ath.c revision 1.139 1 1.139 rin /* $NetBSD: ath.c,v 1.139 2024/07/05 04:31:50 rin Exp $ */
2 1.9 itojun
3 1.1 dyoung /*-
4 1.47 dyoung * Copyright (c) 2002-2005 Sam Leffler, Errno Consulting
5 1.1 dyoung * All rights reserved.
6 1.1 dyoung *
7 1.1 dyoung * Redistribution and use in source and binary forms, with or without
8 1.1 dyoung * modification, are permitted provided that the following conditions
9 1.1 dyoung * are met:
10 1.1 dyoung * 1. Redistributions of source code must retain the above copyright
11 1.1 dyoung * notice, this list of conditions and the following disclaimer,
12 1.1 dyoung * without modification.
13 1.1 dyoung * 2. Redistributions in binary form must reproduce at minimum a disclaimer
14 1.1 dyoung * similar to the "NO WARRANTY" disclaimer below ("Disclaimer") and any
15 1.1 dyoung * redistribution must be conditioned upon including a substantially
16 1.1 dyoung * similar Disclaimer requirement for further binary redistribution.
17 1.1 dyoung * 3. Neither the names of the above-listed copyright holders nor the names
18 1.1 dyoung * of any contributors may be used to endorse or promote products derived
19 1.1 dyoung * from this software without specific prior written permission.
20 1.1 dyoung *
21 1.1 dyoung * Alternatively, this software may be distributed under the terms of the
22 1.1 dyoung * GNU General Public License ("GPL") version 2 as published by the Free
23 1.1 dyoung * Software Foundation.
24 1.1 dyoung *
25 1.1 dyoung * NO WARRANTY
26 1.1 dyoung * THIS SOFTWARE IS PROVIDED BY THE COPYRIGHT HOLDERS AND CONTRIBUTORS
27 1.1 dyoung * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT
28 1.1 dyoung * LIMITED TO, THE IMPLIED WARRANTIES OF NONINFRINGEMENT, MERCHANTIBILITY
29 1.1 dyoung * AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL
30 1.1 dyoung * THE COPYRIGHT HOLDERS OR CONTRIBUTORS BE LIABLE FOR SPECIAL, EXEMPLARY,
31 1.1 dyoung * OR 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
34 1.1 dyoung * IN 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
36 1.1 dyoung * THE POSSIBILITY OF SUCH DAMAGES.
37 1.1 dyoung */
38 1.1 dyoung
39 1.1 dyoung #include <sys/cdefs.h>
40 1.2 dyoung #ifdef __FreeBSD__
41 1.61 skrll __FBSDID("$FreeBSD: src/sys/dev/ath/if_ath.c,v 1.104 2005/09/16 10:09:23 ru Exp $");
42 1.2 dyoung #endif
43 1.2 dyoung #ifdef __NetBSD__
44 1.139 rin __KERNEL_RCSID(0, "$NetBSD: ath.c,v 1.139 2024/07/05 04:31:50 rin Exp $");
45 1.2 dyoung #endif
46 1.1 dyoung
47 1.1 dyoung /*
48 1.1 dyoung * Driver for the Atheros Wireless LAN controller.
49 1.1 dyoung *
50 1.1 dyoung * This software is derived from work of Atsushi Onoe; his contribution
51 1.1 dyoung * is greatly appreciated.
52 1.1 dyoung */
53 1.1 dyoung
54 1.110 jmcneill #ifdef _KERNEL_OPT
55 1.1 dyoung #include "opt_inet.h"
56 1.110 jmcneill #endif
57 1.1 dyoung
58 1.1 dyoung #include <sys/param.h>
59 1.73 blymn #include <sys/reboot.h>
60 1.73 blymn #include <sys/systm.h>
61 1.2 dyoung #include <sys/types.h>
62 1.1 dyoung #include <sys/sysctl.h>
63 1.73 blymn #include <sys/mbuf.h>
64 1.1 dyoung #include <sys/malloc.h>
65 1.1 dyoung #include <sys/kernel.h>
66 1.1 dyoung #include <sys/socket.h>
67 1.1 dyoung #include <sys/sockio.h>
68 1.1 dyoung #include <sys/errno.h>
69 1.1 dyoung #include <sys/callout.h>
70 1.87 ad #include <sys/bus.h>
71 1.1 dyoung #include <sys/endian.h>
72 1.129 christos #include <sys/kauth.h>
73 1.1 dyoung
74 1.1 dyoung #include <net/if.h>
75 1.1 dyoung #include <net/if_dl.h>
76 1.1 dyoung #include <net/if_media.h>
77 1.55 dyoung #include <net/if_types.h>
78 1.1 dyoung #include <net/if_arp.h>
79 1.2 dyoung #include <net/if_ether.h>
80 1.1 dyoung #include <net/if_llc.h>
81 1.1 dyoung
82 1.47 dyoung #include <net80211/ieee80211_netbsd.h>
83 1.1 dyoung #include <net80211/ieee80211_var.h>
84 1.1 dyoung
85 1.1 dyoung #include <net/bpf.h>
86 1.1 dyoung
87 1.1 dyoung #ifdef INET
88 1.73 blymn #include <netinet/in.h>
89 1.1 dyoung #endif
90 1.1 dyoung
91 1.48 martin #include <sys/device.h>
92 1.47 dyoung #include <dev/ic/ath_netbsd.h>
93 1.2 dyoung
94 1.1 dyoung #define AR_DEBUG
95 1.2 dyoung #include <dev/ic/athvar.h>
96 1.104 alc #include "ah_desc.h"
97 1.104 alc #include "ah_devid.h" /* XXX for softled */
98 1.104 alc #include "opt_ah.h"
99 1.1 dyoung
100 1.68 dyoung #ifdef ATH_TX99_DIAG
101 1.68 dyoung #include <dev/ath/ath_tx99/ath_tx99.h>
102 1.68 dyoung #endif
103 1.68 dyoung
104 1.55 dyoung /* unaligned little endian access */
105 1.1 dyoung #define LE_READ_2(p) \
106 1.1 dyoung ((u_int16_t) \
107 1.1 dyoung ((((u_int8_t *)(p))[0] ) | (((u_int8_t *)(p))[1] << 8)))
108 1.1 dyoung #define LE_READ_4(p) \
109 1.1 dyoung ((u_int32_t) \
110 1.1 dyoung ((((u_int8_t *)(p))[0] ) | (((u_int8_t *)(p))[1] << 8) | \
111 1.1 dyoung (((u_int8_t *)(p))[2] << 16) | (((u_int8_t *)(p))[3] << 24)))
112 1.1 dyoung
113 1.47 dyoung enum {
114 1.47 dyoung ATH_LED_TX,
115 1.47 dyoung ATH_LED_RX,
116 1.47 dyoung ATH_LED_POLL,
117 1.47 dyoung };
118 1.47 dyoung
119 1.74 gdamore #ifdef AH_NEED_DESC_SWAP
120 1.74 gdamore #define HTOAH32(x) htole32(x)
121 1.74 gdamore #else
122 1.74 gdamore #define HTOAH32(x) (x)
123 1.74 gdamore #endif
124 1.74 gdamore
125 1.55 dyoung static int ath_ifinit(struct ifnet *);
126 1.55 dyoung static int ath_init(struct ath_softc *);
127 1.47 dyoung static void ath_stop_locked(struct ifnet *, int);
128 1.40 dyoung static void ath_stop(struct ifnet *, int);
129 1.1 dyoung static void ath_start(struct ifnet *);
130 1.1 dyoung static int ath_media_change(struct ifnet *);
131 1.1 dyoung static void ath_watchdog(struct ifnet *);
132 1.82 christos static int ath_ioctl(struct ifnet *, u_long, void *);
133 1.1 dyoung static void ath_fatal_proc(void *, int);
134 1.1 dyoung static void ath_rxorn_proc(void *, int);
135 1.1 dyoung static void ath_bmiss_proc(void *, int);
136 1.68 dyoung static void ath_radar_proc(void *, int);
137 1.47 dyoung static int ath_key_alloc(struct ieee80211com *,
138 1.61 skrll const struct ieee80211_key *,
139 1.61 skrll ieee80211_keyix *, ieee80211_keyix *);
140 1.47 dyoung static int ath_key_delete(struct ieee80211com *,
141 1.47 dyoung const struct ieee80211_key *);
142 1.47 dyoung static int ath_key_set(struct ieee80211com *, const struct ieee80211_key *,
143 1.47 dyoung const u_int8_t mac[IEEE80211_ADDR_LEN]);
144 1.47 dyoung static void ath_key_update_begin(struct ieee80211com *);
145 1.47 dyoung static void ath_key_update_end(struct ieee80211com *);
146 1.1 dyoung static void ath_mode_init(struct ath_softc *);
147 1.47 dyoung static void ath_setslottime(struct ath_softc *);
148 1.47 dyoung static void ath_updateslot(struct ifnet *);
149 1.47 dyoung static int ath_beaconq_setup(struct ath_hal *);
150 1.1 dyoung static int ath_beacon_alloc(struct ath_softc *, struct ieee80211_node *);
151 1.47 dyoung static void ath_beacon_setup(struct ath_softc *, struct ath_buf *);
152 1.47 dyoung static void ath_beacon_proc(void *, int);
153 1.47 dyoung static void ath_bstuck_proc(void *, int);
154 1.1 dyoung static void ath_beacon_free(struct ath_softc *);
155 1.1 dyoung static void ath_beacon_config(struct ath_softc *);
156 1.47 dyoung static void ath_descdma_cleanup(struct ath_softc *sc,
157 1.47 dyoung struct ath_descdma *, ath_bufhead *);
158 1.1 dyoung static int ath_desc_alloc(struct ath_softc *);
159 1.1 dyoung static void ath_desc_free(struct ath_softc *);
160 1.47 dyoung static struct ieee80211_node *ath_node_alloc(struct ieee80211_node_table *);
161 1.47 dyoung static void ath_node_free(struct ieee80211_node *);
162 1.119 roy static u_int8_t ath_node_getrssi(const struct ieee80211_node *);
163 1.1 dyoung static int ath_rxbuf_init(struct ath_softc *, struct ath_buf *);
164 1.47 dyoung static void ath_recv_mgmt(struct ieee80211com *ic, struct mbuf *m,
165 1.47 dyoung struct ieee80211_node *ni,
166 1.47 dyoung int subtype, int rssi, u_int32_t rstamp);
167 1.47 dyoung static void ath_setdefantenna(struct ath_softc *, u_int);
168 1.1 dyoung static void ath_rx_proc(void *, int);
169 1.47 dyoung static struct ath_txq *ath_txq_setup(struct ath_softc*, int qtype, int subtype);
170 1.47 dyoung static int ath_tx_setup(struct ath_softc *, int, int);
171 1.47 dyoung static int ath_wme_update(struct ieee80211com *);
172 1.47 dyoung static void ath_tx_cleanupq(struct ath_softc *, struct ath_txq *);
173 1.47 dyoung static void ath_tx_cleanup(struct ath_softc *);
174 1.1 dyoung static int ath_tx_start(struct ath_softc *, struct ieee80211_node *,
175 1.1 dyoung struct ath_buf *, struct mbuf *);
176 1.47 dyoung static void ath_tx_proc_q0(void *, int);
177 1.47 dyoung static void ath_tx_proc_q0123(void *, int);
178 1.1 dyoung static void ath_tx_proc(void *, int);
179 1.1 dyoung static int ath_chan_set(struct ath_softc *, struct ieee80211_channel *);
180 1.1 dyoung static void ath_draintxq(struct ath_softc *);
181 1.1 dyoung static void ath_stoprecv(struct ath_softc *);
182 1.1 dyoung static int ath_startrecv(struct ath_softc *);
183 1.47 dyoung static void ath_chan_change(struct ath_softc *, struct ieee80211_channel *);
184 1.1 dyoung static void ath_next_scan(void *);
185 1.1 dyoung static void ath_calibrate(void *);
186 1.1 dyoung static int ath_newstate(struct ieee80211com *, enum ieee80211_state, int);
187 1.55 dyoung static void ath_setup_stationkey(struct ieee80211_node *);
188 1.61 skrll static void ath_newassoc(struct ieee80211_node *, int);
189 1.47 dyoung static int ath_getchannels(struct ath_softc *, u_int cc,
190 1.47 dyoung HAL_BOOL outdoor, HAL_BOOL xchanmode);
191 1.47 dyoung static void ath_led_event(struct ath_softc *, int);
192 1.47 dyoung static void ath_update_txpow(struct ath_softc *);
193 1.83 dyoung static void ath_freetx(struct mbuf *);
194 1.89 dyoung static void ath_restore_diversity(struct ath_softc *);
195 1.1 dyoung
196 1.47 dyoung static int ath_rate_setup(struct ath_softc *, u_int mode);
197 1.1 dyoung static void ath_setcurmode(struct ath_softc *, enum ieee80211_phymode);
198 1.1 dyoung
199 1.47 dyoung static void ath_bpfattach(struct ath_softc *);
200 1.47 dyoung static void ath_announce(struct ath_softc *);
201 1.20 dyoung
202 1.123 nonaka #ifdef __NetBSD__
203 1.123 nonaka #define ATH_TASK_FUNC(__func) \
204 1.123 nonaka static void __CONCAT(__func, _si)(void *arg) \
205 1.123 nonaka { \
206 1.123 nonaka __func(arg, 1); \
207 1.123 nonaka }
208 1.123 nonaka ATH_TASK_FUNC(ath_rx_proc);
209 1.123 nonaka ATH_TASK_FUNC(ath_rxorn_proc);
210 1.123 nonaka ATH_TASK_FUNC(ath_fatal_proc);
211 1.123 nonaka ATH_TASK_FUNC(ath_bmiss_proc);
212 1.123 nonaka ATH_TASK_FUNC(ath_bstuck_proc);
213 1.123 nonaka ATH_TASK_FUNC(ath_radar_proc);
214 1.123 nonaka ATH_TASK_FUNC(ath_tx_proc_q0);
215 1.123 nonaka ATH_TASK_FUNC(ath_tx_proc_q0123);
216 1.123 nonaka ATH_TASK_FUNC(ath_tx_proc);
217 1.123 nonaka #endif
218 1.123 nonaka
219 1.47 dyoung int ath_dwelltime = 200; /* 5 channels/second */
220 1.47 dyoung int ath_calinterval = 30; /* calibrate every 30 secs */
221 1.47 dyoung int ath_outdoor = AH_TRUE; /* outdoor operation */
222 1.47 dyoung int ath_xchanmode = AH_TRUE; /* enable extended channels */
223 1.47 dyoung int ath_countrycode = CTRY_DEFAULT; /* country code */
224 1.47 dyoung int ath_regdomain = 0; /* regulatory domain */
225 1.47 dyoung int ath_debug = 0;
226 1.68 dyoung int ath_rxbuf = ATH_RXBUF; /* # rx buffers to allocate */
227 1.68 dyoung int ath_txbuf = ATH_TXBUF; /* # tx buffers to allocate */
228 1.1 dyoung
229 1.1 dyoung #ifdef AR_DEBUG
230 1.25 dyoung enum {
231 1.25 dyoung ATH_DEBUG_XMIT = 0x00000001, /* basic xmit operation */
232 1.25 dyoung ATH_DEBUG_XMIT_DESC = 0x00000002, /* xmit descriptors */
233 1.25 dyoung ATH_DEBUG_RECV = 0x00000004, /* basic recv operation */
234 1.25 dyoung ATH_DEBUG_RECV_DESC = 0x00000008, /* recv descriptors */
235 1.25 dyoung ATH_DEBUG_RATE = 0x00000010, /* rate control */
236 1.25 dyoung ATH_DEBUG_RESET = 0x00000020, /* reset processing */
237 1.25 dyoung ATH_DEBUG_MODE = 0x00000040, /* mode init/setup */
238 1.126 msaitoh ATH_DEBUG_BEACON = 0x00000080, /* beacon handling */
239 1.126 msaitoh ATH_DEBUG_WATCHDOG = 0x00000100, /* watchdog timeout */
240 1.25 dyoung ATH_DEBUG_INTR = 0x00001000, /* ISR */
241 1.25 dyoung ATH_DEBUG_TX_PROC = 0x00002000, /* tx ISR proc */
242 1.25 dyoung ATH_DEBUG_RX_PROC = 0x00004000, /* rx ISR proc */
243 1.25 dyoung ATH_DEBUG_BEACON_PROC = 0x00008000, /* beacon ISR proc */
244 1.25 dyoung ATH_DEBUG_CALIBRATE = 0x00010000, /* periodic calibration */
245 1.47 dyoung ATH_DEBUG_KEYCACHE = 0x00020000, /* key cache management */
246 1.47 dyoung ATH_DEBUG_STATE = 0x00040000, /* 802.11 state transitions */
247 1.47 dyoung ATH_DEBUG_NODE = 0x00080000, /* node management */
248 1.47 dyoung ATH_DEBUG_LED = 0x00100000, /* led management */
249 1.68 dyoung ATH_DEBUG_FF = 0x00200000, /* fast frames */
250 1.68 dyoung ATH_DEBUG_DFS = 0x00400000, /* DFS processing */
251 1.47 dyoung ATH_DEBUG_FATAL = 0x80000000, /* fatal errors */
252 1.25 dyoung ATH_DEBUG_ANY = 0xffffffff
253 1.25 dyoung };
254 1.125 msaitoh #define IFF_DUMPPKTS(sc, m) \
255 1.125 msaitoh ((sc->sc_debug & (m)) || \
256 1.126 msaitoh (sc->sc_if.if_flags & (IFF_DEBUG | IFF_LINK2)) \
257 1.125 msaitoh == (IFF_DEBUG | IFF_LINK2))
258 1.47 dyoung #define DPRINTF(sc, m, fmt, ...) do { \
259 1.47 dyoung if (sc->sc_debug & (m)) \
260 1.47 dyoung printf(fmt, __VA_ARGS__); \
261 1.47 dyoung } while (0)
262 1.47 dyoung #define KEYPRINTF(sc, ix, hk, mac) do { \
263 1.47 dyoung if (sc->sc_debug & ATH_DEBUG_KEYCACHE) \
264 1.47 dyoung ath_keyprint(__func__, ix, hk, mac); \
265 1.47 dyoung } while (0)
266 1.47 dyoung static void ath_printrxbuf(struct ath_buf *bf, int);
267 1.47 dyoung static void ath_printtxbuf(struct ath_buf *bf, int);
268 1.1 dyoung #else
269 1.126 msaitoh #define IFF_DUMPPKTS(sc, m) \
270 1.125 msaitoh ((sc->sc_if.if_flags & (IFF_DEBUG | IFF_LINK2)) \
271 1.125 msaitoh == (IFF_DEBUG | IFF_LINK2))
272 1.126 msaitoh #define DPRINTF(m, fmt, ...)
273 1.126 msaitoh #define KEYPRINTF(sc, k, ix, mac)
274 1.1 dyoung #endif
275 1.1 dyoung
276 1.47 dyoung MALLOC_DEFINE(M_ATHDEV, "athdev", "ath driver dma buffers");
277 1.3 ichiro
278 1.1 dyoung int
279 1.1 dyoung ath_attach(u_int16_t devid, struct ath_softc *sc)
280 1.1 dyoung {
281 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
282 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
283 1.55 dyoung struct ath_hal *ah = NULL;
284 1.1 dyoung HAL_STATUS status;
285 1.47 dyoung int error = 0, i;
286 1.1 dyoung
287 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: devid 0x%x\n", __func__, devid);
288 1.1 dyoung
289 1.107 dyoung pmf_self_suspensor_init(sc->sc_dev, &sc->sc_suspensor, &sc->sc_qual);
290 1.107 dyoung
291 1.102 joerg memcpy(ifp->if_xname, device_xname(sc->sc_dev), IFNAMSIZ);
292 1.1 dyoung
293 1.74 gdamore ah = ath_hal_attach(devid, sc, sc->sc_st, sc->sc_sh, &status);
294 1.1 dyoung if (ah == NULL) {
295 1.1 dyoung if_printf(ifp, "unable to attach hardware; HAL status %u\n",
296 1.1 dyoung status);
297 1.1 dyoung error = ENXIO;
298 1.1 dyoung goto bad;
299 1.1 dyoung }
300 1.18 dyoung if (ah->ah_abi != HAL_ABI_VERSION) {
301 1.47 dyoung if_printf(ifp, "HAL ABI mismatch detected "
302 1.47 dyoung "(HAL:0x%x != driver:0x%x)\n",
303 1.18 dyoung ah->ah_abi, HAL_ABI_VERSION);
304 1.18 dyoung error = ENXIO;
305 1.18 dyoung goto bad;
306 1.18 dyoung }
307 1.1 dyoung sc->sc_ah = ah;
308 1.99 dyoung
309 1.102 joerg if (!prop_dictionary_set_bool(device_properties(sc->sc_dev),
310 1.131 thorpej "pmf-no-powerdown", true))
311 1.99 dyoung goto bad;
312 1.1 dyoung
313 1.1 dyoung /*
314 1.47 dyoung * Check if the MAC has multi-rate retry support.
315 1.47 dyoung * We do this by trying to setup a fake extended
316 1.47 dyoung * descriptor. MAC's that don't have support will
317 1.47 dyoung * return false w/o doing anything. MAC's that do
318 1.47 dyoung * support it will return true w/o doing anything.
319 1.47 dyoung */
320 1.47 dyoung sc->sc_mrretry = ath_hal_setupxtxdesc(ah, NULL, 0,0, 0,0, 0,0);
321 1.47 dyoung
322 1.47 dyoung /*
323 1.47 dyoung * Check if the device has hardware counters for PHY
324 1.47 dyoung * errors. If so we need to enable the MIB interrupt
325 1.47 dyoung * so we can act on stat triggers.
326 1.47 dyoung */
327 1.47 dyoung if (ath_hal_hwphycounters(ah))
328 1.47 dyoung sc->sc_needmib = 1;
329 1.47 dyoung
330 1.47 dyoung /*
331 1.47 dyoung * Get the hardware key cache size.
332 1.47 dyoung */
333 1.47 dyoung sc->sc_keymax = ath_hal_keycachesize(ah);
334 1.55 dyoung if (sc->sc_keymax > ATH_KEYMAX) {
335 1.55 dyoung if_printf(ifp, "Warning, using only %u of %u key cache slots\n",
336 1.55 dyoung ATH_KEYMAX, sc->sc_keymax);
337 1.55 dyoung sc->sc_keymax = ATH_KEYMAX;
338 1.47 dyoung }
339 1.47 dyoung /*
340 1.47 dyoung * Reset the key cache since some parts do not
341 1.47 dyoung * reset the contents on initial power up.
342 1.47 dyoung */
343 1.47 dyoung for (i = 0; i < sc->sc_keymax; i++)
344 1.47 dyoung ath_hal_keyreset(ah, i);
345 1.47 dyoung /*
346 1.47 dyoung * Mark key cache slots associated with global keys
347 1.47 dyoung * as in use. If we knew TKIP was not to be used we
348 1.47 dyoung * could leave the +32, +64, and +32+64 slots free.
349 1.47 dyoung * XXX only for splitmic.
350 1.47 dyoung */
351 1.47 dyoung for (i = 0; i < IEEE80211_WEP_NKID; i++) {
352 1.47 dyoung setbit(sc->sc_keymap, i);
353 1.47 dyoung setbit(sc->sc_keymap, i+32);
354 1.47 dyoung setbit(sc->sc_keymap, i+64);
355 1.47 dyoung setbit(sc->sc_keymap, i+32+64);
356 1.47 dyoung }
357 1.47 dyoung
358 1.47 dyoung /*
359 1.1 dyoung * Collect the channel list using the default country
360 1.1 dyoung * code and including outdoor channels. The 802.11 layer
361 1.1 dyoung * is resposible for filtering this list based on settings
362 1.1 dyoung * like the phy mode.
363 1.1 dyoung */
364 1.47 dyoung error = ath_getchannels(sc, ath_countrycode,
365 1.47 dyoung ath_outdoor, ath_xchanmode);
366 1.1 dyoung if (error != 0)
367 1.1 dyoung goto bad;
368 1.1 dyoung
369 1.1 dyoung /*
370 1.1 dyoung * Setup rate tables for all potential media types.
371 1.1 dyoung */
372 1.1 dyoung ath_rate_setup(sc, IEEE80211_MODE_11A);
373 1.1 dyoung ath_rate_setup(sc, IEEE80211_MODE_11B);
374 1.1 dyoung ath_rate_setup(sc, IEEE80211_MODE_11G);
375 1.47 dyoung ath_rate_setup(sc, IEEE80211_MODE_TURBO_A);
376 1.47 dyoung ath_rate_setup(sc, IEEE80211_MODE_TURBO_G);
377 1.47 dyoung /* NB: setup here so ath_rate_update is happy */
378 1.47 dyoung ath_setcurmode(sc, IEEE80211_MODE_11A);
379 1.1 dyoung
380 1.47 dyoung /*
381 1.47 dyoung * Allocate tx+rx descriptors and populate the lists.
382 1.47 dyoung */
383 1.1 dyoung error = ath_desc_alloc(sc);
384 1.1 dyoung if (error != 0) {
385 1.1 dyoung if_printf(ifp, "failed to allocate descriptors: %d\n", error);
386 1.1 dyoung goto bad;
387 1.1 dyoung }
388 1.47 dyoung ATH_CALLOUT_INIT(&sc->sc_scan_ch, debug_mpsafenet ? CALLOUT_MPSAFE : 0);
389 1.47 dyoung ATH_CALLOUT_INIT(&sc->sc_cal_ch, CALLOUT_MPSAFE);
390 1.104 alc #if 0
391 1.68 dyoung ATH_CALLOUT_INIT(&sc->sc_dfs_ch, CALLOUT_MPSAFE);
392 1.104 alc #endif
393 1.1 dyoung
394 1.18 dyoung ATH_TXBUF_LOCK_INIT(sc);
395 1.1 dyoung
396 1.47 dyoung TASK_INIT(&sc->sc_rxtask, 0, ath_rx_proc, sc);
397 1.47 dyoung TASK_INIT(&sc->sc_rxorntask, 0, ath_rxorn_proc, sc);
398 1.47 dyoung TASK_INIT(&sc->sc_fataltask, 0, ath_fatal_proc, sc);
399 1.47 dyoung TASK_INIT(&sc->sc_bmisstask, 0, ath_bmiss_proc, sc);
400 1.68 dyoung TASK_INIT(&sc->sc_bstucktask,0, ath_bstuck_proc, sc);
401 1.68 dyoung TASK_INIT(&sc->sc_radartask, 0, ath_radar_proc, sc);
402 1.1 dyoung
403 1.1 dyoung /*
404 1.47 dyoung * Allocate hardware transmit queues: one queue for
405 1.47 dyoung * beacon frames and one data queue for each QoS
406 1.132 msaitoh * priority. Note that the hal handles resetting
407 1.47 dyoung * these queues at the needed time.
408 1.47 dyoung *
409 1.47 dyoung * XXX PS-Poll
410 1.1 dyoung */
411 1.47 dyoung sc->sc_bhalq = ath_beaconq_setup(ah);
412 1.31 dyoung if (sc->sc_bhalq == (u_int) -1) {
413 1.31 dyoung if_printf(ifp, "unable to setup a beacon xmit queue!\n");
414 1.47 dyoung error = EIO;
415 1.47 dyoung goto bad2;
416 1.47 dyoung }
417 1.47 dyoung sc->sc_cabq = ath_txq_setup(sc, HAL_TX_QUEUE_CAB, 0);
418 1.47 dyoung if (sc->sc_cabq == NULL) {
419 1.47 dyoung if_printf(ifp, "unable to setup CAB xmit queue!\n");
420 1.47 dyoung error = EIO;
421 1.47 dyoung goto bad2;
422 1.47 dyoung }
423 1.47 dyoung /* NB: insure BK queue is the lowest priority h/w queue */
424 1.47 dyoung if (!ath_tx_setup(sc, WME_AC_BK, HAL_WME_AC_BK)) {
425 1.47 dyoung if_printf(ifp, "unable to setup xmit queue for %s traffic!\n",
426 1.47 dyoung ieee80211_wme_acnames[WME_AC_BK]);
427 1.47 dyoung error = EIO;
428 1.31 dyoung goto bad2;
429 1.31 dyoung }
430 1.47 dyoung if (!ath_tx_setup(sc, WME_AC_BE, HAL_WME_AC_BE) ||
431 1.47 dyoung !ath_tx_setup(sc, WME_AC_VI, HAL_WME_AC_VI) ||
432 1.47 dyoung !ath_tx_setup(sc, WME_AC_VO, HAL_WME_AC_VO)) {
433 1.73 blymn /*
434 1.47 dyoung * Not enough hardware tx queues to properly do WME;
435 1.47 dyoung * just punt and assign them all to the same h/w queue.
436 1.47 dyoung * We could do a better job of this if, for example,
437 1.47 dyoung * we allocate queues when we switch from station to
438 1.47 dyoung * AP mode.
439 1.47 dyoung */
440 1.47 dyoung if (sc->sc_ac2q[WME_AC_VI] != NULL)
441 1.47 dyoung ath_tx_cleanupq(sc, sc->sc_ac2q[WME_AC_VI]);
442 1.47 dyoung if (sc->sc_ac2q[WME_AC_BE] != NULL)
443 1.47 dyoung ath_tx_cleanupq(sc, sc->sc_ac2q[WME_AC_BE]);
444 1.47 dyoung sc->sc_ac2q[WME_AC_BE] = sc->sc_ac2q[WME_AC_BK];
445 1.47 dyoung sc->sc_ac2q[WME_AC_VI] = sc->sc_ac2q[WME_AC_BK];
446 1.47 dyoung sc->sc_ac2q[WME_AC_VO] = sc->sc_ac2q[WME_AC_BK];
447 1.47 dyoung }
448 1.47 dyoung
449 1.73 blymn /*
450 1.47 dyoung * Special case certain configurations. Note the
451 1.47 dyoung * CAB queue is handled by these specially so don't
452 1.47 dyoung * include them when checking the txq setup mask.
453 1.47 dyoung */
454 1.47 dyoung switch (sc->sc_txqsetup &~ (1<<sc->sc_cabq->axq_qnum)) {
455 1.47 dyoung case 0x01:
456 1.47 dyoung TASK_INIT(&sc->sc_txtask, 0, ath_tx_proc_q0, sc);
457 1.47 dyoung break;
458 1.47 dyoung case 0x0f:
459 1.47 dyoung TASK_INIT(&sc->sc_txtask, 0, ath_tx_proc_q0123, sc);
460 1.47 dyoung break;
461 1.47 dyoung default:
462 1.47 dyoung TASK_INIT(&sc->sc_txtask, 0, ath_tx_proc, sc);
463 1.47 dyoung break;
464 1.47 dyoung }
465 1.31 dyoung
466 1.47 dyoung /*
467 1.47 dyoung * Setup rate control. Some rate control modules
468 1.47 dyoung * call back to change the anntena state so expose
469 1.47 dyoung * the necessary entry points.
470 1.47 dyoung * XXX maybe belongs in struct ath_ratectrl?
471 1.47 dyoung */
472 1.47 dyoung sc->sc_setdefantenna = ath_setdefantenna;
473 1.47 dyoung sc->sc_rc = ath_rate_attach(sc);
474 1.47 dyoung if (sc->sc_rc == NULL) {
475 1.47 dyoung error = EIO;
476 1.25 dyoung goto bad2;
477 1.1 dyoung }
478 1.1 dyoung
479 1.47 dyoung sc->sc_blinking = 0;
480 1.47 dyoung sc->sc_ledstate = 1;
481 1.47 dyoung sc->sc_ledon = 0; /* low true */
482 1.47 dyoung sc->sc_ledidle = (2700*hz)/1000; /* 2.7sec */
483 1.47 dyoung ATH_CALLOUT_INIT(&sc->sc_ledtimer, CALLOUT_MPSAFE);
484 1.47 dyoung /*
485 1.47 dyoung * Auto-enable soft led processing for IBM cards and for
486 1.47 dyoung * 5211 minipci cards. Users can also manually enable/disable
487 1.47 dyoung * support with a sysctl.
488 1.47 dyoung */
489 1.47 dyoung sc->sc_softled = (devid == AR5212_DEVID_IBM || devid == AR5211_DEVID);
490 1.47 dyoung if (sc->sc_softled) {
491 1.111 cegger ath_hal_gpioCfgOutput(ah, sc->sc_ledpin,
492 1.111 cegger HAL_GPIO_MUX_MAC_NETWORK_LED);
493 1.47 dyoung ath_hal_gpioset(ah, sc->sc_ledpin, !sc->sc_ledon);
494 1.47 dyoung }
495 1.47 dyoung
496 1.1 dyoung ifp->if_softc = sc;
497 1.1 dyoung ifp->if_flags = IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST;
498 1.1 dyoung ifp->if_start = ath_start;
499 1.93 jmcneill ifp->if_stop = ath_stop;
500 1.1 dyoung ifp->if_watchdog = ath_watchdog;
501 1.1 dyoung ifp->if_ioctl = ath_ioctl;
502 1.55 dyoung ifp->if_init = ath_ifinit;
503 1.2 dyoung IFQ_SET_READY(&ifp->if_snd);
504 1.1 dyoung
505 1.47 dyoung ic->ic_ifp = ifp;
506 1.47 dyoung ic->ic_reset = ath_reset;
507 1.1 dyoung ic->ic_newassoc = ath_newassoc;
508 1.47 dyoung ic->ic_updateslot = ath_updateslot;
509 1.47 dyoung ic->ic_wme.wme_update = ath_wme_update;
510 1.1 dyoung /* XXX not right but it's not used anywhere important */
511 1.1 dyoung ic->ic_phytype = IEEE80211_T_OFDM;
512 1.1 dyoung ic->ic_opmode = IEEE80211_M_STA;
513 1.47 dyoung ic->ic_caps =
514 1.47 dyoung IEEE80211_C_IBSS /* ibss, nee adhoc, mode */
515 1.18 dyoung | IEEE80211_C_HOSTAP /* hostap mode */
516 1.18 dyoung | IEEE80211_C_MONITOR /* monitor mode */
517 1.18 dyoung | IEEE80211_C_SHPREAMBLE /* short preamble supported */
518 1.47 dyoung | IEEE80211_C_SHSLOT /* short slot time supported */
519 1.47 dyoung | IEEE80211_C_WPA /* capable of WPA1+WPA2 */
520 1.80 dyoung | IEEE80211_C_TXFRAG /* handle tx frags */
521 1.25 dyoung ;
522 1.47 dyoung /*
523 1.47 dyoung * Query the hal to figure out h/w crypto support.
524 1.47 dyoung */
525 1.47 dyoung if (ath_hal_ciphersupported(ah, HAL_CIPHER_WEP))
526 1.47 dyoung ic->ic_caps |= IEEE80211_C_WEP;
527 1.47 dyoung if (ath_hal_ciphersupported(ah, HAL_CIPHER_AES_OCB))
528 1.47 dyoung ic->ic_caps |= IEEE80211_C_AES;
529 1.47 dyoung if (ath_hal_ciphersupported(ah, HAL_CIPHER_AES_CCM))
530 1.47 dyoung ic->ic_caps |= IEEE80211_C_AES_CCM;
531 1.47 dyoung if (ath_hal_ciphersupported(ah, HAL_CIPHER_CKIP))
532 1.47 dyoung ic->ic_caps |= IEEE80211_C_CKIP;
533 1.47 dyoung if (ath_hal_ciphersupported(ah, HAL_CIPHER_TKIP)) {
534 1.47 dyoung ic->ic_caps |= IEEE80211_C_TKIP;
535 1.47 dyoung /*
536 1.47 dyoung * Check if h/w does the MIC and/or whether the
537 1.47 dyoung * separate key cache entries are required to
538 1.47 dyoung * handle both tx+rx MIC keys.
539 1.47 dyoung */
540 1.106 jmcneill if (ath_hal_ciphersupported(ah, HAL_CIPHER_MIC))
541 1.47 dyoung ic->ic_caps |= IEEE80211_C_TKIPMIC;
542 1.104 alc
543 1.104 alc /*
544 1.104 alc * If the h/w supports storing tx+rx MIC keys
545 1.104 alc * in one cache slot automatically enable use.
546 1.104 alc */
547 1.106 jmcneill if (ath_hal_hastkipsplit(ah) ||
548 1.104 alc !ath_hal_settkipsplit(ah, AH_FALSE))
549 1.47 dyoung sc->sc_splitmic = 1;
550 1.106 jmcneill
551 1.106 jmcneill /*
552 1.106 jmcneill * If the h/w can do TKIP MIC together with WME then
553 1.106 jmcneill * we use it; otherwise we force the MIC to be done
554 1.106 jmcneill * in software by the net80211 layer.
555 1.106 jmcneill */
556 1.106 jmcneill if (ath_hal_haswmetkipmic(ah))
557 1.106 jmcneill ic->ic_caps |= IEEE80211_C_WME_TKIPMIC;
558 1.47 dyoung }
559 1.55 dyoung sc->sc_hasclrkey = ath_hal_ciphersupported(ah, HAL_CIPHER_CLR);
560 1.55 dyoung sc->sc_mcastkey = ath_hal_getmcastkeysearch(ah);
561 1.106 jmcneill /*
562 1.106 jmcneill * Mark key cache slots associated with global keys
563 1.106 jmcneill * as in use. If we knew TKIP was not to be used we
564 1.106 jmcneill * could leave the +32, +64, and +32+64 slots free.
565 1.106 jmcneill */
566 1.106 jmcneill for (i = 0; i < IEEE80211_WEP_NKID; i++) {
567 1.106 jmcneill setbit(sc->sc_keymap, i);
568 1.106 jmcneill setbit(sc->sc_keymap, i+64);
569 1.106 jmcneill if (sc->sc_splitmic) {
570 1.106 jmcneill setbit(sc->sc_keymap, i+32);
571 1.106 jmcneill setbit(sc->sc_keymap, i+32+64);
572 1.106 jmcneill }
573 1.106 jmcneill }
574 1.61 skrll /*
575 1.61 skrll * TPC support can be done either with a global cap or
576 1.61 skrll * per-packet support. The latter is not available on
577 1.61 skrll * all parts. We're a bit pedantic here as all parts
578 1.61 skrll * support a global cap.
579 1.61 skrll */
580 1.61 skrll if (ath_hal_hastpc(ah) || ath_hal_hastxpowlimit(ah))
581 1.61 skrll ic->ic_caps |= IEEE80211_C_TXPMGT;
582 1.47 dyoung
583 1.47 dyoung /*
584 1.47 dyoung * Mark WME capability only if we have sufficient
585 1.47 dyoung * hardware queues to do proper priority scheduling.
586 1.47 dyoung */
587 1.47 dyoung if (sc->sc_ac2q[WME_AC_BE] != sc->sc_ac2q[WME_AC_BK])
588 1.47 dyoung ic->ic_caps |= IEEE80211_C_WME;
589 1.47 dyoung /*
590 1.55 dyoung * Check for misc other capabilities.
591 1.47 dyoung */
592 1.47 dyoung if (ath_hal_hasbursting(ah))
593 1.47 dyoung ic->ic_caps |= IEEE80211_C_BURST;
594 1.47 dyoung
595 1.47 dyoung /*
596 1.47 dyoung * Indicate we need the 802.11 header padded to a
597 1.47 dyoung * 32-bit boundary for 4-address and QoS frames.
598 1.47 dyoung */
599 1.47 dyoung ic->ic_flags |= IEEE80211_F_DATAPAD;
600 1.47 dyoung
601 1.47 dyoung /*
602 1.61 skrll * Query the hal about antenna support.
603 1.61 skrll */
604 1.61 skrll sc->sc_defant = ath_hal_getdefantenna(ah);
605 1.61 skrll
606 1.61 skrll /*
607 1.47 dyoung * Not all chips have the VEOL support we want to
608 1.47 dyoung * use with IBSS beacons; check here for it.
609 1.47 dyoung */
610 1.47 dyoung sc->sc_hasveol = ath_hal_hasveol(ah);
611 1.1 dyoung
612 1.1 dyoung /* get mac address from hardware */
613 1.1 dyoung ath_hal_getmac(ah, ic->ic_myaddr);
614 1.1 dyoung
615 1.2 dyoung if_attach(ifp);
616 1.1 dyoung /* call MI attach routine. */
617 1.47 dyoung ieee80211_ifattach(ic);
618 1.1 dyoung /* override default methods */
619 1.1 dyoung ic->ic_node_alloc = ath_node_alloc;
620 1.25 dyoung sc->sc_node_free = ic->ic_node_free;
621 1.1 dyoung ic->ic_node_free = ath_node_free;
622 1.18 dyoung ic->ic_node_getrssi = ath_node_getrssi;
623 1.47 dyoung sc->sc_recv_mgmt = ic->ic_recv_mgmt;
624 1.47 dyoung ic->ic_recv_mgmt = ath_recv_mgmt;
625 1.1 dyoung sc->sc_newstate = ic->ic_newstate;
626 1.1 dyoung ic->ic_newstate = ath_newstate;
627 1.61 skrll ic->ic_crypto.cs_max_keyix = sc->sc_keymax;
628 1.47 dyoung ic->ic_crypto.cs_key_alloc = ath_key_alloc;
629 1.47 dyoung ic->ic_crypto.cs_key_delete = ath_key_delete;
630 1.47 dyoung ic->ic_crypto.cs_key_set = ath_key_set;
631 1.47 dyoung ic->ic_crypto.cs_key_update_begin = ath_key_update_begin;
632 1.47 dyoung ic->ic_crypto.cs_key_update_end = ath_key_update_end;
633 1.1 dyoung /* complete initialization */
634 1.47 dyoung ieee80211_media_init(ic, ath_media_change, ieee80211_media_status);
635 1.25 dyoung
636 1.47 dyoung ath_bpfattach(sc);
637 1.1 dyoung
638 1.3 ichiro sc->sc_flags |= ATH_ATTACHED;
639 1.61 skrll
640 1.61 skrll /*
641 1.61 skrll * Setup dynamic sysctl's now that country code and
642 1.61 skrll * regdomain are available from the hal.
643 1.61 skrll */
644 1.61 skrll ath_sysctlattach(sc);
645 1.61 skrll
646 1.54 dyoung ieee80211_announce(ic);
647 1.47 dyoung ath_announce(sc);
648 1.1 dyoung return 0;
649 1.25 dyoung bad2:
650 1.47 dyoung ath_tx_cleanup(sc);
651 1.25 dyoung ath_desc_free(sc);
652 1.1 dyoung bad:
653 1.1 dyoung if (ah)
654 1.1 dyoung ath_hal_detach(ah);
655 1.135 riastrad (void)config_deactivate(sc->sc_dev);
656 1.1 dyoung return error;
657 1.1 dyoung }
658 1.1 dyoung
659 1.1 dyoung int
660 1.1 dyoung ath_detach(struct ath_softc *sc)
661 1.1 dyoung {
662 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
663 1.47 dyoung int s;
664 1.1 dyoung
665 1.3 ichiro if ((sc->sc_flags & ATH_ATTACHED) == 0)
666 1.3 ichiro return (0);
667 1.1 dyoung
668 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: if_flags %x\n",
669 1.47 dyoung __func__, ifp->if_flags);
670 1.47 dyoung
671 1.47 dyoung s = splnet();
672 1.40 dyoung ath_stop(ifp, 1);
673 1.109 joerg bpf_detach(ifp);
674 1.73 blymn /*
675 1.47 dyoung * NB: the order of these is important:
676 1.47 dyoung * o call the 802.11 layer before detaching the hal to
677 1.47 dyoung * insure callbacks into the driver to delete global
678 1.47 dyoung * key cache entries can be handled
679 1.47 dyoung * o reclaim the tx queue data structures after calling
680 1.47 dyoung * the 802.11 layer as we'll get called back to reclaim
681 1.47 dyoung * node state and potentially want to use them
682 1.47 dyoung * o to cleanup the tx queues the hal is called, so detach
683 1.47 dyoung * it last
684 1.47 dyoung * Other than that, it's straightforward...
685 1.47 dyoung */
686 1.47 dyoung ieee80211_ifdetach(&sc->sc_ic);
687 1.68 dyoung #ifdef ATH_TX99_DIAG
688 1.68 dyoung if (sc->sc_tx99 != NULL)
689 1.68 dyoung sc->sc_tx99->detach(sc->sc_tx99);
690 1.68 dyoung #endif
691 1.47 dyoung ath_rate_detach(sc->sc_rc);
692 1.1 dyoung ath_desc_free(sc);
693 1.47 dyoung ath_tx_cleanup(sc);
694 1.52 dyoung sysctl_teardown(&sc->sc_sysctllog);
695 1.1 dyoung ath_hal_detach(sc->sc_ah);
696 1.2 dyoung if_detach(ifp);
697 1.47 dyoung splx(s);
698 1.18 dyoung
699 1.1 dyoung return 0;
700 1.1 dyoung }
701 1.1 dyoung
702 1.1 dyoung void
703 1.99 dyoung ath_suspend(struct ath_softc *sc)
704 1.99 dyoung {
705 1.104 alc #if notyet
706 1.99 dyoung /*
707 1.99 dyoung * Set the chip in full sleep mode. Note that we are
708 1.99 dyoung * careful to do this only when bringing the interface
709 1.99 dyoung * completely to a stop. When the chip is in this state
710 1.99 dyoung * it must be carefully woken up or references to
711 1.99 dyoung * registers in the PCI clock domain may freeze the bus
712 1.99 dyoung * (and system). This varies by chip and is mostly an
713 1.99 dyoung * issue with newer parts that go to sleep more quickly.
714 1.99 dyoung */
715 1.99 dyoung ath_hal_setpower(sc->sc_ah, HAL_PM_FULL_SLEEP);
716 1.104 alc #endif
717 1.99 dyoung }
718 1.99 dyoung
719 1.99 dyoung bool
720 1.93 jmcneill ath_resume(struct ath_softc *sc)
721 1.1 dyoung {
722 1.104 alc struct ath_hal *ah = sc->sc_ah;
723 1.104 alc struct ieee80211com *ic = &sc->sc_ic;
724 1.104 alc HAL_STATUS status;
725 1.99 dyoung int i;
726 1.99 dyoung
727 1.104 alc #if notyet
728 1.99 dyoung ath_hal_setpower(ah, HAL_PM_AWAKE);
729 1.104 alc #else
730 1.134 mrg ath_hal_reset(ah, ic->ic_opmode, &sc->sc_curchan, HAL_M_IBSS, &status);
731 1.104 alc #endif
732 1.99 dyoung
733 1.99 dyoung /*
734 1.99 dyoung * Reset the key cache since some parts do not
735 1.99 dyoung * reset the contents on initial power up.
736 1.99 dyoung */
737 1.99 dyoung for (i = 0; i < sc->sc_keymax; i++)
738 1.99 dyoung ath_hal_keyreset(ah, i);
739 1.99 dyoung
740 1.99 dyoung ath_hal_resettxqueue(ah, sc->sc_bhalq);
741 1.99 dyoung for (i = 0; i < HAL_NUM_TX_QUEUES; i++)
742 1.99 dyoung if (ATH_TXQ_SETUP(sc, i))
743 1.99 dyoung ath_hal_resettxqueue(ah, i);
744 1.99 dyoung
745 1.55 dyoung if (sc->sc_softled) {
746 1.111 cegger ath_hal_gpioCfgOutput(sc->sc_ah, sc->sc_ledpin,
747 1.111 cegger HAL_GPIO_MUX_MAC_NETWORK_LED);
748 1.55 dyoung ath_hal_gpioset(sc->sc_ah, sc->sc_ledpin, !sc->sc_ledon);
749 1.55 dyoung }
750 1.99 dyoung return true;
751 1.1 dyoung }
752 1.1 dyoung
753 1.47 dyoung /*
754 1.47 dyoung * Interrupt handler. Most of the actual processing is deferred.
755 1.47 dyoung */
756 1.2 dyoung int
757 1.2 dyoung ath_intr(void *arg)
758 1.2 dyoung {
759 1.47 dyoung struct ath_softc *sc = arg;
760 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
761 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
762 1.113 jmcneill HAL_INT status = 0;
763 1.1 dyoung
764 1.107 dyoung if (!device_activation(sc->sc_dev, DEVACT_LEVEL_DRIVER)) {
765 1.1 dyoung /*
766 1.1 dyoung * The hardware is not ready/present, don't touch anything.
767 1.1 dyoung * Note this can happen early on if the IRQ is shared.
768 1.1 dyoung */
769 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: invalid; ignored\n", __func__);
770 1.2 dyoung return 0;
771 1.1 dyoung }
772 1.74 gdamore
773 1.25 dyoung if (!ath_hal_intrpend(ah)) /* shared irq, not for us */
774 1.25 dyoung return 0;
775 1.74 gdamore
776 1.125 msaitoh if ((ifp->if_flags & (IFF_RUNNING |IFF_UP)) != (IFF_RUNNING |IFF_UP)) {
777 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: if_flags 0x%x\n",
778 1.47 dyoung __func__, ifp->if_flags);
779 1.1 dyoung ath_hal_getisr(ah, &status); /* clear ISR */
780 1.1 dyoung ath_hal_intrset(ah, 0); /* disable further intr's */
781 1.2 dyoung return 1; /* XXX */
782 1.1 dyoung }
783 1.47 dyoung /*
784 1.47 dyoung * Figure out the reason(s) for the interrupt. Note
785 1.47 dyoung * that the hal returns a pseudo-ISR that may include
786 1.47 dyoung * bits we haven't explicitly enabled so we mask the
787 1.47 dyoung * value to insure we only process bits we requested.
788 1.47 dyoung */
789 1.1 dyoung ath_hal_getisr(ah, &status); /* NB: clears ISR too */
790 1.47 dyoung DPRINTF(sc, ATH_DEBUG_INTR, "%s: status 0x%x\n", __func__, status);
791 1.18 dyoung status &= sc->sc_imask; /* discard unasked for bits */
792 1.1 dyoung if (status & HAL_INT_FATAL) {
793 1.47 dyoung /*
794 1.47 dyoung * Fatal errors are unrecoverable. Typically
795 1.47 dyoung * these are caused by DMA errors. Unfortunately
796 1.47 dyoung * the exact reason is not (presently) returned
797 1.47 dyoung * by the hal.
798 1.47 dyoung */
799 1.1 dyoung sc->sc_stats.ast_hardware++;
800 1.1 dyoung ath_hal_intrset(ah, 0); /* disable intr's until reset */
801 1.47 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_fataltask);
802 1.1 dyoung } else if (status & HAL_INT_RXORN) {
803 1.1 dyoung sc->sc_stats.ast_rxorn++;
804 1.1 dyoung ath_hal_intrset(ah, 0); /* disable intr's until reset */
805 1.47 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_rxorntask);
806 1.1 dyoung } else {
807 1.47 dyoung if (status & HAL_INT_SWBA) {
808 1.47 dyoung /*
809 1.47 dyoung * Software beacon alert--time to send a beacon.
810 1.47 dyoung * Handle beacon transmission directly; deferring
811 1.47 dyoung * this is too slow to meet timing constraints
812 1.47 dyoung * under load.
813 1.47 dyoung */
814 1.47 dyoung ath_beacon_proc(sc, 0);
815 1.47 dyoung }
816 1.1 dyoung if (status & HAL_INT_RXEOL) {
817 1.1 dyoung /*
818 1.1 dyoung * NB: the hardware should re-read the link when
819 1.1 dyoung * RXE bit is written, but it doesn't work at
820 1.1 dyoung * least on older hardware revs.
821 1.1 dyoung */
822 1.1 dyoung sc->sc_stats.ast_rxeol++;
823 1.1 dyoung sc->sc_rxlink = NULL;
824 1.1 dyoung }
825 1.1 dyoung if (status & HAL_INT_TXURN) {
826 1.1 dyoung sc->sc_stats.ast_txurn++;
827 1.1 dyoung /* bump tx trigger level */
828 1.1 dyoung ath_hal_updatetxtriglevel(ah, AH_TRUE);
829 1.1 dyoung }
830 1.1 dyoung if (status & HAL_INT_RX)
831 1.47 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_rxtask);
832 1.1 dyoung if (status & HAL_INT_TX)
833 1.47 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_txtask);
834 1.47 dyoung if (status & HAL_INT_BMISS) {
835 1.47 dyoung sc->sc_stats.ast_bmiss++;
836 1.47 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_bmisstask);
837 1.47 dyoung }
838 1.47 dyoung if (status & HAL_INT_MIB) {
839 1.47 dyoung sc->sc_stats.ast_mib++;
840 1.47 dyoung /*
841 1.47 dyoung * Disable interrupts until we service the MIB
842 1.47 dyoung * interrupt; otherwise it will continue to fire.
843 1.47 dyoung */
844 1.47 dyoung ath_hal_intrset(ah, 0);
845 1.25 dyoung /*
846 1.47 dyoung * Let the hal handle the event. We assume it will
847 1.47 dyoung * clear whatever condition caused the interrupt.
848 1.25 dyoung */
849 1.68 dyoung ath_hal_mibevent(ah, &sc->sc_halstats);
850 1.47 dyoung ath_hal_intrset(ah, sc->sc_imask);
851 1.1 dyoung }
852 1.1 dyoung }
853 1.2 dyoung return 1;
854 1.1 dyoung }
855 1.1 dyoung
856 1.74 gdamore /* Swap transmit descriptor.
857 1.74 gdamore * if AH_NEED_DESC_SWAP flag is not defined this becomes a "null"
858 1.74 gdamore * function.
859 1.74 gdamore */
860 1.74 gdamore static inline void
861 1.79 christos ath_desc_swap(struct ath_desc *ds)
862 1.74 gdamore {
863 1.74 gdamore #ifdef AH_NEED_DESC_SWAP
864 1.74 gdamore ds->ds_link = htole32(ds->ds_link);
865 1.74 gdamore ds->ds_data = htole32(ds->ds_data);
866 1.74 gdamore ds->ds_ctl0 = htole32(ds->ds_ctl0);
867 1.74 gdamore ds->ds_ctl1 = htole32(ds->ds_ctl1);
868 1.74 gdamore ds->ds_hw[0] = htole32(ds->ds_hw[0]);
869 1.74 gdamore ds->ds_hw[1] = htole32(ds->ds_hw[1]);
870 1.74 gdamore #endif
871 1.74 gdamore }
872 1.74 gdamore
873 1.1 dyoung static void
874 1.79 christos ath_fatal_proc(void *arg, int pending)
875 1.1 dyoung {
876 1.1 dyoung struct ath_softc *sc = arg;
877 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
878 1.123 nonaka #ifdef __NetBSD__
879 1.123 nonaka int s;
880 1.123 nonaka #endif
881 1.1 dyoung
882 1.47 dyoung if_printf(ifp, "hardware error; resetting\n");
883 1.123 nonaka #ifdef __NetBSD__
884 1.123 nonaka s = splnet();
885 1.123 nonaka #endif
886 1.47 dyoung ath_reset(ifp);
887 1.123 nonaka #ifdef __NetBSD__
888 1.123 nonaka splx(s);
889 1.123 nonaka #endif
890 1.1 dyoung }
891 1.1 dyoung
892 1.1 dyoung static void
893 1.79 christos ath_rxorn_proc(void *arg, int pending)
894 1.1 dyoung {
895 1.1 dyoung struct ath_softc *sc = arg;
896 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
897 1.123 nonaka #ifdef __NetBSD__
898 1.123 nonaka int s;
899 1.123 nonaka #endif
900 1.1 dyoung
901 1.47 dyoung if_printf(ifp, "rx FIFO overrun; resetting\n");
902 1.123 nonaka #ifdef __NetBSD__
903 1.123 nonaka s = splnet();
904 1.123 nonaka #endif
905 1.47 dyoung ath_reset(ifp);
906 1.123 nonaka #ifdef __NetBSD__
907 1.123 nonaka splx(s);
908 1.123 nonaka #endif
909 1.1 dyoung }
910 1.1 dyoung
911 1.1 dyoung static void
912 1.1 dyoung ath_bmiss_proc(void *arg, int pending)
913 1.1 dyoung {
914 1.1 dyoung struct ath_softc *sc = arg;
915 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
916 1.123 nonaka NET_LOCK_GIANT_FUNC_INIT();
917 1.1 dyoung
918 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: pending %u\n", __func__, pending);
919 1.114 dyoung KASSERTMSG(ic->ic_opmode == IEEE80211_M_STA,
920 1.114 dyoung "unexpect operating mode %u", ic->ic_opmode);
921 1.18 dyoung if (ic->ic_state == IEEE80211_S_RUN) {
922 1.68 dyoung u_int64_t lastrx = sc->sc_lastrx;
923 1.68 dyoung u_int64_t tsf = ath_hal_gettsf64(sc->sc_ah);
924 1.68 dyoung
925 1.68 dyoung DPRINTF(sc, ATH_DEBUG_BEACON,
926 1.68 dyoung "%s: tsf %" PRIu64 " lastrx %" PRId64
927 1.68 dyoung " (%" PRIu64 ") bmiss %u\n",
928 1.68 dyoung __func__, tsf, tsf - lastrx, lastrx,
929 1.68 dyoung ic->ic_bmisstimeout*1024);
930 1.68 dyoung /*
931 1.68 dyoung * Workaround phantom bmiss interrupts by sanity-checking
932 1.68 dyoung * the time of our last rx'd frame. If it is within the
933 1.68 dyoung * beacon miss interval then ignore the interrupt. If it's
934 1.68 dyoung * truly a bmiss we'll get another interrupt soon and that'll
935 1.68 dyoung * be dispatched up for processing.
936 1.68 dyoung */
937 1.68 dyoung if (tsf - lastrx > ic->ic_bmisstimeout*1024) {
938 1.68 dyoung NET_LOCK_GIANT();
939 1.68 dyoung ieee80211_beacon_miss(ic);
940 1.68 dyoung NET_UNLOCK_GIANT();
941 1.68 dyoung } else
942 1.68 dyoung sc->sc_stats.ast_bmiss_phantom++;
943 1.68 dyoung }
944 1.68 dyoung }
945 1.68 dyoung
946 1.68 dyoung static void
947 1.79 christos ath_radar_proc(void *arg, int pending)
948 1.68 dyoung {
949 1.104 alc #if 0
950 1.68 dyoung struct ath_softc *sc = arg;
951 1.68 dyoung struct ifnet *ifp = &sc->sc_if;
952 1.68 dyoung struct ath_hal *ah = sc->sc_ah;
953 1.68 dyoung HAL_CHANNEL hchan;
954 1.68 dyoung
955 1.68 dyoung if (ath_hal_procdfs(ah, &hchan)) {
956 1.68 dyoung if_printf(ifp, "radar detected on channel %u/0x%x/0x%x\n",
957 1.68 dyoung hchan.channel, hchan.channelFlags, hchan.privFlags);
958 1.18 dyoung /*
959 1.68 dyoung * Initiate channel change.
960 1.68 dyoung */
961 1.68 dyoung /* XXX not yet */
962 1.18 dyoung }
963 1.104 alc #endif
964 1.1 dyoung }
965 1.1 dyoung
966 1.1 dyoung static u_int
967 1.1 dyoung ath_chan2flags(struct ieee80211com *ic, struct ieee80211_channel *chan)
968 1.1 dyoung {
969 1.47 dyoung #define N(a) (sizeof(a) / sizeof(a[0]))
970 1.47 dyoung static const u_int modeflags[] = {
971 1.47 dyoung 0, /* IEEE80211_MODE_AUTO */
972 1.47 dyoung CHANNEL_A, /* IEEE80211_MODE_11A */
973 1.47 dyoung CHANNEL_B, /* IEEE80211_MODE_11B */
974 1.47 dyoung CHANNEL_PUREG, /* IEEE80211_MODE_11G */
975 1.47 dyoung 0, /* IEEE80211_MODE_FH */
976 1.68 dyoung CHANNEL_ST, /* IEEE80211_MODE_TURBO_A */
977 1.47 dyoung CHANNEL_108G /* IEEE80211_MODE_TURBO_G */
978 1.47 dyoung };
979 1.4 dyoung enum ieee80211_phymode mode = ieee80211_chan2mode(ic, chan);
980 1.4 dyoung
981 1.114 dyoung KASSERTMSG(mode < N(modeflags), "unexpected phy mode %u", mode);
982 1.114 dyoung KASSERTMSG(modeflags[mode] != 0, "mode %u undefined", mode);
983 1.47 dyoung return modeflags[mode];
984 1.47 dyoung #undef N
985 1.1 dyoung }
986 1.1 dyoung
987 1.2 dyoung static int
988 1.55 dyoung ath_ifinit(struct ifnet *ifp)
989 1.2 dyoung {
990 1.47 dyoung struct ath_softc *sc = (struct ath_softc *)ifp->if_softc;
991 1.55 dyoung
992 1.55 dyoung return ath_init(sc);
993 1.55 dyoung }
994 1.55 dyoung
995 1.106 jmcneill static void
996 1.106 jmcneill ath_settkipmic(struct ath_softc *sc)
997 1.106 jmcneill {
998 1.106 jmcneill struct ieee80211com *ic = &sc->sc_ic;
999 1.106 jmcneill struct ath_hal *ah = sc->sc_ah;
1000 1.106 jmcneill
1001 1.106 jmcneill if ((ic->ic_caps & IEEE80211_C_TKIP) &&
1002 1.106 jmcneill !(ic->ic_caps & IEEE80211_C_WME_TKIPMIC)) {
1003 1.106 jmcneill if (ic->ic_flags & IEEE80211_F_WME) {
1004 1.106 jmcneill (void)ath_hal_settkipmic(ah, AH_FALSE);
1005 1.106 jmcneill ic->ic_caps &= ~IEEE80211_C_TKIPMIC;
1006 1.106 jmcneill } else {
1007 1.106 jmcneill (void)ath_hal_settkipmic(ah, AH_TRUE);
1008 1.106 jmcneill ic->ic_caps |= IEEE80211_C_TKIPMIC;
1009 1.106 jmcneill }
1010 1.106 jmcneill }
1011 1.106 jmcneill }
1012 1.106 jmcneill
1013 1.55 dyoung static int
1014 1.55 dyoung ath_init(struct ath_softc *sc)
1015 1.55 dyoung {
1016 1.55 dyoung struct ifnet *ifp = &sc->sc_if;
1017 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1018 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
1019 1.1 dyoung HAL_STATUS status;
1020 1.112 dyoung int error = 0, s;
1021 1.1 dyoung
1022 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: if_flags 0x%x\n",
1023 1.47 dyoung __func__, ifp->if_flags);
1024 1.47 dyoung
1025 1.102 joerg if (device_is_active(sc->sc_dev)) {
1026 1.112 dyoung s = splnet();
1027 1.107 dyoung } else if (!pmf_device_subtree_resume(sc->sc_dev, &sc->sc_qual) ||
1028 1.126 msaitoh !device_is_active(sc->sc_dev))
1029 1.107 dyoung return 0;
1030 1.99 dyoung else
1031 1.112 dyoung s = splnet();
1032 1.3 ichiro
1033 1.1 dyoung /*
1034 1.1 dyoung * Stop anything previously setup. This is safe
1035 1.1 dyoung * whether this is the first time through or not.
1036 1.1 dyoung */
1037 1.47 dyoung ath_stop_locked(ifp, 0);
1038 1.1 dyoung
1039 1.1 dyoung /*
1040 1.1 dyoung * The basic interface to setting the hardware in a good
1041 1.1 dyoung * state is ``reset''. On return the hardware is known to
1042 1.1 dyoung * be powered up and with interrupts disabled. This must
1043 1.1 dyoung * be followed by initialization of the appropriate bits
1044 1.1 dyoung * and then setup of the interrupt mask.
1045 1.1 dyoung */
1046 1.106 jmcneill ath_settkipmic(sc);
1047 1.61 skrll sc->sc_curchan.channel = ic->ic_curchan->ic_freq;
1048 1.61 skrll sc->sc_curchan.channelFlags = ath_chan2flags(ic, ic->ic_curchan);
1049 1.47 dyoung if (!ath_hal_reset(ah, ic->ic_opmode, &sc->sc_curchan, AH_FALSE, &status)) {
1050 1.1 dyoung if_printf(ifp, "unable to reset hardware; hal status %u\n",
1051 1.1 dyoung status);
1052 1.34 yamt error = EIO;
1053 1.1 dyoung goto done;
1054 1.1 dyoung }
1055 1.1 dyoung
1056 1.1 dyoung /*
1057 1.47 dyoung * This is needed only to setup initial state
1058 1.47 dyoung * but it's best done after a reset.
1059 1.47 dyoung */
1060 1.47 dyoung ath_update_txpow(sc);
1061 1.61 skrll /*
1062 1.61 skrll * Likewise this is set during reset so update
1063 1.61 skrll * state cached in the driver.
1064 1.61 skrll */
1065 1.89 dyoung ath_restore_diversity(sc);
1066 1.68 dyoung sc->sc_calinterval = 1;
1067 1.68 dyoung sc->sc_caltries = 0;
1068 1.47 dyoung
1069 1.47 dyoung /*
1070 1.1 dyoung * Setup the hardware after reset: the key cache
1071 1.1 dyoung * is filled as needed and the receive engine is
1072 1.1 dyoung * set going. Frame transmit is handled entirely
1073 1.1 dyoung * in the frame output path; there's nothing to do
1074 1.1 dyoung * here except setup the interrupt mask.
1075 1.1 dyoung */
1076 1.2 dyoung if ((error = ath_startrecv(sc)) != 0) {
1077 1.1 dyoung if_printf(ifp, "unable to start recv logic\n");
1078 1.1 dyoung goto done;
1079 1.1 dyoung }
1080 1.1 dyoung
1081 1.1 dyoung /*
1082 1.1 dyoung * Enable interrupts.
1083 1.1 dyoung */
1084 1.1 dyoung sc->sc_imask = HAL_INT_RX | HAL_INT_TX
1085 1.1 dyoung | HAL_INT_RXEOL | HAL_INT_RXORN
1086 1.1 dyoung | HAL_INT_FATAL | HAL_INT_GLOBAL;
1087 1.47 dyoung /*
1088 1.47 dyoung * Enable MIB interrupts when there are hardware phy counters.
1089 1.47 dyoung * Note we only do this (at the moment) for station mode.
1090 1.47 dyoung */
1091 1.47 dyoung if (sc->sc_needmib && ic->ic_opmode == IEEE80211_M_STA)
1092 1.47 dyoung sc->sc_imask |= HAL_INT_MIB;
1093 1.1 dyoung ath_hal_intrset(ah, sc->sc_imask);
1094 1.1 dyoung
1095 1.1 dyoung ifp->if_flags |= IFF_RUNNING;
1096 1.1 dyoung ic->ic_state = IEEE80211_S_INIT;
1097 1.1 dyoung
1098 1.1 dyoung /*
1099 1.1 dyoung * The hardware should be ready to go now so it's safe
1100 1.1 dyoung * to kick the 802.11 state machine as it's likely to
1101 1.1 dyoung * immediately call back to us to send mgmt frames.
1102 1.1 dyoung */
1103 1.61 skrll ath_chan_change(sc, ic->ic_curchan);
1104 1.68 dyoung #ifdef ATH_TX99_DIAG
1105 1.68 dyoung if (sc->sc_tx99 != NULL)
1106 1.68 dyoung sc->sc_tx99->start(sc->sc_tx99);
1107 1.68 dyoung else
1108 1.68 dyoung #endif
1109 1.47 dyoung if (ic->ic_opmode != IEEE80211_M_MONITOR) {
1110 1.47 dyoung if (ic->ic_roaming != IEEE80211_ROAMING_MANUAL)
1111 1.47 dyoung ieee80211_new_state(ic, IEEE80211_S_SCAN, -1);
1112 1.47 dyoung } else
1113 1.47 dyoung ieee80211_new_state(ic, IEEE80211_S_RUN, -1);
1114 1.1 dyoung done:
1115 1.112 dyoung splx(s);
1116 1.2 dyoung return error;
1117 1.1 dyoung }
1118 1.1 dyoung
1119 1.1 dyoung static void
1120 1.47 dyoung ath_stop_locked(struct ifnet *ifp, int disable)
1121 1.1 dyoung {
1122 1.1 dyoung struct ath_softc *sc = ifp->if_softc;
1123 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
1124 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
1125 1.1 dyoung
1126 1.99 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: invalid %d if_flags 0x%x\n",
1127 1.102 joerg __func__, !device_is_enabled(sc->sc_dev), ifp->if_flags);
1128 1.1 dyoung
1129 1.112 dyoung /* KASSERT() IPL_NET */
1130 1.1 dyoung if (ifp->if_flags & IFF_RUNNING) {
1131 1.1 dyoung /*
1132 1.1 dyoung * Shutdown the hardware and driver:
1133 1.47 dyoung * reset 802.11 state machine
1134 1.47 dyoung * turn off timers
1135 1.1 dyoung * disable interrupts
1136 1.47 dyoung * turn off the radio
1137 1.1 dyoung * clear transmit machinery
1138 1.1 dyoung * clear receive machinery
1139 1.1 dyoung * drain and release tx queues
1140 1.1 dyoung * reclaim beacon resources
1141 1.1 dyoung * power down hardware
1142 1.1 dyoung *
1143 1.1 dyoung * Note that some of this work is not possible if the
1144 1.1 dyoung * hardware is gone (invalid).
1145 1.1 dyoung */
1146 1.68 dyoung #ifdef ATH_TX99_DIAG
1147 1.68 dyoung if (sc->sc_tx99 != NULL)
1148 1.68 dyoung sc->sc_tx99->stop(sc->sc_tx99);
1149 1.68 dyoung #endif
1150 1.47 dyoung ieee80211_new_state(ic, IEEE80211_S_INIT, -1);
1151 1.1 dyoung ifp->if_flags &= ~IFF_RUNNING;
1152 1.1 dyoung ifp->if_timer = 0;
1153 1.102 joerg if (device_is_enabled(sc->sc_dev)) {
1154 1.47 dyoung if (sc->sc_softled) {
1155 1.47 dyoung callout_stop(&sc->sc_ledtimer);
1156 1.47 dyoung ath_hal_gpioset(ah, sc->sc_ledpin,
1157 1.47 dyoung !sc->sc_ledon);
1158 1.47 dyoung sc->sc_blinking = 0;
1159 1.47 dyoung }
1160 1.1 dyoung ath_hal_intrset(ah, 0);
1161 1.47 dyoung }
1162 1.1 dyoung ath_draintxq(sc);
1163 1.102 joerg if (device_is_enabled(sc->sc_dev)) {
1164 1.1 dyoung ath_stoprecv(sc);
1165 1.47 dyoung ath_hal_phydisable(ah);
1166 1.47 dyoung } else
1167 1.1 dyoung sc->sc_rxlink = NULL;
1168 1.2 dyoung IF_PURGE(&ifp->if_snd);
1169 1.1 dyoung ath_beacon_free(sc);
1170 1.1 dyoung }
1171 1.107 dyoung if (disable)
1172 1.107 dyoung pmf_device_suspend(sc->sc_dev, &sc->sc_qual);
1173 1.47 dyoung }
1174 1.47 dyoung
1175 1.47 dyoung static void
1176 1.47 dyoung ath_stop(struct ifnet *ifp, int disable)
1177 1.47 dyoung {
1178 1.112 dyoung int s;
1179 1.47 dyoung
1180 1.112 dyoung s = splnet();
1181 1.47 dyoung ath_stop_locked(ifp, disable);
1182 1.112 dyoung splx(s);
1183 1.1 dyoung }
1184 1.1 dyoung
1185 1.89 dyoung static void
1186 1.89 dyoung ath_restore_diversity(struct ath_softc *sc)
1187 1.89 dyoung {
1188 1.89 dyoung struct ifnet *ifp = &sc->sc_if;
1189 1.89 dyoung struct ath_hal *ah = sc->sc_ah;
1190 1.89 dyoung
1191 1.89 dyoung if (!ath_hal_setdiversity(sc->sc_ah, sc->sc_diversity) ||
1192 1.89 dyoung sc->sc_diversity != ath_hal_getdiversity(ah)) {
1193 1.89 dyoung if_printf(ifp, "could not restore diversity setting %d\n",
1194 1.89 dyoung sc->sc_diversity);
1195 1.89 dyoung sc->sc_diversity = ath_hal_getdiversity(ah);
1196 1.89 dyoung }
1197 1.89 dyoung }
1198 1.89 dyoung
1199 1.1 dyoung /*
1200 1.1 dyoung * Reset the hardware w/o losing operational state. This is
1201 1.1 dyoung * basically a more efficient way of doing ath_stop, ath_init,
1202 1.1 dyoung * followed by state transitions to the current 802.11
1203 1.47 dyoung * operational state. Used to recover from various errors and
1204 1.47 dyoung * to reset or reload hardware state.
1205 1.1 dyoung */
1206 1.47 dyoung int
1207 1.47 dyoung ath_reset(struct ifnet *ifp)
1208 1.1 dyoung {
1209 1.47 dyoung struct ath_softc *sc = ifp->if_softc;
1210 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1211 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
1212 1.1 dyoung struct ieee80211_channel *c;
1213 1.1 dyoung HAL_STATUS status;
1214 1.1 dyoung
1215 1.1 dyoung /*
1216 1.1 dyoung * Convert to a HAL channel description with the flags
1217 1.1 dyoung * constrained to reflect the current operating mode.
1218 1.1 dyoung */
1219 1.61 skrll c = ic->ic_curchan;
1220 1.47 dyoung sc->sc_curchan.channel = c->ic_freq;
1221 1.47 dyoung sc->sc_curchan.channelFlags = ath_chan2flags(ic, c);
1222 1.1 dyoung
1223 1.1 dyoung ath_hal_intrset(ah, 0); /* disable interrupts */
1224 1.1 dyoung ath_draintxq(sc); /* stop xmit side */
1225 1.1 dyoung ath_stoprecv(sc); /* stop recv side */
1226 1.106 jmcneill ath_settkipmic(sc); /* configure TKIP MIC handling */
1227 1.1 dyoung /* NB: indicate channel change so we do a full reset */
1228 1.47 dyoung if (!ath_hal_reset(ah, ic->ic_opmode, &sc->sc_curchan, AH_TRUE, &status))
1229 1.1 dyoung if_printf(ifp, "%s: unable to reset hardware; hal status %u\n",
1230 1.1 dyoung __func__, status);
1231 1.47 dyoung ath_update_txpow(sc); /* update tx power state */
1232 1.89 dyoung ath_restore_diversity(sc);
1233 1.68 dyoung sc->sc_calinterval = 1;
1234 1.68 dyoung sc->sc_caltries = 0;
1235 1.1 dyoung if (ath_startrecv(sc) != 0) /* restart recv */
1236 1.1 dyoung if_printf(ifp, "%s: unable to start recv logic\n", __func__);
1237 1.47 dyoung /*
1238 1.47 dyoung * We may be doing a reset in response to an ioctl
1239 1.47 dyoung * that changes the channel so update any state that
1240 1.47 dyoung * might change as a result.
1241 1.47 dyoung */
1242 1.47 dyoung ath_chan_change(sc, c);
1243 1.1 dyoung if (ic->ic_state == IEEE80211_S_RUN)
1244 1.1 dyoung ath_beacon_config(sc); /* restart beacons */
1245 1.47 dyoung ath_hal_intrset(ah, sc->sc_imask);
1246 1.47 dyoung
1247 1.47 dyoung ath_start(ifp); /* restart xmit */
1248 1.47 dyoung return 0;
1249 1.1 dyoung }
1250 1.1 dyoung
1251 1.80 dyoung /*
1252 1.80 dyoung * Cleanup driver resources when we run out of buffers
1253 1.80 dyoung * while processing fragments; return the tx buffers
1254 1.80 dyoung * allocated and drop node references.
1255 1.80 dyoung */
1256 1.80 dyoung static void
1257 1.80 dyoung ath_txfrag_cleanup(struct ath_softc *sc,
1258 1.80 dyoung ath_bufhead *frags, struct ieee80211_node *ni)
1259 1.80 dyoung {
1260 1.80 dyoung struct ath_buf *bf;
1261 1.80 dyoung
1262 1.80 dyoung ATH_TXBUF_LOCK_ASSERT(sc);
1263 1.80 dyoung
1264 1.80 dyoung while ((bf = STAILQ_FIRST(frags)) != NULL) {
1265 1.80 dyoung STAILQ_REMOVE_HEAD(frags, bf_list);
1266 1.80 dyoung STAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list);
1267 1.84 dyoung sc->sc_if.if_flags &= ~IFF_OACTIVE;
1268 1.80 dyoung ieee80211_node_decref(ni);
1269 1.80 dyoung }
1270 1.80 dyoung }
1271 1.80 dyoung
1272 1.80 dyoung /*
1273 1.80 dyoung * Setup xmit of a fragmented frame. Allocate a buffer
1274 1.80 dyoung * for each frag and bump the node reference count to
1275 1.80 dyoung * reflect the held reference to be setup by ath_tx_start.
1276 1.80 dyoung */
1277 1.80 dyoung static int
1278 1.80 dyoung ath_txfrag_setup(struct ath_softc *sc, ath_bufhead *frags,
1279 1.80 dyoung struct mbuf *m0, struct ieee80211_node *ni)
1280 1.80 dyoung {
1281 1.80 dyoung struct mbuf *m;
1282 1.80 dyoung struct ath_buf *bf;
1283 1.80 dyoung
1284 1.80 dyoung ATH_TXBUF_LOCK(sc);
1285 1.80 dyoung for (m = m0->m_nextpkt; m != NULL; m = m->m_nextpkt) {
1286 1.80 dyoung bf = STAILQ_FIRST(&sc->sc_txbuf);
1287 1.126 msaitoh if (bf == NULL) { /* out of buffers, cleanup */
1288 1.84 dyoung DPRINTF(sc, ATH_DEBUG_XMIT, "%s: out of xmit buffers\n",
1289 1.84 dyoung __func__);
1290 1.84 dyoung sc->sc_if.if_flags |= IFF_OACTIVE;
1291 1.80 dyoung ath_txfrag_cleanup(sc, frags, ni);
1292 1.80 dyoung break;
1293 1.80 dyoung }
1294 1.80 dyoung STAILQ_REMOVE_HEAD(&sc->sc_txbuf, bf_list);
1295 1.80 dyoung ieee80211_node_incref(ni);
1296 1.80 dyoung STAILQ_INSERT_TAIL(frags, bf, bf_list);
1297 1.80 dyoung }
1298 1.80 dyoung ATH_TXBUF_UNLOCK(sc);
1299 1.80 dyoung
1300 1.80 dyoung return !STAILQ_EMPTY(frags);
1301 1.80 dyoung }
1302 1.80 dyoung
1303 1.1 dyoung static void
1304 1.1 dyoung ath_start(struct ifnet *ifp)
1305 1.1 dyoung {
1306 1.1 dyoung struct ath_softc *sc = ifp->if_softc;
1307 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
1308 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1309 1.1 dyoung struct ieee80211_node *ni;
1310 1.1 dyoung struct ath_buf *bf;
1311 1.80 dyoung struct mbuf *m, *next;
1312 1.1 dyoung struct ieee80211_frame *wh;
1313 1.47 dyoung struct ether_header *eh;
1314 1.80 dyoung ath_bufhead frags;
1315 1.1 dyoung
1316 1.99 dyoung if ((ifp->if_flags & IFF_RUNNING) == 0 ||
1317 1.102 joerg !device_is_active(sc->sc_dev))
1318 1.1 dyoung return;
1319 1.115 jmcneill
1320 1.115 jmcneill if (sc->sc_flags & ATH_KEY_UPDATING)
1321 1.115 jmcneill return;
1322 1.115 jmcneill
1323 1.1 dyoung for (;;) {
1324 1.1 dyoung /*
1325 1.1 dyoung * Grab a TX buffer and associated resources.
1326 1.1 dyoung */
1327 1.47 dyoung ATH_TXBUF_LOCK(sc);
1328 1.47 dyoung bf = STAILQ_FIRST(&sc->sc_txbuf);
1329 1.1 dyoung if (bf != NULL)
1330 1.47 dyoung STAILQ_REMOVE_HEAD(&sc->sc_txbuf, bf_list);
1331 1.47 dyoung ATH_TXBUF_UNLOCK(sc);
1332 1.1 dyoung if (bf == NULL) {
1333 1.67 dyoung DPRINTF(sc, ATH_DEBUG_XMIT, "%s: out of xmit buffers\n",
1334 1.47 dyoung __func__);
1335 1.1 dyoung sc->sc_stats.ast_tx_qstop++;
1336 1.1 dyoung ifp->if_flags |= IFF_OACTIVE;
1337 1.1 dyoung break;
1338 1.1 dyoung }
1339 1.1 dyoung /*
1340 1.1 dyoung * Poll the management queue for frames; they
1341 1.1 dyoung * have priority over normal data frames.
1342 1.1 dyoung */
1343 1.1 dyoung IF_DEQUEUE(&ic->ic_mgtq, m);
1344 1.1 dyoung if (m == NULL) {
1345 1.1 dyoung /*
1346 1.1 dyoung * No data frames go out unless we're associated.
1347 1.1 dyoung */
1348 1.1 dyoung if (ic->ic_state != IEEE80211_S_RUN) {
1349 1.67 dyoung DPRINTF(sc, ATH_DEBUG_XMIT,
1350 1.67 dyoung "%s: discard data packet, state %s\n",
1351 1.67 dyoung __func__,
1352 1.67 dyoung ieee80211_state_name[ic->ic_state]);
1353 1.1 dyoung sc->sc_stats.ast_tx_discard++;
1354 1.47 dyoung ATH_TXBUF_LOCK(sc);
1355 1.47 dyoung STAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list);
1356 1.47 dyoung ATH_TXBUF_UNLOCK(sc);
1357 1.1 dyoung break;
1358 1.1 dyoung }
1359 1.47 dyoung IFQ_DEQUEUE(&ifp->if_snd, m); /* XXX: LOCK */
1360 1.1 dyoung if (m == NULL) {
1361 1.47 dyoung ATH_TXBUF_LOCK(sc);
1362 1.47 dyoung STAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list);
1363 1.47 dyoung ATH_TXBUF_UNLOCK(sc);
1364 1.1 dyoung break;
1365 1.1 dyoung }
1366 1.80 dyoung STAILQ_INIT(&frags);
1367 1.73 blymn /*
1368 1.47 dyoung * Find the node for the destination so we can do
1369 1.47 dyoung * things like power save and fast frames aggregation.
1370 1.47 dyoung */
1371 1.47 dyoung if (m->m_len < sizeof(struct ether_header) &&
1372 1.47 dyoung (m = m_pullup(m, sizeof(struct ether_header))) == NULL) {
1373 1.47 dyoung ic->ic_stats.is_tx_nobuf++; /* XXX */
1374 1.47 dyoung ni = NULL;
1375 1.47 dyoung goto bad;
1376 1.47 dyoung }
1377 1.47 dyoung eh = mtod(m, struct ether_header *);
1378 1.47 dyoung ni = ieee80211_find_txnode(ic, eh->ether_dhost);
1379 1.47 dyoung if (ni == NULL) {
1380 1.47 dyoung /* NB: ieee80211_find_txnode does stat+msg */
1381 1.47 dyoung m_freem(m);
1382 1.47 dyoung goto bad;
1383 1.47 dyoung }
1384 1.47 dyoung if ((ni->ni_flags & IEEE80211_NODE_PWR_MGT) &&
1385 1.47 dyoung (m->m_flags & M_PWR_SAV) == 0) {
1386 1.47 dyoung /*
1387 1.47 dyoung * Station in power save mode; pass the frame
1388 1.47 dyoung * to the 802.11 layer and continue. We'll get
1389 1.47 dyoung * the frame back when the time is right.
1390 1.47 dyoung */
1391 1.47 dyoung ieee80211_pwrsave(ic, ni, m);
1392 1.47 dyoung goto reclaim;
1393 1.47 dyoung }
1394 1.47 dyoung /* calculate priority so we can find the tx queue */
1395 1.47 dyoung if (ieee80211_classify(ic, m, ni)) {
1396 1.47 dyoung DPRINTF(sc, ATH_DEBUG_XMIT,
1397 1.47 dyoung "%s: discard, classification failure\n",
1398 1.47 dyoung __func__);
1399 1.47 dyoung m_freem(m);
1400 1.47 dyoung goto bad;
1401 1.47 dyoung }
1402 1.130 thorpej if_statinc(ifp, if_opackets);
1403 1.2 dyoung
1404 1.124 msaitoh bpf_mtap(ifp, m, BPF_D_OUT);
1405 1.1 dyoung /*
1406 1.1 dyoung * Encapsulate the packet in prep for transmission.
1407 1.1 dyoung */
1408 1.47 dyoung m = ieee80211_encap(ic, m, ni);
1409 1.1 dyoung if (m == NULL) {
1410 1.67 dyoung DPRINTF(sc, ATH_DEBUG_XMIT,
1411 1.47 dyoung "%s: encapsulation failure\n",
1412 1.47 dyoung __func__);
1413 1.1 dyoung sc->sc_stats.ast_tx_encap++;
1414 1.1 dyoung goto bad;
1415 1.1 dyoung }
1416 1.80 dyoung /*
1417 1.80 dyoung * Check for fragmentation. If this has frame
1418 1.80 dyoung * has been broken up verify we have enough
1419 1.80 dyoung * buffers to send all the fragments so all
1420 1.80 dyoung * go out or none...
1421 1.80 dyoung */
1422 1.104 alc if ((m->m_flags & M_FRAG) &&
1423 1.80 dyoung !ath_txfrag_setup(sc, &frags, m, ni)) {
1424 1.80 dyoung DPRINTF(sc, ATH_DEBUG_ANY,
1425 1.80 dyoung "%s: out of txfrag buffers\n", __func__);
1426 1.126 msaitoh ic->ic_stats.is_tx_nobuf++; /* XXX */
1427 1.83 dyoung ath_freetx(m);
1428 1.80 dyoung goto bad;
1429 1.80 dyoung }
1430 1.1 dyoung } else {
1431 1.1 dyoung /*
1432 1.1 dyoung * Hack! The referenced node pointer is in the
1433 1.1 dyoung * rcvif field of the packet header. This is
1434 1.1 dyoung * placed there by ieee80211_mgmt_output because
1435 1.1 dyoung * we need to hold the reference with the frame
1436 1.1 dyoung * and there's no other way (other than packet
1437 1.1 dyoung * tags which we consider too expensive to use)
1438 1.1 dyoung * to pass it along.
1439 1.1 dyoung */
1440 1.120 ozaki ni = M_GETCTX(m, struct ieee80211_node *);
1441 1.121 ozaki M_CLEARCTX(m);
1442 1.1 dyoung
1443 1.1 dyoung wh = mtod(m, struct ieee80211_frame *);
1444 1.1 dyoung if ((wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK) ==
1445 1.1 dyoung IEEE80211_FC0_SUBTYPE_PROBE_RESP) {
1446 1.1 dyoung /* fill time stamp */
1447 1.1 dyoung u_int64_t tsf;
1448 1.1 dyoung u_int32_t *tstamp;
1449 1.1 dyoung
1450 1.1 dyoung tsf = ath_hal_gettsf64(ah);
1451 1.1 dyoung /* XXX: adjust 100us delay to xmit */
1452 1.1 dyoung tsf += 100;
1453 1.1 dyoung tstamp = (u_int32_t *)&wh[1];
1454 1.1 dyoung tstamp[0] = htole32(tsf & 0xffffffff);
1455 1.1 dyoung tstamp[1] = htole32(tsf >> 32);
1456 1.1 dyoung }
1457 1.1 dyoung sc->sc_stats.ast_tx_mgmt++;
1458 1.1 dyoung }
1459 1.1 dyoung
1460 1.80 dyoung nextfrag:
1461 1.80 dyoung next = m->m_nextpkt;
1462 1.1 dyoung if (ath_tx_start(sc, ni, bf, m)) {
1463 1.1 dyoung bad:
1464 1.130 thorpej if_statinc(ifp, if_oerrors);
1465 1.47 dyoung reclaim:
1466 1.47 dyoung ATH_TXBUF_LOCK(sc);
1467 1.47 dyoung STAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list);
1468 1.80 dyoung ath_txfrag_cleanup(sc, &frags, ni);
1469 1.47 dyoung ATH_TXBUF_UNLOCK(sc);
1470 1.35 dyoung if (ni != NULL)
1471 1.47 dyoung ieee80211_free_node(ni);
1472 1.1 dyoung continue;
1473 1.1 dyoung }
1474 1.80 dyoung if (next != NULL) {
1475 1.80 dyoung m = next;
1476 1.80 dyoung bf = STAILQ_FIRST(&frags);
1477 1.114 dyoung KASSERTMSG(bf != NULL, "no buf for txfrag");
1478 1.80 dyoung STAILQ_REMOVE_HEAD(&frags, bf_list);
1479 1.80 dyoung goto nextfrag;
1480 1.80 dyoung }
1481 1.1 dyoung
1482 1.1 dyoung ifp->if_timer = 1;
1483 1.1 dyoung }
1484 1.1 dyoung }
1485 1.1 dyoung
1486 1.1 dyoung static int
1487 1.1 dyoung ath_media_change(struct ifnet *ifp)
1488 1.1 dyoung {
1489 1.47 dyoung #define IS_UP(ifp) \
1490 1.61 skrll ((ifp->if_flags & IFF_UP) && (ifp->if_flags & IFF_RUNNING))
1491 1.1 dyoung int error;
1492 1.1 dyoung
1493 1.1 dyoung error = ieee80211_media_change(ifp);
1494 1.1 dyoung if (error == ENETRESET) {
1495 1.47 dyoung if (IS_UP(ifp))
1496 1.55 dyoung ath_init(ifp->if_softc); /* XXX lose error */
1497 1.1 dyoung error = 0;
1498 1.1 dyoung }
1499 1.1 dyoung return error;
1500 1.47 dyoung #undef IS_UP
1501 1.1 dyoung }
1502 1.1 dyoung
1503 1.47 dyoung #ifdef AR_DEBUG
1504 1.1 dyoung static void
1505 1.47 dyoung ath_keyprint(const char *tag, u_int ix,
1506 1.47 dyoung const HAL_KEYVAL *hk, const u_int8_t mac[IEEE80211_ADDR_LEN])
1507 1.47 dyoung {
1508 1.47 dyoung static const char *ciphers[] = {
1509 1.47 dyoung "WEP",
1510 1.47 dyoung "AES-OCB",
1511 1.47 dyoung "AES-CCM",
1512 1.47 dyoung "CKIP",
1513 1.47 dyoung "TKIP",
1514 1.47 dyoung "CLR",
1515 1.47 dyoung };
1516 1.47 dyoung int i, n;
1517 1.47 dyoung
1518 1.47 dyoung printf("%s: [%02u] %-7s ", tag, ix, ciphers[hk->kv_type]);
1519 1.47 dyoung for (i = 0, n = hk->kv_len; i < n; i++)
1520 1.47 dyoung printf("%02x", hk->kv_val[i]);
1521 1.47 dyoung printf(" mac %s", ether_sprintf(mac));
1522 1.47 dyoung if (hk->kv_type == HAL_CIPHER_TKIP) {
1523 1.47 dyoung printf(" mic ");
1524 1.47 dyoung for (i = 0; i < sizeof(hk->kv_mic); i++)
1525 1.47 dyoung printf("%02x", hk->kv_mic[i]);
1526 1.47 dyoung }
1527 1.47 dyoung printf("\n");
1528 1.47 dyoung }
1529 1.47 dyoung #endif
1530 1.47 dyoung
1531 1.47 dyoung /*
1532 1.47 dyoung * Set a TKIP key into the hardware. This handles the
1533 1.47 dyoung * potential distribution of key state to multiple key
1534 1.47 dyoung * cache slots for TKIP.
1535 1.47 dyoung */
1536 1.47 dyoung static int
1537 1.47 dyoung ath_keyset_tkip(struct ath_softc *sc, const struct ieee80211_key *k,
1538 1.47 dyoung HAL_KEYVAL *hk, const u_int8_t mac[IEEE80211_ADDR_LEN])
1539 1.1 dyoung {
1540 1.47 dyoung #define IEEE80211_KEY_XR (IEEE80211_KEY_XMIT | IEEE80211_KEY_RECV)
1541 1.47 dyoung static const u_int8_t zerobssid[IEEE80211_ADDR_LEN];
1542 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
1543 1.1 dyoung
1544 1.114 dyoung KASSERTMSG(k->wk_cipher->ic_cipher == IEEE80211_CIPHER_TKIP,
1545 1.114 dyoung "got a non-TKIP key, cipher %u", k->wk_cipher->ic_cipher);
1546 1.47 dyoung if ((k->wk_flags & IEEE80211_KEY_XR) == IEEE80211_KEY_XR) {
1547 1.104 alc if (sc->sc_splitmic) {
1548 1.104 alc /*
1549 1.104 alc * TX key goes at first index, RX key at the rx index.
1550 1.104 alc * The hal handles the MIC keys at index+64.
1551 1.104 alc */
1552 1.104 alc memcpy(hk->kv_mic, k->wk_txmic, sizeof(hk->kv_mic));
1553 1.104 alc KEYPRINTF(sc, k->wk_keyix, hk, zerobssid);
1554 1.104 alc if (!ath_hal_keyset(ah, ATH_KEY(k->wk_keyix), hk,
1555 1.104 alc zerobssid))
1556 1.104 alc return 0;
1557 1.104 alc
1558 1.104 alc memcpy(hk->kv_mic, k->wk_rxmic, sizeof(hk->kv_mic));
1559 1.104 alc KEYPRINTF(sc, k->wk_keyix+32, hk, mac);
1560 1.104 alc /* XXX delete tx key on failure? */
1561 1.104 alc return ath_hal_keyset(ah, ATH_KEY(k->wk_keyix+32),
1562 1.104 alc hk, mac);
1563 1.104 alc } else {
1564 1.104 alc /*
1565 1.104 alc * Room for both TX+RX MIC keys in one key cache
1566 1.104 alc * slot, just set key at the first index; the HAL
1567 1.104 alc * will handle the reset.
1568 1.104 alc */
1569 1.104 alc memcpy(hk->kv_mic, k->wk_rxmic, sizeof(hk->kv_mic));
1570 1.104 alc memcpy(hk->kv_txmic, k->wk_txmic, sizeof(hk->kv_txmic));
1571 1.104 alc KEYPRINTF(sc, k->wk_keyix, hk, mac);
1572 1.104 alc return ath_hal_keyset(ah, ATH_KEY(k->wk_keyix), hk, mac);
1573 1.104 alc }
1574 1.106 jmcneill } else if (k->wk_flags & IEEE80211_KEY_XMIT) {
1575 1.106 jmcneill if (sc->sc_splitmic) {
1576 1.106 jmcneill /*
1577 1.106 jmcneill * NB: must pass MIC key in expected location when
1578 1.106 jmcneill * the keycache only holds one MIC key per entry.
1579 1.106 jmcneill */
1580 1.106 jmcneill memcpy(hk->kv_mic, k->wk_txmic, sizeof(hk->kv_txmic));
1581 1.106 jmcneill } else
1582 1.106 jmcneill memcpy(hk->kv_txmic, k->wk_txmic, sizeof(hk->kv_txmic));
1583 1.55 dyoung KEYPRINTF(sc, k->wk_keyix, hk, mac);
1584 1.104 alc return ath_hal_keyset(ah, ATH_KEY(k->wk_keyix), hk, mac);
1585 1.106 jmcneill } else if (k->wk_flags & IEEE80211_KEY_RECV) {
1586 1.106 jmcneill memcpy(hk->kv_mic, k->wk_rxmic, sizeof(hk->kv_mic));
1587 1.106 jmcneill KEYPRINTF(sc, k->wk_keyix, hk, mac);
1588 1.106 jmcneill return ath_hal_keyset(ah, k->wk_keyix, hk, mac);
1589 1.1 dyoung }
1590 1.47 dyoung return 0;
1591 1.47 dyoung #undef IEEE80211_KEY_XR
1592 1.1 dyoung }
1593 1.1 dyoung
1594 1.47 dyoung /*
1595 1.47 dyoung * Set a net80211 key into the hardware. This handles the
1596 1.47 dyoung * potential distribution of key state to multiple key
1597 1.47 dyoung * cache slots for TKIP with hardware MIC support.
1598 1.47 dyoung */
1599 1.1 dyoung static int
1600 1.47 dyoung ath_keyset(struct ath_softc *sc, const struct ieee80211_key *k,
1601 1.55 dyoung const u_int8_t mac0[IEEE80211_ADDR_LEN],
1602 1.55 dyoung struct ieee80211_node *bss)
1603 1.1 dyoung {
1604 1.47 dyoung #define N(a) (sizeof(a)/sizeof(a[0]))
1605 1.47 dyoung static const u_int8_t ciphermap[] = {
1606 1.47 dyoung HAL_CIPHER_WEP, /* IEEE80211_CIPHER_WEP */
1607 1.47 dyoung HAL_CIPHER_TKIP, /* IEEE80211_CIPHER_TKIP */
1608 1.47 dyoung HAL_CIPHER_AES_OCB, /* IEEE80211_CIPHER_AES_OCB */
1609 1.47 dyoung HAL_CIPHER_AES_CCM, /* IEEE80211_CIPHER_AES_CCM */
1610 1.47 dyoung (u_int8_t) -1, /* 4 is not allocated */
1611 1.47 dyoung HAL_CIPHER_CKIP, /* IEEE80211_CIPHER_CKIP */
1612 1.47 dyoung HAL_CIPHER_CLR, /* IEEE80211_CIPHER_NONE */
1613 1.47 dyoung };
1614 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
1615 1.47 dyoung const struct ieee80211_cipher *cip = k->wk_cipher;
1616 1.55 dyoung u_int8_t gmac[IEEE80211_ADDR_LEN];
1617 1.55 dyoung const u_int8_t *mac;
1618 1.47 dyoung HAL_KEYVAL hk;
1619 1.47 dyoung
1620 1.47 dyoung memset(&hk, 0, sizeof(hk));
1621 1.47 dyoung /*
1622 1.47 dyoung * Software crypto uses a "clear key" so non-crypto
1623 1.47 dyoung * state kept in the key cache are maintained and
1624 1.47 dyoung * so that rx frames have an entry to match.
1625 1.47 dyoung */
1626 1.47 dyoung if ((k->wk_flags & IEEE80211_KEY_SWCRYPT) == 0) {
1627 1.114 dyoung KASSERTMSG(cip->ic_cipher < N(ciphermap),
1628 1.114 dyoung "invalid cipher type %u", cip->ic_cipher);
1629 1.47 dyoung hk.kv_type = ciphermap[cip->ic_cipher];
1630 1.47 dyoung hk.kv_len = k->wk_keylen;
1631 1.47 dyoung memcpy(hk.kv_val, k->wk_key, k->wk_keylen);
1632 1.47 dyoung } else
1633 1.47 dyoung hk.kv_type = HAL_CIPHER_CLR;
1634 1.1 dyoung
1635 1.55 dyoung if ((k->wk_flags & IEEE80211_KEY_GROUP) && sc->sc_mcastkey) {
1636 1.55 dyoung /*
1637 1.55 dyoung * Group keys on hardware that supports multicast frame
1638 1.55 dyoung * key search use a mac that is the sender's address with
1639 1.55 dyoung * the high bit set instead of the app-specified address.
1640 1.55 dyoung */
1641 1.55 dyoung IEEE80211_ADDR_COPY(gmac, bss->ni_macaddr);
1642 1.55 dyoung gmac[0] |= 0x80;
1643 1.55 dyoung mac = gmac;
1644 1.55 dyoung } else
1645 1.55 dyoung mac = mac0;
1646 1.55 dyoung
1647 1.104 alc if ((hk.kv_type == HAL_CIPHER_TKIP &&
1648 1.106 jmcneill (k->wk_flags & IEEE80211_KEY_SWMIC) == 0)) {
1649 1.47 dyoung return ath_keyset_tkip(sc, k, &hk, mac);
1650 1.47 dyoung } else {
1651 1.47 dyoung KEYPRINTF(sc, k->wk_keyix, &hk, mac);
1652 1.104 alc return ath_hal_keyset(ah, ATH_KEY(k->wk_keyix), &hk, mac);
1653 1.1 dyoung }
1654 1.47 dyoung #undef N
1655 1.1 dyoung }
1656 1.1 dyoung
1657 1.1 dyoung /*
1658 1.47 dyoung * Allocate tx/rx key slots for TKIP. We allocate two slots for
1659 1.47 dyoung * each key, one for decrypt/encrypt and the other for the MIC.
1660 1.47 dyoung */
1661 1.47 dyoung static u_int16_t
1662 1.61 skrll key_alloc_2pair(struct ath_softc *sc,
1663 1.61 skrll ieee80211_keyix *txkeyix, ieee80211_keyix *rxkeyix)
1664 1.47 dyoung {
1665 1.47 dyoung #define N(a) (sizeof(a)/sizeof(a[0]))
1666 1.47 dyoung u_int i, keyix;
1667 1.33 dyoung
1668 1.114 dyoung KASSERTMSG(sc->sc_splitmic, "key cache !split");
1669 1.47 dyoung /* XXX could optimize */
1670 1.47 dyoung for (i = 0; i < N(sc->sc_keymap)/4; i++) {
1671 1.47 dyoung u_int8_t b = sc->sc_keymap[i];
1672 1.47 dyoung if (b != 0xff) {
1673 1.47 dyoung /*
1674 1.47 dyoung * One or more slots in this byte are free.
1675 1.47 dyoung */
1676 1.47 dyoung keyix = i*NBBY;
1677 1.47 dyoung while (b & 1) {
1678 1.47 dyoung again:
1679 1.47 dyoung keyix++;
1680 1.47 dyoung b >>= 1;
1681 1.47 dyoung }
1682 1.47 dyoung /* XXX IEEE80211_KEY_XMIT | IEEE80211_KEY_RECV */
1683 1.47 dyoung if (isset(sc->sc_keymap, keyix+32) ||
1684 1.47 dyoung isset(sc->sc_keymap, keyix+64) ||
1685 1.47 dyoung isset(sc->sc_keymap, keyix+32+64)) {
1686 1.47 dyoung /* full pair unavailable */
1687 1.47 dyoung /* XXX statistic */
1688 1.47 dyoung if (keyix == (i+1)*NBBY) {
1689 1.47 dyoung /* no slots were appropriate, advance */
1690 1.47 dyoung continue;
1691 1.47 dyoung }
1692 1.47 dyoung goto again;
1693 1.47 dyoung }
1694 1.47 dyoung setbit(sc->sc_keymap, keyix);
1695 1.47 dyoung setbit(sc->sc_keymap, keyix+64);
1696 1.47 dyoung setbit(sc->sc_keymap, keyix+32);
1697 1.47 dyoung setbit(sc->sc_keymap, keyix+32+64);
1698 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE,
1699 1.47 dyoung "%s: key pair %u,%u %u,%u\n",
1700 1.47 dyoung __func__, keyix, keyix+64,
1701 1.47 dyoung keyix+32, keyix+32+64);
1702 1.61 skrll *txkeyix = keyix;
1703 1.61 skrll *rxkeyix = keyix+32;
1704 1.104 alc return keyix;
1705 1.33 dyoung }
1706 1.1 dyoung }
1707 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s: out of pair space\n", __func__);
1708 1.104 alc return IEEE80211_KEYIX_NONE;
1709 1.47 dyoung #undef N
1710 1.1 dyoung }
1711 1.1 dyoung
1712 1.47 dyoung /*
1713 1.106 jmcneill * Allocate tx/rx key slots for TKIP. We allocate two slots for
1714 1.106 jmcneill * each key, one for decrypt/encrypt and the other for the MIC.
1715 1.106 jmcneill */
1716 1.106 jmcneill static int
1717 1.106 jmcneill key_alloc_pair(struct ath_softc *sc, ieee80211_keyix *txkeyix,
1718 1.106 jmcneill ieee80211_keyix *rxkeyix)
1719 1.106 jmcneill {
1720 1.106 jmcneill #define N(a) (sizeof(a)/sizeof(a[0]))
1721 1.106 jmcneill u_int i, keyix;
1722 1.106 jmcneill
1723 1.114 dyoung KASSERTMSG(!sc->sc_splitmic, "key cache split");
1724 1.106 jmcneill /* XXX could optimize */
1725 1.106 jmcneill for (i = 0; i < N(sc->sc_keymap)/4; i++) {
1726 1.106 jmcneill uint8_t b = sc->sc_keymap[i];
1727 1.106 jmcneill if (b != 0xff) {
1728 1.106 jmcneill /*
1729 1.106 jmcneill * One or more slots in this byte are free.
1730 1.106 jmcneill */
1731 1.106 jmcneill keyix = i*NBBY;
1732 1.106 jmcneill while (b & 1) {
1733 1.106 jmcneill again:
1734 1.106 jmcneill keyix++;
1735 1.106 jmcneill b >>= 1;
1736 1.106 jmcneill }
1737 1.106 jmcneill if (isset(sc->sc_keymap, keyix+64)) {
1738 1.106 jmcneill /* full pair unavailable */
1739 1.106 jmcneill /* XXX statistic */
1740 1.106 jmcneill if (keyix == (i+1)*NBBY) {
1741 1.106 jmcneill /* no slots were appropriate, advance */
1742 1.106 jmcneill continue;
1743 1.106 jmcneill }
1744 1.106 jmcneill goto again;
1745 1.106 jmcneill }
1746 1.106 jmcneill setbit(sc->sc_keymap, keyix);
1747 1.106 jmcneill setbit(sc->sc_keymap, keyix+64);
1748 1.106 jmcneill DPRINTF(sc, ATH_DEBUG_KEYCACHE,
1749 1.106 jmcneill "%s: key pair %u,%u\n",
1750 1.106 jmcneill __func__, keyix, keyix+64);
1751 1.106 jmcneill *txkeyix = *rxkeyix = keyix;
1752 1.106 jmcneill return 1;
1753 1.106 jmcneill }
1754 1.106 jmcneill }
1755 1.106 jmcneill DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s: out of pair space\n", __func__);
1756 1.106 jmcneill return 0;
1757 1.106 jmcneill #undef N
1758 1.106 jmcneill }
1759 1.106 jmcneill
1760 1.106 jmcneill /*
1761 1.47 dyoung * Allocate a single key cache slot.
1762 1.47 dyoung */
1763 1.61 skrll static int
1764 1.61 skrll key_alloc_single(struct ath_softc *sc,
1765 1.61 skrll ieee80211_keyix *txkeyix, ieee80211_keyix *rxkeyix)
1766 1.2 dyoung {
1767 1.47 dyoung #define N(a) (sizeof(a)/sizeof(a[0]))
1768 1.47 dyoung u_int i, keyix;
1769 1.2 dyoung
1770 1.47 dyoung /* XXX try i,i+32,i+64,i+32+64 to minimize key pair conflicts */
1771 1.47 dyoung for (i = 0; i < N(sc->sc_keymap); i++) {
1772 1.47 dyoung u_int8_t b = sc->sc_keymap[i];
1773 1.47 dyoung if (b != 0xff) {
1774 1.47 dyoung /*
1775 1.47 dyoung * One or more slots are free.
1776 1.47 dyoung */
1777 1.47 dyoung keyix = i*NBBY;
1778 1.47 dyoung while (b & 1)
1779 1.47 dyoung keyix++, b >>= 1;
1780 1.47 dyoung setbit(sc->sc_keymap, keyix);
1781 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s: key %u\n",
1782 1.47 dyoung __func__, keyix);
1783 1.61 skrll *txkeyix = *rxkeyix = keyix;
1784 1.61 skrll return 1;
1785 1.47 dyoung }
1786 1.47 dyoung }
1787 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s: out of space\n", __func__);
1788 1.61 skrll return 0;
1789 1.47 dyoung #undef N
1790 1.2 dyoung }
1791 1.2 dyoung
1792 1.47 dyoung /*
1793 1.47 dyoung * Allocate one or more key cache slots for a uniacst key. The
1794 1.47 dyoung * key itself is needed only to identify the cipher. For hardware
1795 1.47 dyoung * TKIP with split cipher+MIC keys we allocate two key cache slot
1796 1.47 dyoung * pairs so that we can setup separate TX and RX MIC keys. Note
1797 1.47 dyoung * that the MIC key for a TKIP key at slot i is assumed by the
1798 1.47 dyoung * hardware to be at slot i+64. This limits TKIP keys to the first
1799 1.47 dyoung * 64 entries.
1800 1.47 dyoung */
1801 1.47 dyoung static int
1802 1.61 skrll ath_key_alloc(struct ieee80211com *ic, const struct ieee80211_key *k,
1803 1.61 skrll ieee80211_keyix *keyix, ieee80211_keyix *rxkeyix)
1804 1.2 dyoung {
1805 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
1806 1.47 dyoung
1807 1.47 dyoung /*
1808 1.47 dyoung * Group key allocation must be handled specially for
1809 1.47 dyoung * parts that do not support multicast key cache search
1810 1.47 dyoung * functionality. For those parts the key id must match
1811 1.47 dyoung * the h/w key index so lookups find the right key. On
1812 1.47 dyoung * parts w/ the key search facility we install the sender's
1813 1.47 dyoung * mac address (with the high bit set) and let the hardware
1814 1.47 dyoung * find the key w/o using the key id. This is preferred as
1815 1.47 dyoung * it permits us to support multiple users for adhoc and/or
1816 1.47 dyoung * multi-station operation.
1817 1.47 dyoung */
1818 1.47 dyoung if ((k->wk_flags & IEEE80211_KEY_GROUP) && !sc->sc_mcastkey) {
1819 1.47 dyoung if (!(&ic->ic_nw_keys[0] <= k &&
1820 1.47 dyoung k < &ic->ic_nw_keys[IEEE80211_WEP_NKID])) {
1821 1.47 dyoung /* should not happen */
1822 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE,
1823 1.47 dyoung "%s: bogus group key\n", __func__);
1824 1.61 skrll return 0;
1825 1.47 dyoung }
1826 1.47 dyoung /*
1827 1.47 dyoung * XXX we pre-allocate the global keys so
1828 1.47 dyoung * have no way to check if they've already been allocated.
1829 1.47 dyoung */
1830 1.61 skrll *keyix = *rxkeyix = k - ic->ic_nw_keys;
1831 1.61 skrll return 1;
1832 1.47 dyoung }
1833 1.2 dyoung
1834 1.47 dyoung /*
1835 1.47 dyoung * We allocate two pair for TKIP when using the h/w to do
1836 1.47 dyoung * the MIC. For everything else, including software crypto,
1837 1.47 dyoung * we allocate a single entry. Note that s/w crypto requires
1838 1.47 dyoung * a pass-through slot on the 5211 and 5212. The 5210 does
1839 1.47 dyoung * not support pass-through cache entries and we map all
1840 1.47 dyoung * those requests to slot 0.
1841 1.47 dyoung */
1842 1.47 dyoung if (k->wk_flags & IEEE80211_KEY_SWCRYPT) {
1843 1.61 skrll return key_alloc_single(sc, keyix, rxkeyix);
1844 1.47 dyoung } else if (k->wk_cipher->ic_cipher == IEEE80211_CIPHER_TKIP &&
1845 1.106 jmcneill (k->wk_flags & IEEE80211_KEY_SWMIC) == 0) {
1846 1.106 jmcneill if (sc->sc_splitmic)
1847 1.106 jmcneill return key_alloc_2pair(sc, keyix, rxkeyix);
1848 1.106 jmcneill else
1849 1.106 jmcneill return key_alloc_pair(sc, keyix, rxkeyix);
1850 1.47 dyoung } else {
1851 1.61 skrll return key_alloc_single(sc, keyix, rxkeyix);
1852 1.2 dyoung }
1853 1.2 dyoung }
1854 1.47 dyoung
1855 1.47 dyoung /*
1856 1.47 dyoung * Delete an entry in the key cache allocated by ath_key_alloc.
1857 1.47 dyoung */
1858 1.47 dyoung static int
1859 1.47 dyoung ath_key_delete(struct ieee80211com *ic, const struct ieee80211_key *k)
1860 1.2 dyoung {
1861 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
1862 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
1863 1.47 dyoung const struct ieee80211_cipher *cip = k->wk_cipher;
1864 1.47 dyoung u_int keyix = k->wk_keyix;
1865 1.47 dyoung
1866 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s: delete key %u\n", __func__, keyix);
1867 1.2 dyoung
1868 1.102 joerg if (!device_has_power(sc->sc_dev)) {
1869 1.102 joerg aprint_error_dev(sc->sc_dev, "deleting keyix %d w/o power\n",
1870 1.99 dyoung k->wk_keyix);
1871 1.99 dyoung }
1872 1.99 dyoung
1873 1.47 dyoung ath_hal_keyreset(ah, keyix);
1874 1.47 dyoung /*
1875 1.47 dyoung * Handle split tx/rx keying required for TKIP with h/w MIC.
1876 1.47 dyoung */
1877 1.47 dyoung if (cip->ic_cipher == IEEE80211_CIPHER_TKIP &&
1878 1.61 skrll (k->wk_flags & IEEE80211_KEY_SWMIC) == 0 && sc->sc_splitmic)
1879 1.47 dyoung ath_hal_keyreset(ah, keyix+32); /* RX key */
1880 1.47 dyoung if (keyix >= IEEE80211_WEP_NKID) {
1881 1.47 dyoung /*
1882 1.47 dyoung * Don't touch keymap entries for global keys so
1883 1.47 dyoung * they are never considered for dynamic allocation.
1884 1.47 dyoung */
1885 1.47 dyoung clrbit(sc->sc_keymap, keyix);
1886 1.47 dyoung if (cip->ic_cipher == IEEE80211_CIPHER_TKIP &&
1887 1.106 jmcneill (k->wk_flags & IEEE80211_KEY_SWMIC) == 0) {
1888 1.47 dyoung clrbit(sc->sc_keymap, keyix+64); /* TX key MIC */
1889 1.106 jmcneill if (sc->sc_splitmic) {
1890 1.106 jmcneill /* +32 for RX key, +32+64 for RX key MIC */
1891 1.106 jmcneill clrbit(sc->sc_keymap, keyix+32);
1892 1.106 jmcneill clrbit(sc->sc_keymap, keyix+32+64);
1893 1.106 jmcneill }
1894 1.2 dyoung }
1895 1.2 dyoung }
1896 1.47 dyoung return 1;
1897 1.47 dyoung }
1898 1.47 dyoung
1899 1.47 dyoung /*
1900 1.47 dyoung * Set the key cache contents for the specified key. Key cache
1901 1.47 dyoung * slot(s) must already have been allocated by ath_key_alloc.
1902 1.47 dyoung */
1903 1.47 dyoung static int
1904 1.47 dyoung ath_key_set(struct ieee80211com *ic, const struct ieee80211_key *k,
1905 1.47 dyoung const u_int8_t mac[IEEE80211_ADDR_LEN])
1906 1.47 dyoung {
1907 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
1908 1.47 dyoung
1909 1.102 joerg if (!device_has_power(sc->sc_dev)) {
1910 1.102 joerg aprint_error_dev(sc->sc_dev, "setting keyix %d w/o power\n",
1911 1.99 dyoung k->wk_keyix);
1912 1.99 dyoung }
1913 1.55 dyoung return ath_keyset(sc, k, mac, ic->ic_bss);
1914 1.47 dyoung }
1915 1.47 dyoung
1916 1.47 dyoung /*
1917 1.47 dyoung * Block/unblock tx+rx processing while a key change is done.
1918 1.47 dyoung * We assume the caller serializes key management operations
1919 1.47 dyoung * so we only need to worry about synchronization with other
1920 1.47 dyoung * uses that originate in the driver.
1921 1.47 dyoung */
1922 1.47 dyoung static void
1923 1.47 dyoung ath_key_update_begin(struct ieee80211com *ic)
1924 1.47 dyoung {
1925 1.47 dyoung struct ifnet *ifp = ic->ic_ifp;
1926 1.47 dyoung struct ath_softc *sc = ifp->if_softc;
1927 1.47 dyoung
1928 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s:\n", __func__);
1929 1.47 dyoung #if 0
1930 1.47 dyoung tasklet_disable(&sc->sc_rxtq);
1931 1.47 dyoung #endif
1932 1.115 jmcneill sc->sc_flags |= ATH_KEY_UPDATING;
1933 1.2 dyoung }
1934 1.47 dyoung
1935 1.47 dyoung static void
1936 1.47 dyoung ath_key_update_end(struct ieee80211com *ic)
1937 1.47 dyoung {
1938 1.47 dyoung struct ifnet *ifp = ic->ic_ifp;
1939 1.47 dyoung struct ath_softc *sc = ifp->if_softc;
1940 1.47 dyoung
1941 1.47 dyoung DPRINTF(sc, ATH_DEBUG_KEYCACHE, "%s:\n", __func__);
1942 1.115 jmcneill sc->sc_flags &= ~ATH_KEY_UPDATING;
1943 1.47 dyoung #if 0
1944 1.47 dyoung tasklet_enable(&sc->sc_rxtq);
1945 1.2 dyoung #endif
1946 1.47 dyoung }
1947 1.2 dyoung
1948 1.18 dyoung /*
1949 1.18 dyoung * Calculate the receive filter according to the
1950 1.18 dyoung * operating mode and state:
1951 1.18 dyoung *
1952 1.18 dyoung * o always accept unicast, broadcast, and multicast traffic
1953 1.47 dyoung * o maintain current state of phy error reception (the hal
1954 1.47 dyoung * may enable phy error frames for noise immunity work)
1955 1.18 dyoung * o probe request frames are accepted only when operating in
1956 1.18 dyoung * hostap, adhoc, or monitor modes
1957 1.18 dyoung * o enable promiscuous mode according to the interface state
1958 1.18 dyoung * o accept beacons:
1959 1.18 dyoung * - when operating in adhoc mode so the 802.11 layer creates
1960 1.18 dyoung * node table entries for peers,
1961 1.18 dyoung * - when operating in station mode for collecting rssi data when
1962 1.18 dyoung * the station is otherwise quiet, or
1963 1.18 dyoung * - when scanning
1964 1.18 dyoung */
1965 1.18 dyoung static u_int32_t
1966 1.47 dyoung ath_calcrxfilter(struct ath_softc *sc, enum ieee80211_state state)
1967 1.1 dyoung {
1968 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
1969 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
1970 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
1971 1.18 dyoung u_int32_t rfilt;
1972 1.1 dyoung
1973 1.1 dyoung rfilt = (ath_hal_getrxfilter(ah) & HAL_RX_FILTER_PHYERR)
1974 1.1 dyoung | HAL_RX_FILTER_UCAST | HAL_RX_FILTER_BCAST | HAL_RX_FILTER_MCAST;
1975 1.1 dyoung if (ic->ic_opmode != IEEE80211_M_STA)
1976 1.1 dyoung rfilt |= HAL_RX_FILTER_PROBEREQ;
1977 1.47 dyoung if (ic->ic_opmode != IEEE80211_M_HOSTAP &&
1978 1.47 dyoung (ifp->if_flags & IFF_PROMISC))
1979 1.47 dyoung rfilt |= HAL_RX_FILTER_PROM;
1980 1.104 alc if (ifp->if_flags & IFF_PROMISC)
1981 1.104 alc rfilt |= HAL_RX_FILTER_CONTROL | HAL_RX_FILTER_PROBEREQ;
1982 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_STA ||
1983 1.47 dyoung ic->ic_opmode == IEEE80211_M_IBSS ||
1984 1.47 dyoung state == IEEE80211_S_SCAN)
1985 1.1 dyoung rfilt |= HAL_RX_FILTER_BEACON;
1986 1.18 dyoung return rfilt;
1987 1.18 dyoung }
1988 1.18 dyoung
1989 1.18 dyoung static void
1990 1.99 dyoung ath_mode_init(struct ath_softc *sc)
1991 1.47 dyoung {
1992 1.127 msaitoh struct ethercom *ec = &sc->sc_ec;
1993 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
1994 1.99 dyoung struct ieee80211com *ic = &sc->sc_ic;
1995 1.99 dyoung struct ath_hal *ah = sc->sc_ah;
1996 1.47 dyoung struct ether_multi *enm;
1997 1.47 dyoung struct ether_multistep estep;
1998 1.99 dyoung u_int32_t rfilt, mfilt[2], val;
1999 1.60 gdt int i;
2000 1.99 dyoung uint8_t pos;
2001 1.18 dyoung
2002 1.18 dyoung /* configure rx filter */
2003 1.47 dyoung rfilt = ath_calcrxfilter(sc, ic->ic_state);
2004 1.1 dyoung ath_hal_setrxfilter(ah, rfilt);
2005 1.1 dyoung
2006 1.18 dyoung /* configure operational mode */
2007 1.19 dyoung ath_hal_setopmode(ah);
2008 1.18 dyoung
2009 1.60 gdt /* Write keys to hardware; it may have been powered down. */
2010 1.60 gdt ath_key_update_begin(ic);
2011 1.60 gdt for (i = 0; i < IEEE80211_WEP_NKID; i++) {
2012 1.60 gdt ath_key_set(ic,
2013 1.60 gdt &ic->ic_crypto.cs_nw_keys[i],
2014 1.60 gdt ic->ic_myaddr);
2015 1.60 gdt }
2016 1.60 gdt ath_key_update_end(ic);
2017 1.60 gdt
2018 1.47 dyoung /*
2019 1.47 dyoung * Handle any link-level address change. Note that we only
2020 1.47 dyoung * need to force ic_myaddr; any other addresses are handled
2021 1.47 dyoung * as a byproduct of the ifnet code marking the interface
2022 1.47 dyoung * down then up.
2023 1.47 dyoung *
2024 1.47 dyoung * XXX should get from lladdr instead of arpcom but that's more work
2025 1.47 dyoung */
2026 1.85 dyoung IEEE80211_ADDR_COPY(ic->ic_myaddr, CLLADDR(sc->sc_if.if_sadl));
2027 1.47 dyoung ath_hal_setmac(ah, ic->ic_myaddr);
2028 1.47 dyoung
2029 1.1 dyoung /* calculate and install multicast filter */
2030 1.99 dyoung ifp->if_flags &= ~IFF_ALLMULTI;
2031 1.99 dyoung mfilt[0] = mfilt[1] = 0;
2032 1.127 msaitoh ETHER_LOCK(ec);
2033 1.127 msaitoh ETHER_FIRST_MULTI(estep, ec, enm);
2034 1.99 dyoung while (enm != NULL) {
2035 1.99 dyoung void *dl;
2036 1.99 dyoung /* XXX Punt on ranges. */
2037 1.99 dyoung if (!IEEE80211_ADDR_EQ(enm->enm_addrlo, enm->enm_addrhi)) {
2038 1.99 dyoung mfilt[0] = mfilt[1] = 0xffffffff;
2039 1.99 dyoung ifp->if_flags |= IFF_ALLMULTI;
2040 1.99 dyoung break;
2041 1.61 skrll }
2042 1.99 dyoung dl = enm->enm_addrlo;
2043 1.99 dyoung val = LE_READ_4((char *)dl + 0);
2044 1.99 dyoung pos = (val >> 18) ^ (val >> 12) ^ (val >> 6) ^ val;
2045 1.99 dyoung val = LE_READ_4((char *)dl + 3);
2046 1.99 dyoung pos ^= (val >> 18) ^ (val >> 12) ^ (val >> 6) ^ val;
2047 1.99 dyoung pos &= 0x3f;
2048 1.99 dyoung mfilt[pos / 32] |= (1 << (pos % 32));
2049 1.99 dyoung
2050 1.99 dyoung ETHER_NEXT_MULTI(estep, enm);
2051 1.62 dyoung }
2052 1.127 msaitoh ETHER_UNLOCK(ec);
2053 1.99 dyoung
2054 1.1 dyoung ath_hal_setmcastfilter(ah, mfilt[0], mfilt[1]);
2055 1.47 dyoung DPRINTF(sc, ATH_DEBUG_MODE, "%s: RX filter 0x%x, MC filter %08x:%08x\n",
2056 1.47 dyoung __func__, rfilt, mfilt[0], mfilt[1]);
2057 1.1 dyoung }
2058 1.1 dyoung
2059 1.47 dyoung /*
2060 1.47 dyoung * Set the slot time based on the current setting.
2061 1.47 dyoung */
2062 1.1 dyoung static void
2063 1.47 dyoung ath_setslottime(struct ath_softc *sc)
2064 1.1 dyoung {
2065 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
2066 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
2067 1.1 dyoung
2068 1.47 dyoung if (ic->ic_flags & IEEE80211_F_SHSLOT)
2069 1.47 dyoung ath_hal_setslottime(ah, HAL_SLOT_TIME_9);
2070 1.47 dyoung else
2071 1.47 dyoung ath_hal_setslottime(ah, HAL_SLOT_TIME_20);
2072 1.47 dyoung sc->sc_updateslot = OK;
2073 1.1 dyoung }
2074 1.2 dyoung
2075 1.47 dyoung /*
2076 1.47 dyoung * Callback from the 802.11 layer to update the
2077 1.47 dyoung * slot time based on the current setting.
2078 1.47 dyoung */
2079 1.47 dyoung static void
2080 1.47 dyoung ath_updateslot(struct ifnet *ifp)
2081 1.2 dyoung {
2082 1.47 dyoung struct ath_softc *sc = ifp->if_softc;
2083 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
2084 1.2 dyoung
2085 1.47 dyoung /*
2086 1.47 dyoung * When not coordinating the BSS, change the hardware
2087 1.47 dyoung * immediately. For other operation we defer the change
2088 1.47 dyoung * until beacon updates have propagated to the stations.
2089 1.47 dyoung */
2090 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_HOSTAP)
2091 1.47 dyoung sc->sc_updateslot = UPDATE;
2092 1.2 dyoung else
2093 1.47 dyoung ath_setslottime(sc);
2094 1.47 dyoung }
2095 1.47 dyoung
2096 1.47 dyoung /*
2097 1.47 dyoung * Setup a h/w transmit queue for beacons.
2098 1.47 dyoung */
2099 1.47 dyoung static int
2100 1.47 dyoung ath_beaconq_setup(struct ath_hal *ah)
2101 1.47 dyoung {
2102 1.47 dyoung HAL_TXQ_INFO qi;
2103 1.47 dyoung
2104 1.47 dyoung memset(&qi, 0, sizeof(qi));
2105 1.47 dyoung qi.tqi_aifs = HAL_TXQ_USEDEFAULT;
2106 1.47 dyoung qi.tqi_cwmin = HAL_TXQ_USEDEFAULT;
2107 1.47 dyoung qi.tqi_cwmax = HAL_TXQ_USEDEFAULT;
2108 1.55 dyoung /* NB: for dynamic turbo, don't enable any other interrupts */
2109 1.70 gdamore qi.tqi_qflags = HAL_TXQ_TXDESCINT_ENABLE;
2110 1.47 dyoung return ath_hal_setuptxqueue(ah, HAL_TX_QUEUE_BEACON, &qi);
2111 1.2 dyoung }
2112 1.1 dyoung
2113 1.47 dyoung /*
2114 1.55 dyoung * Setup the transmit queue parameters for the beacon queue.
2115 1.55 dyoung */
2116 1.55 dyoung static int
2117 1.55 dyoung ath_beaconq_config(struct ath_softc *sc)
2118 1.55 dyoung {
2119 1.55 dyoung #define ATH_EXPONENT_TO_VALUE(v) ((1<<(v))-1)
2120 1.55 dyoung struct ieee80211com *ic = &sc->sc_ic;
2121 1.55 dyoung struct ath_hal *ah = sc->sc_ah;
2122 1.55 dyoung HAL_TXQ_INFO qi;
2123 1.55 dyoung
2124 1.55 dyoung ath_hal_gettxqueueprops(ah, sc->sc_bhalq, &qi);
2125 1.55 dyoung if (ic->ic_opmode == IEEE80211_M_HOSTAP) {
2126 1.55 dyoung /*
2127 1.55 dyoung * Always burst out beacon and CAB traffic.
2128 1.55 dyoung */
2129 1.55 dyoung qi.tqi_aifs = ATH_BEACON_AIFS_DEFAULT;
2130 1.55 dyoung qi.tqi_cwmin = ATH_BEACON_CWMIN_DEFAULT;
2131 1.55 dyoung qi.tqi_cwmax = ATH_BEACON_CWMAX_DEFAULT;
2132 1.55 dyoung } else {
2133 1.55 dyoung struct wmeParams *wmep =
2134 1.55 dyoung &ic->ic_wme.wme_chanParams.cap_wmeParams[WME_AC_BE];
2135 1.55 dyoung /*
2136 1.55 dyoung * Adhoc mode; important thing is to use 2x cwmin.
2137 1.55 dyoung */
2138 1.55 dyoung qi.tqi_aifs = wmep->wmep_aifsn;
2139 1.55 dyoung qi.tqi_cwmin = 2*ATH_EXPONENT_TO_VALUE(wmep->wmep_logcwmin);
2140 1.55 dyoung qi.tqi_cwmax = ATH_EXPONENT_TO_VALUE(wmep->wmep_logcwmax);
2141 1.55 dyoung }
2142 1.55 dyoung
2143 1.55 dyoung if (!ath_hal_settxqueueprops(ah, sc->sc_bhalq, &qi)) {
2144 1.102 joerg device_printf(sc->sc_dev, "unable to update parameters for "
2145 1.55 dyoung "beacon hardware queue!\n");
2146 1.55 dyoung return 0;
2147 1.55 dyoung } else {
2148 1.55 dyoung ath_hal_resettxqueue(ah, sc->sc_bhalq); /* push to h/w */
2149 1.55 dyoung return 1;
2150 1.55 dyoung }
2151 1.55 dyoung #undef ATH_EXPONENT_TO_VALUE
2152 1.55 dyoung }
2153 1.55 dyoung
2154 1.55 dyoung /*
2155 1.47 dyoung * Allocate and setup an initial beacon frame.
2156 1.47 dyoung */
2157 1.1 dyoung static int
2158 1.1 dyoung ath_beacon_alloc(struct ath_softc *sc, struct ieee80211_node *ni)
2159 1.1 dyoung {
2160 1.47 dyoung struct ieee80211com *ic = ni->ni_ic;
2161 1.1 dyoung struct ath_buf *bf;
2162 1.1 dyoung struct mbuf *m;
2163 1.47 dyoung int error;
2164 1.1 dyoung
2165 1.47 dyoung bf = STAILQ_FIRST(&sc->sc_bbuf);
2166 1.47 dyoung if (bf == NULL) {
2167 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON, "%s: no dma buffers\n", __func__);
2168 1.47 dyoung sc->sc_stats.ast_be_nombuf++; /* XXX */
2169 1.47 dyoung return ENOMEM; /* XXX */
2170 1.1 dyoung }
2171 1.1 dyoung /*
2172 1.1 dyoung * NB: the beacon data buffer must be 32-bit aligned;
2173 1.1 dyoung * we assume the mbuf routines will return us something
2174 1.1 dyoung * with this alignment (perhaps should assert).
2175 1.1 dyoung */
2176 1.47 dyoung m = ieee80211_beacon_alloc(ic, ni, &sc->sc_boff);
2177 1.1 dyoung if (m == NULL) {
2178 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON, "%s: cannot get mbuf\n",
2179 1.47 dyoung __func__);
2180 1.1 dyoung sc->sc_stats.ast_be_nombuf++;
2181 1.1 dyoung return ENOMEM;
2182 1.1 dyoung }
2183 1.47 dyoung error = bus_dmamap_load_mbuf(sc->sc_dmat, bf->bf_dmamap, m,
2184 1.47 dyoung BUS_DMA_NOWAIT);
2185 1.47 dyoung if (error == 0) {
2186 1.47 dyoung bf->bf_m = m;
2187 1.47 dyoung bf->bf_node = ieee80211_ref_node(ni);
2188 1.1 dyoung } else {
2189 1.1 dyoung m_freem(m);
2190 1.1 dyoung }
2191 1.47 dyoung return error;
2192 1.47 dyoung }
2193 1.47 dyoung
2194 1.47 dyoung /*
2195 1.47 dyoung * Setup the beacon frame for transmit.
2196 1.47 dyoung */
2197 1.47 dyoung static void
2198 1.47 dyoung ath_beacon_setup(struct ath_softc *sc, struct ath_buf *bf)
2199 1.47 dyoung {
2200 1.47 dyoung #define USE_SHPREAMBLE(_ic) \
2201 1.47 dyoung (((_ic)->ic_flags & (IEEE80211_F_SHPREAMBLE | IEEE80211_F_USEBARKER))\
2202 1.47 dyoung == IEEE80211_F_SHPREAMBLE)
2203 1.47 dyoung struct ieee80211_node *ni = bf->bf_node;
2204 1.47 dyoung struct ieee80211com *ic = ni->ni_ic;
2205 1.47 dyoung struct mbuf *m = bf->bf_m;
2206 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
2207 1.47 dyoung struct ath_desc *ds;
2208 1.47 dyoung int flags, antenna;
2209 1.68 dyoung const HAL_RATE_TABLE *rt;
2210 1.68 dyoung u_int8_t rix, rate;
2211 1.47 dyoung
2212 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON, "%s: m %p len %u\n",
2213 1.47 dyoung __func__, m, m->m_len);
2214 1.1 dyoung
2215 1.1 dyoung /* setup descriptors */
2216 1.1 dyoung ds = bf->bf_desc;
2217 1.1 dyoung
2218 1.47 dyoung flags = HAL_TXDESC_NOACK;
2219 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_IBSS && sc->sc_hasveol) {
2220 1.74 gdamore ds->ds_link = HTOAH32(bf->bf_daddr); /* self-linked */
2221 1.47 dyoung flags |= HAL_TXDESC_VEOL;
2222 1.47 dyoung /*
2223 1.57 dyoung * Let hardware handle antenna switching unless
2224 1.57 dyoung * the user has selected a transmit antenna
2225 1.57 dyoung * (sc_txantenna is not 0).
2226 1.47 dyoung */
2227 1.57 dyoung antenna = sc->sc_txantenna;
2228 1.47 dyoung } else {
2229 1.36 dyoung ds->ds_link = 0;
2230 1.47 dyoung /*
2231 1.57 dyoung * Switch antenna every 4 beacons, unless the user
2232 1.57 dyoung * has selected a transmit antenna (sc_txantenna
2233 1.57 dyoung * is not 0).
2234 1.57 dyoung *
2235 1.47 dyoung * XXX assumes two antenna
2236 1.47 dyoung */
2237 1.57 dyoung if (sc->sc_txantenna == 0)
2238 1.57 dyoung antenna = (sc->sc_stats.ast_be_xmit & 4 ? 2 : 1);
2239 1.57 dyoung else
2240 1.57 dyoung antenna = sc->sc_txantenna;
2241 1.47 dyoung }
2242 1.47 dyoung
2243 1.114 dyoung KASSERTMSG(bf->bf_nseg == 1,
2244 1.114 dyoung "multi-segment beacon frame; nseg %u", bf->bf_nseg);
2245 1.1 dyoung ds->ds_data = bf->bf_segs[0].ds_addr;
2246 1.1 dyoung /*
2247 1.1 dyoung * Calculate rate code.
2248 1.1 dyoung * XXX everything at min xmit rate
2249 1.1 dyoung */
2250 1.68 dyoung rix = sc->sc_minrateix;
2251 1.68 dyoung rt = sc->sc_currates;
2252 1.68 dyoung rate = rt->info[rix].rateCode;
2253 1.47 dyoung if (USE_SHPREAMBLE(ic))
2254 1.68 dyoung rate |= rt->info[rix].shortPreamble;
2255 1.47 dyoung ath_hal_setuptxdesc(ah, ds
2256 1.47 dyoung , m->m_len + IEEE80211_CRC_LEN /* frame length */
2257 1.47 dyoung , sizeof(struct ieee80211_frame)/* header length */
2258 1.1 dyoung , HAL_PKT_TYPE_BEACON /* Atheros packet type */
2259 1.47 dyoung , ni->ni_txpower /* txpower XXX */
2260 1.1 dyoung , rate, 1 /* series 0 rate/tries */
2261 1.1 dyoung , HAL_TXKEYIX_INVALID /* no encryption */
2262 1.47 dyoung , antenna /* antenna mode */
2263 1.47 dyoung , flags /* no ack, veol for beacons */
2264 1.1 dyoung , 0 /* rts/cts rate */
2265 1.1 dyoung , 0 /* rts/cts duration */
2266 1.47 dyoung );
2267 1.1 dyoung /* NB: beacon's BufLen must be a multiple of 4 bytes */
2268 1.47 dyoung ath_hal_filltxdesc(ah, ds
2269 1.47 dyoung , roundup(m->m_len, 4) /* buffer length */
2270 1.47 dyoung , AH_TRUE /* first segment */
2271 1.47 dyoung , AH_TRUE /* last segment */
2272 1.47 dyoung , ds /* first descriptor */
2273 1.47 dyoung );
2274 1.74 gdamore
2275 1.104 alc /* NB: The desc swap function becomes void, if descriptor swapping
2276 1.104 alc * is not enabled
2277 1.74 gdamore */
2278 1.74 gdamore ath_desc_swap(ds);
2279 1.74 gdamore
2280 1.47 dyoung #undef USE_SHPREAMBLE
2281 1.1 dyoung }
2282 1.1 dyoung
2283 1.47 dyoung /*
2284 1.47 dyoung * Transmit a beacon frame at SWBA. Dynamic updates to the
2285 1.47 dyoung * frame contents are done as needed and the slot time is
2286 1.47 dyoung * also adjusted based on current state.
2287 1.47 dyoung */
2288 1.1 dyoung static void
2289 1.47 dyoung ath_beacon_proc(void *arg, int pending)
2290 1.1 dyoung {
2291 1.47 dyoung struct ath_softc *sc = arg;
2292 1.47 dyoung struct ath_buf *bf = STAILQ_FIRST(&sc->sc_bbuf);
2293 1.47 dyoung struct ieee80211_node *ni = bf->bf_node;
2294 1.47 dyoung struct ieee80211com *ic = ni->ni_ic;
2295 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
2296 1.47 dyoung struct mbuf *m;
2297 1.47 dyoung int ncabq, error, otherant;
2298 1.47 dyoung
2299 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON_PROC, "%s: pending %u\n",
2300 1.47 dyoung __func__, pending);
2301 1.1 dyoung
2302 1.1 dyoung if (ic->ic_opmode == IEEE80211_M_STA ||
2303 1.47 dyoung ic->ic_opmode == IEEE80211_M_MONITOR ||
2304 1.1 dyoung bf == NULL || bf->bf_m == NULL) {
2305 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: ic_flags=%x bf=%p bf_m=%p\n",
2306 1.47 dyoung __func__, ic->ic_flags, bf, bf ? bf->bf_m : NULL);
2307 1.47 dyoung return;
2308 1.47 dyoung }
2309 1.47 dyoung /*
2310 1.47 dyoung * Check if the previous beacon has gone out. If
2311 1.68 dyoung * not don't try to post another, skip this period
2312 1.68 dyoung * and wait for the next. Missed beacons indicate
2313 1.68 dyoung * a problem and should not occur. If we miss too
2314 1.68 dyoung * many consecutive beacons reset the device.
2315 1.47 dyoung */
2316 1.47 dyoung if (ath_hal_numtxpending(ah, sc->sc_bhalq) != 0) {
2317 1.47 dyoung sc->sc_bmisscount++;
2318 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON_PROC,
2319 1.47 dyoung "%s: missed %u consecutive beacons\n",
2320 1.47 dyoung __func__, sc->sc_bmisscount);
2321 1.47 dyoung if (sc->sc_bmisscount > 3) /* NB: 3 is a guess */
2322 1.47 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_bstucktask);
2323 1.1 dyoung return;
2324 1.1 dyoung }
2325 1.47 dyoung if (sc->sc_bmisscount != 0) {
2326 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON,
2327 1.47 dyoung "%s: resume beacon xmit after %u misses\n",
2328 1.47 dyoung __func__, sc->sc_bmisscount);
2329 1.47 dyoung sc->sc_bmisscount = 0;
2330 1.47 dyoung }
2331 1.47 dyoung
2332 1.47 dyoung /*
2333 1.47 dyoung * Update dynamic beacon contents. If this returns
2334 1.47 dyoung * non-zero then we need to remap the memory because
2335 1.47 dyoung * the beacon frame changed size (probably because
2336 1.47 dyoung * of the TIM bitmap).
2337 1.47 dyoung */
2338 1.47 dyoung m = bf->bf_m;
2339 1.47 dyoung ncabq = ath_hal_numtxpending(ah, sc->sc_cabq->axq_qnum);
2340 1.47 dyoung if (ieee80211_beacon_update(ic, bf->bf_node, &sc->sc_boff, m, ncabq)) {
2341 1.47 dyoung /* XXX too conservative? */
2342 1.47 dyoung bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap);
2343 1.47 dyoung error = bus_dmamap_load_mbuf(sc->sc_dmat, bf->bf_dmamap, m,
2344 1.47 dyoung BUS_DMA_NOWAIT);
2345 1.47 dyoung if (error != 0) {
2346 1.47 dyoung if_printf(&sc->sc_if,
2347 1.47 dyoung "%s: bus_dmamap_load_mbuf failed, error %u\n",
2348 1.47 dyoung __func__, error);
2349 1.47 dyoung return;
2350 1.47 dyoung }
2351 1.47 dyoung }
2352 1.47 dyoung
2353 1.47 dyoung /*
2354 1.47 dyoung * Handle slot time change when a non-ERP station joins/leaves
2355 1.47 dyoung * an 11g network. The 802.11 layer notifies us via callback,
2356 1.47 dyoung * we mark updateslot, then wait one beacon before effecting
2357 1.47 dyoung * the change. This gives associated stations at least one
2358 1.47 dyoung * beacon interval to note the state change.
2359 1.47 dyoung */
2360 1.47 dyoung /* XXX locking */
2361 1.47 dyoung if (sc->sc_updateslot == UPDATE)
2362 1.47 dyoung sc->sc_updateslot = COMMIT; /* commit next beacon */
2363 1.47 dyoung else if (sc->sc_updateslot == COMMIT)
2364 1.47 dyoung ath_setslottime(sc); /* commit change to h/w */
2365 1.47 dyoung
2366 1.47 dyoung /*
2367 1.47 dyoung * Check recent per-antenna transmit statistics and flip
2368 1.47 dyoung * the default antenna if noticeably more frames went out
2369 1.47 dyoung * on the non-default antenna.
2370 1.47 dyoung * XXX assumes 2 anntenae
2371 1.47 dyoung */
2372 1.47 dyoung otherant = sc->sc_defant & 1 ? 2 : 1;
2373 1.47 dyoung if (sc->sc_ant_tx[otherant] > sc->sc_ant_tx[sc->sc_defant] + 2)
2374 1.47 dyoung ath_setdefantenna(sc, otherant);
2375 1.47 dyoung sc->sc_ant_tx[1] = sc->sc_ant_tx[2] = 0;
2376 1.47 dyoung
2377 1.47 dyoung /*
2378 1.47 dyoung * Construct tx descriptor.
2379 1.47 dyoung */
2380 1.47 dyoung ath_beacon_setup(sc, bf);
2381 1.47 dyoung
2382 1.47 dyoung /*
2383 1.47 dyoung * Stop any current dma and put the new frame on the queue.
2384 1.47 dyoung * This should never fail since we check above that no frames
2385 1.47 dyoung * are still pending on the queue.
2386 1.47 dyoung */
2387 1.1 dyoung if (!ath_hal_stoptxdma(ah, sc->sc_bhalq)) {
2388 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY,
2389 1.47 dyoung "%s: beacon queue %u did not stop?\n",
2390 1.47 dyoung __func__, sc->sc_bhalq);
2391 1.1 dyoung }
2392 1.47 dyoung bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, 0,
2393 1.47 dyoung bf->bf_dmamap->dm_mapsize, BUS_DMASYNC_PREWRITE);
2394 1.1 dyoung
2395 1.47 dyoung /*
2396 1.47 dyoung * Enable the CAB queue before the beacon queue to
2397 1.47 dyoung * insure cab frames are triggered by this beacon.
2398 1.47 dyoung */
2399 1.68 dyoung if (ncabq != 0 && (sc->sc_boff.bo_tim[4] & 1)) /* NB: only at DTIM */
2400 1.47 dyoung ath_hal_txstart(ah, sc->sc_cabq->axq_qnum);
2401 1.1 dyoung ath_hal_puttxbuf(ah, sc->sc_bhalq, bf->bf_daddr);
2402 1.1 dyoung ath_hal_txstart(ah, sc->sc_bhalq);
2403 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON_PROC,
2404 1.75 gdamore "%s: TXDP[%u] = %" PRIx64 " (%p)\n", __func__,
2405 1.75 gdamore sc->sc_bhalq, (uint64_t)bf->bf_daddr, bf->bf_desc);
2406 1.47 dyoung
2407 1.47 dyoung sc->sc_stats.ast_be_xmit++;
2408 1.47 dyoung }
2409 1.47 dyoung
2410 1.47 dyoung /*
2411 1.47 dyoung * Reset the hardware after detecting beacons have stopped.
2412 1.47 dyoung */
2413 1.47 dyoung static void
2414 1.79 christos ath_bstuck_proc(void *arg, int pending)
2415 1.47 dyoung {
2416 1.47 dyoung struct ath_softc *sc = arg;
2417 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
2418 1.123 nonaka #ifdef __NetBSD__
2419 1.123 nonaka int s;
2420 1.123 nonaka #endif
2421 1.47 dyoung
2422 1.47 dyoung if_printf(ifp, "stuck beacon; resetting (bmiss count %u)\n",
2423 1.47 dyoung sc->sc_bmisscount);
2424 1.123 nonaka #ifdef __NetBSD__
2425 1.123 nonaka s = splnet();
2426 1.123 nonaka #endif
2427 1.47 dyoung ath_reset(ifp);
2428 1.123 nonaka #ifdef __NetBSD__
2429 1.123 nonaka splx(s);
2430 1.123 nonaka #endif
2431 1.1 dyoung }
2432 1.1 dyoung
2433 1.47 dyoung /*
2434 1.47 dyoung * Reclaim beacon resources.
2435 1.47 dyoung */
2436 1.1 dyoung static void
2437 1.1 dyoung ath_beacon_free(struct ath_softc *sc)
2438 1.1 dyoung {
2439 1.47 dyoung struct ath_buf *bf;
2440 1.1 dyoung
2441 1.47 dyoung STAILQ_FOREACH(bf, &sc->sc_bbuf, bf_list) {
2442 1.47 dyoung if (bf->bf_m != NULL) {
2443 1.47 dyoung bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap);
2444 1.47 dyoung m_freem(bf->bf_m);
2445 1.47 dyoung bf->bf_m = NULL;
2446 1.47 dyoung }
2447 1.47 dyoung if (bf->bf_node != NULL) {
2448 1.47 dyoung ieee80211_free_node(bf->bf_node);
2449 1.47 dyoung bf->bf_node = NULL;
2450 1.47 dyoung }
2451 1.1 dyoung }
2452 1.1 dyoung }
2453 1.1 dyoung
2454 1.1 dyoung /*
2455 1.1 dyoung * Configure the beacon and sleep timers.
2456 1.1 dyoung *
2457 1.1 dyoung * When operating as an AP this resets the TSF and sets
2458 1.1 dyoung * up the hardware to notify us when we need to issue beacons.
2459 1.1 dyoung *
2460 1.1 dyoung * When operating in station mode this sets up the beacon
2461 1.1 dyoung * timers according to the timestamp of the last received
2462 1.1 dyoung * beacon and the current TSF, configures PCF and DTIM
2463 1.1 dyoung * handling, programs the sleep registers so the hardware
2464 1.1 dyoung * will wakeup in time to receive beacons, and configures
2465 1.1 dyoung * the beacon miss handling so we'll receive a BMISS
2466 1.1 dyoung * interrupt when we stop seeing beacons from the AP
2467 1.1 dyoung * we've associated with.
2468 1.1 dyoung */
2469 1.1 dyoung static void
2470 1.1 dyoung ath_beacon_config(struct ath_softc *sc)
2471 1.1 dyoung {
2472 1.68 dyoung #define TSF_TO_TU(_h,_l) \
2473 1.68 dyoung ((((u_int32_t)(_h)) << 22) | (((u_int32_t)(_l)) >> 10))
2474 1.68 dyoung #define FUDGE 2
2475 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
2476 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
2477 1.1 dyoung struct ieee80211_node *ni = ic->ic_bss;
2478 1.68 dyoung u_int32_t nexttbtt, intval, tsftu;
2479 1.68 dyoung u_int64_t tsf;
2480 1.1 dyoung
2481 1.55 dyoung /* extract tstamp from last beacon and convert to TU */
2482 1.55 dyoung nexttbtt = TSF_TO_TU(LE_READ_4(ni->ni_tstamp.data + 4),
2483 1.55 dyoung LE_READ_4(ni->ni_tstamp.data));
2484 1.55 dyoung /* NB: the beacon interval is kept internally in TU's */
2485 1.31 dyoung intval = ni->ni_intval & HAL_BEACON_PERIOD;
2486 1.47 dyoung if (nexttbtt == 0) /* e.g. for ap mode */
2487 1.47 dyoung nexttbtt = intval;
2488 1.47 dyoung else if (intval) /* NB: can be 0 for monitor mode */
2489 1.47 dyoung nexttbtt = roundup(nexttbtt, intval);
2490 1.47 dyoung DPRINTF(sc, ATH_DEBUG_BEACON, "%s: nexttbtt %u intval %u (%u)\n",
2491 1.47 dyoung __func__, nexttbtt, intval, ni->ni_intval);
2492 1.1 dyoung if (ic->ic_opmode == IEEE80211_M_STA) {
2493 1.1 dyoung HAL_BEACON_STATE bs;
2494 1.55 dyoung int dtimperiod, dtimcount;
2495 1.55 dyoung int cfpperiod, cfpcount;
2496 1.55 dyoung
2497 1.55 dyoung /*
2498 1.55 dyoung * Setup dtim and cfp parameters according to
2499 1.55 dyoung * last beacon we received (which may be none).
2500 1.55 dyoung */
2501 1.55 dyoung dtimperiod = ni->ni_dtim_period;
2502 1.55 dyoung if (dtimperiod <= 0) /* NB: 0 if not known */
2503 1.55 dyoung dtimperiod = 1;
2504 1.55 dyoung dtimcount = ni->ni_dtim_count;
2505 1.55 dyoung if (dtimcount >= dtimperiod) /* NB: sanity check */
2506 1.55 dyoung dtimcount = 0; /* XXX? */
2507 1.55 dyoung cfpperiod = 1; /* NB: no PCF support yet */
2508 1.55 dyoung cfpcount = 0;
2509 1.55 dyoung /*
2510 1.55 dyoung * Pull nexttbtt forward to reflect the current
2511 1.55 dyoung * TSF and calculate dtim+cfp state for the result.
2512 1.55 dyoung */
2513 1.55 dyoung tsf = ath_hal_gettsf64(ah);
2514 1.68 dyoung tsftu = TSF_TO_TU(tsf>>32, tsf) + FUDGE;
2515 1.55 dyoung do {
2516 1.55 dyoung nexttbtt += intval;
2517 1.55 dyoung if (--dtimcount < 0) {
2518 1.55 dyoung dtimcount = dtimperiod - 1;
2519 1.55 dyoung if (--cfpcount < 0)
2520 1.55 dyoung cfpcount = cfpperiod - 1;
2521 1.55 dyoung }
2522 1.55 dyoung } while (nexttbtt < tsftu);
2523 1.1 dyoung memset(&bs, 0, sizeof(bs));
2524 1.47 dyoung bs.bs_intval = intval;
2525 1.1 dyoung bs.bs_nexttbtt = nexttbtt;
2526 1.55 dyoung bs.bs_dtimperiod = dtimperiod*intval;
2527 1.55 dyoung bs.bs_nextdtim = bs.bs_nexttbtt + dtimcount*intval;
2528 1.55 dyoung bs.bs_cfpperiod = cfpperiod*bs.bs_dtimperiod;
2529 1.55 dyoung bs.bs_cfpnext = bs.bs_nextdtim + cfpcount*bs.bs_dtimperiod;
2530 1.55 dyoung bs.bs_cfpmaxduration = 0;
2531 1.55 dyoung #if 0
2532 1.1 dyoung /*
2533 1.47 dyoung * The 802.11 layer records the offset to the DTIM
2534 1.47 dyoung * bitmap while receiving beacons; use it here to
2535 1.47 dyoung * enable h/w detection of our AID being marked in
2536 1.47 dyoung * the bitmap vector (to indicate frames for us are
2537 1.47 dyoung * pending at the AP).
2538 1.55 dyoung * XXX do DTIM handling in s/w to WAR old h/w bugs
2539 1.55 dyoung * XXX enable based on h/w rev for newer chips
2540 1.47 dyoung */
2541 1.47 dyoung bs.bs_timoffset = ni->ni_timoff;
2542 1.55 dyoung #endif
2543 1.47 dyoung /*
2544 1.1 dyoung * Calculate the number of consecutive beacons to miss
2545 1.1 dyoung * before taking a BMISS interrupt. The configuration
2546 1.1 dyoung * is specified in ms, so we need to convert that to
2547 1.1 dyoung * TU's and then calculate based on the beacon interval.
2548 1.1 dyoung * Note that we clamp the result to at most 10 beacons.
2549 1.1 dyoung */
2550 1.47 dyoung bs.bs_bmissthreshold = howmany(ic->ic_bmisstimeout, intval);
2551 1.1 dyoung if (bs.bs_bmissthreshold > 10)
2552 1.1 dyoung bs.bs_bmissthreshold = 10;
2553 1.1 dyoung else if (bs.bs_bmissthreshold <= 0)
2554 1.1 dyoung bs.bs_bmissthreshold = 1;
2555 1.1 dyoung
2556 1.1 dyoung /*
2557 1.1 dyoung * Calculate sleep duration. The configuration is
2558 1.1 dyoung * given in ms. We insure a multiple of the beacon
2559 1.1 dyoung * period is used. Also, if the sleep duration is
2560 1.1 dyoung * greater than the DTIM period then it makes senses
2561 1.1 dyoung * to make it a multiple of that.
2562 1.1 dyoung *
2563 1.1 dyoung * XXX fixed at 100ms
2564 1.1 dyoung */
2565 1.1 dyoung bs.bs_sleepduration =
2566 1.47 dyoung roundup(IEEE80211_MS_TO_TU(100), bs.bs_intval);
2567 1.1 dyoung if (bs.bs_sleepduration > bs.bs_dtimperiod)
2568 1.1 dyoung bs.bs_sleepduration = roundup(bs.bs_sleepduration, bs.bs_dtimperiod);
2569 1.1 dyoung
2570 1.73 blymn DPRINTF(sc, ATH_DEBUG_BEACON,
2571 1.55 dyoung "%s: tsf %ju tsf:tu %u intval %u nexttbtt %u dtim %u nextdtim %u bmiss %u sleep %u cfp:period %u maxdur %u next %u timoffset %u\n"
2572 1.1 dyoung , __func__
2573 1.55 dyoung , tsf, tsftu
2574 1.1 dyoung , bs.bs_intval
2575 1.1 dyoung , bs.bs_nexttbtt
2576 1.1 dyoung , bs.bs_dtimperiod
2577 1.1 dyoung , bs.bs_nextdtim
2578 1.1 dyoung , bs.bs_bmissthreshold
2579 1.1 dyoung , bs.bs_sleepduration
2580 1.47 dyoung , bs.bs_cfpperiod
2581 1.47 dyoung , bs.bs_cfpmaxduration
2582 1.47 dyoung , bs.bs_cfpnext
2583 1.47 dyoung , bs.bs_timoffset
2584 1.47 dyoung );
2585 1.1 dyoung ath_hal_intrset(ah, 0);
2586 1.47 dyoung ath_hal_beacontimers(ah, &bs);
2587 1.1 dyoung sc->sc_imask |= HAL_INT_BMISS;
2588 1.1 dyoung ath_hal_intrset(ah, sc->sc_imask);
2589 1.1 dyoung } else {
2590 1.36 dyoung ath_hal_intrset(ah, 0);
2591 1.47 dyoung if (nexttbtt == intval)
2592 1.47 dyoung intval |= HAL_BEACON_RESET_TSF;
2593 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_IBSS) {
2594 1.47 dyoung /*
2595 1.47 dyoung * In IBSS mode enable the beacon timers but only
2596 1.47 dyoung * enable SWBA interrupts if we need to manually
2597 1.47 dyoung * prepare beacon frames. Otherwise we use a
2598 1.47 dyoung * self-linked tx descriptor and let the hardware
2599 1.47 dyoung * deal with things.
2600 1.47 dyoung */
2601 1.47 dyoung intval |= HAL_BEACON_ENA;
2602 1.47 dyoung if (!sc->sc_hasveol)
2603 1.47 dyoung sc->sc_imask |= HAL_INT_SWBA;
2604 1.68 dyoung if ((intval & HAL_BEACON_RESET_TSF) == 0) {
2605 1.68 dyoung /*
2606 1.68 dyoung * Pull nexttbtt forward to reflect
2607 1.68 dyoung * the current TSF.
2608 1.68 dyoung */
2609 1.68 dyoung tsf = ath_hal_gettsf64(ah);
2610 1.68 dyoung tsftu = TSF_TO_TU(tsf>>32, tsf) + FUDGE;
2611 1.68 dyoung do {
2612 1.68 dyoung nexttbtt += intval;
2613 1.68 dyoung } while (nexttbtt < tsftu);
2614 1.68 dyoung }
2615 1.55 dyoung ath_beaconq_config(sc);
2616 1.47 dyoung } else if (ic->ic_opmode == IEEE80211_M_HOSTAP) {
2617 1.47 dyoung /*
2618 1.47 dyoung * In AP mode we enable the beacon timers and
2619 1.47 dyoung * SWBA interrupts to prepare beacon frames.
2620 1.47 dyoung */
2621 1.47 dyoung intval |= HAL_BEACON_ENA;
2622 1.47 dyoung sc->sc_imask |= HAL_INT_SWBA; /* beacon prepare */
2623 1.55 dyoung ath_beaconq_config(sc);
2624 1.36 dyoung }
2625 1.36 dyoung ath_hal_beaconinit(ah, nexttbtt, intval);
2626 1.47 dyoung sc->sc_bmisscount = 0;
2627 1.1 dyoung ath_hal_intrset(ah, sc->sc_imask);
2628 1.47 dyoung /*
2629 1.47 dyoung * When using a self-linked beacon descriptor in
2630 1.47 dyoung * ibss mode load it once here.
2631 1.47 dyoung */
2632 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_IBSS && sc->sc_hasveol)
2633 1.36 dyoung ath_beacon_proc(sc, 0);
2634 1.1 dyoung }
2635 1.68 dyoung sc->sc_syncbeacon = 0;
2636 1.68 dyoung #undef UNDEF
2637 1.55 dyoung #undef TSF_TO_TU
2638 1.1 dyoung }
2639 1.1 dyoung
2640 1.1 dyoung static int
2641 1.47 dyoung ath_descdma_setup(struct ath_softc *sc,
2642 1.47 dyoung struct ath_descdma *dd, ath_bufhead *head,
2643 1.47 dyoung const char *name, int nbuf, int ndesc)
2644 1.47 dyoung {
2645 1.47 dyoung #define DS2PHYS(_dd, _ds) \
2646 1.82 christos ((_dd)->dd_desc_paddr + ((char *)(_ds) - (char *)(_dd)->dd_desc))
2647 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
2648 1.1 dyoung struct ath_desc *ds;
2649 1.1 dyoung struct ath_buf *bf;
2650 1.47 dyoung int i, bsize, error;
2651 1.47 dyoung
2652 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RESET, "%s: %s DMA: %u buffers %u desc/buf\n",
2653 1.47 dyoung __func__, name, nbuf, ndesc);
2654 1.47 dyoung
2655 1.47 dyoung dd->dd_name = name;
2656 1.47 dyoung dd->dd_desc_len = sizeof(struct ath_desc) * nbuf * ndesc;
2657 1.1 dyoung
2658 1.47 dyoung /*
2659 1.47 dyoung * Setup DMA descriptor area.
2660 1.47 dyoung */
2661 1.47 dyoung dd->dd_dmat = sc->sc_dmat;
2662 1.1 dyoung
2663 1.47 dyoung error = bus_dmamem_alloc(dd->dd_dmat, dd->dd_desc_len, PAGE_SIZE,
2664 1.47 dyoung 0, &dd->dd_dseg, 1, &dd->dd_dnseg, 0);
2665 1.2 dyoung
2666 1.47 dyoung if (error != 0) {
2667 1.47 dyoung if_printf(ifp, "unable to alloc memory for %u %s descriptors, "
2668 1.47 dyoung "error %u\n", nbuf * ndesc, dd->dd_name, error);
2669 1.1 dyoung goto fail0;
2670 1.47 dyoung }
2671 1.1 dyoung
2672 1.47 dyoung error = bus_dmamem_map(dd->dd_dmat, &dd->dd_dseg, dd->dd_dnseg,
2673 1.82 christos dd->dd_desc_len, (void **)&dd->dd_desc, BUS_DMA_COHERENT);
2674 1.47 dyoung if (error != 0) {
2675 1.47 dyoung if_printf(ifp, "unable to map %u %s descriptors, error = %u\n",
2676 1.47 dyoung nbuf * ndesc, dd->dd_name, error);
2677 1.1 dyoung goto fail1;
2678 1.47 dyoung }
2679 1.1 dyoung
2680 1.47 dyoung /* allocate descriptors */
2681 1.47 dyoung error = bus_dmamap_create(dd->dd_dmat, dd->dd_desc_len, 1,
2682 1.47 dyoung dd->dd_desc_len, 0, BUS_DMA_NOWAIT, &dd->dd_dmamap);
2683 1.47 dyoung if (error != 0) {
2684 1.47 dyoung if_printf(ifp, "unable to create dmamap for %s descriptors, "
2685 1.47 dyoung "error %u\n", dd->dd_name, error);
2686 1.1 dyoung goto fail2;
2687 1.2 dyoung }
2688 1.1 dyoung
2689 1.47 dyoung error = bus_dmamap_load(dd->dd_dmat, dd->dd_dmamap, dd->dd_desc,
2690 1.47 dyoung dd->dd_desc_len, NULL, BUS_DMA_NOWAIT);
2691 1.47 dyoung if (error != 0) {
2692 1.47 dyoung if_printf(ifp, "unable to map %s descriptors, error %u\n",
2693 1.47 dyoung dd->dd_name, error);
2694 1.47 dyoung goto fail3;
2695 1.47 dyoung }
2696 1.47 dyoung
2697 1.47 dyoung ds = dd->dd_desc;
2698 1.47 dyoung dd->dd_desc_paddr = dd->dd_dmamap->dm_segs[0].ds_addr;
2699 1.75 gdamore DPRINTF(sc, ATH_DEBUG_RESET,
2700 1.75 gdamore "%s: %s DMA map: %p (%lu) -> %" PRIx64 " (%lu)\n",
2701 1.47 dyoung __func__, dd->dd_name, ds, (u_long) dd->dd_desc_len,
2702 1.75 gdamore (uint64_t) dd->dd_desc_paddr, /*XXX*/ (u_long) dd->dd_desc_len);
2703 1.47 dyoung
2704 1.47 dyoung /* allocate rx buffers */
2705 1.47 dyoung bsize = sizeof(struct ath_buf) * nbuf;
2706 1.128 chs bf = malloc(bsize, M_ATHDEV, M_WAITOK | M_ZERO);
2707 1.47 dyoung dd->dd_bufptr = bf;
2708 1.1 dyoung
2709 1.47 dyoung STAILQ_INIT(head);
2710 1.47 dyoung for (i = 0; i < nbuf; i++, bf++, ds += ndesc) {
2711 1.1 dyoung bf->bf_desc = ds;
2712 1.47 dyoung bf->bf_daddr = DS2PHYS(dd, ds);
2713 1.47 dyoung error = bus_dmamap_create(sc->sc_dmat, MCLBYTES, ndesc,
2714 1.47 dyoung MCLBYTES, 0, BUS_DMA_NOWAIT, &bf->bf_dmamap);
2715 1.47 dyoung if (error != 0) {
2716 1.47 dyoung if_printf(ifp, "unable to create dmamap for %s "
2717 1.47 dyoung "buffer %u, error %u\n", dd->dd_name, i, error);
2718 1.47 dyoung ath_descdma_cleanup(sc, dd, head);
2719 1.47 dyoung return error;
2720 1.47 dyoung }
2721 1.47 dyoung STAILQ_INSERT_TAIL(head, bf, bf_list);
2722 1.1 dyoung }
2723 1.1 dyoung return 0;
2724 1.47 dyoung fail3:
2725 1.47 dyoung bus_dmamap_destroy(dd->dd_dmat, dd->dd_dmamap);
2726 1.1 dyoung fail2:
2727 1.82 christos bus_dmamem_unmap(dd->dd_dmat, (void *)dd->dd_desc, dd->dd_desc_len);
2728 1.1 dyoung fail1:
2729 1.47 dyoung bus_dmamem_free(dd->dd_dmat, &dd->dd_dseg, dd->dd_dnseg);
2730 1.1 dyoung fail0:
2731 1.47 dyoung memset(dd, 0, sizeof(*dd));
2732 1.1 dyoung return error;
2733 1.47 dyoung #undef DS2PHYS
2734 1.1 dyoung }
2735 1.47 dyoung
2736 1.47 dyoung static void
2737 1.47 dyoung ath_descdma_cleanup(struct ath_softc *sc,
2738 1.47 dyoung struct ath_descdma *dd, ath_bufhead *head)
2739 1.2 dyoung {
2740 1.2 dyoung struct ath_buf *bf;
2741 1.47 dyoung struct ieee80211_node *ni;
2742 1.2 dyoung
2743 1.47 dyoung bus_dmamap_unload(dd->dd_dmat, dd->dd_dmamap);
2744 1.47 dyoung bus_dmamap_destroy(dd->dd_dmat, dd->dd_dmamap);
2745 1.82 christos bus_dmamem_unmap(dd->dd_dmat, (void *)dd->dd_desc, dd->dd_desc_len);
2746 1.47 dyoung bus_dmamem_free(dd->dd_dmat, &dd->dd_dseg, dd->dd_dnseg);
2747 1.2 dyoung
2748 1.47 dyoung STAILQ_FOREACH(bf, head, bf_list) {
2749 1.139 rin m_freem(bf->bf_m);
2750 1.139 rin bf->bf_m = NULL;
2751 1.47 dyoung if (bf->bf_dmamap != NULL) {
2752 1.47 dyoung bus_dmamap_destroy(sc->sc_dmat, bf->bf_dmamap);
2753 1.47 dyoung bf->bf_dmamap = NULL;
2754 1.47 dyoung }
2755 1.47 dyoung ni = bf->bf_node;
2756 1.47 dyoung bf->bf_node = NULL;
2757 1.47 dyoung if (ni != NULL) {
2758 1.47 dyoung /*
2759 1.47 dyoung * Reclaim node reference.
2760 1.47 dyoung */
2761 1.47 dyoung ieee80211_free_node(ni);
2762 1.47 dyoung }
2763 1.2 dyoung }
2764 1.2 dyoung
2765 1.47 dyoung STAILQ_INIT(head);
2766 1.47 dyoung free(dd->dd_bufptr, M_ATHDEV);
2767 1.47 dyoung memset(dd, 0, sizeof(*dd));
2768 1.47 dyoung }
2769 1.2 dyoung
2770 1.47 dyoung static int
2771 1.47 dyoung ath_desc_alloc(struct ath_softc *sc)
2772 1.47 dyoung {
2773 1.47 dyoung int error;
2774 1.2 dyoung
2775 1.47 dyoung error = ath_descdma_setup(sc, &sc->sc_rxdma, &sc->sc_rxbuf,
2776 1.68 dyoung "rx", ath_rxbuf, 1);
2777 1.47 dyoung if (error != 0)
2778 1.47 dyoung return error;
2779 1.2 dyoung
2780 1.47 dyoung error = ath_descdma_setup(sc, &sc->sc_txdma, &sc->sc_txbuf,
2781 1.68 dyoung "tx", ath_txbuf, ATH_TXDESC);
2782 1.47 dyoung if (error != 0) {
2783 1.47 dyoung ath_descdma_cleanup(sc, &sc->sc_rxdma, &sc->sc_rxbuf);
2784 1.47 dyoung return error;
2785 1.2 dyoung }
2786 1.2 dyoung
2787 1.47 dyoung error = ath_descdma_setup(sc, &sc->sc_bdma, &sc->sc_bbuf,
2788 1.47 dyoung "beacon", 1, 1);
2789 1.47 dyoung if (error != 0) {
2790 1.47 dyoung ath_descdma_cleanup(sc, &sc->sc_txdma, &sc->sc_txbuf);
2791 1.47 dyoung ath_descdma_cleanup(sc, &sc->sc_rxdma, &sc->sc_rxbuf);
2792 1.47 dyoung return error;
2793 1.2 dyoung }
2794 1.2 dyoung return 0;
2795 1.2 dyoung }
2796 1.1 dyoung
2797 1.1 dyoung static void
2798 1.1 dyoung ath_desc_free(struct ath_softc *sc)
2799 1.1 dyoung {
2800 1.1 dyoung
2801 1.47 dyoung if (sc->sc_bdma.dd_desc_len != 0)
2802 1.47 dyoung ath_descdma_cleanup(sc, &sc->sc_bdma, &sc->sc_bbuf);
2803 1.47 dyoung if (sc->sc_txdma.dd_desc_len != 0)
2804 1.47 dyoung ath_descdma_cleanup(sc, &sc->sc_txdma, &sc->sc_txbuf);
2805 1.47 dyoung if (sc->sc_rxdma.dd_desc_len != 0)
2806 1.47 dyoung ath_descdma_cleanup(sc, &sc->sc_rxdma, &sc->sc_rxbuf);
2807 1.1 dyoung }
2808 1.1 dyoung
2809 1.1 dyoung static struct ieee80211_node *
2810 1.47 dyoung ath_node_alloc(struct ieee80211_node_table *nt)
2811 1.1 dyoung {
2812 1.47 dyoung struct ieee80211com *ic = nt->nt_ic;
2813 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
2814 1.47 dyoung const size_t space = sizeof(struct ath_node) + sc->sc_rc->arc_space;
2815 1.47 dyoung struct ath_node *an;
2816 1.47 dyoung
2817 1.125 msaitoh an = malloc(space, M_80211_NODE, M_NOWAIT | M_ZERO);
2818 1.47 dyoung if (an == NULL) {
2819 1.47 dyoung /* XXX stat+msg */
2820 1.18 dyoung return NULL;
2821 1.47 dyoung }
2822 1.47 dyoung an->an_avgrssi = ATH_RSSI_DUMMY_MARKER;
2823 1.47 dyoung ath_rate_node_init(sc, an);
2824 1.47 dyoung
2825 1.47 dyoung DPRINTF(sc, ATH_DEBUG_NODE, "%s: an %p\n", __func__, an);
2826 1.47 dyoung return &an->an_node;
2827 1.1 dyoung }
2828 1.1 dyoung
2829 1.1 dyoung static void
2830 1.47 dyoung ath_node_free(struct ieee80211_node *ni)
2831 1.1 dyoung {
2832 1.47 dyoung struct ieee80211com *ic = ni->ni_ic;
2833 1.126 msaitoh struct ath_softc *sc = ic->ic_ifp->if_softc;
2834 1.1 dyoung
2835 1.47 dyoung DPRINTF(sc, ATH_DEBUG_NODE, "%s: ni %p\n", __func__, ni);
2836 1.25 dyoung
2837 1.47 dyoung ath_rate_node_cleanup(sc, ATH_NODE(ni));
2838 1.47 dyoung sc->sc_node_free(ni);
2839 1.1 dyoung }
2840 1.1 dyoung
2841 1.119 roy static u_int8_t
2842 1.47 dyoung ath_node_getrssi(const struct ieee80211_node *ni)
2843 1.18 dyoung {
2844 1.47 dyoung #define HAL_EP_RND(x, mul) \
2845 1.47 dyoung ((((x)%(mul)) >= ((mul)/2)) ? ((x) + ((mul) - 1)) / (mul) : (x)/(mul))
2846 1.47 dyoung u_int32_t avgrssi = ATH_NODE_CONST(ni)->an_avgrssi;
2847 1.47 dyoung int32_t rssi;
2848 1.18 dyoung
2849 1.18 dyoung /*
2850 1.47 dyoung * When only one frame is received there will be no state in
2851 1.47 dyoung * avgrssi so fallback on the value recorded by the 802.11 layer.
2852 1.18 dyoung */
2853 1.47 dyoung if (avgrssi != ATH_RSSI_DUMMY_MARKER)
2854 1.47 dyoung rssi = HAL_EP_RND(avgrssi, HAL_RSSI_EP_MULTIPLIER);
2855 1.47 dyoung else
2856 1.47 dyoung rssi = ni->ni_rssi;
2857 1.47 dyoung return rssi < 0 ? 0 : rssi > 127 ? 127 : rssi;
2858 1.47 dyoung #undef HAL_EP_RND
2859 1.18 dyoung }
2860 1.18 dyoung
2861 1.1 dyoung static int
2862 1.1 dyoung ath_rxbuf_init(struct ath_softc *sc, struct ath_buf *bf)
2863 1.1 dyoung {
2864 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
2865 1.1 dyoung int error;
2866 1.1 dyoung struct mbuf *m;
2867 1.1 dyoung struct ath_desc *ds;
2868 1.1 dyoung
2869 1.1 dyoung m = bf->bf_m;
2870 1.1 dyoung if (m == NULL) {
2871 1.1 dyoung /*
2872 1.1 dyoung * NB: by assigning a page to the rx dma buffer we
2873 1.1 dyoung * implicitly satisfy the Atheros requirement that
2874 1.1 dyoung * this buffer be cache-line-aligned and sized to be
2875 1.1 dyoung * multiple of the cache line size. Not doing this
2876 1.1 dyoung * causes weird stuff to happen (for the 5210 at least).
2877 1.1 dyoung */
2878 1.47 dyoung m = m_getcl(M_DONTWAIT, MT_DATA, M_PKTHDR);
2879 1.1 dyoung if (m == NULL) {
2880 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY,
2881 1.47 dyoung "%s: no mbuf/cluster\n", __func__);
2882 1.1 dyoung sc->sc_stats.ast_rx_nombuf++;
2883 1.1 dyoung return ENOMEM;
2884 1.1 dyoung }
2885 1.1 dyoung bf->bf_m = m;
2886 1.1 dyoung m->m_pkthdr.len = m->m_len = m->m_ext.ext_size;
2887 1.1 dyoung
2888 1.47 dyoung error = bus_dmamap_load_mbuf(sc->sc_dmat,
2889 1.47 dyoung bf->bf_dmamap, m,
2890 1.47 dyoung BUS_DMA_NOWAIT);
2891 1.1 dyoung if (error != 0) {
2892 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY,
2893 1.47 dyoung "%s: bus_dmamap_load_mbuf failed; error %d\n",
2894 1.47 dyoung __func__, error);
2895 1.1 dyoung sc->sc_stats.ast_rx_busdma++;
2896 1.1 dyoung return error;
2897 1.1 dyoung }
2898 1.114 dyoung KASSERTMSG(bf->bf_nseg == 1,
2899 1.114 dyoung "multi-segment packet; nseg %u", bf->bf_nseg);
2900 1.1 dyoung }
2901 1.47 dyoung bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, 0,
2902 1.47 dyoung bf->bf_dmamap->dm_mapsize, BUS_DMASYNC_PREREAD);
2903 1.1 dyoung
2904 1.18 dyoung /*
2905 1.18 dyoung * Setup descriptors. For receive we always terminate
2906 1.18 dyoung * the descriptor list with a self-linked entry so we'll
2907 1.18 dyoung * not get overrun under high load (as can happen with a
2908 1.47 dyoung * 5212 when ANI processing enables PHY error frames).
2909 1.18 dyoung *
2910 1.18 dyoung * To insure the last descriptor is self-linked we create
2911 1.18 dyoung * each descriptor as self-linked and add it to the end. As
2912 1.18 dyoung * each additional descriptor is added the previous self-linked
2913 1.18 dyoung * entry is ``fixed'' naturally. This should be safe even
2914 1.18 dyoung * if DMA is happening. When processing RX interrupts we
2915 1.18 dyoung * never remove/process the last, self-linked, entry on the
2916 1.18 dyoung * descriptor list. This insures the hardware always has
2917 1.18 dyoung * someplace to write a new frame.
2918 1.18 dyoung */
2919 1.1 dyoung ds = bf->bf_desc;
2920 1.74 gdamore ds->ds_link = HTOAH32(bf->bf_daddr); /* link to self */
2921 1.1 dyoung ds->ds_data = bf->bf_segs[0].ds_addr;
2922 1.104 alc /* ds->ds_vdata = mtod(m, void *); for radar */
2923 1.1 dyoung ath_hal_setuprxdesc(ah, ds
2924 1.1 dyoung , m->m_len /* buffer size */
2925 1.1 dyoung , 0
2926 1.1 dyoung );
2927 1.1 dyoung
2928 1.1 dyoung if (sc->sc_rxlink != NULL)
2929 1.1 dyoung *sc->sc_rxlink = bf->bf_daddr;
2930 1.1 dyoung sc->sc_rxlink = &ds->ds_link;
2931 1.1 dyoung return 0;
2932 1.1 dyoung }
2933 1.1 dyoung
2934 1.47 dyoung /*
2935 1.47 dyoung * Extend 15-bit time stamp from rx descriptor to
2936 1.68 dyoung * a full 64-bit TSF using the specified TSF.
2937 1.47 dyoung */
2938 1.66 perry static inline u_int64_t
2939 1.68 dyoung ath_extend_tsf(u_int32_t rstamp, u_int64_t tsf)
2940 1.47 dyoung {
2941 1.47 dyoung if ((tsf & 0x7fff) < rstamp)
2942 1.47 dyoung tsf -= 0x8000;
2943 1.47 dyoung return ((tsf &~ 0x7fff) | rstamp);
2944 1.47 dyoung }
2945 1.47 dyoung
2946 1.47 dyoung /*
2947 1.47 dyoung * Intercept management frames to collect beacon rssi data
2948 1.47 dyoung * and to do ibss merges.
2949 1.47 dyoung */
2950 1.47 dyoung static void
2951 1.47 dyoung ath_recv_mgmt(struct ieee80211com *ic, struct mbuf *m,
2952 1.47 dyoung struct ieee80211_node *ni,
2953 1.47 dyoung int subtype, int rssi, u_int32_t rstamp)
2954 1.47 dyoung {
2955 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
2956 1.47 dyoung
2957 1.47 dyoung /*
2958 1.47 dyoung * Call up first so subsequent work can use information
2959 1.47 dyoung * potentially stored in the node (e.g. for ibss merge).
2960 1.47 dyoung */
2961 1.47 dyoung sc->sc_recv_mgmt(ic, m, ni, subtype, rssi, rstamp);
2962 1.47 dyoung switch (subtype) {
2963 1.47 dyoung case IEEE80211_FC0_SUBTYPE_BEACON:
2964 1.47 dyoung /* update rssi statistics for use by the hal */
2965 1.68 dyoung ATH_RSSI_LPF(sc->sc_halstats.ns_avgbrssi, rssi);
2966 1.68 dyoung if (sc->sc_syncbeacon &&
2967 1.68 dyoung ni == ic->ic_bss && ic->ic_state == IEEE80211_S_RUN) {
2968 1.68 dyoung /*
2969 1.68 dyoung * Resync beacon timers using the tsf of the beacon
2970 1.68 dyoung * frame we just received.
2971 1.68 dyoung */
2972 1.68 dyoung ath_beacon_config(sc);
2973 1.68 dyoung }
2974 1.47 dyoung /* fall thru... */
2975 1.47 dyoung case IEEE80211_FC0_SUBTYPE_PROBE_RESP:
2976 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_IBSS &&
2977 1.47 dyoung ic->ic_state == IEEE80211_S_RUN) {
2978 1.68 dyoung u_int64_t tsf = ath_extend_tsf(rstamp,
2979 1.68 dyoung ath_hal_gettsf64(sc->sc_ah));
2980 1.47 dyoung
2981 1.47 dyoung /*
2982 1.47 dyoung * Handle ibss merge as needed; check the tsf on the
2983 1.47 dyoung * frame before attempting the merge. The 802.11 spec
2984 1.117 snj * says the station should change its bssid to match
2985 1.47 dyoung * the oldest station with the same ssid, where oldest
2986 1.47 dyoung * is determined by the tsf. Note that hardware
2987 1.47 dyoung * reconfiguration happens through callback to
2988 1.47 dyoung * ath_newstate as the state machine will go from
2989 1.47 dyoung * RUN -> RUN when this happens.
2990 1.47 dyoung */
2991 1.47 dyoung if (le64toh(ni->ni_tstamp.tsf) >= tsf) {
2992 1.47 dyoung DPRINTF(sc, ATH_DEBUG_STATE,
2993 1.47 dyoung "ibss merge, rstamp %u tsf %ju "
2994 1.47 dyoung "tstamp %ju\n", rstamp, (uintmax_t)tsf,
2995 1.47 dyoung (uintmax_t)ni->ni_tstamp.tsf);
2996 1.61 skrll (void) ieee80211_ibss_merge(ni);
2997 1.50 dyoung }
2998 1.47 dyoung }
2999 1.47 dyoung break;
3000 1.47 dyoung }
3001 1.47 dyoung }
3002 1.47 dyoung
3003 1.47 dyoung /*
3004 1.47 dyoung * Set the default antenna.
3005 1.47 dyoung */
3006 1.47 dyoung static void
3007 1.47 dyoung ath_setdefantenna(struct ath_softc *sc, u_int antenna)
3008 1.47 dyoung {
3009 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
3010 1.47 dyoung
3011 1.47 dyoung /* XXX block beacon interrupts */
3012 1.47 dyoung ath_hal_setdefantenna(ah, antenna);
3013 1.47 dyoung if (sc->sc_defant != antenna)
3014 1.47 dyoung sc->sc_stats.ast_ant_defswitch++;
3015 1.47 dyoung sc->sc_defant = antenna;
3016 1.47 dyoung sc->sc_rxotherant = 0;
3017 1.47 dyoung }
3018 1.47 dyoung
3019 1.1 dyoung static void
3020 1.104 alc ath_handle_micerror(struct ieee80211com *ic,
3021 1.104 alc struct ieee80211_frame *wh, int keyix)
3022 1.104 alc {
3023 1.104 alc struct ieee80211_node *ni;
3024 1.104 alc
3025 1.104 alc /* XXX recheck MIC to deal w/ chips that lie */
3026 1.104 alc /* XXX discard MIC errors on !data frames */
3027 1.104 alc ni = ieee80211_find_rxnode_withkey(ic, (const struct ieee80211_frame_min *) wh, keyix);
3028 1.104 alc if (ni != NULL) {
3029 1.104 alc ieee80211_notify_michael_failure(ic, wh, keyix);
3030 1.104 alc ieee80211_free_node(ni);
3031 1.104 alc }
3032 1.104 alc }
3033 1.104 alc
3034 1.104 alc static void
3035 1.1 dyoung ath_rx_proc(void *arg, int npending)
3036 1.1 dyoung {
3037 1.18 dyoung #define PA2DESC(_sc, _pa) \
3038 1.82 christos ((struct ath_desc *)((char *)(_sc)->sc_rxdma.dd_desc + \
3039 1.47 dyoung ((_pa) - (_sc)->sc_rxdma.dd_desc_paddr)))
3040 1.1 dyoung struct ath_softc *sc = arg;
3041 1.1 dyoung struct ath_buf *bf;
3042 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
3043 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
3044 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
3045 1.1 dyoung struct ath_desc *ds;
3046 1.1 dyoung struct mbuf *m;
3047 1.1 dyoung struct ieee80211_node *ni;
3048 1.18 dyoung struct ath_node *an;
3049 1.104 alc int len, ngood, type;
3050 1.1 dyoung u_int phyerr;
3051 1.1 dyoung HAL_STATUS status;
3052 1.68 dyoung int16_t nf;
3053 1.68 dyoung u_int64_t tsf;
3054 1.104 alc uint8_t rxerr_tap, rxerr_mon;
3055 1.123 nonaka NET_LOCK_GIANT_FUNC_INIT();
3056 1.1 dyoung
3057 1.47 dyoung NET_LOCK_GIANT(); /* XXX */
3058 1.47 dyoung
3059 1.104 alc rxerr_tap =
3060 1.104 alc (ifp->if_flags & IFF_PROMISC) ? HAL_RXERR_CRC|HAL_RXERR_PHY : 0;
3061 1.104 alc
3062 1.104 alc if (sc->sc_ic.ic_opmode == IEEE80211_M_MONITOR)
3063 1.104 alc rxerr_mon = HAL_RXERR_DECRYPT|HAL_RXERR_MIC;
3064 1.104 alc else if (ifp->if_flags & IFF_PROMISC)
3065 1.104 alc rxerr_tap |= HAL_RXERR_DECRYPT|HAL_RXERR_MIC;
3066 1.104 alc
3067 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RX_PROC, "%s: pending %u\n", __func__, npending);
3068 1.68 dyoung ngood = 0;
3069 1.68 dyoung nf = ath_hal_getchannoise(ah, &sc->sc_curchan);
3070 1.68 dyoung tsf = ath_hal_gettsf64(ah);
3071 1.1 dyoung do {
3072 1.47 dyoung bf = STAILQ_FIRST(&sc->sc_rxbuf);
3073 1.1 dyoung if (bf == NULL) { /* NB: shouldn't happen */
3074 1.47 dyoung if_printf(ifp, "%s: no buffer!\n", __func__);
3075 1.1 dyoung break;
3076 1.1 dyoung }
3077 1.18 dyoung ds = bf->bf_desc;
3078 1.18 dyoung if (ds->ds_link == bf->bf_daddr) {
3079 1.18 dyoung /* NB: never process the self-linked entry at the end */
3080 1.18 dyoung break;
3081 1.18 dyoung }
3082 1.1 dyoung m = bf->bf_m;
3083 1.1 dyoung if (m == NULL) { /* NB: shouldn't happen */
3084 1.47 dyoung if_printf(ifp, "%s: no mbuf!\n", __func__);
3085 1.68 dyoung break;
3086 1.1 dyoung }
3087 1.18 dyoung /* XXX sync descriptor memory */
3088 1.18 dyoung /*
3089 1.18 dyoung * Must provide the virtual address of the current
3090 1.18 dyoung * descriptor, the physical address, and the virtual
3091 1.18 dyoung * address of the next descriptor in the h/w chain.
3092 1.18 dyoung * This allows the HAL to look ahead to see if the
3093 1.18 dyoung * hardware is done with a descriptor by checking the
3094 1.18 dyoung * done bit in the following descriptor and the address
3095 1.18 dyoung * of the current descriptor the DMA engine is working
3096 1.18 dyoung * on. All this is necessary because of our use of
3097 1.18 dyoung * a self-linked list to avoid rx overruns.
3098 1.18 dyoung */
3099 1.18 dyoung status = ath_hal_rxprocdesc(ah, ds,
3100 1.104 alc bf->bf_daddr, PA2DESC(sc, ds->ds_link),
3101 1.106 jmcneill &ds->ds_rxstat);
3102 1.1 dyoung #ifdef AR_DEBUG
3103 1.47 dyoung if (sc->sc_debug & ATH_DEBUG_RECV_DESC)
3104 1.73 blymn ath_printrxbuf(bf, status == HAL_OK);
3105 1.1 dyoung #endif
3106 1.1 dyoung if (status == HAL_EINPROGRESS)
3107 1.1 dyoung break;
3108 1.47 dyoung STAILQ_REMOVE_HEAD(&sc->sc_rxbuf, bf_list);
3109 1.33 dyoung if (ds->ds_rxstat.rs_more) {
3110 1.33 dyoung /*
3111 1.33 dyoung * Frame spans multiple descriptors; this
3112 1.33 dyoung * cannot happen yet as we don't support
3113 1.33 dyoung * jumbograms. If not in monitor mode,
3114 1.33 dyoung * discard the frame.
3115 1.33 dyoung */
3116 1.33 dyoung if (ic->ic_opmode != IEEE80211_M_MONITOR) {
3117 1.47 dyoung sc->sc_stats.ast_rx_toobig++;
3118 1.33 dyoung goto rx_next;
3119 1.33 dyoung }
3120 1.33 dyoung /* fall thru for monitor mode handling... */
3121 1.33 dyoung } else if (ds->ds_rxstat.rs_status != 0) {
3122 1.1 dyoung if (ds->ds_rxstat.rs_status & HAL_RXERR_CRC)
3123 1.1 dyoung sc->sc_stats.ast_rx_crcerr++;
3124 1.1 dyoung if (ds->ds_rxstat.rs_status & HAL_RXERR_FIFO)
3125 1.1 dyoung sc->sc_stats.ast_rx_fifoerr++;
3126 1.1 dyoung if (ds->ds_rxstat.rs_status & HAL_RXERR_PHY) {
3127 1.1 dyoung sc->sc_stats.ast_rx_phyerr++;
3128 1.1 dyoung phyerr = ds->ds_rxstat.rs_phyerr & 0x1f;
3129 1.1 dyoung sc->sc_stats.ast_rx_phy[phyerr]++;
3130 1.47 dyoung goto rx_next;
3131 1.47 dyoung }
3132 1.47 dyoung if (ds->ds_rxstat.rs_status & HAL_RXERR_DECRYPT) {
3133 1.47 dyoung /*
3134 1.47 dyoung * Decrypt error. If the error occurred
3135 1.47 dyoung * because there was no hardware key, then
3136 1.47 dyoung * let the frame through so the upper layers
3137 1.47 dyoung * can process it. This is necessary for 5210
3138 1.47 dyoung * parts which have no way to setup a ``clear''
3139 1.47 dyoung * key cache entry.
3140 1.47 dyoung *
3141 1.47 dyoung * XXX do key cache faulting
3142 1.47 dyoung */
3143 1.47 dyoung if (ds->ds_rxstat.rs_keyix == HAL_RXKEYIX_INVALID)
3144 1.47 dyoung goto rx_accept;
3145 1.47 dyoung sc->sc_stats.ast_rx_badcrypt++;
3146 1.47 dyoung }
3147 1.47 dyoung if (ds->ds_rxstat.rs_status & HAL_RXERR_MIC) {
3148 1.47 dyoung sc->sc_stats.ast_rx_badmic++;
3149 1.47 dyoung /*
3150 1.47 dyoung * Do minimal work required to hand off
3151 1.138 msaitoh * the 802.11 header for notification.
3152 1.47 dyoung */
3153 1.47 dyoung /* XXX frag's and qos frames */
3154 1.47 dyoung len = ds->ds_rxstat.rs_datalen;
3155 1.47 dyoung if (len >= sizeof (struct ieee80211_frame)) {
3156 1.47 dyoung bus_dmamap_sync(sc->sc_dmat,
3157 1.47 dyoung bf->bf_dmamap,
3158 1.47 dyoung 0, bf->bf_dmamap->dm_mapsize,
3159 1.47 dyoung BUS_DMASYNC_POSTREAD);
3160 1.104 alc ath_handle_micerror(ic,
3161 1.47 dyoung mtod(m, struct ieee80211_frame *),
3162 1.47 dyoung sc->sc_splitmic ?
3163 1.104 alc ds->ds_rxstat.rs_keyix-32 : ds->ds_rxstat.rs_keyix);
3164 1.47 dyoung }
3165 1.1 dyoung }
3166 1.130 thorpej if_statinc(ifp, if_ierrors);
3167 1.33 dyoung /*
3168 1.47 dyoung * Reject error frames, we normally don't want
3169 1.47 dyoung * to see them in monitor mode (in monitor mode
3170 1.47 dyoung * allow through packets that have crypto problems).
3171 1.33 dyoung */
3172 1.104 alc
3173 1.104 alc if (ds->ds_rxstat.rs_status &~ (rxerr_tap|rxerr_mon))
3174 1.33 dyoung goto rx_next;
3175 1.1 dyoung }
3176 1.47 dyoung rx_accept:
3177 1.47 dyoung /*
3178 1.47 dyoung * Sync and unmap the frame. At this point we're
3179 1.47 dyoung * committed to passing the mbuf somewhere so clear
3180 1.47 dyoung * bf_m; this means a new sk_buff must be allocated
3181 1.47 dyoung * when the rx descriptor is setup again to receive
3182 1.47 dyoung * another frame.
3183 1.47 dyoung */
3184 1.47 dyoung bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap,
3185 1.47 dyoung 0, bf->bf_dmamap->dm_mapsize,
3186 1.47 dyoung BUS_DMASYNC_POSTREAD);
3187 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap);
3188 1.1 dyoung bf->bf_m = NULL;
3189 1.47 dyoung
3190 1.122 ozaki m_set_rcvif(m, ifp);
3191 1.47 dyoung len = ds->ds_rxstat.rs_datalen;
3192 1.1 dyoung m->m_pkthdr.len = m->m_len = len;
3193 1.1 dyoung
3194 1.47 dyoung sc->sc_stats.ast_ant_rx[ds->ds_rxstat.rs_antenna]++;
3195 1.47 dyoung
3196 1.1 dyoung if (sc->sc_drvbpf) {
3197 1.47 dyoung u_int8_t rix;
3198 1.47 dyoung
3199 1.47 dyoung /*
3200 1.47 dyoung * Discard anything shorter than an ack or cts.
3201 1.47 dyoung */
3202 1.47 dyoung if (len < IEEE80211_ACK_LEN) {
3203 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RECV,
3204 1.47 dyoung "%s: runt packet %d\n",
3205 1.47 dyoung __func__, len);
3206 1.47 dyoung sc->sc_stats.ast_rx_tooshort++;
3207 1.47 dyoung m_freem(m);
3208 1.47 dyoung goto rx_next;
3209 1.47 dyoung }
3210 1.47 dyoung rix = ds->ds_rxstat.rs_rate;
3211 1.68 dyoung sc->sc_rx_th.wr_tsf = htole64(
3212 1.68 dyoung ath_extend_tsf(ds->ds_rxstat.rs_tstamp, tsf));
3213 1.47 dyoung sc->sc_rx_th.wr_flags = sc->sc_hwmap[rix].rxflags;
3214 1.104 alc if (ds->ds_rxstat.rs_status &
3215 1.104 alc (HAL_RXERR_CRC|HAL_RXERR_PHY)) {
3216 1.104 alc sc->sc_rx_th.wr_flags |=
3217 1.104 alc IEEE80211_RADIOTAP_F_BADFCS;
3218 1.104 alc }
3219 1.47 dyoung sc->sc_rx_th.wr_rate = sc->sc_hwmap[rix].ieeerate;
3220 1.68 dyoung sc->sc_rx_th.wr_antsignal = ds->ds_rxstat.rs_rssi + nf;
3221 1.68 dyoung sc->sc_rx_th.wr_antnoise = nf;
3222 1.25 dyoung sc->sc_rx_th.wr_antenna = ds->ds_rxstat.rs_antenna;
3223 1.47 dyoung
3224 1.109 joerg bpf_mtap2(sc->sc_drvbpf, &sc->sc_rx_th,
3225 1.124 msaitoh sc->sc_rx_th_len, m, BPF_D_IN);
3226 1.1 dyoung }
3227 1.1 dyoung
3228 1.104 alc if (ds->ds_rxstat.rs_status & rxerr_tap) {
3229 1.104 alc m_freem(m);
3230 1.104 alc goto rx_next;
3231 1.104 alc }
3232 1.47 dyoung /*
3233 1.47 dyoung * From this point on we assume the frame is at least
3234 1.47 dyoung * as large as ieee80211_frame_min; verify that.
3235 1.47 dyoung */
3236 1.47 dyoung if (len < IEEE80211_MIN_LEN) {
3237 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RECV, "%s: short packet %d\n",
3238 1.47 dyoung __func__, len);
3239 1.47 dyoung sc->sc_stats.ast_rx_tooshort++;
3240 1.47 dyoung m_freem(m);
3241 1.47 dyoung goto rx_next;
3242 1.47 dyoung }
3243 1.47 dyoung
3244 1.47 dyoung if (IFF_DUMPPKTS(sc, ATH_DEBUG_RECV)) {
3245 1.82 christos ieee80211_dump_pkt(mtod(m, void *), len,
3246 1.47 dyoung sc->sc_hwmap[ds->ds_rxstat.rs_rate].ieeerate,
3247 1.47 dyoung ds->ds_rxstat.rs_rssi);
3248 1.47 dyoung }
3249 1.47 dyoung
3250 1.1 dyoung m_adj(m, -IEEE80211_CRC_LEN);
3251 1.1 dyoung
3252 1.1 dyoung /*
3253 1.47 dyoung * Locate the node for sender, track state, and then
3254 1.47 dyoung * pass the (referenced) node up to the 802.11 layer
3255 1.61 skrll * for its use.
3256 1.61 skrll */
3257 1.61 skrll ni = ieee80211_find_rxnode_withkey(ic,
3258 1.61 skrll mtod(m, const struct ieee80211_frame_min *),
3259 1.61 skrll ds->ds_rxstat.rs_keyix == HAL_RXKEYIX_INVALID ?
3260 1.61 skrll IEEE80211_KEYIX_NONE : ds->ds_rxstat.rs_keyix);
3261 1.61 skrll /*
3262 1.61 skrll * Track rx rssi and do any rx antenna management.
3263 1.1 dyoung */
3264 1.61 skrll an = ATH_NODE(ni);
3265 1.61 skrll ATH_RSSI_LPF(an->an_avgrssi, ds->ds_rxstat.rs_rssi);
3266 1.68 dyoung ATH_RSSI_LPF(sc->sc_halstats.ns_avgrssi, ds->ds_rxstat.rs_rssi);
3267 1.61 skrll /*
3268 1.61 skrll * Send frame up for processing.
3269 1.61 skrll */
3270 1.61 skrll type = ieee80211_input(ic, m, ni,
3271 1.61 skrll ds->ds_rxstat.rs_rssi, ds->ds_rxstat.rs_tstamp);
3272 1.55 dyoung ieee80211_free_node(ni);
3273 1.47 dyoung if (sc->sc_diversity) {
3274 1.47 dyoung /*
3275 1.47 dyoung * When using fast diversity, change the default rx
3276 1.47 dyoung * antenna if diversity chooses the other antenna 3
3277 1.47 dyoung * times in a row.
3278 1.47 dyoung */
3279 1.47 dyoung if (sc->sc_defant != ds->ds_rxstat.rs_antenna) {
3280 1.47 dyoung if (++sc->sc_rxotherant >= 3)
3281 1.47 dyoung ath_setdefantenna(sc,
3282 1.47 dyoung ds->ds_rxstat.rs_antenna);
3283 1.47 dyoung } else
3284 1.47 dyoung sc->sc_rxotherant = 0;
3285 1.47 dyoung }
3286 1.47 dyoung if (sc->sc_softled) {
3287 1.47 dyoung /*
3288 1.47 dyoung * Blink for any data frame. Otherwise do a
3289 1.47 dyoung * heartbeat-style blink when idle. The latter
3290 1.47 dyoung * is mainly for station mode where we depend on
3291 1.47 dyoung * periodic beacon frames to trigger the poll event.
3292 1.47 dyoung */
3293 1.47 dyoung if (type == IEEE80211_FC0_TYPE_DATA) {
3294 1.47 dyoung sc->sc_rxrate = ds->ds_rxstat.rs_rate;
3295 1.47 dyoung ath_led_event(sc, ATH_LED_RX);
3296 1.47 dyoung } else if (ticks - sc->sc_ledevent >= sc->sc_ledidle)
3297 1.47 dyoung ath_led_event(sc, ATH_LED_POLL);
3298 1.47 dyoung }
3299 1.68 dyoung /*
3300 1.68 dyoung * Arrange to update the last rx timestamp only for
3301 1.68 dyoung * frames from our ap when operating in station mode.
3302 1.68 dyoung * This assumes the rx key is always setup when associated.
3303 1.68 dyoung */
3304 1.68 dyoung if (ic->ic_opmode == IEEE80211_M_STA &&
3305 1.68 dyoung ds->ds_rxstat.rs_keyix != HAL_RXKEYIX_INVALID)
3306 1.68 dyoung ngood++;
3307 1.47 dyoung rx_next:
3308 1.47 dyoung STAILQ_INSERT_TAIL(&sc->sc_rxbuf, bf, bf_list);
3309 1.1 dyoung } while (ath_rxbuf_init(sc, bf) == 0);
3310 1.1 dyoung
3311 1.47 dyoung /* rx signal state monitoring */
3312 1.68 dyoung ath_hal_rxmonitor(ah, &sc->sc_halstats, &sc->sc_curchan);
3313 1.104 alc #if 0
3314 1.68 dyoung if (ath_hal_radar_event(ah))
3315 1.68 dyoung TASK_RUN_OR_ENQUEUE(&sc->sc_radartask);
3316 1.104 alc #endif
3317 1.68 dyoung if (ngood)
3318 1.68 dyoung sc->sc_lastrx = tsf;
3319 1.16 dyoung
3320 1.18 dyoung #ifdef __NetBSD__
3321 1.47 dyoung /* XXX Why isn't this necessary in FreeBSD? */
3322 1.16 dyoung if ((ifp->if_flags & IFF_OACTIVE) == 0 && !IFQ_IS_EMPTY(&ifp->if_snd))
3323 1.16 dyoung ath_start(ifp);
3324 1.18 dyoung #endif /* __NetBSD__ */
3325 1.47 dyoung
3326 1.47 dyoung NET_UNLOCK_GIANT(); /* XXX */
3327 1.18 dyoung #undef PA2DESC
3328 1.1 dyoung }
3329 1.1 dyoung
3330 1.1 dyoung /*
3331 1.47 dyoung * Setup a h/w transmit queue.
3332 1.47 dyoung */
3333 1.47 dyoung static struct ath_txq *
3334 1.47 dyoung ath_txq_setup(struct ath_softc *sc, int qtype, int subtype)
3335 1.47 dyoung {
3336 1.47 dyoung #define N(a) (sizeof(a)/sizeof(a[0]))
3337 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
3338 1.47 dyoung HAL_TXQ_INFO qi;
3339 1.47 dyoung int qnum;
3340 1.47 dyoung
3341 1.47 dyoung memset(&qi, 0, sizeof(qi));
3342 1.47 dyoung qi.tqi_subtype = subtype;
3343 1.47 dyoung qi.tqi_aifs = HAL_TXQ_USEDEFAULT;
3344 1.47 dyoung qi.tqi_cwmin = HAL_TXQ_USEDEFAULT;
3345 1.47 dyoung qi.tqi_cwmax = HAL_TXQ_USEDEFAULT;
3346 1.47 dyoung /*
3347 1.47 dyoung * Enable interrupts only for EOL and DESC conditions.
3348 1.47 dyoung * We mark tx descriptors to receive a DESC interrupt
3349 1.47 dyoung * when a tx queue gets deep; otherwise waiting for the
3350 1.47 dyoung * EOL to reap descriptors. Note that this is done to
3351 1.47 dyoung * reduce interrupt load and this only defers reaping
3352 1.47 dyoung * descriptors, never transmitting frames. Aside from
3353 1.47 dyoung * reducing interrupts this also permits more concurrency.
3354 1.47 dyoung * The only potential downside is if the tx queue backs
3355 1.47 dyoung * up in which case the top half of the kernel may backup
3356 1.47 dyoung * due to a lack of tx descriptors.
3357 1.47 dyoung */
3358 1.70 gdamore qi.tqi_qflags = HAL_TXQ_TXEOLINT_ENABLE | HAL_TXQ_TXDESCINT_ENABLE;
3359 1.47 dyoung qnum = ath_hal_setuptxqueue(ah, qtype, &qi);
3360 1.47 dyoung if (qnum == -1) {
3361 1.47 dyoung /*
3362 1.55 dyoung * NB: don't print a message, this happens
3363 1.47 dyoung * normally on parts with too few tx queues
3364 1.47 dyoung */
3365 1.47 dyoung return NULL;
3366 1.47 dyoung }
3367 1.47 dyoung if (qnum >= N(sc->sc_txq)) {
3368 1.102 joerg device_printf(sc->sc_dev,
3369 1.47 dyoung "hal qnum %u out of range, max %zu!\n",
3370 1.47 dyoung qnum, N(sc->sc_txq));
3371 1.47 dyoung ath_hal_releasetxqueue(ah, qnum);
3372 1.47 dyoung return NULL;
3373 1.47 dyoung }
3374 1.47 dyoung if (!ATH_TXQ_SETUP(sc, qnum)) {
3375 1.47 dyoung struct ath_txq *txq = &sc->sc_txq[qnum];
3376 1.47 dyoung
3377 1.47 dyoung txq->axq_qnum = qnum;
3378 1.47 dyoung txq->axq_depth = 0;
3379 1.47 dyoung txq->axq_intrcnt = 0;
3380 1.47 dyoung txq->axq_link = NULL;
3381 1.47 dyoung STAILQ_INIT(&txq->axq_q);
3382 1.47 dyoung ATH_TXQ_LOCK_INIT(sc, txq);
3383 1.47 dyoung sc->sc_txqsetup |= 1<<qnum;
3384 1.47 dyoung }
3385 1.47 dyoung return &sc->sc_txq[qnum];
3386 1.47 dyoung #undef N
3387 1.47 dyoung }
3388 1.47 dyoung
3389 1.47 dyoung /*
3390 1.47 dyoung * Setup a hardware data transmit queue for the specified
3391 1.47 dyoung * access control. The hal may not support all requested
3392 1.47 dyoung * queues in which case it will return a reference to a
3393 1.47 dyoung * previously setup queue. We record the mapping from ac's
3394 1.47 dyoung * to h/w queues for use by ath_tx_start and also track
3395 1.47 dyoung * the set of h/w queues being used to optimize work in the
3396 1.47 dyoung * transmit interrupt handler and related routines.
3397 1.1 dyoung */
3398 1.47 dyoung static int
3399 1.47 dyoung ath_tx_setup(struct ath_softc *sc, int ac, int haltype)
3400 1.47 dyoung {
3401 1.47 dyoung #define N(a) (sizeof(a)/sizeof(a[0]))
3402 1.47 dyoung struct ath_txq *txq;
3403 1.47 dyoung
3404 1.47 dyoung if (ac >= N(sc->sc_ac2q)) {
3405 1.102 joerg device_printf(sc->sc_dev, "AC %u out of range, max %zu!\n",
3406 1.47 dyoung ac, N(sc->sc_ac2q));
3407 1.47 dyoung return 0;
3408 1.47 dyoung }
3409 1.47 dyoung txq = ath_txq_setup(sc, HAL_TX_QUEUE_DATA, haltype);
3410 1.47 dyoung if (txq != NULL) {
3411 1.47 dyoung sc->sc_ac2q[ac] = txq;
3412 1.47 dyoung return 1;
3413 1.47 dyoung } else
3414 1.47 dyoung return 0;
3415 1.47 dyoung #undef N
3416 1.47 dyoung }
3417 1.1 dyoung
3418 1.47 dyoung /*
3419 1.47 dyoung * Update WME parameters for a transmit queue.
3420 1.47 dyoung */
3421 1.1 dyoung static int
3422 1.47 dyoung ath_txq_update(struct ath_softc *sc, int ac)
3423 1.1 dyoung {
3424 1.47 dyoung #define ATH_EXPONENT_TO_VALUE(v) ((1<<v)-1)
3425 1.47 dyoung #define ATH_TXOP_TO_US(v) (v<<5)
3426 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
3427 1.47 dyoung struct ath_txq *txq = sc->sc_ac2q[ac];
3428 1.47 dyoung struct wmeParams *wmep = &ic->ic_wme.wme_chanParams.cap_wmeParams[ac];
3429 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
3430 1.47 dyoung HAL_TXQ_INFO qi;
3431 1.47 dyoung
3432 1.47 dyoung ath_hal_gettxqueueprops(ah, txq->axq_qnum, &qi);
3433 1.47 dyoung qi.tqi_aifs = wmep->wmep_aifsn;
3434 1.47 dyoung qi.tqi_cwmin = ATH_EXPONENT_TO_VALUE(wmep->wmep_logcwmin);
3435 1.73 blymn qi.tqi_cwmax = ATH_EXPONENT_TO_VALUE(wmep->wmep_logcwmax);
3436 1.47 dyoung qi.tqi_burstTime = ATH_TXOP_TO_US(wmep->wmep_txopLimit);
3437 1.47 dyoung
3438 1.47 dyoung if (!ath_hal_settxqueueprops(ah, txq->axq_qnum, &qi)) {
3439 1.102 joerg device_printf(sc->sc_dev, "unable to update hardware queue "
3440 1.47 dyoung "parameters for %s traffic!\n",
3441 1.47 dyoung ieee80211_wme_acnames[ac]);
3442 1.47 dyoung return 0;
3443 1.47 dyoung } else {
3444 1.47 dyoung ath_hal_resettxqueue(ah, txq->axq_qnum); /* push to h/w */
3445 1.47 dyoung return 1;
3446 1.47 dyoung }
3447 1.47 dyoung #undef ATH_TXOP_TO_US
3448 1.47 dyoung #undef ATH_EXPONENT_TO_VALUE
3449 1.47 dyoung }
3450 1.1 dyoung
3451 1.47 dyoung /*
3452 1.47 dyoung * Callback from the 802.11 layer to update WME parameters.
3453 1.47 dyoung */
3454 1.55 dyoung static int
3455 1.47 dyoung ath_wme_update(struct ieee80211com *ic)
3456 1.47 dyoung {
3457 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
3458 1.1 dyoung
3459 1.47 dyoung return !ath_txq_update(sc, WME_AC_BE) ||
3460 1.47 dyoung !ath_txq_update(sc, WME_AC_BK) ||
3461 1.47 dyoung !ath_txq_update(sc, WME_AC_VI) ||
3462 1.47 dyoung !ath_txq_update(sc, WME_AC_VO) ? EIO : 0;
3463 1.47 dyoung }
3464 1.33 dyoung
3465 1.47 dyoung /*
3466 1.47 dyoung * Reclaim resources for a setup queue.
3467 1.47 dyoung */
3468 1.47 dyoung static void
3469 1.47 dyoung ath_tx_cleanupq(struct ath_softc *sc, struct ath_txq *txq)
3470 1.47 dyoung {
3471 1.47 dyoung
3472 1.47 dyoung ath_hal_releasetxqueue(sc->sc_ah, txq->axq_qnum);
3473 1.47 dyoung ATH_TXQ_LOCK_DESTROY(txq);
3474 1.47 dyoung sc->sc_txqsetup &= ~(1<<txq->axq_qnum);
3475 1.47 dyoung }
3476 1.47 dyoung
3477 1.47 dyoung /*
3478 1.47 dyoung * Reclaim all tx queue resources.
3479 1.47 dyoung */
3480 1.47 dyoung static void
3481 1.47 dyoung ath_tx_cleanup(struct ath_softc *sc)
3482 1.47 dyoung {
3483 1.47 dyoung int i;
3484 1.47 dyoung
3485 1.47 dyoung ATH_TXBUF_LOCK_DESTROY(sc);
3486 1.47 dyoung for (i = 0; i < HAL_NUM_TX_QUEUES; i++)
3487 1.47 dyoung if (ATH_TXQ_SETUP(sc, i))
3488 1.47 dyoung ath_tx_cleanupq(sc, &sc->sc_txq[i]);
3489 1.47 dyoung }
3490 1.47 dyoung
3491 1.47 dyoung /*
3492 1.47 dyoung * Defragment an mbuf chain, returning at most maxfrags separate
3493 1.47 dyoung * mbufs+clusters. If this is not possible NULL is returned and
3494 1.117 snj * the original mbuf chain is left in its present (potentially
3495 1.47 dyoung * modified) state. We use two techniques: collapsing consecutive
3496 1.47 dyoung * mbufs and replacing consecutive mbufs by a cluster.
3497 1.47 dyoung */
3498 1.47 dyoung static struct mbuf *
3499 1.47 dyoung ath_defrag(struct mbuf *m0, int how, int maxfrags)
3500 1.47 dyoung {
3501 1.47 dyoung struct mbuf *m, *n, *n2, **prev;
3502 1.47 dyoung u_int curfrags;
3503 1.47 dyoung
3504 1.47 dyoung /*
3505 1.47 dyoung * Calculate the current number of frags.
3506 1.47 dyoung */
3507 1.47 dyoung curfrags = 0;
3508 1.47 dyoung for (m = m0; m != NULL; m = m->m_next)
3509 1.47 dyoung curfrags++;
3510 1.47 dyoung /*
3511 1.47 dyoung * First, try to collapse mbufs. Note that we always collapse
3512 1.47 dyoung * towards the front so we don't need to deal with moving the
3513 1.47 dyoung * pkthdr. This may be suboptimal if the first mbuf has much
3514 1.47 dyoung * less data than the following.
3515 1.47 dyoung */
3516 1.47 dyoung m = m0;
3517 1.47 dyoung again:
3518 1.47 dyoung for (;;) {
3519 1.47 dyoung n = m->m_next;
3520 1.47 dyoung if (n == NULL)
3521 1.47 dyoung break;
3522 1.90 dyoung if (n->m_len < M_TRAILINGSPACE(m)) {
3523 1.90 dyoung memcpy(mtod(m, char *) + m->m_len, mtod(n, void *),
3524 1.47 dyoung n->m_len);
3525 1.47 dyoung m->m_len += n->m_len;
3526 1.47 dyoung m->m_next = n->m_next;
3527 1.47 dyoung m_free(n);
3528 1.47 dyoung if (--curfrags <= maxfrags)
3529 1.47 dyoung return m0;
3530 1.47 dyoung } else
3531 1.47 dyoung m = n;
3532 1.47 dyoung }
3533 1.114 dyoung KASSERTMSG(maxfrags > 1,
3534 1.114 dyoung "maxfrags %u, but normal collapse failed", maxfrags);
3535 1.47 dyoung /*
3536 1.47 dyoung * Collapse consecutive mbufs to a cluster.
3537 1.47 dyoung */
3538 1.47 dyoung prev = &m0->m_next; /* NB: not the first mbuf */
3539 1.47 dyoung while ((n = *prev) != NULL) {
3540 1.47 dyoung if ((n2 = n->m_next) != NULL &&
3541 1.47 dyoung n->m_len + n2->m_len < MCLBYTES) {
3542 1.47 dyoung m = m_getcl(how, MT_DATA, 0);
3543 1.47 dyoung if (m == NULL)
3544 1.47 dyoung goto bad;
3545 1.47 dyoung bcopy(mtod(n, void *), mtod(m, void *), n->m_len);
3546 1.47 dyoung bcopy(mtod(n2, void *), mtod(m, char *) + n->m_len,
3547 1.47 dyoung n2->m_len);
3548 1.47 dyoung m->m_len = n->m_len + n2->m_len;
3549 1.47 dyoung m->m_next = n2->m_next;
3550 1.47 dyoung *prev = m;
3551 1.47 dyoung m_free(n);
3552 1.47 dyoung m_free(n2);
3553 1.47 dyoung if (--curfrags <= maxfrags) /* +1 cl -2 mbufs */
3554 1.47 dyoung return m0;
3555 1.47 dyoung /*
3556 1.47 dyoung * Still not there, try the normal collapse
3557 1.47 dyoung * again before we allocate another cluster.
3558 1.47 dyoung */
3559 1.47 dyoung goto again;
3560 1.47 dyoung }
3561 1.47 dyoung prev = &n->m_next;
3562 1.47 dyoung }
3563 1.47 dyoung /*
3564 1.47 dyoung * No place where we can collapse to a cluster; punt.
3565 1.47 dyoung * This can occur if, for example, you request 2 frags
3566 1.47 dyoung * but the packet requires that both be clusters (we
3567 1.47 dyoung * never reallocate the first mbuf to avoid moving the
3568 1.47 dyoung * packet header).
3569 1.47 dyoung */
3570 1.47 dyoung bad:
3571 1.47 dyoung return NULL;
3572 1.47 dyoung }
3573 1.47 dyoung
3574 1.68 dyoung /*
3575 1.68 dyoung * Return h/w rate index for an IEEE rate (w/o basic rate bit).
3576 1.68 dyoung */
3577 1.68 dyoung static int
3578 1.68 dyoung ath_tx_findrix(const HAL_RATE_TABLE *rt, int rate)
3579 1.68 dyoung {
3580 1.68 dyoung int i;
3581 1.68 dyoung
3582 1.68 dyoung for (i = 0; i < rt->rateCount; i++)
3583 1.68 dyoung if ((rt->info[i].dot11Rate & IEEE80211_RATE_VAL) == rate)
3584 1.68 dyoung return i;
3585 1.68 dyoung return 0; /* NB: lowest rate */
3586 1.68 dyoung }
3587 1.68 dyoung
3588 1.80 dyoung static void
3589 1.80 dyoung ath_freetx(struct mbuf *m)
3590 1.80 dyoung {
3591 1.80 dyoung struct mbuf *next;
3592 1.80 dyoung
3593 1.80 dyoung do {
3594 1.80 dyoung next = m->m_nextpkt;
3595 1.80 dyoung m->m_nextpkt = NULL;
3596 1.80 dyoung m_freem(m);
3597 1.80 dyoung } while ((m = next) != NULL);
3598 1.80 dyoung }
3599 1.80 dyoung
3600 1.47 dyoung static int
3601 1.101 dyoung deduct_pad_bytes(int len, int hdrlen)
3602 1.101 dyoung {
3603 1.101 dyoung /* XXX I am suspicious that this code, which I extracted
3604 1.101 dyoung * XXX from ath_tx_start() for reuse, does the right thing.
3605 1.101 dyoung */
3606 1.101 dyoung return len - (hdrlen & 3);
3607 1.101 dyoung }
3608 1.101 dyoung
3609 1.101 dyoung static int
3610 1.47 dyoung ath_tx_start(struct ath_softc *sc, struct ieee80211_node *ni, struct ath_buf *bf,
3611 1.47 dyoung struct mbuf *m0)
3612 1.47 dyoung {
3613 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
3614 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
3615 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
3616 1.47 dyoung const struct chanAccParams *cap = &ic->ic_wme.wme_chanParams;
3617 1.80 dyoung int i, error, iswep, ismcast, isfrag, ismrr;
3618 1.68 dyoung int keyix, hdrlen, pktlen, try0;
3619 1.47 dyoung u_int8_t rix, txrate, ctsrate;
3620 1.47 dyoung u_int8_t cix = 0xff; /* NB: silence compiler */
3621 1.47 dyoung struct ath_desc *ds, *ds0;
3622 1.47 dyoung struct ath_txq *txq;
3623 1.47 dyoung struct ieee80211_frame *wh;
3624 1.47 dyoung u_int subtype, flags, ctsduration;
3625 1.47 dyoung HAL_PKT_TYPE atype;
3626 1.47 dyoung const HAL_RATE_TABLE *rt;
3627 1.47 dyoung HAL_BOOL shortPreamble;
3628 1.47 dyoung struct ath_node *an;
3629 1.47 dyoung struct mbuf *m;
3630 1.47 dyoung u_int pri;
3631 1.47 dyoung
3632 1.47 dyoung wh = mtod(m0, struct ieee80211_frame *);
3633 1.47 dyoung iswep = wh->i_fc[1] & IEEE80211_FC1_WEP;
3634 1.47 dyoung ismcast = IEEE80211_IS_MULTICAST(wh->i_addr1);
3635 1.80 dyoung isfrag = m0->m_flags & M_FRAG;
3636 1.47 dyoung hdrlen = ieee80211_anyhdrsize(wh);
3637 1.47 dyoung /*
3638 1.47 dyoung * Packet length must not include any
3639 1.47 dyoung * pad bytes; deduct them here.
3640 1.47 dyoung */
3641 1.101 dyoung pktlen = deduct_pad_bytes(m0->m_pkthdr.len, hdrlen);
3642 1.47 dyoung
3643 1.47 dyoung if (iswep) {
3644 1.47 dyoung const struct ieee80211_cipher *cip;
3645 1.47 dyoung struct ieee80211_key *k;
3646 1.33 dyoung
3647 1.33 dyoung /*
3648 1.47 dyoung * Construct the 802.11 header+trailer for an encrypted
3649 1.47 dyoung * frame. The only reason this can fail is because of an
3650 1.47 dyoung * unknown or unsupported cipher/key type.
3651 1.33 dyoung */
3652 1.47 dyoung k = ieee80211_crypto_encap(ic, ni, m0);
3653 1.47 dyoung if (k == NULL) {
3654 1.47 dyoung /*
3655 1.47 dyoung * This can happen when the key is yanked after the
3656 1.47 dyoung * frame was queued. Just discard the frame; the
3657 1.47 dyoung * 802.11 layer counts failures and provides
3658 1.47 dyoung * debugging/diagnostics.
3659 1.47 dyoung */
3660 1.80 dyoung ath_freetx(m0);
3661 1.47 dyoung return EIO;
3662 1.47 dyoung }
3663 1.1 dyoung /*
3664 1.47 dyoung * Adjust the packet + header lengths for the crypto
3665 1.47 dyoung * additions and calculate the h/w key index. When
3666 1.47 dyoung * a s/w mic is done the frame will have had any mic
3667 1.80 dyoung * added to it prior to entry so m0->m_pkthdr.len above will
3668 1.47 dyoung * account for it. Otherwise we need to add it to the
3669 1.47 dyoung * packet length.
3670 1.1 dyoung */
3671 1.47 dyoung cip = k->wk_cipher;
3672 1.47 dyoung hdrlen += cip->ic_header;
3673 1.47 dyoung pktlen += cip->ic_header + cip->ic_trailer;
3674 1.80 dyoung /* NB: frags always have any TKIP MIC done in s/w */
3675 1.80 dyoung if ((k->wk_flags & IEEE80211_KEY_SWMIC) == 0 && !isfrag)
3676 1.47 dyoung pktlen += cip->ic_miclen;
3677 1.47 dyoung keyix = k->wk_keyix;
3678 1.47 dyoung
3679 1.47 dyoung /* packet header may have moved, reset our local pointer */
3680 1.47 dyoung wh = mtod(m0, struct ieee80211_frame *);
3681 1.55 dyoung } else if (ni->ni_ucastkey.wk_cipher == &ieee80211_cipher_none) {
3682 1.55 dyoung /*
3683 1.55 dyoung * Use station key cache slot, if assigned.
3684 1.55 dyoung */
3685 1.55 dyoung keyix = ni->ni_ucastkey.wk_keyix;
3686 1.55 dyoung if (keyix == IEEE80211_KEYIX_NONE)
3687 1.55 dyoung keyix = HAL_TXKEYIX_INVALID;
3688 1.47 dyoung } else
3689 1.47 dyoung keyix = HAL_TXKEYIX_INVALID;
3690 1.47 dyoung
3691 1.1 dyoung pktlen += IEEE80211_CRC_LEN;
3692 1.1 dyoung
3693 1.1 dyoung /*
3694 1.1 dyoung * Load the DMA map so any coalescing is done. This
3695 1.1 dyoung * also calculates the number of descriptors we need.
3696 1.1 dyoung */
3697 1.47 dyoung error = bus_dmamap_load_mbuf(sc->sc_dmat, bf->bf_dmamap, m0,
3698 1.47 dyoung BUS_DMA_NOWAIT);
3699 1.47 dyoung if (error == EFBIG) {
3700 1.47 dyoung /* XXX packet requires too many descriptors */
3701 1.47 dyoung bf->bf_nseg = ATH_TXDESC+1;
3702 1.47 dyoung } else if (error != 0) {
3703 1.47 dyoung sc->sc_stats.ast_tx_busdma++;
3704 1.80 dyoung ath_freetx(m0);
3705 1.47 dyoung return error;
3706 1.47 dyoung }
3707 1.1 dyoung /*
3708 1.1 dyoung * Discard null packets and check for packets that
3709 1.1 dyoung * require too many TX descriptors. We try to convert
3710 1.1 dyoung * the latter to a cluster.
3711 1.1 dyoung */
3712 1.11 dyoung if (error == EFBIG) { /* too many desc's, linearize */
3713 1.1 dyoung sc->sc_stats.ast_tx_linear++;
3714 1.47 dyoung m = ath_defrag(m0, M_DONTWAIT, ATH_TXDESC);
3715 1.1 dyoung if (m == NULL) {
3716 1.80 dyoung ath_freetx(m0);
3717 1.1 dyoung sc->sc_stats.ast_tx_nombuf++;
3718 1.1 dyoung return ENOMEM;
3719 1.1 dyoung }
3720 1.1 dyoung m0 = m;
3721 1.47 dyoung error = bus_dmamap_load_mbuf(sc->sc_dmat, bf->bf_dmamap, m0,
3722 1.47 dyoung BUS_DMA_NOWAIT);
3723 1.1 dyoung if (error != 0) {
3724 1.1 dyoung sc->sc_stats.ast_tx_busdma++;
3725 1.80 dyoung ath_freetx(m0);
3726 1.1 dyoung return error;
3727 1.1 dyoung }
3728 1.114 dyoung KASSERTMSG(bf->bf_nseg <= ATH_TXDESC,
3729 1.114 dyoung "too many segments after defrag; nseg %u", bf->bf_nseg);
3730 1.1 dyoung } else if (bf->bf_nseg == 0) { /* null packet, discard */
3731 1.1 dyoung sc->sc_stats.ast_tx_nodata++;
3732 1.80 dyoung ath_freetx(m0);
3733 1.1 dyoung return EIO;
3734 1.1 dyoung }
3735 1.47 dyoung DPRINTF(sc, ATH_DEBUG_XMIT, "%s: m %p len %u\n", __func__, m0, pktlen);
3736 1.47 dyoung bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, 0,
3737 1.126 msaitoh bf->bf_dmamap->dm_mapsize, BUS_DMASYNC_PREWRITE);
3738 1.1 dyoung bf->bf_m = m0;
3739 1.1 dyoung bf->bf_node = ni; /* NB: held reference */
3740 1.1 dyoung
3741 1.1 dyoung /* setup descriptors */
3742 1.1 dyoung ds = bf->bf_desc;
3743 1.1 dyoung rt = sc->sc_currates;
3744 1.114 dyoung KASSERTMSG(rt != NULL, "no rate table, mode %u", sc->sc_curmode);
3745 1.1 dyoung
3746 1.1 dyoung /*
3747 1.47 dyoung * NB: the 802.11 layer marks whether or not we should
3748 1.47 dyoung * use short preamble based on the current mode and
3749 1.47 dyoung * negotiated parameters.
3750 1.47 dyoung */
3751 1.47 dyoung if ((ic->ic_flags & IEEE80211_F_SHPREAMBLE) &&
3752 1.51 dyoung (ni->ni_capinfo & IEEE80211_CAPINFO_SHORT_PREAMBLE) && !ismcast) {
3753 1.47 dyoung shortPreamble = AH_TRUE;
3754 1.47 dyoung sc->sc_stats.ast_tx_shortpre++;
3755 1.47 dyoung } else {
3756 1.47 dyoung shortPreamble = AH_FALSE;
3757 1.47 dyoung }
3758 1.47 dyoung
3759 1.47 dyoung an = ATH_NODE(ni);
3760 1.47 dyoung flags = HAL_TXDESC_CLRDMASK; /* XXX needed for crypto errs */
3761 1.68 dyoung ismrr = 0; /* default no multi-rate retry*/
3762 1.47 dyoung /*
3763 1.47 dyoung * Calculate Atheros packet type from IEEE80211 packet header,
3764 1.47 dyoung * setup for rate calculations, and select h/w transmit queue.
3765 1.1 dyoung */
3766 1.1 dyoung switch (wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) {
3767 1.1 dyoung case IEEE80211_FC0_TYPE_MGT:
3768 1.1 dyoung subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK;
3769 1.1 dyoung if (subtype == IEEE80211_FC0_SUBTYPE_BEACON)
3770 1.1 dyoung atype = HAL_PKT_TYPE_BEACON;
3771 1.1 dyoung else if (subtype == IEEE80211_FC0_SUBTYPE_PROBE_RESP)
3772 1.1 dyoung atype = HAL_PKT_TYPE_PROBE_RESP;
3773 1.1 dyoung else if (subtype == IEEE80211_FC0_SUBTYPE_ATIM)
3774 1.1 dyoung atype = HAL_PKT_TYPE_ATIM;
3775 1.47 dyoung else
3776 1.47 dyoung atype = HAL_PKT_TYPE_NORMAL; /* XXX */
3777 1.68 dyoung rix = sc->sc_minrateix;
3778 1.68 dyoung txrate = rt->info[rix].rateCode;
3779 1.47 dyoung if (shortPreamble)
3780 1.68 dyoung txrate |= rt->info[rix].shortPreamble;
3781 1.68 dyoung try0 = ATH_TXMGTTRY;
3782 1.47 dyoung /* NB: force all management frames to highest queue */
3783 1.47 dyoung if (ni->ni_flags & IEEE80211_NODE_QOS) {
3784 1.47 dyoung /* NB: force all management frames to highest queue */
3785 1.47 dyoung pri = WME_AC_VO;
3786 1.47 dyoung } else
3787 1.47 dyoung pri = WME_AC_BE;
3788 1.47 dyoung flags |= HAL_TXDESC_INTREQ; /* force interrupt */
3789 1.1 dyoung break;
3790 1.1 dyoung case IEEE80211_FC0_TYPE_CTL:
3791 1.47 dyoung atype = HAL_PKT_TYPE_PSPOLL; /* stop setting of duration */
3792 1.68 dyoung rix = sc->sc_minrateix;
3793 1.68 dyoung txrate = rt->info[rix].rateCode;
3794 1.47 dyoung if (shortPreamble)
3795 1.68 dyoung txrate |= rt->info[rix].shortPreamble;
3796 1.68 dyoung try0 = ATH_TXMGTTRY;
3797 1.47 dyoung /* NB: force all ctl frames to highest queue */
3798 1.47 dyoung if (ni->ni_flags & IEEE80211_NODE_QOS) {
3799 1.47 dyoung /* NB: force all ctl frames to highest queue */
3800 1.47 dyoung pri = WME_AC_VO;
3801 1.47 dyoung } else
3802 1.47 dyoung pri = WME_AC_BE;
3803 1.47 dyoung flags |= HAL_TXDESC_INTREQ; /* force interrupt */
3804 1.47 dyoung break;
3805 1.47 dyoung case IEEE80211_FC0_TYPE_DATA:
3806 1.47 dyoung atype = HAL_PKT_TYPE_NORMAL; /* default */
3807 1.47 dyoung /*
3808 1.68 dyoung * Data frames: multicast frames go out at a fixed rate,
3809 1.68 dyoung * otherwise consult the rate control module for the
3810 1.68 dyoung * rate to use.
3811 1.51 dyoung */
3812 1.68 dyoung if (ismcast) {
3813 1.68 dyoung /*
3814 1.68 dyoung * Check mcast rate setting in case it's changed.
3815 1.68 dyoung * XXX move out of fastpath
3816 1.68 dyoung */
3817 1.68 dyoung if (ic->ic_mcast_rate != sc->sc_mcastrate) {
3818 1.68 dyoung sc->sc_mcastrix =
3819 1.68 dyoung ath_tx_findrix(rt, ic->ic_mcast_rate);
3820 1.68 dyoung sc->sc_mcastrate = ic->ic_mcast_rate;
3821 1.68 dyoung }
3822 1.68 dyoung rix = sc->sc_mcastrix;
3823 1.68 dyoung txrate = rt->info[rix].rateCode;
3824 1.68 dyoung try0 = 1;
3825 1.68 dyoung } else {
3826 1.51 dyoung ath_rate_findrate(sc, an, shortPreamble, pktlen,
3827 1.51 dyoung &rix, &try0, &txrate);
3828 1.68 dyoung sc->sc_txrate = txrate; /* for LED blinking */
3829 1.68 dyoung if (try0 != ATH_TXMAXTRY)
3830 1.68 dyoung ismrr = 1;
3831 1.68 dyoung }
3832 1.68 dyoung pri = M_WME_GETAC(m0);
3833 1.68 dyoung if (cap->cap_wmeParams[pri].wmep_noackPolicy)
3834 1.68 dyoung flags |= HAL_TXDESC_NOACK;
3835 1.1 dyoung break;
3836 1.1 dyoung default:
3837 1.47 dyoung if_printf(ifp, "bogus frame type 0x%x (%s)\n",
3838 1.47 dyoung wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK, __func__);
3839 1.47 dyoung /* XXX statistic */
3840 1.80 dyoung ath_freetx(m0);
3841 1.47 dyoung return EIO;
3842 1.1 dyoung }
3843 1.47 dyoung txq = sc->sc_ac2q[pri];
3844 1.47 dyoung
3845 1.1 dyoung /*
3846 1.47 dyoung * When servicing one or more stations in power-save mode
3847 1.47 dyoung * multicast frames must be buffered until after the beacon.
3848 1.47 dyoung * We use the CAB queue for that.
3849 1.1 dyoung */
3850 1.47 dyoung if (ismcast && ic->ic_ps_sta) {
3851 1.47 dyoung txq = sc->sc_cabq;
3852 1.47 dyoung /* XXX? more bit in 802.11 frame header */
3853 1.1 dyoung }
3854 1.1 dyoung
3855 1.1 dyoung /*
3856 1.1 dyoung * Calculate miscellaneous flags.
3857 1.1 dyoung */
3858 1.47 dyoung if (ismcast) {
3859 1.1 dyoung flags |= HAL_TXDESC_NOACK; /* no ack on broad/multicast */
3860 1.1 dyoung } else if (pktlen > ic->ic_rtsthreshold) {
3861 1.1 dyoung flags |= HAL_TXDESC_RTSENA; /* RTS based on frame length */
3862 1.47 dyoung cix = rt->info[rix].controlRate;
3863 1.1 dyoung sc->sc_stats.ast_tx_rts++;
3864 1.1 dyoung }
3865 1.68 dyoung if (flags & HAL_TXDESC_NOACK) /* NB: avoid double counting */
3866 1.68 dyoung sc->sc_stats.ast_tx_noack++;
3867 1.1 dyoung
3868 1.1 dyoung /*
3869 1.47 dyoung * If 802.11g protection is enabled, determine whether
3870 1.47 dyoung * to use RTS/CTS or just CTS. Note that this is only
3871 1.47 dyoung * done for OFDM unicast frames.
3872 1.47 dyoung */
3873 1.47 dyoung if ((ic->ic_flags & IEEE80211_F_USEPROT) &&
3874 1.47 dyoung rt->info[rix].phy == IEEE80211_T_OFDM &&
3875 1.47 dyoung (flags & HAL_TXDESC_NOACK) == 0) {
3876 1.47 dyoung /* XXX fragments must use CCK rates w/ protection */
3877 1.47 dyoung if (ic->ic_protmode == IEEE80211_PROT_RTSCTS)
3878 1.47 dyoung flags |= HAL_TXDESC_RTSENA;
3879 1.47 dyoung else if (ic->ic_protmode == IEEE80211_PROT_CTSONLY)
3880 1.47 dyoung flags |= HAL_TXDESC_CTSENA;
3881 1.80 dyoung if (isfrag) {
3882 1.80 dyoung /*
3883 1.80 dyoung * For frags it would be desirable to use the
3884 1.80 dyoung * highest CCK rate for RTS/CTS. But stations
3885 1.80 dyoung * farther away may detect it at a lower CCK rate
3886 1.80 dyoung * so use the configured protection rate instead
3887 1.80 dyoung * (for now).
3888 1.80 dyoung */
3889 1.80 dyoung cix = rt->info[sc->sc_protrix].controlRate;
3890 1.80 dyoung } else
3891 1.80 dyoung cix = rt->info[sc->sc_protrix].controlRate;
3892 1.47 dyoung sc->sc_stats.ast_tx_protect++;
3893 1.47 dyoung }
3894 1.47 dyoung
3895 1.47 dyoung /*
3896 1.18 dyoung * Calculate duration. This logically belongs in the 802.11
3897 1.18 dyoung * layer but it lacks sufficient information to calculate it.
3898 1.18 dyoung */
3899 1.18 dyoung if ((flags & HAL_TXDESC_NOACK) == 0 &&
3900 1.18 dyoung (wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) != IEEE80211_FC0_TYPE_CTL) {
3901 1.18 dyoung u_int16_t dur;
3902 1.18 dyoung /*
3903 1.18 dyoung * XXX not right with fragmentation.
3904 1.18 dyoung */
3905 1.47 dyoung if (shortPreamble)
3906 1.47 dyoung dur = rt->info[rix].spAckDuration;
3907 1.47 dyoung else
3908 1.47 dyoung dur = rt->info[rix].lpAckDuration;
3909 1.80 dyoung if (wh->i_fc[1] & IEEE80211_FC1_MORE_FRAG) {
3910 1.126 msaitoh dur += dur; /* additional SIFS+ACK */
3911 1.114 dyoung KASSERTMSG(m0->m_nextpkt != NULL, "no fragment");
3912 1.80 dyoung /*
3913 1.80 dyoung * Include the size of next fragment so NAV is
3914 1.80 dyoung * updated properly. The last fragment uses only
3915 1.80 dyoung * the ACK duration
3916 1.80 dyoung */
3917 1.80 dyoung dur += ath_hal_computetxtime(ah, rt,
3918 1.101 dyoung deduct_pad_bytes(m0->m_nextpkt->m_pkthdr.len,
3919 1.126 msaitoh hdrlen) -
3920 1.101 dyoung deduct_pad_bytes(m0->m_pkthdr.len, hdrlen) + pktlen,
3921 1.101 dyoung rix, shortPreamble);
3922 1.80 dyoung }
3923 1.80 dyoung if (isfrag) {
3924 1.80 dyoung /*
3925 1.80 dyoung * Force hardware to use computed duration for next
3926 1.80 dyoung * fragment by disabling multi-rate retry which updates
3927 1.80 dyoung * duration based on the multi-rate duration table.
3928 1.80 dyoung */
3929 1.80 dyoung try0 = ATH_TXMAXTRY;
3930 1.80 dyoung }
3931 1.47 dyoung *(u_int16_t *)wh->i_dur = htole16(dur);
3932 1.18 dyoung }
3933 1.18 dyoung
3934 1.18 dyoung /*
3935 1.1 dyoung * Calculate RTS/CTS rate and duration if needed.
3936 1.1 dyoung */
3937 1.1 dyoung ctsduration = 0;
3938 1.1 dyoung if (flags & (HAL_TXDESC_RTSENA|HAL_TXDESC_CTSENA)) {
3939 1.1 dyoung /*
3940 1.1 dyoung * CTS transmit rate is derived from the transmit rate
3941 1.1 dyoung * by looking in the h/w rate table. We must also factor
3942 1.1 dyoung * in whether or not a short preamble is to be used.
3943 1.1 dyoung */
3944 1.47 dyoung /* NB: cix is set above where RTS/CTS is enabled */
3945 1.114 dyoung KASSERTMSG(cix != 0xff, "cix not setup");
3946 1.1 dyoung ctsrate = rt->info[cix].rateCode;
3947 1.1 dyoung /*
3948 1.47 dyoung * Compute the transmit duration based on the frame
3949 1.47 dyoung * size and the size of an ACK frame. We call into the
3950 1.47 dyoung * HAL to do the computation since it depends on the
3951 1.47 dyoung * characteristics of the actual PHY being used.
3952 1.47 dyoung *
3953 1.47 dyoung * NB: CTS is assumed the same size as an ACK so we can
3954 1.47 dyoung * use the precalculated ACK durations.
3955 1.1 dyoung */
3956 1.47 dyoung if (shortPreamble) {
3957 1.47 dyoung ctsrate |= rt->info[cix].shortPreamble;
3958 1.47 dyoung if (flags & HAL_TXDESC_RTSENA) /* SIFS + CTS */
3959 1.47 dyoung ctsduration += rt->info[cix].spAckDuration;
3960 1.1 dyoung ctsduration += ath_hal_computetxtime(ah,
3961 1.47 dyoung rt, pktlen, rix, AH_TRUE);
3962 1.47 dyoung if ((flags & HAL_TXDESC_NOACK) == 0) /* SIFS + ACK */
3963 1.61 skrll ctsduration += rt->info[rix].spAckDuration;
3964 1.47 dyoung } else {
3965 1.47 dyoung if (flags & HAL_TXDESC_RTSENA) /* SIFS + CTS */
3966 1.47 dyoung ctsduration += rt->info[cix].lpAckDuration;
3967 1.1 dyoung ctsduration += ath_hal_computetxtime(ah,
3968 1.47 dyoung rt, pktlen, rix, AH_FALSE);
3969 1.47 dyoung if ((flags & HAL_TXDESC_NOACK) == 0) /* SIFS + ACK */
3970 1.61 skrll ctsduration += rt->info[rix].lpAckDuration;
3971 1.1 dyoung }
3972 1.47 dyoung /*
3973 1.47 dyoung * Must disable multi-rate retry when using RTS/CTS.
3974 1.47 dyoung */
3975 1.68 dyoung ismrr = 0;
3976 1.68 dyoung try0 = ATH_TXMGTTRY; /* XXX */
3977 1.1 dyoung } else
3978 1.1 dyoung ctsrate = 0;
3979 1.1 dyoung
3980 1.47 dyoung if (IFF_DUMPPKTS(sc, ATH_DEBUG_XMIT))
3981 1.82 christos ieee80211_dump_pkt(mtod(m0, void *), m0->m_len,
3982 1.47 dyoung sc->sc_hwmap[txrate].ieeerate, -1);
3983 1.124 msaitoh bpf_mtap3(ic->ic_rawbpf, m0, BPF_D_OUT);
3984 1.25 dyoung if (sc->sc_drvbpf) {
3985 1.68 dyoung u_int64_t tsf = ath_hal_gettsf64(ah);
3986 1.68 dyoung
3987 1.68 dyoung sc->sc_tx_th.wt_tsf = htole64(tsf);
3988 1.47 dyoung sc->sc_tx_th.wt_flags = sc->sc_hwmap[txrate].txflags;
3989 1.25 dyoung if (iswep)
3990 1.25 dyoung sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_WEP;
3991 1.80 dyoung if (isfrag)
3992 1.80 dyoung sc->sc_tx_th.wt_flags |= IEEE80211_RADIOTAP_F_FRAG;
3993 1.47 dyoung sc->sc_tx_th.wt_rate = sc->sc_hwmap[txrate].ieeerate;
3994 1.47 dyoung sc->sc_tx_th.wt_txpower = ni->ni_txpower;
3995 1.47 dyoung sc->sc_tx_th.wt_antenna = sc->sc_txantenna;
3996 1.25 dyoung
3997 1.124 msaitoh bpf_mtap2(sc->sc_drvbpf, &sc->sc_tx_th, sc->sc_tx_th_len, m0,
3998 1.124 msaitoh BPF_D_OUT);
3999 1.25 dyoung }
4000 1.25 dyoung
4001 1.73 blymn /*
4002 1.47 dyoung * Determine if a tx interrupt should be generated for
4003 1.47 dyoung * this descriptor. We take a tx interrupt to reap
4004 1.47 dyoung * descriptors when the h/w hits an EOL condition or
4005 1.47 dyoung * when the descriptor is specifically marked to generate
4006 1.47 dyoung * an interrupt. We periodically mark descriptors in this
4007 1.47 dyoung * way to insure timely replenishing of the supply needed
4008 1.47 dyoung * for sending frames. Defering interrupts reduces system
4009 1.47 dyoung * load and potentially allows more concurrent work to be
4010 1.47 dyoung * done but if done to aggressively can cause senders to
4011 1.47 dyoung * backup.
4012 1.47 dyoung *
4013 1.47 dyoung * NB: use >= to deal with sc_txintrperiod changing
4014 1.47 dyoung * dynamically through sysctl.
4015 1.47 dyoung */
4016 1.47 dyoung if (flags & HAL_TXDESC_INTREQ) {
4017 1.47 dyoung txq->axq_intrcnt = 0;
4018 1.47 dyoung } else if (++txq->axq_intrcnt >= sc->sc_txintrperiod) {
4019 1.47 dyoung flags |= HAL_TXDESC_INTREQ;
4020 1.47 dyoung txq->axq_intrcnt = 0;
4021 1.47 dyoung }
4022 1.47 dyoung
4023 1.1 dyoung /*
4024 1.1 dyoung * Formulate first tx descriptor with tx controls.
4025 1.1 dyoung */
4026 1.1 dyoung /* XXX check return value? */
4027 1.1 dyoung ath_hal_setuptxdesc(ah, ds
4028 1.1 dyoung , pktlen /* packet length */
4029 1.1 dyoung , hdrlen /* header length */
4030 1.1 dyoung , atype /* Atheros packet type */
4031 1.47 dyoung , ni->ni_txpower /* txpower */
4032 1.47 dyoung , txrate, try0 /* series 0 rate/tries */
4033 1.47 dyoung , keyix /* key cache index */
4034 1.47 dyoung , sc->sc_txantenna /* antenna mode */
4035 1.1 dyoung , flags /* flags */
4036 1.1 dyoung , ctsrate /* rts/cts rate */
4037 1.1 dyoung , ctsduration /* rts/cts duration */
4038 1.1 dyoung );
4039 1.55 dyoung bf->bf_flags = flags;
4040 1.47 dyoung /*
4041 1.47 dyoung * Setup the multi-rate retry state only when we're
4042 1.47 dyoung * going to use it. This assumes ath_hal_setuptxdesc
4043 1.47 dyoung * initializes the descriptors (so we don't have to)
4044 1.47 dyoung * when the hardware supports multi-rate retry and
4045 1.47 dyoung * we don't use it.
4046 1.47 dyoung */
4047 1.68 dyoung if (ismrr)
4048 1.47 dyoung ath_rate_setupxtxdesc(sc, an, ds, shortPreamble, rix);
4049 1.47 dyoung
4050 1.1 dyoung /*
4051 1.1 dyoung * Fillin the remainder of the descriptor info.
4052 1.1 dyoung */
4053 1.47 dyoung ds0 = ds;
4054 1.1 dyoung for (i = 0; i < bf->bf_nseg; i++, ds++) {
4055 1.1 dyoung ds->ds_data = bf->bf_segs[i].ds_addr;
4056 1.1 dyoung if (i == bf->bf_nseg - 1)
4057 1.1 dyoung ds->ds_link = 0;
4058 1.1 dyoung else
4059 1.1 dyoung ds->ds_link = bf->bf_daddr + sizeof(*ds) * (i + 1);
4060 1.1 dyoung ath_hal_filltxdesc(ah, ds
4061 1.1 dyoung , bf->bf_segs[i].ds_len /* segment length */
4062 1.1 dyoung , i == 0 /* first segment */
4063 1.1 dyoung , i == bf->bf_nseg - 1 /* last segment */
4064 1.47 dyoung , ds0 /* first descriptor */
4065 1.1 dyoung );
4066 1.74 gdamore
4067 1.104 alc /* NB: The desc swap function becomes void,
4068 1.74 gdamore * if descriptor swapping is not enabled
4069 1.74 gdamore */
4070 1.74 gdamore ath_desc_swap(ds);
4071 1.74 gdamore
4072 1.47 dyoung DPRINTF(sc, ATH_DEBUG_XMIT,
4073 1.47 dyoung "%s: %d: %08x %08x %08x %08x %08x %08x\n",
4074 1.25 dyoung __func__, i, ds->ds_link, ds->ds_data,
4075 1.47 dyoung ds->ds_ctl0, ds->ds_ctl1, ds->ds_hw[0], ds->ds_hw[1]);
4076 1.1 dyoung }
4077 1.1 dyoung /*
4078 1.1 dyoung * Insert the frame on the outbound list and
4079 1.1 dyoung * pass it on to the hardware.
4080 1.1 dyoung */
4081 1.47 dyoung ATH_TXQ_LOCK(txq);
4082 1.47 dyoung ATH_TXQ_INSERT_TAIL(txq, bf, bf_list);
4083 1.47 dyoung if (txq->axq_link == NULL) {
4084 1.47 dyoung ath_hal_puttxbuf(ah, txq->axq_qnum, bf->bf_daddr);
4085 1.47 dyoung DPRINTF(sc, ATH_DEBUG_XMIT,
4086 1.75 gdamore "%s: TXDP[%u] = %" PRIx64 " (%p) depth %d\n", __func__,
4087 1.75 gdamore txq->axq_qnum, (uint64_t)bf->bf_daddr, bf->bf_desc,
4088 1.75 gdamore txq->axq_depth);
4089 1.1 dyoung } else {
4090 1.74 gdamore *txq->axq_link = HTOAH32(bf->bf_daddr);
4091 1.47 dyoung DPRINTF(sc, ATH_DEBUG_XMIT,
4092 1.75 gdamore "%s: link[%u](%p)=%" PRIx64 " (%p) depth %d\n",
4093 1.75 gdamore __func__, txq->axq_qnum, txq->axq_link,
4094 1.75 gdamore (uint64_t)bf->bf_daddr, bf->bf_desc, txq->axq_depth);
4095 1.1 dyoung }
4096 1.47 dyoung txq->axq_link = &bf->bf_desc[bf->bf_nseg - 1].ds_link;
4097 1.47 dyoung /*
4098 1.47 dyoung * The CAB queue is started from the SWBA handler since
4099 1.47 dyoung * frames only go out on DTIM and to avoid possible races.
4100 1.47 dyoung */
4101 1.47 dyoung if (txq != sc->sc_cabq)
4102 1.47 dyoung ath_hal_txstart(ah, txq->axq_qnum);
4103 1.47 dyoung ATH_TXQ_UNLOCK(txq);
4104 1.1 dyoung
4105 1.1 dyoung return 0;
4106 1.1 dyoung }
4107 1.1 dyoung
4108 1.47 dyoung /*
4109 1.47 dyoung * Process completed xmit descriptors from the specified queue.
4110 1.47 dyoung */
4111 1.68 dyoung static int
4112 1.47 dyoung ath_tx_processq(struct ath_softc *sc, struct ath_txq *txq)
4113 1.1 dyoung {
4114 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4115 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
4116 1.1 dyoung struct ath_buf *bf;
4117 1.47 dyoung struct ath_desc *ds, *ds0;
4118 1.1 dyoung struct ieee80211_node *ni;
4119 1.1 dyoung struct ath_node *an;
4120 1.68 dyoung int sr, lr, pri, nacked;
4121 1.1 dyoung HAL_STATUS status;
4122 1.1 dyoung
4123 1.47 dyoung DPRINTF(sc, ATH_DEBUG_TX_PROC, "%s: tx queue %u head %p link %p\n",
4124 1.47 dyoung __func__, txq->axq_qnum,
4125 1.82 christos (void *)(uintptr_t) ath_hal_gettxbuf(sc->sc_ah, txq->axq_qnum),
4126 1.47 dyoung txq->axq_link);
4127 1.68 dyoung nacked = 0;
4128 1.1 dyoung for (;;) {
4129 1.47 dyoung ATH_TXQ_LOCK(txq);
4130 1.47 dyoung txq->axq_intrcnt = 0; /* reset periodic desc intr count */
4131 1.47 dyoung bf = STAILQ_FIRST(&txq->axq_q);
4132 1.1 dyoung if (bf == NULL) {
4133 1.47 dyoung txq->axq_link = NULL;
4134 1.47 dyoung ATH_TXQ_UNLOCK(txq);
4135 1.1 dyoung break;
4136 1.1 dyoung }
4137 1.47 dyoung ds0 = &bf->bf_desc[0];
4138 1.1 dyoung ds = &bf->bf_desc[bf->bf_nseg - 1];
4139 1.104 alc status = ath_hal_txprocdesc(ah, ds, &ds->ds_txstat);
4140 1.47 dyoung if (sc->sc_debug & ATH_DEBUG_XMIT_DESC)
4141 1.1 dyoung ath_printtxbuf(bf, status == HAL_OK);
4142 1.1 dyoung if (status == HAL_EINPROGRESS) {
4143 1.47 dyoung ATH_TXQ_UNLOCK(txq);
4144 1.1 dyoung break;
4145 1.1 dyoung }
4146 1.47 dyoung ATH_TXQ_REMOVE_HEAD(txq, bf_list);
4147 1.47 dyoung ATH_TXQ_UNLOCK(txq);
4148 1.1 dyoung
4149 1.1 dyoung ni = bf->bf_node;
4150 1.1 dyoung if (ni != NULL) {
4151 1.47 dyoung an = ATH_NODE(ni);
4152 1.1 dyoung if (ds->ds_txstat.ts_status == 0) {
4153 1.47 dyoung u_int8_t txant = ds->ds_txstat.ts_antenna;
4154 1.47 dyoung sc->sc_stats.ast_ant_tx[txant]++;
4155 1.47 dyoung sc->sc_ant_tx[txant]++;
4156 1.47 dyoung if (ds->ds_txstat.ts_rate & HAL_TXSTAT_ALTRATE)
4157 1.47 dyoung sc->sc_stats.ast_tx_altrate++;
4158 1.47 dyoung sc->sc_stats.ast_tx_rssi =
4159 1.47 dyoung ds->ds_txstat.ts_rssi;
4160 1.68 dyoung ATH_RSSI_LPF(sc->sc_halstats.ns_avgtxrssi,
4161 1.47 dyoung ds->ds_txstat.ts_rssi);
4162 1.47 dyoung pri = M_WME_GETAC(bf->bf_m);
4163 1.47 dyoung if (pri >= WME_AC_VO)
4164 1.47 dyoung ic->ic_wme.wme_hipri_traffic++;
4165 1.47 dyoung ni->ni_inact = ni->ni_inact_reload;
4166 1.1 dyoung } else {
4167 1.1 dyoung if (ds->ds_txstat.ts_status & HAL_TXERR_XRETRY)
4168 1.1 dyoung sc->sc_stats.ast_tx_xretries++;
4169 1.1 dyoung if (ds->ds_txstat.ts_status & HAL_TXERR_FIFO)
4170 1.1 dyoung sc->sc_stats.ast_tx_fifoerr++;
4171 1.1 dyoung if (ds->ds_txstat.ts_status & HAL_TXERR_FILT)
4172 1.1 dyoung sc->sc_stats.ast_tx_filtered++;
4173 1.1 dyoung }
4174 1.1 dyoung sr = ds->ds_txstat.ts_shortretry;
4175 1.1 dyoung lr = ds->ds_txstat.ts_longretry;
4176 1.1 dyoung sc->sc_stats.ast_tx_shortretry += sr;
4177 1.1 dyoung sc->sc_stats.ast_tx_longretry += lr;
4178 1.47 dyoung /*
4179 1.47 dyoung * Hand the descriptor to the rate control algorithm.
4180 1.47 dyoung */
4181 1.55 dyoung if ((ds->ds_txstat.ts_status & HAL_TXERR_FILT) == 0 &&
4182 1.68 dyoung (bf->bf_flags & HAL_TXDESC_NOACK) == 0) {
4183 1.68 dyoung /*
4184 1.68 dyoung * If frame was ack'd update the last rx time
4185 1.68 dyoung * used to workaround phantom bmiss interrupts.
4186 1.68 dyoung */
4187 1.68 dyoung if (ds->ds_txstat.ts_status == 0)
4188 1.68 dyoung nacked++;
4189 1.55 dyoung ath_rate_tx_complete(sc, an, ds, ds0);
4190 1.68 dyoung }
4191 1.1 dyoung /*
4192 1.1 dyoung * Reclaim reference to node.
4193 1.1 dyoung *
4194 1.1 dyoung * NB: the node may be reclaimed here if, for example
4195 1.1 dyoung * this is a DEAUTH message that was sent and the
4196 1.1 dyoung * node was timed out due to inactivity.
4197 1.1 dyoung */
4198 1.47 dyoung ieee80211_free_node(ni);
4199 1.1 dyoung }
4200 1.47 dyoung bus_dmamap_sync(sc->sc_dmat, bf->bf_dmamap, 0,
4201 1.47 dyoung bf->bf_dmamap->dm_mapsize, BUS_DMASYNC_POSTWRITE);
4202 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap);
4203 1.1 dyoung m_freem(bf->bf_m);
4204 1.1 dyoung bf->bf_m = NULL;
4205 1.1 dyoung bf->bf_node = NULL;
4206 1.1 dyoung
4207 1.47 dyoung ATH_TXBUF_LOCK(sc);
4208 1.47 dyoung STAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list);
4209 1.84 dyoung sc->sc_if.if_flags &= ~IFF_OACTIVE;
4210 1.47 dyoung ATH_TXBUF_UNLOCK(sc);
4211 1.1 dyoung }
4212 1.68 dyoung return nacked;
4213 1.68 dyoung }
4214 1.68 dyoung
4215 1.68 dyoung static inline int
4216 1.68 dyoung txqactive(struct ath_hal *ah, int qnum)
4217 1.68 dyoung {
4218 1.68 dyoung u_int32_t txqs = 1<<qnum;
4219 1.68 dyoung ath_hal_gettxintrtxqs(ah, &txqs);
4220 1.68 dyoung return (txqs & (1<<qnum));
4221 1.47 dyoung }
4222 1.47 dyoung
4223 1.47 dyoung /*
4224 1.47 dyoung * Deferred processing of transmit interrupt; special-cased
4225 1.47 dyoung * for a single hardware transmit queue (e.g. 5210 and 5211).
4226 1.47 dyoung */
4227 1.47 dyoung static void
4228 1.79 christos ath_tx_proc_q0(void *arg, int npending)
4229 1.47 dyoung {
4230 1.47 dyoung struct ath_softc *sc = arg;
4231 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
4232 1.123 nonaka #ifdef __NetBSD__
4233 1.123 nonaka int s;
4234 1.123 nonaka #endif
4235 1.47 dyoung
4236 1.125 msaitoh if (txqactive(sc->sc_ah, 0) && ath_tx_processq(sc, &sc->sc_txq[0]) > 0)
4237 1.68 dyoung sc->sc_lastrx = ath_hal_gettsf64(sc->sc_ah);
4238 1.125 msaitoh
4239 1.68 dyoung if (txqactive(sc->sc_ah, sc->sc_cabq->axq_qnum))
4240 1.68 dyoung ath_tx_processq(sc, sc->sc_cabq);
4241 1.47 dyoung
4242 1.47 dyoung if (sc->sc_softled)
4243 1.47 dyoung ath_led_event(sc, ATH_LED_TX);
4244 1.47 dyoung
4245 1.123 nonaka #ifdef __NetBSD__
4246 1.123 nonaka s = splnet();
4247 1.123 nonaka #endif
4248 1.47 dyoung ath_start(ifp);
4249 1.123 nonaka #ifdef __NetBSD__
4250 1.123 nonaka splx(s);
4251 1.123 nonaka #endif
4252 1.47 dyoung }
4253 1.47 dyoung
4254 1.47 dyoung /*
4255 1.47 dyoung * Deferred processing of transmit interrupt; special-cased
4256 1.47 dyoung * for four hardware queues, 0-3 (e.g. 5212 w/ WME support).
4257 1.47 dyoung */
4258 1.47 dyoung static void
4259 1.79 christos ath_tx_proc_q0123(void *arg, int npending)
4260 1.47 dyoung {
4261 1.47 dyoung struct ath_softc *sc = arg;
4262 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
4263 1.68 dyoung int nacked;
4264 1.123 nonaka #ifdef __NetBSD__
4265 1.123 nonaka int s;
4266 1.123 nonaka #endif
4267 1.47 dyoung
4268 1.47 dyoung /*
4269 1.47 dyoung * Process each active queue.
4270 1.47 dyoung */
4271 1.68 dyoung nacked = 0;
4272 1.68 dyoung if (txqactive(sc->sc_ah, 0))
4273 1.68 dyoung nacked += ath_tx_processq(sc, &sc->sc_txq[0]);
4274 1.68 dyoung if (txqactive(sc->sc_ah, 1))
4275 1.68 dyoung nacked += ath_tx_processq(sc, &sc->sc_txq[1]);
4276 1.68 dyoung if (txqactive(sc->sc_ah, 2))
4277 1.68 dyoung nacked += ath_tx_processq(sc, &sc->sc_txq[2]);
4278 1.68 dyoung if (txqactive(sc->sc_ah, 3))
4279 1.68 dyoung nacked += ath_tx_processq(sc, &sc->sc_txq[3]);
4280 1.68 dyoung if (txqactive(sc->sc_ah, sc->sc_cabq->axq_qnum))
4281 1.68 dyoung ath_tx_processq(sc, sc->sc_cabq);
4282 1.83 dyoung if (nacked) {
4283 1.68 dyoung sc->sc_lastrx = ath_hal_gettsf64(sc->sc_ah);
4284 1.83 dyoung }
4285 1.47 dyoung
4286 1.47 dyoung if (sc->sc_softled)
4287 1.47 dyoung ath_led_event(sc, ATH_LED_TX);
4288 1.47 dyoung
4289 1.123 nonaka #ifdef __NetBSD__
4290 1.123 nonaka s = splnet();
4291 1.123 nonaka #endif
4292 1.1 dyoung ath_start(ifp);
4293 1.123 nonaka #ifdef __NetBSD__
4294 1.123 nonaka splx(s);
4295 1.123 nonaka #endif
4296 1.1 dyoung }
4297 1.1 dyoung
4298 1.1 dyoung /*
4299 1.47 dyoung * Deferred processing of transmit interrupt.
4300 1.1 dyoung */
4301 1.1 dyoung static void
4302 1.79 christos ath_tx_proc(void *arg, int npending)
4303 1.47 dyoung {
4304 1.47 dyoung struct ath_softc *sc = arg;
4305 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
4306 1.68 dyoung int i, nacked;
4307 1.123 nonaka #ifdef __NetBSD__
4308 1.123 nonaka int s;
4309 1.123 nonaka #endif
4310 1.47 dyoung
4311 1.47 dyoung /*
4312 1.47 dyoung * Process each active queue.
4313 1.47 dyoung */
4314 1.68 dyoung nacked = 0;
4315 1.47 dyoung for (i = 0; i < HAL_NUM_TX_QUEUES; i++)
4316 1.68 dyoung if (ATH_TXQ_SETUP(sc, i) && txqactive(sc->sc_ah, i))
4317 1.68 dyoung nacked += ath_tx_processq(sc, &sc->sc_txq[i]);
4318 1.83 dyoung if (nacked) {
4319 1.68 dyoung sc->sc_lastrx = ath_hal_gettsf64(sc->sc_ah);
4320 1.83 dyoung }
4321 1.47 dyoung
4322 1.47 dyoung if (sc->sc_softled)
4323 1.47 dyoung ath_led_event(sc, ATH_LED_TX);
4324 1.47 dyoung
4325 1.123 nonaka #ifdef __NetBSD__
4326 1.123 nonaka s = splnet();
4327 1.123 nonaka #endif
4328 1.47 dyoung ath_start(ifp);
4329 1.123 nonaka #ifdef __NetBSD__
4330 1.123 nonaka splx(s);
4331 1.123 nonaka #endif
4332 1.47 dyoung }
4333 1.47 dyoung
4334 1.47 dyoung static void
4335 1.47 dyoung ath_tx_draintxq(struct ath_softc *sc, struct ath_txq *txq)
4336 1.1 dyoung {
4337 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4338 1.25 dyoung struct ieee80211_node *ni;
4339 1.1 dyoung struct ath_buf *bf;
4340 1.104 alc struct ath_desc *ds;
4341 1.1 dyoung
4342 1.47 dyoung /*
4343 1.47 dyoung * NB: this assumes output has been stopped and
4344 1.47 dyoung * we do not need to block ath_tx_tasklet
4345 1.47 dyoung */
4346 1.1 dyoung for (;;) {
4347 1.47 dyoung ATH_TXQ_LOCK(txq);
4348 1.47 dyoung bf = STAILQ_FIRST(&txq->axq_q);
4349 1.1 dyoung if (bf == NULL) {
4350 1.47 dyoung txq->axq_link = NULL;
4351 1.47 dyoung ATH_TXQ_UNLOCK(txq);
4352 1.1 dyoung break;
4353 1.1 dyoung }
4354 1.47 dyoung ATH_TXQ_REMOVE_HEAD(txq, bf_list);
4355 1.47 dyoung ATH_TXQ_UNLOCK(txq);
4356 1.104 alc ds = &bf->bf_desc[bf->bf_nseg - 1];
4357 1.47 dyoung if (sc->sc_debug & ATH_DEBUG_RESET)
4358 1.1 dyoung ath_printtxbuf(bf,
4359 1.104 alc ath_hal_txprocdesc(ah, bf->bf_desc,
4360 1.104 alc &ds->ds_txstat) == HAL_OK);
4361 1.1 dyoung bus_dmamap_unload(sc->sc_dmat, bf->bf_dmamap);
4362 1.1 dyoung m_freem(bf->bf_m);
4363 1.1 dyoung bf->bf_m = NULL;
4364 1.25 dyoung ni = bf->bf_node;
4365 1.1 dyoung bf->bf_node = NULL;
4366 1.35 dyoung if (ni != NULL) {
4367 1.25 dyoung /*
4368 1.25 dyoung * Reclaim node reference.
4369 1.25 dyoung */
4370 1.47 dyoung ieee80211_free_node(ni);
4371 1.25 dyoung }
4372 1.47 dyoung ATH_TXBUF_LOCK(sc);
4373 1.47 dyoung STAILQ_INSERT_TAIL(&sc->sc_txbuf, bf, bf_list);
4374 1.84 dyoung sc->sc_if.if_flags &= ~IFF_OACTIVE;
4375 1.47 dyoung ATH_TXBUF_UNLOCK(sc);
4376 1.1 dyoung }
4377 1.47 dyoung }
4378 1.47 dyoung
4379 1.47 dyoung static void
4380 1.47 dyoung ath_tx_stopdma(struct ath_softc *sc, struct ath_txq *txq)
4381 1.47 dyoung {
4382 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
4383 1.47 dyoung
4384 1.47 dyoung (void) ath_hal_stoptxdma(ah, txq->axq_qnum);
4385 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RESET, "%s: tx queue [%u] %p, link %p\n",
4386 1.47 dyoung __func__, txq->axq_qnum,
4387 1.82 christos (void *)(uintptr_t) ath_hal_gettxbuf(ah, txq->axq_qnum),
4388 1.47 dyoung txq->axq_link);
4389 1.47 dyoung }
4390 1.47 dyoung
4391 1.47 dyoung /*
4392 1.47 dyoung * Drain the transmit queues and reclaim resources.
4393 1.47 dyoung */
4394 1.47 dyoung static void
4395 1.47 dyoung ath_draintxq(struct ath_softc *sc)
4396 1.47 dyoung {
4397 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
4398 1.47 dyoung int i;
4399 1.47 dyoung
4400 1.47 dyoung /* XXX return value */
4401 1.102 joerg if (device_is_active(sc->sc_dev)) {
4402 1.47 dyoung /* don't touch the hardware if marked invalid */
4403 1.47 dyoung (void) ath_hal_stoptxdma(ah, sc->sc_bhalq);
4404 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RESET,
4405 1.47 dyoung "%s: beacon queue %p\n", __func__,
4406 1.82 christos (void *)(uintptr_t) ath_hal_gettxbuf(ah, sc->sc_bhalq));
4407 1.47 dyoung for (i = 0; i < HAL_NUM_TX_QUEUES; i++)
4408 1.47 dyoung if (ATH_TXQ_SETUP(sc, i))
4409 1.47 dyoung ath_tx_stopdma(sc, &sc->sc_txq[i]);
4410 1.47 dyoung }
4411 1.47 dyoung for (i = 0; i < HAL_NUM_TX_QUEUES; i++)
4412 1.47 dyoung if (ATH_TXQ_SETUP(sc, i))
4413 1.47 dyoung ath_tx_draintxq(sc, &sc->sc_txq[i]);
4414 1.1 dyoung }
4415 1.1 dyoung
4416 1.1 dyoung /*
4417 1.1 dyoung * Disable the receive h/w in preparation for a reset.
4418 1.1 dyoung */
4419 1.1 dyoung static void
4420 1.1 dyoung ath_stoprecv(struct ath_softc *sc)
4421 1.1 dyoung {
4422 1.18 dyoung #define PA2DESC(_sc, _pa) \
4423 1.82 christos ((struct ath_desc *)((char *)(_sc)->sc_rxdma.dd_desc + \
4424 1.47 dyoung ((_pa) - (_sc)->sc_rxdma.dd_desc_paddr)))
4425 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4426 1.1 dyoung
4427 1.1 dyoung ath_hal_stoppcurecv(ah); /* disable PCU */
4428 1.1 dyoung ath_hal_setrxfilter(ah, 0); /* clear recv filter */
4429 1.1 dyoung ath_hal_stopdmarecv(ah); /* disable DMA engine */
4430 1.47 dyoung DELAY(3000); /* 3ms is long enough for 1 frame */
4431 1.47 dyoung if (sc->sc_debug & (ATH_DEBUG_RESET | ATH_DEBUG_FATAL)) {
4432 1.1 dyoung struct ath_buf *bf;
4433 1.1 dyoung
4434 1.25 dyoung printf("%s: rx queue %p, link %p\n", __func__,
4435 1.82 christos (void *)(uintptr_t) ath_hal_getrxbuf(ah), sc->sc_rxlink);
4436 1.47 dyoung STAILQ_FOREACH(bf, &sc->sc_rxbuf, bf_list) {
4437 1.18 dyoung struct ath_desc *ds = bf->bf_desc;
4438 1.47 dyoung HAL_STATUS status = ath_hal_rxprocdesc(ah, ds,
4439 1.104 alc bf->bf_daddr, PA2DESC(sc, ds->ds_link),
4440 1.106 jmcneill &ds->ds_rxstat);
4441 1.47 dyoung if (status == HAL_OK || (sc->sc_debug & ATH_DEBUG_FATAL))
4442 1.47 dyoung ath_printrxbuf(bf, status == HAL_OK);
4443 1.1 dyoung }
4444 1.1 dyoung }
4445 1.1 dyoung sc->sc_rxlink = NULL; /* just in case */
4446 1.18 dyoung #undef PA2DESC
4447 1.1 dyoung }
4448 1.1 dyoung
4449 1.1 dyoung /*
4450 1.1 dyoung * Enable the receive h/w following a reset.
4451 1.1 dyoung */
4452 1.1 dyoung static int
4453 1.1 dyoung ath_startrecv(struct ath_softc *sc)
4454 1.1 dyoung {
4455 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4456 1.1 dyoung struct ath_buf *bf;
4457 1.1 dyoung
4458 1.1 dyoung sc->sc_rxlink = NULL;
4459 1.47 dyoung STAILQ_FOREACH(bf, &sc->sc_rxbuf, bf_list) {
4460 1.1 dyoung int error = ath_rxbuf_init(sc, bf);
4461 1.1 dyoung if (error != 0) {
4462 1.47 dyoung DPRINTF(sc, ATH_DEBUG_RECV,
4463 1.47 dyoung "%s: ath_rxbuf_init failed %d\n",
4464 1.47 dyoung __func__, error);
4465 1.1 dyoung return error;
4466 1.1 dyoung }
4467 1.1 dyoung }
4468 1.1 dyoung
4469 1.47 dyoung bf = STAILQ_FIRST(&sc->sc_rxbuf);
4470 1.1 dyoung ath_hal_putrxbuf(ah, bf->bf_daddr);
4471 1.1 dyoung ath_hal_rxena(ah); /* enable recv descriptors */
4472 1.1 dyoung ath_mode_init(sc); /* set filters, etc. */
4473 1.1 dyoung ath_hal_startpcurecv(ah); /* re-enable PCU/DMA engine */
4474 1.1 dyoung return 0;
4475 1.1 dyoung }
4476 1.1 dyoung
4477 1.73 blymn /*
4478 1.47 dyoung * Update internal state after a channel change.
4479 1.1 dyoung */
4480 1.47 dyoung static void
4481 1.47 dyoung ath_chan_change(struct ath_softc *sc, struct ieee80211_channel *chan)
4482 1.1 dyoung {
4483 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
4484 1.47 dyoung enum ieee80211_phymode mode;
4485 1.47 dyoung u_int16_t flags;
4486 1.47 dyoung
4487 1.47 dyoung /*
4488 1.47 dyoung * Change channels and update the h/w rate map
4489 1.47 dyoung * if we're switching; e.g. 11a to 11b/g.
4490 1.47 dyoung */
4491 1.47 dyoung mode = ieee80211_chan2mode(ic, chan);
4492 1.47 dyoung if (mode != sc->sc_curmode)
4493 1.47 dyoung ath_setcurmode(sc, mode);
4494 1.47 dyoung /*
4495 1.47 dyoung * Update BPF state. NB: ethereal et. al. don't handle
4496 1.47 dyoung * merged flags well so pick a unique mode for their use.
4497 1.47 dyoung */
4498 1.47 dyoung if (IEEE80211_IS_CHAN_A(chan))
4499 1.47 dyoung flags = IEEE80211_CHAN_A;
4500 1.47 dyoung /* XXX 11g schizophrenia */
4501 1.47 dyoung else if (IEEE80211_IS_CHAN_G(chan) ||
4502 1.47 dyoung IEEE80211_IS_CHAN_PUREG(chan))
4503 1.47 dyoung flags = IEEE80211_CHAN_G;
4504 1.47 dyoung else
4505 1.47 dyoung flags = IEEE80211_CHAN_B;
4506 1.47 dyoung if (IEEE80211_IS_CHAN_T(chan))
4507 1.47 dyoung flags |= IEEE80211_CHAN_TURBO;
4508 1.47 dyoung sc->sc_tx_th.wt_chan_freq = sc->sc_rx_th.wr_chan_freq =
4509 1.47 dyoung htole16(chan->ic_freq);
4510 1.47 dyoung sc->sc_tx_th.wt_chan_flags = sc->sc_rx_th.wr_chan_flags =
4511 1.47 dyoung htole16(flags);
4512 1.47 dyoung }
4513 1.47 dyoung
4514 1.104 alc #if 0
4515 1.47 dyoung /*
4516 1.68 dyoung * Poll for a channel clear indication; this is required
4517 1.68 dyoung * for channels requiring DFS and not previously visited
4518 1.68 dyoung * and/or with a recent radar detection.
4519 1.68 dyoung */
4520 1.68 dyoung static void
4521 1.68 dyoung ath_dfswait(void *arg)
4522 1.68 dyoung {
4523 1.68 dyoung struct ath_softc *sc = arg;
4524 1.68 dyoung struct ath_hal *ah = sc->sc_ah;
4525 1.68 dyoung HAL_CHANNEL hchan;
4526 1.68 dyoung
4527 1.68 dyoung ath_hal_radar_wait(ah, &hchan);
4528 1.68 dyoung if (hchan.privFlags & CHANNEL_INTERFERENCE) {
4529 1.68 dyoung if_printf(&sc->sc_if,
4530 1.68 dyoung "channel %u/0x%x/0x%x has interference\n",
4531 1.68 dyoung hchan.channel, hchan.channelFlags, hchan.privFlags);
4532 1.68 dyoung return;
4533 1.68 dyoung }
4534 1.68 dyoung if ((hchan.privFlags & CHANNEL_DFS) == 0) {
4535 1.68 dyoung /* XXX should not happen */
4536 1.68 dyoung return;
4537 1.68 dyoung }
4538 1.68 dyoung if (hchan.privFlags & CHANNEL_DFS_CLEAR) {
4539 1.68 dyoung sc->sc_curchan.privFlags |= CHANNEL_DFS_CLEAR;
4540 1.68 dyoung sc->sc_if.if_flags &= ~IFF_OACTIVE;
4541 1.68 dyoung if_printf(&sc->sc_if,
4542 1.68 dyoung "channel %u/0x%x/0x%x marked clear\n",
4543 1.68 dyoung hchan.channel, hchan.channelFlags, hchan.privFlags);
4544 1.68 dyoung } else
4545 1.68 dyoung callout_reset(&sc->sc_dfs_ch, 2 * hz, ath_dfswait, sc);
4546 1.68 dyoung }
4547 1.104 alc #endif
4548 1.68 dyoung
4549 1.68 dyoung /*
4550 1.47 dyoung * Set/change channels. If the channel is really being changed,
4551 1.133 msaitoh * it's done by resetting the chip. To accomplish this we must
4552 1.47 dyoung * first cleanup any pending DMA, then restart stuff after a la
4553 1.47 dyoung * ath_init.
4554 1.47 dyoung */
4555 1.47 dyoung static int
4556 1.47 dyoung ath_chan_set(struct ath_softc *sc, struct ieee80211_channel *chan)
4557 1.47 dyoung {
4558 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
4559 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
4560 1.47 dyoung HAL_CHANNEL hchan;
4561 1.1 dyoung
4562 1.47 dyoung /*
4563 1.47 dyoung * Convert to a HAL channel description with
4564 1.47 dyoung * the flags constrained to reflect the current
4565 1.47 dyoung * operating mode.
4566 1.47 dyoung */
4567 1.47 dyoung hchan.channel = chan->ic_freq;
4568 1.47 dyoung hchan.channelFlags = ath_chan2flags(ic, chan);
4569 1.47 dyoung
4570 1.68 dyoung DPRINTF(sc, ATH_DEBUG_RESET,
4571 1.68 dyoung "%s: %u (%u MHz, hal flags 0x%x) -> %u (%u MHz, hal flags 0x%x)\n",
4572 1.47 dyoung __func__,
4573 1.68 dyoung ath_hal_mhz2ieee(ah, sc->sc_curchan.channel,
4574 1.47 dyoung sc->sc_curchan.channelFlags),
4575 1.126 msaitoh sc->sc_curchan.channel, sc->sc_curchan.channelFlags,
4576 1.68 dyoung ath_hal_mhz2ieee(ah, hchan.channel, hchan.channelFlags),
4577 1.126 msaitoh hchan.channel, hchan.channelFlags);
4578 1.47 dyoung if (hchan.channel != sc->sc_curchan.channel ||
4579 1.47 dyoung hchan.channelFlags != sc->sc_curchan.channelFlags) {
4580 1.1 dyoung HAL_STATUS status;
4581 1.1 dyoung
4582 1.1 dyoung /*
4583 1.1 dyoung * To switch channels clear any pending DMA operations;
4584 1.1 dyoung * wait long enough for the RX fifo to drain, reset the
4585 1.1 dyoung * hardware at the new frequency, and then re-enable
4586 1.1 dyoung * the relevant bits of the h/w.
4587 1.1 dyoung */
4588 1.1 dyoung ath_hal_intrset(ah, 0); /* disable interrupts */
4589 1.1 dyoung ath_draintxq(sc); /* clear pending tx frames */
4590 1.1 dyoung ath_stoprecv(sc); /* turn off frame recv */
4591 1.1 dyoung if (!ath_hal_reset(ah, ic->ic_opmode, &hchan, AH_TRUE, &status)) {
4592 1.68 dyoung if_printf(ic->ic_ifp, "%s: unable to reset "
4593 1.69 lukem "channel %u (%u MHz, flags 0x%x hal flags 0x%x)\n",
4594 1.68 dyoung __func__, ieee80211_chan2ieee(ic, chan),
4595 1.68 dyoung chan->ic_freq, chan->ic_flags, hchan.channelFlags);
4596 1.1 dyoung return EIO;
4597 1.1 dyoung }
4598 1.47 dyoung sc->sc_curchan = hchan;
4599 1.47 dyoung ath_update_txpow(sc); /* update tx power state */
4600 1.89 dyoung ath_restore_diversity(sc);
4601 1.68 dyoung sc->sc_calinterval = 1;
4602 1.68 dyoung sc->sc_caltries = 0;
4603 1.47 dyoung
4604 1.1 dyoung /*
4605 1.1 dyoung * Re-enable rx framework.
4606 1.1 dyoung */
4607 1.1 dyoung if (ath_startrecv(sc) != 0) {
4608 1.47 dyoung if_printf(&sc->sc_if,
4609 1.68 dyoung "%s: unable to restart recv logic\n", __func__);
4610 1.1 dyoung return EIO;
4611 1.1 dyoung }
4612 1.1 dyoung
4613 1.1 dyoung /*
4614 1.1 dyoung * Change channels and update the h/w rate map
4615 1.1 dyoung * if we're switching; e.g. 11a to 11b/g.
4616 1.1 dyoung */
4617 1.1 dyoung ic->ic_ibss_chan = chan;
4618 1.47 dyoung ath_chan_change(sc, chan);
4619 1.1 dyoung
4620 1.104 alc #if 0
4621 1.1 dyoung /*
4622 1.68 dyoung * Handle DFS required waiting period to determine
4623 1.68 dyoung * if channel is clear of radar traffic.
4624 1.68 dyoung */
4625 1.68 dyoung if (ic->ic_opmode == IEEE80211_M_HOSTAP) {
4626 1.68 dyoung #define DFS_AND_NOT_CLEAR(_c) \
4627 1.68 dyoung (((_c)->privFlags & (CHANNEL_DFS | CHANNEL_DFS_CLEAR)) == CHANNEL_DFS)
4628 1.68 dyoung if (DFS_AND_NOT_CLEAR(&sc->sc_curchan)) {
4629 1.68 dyoung if_printf(&sc->sc_if,
4630 1.68 dyoung "wait for DFS clear channel signal\n");
4631 1.68 dyoung /* XXX stop sndq */
4632 1.68 dyoung sc->sc_if.if_flags |= IFF_OACTIVE;
4633 1.68 dyoung callout_reset(&sc->sc_dfs_ch,
4634 1.68 dyoung 2 * hz, ath_dfswait, sc);
4635 1.68 dyoung } else
4636 1.68 dyoung callout_stop(&sc->sc_dfs_ch);
4637 1.68 dyoung #undef DFS_NOT_CLEAR
4638 1.68 dyoung }
4639 1.104 alc #endif
4640 1.68 dyoung
4641 1.68 dyoung /*
4642 1.1 dyoung * Re-enable interrupts.
4643 1.1 dyoung */
4644 1.1 dyoung ath_hal_intrset(ah, sc->sc_imask);
4645 1.1 dyoung }
4646 1.1 dyoung return 0;
4647 1.1 dyoung }
4648 1.1 dyoung
4649 1.1 dyoung static void
4650 1.1 dyoung ath_next_scan(void *arg)
4651 1.1 dyoung {
4652 1.1 dyoung struct ath_softc *sc = arg;
4653 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
4654 1.2 dyoung int s;
4655 1.2 dyoung
4656 1.2 dyoung /* don't call ath_start w/o network interrupts blocked */
4657 1.2 dyoung s = splnet();
4658 1.1 dyoung
4659 1.1 dyoung if (ic->ic_state == IEEE80211_S_SCAN)
4660 1.30 mycroft ieee80211_next_scan(ic);
4661 1.2 dyoung splx(s);
4662 1.1 dyoung }
4663 1.1 dyoung
4664 1.1 dyoung /*
4665 1.1 dyoung * Periodically recalibrate the PHY to account
4666 1.1 dyoung * for temperature/environment changes.
4667 1.1 dyoung */
4668 1.1 dyoung static void
4669 1.1 dyoung ath_calibrate(void *arg)
4670 1.1 dyoung {
4671 1.1 dyoung struct ath_softc *sc = arg;
4672 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4673 1.68 dyoung HAL_BOOL iqCalDone;
4674 1.112 dyoung int s;
4675 1.1 dyoung
4676 1.1 dyoung sc->sc_stats.ast_per_cal++;
4677 1.1 dyoung
4678 1.112 dyoung s = splnet();
4679 1.1 dyoung
4680 1.1 dyoung if (ath_hal_getrfgain(ah) == HAL_RFGAIN_NEED_CHANGE) {
4681 1.1 dyoung /*
4682 1.1 dyoung * Rfgain is out of bounds, reset the chip
4683 1.1 dyoung * to load new gain values.
4684 1.1 dyoung */
4685 1.68 dyoung DPRINTF(sc, ATH_DEBUG_CALIBRATE,
4686 1.68 dyoung "%s: rfgain change\n", __func__);
4687 1.1 dyoung sc->sc_stats.ast_per_rfgain++;
4688 1.47 dyoung ath_reset(&sc->sc_if);
4689 1.1 dyoung }
4690 1.68 dyoung if (!ath_hal_calibrate(ah, &sc->sc_curchan, &iqCalDone)) {
4691 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY,
4692 1.47 dyoung "%s: calibration of channel %u failed\n",
4693 1.47 dyoung __func__, sc->sc_curchan.channel);
4694 1.1 dyoung sc->sc_stats.ast_per_calfail++;
4695 1.1 dyoung }
4696 1.68 dyoung /*
4697 1.68 dyoung * Calibrate noise floor data again in case of change.
4698 1.68 dyoung */
4699 1.68 dyoung ath_hal_process_noisefloor(ah);
4700 1.68 dyoung /*
4701 1.68 dyoung * Poll more frequently when the IQ calibration is in
4702 1.73 blymn * progress to speedup loading the final settings.
4703 1.68 dyoung * We temper this aggressive polling with an exponential
4704 1.68 dyoung * back off after 4 tries up to ath_calinterval.
4705 1.68 dyoung */
4706 1.68 dyoung if (iqCalDone || sc->sc_calinterval >= ath_calinterval) {
4707 1.68 dyoung sc->sc_caltries = 0;
4708 1.68 dyoung sc->sc_calinterval = ath_calinterval;
4709 1.68 dyoung } else if (sc->sc_caltries > 4) {
4710 1.68 dyoung sc->sc_caltries = 0;
4711 1.68 dyoung sc->sc_calinterval <<= 1;
4712 1.68 dyoung if (sc->sc_calinterval > ath_calinterval)
4713 1.68 dyoung sc->sc_calinterval = ath_calinterval;
4714 1.68 dyoung }
4715 1.114 dyoung KASSERTMSG(0 < sc->sc_calinterval &&
4716 1.126 msaitoh sc->sc_calinterval <= ath_calinterval,
4717 1.114 dyoung "bad calibration interval %u", sc->sc_calinterval);
4718 1.68 dyoung
4719 1.68 dyoung DPRINTF(sc, ATH_DEBUG_CALIBRATE,
4720 1.68 dyoung "%s: next +%u (%siqCalDone tries %u)\n", __func__,
4721 1.68 dyoung sc->sc_calinterval, iqCalDone ? "" : "!", sc->sc_caltries);
4722 1.68 dyoung sc->sc_caltries++;
4723 1.68 dyoung callout_reset(&sc->sc_cal_ch, sc->sc_calinterval * hz,
4724 1.68 dyoung ath_calibrate, sc);
4725 1.112 dyoung splx(s);
4726 1.4 dyoung }
4727 1.4 dyoung
4728 1.1 dyoung static int
4729 1.1 dyoung ath_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg)
4730 1.1 dyoung {
4731 1.47 dyoung struct ifnet *ifp = ic->ic_ifp;
4732 1.1 dyoung struct ath_softc *sc = ifp->if_softc;
4733 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4734 1.1 dyoung struct ieee80211_node *ni;
4735 1.1 dyoung int i, error;
4736 1.18 dyoung const u_int8_t *bssid;
4737 1.1 dyoung u_int32_t rfilt;
4738 1.47 dyoung static const HAL_LED_STATE leds[] = {
4739 1.47 dyoung HAL_LED_INIT, /* IEEE80211_S_INIT */
4740 1.47 dyoung HAL_LED_SCAN, /* IEEE80211_S_SCAN */
4741 1.47 dyoung HAL_LED_AUTH, /* IEEE80211_S_AUTH */
4742 1.126 msaitoh HAL_LED_ASSOC, /* IEEE80211_S_ASSOC */
4743 1.126 msaitoh HAL_LED_RUN, /* IEEE80211_S_RUN */
4744 1.47 dyoung };
4745 1.1 dyoung
4746 1.47 dyoung DPRINTF(sc, ATH_DEBUG_STATE, "%s: %s -> %s\n", __func__,
4747 1.1 dyoung ieee80211_state_name[ic->ic_state],
4748 1.47 dyoung ieee80211_state_name[nstate]);
4749 1.1 dyoung
4750 1.47 dyoung callout_stop(&sc->sc_scan_ch);
4751 1.47 dyoung callout_stop(&sc->sc_cal_ch);
4752 1.125 msaitoh #if 0
4753 1.68 dyoung callout_stop(&sc->sc_dfs_ch);
4754 1.104 alc #endif
4755 1.47 dyoung ath_hal_setledstate(ah, leds[nstate]); /* set LED */
4756 1.1 dyoung
4757 1.1 dyoung if (nstate == IEEE80211_S_INIT) {
4758 1.1 dyoung sc->sc_imask &= ~(HAL_INT_SWBA | HAL_INT_BMISS);
4759 1.47 dyoung /*
4760 1.47 dyoung * NB: disable interrupts so we don't rx frames.
4761 1.47 dyoung */
4762 1.55 dyoung ath_hal_intrset(ah, sc->sc_imask &~ HAL_INT_GLOBAL);
4763 1.47 dyoung /*
4764 1.47 dyoung * Notify the rate control algorithm.
4765 1.47 dyoung */
4766 1.47 dyoung ath_rate_newstate(sc, nstate);
4767 1.47 dyoung goto done;
4768 1.1 dyoung }
4769 1.1 dyoung ni = ic->ic_bss;
4770 1.61 skrll error = ath_chan_set(sc, ic->ic_curchan);
4771 1.1 dyoung if (error != 0)
4772 1.1 dyoung goto bad;
4773 1.47 dyoung rfilt = ath_calcrxfilter(sc, nstate);
4774 1.47 dyoung if (nstate == IEEE80211_S_SCAN)
4775 1.1 dyoung bssid = ifp->if_broadcastaddr;
4776 1.47 dyoung else
4777 1.1 dyoung bssid = ni->ni_bssid;
4778 1.1 dyoung ath_hal_setrxfilter(ah, rfilt);
4779 1.47 dyoung DPRINTF(sc, ATH_DEBUG_STATE, "%s: RX filter 0x%x bssid %s\n",
4780 1.47 dyoung __func__, rfilt, ether_sprintf(bssid));
4781 1.1 dyoung
4782 1.1 dyoung if (nstate == IEEE80211_S_RUN && ic->ic_opmode == IEEE80211_M_STA)
4783 1.1 dyoung ath_hal_setassocid(ah, bssid, ni->ni_associd);
4784 1.1 dyoung else
4785 1.1 dyoung ath_hal_setassocid(ah, bssid, 0);
4786 1.29 mycroft if (ic->ic_flags & IEEE80211_F_PRIVACY) {
4787 1.1 dyoung for (i = 0; i < IEEE80211_WEP_NKID; i++)
4788 1.1 dyoung if (ath_hal_keyisvalid(ah, i))
4789 1.1 dyoung ath_hal_keysetmac(ah, i, bssid);
4790 1.1 dyoung }
4791 1.1 dyoung
4792 1.47 dyoung /*
4793 1.47 dyoung * Notify the rate control algorithm so rates
4794 1.47 dyoung * are setup should ath_beacon_alloc be called.
4795 1.47 dyoung */
4796 1.47 dyoung ath_rate_newstate(sc, nstate);
4797 1.47 dyoung
4798 1.47 dyoung if (ic->ic_opmode == IEEE80211_M_MONITOR) {
4799 1.47 dyoung /* nothing to do */;
4800 1.47 dyoung } else if (nstate == IEEE80211_S_RUN) {
4801 1.47 dyoung DPRINTF(sc, ATH_DEBUG_STATE,
4802 1.47 dyoung "%s(RUN): ic_flags=0x%08x iv=%d bssid=%s "
4803 1.1 dyoung "capinfo=0x%04x chan=%d\n"
4804 1.1 dyoung , __func__
4805 1.1 dyoung , ic->ic_flags
4806 1.1 dyoung , ni->ni_intval
4807 1.1 dyoung , ether_sprintf(ni->ni_bssid)
4808 1.1 dyoung , ni->ni_capinfo
4809 1.61 skrll , ieee80211_chan2ieee(ic, ic->ic_curchan));
4810 1.1 dyoung
4811 1.55 dyoung switch (ic->ic_opmode) {
4812 1.55 dyoung case IEEE80211_M_HOSTAP:
4813 1.55 dyoung case IEEE80211_M_IBSS:
4814 1.47 dyoung /*
4815 1.55 dyoung * Allocate and setup the beacon frame.
4816 1.55 dyoung *
4817 1.47 dyoung * Stop any previous beacon DMA. This may be
4818 1.47 dyoung * necessary, for example, when an ibss merge
4819 1.47 dyoung * causes reconfiguration; there will be a state
4820 1.47 dyoung * transition from RUN->RUN that means we may
4821 1.47 dyoung * be called with beacon transmission active.
4822 1.47 dyoung */
4823 1.47 dyoung ath_hal_stoptxdma(ah, sc->sc_bhalq);
4824 1.47 dyoung ath_beacon_free(sc);
4825 1.1 dyoung error = ath_beacon_alloc(sc, ni);
4826 1.1 dyoung if (error != 0)
4827 1.1 dyoung goto bad;
4828 1.68 dyoung /*
4829 1.68 dyoung * If joining an adhoc network defer beacon timer
4830 1.68 dyoung * configuration to the next beacon frame so we
4831 1.68 dyoung * have a current TSF to use. Otherwise we're
4832 1.68 dyoung * starting an ibss/bss so there's no need to delay.
4833 1.68 dyoung */
4834 1.68 dyoung if (ic->ic_opmode == IEEE80211_M_IBSS &&
4835 1.68 dyoung ic->ic_bss->ni_tstamp.tsf != 0)
4836 1.68 dyoung sc->sc_syncbeacon = 1;
4837 1.68 dyoung else
4838 1.68 dyoung ath_beacon_config(sc);
4839 1.55 dyoung break;
4840 1.55 dyoung case IEEE80211_M_STA:
4841 1.55 dyoung /*
4842 1.55 dyoung * Allocate a key cache slot to the station.
4843 1.55 dyoung */
4844 1.55 dyoung if ((ic->ic_flags & IEEE80211_F_PRIVACY) == 0 &&
4845 1.55 dyoung sc->sc_hasclrkey &&
4846 1.55 dyoung ni->ni_ucastkey.wk_keyix == IEEE80211_KEYIX_NONE)
4847 1.55 dyoung ath_setup_stationkey(ni);
4848 1.68 dyoung /*
4849 1.68 dyoung * Defer beacon timer configuration to the next
4850 1.68 dyoung * beacon frame so we have a current TSF to use
4851 1.68 dyoung * (any TSF collected when scanning is likely old).
4852 1.68 dyoung */
4853 1.68 dyoung sc->sc_syncbeacon = 1;
4854 1.55 dyoung break;
4855 1.55 dyoung default:
4856 1.55 dyoung break;
4857 1.1 dyoung }
4858 1.1 dyoung /*
4859 1.68 dyoung * Let the hal process statistics collected during a
4860 1.68 dyoung * scan so it can provide calibrated noise floor data.
4861 1.68 dyoung */
4862 1.68 dyoung ath_hal_process_noisefloor(ah);
4863 1.68 dyoung /*
4864 1.68 dyoung * Reset rssi stats; maybe not the best place...
4865 1.1 dyoung */
4866 1.68 dyoung sc->sc_halstats.ns_avgbrssi = ATH_RSSI_DUMMY_MARKER;
4867 1.68 dyoung sc->sc_halstats.ns_avgrssi = ATH_RSSI_DUMMY_MARKER;
4868 1.68 dyoung sc->sc_halstats.ns_avgtxrssi = ATH_RSSI_DUMMY_MARKER;
4869 1.1 dyoung } else {
4870 1.47 dyoung ath_hal_intrset(ah,
4871 1.47 dyoung sc->sc_imask &~ (HAL_INT_SWBA | HAL_INT_BMISS));
4872 1.1 dyoung sc->sc_imask &= ~(HAL_INT_SWBA | HAL_INT_BMISS);
4873 1.1 dyoung }
4874 1.47 dyoung done:
4875 1.1 dyoung /*
4876 1.47 dyoung * Invoke the parent method to complete the work.
4877 1.1 dyoung */
4878 1.47 dyoung error = sc->sc_newstate(ic, nstate, arg);
4879 1.1 dyoung /*
4880 1.47 dyoung * Finally, start any timers.
4881 1.1 dyoung */
4882 1.47 dyoung if (nstate == IEEE80211_S_RUN) {
4883 1.47 dyoung /* start periodic recalibration timer */
4884 1.68 dyoung callout_reset(&sc->sc_cal_ch, sc->sc_calinterval * hz,
4885 1.47 dyoung ath_calibrate, sc);
4886 1.47 dyoung } else if (nstate == IEEE80211_S_SCAN) {
4887 1.47 dyoung /* start ap/neighbor scan timer */
4888 1.47 dyoung callout_reset(&sc->sc_scan_ch, (ath_dwelltime * hz) / 1000,
4889 1.47 dyoung ath_next_scan, sc);
4890 1.47 dyoung }
4891 1.1 dyoung bad:
4892 1.1 dyoung return error;
4893 1.1 dyoung }
4894 1.1 dyoung
4895 1.1 dyoung /*
4896 1.55 dyoung * Allocate a key cache slot to the station so we can
4897 1.55 dyoung * setup a mapping from key index to node. The key cache
4898 1.55 dyoung * slot is needed for managing antenna state and for
4899 1.55 dyoung * compression when stations do not use crypto. We do
4900 1.55 dyoung * it uniliaterally here; if crypto is employed this slot
4901 1.55 dyoung * will be reassigned.
4902 1.55 dyoung */
4903 1.55 dyoung static void
4904 1.55 dyoung ath_setup_stationkey(struct ieee80211_node *ni)
4905 1.55 dyoung {
4906 1.55 dyoung struct ieee80211com *ic = ni->ni_ic;
4907 1.55 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
4908 1.61 skrll ieee80211_keyix keyix, rxkeyix;
4909 1.55 dyoung
4910 1.61 skrll if (!ath_key_alloc(ic, &ni->ni_ucastkey, &keyix, &rxkeyix)) {
4911 1.55 dyoung /*
4912 1.55 dyoung * Key cache is full; we'll fall back to doing
4913 1.55 dyoung * the more expensive lookup in software. Note
4914 1.55 dyoung * this also means no h/w compression.
4915 1.55 dyoung */
4916 1.55 dyoung /* XXX msg+statistic */
4917 1.55 dyoung } else {
4918 1.61 skrll /* XXX locking? */
4919 1.55 dyoung ni->ni_ucastkey.wk_keyix = keyix;
4920 1.61 skrll ni->ni_ucastkey.wk_rxkeyix = rxkeyix;
4921 1.55 dyoung /* NB: this will create a pass-thru key entry */
4922 1.55 dyoung ath_keyset(sc, &ni->ni_ucastkey, ni->ni_macaddr, ic->ic_bss);
4923 1.55 dyoung }
4924 1.55 dyoung }
4925 1.55 dyoung
4926 1.55 dyoung /*
4927 1.1 dyoung * Setup driver-specific state for a newly associated node.
4928 1.1 dyoung * Note that we're called also on a re-associate, the isnew
4929 1.1 dyoung * param tells us if this is the first time or not.
4930 1.1 dyoung */
4931 1.1 dyoung static void
4932 1.61 skrll ath_newassoc(struct ieee80211_node *ni, int isnew)
4933 1.1 dyoung {
4934 1.61 skrll struct ieee80211com *ic = ni->ni_ic;
4935 1.47 dyoung struct ath_softc *sc = ic->ic_ifp->if_softc;
4936 1.1 dyoung
4937 1.47 dyoung ath_rate_newassoc(sc, ATH_NODE(ni), isnew);
4938 1.55 dyoung if (isnew &&
4939 1.55 dyoung (ic->ic_flags & IEEE80211_F_PRIVACY) == 0 && sc->sc_hasclrkey) {
4940 1.114 dyoung KASSERTMSG(ni->ni_ucastkey.wk_keyix == IEEE80211_KEYIX_NONE,
4941 1.114 dyoung "new assoc with a unicast key already setup (keyix %u)",
4942 1.114 dyoung ni->ni_ucastkey.wk_keyix);
4943 1.55 dyoung ath_setup_stationkey(ni);
4944 1.55 dyoung }
4945 1.1 dyoung }
4946 1.1 dyoung
4947 1.1 dyoung static int
4948 1.47 dyoung ath_getchannels(struct ath_softc *sc, u_int cc,
4949 1.47 dyoung HAL_BOOL outdoor, HAL_BOOL xchanmode)
4950 1.1 dyoung {
4951 1.68 dyoung #define COMPAT (CHANNEL_ALL_NOTURBO|CHANNEL_PASSIVE)
4952 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
4953 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
4954 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
4955 1.1 dyoung HAL_CHANNEL *chans;
4956 1.1 dyoung int i, ix, nchan;
4957 1.1 dyoung
4958 1.1 dyoung chans = malloc(IEEE80211_CHAN_MAX * sizeof(HAL_CHANNEL),
4959 1.128 chs M_TEMP, M_WAITOK);
4960 1.1 dyoung if (!ath_hal_init_channels(ah, chans, IEEE80211_CHAN_MAX, &nchan,
4961 1.68 dyoung NULL, 0, NULL,
4962 1.21 dyoung cc, HAL_MODE_ALL, outdoor, xchanmode)) {
4963 1.47 dyoung u_int32_t rd;
4964 1.47 dyoung
4965 1.72 mrg (void)ath_hal_getregdomain(ah, &rd);
4966 1.47 dyoung if_printf(ifp, "unable to collect channel list from hal; "
4967 1.47 dyoung "regdomain likely %u country code %u\n", rd, cc);
4968 1.1 dyoung free(chans, M_TEMP);
4969 1.1 dyoung return EINVAL;
4970 1.1 dyoung }
4971 1.1 dyoung
4972 1.1 dyoung /*
4973 1.1 dyoung * Convert HAL channels to ieee80211 ones and insert
4974 1.1 dyoung * them in the table according to their channel number.
4975 1.1 dyoung */
4976 1.1 dyoung for (i = 0; i < nchan; i++) {
4977 1.1 dyoung HAL_CHANNEL *c = &chans[i];
4978 1.68 dyoung u_int16_t flags;
4979 1.68 dyoung
4980 1.68 dyoung ix = ath_hal_mhz2ieee(ah, c->channel, c->channelFlags);
4981 1.1 dyoung if (ix > IEEE80211_CHAN_MAX) {
4982 1.68 dyoung if_printf(ifp, "bad hal channel %d (%u/%x) ignored\n",
4983 1.1 dyoung ix, c->channel, c->channelFlags);
4984 1.1 dyoung continue;
4985 1.1 dyoung }
4986 1.68 dyoung if (ix < 0) {
4987 1.68 dyoung /* XXX can't handle stuff <2400 right now */
4988 1.68 dyoung if (bootverbose)
4989 1.68 dyoung if_printf(ifp, "hal channel %d (%u/%x) "
4990 1.68 dyoung "cannot be handled; ignored\n",
4991 1.68 dyoung ix, c->channel, c->channelFlags);
4992 1.68 dyoung continue;
4993 1.68 dyoung }
4994 1.68 dyoung /*
4995 1.68 dyoung * Calculate net80211 flags; most are compatible
4996 1.68 dyoung * but some need massaging. Note the static turbo
4997 1.68 dyoung * conversion can be removed once net80211 is updated
4998 1.68 dyoung * to understand static vs. dynamic turbo.
4999 1.68 dyoung */
5000 1.68 dyoung flags = c->channelFlags & COMPAT;
5001 1.68 dyoung if (c->channelFlags & CHANNEL_STURBO)
5002 1.68 dyoung flags |= IEEE80211_CHAN_TURBO;
5003 1.1 dyoung if (ic->ic_channels[ix].ic_freq == 0) {
5004 1.1 dyoung ic->ic_channels[ix].ic_freq = c->channel;
5005 1.68 dyoung ic->ic_channels[ix].ic_flags = flags;
5006 1.1 dyoung } else {
5007 1.1 dyoung /* channels overlap; e.g. 11g and 11b */
5008 1.68 dyoung ic->ic_channels[ix].ic_flags |= flags;
5009 1.1 dyoung }
5010 1.1 dyoung }
5011 1.1 dyoung free(chans, M_TEMP);
5012 1.1 dyoung return 0;
5013 1.68 dyoung #undef COMPAT
5014 1.1 dyoung }
5015 1.1 dyoung
5016 1.47 dyoung static void
5017 1.47 dyoung ath_led_done(void *arg)
5018 1.47 dyoung {
5019 1.47 dyoung struct ath_softc *sc = arg;
5020 1.47 dyoung
5021 1.47 dyoung sc->sc_blinking = 0;
5022 1.47 dyoung }
5023 1.47 dyoung
5024 1.47 dyoung /*
5025 1.47 dyoung * Turn the LED off: flip the pin and then set a timer so no
5026 1.47 dyoung * update will happen for the specified duration.
5027 1.47 dyoung */
5028 1.47 dyoung static void
5029 1.47 dyoung ath_led_off(void *arg)
5030 1.47 dyoung {
5031 1.47 dyoung struct ath_softc *sc = arg;
5032 1.47 dyoung
5033 1.47 dyoung ath_hal_gpioset(sc->sc_ah, sc->sc_ledpin, !sc->sc_ledon);
5034 1.47 dyoung callout_reset(&sc->sc_ledtimer, sc->sc_ledoff, ath_led_done, sc);
5035 1.47 dyoung }
5036 1.47 dyoung
5037 1.47 dyoung /*
5038 1.47 dyoung * Blink the LED according to the specified on/off times.
5039 1.47 dyoung */
5040 1.47 dyoung static void
5041 1.47 dyoung ath_led_blink(struct ath_softc *sc, int on, int off)
5042 1.47 dyoung {
5043 1.47 dyoung DPRINTF(sc, ATH_DEBUG_LED, "%s: on %u off %u\n", __func__, on, off);
5044 1.47 dyoung ath_hal_gpioset(sc->sc_ah, sc->sc_ledpin, sc->sc_ledon);
5045 1.47 dyoung sc->sc_blinking = 1;
5046 1.47 dyoung sc->sc_ledoff = off;
5047 1.47 dyoung callout_reset(&sc->sc_ledtimer, on, ath_led_off, sc);
5048 1.47 dyoung }
5049 1.47 dyoung
5050 1.47 dyoung static void
5051 1.47 dyoung ath_led_event(struct ath_softc *sc, int event)
5052 1.47 dyoung {
5053 1.47 dyoung
5054 1.47 dyoung sc->sc_ledevent = ticks; /* time of last event */
5055 1.47 dyoung if (sc->sc_blinking) /* don't interrupt active blink */
5056 1.47 dyoung return;
5057 1.47 dyoung switch (event) {
5058 1.47 dyoung case ATH_LED_POLL:
5059 1.47 dyoung ath_led_blink(sc, sc->sc_hwmap[0].ledon,
5060 1.47 dyoung sc->sc_hwmap[0].ledoff);
5061 1.47 dyoung break;
5062 1.47 dyoung case ATH_LED_TX:
5063 1.47 dyoung ath_led_blink(sc, sc->sc_hwmap[sc->sc_txrate].ledon,
5064 1.47 dyoung sc->sc_hwmap[sc->sc_txrate].ledoff);
5065 1.47 dyoung break;
5066 1.47 dyoung case ATH_LED_RX:
5067 1.47 dyoung ath_led_blink(sc, sc->sc_hwmap[sc->sc_rxrate].ledon,
5068 1.47 dyoung sc->sc_hwmap[sc->sc_rxrate].ledoff);
5069 1.47 dyoung break;
5070 1.47 dyoung }
5071 1.47 dyoung }
5072 1.47 dyoung
5073 1.47 dyoung static void
5074 1.47 dyoung ath_update_txpow(struct ath_softc *sc)
5075 1.47 dyoung {
5076 1.68 dyoung #define COMPAT (CHANNEL_ALL_NOTURBO|CHANNEL_PASSIVE)
5077 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
5078 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
5079 1.47 dyoung u_int32_t txpow;
5080 1.47 dyoung
5081 1.47 dyoung if (sc->sc_curtxpow != ic->ic_txpowlimit) {
5082 1.47 dyoung ath_hal_settxpowlimit(ah, ic->ic_txpowlimit);
5083 1.47 dyoung /* read back in case value is clamped */
5084 1.72 mrg (void)ath_hal_gettxpowlimit(ah, &txpow);
5085 1.47 dyoung ic->ic_txpowlimit = sc->sc_curtxpow = txpow;
5086 1.47 dyoung }
5087 1.73 blymn /*
5088 1.47 dyoung * Fetch max tx power level for status requests.
5089 1.47 dyoung */
5090 1.72 mrg (void)ath_hal_getmaxtxpow(sc->sc_ah, &txpow);
5091 1.47 dyoung ic->ic_bss->ni_txpower = txpow;
5092 1.47 dyoung }
5093 1.47 dyoung
5094 1.68 dyoung static void
5095 1.68 dyoung rate_setup(struct ath_softc *sc,
5096 1.68 dyoung const HAL_RATE_TABLE *rt, struct ieee80211_rateset *rs)
5097 1.68 dyoung {
5098 1.68 dyoung int i, maxrates;
5099 1.68 dyoung
5100 1.68 dyoung if (rt->rateCount > IEEE80211_RATE_MAXSIZE) {
5101 1.68 dyoung DPRINTF(sc, ATH_DEBUG_ANY,
5102 1.68 dyoung "%s: rate table too small (%u > %u)\n",
5103 1.68 dyoung __func__, rt->rateCount, IEEE80211_RATE_MAXSIZE);
5104 1.68 dyoung maxrates = IEEE80211_RATE_MAXSIZE;
5105 1.68 dyoung } else
5106 1.68 dyoung maxrates = rt->rateCount;
5107 1.68 dyoung for (i = 0; i < maxrates; i++)
5108 1.68 dyoung rs->rs_rates[i] = rt->info[i].dot11Rate;
5109 1.68 dyoung rs->rs_nrates = maxrates;
5110 1.68 dyoung }
5111 1.68 dyoung
5112 1.1 dyoung static int
5113 1.1 dyoung ath_rate_setup(struct ath_softc *sc, u_int mode)
5114 1.1 dyoung {
5115 1.1 dyoung struct ath_hal *ah = sc->sc_ah;
5116 1.1 dyoung struct ieee80211com *ic = &sc->sc_ic;
5117 1.1 dyoung const HAL_RATE_TABLE *rt;
5118 1.1 dyoung
5119 1.1 dyoung switch (mode) {
5120 1.1 dyoung case IEEE80211_MODE_11A:
5121 1.68 dyoung rt = ath_hal_getratetable(ah, HAL_MODE_11A);
5122 1.1 dyoung break;
5123 1.1 dyoung case IEEE80211_MODE_11B:
5124 1.68 dyoung rt = ath_hal_getratetable(ah, HAL_MODE_11B);
5125 1.1 dyoung break;
5126 1.1 dyoung case IEEE80211_MODE_11G:
5127 1.68 dyoung rt = ath_hal_getratetable(ah, HAL_MODE_11G);
5128 1.1 dyoung break;
5129 1.47 dyoung case IEEE80211_MODE_TURBO_A:
5130 1.68 dyoung /* XXX until static/dynamic turbo is fixed */
5131 1.68 dyoung rt = ath_hal_getratetable(ah, HAL_MODE_TURBO);
5132 1.1 dyoung break;
5133 1.47 dyoung case IEEE80211_MODE_TURBO_G:
5134 1.68 dyoung rt = ath_hal_getratetable(ah, HAL_MODE_108G);
5135 1.47 dyoung break;
5136 1.1 dyoung default:
5137 1.47 dyoung DPRINTF(sc, ATH_DEBUG_ANY, "%s: invalid mode %u\n",
5138 1.47 dyoung __func__, mode);
5139 1.1 dyoung return 0;
5140 1.1 dyoung }
5141 1.68 dyoung sc->sc_rates[mode] = rt;
5142 1.68 dyoung if (rt != NULL) {
5143 1.68 dyoung rate_setup(sc, rt, &ic->ic_sup_rates[mode]);
5144 1.68 dyoung return 1;
5145 1.68 dyoung } else
5146 1.1 dyoung return 0;
5147 1.1 dyoung }
5148 1.1 dyoung
5149 1.1 dyoung static void
5150 1.1 dyoung ath_setcurmode(struct ath_softc *sc, enum ieee80211_phymode mode)
5151 1.1 dyoung {
5152 1.47 dyoung #define N(a) (sizeof(a)/sizeof(a[0]))
5153 1.47 dyoung /* NB: on/off times from the Atheros NDIS driver, w/ permission */
5154 1.47 dyoung static const struct {
5155 1.47 dyoung u_int rate; /* tx/rx 802.11 rate */
5156 1.47 dyoung u_int16_t timeOn; /* LED on time (ms) */
5157 1.47 dyoung u_int16_t timeOff; /* LED off time (ms) */
5158 1.47 dyoung } blinkrates[] = {
5159 1.47 dyoung { 108, 40, 10 },
5160 1.47 dyoung { 96, 44, 11 },
5161 1.47 dyoung { 72, 50, 13 },
5162 1.47 dyoung { 48, 57, 14 },
5163 1.47 dyoung { 36, 67, 16 },
5164 1.47 dyoung { 24, 80, 20 },
5165 1.47 dyoung { 22, 100, 25 },
5166 1.47 dyoung { 18, 133, 34 },
5167 1.47 dyoung { 12, 160, 40 },
5168 1.47 dyoung { 10, 200, 50 },
5169 1.47 dyoung { 6, 240, 58 },
5170 1.47 dyoung { 4, 267, 66 },
5171 1.47 dyoung { 2, 400, 100 },
5172 1.47 dyoung { 0, 500, 130 },
5173 1.47 dyoung };
5174 1.1 dyoung const HAL_RATE_TABLE *rt;
5175 1.47 dyoung int i, j;
5176 1.1 dyoung
5177 1.1 dyoung memset(sc->sc_rixmap, 0xff, sizeof(sc->sc_rixmap));
5178 1.1 dyoung rt = sc->sc_rates[mode];
5179 1.114 dyoung KASSERTMSG(rt != NULL, "no h/w rate set for phy mode %u", mode);
5180 1.1 dyoung for (i = 0; i < rt->rateCount; i++)
5181 1.1 dyoung sc->sc_rixmap[rt->info[i].dot11Rate & IEEE80211_RATE_VAL] = i;
5182 1.1 dyoung memset(sc->sc_hwmap, 0, sizeof(sc->sc_hwmap));
5183 1.47 dyoung for (i = 0; i < 32; i++) {
5184 1.47 dyoung u_int8_t ix = rt->rateCodeToIndex[i];
5185 1.47 dyoung if (ix == 0xff) {
5186 1.47 dyoung sc->sc_hwmap[i].ledon = (500 * hz) / 1000;
5187 1.47 dyoung sc->sc_hwmap[i].ledoff = (130 * hz) / 1000;
5188 1.47 dyoung continue;
5189 1.47 dyoung }
5190 1.47 dyoung sc->sc_hwmap[i].ieeerate =
5191 1.47 dyoung rt->info[ix].dot11Rate & IEEE80211_RATE_VAL;
5192 1.47 dyoung sc->sc_hwmap[i].txflags = IEEE80211_RADIOTAP_F_DATAPAD;
5193 1.47 dyoung if (rt->info[ix].shortPreamble ||
5194 1.47 dyoung rt->info[ix].phy == IEEE80211_T_OFDM)
5195 1.47 dyoung sc->sc_hwmap[i].txflags |= IEEE80211_RADIOTAP_F_SHORTPRE;
5196 1.47 dyoung /* NB: receive frames include FCS */
5197 1.47 dyoung sc->sc_hwmap[i].rxflags = sc->sc_hwmap[i].txflags |
5198 1.47 dyoung IEEE80211_RADIOTAP_F_FCS;
5199 1.47 dyoung /* setup blink rate table to avoid per-packet lookup */
5200 1.47 dyoung for (j = 0; j < N(blinkrates)-1; j++)
5201 1.47 dyoung if (blinkrates[j].rate == sc->sc_hwmap[i].ieeerate)
5202 1.47 dyoung break;
5203 1.47 dyoung /* NB: this uses the last entry if the rate isn't found */
5204 1.47 dyoung /* XXX beware of overlow */
5205 1.47 dyoung sc->sc_hwmap[i].ledon = (blinkrates[j].timeOn * hz) / 1000;
5206 1.47 dyoung sc->sc_hwmap[i].ledoff = (blinkrates[j].timeOff * hz) / 1000;
5207 1.47 dyoung }
5208 1.1 dyoung sc->sc_currates = rt;
5209 1.1 dyoung sc->sc_curmode = mode;
5210 1.47 dyoung /*
5211 1.47 dyoung * All protection frames are transmited at 2Mb/s for
5212 1.47 dyoung * 11g, otherwise at 1Mb/s.
5213 1.47 dyoung */
5214 1.68 dyoung if (mode == IEEE80211_MODE_11G)
5215 1.68 dyoung sc->sc_protrix = ath_tx_findrix(rt, 2*2);
5216 1.68 dyoung else
5217 1.68 dyoung sc->sc_protrix = ath_tx_findrix(rt, 2*1);
5218 1.68 dyoung /* rate index used to send management frames */
5219 1.68 dyoung sc->sc_minrateix = 0;
5220 1.68 dyoung /*
5221 1.68 dyoung * Setup multicast rate state.
5222 1.68 dyoung */
5223 1.68 dyoung /* XXX layering violation */
5224 1.68 dyoung sc->sc_mcastrix = ath_tx_findrix(rt, sc->sc_ic.ic_mcast_rate);
5225 1.68 dyoung sc->sc_mcastrate = sc->sc_ic.ic_mcast_rate;
5226 1.133 msaitoh /* NB: caller is responsible for resetting rate control state */
5227 1.47 dyoung #undef N
5228 1.1 dyoung }
5229 1.1 dyoung
5230 1.47 dyoung #ifdef AR_DEBUG
5231 1.1 dyoung static void
5232 1.47 dyoung ath_printrxbuf(struct ath_buf *bf, int done)
5233 1.1 dyoung {
5234 1.47 dyoung struct ath_desc *ds;
5235 1.47 dyoung int i;
5236 1.1 dyoung
5237 1.47 dyoung for (i = 0, ds = bf->bf_desc; i < bf->bf_nseg; i++, ds++) {
5238 1.75 gdamore printf("R%d (%p %" PRIx64
5239 1.99 dyoung ") %08x %08x %08x %08x %08x %08x %02x %02x %c\n", i, ds,
5240 1.75 gdamore (uint64_t)bf->bf_daddr + sizeof (struct ath_desc) * i,
5241 1.47 dyoung ds->ds_link, ds->ds_data,
5242 1.47 dyoung ds->ds_ctl0, ds->ds_ctl1,
5243 1.47 dyoung ds->ds_hw[0], ds->ds_hw[1],
5244 1.99 dyoung ds->ds_rxstat.rs_status, ds->ds_rxstat.rs_keyix,
5245 1.47 dyoung !done ? ' ' : (ds->ds_rxstat.rs_status == 0) ? '*' : '!');
5246 1.18 dyoung }
5247 1.1 dyoung }
5248 1.1 dyoung
5249 1.1 dyoung static void
5250 1.47 dyoung ath_printtxbuf(struct ath_buf *bf, int done)
5251 1.1 dyoung {
5252 1.47 dyoung struct ath_desc *ds;
5253 1.47 dyoung int i;
5254 1.1 dyoung
5255 1.47 dyoung for (i = 0, ds = bf->bf_desc; i < bf->bf_nseg; i++, ds++) {
5256 1.75 gdamore printf("T%d (%p %" PRIx64
5257 1.75 gdamore ") %08x %08x %08x %08x %08x %08x %08x %08x %c\n",
5258 1.75 gdamore i, ds,
5259 1.75 gdamore (uint64_t)bf->bf_daddr + sizeof (struct ath_desc) * i,
5260 1.47 dyoung ds->ds_link, ds->ds_data,
5261 1.47 dyoung ds->ds_ctl0, ds->ds_ctl1,
5262 1.47 dyoung ds->ds_hw[0], ds->ds_hw[1], ds->ds_hw[2], ds->ds_hw[3],
5263 1.47 dyoung !done ? ' ' : (ds->ds_txstat.ts_status == 0) ? '*' : '!');
5264 1.47 dyoung }
5265 1.47 dyoung }
5266 1.104 alc #endif /* AR_DEBUG */
5267 1.1 dyoung
5268 1.47 dyoung static void
5269 1.47 dyoung ath_watchdog(struct ifnet *ifp)
5270 1.47 dyoung {
5271 1.47 dyoung struct ath_softc *sc = ifp->if_softc;
5272 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
5273 1.84 dyoung struct ath_txq *axq;
5274 1.84 dyoung int i;
5275 1.1 dyoung
5276 1.47 dyoung ifp->if_timer = 0;
5277 1.99 dyoung if ((ifp->if_flags & IFF_RUNNING) == 0 ||
5278 1.102 joerg !device_is_active(sc->sc_dev))
5279 1.47 dyoung return;
5280 1.84 dyoung for (i = 0; i < HAL_NUM_TX_QUEUES; i++) {
5281 1.84 dyoung if (!ATH_TXQ_SETUP(sc, i))
5282 1.84 dyoung continue;
5283 1.84 dyoung axq = &sc->sc_txq[i];
5284 1.84 dyoung ATH_TXQ_LOCK(axq);
5285 1.84 dyoung if (axq->axq_timer == 0)
5286 1.84 dyoung ;
5287 1.84 dyoung else if (--axq->axq_timer == 0) {
5288 1.84 dyoung ATH_TXQ_UNLOCK(axq);
5289 1.100 rumble if_printf(ifp, "device timeout (txq %d, "
5290 1.100 rumble "txintrperiod %d)\n", i, sc->sc_txintrperiod);
5291 1.100 rumble if (sc->sc_txintrperiod > 1)
5292 1.100 rumble sc->sc_txintrperiod--;
5293 1.47 dyoung ath_reset(ifp);
5294 1.130 thorpej if_statinc(ifp, if_oerrors);
5295 1.47 dyoung sc->sc_stats.ast_watchdog++;
5296 1.84 dyoung break;
5297 1.47 dyoung } else
5298 1.47 dyoung ifp->if_timer = 1;
5299 1.84 dyoung ATH_TXQ_UNLOCK(axq);
5300 1.1 dyoung }
5301 1.47 dyoung ieee80211_watchdog(ic);
5302 1.1 dyoung }
5303 1.1 dyoung
5304 1.47 dyoung /*
5305 1.47 dyoung * Diagnostic interface to the HAL. This is used by various
5306 1.47 dyoung * tools to do things like retrieve register contents for
5307 1.47 dyoung * debugging. The mechanism is intentionally opaque so that
5308 1.136 andvar * it can change frequently w/o concern for compatibility.
5309 1.47 dyoung */
5310 1.1 dyoung static int
5311 1.47 dyoung ath_ioctl_diag(struct ath_softc *sc, struct ath_diag *ad)
5312 1.1 dyoung {
5313 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
5314 1.47 dyoung u_int id = ad->ad_id & ATH_DIAG_ID;
5315 1.47 dyoung void *indata = NULL;
5316 1.47 dyoung void *outdata = NULL;
5317 1.47 dyoung u_int32_t insize = ad->ad_in_size;
5318 1.47 dyoung u_int32_t outsize = ad->ad_out_size;
5319 1.47 dyoung int error = 0;
5320 1.1 dyoung
5321 1.47 dyoung if (ad->ad_id & ATH_DIAG_IN) {
5322 1.47 dyoung /*
5323 1.47 dyoung * Copy in data.
5324 1.47 dyoung */
5325 1.128 chs indata = malloc(insize, M_TEMP, M_WAITOK);
5326 1.47 dyoung error = copyin(ad->ad_in_data, indata, insize);
5327 1.47 dyoung if (error)
5328 1.47 dyoung goto bad;
5329 1.47 dyoung }
5330 1.47 dyoung if (ad->ad_id & ATH_DIAG_DYN) {
5331 1.47 dyoung /*
5332 1.47 dyoung * Allocate a buffer for the results (otherwise the HAL
5333 1.47 dyoung * returns a pointer to a buffer where we can read the
5334 1.47 dyoung * results). Note that we depend on the HAL leaving this
5335 1.47 dyoung * pointer for us to use below in reclaiming the buffer;
5336 1.47 dyoung * may want to be more defensive.
5337 1.47 dyoung */
5338 1.128 chs outdata = malloc(outsize, M_TEMP, M_WAITOK);
5339 1.47 dyoung }
5340 1.47 dyoung if (ath_hal_getdiagstate(ah, id, indata, insize, &outdata, &outsize)) {
5341 1.47 dyoung if (outsize < ad->ad_out_size)
5342 1.47 dyoung ad->ad_out_size = outsize;
5343 1.47 dyoung if (outdata != NULL)
5344 1.47 dyoung error = copyout(outdata, ad->ad_out_data,
5345 1.47 dyoung ad->ad_out_size);
5346 1.47 dyoung } else {
5347 1.47 dyoung error = EINVAL;
5348 1.1 dyoung }
5349 1.47 dyoung bad:
5350 1.47 dyoung if ((ad->ad_id & ATH_DIAG_IN) && indata != NULL)
5351 1.47 dyoung free(indata, M_TEMP);
5352 1.47 dyoung if ((ad->ad_id & ATH_DIAG_DYN) && outdata != NULL)
5353 1.47 dyoung free(outdata, M_TEMP);
5354 1.1 dyoung return error;
5355 1.1 dyoung }
5356 1.1 dyoung
5357 1.20 dyoung static int
5358 1.82 christos ath_ioctl(struct ifnet *ifp, u_long cmd, void *data)
5359 1.20 dyoung {
5360 1.47 dyoung #define IS_RUNNING(ifp) \
5361 1.61 skrll ((ifp->if_flags & IFF_UP) && (ifp->if_flags & IFF_RUNNING))
5362 1.47 dyoung struct ath_softc *sc = ifp->if_softc;
5363 1.47 dyoung struct ieee80211com *ic = &sc->sc_ic;
5364 1.47 dyoung struct ifreq *ifr = (struct ifreq *)data;
5365 1.112 dyoung int error = 0, s;
5366 1.20 dyoung
5367 1.112 dyoung s = splnet();
5368 1.47 dyoung switch (cmd) {
5369 1.47 dyoung case SIOCSIFFLAGS:
5370 1.103 dyoung if ((error = ifioctl_common(ifp, cmd, data)) != 0)
5371 1.103 dyoung break;
5372 1.125 msaitoh switch (ifp->if_flags & (IFF_UP | IFF_RUNNING)) {
5373 1.125 msaitoh case IFF_UP | IFF_RUNNING:
5374 1.47 dyoung /*
5375 1.47 dyoung * To avoid rescanning another access point,
5376 1.47 dyoung * do not call ath_init() here. Instead,
5377 1.47 dyoung * only reflect promisc mode settings.
5378 1.47 dyoung */
5379 1.47 dyoung ath_mode_init(sc);
5380 1.107 dyoung break;
5381 1.107 dyoung case IFF_UP:
5382 1.47 dyoung /*
5383 1.47 dyoung * Beware of being called during attach/detach
5384 1.47 dyoung * to reset promiscuous mode. In that case we
5385 1.47 dyoung * will still be marked UP but not RUNNING.
5386 1.47 dyoung * However trying to re-init the interface
5387 1.47 dyoung * is the wrong thing to do as we've already
5388 1.47 dyoung * torn down much of our state. There's
5389 1.47 dyoung * probably a better way to deal with this.
5390 1.47 dyoung */
5391 1.99 dyoung error = ath_init(sc);
5392 1.107 dyoung break;
5393 1.107 dyoung case IFF_RUNNING:
5394 1.47 dyoung ath_stop_locked(ifp, 1);
5395 1.107 dyoung break;
5396 1.107 dyoung case 0:
5397 1.107 dyoung break;
5398 1.107 dyoung }
5399 1.47 dyoung break;
5400 1.47 dyoung case SIOCADDMULTI:
5401 1.47 dyoung case SIOCDELMULTI:
5402 1.86 dyoung if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) {
5403 1.47 dyoung if (ifp->if_flags & IFF_RUNNING)
5404 1.47 dyoung ath_mode_init(sc);
5405 1.47 dyoung error = 0;
5406 1.47 dyoung }
5407 1.47 dyoung break;
5408 1.130 thorpej case SIOCGATHSTATS: {
5409 1.130 thorpej struct ath_stats stats_out;
5410 1.130 thorpej struct if_data ifi;
5411 1.130 thorpej
5412 1.47 dyoung /* NB: embed these numbers to get a consistent view */
5413 1.130 thorpej
5414 1.130 thorpej stats_out = sc->sc_stats;
5415 1.130 thorpej stats_out.ast_rx_rssi = ieee80211_getrssi(ic);
5416 1.112 dyoung splx(s);
5417 1.130 thorpej
5418 1.130 thorpej if_export_if_data(ifp, &ifi, false);
5419 1.130 thorpej stats_out.ast_tx_packets = ifi.ifi_opackets;
5420 1.130 thorpej stats_out.ast_rx_packets = ifi.ifi_ipackets;
5421 1.130 thorpej
5422 1.130 thorpej return copyout(&stats_out,
5423 1.130 thorpej ifr->ifr_data, sizeof (stats_out));
5424 1.130 thorpej }
5425 1.130 thorpej
5426 1.47 dyoung case SIOCGATHDIAG:
5427 1.137 christos error = kauth_authorize_network(kauth_cred_get(),
5428 1.129 christos KAUTH_NETWORK_INTERFACE,
5429 1.129 christos KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp, KAUTH_ARG(cmd),
5430 1.129 christos NULL);
5431 1.129 christos if (error)
5432 1.129 christos break;
5433 1.47 dyoung error = ath_ioctl_diag(sc, (struct ath_diag *) ifr);
5434 1.47 dyoung break;
5435 1.47 dyoung default:
5436 1.47 dyoung error = ieee80211_ioctl(ic, cmd, data);
5437 1.99 dyoung if (error != ENETRESET)
5438 1.99 dyoung ;
5439 1.99 dyoung else if (IS_RUNNING(ifp) &&
5440 1.126 msaitoh ic->ic_roaming != IEEE80211_ROAMING_MANUAL)
5441 1.99 dyoung error = ath_init(sc);
5442 1.99 dyoung else
5443 1.47 dyoung error = 0;
5444 1.47 dyoung break;
5445 1.20 dyoung }
5446 1.112 dyoung splx(s);
5447 1.20 dyoung return error;
5448 1.47 dyoung #undef IS_RUNNING
5449 1.20 dyoung }
5450 1.20 dyoung
5451 1.1 dyoung static void
5452 1.47 dyoung ath_bpfattach(struct ath_softc *sc)
5453 1.1 dyoung {
5454 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
5455 1.47 dyoung
5456 1.109 joerg bpf_attach2(ifp, DLT_IEEE802_11_RADIO,
5457 1.108 pooka sizeof(struct ieee80211_frame) + sizeof(sc->sc_tx_th),
5458 1.108 pooka &sc->sc_drvbpf);
5459 1.108 pooka
5460 1.47 dyoung /*
5461 1.47 dyoung * Initialize constant fields.
5462 1.47 dyoung * XXX make header lengths a multiple of 32-bits so subsequent
5463 1.47 dyoung * headers are properly aligned; this is a kludge to keep
5464 1.47 dyoung * certain applications happy.
5465 1.47 dyoung *
5466 1.47 dyoung * NB: the channel is setup each time we transition to the
5467 1.47 dyoung * RUN state to avoid filling it in for each frame.
5468 1.47 dyoung */
5469 1.47 dyoung sc->sc_tx_th_len = roundup(sizeof(sc->sc_tx_th), sizeof(u_int32_t));
5470 1.47 dyoung sc->sc_tx_th.wt_ihdr.it_len = htole16(sc->sc_tx_th_len);
5471 1.47 dyoung sc->sc_tx_th.wt_ihdr.it_present = htole32(ATH_TX_RADIOTAP_PRESENT);
5472 1.1 dyoung
5473 1.47 dyoung sc->sc_rx_th_len = roundup(sizeof(sc->sc_rx_th), sizeof(u_int32_t));
5474 1.47 dyoung sc->sc_rx_th.wr_ihdr.it_len = htole16(sc->sc_rx_th_len);
5475 1.47 dyoung sc->sc_rx_th.wr_ihdr.it_present = htole32(ATH_RX_RADIOTAP_PRESENT);
5476 1.1 dyoung }
5477 1.1 dyoung
5478 1.47 dyoung /*
5479 1.47 dyoung * Announce various information on device/driver attach.
5480 1.47 dyoung */
5481 1.1 dyoung static void
5482 1.47 dyoung ath_announce(struct ath_softc *sc)
5483 1.1 dyoung {
5484 1.47 dyoung #define HAL_MODE_DUALBAND (HAL_MODE_11A|HAL_MODE_11B)
5485 1.47 dyoung struct ifnet *ifp = &sc->sc_if;
5486 1.47 dyoung struct ath_hal *ah = sc->sc_ah;
5487 1.47 dyoung u_int modes, cc;
5488 1.1 dyoung
5489 1.47 dyoung if_printf(ifp, "mac %d.%d phy %d.%d",
5490 1.47 dyoung ah->ah_macVersion, ah->ah_macRev,
5491 1.47 dyoung ah->ah_phyRev >> 4, ah->ah_phyRev & 0xf);
5492 1.47 dyoung /*
5493 1.47 dyoung * Print radio revision(s). We check the wireless modes
5494 1.47 dyoung * to avoid falsely printing revs for inoperable parts.
5495 1.69 lukem * Dual-band radio revs are returned in the 5 GHz rev number.
5496 1.47 dyoung */
5497 1.47 dyoung ath_hal_getcountrycode(ah, &cc);
5498 1.47 dyoung modes = ath_hal_getwirelessmodes(ah, cc);
5499 1.47 dyoung if ((modes & HAL_MODE_DUALBAND) == HAL_MODE_DUALBAND) {
5500 1.47 dyoung if (ah->ah_analog5GhzRev && ah->ah_analog2GhzRev)
5501 1.69 lukem printf(" 5 GHz radio %d.%d 2 GHz radio %d.%d",
5502 1.47 dyoung ah->ah_analog5GhzRev >> 4,
5503 1.47 dyoung ah->ah_analog5GhzRev & 0xf,
5504 1.47 dyoung ah->ah_analog2GhzRev >> 4,
5505 1.47 dyoung ah->ah_analog2GhzRev & 0xf);
5506 1.47 dyoung else
5507 1.47 dyoung printf(" radio %d.%d", ah->ah_analog5GhzRev >> 4,
5508 1.47 dyoung ah->ah_analog5GhzRev & 0xf);
5509 1.47 dyoung } else
5510 1.47 dyoung printf(" radio %d.%d", ah->ah_analog5GhzRev >> 4,
5511 1.47 dyoung ah->ah_analog5GhzRev & 0xf);
5512 1.47 dyoung printf("\n");
5513 1.47 dyoung if (bootverbose) {
5514 1.47 dyoung int i;
5515 1.47 dyoung for (i = 0; i <= WME_AC_VO; i++) {
5516 1.47 dyoung struct ath_txq *txq = sc->sc_ac2q[i];
5517 1.47 dyoung if_printf(ifp, "Use hw queue %u for %s traffic\n",
5518 1.47 dyoung txq->axq_qnum, ieee80211_wme_acnames[i]);
5519 1.47 dyoung }
5520 1.47 dyoung if_printf(ifp, "Use hw queue %u for CAB traffic\n",
5521 1.47 dyoung sc->sc_cabq->axq_qnum);
5522 1.47 dyoung if_printf(ifp, "Use hw queue %u for beacons\n", sc->sc_bhalq);
5523 1.1 dyoung }
5524 1.68 dyoung if (ath_rxbuf != ATH_RXBUF)
5525 1.68 dyoung if_printf(ifp, "using %u rx buffers\n", ath_rxbuf);
5526 1.68 dyoung if (ath_txbuf != ATH_TXBUF)
5527 1.68 dyoung if_printf(ifp, "using %u tx buffers\n", ath_txbuf);
5528 1.47 dyoung #undef HAL_MODE_DUALBAND
5529 1.1 dyoung }
5530