txstatus = status & sc->sc_txint_mask;
2810 1.1 dyoung linkstatus = status & sc->sc_linkint_mask;
2811 1.1 dyoung
2812 1.1 dyoung if (linkstatus) {
2813 1.1 dyoung atw_linkintr(sc, linkstatus);
2814 1.1 dyoung }
2815 1.1 dyoung
2816 1.1 dyoung if (rxstatus) {
2817 1.1 dyoung /* Grab any new packets. */
2818 1.1 dyoung atw_rxintr(sc);
2819 1.1 dyoung
2820 1.1 dyoung if (rxstatus & ATW_INTR_RDU) {
2821 1.1 dyoung printf("%s: receive ring overrun\n",
2822 1.1 dyoung sc->sc_dev.dv_xname);
2823 1.1 dyoung /* Get the receive process going again. */
2824 1.1 dyoung ATW_WRITE(sc, ATW_RDR, 0x1);
2825 1.1 dyoung break;
2826 1.1 dyoung }
2827 1.1 dyoung }
2828 1.1 dyoung
2829 1.1 dyoung if (txstatus) {
2830 1.1 dyoung /* Sweep up transmit descriptors. */
2831 1.1 dyoung atw_txintr(sc);
2832 1.1 dyoung
2833 1.1 dyoung if (txstatus & ATW_INTR_TLT)
2834 1.1 dyoung DPRINTF(sc, ("%s: tx lifetime exceeded\n",
2835 1.1 dyoung sc->sc_dev.dv_xname));
2836 1.1 dyoung
2837 1.1 dyoung if (txstatus & ATW_INTR_TRT)
2838 1.1 dyoung DPRINTF(sc, ("%s: tx retry limit exceeded\n",
2839 1.1 dyoung sc->sc_dev.dv_xname));
2840 1.1 dyoung
2841 1.1 dyoung /* If Tx under-run, increase our transmit threshold
2842 1.1 dyoung * if another is available.
2843 1.1 dyoung */
2844 1.1 dyoung txthresh = sc->sc_txthresh + 1;
2845 1.1 dyoung if ((txstatus & ATW_INTR_TUF) &&
2846 1.1 dyoung sc->sc_txth[txthresh].txth_name != NULL) {
2847 1.1 dyoung /* Idle the transmit process. */
2848 1.1 dyoung atw_idle(sc, ATW_NAR_ST);
2849 1.1 dyoung
2850 1.1 dyoung sc->sc_txthresh = txthresh;
2851 1.1 dyoung sc->sc_opmode &= ~(ATW_NAR_TR_MASK|ATW_NAR_SF);
2852 1.1 dyoung sc->sc_opmode |=
2853 1.1 dyoung sc->sc_txth[txthresh].txth_opmode;
2854 1.1 dyoung printf("%s: transmit underrun; new "
2855 1.1 dyoung "threshold: %s\n", sc->sc_dev.dv_xname,
2856 1.1 dyoung sc->sc_txth[txthresh].txth_name);
2857 1.1 dyoung
2858 1.1 dyoung /* Set the new threshold and restart
2859 1.1 dyoung * the transmit process.
2860 1.1 dyoung */
2861 1.1 dyoung ATW_WRITE(sc, ATW_NAR, sc->sc_opmode);
2862 1.49 dyoung DELAY(20 * 1000);
2863 1.49 dyoung ATW_WRITE(sc, ATW_RDR, 0x1);
2864 1.1 dyoung /* XXX Log every Nth underrun from
2865 1.1 dyoung * XXX now on?
2866 1.1 dyoung */
2867 1.1 dyoung }
2868 1.1 dyoung }
2869 1.1 dyoung
2870 1.1 dyoung if (status & (ATW_INTR_TPS|ATW_INTR_RPS)) {
2871 1.1 dyoung if (status & ATW_INTR_TPS)
2872 1.1 dyoung printf("%s: transmit process stopped\n",
2873 1.1 dyoung sc->sc_dev.dv_xname);
2874 1.1 dyoung if (status & ATW_INTR_RPS)
2875 1.1 dyoung printf("%s: receive process stopped\n",
2876 1.1 dyoung sc->sc_dev.dv_xname);
2877 1.1 dyoung (void)atw_init(ifp);
2878 1.1 dyoung break;
2879 1.1 dyoung }
2880 1.1 dyoung
2881 1.1 dyoung if (status & ATW_INTR_FBE) {
2882 1.1 dyoung printf("%s: fatal bus error\n", sc->sc_dev.dv_xname);
2883 1.1 dyoung (void)atw_init(ifp);
2884 1.1 dyoung break;
2885 1.1 dyoung }
2886 1.1 dyoung
2887 1.1 dyoung /*
2888 1.1 dyoung * Not handled:
2889 1.1 dyoung *
2890 1.1 dyoung * Transmit buffer unavailable -- normal
2891 1.1 dyoung * condition, nothing to do, really.
2892 1.1 dyoung *
2893 1.1 dyoung * Early receive interrupt -- not available on
2894 1.1 dyoung * all chips, we just use RI. We also only
2895 1.1 dyoung * use single-segment receive DMA, so this
2896 1.1 dyoung * is mostly useless.
2897 1.1 dyoung *
2898 1.1 dyoung * TBD others
2899 1.1 dyoung */
2900 1.1 dyoung }
2901 1.1 dyoung
2902 1.1 dyoung /* Try to get more packets going. */
2903 1.1 dyoung atw_start(ifp);
2904 1.1 dyoung
2905 1.1 dyoung return (handled);
2906 1.1 dyoung }
2907 1.1 dyoung
2908 1.1 dyoung /*
2909 1.1 dyoung * atw_idle:
2910 1.1 dyoung *
2911 1.1 dyoung * Cause the transmit and/or receive processes to go idle.
2912 1.1 dyoung *
2913 1.1 dyoung * XXX It seems that the ADM8211 will not signal the end of the Rx/Tx
2914 1.1 dyoung * process in STSR if I clear SR or ST after the process has already
2915 1.1 dyoung * ceased. Fair enough. But the Rx process status bits in ATW_TEST0
2916 1.1 dyoung * do not seem to be too reliable. Perhaps I have the sense of the
2917 1.1 dyoung * Rx bits switched with the Tx bits?
2918 1.1 dyoung */
2919 1.1 dyoung void
2920 1.23 dyoung atw_idle(struct atw_softc *sc, u_int32_t bits)
2921 1.1 dyoung {
2922 1.1 dyoung u_int32_t ackmask = 0, opmode, stsr, test0;
2923 1.1 dyoung int i, s;
2924 1.1 dyoung
2925 1.1 dyoung s = splnet();
2926 1.1 dyoung
2927 1.1 dyoung opmode = sc->sc_opmode & ~bits;
2928 1.1 dyoung
2929 1.1 dyoung if (bits & ATW_NAR_SR)
2930 1.1 dyoung ackmask |= ATW_INTR_RPS;
2931 1.1 dyoung
2932 1.1 dyoung if (bits & ATW_NAR_ST) {
2933 1.1 dyoung ackmask |= ATW_INTR_TPS;
2934 1.1 dyoung /* set ATW_NAR_HF to flush TX FIFO. */
2935 1.1 dyoung opmode |= ATW_NAR_HF;
2936 1.1 dyoung }
2937 1.1 dyoung
2938 1.1 dyoung ATW_WRITE(sc, ATW_NAR, opmode);
2939 1.49 dyoung DELAY(20 * 1000);
2940 1.1 dyoung
2941 1.49 dyoung for (i = 0; i < 10; i++) {
2942 1.1 dyoung stsr = ATW_READ(sc, ATW_STSR);
2943 1.1 dyoung if ((stsr & ackmask) == ackmask)
2944 1.1 dyoung break;
2945 1.49 dyoung DELAY(1000);
2946 1.1 dyoung }
2947 1.1 dyoung
2948 1.1 dyoung ATW_WRITE(sc, ATW_STSR, stsr & ackmask);
2949 1.1 dyoung
2950 1.1 dyoung if ((stsr & ackmask) == ackmask)
2951 1.1 dyoung goto out;
2952 1.1 dyoung
2953 1.1 dyoung test0 = ATW_READ(sc, ATW_TEST0);
2954 1.1 dyoung
2955 1.1 dyoung if ((bits & ATW_NAR_ST) != 0 && (stsr & ATW_INTR_TPS) == 0 &&
2956 1.1 dyoung (test0 & ATW_TEST0_TS_MASK) != ATW_TEST0_TS_STOPPED) {
2957 1.1 dyoung printf("%s: transmit process not idle [%s]\n",
2958 1.1 dyoung sc->sc_dev.dv_xname,
2959 1.1 dyoung atw_tx_state[MASK_AND_RSHIFT(test0, ATW_TEST0_TS_MASK)]);
2960 1.1 dyoung printf("%s: bits %08x test0 %08x stsr %08x\n",
2961 1.1 dyoung sc->sc_dev.dv_xname, bits, test0, stsr);
2962 1.1 dyoung }
2963 1.1 dyoung
2964 1.1 dyoung if ((bits & ATW_NAR_SR) != 0 && (stsr & ATW_INTR_RPS) == 0 &&
2965 1.1 dyoung (test0 & ATW_TEST0_RS_MASK) != ATW_TEST0_RS_STOPPED) {
2966 1.1 dyoung DPRINTF2(sc, ("%s: receive process not idle [%s]\n",
2967 1.1 dyoung sc->sc_dev.dv_xname,
2968 1.1 dyoung atw_rx_state[MASK_AND_RSHIFT(test0, ATW_TEST0_RS_MASK)]));
2969 1.1 dyoung DPRINTF2(sc, ("%s: bits %08x test0 %08x stsr %08x\n",
2970 1.1 dyoung sc->sc_dev.dv_xname, bits, test0, stsr));
2971 1.1 dyoung }
2972 1.1 dyoung out:
2973 1.37 dyoung if ((bits & ATW_NAR_ST) != 0)
2974 1.37 dyoung atw_txdrain(sc);
2975 1.1 dyoung splx(s);
2976 1.1 dyoung return;
2977 1.1 dyoung }
2978 1.1 dyoung
2979 1.1 dyoung /*
2980 1.1 dyoung * atw_linkintr:
2981 1.1 dyoung *
2982 1.1 dyoung * Helper; handle link-status interrupts.
2983 1.1 dyoung */
2984 1.1 dyoung void
2985 1.23 dyoung atw_linkintr(struct atw_softc *sc, u_int32_t linkstatus)
2986 1.1 dyoung {
2987 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2988 1.1 dyoung
2989 1.1 dyoung if (ic->ic_state != IEEE80211_S_RUN)
2990 1.1 dyoung return;
2991 1.1 dyoung
2992 1.1 dyoung if (linkstatus & ATW_INTR_LINKON) {
2993 1.1 dyoung DPRINTF(sc, ("%s: link on\n", sc->sc_dev.dv_xname));
2994 1.1 dyoung sc->sc_rescan_timer = 0;
2995 1.1 dyoung } else if (linkstatus & ATW_INTR_LINKOFF) {
2996 1.1 dyoung DPRINTF(sc, ("%s: link off\n", sc->sc_dev.dv_xname));
2997 1.32 dyoung if (ic->ic_opmode != IEEE80211_M_STA)
2998 1.16 dyoung return;
2999 1.32 dyoung sc->sc_rescan_timer = 3;
3000 1.32 dyoung ic->ic_if.if_timer = 1;
3001 1.1 dyoung }
3002 1.1 dyoung }
3003 1.1 dyoung
3004 1.1 dyoung /*
3005 1.1 dyoung * atw_rxintr:
3006 1.1 dyoung *
3007 1.1 dyoung * Helper; handle receive interrupts.
3008 1.1 dyoung */
3009 1.1 dyoung void
3010 1.23 dyoung atw_rxintr(struct atw_softc *sc)
3011 1.1 dyoung {
3012 1.1 dyoung static int rate_tbl[] = {2, 4, 11, 22, 44};
3013 1.3 dyoung struct ieee80211com *ic = &sc->sc_ic;
3014 1.3 dyoung struct ieee80211_node *ni;
3015 1.3 dyoung struct ieee80211_frame *wh;
3016 1.3 dyoung struct ifnet *ifp = &ic->ic_if;
3017 1.1 dyoung struct atw_rxsoft *rxs;
3018 1.1 dyoung struct mbuf *m;
3019 1.1 dyoung u_int32_t rxstat;
3020 1.20 dyoung int i, len, rate, rate0;
3021 1.66 dyoung u_int32_t rssi, rssi0;
3022 1.1 dyoung
3023 1.1 dyoung for (i = sc->sc_rxptr;; i = ATW_NEXTRX(i)) {
3024 1.1 dyoung rxs = &sc->sc_rxsoft[i];
3025 1.1 dyoung
3026 1.1 dyoung ATW_CDRXSYNC(sc, i, BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
3027 1.1 dyoung
3028 1.1 dyoung rxstat = le32toh(sc->sc_rxdescs[i].ar_stat);
3029 1.66 dyoung rssi0 = le32toh(sc->sc_rxdescs[i].ar_rssi);
3030 1.1 dyoung rate0 = MASK_AND_RSHIFT(rxstat, ATW_RXSTAT_RXDR_MASK);
3031 1.1 dyoung
3032 1.4 dyoung if (rxstat & ATW_RXSTAT_OWN)
3033 1.4 dyoung break; /* We have processed all receive buffers. */
3034 1.1 dyoung
3035 1.14 dyoung DPRINTF3(sc,
3036 1.66 dyoung ("%s: rx stat %08x rssi0 %08x buf1 %08x buf2 %08x\n",
3037 1.14 dyoung sc->sc_dev.dv_xname,
3038 1.66 dyoung rxstat, rssi0,
3039 1.45 dyoung le32toh(sc->sc_rxdescs[i].ar_buf1),
3040 1.45 dyoung le32toh(sc->sc_rxdescs[i].ar_buf2)));
3041 1.1 dyoung
3042 1.1 dyoung /*
3043 1.29 dyoung * Make sure the packet fits in one buffer. This should
3044 1.1 dyoung * always be the case.
3045 1.1 dyoung */
3046 1.1 dyoung if ((rxstat & (ATW_RXSTAT_FS|ATW_RXSTAT_LS)) !=
3047 1.1 dyoung (ATW_RXSTAT_FS|ATW_RXSTAT_LS)) {
3048 1.1 dyoung printf("%s: incoming packet spilled, resetting\n",
3049 1.1 dyoung sc->sc_dev.dv_xname);
3050 1.1 dyoung (void)atw_init(ifp);
3051 1.1 dyoung return;
3052 1.1 dyoung }
3053 1.1 dyoung
3054 1.1 dyoung /*
3055 1.1 dyoung * If an error occurred, update stats, clear the status
3056 1.1 dyoung * word, and leave the packet buffer in place. It will
3057 1.1 dyoung * simply be reused the next time the ring comes around.
3058 1.1 dyoung * If 802.1Q VLAN MTU is enabled, ignore the Frame Too Long
3059 1.1 dyoung * error.
3060 1.1 dyoung */
3061 1.1 dyoung
3062 1.1 dyoung if ((rxstat & ATW_RXSTAT_ES) != 0 &&
3063 1.1 dyoung ((sc->sc_ic.ic_ec.ec_capenable & ETHERCAP_VLAN_MTU) == 0 ||
3064 1.1 dyoung (rxstat & (ATW_RXSTAT_DE | ATW_RXSTAT_SFDE |
3065 1.1 dyoung ATW_RXSTAT_SIGE | ATW_RXSTAT_CRC16E |
3066 1.1 dyoung ATW_RXSTAT_RXTOE | ATW_RXSTAT_CRC32E |
3067 1.1 dyoung ATW_RXSTAT_ICVE)) != 0)) {
3068 1.1 dyoung #define PRINTERR(bit, str) \
3069 1.1 dyoung if (rxstat & (bit)) \
3070 1.1 dyoung printf("%s: receive error: %s\n", \
3071 1.1 dyoung sc->sc_dev.dv_xname, str)
3072 1.1 dyoung ifp->if_ierrors++;
3073 1.1 dyoung PRINTERR(ATW_RXSTAT_DE, "descriptor error");
3074 1.1 dyoung PRINTERR(ATW_RXSTAT_SFDE, "PLCP SFD error");
3075 1.1 dyoung PRINTERR(ATW_RXSTAT_SIGE, "PLCP signal error");
3076 1.1 dyoung PRINTERR(ATW_RXSTAT_CRC16E, "PLCP CRC16 error");
3077 1.1 dyoung PRINTERR(ATW_RXSTAT_RXTOE, "time-out");
3078 1.1 dyoung PRINTERR(ATW_RXSTAT_CRC32E, "FCS error");
3079 1.1 dyoung PRINTERR(ATW_RXSTAT_ICVE, "WEP ICV error");
3080 1.1 dyoung #undef PRINTERR
3081 1.1 dyoung ATW_INIT_RXDESC(sc, i);
3082 1.1 dyoung continue;
3083 1.1 dyoung }
3084 1.1 dyoung
3085 1.1 dyoung bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
3086 1.1 dyoung rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_POSTREAD);
3087 1.1 dyoung
3088 1.1 dyoung /*
3089 1.1 dyoung * No errors; receive the packet. Note the ADM8211
3090 1.1 dyoung * includes the CRC in promiscuous mode.
3091 1.1 dyoung */
3092 1.1 dyoung len = MASK_AND_RSHIFT(rxstat, ATW_RXSTAT_FL_MASK);
3093 1.1 dyoung
3094 1.1 dyoung /*
3095 1.1 dyoung * Allocate a new mbuf cluster. If that fails, we are
3096 1.1 dyoung * out of memory, and must drop the packet and recycle
3097 1.1 dyoung * the buffer that's already attached to this descriptor.
3098 1.1 dyoung */
3099 1.1 dyoung m = rxs->rxs_mbuf;
3100 1.1 dyoung if (atw_add_rxbuf(sc, i) != 0) {
3101 1.1 dyoung ifp->if_ierrors++;
3102 1.1 dyoung ATW_INIT_RXDESC(sc, i);
3103 1.1 dyoung bus_dmamap_sync(sc->sc_dmat, rxs->rxs_dmamap, 0,
3104 1.1 dyoung rxs->rxs_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
3105 1.1 dyoung continue;
3106 1.1 dyoung }
3107 1.1 dyoung
3108 1.1 dyoung ifp->if_ipackets++;
3109 1.1 dyoung if (sc->sc_opmode & ATW_NAR_PR)
3110 1.1 dyoung m->m_flags |= M_HASFCS;
3111 1.1 dyoung m->m_pkthdr.rcvif = ifp;
3112 1.46 dyoung m->m_pkthdr.len = m->m_len = MIN(m->m_ext.ext_size, len);
3113 1.1 dyoung
3114 1.1 dyoung if (rate0 >= sizeof(rate_tbl) / sizeof(rate_tbl[0]))
3115 1.1 dyoung rate = 0;
3116 1.1 dyoung else
3117 1.1 dyoung rate = rate_tbl[rate0];
3118 1.1 dyoung
3119 1.66 dyoung /* The RSSI comes straight from a register in the
3120 1.66 dyoung * baseband processor. I know that for the RF3000,
3121 1.66 dyoung * the RSSI register also contains the antenna-selection
3122 1.66 dyoung * bits. Mask those off.
3123 1.66 dyoung *
3124 1.66 dyoung * TBD Treat other basebands.
3125 1.66 dyoung */
3126 1.66 dyoung if (sc->sc_bbptype == ATW_BBPTYPE_RFMD)
3127 1.66 dyoung rssi = rssi0 & RF3000_RSSI_MASK;
3128 1.66 dyoung else
3129 1.66 dyoung rssi = rssi0;
3130 1.66 dyoung
3131 1.12 dyoung #if NBPFILTER > 0
3132 1.12 dyoung /* Pass this up to any BPF listeners. */
3133 1.12 dyoung if (sc->sc_radiobpf != NULL) {
3134 1.12 dyoung struct atw_rx_radiotap_header *tap = &sc->sc_rxtap;
3135 1.12 dyoung
3136 1.12 dyoung tap->ar_rate = rate;
3137 1.12 dyoung tap->ar_chan_freq = ic->ic_bss->ni_chan->ic_freq;
3138 1.12 dyoung tap->ar_chan_flags = ic->ic_bss->ni_chan->ic_flags;
3139 1.12 dyoung
3140 1.12 dyoung /* TBD verify units are dB */
3141 1.20 dyoung tap->ar_antsignal = (int)rssi;
3142 1.12 dyoung /* TBD tap->ar_flags */
3143 1.12 dyoung
3144 1.25 dyoung bpf_mtap2(sc->sc_radiobpf, (caddr_t)tap,
3145 1.25 dyoung tap->ar_ihdr.it_len, m);
3146 1.12 dyoung }
3147 1.12 dyoung #endif /* NPBFILTER > 0 */
3148 1.1 dyoung
3149 1.3 dyoung wh = mtod(m, struct ieee80211_frame *);
3150 1.8 dyoung ni = ieee80211_find_rxnode(ic, wh);
3151 1.31 dyoung ieee80211_input(ifp, m, ni, (int)rssi, 0);
3152 1.3 dyoung /*
3153 1.3 dyoung * The frame may have caused the node to be marked for
3154 1.3 dyoung * reclamation (e.g. in response to a DEAUTH message)
3155 1.3 dyoung * so use free_node here instead of unref_node.
3156 1.3 dyoung */
3157 1.3 dyoung if (ni == ic->ic_bss)
3158 1.3 dyoung ieee80211_unref_node(&ni);
3159 1.3 dyoung else
3160 1.3 dyoung ieee80211_free_node(ic, ni);
3161 1.1 dyoung }
3162 1.1 dyoung
3163 1.1 dyoung /* Update the receive pointer. */
3164 1.1 dyoung sc->sc_rxptr = i;
3165 1.1 dyoung }
3166 1.1 dyoung
3167 1.1 dyoung /*
3168 1.1 dyoung * atw_txintr:
3169 1.1 dyoung *
3170 1.1 dyoung * Helper; handle transmit interrupts.
3171 1.1 dyoung */
3172 1.1 dyoung void
3173 1.23 dyoung atw_txintr(struct atw_softc *sc)
3174 1.1 dyoung {
3175 1.1 dyoung #define TXSTAT_ERRMASK (ATW_TXSTAT_TUF | ATW_TXSTAT_TLT | ATW_TXSTAT_TRT | \
3176 1.1 dyoung ATW_TXSTAT_TRO | ATW_TXSTAT_SOFBR)
3177 1.1 dyoung #define TXSTAT_FMT "\20\31ATW_TXSTAT_SOFBR\32ATW_TXSTAT_TRO\33ATW_TXSTAT_TUF" \
3178 1.1 dyoung "\34ATW_TXSTAT_TRT\35ATW_TXSTAT_TLT"
3179 1.1 dyoung
3180 1.1 dyoung static char txstat_buf[sizeof("ffffffff<>" TXSTAT_FMT)];
3181 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
3182 1.1 dyoung struct atw_txsoft *txs;
3183 1.1 dyoung u_int32_t txstat;
3184 1.1 dyoung
3185 1.1 dyoung DPRINTF3(sc, ("%s: atw_txintr: sc_flags 0x%08x\n",
3186 1.1 dyoung sc->sc_dev.dv_xname, sc->sc_flags));
3187 1.1 dyoung
3188 1.1 dyoung ifp->if_flags &= ~IFF_OACTIVE;
3189 1.1 dyoung
3190 1.1 dyoung /*
3191 1.1 dyoung * Go through our Tx list and free mbufs for those
3192 1.1 dyoung * frames that have been transmitted.
3193 1.1 dyoung */
3194 1.1 dyoung while ((txs = SIMPLEQ_FIRST(&sc->sc_txdirtyq)) != NULL) {
3195 1.48 dyoung ATW_CDTXSYNC(sc, txs->txs_lastdesc, 1,
3196 1.1 dyoung BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
3197 1.1 dyoung
3198 1.1 dyoung #ifdef ATW_DEBUG
3199 1.1 dyoung if ((ifp->if_flags & IFF_DEBUG) != 0 && atw_debug > 2) {
3200 1.1 dyoung int i;
3201 1.1 dyoung printf(" txsoft %p transmit chain:\n", txs);
3202 1.48 dyoung ATW_CDTXSYNC(sc, txs->txs_firstdesc,
3203 1.48 dyoung txs->txs_ndescs - 1,
3204 1.48 dyoung BUS_DMASYNC_POSTREAD|BUS_DMASYNC_POSTWRITE);
3205 1.1 dyoung for (i = txs->txs_firstdesc;; i = ATW_NEXTTX(i)) {
3206 1.1 dyoung printf(" descriptor %d:\n", i);
3207 1.1 dyoung printf(" at_status: 0x%08x\n",
3208 1.1 dyoung le32toh(sc->sc_txdescs[i].at_stat));
3209 1.1 dyoung printf(" at_flags: 0x%08x\n",
3210 1.1 dyoung le32toh(sc->sc_txdescs[i].at_flags));
3211 1.1 dyoung printf(" at_buf1: 0x%08x\n",
3212 1.1 dyoung le32toh(sc->sc_txdescs[i].at_buf1));
3213 1.1 dyoung printf(" at_buf2: 0x%08x\n",
3214 1.1 dyoung le32toh(sc->sc_txdescs[i].at_buf2));
3215 1.1 dyoung if (i == txs->txs_lastdesc)
3216 1.1 dyoung break;
3217 1.1 dyoung }
3218 1.1 dyoung }
3219 1.1 dyoung #endif
3220 1.1 dyoung
3221 1.1 dyoung txstat = le32toh(sc->sc_txdescs[txs->txs_lastdesc].at_stat);
3222 1.1 dyoung if (txstat & ATW_TXSTAT_OWN)
3223 1.1 dyoung break;
3224 1.1 dyoung
3225 1.1 dyoung SIMPLEQ_REMOVE_HEAD(&sc->sc_txdirtyq, txs_q);
3226 1.1 dyoung
3227 1.1 dyoung sc->sc_txfree += txs->txs_ndescs;
3228 1.1 dyoung
3229 1.1 dyoung bus_dmamap_sync(sc->sc_dmat, txs->txs_dmamap,
3230 1.1 dyoung 0, txs->txs_dmamap->dm_mapsize,
3231 1.1 dyoung BUS_DMASYNC_POSTWRITE);
3232 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, txs->txs_dmamap);
3233 1.1 dyoung m_freem(txs->txs_mbuf);
3234 1.1 dyoung txs->txs_mbuf = NULL;
3235 1.1 dyoung
3236 1.1 dyoung SIMPLEQ_INSERT_TAIL(&sc->sc_txfreeq, txs, txs_q);
3237 1.1 dyoung
3238 1.1 dyoung if ((ifp->if_flags & IFF_DEBUG) != 0 &&
3239 1.1 dyoung (txstat & TXSTAT_ERRMASK) != 0) {
3240 1.1 dyoung bitmask_snprintf(txstat & TXSTAT_ERRMASK, TXSTAT_FMT,
3241 1.1 dyoung txstat_buf, sizeof(txstat_buf));
3242 1.1 dyoung printf("%s: txstat %s %d\n", sc->sc_dev.dv_xname,
3243 1.1 dyoung txstat_buf,
3244 1.1 dyoung MASK_AND_RSHIFT(txstat, ATW_TXSTAT_ARC_MASK));
3245 1.1 dyoung }
3246 1.1 dyoung
3247 1.1 dyoung /*
3248 1.1 dyoung * Check for errors and collisions.
3249 1.1 dyoung */
3250 1.1 dyoung if (txstat & ATW_TXSTAT_TUF)
3251 1.1 dyoung sc->sc_stats.ts_tx_tuf++;
3252 1.1 dyoung if (txstat & ATW_TXSTAT_TLT)
3253 1.1 dyoung sc->sc_stats.ts_tx_tlt++;
3254 1.1 dyoung if (txstat & ATW_TXSTAT_TRT)
3255 1.1 dyoung sc->sc_stats.ts_tx_trt++;
3256 1.1 dyoung if (txstat & ATW_TXSTAT_TRO)
3257 1.1 dyoung sc->sc_stats.ts_tx_tro++;
3258 1.1 dyoung if (txstat & ATW_TXSTAT_SOFBR) {
3259 1.1 dyoung sc->sc_stats.ts_tx_sofbr++;
3260 1.1 dyoung }
3261 1.1 dyoung
3262 1.1 dyoung if ((txstat & ATW_TXSTAT_ES) == 0)
3263 1.1 dyoung ifp->if_collisions +=
3264 1.1 dyoung MASK_AND_RSHIFT(txstat, ATW_TXSTAT_ARC_MASK);
3265 1.1 dyoung else
3266 1.1 dyoung ifp->if_oerrors++;
3267 1.1 dyoung
3268 1.1 dyoung ifp->if_opackets++;
3269 1.1 dyoung }
3270 1.1 dyoung
3271 1.1 dyoung /*
3272 1.1 dyoung * If there are no more pending transmissions, cancel the watchdog
3273 1.1 dyoung * timer.
3274 1.1 dyoung */
3275 1.1 dyoung if (txs == NULL)
3276 1.1 dyoung sc->sc_tx_timer = 0;
3277 1.1 dyoung #undef TXSTAT_ERRMASK
3278 1.1 dyoung #undef TXSTAT_FMT
3279 1.1 dyoung }
3280 1.1 dyoung
3281 1.1 dyoung /*
3282 1.1 dyoung * atw_watchdog: [ifnet interface function]
3283 1.1 dyoung *
3284 1.1 dyoung * Watchdog timer handler.
3285 1.1 dyoung */
3286 1.1 dyoung void
3287 1.23 dyoung atw_watchdog(struct ifnet *ifp)
3288 1.1 dyoung {
3289 1.1 dyoung struct atw_softc *sc = ifp->if_softc;
3290 1.3 dyoung struct ieee80211com *ic = &sc->sc_ic;
3291 1.1 dyoung
3292 1.1 dyoung ifp->if_timer = 0;
3293 1.1 dyoung if (ATW_IS_ENABLED(sc) == 0)
3294 1.1 dyoung return;
3295 1.1 dyoung
3296 1.1 dyoung if (sc->sc_rescan_timer) {
3297 1.1 dyoung if (--sc->sc_rescan_timer == 0)
3298 1.3 dyoung (void)ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
3299 1.1 dyoung }
3300 1.1 dyoung if (sc->sc_tx_timer) {
3301 1.1 dyoung if (--sc->sc_tx_timer == 0 &&
3302 1.1 dyoung !SIMPLEQ_EMPTY(&sc->sc_txdirtyq)) {
3303 1.1 dyoung printf("%s: transmit timeout\n", ifp->if_xname);
3304 1.1 dyoung ifp->if_oerrors++;
3305 1.1 dyoung (void)atw_init(ifp);
3306 1.1 dyoung atw_start(ifp);
3307 1.1 dyoung }
3308 1.1 dyoung }
3309 1.1 dyoung if (sc->sc_tx_timer != 0 || sc->sc_rescan_timer != 0)
3310 1.1 dyoung ifp->if_timer = 1;
3311 1.1 dyoung ieee80211_watchdog(ifp);
3312 1.1 dyoung }
3313 1.1 dyoung
3314 1.1 dyoung /* Compute the 802.11 Duration field and the PLCP Length fields for
3315 1.1 dyoung * a len-byte frame (HEADER + PAYLOAD + FCS) sent at rate * 500Kbps.
3316 1.1 dyoung * Write the fields to the ADM8211 Tx header, frm.
3317 1.1 dyoung *
3318 1.1 dyoung * TBD use the fragmentation threshold to find the right duration for
3319 1.1 dyoung * the first & last fragments.
3320 1.1 dyoung *
3321 1.1 dyoung * TBD make certain of the duration fields applied by the ADM8211 to each
3322 1.1 dyoung * fragment. I think that the ADM8211 knows how to subtract the CTS
3323 1.1 dyoung * duration when ATW_HDRCTL_RTSCTS is clear; that is why I add it regardless.
3324 1.1 dyoung * I also think that the ADM8211 does *some* arithmetic for us, because
3325 1.1 dyoung * otherwise I think we would have to set a first duration for CTS/first
3326 1.1 dyoung * fragment, a second duration for fragments between the first and the
3327 1.1 dyoung * last, and a third duration for the last fragment.
3328 1.1 dyoung *
3329 1.1 dyoung * TBD make certain that duration fields reflect addition of FCS/WEP
3330 1.1 dyoung * and correct duration arithmetic as necessary.
3331 1.1 dyoung */
3332 1.1 dyoung static void
3333 1.1 dyoung atw_frame_setdurs(struct atw_softc *sc, struct atw_frame *frm, int rate,
3334 1.1 dyoung int len)
3335 1.1 dyoung {
3336 1.1 dyoung int remainder;
3337 1.1 dyoung
3338 1.1 dyoung /* deal also with encrypted fragments */
3339 1.1 dyoung if (frm->atw_hdrctl & htole16(ATW_HDRCTL_WEP)) {
3340 1.1 dyoung DPRINTF2(sc, ("%s: atw_frame_setdurs len += 8\n",
3341 1.1 dyoung sc->sc_dev.dv_xname));
3342 1.1 dyoung len += IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN +
3343 1.1 dyoung IEEE80211_WEP_CRCLEN;
3344 1.1 dyoung }
3345 1.1 dyoung
3346 1.1 dyoung /* 802.11 Duration Field for CTS/Data/ACK sequence minus FCS & WEP
3347 1.1 dyoung * duration (XXX added by MAC?).
3348 1.1 dyoung */
3349 1.1 dyoung frm->atw_head_dur = (16 * (len - IEEE80211_CRC_LEN)) / rate;
3350 1.1 dyoung remainder = (16 * (len - IEEE80211_CRC_LEN)) % rate;
3351 1.1 dyoung
3352 1.1 dyoung if (rate <= 4)
3353 1.1 dyoung /* 1-2Mbps WLAN: send ACK/CTS at 1Mbps */
3354 1.1 dyoung frm->atw_head_dur += 3 * (IEEE80211_DUR_DS_SIFS +
3355 1.1 dyoung IEEE80211_DUR_DS_SHORT_PREAMBLE +
3356 1.1 dyoung IEEE80211_DUR_DS_FAST_PLCPHDR) +
3357 1.1 dyoung IEEE80211_DUR_DS_SLOW_CTS + IEEE80211_DUR_DS_SLOW_ACK;
3358 1.1 dyoung else
3359 1.1 dyoung /* 5-11Mbps WLAN: send ACK/CTS at 2Mbps */
3360 1.1 dyoung frm->atw_head_dur += 3 * (IEEE80211_DUR_DS_SIFS +
3361 1.1 dyoung IEEE80211_DUR_DS_SHORT_PREAMBLE +
3362 1.1 dyoung IEEE80211_DUR_DS_FAST_PLCPHDR) +
3363 1.1 dyoung IEEE80211_DUR_DS_FAST_CTS + IEEE80211_DUR_DS_FAST_ACK;
3364 1.1 dyoung
3365 1.1 dyoung /* lengthen duration if long preamble */
3366 1.1 dyoung if ((sc->sc_flags & ATWF_SHORT_PREAMBLE) == 0)
3367 1.1 dyoung frm->atw_head_dur +=
3368 1.1 dyoung 3 * (IEEE80211_DUR_DS_LONG_PREAMBLE -
3369 1.1 dyoung IEEE80211_DUR_DS_SHORT_PREAMBLE) +
3370 1.1 dyoung 3 * (IEEE80211_DUR_DS_SLOW_PLCPHDR -
3371 1.1 dyoung IEEE80211_DUR_DS_FAST_PLCPHDR);
3372 1.1 dyoung
3373 1.1 dyoung if (remainder != 0)
3374 1.1 dyoung frm->atw_head_dur++;
3375 1.1 dyoung
3376 1.1 dyoung if ((atw_voodoo & VOODOO_DUR_2_4_SPECIALCASE) &&
3377 1.1 dyoung (rate == 2 || rate == 4)) {
3378 1.1 dyoung /* derived from Linux: how could this be right? */
3379 1.1 dyoung frm->atw_head_plcplen = frm->atw_head_dur;
3380 1.1 dyoung } else {
3381 1.1 dyoung frm->atw_head_plcplen = (16 * len) / rate;
3382 1.1 dyoung remainder = (80 * len) % (rate * 5);
3383 1.1 dyoung
3384 1.1 dyoung if (remainder != 0) {
3385 1.1 dyoung frm->atw_head_plcplen++;
3386 1.1 dyoung
3387 1.1 dyoung /* XXX magic */
3388 1.1 dyoung if ((atw_voodoo & VOODOO_DUR_11_ROUNDING) &&
3389 1.1 dyoung rate == 22 && remainder <= 30)
3390 1.1 dyoung frm->atw_head_plcplen |= 0x8000;
3391 1.1 dyoung }
3392 1.1 dyoung }
3393 1.1 dyoung frm->atw_tail_plcplen = frm->atw_head_plcplen =
3394 1.1 dyoung htole16(frm->atw_head_plcplen);
3395 1.1 dyoung frm->atw_tail_dur = frm->atw_head_dur = htole16(frm->atw_head_dur);
3396 1.1 dyoung }
3397 1.1 dyoung
3398 1.1 dyoung #ifdef ATW_DEBUG
3399 1.1 dyoung static void
3400 1.1 dyoung atw_dump_pkt(struct ifnet *ifp, struct mbuf *m0)
3401 1.1 dyoung {
3402 1.1 dyoung struct atw_softc *sc = ifp->if_softc;
3403 1.1 dyoung struct mbuf *m;
3404 1.1 dyoung int i, noctets = 0;
3405 1.1 dyoung
3406 1.1 dyoung printf("%s: %d-byte packet\n", sc->sc_dev.dv_xname,
3407 1.1 dyoung m0->m_pkthdr.len);
3408 1.1 dyoung
3409 1.1 dyoung for (m = m0; m; m = m->m_next) {
3410 1.1 dyoung if (m->m_len == 0)
3411 1.1 dyoung continue;
3412 1.1 dyoung for (i = 0; i < m->m_len; i++) {
3413 1.1 dyoung printf(" %02x", ((u_int8_t*)m->m_data)[i]);
3414 1.1 dyoung if (++noctets % 24 == 0)
3415 1.1 dyoung printf("\n");
3416 1.1 dyoung }
3417 1.1 dyoung }
3418 1.1 dyoung printf("%s%s: %d bytes emitted\n",
3419 1.1 dyoung (noctets % 24 != 0) ? "\n" : "", sc->sc_dev.dv_xname, noctets);
3420 1.1 dyoung }
3421 1.1 dyoung #endif /* ATW_DEBUG */
3422 1.1 dyoung
3423 1.1 dyoung /*
3424 1.1 dyoung * atw_start: [ifnet interface function]
3425 1.1 dyoung *
3426 1.1 dyoung * Start packet transmission on the interface.
3427 1.1 dyoung */
3428 1.1 dyoung void
3429 1.23 dyoung atw_start(struct ifnet *ifp)
3430 1.1 dyoung {
3431 1.1 dyoung struct atw_softc *sc = ifp->if_softc;
3432 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
3433 1.3 dyoung struct ieee80211_node *ni;
3434 1.3 dyoung struct ieee80211_frame *wh;
3435 1.1 dyoung struct atw_frame *hh;
3436 1.3 dyoung struct mbuf *m0, *m;
3437 1.1 dyoung struct atw_txsoft *txs, *last_txs;
3438 1.1 dyoung struct atw_txdesc *txd;
3439 1.3 dyoung int do_encrypt, rate;
3440 1.1 dyoung bus_dmamap_t dmamap;
3441 1.5 christos int ctl, error, firsttx, nexttx, lasttx = -1, first, ofree, seg;
3442 1.1 dyoung
3443 1.1 dyoung DPRINTF2(sc, ("%s: atw_start: sc_flags 0x%08x, if_flags 0x%08x\n",
3444 1.1 dyoung sc->sc_dev.dv_xname, sc->sc_flags, ifp->if_flags));
3445 1.1 dyoung
3446 1.1 dyoung if ((ifp->if_flags & (IFF_RUNNING|IFF_OACTIVE)) != IFF_RUNNING)
3447 1.1 dyoung return;
3448 1.1 dyoung
3449 1.1 dyoung /*
3450 1.1 dyoung * Remember the previous number of free descriptors and
3451 1.1 dyoung * the first descriptor we'll use.
3452 1.1 dyoung */
3453 1.1 dyoung ofree = sc->sc_txfree;
3454 1.1 dyoung firsttx = sc->sc_txnext;
3455 1.1 dyoung
3456 1.1 dyoung DPRINTF2(sc, ("%s: atw_start: txfree %d, txnext %d\n",
3457 1.1 dyoung sc->sc_dev.dv_xname, ofree, firsttx));
3458 1.1 dyoung
3459 1.1 dyoung /*
3460 1.1 dyoung * Loop through the send queue, setting up transmit descriptors
3461 1.1 dyoung * until we drain the queue, or use up all available transmit
3462 1.1 dyoung * descriptors.
3463 1.1 dyoung */
3464 1.1 dyoung while ((txs = SIMPLEQ_FIRST(&sc->sc_txfreeq)) != NULL &&
3465 1.1 dyoung sc->sc_txfree != 0) {
3466 1.1 dyoung
3467 1.1 dyoung /*
3468 1.1 dyoung * Grab a packet off the management queue, if it
3469 1.1 dyoung * is not empty. Otherwise, from the data queue.
3470 1.1 dyoung */
3471 1.3 dyoung IF_DEQUEUE(&ic->ic_mgtq, m0);
3472 1.3 dyoung if (m0 != NULL) {
3473 1.3 dyoung ni = (struct ieee80211_node *)m0->m_pkthdr.rcvif;
3474 1.3 dyoung m0->m_pkthdr.rcvif = NULL;
3475 1.3 dyoung } else {
3476 1.41 dyoung /* send no data packets until we are associated */
3477 1.41 dyoung if (ic->ic_state != IEEE80211_S_RUN)
3478 1.41 dyoung break;
3479 1.3 dyoung IFQ_DEQUEUE(&ifp->if_snd, m0);
3480 1.1 dyoung if (m0 == NULL)
3481 1.1 dyoung break;
3482 1.1 dyoung #if NBPFILTER > 0
3483 1.1 dyoung if (ifp->if_bpf != NULL)
3484 1.1 dyoung bpf_mtap(ifp->if_bpf, m0);
3485 1.1 dyoung #endif /* NBPFILTER > 0 */
3486 1.3 dyoung if ((m0 = ieee80211_encap(ifp, m0, &ni)) == NULL) {
3487 1.1 dyoung ifp->if_oerrors++;
3488 1.3 dyoung break;
3489 1.1 dyoung }
3490 1.1 dyoung }
3491 1.1 dyoung
3492 1.12 dyoung rate = MAX(ieee80211_get_rate(ic), 2);
3493 1.12 dyoung
3494 1.1 dyoung #if NBPFILTER > 0
3495 1.1 dyoung /*
3496 1.1 dyoung * Pass the packet to any BPF listeners.
3497 1.1 dyoung */
3498 1.1 dyoung if (ic->ic_rawbpf != NULL)
3499 1.1 dyoung bpf_mtap((caddr_t)ic->ic_rawbpf, m0);
3500 1.12 dyoung
3501 1.12 dyoung if (sc->sc_radiobpf != NULL) {
3502 1.12 dyoung struct atw_tx_radiotap_header *tap = &sc->sc_txtap;
3503 1.12 dyoung
3504 1.12 dyoung tap->at_rate = rate;
3505 1.12 dyoung tap->at_chan_freq = ic->ic_bss->ni_chan->ic_freq;
3506 1.12 dyoung tap->at_chan_flags = ic->ic_bss->ni_chan->ic_flags;
3507 1.12 dyoung
3508 1.12 dyoung /* TBD tap->at_flags */
3509 1.12 dyoung
3510 1.25 dyoung bpf_mtap2(sc->sc_radiobpf, (caddr_t)tap,
3511 1.25 dyoung tap->at_ihdr.it_len, m0);
3512 1.12 dyoung }
3513 1.1 dyoung #endif /* NBPFILTER > 0 */
3514 1.1 dyoung
3515 1.1 dyoung M_PREPEND(m0, offsetof(struct atw_frame, atw_ihdr), M_DONTWAIT);
3516 1.1 dyoung
3517 1.3 dyoung if (ni != NULL && ni != ic->ic_bss)
3518 1.3 dyoung ieee80211_free_node(ic, ni);
3519 1.3 dyoung
3520 1.1 dyoung if (m0 == NULL) {
3521 1.1 dyoung ifp->if_oerrors++;
3522 1.3 dyoung break;
3523 1.1 dyoung }
3524 1.1 dyoung
3525 1.1 dyoung /* just to make sure. */
3526 1.1 dyoung m0 = m_pullup(m0, sizeof(struct atw_frame));
3527 1.1 dyoung
3528 1.1 dyoung if (m0 == NULL) {
3529 1.1 dyoung ifp->if_oerrors++;
3530 1.3 dyoung break;
3531 1.1 dyoung }
3532 1.1 dyoung
3533 1.1 dyoung hh = mtod(m0, struct atw_frame *);
3534 1.1 dyoung wh = &hh->atw_ihdr;
3535 1.1 dyoung
3536 1.29 dyoung do_encrypt = ((wh->i_fc[1] & IEEE80211_FC1_WEP) != 0) ? 1 : 0;
3537 1.1 dyoung
3538 1.1 dyoung /* Copy everything we need from the 802.11 header:
3539 1.1 dyoung * Frame Control; address 1, address 3, or addresses
3540 1.1 dyoung * 3 and 4. NIC fills in BSSID, SA.
3541 1.1 dyoung */
3542 1.1 dyoung if (wh->i_fc[1] & IEEE80211_FC1_DIR_TODS) {
3543 1.3 dyoung if (wh->i_fc[1] & IEEE80211_FC1_DIR_FROMDS)
3544 1.3 dyoung panic("%s: illegal WDS frame",
3545 1.3 dyoung sc->sc_dev.dv_xname);
3546 1.1 dyoung memcpy(hh->atw_dst, wh->i_addr3, IEEE80211_ADDR_LEN);
3547 1.1 dyoung } else
3548 1.1 dyoung memcpy(hh->atw_dst, wh->i_addr1, IEEE80211_ADDR_LEN);
3549 1.1 dyoung
3550 1.1 dyoung *(u_int16_t*)hh->atw_fc = *(u_int16_t*)wh->i_fc;
3551 1.1 dyoung
3552 1.3 dyoung /* initialize remaining Tx parameters */
3553 1.3 dyoung memset(&hh->u, 0, sizeof(hh->u));
3554 1.1 dyoung
3555 1.1 dyoung hh->atw_rate = rate * 5;
3556 1.1 dyoung /* XXX this could be incorrect if M_FCS. _encap should
3557 1.1 dyoung * probably strip FCS just in case it sticks around in
3558 1.1 dyoung * bridged packets.
3559 1.1 dyoung */
3560 1.1 dyoung hh->atw_service = IEEE80211_PLCP_SERVICE; /* XXX guess */
3561 1.1 dyoung hh->atw_paylen = htole16(m0->m_pkthdr.len -
3562 1.1 dyoung sizeof(struct atw_frame));
3563 1.1 dyoung
3564 1.1 dyoung hh->atw_fragthr = htole16(ATW_FRAGTHR_FRAGTHR_MASK);
3565 1.1 dyoung hh->atw_rtylmt = 3;
3566 1.1 dyoung hh->atw_hdrctl = htole16(ATW_HDRCTL_UNKNOWN1);
3567 1.1 dyoung if (do_encrypt) {
3568 1.1 dyoung hh->atw_hdrctl |= htole16(ATW_HDRCTL_WEP);
3569 1.1 dyoung hh->atw_keyid = ic->ic_wep_txkey;
3570 1.1 dyoung }
3571 1.1 dyoung
3572 1.1 dyoung /* TBD 4-addr frames */
3573 1.1 dyoung atw_frame_setdurs(sc, hh, rate,
3574 1.1 dyoung m0->m_pkthdr.len - sizeof(struct atw_frame) +
3575 1.1 dyoung sizeof(struct ieee80211_frame) + IEEE80211_CRC_LEN);
3576 1.1 dyoung
3577 1.1 dyoung /* never fragment multicast frames */
3578 1.1 dyoung if (IEEE80211_IS_MULTICAST(hh->atw_dst)) {
3579 1.1 dyoung hh->atw_fragthr = htole16(ATW_FRAGTHR_FRAGTHR_MASK);
3580 1.1 dyoung } else if (sc->sc_flags & ATWF_RTSCTS) {
3581 1.1 dyoung hh->atw_hdrctl |= htole16(ATW_HDRCTL_RTSCTS);
3582 1.1 dyoung }
3583 1.1 dyoung
3584 1.1 dyoung #ifdef ATW_DEBUG
3585 1.1 dyoung hh->atw_fragnum = 0;
3586 1.1 dyoung
3587 1.1 dyoung if ((ifp->if_flags & IFF_DEBUG) != 0 && atw_debug > 2) {
3588 1.1 dyoung printf("%s: dst = %s, rate = 0x%02x, "
3589 1.1 dyoung "service = 0x%02x, paylen = 0x%04x\n",
3590 1.1 dyoung sc->sc_dev.dv_xname, ether_sprintf(hh->atw_dst),
3591 1.1 dyoung hh->atw_rate, hh->atw_service, hh->atw_paylen);
3592 1.1 dyoung
3593 1.1 dyoung printf("%s: fc[0] = 0x%02x, fc[1] = 0x%02x, "
3594 1.1 dyoung "dur1 = 0x%04x, dur2 = 0x%04x, "
3595 1.1 dyoung "dur3 = 0x%04x, rts_dur = 0x%04x\n",
3596 1.1 dyoung sc->sc_dev.dv_xname, hh->atw_fc[0], hh->atw_fc[1],
3597 1.1 dyoung hh->atw_tail_plcplen, hh->atw_head_plcplen,
3598 1.1 dyoung hh->atw_tail_dur, hh->atw_head_dur);
3599 1.1 dyoung
3600 1.1 dyoung printf("%s: hdrctl = 0x%04x, fragthr = 0x%04x, "
3601 1.1 dyoung "fragnum = 0x%02x, rtylmt = 0x%04x\n",
3602 1.1 dyoung sc->sc_dev.dv_xname, hh->atw_hdrctl,
3603 1.1 dyoung hh->atw_fragthr, hh->atw_fragnum, hh->atw_rtylmt);
3604 1.1 dyoung
3605 1.1 dyoung printf("%s: keyid = %d\n",
3606 1.1 dyoung sc->sc_dev.dv_xname, hh->atw_keyid);
3607 1.1 dyoung
3608 1.1 dyoung atw_dump_pkt(ifp, m0);
3609 1.1 dyoung }
3610 1.1 dyoung #endif /* ATW_DEBUG */
3611 1.1 dyoung
3612 1.1 dyoung dmamap = txs->txs_dmamap;
3613 1.1 dyoung
3614 1.1 dyoung /*
3615 1.3 dyoung * Load the DMA map. Copy and try (once) again if the packet
3616 1.3 dyoung * didn't fit in the alloted number of segments.
3617 1.1 dyoung */
3618 1.3 dyoung for (first = 1;
3619 1.3 dyoung (error = bus_dmamap_load_mbuf(sc->sc_dmat, dmamap, m0,
3620 1.3 dyoung BUS_DMA_WRITE|BUS_DMA_NOWAIT)) != 0 && first;
3621 1.3 dyoung first = 0) {
3622 1.1 dyoung MGETHDR(m, M_DONTWAIT, MT_DATA);
3623 1.1 dyoung if (m == NULL) {
3624 1.1 dyoung printf("%s: unable to allocate Tx mbuf\n",
3625 1.1 dyoung sc->sc_dev.dv_xname);
3626 1.1 dyoung break;
3627 1.1 dyoung }
3628 1.1 dyoung if (m0->m_pkthdr.len > MHLEN) {
3629 1.1 dyoung MCLGET(m, M_DONTWAIT);
3630 1.1 dyoung if ((m->m_flags & M_EXT) == 0) {
3631 1.1 dyoung printf("%s: unable to allocate Tx "
3632 1.1 dyoung "cluster\n", sc->sc_dev.dv_xname);
3633 1.1 dyoung m_freem(m);
3634 1.1 dyoung break;
3635 1.1 dyoung }
3636 1.1 dyoung }
3637 1.1 dyoung m_copydata(m0, 0, m0->m_pkthdr.len, mtod(m, caddr_t));
3638 1.1 dyoung m->m_pkthdr.len = m->m_len = m0->m_pkthdr.len;
3639 1.3 dyoung m_freem(m0);
3640 1.3 dyoung m0 = m;
3641 1.3 dyoung m = NULL;
3642 1.3 dyoung }
3643 1.3 dyoung if (error != 0) {
3644 1.3 dyoung printf("%s: unable to load Tx buffer, "
3645 1.3 dyoung "error = %d\n", sc->sc_dev.dv_xname, error);
3646 1.3 dyoung m_freem(m0);
3647 1.3 dyoung break;
3648 1.1 dyoung }
3649 1.1 dyoung
3650 1.1 dyoung /*
3651 1.1 dyoung * Ensure we have enough descriptors free to describe
3652 1.1 dyoung * the packet.
3653 1.1 dyoung */
3654 1.1 dyoung if (dmamap->dm_nsegs > sc->sc_txfree) {
3655 1.1 dyoung /*
3656 1.3 dyoung * Not enough free descriptors to transmit
3657 1.3 dyoung * this packet. Unload the DMA map and
3658 1.3 dyoung * drop the packet. Notify the upper layer
3659 1.3 dyoung * that there are no more slots left.
3660 1.1 dyoung *
3661 1.1 dyoung * XXX We could allocate an mbuf and copy, but
3662 1.1 dyoung * XXX it is worth it?
3663 1.1 dyoung */
3664 1.1 dyoung ifp->if_flags |= IFF_OACTIVE;
3665 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, dmamap);
3666 1.3 dyoung m_freem(m0);
3667 1.1 dyoung break;
3668 1.1 dyoung }
3669 1.1 dyoung
3670 1.1 dyoung /*
3671 1.1 dyoung * WE ARE NOW COMMITTED TO TRANSMITTING THE PACKET.
3672 1.1 dyoung */
3673 1.1 dyoung
3674 1.1 dyoung /* Sync the DMA map. */
3675 1.1 dyoung bus_dmamap_sync(sc->sc_dmat, dmamap, 0, dmamap->dm_mapsize,
3676 1.1 dyoung BUS_DMASYNC_PREWRITE);
3677 1.1 dyoung
3678 1.1 dyoung /* XXX arbitrary retry limit; 8 because I have seen it in
3679 1.1 dyoung * use already and maybe 0 means "no tries" !
3680 1.1 dyoung */
3681 1.1 dyoung ctl = htole32(LSHIFT(8, ATW_TXCTL_TL_MASK));
3682 1.1 dyoung
3683 1.1 dyoung DPRINTF2(sc, ("%s: TXDR <- max(10, %d)\n",
3684 1.1 dyoung sc->sc_dev.dv_xname, rate * 5));
3685 1.1 dyoung ctl |= htole32(LSHIFT(MAX(10, rate * 5), ATW_TXCTL_TXDR_MASK));
3686 1.1 dyoung
3687 1.1 dyoung /*
3688 1.1 dyoung * Initialize the transmit descriptors.
3689 1.1 dyoung */
3690 1.1 dyoung for (nexttx = sc->sc_txnext, seg = 0;
3691 1.1 dyoung seg < dmamap->dm_nsegs;
3692 1.1 dyoung seg++, nexttx = ATW_NEXTTX(nexttx)) {
3693 1.1 dyoung /*
3694 1.1 dyoung * If this is the first descriptor we're
3695 1.1 dyoung * enqueueing, don't set the OWN bit just
3696 1.1 dyoung * yet. That could cause a race condition.
3697 1.1 dyoung * We'll do it below.
3698 1.1 dyoung */
3699 1.1 dyoung txd = &sc->sc_txdescs[nexttx];
3700 1.1 dyoung txd->at_ctl = ctl |
3701 1.1 dyoung ((nexttx == firsttx) ? 0 : htole32(ATW_TXCTL_OWN));
3702 1.1 dyoung
3703 1.1 dyoung txd->at_buf1 = htole32(dmamap->dm_segs[seg].ds_addr);
3704 1.1 dyoung txd->at_flags =
3705 1.1 dyoung htole32(LSHIFT(dmamap->dm_segs[seg].ds_len,
3706 1.1 dyoung ATW_TXFLAG_TBS1_MASK)) |
3707 1.1 dyoung ((nexttx == (ATW_NTXDESC - 1))
3708 1.1 dyoung ? htole32(ATW_TXFLAG_TER) : 0);
3709 1.1 dyoung lasttx = nexttx;
3710 1.1 dyoung }
3711 1.1 dyoung
3712 1.19 dyoung IASSERT(lasttx != -1, ("bad lastx"));
3713 1.1 dyoung /* Set `first segment' and `last segment' appropriately. */
3714 1.1 dyoung sc->sc_txdescs[sc->sc_txnext].at_flags |=
3715 1.1 dyoung htole32(ATW_TXFLAG_FS);
3716 1.1 dyoung sc->sc_txdescs[lasttx].at_flags |= htole32(ATW_TXFLAG_LS);
3717 1.1 dyoung
3718 1.1 dyoung #ifdef ATW_DEBUG
3719 1.1 dyoung if ((ifp->if_flags & IFF_DEBUG) != 0 && atw_debug > 2) {
3720 1.1 dyoung printf(" txsoft %p transmit chain:\n", txs);
3721 1.1 dyoung for (seg = sc->sc_txnext;; seg = ATW_NEXTTX(seg)) {
3722 1.1 dyoung printf(" descriptor %d:\n", seg);
3723 1.1 dyoung printf(" at_ctl: 0x%08x\n",
3724 1.1 dyoung le32toh(sc->sc_txdescs[seg].at_ctl));
3725 1.1 dyoung printf(" at_flags: 0x%08x\n",
3726 1.1 dyoung le32toh(sc->sc_txdescs[seg].at_flags));
3727 1.1 dyoung printf(" at_buf1: 0x%08x\n",
3728 1.1 dyoung le32toh(sc->sc_txdescs[seg].at_buf1));
3729 1.1 dyoung printf(" at_buf2: 0x%08x\n",
3730 1.1 dyoung le32toh(sc->sc_txdescs[seg].at_buf2));
3731 1.1 dyoung if (seg == lasttx)
3732 1.1 dyoung break;
3733 1.1 dyoung }
3734 1.1 dyoung }
3735 1.1 dyoung #endif
3736 1.1 dyoung
3737 1.1 dyoung /* Sync the descriptors we're using. */
3738 1.1 dyoung ATW_CDTXSYNC(sc, sc->sc_txnext, dmamap->dm_nsegs,
3739 1.1 dyoung BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
3740 1.1 dyoung
3741 1.1 dyoung /*
3742 1.1 dyoung * Store a pointer to the packet so we can free it later,
3743 1.1 dyoung * and remember what txdirty will be once the packet is
3744 1.1 dyoung * done.
3745 1.1 dyoung */
3746 1.1 dyoung txs->txs_mbuf = m0;
3747 1.1 dyoung txs->txs_firstdesc = sc->sc_txnext;
3748 1.1 dyoung txs->txs_lastdesc = lasttx;
3749 1.1 dyoung txs->txs_ndescs = dmamap->dm_nsegs;
3750 1.1 dyoung
3751 1.1 dyoung /* Advance the tx pointer. */
3752 1.1 dyoung sc->sc_txfree -= dmamap->dm_nsegs;
3753 1.1 dyoung sc->sc_txnext = nexttx;
3754 1.1 dyoung
3755 1.1 dyoung SIMPLEQ_REMOVE_HEAD(&sc->sc_txfreeq, txs_q);
3756 1.1 dyoung SIMPLEQ_INSERT_TAIL(&sc->sc_txdirtyq, txs, txs_q);
3757 1.1 dyoung
3758 1.1 dyoung last_txs = txs;
3759 1.1 dyoung }
3760 1.1 dyoung
3761 1.1 dyoung if (txs == NULL || sc->sc_txfree == 0) {
3762 1.1 dyoung /* No more slots left; notify upper layer. */
3763 1.1 dyoung ifp->if_flags |= IFF_OACTIVE;
3764 1.1 dyoung }
3765 1.1 dyoung
3766 1.1 dyoung if (sc->sc_txfree != ofree) {
3767 1.1 dyoung DPRINTF2(sc, ("%s: packets enqueued, IC on %d, OWN on %d\n",
3768 1.1 dyoung sc->sc_dev.dv_xname, lasttx, firsttx));
3769 1.1 dyoung /*
3770 1.1 dyoung * Cause a transmit interrupt to happen on the
3771 1.1 dyoung * last packet we enqueued.
3772 1.1 dyoung */
3773 1.1 dyoung sc->sc_txdescs[lasttx].at_flags |= htole32(ATW_TXFLAG_IC);
3774 1.1 dyoung ATW_CDTXSYNC(sc, lasttx, 1,
3775 1.1 dyoung BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
3776 1.1 dyoung
3777 1.1 dyoung /*
3778 1.1 dyoung * The entire packet chain is set up. Give the
3779 1.1 dyoung * first descriptor to the chip now.
3780 1.1 dyoung */
3781 1.1 dyoung sc->sc_txdescs[firsttx].at_ctl |= htole32(ATW_TXCTL_OWN);
3782 1.1 dyoung ATW_CDTXSYNC(sc, firsttx, 1,
3783 1.1 dyoung BUS_DMASYNC_PREREAD|BUS_DMASYNC_PREWRITE);
3784 1.1 dyoung
3785 1.1 dyoung /* Wake up the transmitter. */
3786 1.1 dyoung ATW_WRITE(sc, ATW_TDR, 0x1);
3787 1.1 dyoung
3788 1.1 dyoung /* Set a watchdog timer in case the chip flakes out. */
3789 1.1 dyoung sc->sc_tx_timer = 5;
3790 1.1 dyoung ifp->if_timer = 1;
3791 1.1 dyoung }
3792 1.1 dyoung }
3793 1.1 dyoung
3794 1.1 dyoung /*
3795 1.1 dyoung * atw_power:
3796 1.1 dyoung *
3797 1.1 dyoung * Power management (suspend/resume) hook.
3798 1.1 dyoung */
3799 1.1 dyoung void
3800 1.23 dyoung atw_power(int why, void *arg)
3801 1.1 dyoung {
3802 1.1 dyoung struct atw_softc *sc = arg;
3803 1.1 dyoung struct ifnet *ifp = &sc->sc_ic.ic_if;
3804 1.1 dyoung int s;
3805 1.1 dyoung
3806 1.1 dyoung DPRINTF(sc, ("%s: atw_power(%d,)\n", sc->sc_dev.dv_xname, why));
3807 1.1 dyoung
3808 1.1 dyoung s = splnet();
3809 1.1 dyoung switch (why) {
3810 1.1 dyoung case PWR_STANDBY:
3811 1.1 dyoung /* XXX do nothing. */
3812 1.1 dyoung break;
3813 1.1 dyoung case PWR_SUSPEND:
3814 1.1 dyoung atw_stop(ifp, 0);
3815 1.1 dyoung if (sc->sc_power != NULL)
3816 1.1 dyoung (*sc->sc_power)(sc, why);
3817 1.1 dyoung break;
3818 1.1 dyoung case PWR_RESUME:
3819 1.1 dyoung if (ifp->if_flags & IFF_UP) {
3820 1.1 dyoung if (sc->sc_power != NULL)
3821 1.1 dyoung (*sc->sc_power)(sc, why);
3822 1.1 dyoung atw_init(ifp);
3823 1.1 dyoung }
3824 1.1 dyoung break;
3825 1.1 dyoung case PWR_SOFTSUSPEND:
3826 1.1 dyoung case PWR_SOFTSTANDBY:
3827 1.1 dyoung case PWR_SOFTRESUME:
3828 1.1 dyoung break;
3829 1.1 dyoung }
3830 1.1 dyoung splx(s);
3831 1.1 dyoung }
3832 1.1 dyoung
3833 1.1 dyoung /*
3834 1.1 dyoung * atw_ioctl: [ifnet interface function]
3835 1.1 dyoung *
3836 1.1 dyoung * Handle control requests from the operator.
3837 1.1 dyoung */
3838 1.1 dyoung int
3839 1.23 dyoung atw_ioctl(struct ifnet *ifp, u_long cmd, caddr_t data)
3840 1.1 dyoung {
3841 1.1 dyoung struct atw_softc *sc = ifp->if_softc;
3842 1.1 dyoung struct ifreq *ifr = (struct ifreq *)data;
3843 1.1 dyoung int s, error = 0;
3844 1.1 dyoung
3845 1.1 dyoung /* XXX monkey see, monkey do. comes from wi_ioctl. */
3846 1.1 dyoung if ((sc->sc_dev.dv_flags & DVF_ACTIVE) == 0)
3847 1.1 dyoung return ENXIO;
3848 1.1 dyoung
3849 1.1 dyoung s = splnet();
3850 1.1 dyoung
3851 1.1 dyoung switch (cmd) {
3852 1.1 dyoung case SIOCSIFFLAGS:
3853 1.1 dyoung if (ifp->if_flags & IFF_UP) {
3854 1.1 dyoung if (ATW_IS_ENABLED(sc)) {
3855 1.1 dyoung /*
3856 1.1 dyoung * To avoid rescanning another access point,
3857 1.1 dyoung * do not call atw_init() here. Instead,
3858 1.1 dyoung * only reflect media settings.
3859 1.1 dyoung */
3860 1.1 dyoung atw_filter_setup(sc);
3861 1.1 dyoung } else
3862 1.1 dyoung error = atw_init(ifp);
3863 1.1 dyoung } else if (ATW_IS_ENABLED(sc))
3864 1.1 dyoung atw_stop(ifp, 1);
3865 1.1 dyoung break;
3866 1.1 dyoung case SIOCADDMULTI:
3867 1.1 dyoung case SIOCDELMULTI:
3868 1.1 dyoung error = (cmd == SIOCADDMULTI) ?
3869 1.1 dyoung ether_addmulti(ifr, &sc->sc_ic.ic_ec) :
3870 1.1 dyoung ether_delmulti(ifr, &sc->sc_ic.ic_ec);
3871 1.1 dyoung if (error == ENETRESET) {
3872 1.1 dyoung if (ATW_IS_ENABLED(sc))
3873 1.1 dyoung atw_filter_setup(sc); /* do not rescan */
3874 1.1 dyoung error = 0;
3875 1.1 dyoung }
3876 1.1 dyoung break;
3877 1.1 dyoung default:
3878 1.1 dyoung error = ieee80211_ioctl(ifp, cmd, data);
3879 1.1 dyoung if (error == ENETRESET) {
3880 1.1 dyoung if (ATW_IS_ENABLED(sc))
3881 1.1 dyoung error = atw_init(ifp);
3882 1.1 dyoung else
3883 1.1 dyoung error = 0;
3884 1.1 dyoung }
3885 1.1 dyoung break;
3886 1.1 dyoung }
3887 1.1 dyoung
3888 1.1 dyoung /* Try to get more packets going. */
3889 1.1 dyoung if (ATW_IS_ENABLED(sc))
3890 1.1 dyoung atw_start(ifp);
3891 1.1 dyoung
3892 1.1 dyoung splx(s);
3893 1.1 dyoung return (error);
3894 1.3 dyoung }
3895 1.3 dyoung
3896 1.3 dyoung static int
3897 1.3 dyoung atw_media_change(struct ifnet *ifp)
3898 1.3 dyoung {
3899 1.3 dyoung int error;
3900 1.3 dyoung
3901 1.3 dyoung error = ieee80211_media_change(ifp);
3902 1.3 dyoung if (error == ENETRESET) {
3903 1.3 dyoung if ((ifp->if_flags & (IFF_RUNNING|IFF_UP)) ==
3904 1.3 dyoung (IFF_RUNNING|IFF_UP))
3905 1.3 dyoung atw_init(ifp); /* XXX lose error */
3906 1.3 dyoung error = 0;
3907 1.3 dyoung }
3908 1.3 dyoung return error;
3909 1.1 dyoung }
3910 1.1 dyoung
3911 1.1 dyoung static void
3912 1.1 dyoung atw_media_status(struct ifnet *ifp, struct ifmediareq *imr)
3913 1.1 dyoung {
3914 1.1 dyoung struct atw_softc *sc = ifp->if_softc;
3915 1.1 dyoung
3916 1.1 dyoung if (ATW_IS_ENABLED(sc) == 0) {
3917 1.1 dyoung imr->ifm_active = IFM_IEEE80211 | IFM_NONE;
3918 1.1 dyoung imr->ifm_status = 0;
3919 1.1 dyoung return;
3920 1.1 dyoung }
3921 1.1 dyoung ieee80211_media_status(ifp, imr);
3922 1.1 dyoung }
3923