1 // SPDX-License-Identifier: GPL-2.0 OR BSD-3-Clause 2 /* 3 * Copyright (C) 2012-2014, 2018-2023 Intel Corporation 4 * Copyright (C) 2013-2015 Intel Mobile Communications GmbH 5 * Copyright (C) 2016-2017 Intel Deutschland GmbH 6 */ 7 #include <linux/module.h> 8 #include <linux/rtnetlink.h> 9 #include <linux/vmalloc.h> 10 #include <net/mac80211.h> 11 12 #include "fw/notif-wait.h" 13 #include "iwl-trans.h" 14 #include "iwl-op-mode.h" 15 #include "fw/img.h" 16 #include "iwl-debug.h" 17 #include "iwl-drv.h" 18 #include "iwl-modparams.h" 19 #include "mvm.h" 20 #include "iwl-phy-db.h" 21 #include "iwl-eeprom-parse.h" 22 #include "iwl-csr.h" 23 #include "iwl-io.h" 24 #include "iwl-prph.h" 25 #include "rs.h" 26 #include "fw/api/scan.h" 27 #include "fw/api/rfi.h" 28 #include "time-event.h" 29 #include "fw-api.h" 30 #include "fw/acpi.h" 31 #include "fw/uefi.h" 32 #include "time-sync.h" 33 34 #define DRV_DESCRIPTION "The new Intel(R) wireless AGN driver for Linux" 35 MODULE_DESCRIPTION(DRV_DESCRIPTION); 36 MODULE_LICENSE("GPL"); 37 MODULE_IMPORT_NS(IWLWIFI); 38 39 static const struct iwl_op_mode_ops iwl_mvm_ops; 40 static const struct iwl_op_mode_ops iwl_mvm_ops_mq; 41 42 struct iwl_mvm_mod_params iwlmvm_mod_params = { 43 .power_scheme = IWL_POWER_SCHEME_BPS, 44 /* rest of fields are 0 by default */ 45 }; 46 47 module_param_named(init_dbg, iwlmvm_mod_params.init_dbg, bool, 0444); 48 MODULE_PARM_DESC(init_dbg, 49 "set to true to debug an ASSERT in INIT fw (default: false"); 50 module_param_named(power_scheme, iwlmvm_mod_params.power_scheme, int, 0444); 51 MODULE_PARM_DESC(power_scheme, 52 "power management scheme: 1-active, 2-balanced, 3-low power, default: 2"); 53 54 /* 55 * module init and exit functions 56 */ 57 static int __init iwl_mvm_init(void) 58 { 59 int ret; 60 61 ret = iwl_mvm_rate_control_register(); 62 if (ret) { 63 pr_err("Unable to register rate control algorithm: %d\n", ret); 64 return ret; 65 } 66 67 ret = iwl_opmode_register("iwlmvm", &iwl_mvm_ops); 68 if (ret) 69 pr_err("Unable to register MVM op_mode: %d\n", ret); 70 71 return ret; 72 } 73 module_init(iwl_mvm_init); 74 75 static void __exit iwl_mvm_exit(void) 76 { 77 iwl_opmode_deregister("iwlmvm"); 78 iwl_mvm_rate_control_unregister(); 79 } 80 module_exit(iwl_mvm_exit); 81 82 static void iwl_mvm_nic_config(struct iwl_op_mode *op_mode) 83 { 84 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 85 u8 radio_cfg_type, radio_cfg_step, radio_cfg_dash; 86 u32 reg_val; 87 u32 phy_config = iwl_mvm_get_phy_config(mvm); 88 89 radio_cfg_type = (phy_config & FW_PHY_CFG_RADIO_TYPE) >> 90 FW_PHY_CFG_RADIO_TYPE_POS; 91 radio_cfg_step = (phy_config & FW_PHY_CFG_RADIO_STEP) >> 92 FW_PHY_CFG_RADIO_STEP_POS; 93 radio_cfg_dash = (phy_config & FW_PHY_CFG_RADIO_DASH) >> 94 FW_PHY_CFG_RADIO_DASH_POS; 95 96 IWL_DEBUG_INFO(mvm, "Radio type=0x%x-0x%x-0x%x\n", radio_cfg_type, 97 radio_cfg_step, radio_cfg_dash); 98 99 if (mvm->trans->trans_cfg->device_family >= IWL_DEVICE_FAMILY_AX210) 100 return; 101 102 /* SKU control */ 103 reg_val = CSR_HW_REV_STEP_DASH(mvm->trans->hw_rev); 104 105 /* radio configuration */ 106 reg_val |= radio_cfg_type << CSR_HW_IF_CONFIG_REG_POS_PHY_TYPE; 107 reg_val |= radio_cfg_step << CSR_HW_IF_CONFIG_REG_POS_PHY_STEP; 108 reg_val |= radio_cfg_dash << CSR_HW_IF_CONFIG_REG_POS_PHY_DASH; 109 110 WARN_ON((radio_cfg_type << CSR_HW_IF_CONFIG_REG_POS_PHY_TYPE) & 111 ~CSR_HW_IF_CONFIG_REG_MSK_PHY_TYPE); 112 113 /* 114 * TODO: Bits 7-8 of CSR in 8000 HW family and higher set the ADC 115 * sampling, and shouldn't be set to any non-zero value. 116 * The same is supposed to be true of the other HW, but unsetting 117 * them (such as the 7260) causes automatic tests to fail on seemingly 118 * unrelated errors. Need to further investigate this, but for now 119 * we'll separate cases. 120 */ 121 if (mvm->trans->trans_cfg->device_family < IWL_DEVICE_FAMILY_8000) 122 reg_val |= CSR_HW_IF_CONFIG_REG_BIT_RADIO_SI; 123 124 if (iwl_fw_dbg_is_d3_debug_enabled(&mvm->fwrt)) 125 reg_val |= CSR_HW_IF_CONFIG_REG_D3_DEBUG; 126 127 iwl_trans_set_bits_mask(mvm->trans, CSR_HW_IF_CONFIG_REG, 128 CSR_HW_IF_CONFIG_REG_MSK_MAC_STEP_DASH | 129 CSR_HW_IF_CONFIG_REG_MSK_PHY_TYPE | 130 CSR_HW_IF_CONFIG_REG_MSK_PHY_STEP | 131 CSR_HW_IF_CONFIG_REG_MSK_PHY_DASH | 132 CSR_HW_IF_CONFIG_REG_BIT_RADIO_SI | 133 CSR_HW_IF_CONFIG_REG_BIT_MAC_SI | 134 CSR_HW_IF_CONFIG_REG_D3_DEBUG, 135 reg_val); 136 137 /* 138 * W/A : NIC is stuck in a reset state after Early PCIe power off 139 * (PCIe power is lost before PERST# is asserted), causing ME FW 140 * to lose ownership and not being able to obtain it back. 141 */ 142 if (!mvm->trans->cfg->apmg_not_supported) 143 iwl_set_bits_mask_prph(mvm->trans, APMG_PS_CTRL_REG, 144 APMG_PS_CTRL_EARLY_PWR_OFF_RESET_DIS, 145 ~APMG_PS_CTRL_EARLY_PWR_OFF_RESET_DIS); 146 } 147 148 static void iwl_mvm_rx_monitor_notif(struct iwl_mvm *mvm, 149 struct iwl_rx_cmd_buffer *rxb) 150 { 151 struct iwl_rx_packet *pkt = rxb_addr(rxb); 152 struct iwl_datapath_monitor_notif *notif = (void *)pkt->data; 153 struct ieee80211_supported_band *sband; 154 const struct ieee80211_sta_he_cap *he_cap; 155 struct ieee80211_vif *vif; 156 157 if (notif->type != cpu_to_le32(IWL_DP_MON_NOTIF_TYPE_EXT_CCA)) 158 return; 159 160 vif = iwl_mvm_get_vif_by_macid(mvm, notif->mac_id); 161 if (!vif || vif->type != NL80211_IFTYPE_STATION) 162 return; 163 164 if (!vif->bss_conf.chandef.chan || 165 vif->bss_conf.chandef.chan->band != NL80211_BAND_2GHZ || 166 vif->bss_conf.chandef.width < NL80211_CHAN_WIDTH_40) 167 return; 168 169 if (!vif->cfg.assoc) 170 return; 171 172 /* this shouldn't happen *again*, ignore it */ 173 if (mvm->cca_40mhz_workaround) 174 return; 175 176 /* 177 * We'll decrement this on disconnect - so set to 2 since we'll 178 * still have to disconnect from the current AP first. 179 */ 180 mvm->cca_40mhz_workaround = 2; 181 182 /* 183 * This capability manipulation isn't really ideal, but it's the 184 * easiest choice - otherwise we'd have to do some major changes 185 * in mac80211 to support this, which isn't worth it. This does 186 * mean that userspace may have outdated information, but that's 187 * actually not an issue at all. 188 */ 189 sband = mvm->hw->wiphy->bands[NL80211_BAND_2GHZ]; 190 191 WARN_ON(!sband->ht_cap.ht_supported); 192 WARN_ON(!(sband->ht_cap.cap & IEEE80211_HT_CAP_SUP_WIDTH_20_40)); 193 sband->ht_cap.cap &= ~IEEE80211_HT_CAP_SUP_WIDTH_20_40; 194 195 he_cap = ieee80211_get_he_iftype_cap_vif(sband, vif); 196 197 if (he_cap) { 198 /* we know that ours is writable */ 199 struct ieee80211_sta_he_cap *he = (void *)(uintptr_t)he_cap; 200 201 WARN_ON(!he->has_he); 202 WARN_ON(!(he->he_cap_elem.phy_cap_info[0] & 203 IEEE80211_HE_PHY_CAP0_CHANNEL_WIDTH_SET_40MHZ_IN_2G)); 204 he->he_cap_elem.phy_cap_info[0] &= 205 ~IEEE80211_HE_PHY_CAP0_CHANNEL_WIDTH_SET_40MHZ_IN_2G; 206 } 207 208 ieee80211_disconnect(vif, true); 209 } 210 211 void iwl_mvm_update_link_smps(struct ieee80211_vif *vif, 212 struct ieee80211_bss_conf *link_conf) 213 { 214 struct iwl_mvm_vif *mvmvif = iwl_mvm_vif_from_mac80211(vif); 215 struct iwl_mvm *mvm = mvmvif->mvm; 216 enum ieee80211_smps_mode mode = IEEE80211_SMPS_AUTOMATIC; 217 218 if (!link_conf) 219 return; 220 221 if (mvm->fw_static_smps_request && 222 link_conf->chandef.width == NL80211_CHAN_WIDTH_160 && 223 link_conf->he_support) 224 mode = IEEE80211_SMPS_STATIC; 225 226 iwl_mvm_update_smps(mvm, vif, IWL_MVM_SMPS_REQ_FW, mode, 227 link_conf->link_id); 228 } 229 230 static void iwl_mvm_intf_dual_chain_req(void *data, u8 *mac, 231 struct ieee80211_vif *vif) 232 { 233 struct ieee80211_bss_conf *link_conf; 234 unsigned int link_id; 235 236 rcu_read_lock(); 237 238 for_each_vif_active_link(vif, link_conf, link_id) 239 iwl_mvm_update_link_smps(vif, link_conf); 240 241 rcu_read_unlock(); 242 } 243 244 static void iwl_mvm_rx_thermal_dual_chain_req(struct iwl_mvm *mvm, 245 struct iwl_rx_cmd_buffer *rxb) 246 { 247 struct iwl_rx_packet *pkt = rxb_addr(rxb); 248 struct iwl_thermal_dual_chain_request *req = (void *)pkt->data; 249 250 /* 251 * We could pass it to the iterator data, but also need to remember 252 * it for new interfaces that are added while in this state. 253 */ 254 mvm->fw_static_smps_request = 255 req->event == cpu_to_le32(THERMAL_DUAL_CHAIN_REQ_DISABLE); 256 ieee80211_iterate_interfaces(mvm->hw, 257 IEEE80211_IFACE_SKIP_SDATA_NOT_IN_DRIVER, 258 iwl_mvm_intf_dual_chain_req, NULL); 259 } 260 261 /** 262 * enum iwl_rx_handler_context context for Rx handler 263 * @RX_HANDLER_SYNC : this means that it will be called in the Rx path 264 * which can't acquire mvm->mutex. 265 * @RX_HANDLER_ASYNC_LOCKED : If the handler needs to hold mvm->mutex 266 * (and only in this case!), it should be set as ASYNC. In that case, 267 * it will be called from a worker with mvm->mutex held. 268 * @RX_HANDLER_ASYNC_UNLOCKED : in case the handler needs to lock the 269 * mutex itself, it will be called from a worker without mvm->mutex held. 270 */ 271 enum iwl_rx_handler_context { 272 RX_HANDLER_SYNC, 273 RX_HANDLER_ASYNC_LOCKED, 274 RX_HANDLER_ASYNC_UNLOCKED, 275 }; 276 277 /** 278 * struct iwl_rx_handlers handler for FW notification 279 * @cmd_id: command id 280 * @min_size: minimum size to expect for the notification 281 * @context: see &iwl_rx_handler_context 282 * @fn: the function is called when notification is received 283 */ 284 struct iwl_rx_handlers { 285 u16 cmd_id, min_size; 286 enum iwl_rx_handler_context context; 287 void (*fn)(struct iwl_mvm *mvm, struct iwl_rx_cmd_buffer *rxb); 288 }; 289 290 #define RX_HANDLER_NO_SIZE(_cmd_id, _fn, _context) \ 291 { .cmd_id = _cmd_id, .fn = _fn, .context = _context, } 292 #define RX_HANDLER_GRP_NO_SIZE(_grp, _cmd, _fn, _context) \ 293 { .cmd_id = WIDE_ID(_grp, _cmd), .fn = _fn, .context = _context, } 294 #define RX_HANDLER(_cmd_id, _fn, _context, _struct) \ 295 { .cmd_id = _cmd_id, .fn = _fn, \ 296 .context = _context, .min_size = sizeof(_struct), } 297 #define RX_HANDLER_GRP(_grp, _cmd, _fn, _context, _struct) \ 298 { .cmd_id = WIDE_ID(_grp, _cmd), .fn = _fn, \ 299 .context = _context, .min_size = sizeof(_struct), } 300 301 /* 302 * Handlers for fw notifications 303 * Convention: RX_HANDLER(CMD_NAME, iwl_mvm_rx_CMD_NAME 304 * This list should be in order of frequency for performance purposes. 305 * 306 * The handler can be one from three contexts, see &iwl_rx_handler_context 307 */ 308 static const struct iwl_rx_handlers iwl_mvm_rx_handlers[] = { 309 RX_HANDLER(TX_CMD, iwl_mvm_rx_tx_cmd, RX_HANDLER_SYNC, 310 struct iwl_mvm_tx_resp), 311 RX_HANDLER(BA_NOTIF, iwl_mvm_rx_ba_notif, RX_HANDLER_SYNC, 312 struct iwl_mvm_ba_notif), 313 314 RX_HANDLER_GRP(DATA_PATH_GROUP, TLC_MNG_UPDATE_NOTIF, 315 iwl_mvm_tlc_update_notif, RX_HANDLER_SYNC, 316 struct iwl_tlc_update_notif), 317 318 RX_HANDLER(BT_PROFILE_NOTIFICATION, iwl_mvm_rx_bt_coex_notif, 319 RX_HANDLER_ASYNC_LOCKED, struct iwl_bt_coex_profile_notif), 320 RX_HANDLER_NO_SIZE(BEACON_NOTIFICATION, iwl_mvm_rx_beacon_notif, 321 RX_HANDLER_ASYNC_LOCKED), 322 RX_HANDLER_NO_SIZE(STATISTICS_NOTIFICATION, iwl_mvm_rx_statistics, 323 RX_HANDLER_ASYNC_LOCKED), 324 325 RX_HANDLER(BA_WINDOW_STATUS_NOTIFICATION_ID, 326 iwl_mvm_window_status_notif, RX_HANDLER_SYNC, 327 struct iwl_ba_window_status_notif), 328 329 RX_HANDLER(TIME_EVENT_NOTIFICATION, iwl_mvm_rx_time_event_notif, 330 RX_HANDLER_SYNC, struct iwl_time_event_notif), 331 RX_HANDLER_GRP(MAC_CONF_GROUP, SESSION_PROTECTION_NOTIF, 332 iwl_mvm_rx_session_protect_notif, RX_HANDLER_SYNC, 333 struct iwl_mvm_session_prot_notif), 334 RX_HANDLER(MCC_CHUB_UPDATE_CMD, iwl_mvm_rx_chub_update_mcc, 335 RX_HANDLER_ASYNC_LOCKED, struct iwl_mcc_chub_notif), 336 337 RX_HANDLER(EOSP_NOTIFICATION, iwl_mvm_rx_eosp_notif, RX_HANDLER_SYNC, 338 struct iwl_mvm_eosp_notification), 339 340 RX_HANDLER(SCAN_ITERATION_COMPLETE, 341 iwl_mvm_rx_lmac_scan_iter_complete_notif, RX_HANDLER_SYNC, 342 struct iwl_lmac_scan_complete_notif), 343 RX_HANDLER(SCAN_OFFLOAD_COMPLETE, 344 iwl_mvm_rx_lmac_scan_complete_notif, 345 RX_HANDLER_ASYNC_LOCKED, struct iwl_periodic_scan_complete), 346 RX_HANDLER_NO_SIZE(MATCH_FOUND_NOTIFICATION, 347 iwl_mvm_rx_scan_match_found, 348 RX_HANDLER_SYNC), 349 RX_HANDLER(SCAN_COMPLETE_UMAC, iwl_mvm_rx_umac_scan_complete_notif, 350 RX_HANDLER_ASYNC_LOCKED, struct iwl_umac_scan_complete), 351 RX_HANDLER(SCAN_ITERATION_COMPLETE_UMAC, 352 iwl_mvm_rx_umac_scan_iter_complete_notif, RX_HANDLER_SYNC, 353 struct iwl_umac_scan_iter_complete_notif), 354 355 RX_HANDLER(MISSED_BEACONS_NOTIFICATION, iwl_mvm_rx_missed_beacons_notif, 356 RX_HANDLER_SYNC, struct iwl_missed_beacons_notif), 357 358 RX_HANDLER(REPLY_ERROR, iwl_mvm_rx_fw_error, RX_HANDLER_SYNC, 359 struct iwl_error_resp), 360 RX_HANDLER(PSM_UAPSD_AP_MISBEHAVING_NOTIFICATION, 361 iwl_mvm_power_uapsd_misbehaving_ap_notif, RX_HANDLER_SYNC, 362 struct iwl_uapsd_misbehaving_ap_notif), 363 RX_HANDLER_NO_SIZE(DTS_MEASUREMENT_NOTIFICATION, iwl_mvm_temp_notif, 364 RX_HANDLER_ASYNC_LOCKED), 365 RX_HANDLER_GRP_NO_SIZE(PHY_OPS_GROUP, DTS_MEASUREMENT_NOTIF_WIDE, 366 iwl_mvm_temp_notif, RX_HANDLER_ASYNC_UNLOCKED), 367 RX_HANDLER_GRP(PHY_OPS_GROUP, CT_KILL_NOTIFICATION, 368 iwl_mvm_ct_kill_notif, RX_HANDLER_SYNC, 369 struct ct_kill_notif), 370 371 RX_HANDLER(TDLS_CHANNEL_SWITCH_NOTIFICATION, iwl_mvm_rx_tdls_notif, 372 RX_HANDLER_ASYNC_LOCKED, 373 struct iwl_tdls_channel_switch_notif), 374 RX_HANDLER(MFUART_LOAD_NOTIFICATION, iwl_mvm_rx_mfuart_notif, 375 RX_HANDLER_SYNC, struct iwl_mfuart_load_notif_v1), 376 RX_HANDLER_GRP(LOCATION_GROUP, TOF_RESPONDER_STATS, 377 iwl_mvm_ftm_responder_stats, RX_HANDLER_ASYNC_LOCKED, 378 struct iwl_ftm_responder_stats), 379 380 RX_HANDLER_GRP_NO_SIZE(LOCATION_GROUP, TOF_RANGE_RESPONSE_NOTIF, 381 iwl_mvm_ftm_range_resp, RX_HANDLER_ASYNC_LOCKED), 382 RX_HANDLER_GRP_NO_SIZE(LOCATION_GROUP, TOF_LC_NOTIF, 383 iwl_mvm_ftm_lc_notif, RX_HANDLER_ASYNC_LOCKED), 384 385 RX_HANDLER_GRP(DEBUG_GROUP, MFU_ASSERT_DUMP_NTF, 386 iwl_mvm_mfu_assert_dump_notif, RX_HANDLER_SYNC, 387 struct iwl_mfu_assert_dump_notif), 388 RX_HANDLER_GRP(PROT_OFFLOAD_GROUP, STORED_BEACON_NTF, 389 iwl_mvm_rx_stored_beacon_notif, RX_HANDLER_SYNC, 390 struct iwl_stored_beacon_notif_v2), 391 RX_HANDLER_GRP(DATA_PATH_GROUP, MU_GROUP_MGMT_NOTIF, 392 iwl_mvm_mu_mimo_grp_notif, RX_HANDLER_SYNC, 393 struct iwl_mu_group_mgmt_notif), 394 RX_HANDLER_GRP(DATA_PATH_GROUP, STA_PM_NOTIF, 395 iwl_mvm_sta_pm_notif, RX_HANDLER_SYNC, 396 struct iwl_mvm_pm_state_notification), 397 RX_HANDLER_GRP(MAC_CONF_GROUP, PROBE_RESPONSE_DATA_NOTIF, 398 iwl_mvm_probe_resp_data_notif, 399 RX_HANDLER_ASYNC_LOCKED, 400 struct iwl_probe_resp_data_notif), 401 RX_HANDLER_GRP(MAC_CONF_GROUP, CHANNEL_SWITCH_START_NOTIF, 402 iwl_mvm_channel_switch_start_notif, 403 RX_HANDLER_SYNC, struct iwl_channel_switch_start_notif), 404 RX_HANDLER_GRP(MAC_CONF_GROUP, CHANNEL_SWITCH_ERROR_NOTIF, 405 iwl_mvm_channel_switch_error_notif, 406 RX_HANDLER_ASYNC_UNLOCKED, 407 struct iwl_channel_switch_error_notif), 408 RX_HANDLER_GRP(DATA_PATH_GROUP, MONITOR_NOTIF, 409 iwl_mvm_rx_monitor_notif, RX_HANDLER_ASYNC_LOCKED, 410 struct iwl_datapath_monitor_notif), 411 412 RX_HANDLER_GRP(DATA_PATH_GROUP, THERMAL_DUAL_CHAIN_REQUEST, 413 iwl_mvm_rx_thermal_dual_chain_req, 414 RX_HANDLER_ASYNC_LOCKED, 415 struct iwl_thermal_dual_chain_request), 416 417 RX_HANDLER_GRP(SYSTEM_GROUP, RFI_DEACTIVATE_NOTIF, 418 iwl_rfi_deactivate_notif_handler, RX_HANDLER_ASYNC_UNLOCKED, 419 struct iwl_rfi_deactivate_notif), 420 421 RX_HANDLER_GRP(LEGACY_GROUP, 422 WNM_80211V_TIMING_MEASUREMENT_NOTIFICATION, 423 iwl_mvm_time_sync_msmt_event, RX_HANDLER_SYNC, 424 struct iwl_time_msmt_notify), 425 RX_HANDLER_GRP(LEGACY_GROUP, 426 WNM_80211V_TIMING_MEASUREMENT_CONFIRM_NOTIFICATION, 427 iwl_mvm_time_sync_msmt_confirm_event, RX_HANDLER_SYNC, 428 struct iwl_time_msmt_cfm_notify), 429 }; 430 #undef RX_HANDLER 431 #undef RX_HANDLER_GRP 432 433 /* Please keep this array *SORTED* by hex value. 434 * Access is done through binary search 435 */ 436 static const struct iwl_hcmd_names iwl_mvm_legacy_names[] = { 437 HCMD_NAME(UCODE_ALIVE_NTFY), 438 HCMD_NAME(REPLY_ERROR), 439 HCMD_NAME(ECHO_CMD), 440 HCMD_NAME(INIT_COMPLETE_NOTIF), 441 HCMD_NAME(PHY_CONTEXT_CMD), 442 HCMD_NAME(DBG_CFG), 443 HCMD_NAME(SCAN_CFG_CMD), 444 HCMD_NAME(SCAN_REQ_UMAC), 445 HCMD_NAME(SCAN_ABORT_UMAC), 446 HCMD_NAME(SCAN_COMPLETE_UMAC), 447 HCMD_NAME(BA_WINDOW_STATUS_NOTIFICATION_ID), 448 HCMD_NAME(ADD_STA_KEY), 449 HCMD_NAME(ADD_STA), 450 HCMD_NAME(REMOVE_STA), 451 HCMD_NAME(TX_CMD), 452 HCMD_NAME(SCD_QUEUE_CFG), 453 HCMD_NAME(TXPATH_FLUSH), 454 HCMD_NAME(MGMT_MCAST_KEY), 455 HCMD_NAME(WEP_KEY), 456 HCMD_NAME(SHARED_MEM_CFG), 457 HCMD_NAME(TDLS_CHANNEL_SWITCH_CMD), 458 HCMD_NAME(MAC_CONTEXT_CMD), 459 HCMD_NAME(TIME_EVENT_CMD), 460 HCMD_NAME(TIME_EVENT_NOTIFICATION), 461 HCMD_NAME(BINDING_CONTEXT_CMD), 462 HCMD_NAME(TIME_QUOTA_CMD), 463 HCMD_NAME(NON_QOS_TX_COUNTER_CMD), 464 HCMD_NAME(LEDS_CMD), 465 HCMD_NAME(LQ_CMD), 466 HCMD_NAME(FW_PAGING_BLOCK_CMD), 467 HCMD_NAME(SCAN_OFFLOAD_REQUEST_CMD), 468 HCMD_NAME(SCAN_OFFLOAD_ABORT_CMD), 469 HCMD_NAME(HOT_SPOT_CMD), 470 HCMD_NAME(SCAN_OFFLOAD_PROFILES_QUERY_CMD), 471 HCMD_NAME(BT_COEX_UPDATE_REDUCED_TXP), 472 HCMD_NAME(BT_COEX_CI), 473 HCMD_NAME(WNM_80211V_TIMING_MEASUREMENT_NOTIFICATION), 474 HCMD_NAME(WNM_80211V_TIMING_MEASUREMENT_CONFIRM_NOTIFICATION), 475 HCMD_NAME(PHY_CONFIGURATION_CMD), 476 HCMD_NAME(CALIB_RES_NOTIF_PHY_DB), 477 HCMD_NAME(PHY_DB_CMD), 478 HCMD_NAME(SCAN_OFFLOAD_COMPLETE), 479 HCMD_NAME(SCAN_OFFLOAD_UPDATE_PROFILES_CMD), 480 HCMD_NAME(POWER_TABLE_CMD), 481 HCMD_NAME(PSM_UAPSD_AP_MISBEHAVING_NOTIFICATION), 482 HCMD_NAME(REPLY_THERMAL_MNG_BACKOFF), 483 HCMD_NAME(NVM_ACCESS_CMD), 484 HCMD_NAME(BEACON_NOTIFICATION), 485 HCMD_NAME(BEACON_TEMPLATE_CMD), 486 HCMD_NAME(TX_ANT_CONFIGURATION_CMD), 487 HCMD_NAME(BT_CONFIG), 488 HCMD_NAME(STATISTICS_CMD), 489 HCMD_NAME(STATISTICS_NOTIFICATION), 490 HCMD_NAME(EOSP_NOTIFICATION), 491 HCMD_NAME(REDUCE_TX_POWER_CMD), 492 HCMD_NAME(MISSED_BEACONS_NOTIFICATION), 493 HCMD_NAME(TDLS_CONFIG_CMD), 494 HCMD_NAME(MAC_PM_POWER_TABLE), 495 HCMD_NAME(TDLS_CHANNEL_SWITCH_NOTIFICATION), 496 HCMD_NAME(MFUART_LOAD_NOTIFICATION), 497 HCMD_NAME(RSS_CONFIG_CMD), 498 HCMD_NAME(SCAN_ITERATION_COMPLETE_UMAC), 499 HCMD_NAME(REPLY_RX_PHY_CMD), 500 HCMD_NAME(REPLY_RX_MPDU_CMD), 501 HCMD_NAME(BAR_FRAME_RELEASE), 502 HCMD_NAME(FRAME_RELEASE), 503 HCMD_NAME(BA_NOTIF), 504 HCMD_NAME(MCC_UPDATE_CMD), 505 HCMD_NAME(MCC_CHUB_UPDATE_CMD), 506 HCMD_NAME(MARKER_CMD), 507 HCMD_NAME(BT_PROFILE_NOTIFICATION), 508 HCMD_NAME(MCAST_FILTER_CMD), 509 HCMD_NAME(REPLY_SF_CFG_CMD), 510 HCMD_NAME(REPLY_BEACON_FILTERING_CMD), 511 HCMD_NAME(D3_CONFIG_CMD), 512 HCMD_NAME(PROT_OFFLOAD_CONFIG_CMD), 513 HCMD_NAME(MATCH_FOUND_NOTIFICATION), 514 HCMD_NAME(DTS_MEASUREMENT_NOTIFICATION), 515 HCMD_NAME(WOWLAN_PATTERNS), 516 HCMD_NAME(WOWLAN_CONFIGURATION), 517 HCMD_NAME(WOWLAN_TSC_RSC_PARAM), 518 HCMD_NAME(WOWLAN_TKIP_PARAM), 519 HCMD_NAME(WOWLAN_KEK_KCK_MATERIAL), 520 HCMD_NAME(WOWLAN_GET_STATUSES), 521 HCMD_NAME(SCAN_ITERATION_COMPLETE), 522 HCMD_NAME(D0I3_END_CMD), 523 HCMD_NAME(LTR_CONFIG), 524 HCMD_NAME(LDBG_CONFIG_CMD), 525 }; 526 527 /* Please keep this array *SORTED* by hex value. 528 * Access is done through binary search 529 */ 530 static const struct iwl_hcmd_names iwl_mvm_system_names[] = { 531 HCMD_NAME(SHARED_MEM_CFG_CMD), 532 HCMD_NAME(INIT_EXTENDED_CFG_CMD), 533 HCMD_NAME(FW_ERROR_RECOVERY_CMD), 534 HCMD_NAME(RFI_CONFIG_CMD), 535 HCMD_NAME(RFI_GET_FREQ_TABLE_CMD), 536 HCMD_NAME(SYSTEM_FEATURES_CONTROL_CMD), 537 HCMD_NAME(RFI_DEACTIVATE_NOTIF), 538 }; 539 540 /* Please keep this array *SORTED* by hex value. 541 * Access is done through binary search 542 */ 543 static const struct iwl_hcmd_names iwl_mvm_mac_conf_names[] = { 544 HCMD_NAME(CHANNEL_SWITCH_TIME_EVENT_CMD), 545 HCMD_NAME(SESSION_PROTECTION_CMD), 546 HCMD_NAME(MAC_CONFIG_CMD), 547 HCMD_NAME(LINK_CONFIG_CMD), 548 HCMD_NAME(STA_CONFIG_CMD), 549 HCMD_NAME(AUX_STA_CMD), 550 HCMD_NAME(STA_REMOVE_CMD), 551 HCMD_NAME(STA_DISABLE_TX_CMD), 552 HCMD_NAME(SESSION_PROTECTION_NOTIF), 553 HCMD_NAME(CHANNEL_SWITCH_START_NOTIF), 554 }; 555 556 /* Please keep this array *SORTED* by hex value. 557 * Access is done through binary search 558 */ 559 static const struct iwl_hcmd_names iwl_mvm_phy_names[] = { 560 HCMD_NAME(CMD_DTS_MEASUREMENT_TRIGGER_WIDE), 561 HCMD_NAME(CTDP_CONFIG_CMD), 562 HCMD_NAME(TEMP_REPORTING_THRESHOLDS_CMD), 563 HCMD_NAME(PER_CHAIN_LIMIT_OFFSET_CMD), 564 HCMD_NAME(CT_KILL_NOTIFICATION), 565 HCMD_NAME(DTS_MEASUREMENT_NOTIF_WIDE), 566 }; 567 568 /* Please keep this array *SORTED* by hex value. 569 * Access is done through binary search 570 */ 571 static const struct iwl_hcmd_names iwl_mvm_data_path_names[] = { 572 HCMD_NAME(DQA_ENABLE_CMD), 573 HCMD_NAME(UPDATE_MU_GROUPS_CMD), 574 HCMD_NAME(TRIGGER_RX_QUEUES_NOTIF_CMD), 575 HCMD_NAME(STA_HE_CTXT_CMD), 576 HCMD_NAME(RLC_CONFIG_CMD), 577 HCMD_NAME(RFH_QUEUE_CONFIG_CMD), 578 HCMD_NAME(TLC_MNG_CONFIG_CMD), 579 HCMD_NAME(CHEST_COLLECTOR_FILTER_CONFIG_CMD), 580 HCMD_NAME(SCD_QUEUE_CONFIG_CMD), 581 HCMD_NAME(SEC_KEY_CMD), 582 HCMD_NAME(MONITOR_NOTIF), 583 HCMD_NAME(THERMAL_DUAL_CHAIN_REQUEST), 584 HCMD_NAME(STA_PM_NOTIF), 585 HCMD_NAME(MU_GROUP_MGMT_NOTIF), 586 HCMD_NAME(RX_QUEUES_NOTIFICATION), 587 }; 588 589 /* Please keep this array *SORTED* by hex value. 590 * Access is done through binary search 591 */ 592 static const struct iwl_hcmd_names iwl_mvm_scan_names[] = { 593 HCMD_NAME(OFFLOAD_MATCH_INFO_NOTIF), 594 }; 595 596 /* Please keep this array *SORTED* by hex value. 597 * Access is done through binary search 598 */ 599 static const struct iwl_hcmd_names iwl_mvm_location_names[] = { 600 HCMD_NAME(TOF_RANGE_REQ_CMD), 601 HCMD_NAME(TOF_CONFIG_CMD), 602 HCMD_NAME(TOF_RANGE_ABORT_CMD), 603 HCMD_NAME(TOF_RANGE_REQ_EXT_CMD), 604 HCMD_NAME(TOF_RESPONDER_CONFIG_CMD), 605 HCMD_NAME(TOF_RESPONDER_DYN_CONFIG_CMD), 606 HCMD_NAME(TOF_LC_NOTIF), 607 HCMD_NAME(TOF_RESPONDER_STATS), 608 HCMD_NAME(TOF_MCSI_DEBUG_NOTIF), 609 HCMD_NAME(TOF_RANGE_RESPONSE_NOTIF), 610 }; 611 612 /* Please keep this array *SORTED* by hex value. 613 * Access is done through binary search 614 */ 615 static const struct iwl_hcmd_names iwl_mvm_prot_offload_names[] = { 616 HCMD_NAME(WOWLAN_WAKE_PKT_NOTIFICATION), 617 HCMD_NAME(WOWLAN_INFO_NOTIFICATION), 618 HCMD_NAME(D3_END_NOTIFICATION), 619 HCMD_NAME(STORED_BEACON_NTF), 620 }; 621 622 /* Please keep this array *SORTED* by hex value. 623 * Access is done through binary search 624 */ 625 static const struct iwl_hcmd_names iwl_mvm_regulatory_and_nvm_names[] = { 626 HCMD_NAME(NVM_ACCESS_COMPLETE), 627 HCMD_NAME(NVM_GET_INFO), 628 HCMD_NAME(TAS_CONFIG), 629 }; 630 631 static const struct iwl_hcmd_arr iwl_mvm_groups[] = { 632 [LEGACY_GROUP] = HCMD_ARR(iwl_mvm_legacy_names), 633 [LONG_GROUP] = HCMD_ARR(iwl_mvm_legacy_names), 634 [SYSTEM_GROUP] = HCMD_ARR(iwl_mvm_system_names), 635 [MAC_CONF_GROUP] = HCMD_ARR(iwl_mvm_mac_conf_names), 636 [PHY_OPS_GROUP] = HCMD_ARR(iwl_mvm_phy_names), 637 [DATA_PATH_GROUP] = HCMD_ARR(iwl_mvm_data_path_names), 638 [SCAN_GROUP] = HCMD_ARR(iwl_mvm_scan_names), 639 [LOCATION_GROUP] = HCMD_ARR(iwl_mvm_location_names), 640 [PROT_OFFLOAD_GROUP] = HCMD_ARR(iwl_mvm_prot_offload_names), 641 [REGULATORY_AND_NVM_GROUP] = 642 HCMD_ARR(iwl_mvm_regulatory_and_nvm_names), 643 }; 644 645 /* this forward declaration can avoid to export the function */ 646 static void iwl_mvm_async_handlers_wk(struct work_struct *wk); 647 648 static u32 iwl_mvm_min_backoff(struct iwl_mvm *mvm) 649 { 650 const struct iwl_pwr_tx_backoff *backoff = mvm->cfg->pwr_tx_backoffs; 651 u64 dflt_pwr_limit; 652 653 if (!backoff) 654 return 0; 655 656 dflt_pwr_limit = iwl_acpi_get_pwr_limit(mvm->dev); 657 658 while (backoff->pwr) { 659 if (dflt_pwr_limit >= backoff->pwr) 660 return backoff->backoff; 661 662 backoff++; 663 } 664 665 return 0; 666 } 667 668 static void iwl_mvm_tx_unblock_dwork(struct work_struct *work) 669 { 670 struct iwl_mvm *mvm = 671 container_of(work, struct iwl_mvm, cs_tx_unblock_dwork.work); 672 struct ieee80211_vif *tx_blocked_vif; 673 struct iwl_mvm_vif *mvmvif; 674 675 mutex_lock(&mvm->mutex); 676 677 tx_blocked_vif = 678 rcu_dereference_protected(mvm->csa_tx_blocked_vif, 679 lockdep_is_held(&mvm->mutex)); 680 681 if (!tx_blocked_vif) 682 goto unlock; 683 684 mvmvif = iwl_mvm_vif_from_mac80211(tx_blocked_vif); 685 iwl_mvm_modify_all_sta_disable_tx(mvm, mvmvif, false); 686 RCU_INIT_POINTER(mvm->csa_tx_blocked_vif, NULL); 687 unlock: 688 mutex_unlock(&mvm->mutex); 689 } 690 691 static void iwl_mvm_fwrt_dump_start(void *ctx) 692 { 693 struct iwl_mvm *mvm = ctx; 694 695 mutex_lock(&mvm->mutex); 696 } 697 698 static void iwl_mvm_fwrt_dump_end(void *ctx) 699 { 700 struct iwl_mvm *mvm = ctx; 701 702 mutex_unlock(&mvm->mutex); 703 } 704 705 static int iwl_mvm_fwrt_send_hcmd(void *ctx, struct iwl_host_cmd *host_cmd) 706 { 707 struct iwl_mvm *mvm = (struct iwl_mvm *)ctx; 708 int ret; 709 710 mutex_lock(&mvm->mutex); 711 ret = iwl_mvm_send_cmd(mvm, host_cmd); 712 mutex_unlock(&mvm->mutex); 713 714 return ret; 715 } 716 717 static bool iwl_mvm_d3_debug_enable(void *ctx) 718 { 719 return IWL_MVM_D3_DEBUG; 720 } 721 722 static const struct iwl_fw_runtime_ops iwl_mvm_fwrt_ops = { 723 .dump_start = iwl_mvm_fwrt_dump_start, 724 .dump_end = iwl_mvm_fwrt_dump_end, 725 .send_hcmd = iwl_mvm_fwrt_send_hcmd, 726 .d3_debug_enable = iwl_mvm_d3_debug_enable, 727 }; 728 729 static int iwl_mvm_start_get_nvm(struct iwl_mvm *mvm) 730 { 731 struct iwl_trans *trans = mvm->trans; 732 int ret; 733 734 if (trans->csme_own) { 735 if (WARN(!mvm->mei_registered, 736 "csme is owner, but we aren't registered to iwlmei\n")) 737 goto get_nvm_from_fw; 738 739 mvm->mei_nvm_data = iwl_mei_get_nvm(); 740 if (mvm->mei_nvm_data) { 741 /* 742 * mvm->mei_nvm_data is set and because of that, 743 * we'll load the NVM from the FW when we'll get 744 * ownership. 745 */ 746 mvm->nvm_data = 747 iwl_parse_mei_nvm_data(trans, trans->cfg, 748 mvm->mei_nvm_data, mvm->fw); 749 return 0; 750 } 751 752 IWL_ERR(mvm, 753 "Got a NULL NVM from CSME, trying to get it from the device\n"); 754 } 755 756 get_nvm_from_fw: 757 rtnl_lock(); 758 wiphy_lock(mvm->hw->wiphy); 759 mutex_lock(&mvm->mutex); 760 761 ret = iwl_trans_start_hw(mvm->trans); 762 if (ret) { 763 mutex_unlock(&mvm->mutex); 764 wiphy_unlock(mvm->hw->wiphy); 765 rtnl_unlock(); 766 return ret; 767 } 768 769 ret = iwl_run_init_mvm_ucode(mvm); 770 if (ret && ret != -ERFKILL) 771 iwl_fw_dbg_error_collect(&mvm->fwrt, FW_DBG_TRIGGER_DRIVER); 772 if (!ret && iwl_mvm_is_lar_supported(mvm)) { 773 mvm->hw->wiphy->regulatory_flags |= REGULATORY_WIPHY_SELF_MANAGED; 774 ret = iwl_mvm_init_mcc(mvm); 775 } 776 777 if (!iwlmvm_mod_params.init_dbg || !ret) 778 iwl_mvm_stop_device(mvm); 779 780 mutex_unlock(&mvm->mutex); 781 wiphy_unlock(mvm->hw->wiphy); 782 rtnl_unlock(); 783 784 if (ret) 785 IWL_ERR(mvm, "Failed to run INIT ucode: %d\n", ret); 786 787 return ret; 788 } 789 790 static int iwl_mvm_start_post_nvm(struct iwl_mvm *mvm) 791 { 792 struct iwl_mvm_csme_conn_info *csme_conn_info __maybe_unused; 793 int ret; 794 795 iwl_mvm_toggle_tx_ant(mvm, &mvm->mgmt_last_antenna_idx); 796 797 ret = iwl_mvm_mac_setup_register(mvm); 798 if (ret) 799 return ret; 800 801 mvm->hw_registered = true; 802 803 iwl_mvm_dbgfs_register(mvm); 804 805 wiphy_rfkill_set_hw_state_reason(mvm->hw->wiphy, 806 mvm->mei_rfkill_blocked, 807 RFKILL_HARD_BLOCK_NOT_OWNER); 808 809 iwl_mvm_mei_set_sw_rfkill_state(mvm); 810 811 return 0; 812 } 813 814 struct iwl_mvm_frob_txf_data { 815 u8 *buf; 816 size_t buflen; 817 }; 818 819 static void iwl_mvm_frob_txf_key_iter(struct ieee80211_hw *hw, 820 struct ieee80211_vif *vif, 821 struct ieee80211_sta *sta, 822 struct ieee80211_key_conf *key, 823 void *data) 824 { 825 struct iwl_mvm_frob_txf_data *txf = data; 826 u8 keylen, match, matchend; 827 u8 *keydata; 828 size_t i; 829 830 switch (key->cipher) { 831 case WLAN_CIPHER_SUITE_CCMP: 832 keydata = key->key; 833 keylen = key->keylen; 834 break; 835 case WLAN_CIPHER_SUITE_WEP40: 836 case WLAN_CIPHER_SUITE_WEP104: 837 case WLAN_CIPHER_SUITE_TKIP: 838 /* 839 * WEP has short keys which might show up in the payload, 840 * and then you can deduce the key, so in this case just 841 * remove all FIFO data. 842 * For TKIP, we don't know the phase 2 keys here, so same. 843 */ 844 memset(txf->buf, 0xBB, txf->buflen); 845 return; 846 default: 847 return; 848 } 849 850 /* scan for key material and clear it out */ 851 match = 0; 852 for (i = 0; i < txf->buflen; i++) { 853 if (txf->buf[i] != keydata[match]) { 854 match = 0; 855 continue; 856 } 857 match++; 858 if (match == keylen) { 859 memset(txf->buf + i - keylen, 0xAA, keylen); 860 match = 0; 861 } 862 } 863 864 /* we're dealing with a FIFO, so check wrapped around data */ 865 matchend = match; 866 for (i = 0; match && i < keylen - match; i++) { 867 if (txf->buf[i] != keydata[match]) 868 break; 869 match++; 870 if (match == keylen) { 871 memset(txf->buf, 0xAA, i + 1); 872 memset(txf->buf + txf->buflen - matchend, 0xAA, 873 matchend); 874 break; 875 } 876 } 877 } 878 879 static void iwl_mvm_frob_txf(void *ctx, void *buf, size_t buflen) 880 { 881 struct iwl_mvm_frob_txf_data txf = { 882 .buf = buf, 883 .buflen = buflen, 884 }; 885 struct iwl_mvm *mvm = ctx; 886 887 /* embedded key material exists only on old API */ 888 if (iwl_mvm_has_new_tx_api(mvm)) 889 return; 890 891 rcu_read_lock(); 892 ieee80211_iter_keys_rcu(mvm->hw, NULL, iwl_mvm_frob_txf_key_iter, &txf); 893 rcu_read_unlock(); 894 } 895 896 static void iwl_mvm_frob_hcmd(void *ctx, void *hcmd, size_t len) 897 { 898 /* we only use wide headers for commands */ 899 struct iwl_cmd_header_wide *hdr = hcmd; 900 unsigned int frob_start = sizeof(*hdr), frob_end = 0; 901 902 if (len < sizeof(hdr)) 903 return; 904 905 /* all the commands we care about are in LONG_GROUP */ 906 if (hdr->group_id != LONG_GROUP) 907 return; 908 909 switch (hdr->cmd) { 910 case WEP_KEY: 911 case WOWLAN_TKIP_PARAM: 912 case WOWLAN_KEK_KCK_MATERIAL: 913 case ADD_STA_KEY: 914 /* 915 * blank out everything here, easier than dealing 916 * with the various versions of the command 917 */ 918 frob_end = INT_MAX; 919 break; 920 case MGMT_MCAST_KEY: 921 frob_start = offsetof(struct iwl_mvm_mgmt_mcast_key_cmd, igtk); 922 BUILD_BUG_ON(offsetof(struct iwl_mvm_mgmt_mcast_key_cmd, igtk) != 923 offsetof(struct iwl_mvm_mgmt_mcast_key_cmd_v1, igtk)); 924 925 frob_end = offsetofend(struct iwl_mvm_mgmt_mcast_key_cmd, igtk); 926 BUILD_BUG_ON(offsetof(struct iwl_mvm_mgmt_mcast_key_cmd, igtk) < 927 offsetof(struct iwl_mvm_mgmt_mcast_key_cmd_v1, igtk)); 928 break; 929 } 930 931 if (frob_start >= frob_end) 932 return; 933 934 if (frob_end > len) 935 frob_end = len; 936 937 memset((u8 *)hcmd + frob_start, 0xAA, frob_end - frob_start); 938 } 939 940 static void iwl_mvm_frob_mem(void *ctx, u32 mem_addr, void *mem, size_t buflen) 941 { 942 const struct iwl_dump_exclude *excl; 943 struct iwl_mvm *mvm = ctx; 944 int i; 945 946 switch (mvm->fwrt.cur_fw_img) { 947 case IWL_UCODE_INIT: 948 default: 949 /* not relevant */ 950 return; 951 case IWL_UCODE_REGULAR: 952 case IWL_UCODE_REGULAR_USNIFFER: 953 excl = mvm->fw->dump_excl; 954 break; 955 case IWL_UCODE_WOWLAN: 956 excl = mvm->fw->dump_excl_wowlan; 957 break; 958 } 959 960 BUILD_BUG_ON(sizeof(mvm->fw->dump_excl) != 961 sizeof(mvm->fw->dump_excl_wowlan)); 962 963 for (i = 0; i < ARRAY_SIZE(mvm->fw->dump_excl); i++) { 964 u32 start, end; 965 966 if (!excl[i].addr || !excl[i].size) 967 continue; 968 969 start = excl[i].addr; 970 end = start + excl[i].size; 971 972 if (end <= mem_addr || start >= mem_addr + buflen) 973 continue; 974 975 if (start < mem_addr) 976 start = mem_addr; 977 978 if (end > mem_addr + buflen) 979 end = mem_addr + buflen; 980 981 memset((u8 *)mem + start - mem_addr, 0xAA, end - start); 982 } 983 } 984 985 static const struct iwl_dump_sanitize_ops iwl_mvm_sanitize_ops = { 986 .frob_txf = iwl_mvm_frob_txf, 987 .frob_hcmd = iwl_mvm_frob_hcmd, 988 .frob_mem = iwl_mvm_frob_mem, 989 }; 990 991 static void iwl_mvm_me_conn_status(void *priv, const struct iwl_mei_conn_info *conn_info) 992 { 993 struct iwl_mvm *mvm = priv; 994 struct iwl_mvm_csme_conn_info *prev_conn_info, *curr_conn_info; 995 996 /* 997 * This is protected by the guarantee that this function will not be 998 * called twice on two different threads 999 */ 1000 prev_conn_info = rcu_dereference_protected(mvm->csme_conn_info, true); 1001 1002 curr_conn_info = kzalloc(sizeof(*curr_conn_info), GFP_KERNEL); 1003 if (!curr_conn_info) 1004 return; 1005 1006 curr_conn_info->conn_info = *conn_info; 1007 1008 rcu_assign_pointer(mvm->csme_conn_info, curr_conn_info); 1009 1010 if (prev_conn_info) 1011 kfree_rcu(prev_conn_info, rcu_head); 1012 } 1013 1014 static void iwl_mvm_mei_rfkill(void *priv, bool blocked, 1015 bool csme_taking_ownership) 1016 { 1017 struct iwl_mvm *mvm = priv; 1018 1019 if (blocked && !csme_taking_ownership) 1020 return; 1021 1022 mvm->mei_rfkill_blocked = blocked; 1023 if (!mvm->hw_registered) 1024 return; 1025 1026 wiphy_rfkill_set_hw_state_reason(mvm->hw->wiphy, 1027 mvm->mei_rfkill_blocked, 1028 RFKILL_HARD_BLOCK_NOT_OWNER); 1029 } 1030 1031 static void iwl_mvm_mei_roaming_forbidden(void *priv, bool forbidden) 1032 { 1033 struct iwl_mvm *mvm = priv; 1034 1035 if (!mvm->hw_registered || !mvm->csme_vif) 1036 return; 1037 1038 iwl_mvm_send_roaming_forbidden_event(mvm, mvm->csme_vif, forbidden); 1039 } 1040 1041 static void iwl_mvm_sap_connected_wk(struct work_struct *wk) 1042 { 1043 struct iwl_mvm *mvm = 1044 container_of(wk, struct iwl_mvm, sap_connected_wk); 1045 int ret; 1046 1047 ret = iwl_mvm_start_get_nvm(mvm); 1048 if (ret) 1049 goto out_free; 1050 1051 ret = iwl_mvm_start_post_nvm(mvm); 1052 if (ret) 1053 goto out_free; 1054 1055 return; 1056 1057 out_free: 1058 IWL_ERR(mvm, "Couldn't get started...\n"); 1059 iwl_mei_start_unregister(); 1060 iwl_mei_unregister_complete(); 1061 iwl_fw_flush_dumps(&mvm->fwrt); 1062 iwl_mvm_thermal_exit(mvm); 1063 iwl_fw_runtime_free(&mvm->fwrt); 1064 iwl_phy_db_free(mvm->phy_db); 1065 kfree(mvm->scan_cmd); 1066 iwl_trans_op_mode_leave(mvm->trans); 1067 kfree(mvm->nvm_data); 1068 kfree(mvm->mei_nvm_data); 1069 1070 ieee80211_free_hw(mvm->hw); 1071 } 1072 1073 static void iwl_mvm_mei_sap_connected(void *priv) 1074 { 1075 struct iwl_mvm *mvm = priv; 1076 1077 if (!mvm->hw_registered) 1078 schedule_work(&mvm->sap_connected_wk); 1079 } 1080 1081 static void iwl_mvm_mei_nic_stolen(void *priv) 1082 { 1083 struct iwl_mvm *mvm = priv; 1084 1085 rtnl_lock(); 1086 cfg80211_shutdown_all_interfaces(mvm->hw->wiphy); 1087 rtnl_unlock(); 1088 } 1089 1090 static const struct iwl_mei_ops mei_ops = { 1091 .me_conn_status = iwl_mvm_me_conn_status, 1092 .rfkill = iwl_mvm_mei_rfkill, 1093 .roaming_forbidden = iwl_mvm_mei_roaming_forbidden, 1094 .sap_connected = iwl_mvm_mei_sap_connected, 1095 .nic_stolen = iwl_mvm_mei_nic_stolen, 1096 }; 1097 1098 static struct iwl_op_mode * 1099 iwl_op_mode_mvm_start(struct iwl_trans *trans, const struct iwl_cfg *cfg, 1100 const struct iwl_fw *fw, struct dentry *dbgfs_dir) 1101 { 1102 struct ieee80211_hw *hw; 1103 struct iwl_op_mode *op_mode; 1104 struct iwl_mvm *mvm; 1105 struct iwl_trans_config trans_cfg = {}; 1106 static const u8 no_reclaim_cmds[] = { 1107 TX_CMD, 1108 }; 1109 u32 max_agg; 1110 size_t scan_size; 1111 u32 min_backoff; 1112 struct iwl_mvm_csme_conn_info *csme_conn_info __maybe_unused; 1113 1114 /* 1115 * We use IWL_MVM_STATION_COUNT_MAX to check the validity of the station 1116 * index all over the driver - check that its value corresponds to the 1117 * array size. 1118 */ 1119 BUILD_BUG_ON(ARRAY_SIZE(mvm->fw_id_to_mac_id) != 1120 IWL_MVM_STATION_COUNT_MAX); 1121 1122 /******************************** 1123 * 1. Allocating and configuring HW data 1124 ********************************/ 1125 hw = ieee80211_alloc_hw(sizeof(struct iwl_op_mode) + 1126 sizeof(struct iwl_mvm), 1127 iwl_mvm_has_mld_api(fw) ? &iwl_mvm_mld_hw_ops : 1128 &iwl_mvm_hw_ops); 1129 if (!hw) 1130 return NULL; 1131 1132 if (trans->trans_cfg->device_family >= IWL_DEVICE_FAMILY_BZ) 1133 max_agg = IEEE80211_MAX_AMPDU_BUF_EHT; 1134 else 1135 max_agg = IEEE80211_MAX_AMPDU_BUF_HE; 1136 1137 hw->max_rx_aggregation_subframes = max_agg; 1138 1139 if (cfg->max_tx_agg_size) 1140 hw->max_tx_aggregation_subframes = cfg->max_tx_agg_size; 1141 else 1142 hw->max_tx_aggregation_subframes = max_agg; 1143 1144 op_mode = hw->priv; 1145 1146 mvm = IWL_OP_MODE_GET_MVM(op_mode); 1147 mvm->dev = trans->dev; 1148 mvm->trans = trans; 1149 mvm->cfg = cfg; 1150 mvm->fw = fw; 1151 mvm->hw = hw; 1152 1153 iwl_fw_runtime_init(&mvm->fwrt, trans, fw, &iwl_mvm_fwrt_ops, mvm, 1154 &iwl_mvm_sanitize_ops, mvm, dbgfs_dir); 1155 1156 iwl_mvm_get_acpi_tables(mvm); 1157 iwl_uefi_get_sgom_table(trans, &mvm->fwrt); 1158 iwl_uefi_get_step_table(trans); 1159 1160 mvm->init_status = 0; 1161 1162 if (iwl_mvm_has_new_rx_api(mvm)) { 1163 op_mode->ops = &iwl_mvm_ops_mq; 1164 trans->rx_mpdu_cmd_hdr_size = 1165 (trans->trans_cfg->device_family >= 1166 IWL_DEVICE_FAMILY_AX210) ? 1167 sizeof(struct iwl_rx_mpdu_desc) : 1168 IWL_RX_DESC_SIZE_V1; 1169 } else { 1170 op_mode->ops = &iwl_mvm_ops; 1171 trans->rx_mpdu_cmd_hdr_size = 1172 sizeof(struct iwl_rx_mpdu_res_start); 1173 1174 if (WARN_ON(trans->num_rx_queues > 1)) 1175 goto out_free; 1176 } 1177 1178 mvm->fw_restart = iwlwifi_mod_params.fw_restart ? -1 : 0; 1179 1180 if (iwl_mvm_has_new_tx_api(mvm)) { 1181 /* 1182 * If we have the new TX/queue allocation API initialize them 1183 * all to invalid numbers. We'll rewrite the ones that we need 1184 * later, but that doesn't happen for all of them all of the 1185 * time (e.g. P2P Device is optional), and if a dynamic queue 1186 * ends up getting number 2 (IWL_MVM_DQA_P2P_DEVICE_QUEUE) then 1187 * iwl_mvm_is_static_queue() erroneously returns true, and we 1188 * might have things getting stuck. 1189 */ 1190 mvm->aux_queue = IWL_MVM_INVALID_QUEUE; 1191 mvm->snif_queue = IWL_MVM_INVALID_QUEUE; 1192 mvm->probe_queue = IWL_MVM_INVALID_QUEUE; 1193 mvm->p2p_dev_queue = IWL_MVM_INVALID_QUEUE; 1194 } else { 1195 mvm->aux_queue = IWL_MVM_DQA_AUX_QUEUE; 1196 mvm->snif_queue = IWL_MVM_DQA_INJECT_MONITOR_QUEUE; 1197 mvm->probe_queue = IWL_MVM_DQA_AP_PROBE_RESP_QUEUE; 1198 mvm->p2p_dev_queue = IWL_MVM_DQA_P2P_DEVICE_QUEUE; 1199 } 1200 1201 mvm->sf_state = SF_UNINIT; 1202 if (iwl_mvm_has_unified_ucode(mvm)) 1203 iwl_fw_set_current_image(&mvm->fwrt, IWL_UCODE_REGULAR); 1204 else 1205 iwl_fw_set_current_image(&mvm->fwrt, IWL_UCODE_INIT); 1206 mvm->drop_bcn_ap_mode = true; 1207 1208 mutex_init(&mvm->mutex); 1209 spin_lock_init(&mvm->async_handlers_lock); 1210 INIT_LIST_HEAD(&mvm->time_event_list); 1211 INIT_LIST_HEAD(&mvm->aux_roc_te_list); 1212 INIT_LIST_HEAD(&mvm->async_handlers_list); 1213 spin_lock_init(&mvm->time_event_lock); 1214 INIT_LIST_HEAD(&mvm->ftm_initiator.loc_list); 1215 INIT_LIST_HEAD(&mvm->ftm_initiator.pasn_list); 1216 INIT_LIST_HEAD(&mvm->resp_pasn_list); 1217 1218 INIT_WORK(&mvm->async_handlers_wk, iwl_mvm_async_handlers_wk); 1219 INIT_WORK(&mvm->roc_done_wk, iwl_mvm_roc_done_wk); 1220 INIT_WORK(&mvm->sap_connected_wk, iwl_mvm_sap_connected_wk); 1221 INIT_DELAYED_WORK(&mvm->tdls_cs.dwork, iwl_mvm_tdls_ch_switch_work); 1222 INIT_DELAYED_WORK(&mvm->scan_timeout_dwork, iwl_mvm_scan_timeout_wk); 1223 INIT_WORK(&mvm->add_stream_wk, iwl_mvm_add_new_dqa_stream_wk); 1224 INIT_LIST_HEAD(&mvm->add_stream_txqs); 1225 spin_lock_init(&mvm->add_stream_lock); 1226 1227 init_waitqueue_head(&mvm->rx_sync_waitq); 1228 1229 mvm->queue_sync_state = 0; 1230 1231 SET_IEEE80211_DEV(mvm->hw, mvm->trans->dev); 1232 1233 spin_lock_init(&mvm->tcm.lock); 1234 INIT_DELAYED_WORK(&mvm->tcm.work, iwl_mvm_tcm_work); 1235 mvm->tcm.ts = jiffies; 1236 mvm->tcm.ll_ts = jiffies; 1237 mvm->tcm.uapsd_nonagg_ts = jiffies; 1238 1239 INIT_DELAYED_WORK(&mvm->cs_tx_unblock_dwork, iwl_mvm_tx_unblock_dwork); 1240 1241 mvm->cmd_ver.range_resp = 1242 iwl_fw_lookup_notif_ver(mvm->fw, LOCATION_GROUP, 1243 TOF_RANGE_RESPONSE_NOTIF, 5); 1244 /* we only support up to version 9 */ 1245 if (WARN_ON_ONCE(mvm->cmd_ver.range_resp > 9)) 1246 goto out_free; 1247 1248 /* 1249 * Populate the state variables that the transport layer needs 1250 * to know about. 1251 */ 1252 trans_cfg.op_mode = op_mode; 1253 trans_cfg.no_reclaim_cmds = no_reclaim_cmds; 1254 trans_cfg.n_no_reclaim_cmds = ARRAY_SIZE(no_reclaim_cmds); 1255 1256 switch (iwlwifi_mod_params.amsdu_size) { 1257 case IWL_AMSDU_DEF: 1258 trans_cfg.rx_buf_size = IWL_AMSDU_4K; 1259 break; 1260 case IWL_AMSDU_4K: 1261 trans_cfg.rx_buf_size = IWL_AMSDU_4K; 1262 break; 1263 case IWL_AMSDU_8K: 1264 trans_cfg.rx_buf_size = IWL_AMSDU_8K; 1265 break; 1266 case IWL_AMSDU_12K: 1267 trans_cfg.rx_buf_size = IWL_AMSDU_12K; 1268 break; 1269 default: 1270 pr_err("%s: Unsupported amsdu_size: %d\n", KBUILD_MODNAME, 1271 iwlwifi_mod_params.amsdu_size); 1272 trans_cfg.rx_buf_size = IWL_AMSDU_4K; 1273 } 1274 1275 trans->wide_cmd_header = true; 1276 trans_cfg.bc_table_dword = 1277 mvm->trans->trans_cfg->device_family < IWL_DEVICE_FAMILY_AX210; 1278 1279 trans_cfg.command_groups = iwl_mvm_groups; 1280 trans_cfg.command_groups_size = ARRAY_SIZE(iwl_mvm_groups); 1281 1282 trans_cfg.cmd_queue = IWL_MVM_DQA_CMD_QUEUE; 1283 trans_cfg.cmd_fifo = IWL_MVM_TX_FIFO_CMD; 1284 trans_cfg.scd_set_active = true; 1285 1286 trans_cfg.cb_data_offs = offsetof(struct ieee80211_tx_info, 1287 driver_data[2]); 1288 1289 /* Set a short watchdog for the command queue */ 1290 trans_cfg.cmd_q_wdg_timeout = 1291 iwl_mvm_get_wd_timeout(mvm, NULL, false, true); 1292 1293 snprintf(mvm->hw->wiphy->fw_version, 1294 sizeof(mvm->hw->wiphy->fw_version), 1295 "%s", fw->fw_version); 1296 1297 trans_cfg.fw_reset_handshake = fw_has_capa(&mvm->fw->ucode_capa, 1298 IWL_UCODE_TLV_CAPA_FW_RESET_HANDSHAKE); 1299 1300 trans_cfg.queue_alloc_cmd_ver = 1301 iwl_fw_lookup_cmd_ver(mvm->fw, 1302 WIDE_ID(DATA_PATH_GROUP, 1303 SCD_QUEUE_CONFIG_CMD), 1304 0); 1305 mvm->sta_remove_requires_queue_remove = 1306 trans_cfg.queue_alloc_cmd_ver > 0; 1307 1308 mvm->mld_api_is_used = iwl_mvm_has_mld_api(mvm->fw); 1309 1310 /* Configure transport layer */ 1311 iwl_trans_configure(mvm->trans, &trans_cfg); 1312 1313 trans->rx_mpdu_cmd = REPLY_RX_MPDU_CMD; 1314 trans->dbg.dest_tlv = mvm->fw->dbg.dest_tlv; 1315 trans->dbg.n_dest_reg = mvm->fw->dbg.n_dest_reg; 1316 memcpy(trans->dbg.conf_tlv, mvm->fw->dbg.conf_tlv, 1317 sizeof(trans->dbg.conf_tlv)); 1318 trans->dbg.trigger_tlv = mvm->fw->dbg.trigger_tlv; 1319 1320 trans->iml = mvm->fw->iml; 1321 trans->iml_len = mvm->fw->iml_len; 1322 1323 /* set up notification wait support */ 1324 iwl_notification_wait_init(&mvm->notif_wait); 1325 1326 /* Init phy db */ 1327 mvm->phy_db = iwl_phy_db_init(trans); 1328 if (!mvm->phy_db) { 1329 IWL_ERR(mvm, "Cannot init phy_db\n"); 1330 goto out_free; 1331 } 1332 1333 IWL_INFO(mvm, "Detected %s, REV=0x%X\n", 1334 mvm->trans->name, mvm->trans->hw_rev); 1335 1336 if (iwlwifi_mod_params.nvm_file) 1337 mvm->nvm_file_name = iwlwifi_mod_params.nvm_file; 1338 else 1339 IWL_DEBUG_EEPROM(mvm->trans->dev, 1340 "working without external nvm file\n"); 1341 1342 scan_size = iwl_mvm_scan_size(mvm); 1343 1344 mvm->scan_cmd = kmalloc(scan_size, GFP_KERNEL); 1345 if (!mvm->scan_cmd) 1346 goto out_free; 1347 mvm->scan_cmd_size = scan_size; 1348 1349 /* invalidate ids to prevent accidental removal of sta_id 0 */ 1350 mvm->aux_sta.sta_id = IWL_MVM_INVALID_STA; 1351 mvm->snif_sta.sta_id = IWL_MVM_INVALID_STA; 1352 1353 /* Set EBS as successful as long as not stated otherwise by the FW. */ 1354 mvm->last_ebs_successful = true; 1355 1356 min_backoff = iwl_mvm_min_backoff(mvm); 1357 iwl_mvm_thermal_initialize(mvm, min_backoff); 1358 1359 if (!iwl_mvm_has_new_rx_stats_api(mvm)) 1360 memset(&mvm->rx_stats_v3, 0, 1361 sizeof(struct mvm_statistics_rx_v3)); 1362 else 1363 memset(&mvm->rx_stats, 0, sizeof(struct mvm_statistics_rx)); 1364 1365 iwl_mvm_ftm_initiator_smooth_config(mvm); 1366 1367 iwl_mvm_init_time_sync(&mvm->time_sync); 1368 1369 mvm->debugfs_dir = dbgfs_dir; 1370 1371 mvm->mei_registered = !iwl_mei_register(mvm, &mei_ops); 1372 1373 iwl_mvm_mei_scan_filter_init(&mvm->mei_scan_filter); 1374 1375 if (iwl_mvm_start_get_nvm(mvm)) { 1376 /* 1377 * Getting NVM failed while CSME is the owner, but we are 1378 * registered to MEI, we'll get the NVM later when it'll be 1379 * possible to get it from CSME. 1380 */ 1381 if (trans->csme_own && mvm->mei_registered) 1382 return op_mode; 1383 1384 goto out_thermal_exit; 1385 } 1386 1387 1388 if (iwl_mvm_start_post_nvm(mvm)) 1389 goto out_thermal_exit; 1390 1391 return op_mode; 1392 1393 out_thermal_exit: 1394 iwl_mvm_thermal_exit(mvm); 1395 if (mvm->mei_registered) { 1396 iwl_mei_start_unregister(); 1397 iwl_mei_unregister_complete(); 1398 } 1399 out_free: 1400 iwl_fw_flush_dumps(&mvm->fwrt); 1401 iwl_fw_runtime_free(&mvm->fwrt); 1402 1403 if (iwlmvm_mod_params.init_dbg) 1404 return op_mode; 1405 iwl_phy_db_free(mvm->phy_db); 1406 kfree(mvm->scan_cmd); 1407 iwl_trans_op_mode_leave(trans); 1408 1409 ieee80211_free_hw(mvm->hw); 1410 return NULL; 1411 } 1412 1413 void iwl_mvm_stop_device(struct iwl_mvm *mvm) 1414 { 1415 lockdep_assert_held(&mvm->mutex); 1416 1417 iwl_fw_cancel_timestamp(&mvm->fwrt); 1418 1419 clear_bit(IWL_MVM_STATUS_FIRMWARE_RUNNING, &mvm->status); 1420 1421 iwl_mvm_pause_tcm(mvm, false); 1422 1423 iwl_fw_dbg_stop_sync(&mvm->fwrt); 1424 iwl_trans_stop_device(mvm->trans); 1425 iwl_free_fw_paging(&mvm->fwrt); 1426 iwl_fw_dump_conf_clear(&mvm->fwrt); 1427 iwl_mvm_mei_device_state(mvm, false); 1428 } 1429 1430 static void iwl_op_mode_mvm_stop(struct iwl_op_mode *op_mode) 1431 { 1432 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1433 int i; 1434 1435 if (mvm->mei_registered) { 1436 rtnl_lock(); 1437 iwl_mei_set_netdev(NULL); 1438 rtnl_unlock(); 1439 iwl_mei_start_unregister(); 1440 } 1441 1442 /* 1443 * After we unregister from mei, the worker can't be scheduled 1444 * anymore. 1445 */ 1446 cancel_work_sync(&mvm->sap_connected_wk); 1447 1448 iwl_mvm_leds_exit(mvm); 1449 1450 iwl_mvm_thermal_exit(mvm); 1451 1452 /* 1453 * If we couldn't get ownership on the device and we couldn't 1454 * get the NVM from CSME, we haven't registered to mac80211. 1455 * In that case, we didn't fail op_mode_start, because we are 1456 * waiting for CSME to allow us to get the NVM to register to 1457 * mac80211. If that didn't happen, we haven't registered to 1458 * mac80211, hence the if below. 1459 */ 1460 if (mvm->hw_registered) 1461 ieee80211_unregister_hw(mvm->hw); 1462 1463 kfree(mvm->scan_cmd); 1464 kfree(mvm->mcast_filter_cmd); 1465 mvm->mcast_filter_cmd = NULL; 1466 1467 kfree(mvm->error_recovery_buf); 1468 mvm->error_recovery_buf = NULL; 1469 1470 iwl_mvm_ptp_remove(mvm); 1471 1472 iwl_trans_op_mode_leave(mvm->trans); 1473 1474 iwl_phy_db_free(mvm->phy_db); 1475 mvm->phy_db = NULL; 1476 1477 kfree(mvm->nvm_data); 1478 kfree(mvm->mei_nvm_data); 1479 kfree(rcu_access_pointer(mvm->csme_conn_info)); 1480 kfree(mvm->temp_nvm_data); 1481 for (i = 0; i < NVM_MAX_NUM_SECTIONS; i++) 1482 kfree(mvm->nvm_sections[i].data); 1483 1484 cancel_delayed_work_sync(&mvm->tcm.work); 1485 1486 iwl_fw_runtime_free(&mvm->fwrt); 1487 mutex_destroy(&mvm->mutex); 1488 1489 if (mvm->mei_registered) 1490 iwl_mei_unregister_complete(); 1491 1492 ieee80211_free_hw(mvm->hw); 1493 } 1494 1495 struct iwl_async_handler_entry { 1496 struct list_head list; 1497 struct iwl_rx_cmd_buffer rxb; 1498 enum iwl_rx_handler_context context; 1499 void (*fn)(struct iwl_mvm *mvm, struct iwl_rx_cmd_buffer *rxb); 1500 }; 1501 1502 void iwl_mvm_async_handlers_purge(struct iwl_mvm *mvm) 1503 { 1504 struct iwl_async_handler_entry *entry, *tmp; 1505 1506 spin_lock_bh(&mvm->async_handlers_lock); 1507 list_for_each_entry_safe(entry, tmp, &mvm->async_handlers_list, list) { 1508 iwl_free_rxb(&entry->rxb); 1509 list_del(&entry->list); 1510 kfree(entry); 1511 } 1512 spin_unlock_bh(&mvm->async_handlers_lock); 1513 } 1514 1515 static void iwl_mvm_async_handlers_wk(struct work_struct *wk) 1516 { 1517 struct iwl_mvm *mvm = 1518 container_of(wk, struct iwl_mvm, async_handlers_wk); 1519 struct iwl_async_handler_entry *entry, *tmp; 1520 LIST_HEAD(local_list); 1521 1522 /* Ensure that we are not in stop flow (check iwl_mvm_mac_stop) */ 1523 1524 /* 1525 * Sync with Rx path with a lock. Remove all the entries from this list, 1526 * add them to a local one (lock free), and then handle them. 1527 */ 1528 spin_lock_bh(&mvm->async_handlers_lock); 1529 list_splice_init(&mvm->async_handlers_list, &local_list); 1530 spin_unlock_bh(&mvm->async_handlers_lock); 1531 1532 list_for_each_entry_safe(entry, tmp, &local_list, list) { 1533 if (entry->context == RX_HANDLER_ASYNC_LOCKED) 1534 mutex_lock(&mvm->mutex); 1535 entry->fn(mvm, &entry->rxb); 1536 iwl_free_rxb(&entry->rxb); 1537 list_del(&entry->list); 1538 if (entry->context == RX_HANDLER_ASYNC_LOCKED) 1539 mutex_unlock(&mvm->mutex); 1540 kfree(entry); 1541 } 1542 } 1543 1544 static inline void iwl_mvm_rx_check_trigger(struct iwl_mvm *mvm, 1545 struct iwl_rx_packet *pkt) 1546 { 1547 struct iwl_fw_dbg_trigger_tlv *trig; 1548 struct iwl_fw_dbg_trigger_cmd *cmds_trig; 1549 int i; 1550 1551 trig = iwl_fw_dbg_trigger_on(&mvm->fwrt, NULL, 1552 FW_DBG_TRIGGER_FW_NOTIF); 1553 if (!trig) 1554 return; 1555 1556 cmds_trig = (void *)trig->data; 1557 1558 for (i = 0; i < ARRAY_SIZE(cmds_trig->cmds); i++) { 1559 /* don't collect on CMD 0 */ 1560 if (!cmds_trig->cmds[i].cmd_id) 1561 break; 1562 1563 if (cmds_trig->cmds[i].cmd_id != pkt->hdr.cmd || 1564 cmds_trig->cmds[i].group_id != pkt->hdr.group_id) 1565 continue; 1566 1567 iwl_fw_dbg_collect_trig(&mvm->fwrt, trig, 1568 "CMD 0x%02x.%02x received", 1569 pkt->hdr.group_id, pkt->hdr.cmd); 1570 break; 1571 } 1572 } 1573 1574 static void iwl_mvm_rx_common(struct iwl_mvm *mvm, 1575 struct iwl_rx_cmd_buffer *rxb, 1576 struct iwl_rx_packet *pkt) 1577 { 1578 unsigned int pkt_len = iwl_rx_packet_payload_len(pkt); 1579 int i; 1580 union iwl_dbg_tlv_tp_data tp_data = { .fw_pkt = pkt }; 1581 1582 iwl_dbg_tlv_time_point(&mvm->fwrt, 1583 IWL_FW_INI_TIME_POINT_FW_RSP_OR_NOTIF, &tp_data); 1584 iwl_mvm_rx_check_trigger(mvm, pkt); 1585 1586 /* 1587 * Do the notification wait before RX handlers so 1588 * even if the RX handler consumes the RXB we have 1589 * access to it in the notification wait entry. 1590 */ 1591 iwl_notification_wait_notify(&mvm->notif_wait, pkt); 1592 1593 for (i = 0; i < ARRAY_SIZE(iwl_mvm_rx_handlers); i++) { 1594 const struct iwl_rx_handlers *rx_h = &iwl_mvm_rx_handlers[i]; 1595 struct iwl_async_handler_entry *entry; 1596 1597 if (rx_h->cmd_id != WIDE_ID(pkt->hdr.group_id, pkt->hdr.cmd)) 1598 continue; 1599 1600 if (IWL_FW_CHECK(mvm, pkt_len < rx_h->min_size, 1601 "unexpected notification 0x%04x size %d, need %d\n", 1602 rx_h->cmd_id, pkt_len, rx_h->min_size)) 1603 return; 1604 1605 if (rx_h->context == RX_HANDLER_SYNC) { 1606 rx_h->fn(mvm, rxb); 1607 return; 1608 } 1609 1610 entry = kzalloc(sizeof(*entry), GFP_ATOMIC); 1611 /* we can't do much... */ 1612 if (!entry) 1613 return; 1614 1615 entry->rxb._page = rxb_steal_page(rxb); 1616 entry->rxb._offset = rxb->_offset; 1617 entry->rxb._rx_page_order = rxb->_rx_page_order; 1618 entry->fn = rx_h->fn; 1619 entry->context = rx_h->context; 1620 spin_lock(&mvm->async_handlers_lock); 1621 list_add_tail(&entry->list, &mvm->async_handlers_list); 1622 spin_unlock(&mvm->async_handlers_lock); 1623 schedule_work(&mvm->async_handlers_wk); 1624 break; 1625 } 1626 } 1627 1628 static void iwl_mvm_rx(struct iwl_op_mode *op_mode, 1629 struct napi_struct *napi, 1630 struct iwl_rx_cmd_buffer *rxb) 1631 { 1632 struct iwl_rx_packet *pkt = rxb_addr(rxb); 1633 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1634 u16 cmd = WIDE_ID(pkt->hdr.group_id, pkt->hdr.cmd); 1635 1636 if (likely(cmd == WIDE_ID(LEGACY_GROUP, REPLY_RX_MPDU_CMD))) 1637 iwl_mvm_rx_rx_mpdu(mvm, napi, rxb); 1638 else if (cmd == WIDE_ID(LEGACY_GROUP, REPLY_RX_PHY_CMD)) 1639 iwl_mvm_rx_rx_phy_cmd(mvm, rxb); 1640 else 1641 iwl_mvm_rx_common(mvm, rxb, pkt); 1642 } 1643 1644 void iwl_mvm_rx_mq(struct iwl_op_mode *op_mode, 1645 struct napi_struct *napi, 1646 struct iwl_rx_cmd_buffer *rxb) 1647 { 1648 struct iwl_rx_packet *pkt = rxb_addr(rxb); 1649 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1650 u16 cmd = WIDE_ID(pkt->hdr.group_id, pkt->hdr.cmd); 1651 1652 if (likely(cmd == WIDE_ID(LEGACY_GROUP, REPLY_RX_MPDU_CMD))) 1653 iwl_mvm_rx_mpdu_mq(mvm, napi, rxb, 0); 1654 else if (unlikely(cmd == WIDE_ID(DATA_PATH_GROUP, 1655 RX_QUEUES_NOTIFICATION))) 1656 iwl_mvm_rx_queue_notif(mvm, napi, rxb, 0); 1657 else if (cmd == WIDE_ID(LEGACY_GROUP, FRAME_RELEASE)) 1658 iwl_mvm_rx_frame_release(mvm, napi, rxb, 0); 1659 else if (cmd == WIDE_ID(LEGACY_GROUP, BAR_FRAME_RELEASE)) 1660 iwl_mvm_rx_bar_frame_release(mvm, napi, rxb, 0); 1661 else if (cmd == WIDE_ID(DATA_PATH_GROUP, RX_NO_DATA_NOTIF)) 1662 iwl_mvm_rx_monitor_no_data(mvm, napi, rxb, 0); 1663 else 1664 iwl_mvm_rx_common(mvm, rxb, pkt); 1665 } 1666 1667 static void iwl_mvm_async_cb(struct iwl_op_mode *op_mode, 1668 const struct iwl_device_cmd *cmd) 1669 { 1670 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1671 1672 /* 1673 * For now, we only set the CMD_WANT_ASYNC_CALLBACK for ADD_STA 1674 * commands that need to block the Tx queues. 1675 */ 1676 iwl_trans_block_txq_ptrs(mvm->trans, false); 1677 } 1678 1679 static int iwl_mvm_is_static_queue(struct iwl_mvm *mvm, int queue) 1680 { 1681 return queue == mvm->aux_queue || queue == mvm->probe_queue || 1682 queue == mvm->p2p_dev_queue || queue == mvm->snif_queue; 1683 } 1684 1685 static void iwl_mvm_queue_state_change(struct iwl_op_mode *op_mode, 1686 int hw_queue, bool start) 1687 { 1688 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1689 struct ieee80211_sta *sta; 1690 struct ieee80211_txq *txq; 1691 struct iwl_mvm_txq *mvmtxq; 1692 int i; 1693 unsigned long tid_bitmap; 1694 struct iwl_mvm_sta *mvmsta; 1695 u8 sta_id; 1696 1697 sta_id = iwl_mvm_has_new_tx_api(mvm) ? 1698 mvm->tvqm_info[hw_queue].sta_id : 1699 mvm->queue_info[hw_queue].ra_sta_id; 1700 1701 if (WARN_ON_ONCE(sta_id >= mvm->fw->ucode_capa.num_stations)) 1702 return; 1703 1704 rcu_read_lock(); 1705 1706 sta = rcu_dereference(mvm->fw_id_to_mac_id[sta_id]); 1707 if (IS_ERR_OR_NULL(sta)) 1708 goto out; 1709 mvmsta = iwl_mvm_sta_from_mac80211(sta); 1710 1711 if (iwl_mvm_is_static_queue(mvm, hw_queue)) { 1712 if (!start) 1713 ieee80211_stop_queues(mvm->hw); 1714 else if (mvmsta->sta_state != IEEE80211_STA_NOTEXIST) 1715 ieee80211_wake_queues(mvm->hw); 1716 1717 goto out; 1718 } 1719 1720 if (iwl_mvm_has_new_tx_api(mvm)) { 1721 int tid = mvm->tvqm_info[hw_queue].txq_tid; 1722 1723 tid_bitmap = BIT(tid); 1724 } else { 1725 tid_bitmap = mvm->queue_info[hw_queue].tid_bitmap; 1726 } 1727 1728 for_each_set_bit(i, &tid_bitmap, IWL_MAX_TID_COUNT + 1) { 1729 int tid = i; 1730 1731 if (tid == IWL_MAX_TID_COUNT) 1732 tid = IEEE80211_NUM_TIDS; 1733 1734 txq = sta->txq[tid]; 1735 mvmtxq = iwl_mvm_txq_from_mac80211(txq); 1736 if (start) 1737 clear_bit(IWL_MVM_TXQ_STATE_STOP_FULL, &mvmtxq->state); 1738 else 1739 set_bit(IWL_MVM_TXQ_STATE_STOP_FULL, &mvmtxq->state); 1740 1741 if (start && mvmsta->sta_state != IEEE80211_STA_NOTEXIST) { 1742 local_bh_disable(); 1743 iwl_mvm_mac_itxq_xmit(mvm->hw, txq); 1744 local_bh_enable(); 1745 } 1746 } 1747 1748 out: 1749 rcu_read_unlock(); 1750 } 1751 1752 static void iwl_mvm_stop_sw_queue(struct iwl_op_mode *op_mode, int hw_queue) 1753 { 1754 iwl_mvm_queue_state_change(op_mode, hw_queue, false); 1755 } 1756 1757 static void iwl_mvm_wake_sw_queue(struct iwl_op_mode *op_mode, int hw_queue) 1758 { 1759 iwl_mvm_queue_state_change(op_mode, hw_queue, true); 1760 } 1761 1762 static void iwl_mvm_set_rfkill_state(struct iwl_mvm *mvm) 1763 { 1764 bool state = iwl_mvm_is_radio_killed(mvm); 1765 1766 if (state) 1767 wake_up(&mvm->rx_sync_waitq); 1768 1769 wiphy_rfkill_set_hw_state(mvm->hw->wiphy, state); 1770 } 1771 1772 void iwl_mvm_set_hw_ctkill_state(struct iwl_mvm *mvm, bool state) 1773 { 1774 if (state) 1775 set_bit(IWL_MVM_STATUS_HW_CTKILL, &mvm->status); 1776 else 1777 clear_bit(IWL_MVM_STATUS_HW_CTKILL, &mvm->status); 1778 1779 iwl_mvm_set_rfkill_state(mvm); 1780 } 1781 1782 struct iwl_mvm_csme_conn_info *iwl_mvm_get_csme_conn_info(struct iwl_mvm *mvm) 1783 { 1784 return rcu_dereference_protected(mvm->csme_conn_info, 1785 lockdep_is_held(&mvm->mutex)); 1786 } 1787 1788 static bool iwl_mvm_set_hw_rfkill_state(struct iwl_op_mode *op_mode, bool state) 1789 { 1790 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1791 bool rfkill_safe_init_done = READ_ONCE(mvm->rfkill_safe_init_done); 1792 bool unified = iwl_mvm_has_unified_ucode(mvm); 1793 1794 if (state) 1795 set_bit(IWL_MVM_STATUS_HW_RFKILL, &mvm->status); 1796 else 1797 clear_bit(IWL_MVM_STATUS_HW_RFKILL, &mvm->status); 1798 1799 iwl_mvm_set_rfkill_state(mvm); 1800 1801 /* iwl_run_init_mvm_ucode is waiting for results, abort it. */ 1802 if (rfkill_safe_init_done) 1803 iwl_abort_notification_waits(&mvm->notif_wait); 1804 1805 /* 1806 * Don't ask the transport to stop the firmware. We'll do it 1807 * after cfg80211 takes us down. 1808 */ 1809 if (unified) 1810 return false; 1811 1812 /* 1813 * Stop the device if we run OPERATIONAL firmware or if we are in the 1814 * middle of the calibrations. 1815 */ 1816 return state && rfkill_safe_init_done; 1817 } 1818 1819 static void iwl_mvm_free_skb(struct iwl_op_mode *op_mode, struct sk_buff *skb) 1820 { 1821 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1822 struct ieee80211_tx_info *info; 1823 1824 info = IEEE80211_SKB_CB(skb); 1825 iwl_trans_free_tx_cmd(mvm->trans, info->driver_data[1]); 1826 ieee80211_free_txskb(mvm->hw, skb); 1827 } 1828 1829 struct iwl_mvm_reprobe { 1830 struct device *dev; 1831 struct work_struct work; 1832 }; 1833 1834 static void iwl_mvm_reprobe_wk(struct work_struct *wk) 1835 { 1836 struct iwl_mvm_reprobe *reprobe; 1837 1838 reprobe = container_of(wk, struct iwl_mvm_reprobe, work); 1839 if (device_reprobe(reprobe->dev)) 1840 dev_err(reprobe->dev, "reprobe failed!\n"); 1841 put_device(reprobe->dev); 1842 kfree(reprobe); 1843 module_put(THIS_MODULE); 1844 } 1845 1846 void iwl_mvm_nic_restart(struct iwl_mvm *mvm, bool fw_error) 1847 { 1848 iwl_abort_notification_waits(&mvm->notif_wait); 1849 iwl_dbg_tlv_del_timers(mvm->trans); 1850 1851 /* 1852 * This is a bit racy, but worst case we tell mac80211 about 1853 * a stopped/aborted scan when that was already done which 1854 * is not a problem. It is necessary to abort any os scan 1855 * here because mac80211 requires having the scan cleared 1856 * before restarting. 1857 * We'll reset the scan_status to NONE in restart cleanup in 1858 * the next start() call from mac80211. If restart isn't called 1859 * (no fw restart) scan status will stay busy. 1860 */ 1861 iwl_mvm_report_scan_aborted(mvm); 1862 1863 /* 1864 * If we're restarting already, don't cycle restarts. 1865 * If INIT fw asserted, it will likely fail again. 1866 * If WoWLAN fw asserted, don't restart either, mac80211 1867 * can't recover this since we're already half suspended. 1868 */ 1869 if (!mvm->fw_restart && fw_error) { 1870 iwl_fw_error_collect(&mvm->fwrt, false); 1871 } else if (test_bit(IWL_MVM_STATUS_STARTING, 1872 &mvm->status)) { 1873 IWL_ERR(mvm, "Starting mac, retry will be triggered anyway\n"); 1874 } else if (test_bit(IWL_MVM_STATUS_IN_HW_RESTART, &mvm->status)) { 1875 struct iwl_mvm_reprobe *reprobe; 1876 1877 IWL_ERR(mvm, 1878 "Firmware error during reconfiguration - reprobe!\n"); 1879 1880 /* 1881 * get a module reference to avoid doing this while unloading 1882 * anyway and to avoid scheduling a work with code that's 1883 * being removed. 1884 */ 1885 if (!try_module_get(THIS_MODULE)) { 1886 IWL_ERR(mvm, "Module is being unloaded - abort\n"); 1887 return; 1888 } 1889 1890 reprobe = kzalloc(sizeof(*reprobe), GFP_ATOMIC); 1891 if (!reprobe) { 1892 module_put(THIS_MODULE); 1893 return; 1894 } 1895 reprobe->dev = get_device(mvm->trans->dev); 1896 INIT_WORK(&reprobe->work, iwl_mvm_reprobe_wk); 1897 schedule_work(&reprobe->work); 1898 } else if (test_bit(IWL_MVM_STATUS_HW_RESTART_REQUESTED, 1899 &mvm->status)) { 1900 IWL_ERR(mvm, "HW restart already requested, but not started\n"); 1901 } else if (mvm->fwrt.cur_fw_img == IWL_UCODE_REGULAR && 1902 mvm->hw_registered && 1903 !test_bit(STATUS_TRANS_DEAD, &mvm->trans->status)) { 1904 /* This should be first thing before trying to collect any 1905 * data to avoid endless loops if any HW error happens while 1906 * collecting debug data. 1907 */ 1908 set_bit(IWL_MVM_STATUS_HW_RESTART_REQUESTED, &mvm->status); 1909 1910 if (mvm->fw->ucode_capa.error_log_size) { 1911 u32 src_size = mvm->fw->ucode_capa.error_log_size; 1912 u32 src_addr = mvm->fw->ucode_capa.error_log_addr; 1913 u8 *recover_buf = kzalloc(src_size, GFP_ATOMIC); 1914 1915 if (recover_buf) { 1916 mvm->error_recovery_buf = recover_buf; 1917 iwl_trans_read_mem_bytes(mvm->trans, 1918 src_addr, 1919 recover_buf, 1920 src_size); 1921 } 1922 } 1923 1924 iwl_fw_error_collect(&mvm->fwrt, false); 1925 1926 if (fw_error && mvm->fw_restart > 0) { 1927 mvm->fw_restart--; 1928 ieee80211_restart_hw(mvm->hw); 1929 } else if (mvm->fwrt.trans->dbg.restart_required) { 1930 IWL_DEBUG_INFO(mvm, "FW restart requested after debug collection\n"); 1931 mvm->fwrt.trans->dbg.restart_required = FALSE; 1932 ieee80211_restart_hw(mvm->hw); 1933 } else if (mvm->trans->trans_cfg->device_family <= IWL_DEVICE_FAMILY_8000) { 1934 ieee80211_restart_hw(mvm->hw); 1935 } 1936 } 1937 } 1938 1939 static void iwl_mvm_nic_error(struct iwl_op_mode *op_mode, bool sync) 1940 { 1941 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1942 1943 if (mvm->pldr_sync) 1944 return; 1945 1946 if (!test_bit(STATUS_TRANS_DEAD, &mvm->trans->status) && 1947 !test_and_clear_bit(IWL_MVM_STATUS_SUPPRESS_ERROR_LOG_ONCE, 1948 &mvm->status)) 1949 iwl_mvm_dump_nic_error_log(mvm); 1950 1951 if (sync) { 1952 iwl_fw_error_collect(&mvm->fwrt, true); 1953 /* 1954 * Currently, the only case for sync=true is during 1955 * shutdown, so just stop in this case. If/when that 1956 * changes, we need to be a bit smarter here. 1957 */ 1958 return; 1959 } 1960 1961 /* 1962 * If the firmware crashes while we're already considering it 1963 * to be dead then don't ask for a restart, that cannot do 1964 * anything useful anyway. 1965 */ 1966 if (!test_bit(IWL_MVM_STATUS_FIRMWARE_RUNNING, &mvm->status)) 1967 return; 1968 1969 iwl_mvm_nic_restart(mvm, false); 1970 } 1971 1972 static void iwl_mvm_cmd_queue_full(struct iwl_op_mode *op_mode) 1973 { 1974 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1975 1976 WARN_ON(1); 1977 iwl_mvm_nic_restart(mvm, true); 1978 } 1979 1980 static void iwl_op_mode_mvm_time_point(struct iwl_op_mode *op_mode, 1981 enum iwl_fw_ini_time_point tp_id, 1982 union iwl_dbg_tlv_tp_data *tp_data) 1983 { 1984 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 1985 1986 iwl_dbg_tlv_time_point(&mvm->fwrt, tp_id, tp_data); 1987 } 1988 1989 #define IWL_MVM_COMMON_OPS \ 1990 /* these could be differentiated */ \ 1991 .async_cb = iwl_mvm_async_cb, \ 1992 .queue_full = iwl_mvm_stop_sw_queue, \ 1993 .queue_not_full = iwl_mvm_wake_sw_queue, \ 1994 .hw_rf_kill = iwl_mvm_set_hw_rfkill_state, \ 1995 .free_skb = iwl_mvm_free_skb, \ 1996 .nic_error = iwl_mvm_nic_error, \ 1997 .cmd_queue_full = iwl_mvm_cmd_queue_full, \ 1998 .nic_config = iwl_mvm_nic_config, \ 1999 /* as we only register one, these MUST be common! */ \ 2000 .start = iwl_op_mode_mvm_start, \ 2001 .stop = iwl_op_mode_mvm_stop, \ 2002 .time_point = iwl_op_mode_mvm_time_point 2003 2004 static const struct iwl_op_mode_ops iwl_mvm_ops = { 2005 IWL_MVM_COMMON_OPS, 2006 .rx = iwl_mvm_rx, 2007 }; 2008 2009 static void iwl_mvm_rx_mq_rss(struct iwl_op_mode *op_mode, 2010 struct napi_struct *napi, 2011 struct iwl_rx_cmd_buffer *rxb, 2012 unsigned int queue) 2013 { 2014 struct iwl_mvm *mvm = IWL_OP_MODE_GET_MVM(op_mode); 2015 struct iwl_rx_packet *pkt = rxb_addr(rxb); 2016 u16 cmd = WIDE_ID(pkt->hdr.group_id, pkt->hdr.cmd); 2017 2018 if (unlikely(queue >= mvm->trans->num_rx_queues)) 2019 return; 2020 2021 if (unlikely(cmd == WIDE_ID(LEGACY_GROUP, FRAME_RELEASE))) 2022 iwl_mvm_rx_frame_release(mvm, napi, rxb, queue); 2023 else if (unlikely(cmd == WIDE_ID(DATA_PATH_GROUP, 2024 RX_QUEUES_NOTIFICATION))) 2025 iwl_mvm_rx_queue_notif(mvm, napi, rxb, queue); 2026 else if (likely(cmd == WIDE_ID(LEGACY_GROUP, REPLY_RX_MPDU_CMD))) 2027 iwl_mvm_rx_mpdu_mq(mvm, napi, rxb, queue); 2028 } 2029 2030 static const struct iwl_op_mode_ops iwl_mvm_ops_mq = { 2031 IWL_MVM_COMMON_OPS, 2032 .rx = iwl_mvm_rx_mq, 2033 .rx_rss = iwl_mvm_rx_mq_rss, 2034 }; 2035