ieee80211_output.c revision 185164
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: head/sys/net80211/ieee80211_output.c 185164 2008-11-22 07:35:45Z kmacy $");
29
30#include "opt_inet.h"
31#include "opt_wlan.h"
32
33#include <sys/param.h>
34#include <sys/systm.h>
35#include <sys/mbuf.h>
36#include <sys/kernel.h>
37#include <sys/endian.h>
38
39#include <sys/socket.h>
40
41#include <net/bpf.h>
42#include <net/ethernet.h>
43#include <net/if.h>
44#include <net/if_llc.h>
45#include <net/if_media.h>
46#include <net/if_vlan_var.h>
47
48#include <net80211/ieee80211_var.h>
49#include <net80211/ieee80211_regdomain.h>
50#include <net80211/ieee80211_wds.h>
51
52#ifdef INET
53#include <netinet/in.h>
54#include <netinet/if_ether.h>
55#include <netinet/in_systm.h>
56#include <netinet/ip.h>
57#endif
58
59#define	ETHER_HEADER_COPY(dst, src) \
60	memcpy(dst, src, sizeof(struct ether_header))
61
62static struct mbuf *ieee80211_encap_fastframe(struct ieee80211vap *,
63	struct mbuf *m1, const struct ether_header *eh1,
64	struct mbuf *m2, const struct ether_header *eh2);
65static int ieee80211_fragment(struct ieee80211vap *, struct mbuf *,
66	u_int hdrsize, u_int ciphdrsize, u_int mtu);
67static	void ieee80211_tx_mgt_cb(struct ieee80211_node *, void *, int);
68
69#ifdef IEEE80211_DEBUG
70/*
71 * Decide if an outbound management frame should be
72 * printed when debugging is enabled.  This filters some
73 * of the less interesting frames that come frequently
74 * (e.g. beacons).
75 */
76static __inline int
77doprint(struct ieee80211vap *vap, int subtype)
78{
79	switch (subtype) {
80	case IEEE80211_FC0_SUBTYPE_PROBE_RESP:
81		return (vap->iv_opmode == IEEE80211_M_IBSS);
82	}
83	return 1;
84}
85#endif
86
87/*
88 * Start method for vap's.  All packets from the stack come
89 * through here.  We handle common processing of the packets
90 * before dispatching them to the underlying device.
91 */
92void
93ieee80211_start(struct ifnet *ifp)
94{
95#define	IS_DWDS(vap) \
96	(vap->iv_opmode == IEEE80211_M_WDS && \
97	 (vap->iv_flags_ext & IEEE80211_FEXT_WDSLEGACY) == 0)
98	struct ieee80211vap *vap = ifp->if_softc;
99	struct ieee80211com *ic = vap->iv_ic;
100	struct ifnet *parent = ic->ic_ifp;
101	struct ieee80211_node *ni;
102	struct mbuf *m;
103	struct ether_header *eh;
104	int error;
105
106	/* NB: parent must be up and running */
107	if (!IFNET_IS_UP_RUNNING(parent)) {
108		IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
109		    "%s: ignore queue, parent %s not up+running\n",
110		    __func__, parent->if_xname);
111		/* XXX stat */
112		return;
113	}
114	if (vap->iv_state == IEEE80211_S_SLEEP) {
115		/*
116		 * In power save, wakeup device for transmit.
117		 */
118		ieee80211_new_state(vap, IEEE80211_S_RUN, 0);
119		return;
120	}
121	/*
122	 * No data frames go out unless we're running.
123	 * Note in particular this covers CAC and CSA
124	 * states (though maybe we should check muting
125	 * for CSA).
126	 */
127	if (vap->iv_state != IEEE80211_S_RUN) {
128		IEEE80211_LOCK(ic);
129		/* re-check under the com lock to avoid races */
130		if (vap->iv_state != IEEE80211_S_RUN) {
131			IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
132			    "%s: ignore queue, in %s state\n",
133			    __func__, ieee80211_state_name[vap->iv_state]);
134			vap->iv_stats.is_tx_badstate++;
135			ifp->if_drv_flags |= IFF_DRV_OACTIVE;
136			IEEE80211_UNLOCK(ic);
137			return;
138		}
139		IEEE80211_UNLOCK(ic);
140	}
141	for (;;) {
142		IFQ_DEQUEUE(&ifp->if_snd, m);
143		if (m == NULL)
144			break;
145		/*
146		 * Sanitize mbuf flags for net80211 use.  We cannot
147		 * clear M_PWR_SAV because this may be set for frames
148		 * that are re-submitted from the power save queue.
149		 *
150		 * NB: This must be done before ieee80211_classify as
151		 *     it marks EAPOL in frames with M_EAPOL.
152		 */
153		m->m_flags &= ~(M_80211_TX - M_PWR_SAV);
154		/*
155		 * Cancel any background scan.
156		 */
157		if (ic->ic_flags & IEEE80211_F_SCAN)
158			ieee80211_cancel_anyscan(vap);
159		/*
160		 * Find the node for the destination so we can do
161		 * things like power save and fast frames aggregation.
162		 *
163		 * NB: past this point various code assumes the first
164		 *     mbuf has the 802.3 header present (and contiguous).
165		 */
166		ni = NULL;
167		if (m->m_len < sizeof(struct ether_header) &&
168		   (m = m_pullup(m, sizeof(struct ether_header))) == NULL) {
169			IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
170			    "discard frame, %s\n", "m_pullup failed");
171			vap->iv_stats.is_tx_nobuf++;	/* XXX */
172			ifp->if_oerrors++;
173			continue;
174		}
175		eh = mtod(m, struct ether_header *);
176		if (ETHER_IS_MULTICAST(eh->ether_dhost)) {
177			if (IS_DWDS(vap)) {
178				/*
179				 * Only unicast frames from the above go out
180				 * DWDS vaps; multicast frames are handled by
181				 * dispatching the frame as it comes through
182				 * the AP vap (see below).
183				 */
184				IEEE80211_DISCARD_MAC(vap, IEEE80211_MSG_WDS,
185				    eh->ether_dhost, "mcast", "%s", "on DWDS");
186				vap->iv_stats.is_dwds_mcast++;
187				m_freem(m);
188				continue;
189			}
190			if (vap->iv_opmode == IEEE80211_M_HOSTAP) {
191				/*
192				 * Spam DWDS vap's w/ multicast traffic.
193				 */
194				/* XXX only if dwds in use? */
195				ieee80211_dwds_mcast(vap, m);
196			}
197		}
198		ni = ieee80211_find_txnode(vap, eh->ether_dhost);
199		if (ni == NULL) {
200			/* NB: ieee80211_find_txnode does stat+msg */
201			ifp->if_oerrors++;
202			m_freem(m);
203			continue;
204		}
205		/* XXX AUTH'd */
206		/* XXX mark vap to identify if associd is required */
207		if (ni->ni_associd == 0 &&
208		    (vap->iv_opmode == IEEE80211_M_STA ||
209		     vap->iv_opmode == IEEE80211_M_HOSTAP || IS_DWDS(vap))) {
210			IEEE80211_DISCARD_MAC(vap, IEEE80211_MSG_OUTPUT,
211			    eh->ether_dhost, NULL,
212			    "sta not associated (type 0x%04x)",
213			    htons(eh->ether_type));
214			vap->iv_stats.is_tx_notassoc++;
215			ifp->if_oerrors++;
216			m_freem(m);
217			ieee80211_free_node(ni);
218			continue;
219		}
220		if ((ni->ni_flags & IEEE80211_NODE_PWR_MGT) &&
221		    (m->m_flags & M_PWR_SAV) == 0) {
222			/*
223			 * Station in power save mode; pass the frame
224			 * to the 802.11 layer and continue.  We'll get
225			 * the frame back when the time is right.
226			 * XXX lose WDS vap linkage?
227			 */
228			(void) ieee80211_pwrsave(ni, m);
229			ieee80211_free_node(ni);
230			continue;
231		}
232		/* calculate priority so drivers can find the tx queue */
233		if (ieee80211_classify(ni, m)) {
234			IEEE80211_DISCARD_MAC(vap, IEEE80211_MSG_OUTPUT,
235			    eh->ether_dhost, NULL,
236			    "%s", "classification failure");
237			vap->iv_stats.is_tx_classify++;
238			ifp->if_oerrors++;
239			m_freem(m);
240			ieee80211_free_node(ni);
241			continue;
242		}
243
244		BPF_MTAP(ifp, m);		/* 802.11 tx path */
245
246		/*
247		 * XXX When ni is associated with a WDS link then
248		 * the vap will be the WDS vap but ni_vap will point
249		 * to the ap vap the station associated to.  Once
250		 * we handoff the packet to the driver the callback
251		 * to ieee80211_encap won't be able to tell if the
252		 * packet should be encapsulated for WDS or not (e.g.
253		 * multicast frames will not be handled correctly).
254		 * We hack this by marking the mbuf so ieee80211_encap
255		 * can do the right thing.
256		 */
257		if (vap->iv_opmode == IEEE80211_M_WDS)
258			m->m_flags |= M_WDS;
259		else
260			m->m_flags &= ~M_WDS;
261
262		/*
263		 * Stash the node pointer and hand the frame off to
264		 * the underlying device.  Note that we do this after
265		 * any call to ieee80211_dwds_mcast because that code
266		 * uses any existing value for rcvif.
267		 */
268		m->m_pkthdr.rcvif = (void *)ni;
269
270		/* XXX defer if_start calls? */
271		error = (parent->if_transmit)(parent, m);
272		if (error != 0) {
273			/* NB: IFQ_HANDOFF reclaims mbuf */
274			ieee80211_free_node(ni);
275		} else {
276			ifp->if_opackets++;
277		}
278		ic->ic_lastdata = ticks;
279	}
280#undef IS_DWDS
281}
282
283/*
284 * 802.11 output routine. This is (currently) used only to
285 * connect bpf write calls to the 802.11 layer for injecting
286 * raw 802.11 frames.  Note we locate the ieee80211com from
287 * the ifnet using a spare field setup at attach time.  This
288 * will go away when the virtual ap support comes in.
289 */
290int
291ieee80211_output(struct ifnet *ifp, struct mbuf *m,
292	struct sockaddr *dst, struct rtentry *rt0)
293{
294#define senderr(e) do { error = (e); goto bad;} while (0)
295	struct ieee80211_node *ni = NULL;
296	struct ieee80211vap *vap;
297	struct ieee80211_frame *wh;
298	int error;
299
300	if (ifp->if_drv_flags & IFF_DRV_OACTIVE) {
301		/*
302		 * Short-circuit requests if the vap is marked OACTIVE
303		 * as this is used when tearing down state to indicate
304		 * the vap may be gone.  This can also happen because a
305		 * packet came down through ieee80211_start before the
306		 * vap entered RUN state in which case it's also ok to
307		 * just drop the frame.  This should not be necessary
308		 * but callers of if_output don't check OACTIVE.
309		 */
310		senderr(ENETDOWN);
311	}
312	vap = ifp->if_softc;
313	/*
314	 * Hand to the 802.3 code if not tagged as
315	 * a raw 802.11 frame.
316	 */
317	if (dst->sa_family != AF_IEEE80211)
318		return vap->iv_output(ifp, m, dst, rt0);
319#ifdef MAC
320	error = mac_check_ifnet_transmit(ifp, m);
321	if (error)
322		senderr(error);
323#endif
324	if (ifp->if_flags & IFF_MONITOR)
325		senderr(ENETDOWN);
326	if (!IFNET_IS_UP_RUNNING(ifp))
327		senderr(ENETDOWN);
328	if (vap->iv_state == IEEE80211_S_CAC) {
329		IEEE80211_DPRINTF(vap,
330		    IEEE80211_MSG_OUTPUT | IEEE80211_MSG_DOTH,
331		    "block %s frame in CAC state\n", "raw data");
332		vap->iv_stats.is_tx_badstate++;
333		senderr(EIO);		/* XXX */
334	}
335	/* XXX bypass bridge, pfil, carp, etc. */
336
337	if (m->m_pkthdr.len < sizeof(struct ieee80211_frame_ack))
338		senderr(EIO);	/* XXX */
339	wh = mtod(m, struct ieee80211_frame *);
340	if ((wh->i_fc[0] & IEEE80211_FC0_VERSION_MASK) !=
341	    IEEE80211_FC0_VERSION_0)
342		senderr(EIO);	/* XXX */
343
344	/* locate destination node */
345	switch (wh->i_fc[1] & IEEE80211_FC1_DIR_MASK) {
346	case IEEE80211_FC1_DIR_NODS:
347	case IEEE80211_FC1_DIR_FROMDS:
348		ni = ieee80211_find_txnode(vap, wh->i_addr1);
349		break;
350	case IEEE80211_FC1_DIR_TODS:
351	case IEEE80211_FC1_DIR_DSTODS:
352		if (m->m_pkthdr.len < sizeof(struct ieee80211_frame))
353			senderr(EIO);	/* XXX */
354		ni = ieee80211_find_txnode(vap, wh->i_addr3);
355		break;
356	default:
357		senderr(EIO);	/* XXX */
358	}
359	if (ni == NULL) {
360		/*
361		 * Permit packets w/ bpf params through regardless
362		 * (see below about sa_len).
363		 */
364		if (dst->sa_len == 0)
365			senderr(EHOSTUNREACH);
366		ni = ieee80211_ref_node(vap->iv_bss);
367	}
368
369	/*
370	 * Sanitize mbuf for net80211 flags leaked from above.
371	 *
372	 * NB: This must be done before ieee80211_classify as
373	 *     it marks EAPOL in frames with M_EAPOL.
374	 */
375	m->m_flags &= ~M_80211_TX;
376
377	/* calculate priority so drivers can find the tx queue */
378	/* XXX assumes an 802.3 frame */
379	if (ieee80211_classify(ni, m))
380		senderr(EIO);		/* XXX */
381
382	BPF_MTAP(ifp, m);
383
384	/*
385	 * NB: DLT_IEEE802_11_RADIO identifies the parameters are
386	 * present by setting the sa_len field of the sockaddr (yes,
387	 * this is a hack).
388	 * NB: we assume sa_data is suitably aligned to cast.
389	 */
390	return vap->iv_ic->ic_raw_xmit(ni, m,
391	    (const struct ieee80211_bpf_params *)(dst->sa_len ?
392		dst->sa_data : NULL));
393bad:
394	if (m != NULL)
395		m_freem(m);
396	if (ni != NULL)
397		ieee80211_free_node(ni);
398	return error;
399#undef senderr
400}
401
402/*
403 * Set the direction field and address fields of an outgoing
404 * frame.  Note this should be called early on in constructing
405 * a frame as it sets i_fc[1]; other bits can then be or'd in.
406 */
407static void
408ieee80211_send_setup(
409	struct ieee80211_node *ni,
410	struct ieee80211_frame *wh,
411	int type, int tid,
412	const uint8_t sa[IEEE80211_ADDR_LEN],
413	const uint8_t da[IEEE80211_ADDR_LEN],
414	const uint8_t bssid[IEEE80211_ADDR_LEN])
415{
416#define	WH4(wh)	((struct ieee80211_frame_addr4 *)wh)
417
418	wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | type;
419	if ((type & IEEE80211_FC0_TYPE_MASK) == IEEE80211_FC0_TYPE_DATA) {
420		struct ieee80211vap *vap = ni->ni_vap;
421
422		switch (vap->iv_opmode) {
423		case IEEE80211_M_STA:
424			wh->i_fc[1] = IEEE80211_FC1_DIR_TODS;
425			IEEE80211_ADDR_COPY(wh->i_addr1, bssid);
426			IEEE80211_ADDR_COPY(wh->i_addr2, sa);
427			IEEE80211_ADDR_COPY(wh->i_addr3, da);
428			break;
429		case IEEE80211_M_IBSS:
430		case IEEE80211_M_AHDEMO:
431			wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
432			IEEE80211_ADDR_COPY(wh->i_addr1, da);
433			IEEE80211_ADDR_COPY(wh->i_addr2, sa);
434			IEEE80211_ADDR_COPY(wh->i_addr3, bssid);
435			break;
436		case IEEE80211_M_HOSTAP:
437			wh->i_fc[1] = IEEE80211_FC1_DIR_FROMDS;
438			IEEE80211_ADDR_COPY(wh->i_addr1, da);
439			IEEE80211_ADDR_COPY(wh->i_addr2, bssid);
440			IEEE80211_ADDR_COPY(wh->i_addr3, sa);
441			break;
442		case IEEE80211_M_WDS:
443			wh->i_fc[1] = IEEE80211_FC1_DIR_DSTODS;
444			IEEE80211_ADDR_COPY(wh->i_addr1, da);
445			IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
446			IEEE80211_ADDR_COPY(wh->i_addr3, da);
447			IEEE80211_ADDR_COPY(WH4(wh)->i_addr4, sa);
448			break;
449		case IEEE80211_M_MONITOR:	/* NB: to quiet compiler */
450			break;
451		}
452	} else {
453		wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
454		IEEE80211_ADDR_COPY(wh->i_addr1, da);
455		IEEE80211_ADDR_COPY(wh->i_addr2, sa);
456		IEEE80211_ADDR_COPY(wh->i_addr3, bssid);
457	}
458	*(uint16_t *)&wh->i_dur[0] = 0;
459	*(uint16_t *)&wh->i_seq[0] =
460	    htole16(ni->ni_txseqs[tid] << IEEE80211_SEQ_SEQ_SHIFT);
461	ni->ni_txseqs[tid]++;
462#undef WH4
463}
464
465/*
466 * Send a management frame to the specified node.  The node pointer
467 * must have a reference as the pointer will be passed to the driver
468 * and potentially held for a long time.  If the frame is successfully
469 * dispatched to the driver, then it is responsible for freeing the
470 * reference (and potentially free'ing up any associated storage);
471 * otherwise deal with reclaiming any reference (on error).
472 */
473int
474ieee80211_mgmt_output(struct ieee80211_node *ni, struct mbuf *m, int type,
475	struct ieee80211_bpf_params *params)
476{
477	struct ieee80211vap *vap = ni->ni_vap;
478	struct ieee80211com *ic = ni->ni_ic;
479	struct ieee80211_frame *wh;
480
481	KASSERT(ni != NULL, ("null node"));
482
483	if (vap->iv_state == IEEE80211_S_CAC) {
484		IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT | IEEE80211_MSG_DOTH,
485		    ni, "block %s frame in CAC state",
486			ieee80211_mgt_subtype_name[
487			    (type & IEEE80211_FC0_SUBTYPE_MASK) >>
488				IEEE80211_FC0_SUBTYPE_SHIFT]);
489		vap->iv_stats.is_tx_badstate++;
490		ieee80211_free_node(ni);
491		m_freem(m);
492		return EIO;		/* XXX */
493	}
494
495	M_PREPEND(m, sizeof(struct ieee80211_frame), M_DONTWAIT);
496	if (m == NULL) {
497		ieee80211_free_node(ni);
498		return ENOMEM;
499	}
500
501	wh = mtod(m, struct ieee80211_frame *);
502	ieee80211_send_setup(ni, wh,
503	     IEEE80211_FC0_TYPE_MGT | type, IEEE80211_NONQOS_TID,
504	     vap->iv_myaddr, ni->ni_macaddr, ni->ni_bssid);
505	if (params->ibp_flags & IEEE80211_BPF_CRYPTO) {
506		IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_AUTH, wh->i_addr1,
507		    "encrypting frame (%s)", __func__);
508		wh->i_fc[1] |= IEEE80211_FC1_WEP;
509	}
510	m->m_flags |= M_ENCAP;		/* mark encapsulated */
511
512	KASSERT(type != IEEE80211_FC0_SUBTYPE_PROBE_RESP, ("probe response?"));
513	M_WME_SETAC(m, params->ibp_pri);
514
515#ifdef IEEE80211_DEBUG
516	/* avoid printing too many frames */
517	if ((ieee80211_msg_debug(vap) && doprint(vap, type)) ||
518	    ieee80211_msg_dumppkts(vap)) {
519		printf("[%s] send %s on channel %u\n",
520		    ether_sprintf(wh->i_addr1),
521		    ieee80211_mgt_subtype_name[
522			(type & IEEE80211_FC0_SUBTYPE_MASK) >>
523				IEEE80211_FC0_SUBTYPE_SHIFT],
524		    ieee80211_chan2ieee(ic, ic->ic_curchan));
525	}
526#endif
527	IEEE80211_NODE_STAT(ni, tx_mgmt);
528
529	return ic->ic_raw_xmit(ni, m, params);
530}
531
532/*
533 * Send a null data frame to the specified node.  If the station
534 * is setup for QoS then a QoS Null Data frame is constructed.
535 * If this is a WDS station then a 4-address frame is constructed.
536 *
537 * NB: the caller is assumed to have setup a node reference
538 *     for use; this is necessary to deal with a race condition
539 *     when probing for inactive stations.  Like ieee80211_mgmt_output
540 *     we must cleanup any node reference on error;  however we
541 *     can safely just unref it as we know it will never be the
542 *     last reference to the node.
543 */
544int
545ieee80211_send_nulldata(struct ieee80211_node *ni)
546{
547	struct ieee80211vap *vap = ni->ni_vap;
548	struct ieee80211com *ic = ni->ni_ic;
549	struct mbuf *m;
550	struct ieee80211_frame *wh;
551	int hdrlen;
552	uint8_t *frm;
553
554	if (vap->iv_state == IEEE80211_S_CAC) {
555		IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT | IEEE80211_MSG_DOTH,
556		    ni, "block %s frame in CAC state", "null data");
557		ieee80211_unref_node(&ni);
558		vap->iv_stats.is_tx_badstate++;
559		return EIO;		/* XXX */
560	}
561
562	if (ni->ni_flags & (IEEE80211_NODE_QOS|IEEE80211_NODE_HT))
563		hdrlen = sizeof(struct ieee80211_qosframe);
564	else
565		hdrlen = sizeof(struct ieee80211_frame);
566	/* NB: only WDS vap's get 4-address frames */
567	if (vap->iv_opmode == IEEE80211_M_WDS)
568		hdrlen += IEEE80211_ADDR_LEN;
569	if (ic->ic_flags & IEEE80211_F_DATAPAD)
570		hdrlen = roundup(hdrlen, sizeof(uint32_t));
571
572	m = ieee80211_getmgtframe(&frm, ic->ic_headroom + hdrlen, 0);
573	if (m == NULL) {
574		/* XXX debug msg */
575		ieee80211_unref_node(&ni);
576		vap->iv_stats.is_tx_nobuf++;
577		return ENOMEM;
578	}
579	KASSERT(M_LEADINGSPACE(m) >= hdrlen,
580	    ("leading space %zd", M_LEADINGSPACE(m)));
581	M_PREPEND(m, hdrlen, M_DONTWAIT);
582	if (m == NULL) {
583		/* NB: cannot happen */
584		ieee80211_free_node(ni);
585		return ENOMEM;
586	}
587
588	wh = mtod(m, struct ieee80211_frame *);		/* NB: a little lie */
589	if (ni->ni_flags & IEEE80211_NODE_QOS) {
590		const int tid = WME_AC_TO_TID(WME_AC_BE);
591		uint8_t *qos;
592
593		ieee80211_send_setup(ni, wh,
594		    IEEE80211_FC0_TYPE_DATA | IEEE80211_FC0_SUBTYPE_QOS_NULL,
595		    tid, vap->iv_myaddr, ni->ni_macaddr, ni->ni_bssid);
596
597		if (vap->iv_opmode == IEEE80211_M_WDS)
598			qos = ((struct ieee80211_qosframe_addr4 *) wh)->i_qos;
599		else
600			qos = ((struct ieee80211_qosframe *) wh)->i_qos;
601		qos[0] = tid & IEEE80211_QOS_TID;
602		if (ic->ic_wme.wme_wmeChanParams.cap_wmeParams[WME_AC_BE].wmep_noackPolicy)
603			qos[0] |= IEEE80211_QOS_ACKPOLICY_NOACK;
604		qos[1] = 0;
605	} else {
606		ieee80211_send_setup(ni, wh,
607		    IEEE80211_FC0_TYPE_DATA | IEEE80211_FC0_SUBTYPE_NODATA,
608		    IEEE80211_NONQOS_TID,
609		    vap->iv_myaddr, ni->ni_macaddr, ni->ni_bssid);
610	}
611	if (vap->iv_opmode != IEEE80211_M_WDS) {
612		/* NB: power management bit is never sent by an AP */
613		if ((ni->ni_flags & IEEE80211_NODE_PWR_MGT) &&
614		    vap->iv_opmode != IEEE80211_M_HOSTAP)
615			wh->i_fc[1] |= IEEE80211_FC1_PWR_MGT;
616	}
617	m->m_len = m->m_pkthdr.len = hdrlen;
618	m->m_flags |= M_ENCAP;		/* mark encapsulated */
619
620	M_WME_SETAC(m, WME_AC_BE);
621
622	IEEE80211_NODE_STAT(ni, tx_data);
623
624	IEEE80211_NOTE(vap, IEEE80211_MSG_DEBUG | IEEE80211_MSG_DUMPPKTS, ni,
625	    "send %snull data frame on channel %u, pwr mgt %s",
626	    ni->ni_flags & IEEE80211_NODE_QOS ? "QoS " : "",
627	    ieee80211_chan2ieee(ic, ic->ic_curchan),
628	    wh->i_fc[1] & IEEE80211_FC1_PWR_MGT ? "ena" : "dis");
629
630	return ic->ic_raw_xmit(ni, m, NULL);
631}
632
633/*
634 * Assign priority to a frame based on any vlan tag assigned
635 * to the station and/or any Diffserv setting in an IP header.
636 * Finally, if an ACM policy is setup (in station mode) it's
637 * applied.
638 */
639int
640ieee80211_classify(struct ieee80211_node *ni, struct mbuf *m)
641{
642	const struct ether_header *eh = mtod(m, struct ether_header *);
643	int v_wme_ac, d_wme_ac, ac;
644
645	/*
646	 * Always promote PAE/EAPOL frames to high priority.
647	 */
648	if (eh->ether_type == htons(ETHERTYPE_PAE)) {
649		/* NB: mark so others don't need to check header */
650		m->m_flags |= M_EAPOL;
651		ac = WME_AC_VO;
652		goto done;
653	}
654	/*
655	 * Non-qos traffic goes to BE.
656	 */
657	if ((ni->ni_flags & IEEE80211_NODE_QOS) == 0) {
658		ac = WME_AC_BE;
659		goto done;
660	}
661
662	/*
663	 * If node has a vlan tag then all traffic
664	 * to it must have a matching tag.
665	 */
666	v_wme_ac = 0;
667	if (ni->ni_vlan != 0) {
668		 if ((m->m_flags & M_VLANTAG) == 0) {
669			IEEE80211_NODE_STAT(ni, tx_novlantag);
670			return 1;
671		}
672		if (EVL_VLANOFTAG(m->m_pkthdr.ether_vtag) !=
673		    EVL_VLANOFTAG(ni->ni_vlan)) {
674			IEEE80211_NODE_STAT(ni, tx_vlanmismatch);
675			return 1;
676		}
677		/* map vlan priority to AC */
678		v_wme_ac = TID_TO_WME_AC(EVL_PRIOFTAG(ni->ni_vlan));
679	}
680
681#ifdef INET
682	if (eh->ether_type == htons(ETHERTYPE_IP)) {
683		uint8_t tos;
684		/*
685		 * IP frame, map the DSCP bits from the TOS field.
686		 */
687		/* XXX m_copydata may be too slow for fast path */
688		/* NB: ip header may not be in first mbuf */
689		m_copydata(m, sizeof(struct ether_header) +
690		    offsetof(struct ip, ip_tos), sizeof(tos), &tos);
691		tos >>= 5;		/* NB: ECN + low 3 bits of DSCP */
692		d_wme_ac = TID_TO_WME_AC(tos);
693	} else {
694#endif /* INET */
695		d_wme_ac = WME_AC_BE;
696#ifdef INET
697	}
698#endif
699	/*
700	 * Use highest priority AC.
701	 */
702	if (v_wme_ac > d_wme_ac)
703		ac = v_wme_ac;
704	else
705		ac = d_wme_ac;
706
707	/*
708	 * Apply ACM policy.
709	 */
710	if (ni->ni_vap->iv_opmode == IEEE80211_M_STA) {
711		static const int acmap[4] = {
712			WME_AC_BK,	/* WME_AC_BE */
713			WME_AC_BK,	/* WME_AC_BK */
714			WME_AC_BE,	/* WME_AC_VI */
715			WME_AC_VI,	/* WME_AC_VO */
716		};
717		struct ieee80211com *ic = ni->ni_ic;
718
719		while (ac != WME_AC_BK &&
720		    ic->ic_wme.wme_wmeBssChanParams.cap_wmeParams[ac].wmep_acm)
721			ac = acmap[ac];
722	}
723done:
724	M_WME_SETAC(m, ac);
725	return 0;
726}
727
728/*
729 * Insure there is sufficient contiguous space to encapsulate the
730 * 802.11 data frame.  If room isn't already there, arrange for it.
731 * Drivers and cipher modules assume we have done the necessary work
732 * and fail rudely if they don't find the space they need.
733 */
734static struct mbuf *
735ieee80211_mbuf_adjust(struct ieee80211vap *vap, int hdrsize,
736	struct ieee80211_key *key, struct mbuf *m)
737{
738#define	TO_BE_RECLAIMED	(sizeof(struct ether_header) - sizeof(struct llc))
739	int needed_space = vap->iv_ic->ic_headroom + hdrsize;
740
741	if (key != NULL) {
742		/* XXX belongs in crypto code? */
743		needed_space += key->wk_cipher->ic_header;
744		/* XXX frags */
745		/*
746		 * When crypto is being done in the host we must insure
747		 * the data are writable for the cipher routines; clone
748		 * a writable mbuf chain.
749		 * XXX handle SWMIC specially
750		 */
751		if (key->wk_flags & (IEEE80211_KEY_SWENCRYPT|IEEE80211_KEY_SWENMIC)) {
752			m = m_unshare(m, M_NOWAIT);
753			if (m == NULL) {
754				IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
755				    "%s: cannot get writable mbuf\n", __func__);
756				vap->iv_stats.is_tx_nobuf++; /* XXX new stat */
757				return NULL;
758			}
759		}
760	}
761	/*
762	 * We know we are called just before stripping an Ethernet
763	 * header and prepending an LLC header.  This means we know
764	 * there will be
765	 *	sizeof(struct ether_header) - sizeof(struct llc)
766	 * bytes recovered to which we need additional space for the
767	 * 802.11 header and any crypto header.
768	 */
769	/* XXX check trailing space and copy instead? */
770	if (M_LEADINGSPACE(m) < needed_space - TO_BE_RECLAIMED) {
771		struct mbuf *n = m_gethdr(M_NOWAIT, m->m_type);
772		if (n == NULL) {
773			IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
774			    "%s: cannot expand storage\n", __func__);
775			vap->iv_stats.is_tx_nobuf++;
776			m_freem(m);
777			return NULL;
778		}
779		KASSERT(needed_space <= MHLEN,
780		    ("not enough room, need %u got %zu\n", needed_space, MHLEN));
781		/*
782		 * Setup new mbuf to have leading space to prepend the
783		 * 802.11 header and any crypto header bits that are
784		 * required (the latter are added when the driver calls
785		 * back to ieee80211_crypto_encap to do crypto encapsulation).
786		 */
787		/* NB: must be first 'cuz it clobbers m_data */
788		m_move_pkthdr(n, m);
789		n->m_len = 0;			/* NB: m_gethdr does not set */
790		n->m_data += needed_space;
791		/*
792		 * Pull up Ethernet header to create the expected layout.
793		 * We could use m_pullup but that's overkill (i.e. we don't
794		 * need the actual data) and it cannot fail so do it inline
795		 * for speed.
796		 */
797		/* NB: struct ether_header is known to be contiguous */
798		n->m_len += sizeof(struct ether_header);
799		m->m_len -= sizeof(struct ether_header);
800		m->m_data += sizeof(struct ether_header);
801		/*
802		 * Replace the head of the chain.
803		 */
804		n->m_next = m;
805		m = n;
806	}
807	return m;
808#undef TO_BE_RECLAIMED
809}
810
811/*
812 * Return the transmit key to use in sending a unicast frame.
813 * If a unicast key is set we use that.  When no unicast key is set
814 * we fall back to the default transmit key.
815 */
816static __inline struct ieee80211_key *
817ieee80211_crypto_getucastkey(struct ieee80211vap *vap,
818	struct ieee80211_node *ni)
819{
820	if (IEEE80211_KEY_UNDEFINED(&ni->ni_ucastkey)) {
821		if (vap->iv_def_txkey == IEEE80211_KEYIX_NONE ||
822		    IEEE80211_KEY_UNDEFINED(&vap->iv_nw_keys[vap->iv_def_txkey]))
823			return NULL;
824		return &vap->iv_nw_keys[vap->iv_def_txkey];
825	} else {
826		return &ni->ni_ucastkey;
827	}
828}
829
830/*
831 * Return the transmit key to use in sending a multicast frame.
832 * Multicast traffic always uses the group key which is installed as
833 * the default tx key.
834 */
835static __inline struct ieee80211_key *
836ieee80211_crypto_getmcastkey(struct ieee80211vap *vap,
837	struct ieee80211_node *ni)
838{
839	if (vap->iv_def_txkey == IEEE80211_KEYIX_NONE ||
840	    IEEE80211_KEY_UNDEFINED(&vap->iv_nw_keys[vap->iv_def_txkey]))
841		return NULL;
842	return &vap->iv_nw_keys[vap->iv_def_txkey];
843}
844
845/*
846 * Encapsulate an outbound data frame.  The mbuf chain is updated.
847 * If an error is encountered NULL is returned.  The caller is required
848 * to provide a node reference and pullup the ethernet header in the
849 * first mbuf.
850 *
851 * NB: Packet is assumed to be processed by ieee80211_classify which
852 *     marked EAPOL frames w/ M_EAPOL.
853 */
854struct mbuf *
855ieee80211_encap(struct ieee80211_node *ni, struct mbuf *m)
856{
857#define	WH4(wh)	((struct ieee80211_frame_addr4 *)(wh))
858	struct ieee80211vap *vap = ni->ni_vap;
859	struct ieee80211com *ic = ni->ni_ic;
860	struct ether_header eh;
861	struct ieee80211_frame *wh;
862	struct ieee80211_key *key;
863	struct llc *llc;
864	int hdrsize, hdrspace, datalen, addqos, txfrag, isff, is4addr;
865
866	/*
867	 * Copy existing Ethernet header to a safe place.  The
868	 * rest of the code assumes it's ok to strip it when
869	 * reorganizing state for the final encapsulation.
870	 */
871	KASSERT(m->m_len >= sizeof(eh), ("no ethernet header!"));
872	ETHER_HEADER_COPY(&eh, mtod(m, caddr_t));
873
874	/*
875	 * Insure space for additional headers.  First identify
876	 * transmit key to use in calculating any buffer adjustments
877	 * required.  This is also used below to do privacy
878	 * encapsulation work.  Then calculate the 802.11 header
879	 * size and any padding required by the driver.
880	 *
881	 * Note key may be NULL if we fall back to the default
882	 * transmit key and that is not set.  In that case the
883	 * buffer may not be expanded as needed by the cipher
884	 * routines, but they will/should discard it.
885	 */
886	if (vap->iv_flags & IEEE80211_F_PRIVACY) {
887		if (vap->iv_opmode == IEEE80211_M_STA ||
888		    !IEEE80211_IS_MULTICAST(eh.ether_dhost) ||
889		    (vap->iv_opmode == IEEE80211_M_WDS &&
890		     (vap->iv_flags_ext & IEEE80211_FEXT_WDSLEGACY)))
891			key = ieee80211_crypto_getucastkey(vap, ni);
892		else
893			key = ieee80211_crypto_getmcastkey(vap, ni);
894		if (key == NULL && (m->m_flags & M_EAPOL) == 0) {
895			IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO,
896			    eh.ether_dhost,
897			    "no default transmit key (%s) deftxkey %u",
898			    __func__, vap->iv_def_txkey);
899			vap->iv_stats.is_tx_nodefkey++;
900			goto bad;
901		}
902	} else
903		key = NULL;
904	/*
905	 * XXX Some ap's don't handle QoS-encapsulated EAPOL
906	 * frames so suppress use.  This may be an issue if other
907	 * ap's require all data frames to be QoS-encapsulated
908	 * once negotiated in which case we'll need to make this
909	 * configurable.
910	 */
911	addqos = (ni->ni_flags & (IEEE80211_NODE_QOS|IEEE80211_NODE_HT)) &&
912		 (m->m_flags & M_EAPOL) == 0;
913	if (addqos)
914		hdrsize = sizeof(struct ieee80211_qosframe);
915	else
916		hdrsize = sizeof(struct ieee80211_frame);
917	/*
918	 * 4-address frames need to be generated for:
919	 * o packets sent through a WDS vap (M_WDS || IEEE80211_M_WDS)
920	 * o packets relayed by a station operating with dynamic WDS
921	 *   (IEEE80211_M_STA+IEEE80211_F_DWDS and src address)
922	 */
923	is4addr = (m->m_flags & M_WDS) ||
924	    vap->iv_opmode == IEEE80211_M_WDS ||	/* XXX redundant? */
925	    (vap->iv_opmode == IEEE80211_M_STA &&
926	     (vap->iv_flags & IEEE80211_F_DWDS) &&
927	     !IEEE80211_ADDR_EQ(eh.ether_shost, vap->iv_myaddr));
928	if (is4addr)
929		hdrsize += IEEE80211_ADDR_LEN;
930	/*
931	 * Honor driver DATAPAD requirement.
932	 */
933	if (ic->ic_flags & IEEE80211_F_DATAPAD)
934		hdrspace = roundup(hdrsize, sizeof(uint32_t));
935	else
936		hdrspace = hdrsize;
937
938	if ((isff = m->m_flags & M_FF) != 0) {
939		struct mbuf *m2;
940		struct ether_header eh2;
941
942		/*
943		 * Fast frame encapsulation.  There must be two packets
944		 * chained with m_nextpkt.  We do header adjustment for
945		 * each, add the tunnel encapsulation, and then concatenate
946		 * the mbuf chains to form a single frame for transmission.
947		 */
948		m2 = m->m_nextpkt;
949		if (m2 == NULL) {
950			IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
951				"%s: only one frame\n", __func__);
952			goto bad;
953		}
954		m->m_nextpkt = NULL;
955		/*
956		 * Include fast frame headers in adjusting header
957		 * layout; this allocates space according to what
958		 * ieee80211_encap_fastframe will do.
959		 */
960		m = ieee80211_mbuf_adjust(vap,
961			hdrspace + sizeof(struct llc) + sizeof(uint32_t) + 2 +
962			    sizeof(struct ether_header),
963			key, m);
964		if (m == NULL) {
965			/* NB: ieee80211_mbuf_adjust handles msgs+statistics */
966			m_freem(m2);
967			goto bad;
968		}
969		/*
970		 * Copy second frame's Ethernet header out of line
971		 * and adjust for encapsulation headers.  Note that
972		 * we make room for padding in case there isn't room
973		 * at the end of first frame.
974		 */
975		KASSERT(m2->m_len >= sizeof(eh2), ("no ethernet header!"));
976		ETHER_HEADER_COPY(&eh2, mtod(m2, caddr_t));
977		m2 = ieee80211_mbuf_adjust(vap,
978			ATH_FF_MAX_HDR_PAD + sizeof(struct ether_header),
979			NULL, m2);
980		if (m2 == NULL) {
981			/* NB: ieee80211_mbuf_adjust handles msgs+statistics */
982			goto bad;
983		}
984		m = ieee80211_encap_fastframe(vap, m, &eh, m2, &eh2);
985		if (m == NULL)
986			goto bad;
987	} else {
988		/*
989		 * Normal frame.
990		 */
991		m = ieee80211_mbuf_adjust(vap, hdrspace, key, m);
992		if (m == NULL) {
993			/* NB: ieee80211_mbuf_adjust handles msgs+statistics */
994			goto bad;
995		}
996		/* NB: this could be optimized 'cuz of ieee80211_mbuf_adjust */
997		m_adj(m, sizeof(struct ether_header) - sizeof(struct llc));
998		llc = mtod(m, struct llc *);
999		llc->llc_dsap = llc->llc_ssap = LLC_SNAP_LSAP;
1000		llc->llc_control = LLC_UI;
1001		llc->llc_snap.org_code[0] = 0;
1002		llc->llc_snap.org_code[1] = 0;
1003		llc->llc_snap.org_code[2] = 0;
1004		llc->llc_snap.ether_type = eh.ether_type;
1005	}
1006	datalen = m->m_pkthdr.len;		/* NB: w/o 802.11 header */
1007
1008	M_PREPEND(m, hdrspace, M_DONTWAIT);
1009	if (m == NULL) {
1010		vap->iv_stats.is_tx_nobuf++;
1011		goto bad;
1012	}
1013	wh = mtod(m, struct ieee80211_frame *);
1014	wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_DATA;
1015	*(uint16_t *)wh->i_dur = 0;
1016	if (is4addr) {
1017		wh->i_fc[1] = IEEE80211_FC1_DIR_DSTODS;
1018		IEEE80211_ADDR_COPY(wh->i_addr1, ni->ni_macaddr);
1019		IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
1020		IEEE80211_ADDR_COPY(wh->i_addr3, eh.ether_dhost);
1021		IEEE80211_ADDR_COPY(WH4(wh)->i_addr4, eh.ether_shost);
1022	} else switch (vap->iv_opmode) {
1023	case IEEE80211_M_STA:
1024		wh->i_fc[1] = IEEE80211_FC1_DIR_TODS;
1025		IEEE80211_ADDR_COPY(wh->i_addr1, ni->ni_bssid);
1026		IEEE80211_ADDR_COPY(wh->i_addr2, eh.ether_shost);
1027		IEEE80211_ADDR_COPY(wh->i_addr3, eh.ether_dhost);
1028		break;
1029	case IEEE80211_M_IBSS:
1030	case IEEE80211_M_AHDEMO:
1031		wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
1032		IEEE80211_ADDR_COPY(wh->i_addr1, eh.ether_dhost);
1033		IEEE80211_ADDR_COPY(wh->i_addr2, eh.ether_shost);
1034		/*
1035		 * NB: always use the bssid from iv_bss as the
1036		 *     neighbor's may be stale after an ibss merge
1037		 */
1038		IEEE80211_ADDR_COPY(wh->i_addr3, vap->iv_bss->ni_bssid);
1039		break;
1040	case IEEE80211_M_HOSTAP:
1041		wh->i_fc[1] = IEEE80211_FC1_DIR_FROMDS;
1042		IEEE80211_ADDR_COPY(wh->i_addr1, eh.ether_dhost);
1043		IEEE80211_ADDR_COPY(wh->i_addr2, ni->ni_bssid);
1044		IEEE80211_ADDR_COPY(wh->i_addr3, eh.ether_shost);
1045		break;
1046	case IEEE80211_M_MONITOR:
1047	case IEEE80211_M_WDS:		/* NB: is4addr should always be true */
1048		goto bad;
1049	}
1050	if (m->m_flags & M_MORE_DATA)
1051		wh->i_fc[1] |= IEEE80211_FC1_MORE_DATA;
1052	if (addqos) {
1053		uint8_t *qos;
1054		int ac, tid;
1055
1056		if (is4addr) {
1057			qos = ((struct ieee80211_qosframe_addr4 *) wh)->i_qos;
1058		} else
1059			qos = ((struct ieee80211_qosframe *) wh)->i_qos;
1060		ac = M_WME_GETAC(m);
1061		/* map from access class/queue to 11e header priorty value */
1062		tid = WME_AC_TO_TID(ac);
1063		qos[0] = tid & IEEE80211_QOS_TID;
1064		/*
1065		 * Check if A-MPDU tx aggregation is setup or if we
1066		 * should try to enable it.  The sta must be associated
1067		 * with HT and A-MPDU enabled for use.  When the policy
1068		 * routine decides we should enable A-MPDU we issue an
1069		 * ADDBA request and wait for a reply.  The frame being
1070		 * encapsulated will go out w/o using A-MPDU, or possibly
1071		 * it might be collected by the driver and held/retransmit.
1072		 * The default ic_ampdu_enable routine handles staggering
1073		 * ADDBA requests in case the receiver NAK's us or we are
1074		 * otherwise unable to establish a BA stream.
1075		 */
1076		if ((ni->ni_flags & IEEE80211_NODE_AMPDU_TX) &&
1077		    (vap->iv_flags_ext & IEEE80211_FEXT_AMPDU_TX)) {
1078			struct ieee80211_tx_ampdu *tap = &ni->ni_tx_ampdu[ac];
1079
1080			ieee80211_txampdu_count_packet(tap);
1081			if (IEEE80211_AMPDU_RUNNING(tap)) {
1082				/*
1083				 * Operational, mark frame for aggregation.
1084				 *
1085				 * NB: We support only immediate BA's for
1086				 * AMPDU which means we set the QoS control
1087				 * field to "normal ack" (0) to get "implicit
1088				 * block ack" behaviour.
1089				 */
1090				m->m_flags |= M_AMPDU_MPDU;
1091			} else if (!IEEE80211_AMPDU_REQUESTED(tap) &&
1092			    ic->ic_ampdu_enable(ni, tap)) {
1093				/*
1094				 * Not negotiated yet, request service.
1095				 */
1096				ieee80211_ampdu_request(ni, tap);
1097			}
1098		}
1099		/* XXX works even when BA marked above */
1100		if (ic->ic_wme.wme_wmeChanParams.cap_wmeParams[ac].wmep_noackPolicy)
1101			qos[0] |= IEEE80211_QOS_ACKPOLICY_NOACK;
1102		qos[1] = 0;
1103		wh->i_fc[0] |= IEEE80211_FC0_SUBTYPE_QOS;
1104
1105		if ((m->m_flags & M_AMPDU_MPDU) == 0) {
1106			/*
1107			 * NB: don't assign a sequence # to potential
1108			 * aggregates; we expect this happens at the
1109			 * point the frame comes off any aggregation q
1110			 * as otherwise we may introduce holes in the
1111			 * BA sequence space and/or make window accouting
1112			 * more difficult.
1113			 *
1114			 * XXX may want to control this with a driver
1115			 * capability; this may also change when we pull
1116			 * aggregation up into net80211
1117			 */
1118			*(uint16_t *)wh->i_seq =
1119			    htole16(ni->ni_txseqs[tid] << IEEE80211_SEQ_SEQ_SHIFT);
1120			ni->ni_txseqs[tid]++;
1121		}
1122	} else {
1123		*(uint16_t *)wh->i_seq =
1124		    htole16(ni->ni_txseqs[IEEE80211_NONQOS_TID] << IEEE80211_SEQ_SEQ_SHIFT);
1125		ni->ni_txseqs[IEEE80211_NONQOS_TID]++;
1126	}
1127	/* check if xmit fragmentation is required */
1128	txfrag = (m->m_pkthdr.len > vap->iv_fragthreshold &&
1129	    !IEEE80211_IS_MULTICAST(wh->i_addr1) &&
1130	    (vap->iv_caps & IEEE80211_C_TXFRAG) &&
1131	    !isff);		/* NB: don't fragment ff's */
1132	if (key != NULL) {
1133		/*
1134		 * IEEE 802.1X: send EAPOL frames always in the clear.
1135		 * WPA/WPA2: encrypt EAPOL keys when pairwise keys are set.
1136		 */
1137		if ((m->m_flags & M_EAPOL) == 0 ||
1138		    ((vap->iv_flags & IEEE80211_F_WPA) &&
1139		     (vap->iv_opmode == IEEE80211_M_STA ?
1140		      !IEEE80211_KEY_UNDEFINED(key) :
1141		      !IEEE80211_KEY_UNDEFINED(&ni->ni_ucastkey)))) {
1142			wh->i_fc[1] |= IEEE80211_FC1_WEP;
1143			if (!ieee80211_crypto_enmic(vap, key, m, txfrag)) {
1144				IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_OUTPUT,
1145				    eh.ether_dhost,
1146				    "%s", "enmic failed, discard frame");
1147				vap->iv_stats.is_crypto_enmicfail++;
1148				goto bad;
1149			}
1150		}
1151	}
1152	if (txfrag && !ieee80211_fragment(vap, m, hdrsize,
1153	    key != NULL ? key->wk_cipher->ic_header : 0, vap->iv_fragthreshold))
1154		goto bad;
1155
1156	m->m_flags |= M_ENCAP;		/* mark encapsulated */
1157
1158	IEEE80211_NODE_STAT(ni, tx_data);
1159	if (IEEE80211_IS_MULTICAST(wh->i_addr1))
1160		IEEE80211_NODE_STAT(ni, tx_mcast);
1161	else
1162		IEEE80211_NODE_STAT(ni, tx_ucast);
1163	IEEE80211_NODE_STAT_ADD(ni, tx_bytes, datalen);
1164
1165	/* XXX fragmented frames not handled */
1166	if (bpf_peers_present(vap->iv_rawbpf))
1167		bpf_mtap(vap->iv_rawbpf, m);
1168
1169	return m;
1170bad:
1171	if (m != NULL)
1172		m_freem(m);
1173	return NULL;
1174#undef WH4
1175}
1176
1177/*
1178 * Do Ethernet-LLC encapsulation for each payload in a fast frame
1179 * tunnel encapsulation.  The frame is assumed to have an Ethernet
1180 * header at the front that must be stripped before prepending the
1181 * LLC followed by the Ethernet header passed in (with an Ethernet
1182 * type that specifies the payload size).
1183 */
1184static struct mbuf *
1185ieee80211_encap1(struct ieee80211vap *vap, struct mbuf *m,
1186	const struct ether_header *eh)
1187{
1188	struct llc *llc;
1189	uint16_t payload;
1190
1191	/* XXX optimize by combining m_adj+M_PREPEND */
1192	m_adj(m, sizeof(struct ether_header) - sizeof(struct llc));
1193	llc = mtod(m, struct llc *);
1194	llc->llc_dsap = llc->llc_ssap = LLC_SNAP_LSAP;
1195	llc->llc_control = LLC_UI;
1196	llc->llc_snap.org_code[0] = 0;
1197	llc->llc_snap.org_code[1] = 0;
1198	llc->llc_snap.org_code[2] = 0;
1199	llc->llc_snap.ether_type = eh->ether_type;
1200	payload = m->m_pkthdr.len;		/* NB: w/o Ethernet header */
1201
1202	M_PREPEND(m, sizeof(struct ether_header), M_DONTWAIT);
1203	if (m == NULL) {		/* XXX cannot happen */
1204		IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
1205			"%s: no space for ether_header\n", __func__);
1206		vap->iv_stats.is_tx_nobuf++;
1207		return NULL;
1208	}
1209	ETHER_HEADER_COPY(mtod(m, void *), eh);
1210	mtod(m, struct ether_header *)->ether_type = htons(payload);
1211	return m;
1212}
1213
1214/*
1215 * Do fast frame tunnel encapsulation.  The two frames and
1216 * Ethernet headers are supplied.  The caller is assumed to
1217 * have arrange for space in the mbuf chains for encapsulating
1218 * headers (to avoid major mbuf fragmentation).
1219 *
1220 * The encapsulated frame is returned or NULL if there is a
1221 * problem (should not happen).
1222 */
1223static struct mbuf *
1224ieee80211_encap_fastframe(struct ieee80211vap *vap,
1225	struct mbuf *m1, const struct ether_header *eh1,
1226	struct mbuf *m2, const struct ether_header *eh2)
1227{
1228	struct llc *llc;
1229	struct mbuf *m;
1230	int pad;
1231
1232	/*
1233	 * First, each frame gets a standard encapsulation.
1234	 */
1235	m1 = ieee80211_encap1(vap, m1, eh1);
1236	if (m1 == NULL) {
1237		m_freem(m2);
1238		return NULL;
1239	}
1240	m2 = ieee80211_encap1(vap, m2, eh2);
1241	if (m2 == NULL) {
1242		m_freem(m1);
1243		return NULL;
1244	}
1245
1246	/*
1247	 * Pad leading frame to a 4-byte boundary.  If there
1248	 * is space at the end of the first frame, put it
1249	 * there; otherwise prepend to the front of the second
1250	 * frame.  We know doing the second will always work
1251	 * because we reserve space above.  We prefer appending
1252	 * as this typically has better DMA alignment properties.
1253	 */
1254	for (m = m1; m->m_next != NULL; m = m->m_next)
1255		;
1256	pad = roundup2(m1->m_pkthdr.len, 4) - m1->m_pkthdr.len;
1257	if (pad) {
1258		if (M_TRAILINGSPACE(m) < pad) {		/* prepend to second */
1259			m2->m_data -= pad;
1260			m2->m_len += pad;
1261			m2->m_pkthdr.len += pad;
1262		} else {				/* append to first */
1263			m->m_len += pad;
1264			m1->m_pkthdr.len += pad;
1265		}
1266	}
1267
1268	/*
1269	 * Now, stick 'em together and prepend the tunnel headers;
1270	 * first the Atheros tunnel header (all zero for now) and
1271	 * then a special fast frame LLC.
1272	 *
1273	 * XXX optimize by prepending together
1274	 */
1275	m->m_next = m2;			/* NB: last mbuf from above */
1276	m1->m_pkthdr.len += m2->m_pkthdr.len;
1277	M_PREPEND(m1, sizeof(uint32_t)+2, M_DONTWAIT);
1278	if (m1 == NULL) {		/* XXX cannot happen */
1279		IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
1280			"%s: no space for tunnel header\n", __func__);
1281		vap->iv_stats.is_tx_nobuf++;
1282		return NULL;
1283	}
1284	memset(mtod(m1, void *), 0, sizeof(uint32_t)+2);
1285
1286	M_PREPEND(m1, sizeof(struct llc), M_DONTWAIT);
1287	if (m1 == NULL) {		/* XXX cannot happen */
1288		IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
1289			"%s: no space for llc header\n", __func__);
1290		vap->iv_stats.is_tx_nobuf++;
1291		return NULL;
1292	}
1293	llc = mtod(m1, struct llc *);
1294	llc->llc_dsap = llc->llc_ssap = LLC_SNAP_LSAP;
1295	llc->llc_control = LLC_UI;
1296	llc->llc_snap.org_code[0] = ATH_FF_SNAP_ORGCODE_0;
1297	llc->llc_snap.org_code[1] = ATH_FF_SNAP_ORGCODE_1;
1298	llc->llc_snap.org_code[2] = ATH_FF_SNAP_ORGCODE_2;
1299	llc->llc_snap.ether_type = htons(ATH_FF_ETH_TYPE);
1300
1301	vap->iv_stats.is_ff_encap++;
1302
1303	return m1;
1304}
1305
1306/*
1307 * Fragment the frame according to the specified mtu.
1308 * The size of the 802.11 header (w/o padding) is provided
1309 * so we don't need to recalculate it.  We create a new
1310 * mbuf for each fragment and chain it through m_nextpkt;
1311 * we might be able to optimize this by reusing the original
1312 * packet's mbufs but that is significantly more complicated.
1313 */
1314static int
1315ieee80211_fragment(struct ieee80211vap *vap, struct mbuf *m0,
1316	u_int hdrsize, u_int ciphdrsize, u_int mtu)
1317{
1318	struct ieee80211_frame *wh, *whf;
1319	struct mbuf *m, *prev, *next;
1320	u_int totalhdrsize, fragno, fragsize, off, remainder, payload;
1321
1322	KASSERT(m0->m_nextpkt == NULL, ("mbuf already chained?"));
1323	KASSERT(m0->m_pkthdr.len > mtu,
1324		("pktlen %u mtu %u", m0->m_pkthdr.len, mtu));
1325
1326	wh = mtod(m0, struct ieee80211_frame *);
1327	/* NB: mark the first frag; it will be propagated below */
1328	wh->i_fc[1] |= IEEE80211_FC1_MORE_FRAG;
1329	totalhdrsize = hdrsize + ciphdrsize;
1330	fragno = 1;
1331	off = mtu - ciphdrsize;
1332	remainder = m0->m_pkthdr.len - off;
1333	prev = m0;
1334	do {
1335		fragsize = totalhdrsize + remainder;
1336		if (fragsize > mtu)
1337			fragsize = mtu;
1338		/* XXX fragsize can be >2048! */
1339		KASSERT(fragsize < MCLBYTES,
1340			("fragment size %u too big!", fragsize));
1341		if (fragsize > MHLEN)
1342			m = m_getcl(M_DONTWAIT, MT_DATA, M_PKTHDR);
1343		else
1344			m = m_gethdr(M_DONTWAIT, MT_DATA);
1345		if (m == NULL)
1346			goto bad;
1347		/* leave room to prepend any cipher header */
1348		m_align(m, fragsize - ciphdrsize);
1349
1350		/*
1351		 * Form the header in the fragment.  Note that since
1352		 * we mark the first fragment with the MORE_FRAG bit
1353		 * it automatically is propagated to each fragment; we
1354		 * need only clear it on the last fragment (done below).
1355		 */
1356		whf = mtod(m, struct ieee80211_frame *);
1357		memcpy(whf, wh, hdrsize);
1358		*(uint16_t *)&whf->i_seq[0] |= htole16(
1359			(fragno & IEEE80211_SEQ_FRAG_MASK) <<
1360				IEEE80211_SEQ_FRAG_SHIFT);
1361		fragno++;
1362
1363		payload = fragsize - totalhdrsize;
1364		/* NB: destination is known to be contiguous */
1365		m_copydata(m0, off, payload, mtod(m, uint8_t *) + hdrsize);
1366		m->m_len = hdrsize + payload;
1367		m->m_pkthdr.len = hdrsize + payload;
1368		m->m_flags |= M_FRAG;
1369
1370		/* chain up the fragment */
1371		prev->m_nextpkt = m;
1372		prev = m;
1373
1374		/* deduct fragment just formed */
1375		remainder -= payload;
1376		off += payload;
1377	} while (remainder != 0);
1378	whf->i_fc[1] &= ~IEEE80211_FC1_MORE_FRAG;
1379
1380	/* strip first mbuf now that everything has been copied */
1381	m_adj(m0, -(m0->m_pkthdr.len - (mtu - ciphdrsize)));
1382	m0->m_flags |= M_FIRSTFRAG | M_FRAG;
1383
1384	vap->iv_stats.is_tx_fragframes++;
1385	vap->iv_stats.is_tx_frags += fragno-1;
1386
1387	return 1;
1388bad:
1389	/* reclaim fragments but leave original frame for caller to free */
1390	for (m = m0->m_nextpkt; m != NULL; m = next) {
1391		next = m->m_nextpkt;
1392		m->m_nextpkt = NULL;		/* XXX paranoid */
1393		m_freem(m);
1394	}
1395	m0->m_nextpkt = NULL;
1396	return 0;
1397}
1398
1399/*
1400 * Add a supported rates element id to a frame.
1401 */
1402static uint8_t *
1403ieee80211_add_rates(uint8_t *frm, const struct ieee80211_rateset *rs)
1404{
1405	int nrates;
1406
1407	*frm++ = IEEE80211_ELEMID_RATES;
1408	nrates = rs->rs_nrates;
1409	if (nrates > IEEE80211_RATE_SIZE)
1410		nrates = IEEE80211_RATE_SIZE;
1411	*frm++ = nrates;
1412	memcpy(frm, rs->rs_rates, nrates);
1413	return frm + nrates;
1414}
1415
1416/*
1417 * Add an extended supported rates element id to a frame.
1418 */
1419static uint8_t *
1420ieee80211_add_xrates(uint8_t *frm, const struct ieee80211_rateset *rs)
1421{
1422	/*
1423	 * Add an extended supported rates element if operating in 11g mode.
1424	 */
1425	if (rs->rs_nrates > IEEE80211_RATE_SIZE) {
1426		int nrates = rs->rs_nrates - IEEE80211_RATE_SIZE;
1427		*frm++ = IEEE80211_ELEMID_XRATES;
1428		*frm++ = nrates;
1429		memcpy(frm, rs->rs_rates + IEEE80211_RATE_SIZE, nrates);
1430		frm += nrates;
1431	}
1432	return frm;
1433}
1434
1435/*
1436 * Add an ssid element to a frame.
1437 */
1438static uint8_t *
1439ieee80211_add_ssid(uint8_t *frm, const uint8_t *ssid, u_int len)
1440{
1441	*frm++ = IEEE80211_ELEMID_SSID;
1442	*frm++ = len;
1443	memcpy(frm, ssid, len);
1444	return frm + len;
1445}
1446
1447/*
1448 * Add an erp element to a frame.
1449 */
1450static uint8_t *
1451ieee80211_add_erp(uint8_t *frm, struct ieee80211com *ic)
1452{
1453	uint8_t erp;
1454
1455	*frm++ = IEEE80211_ELEMID_ERP;
1456	*frm++ = 1;
1457	erp = 0;
1458	if (ic->ic_nonerpsta != 0)
1459		erp |= IEEE80211_ERP_NON_ERP_PRESENT;
1460	if (ic->ic_flags & IEEE80211_F_USEPROT)
1461		erp |= IEEE80211_ERP_USE_PROTECTION;
1462	if (ic->ic_flags & IEEE80211_F_USEBARKER)
1463		erp |= IEEE80211_ERP_LONG_PREAMBLE;
1464	*frm++ = erp;
1465	return frm;
1466}
1467
1468/*
1469 * Add a CFParams element to a frame.
1470 */
1471static uint8_t *
1472ieee80211_add_cfparms(uint8_t *frm, struct ieee80211com *ic)
1473{
1474#define	ADDSHORT(frm, v) do {			\
1475	frm[0] = (v) & 0xff;			\
1476	frm[1] = (v) >> 8;			\
1477	frm += 2;				\
1478} while (0)
1479	*frm++ = IEEE80211_ELEMID_CFPARMS;
1480	*frm++ = 6;
1481	*frm++ = 0;		/* CFP count */
1482	*frm++ = 2;		/* CFP period */
1483	ADDSHORT(frm, 0);	/* CFP MaxDuration (TU) */
1484	ADDSHORT(frm, 0);	/* CFP CurRemaining (TU) */
1485	return frm;
1486#undef ADDSHORT
1487}
1488
1489static __inline uint8_t *
1490add_appie(uint8_t *frm, const struct ieee80211_appie *ie)
1491{
1492	memcpy(frm, ie->ie_data, ie->ie_len);
1493	return frm + ie->ie_len;
1494}
1495
1496static __inline uint8_t *
1497add_ie(uint8_t *frm, const uint8_t *ie)
1498{
1499	memcpy(frm, ie, 2 + ie[1]);
1500	return frm + 2 + ie[1];
1501}
1502
1503#define	WME_OUI_BYTES		0x00, 0x50, 0xf2
1504/*
1505 * Add a WME information element to a frame.
1506 */
1507static uint8_t *
1508ieee80211_add_wme_info(uint8_t *frm, struct ieee80211_wme_state *wme)
1509{
1510	static const struct ieee80211_wme_info info = {
1511		.wme_id		= IEEE80211_ELEMID_VENDOR,
1512		.wme_len	= sizeof(struct ieee80211_wme_info) - 2,
1513		.wme_oui	= { WME_OUI_BYTES },
1514		.wme_type	= WME_OUI_TYPE,
1515		.wme_subtype	= WME_INFO_OUI_SUBTYPE,
1516		.wme_version	= WME_VERSION,
1517		.wme_info	= 0,
1518	};
1519	memcpy(frm, &info, sizeof(info));
1520	return frm + sizeof(info);
1521}
1522
1523/*
1524 * Add a WME parameters element to a frame.
1525 */
1526static uint8_t *
1527ieee80211_add_wme_param(uint8_t *frm, struct ieee80211_wme_state *wme)
1528{
1529#define	SM(_v, _f)	(((_v) << _f##_S) & _f)
1530#define	ADDSHORT(frm, v) do {			\
1531	frm[0] = (v) & 0xff;			\
1532	frm[1] = (v) >> 8;			\
1533	frm += 2;				\
1534} while (0)
1535	/* NB: this works 'cuz a param has an info at the front */
1536	static const struct ieee80211_wme_info param = {
1537		.wme_id		= IEEE80211_ELEMID_VENDOR,
1538		.wme_len	= sizeof(struct ieee80211_wme_param) - 2,
1539		.wme_oui	= { WME_OUI_BYTES },
1540		.wme_type	= WME_OUI_TYPE,
1541		.wme_subtype	= WME_PARAM_OUI_SUBTYPE,
1542		.wme_version	= WME_VERSION,
1543	};
1544	int i;
1545
1546	memcpy(frm, &param, sizeof(param));
1547	frm += __offsetof(struct ieee80211_wme_info, wme_info);
1548	*frm++ = wme->wme_bssChanParams.cap_info;	/* AC info */
1549	*frm++ = 0;					/* reserved field */
1550	for (i = 0; i < WME_NUM_AC; i++) {
1551		const struct wmeParams *ac =
1552		       &wme->wme_bssChanParams.cap_wmeParams[i];
1553		*frm++ = SM(i, WME_PARAM_ACI)
1554		       | SM(ac->wmep_acm, WME_PARAM_ACM)
1555		       | SM(ac->wmep_aifsn, WME_PARAM_AIFSN)
1556		       ;
1557		*frm++ = SM(ac->wmep_logcwmax, WME_PARAM_LOGCWMAX)
1558		       | SM(ac->wmep_logcwmin, WME_PARAM_LOGCWMIN)
1559		       ;
1560		ADDSHORT(frm, ac->wmep_txopLimit);
1561	}
1562	return frm;
1563#undef SM
1564#undef ADDSHORT
1565}
1566#undef WME_OUI_BYTES
1567
1568#define	ATH_OUI_BYTES		0x00, 0x03, 0x7f
1569/*
1570 * Add a WME information element to a frame.
1571 */
1572static uint8_t *
1573ieee80211_add_ath(uint8_t *frm, uint8_t caps, uint16_t defkeyix)
1574{
1575	static const struct ieee80211_ath_ie info = {
1576		.ath_id		= IEEE80211_ELEMID_VENDOR,
1577		.ath_len	= sizeof(struct ieee80211_ath_ie) - 2,
1578		.ath_oui	= { ATH_OUI_BYTES },
1579		.ath_oui_type	= ATH_OUI_TYPE,
1580		.ath_oui_subtype= ATH_OUI_SUBTYPE,
1581		.ath_version	= ATH_OUI_VERSION,
1582	};
1583	struct ieee80211_ath_ie *ath = (struct ieee80211_ath_ie *) frm;
1584
1585	memcpy(frm, &info, sizeof(info));
1586	ath->ath_capability = caps;
1587	ath->ath_defkeyix[0] = (defkeyix & 0xff);
1588	ath->ath_defkeyix[1] = ((defkeyix >> 8) & 0xff);
1589	return frm + sizeof(info);
1590}
1591#undef ATH_OUI_BYTES
1592
1593/*
1594 * Add an 11h Power Constraint element to a frame.
1595 */
1596static uint8_t *
1597ieee80211_add_powerconstraint(uint8_t *frm, struct ieee80211vap *vap)
1598{
1599	const struct ieee80211_channel *c = vap->iv_bss->ni_chan;
1600	/* XXX per-vap tx power limit? */
1601	int8_t limit = vap->iv_ic->ic_txpowlimit / 2;
1602
1603	frm[0] = IEEE80211_ELEMID_PWRCNSTR;
1604	frm[1] = 1;
1605	frm[2] = c->ic_maxregpower > limit ?  c->ic_maxregpower - limit : 0;
1606	return frm + 3;
1607}
1608
1609/*
1610 * Add an 11h Power Capability element to a frame.
1611 */
1612static uint8_t *
1613ieee80211_add_powercapability(uint8_t *frm, const struct ieee80211_channel *c)
1614{
1615	frm[0] = IEEE80211_ELEMID_PWRCAP;
1616	frm[1] = 2;
1617	frm[2] = c->ic_minpower;
1618	frm[3] = c->ic_maxpower;
1619	return frm + 4;
1620}
1621
1622/*
1623 * Add an 11h Supported Channels element to a frame.
1624 */
1625static uint8_t *
1626ieee80211_add_supportedchannels(uint8_t *frm, struct ieee80211com *ic)
1627{
1628	static const int ielen = 26;
1629
1630	frm[0] = IEEE80211_ELEMID_SUPPCHAN;
1631	frm[1] = ielen;
1632	/* XXX not correct */
1633	memcpy(frm+2, ic->ic_chan_avail, ielen);
1634	return frm + 2 + ielen;
1635}
1636
1637/*
1638 * Add an 11h Channel Switch Announcement element to a frame.
1639 * Note that we use the per-vap CSA count to adjust the global
1640 * counter so we can use this routine to form probe response
1641 * frames and get the current count.
1642 */
1643static uint8_t *
1644ieee80211_add_csa(uint8_t *frm, struct ieee80211vap *vap)
1645{
1646	struct ieee80211com *ic = vap->iv_ic;
1647	struct ieee80211_csa_ie *csa = (struct ieee80211_csa_ie *) frm;
1648
1649	csa->csa_ie = IEEE80211_ELEMID_CHANSWITCHANN;
1650	csa->csa_len = 3;
1651	csa->csa_mode = 1;		/* XXX force quiet on channel */
1652	csa->csa_newchan = ieee80211_chan2ieee(ic, ic->ic_csa_newchan);
1653	csa->csa_count = ic->ic_csa_count - vap->iv_csa_count;
1654	return frm + sizeof(*csa);
1655}
1656
1657/*
1658 * Add an 11h country information element to a frame.
1659 */
1660static uint8_t *
1661ieee80211_add_countryie(uint8_t *frm, struct ieee80211com *ic)
1662{
1663
1664	if (ic->ic_countryie == NULL ||
1665	    ic->ic_countryie_chan != ic->ic_bsschan) {
1666		/*
1667		 * Handle lazy construction of ie.  This is done on
1668		 * first use and after a channel change that requires
1669		 * re-calculation.
1670		 */
1671		if (ic->ic_countryie != NULL)
1672			free(ic->ic_countryie, M_80211_NODE_IE);
1673		ic->ic_countryie = ieee80211_alloc_countryie(ic);
1674		if (ic->ic_countryie == NULL)
1675			return frm;
1676		ic->ic_countryie_chan = ic->ic_bsschan;
1677	}
1678	return add_appie(frm, ic->ic_countryie);
1679}
1680
1681/*
1682 * Send a probe request frame with the specified ssid
1683 * and any optional information element data.
1684 */
1685int
1686ieee80211_send_probereq(struct ieee80211_node *ni,
1687	const uint8_t sa[IEEE80211_ADDR_LEN],
1688	const uint8_t da[IEEE80211_ADDR_LEN],
1689	const uint8_t bssid[IEEE80211_ADDR_LEN],
1690	const uint8_t *ssid, size_t ssidlen)
1691{
1692	struct ieee80211vap *vap = ni->ni_vap;
1693	struct ieee80211com *ic = ni->ni_ic;
1694	const struct ieee80211_txparam *tp;
1695	struct ieee80211_bpf_params params;
1696	struct ieee80211_frame *wh;
1697	const struct ieee80211_rateset *rs;
1698	struct mbuf *m;
1699	uint8_t *frm;
1700
1701	if (vap->iv_state == IEEE80211_S_CAC) {
1702		IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT, ni,
1703		    "block %s frame in CAC state", "probe request");
1704		vap->iv_stats.is_tx_badstate++;
1705		return EIO;		/* XXX */
1706	}
1707
1708	/*
1709	 * Hold a reference on the node so it doesn't go away until after
1710	 * the xmit is complete all the way in the driver.  On error we
1711	 * will remove our reference.
1712	 */
1713	IEEE80211_DPRINTF(vap, IEEE80211_MSG_NODE,
1714		"ieee80211_ref_node (%s:%u) %p<%s> refcnt %d\n",
1715		__func__, __LINE__,
1716		ni, ether_sprintf(ni->ni_macaddr),
1717		ieee80211_node_refcnt(ni)+1);
1718	ieee80211_ref_node(ni);
1719
1720	/*
1721	 * prreq frame format
1722	 *	[tlv] ssid
1723	 *	[tlv] supported rates
1724	 *	[tlv] RSN (optional)
1725	 *	[tlv] extended supported rates
1726	 *	[tlv] WPA (optional)
1727	 *	[tlv] user-specified ie's
1728	 */
1729	m = ieee80211_getmgtframe(&frm,
1730		 ic->ic_headroom + sizeof(struct ieee80211_frame),
1731	       	 2 + IEEE80211_NWID_LEN
1732	       + 2 + IEEE80211_RATE_SIZE
1733	       + sizeof(struct ieee80211_ie_wpa)
1734	       + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
1735	       + sizeof(struct ieee80211_ie_wpa)
1736	       + (vap->iv_appie_probereq != NULL ?
1737		   vap->iv_appie_probereq->ie_len : 0)
1738	);
1739	if (m == NULL) {
1740		vap->iv_stats.is_tx_nobuf++;
1741		ieee80211_free_node(ni);
1742		return ENOMEM;
1743	}
1744
1745	frm = ieee80211_add_ssid(frm, ssid, ssidlen);
1746	rs = ieee80211_get_suprates(ic, ic->ic_curchan);
1747	frm = ieee80211_add_rates(frm, rs);
1748	if (vap->iv_flags & IEEE80211_F_WPA2) {
1749		if (vap->iv_rsn_ie != NULL)
1750			frm = add_ie(frm, vap->iv_rsn_ie);
1751		/* XXX else complain? */
1752	}
1753	frm = ieee80211_add_xrates(frm, rs);
1754	if (vap->iv_flags & IEEE80211_F_WPA1) {
1755		if (vap->iv_wpa_ie != NULL)
1756			frm = add_ie(frm, vap->iv_wpa_ie);
1757		/* XXX else complain? */
1758	}
1759	if (vap->iv_appie_probereq != NULL)
1760		frm = add_appie(frm, vap->iv_appie_probereq);
1761	m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
1762
1763	KASSERT(M_LEADINGSPACE(m) >= sizeof(struct ieee80211_frame),
1764	    ("leading space %zd", M_LEADINGSPACE(m)));
1765	M_PREPEND(m, sizeof(struct ieee80211_frame), M_DONTWAIT);
1766	if (m == NULL) {
1767		/* NB: cannot happen */
1768		ieee80211_free_node(ni);
1769		return ENOMEM;
1770	}
1771
1772	wh = mtod(m, struct ieee80211_frame *);
1773	ieee80211_send_setup(ni, wh,
1774	     IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_REQ,
1775	     IEEE80211_NONQOS_TID, sa, da, bssid);
1776	/* XXX power management? */
1777	m->m_flags |= M_ENCAP;		/* mark encapsulated */
1778
1779	M_WME_SETAC(m, WME_AC_BE);
1780
1781	IEEE80211_NODE_STAT(ni, tx_probereq);
1782	IEEE80211_NODE_STAT(ni, tx_mgmt);
1783
1784	IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG | IEEE80211_MSG_DUMPPKTS,
1785	    "send probe req on channel %u bssid %s ssid \"%.*s\"\n",
1786	    ieee80211_chan2ieee(ic, ic->ic_curchan), ether_sprintf(bssid),
1787	    ssidlen, ssid);
1788
1789	memset(&params, 0, sizeof(params));
1790	params.ibp_pri = M_WME_GETAC(m);
1791	tp = &vap->iv_txparms[ieee80211_chan2mode(ic->ic_curchan)];
1792	params.ibp_rate0 = tp->mgmtrate;
1793	if (IEEE80211_IS_MULTICAST(da)) {
1794		params.ibp_flags |= IEEE80211_BPF_NOACK;
1795		params.ibp_try0 = 1;
1796	} else
1797		params.ibp_try0 = tp->maxretry;
1798	params.ibp_power = ni->ni_txpower;
1799	return ic->ic_raw_xmit(ni, m, &params);
1800}
1801
1802/*
1803 * Calculate capability information for mgt frames.
1804 */
1805static uint16_t
1806getcapinfo(struct ieee80211vap *vap, struct ieee80211_channel *chan)
1807{
1808	struct ieee80211com *ic = vap->iv_ic;
1809	uint16_t capinfo;
1810
1811	KASSERT(vap->iv_opmode != IEEE80211_M_STA, ("station mode"));
1812
1813	if (vap->iv_opmode == IEEE80211_M_HOSTAP)
1814		capinfo = IEEE80211_CAPINFO_ESS;
1815	else if (vap->iv_opmode == IEEE80211_M_IBSS)
1816		capinfo = IEEE80211_CAPINFO_IBSS;
1817	else
1818		capinfo = 0;
1819	if (vap->iv_flags & IEEE80211_F_PRIVACY)
1820		capinfo |= IEEE80211_CAPINFO_PRIVACY;
1821	if ((ic->ic_flags & IEEE80211_F_SHPREAMBLE) &&
1822	    IEEE80211_IS_CHAN_2GHZ(chan))
1823		capinfo |= IEEE80211_CAPINFO_SHORT_PREAMBLE;
1824	if (ic->ic_flags & IEEE80211_F_SHSLOT)
1825		capinfo |= IEEE80211_CAPINFO_SHORT_SLOTTIME;
1826	if (IEEE80211_IS_CHAN_5GHZ(chan) && (vap->iv_flags & IEEE80211_F_DOTH))
1827		capinfo |= IEEE80211_CAPINFO_SPECTRUM_MGMT;
1828	return capinfo;
1829}
1830
1831/*
1832 * Send a management frame.  The node is for the destination (or ic_bss
1833 * when in station mode).  Nodes other than ic_bss have their reference
1834 * count bumped to reflect our use for an indeterminant time.
1835 */
1836int
1837ieee80211_send_mgmt(struct ieee80211_node *ni, int type, int arg)
1838{
1839#define	HTFLAGS (IEEE80211_NODE_HT | IEEE80211_NODE_HTCOMPAT)
1840#define	senderr(_x, _v)	do { vap->iv_stats._v++; ret = _x; goto bad; } while (0)
1841	struct ieee80211vap *vap = ni->ni_vap;
1842	struct ieee80211com *ic = ni->ni_ic;
1843	struct ieee80211_node *bss = vap->iv_bss;
1844	struct ieee80211_bpf_params params;
1845	struct mbuf *m;
1846	uint8_t *frm;
1847	uint16_t capinfo;
1848	int has_challenge, is_shared_key, ret, status;
1849
1850	KASSERT(ni != NULL, ("null node"));
1851
1852	/*
1853	 * Hold a reference on the node so it doesn't go away until after
1854	 * the xmit is complete all the way in the driver.  On error we
1855	 * will remove our reference.
1856	 */
1857	IEEE80211_DPRINTF(vap, IEEE80211_MSG_NODE,
1858		"ieee80211_ref_node (%s:%u) %p<%s> refcnt %d\n",
1859		__func__, __LINE__,
1860		ni, ether_sprintf(ni->ni_macaddr),
1861		ieee80211_node_refcnt(ni)+1);
1862	ieee80211_ref_node(ni);
1863
1864	memset(&params, 0, sizeof(params));
1865	switch (type) {
1866
1867	case IEEE80211_FC0_SUBTYPE_AUTH:
1868		status = arg >> 16;
1869		arg &= 0xffff;
1870		has_challenge = ((arg == IEEE80211_AUTH_SHARED_CHALLENGE ||
1871		    arg == IEEE80211_AUTH_SHARED_RESPONSE) &&
1872		    ni->ni_challenge != NULL);
1873
1874		/*
1875		 * Deduce whether we're doing open authentication or
1876		 * shared key authentication.  We do the latter if
1877		 * we're in the middle of a shared key authentication
1878		 * handshake or if we're initiating an authentication
1879		 * request and configured to use shared key.
1880		 */
1881		is_shared_key = has_challenge ||
1882		     arg >= IEEE80211_AUTH_SHARED_RESPONSE ||
1883		     (arg == IEEE80211_AUTH_SHARED_REQUEST &&
1884		      bss->ni_authmode == IEEE80211_AUTH_SHARED);
1885
1886		m = ieee80211_getmgtframe(&frm,
1887			  ic->ic_headroom + sizeof(struct ieee80211_frame),
1888			  3 * sizeof(uint16_t)
1889			+ (has_challenge && status == IEEE80211_STATUS_SUCCESS ?
1890				sizeof(uint16_t)+IEEE80211_CHALLENGE_LEN : 0)
1891		);
1892		if (m == NULL)
1893			senderr(ENOMEM, is_tx_nobuf);
1894
1895		((uint16_t *)frm)[0] =
1896		    (is_shared_key) ? htole16(IEEE80211_AUTH_ALG_SHARED)
1897		                    : htole16(IEEE80211_AUTH_ALG_OPEN);
1898		((uint16_t *)frm)[1] = htole16(arg);	/* sequence number */
1899		((uint16_t *)frm)[2] = htole16(status);/* status */
1900
1901		if (has_challenge && status == IEEE80211_STATUS_SUCCESS) {
1902			((uint16_t *)frm)[3] =
1903			    htole16((IEEE80211_CHALLENGE_LEN << 8) |
1904			    IEEE80211_ELEMID_CHALLENGE);
1905			memcpy(&((uint16_t *)frm)[4], ni->ni_challenge,
1906			    IEEE80211_CHALLENGE_LEN);
1907			m->m_pkthdr.len = m->m_len =
1908				4 * sizeof(uint16_t) + IEEE80211_CHALLENGE_LEN;
1909			if (arg == IEEE80211_AUTH_SHARED_RESPONSE) {
1910				IEEE80211_NOTE(vap, IEEE80211_MSG_AUTH, ni,
1911				    "request encrypt frame (%s)", __func__);
1912				/* mark frame for encryption */
1913				params.ibp_flags |= IEEE80211_BPF_CRYPTO;
1914			}
1915		} else
1916			m->m_pkthdr.len = m->m_len = 3 * sizeof(uint16_t);
1917
1918		/* XXX not right for shared key */
1919		if (status == IEEE80211_STATUS_SUCCESS)
1920			IEEE80211_NODE_STAT(ni, tx_auth);
1921		else
1922			IEEE80211_NODE_STAT(ni, tx_auth_fail);
1923
1924		if (vap->iv_opmode == IEEE80211_M_STA)
1925			ieee80211_add_callback(m, ieee80211_tx_mgt_cb,
1926				(void *) vap->iv_state);
1927		break;
1928
1929	case IEEE80211_FC0_SUBTYPE_DEAUTH:
1930		IEEE80211_NOTE(vap, IEEE80211_MSG_AUTH, ni,
1931		    "send station deauthenticate (reason %d)", arg);
1932		m = ieee80211_getmgtframe(&frm,
1933			ic->ic_headroom + sizeof(struct ieee80211_frame),
1934			sizeof(uint16_t));
1935		if (m == NULL)
1936			senderr(ENOMEM, is_tx_nobuf);
1937		*(uint16_t *)frm = htole16(arg);	/* reason */
1938		m->m_pkthdr.len = m->m_len = sizeof(uint16_t);
1939
1940		IEEE80211_NODE_STAT(ni, tx_deauth);
1941		IEEE80211_NODE_STAT_SET(ni, tx_deauth_code, arg);
1942
1943		ieee80211_node_unauthorize(ni);		/* port closed */
1944		break;
1945
1946	case IEEE80211_FC0_SUBTYPE_ASSOC_REQ:
1947	case IEEE80211_FC0_SUBTYPE_REASSOC_REQ:
1948		/*
1949		 * asreq frame format
1950		 *	[2] capability information
1951		 *	[2] listen interval
1952		 *	[6*] current AP address (reassoc only)
1953		 *	[tlv] ssid
1954		 *	[tlv] supported rates
1955		 *	[tlv] extended supported rates
1956		 *	[4] power capability (optional)
1957		 *	[28] supported channels (optional)
1958		 *	[tlv] HT capabilities
1959		 *	[tlv] WME (optional)
1960		 *	[tlv] Vendor OUI HT capabilities (optional)
1961		 *	[tlv] Atheros capabilities (if negotiated)
1962		 *	[tlv] AppIE's (optional)
1963		 */
1964		m = ieee80211_getmgtframe(&frm,
1965			 ic->ic_headroom + sizeof(struct ieee80211_frame),
1966			 sizeof(uint16_t)
1967		       + sizeof(uint16_t)
1968		       + IEEE80211_ADDR_LEN
1969		       + 2 + IEEE80211_NWID_LEN
1970		       + 2 + IEEE80211_RATE_SIZE
1971		       + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
1972		       + 4
1973		       + 2 + 26
1974		       + sizeof(struct ieee80211_wme_info)
1975		       + sizeof(struct ieee80211_ie_htcap)
1976		       + 4 + sizeof(struct ieee80211_ie_htcap)
1977		       + sizeof(struct ieee80211_ath_ie)
1978		       + (vap->iv_appie_wpa != NULL ?
1979				vap->iv_appie_wpa->ie_len : 0)
1980		       + (vap->iv_appie_assocreq != NULL ?
1981				vap->iv_appie_assocreq->ie_len : 0)
1982		);
1983		if (m == NULL)
1984			senderr(ENOMEM, is_tx_nobuf);
1985
1986		KASSERT(vap->iv_opmode == IEEE80211_M_STA,
1987		    ("wrong mode %u", vap->iv_opmode));
1988		capinfo = IEEE80211_CAPINFO_ESS;
1989		if (vap->iv_flags & IEEE80211_F_PRIVACY)
1990			capinfo |= IEEE80211_CAPINFO_PRIVACY;
1991		/*
1992		 * NB: Some 11a AP's reject the request when
1993		 *     short premable is set.
1994		 */
1995		if ((ic->ic_flags & IEEE80211_F_SHPREAMBLE) &&
1996		    IEEE80211_IS_CHAN_2GHZ(ic->ic_curchan))
1997			capinfo |= IEEE80211_CAPINFO_SHORT_PREAMBLE;
1998		if (IEEE80211_IS_CHAN_ANYG(ic->ic_curchan) &&
1999		    (ic->ic_caps & IEEE80211_C_SHSLOT))
2000			capinfo |= IEEE80211_CAPINFO_SHORT_SLOTTIME;
2001		if ((ni->ni_capinfo & IEEE80211_CAPINFO_SPECTRUM_MGMT) &&
2002		    (vap->iv_flags & IEEE80211_F_DOTH))
2003			capinfo |= IEEE80211_CAPINFO_SPECTRUM_MGMT;
2004		*(uint16_t *)frm = htole16(capinfo);
2005		frm += 2;
2006
2007		KASSERT(bss->ni_intval != 0, ("beacon interval is zero!"));
2008		*(uint16_t *)frm = htole16(howmany(ic->ic_lintval,
2009						    bss->ni_intval));
2010		frm += 2;
2011
2012		if (type == IEEE80211_FC0_SUBTYPE_REASSOC_REQ) {
2013			IEEE80211_ADDR_COPY(frm, bss->ni_bssid);
2014			frm += IEEE80211_ADDR_LEN;
2015		}
2016
2017		frm = ieee80211_add_ssid(frm, ni->ni_essid, ni->ni_esslen);
2018		frm = ieee80211_add_rates(frm, &ni->ni_rates);
2019		if (vap->iv_flags & IEEE80211_F_WPA2) {
2020			if (vap->iv_rsn_ie != NULL)
2021				frm = add_ie(frm, vap->iv_rsn_ie);
2022			/* XXX else complain? */
2023		}
2024		frm = ieee80211_add_xrates(frm, &ni->ni_rates);
2025		if (capinfo & IEEE80211_CAPINFO_SPECTRUM_MGMT) {
2026			frm = ieee80211_add_powercapability(frm,
2027			    ic->ic_curchan);
2028			frm = ieee80211_add_supportedchannels(frm, ic);
2029		}
2030		if ((vap->iv_flags_ext & IEEE80211_FEXT_HT) &&
2031		    ni->ni_ies.htcap_ie != NULL &&
2032		    ni->ni_ies.htcap_ie[0] == IEEE80211_ELEMID_HTCAP)
2033			frm = ieee80211_add_htcap(frm, ni);
2034		if (vap->iv_flags & IEEE80211_F_WPA1) {
2035			if (vap->iv_wpa_ie != NULL)
2036				frm = add_ie(frm, vap->iv_wpa_ie);
2037			/* XXX else complain */
2038		}
2039		if ((ic->ic_flags & IEEE80211_F_WME) &&
2040		    ni->ni_ies.wme_ie != NULL)
2041			frm = ieee80211_add_wme_info(frm, &ic->ic_wme);
2042		if ((vap->iv_flags_ext & IEEE80211_FEXT_HT) &&
2043		    ni->ni_ies.htcap_ie != NULL &&
2044		    ni->ni_ies.htcap_ie[0] == IEEE80211_ELEMID_VENDOR)
2045			frm = ieee80211_add_htcap_vendor(frm, ni);
2046		if (IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS))
2047			frm = ieee80211_add_ath(frm,
2048				IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS),
2049				(vap->iv_flags & IEEE80211_F_WPA) == 0 &&
2050				ni->ni_authmode != IEEE80211_AUTH_8021X &&
2051				vap->iv_def_txkey != IEEE80211_KEYIX_NONE ?
2052				vap->iv_def_txkey : 0x7fff);
2053		if (vap->iv_appie_assocreq != NULL)
2054			frm = add_appie(frm, vap->iv_appie_assocreq);
2055		m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2056
2057		ieee80211_add_callback(m, ieee80211_tx_mgt_cb,
2058			(void *) vap->iv_state);
2059		break;
2060
2061	case IEEE80211_FC0_SUBTYPE_ASSOC_RESP:
2062	case IEEE80211_FC0_SUBTYPE_REASSOC_RESP:
2063		/*
2064		 * asresp frame format
2065		 *	[2] capability information
2066		 *	[2] status
2067		 *	[2] association ID
2068		 *	[tlv] supported rates
2069		 *	[tlv] extended supported rates
2070		 *	[tlv] HT capabilities (standard, if STA enabled)
2071		 *	[tlv] HT information (standard, if STA enabled)
2072		 *	[tlv] WME (if configured and STA enabled)
2073		 *	[tlv] HT capabilities (vendor OUI, if STA enabled)
2074		 *	[tlv] HT information (vendor OUI, if STA enabled)
2075		 *	[tlv] Atheros capabilities (if STA enabled)
2076		 *	[tlv] AppIE's (optional)
2077		 */
2078		m = ieee80211_getmgtframe(&frm,
2079			 ic->ic_headroom + sizeof(struct ieee80211_frame),
2080			 sizeof(uint16_t)
2081		       + sizeof(uint16_t)
2082		       + sizeof(uint16_t)
2083		       + 2 + IEEE80211_RATE_SIZE
2084		       + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2085		       + sizeof(struct ieee80211_ie_htcap) + 4
2086		       + sizeof(struct ieee80211_ie_htinfo) + 4
2087		       + sizeof(struct ieee80211_wme_param)
2088		       + sizeof(struct ieee80211_ath_ie)
2089		       + (vap->iv_appie_assocresp != NULL ?
2090				vap->iv_appie_assocresp->ie_len : 0)
2091		);
2092		if (m == NULL)
2093			senderr(ENOMEM, is_tx_nobuf);
2094
2095		capinfo = getcapinfo(vap, bss->ni_chan);
2096		*(uint16_t *)frm = htole16(capinfo);
2097		frm += 2;
2098
2099		*(uint16_t *)frm = htole16(arg);	/* status */
2100		frm += 2;
2101
2102		if (arg == IEEE80211_STATUS_SUCCESS) {
2103			*(uint16_t *)frm = htole16(ni->ni_associd);
2104			IEEE80211_NODE_STAT(ni, tx_assoc);
2105		} else
2106			IEEE80211_NODE_STAT(ni, tx_assoc_fail);
2107		frm += 2;
2108
2109		frm = ieee80211_add_rates(frm, &ni->ni_rates);
2110		frm = ieee80211_add_xrates(frm, &ni->ni_rates);
2111		/* NB: respond according to what we received */
2112		if ((ni->ni_flags & HTFLAGS) == IEEE80211_NODE_HT) {
2113			frm = ieee80211_add_htcap(frm, ni);
2114			frm = ieee80211_add_htinfo(frm, ni);
2115		}
2116		if ((vap->iv_flags & IEEE80211_F_WME) &&
2117		    ni->ni_ies.wme_ie != NULL)
2118			frm = ieee80211_add_wme_param(frm, &ic->ic_wme);
2119		if ((ni->ni_flags & HTFLAGS) == HTFLAGS) {
2120			frm = ieee80211_add_htcap_vendor(frm, ni);
2121			frm = ieee80211_add_htinfo_vendor(frm, ni);
2122		}
2123		if (IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS))
2124			frm = ieee80211_add_ath(frm,
2125				IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS),
2126				ni->ni_ath_defkeyix);
2127		if (vap->iv_appie_assocresp != NULL)
2128			frm = add_appie(frm, vap->iv_appie_assocresp);
2129		m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2130		break;
2131
2132	case IEEE80211_FC0_SUBTYPE_DISASSOC:
2133		IEEE80211_NOTE(vap, IEEE80211_MSG_ASSOC, ni,
2134		    "send station disassociate (reason %d)", arg);
2135		m = ieee80211_getmgtframe(&frm,
2136			ic->ic_headroom + sizeof(struct ieee80211_frame),
2137			sizeof(uint16_t));
2138		if (m == NULL)
2139			senderr(ENOMEM, is_tx_nobuf);
2140		*(uint16_t *)frm = htole16(arg);	/* reason */
2141		m->m_pkthdr.len = m->m_len = sizeof(uint16_t);
2142
2143		IEEE80211_NODE_STAT(ni, tx_disassoc);
2144		IEEE80211_NODE_STAT_SET(ni, tx_disassoc_code, arg);
2145		break;
2146
2147	default:
2148		IEEE80211_NOTE(vap, IEEE80211_MSG_ANY, ni,
2149		    "invalid mgmt frame type %u", type);
2150		senderr(EINVAL, is_tx_unknownmgt);
2151		/* NOTREACHED */
2152	}
2153
2154	/* NB: force non-ProbeResp frames to the highest queue */
2155	params.ibp_pri = WME_AC_VO;
2156	params.ibp_rate0 = bss->ni_txparms->mgmtrate;
2157	/* NB: we know all frames are unicast */
2158	params.ibp_try0 = bss->ni_txparms->maxretry;
2159	params.ibp_power = bss->ni_txpower;
2160	return ieee80211_mgmt_output(ni, m, type, &params);
2161bad:
2162	ieee80211_free_node(ni);
2163	return ret;
2164#undef senderr
2165#undef HTFLAGS
2166}
2167
2168/*
2169 * Return an mbuf with a probe response frame in it.
2170 * Space is left to prepend and 802.11 header at the
2171 * front but it's left to the caller to fill in.
2172 */
2173struct mbuf *
2174ieee80211_alloc_proberesp(struct ieee80211_node *bss, int legacy)
2175{
2176	struct ieee80211vap *vap = bss->ni_vap;
2177	struct ieee80211com *ic = bss->ni_ic;
2178	const struct ieee80211_rateset *rs;
2179	struct mbuf *m;
2180	uint16_t capinfo;
2181	uint8_t *frm;
2182
2183	/*
2184	 * probe response frame format
2185	 *	[8] time stamp
2186	 *	[2] beacon interval
2187	 *	[2] cabability information
2188	 *	[tlv] ssid
2189	 *	[tlv] supported rates
2190	 *	[tlv] parameter set (FH/DS)
2191	 *	[tlv] parameter set (IBSS)
2192	 *	[tlv] country (optional)
2193	 *	[3] power control (optional)
2194	 *	[5] channel switch announcement (CSA) (optional)
2195	 *	[tlv] extended rate phy (ERP)
2196	 *	[tlv] extended supported rates
2197	 *	[tlv] RSN (optional)
2198	 *	[tlv] HT capabilities
2199	 *	[tlv] HT information
2200	 *	[tlv] WPA (optional)
2201	 *	[tlv] WME (optional)
2202	 *	[tlv] Vendor OUI HT capabilities (optional)
2203	 *	[tlv] Vendor OUI HT information (optional)
2204	 *	[tlv] Atheros capabilities
2205	 *	[tlv] AppIE's (optional)
2206	 */
2207	m = ieee80211_getmgtframe(&frm,
2208		 ic->ic_headroom + sizeof(struct ieee80211_frame),
2209		 8
2210	       + sizeof(uint16_t)
2211	       + sizeof(uint16_t)
2212	       + 2 + IEEE80211_NWID_LEN
2213	       + 2 + IEEE80211_RATE_SIZE
2214	       + 7	/* max(7,3) */
2215	       + IEEE80211_COUNTRY_MAX_SIZE
2216	       + 3
2217	       + sizeof(struct ieee80211_csa_ie)
2218	       + 3
2219	       + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2220	       + sizeof(struct ieee80211_ie_wpa)
2221	       + sizeof(struct ieee80211_ie_htcap)
2222	       + sizeof(struct ieee80211_ie_htinfo)
2223	       + sizeof(struct ieee80211_ie_wpa)
2224	       + sizeof(struct ieee80211_wme_param)
2225	       + 4 + sizeof(struct ieee80211_ie_htcap)
2226	       + 4 + sizeof(struct ieee80211_ie_htinfo)
2227	       + sizeof(struct ieee80211_ath_ie)
2228	       + (vap->iv_appie_proberesp != NULL ?
2229			vap->iv_appie_proberesp->ie_len : 0)
2230	);
2231	if (m == NULL) {
2232		vap->iv_stats.is_tx_nobuf++;
2233		return NULL;
2234	}
2235
2236	memset(frm, 0, 8);	/* timestamp should be filled later */
2237	frm += 8;
2238	*(uint16_t *)frm = htole16(bss->ni_intval);
2239	frm += 2;
2240	capinfo = getcapinfo(vap, bss->ni_chan);
2241	*(uint16_t *)frm = htole16(capinfo);
2242	frm += 2;
2243
2244	frm = ieee80211_add_ssid(frm, bss->ni_essid, bss->ni_esslen);
2245	rs = ieee80211_get_suprates(ic, bss->ni_chan);
2246	frm = ieee80211_add_rates(frm, rs);
2247
2248	if (IEEE80211_IS_CHAN_FHSS(bss->ni_chan)) {
2249		*frm++ = IEEE80211_ELEMID_FHPARMS;
2250		*frm++ = 5;
2251		*frm++ = bss->ni_fhdwell & 0x00ff;
2252		*frm++ = (bss->ni_fhdwell >> 8) & 0x00ff;
2253		*frm++ = IEEE80211_FH_CHANSET(
2254		    ieee80211_chan2ieee(ic, bss->ni_chan));
2255		*frm++ = IEEE80211_FH_CHANPAT(
2256		    ieee80211_chan2ieee(ic, bss->ni_chan));
2257		*frm++ = bss->ni_fhindex;
2258	} else {
2259		*frm++ = IEEE80211_ELEMID_DSPARMS;
2260		*frm++ = 1;
2261		*frm++ = ieee80211_chan2ieee(ic, bss->ni_chan);
2262	}
2263
2264	if (vap->iv_opmode == IEEE80211_M_IBSS) {
2265		*frm++ = IEEE80211_ELEMID_IBSSPARMS;
2266		*frm++ = 2;
2267		*frm++ = 0; *frm++ = 0;		/* TODO: ATIM window */
2268	}
2269	if ((vap->iv_flags & IEEE80211_F_DOTH) ||
2270	    (vap->iv_flags_ext & IEEE80211_FEXT_DOTD))
2271		frm = ieee80211_add_countryie(frm, ic);
2272	if (vap->iv_flags & IEEE80211_F_DOTH) {
2273		if (IEEE80211_IS_CHAN_5GHZ(bss->ni_chan))
2274			frm = ieee80211_add_powerconstraint(frm, vap);
2275		if (ic->ic_flags & IEEE80211_F_CSAPENDING)
2276			frm = ieee80211_add_csa(frm, vap);
2277	}
2278	if (IEEE80211_IS_CHAN_ANYG(bss->ni_chan))
2279		frm = ieee80211_add_erp(frm, ic);
2280	frm = ieee80211_add_xrates(frm, rs);
2281	if (vap->iv_flags & IEEE80211_F_WPA2) {
2282		if (vap->iv_rsn_ie != NULL)
2283			frm = add_ie(frm, vap->iv_rsn_ie);
2284		/* XXX else complain? */
2285	}
2286	/*
2287	 * NB: legacy 11b clients do not get certain ie's.
2288	 *     The caller identifies such clients by passing
2289	 *     a token in legacy to us.  Could expand this to be
2290	 *     any legacy client for stuff like HT ie's.
2291	 */
2292	if (IEEE80211_IS_CHAN_HT(bss->ni_chan) &&
2293	    legacy != IEEE80211_SEND_LEGACY_11B) {
2294		frm = ieee80211_add_htcap(frm, bss);
2295		frm = ieee80211_add_htinfo(frm, bss);
2296	}
2297	if (vap->iv_flags & IEEE80211_F_WPA1) {
2298		if (vap->iv_wpa_ie != NULL)
2299			frm = add_ie(frm, vap->iv_wpa_ie);
2300		/* XXX else complain? */
2301	}
2302	if (vap->iv_flags & IEEE80211_F_WME)
2303		frm = ieee80211_add_wme_param(frm, &ic->ic_wme);
2304	if (IEEE80211_IS_CHAN_HT(bss->ni_chan) &&
2305	    (vap->iv_flags_ext & IEEE80211_FEXT_HTCOMPAT) &&
2306	    legacy != IEEE80211_SEND_LEGACY_11B) {
2307		frm = ieee80211_add_htcap_vendor(frm, bss);
2308		frm = ieee80211_add_htinfo_vendor(frm, bss);
2309	}
2310	if (bss->ni_ies.ath_ie != NULL && legacy != IEEE80211_SEND_LEGACY_11B)
2311		frm = ieee80211_add_ath(frm, bss->ni_ath_flags,
2312			bss->ni_ath_defkeyix);
2313	if (vap->iv_appie_proberesp != NULL)
2314		frm = add_appie(frm, vap->iv_appie_proberesp);
2315	m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2316
2317	return m;
2318}
2319
2320/*
2321 * Send a probe response frame to the specified mac address.
2322 * This does not go through the normal mgt frame api so we
2323 * can specify the destination address and re-use the bss node
2324 * for the sta reference.
2325 */
2326int
2327ieee80211_send_proberesp(struct ieee80211vap *vap,
2328	const uint8_t da[IEEE80211_ADDR_LEN], int legacy)
2329{
2330	struct ieee80211_node *bss = vap->iv_bss;
2331	struct ieee80211com *ic = vap->iv_ic;
2332	struct ieee80211_frame *wh;
2333	struct mbuf *m;
2334
2335	if (vap->iv_state == IEEE80211_S_CAC) {
2336		IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT, bss,
2337		    "block %s frame in CAC state", "probe response");
2338		vap->iv_stats.is_tx_badstate++;
2339		return EIO;		/* XXX */
2340	}
2341
2342	/*
2343	 * Hold a reference on the node so it doesn't go away until after
2344	 * the xmit is complete all the way in the driver.  On error we
2345	 * will remove our reference.
2346	 */
2347	IEEE80211_DPRINTF(vap, IEEE80211_MSG_NODE,
2348	    "ieee80211_ref_node (%s:%u) %p<%s> refcnt %d\n",
2349	    __func__, __LINE__, bss, ether_sprintf(bss->ni_macaddr),
2350	    ieee80211_node_refcnt(bss)+1);
2351	ieee80211_ref_node(bss);
2352
2353	m = ieee80211_alloc_proberesp(bss, legacy);
2354	if (m == NULL) {
2355		ieee80211_free_node(bss);
2356		return ENOMEM;
2357	}
2358
2359	M_PREPEND(m, sizeof(struct ieee80211_frame), M_DONTWAIT);
2360	KASSERT(m != NULL, ("no room for header"));
2361
2362	wh = mtod(m, struct ieee80211_frame *);
2363	ieee80211_send_setup(bss, wh,
2364	     IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_RESP,
2365	     IEEE80211_NONQOS_TID, vap->iv_myaddr, da, bss->ni_bssid);
2366	/* XXX power management? */
2367	m->m_flags |= M_ENCAP;		/* mark encapsulated */
2368
2369	M_WME_SETAC(m, WME_AC_BE);
2370
2371	IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG | IEEE80211_MSG_DUMPPKTS,
2372	    "send probe resp on channel %u to %s%s\n",
2373	    ieee80211_chan2ieee(ic, ic->ic_curchan), ether_sprintf(da),
2374	    legacy ? " <legacy>" : "");
2375	IEEE80211_NODE_STAT(bss, tx_mgmt);
2376
2377	return ic->ic_raw_xmit(bss, m, NULL);
2378}
2379
2380/*
2381 * Allocate and build a RTS (Request To Send) control frame.
2382 */
2383struct mbuf *
2384ieee80211_alloc_rts(struct ieee80211com *ic,
2385	const uint8_t ra[IEEE80211_ADDR_LEN],
2386	const uint8_t ta[IEEE80211_ADDR_LEN],
2387	uint16_t dur)
2388{
2389	struct ieee80211_frame_rts *rts;
2390	struct mbuf *m;
2391
2392	/* XXX honor ic_headroom */
2393	m = m_gethdr(M_DONTWAIT, MT_DATA);
2394	if (m != NULL) {
2395		rts = mtod(m, struct ieee80211_frame_rts *);
2396		rts->i_fc[0] = IEEE80211_FC0_VERSION_0 |
2397			IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_RTS;
2398		rts->i_fc[1] = IEEE80211_FC1_DIR_NODS;
2399		*(u_int16_t *)rts->i_dur = htole16(dur);
2400		IEEE80211_ADDR_COPY(rts->i_ra, ra);
2401		IEEE80211_ADDR_COPY(rts->i_ta, ta);
2402
2403		m->m_pkthdr.len = m->m_len = sizeof(struct ieee80211_frame_rts);
2404	}
2405	return m;
2406}
2407
2408/*
2409 * Allocate and build a CTS (Clear To Send) control frame.
2410 */
2411struct mbuf *
2412ieee80211_alloc_cts(struct ieee80211com *ic,
2413	const uint8_t ra[IEEE80211_ADDR_LEN], uint16_t dur)
2414{
2415	struct ieee80211_frame_cts *cts;
2416	struct mbuf *m;
2417
2418	/* XXX honor ic_headroom */
2419	m = m_gethdr(M_DONTWAIT, MT_DATA);
2420	if (m != NULL) {
2421		cts = mtod(m, struct ieee80211_frame_cts *);
2422		cts->i_fc[0] = IEEE80211_FC0_VERSION_0 |
2423			IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_CTS;
2424		cts->i_fc[1] = IEEE80211_FC1_DIR_NODS;
2425		*(u_int16_t *)cts->i_dur = htole16(dur);
2426		IEEE80211_ADDR_COPY(cts->i_ra, ra);
2427
2428		m->m_pkthdr.len = m->m_len = sizeof(struct ieee80211_frame_cts);
2429	}
2430	return m;
2431}
2432
2433static void
2434ieee80211_tx_mgt_timeout(void *arg)
2435{
2436	struct ieee80211_node *ni = arg;
2437	struct ieee80211vap *vap = ni->ni_vap;
2438
2439	if (vap->iv_state != IEEE80211_S_INIT &&
2440	    (vap->iv_ic->ic_flags & IEEE80211_F_SCAN) == 0) {
2441		/*
2442		 * NB: it's safe to specify a timeout as the reason here;
2443		 *     it'll only be used in the right state.
2444		 */
2445		ieee80211_new_state(vap, IEEE80211_S_SCAN,
2446			IEEE80211_SCAN_FAIL_TIMEOUT);
2447	}
2448}
2449
2450static void
2451ieee80211_tx_mgt_cb(struct ieee80211_node *ni, void *arg, int status)
2452{
2453	struct ieee80211vap *vap = ni->ni_vap;
2454	enum ieee80211_state ostate = (enum ieee80211_state) arg;
2455
2456	/*
2457	 * Frame transmit completed; arrange timer callback.  If
2458	 * transmit was successfuly we wait for response.  Otherwise
2459	 * we arrange an immediate callback instead of doing the
2460	 * callback directly since we don't know what state the driver
2461	 * is in (e.g. what locks it is holding).  This work should
2462	 * not be too time-critical and not happen too often so the
2463	 * added overhead is acceptable.
2464	 *
2465	 * XXX what happens if !acked but response shows up before callback?
2466	 */
2467	if (vap->iv_state == ostate)
2468		callout_reset(&vap->iv_mgtsend,
2469			status == 0 ? IEEE80211_TRANS_WAIT*hz : 0,
2470			ieee80211_tx_mgt_timeout, ni);
2471}
2472
2473static void
2474ieee80211_beacon_construct(struct mbuf *m, uint8_t *frm,
2475	struct ieee80211_beacon_offsets *bo, struct ieee80211_node *ni)
2476{
2477	struct ieee80211vap *vap = ni->ni_vap;
2478	struct ieee80211com *ic = ni->ni_ic;
2479	struct ieee80211_rateset *rs = &ni->ni_rates;
2480	uint16_t capinfo;
2481
2482	/*
2483	 * beacon frame format
2484	 *	[8] time stamp
2485	 *	[2] beacon interval
2486	 *	[2] cabability information
2487	 *	[tlv] ssid
2488	 *	[tlv] supported rates
2489	 *	[3] parameter set (DS)
2490	 *	[8] CF parameter set (optional)
2491	 *	[tlv] parameter set (IBSS/TIM)
2492	 *	[tlv] country (optional)
2493	 *	[3] power control (optional)
2494	 *	[5] channel switch announcement (CSA) (optional)
2495	 *	[tlv] extended rate phy (ERP)
2496	 *	[tlv] extended supported rates
2497	 *	[tlv] RSN parameters
2498	 *	[tlv] HT capabilities
2499	 *	[tlv] HT information
2500	 * XXX Vendor-specific OIDs (e.g. Atheros)
2501	 *	[tlv] WPA parameters
2502	 *	[tlv] WME parameters
2503	 *	[tlv] Vendor OUI HT capabilities (optional)
2504	 *	[tlv] Vendor OUI HT information (optional)
2505	 *	[tlv] application data (optional)
2506	 */
2507
2508	memset(bo, 0, sizeof(*bo));
2509
2510	memset(frm, 0, 8);	/* XXX timestamp is set by hardware/driver */
2511	frm += 8;
2512	*(uint16_t *)frm = htole16(ni->ni_intval);
2513	frm += 2;
2514	capinfo = getcapinfo(vap, ni->ni_chan);
2515	bo->bo_caps = (uint16_t *)frm;
2516	*(uint16_t *)frm = htole16(capinfo);
2517	frm += 2;
2518	*frm++ = IEEE80211_ELEMID_SSID;
2519	if ((vap->iv_flags & IEEE80211_F_HIDESSID) == 0) {
2520		*frm++ = ni->ni_esslen;
2521		memcpy(frm, ni->ni_essid, ni->ni_esslen);
2522		frm += ni->ni_esslen;
2523	} else
2524		*frm++ = 0;
2525	frm = ieee80211_add_rates(frm, rs);
2526	if (!IEEE80211_IS_CHAN_FHSS(ni->ni_chan)) {
2527		*frm++ = IEEE80211_ELEMID_DSPARMS;
2528		*frm++ = 1;
2529		*frm++ = ieee80211_chan2ieee(ic, ni->ni_chan);
2530	}
2531	if (ic->ic_flags & IEEE80211_F_PCF) {
2532		bo->bo_cfp = frm;
2533		frm = ieee80211_add_cfparms(frm, ic);
2534	}
2535	bo->bo_tim = frm;
2536	if (vap->iv_opmode == IEEE80211_M_IBSS) {
2537		*frm++ = IEEE80211_ELEMID_IBSSPARMS;
2538		*frm++ = 2;
2539		*frm++ = 0; *frm++ = 0;		/* TODO: ATIM window */
2540		bo->bo_tim_len = 0;
2541	} else if (vap->iv_opmode == IEEE80211_M_HOSTAP) {
2542		struct ieee80211_tim_ie *tie = (struct ieee80211_tim_ie *) frm;
2543
2544		tie->tim_ie = IEEE80211_ELEMID_TIM;
2545		tie->tim_len = 4;	/* length */
2546		tie->tim_count = 0;	/* DTIM count */
2547		tie->tim_period = vap->iv_dtim_period;	/* DTIM period */
2548		tie->tim_bitctl = 0;	/* bitmap control */
2549		tie->tim_bitmap[0] = 0;	/* Partial Virtual Bitmap */
2550		frm += sizeof(struct ieee80211_tim_ie);
2551		bo->bo_tim_len = 1;
2552	}
2553	bo->bo_tim_trailer = frm;
2554	if ((vap->iv_flags & IEEE80211_F_DOTH) ||
2555	    (vap->iv_flags_ext & IEEE80211_FEXT_DOTD))
2556		frm = ieee80211_add_countryie(frm, ic);
2557	if (vap->iv_flags & IEEE80211_F_DOTH) {
2558		if (IEEE80211_IS_CHAN_5GHZ(ni->ni_chan))
2559			frm = ieee80211_add_powerconstraint(frm, vap);
2560		bo->bo_csa = frm;
2561		if (ic->ic_flags & IEEE80211_F_CSAPENDING)
2562			frm = ieee80211_add_csa(frm, vap);
2563	} else
2564		bo->bo_csa = frm;
2565	if (IEEE80211_IS_CHAN_ANYG(ni->ni_chan)) {
2566		bo->bo_erp = frm;
2567		frm = ieee80211_add_erp(frm, ic);
2568	}
2569	frm = ieee80211_add_xrates(frm, rs);
2570	if (vap->iv_flags & IEEE80211_F_WPA2) {
2571		if (vap->iv_rsn_ie != NULL)
2572			frm = add_ie(frm, vap->iv_rsn_ie);
2573		/* XXX else complain */
2574	}
2575	if (IEEE80211_IS_CHAN_HT(ni->ni_chan)) {
2576		frm = ieee80211_add_htcap(frm, ni);
2577		bo->bo_htinfo = frm;
2578		frm = ieee80211_add_htinfo(frm, ni);
2579	}
2580	if (vap->iv_flags & IEEE80211_F_WPA1) {
2581		if (vap->iv_wpa_ie != NULL)
2582			frm = add_ie(frm, vap->iv_wpa_ie);
2583		/* XXX else complain */
2584	}
2585	if (vap->iv_flags & IEEE80211_F_WME) {
2586		bo->bo_wme = frm;
2587		frm = ieee80211_add_wme_param(frm, &ic->ic_wme);
2588	}
2589	if (IEEE80211_IS_CHAN_HT(ni->ni_chan) &&
2590	    (vap->iv_flags_ext & IEEE80211_FEXT_HTCOMPAT)) {
2591		frm = ieee80211_add_htcap_vendor(frm, ni);
2592		frm = ieee80211_add_htinfo_vendor(frm, ni);
2593	}
2594	if (vap->iv_appie_beacon != NULL) {
2595		bo->bo_appie = frm;
2596		bo->bo_appie_len = vap->iv_appie_beacon->ie_len;
2597		frm = add_appie(frm, vap->iv_appie_beacon);
2598	}
2599	bo->bo_tim_trailer_len = frm - bo->bo_tim_trailer;
2600	bo->bo_csa_trailer_len = frm - bo->bo_csa;
2601	m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2602}
2603
2604/*
2605 * Allocate a beacon frame and fillin the appropriate bits.
2606 */
2607struct mbuf *
2608ieee80211_beacon_alloc(struct ieee80211_node *ni,
2609	struct ieee80211_beacon_offsets *bo)
2610{
2611	struct ieee80211vap *vap = ni->ni_vap;
2612	struct ieee80211com *ic = ni->ni_ic;
2613	struct ifnet *ifp = vap->iv_ifp;
2614	struct ieee80211_frame *wh;
2615	struct mbuf *m;
2616	int pktlen;
2617	uint8_t *frm;
2618
2619	/*
2620	 * beacon frame format
2621	 *	[8] time stamp
2622	 *	[2] beacon interval
2623	 *	[2] cabability information
2624	 *	[tlv] ssid
2625	 *	[tlv] supported rates
2626	 *	[3] parameter set (DS)
2627	 *	[8] CF parameter set (optional)
2628	 *	[tlv] parameter set (IBSS/TIM)
2629	 *	[tlv] country (optional)
2630	 *	[3] power control (optional)
2631	 *	[5] channel switch announcement (CSA) (optional)
2632	 *	[tlv] extended rate phy (ERP)
2633	 *	[tlv] extended supported rates
2634	 *	[tlv] RSN parameters
2635	 *	[tlv] HT capabilities
2636	 *	[tlv] HT information
2637	 *	[tlv] Vendor OUI HT capabilities (optional)
2638	 *	[tlv] Vendor OUI HT information (optional)
2639	 * XXX Vendor-specific OIDs (e.g. Atheros)
2640	 *	[tlv] WPA parameters
2641	 *	[tlv] WME parameters
2642	 *	[tlv] application data (optional)
2643	 * NB: we allocate the max space required for the TIM bitmap.
2644	 * XXX how big is this?
2645	 */
2646	pktlen =   8					/* time stamp */
2647		 + sizeof(uint16_t)			/* beacon interval */
2648		 + sizeof(uint16_t)			/* capabilities */
2649		 + 2 + ni->ni_esslen			/* ssid */
2650	         + 2 + IEEE80211_RATE_SIZE		/* supported rates */
2651	         + 2 + 1				/* DS parameters */
2652		 + 2 + 6				/* CF parameters */
2653		 + 2 + 4 + vap->iv_tim_len		/* DTIM/IBSSPARMS */
2654		 + IEEE80211_COUNTRY_MAX_SIZE		/* country */
2655		 + 2 + 1				/* power control */
2656	         + sizeof(struct ieee80211_csa_ie)	/* CSA */
2657		 + 2 + 1				/* ERP */
2658	         + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2659		 + (vap->iv_caps & IEEE80211_C_WPA ?	/* WPA 1+2 */
2660			2*sizeof(struct ieee80211_ie_wpa) : 0)
2661		 /* XXX conditional? */
2662		 + 4+2*sizeof(struct ieee80211_ie_htcap)/* HT caps */
2663		 + 4+2*sizeof(struct ieee80211_ie_htinfo)/* HT info */
2664		 + (vap->iv_caps & IEEE80211_C_WME ?	/* WME */
2665			sizeof(struct ieee80211_wme_param) : 0)
2666		 + IEEE80211_MAX_APPIE
2667		 ;
2668	m = ieee80211_getmgtframe(&frm,
2669		ic->ic_headroom + sizeof(struct ieee80211_frame), pktlen);
2670	if (m == NULL) {
2671		IEEE80211_DPRINTF(vap, IEEE80211_MSG_ANY,
2672			"%s: cannot get buf; size %u\n", __func__, pktlen);
2673		vap->iv_stats.is_tx_nobuf++;
2674		return NULL;
2675	}
2676	ieee80211_beacon_construct(m, frm, bo, ni);
2677
2678	M_PREPEND(m, sizeof(struct ieee80211_frame), M_DONTWAIT);
2679	KASSERT(m != NULL, ("no space for 802.11 header?"));
2680	wh = mtod(m, struct ieee80211_frame *);
2681	wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_MGT |
2682	    IEEE80211_FC0_SUBTYPE_BEACON;
2683	wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
2684	*(uint16_t *)wh->i_dur = 0;
2685	IEEE80211_ADDR_COPY(wh->i_addr1, ifp->if_broadcastaddr);
2686	IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
2687	IEEE80211_ADDR_COPY(wh->i_addr3, ni->ni_bssid);
2688	*(uint16_t *)wh->i_seq = 0;
2689
2690	return m;
2691}
2692
2693/*
2694 * Update the dynamic parts of a beacon frame based on the current state.
2695 */
2696int
2697ieee80211_beacon_update(struct ieee80211_node *ni,
2698	struct ieee80211_beacon_offsets *bo, struct mbuf *m, int mcast)
2699{
2700	struct ieee80211vap *vap = ni->ni_vap;
2701	struct ieee80211com *ic = ni->ni_ic;
2702	int len_changed = 0;
2703	uint16_t capinfo;
2704
2705	IEEE80211_LOCK(ic);
2706	/*
2707	 * Handle 11h channel change when we've reached the count.
2708	 * We must recalculate the beacon frame contents to account
2709	 * for the new channel.  Note we do this only for the first
2710	 * vap that reaches this point; subsequent vaps just update
2711	 * their beacon state to reflect the recalculated channel.
2712	 */
2713	if (isset(bo->bo_flags, IEEE80211_BEACON_CSA) &&
2714	    vap->iv_csa_count == ic->ic_csa_count) {
2715		vap->iv_csa_count = 0;
2716		/*
2717		 * Effect channel change before reconstructing the beacon
2718		 * frame contents as many places reference ni_chan.
2719		 */
2720		if (ic->ic_csa_newchan != NULL)
2721			ieee80211_csa_completeswitch(ic);
2722		/*
2723		 * NB: ieee80211_beacon_construct clears all pending
2724		 * updates in bo_flags so we don't need to explicitly
2725		 * clear IEEE80211_BEACON_CSA.
2726		 */
2727		ieee80211_beacon_construct(m,
2728		    mtod(m, uint8_t*) + sizeof(struct ieee80211_frame), bo, ni);
2729
2730		/* XXX do WME aggressive mode processing? */
2731		IEEE80211_UNLOCK(ic);
2732		return 1;		/* just assume length changed */
2733	}
2734
2735	/* XXX faster to recalculate entirely or just changes? */
2736	capinfo = getcapinfo(vap, ni->ni_chan);
2737	*bo->bo_caps = htole16(capinfo);
2738
2739	if (vap->iv_flags & IEEE80211_F_WME) {
2740		struct ieee80211_wme_state *wme = &ic->ic_wme;
2741
2742		/*
2743		 * Check for agressive mode change.  When there is
2744		 * significant high priority traffic in the BSS
2745		 * throttle back BE traffic by using conservative
2746		 * parameters.  Otherwise BE uses agressive params
2747		 * to optimize performance of legacy/non-QoS traffic.
2748		 */
2749		if (wme->wme_flags & WME_F_AGGRMODE) {
2750			if (wme->wme_hipri_traffic >
2751			    wme->wme_hipri_switch_thresh) {
2752				IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME,
2753				    "%s: traffic %u, disable aggressive mode\n",
2754				    __func__, wme->wme_hipri_traffic);
2755				wme->wme_flags &= ~WME_F_AGGRMODE;
2756				ieee80211_wme_updateparams_locked(vap);
2757				wme->wme_hipri_traffic =
2758					wme->wme_hipri_switch_hysteresis;
2759			} else
2760				wme->wme_hipri_traffic = 0;
2761		} else {
2762			if (wme->wme_hipri_traffic <=
2763			    wme->wme_hipri_switch_thresh) {
2764				IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME,
2765				    "%s: traffic %u, enable aggressive mode\n",
2766				    __func__, wme->wme_hipri_traffic);
2767				wme->wme_flags |= WME_F_AGGRMODE;
2768				ieee80211_wme_updateparams_locked(vap);
2769				wme->wme_hipri_traffic = 0;
2770			} else
2771				wme->wme_hipri_traffic =
2772					wme->wme_hipri_switch_hysteresis;
2773		}
2774		if (isset(bo->bo_flags, IEEE80211_BEACON_WME)) {
2775			(void) ieee80211_add_wme_param(bo->bo_wme, wme);
2776			clrbit(bo->bo_flags, IEEE80211_BEACON_WME);
2777		}
2778	}
2779
2780	if (isset(bo->bo_flags,  IEEE80211_BEACON_HTINFO)) {
2781		ieee80211_ht_update_beacon(vap, bo);
2782		clrbit(bo->bo_flags, IEEE80211_BEACON_HTINFO);
2783	}
2784
2785	if (vap->iv_opmode == IEEE80211_M_HOSTAP) {	/* NB: no IBSS support*/
2786		struct ieee80211_tim_ie *tie =
2787			(struct ieee80211_tim_ie *) bo->bo_tim;
2788		if (isset(bo->bo_flags, IEEE80211_BEACON_TIM)) {
2789			u_int timlen, timoff, i;
2790			/*
2791			 * ATIM/DTIM needs updating.  If it fits in the
2792			 * current space allocated then just copy in the
2793			 * new bits.  Otherwise we need to move any trailing
2794			 * data to make room.  Note that we know there is
2795			 * contiguous space because ieee80211_beacon_allocate
2796			 * insures there is space in the mbuf to write a
2797			 * maximal-size virtual bitmap (based on iv_max_aid).
2798			 */
2799			/*
2800			 * Calculate the bitmap size and offset, copy any
2801			 * trailer out of the way, and then copy in the
2802			 * new bitmap and update the information element.
2803			 * Note that the tim bitmap must contain at least
2804			 * one byte and any offset must be even.
2805			 */
2806			if (vap->iv_ps_pending != 0) {
2807				timoff = 128;		/* impossibly large */
2808				for (i = 0; i < vap->iv_tim_len; i++)
2809					if (vap->iv_tim_bitmap[i]) {
2810						timoff = i &~ 1;
2811						break;
2812					}
2813				KASSERT(timoff != 128, ("tim bitmap empty!"));
2814				for (i = vap->iv_tim_len-1; i >= timoff; i--)
2815					if (vap->iv_tim_bitmap[i])
2816						break;
2817				timlen = 1 + (i - timoff);
2818			} else {
2819				timoff = 0;
2820				timlen = 1;
2821			}
2822			if (timlen != bo->bo_tim_len) {
2823				/* copy up/down trailer */
2824				int adjust = tie->tim_bitmap+timlen
2825					   - bo->bo_tim_trailer;
2826				ovbcopy(bo->bo_tim_trailer,
2827				    bo->bo_tim_trailer+adjust,
2828				    bo->bo_tim_trailer_len);
2829				bo->bo_tim_trailer += adjust;
2830				bo->bo_erp += adjust;
2831				bo->bo_htinfo += adjust;
2832				bo->bo_appie += adjust;
2833				bo->bo_wme += adjust;
2834				bo->bo_csa += adjust;
2835				bo->bo_tim_len = timlen;
2836
2837				/* update information element */
2838				tie->tim_len = 3 + timlen;
2839				tie->tim_bitctl = timoff;
2840				len_changed = 1;
2841			}
2842			memcpy(tie->tim_bitmap, vap->iv_tim_bitmap + timoff,
2843				bo->bo_tim_len);
2844
2845			clrbit(bo->bo_flags, IEEE80211_BEACON_TIM);
2846
2847			IEEE80211_DPRINTF(vap, IEEE80211_MSG_POWER,
2848				"%s: TIM updated, pending %u, off %u, len %u\n",
2849				__func__, vap->iv_ps_pending, timoff, timlen);
2850		}
2851		/* count down DTIM period */
2852		if (tie->tim_count == 0)
2853			tie->tim_count = tie->tim_period - 1;
2854		else
2855			tie->tim_count--;
2856		/* update state for buffered multicast frames on DTIM */
2857		if (mcast && tie->tim_count == 0)
2858			tie->tim_bitctl |= 1;
2859		else
2860			tie->tim_bitctl &= ~1;
2861		if (isset(bo->bo_flags, IEEE80211_BEACON_CSA)) {
2862			struct ieee80211_csa_ie *csa =
2863			    (struct ieee80211_csa_ie *) bo->bo_csa;
2864
2865			/*
2866			 * Insert or update CSA ie.  If we're just starting
2867			 * to count down to the channel switch then we need
2868			 * to insert the CSA ie.  Otherwise we just need to
2869			 * drop the count.  The actual change happens above
2870			 * when the vap's count reaches the target count.
2871			 */
2872			if (vap->iv_csa_count == 0) {
2873				memmove(&csa[1], csa, bo->bo_csa_trailer_len);
2874				bo->bo_erp += sizeof(*csa);
2875				bo->bo_wme += sizeof(*csa);
2876				bo->bo_appie += sizeof(*csa);
2877				bo->bo_csa_trailer_len += sizeof(*csa);
2878				bo->bo_tim_trailer_len += sizeof(*csa);
2879				m->m_len += sizeof(*csa);
2880				m->m_pkthdr.len += sizeof(*csa);
2881
2882				ieee80211_add_csa(bo->bo_csa, vap);
2883			} else
2884				csa->csa_count--;
2885			vap->iv_csa_count++;
2886			/* NB: don't clear IEEE80211_BEACON_CSA */
2887		}
2888		if (isset(bo->bo_flags, IEEE80211_BEACON_ERP)) {
2889			/*
2890			 * ERP element needs updating.
2891			 */
2892			(void) ieee80211_add_erp(bo->bo_erp, ic);
2893			clrbit(bo->bo_flags, IEEE80211_BEACON_ERP);
2894		}
2895	}
2896	if (isset(bo->bo_flags, IEEE80211_BEACON_APPIE)) {
2897		const struct ieee80211_appie *aie = vap->iv_appie_beacon;
2898		int aielen;
2899		uint8_t *frm;
2900
2901		aielen = 0;
2902		if (aie != NULL)
2903			aielen += aie->ie_len;
2904		if (aielen != bo->bo_appie_len) {
2905			/* copy up/down trailer */
2906			int adjust = aielen - bo->bo_appie_len;
2907			ovbcopy(bo->bo_tim_trailer, bo->bo_tim_trailer+adjust,
2908				bo->bo_tim_trailer_len);
2909			bo->bo_tim_trailer += adjust;
2910			bo->bo_appie += adjust;
2911			bo->bo_appie_len = aielen;
2912
2913			len_changed = 1;
2914		}
2915		frm = bo->bo_appie;
2916		if (aie != NULL)
2917			frm  = add_appie(frm, aie);
2918		clrbit(bo->bo_flags, IEEE80211_BEACON_APPIE);
2919	}
2920	IEEE80211_UNLOCK(ic);
2921
2922	return len_changed;
2923}
2924