xref: /freebsd/sys/net80211/ieee80211.c (revision 54ebdd631db8c0bba2baab0155f603a8b5cf014a)
1 /*-
2  * Copyright (c) 2001 Atsushi Onoe
3  * Copyright (c) 2002-2008 Sam Leffler, Errno Consulting
4  * All rights reserved.
5  *
6  * Redistribution and use in source and binary forms, with or without
7  * modification, are permitted provided that the following conditions
8  * are met:
9  * 1. Redistributions of source code must retain the above copyright
10  *    notice, this list of conditions and the following disclaimer.
11  * 2. Redistributions in binary form must reproduce the above copyright
12  *    notice, this list of conditions and the following disclaimer in the
13  *    documentation and/or other materials provided with the distribution.
14  *
15  * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
16  * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
17  * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
18  * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
19  * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
20  * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
21  * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
22  * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
23  * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
24  * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
25  */
26 
27 #include <sys/cdefs.h>
28 __FBSDID("$FreeBSD$");
29 
30 /*
31  * IEEE 802.11 generic handler
32  */
33 #include "opt_wlan.h"
34 
35 #include <sys/param.h>
36 #include <sys/systm.h>
37 #include <sys/kernel.h>
38 
39 #include <sys/socket.h>
40 
41 #include <net/if.h>
42 #include <net/if_dl.h>
43 #include <net/if_media.h>
44 #include <net/if_types.h>
45 #include <net/ethernet.h>
46 
47 #include <net80211/ieee80211_var.h>
48 #include <net80211/ieee80211_regdomain.h>
49 
50 #include <net/bpf.h>
51 
52 const char *ieee80211_phymode_name[IEEE80211_MODE_MAX] = {
53 	[IEEE80211_MODE_AUTO]	  = "auto",
54 	[IEEE80211_MODE_11A]	  = "11a",
55 	[IEEE80211_MODE_11B]	  = "11b",
56 	[IEEE80211_MODE_11G]	  = "11g",
57 	[IEEE80211_MODE_FH]	  = "FH",
58 	[IEEE80211_MODE_TURBO_A]  = "turboA",
59 	[IEEE80211_MODE_TURBO_G]  = "turboG",
60 	[IEEE80211_MODE_STURBO_A] = "sturboA",
61 	[IEEE80211_MODE_11NA]	  = "11na",
62 	[IEEE80211_MODE_11NG]	  = "11ng",
63 };
64 /* map ieee80211_opmode to the corresponding capability bit */
65 const int ieee80211_opcap[IEEE80211_OPMODE_MAX] = {
66 	[IEEE80211_M_IBSS]	= IEEE80211_C_IBSS,
67 	[IEEE80211_M_WDS]	= IEEE80211_C_WDS,
68 	[IEEE80211_M_STA]	= IEEE80211_C_STA,
69 	[IEEE80211_M_AHDEMO]	= IEEE80211_C_AHDEMO,
70 	[IEEE80211_M_HOSTAP]	= IEEE80211_C_HOSTAP,
71 	[IEEE80211_M_MONITOR]	= IEEE80211_C_MONITOR,
72 };
73 
74 static const uint8_t ieee80211broadcastaddr[IEEE80211_ADDR_LEN] =
75 	{ 0xff, 0xff, 0xff, 0xff, 0xff, 0xff };
76 
77 static	void ieee80211_syncflag_locked(struct ieee80211com *ic, int flag);
78 static	void ieee80211_syncflag_ext_locked(struct ieee80211com *ic, int flag);
79 static	int ieee80211_media_setup(struct ieee80211com *ic,
80 		struct ifmedia *media, int caps, int addsta,
81 		ifm_change_cb_t media_change, ifm_stat_cb_t media_stat);
82 static	void ieee80211com_media_status(struct ifnet *, struct ifmediareq *);
83 static	int ieee80211com_media_change(struct ifnet *);
84 static	int media_status(enum ieee80211_opmode,
85 		const struct ieee80211_channel *);
86 
87 MALLOC_DEFINE(M_80211_VAP, "80211vap", "802.11 vap state");
88 
89 /*
90  * Default supported rates for 802.11 operation (in IEEE .5Mb units).
91  */
92 #define	B(r)	((r) | IEEE80211_RATE_BASIC)
93 static const struct ieee80211_rateset ieee80211_rateset_11a =
94 	{ 8, { B(12), 18, B(24), 36, B(48), 72, 96, 108 } };
95 static const struct ieee80211_rateset ieee80211_rateset_half =
96 	{ 8, { B(6), 9, B(12), 18, B(24), 36, 48, 54 } };
97 static const struct ieee80211_rateset ieee80211_rateset_quarter =
98 	{ 8, { B(3), 4, B(6), 9, B(12), 18, 24, 27 } };
99 static const struct ieee80211_rateset ieee80211_rateset_11b =
100 	{ 4, { B(2), B(4), B(11), B(22) } };
101 /* NB: OFDM rates are handled specially based on mode */
102 static const struct ieee80211_rateset ieee80211_rateset_11g =
103 	{ 12, { B(2), B(4), B(11), B(22), 12, 18, 24, 36, 48, 72, 96, 108 } };
104 #undef B
105 
106 /*
107  * Fill in 802.11 available channel set, mark
108  * all available channels as active, and pick
109  * a default channel if not already specified.
110  */
111 static void
112 ieee80211_chan_init(struct ieee80211com *ic)
113 {
114 #define	DEFAULTRATES(m, def) do { \
115 	if (isset(ic->ic_modecaps, m) && ic->ic_sup_rates[m].rs_nrates == 0) \
116 		ic->ic_sup_rates[m] = def; \
117 } while (0)
118 	struct ieee80211_channel *c;
119 	int i;
120 
121 	KASSERT(0 < ic->ic_nchans && ic->ic_nchans < IEEE80211_CHAN_MAX,
122 		("invalid number of channels specified: %u", ic->ic_nchans));
123 	memset(ic->ic_chan_avail, 0, sizeof(ic->ic_chan_avail));
124 	memset(ic->ic_modecaps, 0, sizeof(ic->ic_modecaps));
125 	setbit(ic->ic_modecaps, IEEE80211_MODE_AUTO);
126 	for (i = 0; i < ic->ic_nchans; i++) {
127 		c = &ic->ic_channels[i];
128 		KASSERT(c->ic_flags != 0, ("channel with no flags"));
129 		KASSERT(c->ic_ieee < IEEE80211_CHAN_MAX,
130 			("channel with bogus ieee number %u", c->ic_ieee));
131 		setbit(ic->ic_chan_avail, c->ic_ieee);
132 		/*
133 		 * Identify mode capabilities.
134 		 */
135 		if (IEEE80211_IS_CHAN_A(c))
136 			setbit(ic->ic_modecaps, IEEE80211_MODE_11A);
137 		if (IEEE80211_IS_CHAN_B(c))
138 			setbit(ic->ic_modecaps, IEEE80211_MODE_11B);
139 		if (IEEE80211_IS_CHAN_ANYG(c))
140 			setbit(ic->ic_modecaps, IEEE80211_MODE_11G);
141 		if (IEEE80211_IS_CHAN_FHSS(c))
142 			setbit(ic->ic_modecaps, IEEE80211_MODE_FH);
143 		if (IEEE80211_IS_CHAN_108A(c))
144 			setbit(ic->ic_modecaps, IEEE80211_MODE_TURBO_A);
145 		if (IEEE80211_IS_CHAN_108G(c))
146 			setbit(ic->ic_modecaps, IEEE80211_MODE_TURBO_G);
147 		if (IEEE80211_IS_CHAN_ST(c))
148 			setbit(ic->ic_modecaps, IEEE80211_MODE_STURBO_A);
149 		if (IEEE80211_IS_CHAN_HTA(c))
150 			setbit(ic->ic_modecaps, IEEE80211_MODE_11NA);
151 		if (IEEE80211_IS_CHAN_HTG(c))
152 			setbit(ic->ic_modecaps, IEEE80211_MODE_11NG);
153 	}
154 	/* initialize candidate channels to all available */
155 	memcpy(ic->ic_chan_active, ic->ic_chan_avail,
156 		sizeof(ic->ic_chan_avail));
157 
158 	/* sort channel table to allow lookup optimizations */
159 	ieee80211_sort_channels(ic->ic_channels, ic->ic_nchans);
160 
161 	/* invalidate any previous state */
162 	ic->ic_bsschan = IEEE80211_CHAN_ANYC;
163 	ic->ic_prevchan = NULL;
164 	ic->ic_csa_newchan = NULL;
165 	/* arbitrarily pick the first channel */
166 	ic->ic_curchan = &ic->ic_channels[0];
167 
168 	/* fillin well-known rate sets if driver has not specified */
169 	DEFAULTRATES(IEEE80211_MODE_11B,	 ieee80211_rateset_11b);
170 	DEFAULTRATES(IEEE80211_MODE_11G,	 ieee80211_rateset_11g);
171 	DEFAULTRATES(IEEE80211_MODE_11A,	 ieee80211_rateset_11a);
172 	DEFAULTRATES(IEEE80211_MODE_TURBO_A,	 ieee80211_rateset_11a);
173 	DEFAULTRATES(IEEE80211_MODE_TURBO_G,	 ieee80211_rateset_11g);
174 
175 	/*
176 	 * Set auto mode to reset active channel state and any desired channel.
177 	 */
178 	(void) ieee80211_setmode(ic, IEEE80211_MODE_AUTO);
179 #undef DEFAULTRATES
180 }
181 
182 static void
183 null_update_mcast(struct ifnet *ifp)
184 {
185 	if_printf(ifp, "need multicast update callback\n");
186 }
187 
188 static void
189 null_update_promisc(struct ifnet *ifp)
190 {
191 	if_printf(ifp, "need promiscuous mode update callback\n");
192 }
193 
194 static int
195 null_output(struct ifnet *ifp, struct mbuf *m,
196 	struct sockaddr *dst, struct rtentry *rt0)
197 {
198 	if_printf(ifp, "discard raw packet\n");
199 	m_freem(m);
200 	return EIO;
201 }
202 
203 static void
204 null_input(struct ifnet *ifp, struct mbuf *m)
205 {
206 	if_printf(ifp, "if_input should not be called\n");
207 	m_freem(m);
208 }
209 
210 /*
211  * Attach/setup the common net80211 state.  Called by
212  * the driver on attach to prior to creating any vap's.
213  */
214 void
215 ieee80211_ifattach(struct ieee80211com *ic)
216 {
217 	struct ifnet *ifp = ic->ic_ifp;
218 	struct sockaddr_dl *sdl;
219 	struct ifaddr *ifa;
220 
221 	KASSERT(ifp->if_type == IFT_IEEE80211, ("if_type %d", ifp->if_type));
222 
223 	IEEE80211_LOCK_INIT(ic, ifp->if_xname);
224 	TAILQ_INIT(&ic->ic_vaps);
225 	/*
226 	 * Fill in 802.11 available channel set, mark all
227 	 * available channels as active, and pick a default
228 	 * channel if not already specified.
229 	 */
230 	ieee80211_media_init(ic);
231 
232 	ic->ic_update_mcast = null_update_mcast;
233 	ic->ic_update_promisc = null_update_promisc;
234 
235 	ic->ic_bintval = IEEE80211_BINTVAL_DEFAULT;
236 	ic->ic_lintval = ic->ic_bintval;
237 	ic->ic_txpowlimit = IEEE80211_TXPOWER_MAX;
238 
239 	ieee80211_crypto_attach(ic);
240 	ieee80211_node_attach(ic);
241 	ieee80211_power_attach(ic);
242 	ieee80211_proto_attach(ic);
243 	ieee80211_ht_attach(ic);
244 	ieee80211_scan_attach(ic);
245 	ieee80211_regdomain_attach(ic);
246 
247 	ieee80211_sysctl_attach(ic);
248 
249 	ifp->if_addrlen = IEEE80211_ADDR_LEN;
250 	ifp->if_hdrlen = 0;
251 	if_attach(ifp);
252 	ifp->if_mtu = IEEE80211_MTU_MAX;
253 	ifp->if_broadcastaddr = ieee80211broadcastaddr;
254 	ifp->if_output = null_output;
255 	ifp->if_input = null_input;	/* just in case */
256 	ifp->if_resolvemulti = NULL;	/* NB: callers check */
257 
258 	ifa = ifaddr_byindex(ifp->if_index);
259 	KASSERT(ifa != NULL, ("%s: no lladdr!\n", __func__));
260 	sdl = (struct sockaddr_dl *)ifa->ifa_addr;
261 	sdl->sdl_type = IFT_ETHER;		/* XXX IFT_IEEE80211? */
262 	sdl->sdl_alen = IEEE80211_ADDR_LEN;
263 	IEEE80211_ADDR_COPY(LLADDR(sdl), ic->ic_myaddr);
264 }
265 
266 /*
267  * Detach net80211 state on device detach.  Tear down
268  * all vap's and reclaim all common state prior to the
269  * device state going away.  Note we may call back into
270  * driver; it must be prepared for this.
271  */
272 void
273 ieee80211_ifdetach(struct ieee80211com *ic)
274 {
275 	struct ifnet *ifp = ic->ic_ifp;
276 	struct ieee80211vap *vap;
277 
278 	/* XXX ieee80211_stop_all? */
279 	while ((vap = TAILQ_FIRST(&ic->ic_vaps)) != NULL)
280 		ieee80211_vap_destroy(vap);
281 
282 	ieee80211_sysctl_detach(ic);
283 	ieee80211_regdomain_detach(ic);
284 	ieee80211_scan_detach(ic);
285 	ieee80211_ht_detach(ic);
286 	/* NB: must be called before ieee80211_node_detach */
287 	ieee80211_proto_detach(ic);
288 	ieee80211_crypto_detach(ic);
289 	ieee80211_power_detach(ic);
290 	ieee80211_node_detach(ic);
291 	ifmedia_removeall(&ic->ic_media);
292 
293 	IEEE80211_LOCK_DESTROY(ic);
294 	if_detach(ifp);
295 }
296 
297 /*
298  * Default reset method for use with the ioctl support.  This
299  * method is invoked after any state change in the 802.11
300  * layer that should be propagated to the hardware but not
301  * require re-initialization of the 802.11 state machine (e.g
302  * rescanning for an ap).  We always return ENETRESET which
303  * should cause the driver to re-initialize the device. Drivers
304  * can override this method to implement more optimized support.
305  */
306 static int
307 default_reset(struct ieee80211vap *vap, u_long cmd)
308 {
309 	return ENETRESET;
310 }
311 
312 /*
313  * Prepare a vap for use.  Drivers use this call to
314  * setup net80211 state in new vap's prior attaching
315  * them with ieee80211_vap_attach (below).
316  */
317 int
318 ieee80211_vap_setup(struct ieee80211com *ic, struct ieee80211vap *vap,
319 	const char name[IFNAMSIZ], int unit, int opmode, int flags,
320 	const uint8_t bssid[IEEE80211_ADDR_LEN],
321 	const uint8_t macaddr[IEEE80211_ADDR_LEN])
322 {
323 	struct ifnet *ifp;
324 
325 	ifp = if_alloc(IFT_ETHER);
326 	if (ifp == NULL) {
327 		if_printf(ic->ic_ifp, "%s: unable to allocate ifnet\n",
328 		    __func__);
329 		return ENOMEM;
330 	}
331 	if_initname(ifp, name, unit);
332 	ifp->if_softc = vap;			/* back pointer */
333 	ifp->if_flags = IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST;
334 	ifp->if_start = ieee80211_start;
335 	ifp->if_ioctl = ieee80211_ioctl;
336 	ifp->if_watchdog = NULL;		/* NB: no watchdog routine */
337 	ifp->if_init = ieee80211_init;
338 	/* NB: input+output filled in by ether_ifattach */
339 	IFQ_SET_MAXLEN(&ifp->if_snd, IFQ_MAXLEN);
340 	ifp->if_snd.ifq_drv_maxlen = IFQ_MAXLEN;
341 	IFQ_SET_READY(&ifp->if_snd);
342 
343 	vap->iv_ifp = ifp;
344 	vap->iv_ic = ic;
345 	vap->iv_flags = ic->ic_flags;		/* propagate common flags */
346 	vap->iv_flags_ext = ic->ic_flags_ext;
347 	vap->iv_flags_ven = ic->ic_flags_ven;
348 	vap->iv_caps = ic->ic_caps &~ IEEE80211_C_OPMODE;
349 	vap->iv_htcaps = ic->ic_htcaps;
350 	vap->iv_opmode = opmode;
351 	vap->iv_caps |= ieee80211_opcap[opmode];
352 	switch (opmode) {
353 	case IEEE80211_M_WDS:
354 		/*
355 		 * WDS links must specify the bssid of the far end.
356 		 * For legacy operation this is a static relationship.
357 		 * For non-legacy operation the station must associate
358 		 * and be authorized to pass traffic.  Plumbing the
359 		 * vap to the proper node happens when the vap
360 		 * transitions to RUN state.
361 		 */
362 		IEEE80211_ADDR_COPY(vap->iv_des_bssid, bssid);
363 		vap->iv_flags |= IEEE80211_F_DESBSSID;
364 		if (flags & IEEE80211_CLONE_WDSLEGACY)
365 			vap->iv_flags_ext |= IEEE80211_FEXT_WDSLEGACY;
366 		break;
367 	}
368 	/* auto-enable s/w beacon miss support */
369 	if (flags & IEEE80211_CLONE_NOBEACONS)
370 		vap->iv_flags_ext |= IEEE80211_FEXT_SWBMISS;
371 	/*
372 	 * Enable various functionality by default if we're
373 	 * capable; the driver can override us if it knows better.
374 	 */
375 	if (vap->iv_caps & IEEE80211_C_WME)
376 		vap->iv_flags |= IEEE80211_F_WME;
377 	if (vap->iv_caps & IEEE80211_C_BURST)
378 		vap->iv_flags |= IEEE80211_F_BURST;
379 	if (vap->iv_caps & IEEE80211_C_FF)
380 		vap->iv_flags |= IEEE80211_F_FF;
381 	if (vap->iv_caps & IEEE80211_C_TURBOP)
382 		vap->iv_flags |= IEEE80211_F_TURBOP;
383 	/* NB: bg scanning only makes sense for station mode right now */
384 	if (vap->iv_opmode == IEEE80211_M_STA &&
385 	    (vap->iv_caps & IEEE80211_C_BGSCAN))
386 		vap->iv_flags |= IEEE80211_F_BGSCAN;
387 	vap->iv_flags |= IEEE80211_F_DOTH;	/* XXX no cap, just ena */
388 	/* NB: DFS support only makes sense for ap mode right now */
389 	if (vap->iv_opmode == IEEE80211_M_HOSTAP &&
390 	    (vap->iv_caps & IEEE80211_C_DFS))
391 		vap->iv_flags_ext |= IEEE80211_FEXT_DFS;
392 
393 	vap->iv_des_chan = IEEE80211_CHAN_ANYC;		/* any channel is ok */
394 	vap->iv_bmissthreshold = IEEE80211_HWBMISS_DEFAULT;
395 	vap->iv_dtim_period = IEEE80211_DTIM_DEFAULT;
396 	/*
397 	 * Install a default reset method for the ioctl support;
398 	 * the driver can override this.
399 	 */
400 	vap->iv_reset = default_reset;
401 
402 	IEEE80211_ADDR_COPY(vap->iv_myaddr, macaddr);
403 
404 	ieee80211_sysctl_vattach(vap);
405 	ieee80211_crypto_vattach(vap);
406 	ieee80211_node_vattach(vap);
407 	ieee80211_power_vattach(vap);
408 	ieee80211_proto_vattach(vap);
409 	ieee80211_ht_vattach(vap);
410 	ieee80211_scan_vattach(vap);
411 	ieee80211_regdomain_vattach(vap);
412 
413 	return 0;
414 }
415 
416 /*
417  * Activate a vap.  State should have been prepared with a
418  * call to ieee80211_vap_setup and by the driver.  On return
419  * from this call the vap is ready for use.
420  */
421 int
422 ieee80211_vap_attach(struct ieee80211vap *vap,
423 	ifm_change_cb_t media_change, ifm_stat_cb_t media_stat)
424 {
425 	struct ifnet *ifp = vap->iv_ifp;
426 	struct ieee80211com *ic = vap->iv_ic;
427 	struct ifmediareq imr;
428 	int maxrate;
429 
430 	IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE,
431 	    "%s: %s parent %s flags 0x%x flags_ext 0x%x\n",
432 	    __func__, ieee80211_opmode_name[vap->iv_opmode],
433 	    ic->ic_ifp->if_xname, vap->iv_flags, vap->iv_flags_ext);
434 
435 	/*
436 	 * Do late attach work that cannot happen until after
437 	 * the driver has had a chance to override defaults.
438 	 */
439 	ieee80211_node_latevattach(vap);
440 	ieee80211_power_latevattach(vap);
441 
442 	maxrate = ieee80211_media_setup(ic, &vap->iv_media, vap->iv_caps,
443 	    vap->iv_opmode == IEEE80211_M_STA, media_change, media_stat);
444 	ieee80211_media_status(ifp, &imr);
445 	/* NB: strip explicit mode; we're actually in autoselect */
446 	ifmedia_set(&vap->iv_media, imr.ifm_active &~ IFM_MMASK);
447 	if (maxrate)
448 		ifp->if_baudrate = IF_Mbps(maxrate);
449 
450 	ether_ifattach(ifp, vap->iv_myaddr);
451 	/* hook output method setup by ether_ifattach */
452 	vap->iv_output = ifp->if_output;
453 	ifp->if_output = ieee80211_output;
454 	/* NB: if_mtu set by ether_ifattach to ETHERMTU */
455 	bpfattach2(ifp, DLT_IEEE802_11, ifp->if_hdrlen, &vap->iv_rawbpf);
456 
457 	IEEE80211_LOCK(ic);
458 	TAILQ_INSERT_TAIL(&ic->ic_vaps, vap, iv_next);
459 	ieee80211_syncflag_locked(ic, IEEE80211_F_WME);
460 	ieee80211_syncflag_locked(ic, IEEE80211_F_TURBOP);
461 	ieee80211_syncflag_locked(ic, IEEE80211_F_PCF);
462 	ieee80211_syncflag_locked(ic, IEEE80211_F_BURST);
463 	ieee80211_syncflag_ext_locked(ic, IEEE80211_FEXT_HT);
464 	ieee80211_syncflag_ext_locked(ic, IEEE80211_FEXT_USEHT40);
465 	ieee80211_syncifflag_locked(ic, IFF_PROMISC);
466 	ieee80211_syncifflag_locked(ic, IFF_ALLMULTI);
467 	IEEE80211_UNLOCK(ic);
468 
469 	return 1;
470 }
471 
472 /*
473  * Tear down vap state and reclaim the ifnet.
474  * The driver is assumed to have prepared for
475  * this; e.g. by turning off interrupts for the
476  * underlying device.
477  */
478 void
479 ieee80211_vap_detach(struct ieee80211vap *vap)
480 {
481 	struct ieee80211com *ic = vap->iv_ic;
482 	struct ifnet *ifp = vap->iv_ifp;
483 
484 	IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, "%s: %s parent %s\n",
485 	    __func__, ieee80211_opmode_name[vap->iv_opmode],
486 	    ic->ic_ifp->if_xname);
487 
488 	IEEE80211_LOCK(ic);
489 	/* block traffic from above */
490 	ifp->if_drv_flags |= IFF_DRV_OACTIVE;
491 	/*
492 	 * Evil hack.  Clear the backpointer from the ifnet to the
493 	 * vap so any requests from above will return an error or
494 	 * be ignored.  In particular this short-circuits requests
495 	 * by the bridge to turn off promiscuous mode as a result
496 	 * of calling ether_ifdetach.
497 	 */
498 	ifp->if_softc = NULL;
499 	/*
500 	 * Stop the vap before detaching the ifnet.  Ideally we'd
501 	 * do this in the other order so the ifnet is inaccessible
502 	 * while we cleanup internal state but that is hard.
503 	 */
504 	ieee80211_stop_locked(vap);
505 
506 	/* XXX accumulate iv_stats in ic_stats? */
507 	TAILQ_REMOVE(&ic->ic_vaps, vap, iv_next);
508 	ieee80211_syncflag_locked(ic, IEEE80211_F_WME);
509 	ieee80211_syncflag_locked(ic, IEEE80211_F_TURBOP);
510 	ieee80211_syncflag_locked(ic, IEEE80211_F_PCF);
511 	ieee80211_syncflag_locked(ic, IEEE80211_F_BURST);
512 	ieee80211_syncflag_ext_locked(ic, IEEE80211_FEXT_HT);
513 	ieee80211_syncflag_ext_locked(ic, IEEE80211_FEXT_USEHT40);
514 	ieee80211_syncifflag_locked(ic, IFF_PROMISC);
515 	ieee80211_syncifflag_locked(ic, IFF_ALLMULTI);
516 	IEEE80211_UNLOCK(ic);
517 
518 	/* XXX can't hold com lock */
519 	/* NB: bpfattach is called by ether_ifdetach and claims all taps */
520 	ether_ifdetach(ifp);
521 
522 	ifmedia_removeall(&vap->iv_media);
523 
524 	ieee80211_regdomain_vdetach(vap);
525 	ieee80211_scan_vdetach(vap);
526 	ieee80211_ht_vdetach(vap);
527 	/* NB: must be before ieee80211_node_vdetach */
528 	ieee80211_proto_vdetach(vap);
529 	ieee80211_crypto_vdetach(vap);
530 	ieee80211_power_vdetach(vap);
531 	ieee80211_node_vdetach(vap);
532 	ieee80211_sysctl_vdetach(vap);
533 
534 	if_free(ifp);
535 }
536 
537 /*
538  * Synchronize flag bit state in the parent ifnet structure
539  * according to the state of all vap ifnet's.  This is used,
540  * for example, to handle IFF_PROMISC and IFF_ALLMULTI.
541  */
542 void
543 ieee80211_syncifflag_locked(struct ieee80211com *ic, int flag)
544 {
545 	struct ifnet *ifp = ic->ic_ifp;
546 	struct ieee80211vap *vap;
547 	int bit, oflags;
548 
549 	IEEE80211_LOCK_ASSERT(ic);
550 
551 	bit = 0;
552 	TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next)
553 		if (vap->iv_ifp->if_flags & flag) {
554 			/*
555 			 * XXX the bridge sets PROMISC but we don't want to
556 			 * enable it on the device, discard here so all the
557 			 * drivers don't need to special-case it
558 			 */
559 			if (flag == IFF_PROMISC &&
560 			    vap->iv_opmode == IEEE80211_M_HOSTAP)
561 				continue;
562 			bit = 1;
563 			break;
564 		}
565 	oflags = ifp->if_flags;
566 	if (bit)
567 		ifp->if_flags |= flag;
568 	else
569 		ifp->if_flags &= ~flag;
570 	if ((ifp->if_flags ^ oflags) & flag) {
571 		/* XXX should we return 1/0 and let caller do this? */
572 		if (ifp->if_drv_flags & IFF_DRV_RUNNING) {
573 			if (flag == IFF_PROMISC)
574 				ic->ic_update_promisc(ifp);
575 			else if (flag == IFF_ALLMULTI)
576 				ic->ic_update_mcast(ifp);
577 		}
578 	}
579 }
580 
581 /*
582  * Synchronize flag bit state in the com structure
583  * according to the state of all vap's.  This is used,
584  * for example, to handle state changes via ioctls.
585  */
586 static void
587 ieee80211_syncflag_locked(struct ieee80211com *ic, int flag)
588 {
589 	struct ieee80211vap *vap;
590 	int bit;
591 
592 	IEEE80211_LOCK_ASSERT(ic);
593 
594 	bit = 0;
595 	TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next)
596 		if (vap->iv_flags & flag) {
597 			bit = 1;
598 			break;
599 		}
600 	if (bit)
601 		ic->ic_flags |= flag;
602 	else
603 		ic->ic_flags &= ~flag;
604 }
605 
606 void
607 ieee80211_syncflag(struct ieee80211vap *vap, int flag)
608 {
609 	struct ieee80211com *ic = vap->iv_ic;
610 
611 	IEEE80211_LOCK(ic);
612 	if (flag < 0) {
613 		flag = -flag;
614 		vap->iv_flags &= ~flag;
615 	} else
616 		vap->iv_flags |= flag;
617 	ieee80211_syncflag_locked(ic, flag);
618 	IEEE80211_UNLOCK(ic);
619 }
620 
621 /*
622  * Synchronize flag bit state in the com structure
623  * according to the state of all vap's.  This is used,
624  * for example, to handle state changes via ioctls.
625  */
626 static void
627 ieee80211_syncflag_ext_locked(struct ieee80211com *ic, int flag)
628 {
629 	struct ieee80211vap *vap;
630 	int bit;
631 
632 	IEEE80211_LOCK_ASSERT(ic);
633 
634 	bit = 0;
635 	TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next)
636 		if (vap->iv_flags_ext & flag) {
637 			bit = 1;
638 			break;
639 		}
640 	if (bit)
641 		ic->ic_flags_ext |= flag;
642 	else
643 		ic->ic_flags_ext &= ~flag;
644 }
645 
646 void
647 ieee80211_syncflag_ext(struct ieee80211vap *vap, int flag)
648 {
649 	struct ieee80211com *ic = vap->iv_ic;
650 
651 	IEEE80211_LOCK(ic);
652 	if (flag < 0) {
653 		flag = -flag;
654 		vap->iv_flags_ext &= ~flag;
655 	} else
656 		vap->iv_flags_ext |= flag;
657 	ieee80211_syncflag_ext_locked(ic, flag);
658 	IEEE80211_UNLOCK(ic);
659 }
660 
661 static __inline int
662 mapgsm(u_int freq, u_int flags)
663 {
664 	freq *= 10;
665 	if (flags & IEEE80211_CHAN_QUARTER)
666 		freq += 5;
667 	else if (flags & IEEE80211_CHAN_HALF)
668 		freq += 10;
669 	else
670 		freq += 20;
671 	/* NB: there is no 907/20 wide but leave room */
672 	return (freq - 906*10) / 5;
673 }
674 
675 static __inline int
676 mappsb(u_int freq, u_int flags)
677 {
678 	return 37 + ((freq * 10) + ((freq % 5) == 2 ? 5 : 0) - 49400) / 5;
679 }
680 
681 /*
682  * Convert MHz frequency to IEEE channel number.
683  */
684 int
685 ieee80211_mhz2ieee(u_int freq, u_int flags)
686 {
687 #define	IS_FREQ_IN_PSB(_freq) ((_freq) > 4940 && (_freq) < 4990)
688 	if (flags & IEEE80211_CHAN_GSM)
689 		return mapgsm(freq, flags);
690 	if (flags & IEEE80211_CHAN_2GHZ) {	/* 2GHz band */
691 		if (freq == 2484)
692 			return 14;
693 		if (freq < 2484)
694 			return ((int) freq - 2407) / 5;
695 		else
696 			return 15 + ((freq - 2512) / 20);
697 	} else if (flags & IEEE80211_CHAN_5GHZ) {	/* 5Ghz band */
698 		if (freq <= 5000) {
699 			/* XXX check regdomain? */
700 			if (IS_FREQ_IN_PSB(freq))
701 				return mappsb(freq, flags);
702 			return (freq - 4000) / 5;
703 		} else
704 			return (freq - 5000) / 5;
705 	} else {				/* either, guess */
706 		if (freq == 2484)
707 			return 14;
708 		if (freq < 2484) {
709 			if (907 <= freq && freq <= 922)
710 				return mapgsm(freq, flags);
711 			return ((int) freq - 2407) / 5;
712 		}
713 		if (freq < 5000) {
714 			if (IS_FREQ_IN_PSB(freq))
715 				return mappsb(freq, flags);
716 			else if (freq > 4900)
717 				return (freq - 4000) / 5;
718 			else
719 				return 15 + ((freq - 2512) / 20);
720 		}
721 		return (freq - 5000) / 5;
722 	}
723 #undef IS_FREQ_IN_PSB
724 }
725 
726 /*
727  * Convert channel to IEEE channel number.
728  */
729 int
730 ieee80211_chan2ieee(struct ieee80211com *ic, const struct ieee80211_channel *c)
731 {
732 	if (c == NULL) {
733 		if_printf(ic->ic_ifp, "invalid channel (NULL)\n");
734 		return 0;		/* XXX */
735 	}
736 	return (c == IEEE80211_CHAN_ANYC ?  IEEE80211_CHAN_ANY : c->ic_ieee);
737 }
738 
739 /*
740  * Convert IEEE channel number to MHz frequency.
741  */
742 u_int
743 ieee80211_ieee2mhz(u_int chan, u_int flags)
744 {
745 	if (flags & IEEE80211_CHAN_GSM)
746 		return 907 + 5 * (chan / 10);
747 	if (flags & IEEE80211_CHAN_2GHZ) {	/* 2GHz band */
748 		if (chan == 14)
749 			return 2484;
750 		if (chan < 14)
751 			return 2407 + chan*5;
752 		else
753 			return 2512 + ((chan-15)*20);
754 	} else if (flags & IEEE80211_CHAN_5GHZ) {/* 5Ghz band */
755 		if (flags & (IEEE80211_CHAN_HALF|IEEE80211_CHAN_QUARTER)) {
756 			chan -= 37;
757 			return 4940 + chan*5 + (chan % 5 ? 2 : 0);
758 		}
759 		return 5000 + (chan*5);
760 	} else {				/* either, guess */
761 		/* XXX can't distinguish PSB+GSM channels */
762 		if (chan == 14)
763 			return 2484;
764 		if (chan < 14)			/* 0-13 */
765 			return 2407 + chan*5;
766 		if (chan < 27)			/* 15-26 */
767 			return 2512 + ((chan-15)*20);
768 		return 5000 + (chan*5);
769 	}
770 }
771 
772 /*
773  * Locate a channel given a frequency+flags.  We cache
774  * the previous lookup to optimize switching between two
775  * channels--as happens with dynamic turbo.
776  */
777 struct ieee80211_channel *
778 ieee80211_find_channel(struct ieee80211com *ic, int freq, int flags)
779 {
780 	struct ieee80211_channel *c;
781 	int i;
782 
783 	flags &= IEEE80211_CHAN_ALLTURBO;
784 	c = ic->ic_prevchan;
785 	if (c != NULL && c->ic_freq == freq &&
786 	    (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags)
787 		return c;
788 	/* brute force search */
789 	for (i = 0; i < ic->ic_nchans; i++) {
790 		c = &ic->ic_channels[i];
791 		if (c->ic_freq == freq &&
792 		    (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags)
793 			return c;
794 	}
795 	return NULL;
796 }
797 
798 /*
799  * Locate a channel given a channel number+flags.  We cache
800  * the previous lookup to optimize switching between two
801  * channels--as happens with dynamic turbo.
802  */
803 struct ieee80211_channel *
804 ieee80211_find_channel_byieee(struct ieee80211com *ic, int ieee, int flags)
805 {
806 	struct ieee80211_channel *c;
807 	int i;
808 
809 	flags &= IEEE80211_CHAN_ALLTURBO;
810 	c = ic->ic_prevchan;
811 	if (c != NULL && c->ic_ieee == ieee &&
812 	    (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags)
813 		return c;
814 	/* brute force search */
815 	for (i = 0; i < ic->ic_nchans; i++) {
816 		c = &ic->ic_channels[i];
817 		if (c->ic_ieee == ieee &&
818 		    (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags)
819 			return c;
820 	}
821 	return NULL;
822 }
823 
824 static void
825 addmedia(struct ifmedia *media, int caps, int addsta, int mode, int mword)
826 {
827 #define	ADD(_ic, _s, _o) \
828 	ifmedia_add(media, \
829 		IFM_MAKEWORD(IFM_IEEE80211, (_s), (_o), 0), 0, NULL)
830 	static const u_int mopts[IEEE80211_MODE_MAX] = {
831 		IFM_AUTO,
832 		IFM_IEEE80211_11A,
833 		IFM_IEEE80211_11B,
834 		IFM_IEEE80211_11G,
835 		IFM_IEEE80211_FH,
836 		IFM_IEEE80211_11A | IFM_IEEE80211_TURBO,
837 		IFM_IEEE80211_11G | IFM_IEEE80211_TURBO,
838 		IFM_IEEE80211_11A | IFM_IEEE80211_TURBO,
839 		IFM_IEEE80211_11NA,
840 		IFM_IEEE80211_11NG,
841 	};
842 	u_int mopt;
843 
844 	mopt = mopts[mode];
845 	if (addsta)
846 		ADD(ic, mword, mopt);	/* STA mode has no cap */
847 	if (caps & IEEE80211_C_IBSS)
848 		ADD(media, mword, mopt | IFM_IEEE80211_ADHOC);
849 	if (caps & IEEE80211_C_HOSTAP)
850 		ADD(media, mword, mopt | IFM_IEEE80211_HOSTAP);
851 	if (caps & IEEE80211_C_AHDEMO)
852 		ADD(media, mword, mopt | IFM_IEEE80211_ADHOC | IFM_FLAG0);
853 	if (caps & IEEE80211_C_MONITOR)
854 		ADD(media, mword, mopt | IFM_IEEE80211_MONITOR);
855 	if (caps & IEEE80211_C_WDS)
856 		ADD(media, mword, mopt | IFM_IEEE80211_WDS);
857 #undef ADD
858 }
859 
860 /*
861  * Setup the media data structures according to the channel and
862  * rate tables.
863  */
864 static int
865 ieee80211_media_setup(struct ieee80211com *ic,
866 	struct ifmedia *media, int caps, int addsta,
867 	ifm_change_cb_t media_change, ifm_stat_cb_t media_stat)
868 {
869 	int i, j, mode, rate, maxrate, mword, r;
870 	const struct ieee80211_rateset *rs;
871 	struct ieee80211_rateset allrates;
872 
873 	/*
874 	 * Fill in media characteristics.
875 	 */
876 	ifmedia_init(media, 0, media_change, media_stat);
877 	maxrate = 0;
878 	/*
879 	 * Add media for legacy operating modes.
880 	 */
881 	memset(&allrates, 0, sizeof(allrates));
882 	for (mode = IEEE80211_MODE_AUTO; mode < IEEE80211_MODE_11NA; mode++) {
883 		if (isclr(ic->ic_modecaps, mode))
884 			continue;
885 		addmedia(media, caps, addsta, mode, IFM_AUTO);
886 		if (mode == IEEE80211_MODE_AUTO)
887 			continue;
888 		rs = &ic->ic_sup_rates[mode];
889 		for (i = 0; i < rs->rs_nrates; i++) {
890 			rate = rs->rs_rates[i];
891 			mword = ieee80211_rate2media(ic, rate, mode);
892 			if (mword == 0)
893 				continue;
894 			addmedia(media, caps, addsta, mode, mword);
895 			/*
896 			 * Add legacy rate to the collection of all rates.
897 			 */
898 			r = rate & IEEE80211_RATE_VAL;
899 			for (j = 0; j < allrates.rs_nrates; j++)
900 				if (allrates.rs_rates[j] == r)
901 					break;
902 			if (j == allrates.rs_nrates) {
903 				/* unique, add to the set */
904 				allrates.rs_rates[j] = r;
905 				allrates.rs_nrates++;
906 			}
907 			rate = (rate & IEEE80211_RATE_VAL) / 2;
908 			if (rate > maxrate)
909 				maxrate = rate;
910 		}
911 	}
912 	for (i = 0; i < allrates.rs_nrates; i++) {
913 		mword = ieee80211_rate2media(ic, allrates.rs_rates[i],
914 				IEEE80211_MODE_AUTO);
915 		if (mword == 0)
916 			continue;
917 		/* NB: remove media options from mword */
918 		addmedia(media, caps, addsta,
919 		    IEEE80211_MODE_AUTO, IFM_SUBTYPE(mword));
920 	}
921 	/*
922 	 * Add HT/11n media.  Note that we do not have enough
923 	 * bits in the media subtype to express the MCS so we
924 	 * use a "placeholder" media subtype and any fixed MCS
925 	 * must be specified with a different mechanism.
926 	 */
927 	for (; mode < IEEE80211_MODE_MAX; mode++) {
928 		if (isclr(ic->ic_modecaps, mode))
929 			continue;
930 		addmedia(media, caps, addsta, mode, IFM_AUTO);
931 		addmedia(media, caps, addsta, mode, IFM_IEEE80211_MCS);
932 	}
933 	if (isset(ic->ic_modecaps, IEEE80211_MODE_11NA) ||
934 	    isset(ic->ic_modecaps, IEEE80211_MODE_11NG)) {
935 		addmedia(media, caps, addsta,
936 		    IEEE80211_MODE_AUTO, IFM_IEEE80211_MCS);
937 		/* XXX could walk htrates */
938 		/* XXX known array size */
939 		if (ieee80211_htrates[15].ht40_rate_400ns > maxrate)
940 			maxrate = ieee80211_htrates[15].ht40_rate_400ns;
941 	}
942 	return maxrate;
943 }
944 
945 void
946 ieee80211_media_init(struct ieee80211com *ic)
947 {
948 	struct ifnet *ifp = ic->ic_ifp;
949 	int maxrate;
950 
951 	/* NB: this works because the structure is initialized to zero */
952 	if (!LIST_EMPTY(&ic->ic_media.ifm_list)) {
953 		/*
954 		 * We are re-initializing the channel list; clear
955 		 * the existing media state as the media routines
956 		 * don't suppress duplicates.
957 		 */
958 		ifmedia_removeall(&ic->ic_media);
959 	}
960 	ieee80211_chan_init(ic);
961 
962 	/*
963 	 * Recalculate media settings in case new channel list changes
964 	 * the set of available modes.
965 	 */
966 	maxrate = ieee80211_media_setup(ic, &ic->ic_media, ic->ic_caps, 1,
967 		ieee80211com_media_change, ieee80211com_media_status);
968 	/* NB: strip explicit mode; we're actually in autoselect */
969 	ifmedia_set(&ic->ic_media,
970 		media_status(ic->ic_opmode, ic->ic_curchan) &~ IFM_MMASK);
971 	if (maxrate)
972 		ifp->if_baudrate = IF_Mbps(maxrate);
973 
974 	/* XXX need to propagate new media settings to vap's */
975 }
976 
977 const struct ieee80211_rateset *
978 ieee80211_get_suprates(struct ieee80211com *ic, const struct ieee80211_channel *c)
979 {
980 	if (IEEE80211_IS_CHAN_HALF(c))
981 		return &ieee80211_rateset_half;
982 	if (IEEE80211_IS_CHAN_QUARTER(c))
983 		return &ieee80211_rateset_quarter;
984 	if (IEEE80211_IS_CHAN_HTA(c))
985 		return &ic->ic_sup_rates[IEEE80211_MODE_11A];
986 	if (IEEE80211_IS_CHAN_HTG(c)) {
987 		/* XXX does this work for basic rates? */
988 		return &ic->ic_sup_rates[IEEE80211_MODE_11G];
989 	}
990 	return &ic->ic_sup_rates[ieee80211_chan2mode(c)];
991 }
992 
993 void
994 ieee80211_announce(struct ieee80211com *ic)
995 {
996 	struct ifnet *ifp = ic->ic_ifp;
997 	int i, mode, rate, mword;
998 	const struct ieee80211_rateset *rs;
999 
1000 	/* NB: skip AUTO since it has no rates */
1001 	for (mode = IEEE80211_MODE_AUTO+1; mode < IEEE80211_MODE_11NA; mode++) {
1002 		if (isclr(ic->ic_modecaps, mode))
1003 			continue;
1004 		if_printf(ifp, "%s rates: ", ieee80211_phymode_name[mode]);
1005 		rs = &ic->ic_sup_rates[mode];
1006 		for (i = 0; i < rs->rs_nrates; i++) {
1007 			mword = ieee80211_rate2media(ic, rs->rs_rates[i], mode);
1008 			if (mword == 0)
1009 				continue;
1010 			rate = ieee80211_media2rate(mword);
1011 			printf("%s%d%sMbps", (i != 0 ? " " : ""),
1012 			    rate / 2, ((rate & 0x1) != 0 ? ".5" : ""));
1013 		}
1014 		printf("\n");
1015 	}
1016 	ieee80211_ht_announce(ic);
1017 }
1018 
1019 void
1020 ieee80211_announce_channels(struct ieee80211com *ic)
1021 {
1022 	const struct ieee80211_channel *c;
1023 	char type;
1024 	int i, cw;
1025 
1026 	printf("Chan  Freq  CW  RegPwr  MinPwr  MaxPwr\n");
1027 	for (i = 0; i < ic->ic_nchans; i++) {
1028 		c = &ic->ic_channels[i];
1029 		if (IEEE80211_IS_CHAN_ST(c))
1030 			type = 'S';
1031 		else if (IEEE80211_IS_CHAN_108A(c))
1032 			type = 'T';
1033 		else if (IEEE80211_IS_CHAN_108G(c))
1034 			type = 'G';
1035 		else if (IEEE80211_IS_CHAN_HT(c))
1036 			type = 'n';
1037 		else if (IEEE80211_IS_CHAN_A(c))
1038 			type = 'a';
1039 		else if (IEEE80211_IS_CHAN_ANYG(c))
1040 			type = 'g';
1041 		else if (IEEE80211_IS_CHAN_B(c))
1042 			type = 'b';
1043 		else
1044 			type = 'f';
1045 		if (IEEE80211_IS_CHAN_HT40(c) || IEEE80211_IS_CHAN_TURBO(c))
1046 			cw = 40;
1047 		else if (IEEE80211_IS_CHAN_HALF(c))
1048 			cw = 10;
1049 		else if (IEEE80211_IS_CHAN_QUARTER(c))
1050 			cw = 5;
1051 		else
1052 			cw = 20;
1053 		printf("%4d  %4d%c %2d%c %6d  %4d.%d  %4d.%d\n"
1054 			, c->ic_ieee, c->ic_freq, type
1055 			, cw
1056 			, IEEE80211_IS_CHAN_HT40U(c) ? '+' :
1057 			  IEEE80211_IS_CHAN_HT40D(c) ? '-' : ' '
1058 			, c->ic_maxregpower
1059 			, c->ic_minpower / 2, c->ic_minpower & 1 ? 5 : 0
1060 			, c->ic_maxpower / 2, c->ic_maxpower & 1 ? 5 : 0
1061 		);
1062 	}
1063 }
1064 
1065 static int
1066 media2mode(const struct ifmedia_entry *ime, uint32_t flags, uint16_t *mode)
1067 {
1068 	switch (IFM_MODE(ime->ifm_media)) {
1069 	case IFM_IEEE80211_11A:
1070 		*mode = IEEE80211_MODE_11A;
1071 		break;
1072 	case IFM_IEEE80211_11B:
1073 		*mode = IEEE80211_MODE_11B;
1074 		break;
1075 	case IFM_IEEE80211_11G:
1076 		*mode = IEEE80211_MODE_11G;
1077 		break;
1078 	case IFM_IEEE80211_FH:
1079 		*mode = IEEE80211_MODE_FH;
1080 		break;
1081 	case IFM_IEEE80211_11NA:
1082 		*mode = IEEE80211_MODE_11NA;
1083 		break;
1084 	case IFM_IEEE80211_11NG:
1085 		*mode = IEEE80211_MODE_11NG;
1086 		break;
1087 	case IFM_AUTO:
1088 		*mode = IEEE80211_MODE_AUTO;
1089 		break;
1090 	default:
1091 		return 0;
1092 	}
1093 	/*
1094 	 * Turbo mode is an ``option''.
1095 	 * XXX does not apply to AUTO
1096 	 */
1097 	if (ime->ifm_media & IFM_IEEE80211_TURBO) {
1098 		if (*mode == IEEE80211_MODE_11A) {
1099 			if (flags & IEEE80211_F_TURBOP)
1100 				*mode = IEEE80211_MODE_TURBO_A;
1101 			else
1102 				*mode = IEEE80211_MODE_STURBO_A;
1103 		} else if (*mode == IEEE80211_MODE_11G)
1104 			*mode = IEEE80211_MODE_TURBO_G;
1105 		else
1106 			return 0;
1107 	}
1108 	/* XXX HT40 +/- */
1109 	return 1;
1110 }
1111 
1112 /*
1113  * Handle a media change request on the underlying interface.
1114  */
1115 int
1116 ieee80211com_media_change(struct ifnet *ifp)
1117 {
1118 	return EINVAL;
1119 }
1120 
1121 /*
1122  * Handle a media change request on the vap interface.
1123  */
1124 int
1125 ieee80211_media_change(struct ifnet *ifp)
1126 {
1127 	struct ieee80211vap *vap = ifp->if_softc;
1128 	struct ifmedia_entry *ime = vap->iv_media.ifm_cur;
1129 	uint16_t newmode;
1130 
1131 	if (!media2mode(ime, vap->iv_flags, &newmode))
1132 		return EINVAL;
1133 	if (vap->iv_des_mode != newmode) {
1134 		vap->iv_des_mode = newmode;
1135 		return ENETRESET;
1136 	}
1137 	return 0;
1138 }
1139 
1140 /*
1141  * Common code to calculate the media status word
1142  * from the operating mode and channel state.
1143  */
1144 static int
1145 media_status(enum ieee80211_opmode opmode, const struct ieee80211_channel *chan)
1146 {
1147 	int status;
1148 
1149 	status = IFM_IEEE80211;
1150 	switch (opmode) {
1151 	case IEEE80211_M_STA:
1152 		break;
1153 	case IEEE80211_M_IBSS:
1154 		status |= IFM_IEEE80211_ADHOC;
1155 		break;
1156 	case IEEE80211_M_HOSTAP:
1157 		status |= IFM_IEEE80211_HOSTAP;
1158 		break;
1159 	case IEEE80211_M_MONITOR:
1160 		status |= IFM_IEEE80211_MONITOR;
1161 		break;
1162 	case IEEE80211_M_AHDEMO:
1163 		status |= IFM_IEEE80211_ADHOC | IFM_FLAG0;
1164 		break;
1165 	case IEEE80211_M_WDS:
1166 		status |= IFM_IEEE80211_WDS;
1167 		break;
1168 	}
1169 	if (IEEE80211_IS_CHAN_HTA(chan)) {
1170 		status |= IFM_IEEE80211_11NA;
1171 	} else if (IEEE80211_IS_CHAN_HTG(chan)) {
1172 		status |= IFM_IEEE80211_11NG;
1173 	} else if (IEEE80211_IS_CHAN_A(chan)) {
1174 		status |= IFM_IEEE80211_11A;
1175 	} else if (IEEE80211_IS_CHAN_B(chan)) {
1176 		status |= IFM_IEEE80211_11B;
1177 	} else if (IEEE80211_IS_CHAN_ANYG(chan)) {
1178 		status |= IFM_IEEE80211_11G;
1179 	} else if (IEEE80211_IS_CHAN_FHSS(chan)) {
1180 		status |= IFM_IEEE80211_FH;
1181 	}
1182 	/* XXX else complain? */
1183 
1184 	if (IEEE80211_IS_CHAN_TURBO(chan))
1185 		status |= IFM_IEEE80211_TURBO;
1186 #if 0
1187 	if (IEEE80211_IS_CHAN_HT20(chan))
1188 		status |= IFM_IEEE80211_HT20;
1189 	if (IEEE80211_IS_CHAN_HT40(chan))
1190 		status |= IFM_IEEE80211_HT40;
1191 #endif
1192 	return status;
1193 }
1194 
1195 static void
1196 ieee80211com_media_status(struct ifnet *ifp, struct ifmediareq *imr)
1197 {
1198 	struct ieee80211com *ic = ifp->if_l2com;
1199 	struct ieee80211vap *vap;
1200 
1201 	imr->ifm_status = IFM_AVALID;
1202 	TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next)
1203 		if (vap->iv_ifp->if_flags & IFF_UP) {
1204 			imr->ifm_status |= IFM_ACTIVE;
1205 			break;
1206 		}
1207 	imr->ifm_active = media_status(ic->ic_opmode, ic->ic_curchan);
1208 	if (imr->ifm_status & IFM_ACTIVE)
1209 		imr->ifm_current = imr->ifm_active;
1210 }
1211 
1212 void
1213 ieee80211_media_status(struct ifnet *ifp, struct ifmediareq *imr)
1214 {
1215 	struct ieee80211vap *vap = ifp->if_softc;
1216 	struct ieee80211com *ic = vap->iv_ic;
1217 	enum ieee80211_phymode mode;
1218 
1219 	imr->ifm_status = IFM_AVALID;
1220 	/*
1221 	 * NB: use the current channel's mode to lock down a xmit
1222 	 * rate only when running; otherwise we may have a mismatch
1223 	 * in which case the rate will not be convertible.
1224 	 */
1225 	if (vap->iv_state == IEEE80211_S_RUN) {
1226 		imr->ifm_status |= IFM_ACTIVE;
1227 		mode = ieee80211_chan2mode(ic->ic_curchan);
1228 	} else
1229 		mode = IEEE80211_MODE_AUTO;
1230 	imr->ifm_active = media_status(vap->iv_opmode, ic->ic_curchan);
1231 	/*
1232 	 * Calculate a current rate if possible.
1233 	 */
1234 	if (vap->iv_txparms[mode].ucastrate != IEEE80211_FIXED_RATE_NONE) {
1235 		/*
1236 		 * A fixed rate is set, report that.
1237 		 */
1238 		imr->ifm_active |= ieee80211_rate2media(ic,
1239 			vap->iv_txparms[mode].ucastrate, mode);
1240 	} else if (vap->iv_opmode == IEEE80211_M_STA) {
1241 		/*
1242 		 * In station mode report the current transmit rate.
1243 		 */
1244 		imr->ifm_active |= ieee80211_rate2media(ic,
1245 			vap->iv_bss->ni_txrate, mode);
1246 	} else
1247 		imr->ifm_active |= IFM_AUTO;
1248 	if (imr->ifm_status & IFM_ACTIVE)
1249 		imr->ifm_current = imr->ifm_active;
1250 }
1251 
1252 /*
1253  * Set the current phy mode and recalculate the active channel
1254  * set based on the available channels for this mode.  Also
1255  * select a new default/current channel if the current one is
1256  * inappropriate for this mode.
1257  */
1258 int
1259 ieee80211_setmode(struct ieee80211com *ic, enum ieee80211_phymode mode)
1260 {
1261 	/*
1262 	 * Adjust basic rates in 11b/11g supported rate set.
1263 	 * Note that if operating on a hal/quarter rate channel
1264 	 * this is a noop as those rates sets are different
1265 	 * and used instead.
1266 	 */
1267 	if (mode == IEEE80211_MODE_11G || mode == IEEE80211_MODE_11B)
1268 		ieee80211_setbasicrates(&ic->ic_sup_rates[mode], mode);
1269 
1270 	ic->ic_curmode = mode;
1271 	ieee80211_reset_erp(ic);	/* reset ERP state */
1272 
1273 	return 0;
1274 }
1275 
1276 /*
1277  * Return the phy mode for with the specified channel.
1278  */
1279 enum ieee80211_phymode
1280 ieee80211_chan2mode(const struct ieee80211_channel *chan)
1281 {
1282 
1283 	if (IEEE80211_IS_CHAN_HTA(chan))
1284 		return IEEE80211_MODE_11NA;
1285 	else if (IEEE80211_IS_CHAN_HTG(chan))
1286 		return IEEE80211_MODE_11NG;
1287 	else if (IEEE80211_IS_CHAN_108G(chan))
1288 		return IEEE80211_MODE_TURBO_G;
1289 	else if (IEEE80211_IS_CHAN_ST(chan))
1290 		return IEEE80211_MODE_STURBO_A;
1291 	else if (IEEE80211_IS_CHAN_TURBO(chan))
1292 		return IEEE80211_MODE_TURBO_A;
1293 	else if (IEEE80211_IS_CHAN_A(chan))
1294 		return IEEE80211_MODE_11A;
1295 	else if (IEEE80211_IS_CHAN_ANYG(chan))
1296 		return IEEE80211_MODE_11G;
1297 	else if (IEEE80211_IS_CHAN_B(chan))
1298 		return IEEE80211_MODE_11B;
1299 	else if (IEEE80211_IS_CHAN_FHSS(chan))
1300 		return IEEE80211_MODE_FH;
1301 
1302 	/* NB: should not get here */
1303 	printf("%s: cannot map channel to mode; freq %u flags 0x%x\n",
1304 		__func__, chan->ic_freq, chan->ic_flags);
1305 	return IEEE80211_MODE_11B;
1306 }
1307 
1308 struct ratemedia {
1309 	u_int	match;	/* rate + mode */
1310 	u_int	media;	/* if_media rate */
1311 };
1312 
1313 static int
1314 findmedia(const struct ratemedia rates[], int n, u_int match)
1315 {
1316 	int i;
1317 
1318 	for (i = 0; i < n; i++)
1319 		if (rates[i].match == match)
1320 			return rates[i].media;
1321 	return IFM_AUTO;
1322 }
1323 
1324 /*
1325  * Convert IEEE80211 rate value to ifmedia subtype.
1326  * Rate is either a legacy rate in units of 0.5Mbps
1327  * or an MCS index.
1328  */
1329 int
1330 ieee80211_rate2media(struct ieee80211com *ic, int rate, enum ieee80211_phymode mode)
1331 {
1332 #define	N(a)	(sizeof(a) / sizeof(a[0]))
1333 	static const struct ratemedia rates[] = {
1334 		{   2 | IFM_IEEE80211_FH, IFM_IEEE80211_FH1 },
1335 		{   4 | IFM_IEEE80211_FH, IFM_IEEE80211_FH2 },
1336 		{   2 | IFM_IEEE80211_11B, IFM_IEEE80211_DS1 },
1337 		{   4 | IFM_IEEE80211_11B, IFM_IEEE80211_DS2 },
1338 		{  11 | IFM_IEEE80211_11B, IFM_IEEE80211_DS5 },
1339 		{  22 | IFM_IEEE80211_11B, IFM_IEEE80211_DS11 },
1340 		{  44 | IFM_IEEE80211_11B, IFM_IEEE80211_DS22 },
1341 		{  12 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM6 },
1342 		{  18 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM9 },
1343 		{  24 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM12 },
1344 		{  36 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM18 },
1345 		{  48 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM24 },
1346 		{  72 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM36 },
1347 		{  96 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM48 },
1348 		{ 108 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM54 },
1349 		{   2 | IFM_IEEE80211_11G, IFM_IEEE80211_DS1 },
1350 		{   4 | IFM_IEEE80211_11G, IFM_IEEE80211_DS2 },
1351 		{  11 | IFM_IEEE80211_11G, IFM_IEEE80211_DS5 },
1352 		{  22 | IFM_IEEE80211_11G, IFM_IEEE80211_DS11 },
1353 		{  12 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM6 },
1354 		{  18 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM9 },
1355 		{  24 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM12 },
1356 		{  36 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM18 },
1357 		{  48 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM24 },
1358 		{  72 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM36 },
1359 		{  96 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM48 },
1360 		{ 108 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM54 },
1361 		{   6 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM3 },
1362 		{   9 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM4 },
1363 		{  54 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM27 },
1364 		/* NB: OFDM72 doesn't realy exist so we don't handle it */
1365 	};
1366 	static const struct ratemedia htrates[] = {
1367 		{   0, IFM_IEEE80211_MCS },
1368 		{   1, IFM_IEEE80211_MCS },
1369 		{   2, IFM_IEEE80211_MCS },
1370 		{   3, IFM_IEEE80211_MCS },
1371 		{   4, IFM_IEEE80211_MCS },
1372 		{   5, IFM_IEEE80211_MCS },
1373 		{   6, IFM_IEEE80211_MCS },
1374 		{   7, IFM_IEEE80211_MCS },
1375 		{   8, IFM_IEEE80211_MCS },
1376 		{   9, IFM_IEEE80211_MCS },
1377 		{  10, IFM_IEEE80211_MCS },
1378 		{  11, IFM_IEEE80211_MCS },
1379 		{  12, IFM_IEEE80211_MCS },
1380 		{  13, IFM_IEEE80211_MCS },
1381 		{  14, IFM_IEEE80211_MCS },
1382 		{  15, IFM_IEEE80211_MCS },
1383 	};
1384 	int m;
1385 
1386 	/*
1387 	 * Check 11n rates first for match as an MCS.
1388 	 */
1389 	if (mode == IEEE80211_MODE_11NA) {
1390 		if (rate & IEEE80211_RATE_MCS) {
1391 			rate &= ~IEEE80211_RATE_MCS;
1392 			m = findmedia(htrates, N(htrates), rate);
1393 			if (m != IFM_AUTO)
1394 				return m | IFM_IEEE80211_11NA;
1395 		}
1396 	} else if (mode == IEEE80211_MODE_11NG) {
1397 		/* NB: 12 is ambiguous, it will be treated as an MCS */
1398 		if (rate & IEEE80211_RATE_MCS) {
1399 			rate &= ~IEEE80211_RATE_MCS;
1400 			m = findmedia(htrates, N(htrates), rate);
1401 			if (m != IFM_AUTO)
1402 				return m | IFM_IEEE80211_11NG;
1403 		}
1404 	}
1405 	rate &= IEEE80211_RATE_VAL;
1406 	switch (mode) {
1407 	case IEEE80211_MODE_11A:
1408 	case IEEE80211_MODE_11NA:
1409 	case IEEE80211_MODE_TURBO_A:
1410 	case IEEE80211_MODE_STURBO_A:
1411 		return findmedia(rates, N(rates), rate | IFM_IEEE80211_11A);
1412 	case IEEE80211_MODE_11B:
1413 		return findmedia(rates, N(rates), rate | IFM_IEEE80211_11B);
1414 	case IEEE80211_MODE_FH:
1415 		return findmedia(rates, N(rates), rate | IFM_IEEE80211_FH);
1416 	case IEEE80211_MODE_AUTO:
1417 		/* NB: ic may be NULL for some drivers */
1418 		if (ic && ic->ic_phytype == IEEE80211_T_FH)
1419 			return findmedia(rates, N(rates),
1420 			    rate | IFM_IEEE80211_FH);
1421 		/* NB: hack, 11g matches both 11b+11a rates */
1422 		/* fall thru... */
1423 	case IEEE80211_MODE_11G:
1424 	case IEEE80211_MODE_11NG:
1425 	case IEEE80211_MODE_TURBO_G:
1426 		return findmedia(rates, N(rates), rate | IFM_IEEE80211_11G);
1427 	}
1428 	return IFM_AUTO;
1429 #undef N
1430 }
1431 
1432 int
1433 ieee80211_media2rate(int mword)
1434 {
1435 #define	N(a)	(sizeof(a) / sizeof(a[0]))
1436 	static const int ieeerates[] = {
1437 		-1,		/* IFM_AUTO */
1438 		0,		/* IFM_MANUAL */
1439 		0,		/* IFM_NONE */
1440 		2,		/* IFM_IEEE80211_FH1 */
1441 		4,		/* IFM_IEEE80211_FH2 */
1442 		2,		/* IFM_IEEE80211_DS1 */
1443 		4,		/* IFM_IEEE80211_DS2 */
1444 		11,		/* IFM_IEEE80211_DS5 */
1445 		22,		/* IFM_IEEE80211_DS11 */
1446 		44,		/* IFM_IEEE80211_DS22 */
1447 		12,		/* IFM_IEEE80211_OFDM6 */
1448 		18,		/* IFM_IEEE80211_OFDM9 */
1449 		24,		/* IFM_IEEE80211_OFDM12 */
1450 		36,		/* IFM_IEEE80211_OFDM18 */
1451 		48,		/* IFM_IEEE80211_OFDM24 */
1452 		72,		/* IFM_IEEE80211_OFDM36 */
1453 		96,		/* IFM_IEEE80211_OFDM48 */
1454 		108,		/* IFM_IEEE80211_OFDM54 */
1455 		144,		/* IFM_IEEE80211_OFDM72 */
1456 		0,		/* IFM_IEEE80211_DS354k */
1457 		0,		/* IFM_IEEE80211_DS512k */
1458 		6,		/* IFM_IEEE80211_OFDM3 */
1459 		9,		/* IFM_IEEE80211_OFDM4 */
1460 		54,		/* IFM_IEEE80211_OFDM27 */
1461 		-1,		/* IFM_IEEE80211_MCS */
1462 	};
1463 	return IFM_SUBTYPE(mword) < N(ieeerates) ?
1464 		ieeerates[IFM_SUBTYPE(mword)] : 0;
1465 #undef N
1466 }
1467