ieee80211_output.c revision 1.63.2.1 1 1.63.2.1 phil /*-
2 1.63.2.1 phil * SPDX-License-Identifier: BSD-2-Clause-FreeBSD
3 1.63.2.1 phil *
4 1.1 dyoung * Copyright (c) 2001 Atsushi Onoe
5 1.63.2.1 phil * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting
6 1.1 dyoung * All rights reserved.
7 1.1 dyoung *
8 1.1 dyoung * Redistribution and use in source and binary forms, with or without
9 1.1 dyoung * modification, are permitted provided that the following conditions
10 1.1 dyoung * are met:
11 1.1 dyoung * 1. Redistributions of source code must retain the above copyright
12 1.1 dyoung * notice, this list of conditions and the following disclaimer.
13 1.1 dyoung * 2. Redistributions in binary form must reproduce the above copyright
14 1.1 dyoung * notice, this list of conditions and the following disclaimer in the
15 1.1 dyoung * documentation and/or other materials provided with the distribution.
16 1.1 dyoung *
17 1.1 dyoung * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR
18 1.1 dyoung * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES
19 1.1 dyoung * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED.
20 1.1 dyoung * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT,
21 1.1 dyoung * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT
22 1.1 dyoung * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE,
23 1.1 dyoung * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY
24 1.1 dyoung * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT
25 1.1 dyoung * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF
26 1.1 dyoung * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE.
27 1.1 dyoung */
28 1.1 dyoung
29 1.1 dyoung #include <sys/cdefs.h>
30 1.63.2.1 phil __FBSDID("$FreeBSD$");
31 1.1 dyoung
32 1.1 dyoung #include "opt_inet.h"
33 1.63.2.1 phil #include "opt_inet6.h"
34 1.63.2.1 phil #include "opt_wlan.h"
35 1.1 dyoung
36 1.1 dyoung #include <sys/param.h>
37 1.29 dyoung #include <sys/systm.h>
38 1.1 dyoung #include <sys/kernel.h>
39 1.63.2.1 phil #include <sys/malloc.h>
40 1.63.2.1 phil #include <sys/mbuf.h>
41 1.1 dyoung #include <sys/endian.h>
42 1.1 dyoung
43 1.63.2.1 phil #include <sys/socket.h>
44 1.63.2.1 phil
45 1.63.2.1 phil #include <net/bpf.h>
46 1.63.2.1 phil #include <net/ethernet.h>
47 1.1 dyoung #include <net/if.h>
48 1.63.2.1 phil #include <net/if_var.h>
49 1.29 dyoung #include <net/if_llc.h>
50 1.1 dyoung #include <net/if_media.h>
51 1.63.2.1 phil #include <net/if_vlan_var.h>
52 1.1 dyoung
53 1.5 dyoung #include <net80211/ieee80211_var.h>
54 1.63.2.1 phil #include <net80211/ieee80211_regdomain.h>
55 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
56 1.63.2.1 phil #include <net80211/ieee80211_superg.h>
57 1.63.2.1 phil #endif
58 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_TDMA
59 1.63.2.1 phil #include <net80211/ieee80211_tdma.h>
60 1.63.2.1 phil #endif
61 1.63.2.1 phil #include <net80211/ieee80211_wds.h>
62 1.63.2.1 phil #include <net80211/ieee80211_mesh.h>
63 1.63.2.1 phil #include <net80211/ieee80211_vht.h>
64 1.1 dyoung
65 1.63.2.1 phil #if defined(INET) || defined(INET6)
66 1.63.2.1 phil #include <netinet/in.h>
67 1.63.2.1 phil #endif
68 1.1 dyoung
69 1.1 dyoung #ifdef INET
70 1.63.2.1 phil #include <netinet/if_ether.h>
71 1.29 dyoung #include <netinet/in_systm.h>
72 1.29 dyoung #include <netinet/ip.h>
73 1.63.2.1 phil #endif
74 1.63.2.1 phil #ifdef INET6
75 1.63.2.1 phil #include <netinet/ip6.h>
76 1.5 dyoung #endif
77 1.1 dyoung
78 1.63.2.1 phil #include <security/mac/mac_framework.h>
79 1.63.2.1 phil
80 1.63.2.1 phil #define ETHER_HEADER_COPY(dst, src) \
81 1.63.2.1 phil memcpy(dst, src, sizeof(struct ether_header))
82 1.63.2.1 phil
83 1.63.2.1 phil static int ieee80211_fragment(struct ieee80211vap *, struct mbuf *,
84 1.46 dyoung u_int hdrsize, u_int ciphdrsize, u_int mtu);
85 1.63.2.1 phil static void ieee80211_tx_mgt_cb(struct ieee80211_node *, void *, int);
86 1.46 dyoung
87 1.15 mycroft #ifdef IEEE80211_DEBUG
88 1.15 mycroft /*
89 1.15 mycroft * Decide if an outbound management frame should be
90 1.15 mycroft * printed when debugging is enabled. This filters some
91 1.15 mycroft * of the less interesting frames that come frequently
92 1.15 mycroft * (e.g. beacons).
93 1.15 mycroft */
94 1.15 mycroft static __inline int
95 1.63.2.1 phil doprint(struct ieee80211vap *vap, int subtype)
96 1.15 mycroft {
97 1.15 mycroft switch (subtype) {
98 1.15 mycroft case IEEE80211_FC0_SUBTYPE_PROBE_RESP:
99 1.63.2.1 phil return (vap->iv_opmode == IEEE80211_M_IBSS);
100 1.15 mycroft }
101 1.15 mycroft return 1;
102 1.15 mycroft }
103 1.15 mycroft #endif
104 1.15 mycroft
105 1.1 dyoung /*
106 1.63.2.1 phil * Transmit a frame to the given destination on the given VAP.
107 1.63.2.1 phil *
108 1.63.2.1 phil * It's up to the caller to figure out the details of who this
109 1.63.2.1 phil * is going to and resolving the node.
110 1.63.2.1 phil *
111 1.63.2.1 phil * This routine takes care of queuing it for power save,
112 1.63.2.1 phil * A-MPDU state stuff, fast-frames state stuff, encapsulation
113 1.63.2.1 phil * if required, then passing it up to the driver layer.
114 1.63.2.1 phil *
115 1.63.2.1 phil * This routine (for now) consumes the mbuf and frees the node
116 1.63.2.1 phil * reference; it ideally will return a TX status which reflects
117 1.63.2.1 phil * whether the mbuf was consumed or not, so the caller can
118 1.63.2.1 phil * free the mbuf (if appropriate) and the node reference (again,
119 1.63.2.1 phil * if appropriate.)
120 1.63.2.1 phil */
121 1.63.2.1 phil int
122 1.63.2.1 phil ieee80211_vap_pkt_send_dest(struct ieee80211vap *vap, struct mbuf *m,
123 1.63.2.1 phil struct ieee80211_node *ni)
124 1.63.2.1 phil {
125 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
126 1.63.2.1 phil struct ifnet *ifp = vap->iv_ifp;
127 1.63.2.1 phil int mcast;
128 1.63.2.1 phil
129 1.63.2.1 phil if ((ni->ni_flags & IEEE80211_NODE_PWR_MGT) &&
130 1.63.2.1 phil (m->m_flags & M_PWR_SAV) == 0) {
131 1.63.2.1 phil /*
132 1.63.2.1 phil * Station in power save mode; pass the frame
133 1.63.2.1 phil * to the 802.11 layer and continue. We'll get
134 1.63.2.1 phil * the frame back when the time is right.
135 1.63.2.1 phil * XXX lose WDS vap linkage?
136 1.63.2.1 phil */
137 1.63.2.1 phil if (ieee80211_pwrsave(ni, m) != 0)
138 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
139 1.63.2.1 phil ieee80211_free_node(ni);
140 1.63.2.1 phil
141 1.63.2.1 phil /*
142 1.63.2.1 phil * We queued it fine, so tell the upper layer
143 1.63.2.1 phil * that we consumed it.
144 1.63.2.1 phil */
145 1.63.2.1 phil return (0);
146 1.63.2.1 phil }
147 1.63.2.1 phil /* calculate priority so drivers can find the tx queue */
148 1.63.2.1 phil if (ieee80211_classify(ni, m)) {
149 1.63.2.1 phil IEEE80211_DISCARD_MAC(vap, IEEE80211_MSG_OUTPUT,
150 1.63.2.1 phil ni->ni_macaddr, NULL,
151 1.63.2.1 phil "%s", "classification failure");
152 1.63.2.1 phil vap->iv_stats.is_tx_classify++;
153 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
154 1.63.2.1 phil m_freem(m);
155 1.63.2.1 phil ieee80211_free_node(ni);
156 1.63.2.1 phil
157 1.63.2.1 phil /* XXX better status? */
158 1.63.2.1 phil return (0);
159 1.63.2.1 phil }
160 1.63.2.1 phil /*
161 1.63.2.1 phil * Stash the node pointer. Note that we do this after
162 1.63.2.1 phil * any call to ieee80211_dwds_mcast because that code
163 1.63.2.1 phil * uses any existing value for rcvif to identify the
164 1.63.2.1 phil * interface it (might have been) received on.
165 1.63.2.1 phil */
166 1.63.2.1 phil m->m_pkthdr.rcvif = (void *)ni;
167 1.63.2.1 phil mcast = (m->m_flags & (M_MCAST | M_BCAST)) ? 1: 0;
168 1.63.2.1 phil
169 1.63.2.1 phil BPF_MTAP(ifp, m); /* 802.3 tx */
170 1.63.2.1 phil
171 1.63.2.1 phil /*
172 1.63.2.1 phil * Check if A-MPDU tx aggregation is setup or if we
173 1.63.2.1 phil * should try to enable it. The sta must be associated
174 1.63.2.1 phil * with HT and A-MPDU enabled for use. When the policy
175 1.63.2.1 phil * routine decides we should enable A-MPDU we issue an
176 1.63.2.1 phil * ADDBA request and wait for a reply. The frame being
177 1.63.2.1 phil * encapsulated will go out w/o using A-MPDU, or possibly
178 1.63.2.1 phil * it might be collected by the driver and held/retransmit.
179 1.63.2.1 phil * The default ic_ampdu_enable routine handles staggering
180 1.63.2.1 phil * ADDBA requests in case the receiver NAK's us or we are
181 1.63.2.1 phil * otherwise unable to establish a BA stream.
182 1.63.2.1 phil *
183 1.63.2.1 phil * Don't treat group-addressed frames as candidates for aggregation;
184 1.63.2.1 phil * net80211 doesn't support 802.11aa-2012 and so group addressed
185 1.63.2.1 phil * frames will always have sequence numbers allocated from the NON_QOS
186 1.63.2.1 phil * TID.
187 1.63.2.1 phil */
188 1.63.2.1 phil if ((ni->ni_flags & IEEE80211_NODE_AMPDU_TX) &&
189 1.63.2.1 phil (vap->iv_flags_ht & IEEE80211_FHT_AMPDU_TX)) {
190 1.63.2.1 phil if ((m->m_flags & M_EAPOL) == 0 && (! mcast)) {
191 1.63.2.1 phil int tid = WME_AC_TO_TID(M_WME_GETAC(m));
192 1.63.2.1 phil struct ieee80211_tx_ampdu *tap = &ni->ni_tx_ampdu[tid];
193 1.63.2.1 phil
194 1.63.2.1 phil ieee80211_txampdu_count_packet(tap);
195 1.63.2.1 phil if (IEEE80211_AMPDU_RUNNING(tap)) {
196 1.63.2.1 phil /*
197 1.63.2.1 phil * Operational, mark frame for aggregation.
198 1.63.2.1 phil *
199 1.63.2.1 phil * XXX do tx aggregation here
200 1.63.2.1 phil */
201 1.63.2.1 phil m->m_flags |= M_AMPDU_MPDU;
202 1.63.2.1 phil } else if (!IEEE80211_AMPDU_REQUESTED(tap) &&
203 1.63.2.1 phil ic->ic_ampdu_enable(ni, tap)) {
204 1.63.2.1 phil /*
205 1.63.2.1 phil * Not negotiated yet, request service.
206 1.63.2.1 phil */
207 1.63.2.1 phil ieee80211_ampdu_request(ni, tap);
208 1.63.2.1 phil /* XXX hold frame for reply? */
209 1.63.2.1 phil }
210 1.63.2.1 phil }
211 1.63.2.1 phil }
212 1.63.2.1 phil
213 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
214 1.63.2.1 phil /*
215 1.63.2.1 phil * Check for AMSDU/FF; queue for aggregation
216 1.63.2.1 phil *
217 1.63.2.1 phil * Note: we don't bother trying to do fast frames or
218 1.63.2.1 phil * A-MSDU encapsulation for 802.3 drivers. Now, we
219 1.63.2.1 phil * likely could do it for FF (because it's a magic
220 1.63.2.1 phil * atheros tunnel LLC type) but I don't think we're going
221 1.63.2.1 phil * to really need to. For A-MSDU we'd have to set the
222 1.63.2.1 phil * A-MSDU QoS bit in the wifi header, so we just plain
223 1.63.2.1 phil * can't do it.
224 1.63.2.1 phil *
225 1.63.2.1 phil * Strictly speaking, we could actually /do/ A-MSDU / FF
226 1.63.2.1 phil * with A-MPDU together which for certain circumstances
227 1.63.2.1 phil * is beneficial (eg A-MSDU of TCK ACKs.) However,
228 1.63.2.1 phil * I'll ignore that for now so existing behaviour is maintained.
229 1.63.2.1 phil * Later on it would be good to make "amsdu + ampdu" configurable.
230 1.63.2.1 phil */
231 1.63.2.1 phil else if (__predict_true((vap->iv_caps & IEEE80211_C_8023ENCAP) == 0)) {
232 1.63.2.1 phil if ((! mcast) && ieee80211_amsdu_tx_ok(ni)) {
233 1.63.2.1 phil m = ieee80211_amsdu_check(ni, m);
234 1.63.2.1 phil if (m == NULL) {
235 1.63.2.1 phil /* NB: any ni ref held on stageq */
236 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
237 1.63.2.1 phil "%s: amsdu_check queued frame\n",
238 1.63.2.1 phil __func__);
239 1.63.2.1 phil return (0);
240 1.63.2.1 phil }
241 1.63.2.1 phil } else if ((! mcast) && IEEE80211_ATH_CAP(vap, ni,
242 1.63.2.1 phil IEEE80211_NODE_FF)) {
243 1.63.2.1 phil m = ieee80211_ff_check(ni, m);
244 1.63.2.1 phil if (m == NULL) {
245 1.63.2.1 phil /* NB: any ni ref held on stageq */
246 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
247 1.63.2.1 phil "%s: ff_check queued frame\n",
248 1.63.2.1 phil __func__);
249 1.63.2.1 phil return (0);
250 1.63.2.1 phil }
251 1.63.2.1 phil }
252 1.63.2.1 phil }
253 1.63.2.1 phil #endif /* IEEE80211_SUPPORT_SUPERG */
254 1.63.2.1 phil
255 1.63.2.1 phil /*
256 1.63.2.1 phil * Grab the TX lock - serialise the TX process from this
257 1.63.2.1 phil * point (where TX state is being checked/modified)
258 1.63.2.1 phil * through to driver queue.
259 1.63.2.1 phil */
260 1.63.2.1 phil IEEE80211_TX_LOCK(ic);
261 1.63.2.1 phil
262 1.63.2.1 phil /*
263 1.63.2.1 phil * XXX make the encap and transmit code a separate function
264 1.63.2.1 phil * so things like the FF (and later A-MSDU) path can just call
265 1.63.2.1 phil * it for flushed frames.
266 1.63.2.1 phil */
267 1.63.2.1 phil if (__predict_true((vap->iv_caps & IEEE80211_C_8023ENCAP) == 0)) {
268 1.63.2.1 phil /*
269 1.63.2.1 phil * Encapsulate the packet in prep for transmission.
270 1.63.2.1 phil */
271 1.63.2.1 phil m = ieee80211_encap(vap, ni, m);
272 1.63.2.1 phil if (m == NULL) {
273 1.63.2.1 phil /* NB: stat+msg handled in ieee80211_encap */
274 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
275 1.63.2.1 phil ieee80211_free_node(ni);
276 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
277 1.63.2.1 phil return (ENOBUFS);
278 1.63.2.1 phil }
279 1.63.2.1 phil }
280 1.63.2.1 phil (void) ieee80211_parent_xmitpkt(ic, m);
281 1.63.2.1 phil
282 1.63.2.1 phil /*
283 1.63.2.1 phil * Unlock at this point - no need to hold it across
284 1.63.2.1 phil * ieee80211_free_node() (ie, the comlock)
285 1.63.2.1 phil */
286 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
287 1.63.2.1 phil ic->ic_lastdata = ticks;
288 1.63.2.1 phil
289 1.63.2.1 phil return (0);
290 1.63.2.1 phil }
291 1.63.2.1 phil
292 1.63.2.1 phil
293 1.63.2.1 phil
294 1.63.2.1 phil /*
295 1.63.2.1 phil * Send the given mbuf through the given vap.
296 1.63.2.1 phil *
297 1.63.2.1 phil * This consumes the mbuf regardless of whether the transmit
298 1.63.2.1 phil * was successful or not.
299 1.63.2.1 phil *
300 1.63.2.1 phil * This does none of the initial checks that ieee80211_start()
301 1.63.2.1 phil * does (eg CAC timeout, interface wakeup) - the caller must
302 1.63.2.1 phil * do this first.
303 1.63.2.1 phil */
304 1.63.2.1 phil static int
305 1.63.2.1 phil ieee80211_start_pkt(struct ieee80211vap *vap, struct mbuf *m)
306 1.63.2.1 phil {
307 1.63.2.1 phil #define IS_DWDS(vap) \
308 1.63.2.1 phil (vap->iv_opmode == IEEE80211_M_WDS && \
309 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_WDSLEGACY) == 0)
310 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
311 1.63.2.1 phil struct ifnet *ifp = vap->iv_ifp;
312 1.63.2.1 phil struct ieee80211_node *ni;
313 1.63.2.1 phil struct ether_header *eh;
314 1.63.2.1 phil
315 1.63.2.1 phil /*
316 1.63.2.1 phil * Cancel any background scan.
317 1.63.2.1 phil */
318 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_SCAN)
319 1.63.2.1 phil ieee80211_cancel_anyscan(vap);
320 1.63.2.1 phil /*
321 1.63.2.1 phil * Find the node for the destination so we can do
322 1.63.2.1 phil * things like power save and fast frames aggregation.
323 1.63.2.1 phil *
324 1.63.2.1 phil * NB: past this point various code assumes the first
325 1.63.2.1 phil * mbuf has the 802.3 header present (and contiguous).
326 1.63.2.1 phil */
327 1.63.2.1 phil ni = NULL;
328 1.63.2.1 phil if (m->m_len < sizeof(struct ether_header) &&
329 1.63.2.1 phil (m = m_pullup(m, sizeof(struct ether_header))) == NULL) {
330 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
331 1.63.2.1 phil "discard frame, %s\n", "m_pullup failed");
332 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++; /* XXX */
333 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
334 1.63.2.1 phil return (ENOBUFS);
335 1.63.2.1 phil }
336 1.63.2.1 phil eh = mtod(m, struct ether_header *);
337 1.63.2.1 phil if (ETHER_IS_MULTICAST(eh->ether_dhost)) {
338 1.63.2.1 phil if (IS_DWDS(vap)) {
339 1.63.2.1 phil /*
340 1.63.2.1 phil * Only unicast frames from the above go out
341 1.63.2.1 phil * DWDS vaps; multicast frames are handled by
342 1.63.2.1 phil * dispatching the frame as it comes through
343 1.63.2.1 phil * the AP vap (see below).
344 1.63.2.1 phil */
345 1.63.2.1 phil IEEE80211_DISCARD_MAC(vap, IEEE80211_MSG_WDS,
346 1.63.2.1 phil eh->ether_dhost, "mcast", "%s", "on DWDS");
347 1.63.2.1 phil vap->iv_stats.is_dwds_mcast++;
348 1.63.2.1 phil m_freem(m);
349 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
350 1.63.2.1 phil /* XXX better status? */
351 1.63.2.1 phil return (ENOBUFS);
352 1.63.2.1 phil }
353 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_HOSTAP) {
354 1.63.2.1 phil /*
355 1.63.2.1 phil * Spam DWDS vap's w/ multicast traffic.
356 1.63.2.1 phil */
357 1.63.2.1 phil /* XXX only if dwds in use? */
358 1.63.2.1 phil ieee80211_dwds_mcast(vap, m);
359 1.63.2.1 phil }
360 1.63.2.1 phil }
361 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
362 1.63.2.1 phil if (vap->iv_opmode != IEEE80211_M_MBSS) {
363 1.63.2.1 phil #endif
364 1.63.2.1 phil ni = ieee80211_find_txnode(vap, eh->ether_dhost);
365 1.63.2.1 phil if (ni == NULL) {
366 1.63.2.1 phil /* NB: ieee80211_find_txnode does stat+msg */
367 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
368 1.63.2.1 phil m_freem(m);
369 1.63.2.1 phil /* XXX better status? */
370 1.63.2.1 phil return (ENOBUFS);
371 1.63.2.1 phil }
372 1.63.2.1 phil if (ni->ni_associd == 0 &&
373 1.63.2.1 phil (ni->ni_flags & IEEE80211_NODE_ASSOCID)) {
374 1.63.2.1 phil IEEE80211_DISCARD_MAC(vap, IEEE80211_MSG_OUTPUT,
375 1.63.2.1 phil eh->ether_dhost, NULL,
376 1.63.2.1 phil "sta not associated (type 0x%04x)",
377 1.63.2.1 phil htons(eh->ether_type));
378 1.63.2.1 phil vap->iv_stats.is_tx_notassoc++;
379 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
380 1.63.2.1 phil m_freem(m);
381 1.63.2.1 phil ieee80211_free_node(ni);
382 1.63.2.1 phil /* XXX better status? */
383 1.63.2.1 phil return (ENOBUFS);
384 1.63.2.1 phil }
385 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
386 1.63.2.1 phil } else {
387 1.63.2.1 phil if (!IEEE80211_ADDR_EQ(eh->ether_shost, vap->iv_myaddr)) {
388 1.63.2.1 phil /*
389 1.63.2.1 phil * Proxy station only if configured.
390 1.63.2.1 phil */
391 1.63.2.1 phil if (!ieee80211_mesh_isproxyena(vap)) {
392 1.63.2.1 phil IEEE80211_DISCARD_MAC(vap,
393 1.63.2.1 phil IEEE80211_MSG_OUTPUT |
394 1.63.2.1 phil IEEE80211_MSG_MESH,
395 1.63.2.1 phil eh->ether_dhost, NULL,
396 1.63.2.1 phil "%s", "proxy not enabled");
397 1.63.2.1 phil vap->iv_stats.is_mesh_notproxy++;
398 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
399 1.63.2.1 phil m_freem(m);
400 1.63.2.1 phil /* XXX better status? */
401 1.63.2.1 phil return (ENOBUFS);
402 1.63.2.1 phil }
403 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
404 1.63.2.1 phil "forward frame from DS SA(%6D), DA(%6D)\n",
405 1.63.2.1 phil eh->ether_shost, ":",
406 1.63.2.1 phil eh->ether_dhost, ":");
407 1.63.2.1 phil ieee80211_mesh_proxy_check(vap, eh->ether_shost);
408 1.63.2.1 phil }
409 1.63.2.1 phil ni = ieee80211_mesh_discover(vap, eh->ether_dhost, m);
410 1.63.2.1 phil if (ni == NULL) {
411 1.63.2.1 phil /*
412 1.63.2.1 phil * NB: ieee80211_mesh_discover holds/disposes
413 1.63.2.1 phil * frame (e.g. queueing on path discovery).
414 1.63.2.1 phil */
415 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
416 1.63.2.1 phil /* XXX better status? */
417 1.63.2.1 phil return (ENOBUFS);
418 1.63.2.1 phil }
419 1.63.2.1 phil }
420 1.63.2.1 phil #endif
421 1.63.2.1 phil
422 1.63.2.1 phil /*
423 1.63.2.1 phil * We've resolved the sender, so attempt to transmit it.
424 1.63.2.1 phil */
425 1.63.2.1 phil
426 1.63.2.1 phil if (vap->iv_state == IEEE80211_S_SLEEP) {
427 1.63.2.1 phil /*
428 1.63.2.1 phil * In power save; queue frame and then wakeup device
429 1.63.2.1 phil * for transmit.
430 1.63.2.1 phil */
431 1.63.2.1 phil ic->ic_lastdata = ticks;
432 1.63.2.1 phil if (ieee80211_pwrsave(ni, m) != 0)
433 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
434 1.63.2.1 phil ieee80211_free_node(ni);
435 1.63.2.1 phil ieee80211_new_state(vap, IEEE80211_S_RUN, 0);
436 1.63.2.1 phil return (0);
437 1.63.2.1 phil }
438 1.63.2.1 phil
439 1.63.2.1 phil if (ieee80211_vap_pkt_send_dest(vap, m, ni) != 0)
440 1.63.2.1 phil return (ENOBUFS);
441 1.63.2.1 phil return (0);
442 1.63.2.1 phil #undef IS_DWDS
443 1.63.2.1 phil }
444 1.63.2.1 phil
445 1.63.2.1 phil /*
446 1.63.2.1 phil * Start method for vap's. All packets from the stack come
447 1.63.2.1 phil * through here. We handle common processing of the packets
448 1.63.2.1 phil * before dispatching them to the underlying device.
449 1.63.2.1 phil *
450 1.63.2.1 phil * if_transmit() requires that the mbuf be consumed by this call
451 1.63.2.1 phil * regardless of the return condition.
452 1.63.2.1 phil */
453 1.63.2.1 phil int
454 1.63.2.1 phil ieee80211_vap_transmit(struct ifnet *ifp, struct mbuf *m)
455 1.63.2.1 phil {
456 1.63.2.1 phil struct ieee80211vap *vap = ifp->if_softc;
457 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
458 1.63.2.1 phil
459 1.63.2.1 phil /*
460 1.63.2.1 phil * No data frames go out unless we're running.
461 1.63.2.1 phil * Note in particular this covers CAC and CSA
462 1.63.2.1 phil * states (though maybe we should check muting
463 1.63.2.1 phil * for CSA).
464 1.63.2.1 phil */
465 1.63.2.1 phil if (vap->iv_state != IEEE80211_S_RUN &&
466 1.63.2.1 phil vap->iv_state != IEEE80211_S_SLEEP) {
467 1.63.2.1 phil IEEE80211_LOCK(ic);
468 1.63.2.1 phil /* re-check under the com lock to avoid races */
469 1.63.2.1 phil if (vap->iv_state != IEEE80211_S_RUN &&
470 1.63.2.1 phil vap->iv_state != IEEE80211_S_SLEEP) {
471 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
472 1.63.2.1 phil "%s: ignore queue, in %s state\n",
473 1.63.2.1 phil __func__, ieee80211_state_name[vap->iv_state]);
474 1.63.2.1 phil vap->iv_stats.is_tx_badstate++;
475 1.63.2.1 phil IEEE80211_UNLOCK(ic);
476 1.63.2.1 phil ifp->if_drv_flags |= IFF_DRV_OACTIVE;
477 1.63.2.1 phil m_freem(m);
478 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
479 1.63.2.1 phil return (ENETDOWN);
480 1.63.2.1 phil }
481 1.63.2.1 phil IEEE80211_UNLOCK(ic);
482 1.63.2.1 phil }
483 1.63.2.1 phil
484 1.63.2.1 phil /*
485 1.63.2.1 phil * Sanitize mbuf flags for net80211 use. We cannot
486 1.63.2.1 phil * clear M_PWR_SAV or M_MORE_DATA because these may
487 1.63.2.1 phil * be set for frames that are re-submitted from the
488 1.63.2.1 phil * power save queue.
489 1.63.2.1 phil *
490 1.63.2.1 phil * NB: This must be done before ieee80211_classify as
491 1.63.2.1 phil * it marks EAPOL in frames with M_EAPOL.
492 1.63.2.1 phil */
493 1.63.2.1 phil m->m_flags &= ~(M_80211_TX - M_PWR_SAV - M_MORE_DATA);
494 1.63.2.1 phil
495 1.63.2.1 phil /*
496 1.63.2.1 phil * Bump to the packet transmission path.
497 1.63.2.1 phil * The mbuf will be consumed here.
498 1.63.2.1 phil */
499 1.63.2.1 phil return (ieee80211_start_pkt(vap, m));
500 1.63.2.1 phil }
501 1.63.2.1 phil
502 1.63.2.1 phil void
503 1.63.2.1 phil ieee80211_vap_qflush(struct ifnet *ifp)
504 1.63.2.1 phil {
505 1.63.2.1 phil
506 1.63.2.1 phil /* Empty for now */
507 1.63.2.1 phil }
508 1.63.2.1 phil
509 1.63.2.1 phil /*
510 1.63.2.1 phil * 802.11 raw output routine.
511 1.63.2.1 phil *
512 1.63.2.1 phil * XXX TODO: this (and other send routines) should correctly
513 1.63.2.1 phil * XXX keep the pwr mgmt bit set if it decides to call into the
514 1.63.2.1 phil * XXX driver to send a frame whilst the state is SLEEP.
515 1.63.2.1 phil *
516 1.63.2.1 phil * Otherwise the peer may decide that we're awake and flood us
517 1.63.2.1 phil * with traffic we are still too asleep to receive!
518 1.63.2.1 phil */
519 1.63.2.1 phil int
520 1.63.2.1 phil ieee80211_raw_output(struct ieee80211vap *vap, struct ieee80211_node *ni,
521 1.63.2.1 phil struct mbuf *m, const struct ieee80211_bpf_params *params)
522 1.63.2.1 phil {
523 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
524 1.63.2.1 phil int error;
525 1.63.2.1 phil
526 1.63.2.1 phil /*
527 1.63.2.1 phil * Set node - the caller has taken a reference, so ensure
528 1.63.2.1 phil * that the mbuf has the same node value that
529 1.63.2.1 phil * it would if it were going via the normal path.
530 1.63.2.1 phil */
531 1.63.2.1 phil m->m_pkthdr.rcvif = (void *)ni;
532 1.63.2.1 phil
533 1.63.2.1 phil /*
534 1.63.2.1 phil * Attempt to add bpf transmit parameters.
535 1.63.2.1 phil *
536 1.63.2.1 phil * For now it's ok to fail; the raw_xmit api still takes
537 1.63.2.1 phil * them as an option.
538 1.63.2.1 phil *
539 1.63.2.1 phil * Later on when ic_raw_xmit() has params removed,
540 1.63.2.1 phil * they'll have to be added - so fail the transmit if
541 1.63.2.1 phil * they can't be.
542 1.63.2.1 phil */
543 1.63.2.1 phil if (params)
544 1.63.2.1 phil (void) ieee80211_add_xmit_params(m, params);
545 1.63.2.1 phil
546 1.63.2.1 phil error = ic->ic_raw_xmit(ni, m, params);
547 1.63.2.1 phil if (error) {
548 1.63.2.1 phil if_inc_counter(vap->iv_ifp, IFCOUNTER_OERRORS, 1);
549 1.63.2.1 phil ieee80211_free_node(ni);
550 1.63.2.1 phil }
551 1.63.2.1 phil return (error);
552 1.63.2.1 phil }
553 1.63.2.1 phil
554 1.63.2.1 phil static int
555 1.63.2.1 phil ieee80211_validate_frame(struct mbuf *m,
556 1.63.2.1 phil const struct ieee80211_bpf_params *params)
557 1.63.2.1 phil {
558 1.63.2.1 phil struct ieee80211_frame *wh;
559 1.63.2.1 phil int type;
560 1.63.2.1 phil
561 1.63.2.1 phil if (m->m_pkthdr.len < sizeof(struct ieee80211_frame_ack))
562 1.63.2.1 phil return (EINVAL);
563 1.63.2.1 phil
564 1.63.2.1 phil wh = mtod(m, struct ieee80211_frame *);
565 1.63.2.1 phil if ((wh->i_fc[0] & IEEE80211_FC0_VERSION_MASK) !=
566 1.63.2.1 phil IEEE80211_FC0_VERSION_0)
567 1.63.2.1 phil return (EINVAL);
568 1.63.2.1 phil
569 1.63.2.1 phil type = wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK;
570 1.63.2.1 phil if (type != IEEE80211_FC0_TYPE_DATA) {
571 1.63.2.1 phil if ((wh->i_fc[1] & IEEE80211_FC1_DIR_MASK) !=
572 1.63.2.1 phil IEEE80211_FC1_DIR_NODS)
573 1.63.2.1 phil return (EINVAL);
574 1.63.2.1 phil
575 1.63.2.1 phil if (type != IEEE80211_FC0_TYPE_MGT &&
576 1.63.2.1 phil (wh->i_fc[1] & IEEE80211_FC1_MORE_FRAG) != 0)
577 1.63.2.1 phil return (EINVAL);
578 1.63.2.1 phil
579 1.63.2.1 phil /* XXX skip other field checks? */
580 1.63.2.1 phil }
581 1.63.2.1 phil
582 1.63.2.1 phil if ((params && (params->ibp_flags & IEEE80211_BPF_CRYPTO) != 0) ||
583 1.63.2.1 phil (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) != 0) {
584 1.63.2.1 phil int subtype;
585 1.63.2.1 phil
586 1.63.2.1 phil subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK;
587 1.63.2.1 phil
588 1.63.2.1 phil /*
589 1.63.2.1 phil * See IEEE Std 802.11-2012,
590 1.63.2.1 phil * 8.2.4.1.9 'Protected Frame field'
591 1.63.2.1 phil */
592 1.63.2.1 phil /* XXX no support for robust management frames yet. */
593 1.63.2.1 phil if (!(type == IEEE80211_FC0_TYPE_DATA ||
594 1.63.2.1 phil (type == IEEE80211_FC0_TYPE_MGT &&
595 1.63.2.1 phil subtype == IEEE80211_FC0_SUBTYPE_AUTH)))
596 1.63.2.1 phil return (EINVAL);
597 1.63.2.1 phil
598 1.63.2.1 phil wh->i_fc[1] |= IEEE80211_FC1_PROTECTED;
599 1.63.2.1 phil }
600 1.63.2.1 phil
601 1.63.2.1 phil if (m->m_pkthdr.len < ieee80211_anyhdrsize(wh))
602 1.63.2.1 phil return (EINVAL);
603 1.63.2.1 phil
604 1.63.2.1 phil return (0);
605 1.63.2.1 phil }
606 1.63.2.1 phil
607 1.63.2.1 phil /*
608 1.63.2.1 phil * 802.11 output routine. This is (currently) used only to
609 1.63.2.1 phil * connect bpf write calls to the 802.11 layer for injecting
610 1.63.2.1 phil * raw 802.11 frames.
611 1.63.2.1 phil */
612 1.63.2.1 phil int
613 1.63.2.1 phil ieee80211_output(struct ifnet *ifp, struct mbuf *m,
614 1.63.2.1 phil const struct sockaddr *dst, struct route *ro)
615 1.63.2.1 phil {
616 1.63.2.1 phil #define senderr(e) do { error = (e); goto bad;} while (0)
617 1.63.2.1 phil const struct ieee80211_bpf_params *params = NULL;
618 1.63.2.1 phil struct ieee80211_node *ni = NULL;
619 1.63.2.1 phil struct ieee80211vap *vap;
620 1.63.2.1 phil struct ieee80211_frame *wh;
621 1.63.2.1 phil struct ieee80211com *ic = NULL;
622 1.63.2.1 phil int error;
623 1.63.2.1 phil int ret;
624 1.63.2.1 phil
625 1.63.2.1 phil if (ifp->if_drv_flags & IFF_DRV_OACTIVE) {
626 1.63.2.1 phil /*
627 1.63.2.1 phil * Short-circuit requests if the vap is marked OACTIVE
628 1.63.2.1 phil * as this can happen because a packet came down through
629 1.63.2.1 phil * ieee80211_start before the vap entered RUN state in
630 1.63.2.1 phil * which case it's ok to just drop the frame. This
631 1.63.2.1 phil * should not be necessary but callers of if_output don't
632 1.63.2.1 phil * check OACTIVE.
633 1.63.2.1 phil */
634 1.63.2.1 phil senderr(ENETDOWN);
635 1.63.2.1 phil }
636 1.63.2.1 phil vap = ifp->if_softc;
637 1.63.2.1 phil ic = vap->iv_ic;
638 1.63.2.1 phil /*
639 1.63.2.1 phil * Hand to the 802.3 code if not tagged as
640 1.63.2.1 phil * a raw 802.11 frame.
641 1.63.2.1 phil */
642 1.63.2.1 phil if (dst->sa_family != AF_IEEE80211)
643 1.63.2.1 phil return vap->iv_output(ifp, m, dst, ro);
644 1.63.2.1 phil #ifdef MAC
645 1.63.2.1 phil error = mac_ifnet_check_transmit(ifp, m);
646 1.63.2.1 phil if (error)
647 1.63.2.1 phil senderr(error);
648 1.63.2.1 phil #endif
649 1.63.2.1 phil if (ifp->if_flags & IFF_MONITOR)
650 1.63.2.1 phil senderr(ENETDOWN);
651 1.63.2.1 phil if (!IFNET_IS_UP_RUNNING(ifp))
652 1.63.2.1 phil senderr(ENETDOWN);
653 1.63.2.1 phil if (vap->iv_state == IEEE80211_S_CAC) {
654 1.63.2.1 phil IEEE80211_DPRINTF(vap,
655 1.63.2.1 phil IEEE80211_MSG_OUTPUT | IEEE80211_MSG_DOTH,
656 1.63.2.1 phil "block %s frame in CAC state\n", "raw data");
657 1.63.2.1 phil vap->iv_stats.is_tx_badstate++;
658 1.63.2.1 phil senderr(EIO); /* XXX */
659 1.63.2.1 phil } else if (vap->iv_state == IEEE80211_S_SCAN)
660 1.63.2.1 phil senderr(EIO);
661 1.63.2.1 phil /* XXX bypass bridge, pfil, carp, etc. */
662 1.63.2.1 phil
663 1.63.2.1 phil /*
664 1.63.2.1 phil * NB: DLT_IEEE802_11_RADIO identifies the parameters are
665 1.63.2.1 phil * present by setting the sa_len field of the sockaddr (yes,
666 1.63.2.1 phil * this is a hack).
667 1.63.2.1 phil * NB: we assume sa_data is suitably aligned to cast.
668 1.63.2.1 phil */
669 1.63.2.1 phil if (dst->sa_len != 0)
670 1.63.2.1 phil params = (const struct ieee80211_bpf_params *)dst->sa_data;
671 1.63.2.1 phil
672 1.63.2.1 phil error = ieee80211_validate_frame(m, params);
673 1.63.2.1 phil if (error != 0)
674 1.63.2.1 phil senderr(error);
675 1.63.2.1 phil
676 1.63.2.1 phil wh = mtod(m, struct ieee80211_frame *);
677 1.63.2.1 phil
678 1.63.2.1 phil /* locate destination node */
679 1.63.2.1 phil switch (wh->i_fc[1] & IEEE80211_FC1_DIR_MASK) {
680 1.63.2.1 phil case IEEE80211_FC1_DIR_NODS:
681 1.63.2.1 phil case IEEE80211_FC1_DIR_FROMDS:
682 1.63.2.1 phil ni = ieee80211_find_txnode(vap, wh->i_addr1);
683 1.63.2.1 phil break;
684 1.63.2.1 phil case IEEE80211_FC1_DIR_TODS:
685 1.63.2.1 phil case IEEE80211_FC1_DIR_DSTODS:
686 1.63.2.1 phil ni = ieee80211_find_txnode(vap, wh->i_addr3);
687 1.63.2.1 phil break;
688 1.63.2.1 phil default:
689 1.63.2.1 phil senderr(EDOOFUS);
690 1.63.2.1 phil }
691 1.63.2.1 phil if (ni == NULL) {
692 1.63.2.1 phil /*
693 1.63.2.1 phil * Permit packets w/ bpf params through regardless
694 1.63.2.1 phil * (see below about sa_len).
695 1.63.2.1 phil */
696 1.63.2.1 phil if (dst->sa_len == 0)
697 1.63.2.1 phil senderr(EHOSTUNREACH);
698 1.63.2.1 phil ni = ieee80211_ref_node(vap->iv_bss);
699 1.63.2.1 phil }
700 1.63.2.1 phil
701 1.63.2.1 phil /*
702 1.63.2.1 phil * Sanitize mbuf for net80211 flags leaked from above.
703 1.63.2.1 phil *
704 1.63.2.1 phil * NB: This must be done before ieee80211_classify as
705 1.63.2.1 phil * it marks EAPOL in frames with M_EAPOL.
706 1.63.2.1 phil */
707 1.63.2.1 phil m->m_flags &= ~M_80211_TX;
708 1.63.2.1 phil m->m_flags |= M_ENCAP; /* mark encapsulated */
709 1.63.2.1 phil
710 1.63.2.1 phil if (IEEE80211_IS_DATA(wh)) {
711 1.63.2.1 phil /* calculate priority so drivers can find the tx queue */
712 1.63.2.1 phil if (ieee80211_classify(ni, m))
713 1.63.2.1 phil senderr(EIO); /* XXX */
714 1.63.2.1 phil
715 1.63.2.1 phil /* NB: ieee80211_encap does not include 802.11 header */
716 1.63.2.1 phil IEEE80211_NODE_STAT_ADD(ni, tx_bytes,
717 1.63.2.1 phil m->m_pkthdr.len - ieee80211_hdrsize(wh));
718 1.63.2.1 phil } else
719 1.63.2.1 phil M_WME_SETAC(m, WME_AC_BE);
720 1.63.2.1 phil
721 1.63.2.1 phil IEEE80211_NODE_STAT(ni, tx_data);
722 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(wh->i_addr1)) {
723 1.63.2.1 phil IEEE80211_NODE_STAT(ni, tx_mcast);
724 1.63.2.1 phil m->m_flags |= M_MCAST;
725 1.63.2.1 phil } else
726 1.63.2.1 phil IEEE80211_NODE_STAT(ni, tx_ucast);
727 1.63.2.1 phil
728 1.63.2.1 phil IEEE80211_TX_LOCK(ic);
729 1.63.2.1 phil ret = ieee80211_raw_output(vap, ni, m, params);
730 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
731 1.63.2.1 phil return (ret);
732 1.63.2.1 phil bad:
733 1.63.2.1 phil if (m != NULL)
734 1.63.2.1 phil m_freem(m);
735 1.63.2.1 phil if (ni != NULL)
736 1.63.2.1 phil ieee80211_free_node(ni);
737 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
738 1.63.2.1 phil return error;
739 1.63.2.1 phil #undef senderr
740 1.63.2.1 phil }
741 1.63.2.1 phil
742 1.63.2.1 phil /*
743 1.39 skrll * Set the direction field and address fields of an outgoing
744 1.63.2.1 phil * frame. Note this should be called early on in constructing
745 1.63.2.1 phil * a frame as it sets i_fc[1]; other bits can then be or'd in.
746 1.39 skrll */
747 1.63.2.1 phil void
748 1.63.2.1 phil ieee80211_send_setup(
749 1.39 skrll struct ieee80211_node *ni,
750 1.63.2.1 phil struct mbuf *m,
751 1.63.2.1 phil int type, int tid,
752 1.63.2.1 phil const uint8_t sa[IEEE80211_ADDR_LEN],
753 1.63.2.1 phil const uint8_t da[IEEE80211_ADDR_LEN],
754 1.63.2.1 phil const uint8_t bssid[IEEE80211_ADDR_LEN])
755 1.39 skrll {
756 1.39 skrll #define WH4(wh) ((struct ieee80211_frame_addr4 *)wh)
757 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
758 1.63.2.1 phil struct ieee80211_tx_ampdu *tap;
759 1.63.2.1 phil struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *);
760 1.63.2.1 phil ieee80211_seq seqno;
761 1.39 skrll
762 1.63.2.1 phil IEEE80211_TX_LOCK_ASSERT(ni->ni_ic);
763 1.60 maxv
764 1.63.2.1 phil wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | type;
765 1.39 skrll if ((type & IEEE80211_FC0_TYPE_MASK) == IEEE80211_FC0_TYPE_DATA) {
766 1.63.2.1 phil switch (vap->iv_opmode) {
767 1.39 skrll case IEEE80211_M_STA:
768 1.39 skrll wh->i_fc[1] = IEEE80211_FC1_DIR_TODS;
769 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr1, bssid);
770 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr2, sa);
771 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr3, da);
772 1.39 skrll break;
773 1.39 skrll case IEEE80211_M_IBSS:
774 1.39 skrll case IEEE80211_M_AHDEMO:
775 1.39 skrll wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
776 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr1, da);
777 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr2, sa);
778 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr3, bssid);
779 1.39 skrll break;
780 1.39 skrll case IEEE80211_M_HOSTAP:
781 1.39 skrll wh->i_fc[1] = IEEE80211_FC1_DIR_FROMDS;
782 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr1, da);
783 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr2, bssid);
784 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr3, sa);
785 1.39 skrll break;
786 1.63.2.1 phil case IEEE80211_M_WDS:
787 1.63.2.1 phil wh->i_fc[1] = IEEE80211_FC1_DIR_DSTODS;
788 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1, da);
789 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
790 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, da);
791 1.63.2.1 phil IEEE80211_ADDR_COPY(WH4(wh)->i_addr4, sa);
792 1.63.2.1 phil break;
793 1.63.2.1 phil case IEEE80211_M_MBSS:
794 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
795 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(da)) {
796 1.63.2.1 phil wh->i_fc[1] = IEEE80211_FC1_DIR_FROMDS;
797 1.63.2.1 phil /* XXX next hop */
798 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1, da);
799 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2,
800 1.63.2.1 phil vap->iv_myaddr);
801 1.63.2.1 phil } else {
802 1.63.2.1 phil wh->i_fc[1] = IEEE80211_FC1_DIR_DSTODS;
803 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1, da);
804 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2,
805 1.63.2.1 phil vap->iv_myaddr);
806 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, da);
807 1.63.2.1 phil IEEE80211_ADDR_COPY(WH4(wh)->i_addr4, sa);
808 1.63.2.1 phil }
809 1.63.2.1 phil #endif
810 1.63.2.1 phil break;
811 1.39 skrll case IEEE80211_M_MONITOR: /* NB: to quiet compiler */
812 1.39 skrll break;
813 1.39 skrll }
814 1.39 skrll } else {
815 1.39 skrll wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
816 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr1, da);
817 1.39 skrll IEEE80211_ADDR_COPY(wh->i_addr2, sa);
818 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
819 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS)
820 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, sa);
821 1.63.2.1 phil else
822 1.63.2.1 phil #endif
823 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, bssid);
824 1.63.2.1 phil }
825 1.63.2.1 phil *(uint16_t *)&wh->i_dur[0] = 0;
826 1.63.2.1 phil
827 1.63.2.1 phil /*
828 1.63.2.1 phil * XXX TODO: this is what the TX lock is for.
829 1.63.2.1 phil * Here we're incrementing sequence numbers, and they
830 1.63.2.1 phil * need to be in lock-step with what the driver is doing
831 1.63.2.1 phil * both in TX ordering and crypto encap (IV increment.)
832 1.63.2.1 phil *
833 1.63.2.1 phil * If the driver does seqno itself, then we can skip
834 1.63.2.1 phil * assigning sequence numbers here, and we can avoid
835 1.63.2.1 phil * requiring the TX lock.
836 1.63.2.1 phil */
837 1.63.2.1 phil tap = &ni->ni_tx_ampdu[tid];
838 1.63.2.1 phil if (tid != IEEE80211_NONQOS_TID && IEEE80211_AMPDU_RUNNING(tap)) {
839 1.63.2.1 phil m->m_flags |= M_AMPDU_MPDU;
840 1.63.2.1 phil
841 1.63.2.1 phil /* NB: zero out i_seq field (for s/w encryption etc) */
842 1.63.2.1 phil *(uint16_t *)&wh->i_seq[0] = 0;
843 1.63.2.1 phil } else {
844 1.63.2.1 phil if (IEEE80211_HAS_SEQ(type & IEEE80211_FC0_TYPE_MASK,
845 1.63.2.1 phil type & IEEE80211_FC0_SUBTYPE_MASK))
846 1.63.2.1 phil /*
847 1.63.2.1 phil * 802.11-2012 9.3.2.10 - QoS multicast frames
848 1.63.2.1 phil * come out of a different seqno space.
849 1.63.2.1 phil */
850 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(wh->i_addr1)) {
851 1.63.2.1 phil seqno = ni->ni_txseqs[IEEE80211_NONQOS_TID]++;
852 1.63.2.1 phil } else {
853 1.63.2.1 phil seqno = ni->ni_txseqs[tid]++;
854 1.63.2.1 phil }
855 1.63.2.1 phil else
856 1.63.2.1 phil seqno = 0;
857 1.63.2.1 phil
858 1.63.2.1 phil *(uint16_t *)&wh->i_seq[0] =
859 1.63.2.1 phil htole16(seqno << IEEE80211_SEQ_SEQ_SHIFT);
860 1.63.2.1 phil M_SEQNO_SET(m, seqno);
861 1.39 skrll }
862 1.60 maxv
863 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(wh->i_addr1))
864 1.63.2.1 phil m->m_flags |= M_MCAST;
865 1.39 skrll #undef WH4
866 1.39 skrll }
867 1.39 skrll
868 1.39 skrll /*
869 1.1 dyoung * Send a management frame to the specified node. The node pointer
870 1.1 dyoung * must have a reference as the pointer will be passed to the driver
871 1.1 dyoung * and potentially held for a long time. If the frame is successfully
872 1.1 dyoung * dispatched to the driver, then it is responsible for freeing the
873 1.63.2.1 phil * reference (and potentially free'ing up any associated storage);
874 1.63.2.1 phil * otherwise deal with reclaiming any reference (on error).
875 1.1 dyoung */
876 1.63.2.1 phil int
877 1.63.2.1 phil ieee80211_mgmt_output(struct ieee80211_node *ni, struct mbuf *m, int type,
878 1.63.2.1 phil struct ieee80211_bpf_params *params)
879 1.1 dyoung {
880 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
881 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
882 1.1 dyoung struct ieee80211_frame *wh;
883 1.63.2.1 phil int ret;
884 1.1 dyoung
885 1.63.2.1 phil KASSERT(ni != NULL, ("null node"));
886 1.1 dyoung
887 1.63.2.1 phil if (vap->iv_state == IEEE80211_S_CAC) {
888 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT | IEEE80211_MSG_DOTH,
889 1.63.2.1 phil ni, "block %s frame in CAC state",
890 1.63.2.1 phil ieee80211_mgt_subtype_name(type));
891 1.63.2.1 phil vap->iv_stats.is_tx_badstate++;
892 1.63.2.1 phil ieee80211_free_node(ni);
893 1.63.2.1 phil m_freem(m);
894 1.63.2.1 phil return EIO; /* XXX */
895 1.63.2.1 phil }
896 1.63.2.1 phil
897 1.63.2.1 phil M_PREPEND(m, sizeof(struct ieee80211_frame), M_NOWAIT);
898 1.63.2.1 phil if (m == NULL) {
899 1.63.2.1 phil ieee80211_free_node(ni);
900 1.1 dyoung return ENOMEM;
901 1.63.2.1 phil }
902 1.1 dyoung
903 1.63.2.1 phil IEEE80211_TX_LOCK(ic);
904 1.60 maxv
905 1.63.2.1 phil wh = mtod(m, struct ieee80211_frame *);
906 1.63.2.1 phil ieee80211_send_setup(ni, m,
907 1.63.2.1 phil IEEE80211_FC0_TYPE_MGT | type, IEEE80211_NONQOS_TID,
908 1.63.2.1 phil vap->iv_myaddr, ni->ni_macaddr, ni->ni_bssid);
909 1.63.2.1 phil if (params->ibp_flags & IEEE80211_BPF_CRYPTO) {
910 1.63.2.1 phil IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_AUTH, wh->i_addr1,
911 1.63.2.1 phil "encrypting frame (%s)", __func__);
912 1.63.2.1 phil wh->i_fc[1] |= IEEE80211_FC1_PROTECTED;
913 1.7 dyoung }
914 1.63.2.1 phil m->m_flags |= M_ENCAP; /* mark encapsulated */
915 1.63.2.1 phil
916 1.63.2.1 phil KASSERT(type != IEEE80211_FC0_SUBTYPE_PROBE_RESP, ("probe response?"));
917 1.63.2.1 phil M_WME_SETAC(m, params->ibp_pri);
918 1.60 maxv
919 1.1 dyoung #ifdef IEEE80211_DEBUG
920 1.15 mycroft /* avoid printing too many frames */
921 1.63.2.1 phil if ((ieee80211_msg_debug(vap) && doprint(vap, type)) ||
922 1.63.2.1 phil ieee80211_msg_dumppkts(vap)) {
923 1.29 dyoung printf("[%s] send %s on channel %u\n",
924 1.29 dyoung ether_sprintf(wh->i_addr1),
925 1.63.2.1 phil ieee80211_mgt_subtype_name(type),
926 1.39 skrll ieee80211_chan2ieee(ic, ic->ic_curchan));
927 1.15 mycroft }
928 1.1 dyoung #endif
929 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_mgmt);
930 1.63.2.1 phil
931 1.63.2.1 phil ret = ieee80211_raw_output(vap, ni, m, params);
932 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
933 1.63.2.1 phil return (ret);
934 1.63.2.1 phil }
935 1.63.2.1 phil
936 1.63.2.1 phil static void
937 1.63.2.1 phil ieee80211_nulldata_transmitted(struct ieee80211_node *ni, void *arg,
938 1.63.2.1 phil int status)
939 1.63.2.1 phil {
940 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
941 1.63.2.1 phil
942 1.63.2.1 phil wakeup(vap);
943 1.1 dyoung }
944 1.1 dyoung
945 1.1 dyoung /*
946 1.63.2.1 phil * Send a null data frame to the specified node. If the station
947 1.63.2.1 phil * is setup for QoS then a QoS Null Data frame is constructed.
948 1.63.2.1 phil * If this is a WDS station then a 4-address frame is constructed.
949 1.39 skrll *
950 1.39 skrll * NB: the caller is assumed to have setup a node reference
951 1.39 skrll * for use; this is necessary to deal with a race condition
952 1.63.2.1 phil * when probing for inactive stations. Like ieee80211_mgmt_output
953 1.63.2.1 phil * we must cleanup any node reference on error; however we
954 1.63.2.1 phil * can safely just unref it as we know it will never be the
955 1.63.2.1 phil * last reference to the node.
956 1.29 dyoung */
957 1.29 dyoung int
958 1.39 skrll ieee80211_send_nulldata(struct ieee80211_node *ni)
959 1.29 dyoung {
960 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
961 1.39 skrll struct ieee80211com *ic = ni->ni_ic;
962 1.29 dyoung struct mbuf *m;
963 1.29 dyoung struct ieee80211_frame *wh;
964 1.63.2.1 phil int hdrlen;
965 1.63.2.1 phil uint8_t *frm;
966 1.63.2.1 phil int ret;
967 1.63.2.1 phil
968 1.63.2.1 phil if (vap->iv_state == IEEE80211_S_CAC) {
969 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT | IEEE80211_MSG_DOTH,
970 1.63.2.1 phil ni, "block %s frame in CAC state", "null data");
971 1.63.2.1 phil ieee80211_unref_node(&ni);
972 1.63.2.1 phil vap->iv_stats.is_tx_badstate++;
973 1.63.2.1 phil return EIO; /* XXX */
974 1.63.2.1 phil }
975 1.63.2.1 phil
976 1.63.2.1 phil if (ni->ni_flags & (IEEE80211_NODE_QOS|IEEE80211_NODE_HT))
977 1.63.2.1 phil hdrlen = sizeof(struct ieee80211_qosframe);
978 1.63.2.1 phil else
979 1.63.2.1 phil hdrlen = sizeof(struct ieee80211_frame);
980 1.63.2.1 phil /* NB: only WDS vap's get 4-address frames */
981 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_WDS)
982 1.63.2.1 phil hdrlen += IEEE80211_ADDR_LEN;
983 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_DATAPAD)
984 1.63.2.1 phil hdrlen = roundup(hdrlen, sizeof(uint32_t));
985 1.29 dyoung
986 1.63.2.1 phil m = ieee80211_getmgtframe(&frm, ic->ic_headroom + hdrlen, 0);
987 1.29 dyoung if (m == NULL) {
988 1.63.2.1 phil /* XXX debug msg */
989 1.39 skrll ieee80211_unref_node(&ni);
990 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
991 1.63.2.1 phil return ENOMEM;
992 1.63.2.1 phil }
993 1.63.2.1 phil KASSERT(M_LEADINGSPACE(m) >= hdrlen,
994 1.63.2.1 phil ("leading space %zd", M_LEADINGSPACE(m)));
995 1.63.2.1 phil M_PREPEND(m, hdrlen, M_NOWAIT);
996 1.63.2.1 phil if (m == NULL) {
997 1.63.2.1 phil /* NB: cannot happen */
998 1.63.2.1 phil ieee80211_free_node(ni);
999 1.29 dyoung return ENOMEM;
1000 1.29 dyoung }
1001 1.29 dyoung
1002 1.63.2.1 phil IEEE80211_TX_LOCK(ic);
1003 1.60 maxv
1004 1.63.2.1 phil wh = mtod(m, struct ieee80211_frame *); /* NB: a little lie */
1005 1.63.2.1 phil if (ni->ni_flags & IEEE80211_NODE_QOS) {
1006 1.63.2.1 phil const int tid = WME_AC_TO_TID(WME_AC_BE);
1007 1.63.2.1 phil uint8_t *qos;
1008 1.63.2.1 phil
1009 1.63.2.1 phil ieee80211_send_setup(ni, m,
1010 1.63.2.1 phil IEEE80211_FC0_TYPE_DATA | IEEE80211_FC0_SUBTYPE_QOS_NULL,
1011 1.63.2.1 phil tid, vap->iv_myaddr, ni->ni_macaddr, ni->ni_bssid);
1012 1.60 maxv
1013 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_WDS)
1014 1.63.2.1 phil qos = ((struct ieee80211_qosframe_addr4 *) wh)->i_qos;
1015 1.63.2.1 phil else
1016 1.63.2.1 phil qos = ((struct ieee80211_qosframe *) wh)->i_qos;
1017 1.63.2.1 phil qos[0] = tid & IEEE80211_QOS_TID;
1018 1.63.2.1 phil if (ic->ic_wme.wme_wmeChanParams.cap_wmeParams[WME_AC_BE].wmep_noackPolicy)
1019 1.63.2.1 phil qos[0] |= IEEE80211_QOS_ACKPOLICY_NOACK;
1020 1.63.2.1 phil qos[1] = 0;
1021 1.63.2.1 phil } else {
1022 1.63.2.1 phil ieee80211_send_setup(ni, m,
1023 1.63.2.1 phil IEEE80211_FC0_TYPE_DATA | IEEE80211_FC0_SUBTYPE_NODATA,
1024 1.63.2.1 phil IEEE80211_NONQOS_TID,
1025 1.63.2.1 phil vap->iv_myaddr, ni->ni_macaddr, ni->ni_bssid);
1026 1.63.2.1 phil }
1027 1.63.2.1 phil if (vap->iv_opmode != IEEE80211_M_WDS) {
1028 1.63.2.1 phil /* NB: power management bit is never sent by an AP */
1029 1.63.2.1 phil if ((ni->ni_flags & IEEE80211_NODE_PWR_MGT) &&
1030 1.63.2.1 phil vap->iv_opmode != IEEE80211_M_HOSTAP)
1031 1.63.2.1 phil wh->i_fc[1] |= IEEE80211_FC1_PWR_MGT;
1032 1.63.2.1 phil }
1033 1.63.2.1 phil if ((ic->ic_flags & IEEE80211_F_SCAN) &&
1034 1.63.2.1 phil (ni->ni_flags & IEEE80211_NODE_PWR_MGT)) {
1035 1.63.2.1 phil ieee80211_add_callback(m, ieee80211_nulldata_transmitted,
1036 1.63.2.1 phil NULL);
1037 1.60 maxv }
1038 1.63.2.1 phil m->m_len = m->m_pkthdr.len = hdrlen;
1039 1.63.2.1 phil m->m_flags |= M_ENCAP; /* mark encapsulated */
1040 1.60 maxv
1041 1.63.2.1 phil M_WME_SETAC(m, WME_AC_BE);
1042 1.29 dyoung
1043 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_data);
1044 1.29 dyoung
1045 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_DEBUG | IEEE80211_MSG_DUMPPKTS, ni,
1046 1.63.2.1 phil "send %snull data frame on channel %u, pwr mgt %s",
1047 1.63.2.1 phil ni->ni_flags & IEEE80211_NODE_QOS ? "QoS " : "",
1048 1.39 skrll ieee80211_chan2ieee(ic, ic->ic_curchan),
1049 1.39 skrll wh->i_fc[1] & IEEE80211_FC1_PWR_MGT ? "ena" : "dis");
1050 1.39 skrll
1051 1.63.2.1 phil ret = ieee80211_raw_output(vap, ni, m, NULL);
1052 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
1053 1.63.2.1 phil return (ret);
1054 1.29 dyoung }
1055 1.29 dyoung
1056 1.29 dyoung /*
1057 1.29 dyoung * Assign priority to a frame based on any vlan tag assigned
1058 1.29 dyoung * to the station and/or any Diffserv setting in an IP header.
1059 1.29 dyoung * Finally, if an ACM policy is setup (in station mode) it's
1060 1.29 dyoung * applied.
1061 1.29 dyoung */
1062 1.29 dyoung int
1063 1.63.2.1 phil ieee80211_classify(struct ieee80211_node *ni, struct mbuf *m)
1064 1.29 dyoung {
1065 1.63.2.1 phil const struct ether_header *eh = NULL;
1066 1.63.2.1 phil uint16_t ether_type;
1067 1.29 dyoung int v_wme_ac, d_wme_ac, ac;
1068 1.29 dyoung
1069 1.63.2.1 phil if (__predict_false(m->m_flags & M_ENCAP)) {
1070 1.63.2.1 phil struct ieee80211_frame *wh = mtod(m, struct ieee80211_frame *);
1071 1.63.2.1 phil struct llc *llc;
1072 1.63.2.1 phil int hdrlen, subtype;
1073 1.63.2.1 phil
1074 1.63.2.1 phil subtype = wh->i_fc[0] & IEEE80211_FC0_SUBTYPE_MASK;
1075 1.63.2.1 phil if (subtype & IEEE80211_FC0_SUBTYPE_NODATA) {
1076 1.63.2.1 phil ac = WME_AC_BE;
1077 1.63.2.1 phil goto done;
1078 1.63.2.1 phil }
1079 1.63.2.1 phil
1080 1.63.2.1 phil hdrlen = ieee80211_hdrsize(wh);
1081 1.63.2.1 phil if (m->m_pkthdr.len < hdrlen + sizeof(*llc))
1082 1.63.2.1 phil return 1;
1083 1.63.2.1 phil
1084 1.63.2.1 phil llc = (struct llc *)mtodo(m, hdrlen);
1085 1.63.2.1 phil if (llc->llc_dsap != LLC_SNAP_LSAP ||
1086 1.63.2.1 phil llc->llc_ssap != LLC_SNAP_LSAP ||
1087 1.63.2.1 phil llc->llc_control != LLC_UI ||
1088 1.63.2.1 phil llc->llc_snap.org_code[0] != 0 ||
1089 1.63.2.1 phil llc->llc_snap.org_code[1] != 0 ||
1090 1.63.2.1 phil llc->llc_snap.org_code[2] != 0)
1091 1.63.2.1 phil return 1;
1092 1.63.2.1 phil
1093 1.63.2.1 phil ether_type = llc->llc_snap.ether_type;
1094 1.63.2.1 phil } else {
1095 1.63.2.1 phil eh = mtod(m, struct ether_header *);
1096 1.63.2.1 phil ether_type = eh->ether_type;
1097 1.63.2.1 phil }
1098 1.63.2.1 phil
1099 1.63.2.1 phil /*
1100 1.63.2.1 phil * Always promote PAE/EAPOL frames to high priority.
1101 1.63.2.1 phil */
1102 1.63.2.1 phil if (ether_type == htons(ETHERTYPE_PAE)) {
1103 1.63.2.1 phil /* NB: mark so others don't need to check header */
1104 1.63.2.1 phil m->m_flags |= M_EAPOL;
1105 1.63.2.1 phil ac = WME_AC_VO;
1106 1.63.2.1 phil goto done;
1107 1.63.2.1 phil }
1108 1.63.2.1 phil /*
1109 1.63.2.1 phil * Non-qos traffic goes to BE.
1110 1.63.2.1 phil */
1111 1.29 dyoung if ((ni->ni_flags & IEEE80211_NODE_QOS) == 0) {
1112 1.29 dyoung ac = WME_AC_BE;
1113 1.29 dyoung goto done;
1114 1.29 dyoung }
1115 1.29 dyoung
1116 1.29 dyoung /*
1117 1.29 dyoung * If node has a vlan tag then all traffic
1118 1.29 dyoung * to it must have a matching tag.
1119 1.29 dyoung */
1120 1.29 dyoung v_wme_ac = 0;
1121 1.29 dyoung if (ni->ni_vlan != 0) {
1122 1.63.2.1 phil if ((m->m_flags & M_VLANTAG) == 0) {
1123 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_novlantag);
1124 1.29 dyoung return 1;
1125 1.29 dyoung }
1126 1.63.2.1 phil if (EVL_VLANOFTAG(m->m_pkthdr.ether_vtag) !=
1127 1.29 dyoung EVL_VLANOFTAG(ni->ni_vlan)) {
1128 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_vlanmismatch);
1129 1.29 dyoung return 1;
1130 1.29 dyoung }
1131 1.29 dyoung /* map vlan priority to AC */
1132 1.63.2.1 phil v_wme_ac = TID_TO_WME_AC(EVL_PRIOFTAG(ni->ni_vlan));
1133 1.29 dyoung }
1134 1.29 dyoung
1135 1.63.2.1 phil /* XXX m_copydata may be too slow for fast path */
1136 1.29 dyoung #ifdef INET
1137 1.63.2.1 phil if (eh && eh->ether_type == htons(ETHERTYPE_IP)) {
1138 1.63.2.1 phil uint8_t tos;
1139 1.63.2.1 phil /*
1140 1.63.2.1 phil * IP frame, map the DSCP bits from the TOS field.
1141 1.63.2.1 phil */
1142 1.63.2.1 phil /* NB: ip header may not be in first mbuf */
1143 1.63.2.1 phil m_copydata(m, sizeof(struct ether_header) +
1144 1.63.2.1 phil offsetof(struct ip, ip_tos), sizeof(tos), &tos);
1145 1.63.2.1 phil tos >>= 5; /* NB: ECN + low 3 bits of DSCP */
1146 1.63.2.1 phil d_wme_ac = TID_TO_WME_AC(tos);
1147 1.29 dyoung } else {
1148 1.29 dyoung #endif /* INET */
1149 1.63.2.1 phil #ifdef INET6
1150 1.63.2.1 phil if (eh && eh->ether_type == htons(ETHERTYPE_IPV6)) {
1151 1.63.2.1 phil uint32_t flow;
1152 1.63.2.1 phil uint8_t tos;
1153 1.63.2.1 phil /*
1154 1.63.2.1 phil * IPv6 frame, map the DSCP bits from the traffic class field.
1155 1.63.2.1 phil */
1156 1.63.2.1 phil m_copydata(m, sizeof(struct ether_header) +
1157 1.63.2.1 phil offsetof(struct ip6_hdr, ip6_flow), sizeof(flow),
1158 1.63.2.1 phil (caddr_t) &flow);
1159 1.63.2.1 phil tos = (uint8_t)(ntohl(flow) >> 20);
1160 1.63.2.1 phil tos >>= 5; /* NB: ECN + low 3 bits of DSCP */
1161 1.63.2.1 phil d_wme_ac = TID_TO_WME_AC(tos);
1162 1.63.2.1 phil } else {
1163 1.63.2.1 phil #endif /* INET6 */
1164 1.29 dyoung d_wme_ac = WME_AC_BE;
1165 1.63.2.1 phil #ifdef INET6
1166 1.63.2.1 phil }
1167 1.63.2.1 phil #endif
1168 1.29 dyoung #ifdef INET
1169 1.29 dyoung }
1170 1.29 dyoung #endif
1171 1.29 dyoung /*
1172 1.29 dyoung * Use highest priority AC.
1173 1.29 dyoung */
1174 1.29 dyoung if (v_wme_ac > d_wme_ac)
1175 1.29 dyoung ac = v_wme_ac;
1176 1.29 dyoung else
1177 1.29 dyoung ac = d_wme_ac;
1178 1.29 dyoung
1179 1.29 dyoung /*
1180 1.29 dyoung * Apply ACM policy.
1181 1.29 dyoung */
1182 1.63.2.1 phil if (ni->ni_vap->iv_opmode == IEEE80211_M_STA) {
1183 1.29 dyoung static const int acmap[4] = {
1184 1.29 dyoung WME_AC_BK, /* WME_AC_BE */
1185 1.29 dyoung WME_AC_BK, /* WME_AC_BK */
1186 1.29 dyoung WME_AC_BE, /* WME_AC_VI */
1187 1.29 dyoung WME_AC_VI, /* WME_AC_VO */
1188 1.29 dyoung };
1189 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
1190 1.63.2.1 phil
1191 1.29 dyoung while (ac != WME_AC_BK &&
1192 1.29 dyoung ic->ic_wme.wme_wmeBssChanParams.cap_wmeParams[ac].wmep_acm)
1193 1.29 dyoung ac = acmap[ac];
1194 1.29 dyoung }
1195 1.29 dyoung done:
1196 1.29 dyoung M_WME_SETAC(m, ac);
1197 1.29 dyoung return 0;
1198 1.29 dyoung }
1199 1.29 dyoung
1200 1.29 dyoung /*
1201 1.29 dyoung * Insure there is sufficient contiguous space to encapsulate the
1202 1.29 dyoung * 802.11 data frame. If room isn't already there, arrange for it.
1203 1.29 dyoung * Drivers and cipher modules assume we have done the necessary work
1204 1.29 dyoung * and fail rudely if they don't find the space they need.
1205 1.29 dyoung */
1206 1.63.2.1 phil struct mbuf *
1207 1.63.2.1 phil ieee80211_mbuf_adjust(struct ieee80211vap *vap, int hdrsize,
1208 1.29 dyoung struct ieee80211_key *key, struct mbuf *m)
1209 1.29 dyoung {
1210 1.29 dyoung #define TO_BE_RECLAIMED (sizeof(struct ether_header) - sizeof(struct llc))
1211 1.63.2.1 phil int needed_space = vap->iv_ic->ic_headroom + hdrsize;
1212 1.29 dyoung
1213 1.29 dyoung if (key != NULL) {
1214 1.29 dyoung /* XXX belongs in crypto code? */
1215 1.29 dyoung needed_space += key->wk_cipher->ic_header;
1216 1.29 dyoung /* XXX frags */
1217 1.63.2.1 phil /*
1218 1.63.2.1 phil * When crypto is being done in the host we must insure
1219 1.63.2.1 phil * the data are writable for the cipher routines; clone
1220 1.63.2.1 phil * a writable mbuf chain.
1221 1.63.2.1 phil * XXX handle SWMIC specially
1222 1.63.2.1 phil */
1223 1.63.2.1 phil if (key->wk_flags & (IEEE80211_KEY_SWENCRYPT|IEEE80211_KEY_SWENMIC)) {
1224 1.63.2.1 phil m = m_unshare(m, M_NOWAIT);
1225 1.63.2.1 phil if (m == NULL) {
1226 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
1227 1.63.2.1 phil "%s: cannot get writable mbuf\n", __func__);
1228 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++; /* XXX new stat */
1229 1.63.2.1 phil return NULL;
1230 1.63.2.1 phil }
1231 1.63.2.1 phil }
1232 1.29 dyoung }
1233 1.29 dyoung /*
1234 1.29 dyoung * We know we are called just before stripping an Ethernet
1235 1.29 dyoung * header and prepending an LLC header. This means we know
1236 1.29 dyoung * there will be
1237 1.29 dyoung * sizeof(struct ether_header) - sizeof(struct llc)
1238 1.29 dyoung * bytes recovered to which we need additional space for the
1239 1.29 dyoung * 802.11 header and any crypto header.
1240 1.29 dyoung */
1241 1.29 dyoung /* XXX check trailing space and copy instead? */
1242 1.29 dyoung if (M_LEADINGSPACE(m) < needed_space - TO_BE_RECLAIMED) {
1243 1.29 dyoung struct mbuf *n = m_gethdr(M_NOWAIT, m->m_type);
1244 1.29 dyoung if (n == NULL) {
1245 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_OUTPUT,
1246 1.63.2.1 phil "%s: cannot expand storage\n", __func__);
1247 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
1248 1.29 dyoung m_freem(m);
1249 1.29 dyoung return NULL;
1250 1.29 dyoung }
1251 1.63.2.1 phil KASSERT(needed_space <= MHLEN,
1252 1.63.2.1 phil ("not enough room, need %u got %d\n", needed_space, MHLEN));
1253 1.29 dyoung /*
1254 1.29 dyoung * Setup new mbuf to have leading space to prepend the
1255 1.29 dyoung * 802.11 header and any crypto header bits that are
1256 1.29 dyoung * required (the latter are added when the driver calls
1257 1.29 dyoung * back to ieee80211_crypto_encap to do crypto encapsulation).
1258 1.29 dyoung */
1259 1.63.2.1 phil /* NB: must be first 'cuz it clobbers m_data */
1260 1.63.2.1 phil m_move_pkthdr(n, m);
1261 1.63.2.1 phil n->m_len = 0; /* NB: m_gethdr does not set */
1262 1.29 dyoung n->m_data += needed_space;
1263 1.29 dyoung /*
1264 1.29 dyoung * Pull up Ethernet header to create the expected layout.
1265 1.29 dyoung * We could use m_pullup but that's overkill (i.e. we don't
1266 1.29 dyoung * need the actual data) and it cannot fail so do it inline
1267 1.29 dyoung * for speed.
1268 1.29 dyoung */
1269 1.63.2.1 phil /* NB: struct ether_header is known to be contiguous */
1270 1.29 dyoung n->m_len += sizeof(struct ether_header);
1271 1.29 dyoung m->m_len -= sizeof(struct ether_header);
1272 1.29 dyoung m->m_data += sizeof(struct ether_header);
1273 1.29 dyoung /*
1274 1.29 dyoung * Replace the head of the chain.
1275 1.29 dyoung */
1276 1.29 dyoung n->m_next = m;
1277 1.29 dyoung m = n;
1278 1.34 skrll }
1279 1.29 dyoung return m;
1280 1.29 dyoung #undef TO_BE_RECLAIMED
1281 1.29 dyoung }
1282 1.29 dyoung
1283 1.29 dyoung /*
1284 1.29 dyoung * Return the transmit key to use in sending a unicast frame.
1285 1.29 dyoung * If a unicast key is set we use that. When no unicast key is set
1286 1.29 dyoung * we fall back to the default transmit key.
1287 1.29 dyoung */
1288 1.29 dyoung static __inline struct ieee80211_key *
1289 1.63.2.1 phil ieee80211_crypto_getucastkey(struct ieee80211vap *vap,
1290 1.63.2.1 phil struct ieee80211_node *ni)
1291 1.29 dyoung {
1292 1.63.2.1 phil if (IEEE80211_KEY_UNDEFINED(&ni->ni_ucastkey)) {
1293 1.63.2.1 phil if (vap->iv_def_txkey == IEEE80211_KEYIX_NONE ||
1294 1.63.2.1 phil IEEE80211_KEY_UNDEFINED(&vap->iv_nw_keys[vap->iv_def_txkey]))
1295 1.29 dyoung return NULL;
1296 1.63.2.1 phil return &vap->iv_nw_keys[vap->iv_def_txkey];
1297 1.29 dyoung } else {
1298 1.29 dyoung return &ni->ni_ucastkey;
1299 1.29 dyoung }
1300 1.29 dyoung }
1301 1.29 dyoung
1302 1.29 dyoung /*
1303 1.29 dyoung * Return the transmit key to use in sending a multicast frame.
1304 1.29 dyoung * Multicast traffic always uses the group key which is installed as
1305 1.29 dyoung * the default tx key.
1306 1.29 dyoung */
1307 1.29 dyoung static __inline struct ieee80211_key *
1308 1.63.2.1 phil ieee80211_crypto_getmcastkey(struct ieee80211vap *vap,
1309 1.63.2.1 phil struct ieee80211_node *ni)
1310 1.29 dyoung {
1311 1.63.2.1 phil if (vap->iv_def_txkey == IEEE80211_KEYIX_NONE ||
1312 1.63.2.1 phil IEEE80211_KEY_UNDEFINED(&vap->iv_nw_keys[vap->iv_def_txkey]))
1313 1.29 dyoung return NULL;
1314 1.63.2.1 phil return &vap->iv_nw_keys[vap->iv_def_txkey];
1315 1.29 dyoung }
1316 1.29 dyoung
1317 1.29 dyoung /*
1318 1.29 dyoung * Encapsulate an outbound data frame. The mbuf chain is updated.
1319 1.29 dyoung * If an error is encountered NULL is returned. The caller is required
1320 1.29 dyoung * to provide a node reference and pullup the ethernet header in the
1321 1.29 dyoung * first mbuf.
1322 1.63.2.1 phil *
1323 1.63.2.1 phil * NB: Packet is assumed to be processed by ieee80211_classify which
1324 1.63.2.1 phil * marked EAPOL frames w/ M_EAPOL.
1325 1.1 dyoung */
1326 1.1 dyoung struct mbuf *
1327 1.63.2.1 phil ieee80211_encap(struct ieee80211vap *vap, struct ieee80211_node *ni,
1328 1.63.2.1 phil struct mbuf *m)
1329 1.1 dyoung {
1330 1.63.2.1 phil #define WH4(wh) ((struct ieee80211_frame_addr4 *)(wh))
1331 1.63.2.1 phil #define MC01(mc) ((struct ieee80211_meshcntl_ae01 *)mc)
1332 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
1333 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
1334 1.63.2.1 phil struct ieee80211_mesh_state *ms = vap->iv_mesh;
1335 1.63.2.1 phil struct ieee80211_meshcntl_ae10 *mc;
1336 1.63.2.1 phil struct ieee80211_mesh_route *rt = NULL;
1337 1.63.2.1 phil int dir = -1;
1338 1.63.2.1 phil #endif
1339 1.1 dyoung struct ether_header eh;
1340 1.1 dyoung struct ieee80211_frame *wh;
1341 1.29 dyoung struct ieee80211_key *key;
1342 1.1 dyoung struct llc *llc;
1343 1.63.2.1 phil int hdrsize, hdrspace, datalen, addqos, txfrag, is4addr, is_mcast;
1344 1.63.2.1 phil ieee80211_seq seqno;
1345 1.63.2.1 phil int meshhdrsize, meshae;
1346 1.63.2.1 phil uint8_t *qos;
1347 1.63.2.1 phil int is_amsdu = 0;
1348 1.63.2.1 phil
1349 1.63.2.1 phil IEEE80211_TX_LOCK_ASSERT(ic);
1350 1.63.2.1 phil
1351 1.63.2.1 phil is_mcast = !! (m->m_flags & (M_MCAST | M_BCAST));
1352 1.1 dyoung
1353 1.63.2.1 phil /*
1354 1.63.2.1 phil * Copy existing Ethernet header to a safe place. The
1355 1.63.2.1 phil * rest of the code assumes it's ok to strip it when
1356 1.63.2.1 phil * reorganizing state for the final encapsulation.
1357 1.63.2.1 phil */
1358 1.63.2.1 phil KASSERT(m->m_len >= sizeof(eh), ("no ethernet header!"));
1359 1.63.2.1 phil ETHER_HEADER_COPY(&eh, mtod(m, caddr_t));
1360 1.1 dyoung
1361 1.29 dyoung /*
1362 1.29 dyoung * Insure space for additional headers. First identify
1363 1.29 dyoung * transmit key to use in calculating any buffer adjustments
1364 1.29 dyoung * required. This is also used below to do privacy
1365 1.29 dyoung * encapsulation work. Then calculate the 802.11 header
1366 1.29 dyoung * size and any padding required by the driver.
1367 1.29 dyoung *
1368 1.29 dyoung * Note key may be NULL if we fall back to the default
1369 1.29 dyoung * transmit key and that is not set. In that case the
1370 1.29 dyoung * buffer may not be expanded as needed by the cipher
1371 1.29 dyoung * routines, but they will/should discard it.
1372 1.29 dyoung */
1373 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_PRIVACY) {
1374 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_STA ||
1375 1.63.2.1 phil !IEEE80211_IS_MULTICAST(eh.ether_dhost) ||
1376 1.63.2.1 phil (vap->iv_opmode == IEEE80211_M_WDS &&
1377 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_WDSLEGACY)))
1378 1.63.2.1 phil key = ieee80211_crypto_getucastkey(vap, ni);
1379 1.63.2.1 phil else
1380 1.63.2.1 phil key = ieee80211_crypto_getmcastkey(vap, ni);
1381 1.63.2.1 phil if (key == NULL && (m->m_flags & M_EAPOL) == 0) {
1382 1.63.2.1 phil IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_CRYPTO,
1383 1.63.2.1 phil eh.ether_dhost,
1384 1.63.2.1 phil "no default transmit key (%s) deftxkey %u",
1385 1.63.2.1 phil __func__, vap->iv_def_txkey);
1386 1.63.2.1 phil vap->iv_stats.is_tx_nodefkey++;
1387 1.63.2.1 phil goto bad;
1388 1.29 dyoung }
1389 1.63.2.1 phil } else
1390 1.29 dyoung key = NULL;
1391 1.29 dyoung /*
1392 1.29 dyoung * XXX Some ap's don't handle QoS-encapsulated EAPOL
1393 1.29 dyoung * frames so suppress use. This may be an issue if other
1394 1.29 dyoung * ap's require all data frames to be QoS-encapsulated
1395 1.29 dyoung * once negotiated in which case we'll need to make this
1396 1.29 dyoung * configurable.
1397 1.63.2.1 phil *
1398 1.63.2.1 phil * Don't send multicast QoS frames.
1399 1.63.2.1 phil * Technically multicast frames can be QoS if all stations in the
1400 1.63.2.1 phil * BSS are also QoS.
1401 1.63.2.1 phil *
1402 1.63.2.1 phil * NB: mesh data frames are QoS, including multicast frames.
1403 1.29 dyoung */
1404 1.63.2.1 phil addqos =
1405 1.63.2.1 phil (((is_mcast == 0) && (ni->ni_flags &
1406 1.63.2.1 phil (IEEE80211_NODE_QOS|IEEE80211_NODE_HT))) ||
1407 1.63.2.1 phil (vap->iv_opmode == IEEE80211_M_MBSS)) &&
1408 1.63.2.1 phil (m->m_flags & M_EAPOL) == 0;
1409 1.63.2.1 phil
1410 1.29 dyoung if (addqos)
1411 1.29 dyoung hdrsize = sizeof(struct ieee80211_qosframe);
1412 1.29 dyoung else
1413 1.29 dyoung hdrsize = sizeof(struct ieee80211_frame);
1414 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
1415 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS) {
1416 1.63.2.1 phil /*
1417 1.63.2.1 phil * Mesh data frames are encapsulated according to the
1418 1.63.2.1 phil * rules of Section 11B.8.5 (p.139 of D3.0 spec).
1419 1.63.2.1 phil * o Group Addressed data (aka multicast) originating
1420 1.63.2.1 phil * at the local sta are sent w/ 3-address format and
1421 1.63.2.1 phil * address extension mode 00
1422 1.63.2.1 phil * o Individually Addressed data (aka unicast) originating
1423 1.63.2.1 phil * at the local sta are sent w/ 4-address format and
1424 1.63.2.1 phil * address extension mode 00
1425 1.63.2.1 phil * o Group Addressed data forwarded from a non-mesh sta are
1426 1.63.2.1 phil * sent w/ 3-address format and address extension mode 01
1427 1.63.2.1 phil * o Individually Address data from another sta are sent
1428 1.63.2.1 phil * w/ 4-address format and address extension mode 10
1429 1.63.2.1 phil */
1430 1.63.2.1 phil is4addr = 0; /* NB: don't use, disable */
1431 1.63.2.1 phil if (!IEEE80211_IS_MULTICAST(eh.ether_dhost)) {
1432 1.63.2.1 phil rt = ieee80211_mesh_rt_find(vap, eh.ether_dhost);
1433 1.63.2.1 phil KASSERT(rt != NULL, ("route is NULL"));
1434 1.63.2.1 phil dir = IEEE80211_FC1_DIR_DSTODS;
1435 1.63.2.1 phil hdrsize += IEEE80211_ADDR_LEN;
1436 1.63.2.1 phil if (rt->rt_flags & IEEE80211_MESHRT_FLAGS_PROXY) {
1437 1.63.2.1 phil if (IEEE80211_ADDR_EQ(rt->rt_mesh_gate,
1438 1.63.2.1 phil vap->iv_myaddr)) {
1439 1.63.2.1 phil IEEE80211_NOTE_MAC(vap,
1440 1.63.2.1 phil IEEE80211_MSG_MESH,
1441 1.63.2.1 phil eh.ether_dhost,
1442 1.63.2.1 phil "%s", "trying to send to ourself");
1443 1.63.2.1 phil goto bad;
1444 1.63.2.1 phil }
1445 1.63.2.1 phil meshae = IEEE80211_MESH_AE_10;
1446 1.63.2.1 phil meshhdrsize =
1447 1.63.2.1 phil sizeof(struct ieee80211_meshcntl_ae10);
1448 1.63.2.1 phil } else {
1449 1.63.2.1 phil meshae = IEEE80211_MESH_AE_00;
1450 1.63.2.1 phil meshhdrsize =
1451 1.63.2.1 phil sizeof(struct ieee80211_meshcntl);
1452 1.63.2.1 phil }
1453 1.63.2.1 phil } else {
1454 1.63.2.1 phil dir = IEEE80211_FC1_DIR_FROMDS;
1455 1.63.2.1 phil if (!IEEE80211_ADDR_EQ(eh.ether_shost, vap->iv_myaddr)) {
1456 1.63.2.1 phil /* proxy group */
1457 1.63.2.1 phil meshae = IEEE80211_MESH_AE_01;
1458 1.63.2.1 phil meshhdrsize =
1459 1.63.2.1 phil sizeof(struct ieee80211_meshcntl_ae01);
1460 1.63.2.1 phil } else {
1461 1.63.2.1 phil /* group */
1462 1.63.2.1 phil meshae = IEEE80211_MESH_AE_00;
1463 1.63.2.1 phil meshhdrsize = sizeof(struct ieee80211_meshcntl);
1464 1.63.2.1 phil }
1465 1.63.2.1 phil }
1466 1.63.2.1 phil } else {
1467 1.63.2.1 phil #endif
1468 1.63.2.1 phil /*
1469 1.63.2.1 phil * 4-address frames need to be generated for:
1470 1.63.2.1 phil * o packets sent through a WDS vap (IEEE80211_M_WDS)
1471 1.63.2.1 phil * o packets sent through a vap marked for relaying
1472 1.63.2.1 phil * (e.g. a station operating with dynamic WDS)
1473 1.63.2.1 phil */
1474 1.63.2.1 phil is4addr = vap->iv_opmode == IEEE80211_M_WDS ||
1475 1.63.2.1 phil ((vap->iv_flags_ext & IEEE80211_FEXT_4ADDR) &&
1476 1.63.2.1 phil !IEEE80211_ADDR_EQ(eh.ether_shost, vap->iv_myaddr));
1477 1.63.2.1 phil if (is4addr)
1478 1.63.2.1 phil hdrsize += IEEE80211_ADDR_LEN;
1479 1.63.2.1 phil meshhdrsize = meshae = 0;
1480 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
1481 1.63.2.1 phil }
1482 1.63.2.1 phil #endif
1483 1.63.2.1 phil /*
1484 1.63.2.1 phil * Honor driver DATAPAD requirement.
1485 1.63.2.1 phil */
1486 1.29 dyoung if (ic->ic_flags & IEEE80211_F_DATAPAD)
1487 1.63.2.1 phil hdrspace = roundup(hdrsize, sizeof(uint32_t));
1488 1.63.2.1 phil else
1489 1.63.2.1 phil hdrspace = hdrsize;
1490 1.60 maxv
1491 1.63.2.1 phil if (__predict_true((m->m_flags & M_FF) == 0)) {
1492 1.63.2.1 phil /*
1493 1.63.2.1 phil * Normal frame.
1494 1.63.2.1 phil */
1495 1.63.2.1 phil m = ieee80211_mbuf_adjust(vap, hdrspace + meshhdrsize, key, m);
1496 1.63.2.1 phil if (m == NULL) {
1497 1.63.2.1 phil /* NB: ieee80211_mbuf_adjust handles msgs+statistics */
1498 1.63.2.1 phil goto bad;
1499 1.63.2.1 phil }
1500 1.63.2.1 phil /* NB: this could be optimized 'cuz of ieee80211_mbuf_adjust */
1501 1.63.2.1 phil m_adj(m, sizeof(struct ether_header) - sizeof(struct llc));
1502 1.63.2.1 phil llc = mtod(m, struct llc *);
1503 1.63.2.1 phil llc->llc_dsap = llc->llc_ssap = LLC_SNAP_LSAP;
1504 1.63.2.1 phil llc->llc_control = LLC_UI;
1505 1.63.2.1 phil llc->llc_snap.org_code[0] = 0;
1506 1.63.2.1 phil llc->llc_snap.org_code[1] = 0;
1507 1.63.2.1 phil llc->llc_snap.org_code[2] = 0;
1508 1.63.2.1 phil llc->llc_snap.ether_type = eh.ether_type;
1509 1.63.2.1 phil } else {
1510 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
1511 1.63.2.1 phil /*
1512 1.63.2.1 phil * Aggregated frame. Check if it's for AMSDU or FF.
1513 1.63.2.1 phil *
1514 1.63.2.1 phil * XXX TODO: IEEE80211_NODE_AMSDU* isn't implemented
1515 1.63.2.1 phil * anywhere for some reason. But, since 11n requires
1516 1.63.2.1 phil * AMSDU RX, we can just assume "11n" == "AMSDU".
1517 1.63.2.1 phil */
1518 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG, "%s: called; M_FF\n", __func__);
1519 1.63.2.1 phil if (ieee80211_amsdu_tx_ok(ni)) {
1520 1.63.2.1 phil m = ieee80211_amsdu_encap(vap, m, hdrspace + meshhdrsize, key);
1521 1.63.2.1 phil is_amsdu = 1;
1522 1.63.2.1 phil } else {
1523 1.63.2.1 phil m = ieee80211_ff_encap(vap, m, hdrspace + meshhdrsize, key);
1524 1.63.2.1 phil }
1525 1.63.2.1 phil if (m == NULL)
1526 1.63.2.1 phil #endif
1527 1.63.2.1 phil goto bad;
1528 1.12 dyoung }
1529 1.29 dyoung datalen = m->m_pkthdr.len; /* NB: w/o 802.11 header */
1530 1.29 dyoung
1531 1.63.2.1 phil M_PREPEND(m, hdrspace + meshhdrsize, M_NOWAIT);
1532 1.10 dyoung if (m == NULL) {
1533 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
1534 1.1 dyoung goto bad;
1535 1.10 dyoung }
1536 1.1 dyoung wh = mtod(m, struct ieee80211_frame *);
1537 1.1 dyoung wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_DATA;
1538 1.63.2.1 phil *(uint16_t *)wh->i_dur = 0;
1539 1.63.2.1 phil qos = NULL; /* NB: quiet compiler */
1540 1.63.2.1 phil if (is4addr) {
1541 1.63.2.1 phil wh->i_fc[1] = IEEE80211_FC1_DIR_DSTODS;
1542 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1, ni->ni_macaddr);
1543 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
1544 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, eh.ether_dhost);
1545 1.63.2.1 phil IEEE80211_ADDR_COPY(WH4(wh)->i_addr4, eh.ether_shost);
1546 1.63.2.1 phil } else switch (vap->iv_opmode) {
1547 1.1 dyoung case IEEE80211_M_STA:
1548 1.1 dyoung wh->i_fc[1] = IEEE80211_FC1_DIR_TODS;
1549 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr1, ni->ni_bssid);
1550 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr2, eh.ether_shost);
1551 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr3, eh.ether_dhost);
1552 1.1 dyoung break;
1553 1.1 dyoung case IEEE80211_M_IBSS:
1554 1.1 dyoung case IEEE80211_M_AHDEMO:
1555 1.1 dyoung wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
1556 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr1, eh.ether_dhost);
1557 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr2, eh.ether_shost);
1558 1.29 dyoung /*
1559 1.63.2.1 phil * NB: always use the bssid from iv_bss as the
1560 1.29 dyoung * neighbor's may be stale after an ibss merge
1561 1.29 dyoung */
1562 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, vap->iv_bss->ni_bssid);
1563 1.1 dyoung break;
1564 1.1 dyoung case IEEE80211_M_HOSTAP:
1565 1.1 dyoung wh->i_fc[1] = IEEE80211_FC1_DIR_FROMDS;
1566 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr1, eh.ether_dhost);
1567 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr2, ni->ni_bssid);
1568 1.1 dyoung IEEE80211_ADDR_COPY(wh->i_addr3, eh.ether_shost);
1569 1.1 dyoung break;
1570 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
1571 1.63.2.1 phil case IEEE80211_M_MBSS:
1572 1.63.2.1 phil /* NB: offset by hdrspace to deal with DATAPAD */
1573 1.63.2.1 phil mc = (struct ieee80211_meshcntl_ae10 *)
1574 1.63.2.1 phil (mtod(m, uint8_t *) + hdrspace);
1575 1.63.2.1 phil wh->i_fc[1] = dir;
1576 1.63.2.1 phil switch (meshae) {
1577 1.63.2.1 phil case IEEE80211_MESH_AE_00: /* no proxy */
1578 1.63.2.1 phil mc->mc_flags = 0;
1579 1.63.2.1 phil if (dir == IEEE80211_FC1_DIR_DSTODS) { /* ucast */
1580 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1,
1581 1.63.2.1 phil ni->ni_macaddr);
1582 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2,
1583 1.63.2.1 phil vap->iv_myaddr);
1584 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3,
1585 1.63.2.1 phil eh.ether_dhost);
1586 1.63.2.1 phil IEEE80211_ADDR_COPY(WH4(wh)->i_addr4,
1587 1.63.2.1 phil eh.ether_shost);
1588 1.63.2.1 phil qos =((struct ieee80211_qosframe_addr4 *)
1589 1.63.2.1 phil wh)->i_qos;
1590 1.63.2.1 phil } else if (dir == IEEE80211_FC1_DIR_FROMDS) {
1591 1.63.2.1 phil /* mcast */
1592 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1,
1593 1.63.2.1 phil eh.ether_dhost);
1594 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2,
1595 1.63.2.1 phil vap->iv_myaddr);
1596 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3,
1597 1.63.2.1 phil eh.ether_shost);
1598 1.63.2.1 phil qos = ((struct ieee80211_qosframe *)
1599 1.63.2.1 phil wh)->i_qos;
1600 1.63.2.1 phil }
1601 1.63.2.1 phil break;
1602 1.63.2.1 phil case IEEE80211_MESH_AE_01: /* mcast, proxy */
1603 1.63.2.1 phil wh->i_fc[1] = IEEE80211_FC1_DIR_FROMDS;
1604 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1, eh.ether_dhost);
1605 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
1606 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, vap->iv_myaddr);
1607 1.63.2.1 phil mc->mc_flags = 1;
1608 1.63.2.1 phil IEEE80211_ADDR_COPY(MC01(mc)->mc_addr4,
1609 1.63.2.1 phil eh.ether_shost);
1610 1.63.2.1 phil qos = ((struct ieee80211_qosframe *) wh)->i_qos;
1611 1.63.2.1 phil break;
1612 1.63.2.1 phil case IEEE80211_MESH_AE_10: /* ucast, proxy */
1613 1.63.2.1 phil KASSERT(rt != NULL, ("route is NULL"));
1614 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr1, rt->rt_nexthop);
1615 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
1616 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr3, rt->rt_mesh_gate);
1617 1.63.2.1 phil IEEE80211_ADDR_COPY(WH4(wh)->i_addr4, vap->iv_myaddr);
1618 1.63.2.1 phil mc->mc_flags = IEEE80211_MESH_AE_10;
1619 1.63.2.1 phil IEEE80211_ADDR_COPY(mc->mc_addr5, eh.ether_dhost);
1620 1.63.2.1 phil IEEE80211_ADDR_COPY(mc->mc_addr6, eh.ether_shost);
1621 1.63.2.1 phil qos = ((struct ieee80211_qosframe_addr4 *) wh)->i_qos;
1622 1.63.2.1 phil break;
1623 1.63.2.1 phil default:
1624 1.63.2.1 phil KASSERT(0, ("meshae %d", meshae));
1625 1.63.2.1 phil break;
1626 1.63.2.1 phil }
1627 1.63.2.1 phil mc->mc_ttl = ms->ms_ttl;
1628 1.63.2.1 phil ms->ms_seq++;
1629 1.63.2.1 phil le32enc(mc->mc_seq, ms->ms_seq);
1630 1.63.2.1 phil break;
1631 1.63.2.1 phil #endif
1632 1.63.2.1 phil case IEEE80211_M_WDS: /* NB: is4addr should always be true */
1633 1.63.2.1 phil default:
1634 1.1 dyoung goto bad;
1635 1.1 dyoung }
1636 1.33 dyoung if (m->m_flags & M_MORE_DATA)
1637 1.33 dyoung wh->i_fc[1] |= IEEE80211_FC1_MORE_DATA;
1638 1.29 dyoung if (addqos) {
1639 1.29 dyoung int ac, tid;
1640 1.29 dyoung
1641 1.63.2.1 phil if (is4addr) {
1642 1.63.2.1 phil qos = ((struct ieee80211_qosframe_addr4 *) wh)->i_qos;
1643 1.63.2.1 phil /* NB: mesh case handled earlier */
1644 1.63.2.1 phil } else if (vap->iv_opmode != IEEE80211_M_MBSS)
1645 1.63.2.1 phil qos = ((struct ieee80211_qosframe *) wh)->i_qos;
1646 1.29 dyoung ac = M_WME_GETAC(m);
1647 1.29 dyoung /* map from access class/queue to 11e header priorty value */
1648 1.29 dyoung tid = WME_AC_TO_TID(ac);
1649 1.63.2.1 phil qos[0] = tid & IEEE80211_QOS_TID;
1650 1.29 dyoung if (ic->ic_wme.wme_wmeChanParams.cap_wmeParams[ac].wmep_noackPolicy)
1651 1.63.2.1 phil qos[0] |= IEEE80211_QOS_ACKPOLICY_NOACK;
1652 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
1653 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS)
1654 1.63.2.1 phil qos[1] = IEEE80211_QOS_MC;
1655 1.63.2.1 phil else
1656 1.63.2.1 phil #endif
1657 1.63.2.1 phil qos[1] = 0;
1658 1.63.2.1 phil wh->i_fc[0] |= IEEE80211_FC0_SUBTYPE_QOS;
1659 1.63.2.1 phil
1660 1.63.2.1 phil /*
1661 1.63.2.1 phil * If this is an A-MSDU then ensure we set the
1662 1.63.2.1 phil * relevant field.
1663 1.63.2.1 phil */
1664 1.63.2.1 phil if (is_amsdu)
1665 1.63.2.1 phil qos[0] |= IEEE80211_QOS_AMSDU;
1666 1.63.2.1 phil
1667 1.63.2.1 phil /*
1668 1.63.2.1 phil * XXX TODO TX lock is needed for atomic updates of sequence
1669 1.63.2.1 phil * numbers. If the driver does it, then don't do it here;
1670 1.63.2.1 phil * and we don't need the TX lock held.
1671 1.63.2.1 phil */
1672 1.63.2.1 phil if ((m->m_flags & M_AMPDU_MPDU) == 0) {
1673 1.63.2.1 phil /*
1674 1.63.2.1 phil * 802.11-2012 9.3.2.10 -
1675 1.63.2.1 phil *
1676 1.63.2.1 phil * If this is a multicast frame then we need
1677 1.63.2.1 phil * to ensure that the sequence number comes from
1678 1.63.2.1 phil * a separate seqno space and not the TID space.
1679 1.63.2.1 phil *
1680 1.63.2.1 phil * Otherwise multicast frames may actually cause
1681 1.63.2.1 phil * holes in the TX blockack window space and
1682 1.63.2.1 phil * upset various things.
1683 1.63.2.1 phil */
1684 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(wh->i_addr1))
1685 1.63.2.1 phil seqno = ni->ni_txseqs[IEEE80211_NONQOS_TID]++;
1686 1.63.2.1 phil else
1687 1.63.2.1 phil seqno = ni->ni_txseqs[tid]++;
1688 1.63.2.1 phil
1689 1.63.2.1 phil /*
1690 1.63.2.1 phil * NB: don't assign a sequence # to potential
1691 1.63.2.1 phil * aggregates; we expect this happens at the
1692 1.63.2.1 phil * point the frame comes off any aggregation q
1693 1.63.2.1 phil * as otherwise we may introduce holes in the
1694 1.63.2.1 phil * BA sequence space and/or make window accouting
1695 1.63.2.1 phil * more difficult.
1696 1.63.2.1 phil *
1697 1.63.2.1 phil * XXX may want to control this with a driver
1698 1.63.2.1 phil * capability; this may also change when we pull
1699 1.63.2.1 phil * aggregation up into net80211
1700 1.63.2.1 phil */
1701 1.63.2.1 phil seqno = ni->ni_txseqs[tid]++;
1702 1.63.2.1 phil *(uint16_t *)wh->i_seq =
1703 1.63.2.1 phil htole16(seqno << IEEE80211_SEQ_SEQ_SHIFT);
1704 1.63.2.1 phil M_SEQNO_SET(m, seqno);
1705 1.63.2.1 phil } else {
1706 1.63.2.1 phil /* NB: zero out i_seq field (for s/w encryption etc) */
1707 1.63.2.1 phil *(uint16_t *)wh->i_seq = 0;
1708 1.63.2.1 phil }
1709 1.29 dyoung } else {
1710 1.63.2.1 phil /*
1711 1.63.2.1 phil * XXX TODO TX lock is needed for atomic updates of sequence
1712 1.63.2.1 phil * numbers. If the driver does it, then don't do it here;
1713 1.63.2.1 phil * and we don't need the TX lock held.
1714 1.63.2.1 phil */
1715 1.63.2.1 phil seqno = ni->ni_txseqs[IEEE80211_NONQOS_TID]++;
1716 1.63.2.1 phil *(uint16_t *)wh->i_seq =
1717 1.63.2.1 phil htole16(seqno << IEEE80211_SEQ_SEQ_SHIFT);
1718 1.63.2.1 phil M_SEQNO_SET(m, seqno);
1719 1.63.2.1 phil
1720 1.63.2.1 phil /*
1721 1.63.2.1 phil * XXX TODO: we shouldn't allow EAPOL, etc that would
1722 1.63.2.1 phil * be forced to be non-QoS traffic to be A-MSDU encapsulated.
1723 1.63.2.1 phil */
1724 1.63.2.1 phil if (is_amsdu)
1725 1.63.2.1 phil printf("%s: XXX ERROR: is_amsdu set; not QoS!\n",
1726 1.63.2.1 phil __func__);
1727 1.29 dyoung }
1728 1.60 maxv
1729 1.63.2.1 phil /*
1730 1.63.2.1 phil * Check if xmit fragmentation is required.
1731 1.63.2.1 phil *
1732 1.63.2.1 phil * If the hardware does fragmentation offload, then don't bother
1733 1.63.2.1 phil * doing it here.
1734 1.63.2.1 phil */
1735 1.63.2.1 phil if (IEEE80211_CONF_FRAG_OFFLOAD(ic))
1736 1.63.2.1 phil txfrag = 0;
1737 1.63.2.1 phil else
1738 1.63.2.1 phil txfrag = (m->m_pkthdr.len > vap->iv_fragthreshold &&
1739 1.63.2.1 phil !IEEE80211_IS_MULTICAST(wh->i_addr1) &&
1740 1.63.2.1 phil (vap->iv_caps & IEEE80211_C_TXFRAG) &&
1741 1.63.2.1 phil (m->m_flags & (M_FF | M_AMPDU_MPDU)) == 0);
1742 1.60 maxv
1743 1.29 dyoung if (key != NULL) {
1744 1.29 dyoung /*
1745 1.29 dyoung * IEEE 802.1X: send EAPOL frames always in the clear.
1746 1.29 dyoung * WPA/WPA2: encrypt EAPOL keys when pairwise keys are set.
1747 1.29 dyoung */
1748 1.63.2.1 phil if ((m->m_flags & M_EAPOL) == 0 ||
1749 1.63.2.1 phil ((vap->iv_flags & IEEE80211_F_WPA) &&
1750 1.63.2.1 phil (vap->iv_opmode == IEEE80211_M_STA ?
1751 1.63.2.1 phil !IEEE80211_KEY_UNDEFINED(key) :
1752 1.63.2.1 phil !IEEE80211_KEY_UNDEFINED(&ni->ni_ucastkey)))) {
1753 1.63.2.1 phil wh->i_fc[1] |= IEEE80211_FC1_PROTECTED;
1754 1.63.2.1 phil if (!ieee80211_crypto_enmic(vap, key, m, txfrag)) {
1755 1.63.2.1 phil IEEE80211_NOTE_MAC(vap, IEEE80211_MSG_OUTPUT,
1756 1.63.2.1 phil eh.ether_dhost,
1757 1.63.2.1 phil "%s", "enmic failed, discard frame");
1758 1.63.2.1 phil vap->iv_stats.is_crypto_enmicfail++;
1759 1.29 dyoung goto bad;
1760 1.29 dyoung }
1761 1.29 dyoung }
1762 1.29 dyoung }
1763 1.63.2.1 phil if (txfrag && !ieee80211_fragment(vap, m, hdrsize,
1764 1.63.2.1 phil key != NULL ? key->wk_cipher->ic_header : 0, vap->iv_fragthreshold))
1765 1.46 dyoung goto bad;
1766 1.29 dyoung
1767 1.63.2.1 phil m->m_flags |= M_ENCAP; /* mark encapsulated */
1768 1.63.2.1 phil
1769 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_data);
1770 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(wh->i_addr1)) {
1771 1.63.2.1 phil IEEE80211_NODE_STAT(ni, tx_mcast);
1772 1.63.2.1 phil m->m_flags |= M_MCAST;
1773 1.63.2.1 phil } else
1774 1.63.2.1 phil IEEE80211_NODE_STAT(ni, tx_ucast);
1775 1.29 dyoung IEEE80211_NODE_STAT_ADD(ni, tx_bytes, datalen);
1776 1.29 dyoung
1777 1.1 dyoung return m;
1778 1.1 dyoung bad:
1779 1.1 dyoung if (m != NULL)
1780 1.1 dyoung m_freem(m);
1781 1.1 dyoung return NULL;
1782 1.63.2.1 phil #undef WH4
1783 1.63.2.1 phil #undef MC01
1784 1.1 dyoung }
1785 1.1 dyoung
1786 1.63.2.1 phil void
1787 1.63.2.1 phil ieee80211_free_mbuf(struct mbuf *m)
1788 1.18 dyoung {
1789 1.63.2.1 phil struct mbuf *next;
1790 1.18 dyoung
1791 1.63.2.1 phil if (m == NULL)
1792 1.63.2.1 phil return;
1793 1.19 dyoung
1794 1.63.2.1 phil do {
1795 1.63.2.1 phil next = m->m_nextpkt;
1796 1.63.2.1 phil m->m_nextpkt = NULL;
1797 1.63.2.1 phil m_freem(m);
1798 1.63.2.1 phil } while ((m = next) != NULL);
1799 1.18 dyoung }
1800 1.18 dyoung
1801 1.18 dyoung /*
1802 1.46 dyoung * Fragment the frame according to the specified mtu.
1803 1.46 dyoung * The size of the 802.11 header (w/o padding) is provided
1804 1.46 dyoung * so we don't need to recalculate it. We create a new
1805 1.46 dyoung * mbuf for each fragment and chain it through m_nextpkt;
1806 1.46 dyoung * we might be able to optimize this by reusing the original
1807 1.46 dyoung * packet's mbufs but that is significantly more complicated.
1808 1.46 dyoung */
1809 1.46 dyoung static int
1810 1.63.2.1 phil ieee80211_fragment(struct ieee80211vap *vap, struct mbuf *m0,
1811 1.46 dyoung u_int hdrsize, u_int ciphdrsize, u_int mtu)
1812 1.46 dyoung {
1813 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
1814 1.46 dyoung struct ieee80211_frame *wh, *whf;
1815 1.63.2.1 phil struct mbuf *m, *prev;
1816 1.63.2.1 phil u_int totalhdrsize, fragno, fragsize, off, remainder, payload;
1817 1.63.2.1 phil u_int hdrspace;
1818 1.46 dyoung
1819 1.63.2.1 phil KASSERT(m0->m_nextpkt == NULL, ("mbuf already chained?"));
1820 1.63.2.1 phil KASSERT(m0->m_pkthdr.len > mtu,
1821 1.46 dyoung ("pktlen %u mtu %u", m0->m_pkthdr.len, mtu));
1822 1.46 dyoung
1823 1.63.2.1 phil /*
1824 1.63.2.1 phil * Honor driver DATAPAD requirement.
1825 1.63.2.1 phil */
1826 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_DATAPAD)
1827 1.63.2.1 phil hdrspace = roundup(hdrsize, sizeof(uint32_t));
1828 1.63.2.1 phil else
1829 1.63.2.1 phil hdrspace = hdrsize;
1830 1.63.2.1 phil
1831 1.46 dyoung wh = mtod(m0, struct ieee80211_frame *);
1832 1.46 dyoung /* NB: mark the first frag; it will be propagated below */
1833 1.46 dyoung wh->i_fc[1] |= IEEE80211_FC1_MORE_FRAG;
1834 1.63.2.1 phil totalhdrsize = hdrspace + ciphdrsize;
1835 1.46 dyoung fragno = 1;
1836 1.46 dyoung off = mtu - ciphdrsize;
1837 1.46 dyoung remainder = m0->m_pkthdr.len - off;
1838 1.46 dyoung prev = m0;
1839 1.46 dyoung do {
1840 1.63.2.1 phil fragsize = MIN(totalhdrsize + remainder, mtu);
1841 1.63.2.1 phil m = m_get2(fragsize, M_NOWAIT, MT_DATA, M_PKTHDR);
1842 1.46 dyoung if (m == NULL)
1843 1.46 dyoung goto bad;
1844 1.46 dyoung /* leave room to prepend any cipher header */
1845 1.46 dyoung m_align(m, fragsize - ciphdrsize);
1846 1.46 dyoung
1847 1.46 dyoung /*
1848 1.46 dyoung * Form the header in the fragment. Note that since
1849 1.46 dyoung * we mark the first fragment with the MORE_FRAG bit
1850 1.46 dyoung * it automatically is propagated to each fragment; we
1851 1.46 dyoung * need only clear it on the last fragment (done below).
1852 1.63.2.1 phil * NB: frag 1+ dont have Mesh Control field present.
1853 1.46 dyoung */
1854 1.46 dyoung whf = mtod(m, struct ieee80211_frame *);
1855 1.46 dyoung memcpy(whf, wh, hdrsize);
1856 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
1857 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS) {
1858 1.63.2.1 phil if (IEEE80211_IS_DSTODS(wh))
1859 1.63.2.1 phil ((struct ieee80211_qosframe_addr4 *)
1860 1.63.2.1 phil whf)->i_qos[1] &= ~IEEE80211_QOS_MC;
1861 1.63.2.1 phil else
1862 1.63.2.1 phil ((struct ieee80211_qosframe *)
1863 1.63.2.1 phil whf)->i_qos[1] &= ~IEEE80211_QOS_MC;
1864 1.63.2.1 phil }
1865 1.63.2.1 phil #endif
1866 1.63.2.1 phil *(uint16_t *)&whf->i_seq[0] |= htole16(
1867 1.46 dyoung (fragno & IEEE80211_SEQ_FRAG_MASK) <<
1868 1.46 dyoung IEEE80211_SEQ_FRAG_SHIFT);
1869 1.46 dyoung fragno++;
1870 1.46 dyoung
1871 1.46 dyoung payload = fragsize - totalhdrsize;
1872 1.46 dyoung /* NB: destination is known to be contiguous */
1873 1.63.2.1 phil
1874 1.63.2.1 phil m_copydata(m0, off, payload, mtod(m, uint8_t *) + hdrspace);
1875 1.63.2.1 phil m->m_len = hdrspace + payload;
1876 1.63.2.1 phil m->m_pkthdr.len = hdrspace + payload;
1877 1.46 dyoung m->m_flags |= M_FRAG;
1878 1.46 dyoung
1879 1.46 dyoung /* chain up the fragment */
1880 1.46 dyoung prev->m_nextpkt = m;
1881 1.46 dyoung prev = m;
1882 1.46 dyoung
1883 1.46 dyoung /* deduct fragment just formed */
1884 1.46 dyoung remainder -= payload;
1885 1.46 dyoung off += payload;
1886 1.46 dyoung } while (remainder != 0);
1887 1.61 maxv
1888 1.63.2.1 phil /* set the last fragment */
1889 1.63.2.1 phil m->m_flags |= M_LASTFRAG;
1890 1.46 dyoung whf->i_fc[1] &= ~IEEE80211_FC1_MORE_FRAG;
1891 1.46 dyoung
1892 1.46 dyoung /* strip first mbuf now that everything has been copied */
1893 1.46 dyoung m_adj(m0, -(m0->m_pkthdr.len - (mtu - ciphdrsize)));
1894 1.46 dyoung m0->m_flags |= M_FIRSTFRAG | M_FRAG;
1895 1.46 dyoung
1896 1.63.2.1 phil vap->iv_stats.is_tx_fragframes++;
1897 1.63.2.1 phil vap->iv_stats.is_tx_frags += fragno-1;
1898 1.46 dyoung
1899 1.46 dyoung return 1;
1900 1.46 dyoung bad:
1901 1.46 dyoung /* reclaim fragments but leave original frame for caller to free */
1902 1.63.2.1 phil ieee80211_free_mbuf(m0->m_nextpkt);
1903 1.46 dyoung m0->m_nextpkt = NULL;
1904 1.46 dyoung return 0;
1905 1.46 dyoung }
1906 1.46 dyoung
1907 1.46 dyoung /*
1908 1.1 dyoung * Add a supported rates element id to a frame.
1909 1.1 dyoung */
1910 1.63.2.1 phil uint8_t *
1911 1.63.2.1 phil ieee80211_add_rates(uint8_t *frm, const struct ieee80211_rateset *rs)
1912 1.1 dyoung {
1913 1.1 dyoung int nrates;
1914 1.1 dyoung
1915 1.1 dyoung *frm++ = IEEE80211_ELEMID_RATES;
1916 1.1 dyoung nrates = rs->rs_nrates;
1917 1.1 dyoung if (nrates > IEEE80211_RATE_SIZE)
1918 1.1 dyoung nrates = IEEE80211_RATE_SIZE;
1919 1.1 dyoung *frm++ = nrates;
1920 1.1 dyoung memcpy(frm, rs->rs_rates, nrates);
1921 1.1 dyoung return frm + nrates;
1922 1.1 dyoung }
1923 1.1 dyoung
1924 1.1 dyoung /*
1925 1.1 dyoung * Add an extended supported rates element id to a frame.
1926 1.1 dyoung */
1927 1.63.2.1 phil uint8_t *
1928 1.63.2.1 phil ieee80211_add_xrates(uint8_t *frm, const struct ieee80211_rateset *rs)
1929 1.1 dyoung {
1930 1.1 dyoung /*
1931 1.1 dyoung * Add an extended supported rates element if operating in 11g mode.
1932 1.1 dyoung */
1933 1.1 dyoung if (rs->rs_nrates > IEEE80211_RATE_SIZE) {
1934 1.1 dyoung int nrates = rs->rs_nrates - IEEE80211_RATE_SIZE;
1935 1.1 dyoung *frm++ = IEEE80211_ELEMID_XRATES;
1936 1.1 dyoung *frm++ = nrates;
1937 1.1 dyoung memcpy(frm, rs->rs_rates + IEEE80211_RATE_SIZE, nrates);
1938 1.1 dyoung frm += nrates;
1939 1.1 dyoung }
1940 1.1 dyoung return frm;
1941 1.1 dyoung }
1942 1.1 dyoung
1943 1.29 dyoung /*
1944 1.63.2.1 phil * Add an ssid element to a frame.
1945 1.1 dyoung */
1946 1.63.2.1 phil uint8_t *
1947 1.63.2.1 phil ieee80211_add_ssid(uint8_t *frm, const uint8_t *ssid, u_int len)
1948 1.1 dyoung {
1949 1.1 dyoung *frm++ = IEEE80211_ELEMID_SSID;
1950 1.1 dyoung *frm++ = len;
1951 1.1 dyoung memcpy(frm, ssid, len);
1952 1.1 dyoung return frm + len;
1953 1.1 dyoung }
1954 1.1 dyoung
1955 1.29 dyoung /*
1956 1.29 dyoung * Add an erp element to a frame.
1957 1.29 dyoung */
1958 1.63.2.1 phil static uint8_t *
1959 1.63.2.1 phil ieee80211_add_erp(uint8_t *frm, struct ieee80211com *ic)
1960 1.29 dyoung {
1961 1.63.2.1 phil uint8_t erp;
1962 1.29 dyoung
1963 1.29 dyoung *frm++ = IEEE80211_ELEMID_ERP;
1964 1.29 dyoung *frm++ = 1;
1965 1.29 dyoung erp = 0;
1966 1.29 dyoung if (ic->ic_nonerpsta != 0)
1967 1.29 dyoung erp |= IEEE80211_ERP_NON_ERP_PRESENT;
1968 1.29 dyoung if (ic->ic_flags & IEEE80211_F_USEPROT)
1969 1.29 dyoung erp |= IEEE80211_ERP_USE_PROTECTION;
1970 1.29 dyoung if (ic->ic_flags & IEEE80211_F_USEBARKER)
1971 1.29 dyoung erp |= IEEE80211_ERP_LONG_PREAMBLE;
1972 1.29 dyoung *frm++ = erp;
1973 1.29 dyoung return frm;
1974 1.29 dyoung }
1975 1.29 dyoung
1976 1.63.2.1 phil /*
1977 1.63.2.1 phil * Add a CFParams element to a frame.
1978 1.63.2.1 phil */
1979 1.63.2.1 phil static uint8_t *
1980 1.63.2.1 phil ieee80211_add_cfparms(uint8_t *frm, struct ieee80211com *ic)
1981 1.29 dyoung {
1982 1.63.2.1 phil #define ADDSHORT(frm, v) do { \
1983 1.63.2.1 phil le16enc(frm, v); \
1984 1.63.2.1 phil frm += 2; \
1985 1.29 dyoung } while (0)
1986 1.63.2.1 phil *frm++ = IEEE80211_ELEMID_CFPARMS;
1987 1.63.2.1 phil *frm++ = 6;
1988 1.63.2.1 phil *frm++ = 0; /* CFP count */
1989 1.63.2.1 phil *frm++ = 2; /* CFP period */
1990 1.63.2.1 phil ADDSHORT(frm, 0); /* CFP MaxDuration (TU) */
1991 1.63.2.1 phil ADDSHORT(frm, 0); /* CFP CurRemaining (TU) */
1992 1.29 dyoung return frm;
1993 1.29 dyoung #undef ADDSHORT
1994 1.29 dyoung }
1995 1.29 dyoung
1996 1.63.2.1 phil static __inline uint8_t *
1997 1.63.2.1 phil add_appie(uint8_t *frm, const struct ieee80211_appie *ie)
1998 1.29 dyoung {
1999 1.63.2.1 phil memcpy(frm, ie->ie_data, ie->ie_len);
2000 1.63.2.1 phil return frm + ie->ie_len;
2001 1.63.2.1 phil }
2002 1.63.2.1 phil
2003 1.63.2.1 phil static __inline uint8_t *
2004 1.63.2.1 phil add_ie(uint8_t *frm, const uint8_t *ie)
2005 1.63.2.1 phil {
2006 1.63.2.1 phil memcpy(frm, ie, 2 + ie[1]);
2007 1.63.2.1 phil return frm + 2 + ie[1];
2008 1.63.2.1 phil }
2009 1.63.2.1 phil
2010 1.63.2.1 phil #define WME_OUI_BYTES 0x00, 0x50, 0xf2
2011 1.63.2.1 phil /*
2012 1.63.2.1 phil * Add a WME information element to a frame.
2013 1.63.2.1 phil */
2014 1.63.2.1 phil uint8_t *
2015 1.63.2.1 phil ieee80211_add_wme_info(uint8_t *frm, struct ieee80211_wme_state *wme)
2016 1.63.2.1 phil {
2017 1.63.2.1 phil static const struct ieee80211_wme_info info = {
2018 1.63.2.1 phil .wme_id = IEEE80211_ELEMID_VENDOR,
2019 1.63.2.1 phil .wme_len = sizeof(struct ieee80211_wme_info) - 2,
2020 1.63.2.1 phil .wme_oui = { WME_OUI_BYTES },
2021 1.63.2.1 phil .wme_type = WME_OUI_TYPE,
2022 1.63.2.1 phil .wme_subtype = WME_INFO_OUI_SUBTYPE,
2023 1.63.2.1 phil .wme_version = WME_VERSION,
2024 1.63.2.1 phil .wme_info = 0,
2025 1.63.2.1 phil };
2026 1.63.2.1 phil memcpy(frm, &info, sizeof(info));
2027 1.63.2.1 phil return frm + sizeof(info);
2028 1.63.2.1 phil }
2029 1.63.2.1 phil
2030 1.63.2.1 phil /*
2031 1.63.2.1 phil * Add a WME parameters element to a frame.
2032 1.63.2.1 phil */
2033 1.63.2.1 phil static uint8_t *
2034 1.63.2.1 phil ieee80211_add_wme_param(uint8_t *frm, struct ieee80211_wme_state *wme)
2035 1.63.2.1 phil {
2036 1.63.2.1 phil #define SM(_v, _f) (((_v) << _f##_S) & _f)
2037 1.63.2.1 phil #define ADDSHORT(frm, v) do { \
2038 1.63.2.1 phil le16enc(frm, v); \
2039 1.63.2.1 phil frm += 2; \
2040 1.29 dyoung } while (0)
2041 1.63.2.1 phil /* NB: this works 'cuz a param has an info at the front */
2042 1.63.2.1 phil static const struct ieee80211_wme_info param = {
2043 1.63.2.1 phil .wme_id = IEEE80211_ELEMID_VENDOR,
2044 1.63.2.1 phil .wme_len = sizeof(struct ieee80211_wme_param) - 2,
2045 1.63.2.1 phil .wme_oui = { WME_OUI_BYTES },
2046 1.63.2.1 phil .wme_type = WME_OUI_TYPE,
2047 1.63.2.1 phil .wme_subtype = WME_PARAM_OUI_SUBTYPE,
2048 1.63.2.1 phil .wme_version = WME_VERSION,
2049 1.29 dyoung };
2050 1.63.2.1 phil int i;
2051 1.29 dyoung
2052 1.63.2.1 phil memcpy(frm, ¶m, sizeof(param));
2053 1.63.2.1 phil frm += __offsetof(struct ieee80211_wme_info, wme_info);
2054 1.63.2.1 phil *frm++ = wme->wme_bssChanParams.cap_info; /* AC info */
2055 1.63.2.1 phil *frm++ = 0; /* reserved field */
2056 1.63.2.1 phil for (i = 0; i < WME_NUM_AC; i++) {
2057 1.63.2.1 phil const struct wmeParams *ac =
2058 1.63.2.1 phil &wme->wme_bssChanParams.cap_wmeParams[i];
2059 1.63.2.1 phil *frm++ = SM(i, WME_PARAM_ACI)
2060 1.63.2.1 phil | SM(ac->wmep_acm, WME_PARAM_ACM)
2061 1.63.2.1 phil | SM(ac->wmep_aifsn, WME_PARAM_AIFSN)
2062 1.63.2.1 phil ;
2063 1.63.2.1 phil *frm++ = SM(ac->wmep_logcwmax, WME_PARAM_LOGCWMAX)
2064 1.63.2.1 phil | SM(ac->wmep_logcwmin, WME_PARAM_LOGCWMIN)
2065 1.63.2.1 phil ;
2066 1.63.2.1 phil ADDSHORT(frm, ac->wmep_txopLimit);
2067 1.63.2.1 phil }
2068 1.29 dyoung return frm;
2069 1.63.2.1 phil #undef SM
2070 1.29 dyoung #undef ADDSHORT
2071 1.63.2.1 phil }
2072 1.63.2.1 phil #undef WME_OUI_BYTES
2073 1.63.2.1 phil
2074 1.63.2.1 phil /*
2075 1.63.2.1 phil * Add an 11h Power Constraint element to a frame.
2076 1.63.2.1 phil */
2077 1.63.2.1 phil static uint8_t *
2078 1.63.2.1 phil ieee80211_add_powerconstraint(uint8_t *frm, struct ieee80211vap *vap)
2079 1.63.2.1 phil {
2080 1.63.2.1 phil const struct ieee80211_channel *c = vap->iv_bss->ni_chan;
2081 1.63.2.1 phil /* XXX per-vap tx power limit? */
2082 1.63.2.1 phil int8_t limit = vap->iv_ic->ic_txpowlimit / 2;
2083 1.63.2.1 phil
2084 1.63.2.1 phil frm[0] = IEEE80211_ELEMID_PWRCNSTR;
2085 1.63.2.1 phil frm[1] = 1;
2086 1.63.2.1 phil frm[2] = c->ic_maxregpower > limit ? c->ic_maxregpower - limit : 0;
2087 1.63.2.1 phil return frm + 3;
2088 1.63.2.1 phil }
2089 1.63.2.1 phil
2090 1.63.2.1 phil /*
2091 1.63.2.1 phil * Add an 11h Power Capability element to a frame.
2092 1.63.2.1 phil */
2093 1.63.2.1 phil static uint8_t *
2094 1.63.2.1 phil ieee80211_add_powercapability(uint8_t *frm, const struct ieee80211_channel *c)
2095 1.63.2.1 phil {
2096 1.63.2.1 phil frm[0] = IEEE80211_ELEMID_PWRCAP;
2097 1.63.2.1 phil frm[1] = 2;
2098 1.63.2.1 phil frm[2] = c->ic_minpower;
2099 1.63.2.1 phil frm[3] = c->ic_maxpower;
2100 1.63.2.1 phil return frm + 4;
2101 1.63.2.1 phil }
2102 1.63.2.1 phil
2103 1.63.2.1 phil /*
2104 1.63.2.1 phil * Add an 11h Supported Channels element to a frame.
2105 1.63.2.1 phil */
2106 1.63.2.1 phil static uint8_t *
2107 1.63.2.1 phil ieee80211_add_supportedchannels(uint8_t *frm, struct ieee80211com *ic)
2108 1.63.2.1 phil {
2109 1.63.2.1 phil static const int ielen = 26;
2110 1.63.2.1 phil
2111 1.63.2.1 phil frm[0] = IEEE80211_ELEMID_SUPPCHAN;
2112 1.63.2.1 phil frm[1] = ielen;
2113 1.63.2.1 phil /* XXX not correct */
2114 1.63.2.1 phil memcpy(frm+2, ic->ic_chan_avail, ielen);
2115 1.63.2.1 phil return frm + 2 + ielen;
2116 1.63.2.1 phil }
2117 1.63.2.1 phil
2118 1.63.2.1 phil /*
2119 1.63.2.1 phil * Add an 11h Quiet time element to a frame.
2120 1.63.2.1 phil */
2121 1.63.2.1 phil static uint8_t *
2122 1.63.2.1 phil ieee80211_add_quiet(uint8_t *frm, struct ieee80211vap *vap, int update)
2123 1.63.2.1 phil {
2124 1.63.2.1 phil struct ieee80211_quiet_ie *quiet = (struct ieee80211_quiet_ie *) frm;
2125 1.63.2.1 phil
2126 1.63.2.1 phil quiet->quiet_ie = IEEE80211_ELEMID_QUIET;
2127 1.63.2.1 phil quiet->len = 6;
2128 1.63.2.1 phil
2129 1.63.2.1 phil /*
2130 1.63.2.1 phil * Only update every beacon interval - otherwise probe responses
2131 1.63.2.1 phil * would update the quiet count value.
2132 1.63.2.1 phil */
2133 1.63.2.1 phil if (update) {
2134 1.63.2.1 phil if (vap->iv_quiet_count_value == 1)
2135 1.63.2.1 phil vap->iv_quiet_count_value = vap->iv_quiet_count;
2136 1.63.2.1 phil else if (vap->iv_quiet_count_value > 1)
2137 1.63.2.1 phil vap->iv_quiet_count_value--;
2138 1.63.2.1 phil }
2139 1.63.2.1 phil
2140 1.63.2.1 phil if (vap->iv_quiet_count_value == 0) {
2141 1.63.2.1 phil /* value 0 is reserved as per 802.11h standerd */
2142 1.63.2.1 phil vap->iv_quiet_count_value = 1;
2143 1.63.2.1 phil }
2144 1.63.2.1 phil
2145 1.63.2.1 phil quiet->tbttcount = vap->iv_quiet_count_value;
2146 1.63.2.1 phil quiet->period = vap->iv_quiet_period;
2147 1.63.2.1 phil quiet->duration = htole16(vap->iv_quiet_duration);
2148 1.63.2.1 phil quiet->offset = htole16(vap->iv_quiet_offset);
2149 1.63.2.1 phil return frm + sizeof(*quiet);
2150 1.29 dyoung }
2151 1.29 dyoung
2152 1.29 dyoung /*
2153 1.63.2.1 phil * Add an 11h Channel Switch Announcement element to a frame.
2154 1.63.2.1 phil * Note that we use the per-vap CSA count to adjust the global
2155 1.63.2.1 phil * counter so we can use this routine to form probe response
2156 1.63.2.1 phil * frames and get the current count.
2157 1.29 dyoung */
2158 1.63.2.1 phil static uint8_t *
2159 1.63.2.1 phil ieee80211_add_csa(uint8_t *frm, struct ieee80211vap *vap)
2160 1.29 dyoung {
2161 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
2162 1.63.2.1 phil struct ieee80211_csa_ie *csa = (struct ieee80211_csa_ie *) frm;
2163 1.29 dyoung
2164 1.63.2.1 phil csa->csa_ie = IEEE80211_ELEMID_CSA;
2165 1.63.2.1 phil csa->csa_len = 3;
2166 1.63.2.1 phil csa->csa_mode = 1; /* XXX force quiet on channel */
2167 1.63.2.1 phil csa->csa_newchan = ieee80211_chan2ieee(ic, ic->ic_csa_newchan);
2168 1.63.2.1 phil csa->csa_count = ic->ic_csa_count - vap->iv_csa_count;
2169 1.63.2.1 phil return frm + sizeof(*csa);
2170 1.29 dyoung }
2171 1.29 dyoung
2172 1.29 dyoung /*
2173 1.63.2.1 phil * Add an 11h country information element to a frame.
2174 1.29 dyoung */
2175 1.63.2.1 phil static uint8_t *
2176 1.63.2.1 phil ieee80211_add_countryie(uint8_t *frm, struct ieee80211com *ic)
2177 1.1 dyoung {
2178 1.63.2.1 phil
2179 1.63.2.1 phil if (ic->ic_countryie == NULL ||
2180 1.63.2.1 phil ic->ic_countryie_chan != ic->ic_bsschan) {
2181 1.63.2.1 phil /*
2182 1.63.2.1 phil * Handle lazy construction of ie. This is done on
2183 1.63.2.1 phil * first use and after a channel change that requires
2184 1.63.2.1 phil * re-calculation.
2185 1.63.2.1 phil */
2186 1.63.2.1 phil if (ic->ic_countryie != NULL)
2187 1.63.2.1 phil IEEE80211_FREE(ic->ic_countryie, M_80211_NODE_IE);
2188 1.63.2.1 phil ic->ic_countryie = ieee80211_alloc_countryie(ic);
2189 1.63.2.1 phil if (ic->ic_countryie == NULL)
2190 1.63.2.1 phil return frm;
2191 1.63.2.1 phil ic->ic_countryie_chan = ic->ic_bsschan;
2192 1.63.2.1 phil }
2193 1.63.2.1 phil return add_appie(frm, ic->ic_countryie);
2194 1.29 dyoung }
2195 1.1 dyoung
2196 1.63.2.1 phil uint8_t *
2197 1.63.2.1 phil ieee80211_add_wpa(uint8_t *frm, const struct ieee80211vap *vap)
2198 1.29 dyoung {
2199 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_WPA1 && vap->iv_wpa_ie != NULL)
2200 1.63.2.1 phil return (add_ie(frm, vap->iv_wpa_ie));
2201 1.63.2.1 phil else {
2202 1.63.2.1 phil /* XXX else complain? */
2203 1.63.2.1 phil return (frm);
2204 1.63.2.1 phil }
2205 1.63.2.1 phil }
2206 1.29 dyoung
2207 1.63.2.1 phil uint8_t *
2208 1.63.2.1 phil ieee80211_add_rsn(uint8_t *frm, const struct ieee80211vap *vap)
2209 1.63.2.1 phil {
2210 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_WPA2 && vap->iv_rsn_ie != NULL)
2211 1.63.2.1 phil return (add_ie(frm, vap->iv_rsn_ie));
2212 1.63.2.1 phil else {
2213 1.63.2.1 phil /* XXX else complain? */
2214 1.63.2.1 phil return (frm);
2215 1.29 dyoung }
2216 1.63.2.1 phil }
2217 1.61 maxv
2218 1.63.2.1 phil uint8_t *
2219 1.63.2.1 phil ieee80211_add_qos(uint8_t *frm, const struct ieee80211_node *ni)
2220 1.63.2.1 phil {
2221 1.63.2.1 phil if (ni->ni_flags & IEEE80211_NODE_QOS) {
2222 1.63.2.1 phil *frm++ = IEEE80211_ELEMID_QOS;
2223 1.63.2.1 phil *frm++ = 1;
2224 1.63.2.1 phil *frm++ = 0;
2225 1.63.2.1 phil }
2226 1.63.2.1 phil
2227 1.63.2.1 phil return (frm);
2228 1.1 dyoung }
2229 1.1 dyoung
2230 1.1 dyoung /*
2231 1.39 skrll * Send a probe request frame with the specified ssid
2232 1.39 skrll * and any optional information element data.
2233 1.39 skrll */
2234 1.39 skrll int
2235 1.39 skrll ieee80211_send_probereq(struct ieee80211_node *ni,
2236 1.63.2.1 phil const uint8_t sa[IEEE80211_ADDR_LEN],
2237 1.63.2.1 phil const uint8_t da[IEEE80211_ADDR_LEN],
2238 1.63.2.1 phil const uint8_t bssid[IEEE80211_ADDR_LEN],
2239 1.63.2.1 phil const uint8_t *ssid, size_t ssidlen)
2240 1.39 skrll {
2241 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
2242 1.39 skrll struct ieee80211com *ic = ni->ni_ic;
2243 1.63.2.1 phil struct ieee80211_node *bss;
2244 1.63.2.1 phil const struct ieee80211_txparam *tp;
2245 1.63.2.1 phil struct ieee80211_bpf_params params;
2246 1.63.2.1 phil const struct ieee80211_rateset *rs;
2247 1.39 skrll struct mbuf *m;
2248 1.63.2.1 phil uint8_t *frm;
2249 1.63.2.1 phil int ret;
2250 1.63.2.1 phil
2251 1.63.2.1 phil bss = ieee80211_ref_node(vap->iv_bss);
2252 1.63.2.1 phil
2253 1.63.2.1 phil if (vap->iv_state == IEEE80211_S_CAC) {
2254 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT, ni,
2255 1.63.2.1 phil "block %s frame in CAC state", "probe request");
2256 1.63.2.1 phil vap->iv_stats.is_tx_badstate++;
2257 1.63.2.1 phil ieee80211_free_node(bss);
2258 1.63.2.1 phil return EIO; /* XXX */
2259 1.63.2.1 phil }
2260 1.39 skrll
2261 1.39 skrll /*
2262 1.39 skrll * Hold a reference on the node so it doesn't go away until after
2263 1.39 skrll * the xmit is complete all the way in the driver. On error we
2264 1.39 skrll * will remove our reference.
2265 1.39 skrll */
2266 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_NODE,
2267 1.39 skrll "ieee80211_ref_node (%s:%u) %p<%s> refcnt %d\n",
2268 1.39 skrll __func__, __LINE__,
2269 1.39 skrll ni, ether_sprintf(ni->ni_macaddr),
2270 1.39 skrll ieee80211_node_refcnt(ni)+1);
2271 1.39 skrll ieee80211_ref_node(ni);
2272 1.39 skrll
2273 1.39 skrll /*
2274 1.39 skrll * prreq frame format
2275 1.39 skrll * [tlv] ssid
2276 1.39 skrll * [tlv] supported rates
2277 1.63.2.1 phil * [tlv] RSN (optional)
2278 1.39 skrll * [tlv] extended supported rates
2279 1.63.2.1 phil * [tlv] HT cap (optional)
2280 1.63.2.1 phil * [tlv] VHT cap (optional)
2281 1.63.2.1 phil * [tlv] WPA (optional)
2282 1.39 skrll * [tlv] user-specified ie's
2283 1.39 skrll */
2284 1.39 skrll m = ieee80211_getmgtframe(&frm,
2285 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2286 1.63.2.1 phil 2 + IEEE80211_NWID_LEN
2287 1.39 skrll + 2 + IEEE80211_RATE_SIZE
2288 1.63.2.1 phil + sizeof(struct ieee80211_ie_htcap)
2289 1.63.2.1 phil + sizeof(struct ieee80211_ie_vhtcap)
2290 1.63.2.1 phil + sizeof(struct ieee80211_ie_htinfo) /* XXX not needed? */
2291 1.63.2.1 phil + sizeof(struct ieee80211_ie_wpa)
2292 1.39 skrll + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2293 1.63.2.1 phil + sizeof(struct ieee80211_ie_wpa)
2294 1.63.2.1 phil + (vap->iv_appie_probereq != NULL ?
2295 1.63.2.1 phil vap->iv_appie_probereq->ie_len : 0)
2296 1.39 skrll );
2297 1.39 skrll if (m == NULL) {
2298 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
2299 1.39 skrll ieee80211_free_node(ni);
2300 1.63.2.1 phil ieee80211_free_node(bss);
2301 1.39 skrll return ENOMEM;
2302 1.39 skrll }
2303 1.39 skrll
2304 1.39 skrll frm = ieee80211_add_ssid(frm, ssid, ssidlen);
2305 1.63.2.1 phil rs = ieee80211_get_suprates(ic, ic->ic_curchan);
2306 1.63.2.1 phil frm = ieee80211_add_rates(frm, rs);
2307 1.63.2.1 phil frm = ieee80211_add_rsn(frm, vap);
2308 1.63.2.1 phil frm = ieee80211_add_xrates(frm, rs);
2309 1.63.2.1 phil
2310 1.63.2.1 phil /*
2311 1.63.2.1 phil * Note: we can't use bss; we don't have one yet.
2312 1.63.2.1 phil *
2313 1.63.2.1 phil * So, we should announce our capabilities
2314 1.63.2.1 phil * in this channel mode (2g/5g), not the
2315 1.63.2.1 phil * channel details itself.
2316 1.63.2.1 phil */
2317 1.63.2.1 phil if ((vap->iv_opmode == IEEE80211_M_IBSS) &&
2318 1.63.2.1 phil (vap->iv_flags_ht & IEEE80211_FHT_HT)) {
2319 1.63.2.1 phil struct ieee80211_channel *c;
2320 1.63.2.1 phil
2321 1.63.2.1 phil /*
2322 1.63.2.1 phil * Get the HT channel that we should try upgrading to.
2323 1.63.2.1 phil * If we can do 40MHz then this'll upgrade it appropriately.
2324 1.63.2.1 phil */
2325 1.63.2.1 phil c = ieee80211_ht_adjust_channel(ic, ic->ic_curchan,
2326 1.63.2.1 phil vap->iv_flags_ht);
2327 1.63.2.1 phil frm = ieee80211_add_htcap_ch(frm, vap, c);
2328 1.63.2.1 phil }
2329 1.39 skrll
2330 1.63.2.1 phil /*
2331 1.63.2.1 phil * XXX TODO: need to figure out what/how to update the
2332 1.63.2.1 phil * VHT channel.
2333 1.63.2.1 phil */
2334 1.63.2.1 phil #if 0
2335 1.63.2.1 phil (vap->iv_flags_vht & IEEE80211_FVHT_VHT) {
2336 1.63.2.1 phil struct ieee80211_channel *c;
2337 1.63.2.1 phil
2338 1.63.2.1 phil c = ieee80211_ht_adjust_channel(ic, ic->ic_curchan,
2339 1.63.2.1 phil vap->iv_flags_ht);
2340 1.63.2.1 phil c = ieee80211_vht_adjust_channel(ic, c, vap->iv_flags_vht);
2341 1.63.2.1 phil frm = ieee80211_add_vhtcap_ch(frm, vap, c);
2342 1.39 skrll }
2343 1.63.2.1 phil #endif
2344 1.39 skrll
2345 1.63.2.1 phil frm = ieee80211_add_wpa(frm, vap);
2346 1.63.2.1 phil if (vap->iv_appie_probereq != NULL)
2347 1.63.2.1 phil frm = add_appie(frm, vap->iv_appie_probereq);
2348 1.63.2.1 phil m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2349 1.63.2.1 phil
2350 1.63.2.1 phil KASSERT(M_LEADINGSPACE(m) >= sizeof(struct ieee80211_frame),
2351 1.63.2.1 phil ("leading space %zd", M_LEADINGSPACE(m)));
2352 1.63.2.1 phil M_PREPEND(m, sizeof(struct ieee80211_frame), M_NOWAIT);
2353 1.60 maxv if (m == NULL) {
2354 1.63.2.1 phil /* NB: cannot happen */
2355 1.60 maxv ieee80211_free_node(ni);
2356 1.63.2.1 phil ieee80211_free_node(bss);
2357 1.39 skrll return ENOMEM;
2358 1.60 maxv }
2359 1.39 skrll
2360 1.63.2.1 phil IEEE80211_TX_LOCK(ic);
2361 1.63.2.1 phil ieee80211_send_setup(ni, m,
2362 1.63.2.1 phil IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_REQ,
2363 1.63.2.1 phil IEEE80211_NONQOS_TID, sa, da, bssid);
2364 1.39 skrll /* XXX power management? */
2365 1.63.2.1 phil m->m_flags |= M_ENCAP; /* mark encapsulated */
2366 1.63.2.1 phil
2367 1.63.2.1 phil M_WME_SETAC(m, WME_AC_BE);
2368 1.39 skrll
2369 1.39 skrll IEEE80211_NODE_STAT(ni, tx_probereq);
2370 1.39 skrll IEEE80211_NODE_STAT(ni, tx_mgmt);
2371 1.39 skrll
2372 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG | IEEE80211_MSG_DUMPPKTS,
2373 1.63.2.1 phil "send probe req on channel %u bssid %s sa %6D da %6D ssid \"%.*s\"\n",
2374 1.63.2.1 phil ieee80211_chan2ieee(ic, ic->ic_curchan),
2375 1.63.2.1 phil ether_sprintf(bssid),
2376 1.63.2.1 phil sa, ":",
2377 1.63.2.1 phil da, ":",
2378 1.63.2.1 phil ssidlen, ssid);
2379 1.63.2.1 phil
2380 1.63.2.1 phil memset(¶ms, 0, sizeof(params));
2381 1.63.2.1 phil params.ibp_pri = M_WME_GETAC(m);
2382 1.63.2.1 phil tp = &vap->iv_txparms[ieee80211_chan2mode(ic->ic_curchan)];
2383 1.63.2.1 phil params.ibp_rate0 = tp->mgmtrate;
2384 1.63.2.1 phil if (IEEE80211_IS_MULTICAST(da)) {
2385 1.63.2.1 phil params.ibp_flags |= IEEE80211_BPF_NOACK;
2386 1.63.2.1 phil params.ibp_try0 = 1;
2387 1.63.2.1 phil } else
2388 1.63.2.1 phil params.ibp_try0 = tp->maxretry;
2389 1.63.2.1 phil params.ibp_power = ni->ni_txpower;
2390 1.63.2.1 phil ret = ieee80211_raw_output(vap, ni, m, ¶ms);
2391 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
2392 1.63.2.1 phil ieee80211_free_node(bss);
2393 1.63.2.1 phil return (ret);
2394 1.63.2.1 phil }
2395 1.63.2.1 phil
2396 1.63.2.1 phil /*
2397 1.63.2.1 phil * Calculate capability information for mgt frames.
2398 1.63.2.1 phil */
2399 1.63.2.1 phil uint16_t
2400 1.63.2.1 phil ieee80211_getcapinfo(struct ieee80211vap *vap, struct ieee80211_channel *chan)
2401 1.63.2.1 phil {
2402 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
2403 1.63.2.1 phil uint16_t capinfo;
2404 1.63.2.1 phil
2405 1.63.2.1 phil KASSERT(vap->iv_opmode != IEEE80211_M_STA, ("station mode"));
2406 1.39 skrll
2407 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_HOSTAP)
2408 1.63.2.1 phil capinfo = IEEE80211_CAPINFO_ESS;
2409 1.63.2.1 phil else if (vap->iv_opmode == IEEE80211_M_IBSS)
2410 1.63.2.1 phil capinfo = IEEE80211_CAPINFO_IBSS;
2411 1.63.2.1 phil else
2412 1.63.2.1 phil capinfo = 0;
2413 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_PRIVACY)
2414 1.63.2.1 phil capinfo |= IEEE80211_CAPINFO_PRIVACY;
2415 1.63.2.1 phil if ((ic->ic_flags & IEEE80211_F_SHPREAMBLE) &&
2416 1.63.2.1 phil IEEE80211_IS_CHAN_2GHZ(chan))
2417 1.63.2.1 phil capinfo |= IEEE80211_CAPINFO_SHORT_PREAMBLE;
2418 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_SHSLOT)
2419 1.63.2.1 phil capinfo |= IEEE80211_CAPINFO_SHORT_SLOTTIME;
2420 1.63.2.1 phil if (IEEE80211_IS_CHAN_5GHZ(chan) && (vap->iv_flags & IEEE80211_F_DOTH))
2421 1.63.2.1 phil capinfo |= IEEE80211_CAPINFO_SPECTRUM_MGMT;
2422 1.63.2.1 phil return capinfo;
2423 1.39 skrll }
2424 1.39 skrll
2425 1.39 skrll /*
2426 1.1 dyoung * Send a management frame. The node is for the destination (or ic_bss
2427 1.1 dyoung * when in station mode). Nodes other than ic_bss have their reference
2428 1.1 dyoung * count bumped to reflect our use for an indeterminant time.
2429 1.1 dyoung */
2430 1.1 dyoung int
2431 1.63.2.1 phil ieee80211_send_mgmt(struct ieee80211_node *ni, int type, int arg)
2432 1.1 dyoung {
2433 1.63.2.1 phil #define HTFLAGS (IEEE80211_NODE_HT | IEEE80211_NODE_HTCOMPAT)
2434 1.63.2.1 phil #define senderr(_x, _v) do { vap->iv_stats._v++; ret = _x; goto bad; } while (0)
2435 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
2436 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
2437 1.63.2.1 phil struct ieee80211_node *bss = vap->iv_bss;
2438 1.63.2.1 phil struct ieee80211_bpf_params params;
2439 1.1 dyoung struct mbuf *m;
2440 1.63.2.1 phil uint8_t *frm;
2441 1.63.2.1 phil uint16_t capinfo;
2442 1.63.2.1 phil int has_challenge, is_shared_key, ret, status;
2443 1.1 dyoung
2444 1.63.2.1 phil KASSERT(ni != NULL, ("null node"));
2445 1.1 dyoung
2446 1.1 dyoung /*
2447 1.1 dyoung * Hold a reference on the node so it doesn't go away until after
2448 1.1 dyoung * the xmit is complete all the way in the driver. On error we
2449 1.1 dyoung * will remove our reference.
2450 1.1 dyoung */
2451 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_NODE,
2452 1.29 dyoung "ieee80211_ref_node (%s:%u) %p<%s> refcnt %d\n",
2453 1.29 dyoung __func__, __LINE__,
2454 1.29 dyoung ni, ether_sprintf(ni->ni_macaddr),
2455 1.29 dyoung ieee80211_node_refcnt(ni)+1);
2456 1.17 dyoung ieee80211_ref_node(ni);
2457 1.29 dyoung
2458 1.63.2.1 phil memset(¶ms, 0, sizeof(params));
2459 1.1 dyoung switch (type) {
2460 1.1 dyoung
2461 1.63.2.1 phil case IEEE80211_FC0_SUBTYPE_AUTH:
2462 1.29 dyoung status = arg >> 16;
2463 1.29 dyoung arg &= 0xffff;
2464 1.63.2.1 phil has_challenge = ((arg == IEEE80211_AUTH_SHARED_CHALLENGE ||
2465 1.63.2.1 phil arg == IEEE80211_AUTH_SHARED_RESPONSE) &&
2466 1.63.2.1 phil ni->ni_challenge != NULL);
2467 1.7 dyoung
2468 1.29 dyoung /*
2469 1.29 dyoung * Deduce whether we're doing open authentication or
2470 1.29 dyoung * shared key authentication. We do the latter if
2471 1.29 dyoung * we're in the middle of a shared key authentication
2472 1.29 dyoung * handshake or if we're initiating an authentication
2473 1.29 dyoung * request and configured to use shared key.
2474 1.29 dyoung */
2475 1.63.2.1 phil is_shared_key = has_challenge ||
2476 1.63.2.1 phil arg >= IEEE80211_AUTH_SHARED_RESPONSE ||
2477 1.63.2.1 phil (arg == IEEE80211_AUTH_SHARED_REQUEST &&
2478 1.63.2.1 phil bss->ni_authmode == IEEE80211_AUTH_SHARED);
2479 1.29 dyoung
2480 1.63.2.1 phil m = ieee80211_getmgtframe(&frm,
2481 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2482 1.63.2.1 phil 3 * sizeof(uint16_t)
2483 1.63.2.1 phil + (has_challenge && status == IEEE80211_STATUS_SUCCESS ?
2484 1.63.2.1 phil sizeof(uint16_t)+IEEE80211_CHALLENGE_LEN : 0)
2485 1.63.2.1 phil );
2486 1.29 dyoung if (m == NULL)
2487 1.29 dyoung senderr(ENOMEM, is_tx_nobuf);
2488 1.7 dyoung
2489 1.63.2.1 phil ((uint16_t *)frm)[0] =
2490 1.63.2.1 phil (is_shared_key) ? htole16(IEEE80211_AUTH_ALG_SHARED)
2491 1.7 dyoung : htole16(IEEE80211_AUTH_ALG_OPEN);
2492 1.63.2.1 phil ((uint16_t *)frm)[1] = htole16(arg); /* sequence number */
2493 1.63.2.1 phil ((uint16_t *)frm)[2] = htole16(status);/* status */
2494 1.7 dyoung
2495 1.63.2.1 phil if (has_challenge && status == IEEE80211_STATUS_SUCCESS) {
2496 1.63.2.1 phil ((uint16_t *)frm)[3] =
2497 1.7 dyoung htole16((IEEE80211_CHALLENGE_LEN << 8) |
2498 1.7 dyoung IEEE80211_ELEMID_CHALLENGE);
2499 1.63.2.1 phil memcpy(&((uint16_t *)frm)[4], ni->ni_challenge,
2500 1.7 dyoung IEEE80211_CHALLENGE_LEN);
2501 1.63.2.1 phil m->m_pkthdr.len = m->m_len =
2502 1.63.2.1 phil 4 * sizeof(uint16_t) + IEEE80211_CHALLENGE_LEN;
2503 1.7 dyoung if (arg == IEEE80211_AUTH_SHARED_RESPONSE) {
2504 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_AUTH, ni,
2505 1.63.2.1 phil "request encrypt frame (%s)", __func__);
2506 1.63.2.1 phil /* mark frame for encryption */
2507 1.63.2.1 phil params.ibp_flags |= IEEE80211_BPF_CRYPTO;
2508 1.7 dyoung }
2509 1.63.2.1 phil } else
2510 1.63.2.1 phil m->m_pkthdr.len = m->m_len = 3 * sizeof(uint16_t);
2511 1.29 dyoung
2512 1.29 dyoung /* XXX not right for shared key */
2513 1.29 dyoung if (status == IEEE80211_STATUS_SUCCESS)
2514 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_auth);
2515 1.29 dyoung else
2516 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_auth_fail);
2517 1.29 dyoung
2518 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_STA)
2519 1.63.2.1 phil ieee80211_add_callback(m, ieee80211_tx_mgt_cb,
2520 1.63.2.1 phil (void *) vap->iv_state);
2521 1.1 dyoung break;
2522 1.1 dyoung
2523 1.1 dyoung case IEEE80211_FC0_SUBTYPE_DEAUTH:
2524 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_AUTH, ni,
2525 1.63.2.1 phil "send station deauthenticate (reason: %d (%s))", arg,
2526 1.63.2.1 phil ieee80211_reason_to_string(arg));
2527 1.63.2.1 phil m = ieee80211_getmgtframe(&frm,
2528 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2529 1.63.2.1 phil sizeof(uint16_t));
2530 1.1 dyoung if (m == NULL)
2531 1.29 dyoung senderr(ENOMEM, is_tx_nobuf);
2532 1.63.2.1 phil *(uint16_t *)frm = htole16(arg); /* reason */
2533 1.63.2.1 phil m->m_pkthdr.len = m->m_len = sizeof(uint16_t);
2534 1.29 dyoung
2535 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_deauth);
2536 1.29 dyoung IEEE80211_NODE_STAT_SET(ni, tx_deauth_code, arg);
2537 1.29 dyoung
2538 1.39 skrll ieee80211_node_unauthorize(ni); /* port closed */
2539 1.1 dyoung break;
2540 1.1 dyoung
2541 1.1 dyoung case IEEE80211_FC0_SUBTYPE_ASSOC_REQ:
2542 1.1 dyoung case IEEE80211_FC0_SUBTYPE_REASSOC_REQ:
2543 1.1 dyoung /*
2544 1.1 dyoung * asreq frame format
2545 1.1 dyoung * [2] capability information
2546 1.1 dyoung * [2] listen interval
2547 1.1 dyoung * [6*] current AP address (reassoc only)
2548 1.1 dyoung * [tlv] ssid
2549 1.1 dyoung * [tlv] supported rates
2550 1.1 dyoung * [tlv] extended supported rates
2551 1.63.2.1 phil * [4] power capability (optional)
2552 1.63.2.1 phil * [28] supported channels (optional)
2553 1.63.2.1 phil * [tlv] HT capabilities
2554 1.63.2.1 phil * [tlv] VHT capabilities
2555 1.63.2.1 phil * [tlv] WME (optional)
2556 1.63.2.1 phil * [tlv] Vendor OUI HT capabilities (optional)
2557 1.63.2.1 phil * [tlv] Atheros capabilities (if negotiated)
2558 1.63.2.1 phil * [tlv] AppIE's (optional)
2559 1.1 dyoung */
2560 1.29 dyoung m = ieee80211_getmgtframe(&frm,
2561 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2562 1.63.2.1 phil sizeof(uint16_t)
2563 1.63.2.1 phil + sizeof(uint16_t)
2564 1.1 dyoung + IEEE80211_ADDR_LEN
2565 1.29 dyoung + 2 + IEEE80211_NWID_LEN
2566 1.1 dyoung + 2 + IEEE80211_RATE_SIZE
2567 1.29 dyoung + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2568 1.63.2.1 phil + 4
2569 1.63.2.1 phil + 2 + 26
2570 1.29 dyoung + sizeof(struct ieee80211_wme_info)
2571 1.63.2.1 phil + sizeof(struct ieee80211_ie_htcap)
2572 1.63.2.1 phil + sizeof(struct ieee80211_ie_vhtcap)
2573 1.63.2.1 phil + 4 + sizeof(struct ieee80211_ie_htcap)
2574 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
2575 1.63.2.1 phil + sizeof(struct ieee80211_ath_ie)
2576 1.63.2.1 phil #endif
2577 1.63.2.1 phil + (vap->iv_appie_wpa != NULL ?
2578 1.63.2.1 phil vap->iv_appie_wpa->ie_len : 0)
2579 1.63.2.1 phil + (vap->iv_appie_assocreq != NULL ?
2580 1.63.2.1 phil vap->iv_appie_assocreq->ie_len : 0)
2581 1.29 dyoung );
2582 1.1 dyoung if (m == NULL)
2583 1.29 dyoung senderr(ENOMEM, is_tx_nobuf);
2584 1.1 dyoung
2585 1.63.2.1 phil KASSERT(vap->iv_opmode == IEEE80211_M_STA,
2586 1.63.2.1 phil ("wrong mode %u", vap->iv_opmode));
2587 1.63.2.1 phil capinfo = IEEE80211_CAPINFO_ESS;
2588 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_PRIVACY)
2589 1.1 dyoung capinfo |= IEEE80211_CAPINFO_PRIVACY;
2590 1.10 dyoung /*
2591 1.10 dyoung * NB: Some 11a AP's reject the request when
2592 1.63.2.1 phil * short preamble is set.
2593 1.10 dyoung */
2594 1.10 dyoung if ((ic->ic_flags & IEEE80211_F_SHPREAMBLE) &&
2595 1.39 skrll IEEE80211_IS_CHAN_2GHZ(ic->ic_curchan))
2596 1.1 dyoung capinfo |= IEEE80211_CAPINFO_SHORT_PREAMBLE;
2597 1.63.2.1 phil if (IEEE80211_IS_CHAN_ANYG(ic->ic_curchan) &&
2598 1.29 dyoung (ic->ic_caps & IEEE80211_C_SHSLOT))
2599 1.1 dyoung capinfo |= IEEE80211_CAPINFO_SHORT_SLOTTIME;
2600 1.63.2.1 phil if ((ni->ni_capinfo & IEEE80211_CAPINFO_SPECTRUM_MGMT) &&
2601 1.63.2.1 phil (vap->iv_flags & IEEE80211_F_DOTH))
2602 1.63.2.1 phil capinfo |= IEEE80211_CAPINFO_SPECTRUM_MGMT;
2603 1.63.2.1 phil *(uint16_t *)frm = htole16(capinfo);
2604 1.1 dyoung frm += 2;
2605 1.1 dyoung
2606 1.63.2.1 phil KASSERT(bss->ni_intval != 0, ("beacon interval is zero!"));
2607 1.63.2.1 phil *(uint16_t *)frm = htole16(howmany(ic->ic_lintval,
2608 1.63.2.1 phil bss->ni_intval));
2609 1.1 dyoung frm += 2;
2610 1.1 dyoung
2611 1.1 dyoung if (type == IEEE80211_FC0_SUBTYPE_REASSOC_REQ) {
2612 1.63.2.1 phil IEEE80211_ADDR_COPY(frm, bss->ni_bssid);
2613 1.1 dyoung frm += IEEE80211_ADDR_LEN;
2614 1.1 dyoung }
2615 1.1 dyoung
2616 1.1 dyoung frm = ieee80211_add_ssid(frm, ni->ni_essid, ni->ni_esslen);
2617 1.1 dyoung frm = ieee80211_add_rates(frm, &ni->ni_rates);
2618 1.63.2.1 phil frm = ieee80211_add_rsn(frm, vap);
2619 1.1 dyoung frm = ieee80211_add_xrates(frm, &ni->ni_rates);
2620 1.63.2.1 phil if (capinfo & IEEE80211_CAPINFO_SPECTRUM_MGMT) {
2621 1.63.2.1 phil frm = ieee80211_add_powercapability(frm,
2622 1.63.2.1 phil ic->ic_curchan);
2623 1.63.2.1 phil frm = ieee80211_add_supportedchannels(frm, ic);
2624 1.63.2.1 phil }
2625 1.63.2.1 phil
2626 1.63.2.1 phil /*
2627 1.63.2.1 phil * Check the channel - we may be using an 11n NIC with an
2628 1.63.2.1 phil * 11n capable station, but we're configured to be an 11b
2629 1.63.2.1 phil * channel.
2630 1.63.2.1 phil */
2631 1.63.2.1 phil if ((vap->iv_flags_ht & IEEE80211_FHT_HT) &&
2632 1.63.2.1 phil IEEE80211_IS_CHAN_HT(ni->ni_chan) &&
2633 1.63.2.1 phil ni->ni_ies.htcap_ie != NULL &&
2634 1.63.2.1 phil ni->ni_ies.htcap_ie[0] == IEEE80211_ELEMID_HTCAP) {
2635 1.63.2.1 phil frm = ieee80211_add_htcap(frm, ni);
2636 1.63.2.1 phil }
2637 1.63.2.1 phil
2638 1.63.2.1 phil if ((vap->iv_flags_vht & IEEE80211_FVHT_VHT) &&
2639 1.63.2.1 phil IEEE80211_IS_CHAN_VHT(ni->ni_chan) &&
2640 1.63.2.1 phil ni->ni_ies.vhtcap_ie != NULL &&
2641 1.63.2.1 phil ni->ni_ies.vhtcap_ie[0] == IEEE80211_ELEMID_VHT_CAP) {
2642 1.63.2.1 phil frm = ieee80211_add_vhtcap(frm, ni);
2643 1.63.2.1 phil }
2644 1.63.2.1 phil
2645 1.63.2.1 phil frm = ieee80211_add_wpa(frm, vap);
2646 1.63.2.1 phil if ((ic->ic_flags & IEEE80211_F_WME) &&
2647 1.63.2.1 phil ni->ni_ies.wme_ie != NULL)
2648 1.29 dyoung frm = ieee80211_add_wme_info(frm, &ic->ic_wme);
2649 1.63.2.1 phil
2650 1.63.2.1 phil /*
2651 1.63.2.1 phil * Same deal - only send HT info if we're on an 11n
2652 1.63.2.1 phil * capable channel.
2653 1.63.2.1 phil */
2654 1.63.2.1 phil if ((vap->iv_flags_ht & IEEE80211_FHT_HT) &&
2655 1.63.2.1 phil IEEE80211_IS_CHAN_HT(ni->ni_chan) &&
2656 1.63.2.1 phil ni->ni_ies.htcap_ie != NULL &&
2657 1.63.2.1 phil ni->ni_ies.htcap_ie[0] == IEEE80211_ELEMID_VENDOR) {
2658 1.63.2.1 phil frm = ieee80211_add_htcap_vendor(frm, ni);
2659 1.29 dyoung }
2660 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
2661 1.63.2.1 phil if (IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS)) {
2662 1.63.2.1 phil frm = ieee80211_add_ath(frm,
2663 1.63.2.1 phil IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS),
2664 1.63.2.1 phil ((vap->iv_flags & IEEE80211_F_WPA) == 0 &&
2665 1.63.2.1 phil ni->ni_authmode != IEEE80211_AUTH_8021X) ?
2666 1.63.2.1 phil vap->iv_def_txkey : IEEE80211_KEYIX_NONE);
2667 1.63.2.1 phil }
2668 1.63.2.1 phil #endif /* IEEE80211_SUPPORT_SUPERG */
2669 1.63.2.1 phil if (vap->iv_appie_assocreq != NULL)
2670 1.63.2.1 phil frm = add_appie(frm, vap->iv_appie_assocreq);
2671 1.63.2.1 phil m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2672 1.1 dyoung
2673 1.63.2.1 phil ieee80211_add_callback(m, ieee80211_tx_mgt_cb,
2674 1.63.2.1 phil (void *) vap->iv_state);
2675 1.1 dyoung break;
2676 1.1 dyoung
2677 1.1 dyoung case IEEE80211_FC0_SUBTYPE_ASSOC_RESP:
2678 1.1 dyoung case IEEE80211_FC0_SUBTYPE_REASSOC_RESP:
2679 1.1 dyoung /*
2680 1.63.2.1 phil * asresp frame format
2681 1.1 dyoung * [2] capability information
2682 1.1 dyoung * [2] status
2683 1.1 dyoung * [2] association ID
2684 1.1 dyoung * [tlv] supported rates
2685 1.1 dyoung * [tlv] extended supported rates
2686 1.63.2.1 phil * [tlv] HT capabilities (standard, if STA enabled)
2687 1.63.2.1 phil * [tlv] HT information (standard, if STA enabled)
2688 1.63.2.1 phil * [tlv] VHT capabilities (standard, if STA enabled)
2689 1.63.2.1 phil * [tlv] VHT information (standard, if STA enabled)
2690 1.63.2.1 phil * [tlv] WME (if configured and STA enabled)
2691 1.63.2.1 phil * [tlv] HT capabilities (vendor OUI, if STA enabled)
2692 1.63.2.1 phil * [tlv] HT information (vendor OUI, if STA enabled)
2693 1.63.2.1 phil * [tlv] Atheros capabilities (if STA enabled)
2694 1.63.2.1 phil * [tlv] AppIE's (optional)
2695 1.1 dyoung */
2696 1.29 dyoung m = ieee80211_getmgtframe(&frm,
2697 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2698 1.63.2.1 phil sizeof(uint16_t)
2699 1.63.2.1 phil + sizeof(uint16_t)
2700 1.63.2.1 phil + sizeof(uint16_t)
2701 1.1 dyoung + 2 + IEEE80211_RATE_SIZE
2702 1.29 dyoung + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2703 1.63.2.1 phil + sizeof(struct ieee80211_ie_htcap) + 4
2704 1.63.2.1 phil + sizeof(struct ieee80211_ie_htinfo) + 4
2705 1.63.2.1 phil + sizeof(struct ieee80211_ie_vhtcap)
2706 1.63.2.1 phil + sizeof(struct ieee80211_ie_vht_operation)
2707 1.29 dyoung + sizeof(struct ieee80211_wme_param)
2708 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
2709 1.63.2.1 phil + sizeof(struct ieee80211_ath_ie)
2710 1.63.2.1 phil #endif
2711 1.63.2.1 phil + (vap->iv_appie_assocresp != NULL ?
2712 1.63.2.1 phil vap->iv_appie_assocresp->ie_len : 0)
2713 1.29 dyoung );
2714 1.1 dyoung if (m == NULL)
2715 1.29 dyoung senderr(ENOMEM, is_tx_nobuf);
2716 1.1 dyoung
2717 1.63.2.1 phil capinfo = ieee80211_getcapinfo(vap, bss->ni_chan);
2718 1.63.2.1 phil *(uint16_t *)frm = htole16(capinfo);
2719 1.1 dyoung frm += 2;
2720 1.1 dyoung
2721 1.63.2.1 phil *(uint16_t *)frm = htole16(arg); /* status */
2722 1.1 dyoung frm += 2;
2723 1.1 dyoung
2724 1.29 dyoung if (arg == IEEE80211_STATUS_SUCCESS) {
2725 1.63.2.1 phil *(uint16_t *)frm = htole16(ni->ni_associd);
2726 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_assoc);
2727 1.63.2.1 phil } else
2728 1.29 dyoung IEEE80211_NODE_STAT(ni, tx_assoc_fail);
2729 1.1 dyoung frm += 2;
2730 1.1 dyoung
2731 1.1 dyoung frm = ieee80211_add_rates(frm, &ni->ni_rates);
2732 1.1 dyoung frm = ieee80211_add_xrates(frm, &ni->ni_rates);
2733 1.63.2.1 phil /* NB: respond according to what we received */
2734 1.63.2.1 phil if ((ni->ni_flags & HTFLAGS) == IEEE80211_NODE_HT) {
2735 1.63.2.1 phil frm = ieee80211_add_htcap(frm, ni);
2736 1.63.2.1 phil frm = ieee80211_add_htinfo(frm, ni);
2737 1.63.2.1 phil }
2738 1.63.2.1 phil if ((vap->iv_flags & IEEE80211_F_WME) &&
2739 1.63.2.1 phil ni->ni_ies.wme_ie != NULL)
2740 1.29 dyoung frm = ieee80211_add_wme_param(frm, &ic->ic_wme);
2741 1.63.2.1 phil if ((ni->ni_flags & HTFLAGS) == HTFLAGS) {
2742 1.63.2.1 phil frm = ieee80211_add_htcap_vendor(frm, ni);
2743 1.63.2.1 phil frm = ieee80211_add_htinfo_vendor(frm, ni);
2744 1.63.2.1 phil }
2745 1.63.2.1 phil if (ni->ni_flags & IEEE80211_NODE_VHT) {
2746 1.63.2.1 phil frm = ieee80211_add_vhtcap(frm, ni);
2747 1.63.2.1 phil frm = ieee80211_add_vhtinfo(frm, ni);
2748 1.63.2.1 phil }
2749 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
2750 1.63.2.1 phil if (IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS))
2751 1.63.2.1 phil frm = ieee80211_add_ath(frm,
2752 1.63.2.1 phil IEEE80211_ATH_CAP(vap, ni, IEEE80211_F_ATHEROS),
2753 1.63.2.1 phil ((vap->iv_flags & IEEE80211_F_WPA) == 0 &&
2754 1.63.2.1 phil ni->ni_authmode != IEEE80211_AUTH_8021X) ?
2755 1.63.2.1 phil vap->iv_def_txkey : IEEE80211_KEYIX_NONE);
2756 1.63.2.1 phil #endif /* IEEE80211_SUPPORT_SUPERG */
2757 1.63.2.1 phil if (vap->iv_appie_assocresp != NULL)
2758 1.63.2.1 phil frm = add_appie(frm, vap->iv_appie_assocresp);
2759 1.63.2.1 phil m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2760 1.63.2.1 phil break;
2761 1.63.2.1 phil
2762 1.63.2.1 phil case IEEE80211_FC0_SUBTYPE_DISASSOC:
2763 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_ASSOC, ni,
2764 1.63.2.1 phil "send station disassociate (reason: %d (%s))", arg,
2765 1.63.2.1 phil ieee80211_reason_to_string(arg));
2766 1.63.2.1 phil m = ieee80211_getmgtframe(&frm,
2767 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2768 1.63.2.1 phil sizeof(uint16_t));
2769 1.63.2.1 phil if (m == NULL)
2770 1.63.2.1 phil senderr(ENOMEM, is_tx_nobuf);
2771 1.63.2.1 phil *(uint16_t *)frm = htole16(arg); /* reason */
2772 1.63.2.1 phil m->m_pkthdr.len = m->m_len = sizeof(uint16_t);
2773 1.63.2.1 phil
2774 1.63.2.1 phil IEEE80211_NODE_STAT(ni, tx_disassoc);
2775 1.63.2.1 phil IEEE80211_NODE_STAT_SET(ni, tx_disassoc_code, arg);
2776 1.1 dyoung break;
2777 1.1 dyoung
2778 1.63.2.1 phil default:
2779 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_ANY, ni,
2780 1.63.2.1 phil "invalid mgmt frame type %u", type);
2781 1.63.2.1 phil senderr(EINVAL, is_tx_unknownmgt);
2782 1.63.2.1 phil /* NOTREACHED */
2783 1.63.2.1 phil }
2784 1.63.2.1 phil
2785 1.63.2.1 phil /* NB: force non-ProbeResp frames to the highest queue */
2786 1.63.2.1 phil params.ibp_pri = WME_AC_VO;
2787 1.63.2.1 phil params.ibp_rate0 = bss->ni_txparms->mgmtrate;
2788 1.63.2.1 phil /* NB: we know all frames are unicast */
2789 1.63.2.1 phil params.ibp_try0 = bss->ni_txparms->maxretry;
2790 1.63.2.1 phil params.ibp_power = bss->ni_txpower;
2791 1.63.2.1 phil return ieee80211_mgmt_output(ni, m, type, ¶ms);
2792 1.63.2.1 phil bad:
2793 1.63.2.1 phil ieee80211_free_node(ni);
2794 1.63.2.1 phil return ret;
2795 1.63.2.1 phil #undef senderr
2796 1.63.2.1 phil #undef HTFLAGS
2797 1.63.2.1 phil }
2798 1.63.2.1 phil
2799 1.63.2.1 phil /*
2800 1.63.2.1 phil * Return an mbuf with a probe response frame in it.
2801 1.63.2.1 phil * Space is left to prepend and 802.11 header at the
2802 1.63.2.1 phil * front but it's left to the caller to fill in.
2803 1.63.2.1 phil */
2804 1.63.2.1 phil struct mbuf *
2805 1.63.2.1 phil ieee80211_alloc_proberesp(struct ieee80211_node *bss, int legacy)
2806 1.63.2.1 phil {
2807 1.63.2.1 phil struct ieee80211vap *vap = bss->ni_vap;
2808 1.63.2.1 phil struct ieee80211com *ic = bss->ni_ic;
2809 1.63.2.1 phil const struct ieee80211_rateset *rs;
2810 1.63.2.1 phil struct mbuf *m;
2811 1.63.2.1 phil uint16_t capinfo;
2812 1.63.2.1 phil uint8_t *frm;
2813 1.63.2.1 phil
2814 1.63.2.1 phil /*
2815 1.63.2.1 phil * probe response frame format
2816 1.63.2.1 phil * [8] time stamp
2817 1.63.2.1 phil * [2] beacon interval
2818 1.63.2.1 phil * [2] cabability information
2819 1.63.2.1 phil * [tlv] ssid
2820 1.63.2.1 phil * [tlv] supported rates
2821 1.63.2.1 phil * [tlv] parameter set (FH/DS)
2822 1.63.2.1 phil * [tlv] parameter set (IBSS)
2823 1.63.2.1 phil * [tlv] country (optional)
2824 1.63.2.1 phil * [3] power control (optional)
2825 1.63.2.1 phil * [5] channel switch announcement (CSA) (optional)
2826 1.63.2.1 phil * [tlv] extended rate phy (ERP)
2827 1.63.2.1 phil * [tlv] extended supported rates
2828 1.63.2.1 phil * [tlv] RSN (optional)
2829 1.63.2.1 phil * [tlv] HT capabilities
2830 1.63.2.1 phil * [tlv] HT information
2831 1.63.2.1 phil * [tlv] VHT capabilities
2832 1.63.2.1 phil * [tlv] VHT information
2833 1.63.2.1 phil * [tlv] WPA (optional)
2834 1.63.2.1 phil * [tlv] WME (optional)
2835 1.63.2.1 phil * [tlv] Vendor OUI HT capabilities (optional)
2836 1.63.2.1 phil * [tlv] Vendor OUI HT information (optional)
2837 1.63.2.1 phil * [tlv] Atheros capabilities
2838 1.63.2.1 phil * [tlv] AppIE's (optional)
2839 1.63.2.1 phil * [tlv] Mesh ID (MBSS)
2840 1.63.2.1 phil * [tlv] Mesh Conf (MBSS)
2841 1.63.2.1 phil */
2842 1.63.2.1 phil m = ieee80211_getmgtframe(&frm,
2843 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame),
2844 1.63.2.1 phil 8
2845 1.63.2.1 phil + sizeof(uint16_t)
2846 1.63.2.1 phil + sizeof(uint16_t)
2847 1.63.2.1 phil + 2 + IEEE80211_NWID_LEN
2848 1.63.2.1 phil + 2 + IEEE80211_RATE_SIZE
2849 1.63.2.1 phil + 7 /* max(7,3) */
2850 1.63.2.1 phil + IEEE80211_COUNTRY_MAX_SIZE
2851 1.63.2.1 phil + 3
2852 1.63.2.1 phil + sizeof(struct ieee80211_csa_ie)
2853 1.63.2.1 phil + sizeof(struct ieee80211_quiet_ie)
2854 1.63.2.1 phil + 3
2855 1.63.2.1 phil + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
2856 1.63.2.1 phil + sizeof(struct ieee80211_ie_wpa)
2857 1.63.2.1 phil + sizeof(struct ieee80211_ie_htcap)
2858 1.63.2.1 phil + sizeof(struct ieee80211_ie_htinfo)
2859 1.63.2.1 phil + sizeof(struct ieee80211_ie_wpa)
2860 1.63.2.1 phil + sizeof(struct ieee80211_wme_param)
2861 1.63.2.1 phil + 4 + sizeof(struct ieee80211_ie_htcap)
2862 1.63.2.1 phil + 4 + sizeof(struct ieee80211_ie_htinfo)
2863 1.63.2.1 phil + sizeof(struct ieee80211_ie_vhtcap)
2864 1.63.2.1 phil + sizeof(struct ieee80211_ie_vht_operation)
2865 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
2866 1.63.2.1 phil + sizeof(struct ieee80211_ath_ie)
2867 1.63.2.1 phil #endif
2868 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
2869 1.63.2.1 phil + 2 + IEEE80211_MESHID_LEN
2870 1.63.2.1 phil + sizeof(struct ieee80211_meshconf_ie)
2871 1.63.2.1 phil #endif
2872 1.63.2.1 phil + (vap->iv_appie_proberesp != NULL ?
2873 1.63.2.1 phil vap->iv_appie_proberesp->ie_len : 0)
2874 1.63.2.1 phil );
2875 1.63.2.1 phil if (m == NULL) {
2876 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
2877 1.63.2.1 phil return NULL;
2878 1.63.2.1 phil }
2879 1.63.2.1 phil
2880 1.63.2.1 phil memset(frm, 0, 8); /* timestamp should be filled later */
2881 1.63.2.1 phil frm += 8;
2882 1.63.2.1 phil *(uint16_t *)frm = htole16(bss->ni_intval);
2883 1.63.2.1 phil frm += 2;
2884 1.63.2.1 phil capinfo = ieee80211_getcapinfo(vap, bss->ni_chan);
2885 1.63.2.1 phil *(uint16_t *)frm = htole16(capinfo);
2886 1.63.2.1 phil frm += 2;
2887 1.63.2.1 phil
2888 1.63.2.1 phil frm = ieee80211_add_ssid(frm, bss->ni_essid, bss->ni_esslen);
2889 1.63.2.1 phil rs = ieee80211_get_suprates(ic, bss->ni_chan);
2890 1.63.2.1 phil frm = ieee80211_add_rates(frm, rs);
2891 1.63.2.1 phil
2892 1.63.2.1 phil if (IEEE80211_IS_CHAN_FHSS(bss->ni_chan)) {
2893 1.63.2.1 phil *frm++ = IEEE80211_ELEMID_FHPARMS;
2894 1.63.2.1 phil *frm++ = 5;
2895 1.63.2.1 phil *frm++ = bss->ni_fhdwell & 0x00ff;
2896 1.63.2.1 phil *frm++ = (bss->ni_fhdwell >> 8) & 0x00ff;
2897 1.63.2.1 phil *frm++ = IEEE80211_FH_CHANSET(
2898 1.63.2.1 phil ieee80211_chan2ieee(ic, bss->ni_chan));
2899 1.63.2.1 phil *frm++ = IEEE80211_FH_CHANPAT(
2900 1.63.2.1 phil ieee80211_chan2ieee(ic, bss->ni_chan));
2901 1.63.2.1 phil *frm++ = bss->ni_fhindex;
2902 1.63.2.1 phil } else {
2903 1.63.2.1 phil *frm++ = IEEE80211_ELEMID_DSPARMS;
2904 1.63.2.1 phil *frm++ = 1;
2905 1.63.2.1 phil *frm++ = ieee80211_chan2ieee(ic, bss->ni_chan);
2906 1.63.2.1 phil }
2907 1.63.2.1 phil
2908 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_IBSS) {
2909 1.63.2.1 phil *frm++ = IEEE80211_ELEMID_IBSSPARMS;
2910 1.63.2.1 phil *frm++ = 2;
2911 1.63.2.1 phil *frm++ = 0; *frm++ = 0; /* TODO: ATIM window */
2912 1.63.2.1 phil }
2913 1.63.2.1 phil if ((vap->iv_flags & IEEE80211_F_DOTH) ||
2914 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_DOTD))
2915 1.63.2.1 phil frm = ieee80211_add_countryie(frm, ic);
2916 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_DOTH) {
2917 1.63.2.1 phil if (IEEE80211_IS_CHAN_5GHZ(bss->ni_chan))
2918 1.63.2.1 phil frm = ieee80211_add_powerconstraint(frm, vap);
2919 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_CSAPENDING)
2920 1.63.2.1 phil frm = ieee80211_add_csa(frm, vap);
2921 1.63.2.1 phil }
2922 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_DOTH) {
2923 1.63.2.1 phil if (IEEE80211_IS_CHAN_DFS(ic->ic_bsschan) &&
2924 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_DFS)) {
2925 1.63.2.1 phil if (vap->iv_quiet)
2926 1.63.2.1 phil frm = ieee80211_add_quiet(frm, vap, 0);
2927 1.63.2.1 phil }
2928 1.63.2.1 phil }
2929 1.63.2.1 phil if (IEEE80211_IS_CHAN_ANYG(bss->ni_chan))
2930 1.63.2.1 phil frm = ieee80211_add_erp(frm, ic);
2931 1.63.2.1 phil frm = ieee80211_add_xrates(frm, rs);
2932 1.63.2.1 phil frm = ieee80211_add_rsn(frm, vap);
2933 1.63.2.1 phil /*
2934 1.63.2.1 phil * NB: legacy 11b clients do not get certain ie's.
2935 1.63.2.1 phil * The caller identifies such clients by passing
2936 1.63.2.1 phil * a token in legacy to us. Could expand this to be
2937 1.63.2.1 phil * any legacy client for stuff like HT ie's.
2938 1.63.2.1 phil */
2939 1.63.2.1 phil if (IEEE80211_IS_CHAN_HT(bss->ni_chan) &&
2940 1.63.2.1 phil legacy != IEEE80211_SEND_LEGACY_11B) {
2941 1.63.2.1 phil frm = ieee80211_add_htcap(frm, bss);
2942 1.63.2.1 phil frm = ieee80211_add_htinfo(frm, bss);
2943 1.63.2.1 phil }
2944 1.63.2.1 phil if (IEEE80211_IS_CHAN_VHT(bss->ni_chan) &&
2945 1.63.2.1 phil legacy != IEEE80211_SEND_LEGACY_11B) {
2946 1.63.2.1 phil frm = ieee80211_add_vhtcap(frm, bss);
2947 1.63.2.1 phil frm = ieee80211_add_vhtinfo(frm, bss);
2948 1.63.2.1 phil }
2949 1.63.2.1 phil frm = ieee80211_add_wpa(frm, vap);
2950 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_WME)
2951 1.63.2.1 phil frm = ieee80211_add_wme_param(frm, &ic->ic_wme);
2952 1.63.2.1 phil if (IEEE80211_IS_CHAN_HT(bss->ni_chan) &&
2953 1.63.2.1 phil (vap->iv_flags_ht & IEEE80211_FHT_HTCOMPAT) &&
2954 1.63.2.1 phil legacy != IEEE80211_SEND_LEGACY_11B) {
2955 1.63.2.1 phil frm = ieee80211_add_htcap_vendor(frm, bss);
2956 1.63.2.1 phil frm = ieee80211_add_htinfo_vendor(frm, bss);
2957 1.63.2.1 phil }
2958 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
2959 1.63.2.1 phil if ((vap->iv_flags & IEEE80211_F_ATHEROS) &&
2960 1.63.2.1 phil legacy != IEEE80211_SEND_LEGACY_11B)
2961 1.63.2.1 phil frm = ieee80211_add_athcaps(frm, bss);
2962 1.63.2.1 phil #endif
2963 1.63.2.1 phil if (vap->iv_appie_proberesp != NULL)
2964 1.63.2.1 phil frm = add_appie(frm, vap->iv_appie_proberesp);
2965 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
2966 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS) {
2967 1.63.2.1 phil frm = ieee80211_add_meshid(frm, vap);
2968 1.63.2.1 phil frm = ieee80211_add_meshconf(frm, vap);
2969 1.63.2.1 phil }
2970 1.63.2.1 phil #endif
2971 1.63.2.1 phil m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
2972 1.63.2.1 phil
2973 1.63.2.1 phil return m;
2974 1.63.2.1 phil }
2975 1.63.2.1 phil
2976 1.63.2.1 phil /*
2977 1.63.2.1 phil * Send a probe response frame to the specified mac address.
2978 1.63.2.1 phil * This does not go through the normal mgt frame api so we
2979 1.63.2.1 phil * can specify the destination address and re-use the bss node
2980 1.63.2.1 phil * for the sta reference.
2981 1.63.2.1 phil */
2982 1.63.2.1 phil int
2983 1.63.2.1 phil ieee80211_send_proberesp(struct ieee80211vap *vap,
2984 1.63.2.1 phil const uint8_t da[IEEE80211_ADDR_LEN], int legacy)
2985 1.63.2.1 phil {
2986 1.63.2.1 phil struct ieee80211_node *bss = vap->iv_bss;
2987 1.63.2.1 phil struct ieee80211com *ic = vap->iv_ic;
2988 1.63.2.1 phil struct mbuf *m;
2989 1.63.2.1 phil int ret;
2990 1.63.2.1 phil
2991 1.63.2.1 phil if (vap->iv_state == IEEE80211_S_CAC) {
2992 1.63.2.1 phil IEEE80211_NOTE(vap, IEEE80211_MSG_OUTPUT, bss,
2993 1.63.2.1 phil "block %s frame in CAC state", "probe response");
2994 1.63.2.1 phil vap->iv_stats.is_tx_badstate++;
2995 1.63.2.1 phil return EIO; /* XXX */
2996 1.63.2.1 phil }
2997 1.63.2.1 phil
2998 1.63.2.1 phil /*
2999 1.63.2.1 phil * Hold a reference on the node so it doesn't go away until after
3000 1.63.2.1 phil * the xmit is complete all the way in the driver. On error we
3001 1.63.2.1 phil * will remove our reference.
3002 1.63.2.1 phil */
3003 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_NODE,
3004 1.63.2.1 phil "ieee80211_ref_node (%s:%u) %p<%s> refcnt %d\n",
3005 1.63.2.1 phil __func__, __LINE__, bss, ether_sprintf(bss->ni_macaddr),
3006 1.63.2.1 phil ieee80211_node_refcnt(bss)+1);
3007 1.63.2.1 phil ieee80211_ref_node(bss);
3008 1.63.2.1 phil
3009 1.63.2.1 phil m = ieee80211_alloc_proberesp(bss, legacy);
3010 1.63.2.1 phil if (m == NULL) {
3011 1.63.2.1 phil ieee80211_free_node(bss);
3012 1.63.2.1 phil return ENOMEM;
3013 1.63.2.1 phil }
3014 1.63.2.1 phil
3015 1.63.2.1 phil M_PREPEND(m, sizeof(struct ieee80211_frame), M_NOWAIT);
3016 1.63.2.1 phil KASSERT(m != NULL, ("no room for header"));
3017 1.29 dyoung
3018 1.63.2.1 phil IEEE80211_TX_LOCK(ic);
3019 1.63.2.1 phil ieee80211_send_setup(bss, m,
3020 1.63.2.1 phil IEEE80211_FC0_TYPE_MGT | IEEE80211_FC0_SUBTYPE_PROBE_RESP,
3021 1.63.2.1 phil IEEE80211_NONQOS_TID, vap->iv_myaddr, da, bss->ni_bssid);
3022 1.63.2.1 phil /* XXX power management? */
3023 1.63.2.1 phil m->m_flags |= M_ENCAP; /* mark encapsulated */
3024 1.1 dyoung
3025 1.63.2.1 phil M_WME_SETAC(m, WME_AC_BE);
3026 1.63.2.1 phil
3027 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG | IEEE80211_MSG_DUMPPKTS,
3028 1.63.2.1 phil "send probe resp on channel %u to %s%s\n",
3029 1.63.2.1 phil ieee80211_chan2ieee(ic, ic->ic_curchan), ether_sprintf(da),
3030 1.63.2.1 phil legacy ? " <legacy>" : "");
3031 1.63.2.1 phil IEEE80211_NODE_STAT(bss, tx_mgmt);
3032 1.63.2.1 phil
3033 1.63.2.1 phil ret = ieee80211_raw_output(vap, bss, m, NULL);
3034 1.63.2.1 phil IEEE80211_TX_UNLOCK(ic);
3035 1.63.2.1 phil return (ret);
3036 1.1 dyoung }
3037 1.6 dyoung
3038 1.29 dyoung /*
3039 1.63.2.1 phil * Allocate and build a RTS (Request To Send) control frame.
3040 1.50 jmcneill */
3041 1.50 jmcneill struct mbuf *
3042 1.63.2.1 phil ieee80211_alloc_rts(struct ieee80211com *ic,
3043 1.63.2.1 phil const uint8_t ra[IEEE80211_ADDR_LEN],
3044 1.63.2.1 phil const uint8_t ta[IEEE80211_ADDR_LEN],
3045 1.63.2.1 phil uint16_t dur)
3046 1.50 jmcneill {
3047 1.50 jmcneill struct ieee80211_frame_rts *rts;
3048 1.50 jmcneill struct mbuf *m;
3049 1.50 jmcneill
3050 1.63.2.1 phil /* XXX honor ic_headroom */
3051 1.63.2.1 phil m = m_gethdr(M_NOWAIT, MT_DATA);
3052 1.63.2.1 phil if (m != NULL) {
3053 1.63.2.1 phil rts = mtod(m, struct ieee80211_frame_rts *);
3054 1.63.2.1 phil rts->i_fc[0] = IEEE80211_FC0_VERSION_0 |
3055 1.63.2.1 phil IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_RTS;
3056 1.63.2.1 phil rts->i_fc[1] = IEEE80211_FC1_DIR_NODS;
3057 1.63.2.1 phil *(u_int16_t *)rts->i_dur = htole16(dur);
3058 1.63.2.1 phil IEEE80211_ADDR_COPY(rts->i_ra, ra);
3059 1.63.2.1 phil IEEE80211_ADDR_COPY(rts->i_ta, ta);
3060 1.50 jmcneill
3061 1.63.2.1 phil m->m_pkthdr.len = m->m_len = sizeof(struct ieee80211_frame_rts);
3062 1.63.2.1 phil }
3063 1.50 jmcneill return m;
3064 1.50 jmcneill }
3065 1.50 jmcneill
3066 1.50 jmcneill /*
3067 1.63.2.1 phil * Allocate and build a CTS (Clear To Send) control frame.
3068 1.50 jmcneill */
3069 1.50 jmcneill struct mbuf *
3070 1.63.2.1 phil ieee80211_alloc_cts(struct ieee80211com *ic,
3071 1.63.2.1 phil const uint8_t ra[IEEE80211_ADDR_LEN], uint16_t dur)
3072 1.50 jmcneill {
3073 1.50 jmcneill struct ieee80211_frame_cts *cts;
3074 1.50 jmcneill struct mbuf *m;
3075 1.50 jmcneill
3076 1.63.2.1 phil /* XXX honor ic_headroom */
3077 1.63.2.1 phil m = m_gethdr(M_NOWAIT, MT_DATA);
3078 1.63.2.1 phil if (m != NULL) {
3079 1.63.2.1 phil cts = mtod(m, struct ieee80211_frame_cts *);
3080 1.63.2.1 phil cts->i_fc[0] = IEEE80211_FC0_VERSION_0 |
3081 1.63.2.1 phil IEEE80211_FC0_TYPE_CTL | IEEE80211_FC0_SUBTYPE_CTS;
3082 1.63.2.1 phil cts->i_fc[1] = IEEE80211_FC1_DIR_NODS;
3083 1.63.2.1 phil *(u_int16_t *)cts->i_dur = htole16(dur);
3084 1.63.2.1 phil IEEE80211_ADDR_COPY(cts->i_ra, ra);
3085 1.50 jmcneill
3086 1.63.2.1 phil m->m_pkthdr.len = m->m_len = sizeof(struct ieee80211_frame_cts);
3087 1.63.2.1 phil }
3088 1.50 jmcneill return m;
3089 1.50 jmcneill }
3090 1.50 jmcneill
3091 1.50 jmcneill /*
3092 1.63.2.1 phil * Wrapper for CTS/RTS frame allocation.
3093 1.29 dyoung */
3094 1.29 dyoung struct mbuf *
3095 1.63.2.1 phil ieee80211_alloc_prot(struct ieee80211_node *ni, const struct mbuf *m,
3096 1.63.2.1 phil uint8_t rate, int prot)
3097 1.29 dyoung {
3098 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
3099 1.63.2.1 phil const struct ieee80211_frame *wh;
3100 1.63.2.1 phil struct mbuf *mprot;
3101 1.63.2.1 phil uint16_t dur;
3102 1.63.2.1 phil int pktlen, isshort;
3103 1.63.2.1 phil
3104 1.63.2.1 phil KASSERT(prot == IEEE80211_PROT_RTSCTS ||
3105 1.63.2.1 phil prot == IEEE80211_PROT_CTSONLY,
3106 1.63.2.1 phil ("wrong protection type %d", prot));
3107 1.63.2.1 phil
3108 1.63.2.1 phil wh = mtod(m, const struct ieee80211_frame *);
3109 1.63.2.1 phil pktlen = m->m_pkthdr.len + IEEE80211_CRC_LEN;
3110 1.63.2.1 phil isshort = (ic->ic_flags & IEEE80211_F_SHPREAMBLE) != 0;
3111 1.63.2.1 phil dur = ieee80211_compute_duration(ic->ic_rt, pktlen, rate, isshort)
3112 1.63.2.1 phil + ieee80211_ack_duration(ic->ic_rt, rate, isshort);
3113 1.63.2.1 phil
3114 1.63.2.1 phil if (prot == IEEE80211_PROT_RTSCTS) {
3115 1.63.2.1 phil /* NB: CTS is the same size as an ACK */
3116 1.63.2.1 phil dur += ieee80211_ack_duration(ic->ic_rt, rate, isshort);
3117 1.63.2.1 phil mprot = ieee80211_alloc_rts(ic, wh->i_addr1, wh->i_addr2, dur);
3118 1.63.2.1 phil } else
3119 1.63.2.1 phil mprot = ieee80211_alloc_cts(ic, ni->ni_vap->iv_myaddr, dur);
3120 1.63.2.1 phil
3121 1.63.2.1 phil return (mprot);
3122 1.63.2.1 phil }
3123 1.63.2.1 phil
3124 1.63.2.1 phil static void
3125 1.63.2.1 phil ieee80211_tx_mgt_timeout(void *arg)
3126 1.63.2.1 phil {
3127 1.63.2.1 phil struct ieee80211vap *vap = arg;
3128 1.63.2.1 phil
3129 1.63.2.1 phil IEEE80211_LOCK(vap->iv_ic);
3130 1.63.2.1 phil if (vap->iv_state != IEEE80211_S_INIT &&
3131 1.63.2.1 phil (vap->iv_ic->ic_flags & IEEE80211_F_SCAN) == 0) {
3132 1.63.2.1 phil /*
3133 1.63.2.1 phil * NB: it's safe to specify a timeout as the reason here;
3134 1.63.2.1 phil * it'll only be used in the right state.
3135 1.63.2.1 phil */
3136 1.63.2.1 phil ieee80211_new_state_locked(vap, IEEE80211_S_SCAN,
3137 1.63.2.1 phil IEEE80211_SCAN_FAIL_TIMEOUT);
3138 1.63.2.1 phil }
3139 1.63.2.1 phil IEEE80211_UNLOCK(vap->iv_ic);
3140 1.63.2.1 phil }
3141 1.63.2.1 phil
3142 1.63.2.1 phil /*
3143 1.63.2.1 phil * This is the callback set on net80211-sourced transmitted
3144 1.63.2.1 phil * authentication request frames.
3145 1.63.2.1 phil *
3146 1.63.2.1 phil * This does a couple of things:
3147 1.63.2.1 phil *
3148 1.63.2.1 phil * + If the frame transmitted was a success, it schedules a future
3149 1.63.2.1 phil * event which will transition the interface to scan.
3150 1.63.2.1 phil * If a state transition _then_ occurs before that event occurs,
3151 1.63.2.1 phil * said state transition will cancel this callout.
3152 1.63.2.1 phil *
3153 1.63.2.1 phil * + If the frame transmit was a failure, it immediately schedules
3154 1.63.2.1 phil * the transition back to scan.
3155 1.63.2.1 phil */
3156 1.63.2.1 phil static void
3157 1.63.2.1 phil ieee80211_tx_mgt_cb(struct ieee80211_node *ni, void *arg, int status)
3158 1.63.2.1 phil {
3159 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
3160 1.63.2.1 phil enum ieee80211_state ostate = (enum ieee80211_state) arg;
3161 1.63.2.1 phil
3162 1.63.2.1 phil /*
3163 1.63.2.1 phil * Frame transmit completed; arrange timer callback. If
3164 1.63.2.1 phil * transmit was successfully we wait for response. Otherwise
3165 1.63.2.1 phil * we arrange an immediate callback instead of doing the
3166 1.63.2.1 phil * callback directly since we don't know what state the driver
3167 1.63.2.1 phil * is in (e.g. what locks it is holding). This work should
3168 1.63.2.1 phil * not be too time-critical and not happen too often so the
3169 1.63.2.1 phil * added overhead is acceptable.
3170 1.63.2.1 phil *
3171 1.63.2.1 phil * XXX what happens if !acked but response shows up before callback?
3172 1.63.2.1 phil */
3173 1.63.2.1 phil if (vap->iv_state == ostate) {
3174 1.63.2.1 phil callout_reset(&vap->iv_mgtsend,
3175 1.63.2.1 phil status == 0 ? IEEE80211_TRANS_WAIT*hz : 0,
3176 1.63.2.1 phil ieee80211_tx_mgt_timeout, vap);
3177 1.63.2.1 phil }
3178 1.63.2.1 phil }
3179 1.29 dyoung
3180 1.63.2.1 phil static void
3181 1.63.2.1 phil ieee80211_beacon_construct(struct mbuf *m, uint8_t *frm,
3182 1.63.2.1 phil struct ieee80211_node *ni)
3183 1.63.2.1 phil {
3184 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
3185 1.63.2.1 phil struct ieee80211_beacon_offsets *bo = &vap->iv_bcn_off;
3186 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
3187 1.63.2.1 phil struct ieee80211_rateset *rs = &ni->ni_rates;
3188 1.63.2.1 phil uint16_t capinfo;
3189 1.61 maxv
3190 1.29 dyoung /*
3191 1.29 dyoung * beacon frame format
3192 1.63.2.1 phil *
3193 1.63.2.1 phil * TODO: update to 802.11-2012; a lot of stuff has changed;
3194 1.63.2.1 phil * vendor extensions should be at the end, etc.
3195 1.63.2.1 phil *
3196 1.29 dyoung * [8] time stamp
3197 1.29 dyoung * [2] beacon interval
3198 1.29 dyoung * [2] cabability information
3199 1.29 dyoung * [tlv] ssid
3200 1.29 dyoung * [tlv] supported rates
3201 1.29 dyoung * [3] parameter set (DS)
3202 1.63.2.1 phil * [8] CF parameter set (optional)
3203 1.29 dyoung * [tlv] parameter set (IBSS/TIM)
3204 1.63.2.1 phil * [tlv] country (optional)
3205 1.63.2.1 phil * [3] power control (optional)
3206 1.63.2.1 phil * [5] channel switch announcement (CSA) (optional)
3207 1.63.2.1 phil * XXX TODO: Quiet
3208 1.63.2.1 phil * XXX TODO: IBSS DFS
3209 1.63.2.1 phil * XXX TODO: TPC report
3210 1.29 dyoung * [tlv] extended rate phy (ERP)
3211 1.29 dyoung * [tlv] extended supported rates
3212 1.63.2.1 phil * [tlv] RSN parameters
3213 1.63.2.1 phil * XXX TODO: BSSLOAD
3214 1.63.2.1 phil * (XXX EDCA parameter set, QoS capability?)
3215 1.63.2.1 phil * XXX TODO: AP channel report
3216 1.61 maxv *
3217 1.63.2.1 phil * [tlv] HT capabilities
3218 1.63.2.1 phil * [tlv] HT information
3219 1.63.2.1 phil * XXX TODO: 20/40 BSS coexistence
3220 1.63.2.1 phil * Mesh:
3221 1.63.2.1 phil * XXX TODO: Meshid
3222 1.63.2.1 phil * XXX TODO: mesh config
3223 1.63.2.1 phil * XXX TODO: mesh awake window
3224 1.63.2.1 phil * XXX TODO: beacon timing (mesh, etc)
3225 1.63.2.1 phil * XXX TODO: MCCAOP Advertisement Overview
3226 1.63.2.1 phil * XXX TODO: MCCAOP Advertisement
3227 1.63.2.1 phil * XXX TODO: Mesh channel switch parameters
3228 1.63.2.1 phil * VHT:
3229 1.63.2.1 phil * XXX TODO: VHT capabilities
3230 1.63.2.1 phil * XXX TODO: VHT operation
3231 1.63.2.1 phil * XXX TODO: VHT transmit power envelope
3232 1.63.2.1 phil * XXX TODO: channel switch wrapper element
3233 1.63.2.1 phil * XXX TODO: extended BSS load element
3234 1.63.2.1 phil *
3235 1.63.2.1 phil * XXX Vendor-specific OIDs (e.g. Atheros)
3236 1.63.2.1 phil * [tlv] WPA parameters
3237 1.63.2.1 phil * [tlv] WME parameters
3238 1.63.2.1 phil * [tlv] Vendor OUI HT capabilities (optional)
3239 1.63.2.1 phil * [tlv] Vendor OUI HT information (optional)
3240 1.63.2.1 phil * [tlv] Atheros capabilities (optional)
3241 1.63.2.1 phil * [tlv] TDMA parameters (optional)
3242 1.63.2.1 phil * [tlv] Mesh ID (MBSS)
3243 1.63.2.1 phil * [tlv] Mesh Conf (MBSS)
3244 1.63.2.1 phil * [tlv] application data (optional)
3245 1.29 dyoung */
3246 1.63.2.1 phil
3247 1.63.2.1 phil memset(bo, 0, sizeof(*bo));
3248 1.29 dyoung
3249 1.29 dyoung memset(frm, 0, 8); /* XXX timestamp is set by hardware/driver */
3250 1.29 dyoung frm += 8;
3251 1.63.2.1 phil *(uint16_t *)frm = htole16(ni->ni_intval);
3252 1.29 dyoung frm += 2;
3253 1.63.2.1 phil capinfo = ieee80211_getcapinfo(vap, ni->ni_chan);
3254 1.63.2.1 phil bo->bo_caps = (uint16_t *)frm;
3255 1.63.2.1 phil *(uint16_t *)frm = htole16(capinfo);
3256 1.29 dyoung frm += 2;
3257 1.29 dyoung *frm++ = IEEE80211_ELEMID_SSID;
3258 1.63.2.1 phil if ((vap->iv_flags & IEEE80211_F_HIDESSID) == 0) {
3259 1.29 dyoung *frm++ = ni->ni_esslen;
3260 1.29 dyoung memcpy(frm, ni->ni_essid, ni->ni_esslen);
3261 1.29 dyoung frm += ni->ni_esslen;
3262 1.29 dyoung } else
3263 1.29 dyoung *frm++ = 0;
3264 1.29 dyoung frm = ieee80211_add_rates(frm, rs);
3265 1.63.2.1 phil if (!IEEE80211_IS_CHAN_FHSS(ni->ni_chan)) {
3266 1.29 dyoung *frm++ = IEEE80211_ELEMID_DSPARMS;
3267 1.29 dyoung *frm++ = 1;
3268 1.29 dyoung *frm++ = ieee80211_chan2ieee(ic, ni->ni_chan);
3269 1.29 dyoung }
3270 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_PCF) {
3271 1.63.2.1 phil bo->bo_cfp = frm;
3272 1.63.2.1 phil frm = ieee80211_add_cfparms(frm, ic);
3273 1.63.2.1 phil }
3274 1.29 dyoung bo->bo_tim = frm;
3275 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_IBSS) {
3276 1.29 dyoung *frm++ = IEEE80211_ELEMID_IBSSPARMS;
3277 1.29 dyoung *frm++ = 2;
3278 1.29 dyoung *frm++ = 0; *frm++ = 0; /* TODO: ATIM window */
3279 1.29 dyoung bo->bo_tim_len = 0;
3280 1.63.2.1 phil } else if (vap->iv_opmode == IEEE80211_M_HOSTAP ||
3281 1.63.2.1 phil vap->iv_opmode == IEEE80211_M_MBSS) {
3282 1.63.2.1 phil /* TIM IE is the same for Mesh and Hostap */
3283 1.63.2.1 phil struct ieee80211_tim_ie *tie = (struct ieee80211_tim_ie *) frm;
3284 1.29 dyoung
3285 1.29 dyoung tie->tim_ie = IEEE80211_ELEMID_TIM;
3286 1.29 dyoung tie->tim_len = 4; /* length */
3287 1.29 dyoung tie->tim_count = 0; /* DTIM count */
3288 1.63.2.1 phil tie->tim_period = vap->iv_dtim_period; /* DTIM period */
3289 1.29 dyoung tie->tim_bitctl = 0; /* bitmap control */
3290 1.29 dyoung tie->tim_bitmap[0] = 0; /* Partial Virtual Bitmap */
3291 1.29 dyoung frm += sizeof(struct ieee80211_tim_ie);
3292 1.29 dyoung bo->bo_tim_len = 1;
3293 1.29 dyoung }
3294 1.63.2.1 phil bo->bo_tim_trailer = frm;
3295 1.63.2.1 phil if ((vap->iv_flags & IEEE80211_F_DOTH) ||
3296 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_DOTD))
3297 1.63.2.1 phil frm = ieee80211_add_countryie(frm, ic);
3298 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_DOTH) {
3299 1.63.2.1 phil if (IEEE80211_IS_CHAN_5GHZ(ni->ni_chan))
3300 1.63.2.1 phil frm = ieee80211_add_powerconstraint(frm, vap);
3301 1.63.2.1 phil bo->bo_csa = frm;
3302 1.63.2.1 phil if (ic->ic_flags & IEEE80211_F_CSAPENDING)
3303 1.63.2.1 phil frm = ieee80211_add_csa(frm, vap);
3304 1.63.2.1 phil } else
3305 1.63.2.1 phil bo->bo_csa = frm;
3306 1.63.2.1 phil
3307 1.63.2.1 phil bo->bo_quiet = NULL;
3308 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_DOTH) {
3309 1.63.2.1 phil if (IEEE80211_IS_CHAN_DFS(ic->ic_bsschan) &&
3310 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_DFS) &&
3311 1.63.2.1 phil (vap->iv_quiet == 1)) {
3312 1.63.2.1 phil /*
3313 1.63.2.1 phil * We only insert the quiet IE offset if
3314 1.63.2.1 phil * the quiet IE is enabled. Otherwise don't
3315 1.63.2.1 phil * put it here or we'll just overwrite
3316 1.63.2.1 phil * some other beacon contents.
3317 1.63.2.1 phil */
3318 1.63.2.1 phil if (vap->iv_quiet) {
3319 1.63.2.1 phil bo->bo_quiet = frm;
3320 1.63.2.1 phil frm = ieee80211_add_quiet(frm,vap, 0);
3321 1.63.2.1 phil }
3322 1.63.2.1 phil }
3323 1.63.2.1 phil }
3324 1.63.2.1 phil
3325 1.63.2.1 phil if (IEEE80211_IS_CHAN_ANYG(ni->ni_chan)) {
3326 1.63.2.1 phil bo->bo_erp = frm;
3327 1.63.2.1 phil frm = ieee80211_add_erp(frm, ic);
3328 1.63.2.1 phil }
3329 1.63.2.1 phil frm = ieee80211_add_xrates(frm, rs);
3330 1.63.2.1 phil frm = ieee80211_add_rsn(frm, vap);
3331 1.63.2.1 phil if (IEEE80211_IS_CHAN_HT(ni->ni_chan)) {
3332 1.63.2.1 phil frm = ieee80211_add_htcap(frm, ni);
3333 1.63.2.1 phil bo->bo_htinfo = frm;
3334 1.63.2.1 phil frm = ieee80211_add_htinfo(frm, ni);
3335 1.63.2.1 phil }
3336 1.63.2.1 phil
3337 1.63.2.1 phil if (IEEE80211_IS_CHAN_VHT(ni->ni_chan)) {
3338 1.63.2.1 phil frm = ieee80211_add_vhtcap(frm, ni);
3339 1.63.2.1 phil bo->bo_vhtinfo = frm;
3340 1.63.2.1 phil frm = ieee80211_add_vhtinfo(frm, ni);
3341 1.63.2.1 phil /* Transmit power envelope */
3342 1.63.2.1 phil /* Channel switch wrapper element */
3343 1.63.2.1 phil /* Extended bss load element */
3344 1.63.2.1 phil }
3345 1.61 maxv
3346 1.63.2.1 phil frm = ieee80211_add_wpa(frm, vap);
3347 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_WME) {
3348 1.29 dyoung bo->bo_wme = frm;
3349 1.29 dyoung frm = ieee80211_add_wme_param(frm, &ic->ic_wme);
3350 1.63.2.1 phil }
3351 1.63.2.1 phil if (IEEE80211_IS_CHAN_HT(ni->ni_chan) &&
3352 1.63.2.1 phil (vap->iv_flags_ht & IEEE80211_FHT_HTCOMPAT)) {
3353 1.63.2.1 phil frm = ieee80211_add_htcap_vendor(frm, ni);
3354 1.63.2.1 phil frm = ieee80211_add_htinfo_vendor(frm, ni);
3355 1.29 dyoung }
3356 1.61 maxv
3357 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
3358 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_ATHEROS) {
3359 1.63.2.1 phil bo->bo_ath = frm;
3360 1.63.2.1 phil frm = ieee80211_add_athcaps(frm, ni);
3361 1.63.2.1 phil }
3362 1.63.2.1 phil #endif
3363 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_TDMA
3364 1.63.2.1 phil if (vap->iv_caps & IEEE80211_C_TDMA) {
3365 1.63.2.1 phil bo->bo_tdma = frm;
3366 1.63.2.1 phil frm = ieee80211_add_tdma(frm, vap);
3367 1.63.2.1 phil }
3368 1.63.2.1 phil #endif
3369 1.63.2.1 phil if (vap->iv_appie_beacon != NULL) {
3370 1.63.2.1 phil bo->bo_appie = frm;
3371 1.63.2.1 phil bo->bo_appie_len = vap->iv_appie_beacon->ie_len;
3372 1.63.2.1 phil frm = add_appie(frm, vap->iv_appie_beacon);
3373 1.63.2.1 phil }
3374 1.61 maxv
3375 1.63.2.1 phil /* XXX TODO: move meshid/meshconf up to before vendor extensions? */
3376 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
3377 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS) {
3378 1.63.2.1 phil frm = ieee80211_add_meshid(frm, vap);
3379 1.63.2.1 phil bo->bo_meshconf = frm;
3380 1.63.2.1 phil frm = ieee80211_add_meshconf(frm, vap);
3381 1.63.2.1 phil }
3382 1.63.2.1 phil #endif
3383 1.63.2.1 phil bo->bo_tim_trailer_len = frm - bo->bo_tim_trailer;
3384 1.63.2.1 phil bo->bo_csa_trailer_len = frm - bo->bo_csa;
3385 1.63.2.1 phil m->m_pkthdr.len = m->m_len = frm - mtod(m, uint8_t *);
3386 1.63.2.1 phil }
3387 1.61 maxv
3388 1.63.2.1 phil /*
3389 1.63.2.1 phil * Allocate a beacon frame and fillin the appropriate bits.
3390 1.63.2.1 phil */
3391 1.63.2.1 phil struct mbuf *
3392 1.63.2.1 phil ieee80211_beacon_alloc(struct ieee80211_node *ni)
3393 1.63.2.1 phil {
3394 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
3395 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
3396 1.63.2.1 phil struct ifnet *ifp = vap->iv_ifp;
3397 1.63.2.1 phil struct ieee80211_frame *wh;
3398 1.63.2.1 phil struct mbuf *m;
3399 1.63.2.1 phil int pktlen;
3400 1.63.2.1 phil uint8_t *frm;
3401 1.61 maxv
3402 1.63.2.1 phil /*
3403 1.63.2.1 phil * Update the "We're putting the quiet IE in the beacon" state.
3404 1.63.2.1 phil */
3405 1.63.2.1 phil if (vap->iv_quiet == 1)
3406 1.63.2.1 phil vap->iv_flags_ext |= IEEE80211_FEXT_QUIET_IE;
3407 1.63.2.1 phil else if (vap->iv_quiet == 0)
3408 1.63.2.1 phil vap->iv_flags_ext &= ~IEEE80211_FEXT_QUIET_IE;
3409 1.29 dyoung
3410 1.63.2.1 phil /*
3411 1.63.2.1 phil * beacon frame format
3412 1.63.2.1 phil *
3413 1.63.2.1 phil * Note: This needs updating for 802.11-2012.
3414 1.63.2.1 phil *
3415 1.63.2.1 phil * [8] time stamp
3416 1.63.2.1 phil * [2] beacon interval
3417 1.63.2.1 phil * [2] cabability information
3418 1.63.2.1 phil * [tlv] ssid
3419 1.63.2.1 phil * [tlv] supported rates
3420 1.63.2.1 phil * [3] parameter set (DS)
3421 1.63.2.1 phil * [8] CF parameter set (optional)
3422 1.63.2.1 phil * [tlv] parameter set (IBSS/TIM)
3423 1.63.2.1 phil * [tlv] country (optional)
3424 1.63.2.1 phil * [3] power control (optional)
3425 1.63.2.1 phil * [5] channel switch announcement (CSA) (optional)
3426 1.63.2.1 phil * [tlv] extended rate phy (ERP)
3427 1.63.2.1 phil * [tlv] extended supported rates
3428 1.63.2.1 phil * [tlv] RSN parameters
3429 1.63.2.1 phil * [tlv] HT capabilities
3430 1.63.2.1 phil * [tlv] HT information
3431 1.63.2.1 phil * [tlv] VHT capabilities
3432 1.63.2.1 phil * [tlv] VHT operation
3433 1.63.2.1 phil * [tlv] Vendor OUI HT capabilities (optional)
3434 1.63.2.1 phil * [tlv] Vendor OUI HT information (optional)
3435 1.63.2.1 phil * XXX Vendor-specific OIDs (e.g. Atheros)
3436 1.63.2.1 phil * [tlv] WPA parameters
3437 1.63.2.1 phil * [tlv] WME parameters
3438 1.63.2.1 phil * [tlv] TDMA parameters (optional)
3439 1.63.2.1 phil * [tlv] Mesh ID (MBSS)
3440 1.63.2.1 phil * [tlv] Mesh Conf (MBSS)
3441 1.63.2.1 phil * [tlv] application data (optional)
3442 1.63.2.1 phil * NB: we allocate the max space required for the TIM bitmap.
3443 1.63.2.1 phil * XXX how big is this?
3444 1.63.2.1 phil */
3445 1.63.2.1 phil pktlen = 8 /* time stamp */
3446 1.63.2.1 phil + sizeof(uint16_t) /* beacon interval */
3447 1.63.2.1 phil + sizeof(uint16_t) /* capabilities */
3448 1.63.2.1 phil + 2 + ni->ni_esslen /* ssid */
3449 1.63.2.1 phil + 2 + IEEE80211_RATE_SIZE /* supported rates */
3450 1.63.2.1 phil + 2 + 1 /* DS parameters */
3451 1.63.2.1 phil + 2 + 6 /* CF parameters */
3452 1.63.2.1 phil + 2 + 4 + vap->iv_tim_len /* DTIM/IBSSPARMS */
3453 1.63.2.1 phil + IEEE80211_COUNTRY_MAX_SIZE /* country */
3454 1.63.2.1 phil + 2 + 1 /* power control */
3455 1.63.2.1 phil + sizeof(struct ieee80211_csa_ie) /* CSA */
3456 1.63.2.1 phil + sizeof(struct ieee80211_quiet_ie) /* Quiet */
3457 1.63.2.1 phil + 2 + 1 /* ERP */
3458 1.63.2.1 phil + 2 + (IEEE80211_RATE_MAXSIZE - IEEE80211_RATE_SIZE)
3459 1.63.2.1 phil + (vap->iv_caps & IEEE80211_C_WPA ? /* WPA 1+2 */
3460 1.63.2.1 phil 2*sizeof(struct ieee80211_ie_wpa) : 0)
3461 1.63.2.1 phil /* XXX conditional? */
3462 1.63.2.1 phil + 4+2*sizeof(struct ieee80211_ie_htcap)/* HT caps */
3463 1.63.2.1 phil + 4+2*sizeof(struct ieee80211_ie_htinfo)/* HT info */
3464 1.63.2.1 phil + sizeof(struct ieee80211_ie_vhtcap)/* VHT caps */
3465 1.63.2.1 phil + sizeof(struct ieee80211_ie_vht_operation)/* VHT info */
3466 1.63.2.1 phil + (vap->iv_caps & IEEE80211_C_WME ? /* WME */
3467 1.63.2.1 phil sizeof(struct ieee80211_wme_param) : 0)
3468 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
3469 1.63.2.1 phil + sizeof(struct ieee80211_ath_ie) /* ATH */
3470 1.63.2.1 phil #endif
3471 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_TDMA
3472 1.63.2.1 phil + (vap->iv_caps & IEEE80211_C_TDMA ? /* TDMA */
3473 1.63.2.1 phil sizeof(struct ieee80211_tdma_param) : 0)
3474 1.63.2.1 phil #endif
3475 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
3476 1.63.2.1 phil + 2 + ni->ni_meshidlen
3477 1.63.2.1 phil + sizeof(struct ieee80211_meshconf_ie)
3478 1.63.2.1 phil #endif
3479 1.63.2.1 phil + IEEE80211_MAX_APPIE
3480 1.63.2.1 phil ;
3481 1.63.2.1 phil m = ieee80211_getmgtframe(&frm,
3482 1.63.2.1 phil ic->ic_headroom + sizeof(struct ieee80211_frame), pktlen);
3483 1.63.2.1 phil if (m == NULL) {
3484 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_ANY,
3485 1.63.2.1 phil "%s: cannot get buf; size %u\n", __func__, pktlen);
3486 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
3487 1.63.2.1 phil return NULL;
3488 1.63.2.1 phil }
3489 1.63.2.1 phil ieee80211_beacon_construct(m, frm, ni);
3490 1.61 maxv
3491 1.63.2.1 phil M_PREPEND(m, sizeof(struct ieee80211_frame), M_NOWAIT);
3492 1.63.2.1 phil KASSERT(m != NULL, ("no space for 802.11 header?"));
3493 1.29 dyoung wh = mtod(m, struct ieee80211_frame *);
3494 1.29 dyoung wh->i_fc[0] = IEEE80211_FC0_VERSION_0 | IEEE80211_FC0_TYPE_MGT |
3495 1.29 dyoung IEEE80211_FC0_SUBTYPE_BEACON;
3496 1.29 dyoung wh->i_fc[1] = IEEE80211_FC1_DIR_NODS;
3497 1.63.2.1 phil *(uint16_t *)wh->i_dur = 0;
3498 1.29 dyoung IEEE80211_ADDR_COPY(wh->i_addr1, ifp->if_broadcastaddr);
3499 1.63.2.1 phil IEEE80211_ADDR_COPY(wh->i_addr2, vap->iv_myaddr);
3500 1.29 dyoung IEEE80211_ADDR_COPY(wh->i_addr3, ni->ni_bssid);
3501 1.63.2.1 phil *(uint16_t *)wh->i_seq = 0;
3502 1.29 dyoung
3503 1.29 dyoung return m;
3504 1.29 dyoung }
3505 1.29 dyoung
3506 1.29 dyoung /*
3507 1.29 dyoung * Update the dynamic parts of a beacon frame based on the current state.
3508 1.29 dyoung */
3509 1.29 dyoung int
3510 1.63.2.1 phil ieee80211_beacon_update(struct ieee80211_node *ni, struct mbuf *m, int mcast)
3511 1.29 dyoung {
3512 1.63.2.1 phil struct ieee80211vap *vap = ni->ni_vap;
3513 1.63.2.1 phil struct ieee80211_beacon_offsets *bo = &vap->iv_bcn_off;
3514 1.63.2.1 phil struct ieee80211com *ic = ni->ni_ic;
3515 1.29 dyoung int len_changed = 0;
3516 1.63.2.1 phil uint16_t capinfo;
3517 1.63.2.1 phil struct ieee80211_frame *wh;
3518 1.63.2.1 phil ieee80211_seq seqno;
3519 1.63.2.1 phil
3520 1.63.2.1 phil IEEE80211_LOCK(ic);
3521 1.63.2.1 phil /*
3522 1.63.2.1 phil * Handle 11h channel change when we've reached the count.
3523 1.63.2.1 phil * We must recalculate the beacon frame contents to account
3524 1.63.2.1 phil * for the new channel. Note we do this only for the first
3525 1.63.2.1 phil * vap that reaches this point; subsequent vaps just update
3526 1.63.2.1 phil * their beacon state to reflect the recalculated channel.
3527 1.63.2.1 phil */
3528 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_CSA) &&
3529 1.63.2.1 phil vap->iv_csa_count == ic->ic_csa_count) {
3530 1.63.2.1 phil vap->iv_csa_count = 0;
3531 1.63.2.1 phil /*
3532 1.63.2.1 phil * Effect channel change before reconstructing the beacon
3533 1.63.2.1 phil * frame contents as many places reference ni_chan.
3534 1.63.2.1 phil */
3535 1.63.2.1 phil if (ic->ic_csa_newchan != NULL)
3536 1.63.2.1 phil ieee80211_csa_completeswitch(ic);
3537 1.63.2.1 phil /*
3538 1.63.2.1 phil * NB: ieee80211_beacon_construct clears all pending
3539 1.63.2.1 phil * updates in bo_flags so we don't need to explicitly
3540 1.63.2.1 phil * clear IEEE80211_BEACON_CSA.
3541 1.63.2.1 phil */
3542 1.63.2.1 phil ieee80211_beacon_construct(m,
3543 1.63.2.1 phil mtod(m, uint8_t*) + sizeof(struct ieee80211_frame), ni);
3544 1.63.2.1 phil
3545 1.63.2.1 phil /* XXX do WME aggressive mode processing? */
3546 1.63.2.1 phil IEEE80211_UNLOCK(ic);
3547 1.63.2.1 phil return 1; /* just assume length changed */
3548 1.63.2.1 phil }
3549 1.63.2.1 phil
3550 1.63.2.1 phil /*
3551 1.63.2.1 phil * Handle the quiet time element being added and removed.
3552 1.63.2.1 phil * Again, for now we just cheat and reconstruct the whole
3553 1.63.2.1 phil * beacon - that way the gap is provided as appropriate.
3554 1.63.2.1 phil *
3555 1.63.2.1 phil * So, track whether we have already added the IE versus
3556 1.63.2.1 phil * whether we want to be adding the IE.
3557 1.63.2.1 phil */
3558 1.63.2.1 phil if ((vap->iv_flags_ext & IEEE80211_FEXT_QUIET_IE) &&
3559 1.63.2.1 phil (vap->iv_quiet == 0)) {
3560 1.63.2.1 phil /*
3561 1.63.2.1 phil * Quiet time beacon IE enabled, but it's disabled;
3562 1.63.2.1 phil * recalc
3563 1.63.2.1 phil */
3564 1.63.2.1 phil vap->iv_flags_ext &= ~IEEE80211_FEXT_QUIET_IE;
3565 1.63.2.1 phil ieee80211_beacon_construct(m,
3566 1.63.2.1 phil mtod(m, uint8_t*) + sizeof(struct ieee80211_frame), ni);
3567 1.63.2.1 phil /* XXX do WME aggressive mode processing? */
3568 1.63.2.1 phil IEEE80211_UNLOCK(ic);
3569 1.63.2.1 phil return 1; /* just assume length changed */
3570 1.63.2.1 phil }
3571 1.63.2.1 phil
3572 1.63.2.1 phil if (((vap->iv_flags_ext & IEEE80211_FEXT_QUIET_IE) == 0) &&
3573 1.63.2.1 phil (vap->iv_quiet == 1)) {
3574 1.63.2.1 phil /*
3575 1.63.2.1 phil * Quiet time beacon IE disabled, but it's now enabled;
3576 1.63.2.1 phil * recalc
3577 1.63.2.1 phil */
3578 1.63.2.1 phil vap->iv_flags_ext |= IEEE80211_FEXT_QUIET_IE;
3579 1.63.2.1 phil ieee80211_beacon_construct(m,
3580 1.63.2.1 phil mtod(m, uint8_t*) + sizeof(struct ieee80211_frame), ni);
3581 1.63.2.1 phil /* XXX do WME aggressive mode processing? */
3582 1.63.2.1 phil IEEE80211_UNLOCK(ic);
3583 1.63.2.1 phil return 1; /* just assume length changed */
3584 1.63.2.1 phil }
3585 1.63.2.1 phil
3586 1.63.2.1 phil wh = mtod(m, struct ieee80211_frame *);
3587 1.29 dyoung
3588 1.63.2.1 phil /*
3589 1.63.2.1 phil * XXX TODO Strictly speaking this should be incremented with the TX
3590 1.63.2.1 phil * lock held so as to serialise access to the non-qos TID sequence
3591 1.63.2.1 phil * number space.
3592 1.63.2.1 phil *
3593 1.63.2.1 phil * If the driver identifies it does its own TX seqno management then
3594 1.63.2.1 phil * we can skip this (and still not do the TX seqno.)
3595 1.63.2.1 phil */
3596 1.63.2.1 phil seqno = ni->ni_txseqs[IEEE80211_NONQOS_TID]++;
3597 1.63.2.1 phil *(uint16_t *)&wh->i_seq[0] =
3598 1.63.2.1 phil htole16(seqno << IEEE80211_SEQ_SEQ_SHIFT);
3599 1.63.2.1 phil M_SEQNO_SET(m, seqno);
3600 1.61 maxv
3601 1.29 dyoung /* XXX faster to recalculate entirely or just changes? */
3602 1.63.2.1 phil capinfo = ieee80211_getcapinfo(vap, ni->ni_chan);
3603 1.29 dyoung *bo->bo_caps = htole16(capinfo);
3604 1.29 dyoung
3605 1.63.2.1 phil if (vap->iv_flags & IEEE80211_F_WME) {
3606 1.29 dyoung struct ieee80211_wme_state *wme = &ic->ic_wme;
3607 1.29 dyoung
3608 1.29 dyoung /*
3609 1.63.2.1 phil * Check for aggressive mode change. When there is
3610 1.29 dyoung * significant high priority traffic in the BSS
3611 1.29 dyoung * throttle back BE traffic by using conservative
3612 1.63.2.1 phil * parameters. Otherwise BE uses aggressive params
3613 1.29 dyoung * to optimize performance of legacy/non-QoS traffic.
3614 1.29 dyoung */
3615 1.29 dyoung if (wme->wme_flags & WME_F_AGGRMODE) {
3616 1.29 dyoung if (wme->wme_hipri_traffic >
3617 1.29 dyoung wme->wme_hipri_switch_thresh) {
3618 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME,
3619 1.29 dyoung "%s: traffic %u, disable aggressive mode\n",
3620 1.29 dyoung __func__, wme->wme_hipri_traffic);
3621 1.29 dyoung wme->wme_flags &= ~WME_F_AGGRMODE;
3622 1.63.2.1 phil ieee80211_wme_updateparams_locked(vap);
3623 1.29 dyoung wme->wme_hipri_traffic =
3624 1.29 dyoung wme->wme_hipri_switch_hysteresis;
3625 1.29 dyoung } else
3626 1.29 dyoung wme->wme_hipri_traffic = 0;
3627 1.29 dyoung } else {
3628 1.29 dyoung if (wme->wme_hipri_traffic <=
3629 1.29 dyoung wme->wme_hipri_switch_thresh) {
3630 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME,
3631 1.29 dyoung "%s: traffic %u, enable aggressive mode\n",
3632 1.29 dyoung __func__, wme->wme_hipri_traffic);
3633 1.29 dyoung wme->wme_flags |= WME_F_AGGRMODE;
3634 1.63.2.1 phil ieee80211_wme_updateparams_locked(vap);
3635 1.29 dyoung wme->wme_hipri_traffic = 0;
3636 1.29 dyoung } else
3637 1.29 dyoung wme->wme_hipri_traffic =
3638 1.29 dyoung wme->wme_hipri_switch_hysteresis;
3639 1.29 dyoung }
3640 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_WME)) {
3641 1.63.2.1 phil (void) ieee80211_add_wme_param(bo->bo_wme, wme);
3642 1.63.2.1 phil clrbit(bo->bo_flags, IEEE80211_BEACON_WME);
3643 1.29 dyoung }
3644 1.29 dyoung }
3645 1.29 dyoung
3646 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_HTINFO)) {
3647 1.63.2.1 phil ieee80211_ht_update_beacon(vap, bo);
3648 1.63.2.1 phil clrbit(bo->bo_flags, IEEE80211_BEACON_HTINFO);
3649 1.63.2.1 phil }
3650 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_TDMA
3651 1.63.2.1 phil if (vap->iv_caps & IEEE80211_C_TDMA) {
3652 1.63.2.1 phil /*
3653 1.63.2.1 phil * NB: the beacon is potentially updated every TBTT.
3654 1.63.2.1 phil */
3655 1.63.2.1 phil ieee80211_tdma_update_beacon(vap, bo);
3656 1.63.2.1 phil }
3657 1.63.2.1 phil #endif
3658 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
3659 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_MBSS)
3660 1.63.2.1 phil ieee80211_mesh_update_beacon(vap, bo);
3661 1.63.2.1 phil #endif
3662 1.63.2.1 phil
3663 1.63.2.1 phil if (vap->iv_opmode == IEEE80211_M_HOSTAP ||
3664 1.63.2.1 phil vap->iv_opmode == IEEE80211_M_MBSS) { /* NB: no IBSS support*/
3665 1.29 dyoung struct ieee80211_tim_ie *tie =
3666 1.63.2.1 phil (struct ieee80211_tim_ie *) bo->bo_tim;
3667 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_TIM)) {
3668 1.29 dyoung u_int timlen, timoff, i;
3669 1.29 dyoung /*
3670 1.29 dyoung * ATIM/DTIM needs updating. If it fits in the
3671 1.29 dyoung * current space allocated then just copy in the
3672 1.29 dyoung * new bits. Otherwise we need to move any trailing
3673 1.29 dyoung * data to make room. Note that we know there is
3674 1.29 dyoung * contiguous space because ieee80211_beacon_allocate
3675 1.29 dyoung * insures there is space in the mbuf to write a
3676 1.63.2.1 phil * maximal-size virtual bitmap (based on iv_max_aid).
3677 1.29 dyoung */
3678 1.29 dyoung /*
3679 1.29 dyoung * Calculate the bitmap size and offset, copy any
3680 1.29 dyoung * trailer out of the way, and then copy in the
3681 1.29 dyoung * new bitmap and update the information element.
3682 1.29 dyoung * Note that the tim bitmap must contain at least
3683 1.29 dyoung * one byte and any offset must be even.
3684 1.29 dyoung */
3685 1.63.2.1 phil if (vap->iv_ps_pending != 0) {
3686 1.29 dyoung timoff = 128; /* impossibly large */
3687 1.63.2.1 phil for (i = 0; i < vap->iv_tim_len; i++)
3688 1.63.2.1 phil if (vap->iv_tim_bitmap[i]) {
3689 1.29 dyoung timoff = i &~ 1;
3690 1.29 dyoung break;
3691 1.29 dyoung }
3692 1.63.2.1 phil KASSERT(timoff != 128, ("tim bitmap empty!"));
3693 1.63.2.1 phil for (i = vap->iv_tim_len-1; i >= timoff; i--)
3694 1.63.2.1 phil if (vap->iv_tim_bitmap[i])
3695 1.29 dyoung break;
3696 1.29 dyoung timlen = 1 + (i - timoff);
3697 1.29 dyoung } else {
3698 1.29 dyoung timoff = 0;
3699 1.29 dyoung timlen = 1;
3700 1.29 dyoung }
3701 1.63.2.1 phil
3702 1.63.2.1 phil /*
3703 1.63.2.1 phil * TODO: validate this!
3704 1.63.2.1 phil */
3705 1.29 dyoung if (timlen != bo->bo_tim_len) {
3706 1.29 dyoung /* copy up/down trailer */
3707 1.63.2.1 phil int adjust = tie->tim_bitmap+timlen
3708 1.63.2.1 phil - bo->bo_tim_trailer;
3709 1.63.2.1 phil ovbcopy(bo->bo_tim_trailer,
3710 1.63.2.1 phil bo->bo_tim_trailer+adjust,
3711 1.63.2.1 phil bo->bo_tim_trailer_len);
3712 1.63.2.1 phil bo->bo_tim_trailer += adjust;
3713 1.63.2.1 phil bo->bo_erp += adjust;
3714 1.63.2.1 phil bo->bo_htinfo += adjust;
3715 1.63.2.1 phil bo->bo_vhtinfo += adjust;
3716 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
3717 1.63.2.1 phil bo->bo_ath += adjust;
3718 1.63.2.1 phil #endif
3719 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_TDMA
3720 1.63.2.1 phil bo->bo_tdma += adjust;
3721 1.63.2.1 phil #endif
3722 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
3723 1.63.2.1 phil bo->bo_meshconf += adjust;
3724 1.63.2.1 phil #endif
3725 1.63.2.1 phil bo->bo_appie += adjust;
3726 1.63.2.1 phil bo->bo_wme += adjust;
3727 1.63.2.1 phil bo->bo_csa += adjust;
3728 1.63.2.1 phil bo->bo_quiet += adjust;
3729 1.29 dyoung bo->bo_tim_len = timlen;
3730 1.29 dyoung
3731 1.29 dyoung /* update information element */
3732 1.29 dyoung tie->tim_len = 3 + timlen;
3733 1.29 dyoung tie->tim_bitctl = timoff;
3734 1.29 dyoung len_changed = 1;
3735 1.29 dyoung }
3736 1.63.2.1 phil memcpy(tie->tim_bitmap, vap->iv_tim_bitmap + timoff,
3737 1.29 dyoung bo->bo_tim_len);
3738 1.29 dyoung
3739 1.63.2.1 phil clrbit(bo->bo_flags, IEEE80211_BEACON_TIM);
3740 1.29 dyoung
3741 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_POWER,
3742 1.29 dyoung "%s: TIM updated, pending %u, off %u, len %u\n",
3743 1.63.2.1 phil __func__, vap->iv_ps_pending, timoff, timlen);
3744 1.29 dyoung }
3745 1.29 dyoung /* count down DTIM period */
3746 1.29 dyoung if (tie->tim_count == 0)
3747 1.29 dyoung tie->tim_count = tie->tim_period - 1;
3748 1.29 dyoung else
3749 1.29 dyoung tie->tim_count--;
3750 1.29 dyoung /* update state for buffered multicast frames on DTIM */
3751 1.63.2.1 phil if (mcast && tie->tim_count == 0)
3752 1.29 dyoung tie->tim_bitctl |= 1;
3753 1.29 dyoung else
3754 1.29 dyoung tie->tim_bitctl &= ~1;
3755 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_CSA)) {
3756 1.63.2.1 phil struct ieee80211_csa_ie *csa =
3757 1.63.2.1 phil (struct ieee80211_csa_ie *) bo->bo_csa;
3758 1.63.2.1 phil
3759 1.63.2.1 phil /*
3760 1.63.2.1 phil * Insert or update CSA ie. If we're just starting
3761 1.63.2.1 phil * to count down to the channel switch then we need
3762 1.63.2.1 phil * to insert the CSA ie. Otherwise we just need to
3763 1.63.2.1 phil * drop the count. The actual change happens above
3764 1.63.2.1 phil * when the vap's count reaches the target count.
3765 1.63.2.1 phil */
3766 1.63.2.1 phil if (vap->iv_csa_count == 0) {
3767 1.63.2.1 phil memmove(&csa[1], csa, bo->bo_csa_trailer_len);
3768 1.63.2.1 phil bo->bo_erp += sizeof(*csa);
3769 1.63.2.1 phil bo->bo_htinfo += sizeof(*csa);
3770 1.63.2.1 phil bo->bo_vhtinfo += sizeof(*csa);
3771 1.63.2.1 phil bo->bo_wme += sizeof(*csa);
3772 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
3773 1.63.2.1 phil bo->bo_ath += sizeof(*csa);
3774 1.63.2.1 phil #endif
3775 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_TDMA
3776 1.63.2.1 phil bo->bo_tdma += sizeof(*csa);
3777 1.63.2.1 phil #endif
3778 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_MESH
3779 1.63.2.1 phil bo->bo_meshconf += sizeof(*csa);
3780 1.63.2.1 phil #endif
3781 1.63.2.1 phil bo->bo_appie += sizeof(*csa);
3782 1.63.2.1 phil bo->bo_csa_trailer_len += sizeof(*csa);
3783 1.63.2.1 phil bo->bo_quiet += sizeof(*csa);
3784 1.63.2.1 phil bo->bo_tim_trailer_len += sizeof(*csa);
3785 1.63.2.1 phil m->m_len += sizeof(*csa);
3786 1.63.2.1 phil m->m_pkthdr.len += sizeof(*csa);
3787 1.63.2.1 phil
3788 1.63.2.1 phil ieee80211_add_csa(bo->bo_csa, vap);
3789 1.63.2.1 phil } else
3790 1.63.2.1 phil csa->csa_count--;
3791 1.63.2.1 phil vap->iv_csa_count++;
3792 1.63.2.1 phil /* NB: don't clear IEEE80211_BEACON_CSA */
3793 1.63.2.1 phil }
3794 1.63.2.1 phil
3795 1.63.2.1 phil /*
3796 1.63.2.1 phil * Only add the quiet time IE if we've enabled it
3797 1.63.2.1 phil * as appropriate.
3798 1.63.2.1 phil */
3799 1.63.2.1 phil if (IEEE80211_IS_CHAN_DFS(ic->ic_bsschan) &&
3800 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_DFS)) {
3801 1.63.2.1 phil if (vap->iv_quiet &&
3802 1.63.2.1 phil (vap->iv_flags_ext & IEEE80211_FEXT_QUIET_IE)) {
3803 1.63.2.1 phil ieee80211_add_quiet(bo->bo_quiet, vap, 1);
3804 1.63.2.1 phil }
3805 1.63.2.1 phil }
3806 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_ERP)) {
3807 1.63.2.1 phil /*
3808 1.63.2.1 phil * ERP element needs updating.
3809 1.63.2.1 phil */
3810 1.63.2.1 phil (void) ieee80211_add_erp(bo->bo_erp, ic);
3811 1.63.2.1 phil clrbit(bo->bo_flags, IEEE80211_BEACON_ERP);
3812 1.63.2.1 phil }
3813 1.63.2.1 phil #ifdef IEEE80211_SUPPORT_SUPERG
3814 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_ATH)) {
3815 1.63.2.1 phil ieee80211_add_athcaps(bo->bo_ath, ni);
3816 1.63.2.1 phil clrbit(bo->bo_flags, IEEE80211_BEACON_ATH);
3817 1.63.2.1 phil }
3818 1.63.2.1 phil #endif
3819 1.29 dyoung }
3820 1.63.2.1 phil if (isset(bo->bo_flags, IEEE80211_BEACON_APPIE)) {
3821 1.63.2.1 phil const struct ieee80211_appie *aie = vap->iv_appie_beacon;
3822 1.63.2.1 phil int aielen;
3823 1.63.2.1 phil uint8_t *frm;
3824 1.63.2.1 phil
3825 1.63.2.1 phil aielen = 0;
3826 1.63.2.1 phil if (aie != NULL)
3827 1.63.2.1 phil aielen += aie->ie_len;
3828 1.63.2.1 phil if (aielen != bo->bo_appie_len) {
3829 1.63.2.1 phil /* copy up/down trailer */
3830 1.63.2.1 phil int adjust = aielen - bo->bo_appie_len;
3831 1.63.2.1 phil ovbcopy(bo->bo_tim_trailer, bo->bo_tim_trailer+adjust,
3832 1.63.2.1 phil bo->bo_tim_trailer_len);
3833 1.63.2.1 phil bo->bo_tim_trailer += adjust;
3834 1.63.2.1 phil bo->bo_appie += adjust;
3835 1.63.2.1 phil bo->bo_appie_len = aielen;
3836 1.61 maxv
3837 1.63.2.1 phil len_changed = 1;
3838 1.63.2.1 phil }
3839 1.63.2.1 phil frm = bo->bo_appie;
3840 1.63.2.1 phil if (aie != NULL)
3841 1.63.2.1 phil frm = add_appie(frm, aie);
3842 1.63.2.1 phil clrbit(bo->bo_flags, IEEE80211_BEACON_APPIE);
3843 1.63.2.1 phil }
3844 1.63.2.1 phil IEEE80211_UNLOCK(ic);
3845 1.29 dyoung
3846 1.29 dyoung return len_changed;
3847 1.29 dyoung }
3848 1.29 dyoung
3849 1.29 dyoung /*
3850 1.63.2.1 phil * Do Ethernet-LLC encapsulation for each payload in a fast frame
3851 1.63.2.1 phil * tunnel encapsulation. The frame is assumed to have an Ethernet
3852 1.63.2.1 phil * header at the front that must be stripped before prepending the
3853 1.63.2.1 phil * LLC followed by the Ethernet header passed in (with an Ethernet
3854 1.63.2.1 phil * type that specifies the payload size).
3855 1.29 dyoung */
3856 1.63.2.1 phil struct mbuf *
3857 1.63.2.1 phil ieee80211_ff_encap1(struct ieee80211vap *vap, struct mbuf *m,
3858 1.63.2.1 phil const struct ether_header *eh)
3859 1.6 dyoung {
3860 1.63.2.1 phil struct llc *llc;
3861 1.63.2.1 phil uint16_t payload;
3862 1.6 dyoung
3863 1.63.2.1 phil /* XXX optimize by combining m_adj+M_PREPEND */
3864 1.63.2.1 phil m_adj(m, sizeof(struct ether_header) - sizeof(struct llc));
3865 1.63.2.1 phil llc = mtod(m, struct llc *);
3866 1.63.2.1 phil llc->llc_dsap = llc->llc_ssap = LLC_SNAP_LSAP;
3867 1.63.2.1 phil llc->llc_control = LLC_UI;
3868 1.63.2.1 phil llc->llc_snap.org_code[0] = 0;
3869 1.63.2.1 phil llc->llc_snap.org_code[1] = 0;
3870 1.63.2.1 phil llc->llc_snap.org_code[2] = 0;
3871 1.63.2.1 phil llc->llc_snap.ether_type = eh->ether_type;
3872 1.63.2.1 phil payload = m->m_pkthdr.len; /* NB: w/o Ethernet header */
3873 1.61 maxv
3874 1.63.2.1 phil M_PREPEND(m, sizeof(struct ether_header), M_NOWAIT);
3875 1.63.2.1 phil if (m == NULL) { /* XXX cannot happen */
3876 1.63.2.1 phil IEEE80211_DPRINTF(vap, IEEE80211_MSG_SUPERG,
3877 1.63.2.1 phil "%s: no space for ether_header\n", __func__);
3878 1.63.2.1 phil vap->iv_stats.is_tx_nobuf++;
3879 1.63.2.1 phil return NULL;
3880 1.6 dyoung }
3881 1.63.2.1 phil ETHER_HEADER_COPY(mtod(m, void *), eh);
3882 1.63.2.1 phil mtod(m, struct ether_header *)->ether_type = htons(payload);
3883 1.63.2.1 phil return m;
3884 1.63.2.1 phil }
3885 1.61 maxv
3886 1.63.2.1 phil /*
3887 1.63.2.1 phil * Complete an mbuf transmission.
3888 1.63.2.1 phil *
3889 1.63.2.1 phil * For now, this simply processes a completed frame after the
3890 1.63.2.1 phil * driver has completed it's transmission and/or retransmission.
3891 1.63.2.1 phil * It assumes the frame is an 802.11 encapsulated frame.
3892 1.63.2.1 phil *
3893 1.63.2.1 phil * Later on it will grow to become the exit path for a given frame
3894 1.63.2.1 phil * from the driver and, depending upon how it's been encapsulated
3895 1.63.2.1 phil * and already transmitted, it may end up doing A-MPDU retransmission,
3896 1.63.2.1 phil * power save requeuing, etc.
3897 1.63.2.1 phil *
3898 1.63.2.1 phil * In order for the above to work, the driver entry point to this
3899 1.63.2.1 phil * must not hold any driver locks. Thus, the driver needs to delay
3900 1.63.2.1 phil * any actual mbuf completion until it can release said locks.
3901 1.63.2.1 phil *
3902 1.63.2.1 phil * This frees the mbuf and if the mbuf has a node reference,
3903 1.63.2.1 phil * the node reference will be freed.
3904 1.63.2.1 phil */
3905 1.63.2.1 phil void
3906 1.63.2.1 phil ieee80211_tx_complete(struct ieee80211_node *ni, struct mbuf *m, int status)
3907 1.63.2.1 phil {
3908 1.63.2.1 phil
3909 1.63.2.1 phil if (ni != NULL) {
3910 1.63.2.1 phil struct ifnet *ifp = ni->ni_vap->iv_ifp;
3911 1.29 dyoung
3912 1.63.2.1 phil if (status == 0) {
3913 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OBYTES, m->m_pkthdr.len);
3914 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OPACKETS, 1);
3915 1.63.2.1 phil if (m->m_flags & M_MCAST)
3916 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OMCASTS, 1);
3917 1.63.2.1 phil } else
3918 1.63.2.1 phil if_inc_counter(ifp, IFCOUNTER_OERRORS, 1);
3919 1.63.2.1 phil if (m->m_flags & M_TXCB)
3920 1.63.2.1 phil ieee80211_process_callback(ni, m, status);
3921 1.63.2.1 phil ieee80211_free_node(ni);
3922 1.63.2.1 phil }
3923 1.63.2.1 phil m_freem(m);
3924 1.6 dyoung }
3925