1 /* $NetBSD: wi.c,v 1.232 2010/01/19 22:06:25 pooka Exp $ */ 2 3 /*- 4 * Copyright (c) 2004 The NetBSD Foundation, Inc. 5 * All rights reserved. 6 * 7 * This code is derived from software contributed to The NetBSD Foundation 8 * by Charles M. Hannum. 9 * 10 * Redistribution and use in source and binary forms, with or without 11 * modification, are permitted provided that the following conditions 12 * are met: 13 * 1. Redistributions of source code must retain the above copyright 14 * notice, this list of conditions and the following disclaimer. 15 * 2. Redistributions in binary form must reproduce the above copyright 16 * notice, this list of conditions and the following disclaimer in the 17 * documentation and/or other materials provided with the distribution. 18 * 19 * THIS SOFTWARE IS PROVIDED BY THE NETBSD FOUNDATION, INC. AND CONTRIBUTORS 20 * ``AS IS'' AND ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED 21 * TO, THE IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR 22 * PURPOSE ARE DISCLAIMED. IN NO EVENT SHALL THE FOUNDATION OR CONTRIBUTORS 23 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 24 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 25 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 26 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 27 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 28 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF THE 29 * POSSIBILITY OF SUCH DAMAGE. 30 */ 31 32 /* 33 * Copyright (c) 1997, 1998, 1999 34 * Bill Paul <wpaul@ctr.columbia.edu>. All rights reserved. 35 * 36 * Redistribution and use in source and binary forms, with or without 37 * modification, are permitted provided that the following conditions 38 * are met: 39 * 1. Redistributions of source code must retain the above copyright 40 * notice, this list of conditions and the following disclaimer. 41 * 2. Redistributions in binary form must reproduce the above copyright 42 * notice, this list of conditions and the following disclaimer in the 43 * documentation and/or other materials provided with the distribution. 44 * 3. All advertising materials mentioning features or use of this software 45 * must display the following acknowledgement: 46 * This product includes software developed by Bill Paul. 47 * 4. Neither the name of the author nor the names of any co-contributors 48 * may be used to endorse or promote products derived from this software 49 * without specific prior written permission. 50 * 51 * THIS SOFTWARE IS PROVIDED BY Bill Paul AND CONTRIBUTORS ``AS IS'' AND 52 * ANY EXPRESS OR IMPLIED WARRANTIES, INCLUDING, BUT NOT LIMITED TO, THE 53 * IMPLIED WARRANTIES OF MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE 54 * ARE DISCLAIMED. IN NO EVENT SHALL Bill Paul OR THE VOICES IN HIS HEAD 55 * BE LIABLE FOR ANY DIRECT, INDIRECT, INCIDENTAL, SPECIAL, EXEMPLARY, OR 56 * CONSEQUENTIAL DAMAGES (INCLUDING, BUT NOT LIMITED TO, PROCUREMENT OF 57 * SUBSTITUTE GOODS OR SERVICES; LOSS OF USE, DATA, OR PROFITS; OR BUSINESS 58 * INTERRUPTION) HOWEVER CAUSED AND ON ANY THEORY OF LIABILITY, WHETHER IN 59 * CONTRACT, STRICT LIABILITY, OR TORT (INCLUDING NEGLIGENCE OR OTHERWISE) 60 * ARISING IN ANY WAY OUT OF THE USE OF THIS SOFTWARE, EVEN IF ADVISED OF 61 * THE POSSIBILITY OF SUCH DAMAGE. 62 */ 63 64 /* 65 * Lucent WaveLAN/IEEE 802.11 PCMCIA driver for NetBSD. 66 * 67 * Original FreeBSD driver written by Bill Paul <wpaul@ctr.columbia.edu> 68 * Electrical Engineering Department 69 * Columbia University, New York City 70 */ 71 72 /* 73 * The WaveLAN/IEEE adapter is the second generation of the WaveLAN 74 * from Lucent. Unlike the older cards, the new ones are programmed 75 * entirely via a firmware-driven controller called the Hermes. 76 * Unfortunately, Lucent will not release the Hermes programming manual 77 * without an NDA (if at all). What they do release is an API library 78 * called the HCF (Hardware Control Functions) which is supposed to 79 * do the device-specific operations of a device driver for you. The 80 * publically available version of the HCF library (the 'HCF Light') is 81 * a) extremely gross, b) lacks certain features, particularly support 82 * for 802.11 frames, and c) is contaminated by the GNU Public License. 83 * 84 * This driver does not use the HCF or HCF Light at all. Instead, it 85 * programs the Hermes controller directly, using information gleaned 86 * from the HCF Light code and corresponding documentation. 87 * 88 * This driver supports both the PCMCIA and ISA versions of the 89 * WaveLAN/IEEE cards. Note however that the ISA card isn't really 90 * anything of the sort: it's actually a PCMCIA bridge adapter 91 * that fits into an ISA slot, into which a PCMCIA WaveLAN card is 92 * inserted. Consequently, you need to use the pccard support for 93 * both the ISA and PCMCIA adapters. 94 */ 95 96 /* 97 * FreeBSD driver ported to NetBSD by Bill Sommerfeld in the back of the 98 * Oslo IETF plenary meeting. 99 */ 100 101 #include <sys/cdefs.h> 102 __KERNEL_RCSID(0, "$NetBSD: wi.c,v 1.232 2010/01/19 22:06:25 pooka Exp $"); 103 104 #define WI_HERMES_AUTOINC_WAR /* Work around data write autoinc bug. */ 105 #define WI_HERMES_STATS_WAR /* Work around stats counter bug. */ 106 #undef WI_HISTOGRAM 107 #undef WI_RING_DEBUG 108 #define STATIC static 109 110 111 #include <sys/param.h> 112 #include <sys/sysctl.h> 113 #include <sys/systm.h> 114 #include <sys/callout.h> 115 #include <sys/device.h> 116 #include <sys/socket.h> 117 #include <sys/mbuf.h> 118 #include <sys/ioctl.h> 119 #include <sys/kernel.h> /* for hz */ 120 #include <sys/proc.h> 121 #include <sys/kauth.h> 122 123 #include <net/if.h> 124 #include <net/if_dl.h> 125 #include <net/if_llc.h> 126 #include <net/if_media.h> 127 #include <net/if_ether.h> 128 #include <net/route.h> 129 130 #include <net80211/ieee80211_netbsd.h> 131 #include <net80211/ieee80211_var.h> 132 #include <net80211/ieee80211_ioctl.h> 133 #include <net80211/ieee80211_radiotap.h> 134 #include <net80211/ieee80211_rssadapt.h> 135 136 #include <net/bpf.h> 137 #include <net/bpfdesc.h> 138 139 #include <sys/bus.h> 140 141 #include <dev/ic/wi_ieee.h> 142 #include <dev/ic/wireg.h> 143 #include <dev/ic/wivar.h> 144 145 STATIC int wi_init(struct ifnet *); 146 STATIC void wi_stop(struct ifnet *, int); 147 STATIC void wi_start(struct ifnet *); 148 STATIC int wi_reset(struct wi_softc *); 149 STATIC void wi_watchdog(struct ifnet *); 150 STATIC int wi_ioctl(struct ifnet *, u_long, void *); 151 STATIC int wi_media_change(struct ifnet *); 152 STATIC void wi_media_status(struct ifnet *, struct ifmediareq *); 153 154 STATIC struct ieee80211_node *wi_node_alloc(struct ieee80211_node_table *); 155 STATIC void wi_node_free(struct ieee80211_node *); 156 157 STATIC void wi_raise_rate(struct ieee80211com *, struct ieee80211_rssdesc *); 158 STATIC void wi_lower_rate(struct ieee80211com *, struct ieee80211_rssdesc *); 159 STATIC int wi_choose_rate(struct ieee80211com *, struct ieee80211_node *, 160 struct ieee80211_frame *, u_int); 161 STATIC void wi_rssadapt_updatestats_cb(void *, struct ieee80211_node *); 162 STATIC void wi_rssadapt_updatestats(void *); 163 STATIC void wi_rssdescs_init(struct wi_rssdesc (*)[], wi_rssdescq_t *); 164 STATIC void wi_rssdescs_reset(struct ieee80211com *, struct wi_rssdesc (*)[], 165 wi_rssdescq_t *, u_int8_t (*)[]); 166 STATIC void wi_sync_bssid(struct wi_softc *, u_int8_t new_bssid[]); 167 168 STATIC void wi_rx_intr(struct wi_softc *); 169 STATIC void wi_txalloc_intr(struct wi_softc *); 170 STATIC void wi_cmd_intr(struct wi_softc *); 171 STATIC void wi_tx_intr(struct wi_softc *); 172 STATIC void wi_tx_ex_intr(struct wi_softc *); 173 STATIC void wi_info_intr(struct wi_softc *); 174 175 STATIC int wi_key_delete(struct ieee80211com *, const struct ieee80211_key *); 176 STATIC int wi_key_set(struct ieee80211com *, const struct ieee80211_key *, 177 const u_int8_t[IEEE80211_ADDR_LEN]); 178 STATIC void wi_key_update_begin(struct ieee80211com *); 179 STATIC void wi_key_update_end(struct ieee80211com *); 180 181 STATIC void wi_push_packet(struct wi_softc *); 182 STATIC int wi_get_cfg(struct ifnet *, u_long, void *); 183 STATIC int wi_set_cfg(struct ifnet *, u_long, void *); 184 STATIC int wi_cfg_txrate(struct wi_softc *); 185 STATIC int wi_write_txrate(struct wi_softc *, int); 186 STATIC int wi_write_wep(struct wi_softc *); 187 STATIC int wi_write_multi(struct wi_softc *); 188 STATIC int wi_alloc_fid(struct wi_softc *, int, int *); 189 STATIC void wi_read_nicid(struct wi_softc *); 190 STATIC int wi_write_ssid(struct wi_softc *, int, u_int8_t *, int); 191 192 STATIC int wi_cmd(struct wi_softc *, int, int, int, int); 193 STATIC int wi_cmd_start(struct wi_softc *, int, int, int, int); 194 STATIC int wi_cmd_wait(struct wi_softc *, int, int); 195 STATIC int wi_seek_bap(struct wi_softc *, int, int); 196 STATIC int wi_read_bap(struct wi_softc *, int, int, void *, int); 197 STATIC int wi_write_bap(struct wi_softc *, int, int, void *, int); 198 STATIC int wi_mwrite_bap(struct wi_softc *, int, int, struct mbuf *, int); 199 STATIC int wi_read_rid(struct wi_softc *, int, void *, int *); 200 STATIC int wi_write_rid(struct wi_softc *, int, void *, int); 201 202 STATIC int wi_newstate(struct ieee80211com *, enum ieee80211_state, int); 203 STATIC void wi_set_tim(struct ieee80211_node *, int); 204 205 STATIC int wi_scan_ap(struct wi_softc *, u_int16_t, u_int16_t); 206 STATIC void wi_scan_result(struct wi_softc *, int, int); 207 208 STATIC void wi_dump_pkt(struct wi_frame *, struct ieee80211_node *, int rssi); 209 STATIC void wi_mend_flags(struct wi_softc *, enum ieee80211_state); 210 211 static inline int 212 wi_write_val(struct wi_softc *sc, int rid, u_int16_t val) 213 { 214 215 val = htole16(val); 216 return wi_write_rid(sc, rid, &val, sizeof(val)); 217 } 218 219 static struct timeval lasttxerror; /* time of last tx error msg */ 220 static int curtxeps = 0; /* current tx error msgs/sec */ 221 static int wi_txerate = 0; /* tx error rate: max msgs/sec */ 222 223 #ifdef WI_DEBUG 224 #define WI_DEBUG_MAX 2 225 int wi_debug = 0; 226 227 #define DPRINTF(X) if (wi_debug) printf X 228 #define DPRINTF2(X) if (wi_debug > 1) printf X 229 #define IFF_DUMPPKTS(_ifp) \ 230 (((_ifp)->if_flags & (IFF_DEBUG|IFF_LINK2)) == (IFF_DEBUG|IFF_LINK2)) 231 static int wi_sysctl_verify_debug(SYSCTLFN_PROTO); 232 #else 233 #define DPRINTF(X) 234 #define DPRINTF2(X) 235 #define IFF_DUMPPKTS(_ifp) 0 236 #endif 237 238 #define WI_INTRS (WI_EV_RX | WI_EV_ALLOC | WI_EV_INFO | \ 239 WI_EV_TX | WI_EV_TX_EXC | WI_EV_CMD) 240 241 struct wi_card_ident 242 wi_card_ident[] = { 243 /* CARD_ID CARD_NAME FIRM_TYPE */ 244 { WI_NIC_LUCENT_ID, WI_NIC_LUCENT_STR, WI_LUCENT }, 245 { WI_NIC_SONY_ID, WI_NIC_SONY_STR, WI_LUCENT }, 246 { WI_NIC_LUCENT_EMB_ID, WI_NIC_LUCENT_EMB_STR, WI_LUCENT }, 247 { WI_NIC_EVB2_ID, WI_NIC_EVB2_STR, WI_INTERSIL }, 248 { WI_NIC_HWB3763_ID, WI_NIC_HWB3763_STR, WI_INTERSIL }, 249 { WI_NIC_HWB3163_ID, WI_NIC_HWB3163_STR, WI_INTERSIL }, 250 { WI_NIC_HWB3163B_ID, WI_NIC_HWB3163B_STR, WI_INTERSIL }, 251 { WI_NIC_EVB3_ID, WI_NIC_EVB3_STR, WI_INTERSIL }, 252 { WI_NIC_HWB1153_ID, WI_NIC_HWB1153_STR, WI_INTERSIL }, 253 { WI_NIC_P2_SST_ID, WI_NIC_P2_SST_STR, WI_INTERSIL }, 254 { WI_NIC_EVB2_SST_ID, WI_NIC_EVB2_SST_STR, WI_INTERSIL }, 255 { WI_NIC_3842_EVA_ID, WI_NIC_3842_EVA_STR, WI_INTERSIL }, 256 { WI_NIC_3842_PCMCIA_AMD_ID, WI_NIC_3842_PCMCIA_STR, WI_INTERSIL }, 257 { WI_NIC_3842_PCMCIA_SST_ID, WI_NIC_3842_PCMCIA_STR, WI_INTERSIL }, 258 { WI_NIC_3842_PCMCIA_ATM_ID, WI_NIC_3842_PCMCIA_STR, WI_INTERSIL }, 259 { WI_NIC_3842_MINI_AMD_ID, WI_NIC_3842_MINI_STR, WI_INTERSIL }, 260 { WI_NIC_3842_MINI_SST_ID, WI_NIC_3842_MINI_STR, WI_INTERSIL }, 261 { WI_NIC_3842_MINI_ATM_ID, WI_NIC_3842_MINI_STR, WI_INTERSIL }, 262 { WI_NIC_3842_PCI_AMD_ID, WI_NIC_3842_PCI_STR, WI_INTERSIL }, 263 { WI_NIC_3842_PCI_SST_ID, WI_NIC_3842_PCI_STR, WI_INTERSIL }, 264 { WI_NIC_3842_PCI_ATM_ID, WI_NIC_3842_PCI_STR, WI_INTERSIL }, 265 { WI_NIC_P3_PCMCIA_AMD_ID, WI_NIC_P3_PCMCIA_STR, WI_INTERSIL }, 266 { WI_NIC_P3_PCMCIA_SST_ID, WI_NIC_P3_PCMCIA_STR, WI_INTERSIL }, 267 { WI_NIC_P3_MINI_AMD_ID, WI_NIC_P3_MINI_STR, WI_INTERSIL }, 268 { WI_NIC_P3_MINI_SST_ID, WI_NIC_P3_MINI_STR, WI_INTERSIL }, 269 { 0, NULL, 0 }, 270 }; 271 272 #ifndef _MODULE 273 /* 274 * Setup sysctl(3) MIB, hw.wi.* 275 * 276 * TBD condition CTLFLAG_PERMANENT on being a module or not 277 */ 278 SYSCTL_SETUP(sysctl_wi, "sysctl wi(4) subtree setup") 279 { 280 int rc; 281 const struct sysctlnode *rnode; 282 #ifdef WI_DEBUG 283 const struct sysctlnode *cnode; 284 #endif /* WI_DEBUG */ 285 286 if ((rc = sysctl_createv(clog, 0, NULL, &rnode, 287 CTLFLAG_PERMANENT, CTLTYPE_NODE, "hw", NULL, 288 NULL, 0, NULL, 0, CTL_HW, CTL_EOL)) != 0) 289 goto err; 290 291 if ((rc = sysctl_createv(clog, 0, &rnode, &rnode, 292 CTLFLAG_PERMANENT, CTLTYPE_NODE, "wi", 293 "Lucent/Prism/Symbol 802.11 controls", 294 NULL, 0, NULL, 0, CTL_CREATE, CTL_EOL)) != 0) 295 goto err; 296 297 #ifdef WI_DEBUG 298 /* control debugging printfs */ 299 if ((rc = sysctl_createv(clog, 0, &rnode, &cnode, 300 CTLFLAG_PERMANENT|CTLFLAG_READWRITE, CTLTYPE_INT, 301 "debug", SYSCTL_DESCR("Enable debugging output"), 302 wi_sysctl_verify_debug, 0, &wi_debug, 0, CTL_CREATE, CTL_EOL)) != 0) 303 goto err; 304 #endif /* WI_DEBUG */ 305 return; 306 err: 307 printf("%s: sysctl_createv failed (rc = %d)\n", __func__, rc); 308 } 309 #endif 310 311 #ifdef WI_DEBUG 312 static int 313 wi_sysctl_verify(SYSCTLFN_ARGS, int lower, int upper) 314 { 315 int error, t; 316 struct sysctlnode node; 317 318 node = *rnode; 319 t = *(int*)rnode->sysctl_data; 320 node.sysctl_data = &t; 321 error = sysctl_lookup(SYSCTLFN_CALL(&node)); 322 if (error || newp == NULL) 323 return (error); 324 325 if (t < lower || t > upper) 326 return (EINVAL); 327 328 *(int*)rnode->sysctl_data = t; 329 330 return (0); 331 } 332 333 static int 334 wi_sysctl_verify_debug(SYSCTLFN_ARGS) 335 { 336 return wi_sysctl_verify(SYSCTLFN_CALL(__UNCONST(rnode)), 337 0, WI_DEBUG_MAX); 338 } 339 #endif /* WI_DEBUG */ 340 341 STATIC int 342 wi_read_xrid(struct wi_softc *sc, int rid, void *buf, int ebuflen) 343 { 344 int buflen, rc; 345 346 buflen = ebuflen; 347 if ((rc = wi_read_rid(sc, rid, buf, &buflen)) != 0) 348 return rc; 349 350 if (buflen < ebuflen) { 351 #ifdef WI_DEBUG 352 printf("%s: rid=%#04x read %d, expected %d\n", __func__, 353 rid, buflen, ebuflen); 354 #endif 355 return -1; 356 } 357 return 0; 358 } 359 360 int 361 wi_attach(struct wi_softc *sc, const u_int8_t *macaddr) 362 { 363 struct ieee80211com *ic = &sc->sc_ic; 364 struct ifnet *ifp = &sc->sc_if; 365 int chan, nrate, buflen; 366 u_int16_t val, chanavail; 367 struct { 368 u_int16_t nrates; 369 char rates[IEEE80211_RATE_SIZE]; 370 } ratebuf; 371 static const u_int8_t empty_macaddr[IEEE80211_ADDR_LEN] = { 372 0x00, 0x00, 0x00, 0x00, 0x00, 0x00 373 }; 374 int s; 375 376 s = splnet(); 377 378 /* Make sure interrupts are disabled. */ 379 CSR_WRITE_2(sc, WI_INT_EN, 0); 380 CSR_WRITE_2(sc, WI_EVENT_ACK, ~0); 381 382 sc->sc_invalid = 0; 383 384 /* Reset the NIC. */ 385 if (wi_reset(sc) != 0) { 386 sc->sc_invalid = 1; 387 splx(s); 388 return 1; 389 } 390 391 if (wi_read_xrid(sc, WI_RID_MAC_NODE, ic->ic_myaddr, 392 IEEE80211_ADDR_LEN) != 0 || 393 IEEE80211_ADDR_EQ(ic->ic_myaddr, empty_macaddr)) { 394 if (macaddr != NULL) 395 memcpy(ic->ic_myaddr, macaddr, IEEE80211_ADDR_LEN); 396 else { 397 printf(" could not get mac address, attach failed\n"); 398 splx(s); 399 return 1; 400 } 401 } 402 403 printf(" 802.11 address %s\n", ether_sprintf(ic->ic_myaddr)); 404 405 /* Read NIC identification */ 406 wi_read_nicid(sc); 407 408 memcpy(ifp->if_xname, device_xname(&sc->sc_dev), IFNAMSIZ); 409 ifp->if_softc = sc; 410 ifp->if_start = wi_start; 411 ifp->if_ioctl = wi_ioctl; 412 ifp->if_watchdog = wi_watchdog; 413 ifp->if_init = wi_init; 414 ifp->if_stop = wi_stop; 415 ifp->if_flags = 416 IFF_SIMPLEX | IFF_BROADCAST | IFF_MULTICAST | IFF_NOTRAILERS; 417 IFQ_SET_READY(&ifp->if_snd); 418 419 ic->ic_ifp = ifp; 420 ic->ic_phytype = IEEE80211_T_DS; 421 ic->ic_opmode = IEEE80211_M_STA; 422 ic->ic_caps = IEEE80211_C_AHDEMO; 423 ic->ic_state = IEEE80211_S_INIT; 424 ic->ic_max_aid = WI_MAX_AID; 425 426 /* Find available channel */ 427 if (wi_read_xrid(sc, WI_RID_CHANNEL_LIST, &chanavail, 428 sizeof(chanavail)) != 0) { 429 aprint_normal_dev(&sc->sc_dev, "using default channel list\n"); 430 chanavail = htole16(0x1fff); /* assume 1-13 */ 431 } 432 for (chan = 16; chan > 0; chan--) { 433 if (!isset((u_int8_t*)&chanavail, chan - 1)) 434 continue; 435 ic->ic_ibss_chan = &ic->ic_channels[chan]; 436 ic->ic_channels[chan].ic_freq = 437 ieee80211_ieee2mhz(chan, IEEE80211_CHAN_2GHZ); 438 ic->ic_channels[chan].ic_flags = IEEE80211_CHAN_B; 439 } 440 441 /* Find default IBSS channel */ 442 if (wi_read_xrid(sc, WI_RID_OWN_CHNL, &val, sizeof(val)) == 0) { 443 chan = le16toh(val); 444 if (isset((u_int8_t*)&chanavail, chan - 1)) 445 ic->ic_ibss_chan = &ic->ic_channels[chan]; 446 } 447 if (ic->ic_ibss_chan == NULL) { 448 aprint_error_dev(&sc->sc_dev, "no available channel\n"); 449 return 1; 450 } 451 452 if (sc->sc_firmware_type == WI_LUCENT) { 453 sc->sc_dbm_offset = WI_LUCENT_DBM_OFFSET; 454 } else { 455 if ((sc->sc_flags & WI_FLAGS_HAS_DBMADJUST) && 456 wi_read_xrid(sc, WI_RID_DBM_ADJUST, &val, sizeof(val)) == 0) 457 sc->sc_dbm_offset = le16toh(val); 458 else 459 sc->sc_dbm_offset = WI_PRISM_DBM_OFFSET; 460 } 461 462 sc->sc_flags |= WI_FLAGS_RSSADAPTSTA; 463 464 /* 465 * Set flags based on firmware version. 466 */ 467 switch (sc->sc_firmware_type) { 468 case WI_LUCENT: 469 sc->sc_flags |= WI_FLAGS_HAS_SYSSCALE; 470 #ifdef WI_HERMES_AUTOINC_WAR 471 /* XXX: not confirmed, but never seen for recent firmware */ 472 if (sc->sc_sta_firmware_ver < 40000) { 473 sc->sc_flags |= WI_FLAGS_BUG_AUTOINC; 474 } 475 #endif 476 if (sc->sc_sta_firmware_ver >= 60000) 477 sc->sc_flags |= WI_FLAGS_HAS_MOR; 478 if (sc->sc_sta_firmware_ver >= 60006) { 479 ic->ic_caps |= IEEE80211_C_IBSS; 480 ic->ic_caps |= IEEE80211_C_MONITOR; 481 } 482 ic->ic_caps |= IEEE80211_C_PMGT; 483 sc->sc_ibss_port = 1; 484 break; 485 486 case WI_INTERSIL: 487 sc->sc_flags |= WI_FLAGS_HAS_FRAGTHR; 488 sc->sc_flags |= WI_FLAGS_HAS_ROAMING; 489 sc->sc_flags |= WI_FLAGS_HAS_SYSSCALE; 490 if (sc->sc_sta_firmware_ver > 10101) 491 sc->sc_flags |= WI_FLAGS_HAS_DBMADJUST; 492 if (sc->sc_sta_firmware_ver >= 800) { 493 if (sc->sc_sta_firmware_ver != 10402) 494 ic->ic_caps |= IEEE80211_C_HOSTAP; 495 ic->ic_caps |= IEEE80211_C_IBSS; 496 ic->ic_caps |= IEEE80211_C_MONITOR; 497 } 498 ic->ic_caps |= IEEE80211_C_PMGT; 499 sc->sc_ibss_port = 0; 500 sc->sc_alt_retry = 2; 501 break; 502 503 case WI_SYMBOL: 504 sc->sc_flags |= WI_FLAGS_HAS_DIVERSITY; 505 if (sc->sc_sta_firmware_ver >= 20000) 506 ic->ic_caps |= IEEE80211_C_IBSS; 507 sc->sc_ibss_port = 4; 508 break; 509 } 510 511 /* 512 * Find out if we support WEP on this card. 513 */ 514 if (wi_read_xrid(sc, WI_RID_WEP_AVAIL, &val, sizeof(val)) == 0 && 515 val != htole16(0)) 516 ic->ic_caps |= IEEE80211_C_WEP; 517 518 /* Find supported rates. */ 519 buflen = sizeof(ratebuf); 520 if (wi_read_rid(sc, WI_RID_DATA_RATES, &ratebuf, &buflen) == 0 && 521 buflen > 2) { 522 nrate = le16toh(ratebuf.nrates); 523 if (nrate > IEEE80211_RATE_SIZE) 524 nrate = IEEE80211_RATE_SIZE; 525 memcpy(ic->ic_sup_rates[IEEE80211_MODE_11B].rs_rates, 526 &ratebuf.rates[0], nrate); 527 ic->ic_sup_rates[IEEE80211_MODE_11B].rs_nrates = nrate; 528 } else { 529 aprint_error_dev(&sc->sc_dev, "no supported rate list\n"); 530 return 1; 531 } 532 533 sc->sc_max_datalen = 2304; 534 sc->sc_rts_thresh = 2347; 535 sc->sc_frag_thresh = 2346; 536 sc->sc_system_scale = 1; 537 sc->sc_cnfauthmode = IEEE80211_AUTH_OPEN; 538 sc->sc_roaming_mode = 1; 539 540 callout_init(&sc->sc_rssadapt_ch, 0); 541 542 /* 543 * Call MI attach routines. 544 */ 545 if_attach(ifp); 546 ieee80211_ifattach(ic); 547 548 sc->sc_newstate = ic->ic_newstate; 549 sc->sc_set_tim = ic->ic_set_tim; 550 ic->ic_newstate = wi_newstate; 551 ic->ic_node_alloc = wi_node_alloc; 552 ic->ic_node_free = wi_node_free; 553 ic->ic_set_tim = wi_set_tim; 554 555 ic->ic_crypto.cs_key_delete = wi_key_delete; 556 ic->ic_crypto.cs_key_set = wi_key_set; 557 ic->ic_crypto.cs_key_update_begin = wi_key_update_begin; 558 ic->ic_crypto.cs_key_update_end = wi_key_update_end; 559 560 ieee80211_media_init(ic, wi_media_change, wi_media_status); 561 562 bpf_ops->bpf_attach(ifp, DLT_IEEE802_11_RADIO, 563 sizeof(struct ieee80211_frame) + 64, &sc->sc_drvbpf); 564 565 memset(&sc->sc_rxtapu, 0, sizeof(sc->sc_rxtapu)); 566 sc->sc_rxtap.wr_ihdr.it_len = htole16(sizeof(sc->sc_rxtapu)); 567 sc->sc_rxtap.wr_ihdr.it_present = htole32(WI_RX_RADIOTAP_PRESENT); 568 569 memset(&sc->sc_txtapu, 0, sizeof(sc->sc_txtapu)); 570 sc->sc_txtap.wt_ihdr.it_len = htole16(sizeof(sc->sc_txtapu)); 571 sc->sc_txtap.wt_ihdr.it_present = htole32(WI_TX_RADIOTAP_PRESENT); 572 573 /* Attach is successful. */ 574 sc->sc_attached = 1; 575 576 splx(s); 577 ieee80211_announce(ic); 578 return 0; 579 } 580 581 int 582 wi_detach(struct wi_softc *sc) 583 { 584 struct ifnet *ifp = &sc->sc_if; 585 int s; 586 587 if (!sc->sc_attached) 588 return 0; 589 590 sc->sc_invalid = 1; 591 s = splnet(); 592 593 wi_stop(ifp, 1); 594 595 ieee80211_ifdetach(&sc->sc_ic); 596 if_detach(ifp); 597 splx(s); 598 return 0; 599 } 600 601 int 602 wi_activate(device_t self, enum devact act) 603 { 604 struct wi_softc *sc = device_private(self); 605 606 switch (act) { 607 case DVACT_DEACTIVATE: 608 if_deactivate(&sc->sc_if); 609 return 0; 610 default: 611 return EOPNOTSUPP; 612 } 613 } 614 615 int 616 wi_intr(void *arg) 617 { 618 int i; 619 struct wi_softc *sc = arg; 620 struct ifnet *ifp = &sc->sc_if; 621 u_int16_t status; 622 623 if (sc->sc_enabled == 0 || 624 !device_is_active(&sc->sc_dev) || 625 (ifp->if_flags & IFF_RUNNING) == 0) 626 return 0; 627 628 if ((ifp->if_flags & IFF_UP) == 0) { 629 CSR_WRITE_2(sc, WI_INT_EN, 0); 630 CSR_WRITE_2(sc, WI_EVENT_ACK, ~0); 631 return 1; 632 } 633 634 /* This is superfluous on Prism, but Lucent breaks if we 635 * do not disable interrupts. 636 */ 637 CSR_WRITE_2(sc, WI_INT_EN, 0); 638 639 /* maximum 10 loops per interrupt */ 640 for (i = 0; i < 10; i++) { 641 status = CSR_READ_2(sc, WI_EVENT_STAT); 642 #ifdef WI_DEBUG 643 if (wi_debug > 1) { 644 printf("%s: iter %d status %#04x\n", __func__, i, 645 status); 646 } 647 #endif /* WI_DEBUG */ 648 if ((status & WI_INTRS) == 0) 649 break; 650 651 sc->sc_status = status; 652 653 if (status & WI_EV_RX) 654 wi_rx_intr(sc); 655 656 if (status & WI_EV_ALLOC) 657 wi_txalloc_intr(sc); 658 659 if (status & WI_EV_TX) 660 wi_tx_intr(sc); 661 662 if (status & WI_EV_TX_EXC) 663 wi_tx_ex_intr(sc); 664 665 if (status & WI_EV_INFO) 666 wi_info_intr(sc); 667 668 CSR_WRITE_2(sc, WI_EVENT_ACK, sc->sc_status); 669 670 if (sc->sc_status & WI_EV_CMD) 671 wi_cmd_intr(sc); 672 673 if ((ifp->if_flags & IFF_OACTIVE) == 0 && 674 (sc->sc_flags & WI_FLAGS_OUTRANGE) == 0 && 675 !IFQ_IS_EMPTY(&ifp->if_snd)) 676 wi_start(ifp); 677 678 sc->sc_status = 0; 679 } 680 681 /* re-enable interrupts */ 682 CSR_WRITE_2(sc, WI_INT_EN, WI_INTRS); 683 684 sc->sc_status = 0; 685 686 return 1; 687 } 688 689 #define arraylen(a) (sizeof(a) / sizeof((a)[0])) 690 691 STATIC void 692 wi_rssdescs_init(struct wi_rssdesc (*rssd)[WI_NTXRSS], wi_rssdescq_t *rssdfree) 693 { 694 int i; 695 SLIST_INIT(rssdfree); 696 for (i = 0; i < arraylen(*rssd); i++) { 697 SLIST_INSERT_HEAD(rssdfree, &(*rssd)[i], rd_next); 698 } 699 } 700 701 STATIC void 702 wi_rssdescs_reset(struct ieee80211com *ic, struct wi_rssdesc (*rssd)[WI_NTXRSS], 703 wi_rssdescq_t *rssdfree, u_int8_t (*txpending)[IEEE80211_RATE_MAXSIZE]) 704 { 705 struct ieee80211_node *ni; 706 int i; 707 for (i = 0; i < arraylen(*rssd); i++) { 708 ni = (*rssd)[i].rd_desc.id_node; 709 (*rssd)[i].rd_desc.id_node = NULL; 710 if (ni != NULL && (ic->ic_ifp->if_flags & IFF_DEBUG) != 0) 711 printf("%s: cleaning outstanding rssadapt " 712 "descriptor for %s\n", 713 ic->ic_ifp->if_xname, ether_sprintf(ni->ni_macaddr)); 714 if (ni != NULL) 715 ieee80211_free_node(ni); 716 } 717 memset(*txpending, 0, sizeof(*txpending)); 718 wi_rssdescs_init(rssd, rssdfree); 719 } 720 721 STATIC int 722 wi_init(struct ifnet *ifp) 723 { 724 struct wi_softc *sc = ifp->if_softc; 725 struct ieee80211com *ic = &sc->sc_ic; 726 struct wi_joinreq join; 727 int i; 728 int error = 0, wasenabled; 729 730 DPRINTF(("wi_init: enabled %d\n", sc->sc_enabled)); 731 wasenabled = sc->sc_enabled; 732 if (!sc->sc_enabled) { 733 if ((error = (*sc->sc_enable)(sc)) != 0) 734 goto out; 735 sc->sc_enabled = 1; 736 } else 737 wi_stop(ifp, 0); 738 739 /* Symbol firmware cannot be initialized more than once */ 740 if (sc->sc_firmware_type != WI_SYMBOL || !wasenabled) 741 if ((error = wi_reset(sc)) != 0) 742 goto out; 743 744 /* common 802.11 configuration */ 745 ic->ic_flags &= ~IEEE80211_F_IBSSON; 746 sc->sc_flags &= ~WI_FLAGS_OUTRANGE; 747 switch (ic->ic_opmode) { 748 case IEEE80211_M_STA: 749 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_BSS); 750 break; 751 case IEEE80211_M_IBSS: 752 wi_write_val(sc, WI_RID_PORTTYPE, sc->sc_ibss_port); 753 ic->ic_flags |= IEEE80211_F_IBSSON; 754 break; 755 case IEEE80211_M_AHDEMO: 756 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_ADHOC); 757 break; 758 case IEEE80211_M_HOSTAP: 759 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_HOSTAP); 760 break; 761 case IEEE80211_M_MONITOR: 762 if (sc->sc_firmware_type == WI_LUCENT) 763 wi_write_val(sc, WI_RID_PORTTYPE, WI_PORTTYPE_ADHOC); 764 wi_cmd(sc, WI_CMD_TEST | (WI_TEST_MONITOR << 8), 0, 0, 0); 765 break; 766 } 767 768 /* Intersil interprets this RID as joining ESS even in IBSS mode */ 769 if (sc->sc_firmware_type == WI_LUCENT && 770 (ic->ic_flags & IEEE80211_F_IBSSON) && ic->ic_des_esslen > 0) 771 wi_write_val(sc, WI_RID_CREATE_IBSS, 1); 772 else 773 wi_write_val(sc, WI_RID_CREATE_IBSS, 0); 774 wi_write_val(sc, WI_RID_MAX_SLEEP, ic->ic_lintval); 775 wi_write_ssid(sc, WI_RID_DESIRED_SSID, ic->ic_des_essid, 776 ic->ic_des_esslen); 777 wi_write_val(sc, WI_RID_OWN_CHNL, 778 ieee80211_chan2ieee(ic, ic->ic_ibss_chan)); 779 wi_write_ssid(sc, WI_RID_OWN_SSID, ic->ic_des_essid, ic->ic_des_esslen); 780 IEEE80211_ADDR_COPY(ic->ic_myaddr, CLLADDR(ifp->if_sadl)); 781 wi_write_rid(sc, WI_RID_MAC_NODE, ic->ic_myaddr, IEEE80211_ADDR_LEN); 782 if (ic->ic_caps & IEEE80211_C_PMGT) 783 wi_write_val(sc, WI_RID_PM_ENABLED, 784 (ic->ic_flags & IEEE80211_F_PMGTON) ? 1 : 0); 785 786 /* not yet common 802.11 configuration */ 787 wi_write_val(sc, WI_RID_MAX_DATALEN, sc->sc_max_datalen); 788 wi_write_val(sc, WI_RID_RTS_THRESH, sc->sc_rts_thresh); 789 if (sc->sc_flags & WI_FLAGS_HAS_FRAGTHR) 790 wi_write_val(sc, WI_RID_FRAG_THRESH, sc->sc_frag_thresh); 791 792 /* driver specific 802.11 configuration */ 793 if (sc->sc_flags & WI_FLAGS_HAS_SYSSCALE) 794 wi_write_val(sc, WI_RID_SYSTEM_SCALE, sc->sc_system_scale); 795 if (sc->sc_flags & WI_FLAGS_HAS_ROAMING) 796 wi_write_val(sc, WI_RID_ROAMING_MODE, sc->sc_roaming_mode); 797 if (sc->sc_flags & WI_FLAGS_HAS_MOR) 798 wi_write_val(sc, WI_RID_MICROWAVE_OVEN, sc->sc_microwave_oven); 799 wi_cfg_txrate(sc); 800 wi_write_ssid(sc, WI_RID_NODENAME, sc->sc_nodename, sc->sc_nodelen); 801 802 #ifndef IEEE80211_NO_HOSTAP 803 if (ic->ic_opmode == IEEE80211_M_HOSTAP && 804 sc->sc_firmware_type == WI_INTERSIL) { 805 wi_write_val(sc, WI_RID_OWN_BEACON_INT, ic->ic_lintval); 806 wi_write_val(sc, WI_RID_DTIM_PERIOD, 1); 807 } 808 #endif /* !IEEE80211_NO_HOSTAP */ 809 810 if (sc->sc_firmware_type == WI_INTERSIL) { 811 struct ieee80211_rateset *rs = 812 &ic->ic_sup_rates[IEEE80211_MODE_11B]; 813 u_int16_t basic = 0, supported = 0, rate; 814 815 for (i = 0; i < rs->rs_nrates; i++) { 816 switch (rs->rs_rates[i] & IEEE80211_RATE_VAL) { 817 case 2: 818 rate = 1; 819 break; 820 case 4: 821 rate = 2; 822 break; 823 case 11: 824 rate = 4; 825 break; 826 case 22: 827 rate = 8; 828 break; 829 default: 830 rate = 0; 831 break; 832 } 833 if (rs->rs_rates[i] & IEEE80211_RATE_BASIC) 834 basic |= rate; 835 supported |= rate; 836 } 837 wi_write_val(sc, WI_RID_BASIC_RATE, basic); 838 wi_write_val(sc, WI_RID_SUPPORT_RATE, supported); 839 wi_write_val(sc, WI_RID_ALT_RETRY_COUNT, sc->sc_alt_retry); 840 } 841 842 /* 843 * Initialize promisc mode. 844 * Being in Host-AP mode causes a great 845 * deal of pain if promiscuous mode is set. 846 * Therefore we avoid confusing the firmware 847 * and always reset promisc mode in Host-AP 848 * mode. Host-AP sees all the packets anyway. 849 */ 850 if (ic->ic_opmode != IEEE80211_M_HOSTAP && 851 (ifp->if_flags & IFF_PROMISC) != 0) { 852 wi_write_val(sc, WI_RID_PROMISC, 1); 853 } else { 854 wi_write_val(sc, WI_RID_PROMISC, 0); 855 } 856 857 /* Configure WEP. */ 858 if (ic->ic_caps & IEEE80211_C_WEP) { 859 sc->sc_cnfauthmode = ic->ic_bss->ni_authmode; 860 wi_write_wep(sc); 861 } 862 863 /* Set multicast filter. */ 864 wi_write_multi(sc); 865 866 sc->sc_txalloc = 0; 867 sc->sc_txalloced = 0; 868 sc->sc_txqueue = 0; 869 sc->sc_txqueued = 0; 870 sc->sc_txstart = 0; 871 sc->sc_txstarted = 0; 872 873 if (sc->sc_firmware_type != WI_SYMBOL || !wasenabled) { 874 sc->sc_buflen = IEEE80211_MAX_LEN + sizeof(struct wi_frame); 875 if (sc->sc_firmware_type == WI_SYMBOL) 876 sc->sc_buflen = 1585; /* XXX */ 877 for (i = 0; i < WI_NTXBUF; i++) { 878 error = wi_alloc_fid(sc, sc->sc_buflen, 879 &sc->sc_txd[i].d_fid); 880 if (error) { 881 aprint_error_dev(&sc->sc_dev, "tx buffer allocation failed\n"); 882 goto out; 883 } 884 DPRINTF2(("wi_init: txbuf %d allocated %x\n", i, 885 sc->sc_txd[i].d_fid)); 886 ++sc->sc_txalloced; 887 } 888 } 889 890 wi_rssdescs_init(&sc->sc_rssd, &sc->sc_rssdfree); 891 892 /* Enable desired port */ 893 wi_cmd(sc, WI_CMD_ENABLE | sc->sc_portnum, 0, 0, 0); 894 ifp->if_flags |= IFF_RUNNING; 895 ifp->if_flags &= ~IFF_OACTIVE; 896 ic->ic_state = IEEE80211_S_INIT; 897 898 if (ic->ic_opmode == IEEE80211_M_AHDEMO || 899 ic->ic_opmode == IEEE80211_M_IBSS || 900 ic->ic_opmode == IEEE80211_M_MONITOR || 901 ic->ic_opmode == IEEE80211_M_HOSTAP) 902 ieee80211_create_ibss(ic, ic->ic_ibss_chan); 903 904 /* Enable interrupts */ 905 CSR_WRITE_2(sc, WI_INT_EN, WI_INTRS); 906 907 #ifndef IEEE80211_NO_HOSTAP 908 if (!wasenabled && 909 ic->ic_opmode == IEEE80211_M_HOSTAP && 910 sc->sc_firmware_type == WI_INTERSIL) { 911 /* XXX: some card need to be re-enabled for hostap */ 912 wi_cmd(sc, WI_CMD_DISABLE | WI_PORT0, 0, 0, 0); 913 wi_cmd(sc, WI_CMD_ENABLE | WI_PORT0, 0, 0, 0); 914 } 915 #endif /* !IEEE80211_NO_HOSTAP */ 916 917 if (ic->ic_opmode == IEEE80211_M_STA && 918 ((ic->ic_flags & IEEE80211_F_DESBSSID) || 919 ic->ic_des_chan != IEEE80211_CHAN_ANYC)) { 920 memset(&join, 0, sizeof(join)); 921 if (ic->ic_flags & IEEE80211_F_DESBSSID) 922 IEEE80211_ADDR_COPY(&join.wi_bssid, ic->ic_des_bssid); 923 if (ic->ic_des_chan != IEEE80211_CHAN_ANYC) 924 join.wi_chan = 925 htole16(ieee80211_chan2ieee(ic, ic->ic_des_chan)); 926 /* Lucent firmware does not support the JOIN RID. */ 927 if (sc->sc_firmware_type != WI_LUCENT) 928 wi_write_rid(sc, WI_RID_JOIN_REQ, &join, sizeof(join)); 929 } 930 931 out: 932 if (error) { 933 printf("%s: interface not running\n", device_xname(&sc->sc_dev)); 934 wi_stop(ifp, 0); 935 } 936 DPRINTF(("wi_init: return %d\n", error)); 937 return error; 938 } 939 940 STATIC void 941 wi_txcmd_wait(struct wi_softc *sc) 942 { 943 KASSERT(sc->sc_txcmds == 1); 944 if (sc->sc_status & WI_EV_CMD) { 945 sc->sc_status &= ~WI_EV_CMD; 946 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_CMD); 947 } else 948 (void)wi_cmd_wait(sc, WI_CMD_TX | WI_RECLAIM, 0); 949 } 950 951 STATIC void 952 wi_stop(struct ifnet *ifp, int disable) 953 { 954 struct wi_softc *sc = ifp->if_softc; 955 struct ieee80211com *ic = &sc->sc_ic; 956 int s; 957 958 if (!sc->sc_enabled) 959 return; 960 961 s = splnet(); 962 963 DPRINTF(("wi_stop: disable %d\n", disable)); 964 965 ieee80211_new_state(ic, IEEE80211_S_INIT, -1); 966 967 /* wait for tx command completion (deassoc, deauth) */ 968 while (sc->sc_txcmds > 0) { 969 wi_txcmd_wait(sc); 970 wi_cmd_intr(sc); 971 } 972 973 /* TBD wait for deassoc, deauth tx completion? */ 974 975 if (!sc->sc_invalid) { 976 CSR_WRITE_2(sc, WI_INT_EN, 0); 977 wi_cmd(sc, WI_CMD_DISABLE | sc->sc_portnum, 0, 0, 0); 978 } 979 980 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree, 981 &sc->sc_txpending); 982 983 sc->sc_tx_timer = 0; 984 sc->sc_scan_timer = 0; 985 sc->sc_false_syns = 0; 986 sc->sc_naps = 0; 987 ifp->if_flags &= ~(IFF_OACTIVE | IFF_RUNNING); 988 ifp->if_timer = 0; 989 990 if (disable) { 991 if (sc->sc_disable) 992 (*sc->sc_disable)(sc); 993 sc->sc_enabled = 0; 994 } 995 splx(s); 996 } 997 998 /* 999 * Choose a data rate for a packet len bytes long that suits the packet 1000 * type and the wireless conditions. 1001 * 1002 * TBD Adapt fragmentation threshold. 1003 */ 1004 STATIC int 1005 wi_choose_rate(struct ieee80211com *ic, struct ieee80211_node *ni, 1006 struct ieee80211_frame *wh, u_int len) 1007 { 1008 struct wi_softc *sc = ic->ic_ifp->if_softc; 1009 struct wi_node *wn = (void*)ni; 1010 struct ieee80211_rssadapt *ra = &wn->wn_rssadapt; 1011 int do_not_adapt, i, rateidx, s; 1012 1013 do_not_adapt = (ic->ic_opmode != IEEE80211_M_HOSTAP) && 1014 (sc->sc_flags & WI_FLAGS_RSSADAPTSTA) == 0; 1015 1016 s = splnet(); 1017 1018 rateidx = ieee80211_rssadapt_choose(ra, &ni->ni_rates, wh, len, 1019 ic->ic_fixed_rate, 1020 ((ic->ic_ifp->if_flags & IFF_DEBUG) == 0) ? NULL : ic->ic_ifp->if_xname, 1021 do_not_adapt); 1022 1023 ni->ni_txrate = rateidx; 1024 1025 if (ic->ic_opmode != IEEE80211_M_HOSTAP) { 1026 /* choose the slowest pending rate so that we don't 1027 * accidentally send a packet on the MAC's queue 1028 * too fast. TBD find out if the MAC labels Tx 1029 * packets w/ rate when enqueued or dequeued. 1030 */ 1031 for (i = 0; i < rateidx && sc->sc_txpending[i] == 0; i++); 1032 rateidx = i; 1033 } 1034 1035 splx(s); 1036 return (rateidx); 1037 } 1038 1039 STATIC void 1040 wi_raise_rate(struct ieee80211com *ic, struct ieee80211_rssdesc *id) 1041 { 1042 struct wi_node *wn; 1043 if (id->id_node == NULL) 1044 return; 1045 1046 wn = (void*)id->id_node; 1047 ieee80211_rssadapt_raise_rate(ic, &wn->wn_rssadapt, id); 1048 } 1049 1050 STATIC void 1051 wi_lower_rate(struct ieee80211com *ic, struct ieee80211_rssdesc *id) 1052 { 1053 struct ieee80211_node *ni; 1054 struct wi_node *wn; 1055 int s; 1056 1057 s = splnet(); 1058 1059 if ((ni = id->id_node) == NULL) { 1060 DPRINTF(("wi_lower_rate: missing node\n")); 1061 goto out; 1062 } 1063 1064 wn = (void *)ni; 1065 1066 ieee80211_rssadapt_lower_rate(ic, ni, &wn->wn_rssadapt, id); 1067 out: 1068 splx(s); 1069 return; 1070 } 1071 1072 STATIC void 1073 wi_start(struct ifnet *ifp) 1074 { 1075 struct wi_softc *sc = ifp->if_softc; 1076 struct ieee80211com *ic = &sc->sc_ic; 1077 struct ether_header *eh; 1078 struct ieee80211_node *ni; 1079 struct ieee80211_frame *wh; 1080 struct ieee80211_rateset *rs; 1081 struct wi_rssdesc *rd; 1082 struct ieee80211_rssdesc *id; 1083 struct mbuf *m0; 1084 struct wi_frame frmhdr; 1085 int cur, fid, off, rateidx; 1086 1087 if (!sc->sc_enabled || sc->sc_invalid) 1088 return; 1089 if (sc->sc_flags & WI_FLAGS_OUTRANGE) 1090 return; 1091 1092 memset(&frmhdr, 0, sizeof(frmhdr)); 1093 cur = sc->sc_txqueue; 1094 for (;;) { 1095 ni = ic->ic_bss; 1096 if (sc->sc_txalloced == 0 || SLIST_EMPTY(&sc->sc_rssdfree)) { 1097 ifp->if_flags |= IFF_OACTIVE; 1098 break; 1099 } 1100 if (!IF_IS_EMPTY(&ic->ic_mgtq)) { 1101 IF_DEQUEUE(&ic->ic_mgtq, m0); 1102 m_copydata(m0, 4, ETHER_ADDR_LEN * 2, 1103 (void *)&frmhdr.wi_ehdr); 1104 frmhdr.wi_ehdr.ether_type = 0; 1105 wh = mtod(m0, struct ieee80211_frame *); 1106 ni = (struct ieee80211_node *)m0->m_pkthdr.rcvif; 1107 m0->m_pkthdr.rcvif = NULL; 1108 } else if (ic->ic_state == IEEE80211_S_RUN) { 1109 IFQ_POLL(&ifp->if_snd, m0); 1110 if (m0 == NULL) 1111 break; 1112 IFQ_DEQUEUE(&ifp->if_snd, m0); 1113 ifp->if_opackets++; 1114 m_copydata(m0, 0, ETHER_HDR_LEN, 1115 (void *)&frmhdr.wi_ehdr); 1116 if (ifp->if_bpf) 1117 bpf_ops->bpf_mtap(ifp->if_bpf, m0); 1118 1119 eh = mtod(m0, struct ether_header *); 1120 ni = ieee80211_find_txnode(ic, eh->ether_dhost); 1121 if (ni == NULL) { 1122 ifp->if_oerrors++; 1123 continue; 1124 } 1125 if ((ni->ni_flags & IEEE80211_NODE_PWR_MGT) && 1126 (m0->m_flags & M_PWR_SAV) == 0) { 1127 ieee80211_pwrsave(ic, ni, m0); 1128 goto next; 1129 } 1130 if ((m0 = ieee80211_encap(ic, m0, ni)) == NULL) { 1131 ieee80211_free_node(ni); 1132 ifp->if_oerrors++; 1133 continue; 1134 } 1135 wh = mtod(m0, struct ieee80211_frame *); 1136 } else 1137 break; 1138 if (ic->ic_rawbpf) 1139 bpf_ops->bpf_mtap(ic->ic_rawbpf, m0); 1140 frmhdr.wi_tx_ctl = 1141 htole16(WI_ENC_TX_802_11|WI_TXCNTL_TX_EX|WI_TXCNTL_TX_OK); 1142 #ifndef IEEE80211_NO_HOSTAP 1143 if (ic->ic_opmode == IEEE80211_M_HOSTAP) 1144 frmhdr.wi_tx_ctl |= htole16(WI_TXCNTL_ALTRTRY); 1145 if (ic->ic_opmode == IEEE80211_M_HOSTAP && 1146 (wh->i_fc[1] & IEEE80211_FC1_WEP)) { 1147 if (ieee80211_crypto_encap(ic, ni, m0) == NULL) { 1148 m_freem(m0); 1149 ifp->if_oerrors++; 1150 goto next; 1151 } 1152 frmhdr.wi_tx_ctl |= htole16(WI_TXCNTL_NOCRYPT); 1153 } 1154 #endif /* !IEEE80211_NO_HOSTAP */ 1155 1156 rateidx = wi_choose_rate(ic, ni, wh, m0->m_pkthdr.len); 1157 rs = &ni->ni_rates; 1158 1159 if (sc->sc_drvbpf) { 1160 struct wi_tx_radiotap_header *tap = &sc->sc_txtap; 1161 1162 tap->wt_rate = rs->rs_rates[rateidx]; 1163 tap->wt_chan_freq = 1164 htole16(ic->ic_bss->ni_chan->ic_freq); 1165 tap->wt_chan_flags = 1166 htole16(ic->ic_bss->ni_chan->ic_flags); 1167 /* TBD tap->wt_flags */ 1168 1169 bpf_ops->bpf_mtap2(sc->sc_drvbpf, 1170 tap, tap->wt_ihdr.it_len, m0); 1171 } 1172 1173 rd = SLIST_FIRST(&sc->sc_rssdfree); 1174 id = &rd->rd_desc; 1175 id->id_len = m0->m_pkthdr.len; 1176 id->id_rateidx = ni->ni_txrate; 1177 id->id_rssi = ni->ni_rssi; 1178 1179 frmhdr.wi_tx_idx = rd - sc->sc_rssd; 1180 1181 if (ic->ic_opmode == IEEE80211_M_HOSTAP) 1182 frmhdr.wi_tx_rate = 5 * (rs->rs_rates[rateidx] & 1183 IEEE80211_RATE_VAL); 1184 else if (sc->sc_flags & WI_FLAGS_RSSADAPTSTA) 1185 (void)wi_write_txrate(sc, rs->rs_rates[rateidx]); 1186 1187 m_copydata(m0, 0, sizeof(struct ieee80211_frame), 1188 (void *)&frmhdr.wi_whdr); 1189 m_adj(m0, sizeof(struct ieee80211_frame)); 1190 frmhdr.wi_dat_len = htole16(m0->m_pkthdr.len); 1191 if (IFF_DUMPPKTS(ifp)) 1192 wi_dump_pkt(&frmhdr, ni, -1); 1193 fid = sc->sc_txd[cur].d_fid; 1194 off = sizeof(frmhdr); 1195 if (wi_write_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr)) != 0 || 1196 wi_mwrite_bap(sc, fid, off, m0, m0->m_pkthdr.len) != 0) { 1197 aprint_error_dev(&sc->sc_dev, "%s write fid %x failed\n", 1198 __func__, fid); 1199 ifp->if_oerrors++; 1200 m_freem(m0); 1201 goto next; 1202 } 1203 m_freem(m0); 1204 sc->sc_txpending[ni->ni_txrate]++; 1205 --sc->sc_txalloced; 1206 if (sc->sc_txqueued++ == 0) { 1207 #ifdef DIAGNOSTIC 1208 if (cur != sc->sc_txstart) 1209 printf("%s: ring is desynchronized\n", 1210 device_xname(&sc->sc_dev)); 1211 #endif 1212 wi_push_packet(sc); 1213 } else { 1214 #ifdef WI_RING_DEBUG 1215 printf("%s: queue %04x, alloc %d queue %d start %d alloced %d queued %d started %d\n", 1216 device_xname(&sc->sc_dev), fid, 1217 sc->sc_txalloc, sc->sc_txqueue, sc->sc_txstart, 1218 sc->sc_txalloced, sc->sc_txqueued, sc->sc_txstarted); 1219 #endif 1220 } 1221 sc->sc_txqueue = cur = (cur + 1) % WI_NTXBUF; 1222 SLIST_REMOVE_HEAD(&sc->sc_rssdfree, rd_next); 1223 id->id_node = ni; 1224 continue; 1225 next: 1226 if (ni != NULL) 1227 ieee80211_free_node(ni); 1228 } 1229 } 1230 1231 1232 STATIC int 1233 wi_reset(struct wi_softc *sc) 1234 { 1235 int i, error; 1236 1237 DPRINTF(("wi_reset\n")); 1238 1239 if (sc->sc_reset) 1240 (*sc->sc_reset)(sc); 1241 1242 error = 0; 1243 for (i = 0; i < 5; i++) { 1244 if (sc->sc_invalid) 1245 return ENXIO; 1246 DELAY(20*1000); /* XXX: way too long! */ 1247 if ((error = wi_cmd(sc, WI_CMD_INI, 0, 0, 0)) == 0) 1248 break; 1249 } 1250 if (error) { 1251 aprint_error_dev(&sc->sc_dev, "init failed\n"); 1252 return error; 1253 } 1254 CSR_WRITE_2(sc, WI_INT_EN, 0); 1255 CSR_WRITE_2(sc, WI_EVENT_ACK, ~0); 1256 1257 /* Calibrate timer. */ 1258 wi_write_val(sc, WI_RID_TICK_TIME, 0); 1259 return 0; 1260 } 1261 1262 STATIC void 1263 wi_watchdog(struct ifnet *ifp) 1264 { 1265 struct wi_softc *sc = ifp->if_softc; 1266 1267 ifp->if_timer = 0; 1268 if (!sc->sc_enabled) 1269 return; 1270 1271 if (sc->sc_tx_timer) { 1272 if (--sc->sc_tx_timer == 0) { 1273 printf("%s: device timeout\n", ifp->if_xname); 1274 ifp->if_oerrors++; 1275 wi_init(ifp); 1276 return; 1277 } 1278 ifp->if_timer = 1; 1279 } 1280 1281 if (sc->sc_scan_timer) { 1282 if (--sc->sc_scan_timer <= WI_SCAN_WAIT - WI_SCAN_INQWAIT && 1283 sc->sc_firmware_type == WI_INTERSIL) { 1284 DPRINTF(("wi_watchdog: inquire scan\n")); 1285 wi_cmd(sc, WI_CMD_INQUIRE, WI_INFO_SCAN_RESULTS, 0, 0); 1286 } 1287 if (sc->sc_scan_timer) 1288 ifp->if_timer = 1; 1289 } 1290 1291 /* TODO: rate control */ 1292 ieee80211_watchdog(&sc->sc_ic); 1293 } 1294 1295 STATIC int 1296 wi_ioctl(struct ifnet *ifp, u_long cmd, void *data) 1297 { 1298 struct wi_softc *sc = ifp->if_softc; 1299 struct ieee80211com *ic = &sc->sc_ic; 1300 struct ifreq *ifr = (struct ifreq *)data; 1301 int s, error = 0; 1302 1303 if (!device_is_active(&sc->sc_dev)) 1304 return ENXIO; 1305 1306 s = splnet(); 1307 1308 switch (cmd) { 1309 case SIOCSIFFLAGS: 1310 if ((error = ifioctl_common(ifp, cmd, data)) != 0) 1311 break; 1312 /* 1313 * Can't do promisc and hostap at the same time. If all that's 1314 * changing is the promisc flag, try to short-circuit a call to 1315 * wi_init() by just setting PROMISC in the hardware. 1316 */ 1317 if (ifp->if_flags & IFF_UP) { 1318 if (sc->sc_enabled) { 1319 if (ic->ic_opmode != IEEE80211_M_HOSTAP && 1320 (ifp->if_flags & IFF_PROMISC) != 0) 1321 wi_write_val(sc, WI_RID_PROMISC, 1); 1322 else 1323 wi_write_val(sc, WI_RID_PROMISC, 0); 1324 } else 1325 error = wi_init(ifp); 1326 } else if (sc->sc_enabled) 1327 wi_stop(ifp, 1); 1328 break; 1329 case SIOCSIFMEDIA: 1330 case SIOCGIFMEDIA: 1331 error = ifmedia_ioctl(ifp, ifr, &ic->ic_media, cmd); 1332 break; 1333 case SIOCADDMULTI: 1334 case SIOCDELMULTI: 1335 if ((error = ether_ioctl(ifp, cmd, data)) == ENETRESET) { 1336 if (ifp->if_flags & IFF_RUNNING) { 1337 /* do not rescan */ 1338 error = wi_write_multi(sc); 1339 } else 1340 error = 0; 1341 } 1342 break; 1343 case SIOCGIFGENERIC: 1344 error = wi_get_cfg(ifp, cmd, data); 1345 break; 1346 case SIOCSIFGENERIC: 1347 error = kauth_authorize_network(curlwp->l_cred, 1348 KAUTH_NETWORK_INTERFACE, 1349 KAUTH_REQ_NETWORK_INTERFACE_SETPRIV, ifp, KAUTH_ARG(cmd), 1350 NULL); 1351 if (error) 1352 break; 1353 error = wi_set_cfg(ifp, cmd, data); 1354 if (error == ENETRESET) { 1355 if (ifp->if_flags & IFF_RUNNING) 1356 error = wi_init(ifp); 1357 else 1358 error = 0; 1359 } 1360 break; 1361 case SIOCS80211BSSID: 1362 if (sc->sc_firmware_type == WI_LUCENT) { 1363 error = ENODEV; 1364 break; 1365 } 1366 /* fall through */ 1367 default: 1368 ic->ic_flags |= sc->sc_ic_flags; 1369 error = ieee80211_ioctl(&sc->sc_ic, cmd, data); 1370 sc->sc_ic_flags = ic->ic_flags & IEEE80211_F_DROPUNENC; 1371 if (error == ENETRESET) { 1372 if (sc->sc_enabled) 1373 error = wi_init(ifp); 1374 else 1375 error = 0; 1376 } 1377 break; 1378 } 1379 wi_mend_flags(sc, ic->ic_state); 1380 splx(s); 1381 return error; 1382 } 1383 1384 STATIC int 1385 wi_media_change(struct ifnet *ifp) 1386 { 1387 struct wi_softc *sc = ifp->if_softc; 1388 struct ieee80211com *ic = &sc->sc_ic; 1389 int error; 1390 1391 error = ieee80211_media_change(ifp); 1392 if (error == ENETRESET) { 1393 if (sc->sc_enabled) 1394 error = wi_init(ifp); 1395 else 1396 error = 0; 1397 } 1398 ifp->if_baudrate = ifmedia_baudrate(ic->ic_media.ifm_cur->ifm_media); 1399 1400 return error; 1401 } 1402 1403 STATIC void 1404 wi_media_status(struct ifnet *ifp, struct ifmediareq *imr) 1405 { 1406 struct wi_softc *sc = ifp->if_softc; 1407 struct ieee80211com *ic = &sc->sc_ic; 1408 u_int16_t val; 1409 int rate; 1410 1411 if (sc->sc_enabled == 0) { 1412 imr->ifm_active = IFM_IEEE80211 | IFM_NONE; 1413 imr->ifm_status = 0; 1414 return; 1415 } 1416 1417 imr->ifm_status = IFM_AVALID; 1418 imr->ifm_active = IFM_IEEE80211; 1419 if (ic->ic_state == IEEE80211_S_RUN && 1420 (sc->sc_flags & WI_FLAGS_OUTRANGE) == 0) 1421 imr->ifm_status |= IFM_ACTIVE; 1422 if (wi_read_xrid(sc, WI_RID_CUR_TX_RATE, &val, sizeof(val)) == 0) { 1423 /* convert to 802.11 rate */ 1424 val = le16toh(val); 1425 rate = val * 2; 1426 if (sc->sc_firmware_type == WI_LUCENT) { 1427 if (rate == 10) 1428 rate = 11; /* 5.5Mbps */ 1429 } else { 1430 if (rate == 4*2) 1431 rate = 11; /* 5.5Mbps */ 1432 else if (rate == 8*2) 1433 rate = 22; /* 11Mbps */ 1434 } 1435 } else 1436 rate = 0; 1437 imr->ifm_active |= ieee80211_rate2media(ic, rate, IEEE80211_MODE_11B); 1438 switch (ic->ic_opmode) { 1439 case IEEE80211_M_STA: 1440 break; 1441 case IEEE80211_M_IBSS: 1442 imr->ifm_active |= IFM_IEEE80211_ADHOC; 1443 break; 1444 case IEEE80211_M_AHDEMO: 1445 imr->ifm_active |= IFM_IEEE80211_ADHOC | IFM_FLAG0; 1446 break; 1447 case IEEE80211_M_HOSTAP: 1448 imr->ifm_active |= IFM_IEEE80211_HOSTAP; 1449 break; 1450 case IEEE80211_M_MONITOR: 1451 imr->ifm_active |= IFM_IEEE80211_MONITOR; 1452 break; 1453 } 1454 } 1455 1456 STATIC struct ieee80211_node * 1457 wi_node_alloc(struct ieee80211_node_table *nt) 1458 { 1459 struct wi_node *wn = 1460 malloc(sizeof(struct wi_node), M_DEVBUF, M_NOWAIT | M_ZERO); 1461 return wn ? &wn->wn_node : NULL; 1462 } 1463 1464 STATIC void 1465 wi_node_free(struct ieee80211_node *ni) 1466 { 1467 struct wi_softc *sc = ni->ni_ic->ic_ifp->if_softc; 1468 int i; 1469 1470 for (i = 0; i < WI_NTXRSS; i++) { 1471 if (sc->sc_rssd[i].rd_desc.id_node == ni) 1472 sc->sc_rssd[i].rd_desc.id_node = NULL; 1473 } 1474 free(ni, M_DEVBUF); 1475 } 1476 1477 STATIC void 1478 wi_sync_bssid(struct wi_softc *sc, u_int8_t new_bssid[IEEE80211_ADDR_LEN]) 1479 { 1480 struct ieee80211com *ic = &sc->sc_ic; 1481 struct ieee80211_node *ni = ic->ic_bss; 1482 struct ifnet *ifp = &sc->sc_if; 1483 1484 if (IEEE80211_ADDR_EQ(new_bssid, ni->ni_bssid)) 1485 return; 1486 1487 DPRINTF(("wi_sync_bssid: bssid %s -> ", ether_sprintf(ni->ni_bssid))); 1488 DPRINTF(("%s ?\n", ether_sprintf(new_bssid))); 1489 1490 /* In promiscuous mode, the BSSID field is not a reliable 1491 * indicator of the firmware's BSSID. Damp spurious 1492 * change-of-BSSID indications. 1493 */ 1494 if ((ifp->if_flags & IFF_PROMISC) != 0 && 1495 !ppsratecheck(&sc->sc_last_syn, &sc->sc_false_syns, 1496 WI_MAX_FALSE_SYNS)) 1497 return; 1498 1499 sc->sc_false_syns = MAX(0, sc->sc_false_syns - 1); 1500 /* 1501 * XXX hack; we should create a new node with the new bssid 1502 * and replace the existing ic_bss with it but since we don't 1503 * process management frames to collect state we cheat by 1504 * reusing the existing node as we know wi_newstate will be 1505 * called and it will overwrite the node state. 1506 */ 1507 ieee80211_sta_join(ic, ieee80211_ref_node(ni)); 1508 } 1509 1510 static inline void 1511 wi_rssadapt_input(struct ieee80211com *ic, struct ieee80211_node *ni, 1512 struct ieee80211_frame *wh, int rssi) 1513 { 1514 struct wi_node *wn; 1515 1516 if (ni == NULL) { 1517 printf("%s: null node", __func__); 1518 return; 1519 } 1520 1521 wn = (void*)ni; 1522 ieee80211_rssadapt_input(ic, ni, &wn->wn_rssadapt, rssi); 1523 } 1524 1525 STATIC void 1526 wi_rx_intr(struct wi_softc *sc) 1527 { 1528 struct ieee80211com *ic = &sc->sc_ic; 1529 struct ifnet *ifp = &sc->sc_if; 1530 struct ieee80211_node *ni; 1531 struct wi_frame frmhdr; 1532 struct mbuf *m; 1533 struct ieee80211_frame *wh; 1534 int fid, len, off, rssi; 1535 u_int8_t dir; 1536 u_int16_t status; 1537 u_int32_t rstamp; 1538 1539 fid = CSR_READ_2(sc, WI_RX_FID); 1540 1541 /* First read in the frame header */ 1542 if (wi_read_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr))) { 1543 aprint_error_dev(&sc->sc_dev, "%s read fid %x failed\n", 1544 __func__, fid); 1545 ifp->if_ierrors++; 1546 return; 1547 } 1548 1549 if (IFF_DUMPPKTS(ifp)) 1550 wi_dump_pkt(&frmhdr, NULL, frmhdr.wi_rx_signal); 1551 1552 /* 1553 * Drop undecryptable or packets with receive errors here 1554 */ 1555 status = le16toh(frmhdr.wi_status); 1556 if ((status & WI_STAT_ERRSTAT) != 0 && 1557 ic->ic_opmode != IEEE80211_M_MONITOR) { 1558 ifp->if_ierrors++; 1559 DPRINTF(("wi_rx_intr: fid %x error status %x\n", fid, status)); 1560 return; 1561 } 1562 rssi = frmhdr.wi_rx_signal; 1563 rstamp = (le16toh(frmhdr.wi_rx_tstamp0) << 16) | 1564 le16toh(frmhdr.wi_rx_tstamp1); 1565 1566 len = le16toh(frmhdr.wi_dat_len); 1567 off = ALIGN(sizeof(struct ieee80211_frame)); 1568 1569 /* Sometimes the PRISM2.x returns bogusly large frames. Except 1570 * in monitor mode, just throw them away. 1571 */ 1572 if (off + len > MCLBYTES) { 1573 if (ic->ic_opmode != IEEE80211_M_MONITOR) { 1574 ifp->if_ierrors++; 1575 DPRINTF(("wi_rx_intr: oversized packet\n")); 1576 return; 1577 } else 1578 len = 0; 1579 } 1580 1581 MGETHDR(m, M_DONTWAIT, MT_DATA); 1582 if (m == NULL) { 1583 ifp->if_ierrors++; 1584 DPRINTF(("wi_rx_intr: MGET failed\n")); 1585 return; 1586 } 1587 if (off + len > MHLEN) { 1588 MCLGET(m, M_DONTWAIT); 1589 if ((m->m_flags & M_EXT) == 0) { 1590 m_freem(m); 1591 ifp->if_ierrors++; 1592 DPRINTF(("wi_rx_intr: MCLGET failed\n")); 1593 return; 1594 } 1595 } 1596 1597 m->m_data += off - sizeof(struct ieee80211_frame); 1598 memcpy(m->m_data, &frmhdr.wi_whdr, sizeof(struct ieee80211_frame)); 1599 wi_read_bap(sc, fid, sizeof(frmhdr), 1600 m->m_data + sizeof(struct ieee80211_frame), len); 1601 m->m_pkthdr.len = m->m_len = sizeof(struct ieee80211_frame) + len; 1602 m->m_pkthdr.rcvif = ifp; 1603 1604 wh = mtod(m, struct ieee80211_frame *); 1605 if (wh->i_fc[1] & IEEE80211_FC1_WEP) { 1606 /* 1607 * WEP is decrypted by hardware. Clear WEP bit 1608 * header for ieee80211_input(). 1609 */ 1610 wh->i_fc[1] &= ~IEEE80211_FC1_WEP; 1611 } 1612 if (sc->sc_drvbpf) { 1613 struct wi_rx_radiotap_header *tap = &sc->sc_rxtap; 1614 1615 tap->wr_rate = frmhdr.wi_rx_rate / 5; 1616 tap->wr_antsignal = frmhdr.wi_rx_signal; 1617 tap->wr_antnoise = frmhdr.wi_rx_silence; 1618 tap->wr_chan_freq = htole16(ic->ic_bss->ni_chan->ic_freq); 1619 tap->wr_chan_flags = htole16(ic->ic_bss->ni_chan->ic_flags); 1620 if (frmhdr.wi_status & WI_STAT_PCF) 1621 tap->wr_flags |= IEEE80211_RADIOTAP_F_CFP; 1622 1623 /* XXX IEEE80211_RADIOTAP_F_WEP */ 1624 bpf_ops->bpf_mtap2(sc->sc_drvbpf, tap, tap->wr_ihdr.it_len, m); 1625 } 1626 1627 /* synchronize driver's BSSID with firmware's BSSID */ 1628 dir = wh->i_fc[1] & IEEE80211_FC1_DIR_MASK; 1629 if (ic->ic_opmode == IEEE80211_M_IBSS && dir == IEEE80211_FC1_DIR_NODS) 1630 wi_sync_bssid(sc, wh->i_addr3); 1631 1632 ni = ieee80211_find_rxnode(ic, mtod(m, struct ieee80211_frame_min *)); 1633 1634 ieee80211_input(ic, m, ni, rssi, rstamp); 1635 1636 wi_rssadapt_input(ic, ni, wh, rssi); 1637 1638 /* 1639 * The frame may have caused the node to be marked for 1640 * reclamation (e.g. in response to a DEAUTH message) 1641 * so use release_node here instead of unref_node. 1642 */ 1643 ieee80211_free_node(ni); 1644 } 1645 1646 STATIC void 1647 wi_tx_ex_intr(struct wi_softc *sc) 1648 { 1649 struct ieee80211com *ic = &sc->sc_ic; 1650 struct ifnet *ifp = &sc->sc_if; 1651 struct ieee80211_node *ni; 1652 struct ieee80211_rssdesc *id; 1653 struct wi_rssdesc *rssd; 1654 struct wi_frame frmhdr; 1655 int fid; 1656 u_int16_t status; 1657 1658 fid = CSR_READ_2(sc, WI_TX_CMP_FID); 1659 /* Read in the frame header */ 1660 if (wi_read_bap(sc, fid, 0, &frmhdr, sizeof(frmhdr)) != 0) { 1661 aprint_error_dev(&sc->sc_dev, "%s read fid %x failed\n", 1662 __func__, fid); 1663 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree, 1664 &sc->sc_txpending); 1665 goto out; 1666 } 1667 1668 if (frmhdr.wi_tx_idx >= WI_NTXRSS) { 1669 printf("%s: %s bad idx %02x\n", 1670 device_xname(&sc->sc_dev), __func__, frmhdr.wi_tx_idx); 1671 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree, 1672 &sc->sc_txpending); 1673 goto out; 1674 } 1675 1676 status = le16toh(frmhdr.wi_status); 1677 1678 /* 1679 * Spontaneous station disconnects appear as xmit 1680 * errors. Don't announce them and/or count them 1681 * as an output error. 1682 */ 1683 if (ppsratecheck(&lasttxerror, &curtxeps, wi_txerate)) { 1684 aprint_error_dev(&sc->sc_dev, "tx failed"); 1685 if (status & WI_TXSTAT_RET_ERR) 1686 printf(", retry limit exceeded"); 1687 if (status & WI_TXSTAT_AGED_ERR) 1688 printf(", max transmit lifetime exceeded"); 1689 if (status & WI_TXSTAT_DISCONNECT) 1690 printf(", port disconnected"); 1691 if (status & WI_TXSTAT_FORM_ERR) 1692 printf(", invalid format (data len %u src %s)", 1693 le16toh(frmhdr.wi_dat_len), 1694 ether_sprintf(frmhdr.wi_ehdr.ether_shost)); 1695 if (status & ~0xf) 1696 printf(", status=0x%x", status); 1697 printf("\n"); 1698 } 1699 ifp->if_oerrors++; 1700 rssd = &sc->sc_rssd[frmhdr.wi_tx_idx]; 1701 id = &rssd->rd_desc; 1702 if ((status & WI_TXSTAT_RET_ERR) != 0) 1703 wi_lower_rate(ic, id); 1704 1705 ni = id->id_node; 1706 id->id_node = NULL; 1707 1708 if (ni == NULL) { 1709 aprint_error_dev(&sc->sc_dev, "%s null node, rssdesc %02x\n", 1710 __func__, frmhdr.wi_tx_idx); 1711 goto out; 1712 } 1713 1714 if (sc->sc_txpending[id->id_rateidx]-- == 0) { 1715 aprint_error_dev(&sc->sc_dev, "%s txpending[%i] wraparound", 1716 __func__, id->id_rateidx); 1717 sc->sc_txpending[id->id_rateidx] = 0; 1718 } 1719 if (ni != NULL) 1720 ieee80211_free_node(ni); 1721 SLIST_INSERT_HEAD(&sc->sc_rssdfree, rssd, rd_next); 1722 out: 1723 ifp->if_flags &= ~IFF_OACTIVE; 1724 } 1725 1726 STATIC void 1727 wi_txalloc_intr(struct wi_softc *sc) 1728 { 1729 int fid, cur; 1730 1731 fid = CSR_READ_2(sc, WI_ALLOC_FID); 1732 1733 cur = sc->sc_txalloc; 1734 #ifdef DIAGNOSTIC 1735 if (sc->sc_txstarted == 0) { 1736 printf("%s: spurious alloc %x != %x, alloc %d queue %d start %d alloced %d queued %d started %d\n", 1737 device_xname(&sc->sc_dev), fid, sc->sc_txd[cur].d_fid, cur, 1738 sc->sc_txqueue, sc->sc_txstart, sc->sc_txalloced, sc->sc_txqueued, sc->sc_txstarted); 1739 return; 1740 } 1741 #endif 1742 --sc->sc_txstarted; 1743 ++sc->sc_txalloced; 1744 sc->sc_txd[cur].d_fid = fid; 1745 sc->sc_txalloc = (cur + 1) % WI_NTXBUF; 1746 #ifdef WI_RING_DEBUG 1747 printf("%s: alloc %04x, alloc %d queue %d start %d alloced %d queued %d started %d\n", 1748 device_xname(&sc->sc_dev), fid, 1749 sc->sc_txalloc, sc->sc_txqueue, sc->sc_txstart, 1750 sc->sc_txalloced, sc->sc_txqueued, sc->sc_txstarted); 1751 #endif 1752 } 1753 1754 STATIC void 1755 wi_cmd_intr(struct wi_softc *sc) 1756 { 1757 struct ifnet *ifp = &sc->sc_if; 1758 1759 if (sc->sc_invalid) 1760 return; 1761 #ifdef WI_DEBUG 1762 if (wi_debug > 1) 1763 printf("%s: %d txcmds outstanding\n", __func__, sc->sc_txcmds); 1764 #endif 1765 KASSERT(sc->sc_txcmds > 0); 1766 1767 --sc->sc_txcmds; 1768 1769 if (--sc->sc_txqueued == 0) { 1770 sc->sc_tx_timer = 0; 1771 ifp->if_flags &= ~IFF_OACTIVE; 1772 #ifdef WI_RING_DEBUG 1773 printf("%s: cmd , alloc %d queue %d start %d alloced %d queued %d started %d\n", 1774 device_xname(&sc->sc_dev), 1775 sc->sc_txalloc, sc->sc_txqueue, sc->sc_txstart, 1776 sc->sc_txalloced, sc->sc_txqueued, sc->sc_txstarted); 1777 #endif 1778 } else 1779 wi_push_packet(sc); 1780 } 1781 1782 STATIC void 1783 wi_push_packet(struct wi_softc *sc) 1784 { 1785 struct ifnet *ifp = &sc->sc_if; 1786 int cur, fid; 1787 1788 cur = sc->sc_txstart; 1789 fid = sc->sc_txd[cur].d_fid; 1790 1791 KASSERT(sc->sc_txcmds == 0); 1792 1793 if (wi_cmd_start(sc, WI_CMD_TX | WI_RECLAIM, fid, 0, 0)) { 1794 aprint_error_dev(&sc->sc_dev, "xmit failed\n"); 1795 /* XXX ring might have a hole */ 1796 } 1797 1798 if (sc->sc_txcmds++ > 0) 1799 printf("%s: %d tx cmds pending!!!\n", __func__, sc->sc_txcmds); 1800 1801 ++sc->sc_txstarted; 1802 #ifdef DIAGNOSTIC 1803 if (sc->sc_txstarted > WI_NTXBUF) 1804 aprint_error_dev(&sc->sc_dev, "too many buffers started\n"); 1805 #endif 1806 sc->sc_txstart = (cur + 1) % WI_NTXBUF; 1807 sc->sc_tx_timer = 5; 1808 ifp->if_timer = 1; 1809 #ifdef WI_RING_DEBUG 1810 printf("%s: push %04x, alloc %d queue %d start %d alloced %d queued %d started %d\n", 1811 device_xname(&sc->sc_dev), fid, 1812 sc->sc_txalloc, sc->sc_txqueue, sc->sc_txstart, 1813 sc->sc_txalloced, sc->sc_txqueued, sc->sc_txstarted); 1814 #endif 1815 } 1816 1817 STATIC void 1818 wi_tx_intr(struct wi_softc *sc) 1819 { 1820 struct ieee80211com *ic = &sc->sc_ic; 1821 struct ifnet *ifp = &sc->sc_if; 1822 struct ieee80211_node *ni; 1823 struct ieee80211_rssdesc *id; 1824 struct wi_rssdesc *rssd; 1825 struct wi_frame frmhdr; 1826 int fid; 1827 1828 fid = CSR_READ_2(sc, WI_TX_CMP_FID); 1829 /* Read in the frame header */ 1830 if (wi_read_bap(sc, fid, offsetof(struct wi_frame, wi_tx_swsup2), 1831 &frmhdr.wi_tx_swsup2, 2) != 0) { 1832 aprint_error_dev(&sc->sc_dev, "%s read fid %x failed\n", 1833 __func__, fid); 1834 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree, 1835 &sc->sc_txpending); 1836 goto out; 1837 } 1838 1839 if (frmhdr.wi_tx_idx >= WI_NTXRSS) { 1840 aprint_error_dev(&sc->sc_dev, "%s bad idx %02x\n", 1841 __func__, frmhdr.wi_tx_idx); 1842 wi_rssdescs_reset(ic, &sc->sc_rssd, &sc->sc_rssdfree, 1843 &sc->sc_txpending); 1844 goto out; 1845 } 1846 1847 rssd = &sc->sc_rssd[frmhdr.wi_tx_idx]; 1848 id = &rssd->rd_desc; 1849 wi_raise_rate(ic, id); 1850 1851 ni = id->id_node; 1852 id->id_node = NULL; 1853 1854 if (ni == NULL) { 1855 aprint_error_dev(&sc->sc_dev, "%s null node, rssdesc %02x\n", 1856 __func__, frmhdr.wi_tx_idx); 1857 goto out; 1858 } 1859 1860 if (sc->sc_txpending[id->id_rateidx]-- == 0) { 1861 aprint_error_dev(&sc->sc_dev, "%s txpending[%i] wraparound", 1862 __func__, id->id_rateidx); 1863 sc->sc_txpending[id->id_rateidx] = 0; 1864 } 1865 if (ni != NULL) 1866 ieee80211_free_node(ni); 1867 SLIST_INSERT_HEAD(&sc->sc_rssdfree, rssd, rd_next); 1868 out: 1869 ifp->if_flags &= ~IFF_OACTIVE; 1870 } 1871 1872 STATIC void 1873 wi_info_intr(struct wi_softc *sc) 1874 { 1875 struct ieee80211com *ic = &sc->sc_ic; 1876 struct ifnet *ifp = &sc->sc_if; 1877 int i, fid, len, off; 1878 u_int16_t ltbuf[2]; 1879 u_int16_t stat; 1880 u_int32_t *ptr; 1881 1882 fid = CSR_READ_2(sc, WI_INFO_FID); 1883 wi_read_bap(sc, fid, 0, ltbuf, sizeof(ltbuf)); 1884 1885 switch (le16toh(ltbuf[1])) { 1886 1887 case WI_INFO_LINK_STAT: 1888 wi_read_bap(sc, fid, sizeof(ltbuf), &stat, sizeof(stat)); 1889 DPRINTF(("wi_info_intr: LINK_STAT 0x%x\n", le16toh(stat))); 1890 switch (le16toh(stat)) { 1891 case CONNECTED: 1892 sc->sc_flags &= ~WI_FLAGS_OUTRANGE; 1893 if (ic->ic_state == IEEE80211_S_RUN && 1894 ic->ic_opmode != IEEE80211_M_IBSS) 1895 break; 1896 /* FALLTHROUGH */ 1897 case AP_CHANGE: 1898 ieee80211_new_state(ic, IEEE80211_S_RUN, -1); 1899 break; 1900 case AP_IN_RANGE: 1901 sc->sc_flags &= ~WI_FLAGS_OUTRANGE; 1902 break; 1903 case AP_OUT_OF_RANGE: 1904 if (sc->sc_firmware_type == WI_SYMBOL && 1905 sc->sc_scan_timer > 0) { 1906 if (wi_cmd(sc, WI_CMD_INQUIRE, 1907 WI_INFO_HOST_SCAN_RESULTS, 0, 0) != 0) 1908 sc->sc_scan_timer = 0; 1909 break; 1910 } 1911 if (ic->ic_opmode == IEEE80211_M_STA) 1912 sc->sc_flags |= WI_FLAGS_OUTRANGE; 1913 break; 1914 case DISCONNECTED: 1915 case ASSOC_FAILED: 1916 if (ic->ic_opmode == IEEE80211_M_STA) 1917 ieee80211_new_state(ic, IEEE80211_S_INIT, -1); 1918 break; 1919 } 1920 break; 1921 1922 case WI_INFO_COUNTERS: 1923 /* some card versions have a larger stats structure */ 1924 len = min(le16toh(ltbuf[0]) - 1, sizeof(sc->sc_stats) / 4); 1925 ptr = (u_int32_t *)&sc->sc_stats; 1926 off = sizeof(ltbuf); 1927 for (i = 0; i < len; i++, off += 2, ptr++) { 1928 wi_read_bap(sc, fid, off, &stat, sizeof(stat)); 1929 stat = le16toh(stat); 1930 #ifdef WI_HERMES_STATS_WAR 1931 if (stat & 0xf000) 1932 stat = ~stat; 1933 #endif 1934 *ptr += stat; 1935 } 1936 ifp->if_collisions = sc->sc_stats.wi_tx_single_retries + 1937 sc->sc_stats.wi_tx_multi_retries + 1938 sc->sc_stats.wi_tx_retry_limit; 1939 break; 1940 1941 case WI_INFO_SCAN_RESULTS: 1942 case WI_INFO_HOST_SCAN_RESULTS: 1943 wi_scan_result(sc, fid, le16toh(ltbuf[0])); 1944 break; 1945 1946 default: 1947 DPRINTF(("wi_info_intr: got fid %x type %x len %d\n", fid, 1948 le16toh(ltbuf[1]), le16toh(ltbuf[0]))); 1949 break; 1950 } 1951 } 1952 1953 STATIC int 1954 wi_write_multi(struct wi_softc *sc) 1955 { 1956 struct ifnet *ifp = &sc->sc_if; 1957 int n; 1958 struct wi_mcast mlist; 1959 struct ether_multi *enm; 1960 struct ether_multistep estep; 1961 1962 if ((ifp->if_flags & IFF_PROMISC) != 0) { 1963 allmulti: 1964 ifp->if_flags |= IFF_ALLMULTI; 1965 memset(&mlist, 0, sizeof(mlist)); 1966 return wi_write_rid(sc, WI_RID_MCAST_LIST, &mlist, 1967 sizeof(mlist)); 1968 } 1969 1970 n = 0; 1971 ETHER_FIRST_MULTI(estep, &sc->sc_ec, enm); 1972 while (enm != NULL) { 1973 /* Punt on ranges or too many multicast addresses. */ 1974 if (!IEEE80211_ADDR_EQ(enm->enm_addrlo, enm->enm_addrhi) || 1975 n >= sizeof(mlist) / sizeof(mlist.wi_mcast[0])) 1976 goto allmulti; 1977 1978 IEEE80211_ADDR_COPY(&mlist.wi_mcast[n], enm->enm_addrlo); 1979 n++; 1980 ETHER_NEXT_MULTI(estep, enm); 1981 } 1982 ifp->if_flags &= ~IFF_ALLMULTI; 1983 return wi_write_rid(sc, WI_RID_MCAST_LIST, &mlist, 1984 IEEE80211_ADDR_LEN * n); 1985 } 1986 1987 1988 STATIC void 1989 wi_read_nicid(struct wi_softc *sc) 1990 { 1991 struct wi_card_ident *id; 1992 char *p; 1993 int len; 1994 u_int16_t ver[4]; 1995 1996 /* getting chip identity */ 1997 memset(ver, 0, sizeof(ver)); 1998 len = sizeof(ver); 1999 wi_read_rid(sc, WI_RID_CARD_ID, ver, &len); 2000 printf("%s: using ", device_xname(&sc->sc_dev)); 2001 DPRINTF2(("wi_read_nicid: CARD_ID: %x %x %x %x\n", le16toh(ver[0]), le16toh(ver[1]), le16toh(ver[2]), le16toh(ver[3]))); 2002 2003 sc->sc_firmware_type = WI_NOTYPE; 2004 for (id = wi_card_ident; id->card_name != NULL; id++) { 2005 if (le16toh(ver[0]) == id->card_id) { 2006 printf("%s", id->card_name); 2007 sc->sc_firmware_type = id->firm_type; 2008 break; 2009 } 2010 } 2011 if (sc->sc_firmware_type == WI_NOTYPE) { 2012 if (le16toh(ver[0]) & 0x8000) { 2013 printf("Unknown PRISM2 chip"); 2014 sc->sc_firmware_type = WI_INTERSIL; 2015 } else { 2016 printf("Unknown Lucent chip"); 2017 sc->sc_firmware_type = WI_LUCENT; 2018 } 2019 } 2020 2021 /* get primary firmware version (Only Prism chips) */ 2022 if (sc->sc_firmware_type != WI_LUCENT) { 2023 memset(ver, 0, sizeof(ver)); 2024 len = sizeof(ver); 2025 wi_read_rid(sc, WI_RID_PRI_IDENTITY, ver, &len); 2026 sc->sc_pri_firmware_ver = le16toh(ver[2]) * 10000 + 2027 le16toh(ver[3]) * 100 + le16toh(ver[1]); 2028 } 2029 2030 /* get station firmware version */ 2031 memset(ver, 0, sizeof(ver)); 2032 len = sizeof(ver); 2033 wi_read_rid(sc, WI_RID_STA_IDENTITY, ver, &len); 2034 sc->sc_sta_firmware_ver = le16toh(ver[2]) * 10000 + 2035 le16toh(ver[3]) * 100 + le16toh(ver[1]); 2036 if (sc->sc_firmware_type == WI_INTERSIL && 2037 (sc->sc_sta_firmware_ver == 10102 || 2038 sc->sc_sta_firmware_ver == 20102)) { 2039 char ident[12]; 2040 memset(ident, 0, sizeof(ident)); 2041 len = sizeof(ident); 2042 /* value should be the format like "V2.00-11" */ 2043 if (wi_read_rid(sc, WI_RID_SYMBOL_IDENTITY, ident, &len) == 0 && 2044 *(p = (char *)ident) >= 'A' && 2045 p[2] == '.' && p[5] == '-' && p[8] == '\0') { 2046 sc->sc_firmware_type = WI_SYMBOL; 2047 sc->sc_sta_firmware_ver = (p[1] - '0') * 10000 + 2048 (p[3] - '0') * 1000 + (p[4] - '0') * 100 + 2049 (p[6] - '0') * 10 + (p[7] - '0'); 2050 } 2051 } 2052 2053 printf("\n%s: %s Firmware: ", device_xname(&sc->sc_dev), 2054 sc->sc_firmware_type == WI_LUCENT ? "Lucent" : 2055 (sc->sc_firmware_type == WI_SYMBOL ? "Symbol" : "Intersil")); 2056 if (sc->sc_firmware_type != WI_LUCENT) /* XXX */ 2057 printf("Primary (%u.%u.%u), ", 2058 sc->sc_pri_firmware_ver / 10000, 2059 (sc->sc_pri_firmware_ver % 10000) / 100, 2060 sc->sc_pri_firmware_ver % 100); 2061 printf("Station (%u.%u.%u)\n", 2062 sc->sc_sta_firmware_ver / 10000, 2063 (sc->sc_sta_firmware_ver % 10000) / 100, 2064 sc->sc_sta_firmware_ver % 100); 2065 } 2066 2067 STATIC int 2068 wi_write_ssid(struct wi_softc *sc, int rid, u_int8_t *buf, int buflen) 2069 { 2070 struct wi_ssid ssid; 2071 2072 if (buflen > IEEE80211_NWID_LEN) 2073 return ENOBUFS; 2074 memset(&ssid, 0, sizeof(ssid)); 2075 ssid.wi_len = htole16(buflen); 2076 memcpy(ssid.wi_ssid, buf, buflen); 2077 return wi_write_rid(sc, rid, &ssid, sizeof(ssid)); 2078 } 2079 2080 STATIC int 2081 wi_get_cfg(struct ifnet *ifp, u_long cmd, void *data) 2082 { 2083 struct wi_softc *sc = ifp->if_softc; 2084 struct ieee80211com *ic = &sc->sc_ic; 2085 struct ifreq *ifr = (struct ifreq *)data; 2086 struct wi_req wreq; 2087 int len, n, error; 2088 2089 error = copyin(ifr->ifr_data, &wreq, sizeof(wreq)); 2090 if (error) 2091 return error; 2092 len = (wreq.wi_len - 1) * 2; 2093 if (len < sizeof(u_int16_t)) 2094 return ENOSPC; 2095 if (len > sizeof(wreq.wi_val)) 2096 len = sizeof(wreq.wi_val); 2097 2098 switch (wreq.wi_type) { 2099 2100 case WI_RID_IFACE_STATS: 2101 memcpy(wreq.wi_val, &sc->sc_stats, sizeof(sc->sc_stats)); 2102 if (len < sizeof(sc->sc_stats)) 2103 error = ENOSPC; 2104 else 2105 len = sizeof(sc->sc_stats); 2106 break; 2107 2108 case WI_RID_ENCRYPTION: 2109 case WI_RID_TX_CRYPT_KEY: 2110 case WI_RID_DEFLT_CRYPT_KEYS: 2111 case WI_RID_TX_RATE: 2112 return ieee80211_cfgget(ic, cmd, data); 2113 2114 case WI_RID_MICROWAVE_OVEN: 2115 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_MOR)) { 2116 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val, 2117 &len); 2118 break; 2119 } 2120 wreq.wi_val[0] = htole16(sc->sc_microwave_oven); 2121 len = sizeof(u_int16_t); 2122 break; 2123 2124 case WI_RID_DBM_ADJUST: 2125 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_DBMADJUST)) { 2126 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val, 2127 &len); 2128 break; 2129 } 2130 wreq.wi_val[0] = htole16(sc->sc_dbm_offset); 2131 len = sizeof(u_int16_t); 2132 break; 2133 2134 case WI_RID_ROAMING_MODE: 2135 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_ROAMING)) { 2136 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val, 2137 &len); 2138 break; 2139 } 2140 wreq.wi_val[0] = htole16(sc->sc_roaming_mode); 2141 len = sizeof(u_int16_t); 2142 break; 2143 2144 case WI_RID_SYSTEM_SCALE: 2145 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_SYSSCALE)) { 2146 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val, 2147 &len); 2148 break; 2149 } 2150 wreq.wi_val[0] = htole16(sc->sc_system_scale); 2151 len = sizeof(u_int16_t); 2152 break; 2153 2154 case WI_RID_FRAG_THRESH: 2155 if (sc->sc_enabled && (sc->sc_flags & WI_FLAGS_HAS_FRAGTHR)) { 2156 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val, 2157 &len); 2158 break; 2159 } 2160 wreq.wi_val[0] = htole16(sc->sc_frag_thresh); 2161 len = sizeof(u_int16_t); 2162 break; 2163 2164 case WI_RID_READ_APS: 2165 #ifndef IEEE80211_NO_HOSTAP 2166 if (ic->ic_opmode == IEEE80211_M_HOSTAP) 2167 return ieee80211_cfgget(ic, cmd, data); 2168 #endif /* !IEEE80211_NO_HOSTAP */ 2169 if (sc->sc_scan_timer > 0) { 2170 error = EINPROGRESS; 2171 break; 2172 } 2173 n = sc->sc_naps; 2174 if (len < sizeof(n)) { 2175 error = ENOSPC; 2176 break; 2177 } 2178 if (len < sizeof(n) + sizeof(struct wi_apinfo) * n) 2179 n = (len - sizeof(n)) / sizeof(struct wi_apinfo); 2180 len = sizeof(n) + sizeof(struct wi_apinfo) * n; 2181 memcpy(wreq.wi_val, &n, sizeof(n)); 2182 memcpy((char *)wreq.wi_val + sizeof(n), sc->sc_aps, 2183 sizeof(struct wi_apinfo) * n); 2184 break; 2185 2186 default: 2187 if (sc->sc_enabled) { 2188 error = wi_read_rid(sc, wreq.wi_type, wreq.wi_val, 2189 &len); 2190 break; 2191 } 2192 switch (wreq.wi_type) { 2193 case WI_RID_MAX_DATALEN: 2194 wreq.wi_val[0] = htole16(sc->sc_max_datalen); 2195 len = sizeof(u_int16_t); 2196 break; 2197 case WI_RID_FRAG_THRESH: 2198 wreq.wi_val[0] = htole16(sc->sc_frag_thresh); 2199 len = sizeof(u_int16_t); 2200 break; 2201 case WI_RID_RTS_THRESH: 2202 wreq.wi_val[0] = htole16(sc->sc_rts_thresh); 2203 len = sizeof(u_int16_t); 2204 break; 2205 case WI_RID_CNFAUTHMODE: 2206 wreq.wi_val[0] = htole16(sc->sc_cnfauthmode); 2207 len = sizeof(u_int16_t); 2208 break; 2209 case WI_RID_NODENAME: 2210 if (len < sc->sc_nodelen + sizeof(u_int16_t)) { 2211 error = ENOSPC; 2212 break; 2213 } 2214 len = sc->sc_nodelen + sizeof(u_int16_t); 2215 wreq.wi_val[0] = htole16((sc->sc_nodelen + 1) / 2); 2216 memcpy(&wreq.wi_val[1], sc->sc_nodename, 2217 sc->sc_nodelen); 2218 break; 2219 default: 2220 return ieee80211_cfgget(ic, cmd, data); 2221 } 2222 break; 2223 } 2224 if (error) 2225 return error; 2226 wreq.wi_len = (len + 1) / 2 + 1; 2227 return copyout(&wreq, ifr->ifr_data, (wreq.wi_len + 1) * 2); 2228 } 2229 2230 STATIC int 2231 wi_set_cfg(struct ifnet *ifp, u_long cmd, void *data) 2232 { 2233 struct wi_softc *sc = ifp->if_softc; 2234 struct ieee80211com *ic = &sc->sc_ic; 2235 struct ifreq *ifr = (struct ifreq *)data; 2236 struct ieee80211_rateset *rs = &ic->ic_sup_rates[IEEE80211_MODE_11B]; 2237 struct wi_req wreq; 2238 struct mbuf *m; 2239 int i, len, error; 2240 2241 error = copyin(ifr->ifr_data, &wreq, sizeof(wreq)); 2242 if (error) 2243 return error; 2244 len = (wreq.wi_len - 1) * 2; 2245 switch (wreq.wi_type) { 2246 case WI_RID_MAC_NODE: 2247 /* XXX convert to SIOCALIFADDR, AF_LINK, IFLR_ACTIVE */ 2248 (void)memcpy(ic->ic_myaddr, wreq.wi_val, ETHER_ADDR_LEN); 2249 if_set_sadl(ifp, ic->ic_myaddr, ETHER_ADDR_LEN, false); 2250 wi_write_rid(sc, WI_RID_MAC_NODE, ic->ic_myaddr, 2251 IEEE80211_ADDR_LEN); 2252 break; 2253 2254 case WI_RID_DBM_ADJUST: 2255 return ENODEV; 2256 2257 case WI_RID_NODENAME: 2258 if (le16toh(wreq.wi_val[0]) * 2 > len || 2259 le16toh(wreq.wi_val[0]) > sizeof(sc->sc_nodename)) { 2260 error = ENOSPC; 2261 break; 2262 } 2263 if (sc->sc_enabled) { 2264 error = wi_write_rid(sc, wreq.wi_type, wreq.wi_val, 2265 len); 2266 if (error) 2267 break; 2268 } 2269 sc->sc_nodelen = le16toh(wreq.wi_val[0]) * 2; 2270 memcpy(sc->sc_nodename, &wreq.wi_val[1], sc->sc_nodelen); 2271 break; 2272 2273 case WI_RID_MICROWAVE_OVEN: 2274 case WI_RID_ROAMING_MODE: 2275 case WI_RID_SYSTEM_SCALE: 2276 case WI_RID_FRAG_THRESH: 2277 if (wreq.wi_type == WI_RID_MICROWAVE_OVEN && 2278 (sc->sc_flags & WI_FLAGS_HAS_MOR) == 0) 2279 break; 2280 if (wreq.wi_type == WI_RID_ROAMING_MODE && 2281 (sc->sc_flags & WI_FLAGS_HAS_ROAMING) == 0) 2282 break; 2283 if (wreq.wi_type == WI_RID_SYSTEM_SCALE && 2284 (sc->sc_flags & WI_FLAGS_HAS_SYSSCALE) == 0) 2285 break; 2286 if (wreq.wi_type == WI_RID_FRAG_THRESH && 2287 (sc->sc_flags & WI_FLAGS_HAS_FRAGTHR) == 0) 2288 break; 2289 /* FALLTHROUGH */ 2290 case WI_RID_RTS_THRESH: 2291 case WI_RID_CNFAUTHMODE: 2292 case WI_RID_MAX_DATALEN: 2293 if (sc->sc_enabled) { 2294 error = wi_write_rid(sc, wreq.wi_type, wreq.wi_val, 2295 sizeof(u_int16_t)); 2296 if (error) 2297 break; 2298 } 2299 switch (wreq.wi_type) { 2300 case WI_RID_FRAG_THRESH: 2301 sc->sc_frag_thresh = le16toh(wreq.wi_val[0]); 2302 break; 2303 case WI_RID_RTS_THRESH: 2304 sc->sc_rts_thresh = le16toh(wreq.wi_val[0]); 2305 break; 2306 case WI_RID_MICROWAVE_OVEN: 2307 sc->sc_microwave_oven = le16toh(wreq.wi_val[0]); 2308 break; 2309 case WI_RID_ROAMING_MODE: 2310 sc->sc_roaming_mode = le16toh(wreq.wi_val[0]); 2311 break; 2312 case WI_RID_SYSTEM_SCALE: 2313 sc->sc_system_scale = le16toh(wreq.wi_val[0]); 2314 break; 2315 case WI_RID_CNFAUTHMODE: 2316 sc->sc_cnfauthmode = le16toh(wreq.wi_val[0]); 2317 break; 2318 case WI_RID_MAX_DATALEN: 2319 sc->sc_max_datalen = le16toh(wreq.wi_val[0]); 2320 break; 2321 } 2322 break; 2323 2324 case WI_RID_TX_RATE: 2325 switch (le16toh(wreq.wi_val[0])) { 2326 case 3: 2327 ic->ic_fixed_rate = -1; 2328 break; 2329 default: 2330 for (i = 0; i < IEEE80211_RATE_SIZE; i++) { 2331 if ((rs->rs_rates[i] & IEEE80211_RATE_VAL) 2332 / 2 == le16toh(wreq.wi_val[0])) 2333 break; 2334 } 2335 if (i == IEEE80211_RATE_SIZE) 2336 return EINVAL; 2337 ic->ic_fixed_rate = i; 2338 } 2339 if (sc->sc_enabled) 2340 error = wi_cfg_txrate(sc); 2341 break; 2342 2343 case WI_RID_SCAN_APS: 2344 if (sc->sc_enabled && ic->ic_opmode != IEEE80211_M_HOSTAP) 2345 error = wi_scan_ap(sc, 0x3fff, 0x000f); 2346 break; 2347 2348 case WI_RID_MGMT_XMIT: 2349 if (!sc->sc_enabled) { 2350 error = ENETDOWN; 2351 break; 2352 } 2353 if (ic->ic_mgtq.ifq_len > 5) { 2354 error = EAGAIN; 2355 break; 2356 } 2357 /* XXX wi_len looks in u_int8_t, not in u_int16_t */ 2358 m = m_devget((char *)&wreq.wi_val, wreq.wi_len, 0, ifp, NULL); 2359 if (m == NULL) { 2360 error = ENOMEM; 2361 break; 2362 } 2363 IF_ENQUEUE(&ic->ic_mgtq, m); 2364 break; 2365 2366 default: 2367 if (sc->sc_enabled) { 2368 error = wi_write_rid(sc, wreq.wi_type, wreq.wi_val, 2369 len); 2370 if (error) 2371 break; 2372 } 2373 error = ieee80211_cfgset(ic, cmd, data); 2374 break; 2375 } 2376 return error; 2377 } 2378 2379 /* Rate is 0 for hardware auto-select, otherwise rate is 2380 * 2, 4, 11, or 22 (units of 500Kbps). 2381 */ 2382 STATIC int 2383 wi_write_txrate(struct wi_softc *sc, int rate) 2384 { 2385 u_int16_t hwrate; 2386 2387 /* rate: 0, 2, 4, 11, 22 */ 2388 switch (sc->sc_firmware_type) { 2389 case WI_LUCENT: 2390 switch (rate & IEEE80211_RATE_VAL) { 2391 case 2: 2392 hwrate = 1; 2393 break; 2394 case 4: 2395 hwrate = 2; 2396 break; 2397 default: 2398 hwrate = 3; /* auto */ 2399 break; 2400 case 11: 2401 hwrate = 4; 2402 break; 2403 case 22: 2404 hwrate = 5; 2405 break; 2406 } 2407 break; 2408 default: 2409 switch (rate & IEEE80211_RATE_VAL) { 2410 case 2: 2411 hwrate = 1; 2412 break; 2413 case 4: 2414 hwrate = 2; 2415 break; 2416 case 11: 2417 hwrate = 4; 2418 break; 2419 case 22: 2420 hwrate = 8; 2421 break; 2422 default: 2423 hwrate = 15; /* auto */ 2424 break; 2425 } 2426 break; 2427 } 2428 2429 if (sc->sc_tx_rate == hwrate) 2430 return 0; 2431 2432 if (sc->sc_if.if_flags & IFF_DEBUG) 2433 printf("%s: tx rate %d -> %d (%d)\n", __func__, sc->sc_tx_rate, 2434 hwrate, rate); 2435 2436 sc->sc_tx_rate = hwrate; 2437 2438 return wi_write_val(sc, WI_RID_TX_RATE, sc->sc_tx_rate); 2439 } 2440 2441 STATIC int 2442 wi_cfg_txrate(struct wi_softc *sc) 2443 { 2444 struct ieee80211com *ic = &sc->sc_ic; 2445 struct ieee80211_rateset *rs; 2446 int rate; 2447 2448 rs = &ic->ic_sup_rates[IEEE80211_MODE_11B]; 2449 2450 sc->sc_tx_rate = 0; /* force write to RID */ 2451 2452 if (ic->ic_fixed_rate < 0) 2453 rate = 0; /* auto */ 2454 else 2455 rate = rs->rs_rates[ic->ic_fixed_rate]; 2456 2457 return wi_write_txrate(sc, rate); 2458 } 2459 2460 STATIC int 2461 wi_key_delete(struct ieee80211com *ic, const struct ieee80211_key *k) 2462 { 2463 struct wi_softc *sc = ic->ic_ifp->if_softc; 2464 u_int keyix = k->wk_keyix; 2465 2466 DPRINTF(("%s: delete key %u\n", __func__, keyix)); 2467 2468 if (keyix >= IEEE80211_WEP_NKID) 2469 return 0; 2470 if (k->wk_keylen != 0) 2471 sc->sc_flags &= ~WI_FLAGS_WEP_VALID; 2472 2473 return 1; 2474 } 2475 2476 static int 2477 wi_key_set(struct ieee80211com *ic, const struct ieee80211_key *k, 2478 const u_int8_t mac[IEEE80211_ADDR_LEN]) 2479 { 2480 struct wi_softc *sc = ic->ic_ifp->if_softc; 2481 2482 DPRINTF(("%s: set key %u\n", __func__, k->wk_keyix)); 2483 2484 if (k->wk_keyix >= IEEE80211_WEP_NKID) 2485 return 0; 2486 2487 sc->sc_flags &= ~WI_FLAGS_WEP_VALID; 2488 2489 return 1; 2490 } 2491 2492 STATIC void 2493 wi_key_update_begin(struct ieee80211com *ic) 2494 { 2495 DPRINTF(("%s:\n", __func__)); 2496 } 2497 2498 STATIC void 2499 wi_key_update_end(struct ieee80211com *ic) 2500 { 2501 struct ifnet *ifp = ic->ic_ifp; 2502 struct wi_softc *sc = ifp->if_softc; 2503 2504 DPRINTF(("%s:\n", __func__)); 2505 2506 if ((sc->sc_flags & WI_FLAGS_WEP_VALID) != 0) 2507 return; 2508 if ((ic->ic_caps & IEEE80211_C_WEP) != 0 && sc->sc_enabled && 2509 !sc->sc_invalid) 2510 (void)wi_write_wep(sc); 2511 } 2512 2513 STATIC int 2514 wi_write_wep(struct wi_softc *sc) 2515 { 2516 struct ifnet *ifp = &sc->sc_if; 2517 struct ieee80211com *ic = &sc->sc_ic; 2518 int error = 0; 2519 int i, keylen; 2520 u_int16_t val; 2521 struct wi_key wkey[IEEE80211_WEP_NKID]; 2522 2523 if ((ifp->if_flags & IFF_RUNNING) != 0) 2524 wi_cmd(sc, WI_CMD_DISABLE | sc->sc_portnum, 0, 0, 0); 2525 2526 switch (sc->sc_firmware_type) { 2527 case WI_LUCENT: 2528 val = (ic->ic_flags & IEEE80211_F_PRIVACY) ? 1 : 0; 2529 error = wi_write_val(sc, WI_RID_ENCRYPTION, val); 2530 if (error) 2531 break; 2532 error = wi_write_val(sc, WI_RID_TX_CRYPT_KEY, ic->ic_def_txkey); 2533 if (error) 2534 break; 2535 memset(wkey, 0, sizeof(wkey)); 2536 for (i = 0; i < IEEE80211_WEP_NKID; i++) { 2537 keylen = ic->ic_nw_keys[i].wk_keylen; 2538 wkey[i].wi_keylen = htole16(keylen); 2539 memcpy(wkey[i].wi_keydat, ic->ic_nw_keys[i].wk_key, 2540 keylen); 2541 } 2542 error = wi_write_rid(sc, WI_RID_DEFLT_CRYPT_KEYS, 2543 wkey, sizeof(wkey)); 2544 break; 2545 2546 case WI_INTERSIL: 2547 case WI_SYMBOL: 2548 if (ic->ic_flags & IEEE80211_F_PRIVACY) { 2549 /* 2550 * ONLY HWB3163 EVAL-CARD Firmware version 2551 * less than 0.8 variant2 2552 * 2553 * If promiscuous mode disable, Prism2 chip 2554 * does not work with WEP . 2555 * It is under investigation for details. 2556 * (ichiro@NetBSD.org) 2557 */ 2558 if (sc->sc_firmware_type == WI_INTERSIL && 2559 sc->sc_sta_firmware_ver < 802 ) { 2560 /* firm ver < 0.8 variant 2 */ 2561 wi_write_val(sc, WI_RID_PROMISC, 1); 2562 } 2563 wi_write_val(sc, WI_RID_CNFAUTHMODE, 2564 sc->sc_cnfauthmode); 2565 val = PRIVACY_INVOKED; 2566 if ((sc->sc_ic_flags & IEEE80211_F_DROPUNENC) != 0) 2567 val |= EXCLUDE_UNENCRYPTED; 2568 #ifndef IEEE80211_NO_HOSTAP 2569 /* 2570 * Encryption firmware has a bug for HostAP mode. 2571 */ 2572 if (sc->sc_firmware_type == WI_INTERSIL && 2573 ic->ic_opmode == IEEE80211_M_HOSTAP) 2574 val |= HOST_ENCRYPT; 2575 #endif /* !IEEE80211_NO_HOSTAP */ 2576 } else { 2577 wi_write_val(sc, WI_RID_CNFAUTHMODE, 2578 IEEE80211_AUTH_OPEN); 2579 val = HOST_ENCRYPT | HOST_DECRYPT; 2580 } 2581 error = wi_write_val(sc, WI_RID_P2_ENCRYPTION, val); 2582 if (error) 2583 break; 2584 error = wi_write_val(sc, WI_RID_P2_TX_CRYPT_KEY, 2585 ic->ic_def_txkey); 2586 if (error) 2587 break; 2588 /* 2589 * It seems that the firmware accept 104bit key only if 2590 * all the keys have 104bit length. We get the length of 2591 * the transmit key and use it for all other keys. 2592 * Perhaps we should use software WEP for such situation. 2593 */ 2594 if (ic->ic_def_txkey == IEEE80211_KEYIX_NONE || 2595 IEEE80211_KEY_UNDEFINED(ic->ic_nw_keys[ic->ic_def_txkey])) 2596 keylen = 13; /* No keys => 104bit ok */ 2597 else 2598 keylen = ic->ic_nw_keys[ic->ic_def_txkey].wk_keylen; 2599 2600 if (keylen > IEEE80211_WEP_KEYLEN) 2601 keylen = 13; /* 104bit keys */ 2602 else 2603 keylen = IEEE80211_WEP_KEYLEN; 2604 for (i = 0; i < IEEE80211_WEP_NKID; i++) { 2605 error = wi_write_rid(sc, WI_RID_P2_CRYPT_KEY0 + i, 2606 ic->ic_nw_keys[i].wk_key, keylen); 2607 if (error) 2608 break; 2609 } 2610 break; 2611 } 2612 if ((ifp->if_flags & IFF_RUNNING) != 0) 2613 wi_cmd(sc, WI_CMD_ENABLE | sc->sc_portnum, 0, 0, 0); 2614 if (error == 0) 2615 sc->sc_flags |= WI_FLAGS_WEP_VALID; 2616 return error; 2617 } 2618 2619 /* Must be called at proper protection level! */ 2620 STATIC int 2621 wi_cmd_start(struct wi_softc *sc, int cmd, int val0, int val1, int val2) 2622 { 2623 #ifdef WI_HISTOGRAM 2624 static int hist1[11]; 2625 static int hist1count; 2626 #endif 2627 int i; 2628 2629 /* wait for the busy bit to clear */ 2630 for (i = 500; i > 0; i--) { /* 5s */ 2631 if ((CSR_READ_2(sc, WI_COMMAND) & WI_CMD_BUSY) == 0) 2632 break; 2633 if (sc->sc_invalid) 2634 return ENXIO; 2635 DELAY(1000); /* 1 m sec */ 2636 } 2637 if (i == 0) { 2638 aprint_error_dev(&sc->sc_dev, "wi_cmd: busy bit won't clear.\n"); 2639 return(ETIMEDOUT); 2640 } 2641 #ifdef WI_HISTOGRAM 2642 if (i > 490) 2643 hist1[500 - i]++; 2644 else 2645 hist1[10]++; 2646 if (++hist1count == 1000) { 2647 hist1count = 0; 2648 printf("%s: hist1: %d %d %d %d %d %d %d %d %d %d %d\n", 2649 device_xname(&sc->sc_dev), 2650 hist1[0], hist1[1], hist1[2], hist1[3], hist1[4], 2651 hist1[5], hist1[6], hist1[7], hist1[8], hist1[9], 2652 hist1[10]); 2653 } 2654 #endif 2655 CSR_WRITE_2(sc, WI_PARAM0, val0); 2656 CSR_WRITE_2(sc, WI_PARAM1, val1); 2657 CSR_WRITE_2(sc, WI_PARAM2, val2); 2658 CSR_WRITE_2(sc, WI_COMMAND, cmd); 2659 2660 return 0; 2661 } 2662 2663 STATIC int 2664 wi_cmd(struct wi_softc *sc, int cmd, int val0, int val1, int val2) 2665 { 2666 int rc; 2667 2668 #ifdef WI_DEBUG 2669 if (wi_debug) { 2670 printf("%s: [enter] %d txcmds outstanding\n", __func__, 2671 sc->sc_txcmds); 2672 } 2673 #endif 2674 if (sc->sc_txcmds > 0) 2675 wi_txcmd_wait(sc); 2676 2677 if ((rc = wi_cmd_start(sc, cmd, val0, val1, val2)) != 0) 2678 return rc; 2679 2680 if (cmd == WI_CMD_INI) { 2681 /* XXX: should sleep here. */ 2682 if (sc->sc_invalid) 2683 return ENXIO; 2684 DELAY(100*1000); 2685 } 2686 rc = wi_cmd_wait(sc, cmd, val0); 2687 2688 #ifdef WI_DEBUG 2689 if (wi_debug) { 2690 printf("%s: [ ] %d txcmds outstanding\n", __func__, 2691 sc->sc_txcmds); 2692 } 2693 #endif 2694 if (sc->sc_txcmds > 0) 2695 wi_cmd_intr(sc); 2696 2697 #ifdef WI_DEBUG 2698 if (wi_debug) { 2699 printf("%s: [leave] %d txcmds outstanding\n", __func__, 2700 sc->sc_txcmds); 2701 } 2702 #endif 2703 return rc; 2704 } 2705 2706 STATIC int 2707 wi_cmd_wait(struct wi_softc *sc, int cmd, int val0) 2708 { 2709 #ifdef WI_HISTOGRAM 2710 static int hist2[11]; 2711 static int hist2count; 2712 #endif 2713 int i, status; 2714 #ifdef WI_DEBUG 2715 if (wi_debug > 1) 2716 printf("%s: cmd=%#x, arg=%#x\n", __func__, cmd, val0); 2717 #endif /* WI_DEBUG */ 2718 2719 /* wait for the cmd completed bit */ 2720 for (i = 0; i < WI_TIMEOUT; i++) { 2721 if (CSR_READ_2(sc, WI_EVENT_STAT) & WI_EV_CMD) 2722 break; 2723 if (sc->sc_invalid) 2724 return ENXIO; 2725 DELAY(WI_DELAY); 2726 } 2727 2728 #ifdef WI_HISTOGRAM 2729 if (i < 100) 2730 hist2[i/10]++; 2731 else 2732 hist2[10]++; 2733 if (++hist2count == 1000) { 2734 hist2count = 0; 2735 printf("%s: hist2: %d %d %d %d %d %d %d %d %d %d %d\n", 2736 device_xname(&sc->sc_dev), 2737 hist2[0], hist2[1], hist2[2], hist2[3], hist2[4], 2738 hist2[5], hist2[6], hist2[7], hist2[8], hist2[9], 2739 hist2[10]); 2740 } 2741 #endif 2742 2743 status = CSR_READ_2(sc, WI_STATUS); 2744 2745 if (i == WI_TIMEOUT) { 2746 aprint_error_dev(&sc->sc_dev, "command timed out, cmd=0x%x, arg=0x%x\n", 2747 cmd, val0); 2748 return ETIMEDOUT; 2749 } 2750 2751 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_CMD); 2752 2753 if (status & WI_STAT_CMD_RESULT) { 2754 aprint_error_dev(&sc->sc_dev, "command failed, cmd=0x%x, arg=0x%x\n", 2755 cmd, val0); 2756 return EIO; 2757 } 2758 return 0; 2759 } 2760 2761 STATIC int 2762 wi_seek_bap(struct wi_softc *sc, int id, int off) 2763 { 2764 #ifdef WI_HISTOGRAM 2765 static int hist4[11]; 2766 static int hist4count; 2767 #endif 2768 int i, status; 2769 2770 CSR_WRITE_2(sc, WI_SEL0, id); 2771 CSR_WRITE_2(sc, WI_OFF0, off); 2772 2773 for (i = 0; ; i++) { 2774 status = CSR_READ_2(sc, WI_OFF0); 2775 if ((status & WI_OFF_BUSY) == 0) 2776 break; 2777 if (i == WI_TIMEOUT) { 2778 aprint_error_dev(&sc->sc_dev, "timeout in wi_seek to %x/%x\n", 2779 id, off); 2780 sc->sc_bap_off = WI_OFF_ERR; /* invalidate */ 2781 return ETIMEDOUT; 2782 } 2783 if (sc->sc_invalid) 2784 return ENXIO; 2785 DELAY(2); 2786 } 2787 #ifdef WI_HISTOGRAM 2788 if (i < 100) 2789 hist4[i/10]++; 2790 else 2791 hist4[10]++; 2792 if (++hist4count == 2500) { 2793 hist4count = 0; 2794 printf("%s: hist4: %d %d %d %d %d %d %d %d %d %d %d\n", 2795 device_xname(&sc->sc_dev), 2796 hist4[0], hist4[1], hist4[2], hist4[3], hist4[4], 2797 hist4[5], hist4[6], hist4[7], hist4[8], hist4[9], 2798 hist4[10]); 2799 } 2800 #endif 2801 if (status & WI_OFF_ERR) { 2802 printf("%s: failed in wi_seek to %x/%x\n", 2803 device_xname(&sc->sc_dev), id, off); 2804 sc->sc_bap_off = WI_OFF_ERR; /* invalidate */ 2805 return EIO; 2806 } 2807 sc->sc_bap_id = id; 2808 sc->sc_bap_off = off; 2809 return 0; 2810 } 2811 2812 STATIC int 2813 wi_read_bap(struct wi_softc *sc, int id, int off, void *buf, int buflen) 2814 { 2815 int error, cnt; 2816 2817 if (buflen == 0) 2818 return 0; 2819 if (id != sc->sc_bap_id || off != sc->sc_bap_off) { 2820 if ((error = wi_seek_bap(sc, id, off)) != 0) 2821 return error; 2822 } 2823 cnt = (buflen + 1) / 2; 2824 CSR_READ_MULTI_STREAM_2(sc, WI_DATA0, (u_int16_t *)buf, cnt); 2825 sc->sc_bap_off += cnt * 2; 2826 return 0; 2827 } 2828 2829 STATIC int 2830 wi_write_bap(struct wi_softc *sc, int id, int off, void *buf, int buflen) 2831 { 2832 int error, cnt; 2833 2834 if (buflen == 0) 2835 return 0; 2836 2837 #ifdef WI_HERMES_AUTOINC_WAR 2838 again: 2839 #endif 2840 if (id != sc->sc_bap_id || off != sc->sc_bap_off) { 2841 if ((error = wi_seek_bap(sc, id, off)) != 0) 2842 return error; 2843 } 2844 cnt = (buflen + 1) / 2; 2845 CSR_WRITE_MULTI_STREAM_2(sc, WI_DATA0, (u_int16_t *)buf, cnt); 2846 sc->sc_bap_off += cnt * 2; 2847 2848 #ifdef WI_HERMES_AUTOINC_WAR 2849 /* 2850 * According to the comments in the HCF Light code, there is a bug 2851 * in the Hermes (or possibly in certain Hermes firmware revisions) 2852 * where the chip's internal autoincrement counter gets thrown off 2853 * during data writes: the autoincrement is missed, causing one 2854 * data word to be overwritten and subsequent words to be written to 2855 * the wrong memory locations. The end result is that we could end 2856 * up transmitting bogus frames without realizing it. The workaround 2857 * for this is to write a couple of extra guard words after the end 2858 * of the transfer, then attempt to read then back. If we fail to 2859 * locate the guard words where we expect them, we preform the 2860 * transfer over again. 2861 */ 2862 if ((sc->sc_flags & WI_FLAGS_BUG_AUTOINC) && (id & 0xf000) == 0) { 2863 CSR_WRITE_2(sc, WI_DATA0, 0x1234); 2864 CSR_WRITE_2(sc, WI_DATA0, 0x5678); 2865 wi_seek_bap(sc, id, sc->sc_bap_off); 2866 sc->sc_bap_off = WI_OFF_ERR; /* invalidate */ 2867 if (CSR_READ_2(sc, WI_DATA0) != 0x1234 || 2868 CSR_READ_2(sc, WI_DATA0) != 0x5678) { 2869 aprint_error_dev(&sc->sc_dev, "detect auto increment bug, try again\n"); 2870 goto again; 2871 } 2872 } 2873 #endif 2874 return 0; 2875 } 2876 2877 STATIC int 2878 wi_mwrite_bap(struct wi_softc *sc, int id, int off, struct mbuf *m0, int totlen) 2879 { 2880 int error, len; 2881 struct mbuf *m; 2882 2883 for (m = m0; m != NULL && totlen > 0; m = m->m_next) { 2884 if (m->m_len == 0) 2885 continue; 2886 2887 len = min(m->m_len, totlen); 2888 2889 if (((u_long)m->m_data) % 2 != 0 || len % 2 != 0) { 2890 m_copydata(m, 0, totlen, (void *)&sc->sc_txbuf); 2891 return wi_write_bap(sc, id, off, (void *)&sc->sc_txbuf, 2892 totlen); 2893 } 2894 2895 if ((error = wi_write_bap(sc, id, off, m->m_data, len)) != 0) 2896 return error; 2897 2898 off += m->m_len; 2899 totlen -= len; 2900 } 2901 return 0; 2902 } 2903 2904 STATIC int 2905 wi_alloc_fid(struct wi_softc *sc, int len, int *idp) 2906 { 2907 int i; 2908 2909 if (wi_cmd(sc, WI_CMD_ALLOC_MEM, len, 0, 0)) { 2910 aprint_error_dev(&sc->sc_dev, "failed to allocate %d bytes on NIC\n", len); 2911 return ENOMEM; 2912 } 2913 2914 for (i = 0; i < WI_TIMEOUT; i++) { 2915 if (CSR_READ_2(sc, WI_EVENT_STAT) & WI_EV_ALLOC) 2916 break; 2917 DELAY(1); 2918 } 2919 if (i == WI_TIMEOUT) { 2920 aprint_error_dev(&sc->sc_dev, "timeout in alloc\n"); 2921 return ETIMEDOUT; 2922 } 2923 *idp = CSR_READ_2(sc, WI_ALLOC_FID); 2924 CSR_WRITE_2(sc, WI_EVENT_ACK, WI_EV_ALLOC); 2925 return 0; 2926 } 2927 2928 STATIC int 2929 wi_read_rid(struct wi_softc *sc, int rid, void *buf, int *buflenp) 2930 { 2931 int error, len; 2932 u_int16_t ltbuf[2]; 2933 2934 /* Tell the NIC to enter record read mode. */ 2935 error = wi_cmd(sc, WI_CMD_ACCESS | WI_ACCESS_READ, rid, 0, 0); 2936 if (error) 2937 return error; 2938 2939 error = wi_read_bap(sc, rid, 0, ltbuf, sizeof(ltbuf)); 2940 if (error) 2941 return error; 2942 2943 if (le16toh(ltbuf[0]) == 0) 2944 return EOPNOTSUPP; 2945 if (le16toh(ltbuf[1]) != rid) { 2946 aprint_error_dev(&sc->sc_dev, "record read mismatch, rid=%x, got=%x\n", 2947 rid, le16toh(ltbuf[1])); 2948 return EIO; 2949 } 2950 len = (le16toh(ltbuf[0]) - 1) * 2; /* already got rid */ 2951 if (*buflenp < len) { 2952 aprint_error_dev(&sc->sc_dev, "record buffer is too small, " 2953 "rid=%x, size=%d, len=%d\n", 2954 rid, *buflenp, len); 2955 return ENOSPC; 2956 } 2957 *buflenp = len; 2958 return wi_read_bap(sc, rid, sizeof(ltbuf), buf, len); 2959 } 2960 2961 STATIC int 2962 wi_write_rid(struct wi_softc *sc, int rid, void *buf, int buflen) 2963 { 2964 int error; 2965 u_int16_t ltbuf[2]; 2966 2967 ltbuf[0] = htole16((buflen + 1) / 2 + 1); /* includes rid */ 2968 ltbuf[1] = htole16(rid); 2969 2970 error = wi_write_bap(sc, rid, 0, ltbuf, sizeof(ltbuf)); 2971 if (error) 2972 return error; 2973 error = wi_write_bap(sc, rid, sizeof(ltbuf), buf, buflen); 2974 if (error) 2975 return error; 2976 2977 return wi_cmd(sc, WI_CMD_ACCESS | WI_ACCESS_WRITE, rid, 0, 0); 2978 } 2979 2980 STATIC void 2981 wi_rssadapt_updatestats_cb(void *arg, struct ieee80211_node *ni) 2982 { 2983 struct wi_node *wn = (void*)ni; 2984 ieee80211_rssadapt_updatestats(&wn->wn_rssadapt); 2985 } 2986 2987 STATIC void 2988 wi_rssadapt_updatestats(void *arg) 2989 { 2990 struct wi_softc *sc = arg; 2991 struct ieee80211com *ic = &sc->sc_ic; 2992 ieee80211_iterate_nodes(&ic->ic_sta, wi_rssadapt_updatestats_cb, arg); 2993 if (ic->ic_opmode != IEEE80211_M_MONITOR && 2994 ic->ic_state == IEEE80211_S_RUN) 2995 callout_reset(&sc->sc_rssadapt_ch, hz / 10, 2996 wi_rssadapt_updatestats, arg); 2997 } 2998 2999 /* 3000 * In HOSTAP mode, restore IEEE80211_F_DROPUNENC when operating 3001 * with WEP enabled so that the AP drops unencoded frames at the 3002 * 802.11 layer. 3003 * 3004 * In all other modes, clear IEEE80211_F_DROPUNENC when operating 3005 * with WEP enabled so we don't drop unencoded frames at the 802.11 3006 * layer. This is necessary because we must strip the WEP bit from 3007 * the 802.11 header before passing frames to ieee80211_input 3008 * because the card has already stripped the WEP crypto header from 3009 * the packet. 3010 */ 3011 STATIC void 3012 wi_mend_flags(struct wi_softc *sc, enum ieee80211_state nstate) 3013 { 3014 struct ieee80211com *ic = &sc->sc_ic; 3015 3016 if (nstate == IEEE80211_S_RUN && 3017 (ic->ic_flags & IEEE80211_F_PRIVACY) != 0 && 3018 ic->ic_opmode != IEEE80211_M_HOSTAP) 3019 ic->ic_flags &= ~IEEE80211_F_DROPUNENC; 3020 else 3021 ic->ic_flags |= sc->sc_ic_flags; 3022 3023 DPRINTF(("%s: state %d, " 3024 "ic->ic_flags & IEEE80211_F_DROPUNENC = %#" PRIx32 ", " 3025 "sc->sc_ic_flags & IEEE80211_F_DROPUNENC = %#" PRIx32 "\n", 3026 __func__, nstate, 3027 ic->ic_flags & IEEE80211_F_DROPUNENC, 3028 sc->sc_ic_flags & IEEE80211_F_DROPUNENC)); 3029 } 3030 3031 STATIC int 3032 wi_newstate(struct ieee80211com *ic, enum ieee80211_state nstate, int arg) 3033 { 3034 struct ifnet *ifp = ic->ic_ifp; 3035 struct wi_softc *sc = ifp->if_softc; 3036 struct ieee80211_node *ni = ic->ic_bss; 3037 u_int16_t val; 3038 struct wi_ssid ssid; 3039 struct wi_macaddr bssid, old_bssid; 3040 enum ieee80211_state ostate; 3041 #ifdef WI_DEBUG 3042 static const char *stname[] = 3043 { "INIT", "SCAN", "AUTH", "ASSOC", "RUN" }; 3044 #endif /* WI_DEBUG */ 3045 3046 ostate = ic->ic_state; 3047 DPRINTF(("wi_newstate: %s -> %s\n", stname[ostate], stname[nstate])); 3048 3049 switch (nstate) { 3050 case IEEE80211_S_INIT: 3051 if (ic->ic_opmode != IEEE80211_M_MONITOR) 3052 callout_stop(&sc->sc_rssadapt_ch); 3053 ic->ic_flags &= ~IEEE80211_F_SIBSS; 3054 sc->sc_flags &= ~WI_FLAGS_OUTRANGE; 3055 break; 3056 3057 case IEEE80211_S_SCAN: 3058 case IEEE80211_S_AUTH: 3059 case IEEE80211_S_ASSOC: 3060 ic->ic_state = nstate; /* NB: skip normal ieee80211 handling */ 3061 wi_mend_flags(sc, nstate); 3062 return 0; 3063 3064 case IEEE80211_S_RUN: 3065 sc->sc_flags &= ~WI_FLAGS_OUTRANGE; 3066 IEEE80211_ADDR_COPY(old_bssid.wi_mac_addr, ni->ni_bssid); 3067 wi_read_xrid(sc, WI_RID_CURRENT_BSSID, &bssid, 3068 IEEE80211_ADDR_LEN); 3069 IEEE80211_ADDR_COPY(ni->ni_bssid, &bssid); 3070 IEEE80211_ADDR_COPY(ni->ni_macaddr, &bssid); 3071 wi_read_xrid(sc, WI_RID_CURRENT_CHAN, &val, sizeof(val)); 3072 if (!isset(ic->ic_chan_avail, le16toh(val))) 3073 panic("%s: invalid channel %d\n", device_xname(&sc->sc_dev), 3074 le16toh(val)); 3075 ni->ni_chan = &ic->ic_channels[le16toh(val)]; 3076 3077 if (ic->ic_opmode == IEEE80211_M_HOSTAP) { 3078 #ifndef IEEE80211_NO_HOSTAP 3079 ni->ni_esslen = ic->ic_des_esslen; 3080 memcpy(ni->ni_essid, ic->ic_des_essid, ni->ni_esslen); 3081 ni->ni_rates = ic->ic_sup_rates[ 3082 ieee80211_chan2mode(ic, ni->ni_chan)]; 3083 ni->ni_intval = ic->ic_lintval; 3084 ni->ni_capinfo = IEEE80211_CAPINFO_ESS; 3085 if (ic->ic_flags & IEEE80211_F_PRIVACY) 3086 ni->ni_capinfo |= IEEE80211_CAPINFO_PRIVACY; 3087 #endif /* !IEEE80211_NO_HOSTAP */ 3088 } else { 3089 wi_read_xrid(sc, WI_RID_CURRENT_SSID, &ssid, 3090 sizeof(ssid)); 3091 ni->ni_esslen = le16toh(ssid.wi_len); 3092 if (ni->ni_esslen > IEEE80211_NWID_LEN) 3093 ni->ni_esslen = IEEE80211_NWID_LEN; /*XXX*/ 3094 memcpy(ni->ni_essid, ssid.wi_ssid, ni->ni_esslen); 3095 ni->ni_rates = ic->ic_sup_rates[ 3096 ieee80211_chan2mode(ic, ni->ni_chan)]; /*XXX*/ 3097 } 3098 if (ic->ic_opmode != IEEE80211_M_MONITOR) 3099 callout_reset(&sc->sc_rssadapt_ch, hz / 10, 3100 wi_rssadapt_updatestats, sc); 3101 /* Trigger routing socket messages. XXX Copied from 3102 * ieee80211_newstate. 3103 */ 3104 if (ic->ic_opmode == IEEE80211_M_STA) 3105 ieee80211_notify_node_join(ic, ic->ic_bss, 3106 arg == IEEE80211_FC0_SUBTYPE_ASSOC_RESP); 3107 break; 3108 } 3109 wi_mend_flags(sc, nstate); 3110 return (*sc->sc_newstate)(ic, nstate, arg); 3111 } 3112 3113 STATIC void 3114 wi_set_tim(struct ieee80211_node *ni, int set) 3115 { 3116 struct ieee80211com *ic = ni->ni_ic; 3117 struct wi_softc *sc = ic->ic_ifp->if_softc; 3118 3119 (*sc->sc_set_tim)(ni, set); 3120 3121 if ((ic->ic_flags & IEEE80211_F_TIMUPDATE) == 0) 3122 return; 3123 3124 ic->ic_flags &= ~IEEE80211_F_TIMUPDATE; 3125 3126 (void)wi_write_val(sc, WI_RID_SET_TIM, 3127 IEEE80211_AID(ni->ni_associd) | (set ? 0x8000 : 0)); 3128 } 3129 3130 STATIC int 3131 wi_scan_ap(struct wi_softc *sc, u_int16_t chanmask, u_int16_t txrate) 3132 { 3133 int error = 0; 3134 u_int16_t val[2]; 3135 3136 if (!sc->sc_enabled) 3137 return ENXIO; 3138 switch (sc->sc_firmware_type) { 3139 case WI_LUCENT: 3140 (void)wi_cmd(sc, WI_CMD_INQUIRE, WI_INFO_SCAN_RESULTS, 0, 0); 3141 break; 3142 case WI_INTERSIL: 3143 val[0] = htole16(chanmask); /* channel */ 3144 val[1] = htole16(txrate); /* tx rate */ 3145 error = wi_write_rid(sc, WI_RID_SCAN_REQ, val, sizeof(val)); 3146 break; 3147 case WI_SYMBOL: 3148 /* 3149 * XXX only supported on 3.x ? 3150 */ 3151 val[0] = htole16(BSCAN_BCAST | BSCAN_ONETIME); 3152 error = wi_write_rid(sc, WI_RID_BCAST_SCAN_REQ, 3153 val, sizeof(val[0])); 3154 break; 3155 } 3156 if (error == 0) { 3157 sc->sc_scan_timer = WI_SCAN_WAIT; 3158 sc->sc_if.if_timer = 1; 3159 DPRINTF(("wi_scan_ap: start scanning, " 3160 "chanmask 0x%x txrate 0x%x\n", chanmask, txrate)); 3161 } 3162 return error; 3163 } 3164 3165 STATIC void 3166 wi_scan_result(struct wi_softc *sc, int fid, int cnt) 3167 { 3168 #define N(a) (sizeof (a) / sizeof (a[0])) 3169 int i, naps, off, szbuf; 3170 struct wi_scan_header ws_hdr; /* Prism2 header */ 3171 struct wi_scan_data_p2 ws_dat; /* Prism2 scantable*/ 3172 struct wi_apinfo *ap; 3173 3174 off = sizeof(u_int16_t) * 2; 3175 memset(&ws_hdr, 0, sizeof(ws_hdr)); 3176 switch (sc->sc_firmware_type) { 3177 case WI_INTERSIL: 3178 wi_read_bap(sc, fid, off, &ws_hdr, sizeof(ws_hdr)); 3179 off += sizeof(ws_hdr); 3180 szbuf = sizeof(struct wi_scan_data_p2); 3181 break; 3182 case WI_SYMBOL: 3183 szbuf = sizeof(struct wi_scan_data_p2) + 6; 3184 break; 3185 case WI_LUCENT: 3186 szbuf = sizeof(struct wi_scan_data); 3187 break; 3188 default: 3189 aprint_error_dev(&sc->sc_dev, "wi_scan_result: unknown firmware type %u\n", 3190 sc->sc_firmware_type); 3191 naps = 0; 3192 goto done; 3193 } 3194 naps = (cnt * 2 + 2 - off) / szbuf; 3195 if (naps > N(sc->sc_aps)) 3196 naps = N(sc->sc_aps); 3197 sc->sc_naps = naps; 3198 /* Read Data */ 3199 ap = sc->sc_aps; 3200 memset(&ws_dat, 0, sizeof(ws_dat)); 3201 for (i = 0; i < naps; i++, ap++) { 3202 wi_read_bap(sc, fid, off, &ws_dat, 3203 (sizeof(ws_dat) < szbuf ? sizeof(ws_dat) : szbuf)); 3204 DPRINTF2(("wi_scan_result: #%d: off %d bssid %s\n", i, off, 3205 ether_sprintf(ws_dat.wi_bssid))); 3206 off += szbuf; 3207 ap->scanreason = le16toh(ws_hdr.wi_reason); 3208 memcpy(ap->bssid, ws_dat.wi_bssid, sizeof(ap->bssid)); 3209 ap->channel = le16toh(ws_dat.wi_chid); 3210 ap->signal = le16toh(ws_dat.wi_signal); 3211 ap->noise = le16toh(ws_dat.wi_noise); 3212 ap->quality = ap->signal - ap->noise; 3213 ap->capinfo = le16toh(ws_dat.wi_capinfo); 3214 ap->interval = le16toh(ws_dat.wi_interval); 3215 ap->rate = le16toh(ws_dat.wi_rate); 3216 ap->namelen = le16toh(ws_dat.wi_namelen); 3217 if (ap->namelen > sizeof(ap->name)) 3218 ap->namelen = sizeof(ap->name); 3219 memcpy(ap->name, ws_dat.wi_name, ap->namelen); 3220 } 3221 done: 3222 /* Done scanning */ 3223 sc->sc_scan_timer = 0; 3224 DPRINTF(("wi_scan_result: scan complete: ap %d\n", naps)); 3225 #undef N 3226 } 3227 3228 STATIC void 3229 wi_dump_pkt(struct wi_frame *wh, struct ieee80211_node *ni, int rssi) 3230 { 3231 ieee80211_dump_pkt((u_int8_t *) &wh->wi_whdr, sizeof(wh->wi_whdr), 3232 ni ? ni->ni_rates.rs_rates[ni->ni_txrate] & IEEE80211_RATE_VAL 3233 : -1, 3234 rssi); 3235 printf(" status 0x%x rx_tstamp1 %u rx_tstamp0 0x%u rx_silence %u\n", 3236 le16toh(wh->wi_status), le16toh(wh->wi_rx_tstamp1), 3237 le16toh(wh->wi_rx_tstamp0), wh->wi_rx_silence); 3238 printf(" rx_signal %u rx_rate %u rx_flow %u\n", 3239 wh->wi_rx_signal, wh->wi_rx_rate, wh->wi_rx_flow); 3240 printf(" tx_rtry %u tx_rate %u tx_ctl 0x%x dat_len %u\n", 3241 wh->wi_tx_rtry, wh->wi_tx_rate, 3242 le16toh(wh->wi_tx_ctl), le16toh(wh->wi_dat_len)); 3243 printf(" ehdr dst %s src %s type 0x%x\n", 3244 ether_sprintf(wh->wi_ehdr.ether_dhost), 3245 ether_sprintf(wh->wi_ehdr.ether_shost), 3246 wh->wi_ehdr.ether_type); 3247 } 3248