11a1e1d21SSam Leffler /*- 2fe267a55SPedro F. Giffuni * SPDX-License-Identifier: BSD-2-Clause-FreeBSD 3fe267a55SPedro F. Giffuni * 47535e66aSSam Leffler * Copyright (c) 2001 Atsushi Onoe 5b032f27cSSam Leffler * Copyright (c) 2002-2008 Sam Leffler, Errno Consulting 6d72d72d3SAndriy Voskoboinyk * Copyright (c) 2012 IEEE 71a1e1d21SSam Leffler * All rights reserved. 81a1e1d21SSam Leffler * 91a1e1d21SSam Leffler * Redistribution and use in source and binary forms, with or without 101a1e1d21SSam Leffler * modification, are permitted provided that the following conditions 111a1e1d21SSam Leffler * are met: 121a1e1d21SSam Leffler * 1. Redistributions of source code must retain the above copyright 137535e66aSSam Leffler * notice, this list of conditions and the following disclaimer. 147535e66aSSam Leffler * 2. Redistributions in binary form must reproduce the above copyright 157535e66aSSam Leffler * notice, this list of conditions and the following disclaimer in the 167535e66aSSam Leffler * documentation and/or other materials provided with the distribution. 171a1e1d21SSam Leffler * 187535e66aSSam Leffler * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 197535e66aSSam Leffler * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 207535e66aSSam Leffler * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 217535e66aSSam Leffler * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 227535e66aSSam Leffler * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 237535e66aSSam Leffler * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 247535e66aSSam Leffler * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 257535e66aSSam Leffler * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 267535e66aSSam Leffler * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 277535e66aSSam Leffler * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 281a1e1d21SSam Leffler */ 291a1e1d21SSam Leffler 301a1e1d21SSam Leffler #include <sys/cdefs.h> 311a1e1d21SSam Leffler __FBSDID("$FreeBSD$"); 321a1e1d21SSam Leffler 331a1e1d21SSam Leffler /* 341a1e1d21SSam Leffler * IEEE 802.11 protocol support. 351a1e1d21SSam Leffler */ 361a1e1d21SSam Leffler 371a1e1d21SSam Leffler #include "opt_inet.h" 38b032f27cSSam Leffler #include "opt_wlan.h" 391a1e1d21SSam Leffler 401a1e1d21SSam Leffler #include <sys/param.h> 418a1b9b6aSSam Leffler #include <sys/systm.h> 428ec07310SGleb Smirnoff #include <sys/kernel.h> 438ec07310SGleb Smirnoff #include <sys/malloc.h> 441a1e1d21SSam Leffler 458a1b9b6aSSam Leffler #include <sys/socket.h> 46b032f27cSSam Leffler #include <sys/sockio.h> 471a1e1d21SSam Leffler 481a1e1d21SSam Leffler #include <net/if.h> 4976039bc8SGleb Smirnoff #include <net/if_var.h> 501a1e1d21SSam Leffler #include <net/if_media.h> 518a1b9b6aSSam Leffler #include <net/ethernet.h> /* XXX for ether_sprintf */ 521a1e1d21SSam Leffler 531a1e1d21SSam Leffler #include <net80211/ieee80211_var.h> 54b032f27cSSam Leffler #include <net80211/ieee80211_adhoc.h> 55b032f27cSSam Leffler #include <net80211/ieee80211_sta.h> 56b032f27cSSam Leffler #include <net80211/ieee80211_hostap.h> 57b032f27cSSam Leffler #include <net80211/ieee80211_wds.h> 5859aa14a9SRui Paulo #ifdef IEEE80211_SUPPORT_MESH 5959aa14a9SRui Paulo #include <net80211/ieee80211_mesh.h> 6059aa14a9SRui Paulo #endif 61b032f27cSSam Leffler #include <net80211/ieee80211_monitor.h> 62b032f27cSSam Leffler #include <net80211/ieee80211_input.h> 631a1e1d21SSam Leffler 648a1b9b6aSSam Leffler /* XXX tunables */ 658a1b9b6aSSam Leffler #define AGGRESSIVE_MODE_SWITCH_HYSTERESIS 3 /* pkts / 100ms */ 668a1b9b6aSSam Leffler #define HIGH_PRI_SWITCH_THRESH 10 /* pkts / 100ms */ 671a1e1d21SSam Leffler 684357a5d1SAndriy Voskoboinyk const char *mgt_subtype_name[] = { 691a1e1d21SSam Leffler "assoc_req", "assoc_resp", "reassoc_req", "reassoc_resp", 70665d5ae9SAndriy Voskoboinyk "probe_req", "probe_resp", "timing_adv", "reserved#7", 711a1e1d21SSam Leffler "beacon", "atim", "disassoc", "auth", 7296283082SBernhard Schmidt "deauth", "action", "action_noack", "reserved#15" 731a1e1d21SSam Leffler }; 744357a5d1SAndriy Voskoboinyk const char *ctl_subtype_name[] = { 758a1b9b6aSSam Leffler "reserved#0", "reserved#1", "reserved#2", "reserved#3", 76665d5ae9SAndriy Voskoboinyk "reserved#4", "reserved#5", "reserved#6", "control_wrap", 77665d5ae9SAndriy Voskoboinyk "bar", "ba", "ps_poll", "rts", 788a1b9b6aSSam Leffler "cts", "ack", "cf_end", "cf_end_ack" 798a1b9b6aSSam Leffler }; 8049aa47d6SSam Leffler const char *ieee80211_opmode_name[IEEE80211_OPMODE_MAX] = { 8149aa47d6SSam Leffler "IBSS", /* IEEE80211_M_IBSS */ 8249aa47d6SSam Leffler "STA", /* IEEE80211_M_STA */ 83b032f27cSSam Leffler "WDS", /* IEEE80211_M_WDS */ 8449aa47d6SSam Leffler "AHDEMO", /* IEEE80211_M_AHDEMO */ 8549aa47d6SSam Leffler "HOSTAP", /* IEEE80211_M_HOSTAP */ 8659aa14a9SRui Paulo "MONITOR", /* IEEE80211_M_MONITOR */ 8759aa14a9SRui Paulo "MBSS" /* IEEE80211_M_MBSS */ 8849aa47d6SSam Leffler }; 89a11c9a5cSSam Leffler const char *ieee80211_state_name[IEEE80211_S_MAX] = { 90a11c9a5cSSam Leffler "INIT", /* IEEE80211_S_INIT */ 91a11c9a5cSSam Leffler "SCAN", /* IEEE80211_S_SCAN */ 92a11c9a5cSSam Leffler "AUTH", /* IEEE80211_S_AUTH */ 93a11c9a5cSSam Leffler "ASSOC", /* IEEE80211_S_ASSOC */ 9414fb6b8fSSam Leffler "CAC", /* IEEE80211_S_CAC */ 9514fb6b8fSSam Leffler "RUN", /* IEEE80211_S_RUN */ 9614fb6b8fSSam Leffler "CSA", /* IEEE80211_S_CSA */ 9714fb6b8fSSam Leffler "SLEEP", /* IEEE80211_S_SLEEP */ 98a11c9a5cSSam Leffler }; 998a1b9b6aSSam Leffler const char *ieee80211_wme_acnames[] = { 1008a1b9b6aSSam Leffler "WME_AC_BE", 1018a1b9b6aSSam Leffler "WME_AC_BK", 1028a1b9b6aSSam Leffler "WME_AC_VI", 1038a1b9b6aSSam Leffler "WME_AC_VO", 1048a1b9b6aSSam Leffler "WME_UPSD", 1058a1b9b6aSSam Leffler }; 106a11c9a5cSSam Leffler 107d72d72d3SAndriy Voskoboinyk /* 108d72d72d3SAndriy Voskoboinyk * Reason code descriptions were (mostly) obtained from 109d72d72d3SAndriy Voskoboinyk * IEEE Std 802.11-2012, pp. 442-445 Table 8-36. 110d72d72d3SAndriy Voskoboinyk */ 111d72d72d3SAndriy Voskoboinyk const char * 112d72d72d3SAndriy Voskoboinyk ieee80211_reason_to_string(uint16_t reason) 113d72d72d3SAndriy Voskoboinyk { 114d72d72d3SAndriy Voskoboinyk switch (reason) { 115d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_UNSPECIFIED: 116d72d72d3SAndriy Voskoboinyk return ("unspecified"); 117d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_AUTH_EXPIRE: 118d72d72d3SAndriy Voskoboinyk return ("previous authentication is expired"); 119d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_AUTH_LEAVE: 120d72d72d3SAndriy Voskoboinyk return ("sending STA is leaving/has left IBSS or ESS"); 121d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_ASSOC_EXPIRE: 122d72d72d3SAndriy Voskoboinyk return ("disassociated due to inactivity"); 123d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_ASSOC_TOOMANY: 124d72d72d3SAndriy Voskoboinyk return ("too many associated STAs"); 125d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_NOT_AUTHED: 126d72d72d3SAndriy Voskoboinyk return ("class 2 frame received from nonauthenticated STA"); 127d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_NOT_ASSOCED: 128d72d72d3SAndriy Voskoboinyk return ("class 3 frame received from nonassociated STA"); 129d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_ASSOC_LEAVE: 130d72d72d3SAndriy Voskoboinyk return ("sending STA is leaving/has left BSS"); 131d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_ASSOC_NOT_AUTHED: 132d72d72d3SAndriy Voskoboinyk return ("STA requesting (re)association is not authenticated"); 133d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_DISASSOC_PWRCAP_BAD: 134d72d72d3SAndriy Voskoboinyk return ("information in the Power Capability element is " 135d72d72d3SAndriy Voskoboinyk "unacceptable"); 136d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_DISASSOC_SUPCHAN_BAD: 137d72d72d3SAndriy Voskoboinyk return ("information in the Supported Channels element is " 138d72d72d3SAndriy Voskoboinyk "unacceptable"); 139d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_IE_INVALID: 140d72d72d3SAndriy Voskoboinyk return ("invalid element"); 141d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MIC_FAILURE: 142d72d72d3SAndriy Voskoboinyk return ("MIC failure"); 143d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_4WAY_HANDSHAKE_TIMEOUT: 144d72d72d3SAndriy Voskoboinyk return ("4-Way handshake timeout"); 145d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_GROUP_KEY_UPDATE_TIMEOUT: 146d72d72d3SAndriy Voskoboinyk return ("group key update timeout"); 147d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_IE_IN_4WAY_DIFFERS: 148d72d72d3SAndriy Voskoboinyk return ("element in 4-Way handshake different from " 149d72d72d3SAndriy Voskoboinyk "(re)association request/probe response/beacon frame"); 150d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_GROUP_CIPHER_INVALID: 151d72d72d3SAndriy Voskoboinyk return ("invalid group cipher"); 152d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_PAIRWISE_CIPHER_INVALID: 153d72d72d3SAndriy Voskoboinyk return ("invalid pairwise cipher"); 154d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_AKMP_INVALID: 155d72d72d3SAndriy Voskoboinyk return ("invalid AKMP"); 156d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_UNSUPP_RSN_IE_VERSION: 157d72d72d3SAndriy Voskoboinyk return ("unsupported version in RSN IE"); 158d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_INVALID_RSN_IE_CAP: 159d72d72d3SAndriy Voskoboinyk return ("invalid capabilities in RSN IE"); 160d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_802_1X_AUTH_FAILED: 161d72d72d3SAndriy Voskoboinyk return ("IEEE 802.1X authentication failed"); 162d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_CIPHER_SUITE_REJECTED: 163d72d72d3SAndriy Voskoboinyk return ("cipher suite rejected because of the security " 164d72d72d3SAndriy Voskoboinyk "policy"); 165d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_UNSPECIFIED_QOS: 166d72d72d3SAndriy Voskoboinyk return ("unspecified (QoS-related)"); 167d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_INSUFFICIENT_BW: 168d72d72d3SAndriy Voskoboinyk return ("QoS AP lacks sufficient bandwidth for this QoS STA"); 169d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_TOOMANY_FRAMES: 170d72d72d3SAndriy Voskoboinyk return ("too many frames need to be acknowledged"); 171d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_OUTSIDE_TXOP: 172d72d72d3SAndriy Voskoboinyk return ("STA is transmitting outside the limits of its TXOPs"); 173d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_LEAVING_QBSS: 174d72d72d3SAndriy Voskoboinyk return ("requested from peer STA (the STA is " 175d72d72d3SAndriy Voskoboinyk "resetting/leaving the BSS)"); 176d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_BAD_MECHANISM: 177d72d72d3SAndriy Voskoboinyk return ("requested from peer STA (it does not want to use " 178d72d72d3SAndriy Voskoboinyk "the mechanism)"); 179d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_SETUP_NEEDED: 180d72d72d3SAndriy Voskoboinyk return ("requested from peer STA (setup is required for the " 181d72d72d3SAndriy Voskoboinyk "used mechanism)"); 182d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_TIMEOUT: 183d72d72d3SAndriy Voskoboinyk return ("requested from peer STA (timeout)"); 184d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_PEER_LINK_CANCELED: 185d72d72d3SAndriy Voskoboinyk return ("SME cancels the mesh peering instance (not related " 186d72d72d3SAndriy Voskoboinyk "to the maximum number of peer mesh STAs)"); 187d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_MAX_PEERS: 188d72d72d3SAndriy Voskoboinyk return ("maximum number of peer mesh STAs was reached"); 189d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_CPVIOLATION: 190d72d72d3SAndriy Voskoboinyk return ("the received information violates the Mesh " 191d72d72d3SAndriy Voskoboinyk "Configuration policy configured in the mesh STA " 192d72d72d3SAndriy Voskoboinyk "profile"); 193d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_CLOSE_RCVD: 194d72d72d3SAndriy Voskoboinyk return ("the mesh STA has received a Mesh Peering Close " 195d72d72d3SAndriy Voskoboinyk "message requesting to close the mesh peering"); 196d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_MAX_RETRIES: 197d72d72d3SAndriy Voskoboinyk return ("the mesh STA has resent dot11MeshMaxRetries Mesh " 198d72d72d3SAndriy Voskoboinyk "Peering Open messages, without receiving a Mesh " 199d72d72d3SAndriy Voskoboinyk "Peering Confirm message"); 200d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_CONFIRM_TIMEOUT: 201d72d72d3SAndriy Voskoboinyk return ("the confirmTimer for the mesh peering instance times " 202d72d72d3SAndriy Voskoboinyk "out"); 203d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_INVALID_GTK: 204d72d72d3SAndriy Voskoboinyk return ("the mesh STA fails to unwrap the GTK or the values " 205d72d72d3SAndriy Voskoboinyk "in the wrapped contents do not match"); 206d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_INCONS_PARAMS: 207d72d72d3SAndriy Voskoboinyk return ("the mesh STA receives inconsistent information about " 208d72d72d3SAndriy Voskoboinyk "the mesh parameters between Mesh Peering Management " 209d72d72d3SAndriy Voskoboinyk "frames"); 210d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_INVALID_SECURITY: 211d72d72d3SAndriy Voskoboinyk return ("the mesh STA fails the authenticated mesh peering " 212d72d72d3SAndriy Voskoboinyk "exchange because due to failure in selecting " 213d72d72d3SAndriy Voskoboinyk "pairwise/group ciphersuite"); 214d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_PERR_NO_PROXY: 215d72d72d3SAndriy Voskoboinyk return ("the mesh STA does not have proxy information for " 216d72d72d3SAndriy Voskoboinyk "this external destination"); 217d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_PERR_NO_FI: 218d72d72d3SAndriy Voskoboinyk return ("the mesh STA does not have forwarding information " 219d72d72d3SAndriy Voskoboinyk "for this destination"); 220d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_PERR_DEST_UNREACH: 221d72d72d3SAndriy Voskoboinyk return ("the mesh STA determines that the link to the next " 222d72d72d3SAndriy Voskoboinyk "hop of an active path in its forwarding information " 223d72d72d3SAndriy Voskoboinyk "is no longer usable"); 224d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_MAC_ALRDY_EXISTS_MBSS: 225d72d72d3SAndriy Voskoboinyk return ("the MAC address of the STA already exists in the " 226d72d72d3SAndriy Voskoboinyk "mesh BSS"); 227d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_CHAN_SWITCH_REG: 228d72d72d3SAndriy Voskoboinyk return ("the mesh STA performs channel switch to meet " 229d72d72d3SAndriy Voskoboinyk "regulatory requirements"); 230d72d72d3SAndriy Voskoboinyk case IEEE80211_REASON_MESH_CHAN_SWITCH_UNSPEC: 231d72d72d3SAndriy Voskoboinyk return ("the mesh STA performs channel switch with " 232d72d72d3SAndriy Voskoboinyk "unspecified reason"); 233d72d72d3SAndriy Voskoboinyk default: 234d72d72d3SAndriy Voskoboinyk return ("reserved/unknown"); 235d72d72d3SAndriy Voskoboinyk } 236d72d72d3SAndriy Voskoboinyk } 237d72d72d3SAndriy Voskoboinyk 2385efea30fSAndrew Thompson static void beacon_miss(void *, int); 2395efea30fSAndrew Thompson static void beacon_swmiss(void *, int); 240b032f27cSSam Leffler static void parent_updown(void *, int); 2415efea30fSAndrew Thompson static void update_mcast(void *, int); 2425efea30fSAndrew Thompson static void update_promisc(void *, int); 2435efea30fSAndrew Thompson static void update_channel(void *, int); 244b94299c4SAdrian Chadd static void update_chw(void *, int); 245e3e94c96SAdrian Chadd static void vap_update_wme(void *, int); 246d20ff6e6SAdrian Chadd static void vap_update_slot(void *, int); 2474061c639SAndriy Voskoboinyk static void restart_vaps(void *, int); 248f1481c8dSAdrian Chadd static void vap_update_erp_protmode(void *, int); 249f1481c8dSAdrian Chadd static void vap_update_preamble(void *, int); 250f1481c8dSAdrian Chadd static void vap_update_ht_protmode(void *, int); 2515efea30fSAndrew Thompson static void ieee80211_newstate_cb(void *, int); 252*91b4225aSBjoern A. Zeeb static struct ieee80211_node *vap_update_bss(struct ieee80211vap *, 253*91b4225aSBjoern A. Zeeb struct ieee80211_node *); 2541a1e1d21SSam Leffler 255b032f27cSSam Leffler static int 256b032f27cSSam Leffler null_raw_xmit(struct ieee80211_node *ni, struct mbuf *m, 257b032f27cSSam Leffler const struct ieee80211_bpf_params *params) 258b105a069SSam Leffler { 259b032f27cSSam Leffler 260c8f5794eSGleb Smirnoff ic_printf(ni->ni_ic, "missing ic_raw_xmit callback, drop frame\n"); 261b032f27cSSam Leffler m_freem(m); 262b032f27cSSam Leffler return ENETDOWN; 263b105a069SSam Leffler } 264b105a069SSam Leffler 2651a1e1d21SSam Leffler void 2668a1b9b6aSSam Leffler ieee80211_proto_attach(struct ieee80211com *ic) 2671a1e1d21SSam Leffler { 2687a79cebfSGleb Smirnoff uint8_t hdrlen; 2691a1e1d21SSam Leffler 270b032f27cSSam Leffler /* override the 802.3 setting */ 2717a79cebfSGleb Smirnoff hdrlen = ic->ic_headroom 272b032f27cSSam Leffler + sizeof(struct ieee80211_qosframe_addr4) 273b032f27cSSam Leffler + IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN 274b032f27cSSam Leffler + IEEE80211_WEP_EXTIVLEN; 275b032f27cSSam Leffler /* XXX no way to recalculate on ifdetach */ 2767a79cebfSGleb Smirnoff if (ALIGN(hdrlen) > max_linkhdr) { 277b032f27cSSam Leffler /* XXX sanity check... */ 2787a79cebfSGleb Smirnoff max_linkhdr = ALIGN(hdrlen); 279b032f27cSSam Leffler max_hdr = max_linkhdr + max_protohdr; 280b032f27cSSam Leffler max_datalen = MHLEN - max_hdr; 281b032f27cSSam Leffler } 282f1481c8dSAdrian Chadd //ic->ic_protmode = IEEE80211_PROT_CTSONLY; 283b032f27cSSam Leffler 2847a79cebfSGleb Smirnoff TASK_INIT(&ic->ic_parent_task, 0, parent_updown, ic); 2855efea30fSAndrew Thompson TASK_INIT(&ic->ic_mcast_task, 0, update_mcast, ic); 2865efea30fSAndrew Thompson TASK_INIT(&ic->ic_promisc_task, 0, update_promisc, ic); 2875efea30fSAndrew Thompson TASK_INIT(&ic->ic_chan_task, 0, update_channel, ic); 2885efea30fSAndrew Thompson TASK_INIT(&ic->ic_bmiss_task, 0, beacon_miss, ic); 289b94299c4SAdrian Chadd TASK_INIT(&ic->ic_chw_task, 0, update_chw, ic); 2904061c639SAndriy Voskoboinyk TASK_INIT(&ic->ic_restart_task, 0, restart_vaps, ic); 2918a1b9b6aSSam Leffler 2928a1b9b6aSSam Leffler ic->ic_wme.wme_hipri_switch_hysteresis = 2938a1b9b6aSSam Leffler AGGRESSIVE_MODE_SWITCH_HYSTERESIS; 2941a1e1d21SSam Leffler 2951a1e1d21SSam Leffler /* initialize management frame handlers */ 2961a1e1d21SSam Leffler ic->ic_send_mgmt = ieee80211_send_mgmt; 297b032f27cSSam Leffler ic->ic_raw_xmit = null_raw_xmit; 298b032f27cSSam Leffler 299b032f27cSSam Leffler ieee80211_adhoc_attach(ic); 300b032f27cSSam Leffler ieee80211_sta_attach(ic); 301b032f27cSSam Leffler ieee80211_wds_attach(ic); 302b032f27cSSam Leffler ieee80211_hostap_attach(ic); 30359aa14a9SRui Paulo #ifdef IEEE80211_SUPPORT_MESH 30459aa14a9SRui Paulo ieee80211_mesh_attach(ic); 30559aa14a9SRui Paulo #endif 306b032f27cSSam Leffler ieee80211_monitor_attach(ic); 3071a1e1d21SSam Leffler } 3081a1e1d21SSam Leffler 3091a1e1d21SSam Leffler void 3108a1b9b6aSSam Leffler ieee80211_proto_detach(struct ieee80211com *ic) 3111a1e1d21SSam Leffler { 312b032f27cSSam Leffler ieee80211_monitor_detach(ic); 31359aa14a9SRui Paulo #ifdef IEEE80211_SUPPORT_MESH 31459aa14a9SRui Paulo ieee80211_mesh_detach(ic); 31559aa14a9SRui Paulo #endif 316b032f27cSSam Leffler ieee80211_hostap_detach(ic); 317b032f27cSSam Leffler ieee80211_wds_detach(ic); 318b032f27cSSam Leffler ieee80211_adhoc_detach(ic); 319b032f27cSSam Leffler ieee80211_sta_detach(ic); 320b032f27cSSam Leffler } 3218a1b9b6aSSam Leffler 322b032f27cSSam Leffler static void 323b032f27cSSam Leffler null_update_beacon(struct ieee80211vap *vap, int item) 324b032f27cSSam Leffler { 325b032f27cSSam Leffler } 326b032f27cSSam Leffler 327b032f27cSSam Leffler void 328b032f27cSSam Leffler ieee80211_proto_vattach(struct ieee80211vap *vap) 329b032f27cSSam Leffler { 330b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 331b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 332b032f27cSSam Leffler int i; 333b032f27cSSam Leffler 334b032f27cSSam Leffler /* override the 802.3 setting */ 3357a79cebfSGleb Smirnoff ifp->if_hdrlen = ic->ic_headroom 3367a79cebfSGleb Smirnoff + sizeof(struct ieee80211_qosframe_addr4) 3377a79cebfSGleb Smirnoff + IEEE80211_WEP_IVLEN + IEEE80211_WEP_KIDLEN 3387a79cebfSGleb Smirnoff + IEEE80211_WEP_EXTIVLEN; 339b032f27cSSam Leffler 340b032f27cSSam Leffler vap->iv_rtsthreshold = IEEE80211_RTS_DEFAULT; 341b032f27cSSam Leffler vap->iv_fragthreshold = IEEE80211_FRAG_DEFAULT; 342b032f27cSSam Leffler vap->iv_bmiss_max = IEEE80211_BMISS_MAX; 34323401900SAdrian Chadd callout_init_mtx(&vap->iv_swbmiss, IEEE80211_LOCK_OBJ(ic), 0); 344fd90e2edSJung-uk Kim callout_init(&vap->iv_mgtsend, 1); 3455efea30fSAndrew Thompson TASK_INIT(&vap->iv_nstate_task, 0, ieee80211_newstate_cb, vap); 3465efea30fSAndrew Thompson TASK_INIT(&vap->iv_swbmiss_task, 0, beacon_swmiss, vap); 347e3e94c96SAdrian Chadd TASK_INIT(&vap->iv_wme_task, 0, vap_update_wme, vap); 348d20ff6e6SAdrian Chadd TASK_INIT(&vap->iv_slot_task, 0, vap_update_slot, vap); 349f1481c8dSAdrian Chadd TASK_INIT(&vap->iv_erp_protmode_task, 0, vap_update_erp_protmode, vap); 350f1481c8dSAdrian Chadd TASK_INIT(&vap->iv_ht_protmode_task, 0, vap_update_ht_protmode, vap); 351f1481c8dSAdrian Chadd TASK_INIT(&vap->iv_preamble_task, 0, vap_update_preamble, vap); 352b032f27cSSam Leffler /* 353b032f27cSSam Leffler * Install default tx rate handling: no fixed rate, lowest 354b032f27cSSam Leffler * supported rate for mgmt and multicast frames. Default 355b032f27cSSam Leffler * max retry count. These settings can be changed by the 356b032f27cSSam Leffler * driver and/or user applications. 357b032f27cSSam Leffler */ 358047db6b3SSam Leffler for (i = IEEE80211_MODE_11A; i < IEEE80211_MODE_MAX; i++) { 3591c4cb651SAndriy Voskoboinyk if (isclr(ic->ic_modecaps, i)) 3601c4cb651SAndriy Voskoboinyk continue; 3611c4cb651SAndriy Voskoboinyk 362b032f27cSSam Leffler const struct ieee80211_rateset *rs = &ic->ic_sup_rates[i]; 363b032f27cSSam Leffler 364b032f27cSSam Leffler vap->iv_txparms[i].ucastrate = IEEE80211_FIXED_RATE_NONE; 365338452c9SAdrian Chadd 366338452c9SAdrian Chadd /* 367338452c9SAdrian Chadd * Setting the management rate to MCS 0 assumes that the 368338452c9SAdrian Chadd * BSS Basic rate set is empty and the BSS Basic MCS set 369338452c9SAdrian Chadd * is not. 370338452c9SAdrian Chadd * 371338452c9SAdrian Chadd * Since we're not checking this, default to the lowest 372338452c9SAdrian Chadd * defined rate for this mode. 373338452c9SAdrian Chadd * 374338452c9SAdrian Chadd * At least one 11n AP (DLINK DIR-825) is reported to drop 375338452c9SAdrian Chadd * some MCS management traffic (eg BA response frames.) 376338452c9SAdrian Chadd * 377338452c9SAdrian Chadd * See also: 9.6.0 of the 802.11n-2009 specification. 378338452c9SAdrian Chadd */ 379338452c9SAdrian Chadd #ifdef NOTYET 380047db6b3SSam Leffler if (i == IEEE80211_MODE_11NA || i == IEEE80211_MODE_11NG) { 381047db6b3SSam Leffler vap->iv_txparms[i].mgmtrate = 0 | IEEE80211_RATE_MCS; 382047db6b3SSam Leffler vap->iv_txparms[i].mcastrate = 0 | IEEE80211_RATE_MCS; 383047db6b3SSam Leffler } else { 384b032f27cSSam Leffler vap->iv_txparms[i].mgmtrate = 385b032f27cSSam Leffler rs->rs_rates[0] & IEEE80211_RATE_VAL; 386b032f27cSSam Leffler vap->iv_txparms[i].mcastrate = 387b032f27cSSam Leffler rs->rs_rates[0] & IEEE80211_RATE_VAL; 388b032f27cSSam Leffler } 389338452c9SAdrian Chadd #endif 390338452c9SAdrian Chadd vap->iv_txparms[i].mgmtrate = rs->rs_rates[0] & IEEE80211_RATE_VAL; 391338452c9SAdrian Chadd vap->iv_txparms[i].mcastrate = rs->rs_rates[0] & IEEE80211_RATE_VAL; 392b032f27cSSam Leffler vap->iv_txparms[i].maxretry = IEEE80211_TXMAX_DEFAULT; 393b032f27cSSam Leffler } 394b032f27cSSam Leffler vap->iv_roaming = IEEE80211_ROAMING_AUTO; 395b032f27cSSam Leffler 396b032f27cSSam Leffler vap->iv_update_beacon = null_update_beacon; 397b032f27cSSam Leffler vap->iv_deliver_data = ieee80211_deliver_data; 398f1481c8dSAdrian Chadd vap->iv_protmode = IEEE80211_PROT_CTSONLY; 399*91b4225aSBjoern A. Zeeb vap->iv_update_bss = vap_update_bss; 400b032f27cSSam Leffler 401b032f27cSSam Leffler /* attach support for operating mode */ 402b032f27cSSam Leffler ic->ic_vattach[vap->iv_opmode](vap); 403b032f27cSSam Leffler } 404b032f27cSSam Leffler 405b032f27cSSam Leffler void 406b032f27cSSam Leffler ieee80211_proto_vdetach(struct ieee80211vap *vap) 407b032f27cSSam Leffler { 408b032f27cSSam Leffler #define FREEAPPIE(ie) do { \ 409b032f27cSSam Leffler if (ie != NULL) \ 410b9b53389SAdrian Chadd IEEE80211_FREE(ie, M_80211_NODE_IE); \ 411b032f27cSSam Leffler } while (0) 412b032f27cSSam Leffler /* 413b032f27cSSam Leffler * Detach operating mode module. 414b032f27cSSam Leffler */ 415b032f27cSSam Leffler if (vap->iv_opdetach != NULL) 416b032f27cSSam Leffler vap->iv_opdetach(vap); 4178a1b9b6aSSam Leffler /* 4188a1b9b6aSSam Leffler * This should not be needed as we detach when reseting 4198a1b9b6aSSam Leffler * the state but be conservative here since the 4208a1b9b6aSSam Leffler * authenticator may do things like spawn kernel threads. 4218a1b9b6aSSam Leffler */ 422b032f27cSSam Leffler if (vap->iv_auth->ia_detach != NULL) 423b032f27cSSam Leffler vap->iv_auth->ia_detach(vap); 4248a1b9b6aSSam Leffler /* 4258a1b9b6aSSam Leffler * Detach any ACL'ator. 4268a1b9b6aSSam Leffler */ 427b032f27cSSam Leffler if (vap->iv_acl != NULL) 428b032f27cSSam Leffler vap->iv_acl->iac_detach(vap); 429b032f27cSSam Leffler 430b032f27cSSam Leffler FREEAPPIE(vap->iv_appie_beacon); 431b032f27cSSam Leffler FREEAPPIE(vap->iv_appie_probereq); 432b032f27cSSam Leffler FREEAPPIE(vap->iv_appie_proberesp); 433b032f27cSSam Leffler FREEAPPIE(vap->iv_appie_assocreq); 434b032f27cSSam Leffler FREEAPPIE(vap->iv_appie_assocresp); 435b032f27cSSam Leffler FREEAPPIE(vap->iv_appie_wpa); 436b032f27cSSam Leffler #undef FREEAPPIE 4378a1b9b6aSSam Leffler } 4388a1b9b6aSSam Leffler 4398a1b9b6aSSam Leffler /* 4408a1b9b6aSSam Leffler * Simple-minded authenticator module support. 4418a1b9b6aSSam Leffler */ 4428a1b9b6aSSam Leffler 4438a1b9b6aSSam Leffler #define IEEE80211_AUTH_MAX (IEEE80211_AUTH_WPA+1) 4448a1b9b6aSSam Leffler /* XXX well-known names */ 4458a1b9b6aSSam Leffler static const char *auth_modnames[IEEE80211_AUTH_MAX] = { 4468a1b9b6aSSam Leffler "wlan_internal", /* IEEE80211_AUTH_NONE */ 4478a1b9b6aSSam Leffler "wlan_internal", /* IEEE80211_AUTH_OPEN */ 4488a1b9b6aSSam Leffler "wlan_internal", /* IEEE80211_AUTH_SHARED */ 4498a1b9b6aSSam Leffler "wlan_xauth", /* IEEE80211_AUTH_8021X */ 4508a1b9b6aSSam Leffler "wlan_internal", /* IEEE80211_AUTH_AUTO */ 4518a1b9b6aSSam Leffler "wlan_xauth", /* IEEE80211_AUTH_WPA */ 4528a1b9b6aSSam Leffler }; 4538a1b9b6aSSam Leffler static const struct ieee80211_authenticator *authenticators[IEEE80211_AUTH_MAX]; 4548a1b9b6aSSam Leffler 4558a1b9b6aSSam Leffler static const struct ieee80211_authenticator auth_internal = { 4568a1b9b6aSSam Leffler .ia_name = "wlan_internal", 4578a1b9b6aSSam Leffler .ia_attach = NULL, 4588a1b9b6aSSam Leffler .ia_detach = NULL, 4598a1b9b6aSSam Leffler .ia_node_join = NULL, 4608a1b9b6aSSam Leffler .ia_node_leave = NULL, 4618a1b9b6aSSam Leffler }; 4628a1b9b6aSSam Leffler 4638a1b9b6aSSam Leffler /* 4648a1b9b6aSSam Leffler * Setup internal authenticators once; they are never unregistered. 4658a1b9b6aSSam Leffler */ 4668a1b9b6aSSam Leffler static void 4678a1b9b6aSSam Leffler ieee80211_auth_setup(void) 4688a1b9b6aSSam Leffler { 4698a1b9b6aSSam Leffler ieee80211_authenticator_register(IEEE80211_AUTH_OPEN, &auth_internal); 4708a1b9b6aSSam Leffler ieee80211_authenticator_register(IEEE80211_AUTH_SHARED, &auth_internal); 4718a1b9b6aSSam Leffler ieee80211_authenticator_register(IEEE80211_AUTH_AUTO, &auth_internal); 4728a1b9b6aSSam Leffler } 4738a1b9b6aSSam Leffler SYSINIT(wlan_auth, SI_SUB_DRIVERS, SI_ORDER_FIRST, ieee80211_auth_setup, NULL); 4748a1b9b6aSSam Leffler 4758a1b9b6aSSam Leffler const struct ieee80211_authenticator * 4768a1b9b6aSSam Leffler ieee80211_authenticator_get(int auth) 4778a1b9b6aSSam Leffler { 4788a1b9b6aSSam Leffler if (auth >= IEEE80211_AUTH_MAX) 4798a1b9b6aSSam Leffler return NULL; 4808a1b9b6aSSam Leffler if (authenticators[auth] == NULL) 4818a1b9b6aSSam Leffler ieee80211_load_module(auth_modnames[auth]); 4828a1b9b6aSSam Leffler return authenticators[auth]; 4831a1e1d21SSam Leffler } 4841a1e1d21SSam Leffler 4851a1e1d21SSam Leffler void 4868a1b9b6aSSam Leffler ieee80211_authenticator_register(int type, 4878a1b9b6aSSam Leffler const struct ieee80211_authenticator *auth) 4881a1e1d21SSam Leffler { 4898a1b9b6aSSam Leffler if (type >= IEEE80211_AUTH_MAX) 4908a1b9b6aSSam Leffler return; 4918a1b9b6aSSam Leffler authenticators[type] = auth; 4928a1b9b6aSSam Leffler } 4938a1b9b6aSSam Leffler 4948a1b9b6aSSam Leffler void 4958a1b9b6aSSam Leffler ieee80211_authenticator_unregister(int type) 4968a1b9b6aSSam Leffler { 4978a1b9b6aSSam Leffler 4988a1b9b6aSSam Leffler if (type >= IEEE80211_AUTH_MAX) 4998a1b9b6aSSam Leffler return; 5008a1b9b6aSSam Leffler authenticators[type] = NULL; 5018a1b9b6aSSam Leffler } 5028a1b9b6aSSam Leffler 5038a1b9b6aSSam Leffler /* 5048a1b9b6aSSam Leffler * Very simple-minded ACL module support. 5058a1b9b6aSSam Leffler */ 5068a1b9b6aSSam Leffler /* XXX just one for now */ 5078a1b9b6aSSam Leffler static const struct ieee80211_aclator *acl = NULL; 5088a1b9b6aSSam Leffler 5098a1b9b6aSSam Leffler void 5108a1b9b6aSSam Leffler ieee80211_aclator_register(const struct ieee80211_aclator *iac) 5118a1b9b6aSSam Leffler { 5128a1b9b6aSSam Leffler printf("wlan: %s acl policy registered\n", iac->iac_name); 5138a1b9b6aSSam Leffler acl = iac; 5148a1b9b6aSSam Leffler } 5158a1b9b6aSSam Leffler 5168a1b9b6aSSam Leffler void 5178a1b9b6aSSam Leffler ieee80211_aclator_unregister(const struct ieee80211_aclator *iac) 5188a1b9b6aSSam Leffler { 5198a1b9b6aSSam Leffler if (acl == iac) 5208a1b9b6aSSam Leffler acl = NULL; 5218a1b9b6aSSam Leffler printf("wlan: %s acl policy unregistered\n", iac->iac_name); 5228a1b9b6aSSam Leffler } 5238a1b9b6aSSam Leffler 5248a1b9b6aSSam Leffler const struct ieee80211_aclator * 5258a1b9b6aSSam Leffler ieee80211_aclator_get(const char *name) 5268a1b9b6aSSam Leffler { 5278a1b9b6aSSam Leffler if (acl == NULL) 5288a1b9b6aSSam Leffler ieee80211_load_module("wlan_acl"); 5298a1b9b6aSSam Leffler return acl != NULL && strcmp(acl->iac_name, name) == 0 ? acl : NULL; 5308a1b9b6aSSam Leffler } 5318a1b9b6aSSam Leffler 5328a1b9b6aSSam Leffler void 53368e8e04eSSam Leffler ieee80211_print_essid(const uint8_t *essid, int len) 5348a1b9b6aSSam Leffler { 53568e8e04eSSam Leffler const uint8_t *p; 5361a1e1d21SSam Leffler int i; 5371a1e1d21SSam Leffler 5381a1e1d21SSam Leffler if (len > IEEE80211_NWID_LEN) 5391a1e1d21SSam Leffler len = IEEE80211_NWID_LEN; 5401a1e1d21SSam Leffler /* determine printable or not */ 5411a1e1d21SSam Leffler for (i = 0, p = essid; i < len; i++, p++) { 5421a1e1d21SSam Leffler if (*p < ' ' || *p > 0x7e) 5431a1e1d21SSam Leffler break; 5441a1e1d21SSam Leffler } 5451a1e1d21SSam Leffler if (i == len) { 5461a1e1d21SSam Leffler printf("\""); 5471a1e1d21SSam Leffler for (i = 0, p = essid; i < len; i++, p++) 5481a1e1d21SSam Leffler printf("%c", *p); 5491a1e1d21SSam Leffler printf("\""); 5501a1e1d21SSam Leffler } else { 5511a1e1d21SSam Leffler printf("0x"); 5521a1e1d21SSam Leffler for (i = 0, p = essid; i < len; i++, p++) 5531a1e1d21SSam Leffler printf("%02x", *p); 5541a1e1d21SSam Leffler } 5551a1e1d21SSam Leffler } 5561a1e1d21SSam Leffler 5571a1e1d21SSam Leffler void 55868e8e04eSSam Leffler ieee80211_dump_pkt(struct ieee80211com *ic, 55968e8e04eSSam Leffler const uint8_t *buf, int len, int rate, int rssi) 5601a1e1d21SSam Leffler { 5618a1b9b6aSSam Leffler const struct ieee80211_frame *wh; 5621a1e1d21SSam Leffler int i; 5631a1e1d21SSam Leffler 5648a1b9b6aSSam Leffler wh = (const struct ieee80211_frame *)buf; 5651a1e1d21SSam Leffler switch (wh->i_fc[1] & IEEE80211_FC1_DIR_MASK) { 5661a1e1d21SSam Leffler case IEEE80211_FC1_DIR_NODS: 5671a1e1d21SSam Leffler printf("NODS %s", ether_sprintf(wh->i_addr2)); 5681a1e1d21SSam Leffler printf("->%s", ether_sprintf(wh->i_addr1)); 5691a1e1d21SSam Leffler printf("(%s)", ether_sprintf(wh->i_addr3)); 5701a1e1d21SSam Leffler break; 5711a1e1d21SSam Leffler case IEEE80211_FC1_DIR_TODS: 5721a1e1d21SSam Leffler printf("TODS %s", ether_sprintf(wh->i_addr2)); 5731a1e1d21SSam Leffler printf("->%s", ether_sprintf(wh->i_addr3)); 5741a1e1d21SSam Leffler printf("(%s)", ether_sprintf(wh->i_addr1)); 5751a1e1d21SSam Leffler break; 5761a1e1d21SSam Leffler case IEEE80211_FC1_DIR_FROMDS: 5771a1e1d21SSam Leffler printf("FRDS %s", ether_sprintf(wh->i_addr3)); 5781a1e1d21SSam Leffler printf("->%s", ether_sprintf(wh->i_addr1)); 5791a1e1d21SSam Leffler printf("(%s)", ether_sprintf(wh->i_addr2)); 5801a1e1d21SSam Leffler break; 5811a1e1d21SSam Leffler case IEEE80211_FC1_DIR_DSTODS: 58268e8e04eSSam Leffler printf("DSDS %s", ether_sprintf((const uint8_t *)&wh[1])); 5831a1e1d21SSam Leffler printf("->%s", ether_sprintf(wh->i_addr3)); 5841a1e1d21SSam Leffler printf("(%s", ether_sprintf(wh->i_addr2)); 5851a1e1d21SSam Leffler printf("->%s)", ether_sprintf(wh->i_addr1)); 5861a1e1d21SSam Leffler break; 5871a1e1d21SSam Leffler } 5881a1e1d21SSam Leffler switch (wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK) { 5891a1e1d21SSam Leffler case IEEE80211_FC0_TYPE_DATA: 5901a1e1d21SSam Leffler printf(" data"); 5911a1e1d21SSam Leffler break; 5921a1e1d21SSam Leffler case IEEE80211_FC0_TYPE_MGT: 5934357a5d1SAndriy Voskoboinyk printf(" %s", ieee80211_mgt_subtype_name(wh->i_fc[0])); 5941a1e1d21SSam Leffler break; 5951a1e1d21SSam Leffler default: 5961a1e1d21SSam Leffler printf(" type#%d", wh->i_fc[0] & IEEE80211_FC0_TYPE_MASK); 5971a1e1d21SSam Leffler break; 5981a1e1d21SSam Leffler } 59968e8e04eSSam Leffler if (IEEE80211_QOS_HAS_SEQ(wh)) { 60068e8e04eSSam Leffler const struct ieee80211_qosframe *qwh = 60168e8e04eSSam Leffler (const struct ieee80211_qosframe *)buf; 60268e8e04eSSam Leffler printf(" QoS [TID %u%s]", qwh->i_qos[0] & IEEE80211_QOS_TID, 60368e8e04eSSam Leffler qwh->i_qos[0] & IEEE80211_QOS_ACKPOLICY ? " ACM" : ""); 60468e8e04eSSam Leffler } 6055945b5f5SKevin Lo if (wh->i_fc[1] & IEEE80211_FC1_PROTECTED) { 60668e8e04eSSam Leffler int off; 60768e8e04eSSam Leffler 60868e8e04eSSam Leffler off = ieee80211_anyhdrspace(ic, wh); 60968e8e04eSSam Leffler printf(" WEP [IV %.02x %.02x %.02x", 61068e8e04eSSam Leffler buf[off+0], buf[off+1], buf[off+2]); 61168e8e04eSSam Leffler if (buf[off+IEEE80211_WEP_IVLEN] & IEEE80211_WEP_EXTIV) 61268e8e04eSSam Leffler printf(" %.02x %.02x %.02x", 61368e8e04eSSam Leffler buf[off+4], buf[off+5], buf[off+6]); 61468e8e04eSSam Leffler printf(" KID %u]", buf[off+IEEE80211_WEP_IVLEN] >> 6); 6158a1b9b6aSSam Leffler } 6161a1e1d21SSam Leffler if (rate >= 0) 6171a1e1d21SSam Leffler printf(" %dM", rate / 2); 6181a1e1d21SSam Leffler if (rssi >= 0) 6191a1e1d21SSam Leffler printf(" +%d", rssi); 6201a1e1d21SSam Leffler printf("\n"); 6211a1e1d21SSam Leffler if (len > 0) { 6221a1e1d21SSam Leffler for (i = 0; i < len; i++) { 6231a1e1d21SSam Leffler if ((i & 1) == 0) 6241a1e1d21SSam Leffler printf(" "); 6251a1e1d21SSam Leffler printf("%02x", buf[i]); 6261a1e1d21SSam Leffler } 6271a1e1d21SSam Leffler printf("\n"); 6281a1e1d21SSam Leffler } 6291a1e1d21SSam Leffler } 6301a1e1d21SSam Leffler 63179edaebfSSam Leffler static __inline int 63279edaebfSSam Leffler findrix(const struct ieee80211_rateset *rs, int r) 63379edaebfSSam Leffler { 63479edaebfSSam Leffler int i; 63579edaebfSSam Leffler 63679edaebfSSam Leffler for (i = 0; i < rs->rs_nrates; i++) 63779edaebfSSam Leffler if ((rs->rs_rates[i] & IEEE80211_RATE_VAL) == r) 63879edaebfSSam Leffler return i; 63979edaebfSSam Leffler return -1; 64079edaebfSSam Leffler } 64179edaebfSSam Leffler 6421a1e1d21SSam Leffler int 64370e28b9aSSam Leffler ieee80211_fix_rate(struct ieee80211_node *ni, 64470e28b9aSSam Leffler struct ieee80211_rateset *nrs, int flags) 6451a1e1d21SSam Leffler { 646b032f27cSSam Leffler struct ieee80211vap *vap = ni->ni_vap; 6477d77cd53SSam Leffler struct ieee80211com *ic = ni->ni_ic; 64879edaebfSSam Leffler int i, j, rix, error; 649b032f27cSSam Leffler int okrate, badrate, fixedrate, ucastrate; 65041b3c790SSam Leffler const struct ieee80211_rateset *srs; 65168e8e04eSSam Leffler uint8_t r; 6521a1e1d21SSam Leffler 6531a1e1d21SSam Leffler error = 0; 65468e8e04eSSam Leffler okrate = badrate = 0; 655b032f27cSSam Leffler ucastrate = vap->iv_txparms[ieee80211_chan2mode(ni->ni_chan)].ucastrate; 656b032f27cSSam Leffler if (ucastrate != IEEE80211_FIXED_RATE_NONE) { 657b032f27cSSam Leffler /* 658b032f27cSSam Leffler * Workaround awkwardness with fixed rate. We are called 659b032f27cSSam Leffler * to check both the legacy rate set and the HT rate set 660b032f27cSSam Leffler * but we must apply any legacy fixed rate check only to the 661b032f27cSSam Leffler * legacy rate set and vice versa. We cannot tell what type 662b032f27cSSam Leffler * of rate set we've been given (legacy or HT) but we can 663b032f27cSSam Leffler * distinguish the fixed rate type (MCS have 0x80 set). 664b032f27cSSam Leffler * So to deal with this the caller communicates whether to 665b032f27cSSam Leffler * check MCS or legacy rate using the flags and we use the 666b032f27cSSam Leffler * type of any fixed rate to avoid applying an MCS to a 667b032f27cSSam Leffler * legacy rate and vice versa. 668b032f27cSSam Leffler */ 669b032f27cSSam Leffler if (ucastrate & 0x80) { 670b032f27cSSam Leffler if (flags & IEEE80211_F_DOFRATE) 671b032f27cSSam Leffler flags &= ~IEEE80211_F_DOFRATE; 672b032f27cSSam Leffler } else if ((ucastrate & 0x80) == 0) { 673b032f27cSSam Leffler if (flags & IEEE80211_F_DOFMCS) 674b032f27cSSam Leffler flags &= ~IEEE80211_F_DOFMCS; 675b032f27cSSam Leffler } 676b032f27cSSam Leffler /* NB: required to make MCS match below work */ 677b032f27cSSam Leffler ucastrate &= IEEE80211_RATE_VAL; 678b032f27cSSam Leffler } 67968e8e04eSSam Leffler fixedrate = IEEE80211_FIXED_RATE_NONE; 680b032f27cSSam Leffler /* 681b032f27cSSam Leffler * XXX we are called to process both MCS and legacy rates; 682b032f27cSSam Leffler * we must use the appropriate basic rate set or chaos will 683b032f27cSSam Leffler * ensue; for now callers that want MCS must supply 684b032f27cSSam Leffler * IEEE80211_F_DOBRS; at some point we'll need to split this 685b032f27cSSam Leffler * function so there are two variants, one for MCS and one 686b032f27cSSam Leffler * for legacy rates. 687b032f27cSSam Leffler */ 688b032f27cSSam Leffler if (flags & IEEE80211_F_DOBRS) 689b032f27cSSam Leffler srs = (const struct ieee80211_rateset *) 690b032f27cSSam Leffler ieee80211_get_suphtrates(ic, ni->ni_chan); 691b032f27cSSam Leffler else 69241b3c790SSam Leffler srs = ieee80211_get_suprates(ic, ni->ni_chan); 693ef39d4beSSam Leffler for (i = 0; i < nrs->rs_nrates; ) { 6941a1e1d21SSam Leffler if (flags & IEEE80211_F_DOSORT) { 6951a1e1d21SSam Leffler /* 6961a1e1d21SSam Leffler * Sort rates. 6971a1e1d21SSam Leffler */ 6981a1e1d21SSam Leffler for (j = i + 1; j < nrs->rs_nrates; j++) { 6990ebe104fSAdrian Chadd if (IEEE80211_RV(nrs->rs_rates[i]) > 7000ebe104fSAdrian Chadd IEEE80211_RV(nrs->rs_rates[j])) { 7011a1e1d21SSam Leffler r = nrs->rs_rates[i]; 7021a1e1d21SSam Leffler nrs->rs_rates[i] = nrs->rs_rates[j]; 7031a1e1d21SSam Leffler nrs->rs_rates[j] = r; 7041a1e1d21SSam Leffler } 7051a1e1d21SSam Leffler } 7061a1e1d21SSam Leffler } 7071a1e1d21SSam Leffler r = nrs->rs_rates[i] & IEEE80211_RATE_VAL; 7081a1e1d21SSam Leffler badrate = r; 7091a1e1d21SSam Leffler /* 71068e8e04eSSam Leffler * Check for fixed rate. 7111a1e1d21SSam Leffler */ 712b032f27cSSam Leffler if (r == ucastrate) 7138a1b9b6aSSam Leffler fixedrate = r; 7141a1e1d21SSam Leffler /* 7151a1e1d21SSam Leffler * Check against supported rates. 7161a1e1d21SSam Leffler */ 71779edaebfSSam Leffler rix = findrix(srs, r); 71879edaebfSSam Leffler if (flags & IEEE80211_F_DONEGO) { 71979edaebfSSam Leffler if (rix < 0) { 720ef39d4beSSam Leffler /* 721ef39d4beSSam Leffler * A rate in the node's rate set is not 722ef39d4beSSam Leffler * supported. If this is a basic rate and we 72379edaebfSSam Leffler * are operating as a STA then this is an error. 724ef39d4beSSam Leffler * Otherwise we just discard/ignore the rate. 725ef39d4beSSam Leffler */ 72679edaebfSSam Leffler if ((flags & IEEE80211_F_JOIN) && 727ef39d4beSSam Leffler (nrs->rs_rates[i] & IEEE80211_RATE_BASIC)) 7281a1e1d21SSam Leffler error++; 72979edaebfSSam Leffler } else if ((flags & IEEE80211_F_JOIN) == 0) { 73079edaebfSSam Leffler /* 73179edaebfSSam Leffler * Overwrite with the supported rate 73279edaebfSSam Leffler * value so any basic rate bit is set. 73379edaebfSSam Leffler */ 73479edaebfSSam Leffler nrs->rs_rates[i] = srs->rs_rates[rix]; 7351a1e1d21SSam Leffler } 7361a1e1d21SSam Leffler } 73779edaebfSSam Leffler if ((flags & IEEE80211_F_DODEL) && rix < 0) { 7381a1e1d21SSam Leffler /* 7391a1e1d21SSam Leffler * Delete unacceptable rates. 7401a1e1d21SSam Leffler */ 7411a1e1d21SSam Leffler nrs->rs_nrates--; 7421a1e1d21SSam Leffler for (j = i; j < nrs->rs_nrates; j++) 7431a1e1d21SSam Leffler nrs->rs_rates[j] = nrs->rs_rates[j + 1]; 7441a1e1d21SSam Leffler nrs->rs_rates[j] = 0; 7451a1e1d21SSam Leffler continue; 7461a1e1d21SSam Leffler } 74779edaebfSSam Leffler if (rix >= 0) 7481a1e1d21SSam Leffler okrate = nrs->rs_rates[i]; 7491a1e1d21SSam Leffler i++; 7501a1e1d21SSam Leffler } 7518a1b9b6aSSam Leffler if (okrate == 0 || error != 0 || 752b032f27cSSam Leffler ((flags & (IEEE80211_F_DOFRATE|IEEE80211_F_DOFMCS)) && 753b032f27cSSam Leffler fixedrate != ucastrate)) { 754b032f27cSSam Leffler IEEE80211_NOTE(vap, IEEE80211_MSG_XRATE | IEEE80211_MSG_11N, ni, 755b032f27cSSam Leffler "%s: flags 0x%x okrate %d error %d fixedrate 0x%x " 756b032f27cSSam Leffler "ucastrate %x\n", __func__, fixedrate, ucastrate, flags); 7571a1e1d21SSam Leffler return badrate | IEEE80211_RATE_BASIC; 758b032f27cSSam Leffler } else 7590ebe104fSAdrian Chadd return IEEE80211_RV(okrate); 7601a1e1d21SSam Leffler } 7611a1e1d21SSam Leffler 7628a1b9b6aSSam Leffler /* 7638a1b9b6aSSam Leffler * Reset 11g-related state. 764d20ff6e6SAdrian Chadd * 765d20ff6e6SAdrian Chadd * This is for per-VAP ERP/11g state. 766d20ff6e6SAdrian Chadd * 767d20ff6e6SAdrian Chadd * Eventually everything in ieee80211_reset_erp() will be 768d20ff6e6SAdrian Chadd * per-VAP and in here. 769d20ff6e6SAdrian Chadd */ 770d20ff6e6SAdrian Chadd void 771d20ff6e6SAdrian Chadd ieee80211_vap_reset_erp(struct ieee80211vap *vap) 772d20ff6e6SAdrian Chadd { 773d20ff6e6SAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 774d20ff6e6SAdrian Chadd 775f1481c8dSAdrian Chadd vap->iv_nonerpsta = 0; 776f1481c8dSAdrian Chadd vap->iv_longslotsta = 0; 777f1481c8dSAdrian Chadd 778f1481c8dSAdrian Chadd vap->iv_flags &= ~IEEE80211_F_USEPROT; 779f1481c8dSAdrian Chadd /* 780f1481c8dSAdrian Chadd * Set short preamble and ERP barker-preamble flags. 781f1481c8dSAdrian Chadd */ 782f1481c8dSAdrian Chadd if (IEEE80211_IS_CHAN_A(ic->ic_curchan) || 783f1481c8dSAdrian Chadd (vap->iv_caps & IEEE80211_C_SHPREAMBLE)) { 784f1481c8dSAdrian Chadd vap->iv_flags |= IEEE80211_F_SHPREAMBLE; 785f1481c8dSAdrian Chadd vap->iv_flags &= ~IEEE80211_F_USEBARKER; 786f1481c8dSAdrian Chadd } else { 787f1481c8dSAdrian Chadd vap->iv_flags &= ~IEEE80211_F_SHPREAMBLE; 788f1481c8dSAdrian Chadd vap->iv_flags |= IEEE80211_F_USEBARKER; 789f1481c8dSAdrian Chadd } 790f1481c8dSAdrian Chadd 791d20ff6e6SAdrian Chadd /* 792d20ff6e6SAdrian Chadd * Short slot time is enabled only when operating in 11g 793d20ff6e6SAdrian Chadd * and not in an IBSS. We must also honor whether or not 794d20ff6e6SAdrian Chadd * the driver is capable of doing it. 795d20ff6e6SAdrian Chadd */ 796d20ff6e6SAdrian Chadd ieee80211_vap_set_shortslottime(vap, 797d20ff6e6SAdrian Chadd IEEE80211_IS_CHAN_A(ic->ic_curchan) || 798d20ff6e6SAdrian Chadd IEEE80211_IS_CHAN_HT(ic->ic_curchan) || 799d20ff6e6SAdrian Chadd (IEEE80211_IS_CHAN_ANYG(ic->ic_curchan) && 800d20ff6e6SAdrian Chadd vap->iv_opmode == IEEE80211_M_HOSTAP && 801d20ff6e6SAdrian Chadd (ic->ic_caps & IEEE80211_C_SHSLOT))); 802d20ff6e6SAdrian Chadd } 803d20ff6e6SAdrian Chadd 804d20ff6e6SAdrian Chadd /* 805d20ff6e6SAdrian Chadd * Reset 11g-related state. 806f1481c8dSAdrian Chadd * 807f1481c8dSAdrian Chadd * Note this resets the global state and a caller should schedule 808f1481c8dSAdrian Chadd * a re-check of all the VAPs after setup to update said state. 8098a1b9b6aSSam Leffler */ 8108a1b9b6aSSam Leffler void 8118a1b9b6aSSam Leffler ieee80211_reset_erp(struct ieee80211com *ic) 8121a1e1d21SSam Leffler { 813f1481c8dSAdrian Chadd #if 0 8148a1b9b6aSSam Leffler ic->ic_flags &= ~IEEE80211_F_USEPROT; 8158a1b9b6aSSam Leffler /* 8168a1b9b6aSSam Leffler * Set short preamble and ERP barker-preamble flags. 8178a1b9b6aSSam Leffler */ 81868e8e04eSSam Leffler if (IEEE80211_IS_CHAN_A(ic->ic_curchan) || 8198a1b9b6aSSam Leffler (ic->ic_caps & IEEE80211_C_SHPREAMBLE)) { 8208a1b9b6aSSam Leffler ic->ic_flags |= IEEE80211_F_SHPREAMBLE; 8218a1b9b6aSSam Leffler ic->ic_flags &= ~IEEE80211_F_USEBARKER; 8228a1b9b6aSSam Leffler } else { 8238a1b9b6aSSam Leffler ic->ic_flags &= ~IEEE80211_F_SHPREAMBLE; 8248a1b9b6aSSam Leffler ic->ic_flags |= IEEE80211_F_USEBARKER; 8258a1b9b6aSSam Leffler } 826f1481c8dSAdrian Chadd #endif 827f1481c8dSAdrian Chadd /* XXX TODO: schedule a new per-VAP ERP calculation */ 8288a1b9b6aSSam Leffler } 8298a1b9b6aSSam Leffler 830*91b4225aSBjoern A. Zeeb static struct ieee80211_node * 831*91b4225aSBjoern A. Zeeb vap_update_bss(struct ieee80211vap *vap, struct ieee80211_node *ni) 832*91b4225aSBjoern A. Zeeb { 833*91b4225aSBjoern A. Zeeb struct ieee80211_node *obss; 834*91b4225aSBjoern A. Zeeb 835*91b4225aSBjoern A. Zeeb obss = vap->iv_bss; 836*91b4225aSBjoern A. Zeeb vap->iv_bss = ni; 837*91b4225aSBjoern A. Zeeb 838*91b4225aSBjoern A. Zeeb return (obss); 839*91b4225aSBjoern A. Zeeb } 840*91b4225aSBjoern A. Zeeb 8418a1b9b6aSSam Leffler /* 842d20ff6e6SAdrian Chadd * Deferred slot time update. 843d20ff6e6SAdrian Chadd * 844d20ff6e6SAdrian Chadd * For per-VAP slot time configuration, call the VAP 845d20ff6e6SAdrian Chadd * method if the VAP requires it. Otherwise, just call the 846d20ff6e6SAdrian Chadd * older global method. 847d20ff6e6SAdrian Chadd * 848d20ff6e6SAdrian Chadd * If the per-VAP method is called then it's expected that 849d20ff6e6SAdrian Chadd * the driver/firmware will take care of turning the per-VAP 850d20ff6e6SAdrian Chadd * flags into slot time configuration. 851d20ff6e6SAdrian Chadd * 852d20ff6e6SAdrian Chadd * If the per-VAP method is not called then the global flags will be 853d20ff6e6SAdrian Chadd * flipped into sync with the VAPs; ic_flags IEEE80211_F_SHSLOT will 854d20ff6e6SAdrian Chadd * be set only if all of the vaps will have it set. 855f1481c8dSAdrian Chadd * 856f1481c8dSAdrian Chadd * Look at the comments for vap_update_erp_protmode() for more 857f1481c8dSAdrian Chadd * background; this assumes all VAPs are on the same channel. 858d20ff6e6SAdrian Chadd */ 859d20ff6e6SAdrian Chadd static void 860d20ff6e6SAdrian Chadd vap_update_slot(void *arg, int npending) 861d20ff6e6SAdrian Chadd { 862d20ff6e6SAdrian Chadd struct ieee80211vap *vap = arg; 863d20ff6e6SAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 864d20ff6e6SAdrian Chadd struct ieee80211vap *iv; 865d20ff6e6SAdrian Chadd int num_shslot = 0, num_lgslot = 0; 866d20ff6e6SAdrian Chadd 867d20ff6e6SAdrian Chadd /* 868d20ff6e6SAdrian Chadd * Per-VAP path - we've already had the flags updated; 869d20ff6e6SAdrian Chadd * so just notify the driver and move on. 870d20ff6e6SAdrian Chadd */ 871d20ff6e6SAdrian Chadd if (vap->iv_updateslot != NULL) { 872d20ff6e6SAdrian Chadd vap->iv_updateslot(vap); 873d20ff6e6SAdrian Chadd return; 874d20ff6e6SAdrian Chadd } 875d20ff6e6SAdrian Chadd 876d20ff6e6SAdrian Chadd /* 877d20ff6e6SAdrian Chadd * Iterate over all of the VAP flags to update the 878d20ff6e6SAdrian Chadd * global flag. 879d20ff6e6SAdrian Chadd * 880d20ff6e6SAdrian Chadd * If all vaps have short slot enabled then flip on 881d20ff6e6SAdrian Chadd * short slot. If any vap has it disabled then 882d20ff6e6SAdrian Chadd * we leave it globally disabled. This should provide 883d20ff6e6SAdrian Chadd * correct behaviour in a multi-BSS scenario where 884d20ff6e6SAdrian Chadd * at least one VAP has short slot disabled for some 885d20ff6e6SAdrian Chadd * reason. 886d20ff6e6SAdrian Chadd */ 887d20ff6e6SAdrian Chadd IEEE80211_LOCK(ic); 888d20ff6e6SAdrian Chadd TAILQ_FOREACH(iv, &ic->ic_vaps, iv_next) { 889d20ff6e6SAdrian Chadd if (iv->iv_flags & IEEE80211_F_SHSLOT) 890d20ff6e6SAdrian Chadd num_shslot++; 891d20ff6e6SAdrian Chadd else 892d20ff6e6SAdrian Chadd num_lgslot++; 893d20ff6e6SAdrian Chadd } 894d20ff6e6SAdrian Chadd 895d20ff6e6SAdrian Chadd /* 896d20ff6e6SAdrian Chadd * It looks backwards but - if the number of short slot VAPs 897d20ff6e6SAdrian Chadd * is zero then we're not short slot. Else, we have one 898d20ff6e6SAdrian Chadd * or more short slot VAPs and we're checking to see if ANY 899d20ff6e6SAdrian Chadd * of them have short slot disabled. 900d20ff6e6SAdrian Chadd */ 901d20ff6e6SAdrian Chadd if (num_shslot == 0) 902d20ff6e6SAdrian Chadd ic->ic_flags &= ~IEEE80211_F_SHSLOT; 903d20ff6e6SAdrian Chadd else if (num_lgslot == 0) 904d20ff6e6SAdrian Chadd ic->ic_flags |= IEEE80211_F_SHSLOT; 905f1481c8dSAdrian Chadd IEEE80211_UNLOCK(ic); 906d20ff6e6SAdrian Chadd 907d20ff6e6SAdrian Chadd /* 908d20ff6e6SAdrian Chadd * Call the driver with our new global slot time flags. 909d20ff6e6SAdrian Chadd */ 910c3739eb6SAdrian Chadd if (ic->ic_updateslot != NULL) 911d20ff6e6SAdrian Chadd ic->ic_updateslot(ic); 912d20ff6e6SAdrian Chadd } 913d20ff6e6SAdrian Chadd 914d20ff6e6SAdrian Chadd /* 915f1481c8dSAdrian Chadd * Deferred ERP protmode update. 916f1481c8dSAdrian Chadd * 917f1481c8dSAdrian Chadd * This currently calculates the global ERP protection mode flag 918f1481c8dSAdrian Chadd * based on each of the VAPs. Any VAP with it enabled is enough 919f1481c8dSAdrian Chadd * for the global flag to be enabled. All VAPs with it disabled 920f1481c8dSAdrian Chadd * is enough for it to be disabled. 921f1481c8dSAdrian Chadd * 922f1481c8dSAdrian Chadd * This may make sense right now for the supported hardware where 923f1481c8dSAdrian Chadd * net80211 is controlling the single channel configuration, but 924f1481c8dSAdrian Chadd * offload firmware that's doing channel changes (eg off-channel 925f1481c8dSAdrian Chadd * TDLS, off-channel STA, off-channel P2P STA/AP) may get some 926f1481c8dSAdrian Chadd * silly looking flag updates. 927f1481c8dSAdrian Chadd * 928f1481c8dSAdrian Chadd * Ideally the protection mode calculation is done based on the 929f1481c8dSAdrian Chadd * channel, and all VAPs using that channel will inherit it. 930f1481c8dSAdrian Chadd * But until that's what net80211 does, this wil have to do. 931f1481c8dSAdrian Chadd */ 932f1481c8dSAdrian Chadd static void 933f1481c8dSAdrian Chadd vap_update_erp_protmode(void *arg, int npending) 934f1481c8dSAdrian Chadd { 935f1481c8dSAdrian Chadd struct ieee80211vap *vap = arg; 936f1481c8dSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 937f1481c8dSAdrian Chadd struct ieee80211vap *iv; 938f1481c8dSAdrian Chadd int enable_protmode = 0; 939f1481c8dSAdrian Chadd int non_erp_present = 0; 940f1481c8dSAdrian Chadd 941f1481c8dSAdrian Chadd /* 942f1481c8dSAdrian Chadd * Iterate over all of the VAPs to calculate the overlapping 943f1481c8dSAdrian Chadd * ERP protection mode configuration and ERP present math. 944f1481c8dSAdrian Chadd * 945f1481c8dSAdrian Chadd * For now we assume that if a driver can handle this per-VAP 946f1481c8dSAdrian Chadd * then it'll ignore the ic->ic_protmode variant and instead 947f1481c8dSAdrian Chadd * will look at the vap related flags. 948f1481c8dSAdrian Chadd */ 949f1481c8dSAdrian Chadd IEEE80211_LOCK(ic); 950f1481c8dSAdrian Chadd TAILQ_FOREACH(iv, &ic->ic_vaps, iv_next) { 951f1481c8dSAdrian Chadd if (iv->iv_flags & IEEE80211_F_USEPROT) 952f1481c8dSAdrian Chadd enable_protmode = 1; 953f1481c8dSAdrian Chadd if (iv->iv_flags_ext & IEEE80211_FEXT_NONERP_PR) 954f1481c8dSAdrian Chadd non_erp_present = 1; 955f1481c8dSAdrian Chadd } 956f1481c8dSAdrian Chadd 957f1481c8dSAdrian Chadd if (enable_protmode) 958f1481c8dSAdrian Chadd ic->ic_flags |= IEEE80211_F_USEPROT; 959f1481c8dSAdrian Chadd else 960f1481c8dSAdrian Chadd ic->ic_flags &= ~IEEE80211_F_USEPROT; 961f1481c8dSAdrian Chadd 962f1481c8dSAdrian Chadd if (non_erp_present) 963f1481c8dSAdrian Chadd ic->ic_flags_ext |= IEEE80211_FEXT_NONERP_PR; 964f1481c8dSAdrian Chadd else 965f1481c8dSAdrian Chadd ic->ic_flags_ext &= ~IEEE80211_FEXT_NONERP_PR; 966f1481c8dSAdrian Chadd 967f1481c8dSAdrian Chadd /* Beacon update on all VAPs */ 968f1481c8dSAdrian Chadd ieee80211_notify_erp_locked(ic); 969f1481c8dSAdrian Chadd 970f1481c8dSAdrian Chadd IEEE80211_UNLOCK(ic); 971f1481c8dSAdrian Chadd 972f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 973f1481c8dSAdrian Chadd "%s: called; enable_protmode=%d, non_erp_present=%d\n", 974f1481c8dSAdrian Chadd __func__, enable_protmode, non_erp_present); 975f1481c8dSAdrian Chadd 976f1481c8dSAdrian Chadd /* 977f1481c8dSAdrian Chadd * Now that the global configuration flags are calculated, 978f1481c8dSAdrian Chadd * notify the VAP about its configuration. 979f1481c8dSAdrian Chadd * 980f1481c8dSAdrian Chadd * The global flags will be used when assembling ERP IEs 981f1481c8dSAdrian Chadd * for multi-VAP operation, even if it's on a different 982f1481c8dSAdrian Chadd * channel. Yes, that's going to need fixing in the 983f1481c8dSAdrian Chadd * future. 984f1481c8dSAdrian Chadd */ 985f1481c8dSAdrian Chadd if (vap->iv_erp_protmode_update != NULL) 986f1481c8dSAdrian Chadd vap->iv_erp_protmode_update(vap); 987f1481c8dSAdrian Chadd } 988f1481c8dSAdrian Chadd 989f1481c8dSAdrian Chadd /* 990f1481c8dSAdrian Chadd * Deferred ERP short preamble/barker update. 991f1481c8dSAdrian Chadd * 992f1481c8dSAdrian Chadd * All VAPs need to use short preamble for it to be globally 993f1481c8dSAdrian Chadd * enabled or not. 994f1481c8dSAdrian Chadd * 995f1481c8dSAdrian Chadd * Look at the comments for vap_update_erp_protmode() for more 996f1481c8dSAdrian Chadd * background; this assumes all VAPs are on the same channel. 997f1481c8dSAdrian Chadd */ 998f1481c8dSAdrian Chadd static void 999f1481c8dSAdrian Chadd vap_update_preamble(void *arg, int npending) 1000f1481c8dSAdrian Chadd { 1001f1481c8dSAdrian Chadd struct ieee80211vap *vap = arg; 1002f1481c8dSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1003f1481c8dSAdrian Chadd struct ieee80211vap *iv; 1004f1481c8dSAdrian Chadd int barker_count = 0, short_preamble_count = 0, count = 0; 1005f1481c8dSAdrian Chadd 1006f1481c8dSAdrian Chadd /* 1007f1481c8dSAdrian Chadd * Iterate over all of the VAPs to calculate the overlapping 1008f1481c8dSAdrian Chadd * short or long preamble configuration. 1009f1481c8dSAdrian Chadd * 1010f1481c8dSAdrian Chadd * For now we assume that if a driver can handle this per-VAP 1011f1481c8dSAdrian Chadd * then it'll ignore the ic->ic_flags variant and instead 1012f1481c8dSAdrian Chadd * will look at the vap related flags. 1013f1481c8dSAdrian Chadd */ 1014f1481c8dSAdrian Chadd IEEE80211_LOCK(ic); 1015f1481c8dSAdrian Chadd TAILQ_FOREACH(iv, &ic->ic_vaps, iv_next) { 1016f1481c8dSAdrian Chadd if (iv->iv_flags & IEEE80211_F_USEBARKER) 1017f1481c8dSAdrian Chadd barker_count++; 1018f1481c8dSAdrian Chadd if (iv->iv_flags & IEEE80211_F_SHPREAMBLE) 1019f1481c8dSAdrian Chadd short_preamble_count++; 1020f1481c8dSAdrian Chadd count++; 1021f1481c8dSAdrian Chadd } 1022f1481c8dSAdrian Chadd 1023f1481c8dSAdrian Chadd /* 1024f1481c8dSAdrian Chadd * As with vap_update_erp_protmode(), the global flags are 1025f1481c8dSAdrian Chadd * currently used for beacon IEs. 1026f1481c8dSAdrian Chadd */ 1027f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 1028f1481c8dSAdrian Chadd "%s: called; barker_count=%d, short_preamble_count=%d\n", 1029f1481c8dSAdrian Chadd __func__, barker_count, short_preamble_count); 1030f1481c8dSAdrian Chadd 1031f1481c8dSAdrian Chadd /* 1032f1481c8dSAdrian Chadd * Only flip on short preamble if all of the VAPs support 1033f1481c8dSAdrian Chadd * it. 1034f1481c8dSAdrian Chadd */ 1035f1481c8dSAdrian Chadd if (barker_count == 0 && short_preamble_count == count) { 1036f1481c8dSAdrian Chadd ic->ic_flags |= IEEE80211_F_SHPREAMBLE; 1037f1481c8dSAdrian Chadd ic->ic_flags &= ~IEEE80211_F_USEBARKER; 1038f1481c8dSAdrian Chadd } else { 1039f1481c8dSAdrian Chadd ic->ic_flags &= ~IEEE80211_F_SHPREAMBLE; 1040f1481c8dSAdrian Chadd ic->ic_flags |= IEEE80211_F_USEBARKER; 1041f1481c8dSAdrian Chadd } 1042f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 1043f1481c8dSAdrian Chadd "%s: global barker=%d preamble=%d\n", 1044f1481c8dSAdrian Chadd __func__, 1045f1481c8dSAdrian Chadd !! (ic->ic_flags & IEEE80211_F_USEBARKER), 1046f1481c8dSAdrian Chadd !! (ic->ic_flags & IEEE80211_F_SHPREAMBLE)); 1047f1481c8dSAdrian Chadd 1048f1481c8dSAdrian Chadd /* Beacon update on all VAPs */ 1049f1481c8dSAdrian Chadd ieee80211_notify_erp_locked(ic); 1050f1481c8dSAdrian Chadd 1051f1481c8dSAdrian Chadd IEEE80211_UNLOCK(ic); 1052f1481c8dSAdrian Chadd 1053f1481c8dSAdrian Chadd /* Driver notification */ 1054f1481c8dSAdrian Chadd if (vap->iv_erp_protmode_update != NULL) 1055f1481c8dSAdrian Chadd vap->iv_preamble_update(vap); 1056f1481c8dSAdrian Chadd } 1057f1481c8dSAdrian Chadd 1058f1481c8dSAdrian Chadd /* 1059f1481c8dSAdrian Chadd * Deferred HT protmode update and beacon update. 1060f1481c8dSAdrian Chadd * 1061f1481c8dSAdrian Chadd * Look at the comments for vap_update_erp_protmode() for more 1062f1481c8dSAdrian Chadd * background; this assumes all VAPs are on the same channel. 1063f1481c8dSAdrian Chadd */ 1064f1481c8dSAdrian Chadd static void 1065f1481c8dSAdrian Chadd vap_update_ht_protmode(void *arg, int npending) 1066f1481c8dSAdrian Chadd { 1067f1481c8dSAdrian Chadd struct ieee80211vap *vap = arg; 1068f1481c8dSAdrian Chadd struct ieee80211vap *iv; 1069f1481c8dSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1070f1481c8dSAdrian Chadd int num_vaps = 0, num_pure = 0, num_mixed = 0; 1071f1481c8dSAdrian Chadd int num_optional = 0, num_ht2040 = 0, num_nonht = 0; 1072f1481c8dSAdrian Chadd int num_ht_sta = 0, num_ht40_sta = 0, num_sta = 0; 1073f1481c8dSAdrian Chadd int num_nonhtpr = 0; 1074f1481c8dSAdrian Chadd 1075f1481c8dSAdrian Chadd /* 1076f1481c8dSAdrian Chadd * Iterate over all of the VAPs to calculate everything. 1077f1481c8dSAdrian Chadd * 1078f1481c8dSAdrian Chadd * There are a few different flags to calculate: 1079f1481c8dSAdrian Chadd * 1080f1481c8dSAdrian Chadd * + whether there's HT only or HT+legacy stations; 1081f1481c8dSAdrian Chadd * + whether there's HT20, HT40, or HT20+HT40 stations; 1082f1481c8dSAdrian Chadd * + whether the desired protection mode is mixed, pure or 1083f1481c8dSAdrian Chadd * one of the two above. 1084f1481c8dSAdrian Chadd * 1085f1481c8dSAdrian Chadd * For now we assume that if a driver can handle this per-VAP 1086f1481c8dSAdrian Chadd * then it'll ignore the ic->ic_htprotmode / ic->ic_curhtprotmode 1087f1481c8dSAdrian Chadd * variant and instead will look at the vap related variables. 1088f1481c8dSAdrian Chadd * 1089f1481c8dSAdrian Chadd * XXX TODO: non-greenfield STAs present (IEEE80211_HTINFO_NONGF_PRESENT) ! 1090f1481c8dSAdrian Chadd */ 1091f1481c8dSAdrian Chadd 1092f1481c8dSAdrian Chadd IEEE80211_LOCK(ic); 1093f1481c8dSAdrian Chadd TAILQ_FOREACH(iv, &ic->ic_vaps, iv_next) { 1094f1481c8dSAdrian Chadd num_vaps++; 1095f1481c8dSAdrian Chadd /* overlapping BSSes advertising non-HT status present */ 1096f1481c8dSAdrian Chadd if (iv->iv_flags_ht & IEEE80211_FHT_NONHT_PR) 1097f1481c8dSAdrian Chadd num_nonht++; 1098f1481c8dSAdrian Chadd /* Operating mode flags */ 1099f1481c8dSAdrian Chadd if (iv->iv_curhtprotmode & IEEE80211_HTINFO_NONHT_PRESENT) 1100f1481c8dSAdrian Chadd num_nonhtpr++; 1101f1481c8dSAdrian Chadd switch (iv->iv_curhtprotmode & IEEE80211_HTINFO_OPMODE) { 1102f1481c8dSAdrian Chadd case IEEE80211_HTINFO_OPMODE_PURE: 1103f1481c8dSAdrian Chadd num_pure++; 1104f1481c8dSAdrian Chadd break; 1105f1481c8dSAdrian Chadd case IEEE80211_HTINFO_OPMODE_PROTOPT: 1106f1481c8dSAdrian Chadd num_optional++; 1107f1481c8dSAdrian Chadd break; 1108f1481c8dSAdrian Chadd case IEEE80211_HTINFO_OPMODE_HT20PR: 1109f1481c8dSAdrian Chadd num_ht2040++; 1110f1481c8dSAdrian Chadd break; 1111f1481c8dSAdrian Chadd case IEEE80211_HTINFO_OPMODE_MIXED: 1112f1481c8dSAdrian Chadd num_mixed++; 1113f1481c8dSAdrian Chadd break; 1114f1481c8dSAdrian Chadd } 1115f1481c8dSAdrian Chadd 1116f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_11N, 1117f1481c8dSAdrian Chadd "%s: vap %s: nonht_pr=%d, curhtprotmode=0x%02x\n", 1118f1481c8dSAdrian Chadd __func__, 1119f1481c8dSAdrian Chadd ieee80211_get_vap_ifname(iv), 1120f1481c8dSAdrian Chadd !! (iv->iv_flags_ht & IEEE80211_FHT_NONHT_PR), 1121f1481c8dSAdrian Chadd iv->iv_curhtprotmode); 1122f1481c8dSAdrian Chadd 1123f1481c8dSAdrian Chadd num_ht_sta += iv->iv_ht_sta_assoc; 1124f1481c8dSAdrian Chadd num_ht40_sta += iv->iv_ht40_sta_assoc; 1125f1481c8dSAdrian Chadd num_sta += iv->iv_sta_assoc; 1126f1481c8dSAdrian Chadd } 1127f1481c8dSAdrian Chadd 1128f1481c8dSAdrian Chadd /* 1129f1481c8dSAdrian Chadd * Step 1 - if any VAPs indicate NONHT_PR set (overlapping BSS 1130f1481c8dSAdrian Chadd * non-HT present), set it here. This shouldn't be used by 1131f1481c8dSAdrian Chadd * anything but the old overlapping BSS logic so if any drivers 1132f1481c8dSAdrian Chadd * consume it, it's up to date. 1133f1481c8dSAdrian Chadd */ 1134f1481c8dSAdrian Chadd if (num_nonht > 0) 1135f1481c8dSAdrian Chadd ic->ic_flags_ht |= IEEE80211_FHT_NONHT_PR; 1136f1481c8dSAdrian Chadd else 1137f1481c8dSAdrian Chadd ic->ic_flags_ht &= ~IEEE80211_FHT_NONHT_PR; 1138f1481c8dSAdrian Chadd 1139f1481c8dSAdrian Chadd /* 1140f1481c8dSAdrian Chadd * Step 2 - default HT protection mode to MIXED (802.11-2016 10.26.3.1.) 1141f1481c8dSAdrian Chadd * 1142f1481c8dSAdrian Chadd * + If all VAPs are PURE, we can stay PURE. 1143f1481c8dSAdrian Chadd * + If all VAPs are PROTOPT, we can go to PROTOPT. 1144f1481c8dSAdrian Chadd * + If any VAP has HT20PR then it sees at least a HT40+HT20 station. 1145f1481c8dSAdrian Chadd * Note that we may have a VAP with one HT20 and a VAP with one HT40; 1146f1481c8dSAdrian Chadd * So we look at the sum ht and sum ht40 sta counts; if we have a 1147f1481c8dSAdrian Chadd * HT station and the HT20 != HT40 count, we have to do HT20PR here. 1148f1481c8dSAdrian Chadd * Note all stations need to be HT for this to be an option. 1149f1481c8dSAdrian Chadd * + The fall-through is MIXED, because it means we have some odd 1150f1481c8dSAdrian Chadd * non HT40-involved combination of opmode and this is the most 1151f1481c8dSAdrian Chadd * sensible default. 1152f1481c8dSAdrian Chadd */ 1153f1481c8dSAdrian Chadd ic->ic_curhtprotmode = IEEE80211_HTINFO_OPMODE_MIXED; 1154f1481c8dSAdrian Chadd 1155f1481c8dSAdrian Chadd if (num_pure == num_vaps) 1156f1481c8dSAdrian Chadd ic->ic_curhtprotmode = IEEE80211_HTINFO_OPMODE_PURE; 1157f1481c8dSAdrian Chadd 1158f1481c8dSAdrian Chadd if (num_optional == num_vaps) 1159f1481c8dSAdrian Chadd ic->ic_curhtprotmode = IEEE80211_HTINFO_OPMODE_PROTOPT; 1160f1481c8dSAdrian Chadd 1161f1481c8dSAdrian Chadd /* 1162f1481c8dSAdrian Chadd * Note: we need /a/ HT40 station somewhere for this to 1163f1481c8dSAdrian Chadd * be a possibility. 1164f1481c8dSAdrian Chadd */ 1165f1481c8dSAdrian Chadd if ((num_ht2040 > 0) || 1166f1481c8dSAdrian Chadd ((num_ht_sta > 0) && (num_ht40_sta > 0) && 1167f1481c8dSAdrian Chadd (num_ht_sta != num_ht40_sta))) 1168f1481c8dSAdrian Chadd ic->ic_curhtprotmode = IEEE80211_HTINFO_OPMODE_HT20PR; 1169f1481c8dSAdrian Chadd 1170f1481c8dSAdrian Chadd /* 1171f1481c8dSAdrian Chadd * Step 3 - if any of the stations across the VAPs are 1172f1481c8dSAdrian Chadd * non-HT then this needs to be flipped back to MIXED. 1173f1481c8dSAdrian Chadd */ 1174f1481c8dSAdrian Chadd if (num_ht_sta != num_sta) 1175f1481c8dSAdrian Chadd ic->ic_curhtprotmode = IEEE80211_HTINFO_OPMODE_MIXED; 1176f1481c8dSAdrian Chadd 1177f1481c8dSAdrian Chadd /* 1178f1481c8dSAdrian Chadd * Step 4 - If we see any overlapping BSS non-HT stations 1179f1481c8dSAdrian Chadd * via beacons then flip on NONHT_PRESENT. 1180f1481c8dSAdrian Chadd */ 1181f1481c8dSAdrian Chadd if (num_nonhtpr > 0) 1182f1481c8dSAdrian Chadd ic->ic_curhtprotmode |= IEEE80211_HTINFO_NONHT_PRESENT; 1183f1481c8dSAdrian Chadd 1184f1481c8dSAdrian Chadd /* Notify all VAPs to potentially update their beacons */ 1185f1481c8dSAdrian Chadd TAILQ_FOREACH(iv, &ic->ic_vaps, iv_next) 1186f1481c8dSAdrian Chadd ieee80211_htinfo_notify(iv); 1187f1481c8dSAdrian Chadd 1188f1481c8dSAdrian Chadd IEEE80211_UNLOCK(ic); 1189f1481c8dSAdrian Chadd 1190f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_11N, 1191f1481c8dSAdrian Chadd "%s: global: nonht_pr=%d ht_opmode=0x%02x\n", 1192f1481c8dSAdrian Chadd __func__, 1193f1481c8dSAdrian Chadd !! (ic->ic_flags_ht & IEEE80211_FHT_NONHT_PR), 1194f1481c8dSAdrian Chadd ic->ic_curhtprotmode); 1195f1481c8dSAdrian Chadd 1196f1481c8dSAdrian Chadd /* Driver update */ 1197f1481c8dSAdrian Chadd if (vap->iv_erp_protmode_update != NULL) 1198f1481c8dSAdrian Chadd vap->iv_ht_protmode_update(vap); 1199f1481c8dSAdrian Chadd } 1200f1481c8dSAdrian Chadd 1201f1481c8dSAdrian Chadd /* 12028a1b9b6aSSam Leffler * Set the short slot time state and notify the driver. 1203d20ff6e6SAdrian Chadd * 1204d20ff6e6SAdrian Chadd * This is the per-VAP slot time state. 12058a1b9b6aSSam Leffler */ 12068a1b9b6aSSam Leffler void 1207d20ff6e6SAdrian Chadd ieee80211_vap_set_shortslottime(struct ieee80211vap *vap, int onoff) 12088a1b9b6aSSam Leffler { 1209d20ff6e6SAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1210d20ff6e6SAdrian Chadd 1211f1481c8dSAdrian Chadd /* XXX lock? */ 1212f1481c8dSAdrian Chadd 1213d20ff6e6SAdrian Chadd /* 1214d20ff6e6SAdrian Chadd * Only modify the per-VAP slot time. 1215d20ff6e6SAdrian Chadd */ 12168a1b9b6aSSam Leffler if (onoff) 1217d20ff6e6SAdrian Chadd vap->iv_flags |= IEEE80211_F_SHSLOT; 12188a1b9b6aSSam Leffler else 1219d20ff6e6SAdrian Chadd vap->iv_flags &= ~IEEE80211_F_SHSLOT; 1220d20ff6e6SAdrian Chadd 1221f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 1222f1481c8dSAdrian Chadd "%s: called; onoff=%d\n", __func__, onoff); 1223d20ff6e6SAdrian Chadd /* schedule the deferred slot flag update and update */ 1224d20ff6e6SAdrian Chadd ieee80211_runtask(ic, &vap->iv_slot_task); 12258a1b9b6aSSam Leffler } 12268a1b9b6aSSam Leffler 12278a1b9b6aSSam Leffler /* 1228f1481c8dSAdrian Chadd * Update the VAP short /long / barker preamble state and 1229f1481c8dSAdrian Chadd * update beacon state if needed. 1230f1481c8dSAdrian Chadd * 1231f1481c8dSAdrian Chadd * For now it simply copies the global flags into the per-vap 1232f1481c8dSAdrian Chadd * flags and schedules the callback. Later this will support 1233f1481c8dSAdrian Chadd * both global and per-VAP flags, especially useful for 1234f1481c8dSAdrian Chadd * and STA+STA multi-channel operation (eg p2p). 1235f1481c8dSAdrian Chadd */ 1236f1481c8dSAdrian Chadd void 1237f1481c8dSAdrian Chadd ieee80211_vap_update_preamble(struct ieee80211vap *vap) 1238f1481c8dSAdrian Chadd { 1239f1481c8dSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1240f1481c8dSAdrian Chadd 1241f1481c8dSAdrian Chadd /* XXX lock? */ 1242f1481c8dSAdrian Chadd 1243f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 1244f1481c8dSAdrian Chadd "%s: called\n", __func__); 1245f1481c8dSAdrian Chadd /* schedule the deferred slot flag update and update */ 1246f1481c8dSAdrian Chadd ieee80211_runtask(ic, &vap->iv_preamble_task); 1247f1481c8dSAdrian Chadd } 1248f1481c8dSAdrian Chadd 1249f1481c8dSAdrian Chadd /* 1250f1481c8dSAdrian Chadd * Update the VAP 11g protection mode and update beacon state 1251f1481c8dSAdrian Chadd * if needed. 1252f1481c8dSAdrian Chadd */ 1253f1481c8dSAdrian Chadd void 1254f1481c8dSAdrian Chadd ieee80211_vap_update_erp_protmode(struct ieee80211vap *vap) 1255f1481c8dSAdrian Chadd { 1256f1481c8dSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1257f1481c8dSAdrian Chadd 1258f1481c8dSAdrian Chadd /* XXX lock? */ 1259f1481c8dSAdrian Chadd 1260f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 1261f1481c8dSAdrian Chadd "%s: called\n", __func__); 1262f1481c8dSAdrian Chadd /* schedule the deferred slot flag update and update */ 1263f1481c8dSAdrian Chadd ieee80211_runtask(ic, &vap->iv_erp_protmode_task); 1264f1481c8dSAdrian Chadd } 1265f1481c8dSAdrian Chadd 1266f1481c8dSAdrian Chadd /* 1267f1481c8dSAdrian Chadd * Update the VAP 11n protection mode and update beacon state 1268f1481c8dSAdrian Chadd * if needed. 1269f1481c8dSAdrian Chadd */ 1270f1481c8dSAdrian Chadd void 1271f1481c8dSAdrian Chadd ieee80211_vap_update_ht_protmode(struct ieee80211vap *vap) 1272f1481c8dSAdrian Chadd { 1273f1481c8dSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1274f1481c8dSAdrian Chadd 1275f1481c8dSAdrian Chadd /* XXX lock? */ 1276f1481c8dSAdrian Chadd 1277f1481c8dSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_DEBUG, 1278f1481c8dSAdrian Chadd "%s: called\n", __func__); 1279f1481c8dSAdrian Chadd /* schedule the deferred protmode update */ 1280f1481c8dSAdrian Chadd ieee80211_runtask(ic, &vap->iv_ht_protmode_task); 1281f1481c8dSAdrian Chadd } 1282f1481c8dSAdrian Chadd 1283f1481c8dSAdrian Chadd /* 12848a1b9b6aSSam Leffler * Check if the specified rate set supports ERP. 12858a1b9b6aSSam Leffler * NB: the rate set is assumed to be sorted. 12868a1b9b6aSSam Leffler */ 12878a1b9b6aSSam Leffler int 1288b032f27cSSam Leffler ieee80211_iserp_rateset(const struct ieee80211_rateset *rs) 12898a1b9b6aSSam Leffler { 12908a1b9b6aSSam Leffler static const int rates[] = { 2, 4, 11, 22, 12, 24, 48 }; 12918a1b9b6aSSam Leffler int i, j; 12928a1b9b6aSSam Leffler 1293a3e08d6fSRui Paulo if (rs->rs_nrates < nitems(rates)) 12948a1b9b6aSSam Leffler return 0; 1295a3e08d6fSRui Paulo for (i = 0; i < nitems(rates); i++) { 12968a1b9b6aSSam Leffler for (j = 0; j < rs->rs_nrates; j++) { 12978a1b9b6aSSam Leffler int r = rs->rs_rates[j] & IEEE80211_RATE_VAL; 12988a1b9b6aSSam Leffler if (rates[i] == r) 12998a1b9b6aSSam Leffler goto next; 13008a1b9b6aSSam Leffler if (r > rates[i]) 13018a1b9b6aSSam Leffler return 0; 13028a1b9b6aSSam Leffler } 13038a1b9b6aSSam Leffler return 0; 13048a1b9b6aSSam Leffler next: 13058a1b9b6aSSam Leffler ; 13068a1b9b6aSSam Leffler } 13078a1b9b6aSSam Leffler return 1; 13088a1b9b6aSSam Leffler } 13098a1b9b6aSSam Leffler 13108a1b9b6aSSam Leffler /* 1311b032f27cSSam Leffler * Mark the basic rates for the rate table based on the 13128a1b9b6aSSam Leffler * operating mode. For real 11g we mark all the 11b rates 13138a1b9b6aSSam Leffler * and 6, 12, and 24 OFDM. For 11b compatibility we mark only 13148a1b9b6aSSam Leffler * 11b rates. There's also a pseudo 11a-mode used to mark only 13158a1b9b6aSSam Leffler * the basic OFDM rates. 13168a1b9b6aSSam Leffler */ 1317b032f27cSSam Leffler static void 1318b032f27cSSam Leffler setbasicrates(struct ieee80211_rateset *rs, 1319b032f27cSSam Leffler enum ieee80211_phymode mode, int add) 13208a1b9b6aSSam Leffler { 132168e8e04eSSam Leffler static const struct ieee80211_rateset basic[IEEE80211_MODE_MAX] = { 1322be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 3, { 12, 24, 48 } }, 1323be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 2, { 2, 4 } }, 1324be0df3e7SSam Leffler /* NB: mixed b/g */ 1325be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 4, { 2, 4, 11, 22 } }, 1326be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A] = { 3, { 12, 24, 48 } }, 1327be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G] = { 4, { 2, 4, 11, 22 } }, 1328be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A] = { 3, { 12, 24, 48 } }, 13296a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 3, { 6, 12, 24 } }, 13306a76ae21SSam Leffler [IEEE80211_MODE_QUARTER] = { 3, { 3, 6, 12 } }, 1331be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 3, { 12, 24, 48 } }, 1332be0df3e7SSam Leffler /* NB: mixed b/g */ 1333be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 4, { 2, 4, 11, 22 } }, 13348fde59a7SAdrian Chadd /* NB: mixed b/g */ 13358fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = { 4, { 2, 4, 11, 22 } }, 13368fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = { 3, { 12, 24, 48 } }, 13378a1b9b6aSSam Leffler }; 13388a1b9b6aSSam Leffler int i, j; 13398a1b9b6aSSam Leffler 13408a1b9b6aSSam Leffler for (i = 0; i < rs->rs_nrates; i++) { 1341b032f27cSSam Leffler if (!add) 13428a1b9b6aSSam Leffler rs->rs_rates[i] &= IEEE80211_RATE_VAL; 13438a1b9b6aSSam Leffler for (j = 0; j < basic[mode].rs_nrates; j++) 13448a1b9b6aSSam Leffler if (basic[mode].rs_rates[j] == rs->rs_rates[i]) { 13458a1b9b6aSSam Leffler rs->rs_rates[i] |= IEEE80211_RATE_BASIC; 13468a1b9b6aSSam Leffler break; 13478a1b9b6aSSam Leffler } 13488a1b9b6aSSam Leffler } 13498a1b9b6aSSam Leffler } 13508a1b9b6aSSam Leffler 13518a1b9b6aSSam Leffler /* 1352b032f27cSSam Leffler * Set the basic rates in a rate set. 1353b032f27cSSam Leffler */ 1354b032f27cSSam Leffler void 1355b032f27cSSam Leffler ieee80211_setbasicrates(struct ieee80211_rateset *rs, 1356b032f27cSSam Leffler enum ieee80211_phymode mode) 1357b032f27cSSam Leffler { 1358b032f27cSSam Leffler setbasicrates(rs, mode, 0); 1359b032f27cSSam Leffler } 1360b032f27cSSam Leffler 1361b032f27cSSam Leffler /* 1362b032f27cSSam Leffler * Add basic rates to a rate set. 1363b032f27cSSam Leffler */ 1364b032f27cSSam Leffler void 1365b032f27cSSam Leffler ieee80211_addbasicrates(struct ieee80211_rateset *rs, 1366b032f27cSSam Leffler enum ieee80211_phymode mode) 1367b032f27cSSam Leffler { 1368b032f27cSSam Leffler setbasicrates(rs, mode, 1); 1369b032f27cSSam Leffler } 1370b032f27cSSam Leffler 1371b032f27cSSam Leffler /* 1372b032f27cSSam Leffler * WME protocol support. 1373b032f27cSSam Leffler * 1374b032f27cSSam Leffler * The default 11a/b/g/n parameters come from the WiFi Alliance WMM 1375b032f27cSSam Leffler * System Interopability Test Plan (v1.4, Appendix F) and the 802.11n 1376b032f27cSSam Leffler * Draft 2.0 Test Plan (Appendix D). 1377b032f27cSSam Leffler * 1378b032f27cSSam Leffler * Static/Dynamic Turbo mode settings come from Atheros. 13798a1b9b6aSSam Leffler */ 13808a1b9b6aSSam Leffler typedef struct phyParamType { 138168e8e04eSSam Leffler uint8_t aifsn; 138268e8e04eSSam Leffler uint8_t logcwmin; 138368e8e04eSSam Leffler uint8_t logcwmax; 138468e8e04eSSam Leffler uint16_t txopLimit; 138568e8e04eSSam Leffler uint8_t acm; 13868a1b9b6aSSam Leffler } paramType; 13878a1b9b6aSSam Leffler 13888a1b9b6aSSam Leffler static const struct phyParamType phyParamForAC_BE[IEEE80211_MODE_MAX] = { 1389be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 3, 4, 6, 0, 0 }, 1390be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 3, 4, 6, 0, 0 }, 1391be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 3, 4, 6, 0, 0 }, 1392be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 3, 4, 6, 0, 0 }, 1393be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 3, 4, 6, 0, 0 }, 1394be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 2, 3, 5, 0, 0 }, 1395be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 2, 3, 5, 0, 0 }, 1396be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 2, 3, 5, 0, 0 }, 13976a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 3, 4, 6, 0, 0 }, 13986a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 3, 4, 6, 0, 0 }, 1399be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 3, 4, 6, 0, 0 }, 1400be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 3, 4, 6, 0, 0 }, 14018fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = { 3, 4, 6, 0, 0 }, 14028fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = { 3, 4, 6, 0, 0 }, 14038a1b9b6aSSam Leffler }; 14048a1b9b6aSSam Leffler static const struct phyParamType phyParamForAC_BK[IEEE80211_MODE_MAX] = { 1405be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 7, 4, 10, 0, 0 }, 1406be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 7, 4, 10, 0, 0 }, 1407be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 7, 4, 10, 0, 0 }, 1408be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 7, 4, 10, 0, 0 }, 1409be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 7, 4, 10, 0, 0 }, 1410be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 7, 3, 10, 0, 0 }, 1411be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 7, 3, 10, 0, 0 }, 1412be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 7, 3, 10, 0, 0 }, 14136a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 7, 4, 10, 0, 0 }, 14146a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 7, 4, 10, 0, 0 }, 1415be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 7, 4, 10, 0, 0 }, 1416be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 7, 4, 10, 0, 0 }, 14178fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = { 7, 4, 10, 0, 0 }, 14188fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = { 7, 4, 10, 0, 0 }, 14198a1b9b6aSSam Leffler }; 14208a1b9b6aSSam Leffler static const struct phyParamType phyParamForAC_VI[IEEE80211_MODE_MAX] = { 1421be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 1, 3, 4, 94, 0 }, 1422be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 1, 3, 4, 94, 0 }, 1423be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 1, 3, 4, 188, 0 }, 1424be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 1, 3, 4, 94, 0 }, 1425be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 1, 3, 4, 188, 0 }, 1426be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 1, 2, 3, 94, 0 }, 1427be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 1, 2, 3, 94, 0 }, 1428be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 1, 2, 3, 94, 0 }, 14296a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 1, 3, 4, 94, 0 }, 14306a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 1, 3, 4, 94, 0 }, 1431be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 1, 3, 4, 94, 0 }, 1432be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 1, 3, 4, 94, 0 }, 14338fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = { 1, 3, 4, 94, 0 }, 14348fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = { 1, 3, 4, 94, 0 }, 14358a1b9b6aSSam Leffler }; 14368a1b9b6aSSam Leffler static const struct phyParamType phyParamForAC_VO[IEEE80211_MODE_MAX] = { 1437be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 1, 2, 3, 47, 0 }, 1438be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 1, 2, 3, 47, 0 }, 1439be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 1, 2, 3, 102, 0 }, 1440be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 1, 2, 3, 47, 0 }, 1441be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 1, 2, 3, 102, 0 }, 1442be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 1, 2, 2, 47, 0 }, 1443be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 1, 2, 2, 47, 0 }, 1444be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 1, 2, 2, 47, 0 }, 14456a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 1, 2, 3, 47, 0 }, 14466a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 1, 2, 3, 47, 0 }, 1447be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 1, 2, 3, 47, 0 }, 1448be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 1, 2, 3, 47, 0 }, 14498fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = { 1, 2, 3, 47, 0 }, 14508fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = { 1, 2, 3, 47, 0 }, 14518a1b9b6aSSam Leffler }; 14528a1b9b6aSSam Leffler 14538a1b9b6aSSam Leffler static const struct phyParamType bssPhyParamForAC_BE[IEEE80211_MODE_MAX] = { 1454be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 3, 4, 10, 0, 0 }, 1455be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 3, 4, 10, 0, 0 }, 1456be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 3, 4, 10, 0, 0 }, 1457be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 3, 4, 10, 0, 0 }, 1458be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 3, 4, 10, 0, 0 }, 1459be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 2, 3, 10, 0, 0 }, 1460be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 2, 3, 10, 0, 0 }, 1461be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 2, 3, 10, 0, 0 }, 14626a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 3, 4, 10, 0, 0 }, 14636a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 3, 4, 10, 0, 0 }, 1464be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 3, 4, 10, 0, 0 }, 1465be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 3, 4, 10, 0, 0 }, 14668a1b9b6aSSam Leffler }; 14678a1b9b6aSSam Leffler static const struct phyParamType bssPhyParamForAC_VI[IEEE80211_MODE_MAX] = { 1468be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 2, 3, 4, 94, 0 }, 1469be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 2, 3, 4, 94, 0 }, 1470be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 2, 3, 4, 188, 0 }, 1471be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 2, 3, 4, 94, 0 }, 1472be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 2, 3, 4, 188, 0 }, 1473be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 2, 2, 3, 94, 0 }, 1474be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 2, 2, 3, 94, 0 }, 1475be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 2, 2, 3, 94, 0 }, 14766a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 2, 3, 4, 94, 0 }, 14776a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 2, 3, 4, 94, 0 }, 1478be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 2, 3, 4, 94, 0 }, 1479be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 2, 3, 4, 94, 0 }, 14808a1b9b6aSSam Leffler }; 14818a1b9b6aSSam Leffler static const struct phyParamType bssPhyParamForAC_VO[IEEE80211_MODE_MAX] = { 1482be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 2, 2, 3, 47, 0 }, 1483be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 2, 2, 3, 47, 0 }, 1484be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 2, 2, 3, 102, 0 }, 1485be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 2, 2, 3, 47, 0 }, 1486be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 2, 2, 3, 102, 0 }, 1487be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A]= { 1, 2, 2, 47, 0 }, 1488be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G]= { 1, 2, 2, 47, 0 }, 1489be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A]={ 1, 2, 2, 47, 0 }, 14906a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 2, 2, 3, 47, 0 }, 14916a76ae21SSam Leffler [IEEE80211_MODE_QUARTER]= { 2, 2, 3, 47, 0 }, 1492be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 2, 2, 3, 47, 0 }, 1493be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 2, 2, 3, 47, 0 }, 14948a1b9b6aSSam Leffler }; 14958a1b9b6aSSam Leffler 1496b032f27cSSam Leffler static void 149767ce310aSSam Leffler _setifsparams(struct wmeParams *wmep, const paramType *phy) 149867ce310aSSam Leffler { 149967ce310aSSam Leffler wmep->wmep_aifsn = phy->aifsn; 150067ce310aSSam Leffler wmep->wmep_logcwmin = phy->logcwmin; 150167ce310aSSam Leffler wmep->wmep_logcwmax = phy->logcwmax; 150267ce310aSSam Leffler wmep->wmep_txopLimit = phy->txopLimit; 150367ce310aSSam Leffler } 150467ce310aSSam Leffler 150567ce310aSSam Leffler static void 150667ce310aSSam Leffler setwmeparams(struct ieee80211vap *vap, const char *type, int ac, 150767ce310aSSam Leffler struct wmeParams *wmep, const paramType *phy) 150867ce310aSSam Leffler { 150967ce310aSSam Leffler wmep->wmep_acm = phy->acm; 151067ce310aSSam Leffler _setifsparams(wmep, phy); 151167ce310aSSam Leffler 151267ce310aSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME, 151367ce310aSSam Leffler "set %s (%s) [acm %u aifsn %u logcwmin %u logcwmax %u txop %u]\n", 151467ce310aSSam Leffler ieee80211_wme_acnames[ac], type, 151567ce310aSSam Leffler wmep->wmep_acm, wmep->wmep_aifsn, wmep->wmep_logcwmin, 151667ce310aSSam Leffler wmep->wmep_logcwmax, wmep->wmep_txopLimit); 151767ce310aSSam Leffler } 151867ce310aSSam Leffler 151967ce310aSSam Leffler static void 1520b032f27cSSam Leffler ieee80211_wme_initparams_locked(struct ieee80211vap *vap) 15218a1b9b6aSSam Leffler { 1522b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 15238a1b9b6aSSam Leffler struct ieee80211_wme_state *wme = &ic->ic_wme; 15248a1b9b6aSSam Leffler const paramType *pPhyParam, *pBssPhyParam; 15258a1b9b6aSSam Leffler struct wmeParams *wmep; 152668e8e04eSSam Leffler enum ieee80211_phymode mode; 15278a1b9b6aSSam Leffler int i; 15288a1b9b6aSSam Leffler 1529b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 1530b032f27cSSam Leffler 1531a4b3c7a5SSam Leffler if ((ic->ic_caps & IEEE80211_C_WME) == 0 || ic->ic_nrunning > 1) 15328a1b9b6aSSam Leffler return; 15338a1b9b6aSSam Leffler 153468e8e04eSSam Leffler /* 15350d4e4e5eSAdrian Chadd * Clear the wme cap_info field so a qoscount from a previous 15360d4e4e5eSAdrian Chadd * vap doesn't confuse later code which only parses the beacon 15370d4e4e5eSAdrian Chadd * field and updates hardware when said field changes. 15380d4e4e5eSAdrian Chadd * Otherwise the hardware is programmed with defaults, not what 15390d4e4e5eSAdrian Chadd * the beacon actually announces. 15408379e8dbSAdrian Chadd * 15418379e8dbSAdrian Chadd * Note that we can't ever have 0xff as an actual value; 15428379e8dbSAdrian Chadd * the only valid values are 0..15. 15430d4e4e5eSAdrian Chadd */ 15448379e8dbSAdrian Chadd wme->wme_wmeChanParams.cap_info = 0xfe; 15450d4e4e5eSAdrian Chadd 15460d4e4e5eSAdrian Chadd /* 154768e8e04eSSam Leffler * Select mode; we can be called early in which case we 154868e8e04eSSam Leffler * always use auto mode. We know we'll be called when 154968e8e04eSSam Leffler * entering the RUN state with bsschan setup properly 155068e8e04eSSam Leffler * so state will eventually get set correctly 155168e8e04eSSam Leffler */ 155268e8e04eSSam Leffler if (ic->ic_bsschan != IEEE80211_CHAN_ANYC) 155368e8e04eSSam Leffler mode = ieee80211_chan2mode(ic->ic_bsschan); 155468e8e04eSSam Leffler else 155568e8e04eSSam Leffler mode = IEEE80211_MODE_AUTO; 15568a1b9b6aSSam Leffler for (i = 0; i < WME_NUM_AC; i++) { 15578a1b9b6aSSam Leffler switch (i) { 15588a1b9b6aSSam Leffler case WME_AC_BK: 155968e8e04eSSam Leffler pPhyParam = &phyParamForAC_BK[mode]; 156068e8e04eSSam Leffler pBssPhyParam = &phyParamForAC_BK[mode]; 15618a1b9b6aSSam Leffler break; 15628a1b9b6aSSam Leffler case WME_AC_VI: 156368e8e04eSSam Leffler pPhyParam = &phyParamForAC_VI[mode]; 156468e8e04eSSam Leffler pBssPhyParam = &bssPhyParamForAC_VI[mode]; 15658a1b9b6aSSam Leffler break; 15668a1b9b6aSSam Leffler case WME_AC_VO: 156768e8e04eSSam Leffler pPhyParam = &phyParamForAC_VO[mode]; 156868e8e04eSSam Leffler pBssPhyParam = &bssPhyParamForAC_VO[mode]; 15698a1b9b6aSSam Leffler break; 15708a1b9b6aSSam Leffler case WME_AC_BE: 15718a1b9b6aSSam Leffler default: 157268e8e04eSSam Leffler pPhyParam = &phyParamForAC_BE[mode]; 157368e8e04eSSam Leffler pBssPhyParam = &bssPhyParamForAC_BE[mode]; 15748a1b9b6aSSam Leffler break; 15758a1b9b6aSSam Leffler } 15768a1b9b6aSSam Leffler wmep = &wme->wme_wmeChanParams.cap_wmeParams[i]; 15778a1b9b6aSSam Leffler if (ic->ic_opmode == IEEE80211_M_HOSTAP) { 157867ce310aSSam Leffler setwmeparams(vap, "chan", i, wmep, pPhyParam); 15798a1b9b6aSSam Leffler } else { 158067ce310aSSam Leffler setwmeparams(vap, "chan", i, wmep, pBssPhyParam); 15818a1b9b6aSSam Leffler } 15828a1b9b6aSSam Leffler wmep = &wme->wme_wmeBssChanParams.cap_wmeParams[i]; 158367ce310aSSam Leffler setwmeparams(vap, "bss ", i, wmep, pBssPhyParam); 15848a1b9b6aSSam Leffler } 15858a1b9b6aSSam Leffler /* NB: check ic_bss to avoid NULL deref on initial attach */ 1586b032f27cSSam Leffler if (vap->iv_bss != NULL) { 15878a1b9b6aSSam Leffler /* 1588a4641f4eSPedro F. Giffuni * Calculate aggressive mode switching threshold based 15898a1b9b6aSSam Leffler * on beacon interval. This doesn't need locking since 15908a1b9b6aSSam Leffler * we're only called before entering the RUN state at 15918a1b9b6aSSam Leffler * which point we start sending beacon frames. 15928a1b9b6aSSam Leffler */ 15938a1b9b6aSSam Leffler wme->wme_hipri_switch_thresh = 1594b032f27cSSam Leffler (HIGH_PRI_SWITCH_THRESH * vap->iv_bss->ni_intval) / 100; 1595a4b3c7a5SSam Leffler wme->wme_flags &= ~WME_F_AGGRMODE; 1596b032f27cSSam Leffler ieee80211_wme_updateparams(vap); 15978a1b9b6aSSam Leffler } 15988a1b9b6aSSam Leffler } 15998a1b9b6aSSam Leffler 1600b032f27cSSam Leffler void 1601b032f27cSSam Leffler ieee80211_wme_initparams(struct ieee80211vap *vap) 1602b032f27cSSam Leffler { 1603b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 1604b032f27cSSam Leffler 1605b032f27cSSam Leffler IEEE80211_LOCK(ic); 1606b032f27cSSam Leffler ieee80211_wme_initparams_locked(vap); 1607b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 1608b032f27cSSam Leffler } 1609b032f27cSSam Leffler 16108a1b9b6aSSam Leffler /* 16118a1b9b6aSSam Leffler * Update WME parameters for ourself and the BSS. 16128a1b9b6aSSam Leffler */ 16138a1b9b6aSSam Leffler void 1614b032f27cSSam Leffler ieee80211_wme_updateparams_locked(struct ieee80211vap *vap) 16158a1b9b6aSSam Leffler { 161667ce310aSSam Leffler static const paramType aggrParam[IEEE80211_MODE_MAX] = { 1617be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = { 2, 4, 10, 64, 0 }, 1618be0df3e7SSam Leffler [IEEE80211_MODE_11A] = { 2, 4, 10, 64, 0 }, 1619be0df3e7SSam Leffler [IEEE80211_MODE_11B] = { 2, 5, 10, 64, 0 }, 1620be0df3e7SSam Leffler [IEEE80211_MODE_11G] = { 2, 4, 10, 64, 0 }, 1621be0df3e7SSam Leffler [IEEE80211_MODE_FH] = { 2, 5, 10, 64, 0 }, 1622be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A] = { 1, 3, 10, 64, 0 }, 1623be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G] = { 1, 3, 10, 64, 0 }, 1624be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A] = { 1, 3, 10, 64, 0 }, 16256a76ae21SSam Leffler [IEEE80211_MODE_HALF] = { 2, 4, 10, 64, 0 }, 16266a76ae21SSam Leffler [IEEE80211_MODE_QUARTER] = { 2, 4, 10, 64, 0 }, 1627be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = { 2, 4, 10, 64, 0 }, /* XXXcheck*/ 1628be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = { 2, 4, 10, 64, 0 }, /* XXXcheck*/ 16298fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = { 2, 4, 10, 64, 0 }, /* XXXcheck*/ 16308fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = { 2, 4, 10, 64, 0 }, /* XXXcheck*/ 16318a1b9b6aSSam Leffler }; 1632b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 16338a1b9b6aSSam Leffler struct ieee80211_wme_state *wme = &ic->ic_wme; 16348a1b9b6aSSam Leffler const struct wmeParams *wmep; 16358a1b9b6aSSam Leffler struct wmeParams *chanp, *bssp; 163668e8e04eSSam Leffler enum ieee80211_phymode mode; 16378a1b9b6aSSam Leffler int i; 1638a48a8ad7SAdrian Chadd int do_aggrmode = 0; 16398a1b9b6aSSam Leffler 164067ce310aSSam Leffler /* 164167ce310aSSam Leffler * Set up the channel access parameters for the physical 164267ce310aSSam Leffler * device. First populate the configured settings. 164367ce310aSSam Leffler */ 16448a1b9b6aSSam Leffler for (i = 0; i < WME_NUM_AC; i++) { 16458a1b9b6aSSam Leffler chanp = &wme->wme_chanParams.cap_wmeParams[i]; 16468a1b9b6aSSam Leffler wmep = &wme->wme_wmeChanParams.cap_wmeParams[i]; 16478a1b9b6aSSam Leffler chanp->wmep_aifsn = wmep->wmep_aifsn; 16488a1b9b6aSSam Leffler chanp->wmep_logcwmin = wmep->wmep_logcwmin; 16498a1b9b6aSSam Leffler chanp->wmep_logcwmax = wmep->wmep_logcwmax; 16508a1b9b6aSSam Leffler chanp->wmep_txopLimit = wmep->wmep_txopLimit; 16518a1b9b6aSSam Leffler 16528a1b9b6aSSam Leffler chanp = &wme->wme_bssChanParams.cap_wmeParams[i]; 16538a1b9b6aSSam Leffler wmep = &wme->wme_wmeBssChanParams.cap_wmeParams[i]; 16548a1b9b6aSSam Leffler chanp->wmep_aifsn = wmep->wmep_aifsn; 16558a1b9b6aSSam Leffler chanp->wmep_logcwmin = wmep->wmep_logcwmin; 16568a1b9b6aSSam Leffler chanp->wmep_logcwmax = wmep->wmep_logcwmax; 16578a1b9b6aSSam Leffler chanp->wmep_txopLimit = wmep->wmep_txopLimit; 16588a1b9b6aSSam Leffler } 16598a1b9b6aSSam Leffler 16608a1b9b6aSSam Leffler /* 166168e8e04eSSam Leffler * Select mode; we can be called early in which case we 166268e8e04eSSam Leffler * always use auto mode. We know we'll be called when 166368e8e04eSSam Leffler * entering the RUN state with bsschan setup properly 166468e8e04eSSam Leffler * so state will eventually get set correctly 166568e8e04eSSam Leffler */ 166668e8e04eSSam Leffler if (ic->ic_bsschan != IEEE80211_CHAN_ANYC) 166768e8e04eSSam Leffler mode = ieee80211_chan2mode(ic->ic_bsschan); 166868e8e04eSSam Leffler else 166968e8e04eSSam Leffler mode = IEEE80211_MODE_AUTO; 167068e8e04eSSam Leffler 167168e8e04eSSam Leffler /* 1672a4641f4eSPedro F. Giffuni * This implements aggressive mode as found in certain 16738a1b9b6aSSam Leffler * vendors' AP's. When there is significant high 16748a1b9b6aSSam Leffler * priority (VI/VO) traffic in the BSS throttle back BE 16758a1b9b6aSSam Leffler * traffic by using conservative parameters. Otherwise 1676a4641f4eSPedro F. Giffuni * BE uses aggressive params to optimize performance of 16778a1b9b6aSSam Leffler * legacy/non-QoS traffic. 16788a1b9b6aSSam Leffler */ 1679a48a8ad7SAdrian Chadd 1680a48a8ad7SAdrian Chadd /* Hostap? Only if aggressive mode is enabled */ 1681a48a8ad7SAdrian Chadd if (vap->iv_opmode == IEEE80211_M_HOSTAP && 1682a48a8ad7SAdrian Chadd (wme->wme_flags & WME_F_AGGRMODE) != 0) 1683a48a8ad7SAdrian Chadd do_aggrmode = 1; 1684a48a8ad7SAdrian Chadd 1685a48a8ad7SAdrian Chadd /* 1686a48a8ad7SAdrian Chadd * Station? Only if we're in a non-QoS BSS. 1687a48a8ad7SAdrian Chadd */ 1688a48a8ad7SAdrian Chadd else if ((vap->iv_opmode == IEEE80211_M_STA && 1689a48a8ad7SAdrian Chadd (vap->iv_bss->ni_flags & IEEE80211_NODE_QOS) == 0)) 1690a48a8ad7SAdrian Chadd do_aggrmode = 1; 1691a48a8ad7SAdrian Chadd 1692a48a8ad7SAdrian Chadd /* 1693a48a8ad7SAdrian Chadd * IBSS? Only if we we have WME enabled. 1694a48a8ad7SAdrian Chadd */ 1695a48a8ad7SAdrian Chadd else if ((vap->iv_opmode == IEEE80211_M_IBSS) && 1696a48a8ad7SAdrian Chadd (vap->iv_flags & IEEE80211_F_WME)) 1697a48a8ad7SAdrian Chadd do_aggrmode = 1; 1698a48a8ad7SAdrian Chadd 1699a48a8ad7SAdrian Chadd /* 1700a48a8ad7SAdrian Chadd * If WME is disabled on this VAP, default to aggressive mode 1701a48a8ad7SAdrian Chadd * regardless of the configuration. 1702a48a8ad7SAdrian Chadd */ 1703a48a8ad7SAdrian Chadd if ((vap->iv_flags & IEEE80211_F_WME) == 0) 1704a48a8ad7SAdrian Chadd do_aggrmode = 1; 1705a48a8ad7SAdrian Chadd 1706a48a8ad7SAdrian Chadd /* XXX WDS? */ 1707a48a8ad7SAdrian Chadd 1708a48a8ad7SAdrian Chadd /* XXX MBSS? */ 1709a48a8ad7SAdrian Chadd 1710a48a8ad7SAdrian Chadd if (do_aggrmode) { 17118a1b9b6aSSam Leffler chanp = &wme->wme_chanParams.cap_wmeParams[WME_AC_BE]; 17128a1b9b6aSSam Leffler bssp = &wme->wme_bssChanParams.cap_wmeParams[WME_AC_BE]; 17138a1b9b6aSSam Leffler 171467ce310aSSam Leffler chanp->wmep_aifsn = bssp->wmep_aifsn = aggrParam[mode].aifsn; 17158a1b9b6aSSam Leffler chanp->wmep_logcwmin = bssp->wmep_logcwmin = 171667ce310aSSam Leffler aggrParam[mode].logcwmin; 17178a1b9b6aSSam Leffler chanp->wmep_logcwmax = bssp->wmep_logcwmax = 171867ce310aSSam Leffler aggrParam[mode].logcwmax; 17198a1b9b6aSSam Leffler chanp->wmep_txopLimit = bssp->wmep_txopLimit = 1720b032f27cSSam Leffler (vap->iv_flags & IEEE80211_F_BURST) ? 172167ce310aSSam Leffler aggrParam[mode].txopLimit : 0; 1722b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME, 172367ce310aSSam Leffler "update %s (chan+bss) [acm %u aifsn %u logcwmin %u " 172467ce310aSSam Leffler "logcwmax %u txop %u]\n", ieee80211_wme_acnames[WME_AC_BE], 172567ce310aSSam Leffler chanp->wmep_acm, chanp->wmep_aifsn, chanp->wmep_logcwmin, 172667ce310aSSam Leffler chanp->wmep_logcwmax, chanp->wmep_txopLimit); 17278a1b9b6aSSam Leffler } 17288a1b9b6aSSam Leffler 1729a48a8ad7SAdrian Chadd /* 1730a48a8ad7SAdrian Chadd * Change the contention window based on the number of associated 1731a48a8ad7SAdrian Chadd * stations. If the number of associated stations is 1 and 1732a48a8ad7SAdrian Chadd * aggressive mode is enabled, lower the contention window even 1733a48a8ad7SAdrian Chadd * further. 1734a48a8ad7SAdrian Chadd */ 1735b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_HOSTAP && 1736f1481c8dSAdrian Chadd vap->iv_sta_assoc < 2 && (wme->wme_flags & WME_F_AGGRMODE) != 0) { 173768e8e04eSSam Leffler static const uint8_t logCwMin[IEEE80211_MODE_MAX] = { 1738be0df3e7SSam Leffler [IEEE80211_MODE_AUTO] = 3, 1739be0df3e7SSam Leffler [IEEE80211_MODE_11A] = 3, 1740be0df3e7SSam Leffler [IEEE80211_MODE_11B] = 4, 1741be0df3e7SSam Leffler [IEEE80211_MODE_11G] = 3, 1742be0df3e7SSam Leffler [IEEE80211_MODE_FH] = 4, 1743be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_A] = 3, 1744be0df3e7SSam Leffler [IEEE80211_MODE_TURBO_G] = 3, 1745be0df3e7SSam Leffler [IEEE80211_MODE_STURBO_A] = 3, 17466a76ae21SSam Leffler [IEEE80211_MODE_HALF] = 3, 17476a76ae21SSam Leffler [IEEE80211_MODE_QUARTER] = 3, 1748be0df3e7SSam Leffler [IEEE80211_MODE_11NA] = 3, 1749be0df3e7SSam Leffler [IEEE80211_MODE_11NG] = 3, 17508fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = 3, 17518fde59a7SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = 3, 17528a1b9b6aSSam Leffler }; 17538a1b9b6aSSam Leffler chanp = &wme->wme_chanParams.cap_wmeParams[WME_AC_BE]; 17548a1b9b6aSSam Leffler bssp = &wme->wme_bssChanParams.cap_wmeParams[WME_AC_BE]; 17558a1b9b6aSSam Leffler 175668e8e04eSSam Leffler chanp->wmep_logcwmin = bssp->wmep_logcwmin = logCwMin[mode]; 1757b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME, 175867ce310aSSam Leffler "update %s (chan+bss) logcwmin %u\n", 175967ce310aSSam Leffler ieee80211_wme_acnames[WME_AC_BE], chanp->wmep_logcwmin); 17608a1b9b6aSSam Leffler } 1761a48a8ad7SAdrian Chadd 1762dd2fb488SAdrian Chadd /* schedule the deferred WME update */ 1763e3e94c96SAdrian Chadd ieee80211_runtask(ic, &vap->iv_wme_task); 17648a1b9b6aSSam Leffler 1765b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_WME, 17668a1b9b6aSSam Leffler "%s: WME params updated, cap_info 0x%x\n", __func__, 1767b032f27cSSam Leffler vap->iv_opmode == IEEE80211_M_STA ? 17688a1b9b6aSSam Leffler wme->wme_wmeChanParams.cap_info : 17698a1b9b6aSSam Leffler wme->wme_bssChanParams.cap_info); 17708a1b9b6aSSam Leffler } 17718a1b9b6aSSam Leffler 17728a1b9b6aSSam Leffler void 1773b032f27cSSam Leffler ieee80211_wme_updateparams(struct ieee80211vap *vap) 17748a1b9b6aSSam Leffler { 1775b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 17768a1b9b6aSSam Leffler 17778a1b9b6aSSam Leffler if (ic->ic_caps & IEEE80211_C_WME) { 1778b032f27cSSam Leffler IEEE80211_LOCK(ic); 1779b032f27cSSam Leffler ieee80211_wme_updateparams_locked(vap); 1780b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 17818a1b9b6aSSam Leffler } 17828a1b9b6aSSam Leffler } 17838a1b9b6aSSam Leffler 17840c696036SAdrian Chadd /* 17850c696036SAdrian Chadd * Fetch the WME parameters for the given VAP. 17860c696036SAdrian Chadd * 17870c696036SAdrian Chadd * When net80211 grows p2p, etc support, this may return different 17880c696036SAdrian Chadd * parameters for each VAP. 17890c696036SAdrian Chadd */ 1790d03baf35SAdrian Chadd void 1791d03baf35SAdrian Chadd ieee80211_wme_vap_getparams(struct ieee80211vap *vap, struct chanAccParams *wp) 1792d03baf35SAdrian Chadd { 1793d03baf35SAdrian Chadd 1794d03baf35SAdrian Chadd memcpy(wp, &vap->iv_ic->ic_wme.wme_chanParams, sizeof(*wp)); 1795d03baf35SAdrian Chadd } 1796d03baf35SAdrian Chadd 17970c696036SAdrian Chadd /* 17980c696036SAdrian Chadd * For NICs which only support one set of WME paramaters (ie, softmac NICs) 17990c696036SAdrian Chadd * there may be different VAP WME parameters but only one is "active". 18000c696036SAdrian Chadd * This returns the "NIC" WME parameters for the currently active 18010c696036SAdrian Chadd * context. 18020c696036SAdrian Chadd */ 1803d03baf35SAdrian Chadd void 1804d03baf35SAdrian Chadd ieee80211_wme_ic_getparams(struct ieee80211com *ic, struct chanAccParams *wp) 1805d03baf35SAdrian Chadd { 1806d03baf35SAdrian Chadd 1807d03baf35SAdrian Chadd memcpy(wp, &ic->ic_wme.wme_chanParams, sizeof(*wp)); 1808d03baf35SAdrian Chadd } 1809d03baf35SAdrian Chadd 18100c696036SAdrian Chadd /* 18110c696036SAdrian Chadd * Return whether to use QoS on a given WME queue. 18120c696036SAdrian Chadd * 18130c696036SAdrian Chadd * This is intended to be called from the transmit path of softmac drivers 18140c696036SAdrian Chadd * which are setting NoAck bits in transmit descriptors. 18150c696036SAdrian Chadd * 18160c696036SAdrian Chadd * Ideally this would be set in some transmit field before the packet is 18170c696036SAdrian Chadd * queued to the driver but net80211 isn't quite there yet. 18180c696036SAdrian Chadd */ 18190c696036SAdrian Chadd int 18200c696036SAdrian Chadd ieee80211_wme_vap_ac_is_noack(struct ieee80211vap *vap, int ac) 18210c696036SAdrian Chadd { 18220c696036SAdrian Chadd /* Bounds/sanity check */ 18230c696036SAdrian Chadd if (ac < 0 || ac >= WME_NUM_AC) 18240c696036SAdrian Chadd return (0); 18250c696036SAdrian Chadd 18260c696036SAdrian Chadd /* Again, there's only one global context for now */ 18270c696036SAdrian Chadd return (!! vap->iv_ic->ic_wme.wme_chanParams.cap_wmeParams[ac].wmep_noackPolicy); 18280c696036SAdrian Chadd } 18290c696036SAdrian Chadd 1830b032f27cSSam Leffler static void 1831b032f27cSSam Leffler parent_updown(void *arg, int npending) 183268e8e04eSSam Leffler { 18337a79cebfSGleb Smirnoff struct ieee80211com *ic = arg; 183468e8e04eSSam Leffler 18357a79cebfSGleb Smirnoff ic->ic_parent(ic); 1836b032f27cSSam Leffler } 183768e8e04eSSam Leffler 18385efea30fSAndrew Thompson static void 18395efea30fSAndrew Thompson update_mcast(void *arg, int npending) 18405efea30fSAndrew Thompson { 18415efea30fSAndrew Thompson struct ieee80211com *ic = arg; 18425efea30fSAndrew Thompson 1843272f6adeSGleb Smirnoff ic->ic_update_mcast(ic); 18445efea30fSAndrew Thompson } 18455efea30fSAndrew Thompson 18465efea30fSAndrew Thompson static void 18475efea30fSAndrew Thompson update_promisc(void *arg, int npending) 18485efea30fSAndrew Thompson { 18495efea30fSAndrew Thompson struct ieee80211com *ic = arg; 18505efea30fSAndrew Thompson 1851272f6adeSGleb Smirnoff ic->ic_update_promisc(ic); 18525efea30fSAndrew Thompson } 18535efea30fSAndrew Thompson 18545efea30fSAndrew Thompson static void 18555efea30fSAndrew Thompson update_channel(void *arg, int npending) 18565efea30fSAndrew Thompson { 18575efea30fSAndrew Thompson struct ieee80211com *ic = arg; 18585efea30fSAndrew Thompson 18595efea30fSAndrew Thompson ic->ic_set_channel(ic); 18605463c4a4SSam Leffler ieee80211_radiotap_chan_change(ic); 18615efea30fSAndrew Thompson } 18625efea30fSAndrew Thompson 1863b94299c4SAdrian Chadd static void 1864b94299c4SAdrian Chadd update_chw(void *arg, int npending) 1865b94299c4SAdrian Chadd { 1866b94299c4SAdrian Chadd struct ieee80211com *ic = arg; 1867b94299c4SAdrian Chadd 1868b94299c4SAdrian Chadd /* 1869b94299c4SAdrian Chadd * XXX should we defer the channel width _config_ update until now? 1870b94299c4SAdrian Chadd */ 1871b94299c4SAdrian Chadd ic->ic_update_chw(ic); 1872b94299c4SAdrian Chadd } 1873b94299c4SAdrian Chadd 1874dd2fb488SAdrian Chadd /* 1875f1481c8dSAdrian Chadd * Deferred WME parameter and beacon update. 1876e3e94c96SAdrian Chadd * 1877e3e94c96SAdrian Chadd * In preparation for per-VAP WME configuration, call the VAP 1878e3e94c96SAdrian Chadd * method if the VAP requires it. Otherwise, just call the 1879e3e94c96SAdrian Chadd * older global method. There isn't a per-VAP WME configuration 1880e3e94c96SAdrian Chadd * just yet so for now just use the global configuration. 1881dd2fb488SAdrian Chadd */ 1882e3e94c96SAdrian Chadd static void 1883e3e94c96SAdrian Chadd vap_update_wme(void *arg, int npending) 1884e3e94c96SAdrian Chadd { 1885e3e94c96SAdrian Chadd struct ieee80211vap *vap = arg; 1886e3e94c96SAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1887f1481c8dSAdrian Chadd struct ieee80211_wme_state *wme = &ic->ic_wme; 1888e3e94c96SAdrian Chadd 1889f1481c8dSAdrian Chadd /* Driver update */ 1890e3e94c96SAdrian Chadd if (vap->iv_wme_update != NULL) 1891e3e94c96SAdrian Chadd vap->iv_wme_update(vap, 1892e3e94c96SAdrian Chadd ic->ic_wme.wme_chanParams.cap_wmeParams); 1893e3e94c96SAdrian Chadd else 1894dd2fb488SAdrian Chadd ic->ic_wme.wme_update(ic); 1895f1481c8dSAdrian Chadd 1896f1481c8dSAdrian Chadd IEEE80211_LOCK(ic); 1897f1481c8dSAdrian Chadd /* 1898f1481c8dSAdrian Chadd * Arrange for the beacon update. 1899f1481c8dSAdrian Chadd * 1900f1481c8dSAdrian Chadd * XXX what about MBSS, WDS? 1901f1481c8dSAdrian Chadd */ 1902f1481c8dSAdrian Chadd if (vap->iv_opmode == IEEE80211_M_HOSTAP 1903f1481c8dSAdrian Chadd || vap->iv_opmode == IEEE80211_M_IBSS) { 1904f1481c8dSAdrian Chadd /* 1905f1481c8dSAdrian Chadd * Arrange for a beacon update and bump the parameter 1906f1481c8dSAdrian Chadd * set number so associated stations load the new values. 1907f1481c8dSAdrian Chadd */ 1908f1481c8dSAdrian Chadd wme->wme_bssChanParams.cap_info = 1909f1481c8dSAdrian Chadd (wme->wme_bssChanParams.cap_info+1) & WME_QOSINFO_COUNT; 1910f1481c8dSAdrian Chadd ieee80211_beacon_notify(vap, IEEE80211_BEACON_WME); 1911f1481c8dSAdrian Chadd } 1912f1481c8dSAdrian Chadd IEEE80211_UNLOCK(ic); 1913dd2fb488SAdrian Chadd } 1914dd2fb488SAdrian Chadd 19154061c639SAndriy Voskoboinyk static void 19164061c639SAndriy Voskoboinyk restart_vaps(void *arg, int npending) 19174061c639SAndriy Voskoboinyk { 19184061c639SAndriy Voskoboinyk struct ieee80211com *ic = arg; 19194061c639SAndriy Voskoboinyk 19204061c639SAndriy Voskoboinyk ieee80211_suspend_all(ic); 19214061c639SAndriy Voskoboinyk ieee80211_resume_all(ic); 19224061c639SAndriy Voskoboinyk } 19234061c639SAndriy Voskoboinyk 192468e8e04eSSam Leffler /* 1925ae55932eSAndrew Thompson * Block until the parent is in a known state. This is 1926ae55932eSAndrew Thompson * used after any operations that dispatch a task (e.g. 1927ae55932eSAndrew Thompson * to auto-configure the parent device up/down). 1928ae55932eSAndrew Thompson */ 1929ae55932eSAndrew Thompson void 1930ae55932eSAndrew Thompson ieee80211_waitfor_parent(struct ieee80211com *ic) 1931ae55932eSAndrew Thompson { 19325efea30fSAndrew Thompson taskqueue_block(ic->ic_tq); 19335efea30fSAndrew Thompson ieee80211_draintask(ic, &ic->ic_parent_task); 19345efea30fSAndrew Thompson ieee80211_draintask(ic, &ic->ic_mcast_task); 19355efea30fSAndrew Thompson ieee80211_draintask(ic, &ic->ic_promisc_task); 19365efea30fSAndrew Thompson ieee80211_draintask(ic, &ic->ic_chan_task); 19375efea30fSAndrew Thompson ieee80211_draintask(ic, &ic->ic_bmiss_task); 1938b94299c4SAdrian Chadd ieee80211_draintask(ic, &ic->ic_chw_task); 19395efea30fSAndrew Thompson taskqueue_unblock(ic->ic_tq); 1940ae55932eSAndrew Thompson } 1941ae55932eSAndrew Thompson 1942ae55932eSAndrew Thompson /* 194324034ddbSAdrian Chadd * Check to see whether the current channel needs reset. 194424034ddbSAdrian Chadd * 194524034ddbSAdrian Chadd * Some devices don't handle being given an invalid channel 194624034ddbSAdrian Chadd * in their operating mode very well (eg wpi(4) will throw a 194724034ddbSAdrian Chadd * firmware exception.) 194824034ddbSAdrian Chadd * 194924034ddbSAdrian Chadd * Return 0 if we're ok, 1 if the channel needs to be reset. 195024034ddbSAdrian Chadd * 195124034ddbSAdrian Chadd * See PR kern/202502. 195224034ddbSAdrian Chadd */ 195324034ddbSAdrian Chadd static int 195424034ddbSAdrian Chadd ieee80211_start_check_reset_chan(struct ieee80211vap *vap) 195524034ddbSAdrian Chadd { 195624034ddbSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 195724034ddbSAdrian Chadd 195824034ddbSAdrian Chadd if ((vap->iv_opmode == IEEE80211_M_IBSS && 195924034ddbSAdrian Chadd IEEE80211_IS_CHAN_NOADHOC(ic->ic_curchan)) || 196024034ddbSAdrian Chadd (vap->iv_opmode == IEEE80211_M_HOSTAP && 196124034ddbSAdrian Chadd IEEE80211_IS_CHAN_NOHOSTAP(ic->ic_curchan))) 196224034ddbSAdrian Chadd return (1); 196324034ddbSAdrian Chadd return (0); 196424034ddbSAdrian Chadd } 196524034ddbSAdrian Chadd 196624034ddbSAdrian Chadd /* 196724034ddbSAdrian Chadd * Reset the curchan to a known good state. 196824034ddbSAdrian Chadd */ 196924034ddbSAdrian Chadd static void 197024034ddbSAdrian Chadd ieee80211_start_reset_chan(struct ieee80211vap *vap) 197124034ddbSAdrian Chadd { 197224034ddbSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 197324034ddbSAdrian Chadd 197424034ddbSAdrian Chadd ic->ic_curchan = &ic->ic_channels[0]; 197524034ddbSAdrian Chadd } 197624034ddbSAdrian Chadd 197724034ddbSAdrian Chadd /* 1978b032f27cSSam Leffler * Start a vap running. If this is the first vap to be 1979b032f27cSSam Leffler * set running on the underlying device then we 1980b032f27cSSam Leffler * automatically bring the device up. 198168e8e04eSSam Leffler */ 1982b032f27cSSam Leffler void 1983b032f27cSSam Leffler ieee80211_start_locked(struct ieee80211vap *vap) 1984b032f27cSSam Leffler { 1985b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 1986b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 1987b032f27cSSam Leffler 1988b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 1989b032f27cSSam Leffler 1990b032f27cSSam Leffler IEEE80211_DPRINTF(vap, 1991b032f27cSSam Leffler IEEE80211_MSG_STATE | IEEE80211_MSG_DEBUG, 1992b032f27cSSam Leffler "start running, %d vaps running\n", ic->ic_nrunning); 1993b032f27cSSam Leffler 1994b032f27cSSam Leffler if ((ifp->if_drv_flags & IFF_DRV_RUNNING) == 0) { 1995b032f27cSSam Leffler /* 1996b032f27cSSam Leffler * Mark us running. Note that it's ok to do this first; 1997b032f27cSSam Leffler * if we need to bring the parent device up we defer that 1998b032f27cSSam Leffler * to avoid dropping the com lock. We expect the device 1999b032f27cSSam Leffler * to respond to being marked up by calling back into us 2000b032f27cSSam Leffler * through ieee80211_start_all at which point we'll come 2001b032f27cSSam Leffler * back in here and complete the work. 2002b032f27cSSam Leffler */ 2003b032f27cSSam Leffler ifp->if_drv_flags |= IFF_DRV_RUNNING; 20042c13efdfSAndriy Gapon ieee80211_notify_ifnet_change(vap); 20052c13efdfSAndriy Gapon 2006b032f27cSSam Leffler /* 2007b032f27cSSam Leffler * We are not running; if this we are the first vap 2008b032f27cSSam Leffler * to be brought up auto-up the parent if necessary. 2009b032f27cSSam Leffler */ 20107a79cebfSGleb Smirnoff if (ic->ic_nrunning++ == 0) { 201124034ddbSAdrian Chadd /* reset the channel to a known good channel */ 201224034ddbSAdrian Chadd if (ieee80211_start_check_reset_chan(vap)) 201324034ddbSAdrian Chadd ieee80211_start_reset_chan(vap); 201424034ddbSAdrian Chadd 2015b032f27cSSam Leffler IEEE80211_DPRINTF(vap, 2016b032f27cSSam Leffler IEEE80211_MSG_STATE | IEEE80211_MSG_DEBUG, 20177a79cebfSGleb Smirnoff "%s: up parent %s\n", __func__, ic->ic_name); 20185efea30fSAndrew Thompson ieee80211_runtask(ic, &ic->ic_parent_task); 2019b032f27cSSam Leffler return; 2020b032f27cSSam Leffler } 2021b032f27cSSam Leffler } 2022b032f27cSSam Leffler /* 2023b032f27cSSam Leffler * If the parent is up and running, then kick the 2024b032f27cSSam Leffler * 802.11 state machine as appropriate. 2025b032f27cSSam Leffler */ 20267a79cebfSGleb Smirnoff if (vap->iv_roaming != IEEE80211_ROAMING_MANUAL) { 2027b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_STA) { 2028b032f27cSSam Leffler #if 0 2029b032f27cSSam Leffler /* XXX bypasses scan too easily; disable for now */ 2030b032f27cSSam Leffler /* 2031b032f27cSSam Leffler * Try to be intelligent about clocking the state 2032b032f27cSSam Leffler * machine. If we're currently in RUN state then 2033b032f27cSSam Leffler * we should be able to apply any new state/parameters 2034b032f27cSSam Leffler * simply by re-associating. Otherwise we need to 2035b032f27cSSam Leffler * re-scan to select an appropriate ap. 2036b032f27cSSam Leffler */ 2037b032f27cSSam Leffler if (vap->iv_state >= IEEE80211_S_RUN) 2038b032f27cSSam Leffler ieee80211_new_state_locked(vap, 2039b032f27cSSam Leffler IEEE80211_S_ASSOC, 1); 2040b032f27cSSam Leffler else 2041b032f27cSSam Leffler #endif 2042b032f27cSSam Leffler ieee80211_new_state_locked(vap, 2043b032f27cSSam Leffler IEEE80211_S_SCAN, 0); 204468e8e04eSSam Leffler } else { 204568e8e04eSSam Leffler /* 2046b032f27cSSam Leffler * For monitor+wds mode there's nothing to do but 2047b032f27cSSam Leffler * start running. Otherwise if this is the first 204868e8e04eSSam Leffler * vap to be brought up, start a scan which may be 204968e8e04eSSam Leffler * preempted if the station is locked to a particular 205068e8e04eSSam Leffler * channel. 205168e8e04eSSam Leffler */ 20525efea30fSAndrew Thompson vap->iv_flags_ext |= IEEE80211_FEXT_REINIT; 2053b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_MONITOR || 2054b032f27cSSam Leffler vap->iv_opmode == IEEE80211_M_WDS) 2055b032f27cSSam Leffler ieee80211_new_state_locked(vap, 2056b032f27cSSam Leffler IEEE80211_S_RUN, -1); 2057b032f27cSSam Leffler else 2058b032f27cSSam Leffler ieee80211_new_state_locked(vap, 2059b032f27cSSam Leffler IEEE80211_S_SCAN, 0); 206068e8e04eSSam Leffler } 206168e8e04eSSam Leffler } 2062b032f27cSSam Leffler } 2063b032f27cSSam Leffler 2064b032f27cSSam Leffler /* 2065b032f27cSSam Leffler * Start a single vap. 2066b032f27cSSam Leffler */ 2067b032f27cSSam Leffler void 2068b032f27cSSam Leffler ieee80211_init(void *arg) 2069b032f27cSSam Leffler { 2070b032f27cSSam Leffler struct ieee80211vap *vap = arg; 2071b032f27cSSam Leffler 207235f434b2SSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE | IEEE80211_MSG_DEBUG, 2073b032f27cSSam Leffler "%s\n", __func__); 2074b032f27cSSam Leffler 2075b032f27cSSam Leffler IEEE80211_LOCK(vap->iv_ic); 2076b032f27cSSam Leffler ieee80211_start_locked(vap); 2077b032f27cSSam Leffler IEEE80211_UNLOCK(vap->iv_ic); 2078b032f27cSSam Leffler } 2079b032f27cSSam Leffler 2080b032f27cSSam Leffler /* 2081b032f27cSSam Leffler * Start all runnable vap's on a device. 2082b032f27cSSam Leffler */ 2083b032f27cSSam Leffler void 2084b032f27cSSam Leffler ieee80211_start_all(struct ieee80211com *ic) 2085b032f27cSSam Leffler { 2086b032f27cSSam Leffler struct ieee80211vap *vap; 2087b032f27cSSam Leffler 2088b032f27cSSam Leffler IEEE80211_LOCK(ic); 2089b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 2090b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 2091b032f27cSSam Leffler if (IFNET_IS_UP_RUNNING(ifp)) /* NB: avoid recursion */ 2092b032f27cSSam Leffler ieee80211_start_locked(vap); 2093b032f27cSSam Leffler } 2094b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 2095b032f27cSSam Leffler } 2096b032f27cSSam Leffler 2097b032f27cSSam Leffler /* 2098b032f27cSSam Leffler * Stop a vap. We force it down using the state machine 2099b032f27cSSam Leffler * then mark it's ifnet not running. If this is the last 2100b032f27cSSam Leffler * vap running on the underlying device then we close it 2101b032f27cSSam Leffler * too to insure it will be properly initialized when the 2102b032f27cSSam Leffler * next vap is brought up. 2103b032f27cSSam Leffler */ 2104b032f27cSSam Leffler void 2105b032f27cSSam Leffler ieee80211_stop_locked(struct ieee80211vap *vap) 2106b032f27cSSam Leffler { 2107b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 2108b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 2109b032f27cSSam Leffler 2110b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 2111b032f27cSSam Leffler 2112b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE | IEEE80211_MSG_DEBUG, 2113b032f27cSSam Leffler "stop running, %d vaps running\n", ic->ic_nrunning); 2114b032f27cSSam Leffler 2115b032f27cSSam Leffler ieee80211_new_state_locked(vap, IEEE80211_S_INIT, -1); 2116b032f27cSSam Leffler if (ifp->if_drv_flags & IFF_DRV_RUNNING) { 2117b032f27cSSam Leffler ifp->if_drv_flags &= ~IFF_DRV_RUNNING; /* mark us stopped */ 21182c13efdfSAndriy Gapon ieee80211_notify_ifnet_change(vap); 21197a79cebfSGleb Smirnoff if (--ic->ic_nrunning == 0) { 2120b032f27cSSam Leffler IEEE80211_DPRINTF(vap, 2121b032f27cSSam Leffler IEEE80211_MSG_STATE | IEEE80211_MSG_DEBUG, 21227a79cebfSGleb Smirnoff "down parent %s\n", ic->ic_name); 21235efea30fSAndrew Thompson ieee80211_runtask(ic, &ic->ic_parent_task); 2124b032f27cSSam Leffler } 2125b032f27cSSam Leffler } 2126b032f27cSSam Leffler } 2127b032f27cSSam Leffler 2128b032f27cSSam Leffler void 2129b032f27cSSam Leffler ieee80211_stop(struct ieee80211vap *vap) 2130b032f27cSSam Leffler { 2131b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 2132b032f27cSSam Leffler 2133b032f27cSSam Leffler IEEE80211_LOCK(ic); 2134b032f27cSSam Leffler ieee80211_stop_locked(vap); 2135b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 2136b032f27cSSam Leffler } 2137b032f27cSSam Leffler 2138b032f27cSSam Leffler /* 2139b032f27cSSam Leffler * Stop all vap's running on a device. 2140b032f27cSSam Leffler */ 2141b032f27cSSam Leffler void 2142b032f27cSSam Leffler ieee80211_stop_all(struct ieee80211com *ic) 2143b032f27cSSam Leffler { 2144b032f27cSSam Leffler struct ieee80211vap *vap; 2145b032f27cSSam Leffler 2146b032f27cSSam Leffler IEEE80211_LOCK(ic); 2147b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 2148b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 2149b032f27cSSam Leffler if (IFNET_IS_UP_RUNNING(ifp)) /* NB: avoid recursion */ 2150b032f27cSSam Leffler ieee80211_stop_locked(vap); 2151b032f27cSSam Leffler } 2152b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 2153ae55932eSAndrew Thompson 2154ae55932eSAndrew Thompson ieee80211_waitfor_parent(ic); 215568e8e04eSSam Leffler } 215668e8e04eSSam Leffler 215768e8e04eSSam Leffler /* 21586076cbacSSam Leffler * Stop all vap's running on a device and arrange 21596076cbacSSam Leffler * for those that were running to be resumed. 21606076cbacSSam Leffler */ 21616076cbacSSam Leffler void 21626076cbacSSam Leffler ieee80211_suspend_all(struct ieee80211com *ic) 21636076cbacSSam Leffler { 21646076cbacSSam Leffler struct ieee80211vap *vap; 21656076cbacSSam Leffler 21666076cbacSSam Leffler IEEE80211_LOCK(ic); 21676076cbacSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 21686076cbacSSam Leffler struct ifnet *ifp = vap->iv_ifp; 21696076cbacSSam Leffler if (IFNET_IS_UP_RUNNING(ifp)) { /* NB: avoid recursion */ 21706076cbacSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_RESUME; 21716076cbacSSam Leffler ieee80211_stop_locked(vap); 21726076cbacSSam Leffler } 21736076cbacSSam Leffler } 21746076cbacSSam Leffler IEEE80211_UNLOCK(ic); 2175ae55932eSAndrew Thompson 2176ae55932eSAndrew Thompson ieee80211_waitfor_parent(ic); 21776076cbacSSam Leffler } 21786076cbacSSam Leffler 21796076cbacSSam Leffler /* 21806076cbacSSam Leffler * Start all vap's marked for resume. 21816076cbacSSam Leffler */ 21826076cbacSSam Leffler void 21836076cbacSSam Leffler ieee80211_resume_all(struct ieee80211com *ic) 21846076cbacSSam Leffler { 21856076cbacSSam Leffler struct ieee80211vap *vap; 21866076cbacSSam Leffler 21876076cbacSSam Leffler IEEE80211_LOCK(ic); 21886076cbacSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 21896076cbacSSam Leffler struct ifnet *ifp = vap->iv_ifp; 21906076cbacSSam Leffler if (!IFNET_IS_UP_RUNNING(ifp) && 21916076cbacSSam Leffler (vap->iv_flags_ext & IEEE80211_FEXT_RESUME)) { 21926076cbacSSam Leffler vap->iv_flags_ext &= ~IEEE80211_FEXT_RESUME; 21936076cbacSSam Leffler ieee80211_start_locked(vap); 21946076cbacSSam Leffler } 21956076cbacSSam Leffler } 21966076cbacSSam Leffler IEEE80211_UNLOCK(ic); 21976076cbacSSam Leffler } 21986076cbacSSam Leffler 21994061c639SAndriy Voskoboinyk /* 22004061c639SAndriy Voskoboinyk * Restart all vap's running on a device. 22014061c639SAndriy Voskoboinyk */ 22024061c639SAndriy Voskoboinyk void 22034061c639SAndriy Voskoboinyk ieee80211_restart_all(struct ieee80211com *ic) 22044061c639SAndriy Voskoboinyk { 22054061c639SAndriy Voskoboinyk /* 22064061c639SAndriy Voskoboinyk * NB: do not use ieee80211_runtask here, we will 22074061c639SAndriy Voskoboinyk * block & drain net80211 taskqueue. 22084061c639SAndriy Voskoboinyk */ 22094061c639SAndriy Voskoboinyk taskqueue_enqueue(taskqueue_thread, &ic->ic_restart_task); 22104061c639SAndriy Voskoboinyk } 22114061c639SAndriy Voskoboinyk 2212e701e041SSam Leffler void 2213e701e041SSam Leffler ieee80211_beacon_miss(struct ieee80211com *ic) 2214e701e041SSam Leffler { 22155efea30fSAndrew Thompson IEEE80211_LOCK(ic); 22165efea30fSAndrew Thompson if ((ic->ic_flags & IEEE80211_F_SCAN) == 0) { 22175efea30fSAndrew Thompson /* Process in a taskq, the handler may reenter the driver */ 22185efea30fSAndrew Thompson ieee80211_runtask(ic, &ic->ic_bmiss_task); 22195efea30fSAndrew Thompson } 22205efea30fSAndrew Thompson IEEE80211_UNLOCK(ic); 22215efea30fSAndrew Thompson } 22225efea30fSAndrew Thompson 22235efea30fSAndrew Thompson static void 22245efea30fSAndrew Thompson beacon_miss(void *arg, int npending) 22255efea30fSAndrew Thompson { 22265efea30fSAndrew Thompson struct ieee80211com *ic = arg; 2227b032f27cSSam Leffler struct ieee80211vap *vap; 2228e701e041SSam Leffler 222923401900SAdrian Chadd IEEE80211_LOCK(ic); 2230b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 2231e701e041SSam Leffler /* 2232d8c364fbSAndriy Voskoboinyk * We only pass events through for sta vap's in RUN+ state; 2233b032f27cSSam Leffler * may be too restrictive but for now this saves all the 2234b032f27cSSam Leffler * handlers duplicating these checks. 2235e701e041SSam Leffler */ 2236b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_STA && 2237c70761e6SSam Leffler vap->iv_state >= IEEE80211_S_RUN && 2238b032f27cSSam Leffler vap->iv_bmiss != NULL) 2239b032f27cSSam Leffler vap->iv_bmiss(vap); 2240e701e041SSam Leffler } 224123401900SAdrian Chadd IEEE80211_UNLOCK(ic); 224268e8e04eSSam Leffler } 2243e701e041SSam Leffler 22445efea30fSAndrew Thompson static void 22455efea30fSAndrew Thompson beacon_swmiss(void *arg, int npending) 22465efea30fSAndrew Thompson { 22475efea30fSAndrew Thompson struct ieee80211vap *vap = arg; 224823401900SAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 22495efea30fSAndrew Thompson 225023401900SAdrian Chadd IEEE80211_LOCK(ic); 2251d8c364fbSAndriy Voskoboinyk if (vap->iv_state >= IEEE80211_S_RUN) { 22525efea30fSAndrew Thompson /* XXX Call multiple times if npending > zero? */ 22535efea30fSAndrew Thompson vap->iv_bmiss(vap); 22545efea30fSAndrew Thompson } 225523401900SAdrian Chadd IEEE80211_UNLOCK(ic); 225623401900SAdrian Chadd } 22575efea30fSAndrew Thompson 2258e99662a6SSam Leffler /* 2259e99662a6SSam Leffler * Software beacon miss handling. Check if any beacons 2260e99662a6SSam Leffler * were received in the last period. If not post a 2261e99662a6SSam Leffler * beacon miss; otherwise reset the counter. 2262e99662a6SSam Leffler */ 2263b032f27cSSam Leffler void 2264e99662a6SSam Leffler ieee80211_swbmiss(void *arg) 2265e99662a6SSam Leffler { 2266b032f27cSSam Leffler struct ieee80211vap *vap = arg; 2267c448998dSSam Leffler struct ieee80211com *ic = vap->iv_ic; 2268e99662a6SSam Leffler 226923401900SAdrian Chadd IEEE80211_LOCK_ASSERT(ic); 227023401900SAdrian Chadd 2271d8c364fbSAndriy Voskoboinyk KASSERT(vap->iv_state >= IEEE80211_S_RUN, 2272c448998dSSam Leffler ("wrong state %d", vap->iv_state)); 2273c448998dSSam Leffler 2274c448998dSSam Leffler if (ic->ic_flags & IEEE80211_F_SCAN) { 2275c448998dSSam Leffler /* 2276c448998dSSam Leffler * If scanning just ignore and reset state. If we get a 2277c448998dSSam Leffler * bmiss after coming out of scan because we haven't had 2278c448998dSSam Leffler * time to receive a beacon then we should probe the AP 2279c448998dSSam Leffler * before posting a real bmiss (unless iv_bmiss_max has 2280c448998dSSam Leffler * been artifiically lowered). A cleaner solution might 2281c448998dSSam Leffler * be to disable the timer on scan start/end but to handle 2282c448998dSSam Leffler * case of multiple sta vap's we'd need to disable the 2283c448998dSSam Leffler * timers of all affected vap's. 2284c448998dSSam Leffler */ 2285c448998dSSam Leffler vap->iv_swbmiss_count = 0; 2286c448998dSSam Leffler } else if (vap->iv_swbmiss_count == 0) { 2287b032f27cSSam Leffler if (vap->iv_bmiss != NULL) 22885efea30fSAndrew Thompson ieee80211_runtask(ic, &vap->iv_swbmiss_task); 2289e99662a6SSam Leffler } else 2290b032f27cSSam Leffler vap->iv_swbmiss_count = 0; 2291b032f27cSSam Leffler callout_reset(&vap->iv_swbmiss, vap->iv_swbmiss_period, 2292b032f27cSSam Leffler ieee80211_swbmiss, vap); 22937edb8cf9SSam Leffler } 22947edb8cf9SSam Leffler 229568e8e04eSSam Leffler /* 2296b032f27cSSam Leffler * Start an 802.11h channel switch. We record the parameters, 2297b032f27cSSam Leffler * mark the operation pending, notify each vap through the 2298b032f27cSSam Leffler * beacon update mechanism so it can update the beacon frame 2299b032f27cSSam Leffler * contents, and then switch vap's to CSA state to block outbound 2300b032f27cSSam Leffler * traffic. Devices that handle CSA directly can use the state 2301b032f27cSSam Leffler * switch to do the right thing so long as they call 2302b032f27cSSam Leffler * ieee80211_csa_completeswitch when it's time to complete the 2303b032f27cSSam Leffler * channel change. Devices that depend on the net80211 layer can 2304b032f27cSSam Leffler * use ieee80211_beacon_update to handle the countdown and the 2305b032f27cSSam Leffler * channel switch. 2306b032f27cSSam Leffler */ 2307b032f27cSSam Leffler void 2308b032f27cSSam Leffler ieee80211_csa_startswitch(struct ieee80211com *ic, 2309b032f27cSSam Leffler struct ieee80211_channel *c, int mode, int count) 2310b032f27cSSam Leffler { 2311b032f27cSSam Leffler struct ieee80211vap *vap; 2312b032f27cSSam Leffler 2313b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 2314b032f27cSSam Leffler 2315b032f27cSSam Leffler ic->ic_csa_newchan = c; 2316c70761e6SSam Leffler ic->ic_csa_mode = mode; 2317b032f27cSSam Leffler ic->ic_csa_count = count; 2318b032f27cSSam Leffler ic->ic_flags |= IEEE80211_F_CSAPENDING; 2319b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 2320b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_HOSTAP || 232159aa14a9SRui Paulo vap->iv_opmode == IEEE80211_M_IBSS || 232259aa14a9SRui Paulo vap->iv_opmode == IEEE80211_M_MBSS) 2323b032f27cSSam Leffler ieee80211_beacon_notify(vap, IEEE80211_BEACON_CSA); 2324b032f27cSSam Leffler /* switch to CSA state to block outbound traffic */ 2325b032f27cSSam Leffler if (vap->iv_state == IEEE80211_S_RUN) 2326b032f27cSSam Leffler ieee80211_new_state_locked(vap, IEEE80211_S_CSA, 0); 2327b032f27cSSam Leffler } 2328b032f27cSSam Leffler ieee80211_notify_csa(ic, c, mode, count); 2329b032f27cSSam Leffler } 2330b032f27cSSam Leffler 2331886bbec1SAdrian Chadd /* 2332886bbec1SAdrian Chadd * Complete the channel switch by transitioning all CSA VAPs to RUN. 2333886bbec1SAdrian Chadd * This is called by both the completion and cancellation functions 2334886bbec1SAdrian Chadd * so each VAP is placed back in the RUN state and can thus transmit. 2335886bbec1SAdrian Chadd */ 2336c70761e6SSam Leffler static void 2337c70761e6SSam Leffler csa_completeswitch(struct ieee80211com *ic) 2338c70761e6SSam Leffler { 2339c70761e6SSam Leffler struct ieee80211vap *vap; 2340c70761e6SSam Leffler 2341c70761e6SSam Leffler ic->ic_csa_newchan = NULL; 2342c70761e6SSam Leffler ic->ic_flags &= ~IEEE80211_F_CSAPENDING; 2343c70761e6SSam Leffler 2344c70761e6SSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 2345c70761e6SSam Leffler if (vap->iv_state == IEEE80211_S_CSA) 2346c70761e6SSam Leffler ieee80211_new_state_locked(vap, IEEE80211_S_RUN, 0); 2347c70761e6SSam Leffler } 2348c70761e6SSam Leffler 2349b032f27cSSam Leffler /* 2350b032f27cSSam Leffler * Complete an 802.11h channel switch started by ieee80211_csa_startswitch. 2351b032f27cSSam Leffler * We clear state and move all vap's in CSA state to RUN state 2352b032f27cSSam Leffler * so they can again transmit. 2353886bbec1SAdrian Chadd * 2354886bbec1SAdrian Chadd * Although this may not be completely correct, update the BSS channel 2355886bbec1SAdrian Chadd * for each VAP to the newly configured channel. The setcurchan sets 2356886bbec1SAdrian Chadd * the current operating channel for the interface (so the radio does 2357886bbec1SAdrian Chadd * switch over) but the VAP BSS isn't updated, leading to incorrectly 2358886bbec1SAdrian Chadd * reported information via ioctl. 2359b032f27cSSam Leffler */ 2360b032f27cSSam Leffler void 2361b032f27cSSam Leffler ieee80211_csa_completeswitch(struct ieee80211com *ic) 2362b032f27cSSam Leffler { 23636f16ec31SAdrian Chadd struct ieee80211vap *vap; 23646f16ec31SAdrian Chadd 2365b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 2366b032f27cSSam Leffler 2367b032f27cSSam Leffler KASSERT(ic->ic_flags & IEEE80211_F_CSAPENDING, ("csa not pending")); 2368b032f27cSSam Leffler 2369b032f27cSSam Leffler ieee80211_setcurchan(ic, ic->ic_csa_newchan); 2370886bbec1SAdrian Chadd TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 2371886bbec1SAdrian Chadd if (vap->iv_state == IEEE80211_S_CSA) 2372886bbec1SAdrian Chadd vap->iv_bss->ni_chan = ic->ic_curchan; 2373886bbec1SAdrian Chadd 2374c70761e6SSam Leffler csa_completeswitch(ic); 2375c70761e6SSam Leffler } 2376b032f27cSSam Leffler 2377c70761e6SSam Leffler /* 2378c70761e6SSam Leffler * Cancel an 802.11h channel switch started by ieee80211_csa_startswitch. 2379c70761e6SSam Leffler * We clear state and move all vap's in CSA state to RUN state 2380c70761e6SSam Leffler * so they can again transmit. 2381c70761e6SSam Leffler */ 2382c70761e6SSam Leffler void 2383c70761e6SSam Leffler ieee80211_csa_cancelswitch(struct ieee80211com *ic) 2384c70761e6SSam Leffler { 2385c70761e6SSam Leffler IEEE80211_LOCK_ASSERT(ic); 2386c70761e6SSam Leffler 2387c70761e6SSam Leffler csa_completeswitch(ic); 2388b032f27cSSam Leffler } 2389b032f27cSSam Leffler 2390b032f27cSSam Leffler /* 2391b032f27cSSam Leffler * Complete a DFS CAC started by ieee80211_dfs_cac_start. 2392b032f27cSSam Leffler * We clear state and move all vap's in CAC state to RUN state. 2393b032f27cSSam Leffler */ 2394b032f27cSSam Leffler void 2395b032f27cSSam Leffler ieee80211_cac_completeswitch(struct ieee80211vap *vap0) 2396b032f27cSSam Leffler { 2397b032f27cSSam Leffler struct ieee80211com *ic = vap0->iv_ic; 2398b032f27cSSam Leffler struct ieee80211vap *vap; 2399b032f27cSSam Leffler 2400b032f27cSSam Leffler IEEE80211_LOCK(ic); 2401b032f27cSSam Leffler /* 2402b032f27cSSam Leffler * Complete CAC state change for lead vap first; then 2403b032f27cSSam Leffler * clock all the other vap's waiting. 2404b032f27cSSam Leffler */ 2405b032f27cSSam Leffler KASSERT(vap0->iv_state == IEEE80211_S_CAC, 2406b032f27cSSam Leffler ("wrong state %d", vap0->iv_state)); 2407b032f27cSSam Leffler ieee80211_new_state_locked(vap0, IEEE80211_S_RUN, 0); 2408b032f27cSSam Leffler 2409b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 2410e0625c4cSAndriy Voskoboinyk if (vap->iv_state == IEEE80211_S_CAC && vap != vap0) 2411b032f27cSSam Leffler ieee80211_new_state_locked(vap, IEEE80211_S_RUN, 0); 2412b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 2413b032f27cSSam Leffler } 2414b032f27cSSam Leffler 2415b032f27cSSam Leffler /* 2416b032f27cSSam Leffler * Force all vap's other than the specified vap to the INIT state 2417b032f27cSSam Leffler * and mark them as waiting for a scan to complete. These vaps 2418b032f27cSSam Leffler * will be brought up when the scan completes and the scanning vap 2419b032f27cSSam Leffler * reaches RUN state by wakeupwaiting. 242068e8e04eSSam Leffler */ 242168e8e04eSSam Leffler static void 2422b032f27cSSam Leffler markwaiting(struct ieee80211vap *vap0) 242368e8e04eSSam Leffler { 2424b032f27cSSam Leffler struct ieee80211com *ic = vap0->iv_ic; 2425b032f27cSSam Leffler struct ieee80211vap *vap; 2426b032f27cSSam Leffler 2427b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 2428b032f27cSSam Leffler 24295efea30fSAndrew Thompson /* 24305efea30fSAndrew Thompson * A vap list entry can not disappear since we are running on the 24315efea30fSAndrew Thompson * taskqueue and a vap destroy will queue and drain another state 24325efea30fSAndrew Thompson * change task. 24335efea30fSAndrew Thompson */ 2434b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 2435b032f27cSSam Leffler if (vap == vap0) 2436b032f27cSSam Leffler continue; 2437b032f27cSSam Leffler if (vap->iv_state != IEEE80211_S_INIT) { 24385efea30fSAndrew Thompson /* NB: iv_newstate may drop the lock */ 2439b032f27cSSam Leffler vap->iv_newstate(vap, IEEE80211_S_INIT, 0); 2440dcc56af0SAdrian Chadd IEEE80211_LOCK_ASSERT(ic); 2441b032f27cSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_SCANWAIT; 2442b032f27cSSam Leffler } 244368e8e04eSSam Leffler } 244468e8e04eSSam Leffler } 244568e8e04eSSam Leffler 2446b032f27cSSam Leffler /* 2447b032f27cSSam Leffler * Wakeup all vap's waiting for a scan to complete. This is the 2448b032f27cSSam Leffler * companion to markwaiting (above) and is used to coordinate 2449b032f27cSSam Leffler * multiple vaps scanning. 24505efea30fSAndrew Thompson * This is called from the state taskqueue. 2451b032f27cSSam Leffler */ 2452b032f27cSSam Leffler static void 2453b032f27cSSam Leffler wakeupwaiting(struct ieee80211vap *vap0) 2454b032f27cSSam Leffler { 2455b032f27cSSam Leffler struct ieee80211com *ic = vap0->iv_ic; 2456b032f27cSSam Leffler struct ieee80211vap *vap; 2457b032f27cSSam Leffler 2458b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 2459b032f27cSSam Leffler 24605efea30fSAndrew Thompson /* 24615efea30fSAndrew Thompson * A vap list entry can not disappear since we are running on the 24625efea30fSAndrew Thompson * taskqueue and a vap destroy will queue and drain another state 24635efea30fSAndrew Thompson * change task. 24645efea30fSAndrew Thompson */ 2465b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) { 2466b032f27cSSam Leffler if (vap == vap0) 2467b032f27cSSam Leffler continue; 2468b032f27cSSam Leffler if (vap->iv_flags_ext & IEEE80211_FEXT_SCANWAIT) { 2469b032f27cSSam Leffler vap->iv_flags_ext &= ~IEEE80211_FEXT_SCANWAIT; 2470b032f27cSSam Leffler /* NB: sta's cannot go INIT->RUN */ 24715efea30fSAndrew Thompson /* NB: iv_newstate may drop the lock */ 2472b032f27cSSam Leffler vap->iv_newstate(vap, 2473b032f27cSSam Leffler vap->iv_opmode == IEEE80211_M_STA ? 2474b032f27cSSam Leffler IEEE80211_S_SCAN : IEEE80211_S_RUN, 0); 2475dcc56af0SAdrian Chadd IEEE80211_LOCK_ASSERT(ic); 2476b032f27cSSam Leffler } 2477b032f27cSSam Leffler } 2478b032f27cSSam Leffler } 2479b032f27cSSam Leffler 2480b032f27cSSam Leffler /* 2481b032f27cSSam Leffler * Handle post state change work common to all operating modes. 2482b032f27cSSam Leffler */ 2483b032f27cSSam Leffler static void 24845efea30fSAndrew Thompson ieee80211_newstate_cb(void *xvap, int npending) 2485b032f27cSSam Leffler { 24865efea30fSAndrew Thompson struct ieee80211vap *vap = xvap; 2487b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 24885efea30fSAndrew Thompson enum ieee80211_state nstate, ostate; 24895efea30fSAndrew Thompson int arg, rc; 2490b032f27cSSam Leffler 24915efea30fSAndrew Thompson IEEE80211_LOCK(ic); 24925efea30fSAndrew Thompson nstate = vap->iv_nstate; 24935efea30fSAndrew Thompson arg = vap->iv_nstate_arg; 2494b032f27cSSam Leffler 24955efea30fSAndrew Thompson if (vap->iv_flags_ext & IEEE80211_FEXT_REINIT) { 24965efea30fSAndrew Thompson /* 24975efea30fSAndrew Thompson * We have been requested to drop back to the INIT before 24985efea30fSAndrew Thompson * proceeding to the new state. 24995efea30fSAndrew Thompson */ 2500d13806f4SAndriy Voskoboinyk /* Deny any state changes while we are here. */ 2501d13806f4SAndriy Voskoboinyk vap->iv_nstate = IEEE80211_S_INIT; 2502b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 25035efea30fSAndrew Thompson "%s: %s -> %s arg %d\n", __func__, 25045efea30fSAndrew Thompson ieee80211_state_name[vap->iv_state], 2505d13806f4SAndriy Voskoboinyk ieee80211_state_name[vap->iv_nstate], arg); 2506d13806f4SAndriy Voskoboinyk vap->iv_newstate(vap, vap->iv_nstate, 0); 2507dcc56af0SAdrian Chadd IEEE80211_LOCK_ASSERT(ic); 2508d13806f4SAndriy Voskoboinyk vap->iv_flags_ext &= ~(IEEE80211_FEXT_REINIT | 2509d13806f4SAndriy Voskoboinyk IEEE80211_FEXT_STATEWAIT); 2510d13806f4SAndriy Voskoboinyk /* enqueue new state transition after cancel_scan() task */ 2511d13806f4SAndriy Voskoboinyk ieee80211_new_state_locked(vap, nstate, arg); 2512d13806f4SAndriy Voskoboinyk goto done; 25135efea30fSAndrew Thompson } 25145efea30fSAndrew Thompson 25155efea30fSAndrew Thompson ostate = vap->iv_state; 25165efea30fSAndrew Thompson if (nstate == IEEE80211_S_SCAN && ostate != IEEE80211_S_INIT) { 25175efea30fSAndrew Thompson /* 25185efea30fSAndrew Thompson * SCAN was forced; e.g. on beacon miss. Force other running 25195efea30fSAndrew Thompson * vap's to INIT state and mark them as waiting for the scan to 25205efea30fSAndrew Thompson * complete. This insures they don't interfere with our 25215efea30fSAndrew Thompson * scanning. Since we are single threaded the vaps can not 25225efea30fSAndrew Thompson * transition again while we are executing. 25235efea30fSAndrew Thompson * 25245efea30fSAndrew Thompson * XXX not always right, assumes ap follows sta 25255efea30fSAndrew Thompson */ 25265efea30fSAndrew Thompson markwaiting(vap); 25275efea30fSAndrew Thompson } 25285efea30fSAndrew Thompson IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 25295efea30fSAndrew Thompson "%s: %s -> %s arg %d\n", __func__, 25305efea30fSAndrew Thompson ieee80211_state_name[ostate], ieee80211_state_name[nstate], arg); 25315efea30fSAndrew Thompson 25325efea30fSAndrew Thompson rc = vap->iv_newstate(vap, nstate, arg); 2533dcc56af0SAdrian Chadd IEEE80211_LOCK_ASSERT(ic); 25345efea30fSAndrew Thompson vap->iv_flags_ext &= ~IEEE80211_FEXT_STATEWAIT; 25355efea30fSAndrew Thompson if (rc != 0) { 25365efea30fSAndrew Thompson /* State transition failed */ 25375efea30fSAndrew Thompson KASSERT(rc != EINPROGRESS, ("iv_newstate was deferred")); 25385efea30fSAndrew Thompson KASSERT(nstate != IEEE80211_S_INIT, 25395efea30fSAndrew Thompson ("INIT state change failed")); 25405efea30fSAndrew Thompson IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 25415efea30fSAndrew Thompson "%s: %s returned error %d\n", __func__, 25425efea30fSAndrew Thompson ieee80211_state_name[nstate], rc); 25435efea30fSAndrew Thompson goto done; 25445efea30fSAndrew Thompson } 25455efea30fSAndrew Thompson 25465efea30fSAndrew Thompson /* No actual transition, skip post processing */ 25475efea30fSAndrew Thompson if (ostate == nstate) 25485efea30fSAndrew Thompson goto done; 2549b032f27cSSam Leffler 2550b032f27cSSam Leffler if (nstate == IEEE80211_S_RUN) { 2551b032f27cSSam Leffler /* 2552b032f27cSSam Leffler * OACTIVE may be set on the vap if the upper layer 2553b032f27cSSam Leffler * tried to transmit (e.g. IPv6 NDP) before we reach 2554b032f27cSSam Leffler * RUN state. Clear it and restart xmit. 2555b032f27cSSam Leffler * 2556b032f27cSSam Leffler * Note this can also happen as a result of SLEEP->RUN 2557b032f27cSSam Leffler * (i.e. coming out of power save mode). 2558b032f27cSSam Leffler */ 2559b032f27cSSam Leffler vap->iv_ifp->if_drv_flags &= ~IFF_DRV_OACTIVE; 2560a7f31a36SAdrian Chadd 2561a7f31a36SAdrian Chadd /* 2562e7495198SAdrian Chadd * XXX TODO Kick-start a VAP queue - this should be a method! 2563a7f31a36SAdrian Chadd */ 2564b032f27cSSam Leffler 2565b032f27cSSam Leffler /* bring up any vaps waiting on us */ 2566b032f27cSSam Leffler wakeupwaiting(vap); 2567b032f27cSSam Leffler } else if (nstate == IEEE80211_S_INIT) { 2568b032f27cSSam Leffler /* 2569b032f27cSSam Leffler * Flush the scan cache if we did the last scan (XXX?) 2570b032f27cSSam Leffler * and flush any frames on send queues from this vap. 2571b032f27cSSam Leffler * Note the mgt q is used only for legacy drivers and 2572b032f27cSSam Leffler * will go away shortly. 2573b032f27cSSam Leffler */ 2574b032f27cSSam Leffler ieee80211_scan_flush(vap); 2575b032f27cSSam Leffler 2576e7495198SAdrian Chadd /* 2577e7495198SAdrian Chadd * XXX TODO: ic/vap queue flush 2578e7495198SAdrian Chadd */ 2579b032f27cSSam Leffler } 25805efea30fSAndrew Thompson done: 25815efea30fSAndrew Thompson IEEE80211_UNLOCK(ic); 2582b032f27cSSam Leffler } 2583b032f27cSSam Leffler 2584b032f27cSSam Leffler /* 2585b032f27cSSam Leffler * Public interface for initiating a state machine change. 2586b032f27cSSam Leffler * This routine single-threads the request and coordinates 2587b032f27cSSam Leffler * the scheduling of multiple vaps for the purpose of selecting 2588b032f27cSSam Leffler * an operating channel. Specifically the following scenarios 2589b032f27cSSam Leffler * are handled: 2590b032f27cSSam Leffler * o only one vap can be selecting a channel so on transition to 2591b032f27cSSam Leffler * SCAN state if another vap is already scanning then 2592b032f27cSSam Leffler * mark the caller for later processing and return without 2593b032f27cSSam Leffler * doing anything (XXX? expectations by caller of synchronous operation) 2594b032f27cSSam Leffler * o only one vap can be doing CAC of a channel so on transition to 2595b032f27cSSam Leffler * CAC state if another vap is already scanning for radar then 2596b032f27cSSam Leffler * mark the caller for later processing and return without 2597b032f27cSSam Leffler * doing anything (XXX? expectations by caller of synchronous operation) 2598b032f27cSSam Leffler * o if another vap is already running when a request is made 2599b032f27cSSam Leffler * to SCAN then an operating channel has been chosen; bypass 2600b032f27cSSam Leffler * the scan and just join the channel 2601b032f27cSSam Leffler * 2602b032f27cSSam Leffler * Note that the state change call is done through the iv_newstate 2603b032f27cSSam Leffler * method pointer so any driver routine gets invoked. The driver 2604b032f27cSSam Leffler * will normally call back into operating mode-specific 2605b032f27cSSam Leffler * ieee80211_newstate routines (below) unless it needs to completely 2606b032f27cSSam Leffler * bypass the state machine (e.g. because the firmware has it's 2607b032f27cSSam Leffler * own idea how things should work). Bypassing the net80211 layer 2608b032f27cSSam Leffler * is usually a mistake and indicates lack of proper integration 2609b032f27cSSam Leffler * with the net80211 layer. 2610b032f27cSSam Leffler */ 2611e94527beSAdrian Chadd int 2612b032f27cSSam Leffler ieee80211_new_state_locked(struct ieee80211vap *vap, 2613b032f27cSSam Leffler enum ieee80211_state nstate, int arg) 26148a1b9b6aSSam Leffler { 2615b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 2616b032f27cSSam Leffler struct ieee80211vap *vp; 2617a11c9a5cSSam Leffler enum ieee80211_state ostate; 26185efea30fSAndrew Thompson int nrunning, nscanning; 26191a1e1d21SSam Leffler 2620b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 2621b032f27cSSam Leffler 26225efea30fSAndrew Thompson if (vap->iv_flags_ext & IEEE80211_FEXT_STATEWAIT) { 2623d13806f4SAndriy Voskoboinyk if (vap->iv_nstate == IEEE80211_S_INIT || 2624d13806f4SAndriy Voskoboinyk ((vap->iv_state == IEEE80211_S_INIT || 2625d13806f4SAndriy Voskoboinyk (vap->iv_flags_ext & IEEE80211_FEXT_REINIT)) && 2626d13806f4SAndriy Voskoboinyk vap->iv_nstate == IEEE80211_S_SCAN && 2627d13806f4SAndriy Voskoboinyk nstate > IEEE80211_S_SCAN)) { 26285efea30fSAndrew Thompson /* 2629d13806f4SAndriy Voskoboinyk * XXX The vap is being stopped/started, 2630d13806f4SAndriy Voskoboinyk * do not allow any other state changes 2631d13806f4SAndriy Voskoboinyk * until this is completed. 26325efea30fSAndrew Thompson */ 2633d13806f4SAndriy Voskoboinyk IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 2634d13806f4SAndriy Voskoboinyk "%s: %s -> %s (%s) transition discarded\n", 2635d13806f4SAndriy Voskoboinyk __func__, 2636d13806f4SAndriy Voskoboinyk ieee80211_state_name[vap->iv_state], 2637d13806f4SAndriy Voskoboinyk ieee80211_state_name[nstate], 2638d13806f4SAndriy Voskoboinyk ieee80211_state_name[vap->iv_nstate]); 26395efea30fSAndrew Thompson return -1; 26408ee6f90aSAndrew Thompson } else if (vap->iv_state != vap->iv_nstate) { 26415efea30fSAndrew Thompson #if 0 26425efea30fSAndrew Thompson /* Warn if the previous state hasn't completed. */ 26435efea30fSAndrew Thompson IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 26445efea30fSAndrew Thompson "%s: pending %s -> %s transition lost\n", __func__, 26455efea30fSAndrew Thompson ieee80211_state_name[vap->iv_state], 26465efea30fSAndrew Thompson ieee80211_state_name[vap->iv_nstate]); 26475efea30fSAndrew Thompson #else 26485efea30fSAndrew Thompson /* XXX temporarily enable to identify issues */ 26498ee6f90aSAndrew Thompson if_printf(vap->iv_ifp, 26508ee6f90aSAndrew Thompson "%s: pending %s -> %s transition lost\n", 26515efea30fSAndrew Thompson __func__, ieee80211_state_name[vap->iv_state], 26525efea30fSAndrew Thompson ieee80211_state_name[vap->iv_nstate]); 26535efea30fSAndrew Thompson #endif 26545efea30fSAndrew Thompson } 26558ee6f90aSAndrew Thompson } 26565efea30fSAndrew Thompson 2657b032f27cSSam Leffler nrunning = nscanning = 0; 2658b032f27cSSam Leffler /* XXX can track this state instead of calculating */ 2659b032f27cSSam Leffler TAILQ_FOREACH(vp, &ic->ic_vaps, iv_next) { 2660b032f27cSSam Leffler if (vp != vap) { 2661b032f27cSSam Leffler if (vp->iv_state >= IEEE80211_S_RUN) 2662b032f27cSSam Leffler nrunning++; 2663b032f27cSSam Leffler /* XXX doesn't handle bg scan */ 2664b032f27cSSam Leffler /* NB: CAC+AUTH+ASSOC treated like SCAN */ 2665b032f27cSSam Leffler else if (vp->iv_state > IEEE80211_S_INIT) 2666b032f27cSSam Leffler nscanning++; 2667b032f27cSSam Leffler } 2668b032f27cSSam Leffler } 2669b032f27cSSam Leffler ostate = vap->iv_state; 2670b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 267104efa18fSBjoern A. Zeeb "%s: %s -> %s (arg %d) (nrunning %d nscanning %d)\n", __func__, 267204efa18fSBjoern A. Zeeb ieee80211_state_name[ostate], ieee80211_state_name[nstate], arg, 2673b032f27cSSam Leffler nrunning, nscanning); 26741a1e1d21SSam Leffler switch (nstate) { 26751a1e1d21SSam Leffler case IEEE80211_S_SCAN: 2676b032f27cSSam Leffler if (ostate == IEEE80211_S_INIT) { 26771a1e1d21SSam Leffler /* 2678b032f27cSSam Leffler * INIT -> SCAN happens on initial bringup. 26791a1e1d21SSam Leffler */ 2680b032f27cSSam Leffler KASSERT(!(nscanning && nrunning), 2681b032f27cSSam Leffler ("%d scanning and %d running", nscanning, nrunning)); 2682b032f27cSSam Leffler if (nscanning) { 268368e8e04eSSam Leffler /* 2684b032f27cSSam Leffler * Someone is scanning, defer our state 2685b032f27cSSam Leffler * change until the work has completed. 268668e8e04eSSam Leffler */ 2687b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 2688b032f27cSSam Leffler "%s: defer %s -> %s\n", 2689b032f27cSSam Leffler __func__, ieee80211_state_name[ostate], 2690b032f27cSSam Leffler ieee80211_state_name[nstate]); 2691b032f27cSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_SCANWAIT; 26925efea30fSAndrew Thompson return 0; 269368e8e04eSSam Leffler } 2694b032f27cSSam Leffler if (nrunning) { 269568e8e04eSSam Leffler /* 2696b032f27cSSam Leffler * Someone is operating; just join the channel 2697b032f27cSSam Leffler * they have chosen. 269868e8e04eSSam Leffler */ 2699b032f27cSSam Leffler /* XXX kill arg? */ 2700b032f27cSSam Leffler /* XXX check each opmode, adhoc? */ 2701b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_STA) 2702b032f27cSSam Leffler nstate = IEEE80211_S_SCAN; 27031a1e1d21SSam Leffler else 2704b032f27cSSam Leffler nstate = IEEE80211_S_RUN; 2705b032f27cSSam Leffler #ifdef IEEE80211_DEBUG 2706b032f27cSSam Leffler if (nstate != IEEE80211_S_SCAN) { 2707b032f27cSSam Leffler IEEE80211_DPRINTF(vap, 2708b032f27cSSam Leffler IEEE80211_MSG_STATE, 2709b032f27cSSam Leffler "%s: override, now %s -> %s\n", 2710b032f27cSSam Leffler __func__, 2711b032f27cSSam Leffler ieee80211_state_name[ostate], 2712b032f27cSSam Leffler ieee80211_state_name[nstate]); 27131a1e1d21SSam Leffler } 27148a1b9b6aSSam Leffler #endif 271568e8e04eSSam Leffler } 2716b032f27cSSam Leffler } 27171a1e1d21SSam Leffler break; 2718b032f27cSSam Leffler case IEEE80211_S_RUN: 2719b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_WDS && 2720b032f27cSSam Leffler (vap->iv_flags_ext & IEEE80211_FEXT_WDSLEGACY) && 2721b032f27cSSam Leffler nscanning) { 2722b032f27cSSam Leffler /* 2723b032f27cSSam Leffler * Legacy WDS with someone else scanning; don't 2724b032f27cSSam Leffler * go online until that completes as we should 2725b032f27cSSam Leffler * follow the other vap to the channel they choose. 2726b032f27cSSam Leffler */ 2727b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 2728b032f27cSSam Leffler "%s: defer %s -> %s (legacy WDS)\n", __func__, 2729b032f27cSSam Leffler ieee80211_state_name[ostate], 2730b032f27cSSam Leffler ieee80211_state_name[nstate]); 2731b032f27cSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_SCANWAIT; 27325efea30fSAndrew Thompson return 0; 2733b032f27cSSam Leffler } 2734b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_HOSTAP && 2735b032f27cSSam Leffler IEEE80211_IS_CHAN_DFS(ic->ic_bsschan) && 2736b032f27cSSam Leffler (vap->iv_flags_ext & IEEE80211_FEXT_DFS) && 2737b032f27cSSam Leffler !IEEE80211_IS_CHAN_CACDONE(ic->ic_bsschan)) { 2738b032f27cSSam Leffler /* 2739b032f27cSSam Leffler * This is a DFS channel, transition to CAC state 2740b032f27cSSam Leffler * instead of RUN. This allows us to initiate 2741b032f27cSSam Leffler * Channel Availability Check (CAC) as specified 2742b032f27cSSam Leffler * by 11h/DFS. 2743b032f27cSSam Leffler */ 2744b032f27cSSam Leffler nstate = IEEE80211_S_CAC; 2745b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 2746b032f27cSSam Leffler "%s: override %s -> %s (DFS)\n", __func__, 2747b032f27cSSam Leffler ieee80211_state_name[ostate], 2748b032f27cSSam Leffler ieee80211_state_name[nstate]); 2749b032f27cSSam Leffler } 2750b032f27cSSam Leffler break; 2751b032f27cSSam Leffler case IEEE80211_S_INIT: 2752b016f58cSAndrew Thompson /* cancel any scan in progress */ 2753b016f58cSAndrew Thompson ieee80211_cancel_scan(vap); 2754b032f27cSSam Leffler if (ostate == IEEE80211_S_INIT ) { 2755b032f27cSSam Leffler /* XXX don't believe this */ 2756b032f27cSSam Leffler /* INIT -> INIT. nothing to do */ 2757b032f27cSSam Leffler vap->iv_flags_ext &= ~IEEE80211_FEXT_SCANWAIT; 2758b032f27cSSam Leffler } 2759b032f27cSSam Leffler /* fall thru... */ 276014fb6b8fSSam Leffler default: 276114fb6b8fSSam Leffler break; 27621a1e1d21SSam Leffler } 27635efea30fSAndrew Thompson /* defer the state change to a thread */ 27645efea30fSAndrew Thompson vap->iv_nstate = nstate; 27655efea30fSAndrew Thompson vap->iv_nstate_arg = arg; 27665efea30fSAndrew Thompson vap->iv_flags_ext |= IEEE80211_FEXT_STATEWAIT; 27675efea30fSAndrew Thompson ieee80211_runtask(ic, &vap->iv_nstate_task); 27685efea30fSAndrew Thompson return EINPROGRESS; 27698a1b9b6aSSam Leffler } 2770b032f27cSSam Leffler 2771b032f27cSSam Leffler int 2772b032f27cSSam Leffler ieee80211_new_state(struct ieee80211vap *vap, 2773b032f27cSSam Leffler enum ieee80211_state nstate, int arg) 2774b032f27cSSam Leffler { 2775b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 2776b032f27cSSam Leffler int rc; 2777b032f27cSSam Leffler 2778b032f27cSSam Leffler IEEE80211_LOCK(ic); 2779b032f27cSSam Leffler rc = ieee80211_new_state_locked(vap, nstate, arg); 2780b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 2781b032f27cSSam Leffler return rc; 27821a1e1d21SSam Leffler } 2783