11a1e1d21SSam Leffler /*- 2fe267a55SPedro F. Giffuni * SPDX-License-Identifier: BSD-2-Clause-FreeBSD 3fe267a55SPedro F. Giffuni * 47535e66aSSam Leffler * Copyright (c) 2001 Atsushi Onoe 510ad9a77SSam Leffler * Copyright (c) 2002-2009 Sam Leffler, Errno Consulting 61a1e1d21SSam Leffler * All rights reserved. 71a1e1d21SSam Leffler * 81a1e1d21SSam Leffler * Redistribution and use in source and binary forms, with or without 91a1e1d21SSam Leffler * modification, are permitted provided that the following conditions 101a1e1d21SSam Leffler * are met: 111a1e1d21SSam Leffler * 1. Redistributions of source code must retain the above copyright 127535e66aSSam Leffler * notice, this list of conditions and the following disclaimer. 137535e66aSSam Leffler * 2. Redistributions in binary form must reproduce the above copyright 147535e66aSSam Leffler * notice, this list of conditions and the following disclaimer in the 157535e66aSSam Leffler * documentation and/or other materials provided with the distribution. 161a1e1d21SSam Leffler * 177535e66aSSam Leffler * THIS SOFTWARE IS PROVIDED BY THE AUTHOR ``AS IS'' AND ANY EXPRESS OR 187535e66aSSam Leffler * IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE IMPLIED WARRANTIES 197535e66aSSam Leffler * OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE ARE DISCLAIMED. 207535e66aSSam Leffler * IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR ANY DIRECT, INDIRECT, 217535e66aSSam Leffler * INCIDENTAL, SPECIAL, EXEMPLARY, OR CONSEQUENTIAL DAMAGES (INCLUDING, BUT 227535e66aSSam Leffler * NOT LIMITED TO, PROCUREMENT OF SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, 237535e66aSSam Leffler * DATA, OR PROFITS; OR BUSINESS INTERRUPTION) HOWEVER CAUSED AND ON ANY 247535e66aSSam Leffler * THEORY OF LIABILITY, WHETHER IN CONTRACT, STRICT LIABILITY, OR TORT 257535e66aSSam Leffler * (INCLUDING NEGLIGENCE OR OTHERWISE) ARISING IN ANY WAY OUT OF THE USE OF 267535e66aSSam Leffler * THIS SOFTWARE, EVEN IF ADVISED OF THE POSSIBILITY OF SUCH DAMAGE. 271a1e1d21SSam Leffler */ 281a1e1d21SSam Leffler 291a1e1d21SSam Leffler #include <sys/cdefs.h> 301a1e1d21SSam Leffler __FBSDID("$FreeBSD$"); 311a1e1d21SSam Leffler 321a1e1d21SSam Leffler /* 331a1e1d21SSam Leffler * IEEE 802.11 generic handler 341a1e1d21SSam Leffler */ 35b032f27cSSam Leffler #include "opt_wlan.h" 361a1e1d21SSam Leffler 371a1e1d21SSam Leffler #include <sys/param.h> 381a1e1d21SSam Leffler #include <sys/systm.h> 391a1e1d21SSam Leffler #include <sys/kernel.h> 408ec07310SGleb Smirnoff #include <sys/malloc.h> 418a1b9b6aSSam Leffler #include <sys/socket.h> 427a79cebfSGleb Smirnoff #include <sys/sbuf.h> 431a1e1d21SSam Leffler 44c8f5794eSGleb Smirnoff #include <machine/stdarg.h> 45c8f5794eSGleb Smirnoff 461a1e1d21SSam Leffler #include <net/if.h> 4776039bc8SGleb Smirnoff #include <net/if_var.h> 48b032f27cSSam Leffler #include <net/if_dl.h> 491a1e1d21SSam Leffler #include <net/if_media.h> 50b032f27cSSam Leffler #include <net/if_types.h> 511a1e1d21SSam Leffler #include <net/ethernet.h> 521a1e1d21SSam Leffler 531a1e1d21SSam Leffler #include <net80211/ieee80211_var.h> 54b032f27cSSam Leffler #include <net80211/ieee80211_regdomain.h> 55616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 56616190d0SSam Leffler #include <net80211/ieee80211_superg.h> 57616190d0SSam Leffler #endif 58b6108616SRui Paulo #include <net80211/ieee80211_ratectl.h> 5967f4aa38SAdrian Chadd #include <net80211/ieee80211_vht.h> 601a1e1d21SSam Leffler 611a1e1d21SSam Leffler #include <net/bpf.h> 621a1e1d21SSam Leffler 63bb77492fSSam Leffler const char *ieee80211_phymode_name[IEEE80211_MODE_MAX] = { 64bb77492fSSam Leffler [IEEE80211_MODE_AUTO] = "auto", 65bb77492fSSam Leffler [IEEE80211_MODE_11A] = "11a", 66bb77492fSSam Leffler [IEEE80211_MODE_11B] = "11b", 67bb77492fSSam Leffler [IEEE80211_MODE_11G] = "11g", 68bb77492fSSam Leffler [IEEE80211_MODE_FH] = "FH", 69bb77492fSSam Leffler [IEEE80211_MODE_TURBO_A] = "turboA", 70bb77492fSSam Leffler [IEEE80211_MODE_TURBO_G] = "turboG", 71bb77492fSSam Leffler [IEEE80211_MODE_STURBO_A] = "sturboA", 726a76ae21SSam Leffler [IEEE80211_MODE_HALF] = "half", 736a76ae21SSam Leffler [IEEE80211_MODE_QUARTER] = "quarter", 74bb77492fSSam Leffler [IEEE80211_MODE_11NA] = "11na", 75bb77492fSSam Leffler [IEEE80211_MODE_11NG] = "11ng", 760c67d389SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = "11acg", 770c67d389SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = "11ac", 781a1e1d21SSam Leffler }; 79c43feedeSSam Leffler /* map ieee80211_opmode to the corresponding capability bit */ 80c43feedeSSam Leffler const int ieee80211_opcap[IEEE80211_OPMODE_MAX] = { 81c43feedeSSam Leffler [IEEE80211_M_IBSS] = IEEE80211_C_IBSS, 82c43feedeSSam Leffler [IEEE80211_M_WDS] = IEEE80211_C_WDS, 83c43feedeSSam Leffler [IEEE80211_M_STA] = IEEE80211_C_STA, 84c43feedeSSam Leffler [IEEE80211_M_AHDEMO] = IEEE80211_C_AHDEMO, 85c43feedeSSam Leffler [IEEE80211_M_HOSTAP] = IEEE80211_C_HOSTAP, 86c43feedeSSam Leffler [IEEE80211_M_MONITOR] = IEEE80211_C_MONITOR, 8759aa14a9SRui Paulo #ifdef IEEE80211_SUPPORT_MESH 8859aa14a9SRui Paulo [IEEE80211_M_MBSS] = IEEE80211_C_MBSS, 8959aa14a9SRui Paulo #endif 90c43feedeSSam Leffler }; 91c43feedeSSam Leffler 9292002144SGleb Smirnoff const uint8_t ieee80211broadcastaddr[IEEE80211_ADDR_LEN] = 93b032f27cSSam Leffler { 0xff, 0xff, 0xff, 0xff, 0xff, 0xff }; 94b032f27cSSam Leffler 95b032f27cSSam Leffler static void ieee80211_syncflag_locked(struct ieee80211com *ic, int flag); 962bfc8a91SSam Leffler static void ieee80211_syncflag_ht_locked(struct ieee80211com *ic, int flag); 97b032f27cSSam Leffler static void ieee80211_syncflag_ext_locked(struct ieee80211com *ic, int flag); 988e71a4aaSAdrian Chadd static void ieee80211_syncflag_vht_locked(struct ieee80211com *ic, int flag); 99b032f27cSSam Leffler static int ieee80211_media_setup(struct ieee80211com *ic, 100b032f27cSSam Leffler struct ifmedia *media, int caps, int addsta, 101b032f27cSSam Leffler ifm_change_cb_t media_change, ifm_stat_cb_t media_stat); 102b032f27cSSam Leffler static int media_status(enum ieee80211_opmode, 103b032f27cSSam Leffler const struct ieee80211_channel *); 10428da1b56SGleb Smirnoff static uint64_t ieee80211_get_counter(struct ifnet *, ift_counter); 105b032f27cSSam Leffler 106b032f27cSSam Leffler MALLOC_DEFINE(M_80211_VAP, "80211vap", "802.11 vap state"); 1071a1e1d21SSam Leffler 108aadecb1aSSam Leffler /* 109aadecb1aSSam Leffler * Default supported rates for 802.11 operation (in IEEE .5Mb units). 110aadecb1aSSam Leffler */ 111aadecb1aSSam Leffler #define B(r) ((r) | IEEE80211_RATE_BASIC) 112aadecb1aSSam Leffler static const struct ieee80211_rateset ieee80211_rateset_11a = 113aadecb1aSSam Leffler { 8, { B(12), 18, B(24), 36, B(48), 72, 96, 108 } }; 11441b3c790SSam Leffler static const struct ieee80211_rateset ieee80211_rateset_half = 11541b3c790SSam Leffler { 8, { B(6), 9, B(12), 18, B(24), 36, 48, 54 } }; 11641b3c790SSam Leffler static const struct ieee80211_rateset ieee80211_rateset_quarter = 11741b3c790SSam Leffler { 8, { B(3), 4, B(6), 9, B(12), 18, 24, 27 } }; 118aadecb1aSSam Leffler static const struct ieee80211_rateset ieee80211_rateset_11b = 119aadecb1aSSam Leffler { 4, { B(2), B(4), B(11), B(22) } }; 120aadecb1aSSam Leffler /* NB: OFDM rates are handled specially based on mode */ 121aadecb1aSSam Leffler static const struct ieee80211_rateset ieee80211_rateset_11g = 122aadecb1aSSam Leffler { 12, { B(2), B(4), B(11), B(22), 12, 18, 24, 36, 48, 72, 96, 108 } }; 123aadecb1aSSam Leffler #undef B 124aadecb1aSSam Leffler 12567f4aa38SAdrian Chadd static int set_vht_extchan(struct ieee80211_channel *c); 12667f4aa38SAdrian Chadd 1271a1e1d21SSam Leffler /* 1281a1e1d21SSam Leffler * Fill in 802.11 available channel set, mark 1291a1e1d21SSam Leffler * all available channels as active, and pick 1301a1e1d21SSam Leffler * a default channel if not already specified. 1311a1e1d21SSam Leffler */ 1327a79cebfSGleb Smirnoff void 13341b3c790SSam Leffler ieee80211_chan_init(struct ieee80211com *ic) 13441b3c790SSam Leffler { 13541b3c790SSam Leffler #define DEFAULTRATES(m, def) do { \ 1366a76ae21SSam Leffler if (ic->ic_sup_rates[m].rs_nrates == 0) \ 13745fa8b0eSSam Leffler ic->ic_sup_rates[m] = def; \ 13841b3c790SSam Leffler } while (0) 13941b3c790SSam Leffler struct ieee80211_channel *c; 14041b3c790SSam Leffler int i; 14141b3c790SSam Leffler 14231378b1cSSam Leffler KASSERT(0 < ic->ic_nchans && ic->ic_nchans <= IEEE80211_CHAN_MAX, 14368e8e04eSSam Leffler ("invalid number of channels specified: %u", ic->ic_nchans)); 1441a1e1d21SSam Leffler memset(ic->ic_chan_avail, 0, sizeof(ic->ic_chan_avail)); 145b032f27cSSam Leffler memset(ic->ic_modecaps, 0, sizeof(ic->ic_modecaps)); 1466dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_AUTO); 14768e8e04eSSam Leffler for (i = 0; i < ic->ic_nchans; i++) { 1481a1e1d21SSam Leffler c = &ic->ic_channels[i]; 14968e8e04eSSam Leffler KASSERT(c->ic_flags != 0, ("channel with no flags")); 1509c2c544dSSam Leffler /* 1519c2c544dSSam Leffler * Help drivers that work only with frequencies by filling 1529c2c544dSSam Leffler * in IEEE channel #'s if not already calculated. Note this 1539c2c544dSSam Leffler * mimics similar work done in ieee80211_setregdomain when 1549c2c544dSSam Leffler * changing regulatory state. 1559c2c544dSSam Leffler */ 1569c2c544dSSam Leffler if (c->ic_ieee == 0) 1579c2c544dSSam Leffler c->ic_ieee = ieee80211_mhz2ieee(c->ic_freq,c->ic_flags); 15867f4aa38SAdrian Chadd 15967f4aa38SAdrian Chadd /* 16067f4aa38SAdrian Chadd * Setup the HT40/VHT40 upper/lower bits. 16167f4aa38SAdrian Chadd * The VHT80 math is done elsewhere. 16267f4aa38SAdrian Chadd */ 1639c2c544dSSam Leffler if (IEEE80211_IS_CHAN_HT40(c) && c->ic_extieee == 0) 1649c2c544dSSam Leffler c->ic_extieee = ieee80211_mhz2ieee(c->ic_freq + 1659c2c544dSSam Leffler (IEEE80211_IS_CHAN_HT40U(c) ? 20 : -20), 1669c2c544dSSam Leffler c->ic_flags); 16767f4aa38SAdrian Chadd 16867f4aa38SAdrian Chadd /* Update VHT math */ 16967f4aa38SAdrian Chadd /* 17067f4aa38SAdrian Chadd * XXX VHT again, note that this assumes VHT80 channels 17167f4aa38SAdrian Chadd * are legit already 17267f4aa38SAdrian Chadd */ 17367f4aa38SAdrian Chadd set_vht_extchan(c); 17467f4aa38SAdrian Chadd 1759c2c544dSSam Leffler /* default max tx power to max regulatory */ 1769c2c544dSSam Leffler if (c->ic_maxpower == 0) 1779c2c544dSSam Leffler c->ic_maxpower = 2*c->ic_maxregpower; 17868e8e04eSSam Leffler setbit(ic->ic_chan_avail, c->ic_ieee); 1791a1e1d21SSam Leffler /* 1801a1e1d21SSam Leffler * Identify mode capabilities. 1811a1e1d21SSam Leffler */ 1821a1e1d21SSam Leffler if (IEEE80211_IS_CHAN_A(c)) 1836dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_11A); 1841a1e1d21SSam Leffler if (IEEE80211_IS_CHAN_B(c)) 1856dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_11B); 18645fa8b0eSSam Leffler if (IEEE80211_IS_CHAN_ANYG(c)) 1876dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_11G); 1884844aa7dSAtsushi Onoe if (IEEE80211_IS_CHAN_FHSS(c)) 1896dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_FH); 19068e8e04eSSam Leffler if (IEEE80211_IS_CHAN_108A(c)) 1916dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_TURBO_A); 1928a1b9b6aSSam Leffler if (IEEE80211_IS_CHAN_108G(c)) 1936dbd16f1SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_TURBO_G); 19468e8e04eSSam Leffler if (IEEE80211_IS_CHAN_ST(c)) 19568e8e04eSSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_STURBO_A); 1966a76ae21SSam Leffler if (IEEE80211_IS_CHAN_HALF(c)) 1976a76ae21SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_HALF); 1986a76ae21SSam Leffler if (IEEE80211_IS_CHAN_QUARTER(c)) 1996a76ae21SSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_QUARTER); 20068e8e04eSSam Leffler if (IEEE80211_IS_CHAN_HTA(c)) 20168e8e04eSSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_11NA); 20268e8e04eSSam Leffler if (IEEE80211_IS_CHAN_HTG(c)) 20368e8e04eSSam Leffler setbit(ic->ic_modecaps, IEEE80211_MODE_11NG); 2040c67d389SAdrian Chadd if (IEEE80211_IS_CHAN_VHTA(c)) 2050c67d389SAdrian Chadd setbit(ic->ic_modecaps, IEEE80211_MODE_VHT_5GHZ); 2060c67d389SAdrian Chadd if (IEEE80211_IS_CHAN_VHTG(c)) 2070c67d389SAdrian Chadd setbit(ic->ic_modecaps, IEEE80211_MODE_VHT_2GHZ); 20868e8e04eSSam Leffler } 20968e8e04eSSam Leffler /* initialize candidate channels to all available */ 21068e8e04eSSam Leffler memcpy(ic->ic_chan_active, ic->ic_chan_avail, 21168e8e04eSSam Leffler sizeof(ic->ic_chan_avail)); 21268e8e04eSSam Leffler 213b032f27cSSam Leffler /* sort channel table to allow lookup optimizations */ 214b032f27cSSam Leffler ieee80211_sort_channels(ic->ic_channels, ic->ic_nchans); 215b032f27cSSam Leffler 216b032f27cSSam Leffler /* invalidate any previous state */ 21768e8e04eSSam Leffler ic->ic_bsschan = IEEE80211_CHAN_ANYC; 218ab562eefSSam Leffler ic->ic_prevchan = NULL; 219b032f27cSSam Leffler ic->ic_csa_newchan = NULL; 220b5c99415SSam Leffler /* arbitrarily pick the first channel */ 22168e8e04eSSam Leffler ic->ic_curchan = &ic->ic_channels[0]; 22226d39e2cSSam Leffler ic->ic_rt = ieee80211_get_ratetable(ic->ic_curchan); 223aadecb1aSSam Leffler 224aadecb1aSSam Leffler /* fillin well-known rate sets if driver has not specified */ 22541b3c790SSam Leffler DEFAULTRATES(IEEE80211_MODE_11B, ieee80211_rateset_11b); 22641b3c790SSam Leffler DEFAULTRATES(IEEE80211_MODE_11G, ieee80211_rateset_11g); 22741b3c790SSam Leffler DEFAULTRATES(IEEE80211_MODE_11A, ieee80211_rateset_11a); 22841b3c790SSam Leffler DEFAULTRATES(IEEE80211_MODE_TURBO_A, ieee80211_rateset_11a); 22941b3c790SSam Leffler DEFAULTRATES(IEEE80211_MODE_TURBO_G, ieee80211_rateset_11g); 2308500d65dSSam Leffler DEFAULTRATES(IEEE80211_MODE_STURBO_A, ieee80211_rateset_11a); 2316a76ae21SSam Leffler DEFAULTRATES(IEEE80211_MODE_HALF, ieee80211_rateset_half); 2326a76ae21SSam Leffler DEFAULTRATES(IEEE80211_MODE_QUARTER, ieee80211_rateset_quarter); 23340432d36SSam Leffler DEFAULTRATES(IEEE80211_MODE_11NA, ieee80211_rateset_11a); 23440432d36SSam Leffler DEFAULTRATES(IEEE80211_MODE_11NG, ieee80211_rateset_11g); 2350c67d389SAdrian Chadd DEFAULTRATES(IEEE80211_MODE_VHT_2GHZ, ieee80211_rateset_11g); 2360c67d389SAdrian Chadd DEFAULTRATES(IEEE80211_MODE_VHT_5GHZ, ieee80211_rateset_11a); 23741b3c790SSam Leffler 23841b3c790SSam Leffler /* 239fbbe47a9SBernhard Schmidt * Setup required information to fill the mcsset field, if driver did 240fbbe47a9SBernhard Schmidt * not. Assume a 2T2R setup for historic reasons. 241fbbe47a9SBernhard Schmidt */ 242fbbe47a9SBernhard Schmidt if (ic->ic_rxstream == 0) 243fbbe47a9SBernhard Schmidt ic->ic_rxstream = 2; 244fbbe47a9SBernhard Schmidt if (ic->ic_txstream == 0) 245fbbe47a9SBernhard Schmidt ic->ic_txstream = 2; 246fbbe47a9SBernhard Schmidt 247dfabbaa0SAndriy Voskoboinyk ieee80211_init_suphtrates(ic); 248dfabbaa0SAndriy Voskoboinyk 249fbbe47a9SBernhard Schmidt /* 25041b3c790SSam Leffler * Set auto mode to reset active channel state and any desired channel. 25141b3c790SSam Leffler */ 25241b3c790SSam Leffler (void) ieee80211_setmode(ic, IEEE80211_MODE_AUTO); 25341b3c790SSam Leffler #undef DEFAULTRATES 25441b3c790SSam Leffler } 25541b3c790SSam Leffler 256b032f27cSSam Leffler static void 257272f6adeSGleb Smirnoff null_update_mcast(struct ieee80211com *ic) 258b032f27cSSam Leffler { 259272f6adeSGleb Smirnoff 260272f6adeSGleb Smirnoff ic_printf(ic, "need multicast update callback\n"); 261b032f27cSSam Leffler } 262b032f27cSSam Leffler 263b032f27cSSam Leffler static void 264272f6adeSGleb Smirnoff null_update_promisc(struct ieee80211com *ic) 265b032f27cSSam Leffler { 266272f6adeSGleb Smirnoff 267272f6adeSGleb Smirnoff ic_printf(ic, "need promiscuous mode update callback\n"); 268b032f27cSSam Leffler } 269b032f27cSSam Leffler 270b94299c4SAdrian Chadd static void 271b94299c4SAdrian Chadd null_update_chw(struct ieee80211com *ic) 272b94299c4SAdrian Chadd { 273b94299c4SAdrian Chadd 274c8f5794eSGleb Smirnoff ic_printf(ic, "%s: need callback\n", __func__); 275c8f5794eSGleb Smirnoff } 276c8f5794eSGleb Smirnoff 277c8f5794eSGleb Smirnoff int 278c8f5794eSGleb Smirnoff ic_printf(struct ieee80211com *ic, const char * fmt, ...) 279c8f5794eSGleb Smirnoff { 280c8f5794eSGleb Smirnoff va_list ap; 281c8f5794eSGleb Smirnoff int retval; 282c8f5794eSGleb Smirnoff 283c8f5794eSGleb Smirnoff retval = printf("%s: ", ic->ic_name); 284c8f5794eSGleb Smirnoff va_start(ap, fmt); 285c8f5794eSGleb Smirnoff retval += vprintf(fmt, ap); 286c8f5794eSGleb Smirnoff va_end(ap); 287c8f5794eSGleb Smirnoff return (retval); 288b94299c4SAdrian Chadd } 289b94299c4SAdrian Chadd 2907a79cebfSGleb Smirnoff static LIST_HEAD(, ieee80211com) ic_head = LIST_HEAD_INITIALIZER(ic_head); 2917a79cebfSGleb Smirnoff static struct mtx ic_list_mtx; 2927a79cebfSGleb Smirnoff MTX_SYSINIT(ic_list, &ic_list_mtx, "ieee80211com list", MTX_DEF); 2937a79cebfSGleb Smirnoff 2947a79cebfSGleb Smirnoff static int 2957a79cebfSGleb Smirnoff sysctl_ieee80211coms(SYSCTL_HANDLER_ARGS) 2967a79cebfSGleb Smirnoff { 2977a79cebfSGleb Smirnoff struct ieee80211com *ic; 298f09a089eSAndriy Voskoboinyk struct sbuf sb; 2997a79cebfSGleb Smirnoff char *sp; 3007a79cebfSGleb Smirnoff int error; 3017a79cebfSGleb Smirnoff 302f09a089eSAndriy Voskoboinyk error = sysctl_wire_old_buffer(req, 0); 303f09a089eSAndriy Voskoboinyk if (error) 304f09a089eSAndriy Voskoboinyk return (error); 305f09a089eSAndriy Voskoboinyk sbuf_new_for_sysctl(&sb, NULL, 8, req); 306f09a089eSAndriy Voskoboinyk sbuf_clear_flags(&sb, SBUF_INCLUDENUL); 3077a79cebfSGleb Smirnoff sp = ""; 3087a79cebfSGleb Smirnoff mtx_lock(&ic_list_mtx); 3097a79cebfSGleb Smirnoff LIST_FOREACH(ic, &ic_head, ic_next) { 310f09a089eSAndriy Voskoboinyk sbuf_printf(&sb, "%s%s", sp, ic->ic_name); 3117a79cebfSGleb Smirnoff sp = " "; 3127a79cebfSGleb Smirnoff } 3137a79cebfSGleb Smirnoff mtx_unlock(&ic_list_mtx); 314f09a089eSAndriy Voskoboinyk error = sbuf_finish(&sb); 315f09a089eSAndriy Voskoboinyk sbuf_delete(&sb); 3167a79cebfSGleb Smirnoff return (error); 3177a79cebfSGleb Smirnoff } 3187a79cebfSGleb Smirnoff 3197a79cebfSGleb Smirnoff SYSCTL_PROC(_net_wlan, OID_AUTO, devices, 3207a79cebfSGleb Smirnoff CTLTYPE_STRING | CTLFLAG_RD | CTLFLAG_MPSAFE, NULL, 0, 3217a79cebfSGleb Smirnoff sysctl_ieee80211coms, "A", "names of available 802.11 devices"); 3227a79cebfSGleb Smirnoff 323b032f27cSSam Leffler /* 324b032f27cSSam Leffler * Attach/setup the common net80211 state. Called by 325b032f27cSSam Leffler * the driver on attach to prior to creating any vap's. 326b032f27cSSam Leffler */ 32741b3c790SSam Leffler void 3287a79cebfSGleb Smirnoff ieee80211_ifattach(struct ieee80211com *ic) 32941b3c790SSam Leffler { 33041b3c790SSam Leffler 331c8f5794eSGleb Smirnoff IEEE80211_LOCK_INIT(ic, ic->ic_name); 332c8f5794eSGleb Smirnoff IEEE80211_TX_LOCK_INIT(ic, ic->ic_name); 333b032f27cSSam Leffler TAILQ_INIT(&ic->ic_vaps); 3345efea30fSAndrew Thompson 3355efea30fSAndrew Thompson /* Create a taskqueue for all state changes */ 3365efea30fSAndrew Thompson ic->ic_tq = taskqueue_create("ic_taskq", M_WAITOK | M_ZERO, 3375efea30fSAndrew Thompson taskqueue_thread_enqueue, &ic->ic_tq); 3387b2b15ebSAdrian Chadd taskqueue_start_threads(&ic->ic_tq, 1, PI_NET, "%s net80211 taskq", 3397fc10b6bSGleb Smirnoff ic->ic_name); 34028da1b56SGleb Smirnoff ic->ic_ierrors = counter_u64_alloc(M_WAITOK); 34128da1b56SGleb Smirnoff ic->ic_oerrors = counter_u64_alloc(M_WAITOK); 34241b3c790SSam Leffler /* 34341b3c790SSam Leffler * Fill in 802.11 available channel set, mark all 34441b3c790SSam Leffler * available channels as active, and pick a default 34541b3c790SSam Leffler * channel if not already specified. 34641b3c790SSam Leffler */ 3477a79cebfSGleb Smirnoff ieee80211_chan_init(ic); 34868e8e04eSSam Leffler 349b032f27cSSam Leffler ic->ic_update_mcast = null_update_mcast; 350b032f27cSSam Leffler ic->ic_update_promisc = null_update_promisc; 351b94299c4SAdrian Chadd ic->ic_update_chw = null_update_chw; 3521a1e1d21SSam Leffler 3535b16c28cSSam Leffler ic->ic_hash_key = arc4random(); 354d365f9c7SSam Leffler ic->ic_bintval = IEEE80211_BINTVAL_DEFAULT; 355d365f9c7SSam Leffler ic->ic_lintval = ic->ic_bintval; 3568a1b9b6aSSam Leffler ic->ic_txpowlimit = IEEE80211_TXPOWER_MAX; 3578a1b9b6aSSam Leffler 35868e8e04eSSam Leffler ieee80211_crypto_attach(ic); 3598a1b9b6aSSam Leffler ieee80211_node_attach(ic); 36068e8e04eSSam Leffler ieee80211_power_attach(ic); 3618a1b9b6aSSam Leffler ieee80211_proto_attach(ic); 362616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 363616190d0SSam Leffler ieee80211_superg_attach(ic); 364616190d0SSam Leffler #endif 36568e8e04eSSam Leffler ieee80211_ht_attach(ic); 36667f4aa38SAdrian Chadd ieee80211_vht_attach(ic); 36768e8e04eSSam Leffler ieee80211_scan_attach(ic); 368b032f27cSSam Leffler ieee80211_regdomain_attach(ic); 369e95e0edbSSam Leffler ieee80211_dfs_attach(ic); 3708a1b9b6aSSam Leffler 371b032f27cSSam Leffler ieee80211_sysctl_attach(ic); 3728a1b9b6aSSam Leffler 3737a79cebfSGleb Smirnoff mtx_lock(&ic_list_mtx); 3747a79cebfSGleb Smirnoff LIST_INSERT_HEAD(&ic_head, ic, ic_next); 3757a79cebfSGleb Smirnoff mtx_unlock(&ic_list_mtx); 3761a1e1d21SSam Leffler } 3771a1e1d21SSam Leffler 378b032f27cSSam Leffler /* 379b032f27cSSam Leffler * Detach net80211 state on device detach. Tear down 380b032f27cSSam Leffler * all vap's and reclaim all common state prior to the 381b032f27cSSam Leffler * device state going away. Note we may call back into 382b032f27cSSam Leffler * driver; it must be prepared for this. 383b032f27cSSam Leffler */ 3841a1e1d21SSam Leffler void 3858a1b9b6aSSam Leffler ieee80211_ifdetach(struct ieee80211com *ic) 3861a1e1d21SSam Leffler { 387b032f27cSSam Leffler struct ieee80211vap *vap; 3881a1e1d21SSam Leffler 389a84a458cSKyle Evans /* 390a84a458cSKyle Evans * We use this as an indicator that ifattach never had a chance to be 391a84a458cSKyle Evans * called, e.g. early driver attach failed and ifdetach was called 392a84a458cSKyle Evans * during subsequent detach. Never fear, for we have nothing to do 393a84a458cSKyle Evans * here. 394a84a458cSKyle Evans */ 395a84a458cSKyle Evans if (ic->ic_tq == NULL) 396a84a458cSKyle Evans return; 397a84a458cSKyle Evans 3987a79cebfSGleb Smirnoff mtx_lock(&ic_list_mtx); 3997a79cebfSGleb Smirnoff LIST_REMOVE(ic, ic_next); 4007a79cebfSGleb Smirnoff mtx_unlock(&ic_list_mtx); 4015c600a90SSam Leffler 4024061c639SAndriy Voskoboinyk taskqueue_drain(taskqueue_thread, &ic->ic_restart_task); 4034061c639SAndriy Voskoboinyk 40430e4856aSAdrian Chadd /* 40530e4856aSAdrian Chadd * The VAP is responsible for setting and clearing 40630e4856aSAdrian Chadd * the VIMAGE context. 40730e4856aSAdrian Chadd */ 408*dab61567SAndriy Voskoboinyk while ((vap = TAILQ_FIRST(&ic->ic_vaps)) != NULL) { 409*dab61567SAndriy Voskoboinyk ieee80211_com_vdetach(vap); 410b032f27cSSam Leffler ieee80211_vap_destroy(vap); 411*dab61567SAndriy Voskoboinyk } 412ae55932eSAndrew Thompson ieee80211_waitfor_parent(ic); 4138a1b9b6aSSam Leffler 4148a1b9b6aSSam Leffler ieee80211_sysctl_detach(ic); 415e95e0edbSSam Leffler ieee80211_dfs_detach(ic); 416b032f27cSSam Leffler ieee80211_regdomain_detach(ic); 41768e8e04eSSam Leffler ieee80211_scan_detach(ic); 418616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 419616190d0SSam Leffler ieee80211_superg_detach(ic); 420616190d0SSam Leffler #endif 42167f4aa38SAdrian Chadd ieee80211_vht_detach(ic); 42268e8e04eSSam Leffler ieee80211_ht_detach(ic); 423ca4ac7aeSSam Leffler /* NB: must be called before ieee80211_node_detach */ 4248a1b9b6aSSam Leffler ieee80211_proto_detach(ic); 4258a1b9b6aSSam Leffler ieee80211_crypto_detach(ic); 42668e8e04eSSam Leffler ieee80211_power_detach(ic); 4278a1b9b6aSSam Leffler ieee80211_node_detach(ic); 4288a1b9b6aSSam Leffler 42928da1b56SGleb Smirnoff counter_u64_free(ic->ic_ierrors); 43028da1b56SGleb Smirnoff counter_u64_free(ic->ic_oerrors); 43130e4856aSAdrian Chadd 4325efea30fSAndrew Thompson taskqueue_free(ic->ic_tq); 4335cda6006SAdrian Chadd IEEE80211_TX_LOCK_DESTROY(ic); 43468e8e04eSSam Leffler IEEE80211_LOCK_DESTROY(ic); 435b032f27cSSam Leffler } 4368a1b9b6aSSam Leffler 4377a79cebfSGleb Smirnoff struct ieee80211com * 4387a79cebfSGleb Smirnoff ieee80211_find_com(const char *name) 4397a79cebfSGleb Smirnoff { 4407a79cebfSGleb Smirnoff struct ieee80211com *ic; 4417a79cebfSGleb Smirnoff 4427a79cebfSGleb Smirnoff mtx_lock(&ic_list_mtx); 4437a79cebfSGleb Smirnoff LIST_FOREACH(ic, &ic_head, ic_next) 4447a79cebfSGleb Smirnoff if (strcmp(ic->ic_name, name) == 0) 4457a79cebfSGleb Smirnoff break; 4467a79cebfSGleb Smirnoff mtx_unlock(&ic_list_mtx); 4477a79cebfSGleb Smirnoff 4487a79cebfSGleb Smirnoff return (ic); 4497a79cebfSGleb Smirnoff } 4507a79cebfSGleb Smirnoff 4517cde0202SAndriy Voskoboinyk void 4527cde0202SAndriy Voskoboinyk ieee80211_iterate_coms(ieee80211_com_iter_func *f, void *arg) 4537cde0202SAndriy Voskoboinyk { 4547cde0202SAndriy Voskoboinyk struct ieee80211com *ic; 4557cde0202SAndriy Voskoboinyk 4567cde0202SAndriy Voskoboinyk mtx_lock(&ic_list_mtx); 4577cde0202SAndriy Voskoboinyk LIST_FOREACH(ic, &ic_head, ic_next) 4587cde0202SAndriy Voskoboinyk (*f)(arg, ic); 4597cde0202SAndriy Voskoboinyk mtx_unlock(&ic_list_mtx); 4607cde0202SAndriy Voskoboinyk } 4617cde0202SAndriy Voskoboinyk 462b032f27cSSam Leffler /* 463b032f27cSSam Leffler * Default reset method for use with the ioctl support. This 464b032f27cSSam Leffler * method is invoked after any state change in the 802.11 465b032f27cSSam Leffler * layer that should be propagated to the hardware but not 466b032f27cSSam Leffler * require re-initialization of the 802.11 state machine (e.g 467b032f27cSSam Leffler * rescanning for an ap). We always return ENETRESET which 468b032f27cSSam Leffler * should cause the driver to re-initialize the device. Drivers 469b032f27cSSam Leffler * can override this method to implement more optimized support. 470b032f27cSSam Leffler */ 471b032f27cSSam Leffler static int 472b032f27cSSam Leffler default_reset(struct ieee80211vap *vap, u_long cmd) 473b032f27cSSam Leffler { 474b032f27cSSam Leffler return ENETRESET; 475b032f27cSSam Leffler } 476b032f27cSSam Leffler 477b032f27cSSam Leffler /* 478781487cfSAdrian Chadd * Default for updating the VAP default TX key index. 479781487cfSAdrian Chadd * 480781487cfSAdrian Chadd * Drivers that support TX offload as well as hardware encryption offload 481781487cfSAdrian Chadd * may need to be informed of key index changes separate from the key 482781487cfSAdrian Chadd * update. 483781487cfSAdrian Chadd */ 484781487cfSAdrian Chadd static void 485781487cfSAdrian Chadd default_update_deftxkey(struct ieee80211vap *vap, ieee80211_keyix kid) 486781487cfSAdrian Chadd { 487781487cfSAdrian Chadd 488781487cfSAdrian Chadd /* XXX assert validity */ 489781487cfSAdrian Chadd /* XXX assert we're in a key update block */ 490781487cfSAdrian Chadd vap->iv_def_txkey = kid; 491781487cfSAdrian Chadd } 492781487cfSAdrian Chadd 493781487cfSAdrian Chadd /* 49428da1b56SGleb Smirnoff * Add underlying device errors to vap errors. 49528da1b56SGleb Smirnoff */ 49628da1b56SGleb Smirnoff static uint64_t 49728da1b56SGleb Smirnoff ieee80211_get_counter(struct ifnet *ifp, ift_counter cnt) 49828da1b56SGleb Smirnoff { 49928da1b56SGleb Smirnoff struct ieee80211vap *vap = ifp->if_softc; 50028da1b56SGleb Smirnoff struct ieee80211com *ic = vap->iv_ic; 50128da1b56SGleb Smirnoff uint64_t rv; 50228da1b56SGleb Smirnoff 50328da1b56SGleb Smirnoff rv = if_get_counter_default(ifp, cnt); 50428da1b56SGleb Smirnoff switch (cnt) { 50528da1b56SGleb Smirnoff case IFCOUNTER_OERRORS: 50628da1b56SGleb Smirnoff rv += counter_u64_fetch(ic->ic_oerrors); 50728da1b56SGleb Smirnoff break; 50828da1b56SGleb Smirnoff case IFCOUNTER_IERRORS: 50928da1b56SGleb Smirnoff rv += counter_u64_fetch(ic->ic_ierrors); 51028da1b56SGleb Smirnoff break; 51128da1b56SGleb Smirnoff default: 51228da1b56SGleb Smirnoff break; 51328da1b56SGleb Smirnoff } 51428da1b56SGleb Smirnoff 51528da1b56SGleb Smirnoff return (rv); 51628da1b56SGleb Smirnoff } 51728da1b56SGleb Smirnoff 51828da1b56SGleb Smirnoff /* 519b032f27cSSam Leffler * Prepare a vap for use. Drivers use this call to 520b032f27cSSam Leffler * setup net80211 state in new vap's prior attaching 521b032f27cSSam Leffler * them with ieee80211_vap_attach (below). 522b032f27cSSam Leffler */ 523b032f27cSSam Leffler int 524b032f27cSSam Leffler ieee80211_vap_setup(struct ieee80211com *ic, struct ieee80211vap *vap, 525fcd9500fSBernhard Schmidt const char name[IFNAMSIZ], int unit, enum ieee80211_opmode opmode, 5267a79cebfSGleb Smirnoff int flags, const uint8_t bssid[IEEE80211_ADDR_LEN]) 527b032f27cSSam Leffler { 528b032f27cSSam Leffler struct ifnet *ifp; 529b032f27cSSam Leffler 530b032f27cSSam Leffler ifp = if_alloc(IFT_ETHER); 531b032f27cSSam Leffler if (ifp == NULL) { 532c8f5794eSGleb Smirnoff ic_printf(ic, "%s: unable to allocate ifnet\n", 533b032f27cSSam Leffler __func__); 534b032f27cSSam Leffler return ENOMEM; 535b032f27cSSam Leffler } 536b032f27cSSam Leffler if_initname(ifp, name, unit); 537b032f27cSSam Leffler ifp->if_softc = vap; /* back pointer */ 538b032f27cSSam Leffler ifp->if_flags = IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST; 539e7495198SAdrian Chadd ifp->if_transmit = ieee80211_vap_transmit; 540e7495198SAdrian Chadd ifp->if_qflush = ieee80211_vap_qflush; 541b032f27cSSam Leffler ifp->if_ioctl = ieee80211_ioctl; 542b032f27cSSam Leffler ifp->if_init = ieee80211_init; 54328da1b56SGleb Smirnoff ifp->if_get_counter = ieee80211_get_counter; 544b032f27cSSam Leffler 545b032f27cSSam Leffler vap->iv_ifp = ifp; 546b032f27cSSam Leffler vap->iv_ic = ic; 547b032f27cSSam Leffler vap->iv_flags = ic->ic_flags; /* propagate common flags */ 548b032f27cSSam Leffler vap->iv_flags_ext = ic->ic_flags_ext; 549b032f27cSSam Leffler vap->iv_flags_ven = ic->ic_flags_ven; 550b032f27cSSam Leffler vap->iv_caps = ic->ic_caps &~ IEEE80211_C_OPMODE; 55167f4aa38SAdrian Chadd 55267f4aa38SAdrian Chadd /* 11n capabilities - XXX methodize */ 553b032f27cSSam Leffler vap->iv_htcaps = ic->ic_htcaps; 554e1d36f83SRui Paulo vap->iv_htextcaps = ic->ic_htextcaps; 55567f4aa38SAdrian Chadd 55667f4aa38SAdrian Chadd /* 11ac capabilities - XXX methodize */ 55767f4aa38SAdrian Chadd vap->iv_vhtcaps = ic->ic_vhtcaps; 55867f4aa38SAdrian Chadd vap->iv_vhtextcaps = ic->ic_vhtextcaps; 55967f4aa38SAdrian Chadd 560b032f27cSSam Leffler vap->iv_opmode = opmode; 561c43feedeSSam Leffler vap->iv_caps |= ieee80211_opcap[opmode]; 5621d47c76cSAndriy Voskoboinyk IEEE80211_ADDR_COPY(vap->iv_myaddr, ic->ic_macaddr); 563b032f27cSSam Leffler switch (opmode) { 564b032f27cSSam Leffler case IEEE80211_M_WDS: 565b032f27cSSam Leffler /* 566b032f27cSSam Leffler * WDS links must specify the bssid of the far end. 567b032f27cSSam Leffler * For legacy operation this is a static relationship. 568b032f27cSSam Leffler * For non-legacy operation the station must associate 569b032f27cSSam Leffler * and be authorized to pass traffic. Plumbing the 570b032f27cSSam Leffler * vap to the proper node happens when the vap 571b032f27cSSam Leffler * transitions to RUN state. 572b032f27cSSam Leffler */ 573b032f27cSSam Leffler IEEE80211_ADDR_COPY(vap->iv_des_bssid, bssid); 574b032f27cSSam Leffler vap->iv_flags |= IEEE80211_F_DESBSSID; 575b032f27cSSam Leffler if (flags & IEEE80211_CLONE_WDSLEGACY) 576b032f27cSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_WDSLEGACY; 577b032f27cSSam Leffler break; 57810ad9a77SSam Leffler #ifdef IEEE80211_SUPPORT_TDMA 57910ad9a77SSam Leffler case IEEE80211_M_AHDEMO: 58010ad9a77SSam Leffler if (flags & IEEE80211_CLONE_TDMA) { 58110ad9a77SSam Leffler /* NB: checked before clone operation allowed */ 58210ad9a77SSam Leffler KASSERT(ic->ic_caps & IEEE80211_C_TDMA, 58310ad9a77SSam Leffler ("not TDMA capable, ic_caps 0x%x", ic->ic_caps)); 58410ad9a77SSam Leffler /* 58510ad9a77SSam Leffler * Propagate TDMA capability to mark vap; this 58610ad9a77SSam Leffler * cannot be removed and is used to distinguish 58710ad9a77SSam Leffler * regular ahdemo operation from ahdemo+tdma. 58810ad9a77SSam Leffler */ 58910ad9a77SSam Leffler vap->iv_caps |= IEEE80211_C_TDMA; 59010ad9a77SSam Leffler } 59110ad9a77SSam Leffler break; 59210ad9a77SSam Leffler #endif 593fcd9500fSBernhard Schmidt default: 594fcd9500fSBernhard Schmidt break; 595b032f27cSSam Leffler } 596ae3f00bbSSam Leffler /* auto-enable s/w beacon miss support */ 597ae3f00bbSSam Leffler if (flags & IEEE80211_CLONE_NOBEACONS) 598ae3f00bbSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_SWBMISS; 59983fcb812SAndrew Thompson /* auto-generated or user supplied MAC address */ 60083fcb812SAndrew Thompson if (flags & (IEEE80211_CLONE_BSSID|IEEE80211_CLONE_MACADDR)) 60183fcb812SAndrew Thompson vap->iv_flags_ext |= IEEE80211_FEXT_UNIQMAC; 602b032f27cSSam Leffler /* 603b032f27cSSam Leffler * Enable various functionality by default if we're 604b032f27cSSam Leffler * capable; the driver can override us if it knows better. 605b032f27cSSam Leffler */ 606b032f27cSSam Leffler if (vap->iv_caps & IEEE80211_C_WME) 607b032f27cSSam Leffler vap->iv_flags |= IEEE80211_F_WME; 608b032f27cSSam Leffler if (vap->iv_caps & IEEE80211_C_BURST) 609b032f27cSSam Leffler vap->iv_flags |= IEEE80211_F_BURST; 610b032f27cSSam Leffler /* NB: bg scanning only makes sense for station mode right now */ 611b032f27cSSam Leffler if (vap->iv_opmode == IEEE80211_M_STA && 612b032f27cSSam Leffler (vap->iv_caps & IEEE80211_C_BGSCAN)) 613b032f27cSSam Leffler vap->iv_flags |= IEEE80211_F_BGSCAN; 614c43feedeSSam Leffler vap->iv_flags |= IEEE80211_F_DOTH; /* XXX no cap, just ena */ 61582fd2577SSam Leffler /* NB: DFS support only makes sense for ap mode right now */ 61682fd2577SSam Leffler if (vap->iv_opmode == IEEE80211_M_HOSTAP && 61782fd2577SSam Leffler (vap->iv_caps & IEEE80211_C_DFS)) 618b032f27cSSam Leffler vap->iv_flags_ext |= IEEE80211_FEXT_DFS; 619b032f27cSSam Leffler 620b032f27cSSam Leffler vap->iv_des_chan = IEEE80211_CHAN_ANYC; /* any channel is ok */ 621b032f27cSSam Leffler vap->iv_bmissthreshold = IEEE80211_HWBMISS_DEFAULT; 622b032f27cSSam Leffler vap->iv_dtim_period = IEEE80211_DTIM_DEFAULT; 623b032f27cSSam Leffler /* 624b032f27cSSam Leffler * Install a default reset method for the ioctl support; 625b032f27cSSam Leffler * the driver can override this. 626b032f27cSSam Leffler */ 627b032f27cSSam Leffler vap->iv_reset = default_reset; 628b032f27cSSam Leffler 629781487cfSAdrian Chadd /* 630781487cfSAdrian Chadd * Install a default crypto key update method, the driver 631781487cfSAdrian Chadd * can override this. 632781487cfSAdrian Chadd */ 633781487cfSAdrian Chadd vap->iv_update_deftxkey = default_update_deftxkey; 634781487cfSAdrian Chadd 635b032f27cSSam Leffler ieee80211_sysctl_vattach(vap); 636b032f27cSSam Leffler ieee80211_crypto_vattach(vap); 637b032f27cSSam Leffler ieee80211_node_vattach(vap); 638b032f27cSSam Leffler ieee80211_power_vattach(vap); 639b032f27cSSam Leffler ieee80211_proto_vattach(vap); 640616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 641616190d0SSam Leffler ieee80211_superg_vattach(vap); 642616190d0SSam Leffler #endif 643b032f27cSSam Leffler ieee80211_ht_vattach(vap); 64467f4aa38SAdrian Chadd ieee80211_vht_vattach(vap); 645b032f27cSSam Leffler ieee80211_scan_vattach(vap); 646b032f27cSSam Leffler ieee80211_regdomain_vattach(vap); 6475463c4a4SSam Leffler ieee80211_radiotap_vattach(vap); 648a7c6aabdSBernhard Schmidt ieee80211_ratectl_set(vap, IEEE80211_RATECTL_NONE); 649b6108616SRui Paulo 650b032f27cSSam Leffler return 0; 651b032f27cSSam Leffler } 652b032f27cSSam Leffler 653b032f27cSSam Leffler /* 654b032f27cSSam Leffler * Activate a vap. State should have been prepared with a 655b032f27cSSam Leffler * call to ieee80211_vap_setup and by the driver. On return 656b032f27cSSam Leffler * from this call the vap is ready for use. 657b032f27cSSam Leffler */ 658b032f27cSSam Leffler int 6597a79cebfSGleb Smirnoff ieee80211_vap_attach(struct ieee80211vap *vap, ifm_change_cb_t media_change, 6607a79cebfSGleb Smirnoff ifm_stat_cb_t media_stat, const uint8_t macaddr[IEEE80211_ADDR_LEN]) 661b032f27cSSam Leffler { 662b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 663b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 664b032f27cSSam Leffler struct ifmediareq imr; 665b032f27cSSam Leffler int maxrate; 666b032f27cSSam Leffler 667b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, 668b032f27cSSam Leffler "%s: %s parent %s flags 0x%x flags_ext 0x%x\n", 669b032f27cSSam Leffler __func__, ieee80211_opmode_name[vap->iv_opmode], 670c8f5794eSGleb Smirnoff ic->ic_name, vap->iv_flags, vap->iv_flags_ext); 671b032f27cSSam Leffler 672b032f27cSSam Leffler /* 673b032f27cSSam Leffler * Do late attach work that cannot happen until after 674b032f27cSSam Leffler * the driver has had a chance to override defaults. 675b032f27cSSam Leffler */ 676b032f27cSSam Leffler ieee80211_node_latevattach(vap); 677b032f27cSSam Leffler ieee80211_power_latevattach(vap); 678b032f27cSSam Leffler 679b032f27cSSam Leffler maxrate = ieee80211_media_setup(ic, &vap->iv_media, vap->iv_caps, 680b032f27cSSam Leffler vap->iv_opmode == IEEE80211_M_STA, media_change, media_stat); 681b032f27cSSam Leffler ieee80211_media_status(ifp, &imr); 682b032f27cSSam Leffler /* NB: strip explicit mode; we're actually in autoselect */ 683c3f10abdSSam Leffler ifmedia_set(&vap->iv_media, 684c3f10abdSSam Leffler imr.ifm_active &~ (IFM_MMASK | IFM_IEEE80211_TURBO)); 685b032f27cSSam Leffler if (maxrate) 686b032f27cSSam Leffler ifp->if_baudrate = IF_Mbps(maxrate); 687b032f27cSSam Leffler 6887a79cebfSGleb Smirnoff ether_ifattach(ifp, macaddr); 6891d47c76cSAndriy Voskoboinyk IEEE80211_ADDR_COPY(vap->iv_myaddr, IF_LLADDR(ifp)); 690b032f27cSSam Leffler /* hook output method setup by ether_ifattach */ 691b032f27cSSam Leffler vap->iv_output = ifp->if_output; 692b032f27cSSam Leffler ifp->if_output = ieee80211_output; 693b032f27cSSam Leffler /* NB: if_mtu set by ether_ifattach to ETHERMTU */ 694b032f27cSSam Leffler 695b032f27cSSam Leffler IEEE80211_LOCK(ic); 696b032f27cSSam Leffler TAILQ_INSERT_TAIL(&ic->ic_vaps, vap, iv_next); 697b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_WME); 698616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 699b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_TURBOP); 700616190d0SSam Leffler #endif 701b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_PCF); 702b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_BURST); 7032bfc8a91SSam Leffler ieee80211_syncflag_ht_locked(ic, IEEE80211_FHT_HT); 7042bfc8a91SSam Leffler ieee80211_syncflag_ht_locked(ic, IEEE80211_FHT_USEHT40); 7058e71a4aaSAdrian Chadd 7068e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_VHT); 7078e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT40); 7088e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT80); 7098e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT80P80); 7108e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT160); 711b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 712b032f27cSSam Leffler 713b032f27cSSam Leffler return 1; 714b032f27cSSam Leffler } 715b032f27cSSam Leffler 716b032f27cSSam Leffler /* 717b032f27cSSam Leffler * Tear down vap state and reclaim the ifnet. 718b032f27cSSam Leffler * The driver is assumed to have prepared for 719b032f27cSSam Leffler * this; e.g. by turning off interrupts for the 720b032f27cSSam Leffler * underlying device. 721b032f27cSSam Leffler */ 722b032f27cSSam Leffler void 723b032f27cSSam Leffler ieee80211_vap_detach(struct ieee80211vap *vap) 724b032f27cSSam Leffler { 725b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 726b032f27cSSam Leffler struct ifnet *ifp = vap->iv_ifp; 727b032f27cSSam Leffler 72830e4856aSAdrian Chadd CURVNET_SET(ifp->if_vnet); 72930e4856aSAdrian Chadd 730b032f27cSSam Leffler IEEE80211_DPRINTF(vap, IEEE80211_MSG_STATE, "%s: %s parent %s\n", 7317fc10b6bSGleb Smirnoff __func__, ieee80211_opmode_name[vap->iv_opmode], ic->ic_name); 732b032f27cSSam Leffler 7331da89db5SSam Leffler /* NB: bpfdetach is called by ether_ifdetach and claims all taps */ 7341da89db5SSam Leffler ether_ifdetach(ifp); 7351da89db5SSam Leffler 7361da89db5SSam Leffler ieee80211_stop(vap); 737b032f27cSSam Leffler 7385efea30fSAndrew Thompson /* 7395efea30fSAndrew Thompson * Flush any deferred vap tasks. 7405efea30fSAndrew Thompson */ 7415efea30fSAndrew Thompson ieee80211_draintask(ic, &vap->iv_nstate_task); 7425efea30fSAndrew Thompson ieee80211_draintask(ic, &vap->iv_swbmiss_task); 743e3e94c96SAdrian Chadd ieee80211_draintask(ic, &vap->iv_wme_task); 744e2db307eSAndriy Voskoboinyk ieee80211_draintask(ic, &ic->ic_parent_task); 7455efea30fSAndrew Thompson 746ab501dd6SSam Leffler /* XXX band-aid until ifnet handles this for us */ 747ab501dd6SSam Leffler taskqueue_drain(taskqueue_swi, &ifp->if_linktask); 748ab501dd6SSam Leffler 7495efea30fSAndrew Thompson IEEE80211_LOCK(ic); 7505efea30fSAndrew Thompson KASSERT(vap->iv_state == IEEE80211_S_INIT , ("vap still running")); 751b032f27cSSam Leffler TAILQ_REMOVE(&ic->ic_vaps, vap, iv_next); 752b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_WME); 753616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 754b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_TURBOP); 755616190d0SSam Leffler #endif 756b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_PCF); 757b032f27cSSam Leffler ieee80211_syncflag_locked(ic, IEEE80211_F_BURST); 7582bfc8a91SSam Leffler ieee80211_syncflag_ht_locked(ic, IEEE80211_FHT_HT); 7592bfc8a91SSam Leffler ieee80211_syncflag_ht_locked(ic, IEEE80211_FHT_USEHT40); 7608e71a4aaSAdrian Chadd 7618e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_VHT); 7628e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT40); 7638e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT80); 7648e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT80P80); 7658e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, IEEE80211_FVHT_USEVHT160); 7668e71a4aaSAdrian Chadd 7675463c4a4SSam Leffler /* NB: this handles the bpfdetach done below */ 7685463c4a4SSam Leffler ieee80211_syncflag_ext_locked(ic, IEEE80211_FEXT_BPF); 7697a79cebfSGleb Smirnoff if (vap->iv_ifflags & IFF_PROMISC) 7707a79cebfSGleb Smirnoff ieee80211_promisc(vap, false); 7717a79cebfSGleb Smirnoff if (vap->iv_ifflags & IFF_ALLMULTI) 7727a79cebfSGleb Smirnoff ieee80211_allmulti(vap, false); 773b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 774b032f27cSSam Leffler 775b032f27cSSam Leffler ifmedia_removeall(&vap->iv_media); 776b032f27cSSam Leffler 7775463c4a4SSam Leffler ieee80211_radiotap_vdetach(vap); 778b032f27cSSam Leffler ieee80211_regdomain_vdetach(vap); 779b032f27cSSam Leffler ieee80211_scan_vdetach(vap); 780616190d0SSam Leffler #ifdef IEEE80211_SUPPORT_SUPERG 781616190d0SSam Leffler ieee80211_superg_vdetach(vap); 782616190d0SSam Leffler #endif 78367f4aa38SAdrian Chadd ieee80211_vht_vdetach(vap); 784b032f27cSSam Leffler ieee80211_ht_vdetach(vap); 785b032f27cSSam Leffler /* NB: must be before ieee80211_node_vdetach */ 786b032f27cSSam Leffler ieee80211_proto_vdetach(vap); 787b032f27cSSam Leffler ieee80211_crypto_vdetach(vap); 788b032f27cSSam Leffler ieee80211_power_vdetach(vap); 789b032f27cSSam Leffler ieee80211_node_vdetach(vap); 790b032f27cSSam Leffler ieee80211_sysctl_vdetach(vap); 791b20f0ed1SWeongyo Jeong 792b20f0ed1SWeongyo Jeong if_free(ifp); 79330e4856aSAdrian Chadd 79430e4856aSAdrian Chadd CURVNET_RESTORE(); 795b032f27cSSam Leffler } 796b032f27cSSam Leffler 797b032f27cSSam Leffler /* 7987a79cebfSGleb Smirnoff * Count number of vaps in promisc, and issue promisc on 7997a79cebfSGleb Smirnoff * parent respectively. 800b032f27cSSam Leffler */ 801b032f27cSSam Leffler void 8027a79cebfSGleb Smirnoff ieee80211_promisc(struct ieee80211vap *vap, bool on) 803b032f27cSSam Leffler { 8047a79cebfSGleb Smirnoff struct ieee80211com *ic = vap->iv_ic; 805b032f27cSSam Leffler 806c6427be9SAndriy Voskoboinyk IEEE80211_LOCK_ASSERT(ic); 807c6427be9SAndriy Voskoboinyk 8087a79cebfSGleb Smirnoff if (on) { 8097a79cebfSGleb Smirnoff if (++ic->ic_promisc == 1) 810ba2c1fbcSAdrian Chadd ieee80211_runtask(ic, &ic->ic_promisc_task); 8117a79cebfSGleb Smirnoff } else { 8127a79cebfSGleb Smirnoff KASSERT(ic->ic_promisc > 0, ("%s: ic %p not promisc", 8137a79cebfSGleb Smirnoff __func__, ic)); 8147a79cebfSGleb Smirnoff if (--ic->ic_promisc == 0) 8157a79cebfSGleb Smirnoff ieee80211_runtask(ic, &ic->ic_promisc_task); 8167a79cebfSGleb Smirnoff } 8177a79cebfSGleb Smirnoff } 8187a79cebfSGleb Smirnoff 8197a79cebfSGleb Smirnoff /* 8207a79cebfSGleb Smirnoff * Count number of vaps in allmulti, and issue allmulti on 8217a79cebfSGleb Smirnoff * parent respectively. 8227a79cebfSGleb Smirnoff */ 8237a79cebfSGleb Smirnoff void 8247a79cebfSGleb Smirnoff ieee80211_allmulti(struct ieee80211vap *vap, bool on) 8257a79cebfSGleb Smirnoff { 8267a79cebfSGleb Smirnoff struct ieee80211com *ic = vap->iv_ic; 8277a79cebfSGleb Smirnoff 828c6427be9SAndriy Voskoboinyk IEEE80211_LOCK_ASSERT(ic); 829c6427be9SAndriy Voskoboinyk 8307a79cebfSGleb Smirnoff if (on) { 8317a79cebfSGleb Smirnoff if (++ic->ic_allmulti == 1) 8327a79cebfSGleb Smirnoff ieee80211_runtask(ic, &ic->ic_mcast_task); 8337a79cebfSGleb Smirnoff } else { 8347a79cebfSGleb Smirnoff KASSERT(ic->ic_allmulti > 0, ("%s: ic %p not allmulti", 8357a79cebfSGleb Smirnoff __func__, ic)); 8367a79cebfSGleb Smirnoff if (--ic->ic_allmulti == 0) 8375efea30fSAndrew Thompson ieee80211_runtask(ic, &ic->ic_mcast_task); 838b032f27cSSam Leffler } 839b032f27cSSam Leffler } 840b032f27cSSam Leffler 841b032f27cSSam Leffler /* 842b032f27cSSam Leffler * Synchronize flag bit state in the com structure 843b032f27cSSam Leffler * according to the state of all vap's. This is used, 844b032f27cSSam Leffler * for example, to handle state changes via ioctls. 845b032f27cSSam Leffler */ 846b032f27cSSam Leffler static void 847b032f27cSSam Leffler ieee80211_syncflag_locked(struct ieee80211com *ic, int flag) 848b032f27cSSam Leffler { 849b032f27cSSam Leffler struct ieee80211vap *vap; 850b032f27cSSam Leffler int bit; 851b032f27cSSam Leffler 852b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 853b032f27cSSam Leffler 854b032f27cSSam Leffler bit = 0; 855b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 856b032f27cSSam Leffler if (vap->iv_flags & flag) { 857b032f27cSSam Leffler bit = 1; 858b032f27cSSam Leffler break; 859b032f27cSSam Leffler } 860b032f27cSSam Leffler if (bit) 861b032f27cSSam Leffler ic->ic_flags |= flag; 862b032f27cSSam Leffler else 863b032f27cSSam Leffler ic->ic_flags &= ~flag; 864b032f27cSSam Leffler } 865b032f27cSSam Leffler 866b032f27cSSam Leffler void 867b032f27cSSam Leffler ieee80211_syncflag(struct ieee80211vap *vap, int flag) 868b032f27cSSam Leffler { 869b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 870b032f27cSSam Leffler 871b032f27cSSam Leffler IEEE80211_LOCK(ic); 872b032f27cSSam Leffler if (flag < 0) { 873b032f27cSSam Leffler flag = -flag; 874b032f27cSSam Leffler vap->iv_flags &= ~flag; 875b032f27cSSam Leffler } else 876b032f27cSSam Leffler vap->iv_flags |= flag; 877b032f27cSSam Leffler ieee80211_syncflag_locked(ic, flag); 878b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 879b032f27cSSam Leffler } 880b032f27cSSam Leffler 881b032f27cSSam Leffler /* 8822bfc8a91SSam Leffler * Synchronize flags_ht bit state in the com structure 8832bfc8a91SSam Leffler * according to the state of all vap's. This is used, 8842bfc8a91SSam Leffler * for example, to handle state changes via ioctls. 8852bfc8a91SSam Leffler */ 8862bfc8a91SSam Leffler static void 8872bfc8a91SSam Leffler ieee80211_syncflag_ht_locked(struct ieee80211com *ic, int flag) 8882bfc8a91SSam Leffler { 8892bfc8a91SSam Leffler struct ieee80211vap *vap; 8902bfc8a91SSam Leffler int bit; 8912bfc8a91SSam Leffler 8922bfc8a91SSam Leffler IEEE80211_LOCK_ASSERT(ic); 8932bfc8a91SSam Leffler 8942bfc8a91SSam Leffler bit = 0; 8952bfc8a91SSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 8962bfc8a91SSam Leffler if (vap->iv_flags_ht & flag) { 8972bfc8a91SSam Leffler bit = 1; 8982bfc8a91SSam Leffler break; 8992bfc8a91SSam Leffler } 9002bfc8a91SSam Leffler if (bit) 9012bfc8a91SSam Leffler ic->ic_flags_ht |= flag; 9022bfc8a91SSam Leffler else 9032bfc8a91SSam Leffler ic->ic_flags_ht &= ~flag; 9042bfc8a91SSam Leffler } 9052bfc8a91SSam Leffler 9062bfc8a91SSam Leffler void 9072bfc8a91SSam Leffler ieee80211_syncflag_ht(struct ieee80211vap *vap, int flag) 9082bfc8a91SSam Leffler { 9092bfc8a91SSam Leffler struct ieee80211com *ic = vap->iv_ic; 9102bfc8a91SSam Leffler 9112bfc8a91SSam Leffler IEEE80211_LOCK(ic); 9122bfc8a91SSam Leffler if (flag < 0) { 9132bfc8a91SSam Leffler flag = -flag; 9142bfc8a91SSam Leffler vap->iv_flags_ht &= ~flag; 9152bfc8a91SSam Leffler } else 9162bfc8a91SSam Leffler vap->iv_flags_ht |= flag; 9172bfc8a91SSam Leffler ieee80211_syncflag_ht_locked(ic, flag); 9182bfc8a91SSam Leffler IEEE80211_UNLOCK(ic); 9192bfc8a91SSam Leffler } 9202bfc8a91SSam Leffler 9212bfc8a91SSam Leffler /* 9228e71a4aaSAdrian Chadd * Synchronize flags_vht bit state in the com structure 9238e71a4aaSAdrian Chadd * according to the state of all vap's. This is used, 9248e71a4aaSAdrian Chadd * for example, to handle state changes via ioctls. 9258e71a4aaSAdrian Chadd */ 9268e71a4aaSAdrian Chadd static void 9278e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(struct ieee80211com *ic, int flag) 9288e71a4aaSAdrian Chadd { 9298e71a4aaSAdrian Chadd struct ieee80211vap *vap; 9308e71a4aaSAdrian Chadd int bit; 9318e71a4aaSAdrian Chadd 9328e71a4aaSAdrian Chadd IEEE80211_LOCK_ASSERT(ic); 9338e71a4aaSAdrian Chadd 9348e71a4aaSAdrian Chadd bit = 0; 9358e71a4aaSAdrian Chadd TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 9368e71a4aaSAdrian Chadd if (vap->iv_flags_vht & flag) { 9378e71a4aaSAdrian Chadd bit = 1; 9388e71a4aaSAdrian Chadd break; 9398e71a4aaSAdrian Chadd } 9408e71a4aaSAdrian Chadd if (bit) 9418e71a4aaSAdrian Chadd ic->ic_flags_vht |= flag; 9428e71a4aaSAdrian Chadd else 9438e71a4aaSAdrian Chadd ic->ic_flags_vht &= ~flag; 9448e71a4aaSAdrian Chadd } 9458e71a4aaSAdrian Chadd 9468e71a4aaSAdrian Chadd void 9478e71a4aaSAdrian Chadd ieee80211_syncflag_vht(struct ieee80211vap *vap, int flag) 9488e71a4aaSAdrian Chadd { 9498e71a4aaSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 9508e71a4aaSAdrian Chadd 9518e71a4aaSAdrian Chadd IEEE80211_LOCK(ic); 9528e71a4aaSAdrian Chadd if (flag < 0) { 9538e71a4aaSAdrian Chadd flag = -flag; 9548e71a4aaSAdrian Chadd vap->iv_flags_vht &= ~flag; 9558e71a4aaSAdrian Chadd } else 9568e71a4aaSAdrian Chadd vap->iv_flags_vht |= flag; 9578e71a4aaSAdrian Chadd ieee80211_syncflag_vht_locked(ic, flag); 9588e71a4aaSAdrian Chadd IEEE80211_UNLOCK(ic); 9598e71a4aaSAdrian Chadd } 9608e71a4aaSAdrian Chadd 9618e71a4aaSAdrian Chadd /* 9622bfc8a91SSam Leffler * Synchronize flags_ext bit state in the com structure 963b032f27cSSam Leffler * according to the state of all vap's. This is used, 964b032f27cSSam Leffler * for example, to handle state changes via ioctls. 965b032f27cSSam Leffler */ 966b032f27cSSam Leffler static void 967b032f27cSSam Leffler ieee80211_syncflag_ext_locked(struct ieee80211com *ic, int flag) 968b032f27cSSam Leffler { 969b032f27cSSam Leffler struct ieee80211vap *vap; 970b032f27cSSam Leffler int bit; 971b032f27cSSam Leffler 972b032f27cSSam Leffler IEEE80211_LOCK_ASSERT(ic); 973b032f27cSSam Leffler 974b032f27cSSam Leffler bit = 0; 975b032f27cSSam Leffler TAILQ_FOREACH(vap, &ic->ic_vaps, iv_next) 976b032f27cSSam Leffler if (vap->iv_flags_ext & flag) { 977b032f27cSSam Leffler bit = 1; 978b032f27cSSam Leffler break; 979b032f27cSSam Leffler } 980b032f27cSSam Leffler if (bit) 981b032f27cSSam Leffler ic->ic_flags_ext |= flag; 982b032f27cSSam Leffler else 983b032f27cSSam Leffler ic->ic_flags_ext &= ~flag; 984b032f27cSSam Leffler } 985b032f27cSSam Leffler 986b032f27cSSam Leffler void 987b032f27cSSam Leffler ieee80211_syncflag_ext(struct ieee80211vap *vap, int flag) 988b032f27cSSam Leffler { 989b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 990b032f27cSSam Leffler 991b032f27cSSam Leffler IEEE80211_LOCK(ic); 992b032f27cSSam Leffler if (flag < 0) { 993b032f27cSSam Leffler flag = -flag; 994b032f27cSSam Leffler vap->iv_flags_ext &= ~flag; 995b032f27cSSam Leffler } else 996b032f27cSSam Leffler vap->iv_flags_ext |= flag; 997b032f27cSSam Leffler ieee80211_syncflag_ext_locked(ic, flag); 998b032f27cSSam Leffler IEEE80211_UNLOCK(ic); 9991a1e1d21SSam Leffler } 10001a1e1d21SSam Leffler 1001ca4ac7aeSSam Leffler static __inline int 1002ca4ac7aeSSam Leffler mapgsm(u_int freq, u_int flags) 1003ca4ac7aeSSam Leffler { 1004ca4ac7aeSSam Leffler freq *= 10; 1005ca4ac7aeSSam Leffler if (flags & IEEE80211_CHAN_QUARTER) 1006ca4ac7aeSSam Leffler freq += 5; 1007ca4ac7aeSSam Leffler else if (flags & IEEE80211_CHAN_HALF) 1008ca4ac7aeSSam Leffler freq += 10; 1009ca4ac7aeSSam Leffler else 1010ca4ac7aeSSam Leffler freq += 20; 1011ca4ac7aeSSam Leffler /* NB: there is no 907/20 wide but leave room */ 1012ca4ac7aeSSam Leffler return (freq - 906*10) / 5; 1013ca4ac7aeSSam Leffler } 1014ca4ac7aeSSam Leffler 1015ca4ac7aeSSam Leffler static __inline int 1016ca4ac7aeSSam Leffler mappsb(u_int freq, u_int flags) 1017ca4ac7aeSSam Leffler { 1018ca4ac7aeSSam Leffler return 37 + ((freq * 10) + ((freq % 5) == 2 ? 5 : 0) - 49400) / 5; 1019ca4ac7aeSSam Leffler } 1020ca4ac7aeSSam Leffler 10211a1e1d21SSam Leffler /* 10221a1e1d21SSam Leffler * Convert MHz frequency to IEEE channel number. 10231a1e1d21SSam Leffler */ 10246f322b78SSam Leffler int 10251a1e1d21SSam Leffler ieee80211_mhz2ieee(u_int freq, u_int flags) 10261a1e1d21SSam Leffler { 102711df4239SSam Leffler #define IS_FREQ_IN_PSB(_freq) ((_freq) > 4940 && (_freq) < 4990) 1028ca4ac7aeSSam Leffler if (flags & IEEE80211_CHAN_GSM) 1029ca4ac7aeSSam Leffler return mapgsm(freq, flags); 10301a1e1d21SSam Leffler if (flags & IEEE80211_CHAN_2GHZ) { /* 2GHz band */ 10311a1e1d21SSam Leffler if (freq == 2484) 10321a1e1d21SSam Leffler return 14; 10331a1e1d21SSam Leffler if (freq < 2484) 10346f322b78SSam Leffler return ((int) freq - 2407) / 5; 10351a1e1d21SSam Leffler else 10361a1e1d21SSam Leffler return 15 + ((freq - 2512) / 20); 1037c032abb5SSam Leffler } else if (flags & IEEE80211_CHAN_5GHZ) { /* 5Ghz band */ 103841b3c790SSam Leffler if (freq <= 5000) { 103968e8e04eSSam Leffler /* XXX check regdomain? */ 104011df4239SSam Leffler if (IS_FREQ_IN_PSB(freq)) 1041ca4ac7aeSSam Leffler return mappsb(freq, flags); 10426f322b78SSam Leffler return (freq - 4000) / 5; 104341b3c790SSam Leffler } else 10441a1e1d21SSam Leffler return (freq - 5000) / 5; 10451a1e1d21SSam Leffler } else { /* either, guess */ 10461a1e1d21SSam Leffler if (freq == 2484) 10471a1e1d21SSam Leffler return 14; 1048ca4ac7aeSSam Leffler if (freq < 2484) { 1049ca4ac7aeSSam Leffler if (907 <= freq && freq <= 922) 1050ca4ac7aeSSam Leffler return mapgsm(freq, flags); 10516f322b78SSam Leffler return ((int) freq - 2407) / 5; 1052ca4ac7aeSSam Leffler } 10536f322b78SSam Leffler if (freq < 5000) { 105411df4239SSam Leffler if (IS_FREQ_IN_PSB(freq)) 1055ca4ac7aeSSam Leffler return mappsb(freq, flags); 105641b3c790SSam Leffler else if (freq > 4900) 10576f322b78SSam Leffler return (freq - 4000) / 5; 10586f322b78SSam Leffler else 10591a1e1d21SSam Leffler return 15 + ((freq - 2512) / 20); 10606f322b78SSam Leffler } 10611a1e1d21SSam Leffler return (freq - 5000) / 5; 10621a1e1d21SSam Leffler } 106311df4239SSam Leffler #undef IS_FREQ_IN_PSB 10641a1e1d21SSam Leffler } 10651a1e1d21SSam Leffler 10661a1e1d21SSam Leffler /* 10671a1e1d21SSam Leffler * Convert channel to IEEE channel number. 10681a1e1d21SSam Leffler */ 10696f322b78SSam Leffler int 107038da1496SMatt Jacob ieee80211_chan2ieee(struct ieee80211com *ic, const struct ieee80211_channel *c) 10711a1e1d21SSam Leffler { 107268e8e04eSSam Leffler if (c == NULL) { 1073c8f5794eSGleb Smirnoff ic_printf(ic, "invalid channel (NULL)\n"); 10748be0d570SSam Leffler return 0; /* XXX */ 10751a1e1d21SSam Leffler } 107668e8e04eSSam Leffler return (c == IEEE80211_CHAN_ANYC ? IEEE80211_CHAN_ANY : c->ic_ieee); 10771a1e1d21SSam Leffler } 10781a1e1d21SSam Leffler 10791a1e1d21SSam Leffler /* 10801a1e1d21SSam Leffler * Convert IEEE channel number to MHz frequency. 10811a1e1d21SSam Leffler */ 10821a1e1d21SSam Leffler u_int 10831a1e1d21SSam Leffler ieee80211_ieee2mhz(u_int chan, u_int flags) 10841a1e1d21SSam Leffler { 1085ca4ac7aeSSam Leffler if (flags & IEEE80211_CHAN_GSM) 1086ca4ac7aeSSam Leffler return 907 + 5 * (chan / 10); 10871a1e1d21SSam Leffler if (flags & IEEE80211_CHAN_2GHZ) { /* 2GHz band */ 10881a1e1d21SSam Leffler if (chan == 14) 10891a1e1d21SSam Leffler return 2484; 10901a1e1d21SSam Leffler if (chan < 14) 10911a1e1d21SSam Leffler return 2407 + chan*5; 10921a1e1d21SSam Leffler else 10931a1e1d21SSam Leffler return 2512 + ((chan-15)*20); 10941a1e1d21SSam Leffler } else if (flags & IEEE80211_CHAN_5GHZ) {/* 5Ghz band */ 109541b3c790SSam Leffler if (flags & (IEEE80211_CHAN_HALF|IEEE80211_CHAN_QUARTER)) { 109641b3c790SSam Leffler chan -= 37; 109741b3c790SSam Leffler return 4940 + chan*5 + (chan % 5 ? 2 : 0); 109841b3c790SSam Leffler } 10991a1e1d21SSam Leffler return 5000 + (chan*5); 11001a1e1d21SSam Leffler } else { /* either, guess */ 1101ca4ac7aeSSam Leffler /* XXX can't distinguish PSB+GSM channels */ 11021a1e1d21SSam Leffler if (chan == 14) 11031a1e1d21SSam Leffler return 2484; 11041a1e1d21SSam Leffler if (chan < 14) /* 0-13 */ 11051a1e1d21SSam Leffler return 2407 + chan*5; 11061a1e1d21SSam Leffler if (chan < 27) /* 15-26 */ 11071a1e1d21SSam Leffler return 2512 + ((chan-15)*20); 11081a1e1d21SSam Leffler return 5000 + (chan*5); 11091a1e1d21SSam Leffler } 11101a1e1d21SSam Leffler } 11111a1e1d21SSam Leffler 1112355fec48SAndriy Voskoboinyk static __inline void 1113355fec48SAndriy Voskoboinyk set_extchan(struct ieee80211_channel *c) 1114355fec48SAndriy Voskoboinyk { 1115355fec48SAndriy Voskoboinyk 1116355fec48SAndriy Voskoboinyk /* 1117355fec48SAndriy Voskoboinyk * IEEE Std 802.11-2012, page 1738, subclause 20.3.15.4: 1118355fec48SAndriy Voskoboinyk * "the secondary channel number shall be 'N + [1,-1] * 4' 1119355fec48SAndriy Voskoboinyk */ 1120355fec48SAndriy Voskoboinyk if (c->ic_flags & IEEE80211_CHAN_HT40U) 1121355fec48SAndriy Voskoboinyk c->ic_extieee = c->ic_ieee + 4; 1122355fec48SAndriy Voskoboinyk else if (c->ic_flags & IEEE80211_CHAN_HT40D) 1123355fec48SAndriy Voskoboinyk c->ic_extieee = c->ic_ieee - 4; 1124355fec48SAndriy Voskoboinyk else 1125355fec48SAndriy Voskoboinyk c->ic_extieee = 0; 1126355fec48SAndriy Voskoboinyk } 1127355fec48SAndriy Voskoboinyk 112867f4aa38SAdrian Chadd /* 112967f4aa38SAdrian Chadd * Populate the freq1/freq2 fields as appropriate for VHT channels. 113067f4aa38SAdrian Chadd * 113167f4aa38SAdrian Chadd * This for now uses a hard-coded list of 80MHz wide channels. 113267f4aa38SAdrian Chadd * 113367f4aa38SAdrian Chadd * For HT20/HT40, freq1 just is the centre frequency of the 40MHz 113467f4aa38SAdrian Chadd * wide channel we've already decided upon. 113567f4aa38SAdrian Chadd * 113667f4aa38SAdrian Chadd * For VHT80 and VHT160, there are only a small number of fixed 113767f4aa38SAdrian Chadd * 80/160MHz wide channels, so we just use those. 113867f4aa38SAdrian Chadd * 113967f4aa38SAdrian Chadd * This is all likely very very wrong - both the regulatory code 114067f4aa38SAdrian Chadd * and this code needs to ensure that all four channels are 114167f4aa38SAdrian Chadd * available and valid before the VHT80 (and eight for VHT160) channel 114267f4aa38SAdrian Chadd * is created. 114367f4aa38SAdrian Chadd */ 114467f4aa38SAdrian Chadd 114567f4aa38SAdrian Chadd struct vht_chan_range { 114667f4aa38SAdrian Chadd uint16_t freq_start; 114767f4aa38SAdrian Chadd uint16_t freq_end; 114867f4aa38SAdrian Chadd }; 114967f4aa38SAdrian Chadd 115067f4aa38SAdrian Chadd struct vht_chan_range vht80_chan_ranges[] = { 115167f4aa38SAdrian Chadd { 5170, 5250 }, 115267f4aa38SAdrian Chadd { 5250, 5330 }, 115367f4aa38SAdrian Chadd { 5490, 5570 }, 115467f4aa38SAdrian Chadd { 5570, 5650 }, 115567f4aa38SAdrian Chadd { 5650, 5730 }, 115667f4aa38SAdrian Chadd { 5735, 5815 }, 115767f4aa38SAdrian Chadd { 0, 0, } 115867f4aa38SAdrian Chadd }; 115967f4aa38SAdrian Chadd 116067f4aa38SAdrian Chadd static int 116167f4aa38SAdrian Chadd set_vht_extchan(struct ieee80211_channel *c) 116267f4aa38SAdrian Chadd { 116367f4aa38SAdrian Chadd int i; 116467f4aa38SAdrian Chadd 116567f4aa38SAdrian Chadd if (! IEEE80211_IS_CHAN_VHT(c)) { 116667f4aa38SAdrian Chadd return (0); 116767f4aa38SAdrian Chadd } 116867f4aa38SAdrian Chadd 116967f4aa38SAdrian Chadd if (IEEE80211_IS_CHAN_VHT20(c)) { 117067f4aa38SAdrian Chadd c->ic_vht_ch_freq1 = c->ic_ieee; 117167f4aa38SAdrian Chadd return (1); 117267f4aa38SAdrian Chadd } 117367f4aa38SAdrian Chadd 117467f4aa38SAdrian Chadd if (IEEE80211_IS_CHAN_VHT40(c)) { 117567f4aa38SAdrian Chadd if (IEEE80211_IS_CHAN_HT40U(c)) 117667f4aa38SAdrian Chadd c->ic_vht_ch_freq1 = c->ic_ieee + 2; 117767f4aa38SAdrian Chadd else if (IEEE80211_IS_CHAN_HT40D(c)) 117867f4aa38SAdrian Chadd c->ic_vht_ch_freq1 = c->ic_ieee - 2; 117967f4aa38SAdrian Chadd else 118067f4aa38SAdrian Chadd return (0); 118167f4aa38SAdrian Chadd return (1); 118267f4aa38SAdrian Chadd } 118367f4aa38SAdrian Chadd 118467f4aa38SAdrian Chadd if (IEEE80211_IS_CHAN_VHT80(c)) { 118567f4aa38SAdrian Chadd for (i = 0; vht80_chan_ranges[i].freq_start != 0; i++) { 118667f4aa38SAdrian Chadd if (c->ic_freq >= vht80_chan_ranges[i].freq_start && 118767f4aa38SAdrian Chadd c->ic_freq < vht80_chan_ranges[i].freq_end) { 118867f4aa38SAdrian Chadd int midpoint; 118967f4aa38SAdrian Chadd 119067f4aa38SAdrian Chadd midpoint = vht80_chan_ranges[i].freq_start + 40; 119167f4aa38SAdrian Chadd c->ic_vht_ch_freq1 = 119267f4aa38SAdrian Chadd ieee80211_mhz2ieee(midpoint, c->ic_flags); 119367f4aa38SAdrian Chadd c->ic_vht_ch_freq2 = 0; 119467f4aa38SAdrian Chadd #if 0 119567f4aa38SAdrian Chadd printf("%s: %d, freq=%d, midpoint=%d, freq1=%d, freq2=%d\n", 119667f4aa38SAdrian Chadd __func__, c->ic_ieee, c->ic_freq, midpoint, 119767f4aa38SAdrian Chadd c->ic_vht_ch_freq1, c->ic_vht_ch_freq2); 119867f4aa38SAdrian Chadd #endif 119967f4aa38SAdrian Chadd return (1); 120067f4aa38SAdrian Chadd } 120167f4aa38SAdrian Chadd } 120267f4aa38SAdrian Chadd return (0); 120367f4aa38SAdrian Chadd } 120467f4aa38SAdrian Chadd 120567f4aa38SAdrian Chadd printf("%s: unknown VHT channel type (ieee=%d, flags=0x%08x)\n", 120667f4aa38SAdrian Chadd __func__, 120767f4aa38SAdrian Chadd c->ic_ieee, 120867f4aa38SAdrian Chadd c->ic_flags); 120967f4aa38SAdrian Chadd 121067f4aa38SAdrian Chadd return (0); 121167f4aa38SAdrian Chadd } 121267f4aa38SAdrian Chadd 121367f4aa38SAdrian Chadd /* 121467f4aa38SAdrian Chadd * Return whether the current channel could possibly be a part of 121567f4aa38SAdrian Chadd * a VHT80 channel. 121667f4aa38SAdrian Chadd * 121767f4aa38SAdrian Chadd * This doesn't check that the whole range is in the allowed list 121867f4aa38SAdrian Chadd * according to regulatory. 121967f4aa38SAdrian Chadd */ 122067f4aa38SAdrian Chadd static int 122167f4aa38SAdrian Chadd is_vht80_valid_freq(uint16_t freq) 122267f4aa38SAdrian Chadd { 122367f4aa38SAdrian Chadd int i; 122467f4aa38SAdrian Chadd for (i = 0; vht80_chan_ranges[i].freq_start != 0; i++) { 122567f4aa38SAdrian Chadd if (freq >= vht80_chan_ranges[i].freq_start && 122667f4aa38SAdrian Chadd freq < vht80_chan_ranges[i].freq_end) 122767f4aa38SAdrian Chadd return (1); 122867f4aa38SAdrian Chadd } 122967f4aa38SAdrian Chadd return (0); 123067f4aa38SAdrian Chadd } 123167f4aa38SAdrian Chadd 1232355fec48SAndriy Voskoboinyk static int 1233355fec48SAndriy Voskoboinyk addchan(struct ieee80211_channel chans[], int maxchans, int *nchans, 1234355fec48SAndriy Voskoboinyk uint8_t ieee, uint16_t freq, int8_t maxregpower, uint32_t flags) 1235355fec48SAndriy Voskoboinyk { 1236355fec48SAndriy Voskoboinyk struct ieee80211_channel *c; 1237355fec48SAndriy Voskoboinyk 1238355fec48SAndriy Voskoboinyk if (*nchans >= maxchans) 1239355fec48SAndriy Voskoboinyk return (ENOBUFS); 1240355fec48SAndriy Voskoboinyk 124167f4aa38SAdrian Chadd #if 0 124267f4aa38SAdrian Chadd printf("%s: %d: ieee=%d, freq=%d, flags=0x%08x\n", 124367f4aa38SAdrian Chadd __func__, 124467f4aa38SAdrian Chadd *nchans, 124567f4aa38SAdrian Chadd ieee, 124667f4aa38SAdrian Chadd freq, 124767f4aa38SAdrian Chadd flags); 124867f4aa38SAdrian Chadd #endif 124967f4aa38SAdrian Chadd 1250355fec48SAndriy Voskoboinyk c = &chans[(*nchans)++]; 1251355fec48SAndriy Voskoboinyk c->ic_ieee = ieee; 1252355fec48SAndriy Voskoboinyk c->ic_freq = freq != 0 ? freq : ieee80211_ieee2mhz(ieee, flags); 1253355fec48SAndriy Voskoboinyk c->ic_maxregpower = maxregpower; 1254355fec48SAndriy Voskoboinyk c->ic_maxpower = 2 * maxregpower; 1255355fec48SAndriy Voskoboinyk c->ic_flags = flags; 125667f4aa38SAdrian Chadd c->ic_vht_ch_freq1 = 0; 125767f4aa38SAdrian Chadd c->ic_vht_ch_freq2 = 0; 1258355fec48SAndriy Voskoboinyk set_extchan(c); 125967f4aa38SAdrian Chadd set_vht_extchan(c); 1260355fec48SAndriy Voskoboinyk 1261355fec48SAndriy Voskoboinyk return (0); 1262355fec48SAndriy Voskoboinyk } 1263355fec48SAndriy Voskoboinyk 1264355fec48SAndriy Voskoboinyk static int 1265355fec48SAndriy Voskoboinyk copychan_prev(struct ieee80211_channel chans[], int maxchans, int *nchans, 1266355fec48SAndriy Voskoboinyk uint32_t flags) 1267355fec48SAndriy Voskoboinyk { 1268355fec48SAndriy Voskoboinyk struct ieee80211_channel *c; 1269355fec48SAndriy Voskoboinyk 1270355fec48SAndriy Voskoboinyk KASSERT(*nchans > 0, ("channel list is empty\n")); 1271355fec48SAndriy Voskoboinyk 1272355fec48SAndriy Voskoboinyk if (*nchans >= maxchans) 1273355fec48SAndriy Voskoboinyk return (ENOBUFS); 1274355fec48SAndriy Voskoboinyk 127567f4aa38SAdrian Chadd #if 0 127667f4aa38SAdrian Chadd printf("%s: %d: flags=0x%08x\n", 127767f4aa38SAdrian Chadd __func__, 127867f4aa38SAdrian Chadd *nchans, 127967f4aa38SAdrian Chadd flags); 128067f4aa38SAdrian Chadd #endif 128167f4aa38SAdrian Chadd 1282355fec48SAndriy Voskoboinyk c = &chans[(*nchans)++]; 1283355fec48SAndriy Voskoboinyk c[0] = c[-1]; 1284355fec48SAndriy Voskoboinyk c->ic_flags = flags; 128567f4aa38SAdrian Chadd c->ic_vht_ch_freq1 = 0; 128667f4aa38SAdrian Chadd c->ic_vht_ch_freq2 = 0; 1287355fec48SAndriy Voskoboinyk set_extchan(c); 128867f4aa38SAdrian Chadd set_vht_extchan(c); 1289355fec48SAndriy Voskoboinyk 1290355fec48SAndriy Voskoboinyk return (0); 1291355fec48SAndriy Voskoboinyk } 1292355fec48SAndriy Voskoboinyk 129367f4aa38SAdrian Chadd /* 129467f4aa38SAdrian Chadd * XXX VHT-2GHz 129567f4aa38SAdrian Chadd */ 1296355fec48SAndriy Voskoboinyk static void 1297355fec48SAndriy Voskoboinyk getflags_2ghz(const uint8_t bands[], uint32_t flags[], int ht40) 1298355fec48SAndriy Voskoboinyk { 1299355fec48SAndriy Voskoboinyk int nmodes; 1300355fec48SAndriy Voskoboinyk 1301355fec48SAndriy Voskoboinyk nmodes = 0; 1302355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11B)) 1303355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_B; 1304355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11G)) 1305355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_G; 1306355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11NG)) 1307355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_G | IEEE80211_CHAN_HT20; 1308355fec48SAndriy Voskoboinyk if (ht40) { 1309355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_G | IEEE80211_CHAN_HT40U; 1310355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_G | IEEE80211_CHAN_HT40D; 1311355fec48SAndriy Voskoboinyk } 1312355fec48SAndriy Voskoboinyk flags[nmodes] = 0; 1313355fec48SAndriy Voskoboinyk } 1314355fec48SAndriy Voskoboinyk 1315355fec48SAndriy Voskoboinyk static void 131667f4aa38SAdrian Chadd getflags_5ghz(const uint8_t bands[], uint32_t flags[], int ht40, int vht80) 1317355fec48SAndriy Voskoboinyk { 1318355fec48SAndriy Voskoboinyk int nmodes; 1319355fec48SAndriy Voskoboinyk 132067f4aa38SAdrian Chadd /* 132167f4aa38SAdrian Chadd * the addchan_list function seems to expect the flags array to 132267f4aa38SAdrian Chadd * be in channel width order, so the VHT bits are interspersed 132367f4aa38SAdrian Chadd * as appropriate to maintain said order. 132467f4aa38SAdrian Chadd * 132567f4aa38SAdrian Chadd * It also assumes HT40U is before HT40D. 132667f4aa38SAdrian Chadd */ 1327355fec48SAndriy Voskoboinyk nmodes = 0; 132867f4aa38SAdrian Chadd 132967f4aa38SAdrian Chadd /* 20MHz */ 1330355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11A)) 1331355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_A; 1332355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11NA)) 1333355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_A | IEEE80211_CHAN_HT20; 133467f4aa38SAdrian Chadd if (isset(bands, IEEE80211_MODE_VHT_5GHZ)) { 133567f4aa38SAdrian Chadd flags[nmodes++] = IEEE80211_CHAN_A | IEEE80211_CHAN_HT20 | 133667f4aa38SAdrian Chadd IEEE80211_CHAN_VHT20; 133798ff1f7cSAndriy Voskoboinyk } 133867f4aa38SAdrian Chadd 133967f4aa38SAdrian Chadd /* 40MHz */ 1340355fec48SAndriy Voskoboinyk if (ht40) { 1341355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_A | IEEE80211_CHAN_HT40U; 134267f4aa38SAdrian Chadd } 134367f4aa38SAdrian Chadd if (ht40 && isset(bands, IEEE80211_MODE_VHT_5GHZ)) { 134467f4aa38SAdrian Chadd flags[nmodes++] = IEEE80211_CHAN_A | IEEE80211_CHAN_HT40U 134567f4aa38SAdrian Chadd | IEEE80211_CHAN_VHT40U; 134667f4aa38SAdrian Chadd } 134767f4aa38SAdrian Chadd if (ht40) { 1348355fec48SAndriy Voskoboinyk flags[nmodes++] = IEEE80211_CHAN_A | IEEE80211_CHAN_HT40D; 1349355fec48SAndriy Voskoboinyk } 135067f4aa38SAdrian Chadd if (ht40 && isset(bands, IEEE80211_MODE_VHT_5GHZ)) { 135167f4aa38SAdrian Chadd flags[nmodes++] = IEEE80211_CHAN_A | IEEE80211_CHAN_HT40D 135267f4aa38SAdrian Chadd | IEEE80211_CHAN_VHT40D; 135367f4aa38SAdrian Chadd } 135467f4aa38SAdrian Chadd 135567f4aa38SAdrian Chadd /* 80MHz */ 135667f4aa38SAdrian Chadd if (vht80 && isset(bands, IEEE80211_MODE_VHT_5GHZ)) { 135767f4aa38SAdrian Chadd flags[nmodes++] = IEEE80211_CHAN_A | 135867f4aa38SAdrian Chadd IEEE80211_CHAN_HT40U | IEEE80211_CHAN_VHT80; 135967f4aa38SAdrian Chadd flags[nmodes++] = IEEE80211_CHAN_A | 136067f4aa38SAdrian Chadd IEEE80211_CHAN_HT40D | IEEE80211_CHAN_VHT80; 136167f4aa38SAdrian Chadd } 136267f4aa38SAdrian Chadd 136367f4aa38SAdrian Chadd /* XXX VHT80+80 */ 136467f4aa38SAdrian Chadd /* XXX VHT160 */ 1365355fec48SAndriy Voskoboinyk flags[nmodes] = 0; 1366355fec48SAndriy Voskoboinyk } 1367355fec48SAndriy Voskoboinyk 1368355fec48SAndriy Voskoboinyk static void 136967f4aa38SAdrian Chadd getflags(const uint8_t bands[], uint32_t flags[], int ht40, int vht80) 1370355fec48SAndriy Voskoboinyk { 1371355fec48SAndriy Voskoboinyk 1372355fec48SAndriy Voskoboinyk flags[0] = 0; 1373355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11A) || 137467f4aa38SAdrian Chadd isset(bands, IEEE80211_MODE_11NA) || 137567f4aa38SAdrian Chadd isset(bands, IEEE80211_MODE_VHT_5GHZ)) { 1376355fec48SAndriy Voskoboinyk if (isset(bands, IEEE80211_MODE_11B) || 1377355fec48SAndriy Voskoboinyk isset(bands, IEEE80211_MODE_11G) || 137867f4aa38SAdrian Chadd isset(bands, IEEE80211_MODE_11NG) || 137967f4aa38SAdrian Chadd isset(bands, IEEE80211_MODE_VHT_2GHZ)) 1380355fec48SAndriy Voskoboinyk return; 1381355fec48SAndriy Voskoboinyk 138267f4aa38SAdrian Chadd getflags_5ghz(bands, flags, ht40, vht80); 1383355fec48SAndriy Voskoboinyk } else 1384355fec48SAndriy Voskoboinyk getflags_2ghz(bands, flags, ht40); 1385355fec48SAndriy Voskoboinyk } 1386355fec48SAndriy Voskoboinyk 1387355fec48SAndriy Voskoboinyk /* 1388355fec48SAndriy Voskoboinyk * Add one 20 MHz channel into specified channel list. 1389355fec48SAndriy Voskoboinyk */ 139067f4aa38SAdrian Chadd /* XXX VHT */ 1391355fec48SAndriy Voskoboinyk int 1392355fec48SAndriy Voskoboinyk ieee80211_add_channel(struct ieee80211_channel chans[], int maxchans, 1393355fec48SAndriy Voskoboinyk int *nchans, uint8_t ieee, uint16_t freq, int8_t maxregpower, 1394355fec48SAndriy Voskoboinyk uint32_t chan_flags, const uint8_t bands[]) 1395355fec48SAndriy Voskoboinyk { 1396355fec48SAndriy Voskoboinyk uint32_t flags[IEEE80211_MODE_MAX]; 1397355fec48SAndriy Voskoboinyk int i, error; 1398355fec48SAndriy Voskoboinyk 139967f4aa38SAdrian Chadd getflags(bands, flags, 0, 0); 1400355fec48SAndriy Voskoboinyk KASSERT(flags[0] != 0, ("%s: no correct mode provided\n", __func__)); 1401355fec48SAndriy Voskoboinyk 1402355fec48SAndriy Voskoboinyk error = addchan(chans, maxchans, nchans, ieee, freq, maxregpower, 1403355fec48SAndriy Voskoboinyk flags[0] | chan_flags); 1404355fec48SAndriy Voskoboinyk for (i = 1; flags[i] != 0 && error == 0; i++) { 1405355fec48SAndriy Voskoboinyk error = copychan_prev(chans, maxchans, nchans, 1406355fec48SAndriy Voskoboinyk flags[i] | chan_flags); 1407355fec48SAndriy Voskoboinyk } 1408355fec48SAndriy Voskoboinyk 1409355fec48SAndriy Voskoboinyk return (error); 1410355fec48SAndriy Voskoboinyk } 1411355fec48SAndriy Voskoboinyk 1412355fec48SAndriy Voskoboinyk static struct ieee80211_channel * 1413355fec48SAndriy Voskoboinyk findchannel(struct ieee80211_channel chans[], int nchans, uint16_t freq, 1414355fec48SAndriy Voskoboinyk uint32_t flags) 1415355fec48SAndriy Voskoboinyk { 1416355fec48SAndriy Voskoboinyk struct ieee80211_channel *c; 1417355fec48SAndriy Voskoboinyk int i; 1418355fec48SAndriy Voskoboinyk 1419355fec48SAndriy Voskoboinyk flags &= IEEE80211_CHAN_ALLTURBO; 1420355fec48SAndriy Voskoboinyk /* brute force search */ 1421355fec48SAndriy Voskoboinyk for (i = 0; i < nchans; i++) { 1422355fec48SAndriy Voskoboinyk c = &chans[i]; 1423355fec48SAndriy Voskoboinyk if (c->ic_freq == freq && 1424355fec48SAndriy Voskoboinyk (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags) 1425355fec48SAndriy Voskoboinyk return c; 1426355fec48SAndriy Voskoboinyk } 1427355fec48SAndriy Voskoboinyk return NULL; 1428355fec48SAndriy Voskoboinyk } 1429355fec48SAndriy Voskoboinyk 1430355fec48SAndriy Voskoboinyk /* 1431355fec48SAndriy Voskoboinyk * Add 40 MHz channel pair into specified channel list. 1432355fec48SAndriy Voskoboinyk */ 143367f4aa38SAdrian Chadd /* XXX VHT */ 1434355fec48SAndriy Voskoboinyk int 1435355fec48SAndriy Voskoboinyk ieee80211_add_channel_ht40(struct ieee80211_channel chans[], int maxchans, 1436355fec48SAndriy Voskoboinyk int *nchans, uint8_t ieee, int8_t maxregpower, uint32_t flags) 1437355fec48SAndriy Voskoboinyk { 1438355fec48SAndriy Voskoboinyk struct ieee80211_channel *cent, *extc; 1439355fec48SAndriy Voskoboinyk uint16_t freq; 1440355fec48SAndriy Voskoboinyk int error; 1441355fec48SAndriy Voskoboinyk 1442355fec48SAndriy Voskoboinyk freq = ieee80211_ieee2mhz(ieee, flags); 1443355fec48SAndriy Voskoboinyk 1444355fec48SAndriy Voskoboinyk /* 1445355fec48SAndriy Voskoboinyk * Each entry defines an HT40 channel pair; find the 1446355fec48SAndriy Voskoboinyk * center channel, then the extension channel above. 1447355fec48SAndriy Voskoboinyk */ 1448355fec48SAndriy Voskoboinyk flags |= IEEE80211_CHAN_HT20; 1449355fec48SAndriy Voskoboinyk cent = findchannel(chans, *nchans, freq, flags); 1450355fec48SAndriy Voskoboinyk if (cent == NULL) 1451355fec48SAndriy Voskoboinyk return (EINVAL); 1452355fec48SAndriy Voskoboinyk 1453355fec48SAndriy Voskoboinyk extc = findchannel(chans, *nchans, freq + 20, flags); 1454355fec48SAndriy Voskoboinyk if (extc == NULL) 1455355fec48SAndriy Voskoboinyk return (ENOENT); 1456355fec48SAndriy Voskoboinyk 1457355fec48SAndriy Voskoboinyk flags &= ~IEEE80211_CHAN_HT; 1458355fec48SAndriy Voskoboinyk error = addchan(chans, maxchans, nchans, cent->ic_ieee, cent->ic_freq, 1459355fec48SAndriy Voskoboinyk maxregpower, flags | IEEE80211_CHAN_HT40U); 1460355fec48SAndriy Voskoboinyk if (error != 0) 1461355fec48SAndriy Voskoboinyk return (error); 1462355fec48SAndriy Voskoboinyk 1463355fec48SAndriy Voskoboinyk error = addchan(chans, maxchans, nchans, extc->ic_ieee, extc->ic_freq, 1464355fec48SAndriy Voskoboinyk maxregpower, flags | IEEE80211_CHAN_HT40D); 1465355fec48SAndriy Voskoboinyk 1466355fec48SAndriy Voskoboinyk return (error); 1467355fec48SAndriy Voskoboinyk } 1468355fec48SAndriy Voskoboinyk 1469355fec48SAndriy Voskoboinyk /* 14704774b999SAdrian Chadd * Fetch the center frequency for the primary channel. 14714774b999SAdrian Chadd */ 14724774b999SAdrian Chadd uint32_t 14734774b999SAdrian Chadd ieee80211_get_channel_center_freq(const struct ieee80211_channel *c) 14744774b999SAdrian Chadd { 14754774b999SAdrian Chadd 14764774b999SAdrian Chadd return (c->ic_freq); 14774774b999SAdrian Chadd } 14784774b999SAdrian Chadd 14794774b999SAdrian Chadd /* 14804774b999SAdrian Chadd * Fetch the center frequency for the primary BAND channel. 14814774b999SAdrian Chadd * 14824774b999SAdrian Chadd * For 5, 10, 20MHz channels it'll be the normally configured channel 14834774b999SAdrian Chadd * frequency. 14844774b999SAdrian Chadd * 14854774b999SAdrian Chadd * For 40MHz, 80MHz, 160Mhz channels it'll the the centre of the 14864774b999SAdrian Chadd * wide channel, not the centre of the primary channel (that's ic_freq). 14874774b999SAdrian Chadd * 14884774b999SAdrian Chadd * For 80+80MHz channels this will be the centre of the primary 14894774b999SAdrian Chadd * 80MHz channel; the secondary 80MHz channel will be center_freq2(). 14904774b999SAdrian Chadd */ 14914774b999SAdrian Chadd uint32_t 14924774b999SAdrian Chadd ieee80211_get_channel_center_freq1(const struct ieee80211_channel *c) 14934774b999SAdrian Chadd { 14944774b999SAdrian Chadd 149567f4aa38SAdrian Chadd /* 149667f4aa38SAdrian Chadd * VHT - use the pre-calculated centre frequency 149767f4aa38SAdrian Chadd * of the given channel. 149867f4aa38SAdrian Chadd */ 149967f4aa38SAdrian Chadd if (IEEE80211_IS_CHAN_VHT(c)) 150067f4aa38SAdrian Chadd return (ieee80211_ieee2mhz(c->ic_vht_ch_freq1, c->ic_flags)); 150167f4aa38SAdrian Chadd 15024774b999SAdrian Chadd if (IEEE80211_IS_CHAN_HT40U(c)) { 15034774b999SAdrian Chadd return (c->ic_freq + 10); 15044774b999SAdrian Chadd } 15054774b999SAdrian Chadd if (IEEE80211_IS_CHAN_HT40D(c)) { 15064774b999SAdrian Chadd return (c->ic_freq - 10); 15074774b999SAdrian Chadd } 15084774b999SAdrian Chadd 15094774b999SAdrian Chadd return (c->ic_freq); 15104774b999SAdrian Chadd } 15114774b999SAdrian Chadd 15124774b999SAdrian Chadd /* 151367f4aa38SAdrian Chadd * For now, no 80+80 support; it will likely always return 0. 15144774b999SAdrian Chadd */ 15154774b999SAdrian Chadd uint32_t 15164774b999SAdrian Chadd ieee80211_get_channel_center_freq2(const struct ieee80211_channel *c) 15174774b999SAdrian Chadd { 15184774b999SAdrian Chadd 151967f4aa38SAdrian Chadd if (IEEE80211_IS_CHAN_VHT(c) && (c->ic_vht_ch_freq2 != 0)) 152067f4aa38SAdrian Chadd return (ieee80211_ieee2mhz(c->ic_vht_ch_freq2, c->ic_flags)); 152167f4aa38SAdrian Chadd 15224774b999SAdrian Chadd return (0); 15234774b999SAdrian Chadd } 15244774b999SAdrian Chadd 15254774b999SAdrian Chadd /* 1526355fec48SAndriy Voskoboinyk * Adds channels into specified channel list (ieee[] array must be sorted). 1527355fec48SAndriy Voskoboinyk * Channels are already sorted. 1528355fec48SAndriy Voskoboinyk */ 1529355fec48SAndriy Voskoboinyk static int 1530355fec48SAndriy Voskoboinyk add_chanlist(struct ieee80211_channel chans[], int maxchans, int *nchans, 1531355fec48SAndriy Voskoboinyk const uint8_t ieee[], int nieee, uint32_t flags[]) 1532355fec48SAndriy Voskoboinyk { 1533355fec48SAndriy Voskoboinyk uint16_t freq; 1534355fec48SAndriy Voskoboinyk int i, j, error; 153567f4aa38SAdrian Chadd int is_vht; 1536355fec48SAndriy Voskoboinyk 1537355fec48SAndriy Voskoboinyk for (i = 0; i < nieee; i++) { 1538355fec48SAndriy Voskoboinyk freq = ieee80211_ieee2mhz(ieee[i], flags[0]); 1539355fec48SAndriy Voskoboinyk for (j = 0; flags[j] != 0; j++) { 154067f4aa38SAdrian Chadd /* 154167f4aa38SAdrian Chadd * Notes: 154267f4aa38SAdrian Chadd * + HT40 and VHT40 channels occur together, so 154367f4aa38SAdrian Chadd * we need to be careful that we actually allow that. 154467f4aa38SAdrian Chadd * + VHT80, VHT160 will coexist with HT40/VHT40, so 154567f4aa38SAdrian Chadd * make sure it's not skipped because of the overlap 154667f4aa38SAdrian Chadd * check used for (V)HT40. 154767f4aa38SAdrian Chadd */ 154867f4aa38SAdrian Chadd is_vht = !! (flags[j] & IEEE80211_CHAN_VHT); 154967f4aa38SAdrian Chadd 155067f4aa38SAdrian Chadd /* 155167f4aa38SAdrian Chadd * Test for VHT80. 155267f4aa38SAdrian Chadd * XXX This is all very broken right now. 155367f4aa38SAdrian Chadd * What we /should/ do is: 155467f4aa38SAdrian Chadd * 155567f4aa38SAdrian Chadd * + check that the frequency is in the list of 155667f4aa38SAdrian Chadd * allowed VHT80 ranges; and 155767f4aa38SAdrian Chadd * + the other 3 channels in the list are actually 155867f4aa38SAdrian Chadd * also available. 155967f4aa38SAdrian Chadd */ 156067f4aa38SAdrian Chadd if (is_vht && flags[j] & IEEE80211_CHAN_VHT80) 156167f4aa38SAdrian Chadd if (! is_vht80_valid_freq(freq)) 156267f4aa38SAdrian Chadd continue; 156367f4aa38SAdrian Chadd 156467f4aa38SAdrian Chadd /* 156567f4aa38SAdrian Chadd * Test for (V)HT40. 156667f4aa38SAdrian Chadd * 156767f4aa38SAdrian Chadd * This is also a fall through from VHT80; as we only 156867f4aa38SAdrian Chadd * allow a VHT80 channel if the VHT40 combination is 156967f4aa38SAdrian Chadd * also valid. If the VHT40 form is not valid then 157067f4aa38SAdrian Chadd * we certainly can't do VHT80.. 157167f4aa38SAdrian Chadd */ 1572355fec48SAndriy Voskoboinyk if (flags[j] & IEEE80211_CHAN_HT40D) 157367f4aa38SAdrian Chadd /* 157467f4aa38SAdrian Chadd * Can't have a "lower" channel if we are the 157567f4aa38SAdrian Chadd * first channel. 157667f4aa38SAdrian Chadd * 157767f4aa38SAdrian Chadd * Can't have a "lower" channel if it's below/ 157867f4aa38SAdrian Chadd * within 20MHz of the first channel. 157967f4aa38SAdrian Chadd * 158067f4aa38SAdrian Chadd * Can't have a "lower" channel if the channel 158167f4aa38SAdrian Chadd * below it is not 20MHz away. 158267f4aa38SAdrian Chadd */ 1583355fec48SAndriy Voskoboinyk if (i == 0 || ieee[i] < ieee[0] + 4 || 1584355fec48SAndriy Voskoboinyk freq - 20 != 1585355fec48SAndriy Voskoboinyk ieee80211_ieee2mhz(ieee[i] - 4, flags[j])) 1586355fec48SAndriy Voskoboinyk continue; 1587355fec48SAndriy Voskoboinyk if (flags[j] & IEEE80211_CHAN_HT40U) 158867f4aa38SAdrian Chadd /* 158967f4aa38SAdrian Chadd * Can't have an "upper" channel if we are 159067f4aa38SAdrian Chadd * the last channel. 159167f4aa38SAdrian Chadd * 159267f4aa38SAdrian Chadd * Can't have an "upper" channel be above the 159367f4aa38SAdrian Chadd * last channel in the list. 159467f4aa38SAdrian Chadd * 159567f4aa38SAdrian Chadd * Can't have an "upper" channel if the next 159667f4aa38SAdrian Chadd * channel according to the math isn't 20MHz 159767f4aa38SAdrian Chadd * away. (Likely for channel 13/14.) 159867f4aa38SAdrian Chadd */ 1599355fec48SAndriy Voskoboinyk if (i == nieee - 1 || 1600355fec48SAndriy Voskoboinyk ieee[i] + 4 > ieee[nieee - 1] || 1601355fec48SAndriy Voskoboinyk freq + 20 != 1602355fec48SAndriy Voskoboinyk ieee80211_ieee2mhz(ieee[i] + 4, flags[j])) 1603355fec48SAndriy Voskoboinyk continue; 1604355fec48SAndriy Voskoboinyk 1605355fec48SAndriy Voskoboinyk if (j == 0) { 1606355fec48SAndriy Voskoboinyk error = addchan(chans, maxchans, nchans, 1607355fec48SAndriy Voskoboinyk ieee[i], freq, 0, flags[j]); 1608355fec48SAndriy Voskoboinyk } else { 1609355fec48SAndriy Voskoboinyk error = copychan_prev(chans, maxchans, nchans, 1610355fec48SAndriy Voskoboinyk flags[j]); 1611355fec48SAndriy Voskoboinyk } 1612355fec48SAndriy Voskoboinyk if (error != 0) 1613355fec48SAndriy Voskoboinyk return (error); 1614355fec48SAndriy Voskoboinyk } 1615355fec48SAndriy Voskoboinyk } 1616355fec48SAndriy Voskoboinyk 16176dbbec93SAndriy Voskoboinyk return (0); 1618355fec48SAndriy Voskoboinyk } 1619355fec48SAndriy Voskoboinyk 1620355fec48SAndriy Voskoboinyk int 1621355fec48SAndriy Voskoboinyk ieee80211_add_channel_list_2ghz(struct ieee80211_channel chans[], int maxchans, 1622355fec48SAndriy Voskoboinyk int *nchans, const uint8_t ieee[], int nieee, const uint8_t bands[], 1623355fec48SAndriy Voskoboinyk int ht40) 1624355fec48SAndriy Voskoboinyk { 1625355fec48SAndriy Voskoboinyk uint32_t flags[IEEE80211_MODE_MAX]; 1626355fec48SAndriy Voskoboinyk 162767f4aa38SAdrian Chadd /* XXX no VHT for now */ 1628355fec48SAndriy Voskoboinyk getflags_2ghz(bands, flags, ht40); 1629355fec48SAndriy Voskoboinyk KASSERT(flags[0] != 0, ("%s: no correct mode provided\n", __func__)); 1630355fec48SAndriy Voskoboinyk 1631355fec48SAndriy Voskoboinyk return (add_chanlist(chans, maxchans, nchans, ieee, nieee, flags)); 1632355fec48SAndriy Voskoboinyk } 1633355fec48SAndriy Voskoboinyk 1634355fec48SAndriy Voskoboinyk int 1635355fec48SAndriy Voskoboinyk ieee80211_add_channel_list_5ghz(struct ieee80211_channel chans[], int maxchans, 1636355fec48SAndriy Voskoboinyk int *nchans, const uint8_t ieee[], int nieee, const uint8_t bands[], 1637355fec48SAndriy Voskoboinyk int ht40) 1638355fec48SAndriy Voskoboinyk { 1639355fec48SAndriy Voskoboinyk uint32_t flags[IEEE80211_MODE_MAX]; 164067f4aa38SAdrian Chadd int vht80 = 0; 1641355fec48SAndriy Voskoboinyk 164267f4aa38SAdrian Chadd /* 164367f4aa38SAdrian Chadd * For now, assume VHT == VHT80 support as a minimum. 164467f4aa38SAdrian Chadd */ 164567f4aa38SAdrian Chadd if (isset(bands, IEEE80211_MODE_VHT_5GHZ)) 164667f4aa38SAdrian Chadd vht80 = 1; 164767f4aa38SAdrian Chadd 164867f4aa38SAdrian Chadd getflags_5ghz(bands, flags, ht40, vht80); 1649355fec48SAndriy Voskoboinyk KASSERT(flags[0] != 0, ("%s: no correct mode provided\n", __func__)); 1650355fec48SAndriy Voskoboinyk 1651355fec48SAndriy Voskoboinyk return (add_chanlist(chans, maxchans, nchans, ieee, nieee, flags)); 1652355fec48SAndriy Voskoboinyk } 1653355fec48SAndriy Voskoboinyk 16541a1e1d21SSam Leffler /* 165568e8e04eSSam Leffler * Locate a channel given a frequency+flags. We cache 1656b032f27cSSam Leffler * the previous lookup to optimize switching between two 165768e8e04eSSam Leffler * channels--as happens with dynamic turbo. 165868e8e04eSSam Leffler */ 165968e8e04eSSam Leffler struct ieee80211_channel * 166068e8e04eSSam Leffler ieee80211_find_channel(struct ieee80211com *ic, int freq, int flags) 166168e8e04eSSam Leffler { 166268e8e04eSSam Leffler struct ieee80211_channel *c; 166368e8e04eSSam Leffler 166468e8e04eSSam Leffler flags &= IEEE80211_CHAN_ALLTURBO; 166568e8e04eSSam Leffler c = ic->ic_prevchan; 166668e8e04eSSam Leffler if (c != NULL && c->ic_freq == freq && 166768e8e04eSSam Leffler (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags) 166868e8e04eSSam Leffler return c; 166968e8e04eSSam Leffler /* brute force search */ 1670355fec48SAndriy Voskoboinyk return (findchannel(ic->ic_channels, ic->ic_nchans, freq, flags)); 167168e8e04eSSam Leffler } 167268e8e04eSSam Leffler 1673a557c018SSam Leffler /* 1674a557c018SSam Leffler * Locate a channel given a channel number+flags. We cache 1675a557c018SSam Leffler * the previous lookup to optimize switching between two 1676a557c018SSam Leffler * channels--as happens with dynamic turbo. 1677a557c018SSam Leffler */ 1678a557c018SSam Leffler struct ieee80211_channel * 1679a557c018SSam Leffler ieee80211_find_channel_byieee(struct ieee80211com *ic, int ieee, int flags) 1680a557c018SSam Leffler { 1681a557c018SSam Leffler struct ieee80211_channel *c; 1682a557c018SSam Leffler int i; 1683a557c018SSam Leffler 1684a557c018SSam Leffler flags &= IEEE80211_CHAN_ALLTURBO; 1685a557c018SSam Leffler c = ic->ic_prevchan; 1686a557c018SSam Leffler if (c != NULL && c->ic_ieee == ieee && 1687a557c018SSam Leffler (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags) 1688a557c018SSam Leffler return c; 1689a557c018SSam Leffler /* brute force search */ 1690a557c018SSam Leffler for (i = 0; i < ic->ic_nchans; i++) { 1691a557c018SSam Leffler c = &ic->ic_channels[i]; 1692a557c018SSam Leffler if (c->ic_ieee == ieee && 1693a557c018SSam Leffler (c->ic_flags & IEEE80211_CHAN_ALLTURBO) == flags) 1694a557c018SSam Leffler return c; 1695a557c018SSam Leffler } 1696a557c018SSam Leffler return NULL; 1697a557c018SSam Leffler } 1698a557c018SSam Leffler 1699c79f192cSAdrian Chadd /* 1700c79f192cSAdrian Chadd * Lookup a channel suitable for the given rx status. 1701c79f192cSAdrian Chadd * 1702c79f192cSAdrian Chadd * This is used to find a channel for a frame (eg beacon, probe 1703c79f192cSAdrian Chadd * response) based purely on the received PHY information. 1704c79f192cSAdrian Chadd * 1705c79f192cSAdrian Chadd * For now it tries to do it based on R_FREQ / R_IEEE. 1706c79f192cSAdrian Chadd * This is enough for 11bg and 11a (and thus 11ng/11na) 1707c79f192cSAdrian Chadd * but it will not be enough for GSM, PSB channels and the 1708c79f192cSAdrian Chadd * like. It also doesn't know about legacy-turbog and 1709c79f192cSAdrian Chadd * legacy-turbo modes, which some offload NICs actually 1710c79f192cSAdrian Chadd * support in weird ways. 1711c79f192cSAdrian Chadd * 1712c79f192cSAdrian Chadd * Takes the ic and rxstatus; returns the channel or NULL 1713c79f192cSAdrian Chadd * if not found. 1714c79f192cSAdrian Chadd * 1715c79f192cSAdrian Chadd * XXX TODO: Add support for that when the need arises. 1716c79f192cSAdrian Chadd */ 1717c79f192cSAdrian Chadd struct ieee80211_channel * 1718c79f192cSAdrian Chadd ieee80211_lookup_channel_rxstatus(struct ieee80211vap *vap, 1719c79f192cSAdrian Chadd const struct ieee80211_rx_stats *rxs) 1720c79f192cSAdrian Chadd { 1721c79f192cSAdrian Chadd struct ieee80211com *ic = vap->iv_ic; 1722c79f192cSAdrian Chadd uint32_t flags; 1723c79f192cSAdrian Chadd struct ieee80211_channel *c; 1724c79f192cSAdrian Chadd 1725c79f192cSAdrian Chadd if (rxs == NULL) 1726c79f192cSAdrian Chadd return (NULL); 1727c79f192cSAdrian Chadd 1728c79f192cSAdrian Chadd /* 1729c79f192cSAdrian Chadd * Strictly speaking we only use freq for now, 1730c79f192cSAdrian Chadd * however later on we may wish to just store 1731c79f192cSAdrian Chadd * the ieee for verification. 1732c79f192cSAdrian Chadd */ 1733c79f192cSAdrian Chadd if ((rxs->r_flags & IEEE80211_R_FREQ) == 0) 1734c79f192cSAdrian Chadd return (NULL); 1735c79f192cSAdrian Chadd if ((rxs->r_flags & IEEE80211_R_IEEE) == 0) 1736c79f192cSAdrian Chadd return (NULL); 1737c79f192cSAdrian Chadd 1738c79f192cSAdrian Chadd /* 1739c79f192cSAdrian Chadd * If the rx status contains a valid ieee/freq, then 1740c79f192cSAdrian Chadd * ensure we populate the correct channel information 1741c79f192cSAdrian Chadd * in rxchan before passing it up to the scan infrastructure. 1742c79f192cSAdrian Chadd * Offload NICs will pass up beacons from all channels 1743c79f192cSAdrian Chadd * during background scans. 1744c79f192cSAdrian Chadd */ 1745c79f192cSAdrian Chadd 1746c79f192cSAdrian Chadd /* Determine a band */ 1747c79f192cSAdrian Chadd /* XXX should be done by the driver? */ 1748c79f192cSAdrian Chadd if (rxs->c_freq < 3000) { 17492108f2a8SAdrian Chadd flags = IEEE80211_CHAN_G; 1750c79f192cSAdrian Chadd } else { 1751c79f192cSAdrian Chadd flags = IEEE80211_CHAN_A; 1752c79f192cSAdrian Chadd } 1753c79f192cSAdrian Chadd 1754c79f192cSAdrian Chadd /* Channel lookup */ 1755c79f192cSAdrian Chadd c = ieee80211_find_channel(ic, rxs->c_freq, flags); 1756c79f192cSAdrian Chadd 1757c79f192cSAdrian Chadd IEEE80211_DPRINTF(vap, IEEE80211_MSG_INPUT, 1758c79f192cSAdrian Chadd "%s: freq=%d, ieee=%d, flags=0x%08x; c=%p\n", 1759c79f192cSAdrian Chadd __func__, 1760c79f192cSAdrian Chadd (int) rxs->c_freq, 1761c79f192cSAdrian Chadd (int) rxs->c_ieee, 1762c79f192cSAdrian Chadd flags, 1763c79f192cSAdrian Chadd c); 1764c79f192cSAdrian Chadd 1765c79f192cSAdrian Chadd return (c); 1766c79f192cSAdrian Chadd } 1767c79f192cSAdrian Chadd 176868e8e04eSSam Leffler static void 1769b032f27cSSam Leffler addmedia(struct ifmedia *media, int caps, int addsta, int mode, int mword) 177068e8e04eSSam Leffler { 177168e8e04eSSam Leffler #define ADD(_ic, _s, _o) \ 1772b032f27cSSam Leffler ifmedia_add(media, \ 177368e8e04eSSam Leffler IFM_MAKEWORD(IFM_IEEE80211, (_s), (_o), 0), 0, NULL) 177468e8e04eSSam Leffler static const u_int mopts[IEEE80211_MODE_MAX] = { 1775c3f10abdSSam Leffler [IEEE80211_MODE_AUTO] = IFM_AUTO, 1776c3f10abdSSam Leffler [IEEE80211_MODE_11A] = IFM_IEEE80211_11A, 1777c3f10abdSSam Leffler [IEEE80211_MODE_11B] = IFM_IEEE80211_11B, 1778c3f10abdSSam Leffler [IEEE80211_MODE_11G] = IFM_IEEE80211_11G, 1779c3f10abdSSam Leffler [IEEE80211_MODE_FH] = IFM_IEEE80211_FH, 1780c3f10abdSSam Leffler [IEEE80211_MODE_TURBO_A] = IFM_IEEE80211_11A|IFM_IEEE80211_TURBO, 1781c3f10abdSSam Leffler [IEEE80211_MODE_TURBO_G] = IFM_IEEE80211_11G|IFM_IEEE80211_TURBO, 1782c3f10abdSSam Leffler [IEEE80211_MODE_STURBO_A] = IFM_IEEE80211_11A|IFM_IEEE80211_TURBO, 17836a76ae21SSam Leffler [IEEE80211_MODE_HALF] = IFM_IEEE80211_11A, /* XXX */ 17846a76ae21SSam Leffler [IEEE80211_MODE_QUARTER] = IFM_IEEE80211_11A, /* XXX */ 1785c3f10abdSSam Leffler [IEEE80211_MODE_11NA] = IFM_IEEE80211_11NA, 1786c3f10abdSSam Leffler [IEEE80211_MODE_11NG] = IFM_IEEE80211_11NG, 17870c67d389SAdrian Chadd [IEEE80211_MODE_VHT_2GHZ] = IFM_IEEE80211_VHT2G, 17880c67d389SAdrian Chadd [IEEE80211_MODE_VHT_5GHZ] = IFM_IEEE80211_VHT5G, 178968e8e04eSSam Leffler }; 179068e8e04eSSam Leffler u_int mopt; 179168e8e04eSSam Leffler 179268e8e04eSSam Leffler mopt = mopts[mode]; 1793b032f27cSSam Leffler if (addsta) 1794b032f27cSSam Leffler ADD(ic, mword, mopt); /* STA mode has no cap */ 1795b032f27cSSam Leffler if (caps & IEEE80211_C_IBSS) 1796b032f27cSSam Leffler ADD(media, mword, mopt | IFM_IEEE80211_ADHOC); 1797b032f27cSSam Leffler if (caps & IEEE80211_C_HOSTAP) 1798b032f27cSSam Leffler ADD(media, mword, mopt | IFM_IEEE80211_HOSTAP); 1799b032f27cSSam Leffler if (caps & IEEE80211_C_AHDEMO) 1800b032f27cSSam Leffler ADD(media, mword, mopt | IFM_IEEE80211_ADHOC | IFM_FLAG0); 1801b032f27cSSam Leffler if (caps & IEEE80211_C_MONITOR) 1802b032f27cSSam Leffler ADD(media, mword, mopt | IFM_IEEE80211_MONITOR); 1803b032f27cSSam Leffler if (caps & IEEE80211_C_WDS) 1804b032f27cSSam Leffler ADD(media, mword, mopt | IFM_IEEE80211_WDS); 180559aa14a9SRui Paulo if (caps & IEEE80211_C_MBSS) 180659aa14a9SRui Paulo ADD(media, mword, mopt | IFM_IEEE80211_MBSS); 180768e8e04eSSam Leffler #undef ADD 180868e8e04eSSam Leffler } 180968e8e04eSSam Leffler 181068e8e04eSSam Leffler /* 18111a1e1d21SSam Leffler * Setup the media data structures according to the channel and 1812b032f27cSSam Leffler * rate tables. 18131a1e1d21SSam Leffler */ 1814b032f27cSSam Leffler static int 1815b032f27cSSam Leffler ieee80211_media_setup(struct ieee80211com *ic, 1816b032f27cSSam Leffler struct ifmedia *media, int caps, int addsta, 18171a1e1d21SSam Leffler ifm_change_cb_t media_change, ifm_stat_cb_t media_stat) 18181a1e1d21SSam Leffler { 1819fcd9500fSBernhard Schmidt int i, j, rate, maxrate, mword, r; 1820fcd9500fSBernhard Schmidt enum ieee80211_phymode mode; 182168e8e04eSSam Leffler const struct ieee80211_rateset *rs; 18221a1e1d21SSam Leffler struct ieee80211_rateset allrates; 18231a1e1d21SSam Leffler 18242692bb26SSam Leffler /* 18251a1e1d21SSam Leffler * Fill in media characteristics. 18261a1e1d21SSam Leffler */ 1827b032f27cSSam Leffler ifmedia_init(media, 0, media_change, media_stat); 18281a1e1d21SSam Leffler maxrate = 0; 182968e8e04eSSam Leffler /* 183068e8e04eSSam Leffler * Add media for legacy operating modes. 183168e8e04eSSam Leffler */ 18321a1e1d21SSam Leffler memset(&allrates, 0, sizeof(allrates)); 183368e8e04eSSam Leffler for (mode = IEEE80211_MODE_AUTO; mode < IEEE80211_MODE_11NA; mode++) { 18346dbd16f1SSam Leffler if (isclr(ic->ic_modecaps, mode)) 18351a1e1d21SSam Leffler continue; 1836b032f27cSSam Leffler addmedia(media, caps, addsta, mode, IFM_AUTO); 18371a1e1d21SSam Leffler if (mode == IEEE80211_MODE_AUTO) 18381a1e1d21SSam Leffler continue; 18391a1e1d21SSam Leffler rs = &ic->ic_sup_rates[mode]; 18401a1e1d21SSam Leffler for (i = 0; i < rs->rs_nrates; i++) { 18411a1e1d21SSam Leffler rate = rs->rs_rates[i]; 18421a1e1d21SSam Leffler mword = ieee80211_rate2media(ic, rate, mode); 18431a1e1d21SSam Leffler if (mword == 0) 18441a1e1d21SSam Leffler continue; 1845b032f27cSSam Leffler addmedia(media, caps, addsta, mode, mword); 18461a1e1d21SSam Leffler /* 184768e8e04eSSam Leffler * Add legacy rate to the collection of all rates. 18481a1e1d21SSam Leffler */ 18491a1e1d21SSam Leffler r = rate & IEEE80211_RATE_VAL; 18501a1e1d21SSam Leffler for (j = 0; j < allrates.rs_nrates; j++) 18511a1e1d21SSam Leffler if (allrates.rs_rates[j] == r) 18521a1e1d21SSam Leffler break; 18531a1e1d21SSam Leffler if (j == allrates.rs_nrates) { 18541a1e1d21SSam Leffler /* unique, add to the set */ 18551a1e1d21SSam Leffler allrates.rs_rates[j] = r; 18561a1e1d21SSam Leffler allrates.rs_nrates++; 18571a1e1d21SSam Leffler } 18581a1e1d21SSam Leffler rate = (rate & IEEE80211_RATE_VAL) / 2; 18591a1e1d21SSam Leffler if (rate > maxrate) 18601a1e1d21SSam Leffler maxrate = rate; 18611a1e1d21SSam Leffler } 18621a1e1d21SSam Leffler } 18631a1e1d21SSam Leffler for (i = 0; i < allrates.rs_nrates; i++) { 18641a1e1d21SSam Leffler mword = ieee80211_rate2media(ic, allrates.rs_rates[i], 18651a1e1d21SSam Leffler IEEE80211_MODE_AUTO); 18661a1e1d21SSam Leffler if (mword == 0) 18671a1e1d21SSam Leffler continue; 186868e8e04eSSam Leffler /* NB: remove media options from mword */ 1869b032f27cSSam Leffler addmedia(media, caps, addsta, 1870b032f27cSSam Leffler IEEE80211_MODE_AUTO, IFM_SUBTYPE(mword)); 18711a1e1d21SSam Leffler } 187268e8e04eSSam Leffler /* 187368e8e04eSSam Leffler * Add HT/11n media. Note that we do not have enough 187468e8e04eSSam Leffler * bits in the media subtype to express the MCS so we 187568e8e04eSSam Leffler * use a "placeholder" media subtype and any fixed MCS 187668e8e04eSSam Leffler * must be specified with a different mechanism. 187768e8e04eSSam Leffler */ 18786a76ae21SSam Leffler for (; mode <= IEEE80211_MODE_11NG; mode++) { 187968e8e04eSSam Leffler if (isclr(ic->ic_modecaps, mode)) 188068e8e04eSSam Leffler continue; 1881b032f27cSSam Leffler addmedia(media, caps, addsta, mode, IFM_AUTO); 1882b032f27cSSam Leffler addmedia(media, caps, addsta, mode, IFM_IEEE80211_MCS); 188368e8e04eSSam Leffler } 188468e8e04eSSam Leffler if (isset(ic->ic_modecaps, IEEE80211_MODE_11NA) || 188568e8e04eSSam Leffler isset(ic->ic_modecaps, IEEE80211_MODE_11NG)) { 1886b032f27cSSam Leffler addmedia(media, caps, addsta, 1887b032f27cSSam Leffler IEEE80211_MODE_AUTO, IFM_IEEE80211_MCS); 18886f897ba9SBernhard Schmidt i = ic->ic_txstream * 8 - 1; 18896f897ba9SBernhard Schmidt if ((ic->ic_htcaps & IEEE80211_HTCAP_CHWIDTH40) && 18906f897ba9SBernhard Schmidt (ic->ic_htcaps & IEEE80211_HTCAP_SHORTGI40)) 18916f897ba9SBernhard Schmidt rate = ieee80211_htrates[i].ht40_rate_400ns; 18926f897ba9SBernhard Schmidt else if ((ic->ic_htcaps & IEEE80211_HTCAP_CHWIDTH40)) 18936f897ba9SBernhard Schmidt rate = ieee80211_htrates[i].ht40_rate_800ns; 18946f897ba9SBernhard Schmidt else if ((ic->ic_htcaps & IEEE80211_HTCAP_SHORTGI20)) 18956f897ba9SBernhard Schmidt rate = ieee80211_htrates[i].ht20_rate_400ns; 18966f897ba9SBernhard Schmidt else 18976f897ba9SBernhard Schmidt rate = ieee80211_htrates[i].ht20_rate_800ns; 18986f897ba9SBernhard Schmidt if (rate > maxrate) 18996f897ba9SBernhard Schmidt maxrate = rate; 1900b032f27cSSam Leffler } 19010c67d389SAdrian Chadd 19020c67d389SAdrian Chadd /* 19030c67d389SAdrian Chadd * Add VHT media. 19040c67d389SAdrian Chadd */ 19050c67d389SAdrian Chadd for (; mode <= IEEE80211_MODE_VHT_5GHZ; mode++) { 19060c67d389SAdrian Chadd if (isclr(ic->ic_modecaps, mode)) 19070c67d389SAdrian Chadd continue; 19080c67d389SAdrian Chadd addmedia(media, caps, addsta, mode, IFM_AUTO); 19090c67d389SAdrian Chadd addmedia(media, caps, addsta, mode, IFM_IEEE80211_VHT); 19100c67d389SAdrian Chadd 19110c67d389SAdrian Chadd /* XXX TODO: VHT maxrate */ 19120c67d389SAdrian Chadd } 19130c67d389SAdrian Chadd 1914b032f27cSSam Leffler return maxrate; 191568e8e04eSSam Leffler } 191668e8e04eSSam Leffler 19176a76ae21SSam Leffler /* XXX inline or eliminate? */ 191841b3c790SSam Leffler const struct ieee80211_rateset * 191941b3c790SSam Leffler ieee80211_get_suprates(struct ieee80211com *ic, const struct ieee80211_channel *c) 192041b3c790SSam Leffler { 192140432d36SSam Leffler /* XXX does this work for 11ng basic rates? */ 192268e8e04eSSam Leffler return &ic->ic_sup_rates[ieee80211_chan2mode(c)]; 192341b3c790SSam Leffler } 192441b3c790SSam Leffler 1925dfabbaa0SAndriy Voskoboinyk /* XXX inline or eliminate? */ 1926dfabbaa0SAndriy Voskoboinyk const struct ieee80211_htrateset * 1927dfabbaa0SAndriy Voskoboinyk ieee80211_get_suphtrates(struct ieee80211com *ic, 1928dfabbaa0SAndriy Voskoboinyk const struct ieee80211_channel *c) 1929dfabbaa0SAndriy Voskoboinyk { 1930dfabbaa0SAndriy Voskoboinyk return &ic->ic_sup_htrates; 1931dfabbaa0SAndriy Voskoboinyk } 1932dfabbaa0SAndriy Voskoboinyk 19338a1b9b6aSSam Leffler void 19348a1b9b6aSSam Leffler ieee80211_announce(struct ieee80211com *ic) 19358a1b9b6aSSam Leffler { 1936fcd9500fSBernhard Schmidt int i, rate, mword; 1937fcd9500fSBernhard Schmidt enum ieee80211_phymode mode; 193868e8e04eSSam Leffler const struct ieee80211_rateset *rs; 19398a1b9b6aSSam Leffler 19407edb9e0aSSam Leffler /* NB: skip AUTO since it has no rates */ 19417edb9e0aSSam Leffler for (mode = IEEE80211_MODE_AUTO+1; mode < IEEE80211_MODE_11NA; mode++) { 19426dbd16f1SSam Leffler if (isclr(ic->ic_modecaps, mode)) 19438a1b9b6aSSam Leffler continue; 1944c8f5794eSGleb Smirnoff ic_printf(ic, "%s rates: ", ieee80211_phymode_name[mode]); 19458a1b9b6aSSam Leffler rs = &ic->ic_sup_rates[mode]; 19468a1b9b6aSSam Leffler for (i = 0; i < rs->rs_nrates; i++) { 194768e8e04eSSam Leffler mword = ieee80211_rate2media(ic, rs->rs_rates[i], mode); 19488a1b9b6aSSam Leffler if (mword == 0) 19498a1b9b6aSSam Leffler continue; 195068e8e04eSSam Leffler rate = ieee80211_media2rate(mword); 19518a1b9b6aSSam Leffler printf("%s%d%sMbps", (i != 0 ? " " : ""), 195268e8e04eSSam Leffler rate / 2, ((rate & 0x1) != 0 ? ".5" : "")); 19538a1b9b6aSSam Leffler } 19548a1b9b6aSSam Leffler printf("\n"); 19558a1b9b6aSSam Leffler } 195668e8e04eSSam Leffler ieee80211_ht_announce(ic); 195767f4aa38SAdrian Chadd ieee80211_vht_announce(ic); 19588a1b9b6aSSam Leffler } 19598a1b9b6aSSam Leffler 196068e8e04eSSam Leffler void 196168e8e04eSSam Leffler ieee80211_announce_channels(struct ieee80211com *ic) 19621a1e1d21SSam Leffler { 196368e8e04eSSam Leffler const struct ieee80211_channel *c; 196468e8e04eSSam Leffler char type; 196568e8e04eSSam Leffler int i, cw; 196668e8e04eSSam Leffler 196768e8e04eSSam Leffler printf("Chan Freq CW RegPwr MinPwr MaxPwr\n"); 196868e8e04eSSam Leffler for (i = 0; i < ic->ic_nchans; i++) { 196968e8e04eSSam Leffler c = &ic->ic_channels[i]; 197068e8e04eSSam Leffler if (IEEE80211_IS_CHAN_ST(c)) 197168e8e04eSSam Leffler type = 'S'; 197268e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_108A(c)) 197368e8e04eSSam Leffler type = 'T'; 197468e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_108G(c)) 197568e8e04eSSam Leffler type = 'G'; 197668e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_HT(c)) 197768e8e04eSSam Leffler type = 'n'; 197868e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_A(c)) 197968e8e04eSSam Leffler type = 'a'; 198068e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_ANYG(c)) 198168e8e04eSSam Leffler type = 'g'; 198268e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_B(c)) 198368e8e04eSSam Leffler type = 'b'; 198468e8e04eSSam Leffler else 198568e8e04eSSam Leffler type = 'f'; 198668e8e04eSSam Leffler if (IEEE80211_IS_CHAN_HT40(c) || IEEE80211_IS_CHAN_TURBO(c)) 198768e8e04eSSam Leffler cw = 40; 198868e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_HALF(c)) 198968e8e04eSSam Leffler cw = 10; 199068e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_QUARTER(c)) 199168e8e04eSSam Leffler cw = 5; 199268e8e04eSSam Leffler else 199368e8e04eSSam Leffler cw = 20; 199468e8e04eSSam Leffler printf("%4d %4d%c %2d%c %6d %4d.%d %4d.%d\n" 199568e8e04eSSam Leffler , c->ic_ieee, c->ic_freq, type 199668e8e04eSSam Leffler , cw 199768e8e04eSSam Leffler , IEEE80211_IS_CHAN_HT40U(c) ? '+' : 199868e8e04eSSam Leffler IEEE80211_IS_CHAN_HT40D(c) ? '-' : ' ' 199968e8e04eSSam Leffler , c->ic_maxregpower 200068e8e04eSSam Leffler , c->ic_minpower / 2, c->ic_minpower & 1 ? 5 : 0 200168e8e04eSSam Leffler , c->ic_maxpower / 2, c->ic_maxpower & 1 ? 5 : 0 200268e8e04eSSam Leffler ); 200368e8e04eSSam Leffler } 20041a1e1d21SSam Leffler } 20051a1e1d21SSam Leffler 200668e8e04eSSam Leffler static int 2007f945bd7aSSam Leffler media2mode(const struct ifmedia_entry *ime, uint32_t flags, uint16_t *mode) 200868e8e04eSSam Leffler { 20091a1e1d21SSam Leffler switch (IFM_MODE(ime->ifm_media)) { 20101a1e1d21SSam Leffler case IFM_IEEE80211_11A: 2011b032f27cSSam Leffler *mode = IEEE80211_MODE_11A; 20121a1e1d21SSam Leffler break; 20131a1e1d21SSam Leffler case IFM_IEEE80211_11B: 2014b032f27cSSam Leffler *mode = IEEE80211_MODE_11B; 20151a1e1d21SSam Leffler break; 20161a1e1d21SSam Leffler case IFM_IEEE80211_11G: 2017b032f27cSSam Leffler *mode = IEEE80211_MODE_11G; 20181a1e1d21SSam Leffler break; 20194844aa7dSAtsushi Onoe case IFM_IEEE80211_FH: 2020b032f27cSSam Leffler *mode = IEEE80211_MODE_FH; 20214844aa7dSAtsushi Onoe break; 202268e8e04eSSam Leffler case IFM_IEEE80211_11NA: 2023b032f27cSSam Leffler *mode = IEEE80211_MODE_11NA; 202468e8e04eSSam Leffler break; 202568e8e04eSSam Leffler case IFM_IEEE80211_11NG: 2026b032f27cSSam Leffler *mode = IEEE80211_MODE_11NG; 202768e8e04eSSam Leffler break; 20281a1e1d21SSam Leffler case IFM_AUTO: 2029b032f27cSSam Leffler *mode = IEEE80211_MODE_AUTO; 20301a1e1d21SSam Leffler break; 20311a1e1d21SSam Leffler default: 2032b032f27cSSam Leffler return 0; 20331a1e1d21SSam Leffler } 20341a1e1d21SSam Leffler /* 20358a1b9b6aSSam Leffler * Turbo mode is an ``option''. 20368a1b9b6aSSam Leffler * XXX does not apply to AUTO 20371a1e1d21SSam Leffler */ 20381a1e1d21SSam Leffler if (ime->ifm_media & IFM_IEEE80211_TURBO) { 2039b032f27cSSam Leffler if (*mode == IEEE80211_MODE_11A) { 2040f945bd7aSSam Leffler if (flags & IEEE80211_F_TURBOP) 2041b032f27cSSam Leffler *mode = IEEE80211_MODE_TURBO_A; 204268e8e04eSSam Leffler else 2043b032f27cSSam Leffler *mode = IEEE80211_MODE_STURBO_A; 2044b032f27cSSam Leffler } else if (*mode == IEEE80211_MODE_11G) 2045b032f27cSSam Leffler *mode = IEEE80211_MODE_TURBO_G; 20468a1b9b6aSSam Leffler else 2047b032f27cSSam Leffler return 0; 20481a1e1d21SSam Leffler } 204968e8e04eSSam Leffler /* XXX HT40 +/- */ 2050b032f27cSSam Leffler return 1; 2051b032f27cSSam Leffler } 20521a1e1d21SSam Leffler 20531a1e1d21SSam Leffler /* 2054b032f27cSSam Leffler * Handle a media change request on the vap interface. 2055b032f27cSSam Leffler */ 2056b032f27cSSam Leffler int 2057b032f27cSSam Leffler ieee80211_media_change(struct ifnet *ifp) 2058b032f27cSSam Leffler { 2059b032f27cSSam Leffler struct ieee80211vap *vap = ifp->if_softc; 2060b032f27cSSam Leffler struct ifmedia_entry *ime = vap->iv_media.ifm_cur; 2061f945bd7aSSam Leffler uint16_t newmode; 2062b032f27cSSam Leffler 2063f945bd7aSSam Leffler if (!media2mode(ime, vap->iv_flags, &newmode)) 2064b032f27cSSam Leffler return EINVAL; 2065f945bd7aSSam Leffler if (vap->iv_des_mode != newmode) { 2066f945bd7aSSam Leffler vap->iv_des_mode = newmode; 20670a310468SSam Leffler /* XXX kick state machine if up+running */ 2068b032f27cSSam Leffler } 2069b032f27cSSam Leffler return 0; 2070b032f27cSSam Leffler } 2071b032f27cSSam Leffler 207268e8e04eSSam Leffler /* 207368e8e04eSSam Leffler * Common code to calculate the media status word 207468e8e04eSSam Leffler * from the operating mode and channel state. 207568e8e04eSSam Leffler */ 207668e8e04eSSam Leffler static int 207768e8e04eSSam Leffler media_status(enum ieee80211_opmode opmode, const struct ieee80211_channel *chan) 207868e8e04eSSam Leffler { 207968e8e04eSSam Leffler int status; 208068e8e04eSSam Leffler 208168e8e04eSSam Leffler status = IFM_IEEE80211; 208268e8e04eSSam Leffler switch (opmode) { 208368e8e04eSSam Leffler case IEEE80211_M_STA: 208468e8e04eSSam Leffler break; 208568e8e04eSSam Leffler case IEEE80211_M_IBSS: 208668e8e04eSSam Leffler status |= IFM_IEEE80211_ADHOC; 208768e8e04eSSam Leffler break; 208868e8e04eSSam Leffler case IEEE80211_M_HOSTAP: 208968e8e04eSSam Leffler status |= IFM_IEEE80211_HOSTAP; 209068e8e04eSSam Leffler break; 209168e8e04eSSam Leffler case IEEE80211_M_MONITOR: 209268e8e04eSSam Leffler status |= IFM_IEEE80211_MONITOR; 209368e8e04eSSam Leffler break; 209468e8e04eSSam Leffler case IEEE80211_M_AHDEMO: 209568e8e04eSSam Leffler status |= IFM_IEEE80211_ADHOC | IFM_FLAG0; 209668e8e04eSSam Leffler break; 209768e8e04eSSam Leffler case IEEE80211_M_WDS: 2098b032f27cSSam Leffler status |= IFM_IEEE80211_WDS; 209968e8e04eSSam Leffler break; 210059aa14a9SRui Paulo case IEEE80211_M_MBSS: 210159aa14a9SRui Paulo status |= IFM_IEEE80211_MBSS; 210259aa14a9SRui Paulo break; 210368e8e04eSSam Leffler } 210468e8e04eSSam Leffler if (IEEE80211_IS_CHAN_HTA(chan)) { 210568e8e04eSSam Leffler status |= IFM_IEEE80211_11NA; 210668e8e04eSSam Leffler } else if (IEEE80211_IS_CHAN_HTG(chan)) { 210768e8e04eSSam Leffler status |= IFM_IEEE80211_11NG; 210868e8e04eSSam Leffler } else if (IEEE80211_IS_CHAN_A(chan)) { 210968e8e04eSSam Leffler status |= IFM_IEEE80211_11A; 211068e8e04eSSam Leffler } else if (IEEE80211_IS_CHAN_B(chan)) { 211168e8e04eSSam Leffler status |= IFM_IEEE80211_11B; 211268e8e04eSSam Leffler } else if (IEEE80211_IS_CHAN_ANYG(chan)) { 211368e8e04eSSam Leffler status |= IFM_IEEE80211_11G; 211468e8e04eSSam Leffler } else if (IEEE80211_IS_CHAN_FHSS(chan)) { 211568e8e04eSSam Leffler status |= IFM_IEEE80211_FH; 211668e8e04eSSam Leffler } 211768e8e04eSSam Leffler /* XXX else complain? */ 211868e8e04eSSam Leffler 211968e8e04eSSam Leffler if (IEEE80211_IS_CHAN_TURBO(chan)) 212068e8e04eSSam Leffler status |= IFM_IEEE80211_TURBO; 2121b032f27cSSam Leffler #if 0 2122b032f27cSSam Leffler if (IEEE80211_IS_CHAN_HT20(chan)) 2123b032f27cSSam Leffler status |= IFM_IEEE80211_HT20; 2124b032f27cSSam Leffler if (IEEE80211_IS_CHAN_HT40(chan)) 2125b032f27cSSam Leffler status |= IFM_IEEE80211_HT40; 2126b032f27cSSam Leffler #endif 212768e8e04eSSam Leffler return status; 212868e8e04eSSam Leffler } 212968e8e04eSSam Leffler 21301a1e1d21SSam Leffler void 21311a1e1d21SSam Leffler ieee80211_media_status(struct ifnet *ifp, struct ifmediareq *imr) 21321a1e1d21SSam Leffler { 2133b032f27cSSam Leffler struct ieee80211vap *vap = ifp->if_softc; 2134b032f27cSSam Leffler struct ieee80211com *ic = vap->iv_ic; 213568e8e04eSSam Leffler enum ieee80211_phymode mode; 21361a1e1d21SSam Leffler 21371a1e1d21SSam Leffler imr->ifm_status = IFM_AVALID; 213868e8e04eSSam Leffler /* 213968e8e04eSSam Leffler * NB: use the current channel's mode to lock down a xmit 214068e8e04eSSam Leffler * rate only when running; otherwise we may have a mismatch 214168e8e04eSSam Leffler * in which case the rate will not be convertible. 214268e8e04eSSam Leffler */ 21439f098ac7SAdrian Chadd if (vap->iv_state == IEEE80211_S_RUN || 21449f098ac7SAdrian Chadd vap->iv_state == IEEE80211_S_SLEEP) { 21451a1e1d21SSam Leffler imr->ifm_status |= IFM_ACTIVE; 214668e8e04eSSam Leffler mode = ieee80211_chan2mode(ic->ic_curchan); 214768e8e04eSSam Leffler } else 214868e8e04eSSam Leffler mode = IEEE80211_MODE_AUTO; 2149b032f27cSSam Leffler imr->ifm_active = media_status(vap->iv_opmode, ic->ic_curchan); 21508a1b9b6aSSam Leffler /* 21518a1b9b6aSSam Leffler * Calculate a current rate if possible. 21528a1b9b6aSSam Leffler */ 2153b032f27cSSam Leffler if (vap->iv_txparms[mode].ucastrate != IEEE80211_FIXED_RATE_NONE) { 21548a1b9b6aSSam Leffler /* 21558a1b9b6aSSam Leffler * A fixed rate is set, report that. 21568a1b9b6aSSam Leffler */ 21578a1b9b6aSSam Leffler imr->ifm_active |= ieee80211_rate2media(ic, 2158b032f27cSSam Leffler vap->iv_txparms[mode].ucastrate, mode); 2159b032f27cSSam Leffler } else if (vap->iv_opmode == IEEE80211_M_STA) { 21608a1b9b6aSSam Leffler /* 21618a1b9b6aSSam Leffler * In station mode report the current transmit rate. 21628a1b9b6aSSam Leffler */ 21638a1b9b6aSSam Leffler imr->ifm_active |= ieee80211_rate2media(ic, 2164b032f27cSSam Leffler vap->iv_bss->ni_txrate, mode); 2165ba99a9b1SAndre Oppermann } else 21661a1e1d21SSam Leffler imr->ifm_active |= IFM_AUTO; 2167b032f27cSSam Leffler if (imr->ifm_status & IFM_ACTIVE) 2168b032f27cSSam Leffler imr->ifm_current = imr->ifm_active; 21691a1e1d21SSam Leffler } 21701a1e1d21SSam Leffler 21711a1e1d21SSam Leffler /* 21721a1e1d21SSam Leffler * Set the current phy mode and recalculate the active channel 21731a1e1d21SSam Leffler * set based on the available channels for this mode. Also 21741a1e1d21SSam Leffler * select a new default/current channel if the current one is 21751a1e1d21SSam Leffler * inappropriate for this mode. 21761a1e1d21SSam Leffler */ 21771a1e1d21SSam Leffler int 21781a1e1d21SSam Leffler ieee80211_setmode(struct ieee80211com *ic, enum ieee80211_phymode mode) 21791a1e1d21SSam Leffler { 21801a1e1d21SSam Leffler /* 2181ca4ac7aeSSam Leffler * Adjust basic rates in 11b/11g supported rate set. 2182ca4ac7aeSSam Leffler * Note that if operating on a hal/quarter rate channel 2183ca4ac7aeSSam Leffler * this is a noop as those rates sets are different 2184ca4ac7aeSSam Leffler * and used instead. 21851a1e1d21SSam Leffler */ 2186ca4ac7aeSSam Leffler if (mode == IEEE80211_MODE_11G || mode == IEEE80211_MODE_11B) 2187b032f27cSSam Leffler ieee80211_setbasicrates(&ic->ic_sup_rates[mode], mode); 2188ca4ac7aeSSam Leffler 21891a1e1d21SSam Leffler ic->ic_curmode = mode; 21908a1b9b6aSSam Leffler ieee80211_reset_erp(ic); /* reset ERP state */ 21918a1b9b6aSSam Leffler 21921a1e1d21SSam Leffler return 0; 21931a1e1d21SSam Leffler } 21941a1e1d21SSam Leffler 21951a1e1d21SSam Leffler /* 219668e8e04eSSam Leffler * Return the phy mode for with the specified channel. 21971a1e1d21SSam Leffler */ 21981a1e1d21SSam Leffler enum ieee80211_phymode 219968e8e04eSSam Leffler ieee80211_chan2mode(const struct ieee80211_channel *chan) 22001a1e1d21SSam Leffler { 220168e8e04eSSam Leffler 22020c67d389SAdrian Chadd if (IEEE80211_IS_CHAN_VHT_2GHZ(chan)) 22030c67d389SAdrian Chadd return IEEE80211_MODE_VHT_2GHZ; 22040c67d389SAdrian Chadd else if (IEEE80211_IS_CHAN_VHT_5GHZ(chan)) 22050c67d389SAdrian Chadd return IEEE80211_MODE_VHT_5GHZ; 22060c67d389SAdrian Chadd else if (IEEE80211_IS_CHAN_HTA(chan)) 220768e8e04eSSam Leffler return IEEE80211_MODE_11NA; 220868e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_HTG(chan)) 220968e8e04eSSam Leffler return IEEE80211_MODE_11NG; 221068e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_108G(chan)) 22118a1b9b6aSSam Leffler return IEEE80211_MODE_TURBO_G; 221268e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_ST(chan)) 221368e8e04eSSam Leffler return IEEE80211_MODE_STURBO_A; 221468e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_TURBO(chan)) 221568e8e04eSSam Leffler return IEEE80211_MODE_TURBO_A; 22166a76ae21SSam Leffler else if (IEEE80211_IS_CHAN_HALF(chan)) 22176a76ae21SSam Leffler return IEEE80211_MODE_HALF; 22186a76ae21SSam Leffler else if (IEEE80211_IS_CHAN_QUARTER(chan)) 22196a76ae21SSam Leffler return IEEE80211_MODE_QUARTER; 222068e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_A(chan)) 222168e8e04eSSam Leffler return IEEE80211_MODE_11A; 222268e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_ANYG(chan)) 22231a1e1d21SSam Leffler return IEEE80211_MODE_11G; 222468e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_B(chan)) 222568e8e04eSSam Leffler return IEEE80211_MODE_11B; 222668e8e04eSSam Leffler else if (IEEE80211_IS_CHAN_FHSS(chan)) 222768e8e04eSSam Leffler return IEEE80211_MODE_FH; 222868e8e04eSSam Leffler 222968e8e04eSSam Leffler /* NB: should not get here */ 223068e8e04eSSam Leffler printf("%s: cannot map channel to mode; freq %u flags 0x%x\n", 223168e8e04eSSam Leffler __func__, chan->ic_freq, chan->ic_flags); 22321a1e1d21SSam Leffler return IEEE80211_MODE_11B; 22331a1e1d21SSam Leffler } 22341a1e1d21SSam Leffler 223568e8e04eSSam Leffler struct ratemedia { 223668e8e04eSSam Leffler u_int match; /* rate + mode */ 223768e8e04eSSam Leffler u_int media; /* if_media rate */ 223868e8e04eSSam Leffler }; 223968e8e04eSSam Leffler 224068e8e04eSSam Leffler static int 224168e8e04eSSam Leffler findmedia(const struct ratemedia rates[], int n, u_int match) 224268e8e04eSSam Leffler { 224368e8e04eSSam Leffler int i; 224468e8e04eSSam Leffler 224568e8e04eSSam Leffler for (i = 0; i < n; i++) 224668e8e04eSSam Leffler if (rates[i].match == match) 224768e8e04eSSam Leffler return rates[i].media; 224868e8e04eSSam Leffler return IFM_AUTO; 224968e8e04eSSam Leffler } 225068e8e04eSSam Leffler 22511a1e1d21SSam Leffler /* 225268e8e04eSSam Leffler * Convert IEEE80211 rate value to ifmedia subtype. 225368e8e04eSSam Leffler * Rate is either a legacy rate in units of 0.5Mbps 225468e8e04eSSam Leffler * or an MCS index. 22551a1e1d21SSam Leffler */ 22561a1e1d21SSam Leffler int 22571a1e1d21SSam Leffler ieee80211_rate2media(struct ieee80211com *ic, int rate, enum ieee80211_phymode mode) 22581a1e1d21SSam Leffler { 225968e8e04eSSam Leffler static const struct ratemedia rates[] = { 22604844aa7dSAtsushi Onoe { 2 | IFM_IEEE80211_FH, IFM_IEEE80211_FH1 }, 22614844aa7dSAtsushi Onoe { 4 | IFM_IEEE80211_FH, IFM_IEEE80211_FH2 }, 22624844aa7dSAtsushi Onoe { 2 | IFM_IEEE80211_11B, IFM_IEEE80211_DS1 }, 22634844aa7dSAtsushi Onoe { 4 | IFM_IEEE80211_11B, IFM_IEEE80211_DS2 }, 22644844aa7dSAtsushi Onoe { 11 | IFM_IEEE80211_11B, IFM_IEEE80211_DS5 }, 22654844aa7dSAtsushi Onoe { 22 | IFM_IEEE80211_11B, IFM_IEEE80211_DS11 }, 22664844aa7dSAtsushi Onoe { 44 | IFM_IEEE80211_11B, IFM_IEEE80211_DS22 }, 22674844aa7dSAtsushi Onoe { 12 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM6 }, 22684844aa7dSAtsushi Onoe { 18 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM9 }, 22694844aa7dSAtsushi Onoe { 24 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM12 }, 22704844aa7dSAtsushi Onoe { 36 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM18 }, 22714844aa7dSAtsushi Onoe { 48 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM24 }, 22724844aa7dSAtsushi Onoe { 72 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM36 }, 22734844aa7dSAtsushi Onoe { 96 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM48 }, 22744844aa7dSAtsushi Onoe { 108 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM54 }, 22754844aa7dSAtsushi Onoe { 2 | IFM_IEEE80211_11G, IFM_IEEE80211_DS1 }, 22764844aa7dSAtsushi Onoe { 4 | IFM_IEEE80211_11G, IFM_IEEE80211_DS2 }, 22774844aa7dSAtsushi Onoe { 11 | IFM_IEEE80211_11G, IFM_IEEE80211_DS5 }, 22784844aa7dSAtsushi Onoe { 22 | IFM_IEEE80211_11G, IFM_IEEE80211_DS11 }, 22794844aa7dSAtsushi Onoe { 12 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM6 }, 22804844aa7dSAtsushi Onoe { 18 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM9 }, 22814844aa7dSAtsushi Onoe { 24 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM12 }, 22824844aa7dSAtsushi Onoe { 36 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM18 }, 22834844aa7dSAtsushi Onoe { 48 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM24 }, 22844844aa7dSAtsushi Onoe { 72 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM36 }, 22854844aa7dSAtsushi Onoe { 96 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM48 }, 22864844aa7dSAtsushi Onoe { 108 | IFM_IEEE80211_11G, IFM_IEEE80211_OFDM54 }, 228741b3c790SSam Leffler { 6 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM3 }, 228841b3c790SSam Leffler { 9 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM4 }, 228941b3c790SSam Leffler { 54 | IFM_IEEE80211_11A, IFM_IEEE80211_OFDM27 }, 2290a4641f4eSPedro F. Giffuni /* NB: OFDM72 doesn't really exist so we don't handle it */ 22911a1e1d21SSam Leffler }; 229268e8e04eSSam Leffler static const struct ratemedia htrates[] = { 229368e8e04eSSam Leffler { 0, IFM_IEEE80211_MCS }, 229468e8e04eSSam Leffler { 1, IFM_IEEE80211_MCS }, 229568e8e04eSSam Leffler { 2, IFM_IEEE80211_MCS }, 229668e8e04eSSam Leffler { 3, IFM_IEEE80211_MCS }, 229768e8e04eSSam Leffler { 4, IFM_IEEE80211_MCS }, 229868e8e04eSSam Leffler { 5, IFM_IEEE80211_MCS }, 229968e8e04eSSam Leffler { 6, IFM_IEEE80211_MCS }, 230068e8e04eSSam Leffler { 7, IFM_IEEE80211_MCS }, 230168e8e04eSSam Leffler { 8, IFM_IEEE80211_MCS }, 230268e8e04eSSam Leffler { 9, IFM_IEEE80211_MCS }, 230368e8e04eSSam Leffler { 10, IFM_IEEE80211_MCS }, 230468e8e04eSSam Leffler { 11, IFM_IEEE80211_MCS }, 230568e8e04eSSam Leffler { 12, IFM_IEEE80211_MCS }, 230668e8e04eSSam Leffler { 13, IFM_IEEE80211_MCS }, 230768e8e04eSSam Leffler { 14, IFM_IEEE80211_MCS }, 230868e8e04eSSam Leffler { 15, IFM_IEEE80211_MCS }, 2309f136f45fSBernhard Schmidt { 16, IFM_IEEE80211_MCS }, 2310f136f45fSBernhard Schmidt { 17, IFM_IEEE80211_MCS }, 2311f136f45fSBernhard Schmidt { 18, IFM_IEEE80211_MCS }, 2312f136f45fSBernhard Schmidt { 19, IFM_IEEE80211_MCS }, 2313f136f45fSBernhard Schmidt { 20, IFM_IEEE80211_MCS }, 2314f136f45fSBernhard Schmidt { 21, IFM_IEEE80211_MCS }, 2315f136f45fSBernhard Schmidt { 22, IFM_IEEE80211_MCS }, 2316f136f45fSBernhard Schmidt { 23, IFM_IEEE80211_MCS }, 2317f136f45fSBernhard Schmidt { 24, IFM_IEEE80211_MCS }, 2318f136f45fSBernhard Schmidt { 25, IFM_IEEE80211_MCS }, 2319f136f45fSBernhard Schmidt { 26, IFM_IEEE80211_MCS }, 2320f136f45fSBernhard Schmidt { 27, IFM_IEEE80211_MCS }, 2321f136f45fSBernhard Schmidt { 28, IFM_IEEE80211_MCS }, 2322f136f45fSBernhard Schmidt { 29, IFM_IEEE80211_MCS }, 2323f136f45fSBernhard Schmidt { 30, IFM_IEEE80211_MCS }, 2324f136f45fSBernhard Schmidt { 31, IFM_IEEE80211_MCS }, 2325f136f45fSBernhard Schmidt { 32, IFM_IEEE80211_MCS }, 2326f136f45fSBernhard Schmidt { 33, IFM_IEEE80211_MCS }, 2327f136f45fSBernhard Schmidt { 34, IFM_IEEE80211_MCS }, 2328f136f45fSBernhard Schmidt { 35, IFM_IEEE80211_MCS }, 2329f136f45fSBernhard Schmidt { 36, IFM_IEEE80211_MCS }, 2330f136f45fSBernhard Schmidt { 37, IFM_IEEE80211_MCS }, 2331f136f45fSBernhard Schmidt { 38, IFM_IEEE80211_MCS }, 2332f136f45fSBernhard Schmidt { 39, IFM_IEEE80211_MCS }, 2333f136f45fSBernhard Schmidt { 40, IFM_IEEE80211_MCS }, 2334f136f45fSBernhard Schmidt { 41, IFM_IEEE80211_MCS }, 2335f136f45fSBernhard Schmidt { 42, IFM_IEEE80211_MCS }, 2336f136f45fSBernhard Schmidt { 43, IFM_IEEE80211_MCS }, 2337f136f45fSBernhard Schmidt { 44, IFM_IEEE80211_MCS }, 2338f136f45fSBernhard Schmidt { 45, IFM_IEEE80211_MCS }, 2339f136f45fSBernhard Schmidt { 46, IFM_IEEE80211_MCS }, 2340f136f45fSBernhard Schmidt { 47, IFM_IEEE80211_MCS }, 2341f136f45fSBernhard Schmidt { 48, IFM_IEEE80211_MCS }, 2342f136f45fSBernhard Schmidt { 49, IFM_IEEE80211_MCS }, 2343f136f45fSBernhard Schmidt { 50, IFM_IEEE80211_MCS }, 2344f136f45fSBernhard Schmidt { 51, IFM_IEEE80211_MCS }, 2345f136f45fSBernhard Schmidt { 52, IFM_IEEE80211_MCS }, 2346f136f45fSBernhard Schmidt { 53, IFM_IEEE80211_MCS }, 2347f136f45fSBernhard Schmidt { 54, IFM_IEEE80211_MCS }, 2348f136f45fSBernhard Schmidt { 55, IFM_IEEE80211_MCS }, 2349f136f45fSBernhard Schmidt { 56, IFM_IEEE80211_MCS }, 2350f136f45fSBernhard Schmidt { 57, IFM_IEEE80211_MCS }, 2351f136f45fSBernhard Schmidt { 58, IFM_IEEE80211_MCS }, 2352f136f45fSBernhard Schmidt { 59, IFM_IEEE80211_MCS }, 2353f136f45fSBernhard Schmidt { 60, IFM_IEEE80211_MCS }, 2354f136f45fSBernhard Schmidt { 61, IFM_IEEE80211_MCS }, 2355f136f45fSBernhard Schmidt { 62, IFM_IEEE80211_MCS }, 2356f136f45fSBernhard Schmidt { 63, IFM_IEEE80211_MCS }, 2357f136f45fSBernhard Schmidt { 64, IFM_IEEE80211_MCS }, 2358f136f45fSBernhard Schmidt { 65, IFM_IEEE80211_MCS }, 2359f136f45fSBernhard Schmidt { 66, IFM_IEEE80211_MCS }, 2360f136f45fSBernhard Schmidt { 67, IFM_IEEE80211_MCS }, 2361f136f45fSBernhard Schmidt { 68, IFM_IEEE80211_MCS }, 2362f136f45fSBernhard Schmidt { 69, IFM_IEEE80211_MCS }, 2363f136f45fSBernhard Schmidt { 70, IFM_IEEE80211_MCS }, 2364f136f45fSBernhard Schmidt { 71, IFM_IEEE80211_MCS }, 2365f136f45fSBernhard Schmidt { 72, IFM_IEEE80211_MCS }, 2366f136f45fSBernhard Schmidt { 73, IFM_IEEE80211_MCS }, 2367f136f45fSBernhard Schmidt { 74, IFM_IEEE80211_MCS }, 2368f136f45fSBernhard Schmidt { 75, IFM_IEEE80211_MCS }, 2369f136f45fSBernhard Schmidt { 76, IFM_IEEE80211_MCS }, 237068e8e04eSSam Leffler }; 237168e8e04eSSam Leffler int m; 23721a1e1d21SSam Leffler 237368e8e04eSSam Leffler /* 237468e8e04eSSam Leffler * Check 11n rates first for match as an MCS. 237568e8e04eSSam Leffler */ 237668e8e04eSSam Leffler if (mode == IEEE80211_MODE_11NA) { 2377f0ee92d5SSam Leffler if (rate & IEEE80211_RATE_MCS) { 2378f0ee92d5SSam Leffler rate &= ~IEEE80211_RATE_MCS; 2379a3e08d6fSRui Paulo m = findmedia(htrates, nitems(htrates), rate); 238068e8e04eSSam Leffler if (m != IFM_AUTO) 238168e8e04eSSam Leffler return m | IFM_IEEE80211_11NA; 238268e8e04eSSam Leffler } 238368e8e04eSSam Leffler } else if (mode == IEEE80211_MODE_11NG) { 238468e8e04eSSam Leffler /* NB: 12 is ambiguous, it will be treated as an MCS */ 2385f0ee92d5SSam Leffler if (rate & IEEE80211_RATE_MCS) { 2386f0ee92d5SSam Leffler rate &= ~IEEE80211_RATE_MCS; 2387a3e08d6fSRui Paulo m = findmedia(htrates, nitems(htrates), rate); 238868e8e04eSSam Leffler if (m != IFM_AUTO) 238968e8e04eSSam Leffler return m | IFM_IEEE80211_11NG; 239068e8e04eSSam Leffler } 239168e8e04eSSam Leffler } 239268e8e04eSSam Leffler rate &= IEEE80211_RATE_VAL; 23931a1e1d21SSam Leffler switch (mode) { 23941a1e1d21SSam Leffler case IEEE80211_MODE_11A: 23956a76ae21SSam Leffler case IEEE80211_MODE_HALF: /* XXX good 'nuf */ 23966a76ae21SSam Leffler case IEEE80211_MODE_QUARTER: 239768e8e04eSSam Leffler case IEEE80211_MODE_11NA: 23988a1b9b6aSSam Leffler case IEEE80211_MODE_TURBO_A: 239968e8e04eSSam Leffler case IEEE80211_MODE_STURBO_A: 2400a3e08d6fSRui Paulo return findmedia(rates, nitems(rates), 2401a3e08d6fSRui Paulo rate | IFM_IEEE80211_11A); 24021a1e1d21SSam Leffler case IEEE80211_MODE_11B: 2403a3e08d6fSRui Paulo return findmedia(rates, nitems(rates), 2404a3e08d6fSRui Paulo rate | IFM_IEEE80211_11B); 24054844aa7dSAtsushi Onoe case IEEE80211_MODE_FH: 2406a3e08d6fSRui Paulo return findmedia(rates, nitems(rates), 2407a3e08d6fSRui Paulo rate | IFM_IEEE80211_FH); 24081a1e1d21SSam Leffler case IEEE80211_MODE_AUTO: 24091a1e1d21SSam Leffler /* NB: ic may be NULL for some drivers */ 2410566d825bSSam Leffler if (ic != NULL && ic->ic_phytype == IEEE80211_T_FH) 2411a3e08d6fSRui Paulo return findmedia(rates, nitems(rates), 241268e8e04eSSam Leffler rate | IFM_IEEE80211_FH); 24131a1e1d21SSam Leffler /* NB: hack, 11g matches both 11b+11a rates */ 24141a1e1d21SSam Leffler /* fall thru... */ 24151a1e1d21SSam Leffler case IEEE80211_MODE_11G: 241668e8e04eSSam Leffler case IEEE80211_MODE_11NG: 24178a1b9b6aSSam Leffler case IEEE80211_MODE_TURBO_G: 2418a3e08d6fSRui Paulo return findmedia(rates, nitems(rates), rate | IFM_IEEE80211_11G); 24197aebd3e5SAdrian Chadd case IEEE80211_MODE_VHT_2GHZ: 24207aebd3e5SAdrian Chadd case IEEE80211_MODE_VHT_5GHZ: 24217aebd3e5SAdrian Chadd /* XXX TODO: need to figure out mapping for VHT rates */ 24227aebd3e5SAdrian Chadd return IFM_AUTO; 24231a1e1d21SSam Leffler } 24241a1e1d21SSam Leffler return IFM_AUTO; 24251a1e1d21SSam Leffler } 24261a1e1d21SSam Leffler 24271a1e1d21SSam Leffler int 24281a1e1d21SSam Leffler ieee80211_media2rate(int mword) 24291a1e1d21SSam Leffler { 24301a1e1d21SSam Leffler static const int ieeerates[] = { 24311a1e1d21SSam Leffler -1, /* IFM_AUTO */ 24321a1e1d21SSam Leffler 0, /* IFM_MANUAL */ 24331a1e1d21SSam Leffler 0, /* IFM_NONE */ 24341a1e1d21SSam Leffler 2, /* IFM_IEEE80211_FH1 */ 24351a1e1d21SSam Leffler 4, /* IFM_IEEE80211_FH2 */ 24361a1e1d21SSam Leffler 2, /* IFM_IEEE80211_DS1 */ 24371a1e1d21SSam Leffler 4, /* IFM_IEEE80211_DS2 */ 24381a1e1d21SSam Leffler 11, /* IFM_IEEE80211_DS5 */ 24391a1e1d21SSam Leffler 22, /* IFM_IEEE80211_DS11 */ 24401a1e1d21SSam Leffler 44, /* IFM_IEEE80211_DS22 */ 24411a1e1d21SSam Leffler 12, /* IFM_IEEE80211_OFDM6 */ 24421a1e1d21SSam Leffler 18, /* IFM_IEEE80211_OFDM9 */ 24431a1e1d21SSam Leffler 24, /* IFM_IEEE80211_OFDM12 */ 24441a1e1d21SSam Leffler 36, /* IFM_IEEE80211_OFDM18 */ 24451a1e1d21SSam Leffler 48, /* IFM_IEEE80211_OFDM24 */ 24461a1e1d21SSam Leffler 72, /* IFM_IEEE80211_OFDM36 */ 24471a1e1d21SSam Leffler 96, /* IFM_IEEE80211_OFDM48 */ 24481a1e1d21SSam Leffler 108, /* IFM_IEEE80211_OFDM54 */ 24491a1e1d21SSam Leffler 144, /* IFM_IEEE80211_OFDM72 */ 245041b3c790SSam Leffler 0, /* IFM_IEEE80211_DS354k */ 245141b3c790SSam Leffler 0, /* IFM_IEEE80211_DS512k */ 245241b3c790SSam Leffler 6, /* IFM_IEEE80211_OFDM3 */ 245341b3c790SSam Leffler 9, /* IFM_IEEE80211_OFDM4 */ 245441b3c790SSam Leffler 54, /* IFM_IEEE80211_OFDM27 */ 245568e8e04eSSam Leffler -1, /* IFM_IEEE80211_MCS */ 24567aebd3e5SAdrian Chadd -1, /* IFM_IEEE80211_VHT */ 24571a1e1d21SSam Leffler }; 2458a3e08d6fSRui Paulo return IFM_SUBTYPE(mword) < nitems(ieeerates) ? 24591a1e1d21SSam Leffler ieeerates[IFM_SUBTYPE(mword)] : 0; 24601a1e1d21SSam Leffler } 24615b16c28cSSam Leffler 24625b16c28cSSam Leffler /* 24635b16c28cSSam Leffler * The following hash function is adapted from "Hash Functions" by Bob Jenkins 24645b16c28cSSam Leffler * ("Algorithm Alley", Dr. Dobbs Journal, September 1997). 24655b16c28cSSam Leffler */ 24665b16c28cSSam Leffler #define mix(a, b, c) \ 24675b16c28cSSam Leffler do { \ 24685b16c28cSSam Leffler a -= b; a -= c; a ^= (c >> 13); \ 24695b16c28cSSam Leffler b -= c; b -= a; b ^= (a << 8); \ 24705b16c28cSSam Leffler c -= a; c -= b; c ^= (b >> 13); \ 24715b16c28cSSam Leffler a -= b; a -= c; a ^= (c >> 12); \ 24725b16c28cSSam Leffler b -= c; b -= a; b ^= (a << 16); \ 24735b16c28cSSam Leffler c -= a; c -= b; c ^= (b >> 5); \ 24745b16c28cSSam Leffler a -= b; a -= c; a ^= (c >> 3); \ 24755b16c28cSSam Leffler b -= c; b -= a; b ^= (a << 10); \ 24765b16c28cSSam Leffler c -= a; c -= b; c ^= (b >> 15); \ 24775b16c28cSSam Leffler } while (/*CONSTCOND*/0) 24785b16c28cSSam Leffler 24795b16c28cSSam Leffler uint32_t 24805b16c28cSSam Leffler ieee80211_mac_hash(const struct ieee80211com *ic, 24815b16c28cSSam Leffler const uint8_t addr[IEEE80211_ADDR_LEN]) 24825b16c28cSSam Leffler { 24835b16c28cSSam Leffler uint32_t a = 0x9e3779b9, b = 0x9e3779b9, c = ic->ic_hash_key; 24845b16c28cSSam Leffler 24855b16c28cSSam Leffler b += addr[5] << 8; 24865b16c28cSSam Leffler b += addr[4]; 24875b16c28cSSam Leffler a += addr[3] << 24; 24885b16c28cSSam Leffler a += addr[2] << 16; 24895b16c28cSSam Leffler a += addr[1] << 8; 24905b16c28cSSam Leffler a += addr[0]; 24915b16c28cSSam Leffler 24925b16c28cSSam Leffler mix(a, b, c); 24935b16c28cSSam Leffler 24945b16c28cSSam Leffler return c; 24955b16c28cSSam Leffler } 24965b16c28cSSam Leffler #undef mix 2497a1cbd043SAdrian Chadd 2498a1cbd043SAdrian Chadd char 2499a1cbd043SAdrian Chadd ieee80211_channel_type_char(const struct ieee80211_channel *c) 2500a1cbd043SAdrian Chadd { 2501a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_ST(c)) 2502a1cbd043SAdrian Chadd return 'S'; 2503a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_108A(c)) 2504a1cbd043SAdrian Chadd return 'T'; 2505a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_108G(c)) 2506a1cbd043SAdrian Chadd return 'G'; 25077aebd3e5SAdrian Chadd if (IEEE80211_IS_CHAN_VHT(c)) 25087aebd3e5SAdrian Chadd return 'v'; 2509a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_HT(c)) 2510a1cbd043SAdrian Chadd return 'n'; 2511a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_A(c)) 2512a1cbd043SAdrian Chadd return 'a'; 2513a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_ANYG(c)) 2514a1cbd043SAdrian Chadd return 'g'; 2515a1cbd043SAdrian Chadd if (IEEE80211_IS_CHAN_B(c)) 2516a1cbd043SAdrian Chadd return 'b'; 2517a1cbd043SAdrian Chadd return 'f'; 2518a1cbd043SAdrian Chadd } 2519