1 #ifndef __NET_CFG80211_H 2 #define __NET_CFG80211_H 3 /* 4 * 802.11 device and configuration interface 5 * 6 * Copyright 2006-2010 Johannes Berg <johannes@sipsolutions.net> 7 * Copyright 2013-2014 Intel Mobile Communications GmbH 8 * Copyright 2015-2017 Intel Deutschland GmbH 9 * 10 * This program is free software; you can redistribute it and/or modify 11 * it under the terms of the GNU General Public License version 2 as 12 * published by the Free Software Foundation. 13 */ 14 15 #include <linux/netdevice.h> 16 #include <linux/debugfs.h> 17 #include <linux/list.h> 18 #include <linux/bug.h> 19 #include <linux/netlink.h> 20 #include <linux/skbuff.h> 21 #include <linux/nl80211.h> 22 #include <linux/if_ether.h> 23 #include <linux/ieee80211.h> 24 #include <linux/net.h> 25 #include <net/regulatory.h> 26 27 /** 28 * DOC: Introduction 29 * 30 * cfg80211 is the configuration API for 802.11 devices in Linux. It bridges 31 * userspace and drivers, and offers some utility functionality associated 32 * with 802.11. cfg80211 must, directly or indirectly via mac80211, be used 33 * by all modern wireless drivers in Linux, so that they offer a consistent 34 * API through nl80211. For backward compatibility, cfg80211 also offers 35 * wireless extensions to userspace, but hides them from drivers completely. 36 * 37 * Additionally, cfg80211 contains code to help enforce regulatory spectrum 38 * use restrictions. 39 */ 40 41 42 /** 43 * DOC: Device registration 44 * 45 * In order for a driver to use cfg80211, it must register the hardware device 46 * with cfg80211. This happens through a number of hardware capability structs 47 * described below. 48 * 49 * The fundamental structure for each device is the 'wiphy', of which each 50 * instance describes a physical wireless device connected to the system. Each 51 * such wiphy can have zero, one, or many virtual interfaces associated with 52 * it, which need to be identified as such by pointing the network interface's 53 * @ieee80211_ptr pointer to a &struct wireless_dev which further describes 54 * the wireless part of the interface, normally this struct is embedded in the 55 * network interface's private data area. Drivers can optionally allow creating 56 * or destroying virtual interfaces on the fly, but without at least one or the 57 * ability to create some the wireless device isn't useful. 58 * 59 * Each wiphy structure contains device capability information, and also has 60 * a pointer to the various operations the driver offers. The definitions and 61 * structures here describe these capabilities in detail. 62 */ 63 64 struct wiphy; 65 66 /* 67 * wireless hardware capability structures 68 */ 69 70 /** 71 * enum ieee80211_channel_flags - channel flags 72 * 73 * Channel flags set by the regulatory control code. 74 * 75 * @IEEE80211_CHAN_DISABLED: This channel is disabled. 76 * @IEEE80211_CHAN_NO_IR: do not initiate radiation, this includes 77 * sending probe requests or beaconing. 78 * @IEEE80211_CHAN_RADAR: Radar detection is required on this channel. 79 * @IEEE80211_CHAN_NO_HT40PLUS: extension channel above this channel 80 * is not permitted. 81 * @IEEE80211_CHAN_NO_HT40MINUS: extension channel below this channel 82 * is not permitted. 83 * @IEEE80211_CHAN_NO_OFDM: OFDM is not allowed on this channel. 84 * @IEEE80211_CHAN_NO_80MHZ: If the driver supports 80 MHz on the band, 85 * this flag indicates that an 80 MHz channel cannot use this 86 * channel as the control or any of the secondary channels. 87 * This may be due to the driver or due to regulatory bandwidth 88 * restrictions. 89 * @IEEE80211_CHAN_NO_160MHZ: If the driver supports 160 MHz on the band, 90 * this flag indicates that an 160 MHz channel cannot use this 91 * channel as the control or any of the secondary channels. 92 * This may be due to the driver or due to regulatory bandwidth 93 * restrictions. 94 * @IEEE80211_CHAN_INDOOR_ONLY: see %NL80211_FREQUENCY_ATTR_INDOOR_ONLY 95 * @IEEE80211_CHAN_IR_CONCURRENT: see %NL80211_FREQUENCY_ATTR_IR_CONCURRENT 96 * @IEEE80211_CHAN_NO_20MHZ: 20 MHz bandwidth is not permitted 97 * on this channel. 98 * @IEEE80211_CHAN_NO_10MHZ: 10 MHz bandwidth is not permitted 99 * on this channel. 100 * 101 */ 102 enum ieee80211_channel_flags { 103 IEEE80211_CHAN_DISABLED = 1<<0, 104 IEEE80211_CHAN_NO_IR = 1<<1, 105 /* hole at 1<<2 */ 106 IEEE80211_CHAN_RADAR = 1<<3, 107 IEEE80211_CHAN_NO_HT40PLUS = 1<<4, 108 IEEE80211_CHAN_NO_HT40MINUS = 1<<5, 109 IEEE80211_CHAN_NO_OFDM = 1<<6, 110 IEEE80211_CHAN_NO_80MHZ = 1<<7, 111 IEEE80211_CHAN_NO_160MHZ = 1<<8, 112 IEEE80211_CHAN_INDOOR_ONLY = 1<<9, 113 IEEE80211_CHAN_IR_CONCURRENT = 1<<10, 114 IEEE80211_CHAN_NO_20MHZ = 1<<11, 115 IEEE80211_CHAN_NO_10MHZ = 1<<12, 116 }; 117 118 #define IEEE80211_CHAN_NO_HT40 \ 119 (IEEE80211_CHAN_NO_HT40PLUS | IEEE80211_CHAN_NO_HT40MINUS) 120 121 #define IEEE80211_DFS_MIN_CAC_TIME_MS 60000 122 #define IEEE80211_DFS_MIN_NOP_TIME_MS (30 * 60 * 1000) 123 124 /** 125 * struct ieee80211_channel - channel definition 126 * 127 * This structure describes a single channel for use 128 * with cfg80211. 129 * 130 * @center_freq: center frequency in MHz 131 * @hw_value: hardware-specific value for the channel 132 * @flags: channel flags from &enum ieee80211_channel_flags. 133 * @orig_flags: channel flags at registration time, used by regulatory 134 * code to support devices with additional restrictions 135 * @band: band this channel belongs to. 136 * @max_antenna_gain: maximum antenna gain in dBi 137 * @max_power: maximum transmission power (in dBm) 138 * @max_reg_power: maximum regulatory transmission power (in dBm) 139 * @beacon_found: helper to regulatory code to indicate when a beacon 140 * has been found on this channel. Use regulatory_hint_found_beacon() 141 * to enable this, this is useful only on 5 GHz band. 142 * @orig_mag: internal use 143 * @orig_mpwr: internal use 144 * @dfs_state: current state of this channel. Only relevant if radar is required 145 * on this channel. 146 * @dfs_state_entered: timestamp (jiffies) when the dfs state was entered. 147 * @dfs_cac_ms: DFS CAC time in milliseconds, this is valid for DFS channels. 148 */ 149 struct ieee80211_channel { 150 enum nl80211_band band; 151 u16 center_freq; 152 u16 hw_value; 153 u32 flags; 154 int max_antenna_gain; 155 int max_power; 156 int max_reg_power; 157 bool beacon_found; 158 u32 orig_flags; 159 int orig_mag, orig_mpwr; 160 enum nl80211_dfs_state dfs_state; 161 unsigned long dfs_state_entered; 162 unsigned int dfs_cac_ms; 163 }; 164 165 /** 166 * enum ieee80211_rate_flags - rate flags 167 * 168 * Hardware/specification flags for rates. These are structured 169 * in a way that allows using the same bitrate structure for 170 * different bands/PHY modes. 171 * 172 * @IEEE80211_RATE_SHORT_PREAMBLE: Hardware can send with short 173 * preamble on this bitrate; only relevant in 2.4GHz band and 174 * with CCK rates. 175 * @IEEE80211_RATE_MANDATORY_A: This bitrate is a mandatory rate 176 * when used with 802.11a (on the 5 GHz band); filled by the 177 * core code when registering the wiphy. 178 * @IEEE80211_RATE_MANDATORY_B: This bitrate is a mandatory rate 179 * when used with 802.11b (on the 2.4 GHz band); filled by the 180 * core code when registering the wiphy. 181 * @IEEE80211_RATE_MANDATORY_G: This bitrate is a mandatory rate 182 * when used with 802.11g (on the 2.4 GHz band); filled by the 183 * core code when registering the wiphy. 184 * @IEEE80211_RATE_ERP_G: This is an ERP rate in 802.11g mode. 185 * @IEEE80211_RATE_SUPPORTS_5MHZ: Rate can be used in 5 MHz mode 186 * @IEEE80211_RATE_SUPPORTS_10MHZ: Rate can be used in 10 MHz mode 187 */ 188 enum ieee80211_rate_flags { 189 IEEE80211_RATE_SHORT_PREAMBLE = 1<<0, 190 IEEE80211_RATE_MANDATORY_A = 1<<1, 191 IEEE80211_RATE_MANDATORY_B = 1<<2, 192 IEEE80211_RATE_MANDATORY_G = 1<<3, 193 IEEE80211_RATE_ERP_G = 1<<4, 194 IEEE80211_RATE_SUPPORTS_5MHZ = 1<<5, 195 IEEE80211_RATE_SUPPORTS_10MHZ = 1<<6, 196 }; 197 198 /** 199 * enum ieee80211_bss_type - BSS type filter 200 * 201 * @IEEE80211_BSS_TYPE_ESS: Infrastructure BSS 202 * @IEEE80211_BSS_TYPE_PBSS: Personal BSS 203 * @IEEE80211_BSS_TYPE_IBSS: Independent BSS 204 * @IEEE80211_BSS_TYPE_MBSS: Mesh BSS 205 * @IEEE80211_BSS_TYPE_ANY: Wildcard value for matching any BSS type 206 */ 207 enum ieee80211_bss_type { 208 IEEE80211_BSS_TYPE_ESS, 209 IEEE80211_BSS_TYPE_PBSS, 210 IEEE80211_BSS_TYPE_IBSS, 211 IEEE80211_BSS_TYPE_MBSS, 212 IEEE80211_BSS_TYPE_ANY 213 }; 214 215 /** 216 * enum ieee80211_privacy - BSS privacy filter 217 * 218 * @IEEE80211_PRIVACY_ON: privacy bit set 219 * @IEEE80211_PRIVACY_OFF: privacy bit clear 220 * @IEEE80211_PRIVACY_ANY: Wildcard value for matching any privacy setting 221 */ 222 enum ieee80211_privacy { 223 IEEE80211_PRIVACY_ON, 224 IEEE80211_PRIVACY_OFF, 225 IEEE80211_PRIVACY_ANY 226 }; 227 228 #define IEEE80211_PRIVACY(x) \ 229 ((x) ? IEEE80211_PRIVACY_ON : IEEE80211_PRIVACY_OFF) 230 231 /** 232 * struct ieee80211_rate - bitrate definition 233 * 234 * This structure describes a bitrate that an 802.11 PHY can 235 * operate with. The two values @hw_value and @hw_value_short 236 * are only for driver use when pointers to this structure are 237 * passed around. 238 * 239 * @flags: rate-specific flags 240 * @bitrate: bitrate in units of 100 Kbps 241 * @hw_value: driver/hardware value for this rate 242 * @hw_value_short: driver/hardware value for this rate when 243 * short preamble is used 244 */ 245 struct ieee80211_rate { 246 u32 flags; 247 u16 bitrate; 248 u16 hw_value, hw_value_short; 249 }; 250 251 /** 252 * struct ieee80211_sta_ht_cap - STA's HT capabilities 253 * 254 * This structure describes most essential parameters needed 255 * to describe 802.11n HT capabilities for an STA. 256 * 257 * @ht_supported: is HT supported by the STA 258 * @cap: HT capabilities map as described in 802.11n spec 259 * @ampdu_factor: Maximum A-MPDU length factor 260 * @ampdu_density: Minimum A-MPDU spacing 261 * @mcs: Supported MCS rates 262 */ 263 struct ieee80211_sta_ht_cap { 264 u16 cap; /* use IEEE80211_HT_CAP_ */ 265 bool ht_supported; 266 u8 ampdu_factor; 267 u8 ampdu_density; 268 struct ieee80211_mcs_info mcs; 269 }; 270 271 /** 272 * struct ieee80211_sta_vht_cap - STA's VHT capabilities 273 * 274 * This structure describes most essential parameters needed 275 * to describe 802.11ac VHT capabilities for an STA. 276 * 277 * @vht_supported: is VHT supported by the STA 278 * @cap: VHT capabilities map as described in 802.11ac spec 279 * @vht_mcs: Supported VHT MCS rates 280 */ 281 struct ieee80211_sta_vht_cap { 282 bool vht_supported; 283 u32 cap; /* use IEEE80211_VHT_CAP_ */ 284 struct ieee80211_vht_mcs_info vht_mcs; 285 }; 286 287 /** 288 * struct ieee80211_supported_band - frequency band definition 289 * 290 * This structure describes a frequency band a wiphy 291 * is able to operate in. 292 * 293 * @channels: Array of channels the hardware can operate in 294 * in this band. 295 * @band: the band this structure represents 296 * @n_channels: Number of channels in @channels 297 * @bitrates: Array of bitrates the hardware can operate with 298 * in this band. Must be sorted to give a valid "supported 299 * rates" IE, i.e. CCK rates first, then OFDM. 300 * @n_bitrates: Number of bitrates in @bitrates 301 * @ht_cap: HT capabilities in this band 302 * @vht_cap: VHT capabilities in this band 303 */ 304 struct ieee80211_supported_band { 305 struct ieee80211_channel *channels; 306 struct ieee80211_rate *bitrates; 307 enum nl80211_band band; 308 int n_channels; 309 int n_bitrates; 310 struct ieee80211_sta_ht_cap ht_cap; 311 struct ieee80211_sta_vht_cap vht_cap; 312 }; 313 314 /** 315 * wiphy_read_of_freq_limits - read frequency limits from device tree 316 * 317 * @wiphy: the wireless device to get extra limits for 318 * 319 * Some devices may have extra limitations specified in DT. This may be useful 320 * for chipsets that normally support more bands but are limited due to board 321 * design (e.g. by antennas or external power amplifier). 322 * 323 * This function reads info from DT and uses it to *modify* channels (disable 324 * unavailable ones). It's usually a *bad* idea to use it in drivers with 325 * shared channel data as DT limitations are device specific. You should make 326 * sure to call it only if channels in wiphy are copied and can be modified 327 * without affecting other devices. 328 * 329 * As this function access device node it has to be called after set_wiphy_dev. 330 * It also modifies channels so they have to be set first. 331 * If using this helper, call it before wiphy_register(). 332 */ 333 #ifdef CONFIG_OF 334 void wiphy_read_of_freq_limits(struct wiphy *wiphy); 335 #else /* CONFIG_OF */ 336 static inline void wiphy_read_of_freq_limits(struct wiphy *wiphy) 337 { 338 } 339 #endif /* !CONFIG_OF */ 340 341 342 /* 343 * Wireless hardware/device configuration structures and methods 344 */ 345 346 /** 347 * DOC: Actions and configuration 348 * 349 * Each wireless device and each virtual interface offer a set of configuration 350 * operations and other actions that are invoked by userspace. Each of these 351 * actions is described in the operations structure, and the parameters these 352 * operations use are described separately. 353 * 354 * Additionally, some operations are asynchronous and expect to get status 355 * information via some functions that drivers need to call. 356 * 357 * Scanning and BSS list handling with its associated functionality is described 358 * in a separate chapter. 359 */ 360 361 #define VHT_MUMIMO_GROUPS_DATA_LEN (WLAN_MEMBERSHIP_LEN +\ 362 WLAN_USER_POSITION_LEN) 363 364 /** 365 * struct vif_params - describes virtual interface parameters 366 * @flags: monitor interface flags, unchanged if 0, otherwise 367 * %MONITOR_FLAG_CHANGED will be set 368 * @use_4addr: use 4-address frames 369 * @macaddr: address to use for this virtual interface. 370 * If this parameter is set to zero address the driver may 371 * determine the address as needed. 372 * This feature is only fully supported by drivers that enable the 373 * %NL80211_FEATURE_MAC_ON_CREATE flag. Others may support creating 374 ** only p2p devices with specified MAC. 375 * @vht_mumimo_groups: MU-MIMO groupID, used for monitoring MU-MIMO packets 376 * belonging to that MU-MIMO groupID; %NULL if not changed 377 * @vht_mumimo_follow_addr: MU-MIMO follow address, used for monitoring 378 * MU-MIMO packets going to the specified station; %NULL if not changed 379 */ 380 struct vif_params { 381 u32 flags; 382 int use_4addr; 383 u8 macaddr[ETH_ALEN]; 384 const u8 *vht_mumimo_groups; 385 const u8 *vht_mumimo_follow_addr; 386 }; 387 388 /** 389 * struct key_params - key information 390 * 391 * Information about a key 392 * 393 * @key: key material 394 * @key_len: length of key material 395 * @cipher: cipher suite selector 396 * @seq: sequence counter (IV/PN) for TKIP and CCMP keys, only used 397 * with the get_key() callback, must be in little endian, 398 * length given by @seq_len. 399 * @seq_len: length of @seq. 400 */ 401 struct key_params { 402 const u8 *key; 403 const u8 *seq; 404 int key_len; 405 int seq_len; 406 u32 cipher; 407 }; 408 409 /** 410 * struct cfg80211_chan_def - channel definition 411 * @chan: the (control) channel 412 * @width: channel width 413 * @center_freq1: center frequency of first segment 414 * @center_freq2: center frequency of second segment 415 * (only with 80+80 MHz) 416 */ 417 struct cfg80211_chan_def { 418 struct ieee80211_channel *chan; 419 enum nl80211_chan_width width; 420 u32 center_freq1; 421 u32 center_freq2; 422 }; 423 424 /** 425 * cfg80211_get_chandef_type - return old channel type from chandef 426 * @chandef: the channel definition 427 * 428 * Return: The old channel type (NOHT, HT20, HT40+/-) from a given 429 * chandef, which must have a bandwidth allowing this conversion. 430 */ 431 static inline enum nl80211_channel_type 432 cfg80211_get_chandef_type(const struct cfg80211_chan_def *chandef) 433 { 434 switch (chandef->width) { 435 case NL80211_CHAN_WIDTH_20_NOHT: 436 return NL80211_CHAN_NO_HT; 437 case NL80211_CHAN_WIDTH_20: 438 return NL80211_CHAN_HT20; 439 case NL80211_CHAN_WIDTH_40: 440 if (chandef->center_freq1 > chandef->chan->center_freq) 441 return NL80211_CHAN_HT40PLUS; 442 return NL80211_CHAN_HT40MINUS; 443 default: 444 WARN_ON(1); 445 return NL80211_CHAN_NO_HT; 446 } 447 } 448 449 /** 450 * cfg80211_chandef_create - create channel definition using channel type 451 * @chandef: the channel definition struct to fill 452 * @channel: the control channel 453 * @chantype: the channel type 454 * 455 * Given a channel type, create a channel definition. 456 */ 457 void cfg80211_chandef_create(struct cfg80211_chan_def *chandef, 458 struct ieee80211_channel *channel, 459 enum nl80211_channel_type chantype); 460 461 /** 462 * cfg80211_chandef_identical - check if two channel definitions are identical 463 * @chandef1: first channel definition 464 * @chandef2: second channel definition 465 * 466 * Return: %true if the channels defined by the channel definitions are 467 * identical, %false otherwise. 468 */ 469 static inline bool 470 cfg80211_chandef_identical(const struct cfg80211_chan_def *chandef1, 471 const struct cfg80211_chan_def *chandef2) 472 { 473 return (chandef1->chan == chandef2->chan && 474 chandef1->width == chandef2->width && 475 chandef1->center_freq1 == chandef2->center_freq1 && 476 chandef1->center_freq2 == chandef2->center_freq2); 477 } 478 479 /** 480 * cfg80211_chandef_compatible - check if two channel definitions are compatible 481 * @chandef1: first channel definition 482 * @chandef2: second channel definition 483 * 484 * Return: %NULL if the given channel definitions are incompatible, 485 * chandef1 or chandef2 otherwise. 486 */ 487 const struct cfg80211_chan_def * 488 cfg80211_chandef_compatible(const struct cfg80211_chan_def *chandef1, 489 const struct cfg80211_chan_def *chandef2); 490 491 /** 492 * cfg80211_chandef_valid - check if a channel definition is valid 493 * @chandef: the channel definition to check 494 * Return: %true if the channel definition is valid. %false otherwise. 495 */ 496 bool cfg80211_chandef_valid(const struct cfg80211_chan_def *chandef); 497 498 /** 499 * cfg80211_chandef_usable - check if secondary channels can be used 500 * @wiphy: the wiphy to validate against 501 * @chandef: the channel definition to check 502 * @prohibited_flags: the regulatory channel flags that must not be set 503 * Return: %true if secondary channels are usable. %false otherwise. 504 */ 505 bool cfg80211_chandef_usable(struct wiphy *wiphy, 506 const struct cfg80211_chan_def *chandef, 507 u32 prohibited_flags); 508 509 /** 510 * cfg80211_chandef_dfs_required - checks if radar detection is required 511 * @wiphy: the wiphy to validate against 512 * @chandef: the channel definition to check 513 * @iftype: the interface type as specified in &enum nl80211_iftype 514 * Returns: 515 * 1 if radar detection is required, 0 if it is not, < 0 on error 516 */ 517 int cfg80211_chandef_dfs_required(struct wiphy *wiphy, 518 const struct cfg80211_chan_def *chandef, 519 enum nl80211_iftype iftype); 520 521 /** 522 * ieee80211_chandef_rate_flags - returns rate flags for a channel 523 * 524 * In some channel types, not all rates may be used - for example CCK 525 * rates may not be used in 5/10 MHz channels. 526 * 527 * @chandef: channel definition for the channel 528 * 529 * Returns: rate flags which apply for this channel 530 */ 531 static inline enum ieee80211_rate_flags 532 ieee80211_chandef_rate_flags(struct cfg80211_chan_def *chandef) 533 { 534 switch (chandef->width) { 535 case NL80211_CHAN_WIDTH_5: 536 return IEEE80211_RATE_SUPPORTS_5MHZ; 537 case NL80211_CHAN_WIDTH_10: 538 return IEEE80211_RATE_SUPPORTS_10MHZ; 539 default: 540 break; 541 } 542 return 0; 543 } 544 545 /** 546 * ieee80211_chandef_max_power - maximum transmission power for the chandef 547 * 548 * In some regulations, the transmit power may depend on the configured channel 549 * bandwidth which may be defined as dBm/MHz. This function returns the actual 550 * max_power for non-standard (20 MHz) channels. 551 * 552 * @chandef: channel definition for the channel 553 * 554 * Returns: maximum allowed transmission power in dBm for the chandef 555 */ 556 static inline int 557 ieee80211_chandef_max_power(struct cfg80211_chan_def *chandef) 558 { 559 switch (chandef->width) { 560 case NL80211_CHAN_WIDTH_5: 561 return min(chandef->chan->max_reg_power - 6, 562 chandef->chan->max_power); 563 case NL80211_CHAN_WIDTH_10: 564 return min(chandef->chan->max_reg_power - 3, 565 chandef->chan->max_power); 566 default: 567 break; 568 } 569 return chandef->chan->max_power; 570 } 571 572 /** 573 * enum survey_info_flags - survey information flags 574 * 575 * @SURVEY_INFO_NOISE_DBM: noise (in dBm) was filled in 576 * @SURVEY_INFO_IN_USE: channel is currently being used 577 * @SURVEY_INFO_TIME: active time (in ms) was filled in 578 * @SURVEY_INFO_TIME_BUSY: busy time was filled in 579 * @SURVEY_INFO_TIME_EXT_BUSY: extension channel busy time was filled in 580 * @SURVEY_INFO_TIME_RX: receive time was filled in 581 * @SURVEY_INFO_TIME_TX: transmit time was filled in 582 * @SURVEY_INFO_TIME_SCAN: scan time was filled in 583 * 584 * Used by the driver to indicate which info in &struct survey_info 585 * it has filled in during the get_survey(). 586 */ 587 enum survey_info_flags { 588 SURVEY_INFO_NOISE_DBM = BIT(0), 589 SURVEY_INFO_IN_USE = BIT(1), 590 SURVEY_INFO_TIME = BIT(2), 591 SURVEY_INFO_TIME_BUSY = BIT(3), 592 SURVEY_INFO_TIME_EXT_BUSY = BIT(4), 593 SURVEY_INFO_TIME_RX = BIT(5), 594 SURVEY_INFO_TIME_TX = BIT(6), 595 SURVEY_INFO_TIME_SCAN = BIT(7), 596 }; 597 598 /** 599 * struct survey_info - channel survey response 600 * 601 * @channel: the channel this survey record reports, may be %NULL for a single 602 * record to report global statistics 603 * @filled: bitflag of flags from &enum survey_info_flags 604 * @noise: channel noise in dBm. This and all following fields are 605 * optional 606 * @time: amount of time in ms the radio was turn on (on the channel) 607 * @time_busy: amount of time the primary channel was sensed busy 608 * @time_ext_busy: amount of time the extension channel was sensed busy 609 * @time_rx: amount of time the radio spent receiving data 610 * @time_tx: amount of time the radio spent transmitting data 611 * @time_scan: amount of time the radio spent for scanning 612 * 613 * Used by dump_survey() to report back per-channel survey information. 614 * 615 * This structure can later be expanded with things like 616 * channel duty cycle etc. 617 */ 618 struct survey_info { 619 struct ieee80211_channel *channel; 620 u64 time; 621 u64 time_busy; 622 u64 time_ext_busy; 623 u64 time_rx; 624 u64 time_tx; 625 u64 time_scan; 626 u32 filled; 627 s8 noise; 628 }; 629 630 #define CFG80211_MAX_WEP_KEYS 4 631 632 /** 633 * struct cfg80211_crypto_settings - Crypto settings 634 * @wpa_versions: indicates which, if any, WPA versions are enabled 635 * (from enum nl80211_wpa_versions) 636 * @cipher_group: group key cipher suite (or 0 if unset) 637 * @n_ciphers_pairwise: number of AP supported unicast ciphers 638 * @ciphers_pairwise: unicast key cipher suites 639 * @n_akm_suites: number of AKM suites 640 * @akm_suites: AKM suites 641 * @control_port: Whether user space controls IEEE 802.1X port, i.e., 642 * sets/clears %NL80211_STA_FLAG_AUTHORIZED. If true, the driver is 643 * required to assume that the port is unauthorized until authorized by 644 * user space. Otherwise, port is marked authorized by default. 645 * @control_port_ethertype: the control port protocol that should be 646 * allowed through even on unauthorized ports 647 * @control_port_no_encrypt: TRUE to prevent encryption of control port 648 * protocol frames. 649 * @wep_keys: static WEP keys, if not NULL points to an array of 650 * CFG80211_MAX_WEP_KEYS WEP keys 651 * @wep_tx_key: key index (0..3) of the default TX static WEP key 652 * @psk: PSK (for devices supporting 4-way-handshake offload) 653 */ 654 struct cfg80211_crypto_settings { 655 u32 wpa_versions; 656 u32 cipher_group; 657 int n_ciphers_pairwise; 658 u32 ciphers_pairwise[NL80211_MAX_NR_CIPHER_SUITES]; 659 int n_akm_suites; 660 u32 akm_suites[NL80211_MAX_NR_AKM_SUITES]; 661 bool control_port; 662 __be16 control_port_ethertype; 663 bool control_port_no_encrypt; 664 struct key_params *wep_keys; 665 int wep_tx_key; 666 const u8 *psk; 667 }; 668 669 /** 670 * struct cfg80211_beacon_data - beacon data 671 * @head: head portion of beacon (before TIM IE) 672 * or %NULL if not changed 673 * @tail: tail portion of beacon (after TIM IE) 674 * or %NULL if not changed 675 * @head_len: length of @head 676 * @tail_len: length of @tail 677 * @beacon_ies: extra information element(s) to add into Beacon frames or %NULL 678 * @beacon_ies_len: length of beacon_ies in octets 679 * @proberesp_ies: extra information element(s) to add into Probe Response 680 * frames or %NULL 681 * @proberesp_ies_len: length of proberesp_ies in octets 682 * @assocresp_ies: extra information element(s) to add into (Re)Association 683 * Response frames or %NULL 684 * @assocresp_ies_len: length of assocresp_ies in octets 685 * @probe_resp_len: length of probe response template (@probe_resp) 686 * @probe_resp: probe response template (AP mode only) 687 */ 688 struct cfg80211_beacon_data { 689 const u8 *head, *tail; 690 const u8 *beacon_ies; 691 const u8 *proberesp_ies; 692 const u8 *assocresp_ies; 693 const u8 *probe_resp; 694 695 size_t head_len, tail_len; 696 size_t beacon_ies_len; 697 size_t proberesp_ies_len; 698 size_t assocresp_ies_len; 699 size_t probe_resp_len; 700 }; 701 702 struct mac_address { 703 u8 addr[ETH_ALEN]; 704 }; 705 706 /** 707 * struct cfg80211_acl_data - Access control list data 708 * 709 * @acl_policy: ACL policy to be applied on the station's 710 * entry specified by mac_addr 711 * @n_acl_entries: Number of MAC address entries passed 712 * @mac_addrs: List of MAC addresses of stations to be used for ACL 713 */ 714 struct cfg80211_acl_data { 715 enum nl80211_acl_policy acl_policy; 716 int n_acl_entries; 717 718 /* Keep it last */ 719 struct mac_address mac_addrs[]; 720 }; 721 722 /* 723 * cfg80211_bitrate_mask - masks for bitrate control 724 */ 725 struct cfg80211_bitrate_mask { 726 struct { 727 u32 legacy; 728 u8 ht_mcs[IEEE80211_HT_MCS_MASK_LEN]; 729 u16 vht_mcs[NL80211_VHT_NSS_MAX]; 730 enum nl80211_txrate_gi gi; 731 } control[NUM_NL80211_BANDS]; 732 }; 733 734 /** 735 * struct cfg80211_ap_settings - AP configuration 736 * 737 * Used to configure an AP interface. 738 * 739 * @chandef: defines the channel to use 740 * @beacon: beacon data 741 * @beacon_interval: beacon interval 742 * @dtim_period: DTIM period 743 * @ssid: SSID to be used in the BSS (note: may be %NULL if not provided from 744 * user space) 745 * @ssid_len: length of @ssid 746 * @hidden_ssid: whether to hide the SSID in Beacon/Probe Response frames 747 * @crypto: crypto settings 748 * @privacy: the BSS uses privacy 749 * @auth_type: Authentication type (algorithm) 750 * @smps_mode: SMPS mode 751 * @inactivity_timeout: time in seconds to determine station's inactivity. 752 * @p2p_ctwindow: P2P CT Window 753 * @p2p_opp_ps: P2P opportunistic PS 754 * @acl: ACL configuration used by the drivers which has support for 755 * MAC address based access control 756 * @pbss: If set, start as a PCP instead of AP. Relevant for DMG 757 * networks. 758 * @beacon_rate: bitrate to be used for beacons 759 * @ht_cap: HT capabilities (or %NULL if HT isn't enabled) 760 * @vht_cap: VHT capabilities (or %NULL if VHT isn't enabled) 761 * @ht_required: stations must support HT 762 * @vht_required: stations must support VHT 763 */ 764 struct cfg80211_ap_settings { 765 struct cfg80211_chan_def chandef; 766 767 struct cfg80211_beacon_data beacon; 768 769 int beacon_interval, dtim_period; 770 const u8 *ssid; 771 size_t ssid_len; 772 enum nl80211_hidden_ssid hidden_ssid; 773 struct cfg80211_crypto_settings crypto; 774 bool privacy; 775 enum nl80211_auth_type auth_type; 776 enum nl80211_smps_mode smps_mode; 777 int inactivity_timeout; 778 u8 p2p_ctwindow; 779 bool p2p_opp_ps; 780 const struct cfg80211_acl_data *acl; 781 bool pbss; 782 struct cfg80211_bitrate_mask beacon_rate; 783 784 const struct ieee80211_ht_cap *ht_cap; 785 const struct ieee80211_vht_cap *vht_cap; 786 bool ht_required, vht_required; 787 }; 788 789 /** 790 * struct cfg80211_csa_settings - channel switch settings 791 * 792 * Used for channel switch 793 * 794 * @chandef: defines the channel to use after the switch 795 * @beacon_csa: beacon data while performing the switch 796 * @counter_offsets_beacon: offsets of the counters within the beacon (tail) 797 * @counter_offsets_presp: offsets of the counters within the probe response 798 * @n_counter_offsets_beacon: number of csa counters the beacon (tail) 799 * @n_counter_offsets_presp: number of csa counters in the probe response 800 * @beacon_after: beacon data to be used on the new channel 801 * @radar_required: whether radar detection is required on the new channel 802 * @block_tx: whether transmissions should be blocked while changing 803 * @count: number of beacons until switch 804 */ 805 struct cfg80211_csa_settings { 806 struct cfg80211_chan_def chandef; 807 struct cfg80211_beacon_data beacon_csa; 808 const u16 *counter_offsets_beacon; 809 const u16 *counter_offsets_presp; 810 unsigned int n_counter_offsets_beacon; 811 unsigned int n_counter_offsets_presp; 812 struct cfg80211_beacon_data beacon_after; 813 bool radar_required; 814 bool block_tx; 815 u8 count; 816 }; 817 818 /** 819 * struct iface_combination_params - input parameters for interface combinations 820 * 821 * Used to pass interface combination parameters 822 * 823 * @num_different_channels: the number of different channels we want 824 * to use for verification 825 * @radar_detect: a bitmap where each bit corresponds to a channel 826 * width where radar detection is needed, as in the definition of 827 * &struct ieee80211_iface_combination.@radar_detect_widths 828 * @iftype_num: array with the number of interfaces of each interface 829 * type. The index is the interface type as specified in &enum 830 * nl80211_iftype. 831 * @new_beacon_int: set this to the beacon interval of a new interface 832 * that's not operating yet, if such is to be checked as part of 833 * the verification 834 */ 835 struct iface_combination_params { 836 int num_different_channels; 837 u8 radar_detect; 838 int iftype_num[NUM_NL80211_IFTYPES]; 839 u32 new_beacon_int; 840 }; 841 842 /** 843 * enum station_parameters_apply_mask - station parameter values to apply 844 * @STATION_PARAM_APPLY_UAPSD: apply new uAPSD parameters (uapsd_queues, max_sp) 845 * @STATION_PARAM_APPLY_CAPABILITY: apply new capability 846 * @STATION_PARAM_APPLY_PLINK_STATE: apply new plink state 847 * 848 * Not all station parameters have in-band "no change" signalling, 849 * for those that don't these flags will are used. 850 */ 851 enum station_parameters_apply_mask { 852 STATION_PARAM_APPLY_UAPSD = BIT(0), 853 STATION_PARAM_APPLY_CAPABILITY = BIT(1), 854 STATION_PARAM_APPLY_PLINK_STATE = BIT(2), 855 }; 856 857 /** 858 * struct station_parameters - station parameters 859 * 860 * Used to change and create a new station. 861 * 862 * @vlan: vlan interface station should belong to 863 * @supported_rates: supported rates in IEEE 802.11 format 864 * (or NULL for no change) 865 * @supported_rates_len: number of supported rates 866 * @sta_flags_mask: station flags that changed 867 * (bitmask of BIT(%NL80211_STA_FLAG_...)) 868 * @sta_flags_set: station flags values 869 * (bitmask of BIT(%NL80211_STA_FLAG_...)) 870 * @listen_interval: listen interval or -1 for no change 871 * @aid: AID or zero for no change 872 * @peer_aid: mesh peer AID or zero for no change 873 * @plink_action: plink action to take 874 * @plink_state: set the peer link state for a station 875 * @ht_capa: HT capabilities of station 876 * @vht_capa: VHT capabilities of station 877 * @uapsd_queues: bitmap of queues configured for uapsd. same format 878 * as the AC bitmap in the QoS info field 879 * @max_sp: max Service Period. same format as the MAX_SP in the 880 * QoS info field (but already shifted down) 881 * @sta_modify_mask: bitmap indicating which parameters changed 882 * (for those that don't have a natural "no change" value), 883 * see &enum station_parameters_apply_mask 884 * @local_pm: local link-specific mesh power save mode (no change when set 885 * to unknown) 886 * @capability: station capability 887 * @ext_capab: extended capabilities of the station 888 * @ext_capab_len: number of extended capabilities 889 * @supported_channels: supported channels in IEEE 802.11 format 890 * @supported_channels_len: number of supported channels 891 * @supported_oper_classes: supported oper classes in IEEE 802.11 format 892 * @supported_oper_classes_len: number of supported operating classes 893 * @opmode_notif: operating mode field from Operating Mode Notification 894 * @opmode_notif_used: information if operating mode field is used 895 * @support_p2p_ps: information if station supports P2P PS mechanism 896 */ 897 struct station_parameters { 898 const u8 *supported_rates; 899 struct net_device *vlan; 900 u32 sta_flags_mask, sta_flags_set; 901 u32 sta_modify_mask; 902 int listen_interval; 903 u16 aid; 904 u16 peer_aid; 905 u8 supported_rates_len; 906 u8 plink_action; 907 u8 plink_state; 908 const struct ieee80211_ht_cap *ht_capa; 909 const struct ieee80211_vht_cap *vht_capa; 910 u8 uapsd_queues; 911 u8 max_sp; 912 enum nl80211_mesh_power_mode local_pm; 913 u16 capability; 914 const u8 *ext_capab; 915 u8 ext_capab_len; 916 const u8 *supported_channels; 917 u8 supported_channels_len; 918 const u8 *supported_oper_classes; 919 u8 supported_oper_classes_len; 920 u8 opmode_notif; 921 bool opmode_notif_used; 922 int support_p2p_ps; 923 }; 924 925 /** 926 * struct station_del_parameters - station deletion parameters 927 * 928 * Used to delete a station entry (or all stations). 929 * 930 * @mac: MAC address of the station to remove or NULL to remove all stations 931 * @subtype: Management frame subtype to use for indicating removal 932 * (10 = Disassociation, 12 = Deauthentication) 933 * @reason_code: Reason code for the Disassociation/Deauthentication frame 934 */ 935 struct station_del_parameters { 936 const u8 *mac; 937 u8 subtype; 938 u16 reason_code; 939 }; 940 941 /** 942 * enum cfg80211_station_type - the type of station being modified 943 * @CFG80211_STA_AP_CLIENT: client of an AP interface 944 * @CFG80211_STA_AP_CLIENT_UNASSOC: client of an AP interface that is still 945 * unassociated (update properties for this type of client is permitted) 946 * @CFG80211_STA_AP_MLME_CLIENT: client of an AP interface that has 947 * the AP MLME in the device 948 * @CFG80211_STA_AP_STA: AP station on managed interface 949 * @CFG80211_STA_IBSS: IBSS station 950 * @CFG80211_STA_TDLS_PEER_SETUP: TDLS peer on managed interface (dummy entry 951 * while TDLS setup is in progress, it moves out of this state when 952 * being marked authorized; use this only if TDLS with external setup is 953 * supported/used) 954 * @CFG80211_STA_TDLS_PEER_ACTIVE: TDLS peer on managed interface (active 955 * entry that is operating, has been marked authorized by userspace) 956 * @CFG80211_STA_MESH_PEER_KERNEL: peer on mesh interface (kernel managed) 957 * @CFG80211_STA_MESH_PEER_USER: peer on mesh interface (user managed) 958 */ 959 enum cfg80211_station_type { 960 CFG80211_STA_AP_CLIENT, 961 CFG80211_STA_AP_CLIENT_UNASSOC, 962 CFG80211_STA_AP_MLME_CLIENT, 963 CFG80211_STA_AP_STA, 964 CFG80211_STA_IBSS, 965 CFG80211_STA_TDLS_PEER_SETUP, 966 CFG80211_STA_TDLS_PEER_ACTIVE, 967 CFG80211_STA_MESH_PEER_KERNEL, 968 CFG80211_STA_MESH_PEER_USER, 969 }; 970 971 /** 972 * cfg80211_check_station_change - validate parameter changes 973 * @wiphy: the wiphy this operates on 974 * @params: the new parameters for a station 975 * @statype: the type of station being modified 976 * 977 * Utility function for the @change_station driver method. Call this function 978 * with the appropriate station type looking up the station (and checking that 979 * it exists). It will verify whether the station change is acceptable, and if 980 * not will return an error code. Note that it may modify the parameters for 981 * backward compatibility reasons, so don't use them before calling this. 982 */ 983 int cfg80211_check_station_change(struct wiphy *wiphy, 984 struct station_parameters *params, 985 enum cfg80211_station_type statype); 986 987 /** 988 * enum station_info_rate_flags - bitrate info flags 989 * 990 * Used by the driver to indicate the specific rate transmission 991 * type for 802.11n transmissions. 992 * 993 * @RATE_INFO_FLAGS_MCS: mcs field filled with HT MCS 994 * @RATE_INFO_FLAGS_VHT_MCS: mcs field filled with VHT MCS 995 * @RATE_INFO_FLAGS_SHORT_GI: 400ns guard interval 996 * @RATE_INFO_FLAGS_60G: 60GHz MCS 997 */ 998 enum rate_info_flags { 999 RATE_INFO_FLAGS_MCS = BIT(0), 1000 RATE_INFO_FLAGS_VHT_MCS = BIT(1), 1001 RATE_INFO_FLAGS_SHORT_GI = BIT(2), 1002 RATE_INFO_FLAGS_60G = BIT(3), 1003 }; 1004 1005 /** 1006 * enum rate_info_bw - rate bandwidth information 1007 * 1008 * Used by the driver to indicate the rate bandwidth. 1009 * 1010 * @RATE_INFO_BW_5: 5 MHz bandwidth 1011 * @RATE_INFO_BW_10: 10 MHz bandwidth 1012 * @RATE_INFO_BW_20: 20 MHz bandwidth 1013 * @RATE_INFO_BW_40: 40 MHz bandwidth 1014 * @RATE_INFO_BW_80: 80 MHz bandwidth 1015 * @RATE_INFO_BW_160: 160 MHz bandwidth 1016 */ 1017 enum rate_info_bw { 1018 RATE_INFO_BW_20 = 0, 1019 RATE_INFO_BW_5, 1020 RATE_INFO_BW_10, 1021 RATE_INFO_BW_40, 1022 RATE_INFO_BW_80, 1023 RATE_INFO_BW_160, 1024 }; 1025 1026 /** 1027 * struct rate_info - bitrate information 1028 * 1029 * Information about a receiving or transmitting bitrate 1030 * 1031 * @flags: bitflag of flags from &enum rate_info_flags 1032 * @mcs: mcs index if struct describes a 802.11n bitrate 1033 * @legacy: bitrate in 100kbit/s for 802.11abg 1034 * @nss: number of streams (VHT only) 1035 * @bw: bandwidth (from &enum rate_info_bw) 1036 */ 1037 struct rate_info { 1038 u8 flags; 1039 u8 mcs; 1040 u16 legacy; 1041 u8 nss; 1042 u8 bw; 1043 }; 1044 1045 /** 1046 * enum station_info_rate_flags - bitrate info flags 1047 * 1048 * Used by the driver to indicate the specific rate transmission 1049 * type for 802.11n transmissions. 1050 * 1051 * @BSS_PARAM_FLAGS_CTS_PROT: whether CTS protection is enabled 1052 * @BSS_PARAM_FLAGS_SHORT_PREAMBLE: whether short preamble is enabled 1053 * @BSS_PARAM_FLAGS_SHORT_SLOT_TIME: whether short slot time is enabled 1054 */ 1055 enum bss_param_flags { 1056 BSS_PARAM_FLAGS_CTS_PROT = 1<<0, 1057 BSS_PARAM_FLAGS_SHORT_PREAMBLE = 1<<1, 1058 BSS_PARAM_FLAGS_SHORT_SLOT_TIME = 1<<2, 1059 }; 1060 1061 /** 1062 * struct sta_bss_parameters - BSS parameters for the attached station 1063 * 1064 * Information about the currently associated BSS 1065 * 1066 * @flags: bitflag of flags from &enum bss_param_flags 1067 * @dtim_period: DTIM period for the BSS 1068 * @beacon_interval: beacon interval 1069 */ 1070 struct sta_bss_parameters { 1071 u8 flags; 1072 u8 dtim_period; 1073 u16 beacon_interval; 1074 }; 1075 1076 /** 1077 * struct cfg80211_tid_stats - per-TID statistics 1078 * @filled: bitmap of flags using the bits of &enum nl80211_tid_stats to 1079 * indicate the relevant values in this struct are filled 1080 * @rx_msdu: number of received MSDUs 1081 * @tx_msdu: number of (attempted) transmitted MSDUs 1082 * @tx_msdu_retries: number of retries (not counting the first) for 1083 * transmitted MSDUs 1084 * @tx_msdu_failed: number of failed transmitted MSDUs 1085 */ 1086 struct cfg80211_tid_stats { 1087 u32 filled; 1088 u64 rx_msdu; 1089 u64 tx_msdu; 1090 u64 tx_msdu_retries; 1091 u64 tx_msdu_failed; 1092 }; 1093 1094 #define IEEE80211_MAX_CHAINS 4 1095 1096 /** 1097 * struct station_info - station information 1098 * 1099 * Station information filled by driver for get_station() and dump_station. 1100 * 1101 * @filled: bitflag of flags using the bits of &enum nl80211_sta_info to 1102 * indicate the relevant values in this struct for them 1103 * @connected_time: time(in secs) since a station is last connected 1104 * @inactive_time: time since last station activity (tx/rx) in milliseconds 1105 * @rx_bytes: bytes (size of MPDUs) received from this station 1106 * @tx_bytes: bytes (size of MPDUs) transmitted to this station 1107 * @llid: mesh local link id 1108 * @plid: mesh peer link id 1109 * @plink_state: mesh peer link state 1110 * @signal: The signal strength, type depends on the wiphy's signal_type. 1111 * For CFG80211_SIGNAL_TYPE_MBM, value is expressed in _dBm_. 1112 * @signal_avg: Average signal strength, type depends on the wiphy's signal_type. 1113 * For CFG80211_SIGNAL_TYPE_MBM, value is expressed in _dBm_. 1114 * @chains: bitmask for filled values in @chain_signal, @chain_signal_avg 1115 * @chain_signal: per-chain signal strength of last received packet in dBm 1116 * @chain_signal_avg: per-chain signal strength average in dBm 1117 * @txrate: current unicast bitrate from this station 1118 * @rxrate: current unicast bitrate to this station 1119 * @rx_packets: packets (MSDUs & MMPDUs) received from this station 1120 * @tx_packets: packets (MSDUs & MMPDUs) transmitted to this station 1121 * @tx_retries: cumulative retry counts (MPDUs) 1122 * @tx_failed: number of failed transmissions (MPDUs) (retries exceeded, no ACK) 1123 * @rx_dropped_misc: Dropped for un-specified reason. 1124 * @bss_param: current BSS parameters 1125 * @generation: generation number for nl80211 dumps. 1126 * This number should increase every time the list of stations 1127 * changes, i.e. when a station is added or removed, so that 1128 * userspace can tell whether it got a consistent snapshot. 1129 * @assoc_req_ies: IEs from (Re)Association Request. 1130 * This is used only when in AP mode with drivers that do not use 1131 * user space MLME/SME implementation. The information is provided for 1132 * the cfg80211_new_sta() calls to notify user space of the IEs. 1133 * @assoc_req_ies_len: Length of assoc_req_ies buffer in octets. 1134 * @sta_flags: station flags mask & values 1135 * @beacon_loss_count: Number of times beacon loss event has triggered. 1136 * @t_offset: Time offset of the station relative to this host. 1137 * @local_pm: local mesh STA power save mode 1138 * @peer_pm: peer mesh STA power save mode 1139 * @nonpeer_pm: non-peer mesh STA power save mode 1140 * @expected_throughput: expected throughput in kbps (including 802.11 headers) 1141 * towards this station. 1142 * @rx_beacon: number of beacons received from this peer 1143 * @rx_beacon_signal_avg: signal strength average (in dBm) for beacons received 1144 * from this peer 1145 * @rx_duration: aggregate PPDU duration(usecs) for all the frames from a peer 1146 * @pertid: per-TID statistics, see &struct cfg80211_tid_stats, using the last 1147 * (IEEE80211_NUM_TIDS) index for MSDUs not encapsulated in QoS-MPDUs. 1148 */ 1149 struct station_info { 1150 u64 filled; 1151 u32 connected_time; 1152 u32 inactive_time; 1153 u64 rx_bytes; 1154 u64 tx_bytes; 1155 u16 llid; 1156 u16 plid; 1157 u8 plink_state; 1158 s8 signal; 1159 s8 signal_avg; 1160 1161 u8 chains; 1162 s8 chain_signal[IEEE80211_MAX_CHAINS]; 1163 s8 chain_signal_avg[IEEE80211_MAX_CHAINS]; 1164 1165 struct rate_info txrate; 1166 struct rate_info rxrate; 1167 u32 rx_packets; 1168 u32 tx_packets; 1169 u32 tx_retries; 1170 u32 tx_failed; 1171 u32 rx_dropped_misc; 1172 struct sta_bss_parameters bss_param; 1173 struct nl80211_sta_flag_update sta_flags; 1174 1175 int generation; 1176 1177 const u8 *assoc_req_ies; 1178 size_t assoc_req_ies_len; 1179 1180 u32 beacon_loss_count; 1181 s64 t_offset; 1182 enum nl80211_mesh_power_mode local_pm; 1183 enum nl80211_mesh_power_mode peer_pm; 1184 enum nl80211_mesh_power_mode nonpeer_pm; 1185 1186 u32 expected_throughput; 1187 1188 u64 rx_beacon; 1189 u64 rx_duration; 1190 u8 rx_beacon_signal_avg; 1191 struct cfg80211_tid_stats pertid[IEEE80211_NUM_TIDS + 1]; 1192 }; 1193 1194 #if IS_ENABLED(CONFIG_CFG80211) 1195 /** 1196 * cfg80211_get_station - retrieve information about a given station 1197 * @dev: the device where the station is supposed to be connected to 1198 * @mac_addr: the mac address of the station of interest 1199 * @sinfo: pointer to the structure to fill with the information 1200 * 1201 * Returns 0 on success and sinfo is filled with the available information 1202 * otherwise returns a negative error code and the content of sinfo has to be 1203 * considered undefined. 1204 */ 1205 int cfg80211_get_station(struct net_device *dev, const u8 *mac_addr, 1206 struct station_info *sinfo); 1207 #else 1208 static inline int cfg80211_get_station(struct net_device *dev, 1209 const u8 *mac_addr, 1210 struct station_info *sinfo) 1211 { 1212 return -ENOENT; 1213 } 1214 #endif 1215 1216 /** 1217 * enum monitor_flags - monitor flags 1218 * 1219 * Monitor interface configuration flags. Note that these must be the bits 1220 * according to the nl80211 flags. 1221 * 1222 * @MONITOR_FLAG_CHANGED: set if the flags were changed 1223 * @MONITOR_FLAG_FCSFAIL: pass frames with bad FCS 1224 * @MONITOR_FLAG_PLCPFAIL: pass frames with bad PLCP 1225 * @MONITOR_FLAG_CONTROL: pass control frames 1226 * @MONITOR_FLAG_OTHER_BSS: disable BSSID filtering 1227 * @MONITOR_FLAG_COOK_FRAMES: report frames after processing 1228 * @MONITOR_FLAG_ACTIVE: active monitor, ACKs frames on its MAC address 1229 */ 1230 enum monitor_flags { 1231 MONITOR_FLAG_CHANGED = 1<<__NL80211_MNTR_FLAG_INVALID, 1232 MONITOR_FLAG_FCSFAIL = 1<<NL80211_MNTR_FLAG_FCSFAIL, 1233 MONITOR_FLAG_PLCPFAIL = 1<<NL80211_MNTR_FLAG_PLCPFAIL, 1234 MONITOR_FLAG_CONTROL = 1<<NL80211_MNTR_FLAG_CONTROL, 1235 MONITOR_FLAG_OTHER_BSS = 1<<NL80211_MNTR_FLAG_OTHER_BSS, 1236 MONITOR_FLAG_COOK_FRAMES = 1<<NL80211_MNTR_FLAG_COOK_FRAMES, 1237 MONITOR_FLAG_ACTIVE = 1<<NL80211_MNTR_FLAG_ACTIVE, 1238 }; 1239 1240 /** 1241 * enum mpath_info_flags - mesh path information flags 1242 * 1243 * Used by the driver to indicate which info in &struct mpath_info it has filled 1244 * in during get_station() or dump_station(). 1245 * 1246 * @MPATH_INFO_FRAME_QLEN: @frame_qlen filled 1247 * @MPATH_INFO_SN: @sn filled 1248 * @MPATH_INFO_METRIC: @metric filled 1249 * @MPATH_INFO_EXPTIME: @exptime filled 1250 * @MPATH_INFO_DISCOVERY_TIMEOUT: @discovery_timeout filled 1251 * @MPATH_INFO_DISCOVERY_RETRIES: @discovery_retries filled 1252 * @MPATH_INFO_FLAGS: @flags filled 1253 */ 1254 enum mpath_info_flags { 1255 MPATH_INFO_FRAME_QLEN = BIT(0), 1256 MPATH_INFO_SN = BIT(1), 1257 MPATH_INFO_METRIC = BIT(2), 1258 MPATH_INFO_EXPTIME = BIT(3), 1259 MPATH_INFO_DISCOVERY_TIMEOUT = BIT(4), 1260 MPATH_INFO_DISCOVERY_RETRIES = BIT(5), 1261 MPATH_INFO_FLAGS = BIT(6), 1262 }; 1263 1264 /** 1265 * struct mpath_info - mesh path information 1266 * 1267 * Mesh path information filled by driver for get_mpath() and dump_mpath(). 1268 * 1269 * @filled: bitfield of flags from &enum mpath_info_flags 1270 * @frame_qlen: number of queued frames for this destination 1271 * @sn: target sequence number 1272 * @metric: metric (cost) of this mesh path 1273 * @exptime: expiration time for the mesh path from now, in msecs 1274 * @flags: mesh path flags 1275 * @discovery_timeout: total mesh path discovery timeout, in msecs 1276 * @discovery_retries: mesh path discovery retries 1277 * @generation: generation number for nl80211 dumps. 1278 * This number should increase every time the list of mesh paths 1279 * changes, i.e. when a station is added or removed, so that 1280 * userspace can tell whether it got a consistent snapshot. 1281 */ 1282 struct mpath_info { 1283 u32 filled; 1284 u32 frame_qlen; 1285 u32 sn; 1286 u32 metric; 1287 u32 exptime; 1288 u32 discovery_timeout; 1289 u8 discovery_retries; 1290 u8 flags; 1291 1292 int generation; 1293 }; 1294 1295 /** 1296 * struct bss_parameters - BSS parameters 1297 * 1298 * Used to change BSS parameters (mainly for AP mode). 1299 * 1300 * @use_cts_prot: Whether to use CTS protection 1301 * (0 = no, 1 = yes, -1 = do not change) 1302 * @use_short_preamble: Whether the use of short preambles is allowed 1303 * (0 = no, 1 = yes, -1 = do not change) 1304 * @use_short_slot_time: Whether the use of short slot time is allowed 1305 * (0 = no, 1 = yes, -1 = do not change) 1306 * @basic_rates: basic rates in IEEE 802.11 format 1307 * (or NULL for no change) 1308 * @basic_rates_len: number of basic rates 1309 * @ap_isolate: do not forward packets between connected stations 1310 * @ht_opmode: HT Operation mode 1311 * (u16 = opmode, -1 = do not change) 1312 * @p2p_ctwindow: P2P CT Window (-1 = no change) 1313 * @p2p_opp_ps: P2P opportunistic PS (-1 = no change) 1314 */ 1315 struct bss_parameters { 1316 int use_cts_prot; 1317 int use_short_preamble; 1318 int use_short_slot_time; 1319 const u8 *basic_rates; 1320 u8 basic_rates_len; 1321 int ap_isolate; 1322 int ht_opmode; 1323 s8 p2p_ctwindow, p2p_opp_ps; 1324 }; 1325 1326 /** 1327 * struct mesh_config - 802.11s mesh configuration 1328 * 1329 * These parameters can be changed while the mesh is active. 1330 * 1331 * @dot11MeshRetryTimeout: the initial retry timeout in millisecond units used 1332 * by the Mesh Peering Open message 1333 * @dot11MeshConfirmTimeout: the initial retry timeout in millisecond units 1334 * used by the Mesh Peering Open message 1335 * @dot11MeshHoldingTimeout: the confirm timeout in millisecond units used by 1336 * the mesh peering management to close a mesh peering 1337 * @dot11MeshMaxPeerLinks: the maximum number of peer links allowed on this 1338 * mesh interface 1339 * @dot11MeshMaxRetries: the maximum number of peer link open retries that can 1340 * be sent to establish a new peer link instance in a mesh 1341 * @dot11MeshTTL: the value of TTL field set at a source mesh STA 1342 * @element_ttl: the value of TTL field set at a mesh STA for path selection 1343 * elements 1344 * @auto_open_plinks: whether we should automatically open peer links when we 1345 * detect compatible mesh peers 1346 * @dot11MeshNbrOffsetMaxNeighbor: the maximum number of neighbors to 1347 * synchronize to for 11s default synchronization method 1348 * @dot11MeshHWMPmaxPREQretries: the number of action frames containing a PREQ 1349 * that an originator mesh STA can send to a particular path target 1350 * @path_refresh_time: how frequently to refresh mesh paths in milliseconds 1351 * @min_discovery_timeout: the minimum length of time to wait until giving up on 1352 * a path discovery in milliseconds 1353 * @dot11MeshHWMPactivePathTimeout: the time (in TUs) for which mesh STAs 1354 * receiving a PREQ shall consider the forwarding information from the 1355 * root to be valid. (TU = time unit) 1356 * @dot11MeshHWMPpreqMinInterval: the minimum interval of time (in TUs) during 1357 * which a mesh STA can send only one action frame containing a PREQ 1358 * element 1359 * @dot11MeshHWMPperrMinInterval: the minimum interval of time (in TUs) during 1360 * which a mesh STA can send only one Action frame containing a PERR 1361 * element 1362 * @dot11MeshHWMPnetDiameterTraversalTime: the interval of time (in TUs) that 1363 * it takes for an HWMP information element to propagate across the mesh 1364 * @dot11MeshHWMPRootMode: the configuration of a mesh STA as root mesh STA 1365 * @dot11MeshHWMPRannInterval: the interval of time (in TUs) between root 1366 * announcements are transmitted 1367 * @dot11MeshGateAnnouncementProtocol: whether to advertise that this mesh 1368 * station has access to a broader network beyond the MBSS. (This is 1369 * missnamed in draft 12.0: dot11MeshGateAnnouncementProtocol set to true 1370 * only means that the station will announce others it's a mesh gate, but 1371 * not necessarily using the gate announcement protocol. Still keeping the 1372 * same nomenclature to be in sync with the spec) 1373 * @dot11MeshForwarding: whether the Mesh STA is forwarding or non-forwarding 1374 * entity (default is TRUE - forwarding entity) 1375 * @rssi_threshold: the threshold for average signal strength of candidate 1376 * station to establish a peer link 1377 * @ht_opmode: mesh HT protection mode 1378 * 1379 * @dot11MeshHWMPactivePathToRootTimeout: The time (in TUs) for which mesh STAs 1380 * receiving a proactive PREQ shall consider the forwarding information to 1381 * the root mesh STA to be valid. 1382 * 1383 * @dot11MeshHWMProotInterval: The interval of time (in TUs) between proactive 1384 * PREQs are transmitted. 1385 * @dot11MeshHWMPconfirmationInterval: The minimum interval of time (in TUs) 1386 * during which a mesh STA can send only one Action frame containing 1387 * a PREQ element for root path confirmation. 1388 * @power_mode: The default mesh power save mode which will be the initial 1389 * setting for new peer links. 1390 * @dot11MeshAwakeWindowDuration: The duration in TUs the STA will remain awake 1391 * after transmitting its beacon. 1392 * @plink_timeout: If no tx activity is seen from a STA we've established 1393 * peering with for longer than this time (in seconds), then remove it 1394 * from the STA's list of peers. Default is 30 minutes. 1395 */ 1396 struct mesh_config { 1397 u16 dot11MeshRetryTimeout; 1398 u16 dot11MeshConfirmTimeout; 1399 u16 dot11MeshHoldingTimeout; 1400 u16 dot11MeshMaxPeerLinks; 1401 u8 dot11MeshMaxRetries; 1402 u8 dot11MeshTTL; 1403 u8 element_ttl; 1404 bool auto_open_plinks; 1405 u32 dot11MeshNbrOffsetMaxNeighbor; 1406 u8 dot11MeshHWMPmaxPREQretries; 1407 u32 path_refresh_time; 1408 u16 min_discovery_timeout; 1409 u32 dot11MeshHWMPactivePathTimeout; 1410 u16 dot11MeshHWMPpreqMinInterval; 1411 u16 dot11MeshHWMPperrMinInterval; 1412 u16 dot11MeshHWMPnetDiameterTraversalTime; 1413 u8 dot11MeshHWMPRootMode; 1414 u16 dot11MeshHWMPRannInterval; 1415 bool dot11MeshGateAnnouncementProtocol; 1416 bool dot11MeshForwarding; 1417 s32 rssi_threshold; 1418 u16 ht_opmode; 1419 u32 dot11MeshHWMPactivePathToRootTimeout; 1420 u16 dot11MeshHWMProotInterval; 1421 u16 dot11MeshHWMPconfirmationInterval; 1422 enum nl80211_mesh_power_mode power_mode; 1423 u16 dot11MeshAwakeWindowDuration; 1424 u32 plink_timeout; 1425 }; 1426 1427 /** 1428 * struct mesh_setup - 802.11s mesh setup configuration 1429 * @chandef: defines the channel to use 1430 * @mesh_id: the mesh ID 1431 * @mesh_id_len: length of the mesh ID, at least 1 and at most 32 bytes 1432 * @sync_method: which synchronization method to use 1433 * @path_sel_proto: which path selection protocol to use 1434 * @path_metric: which metric to use 1435 * @auth_id: which authentication method this mesh is using 1436 * @ie: vendor information elements (optional) 1437 * @ie_len: length of vendor information elements 1438 * @is_authenticated: this mesh requires authentication 1439 * @is_secure: this mesh uses security 1440 * @user_mpm: userspace handles all MPM functions 1441 * @dtim_period: DTIM period to use 1442 * @beacon_interval: beacon interval to use 1443 * @mcast_rate: multicat rate for Mesh Node [6Mbps is the default for 802.11a] 1444 * @basic_rates: basic rates to use when creating the mesh 1445 * @beacon_rate: bitrate to be used for beacons 1446 * @userspace_handles_dfs: whether user space controls DFS operation, i.e. 1447 * changes the channel when a radar is detected. This is required 1448 * to operate on DFS channels. 1449 * 1450 * These parameters are fixed when the mesh is created. 1451 */ 1452 struct mesh_setup { 1453 struct cfg80211_chan_def chandef; 1454 const u8 *mesh_id; 1455 u8 mesh_id_len; 1456 u8 sync_method; 1457 u8 path_sel_proto; 1458 u8 path_metric; 1459 u8 auth_id; 1460 const u8 *ie; 1461 u8 ie_len; 1462 bool is_authenticated; 1463 bool is_secure; 1464 bool user_mpm; 1465 u8 dtim_period; 1466 u16 beacon_interval; 1467 int mcast_rate[NUM_NL80211_BANDS]; 1468 u32 basic_rates; 1469 struct cfg80211_bitrate_mask beacon_rate; 1470 bool userspace_handles_dfs; 1471 }; 1472 1473 /** 1474 * struct ocb_setup - 802.11p OCB mode setup configuration 1475 * @chandef: defines the channel to use 1476 * 1477 * These parameters are fixed when connecting to the network 1478 */ 1479 struct ocb_setup { 1480 struct cfg80211_chan_def chandef; 1481 }; 1482 1483 /** 1484 * struct ieee80211_txq_params - TX queue parameters 1485 * @ac: AC identifier 1486 * @txop: Maximum burst time in units of 32 usecs, 0 meaning disabled 1487 * @cwmin: Minimum contention window [a value of the form 2^n-1 in the range 1488 * 1..32767] 1489 * @cwmax: Maximum contention window [a value of the form 2^n-1 in the range 1490 * 1..32767] 1491 * @aifs: Arbitration interframe space [0..255] 1492 */ 1493 struct ieee80211_txq_params { 1494 enum nl80211_ac ac; 1495 u16 txop; 1496 u16 cwmin; 1497 u16 cwmax; 1498 u8 aifs; 1499 }; 1500 1501 /** 1502 * DOC: Scanning and BSS list handling 1503 * 1504 * The scanning process itself is fairly simple, but cfg80211 offers quite 1505 * a bit of helper functionality. To start a scan, the scan operation will 1506 * be invoked with a scan definition. This scan definition contains the 1507 * channels to scan, and the SSIDs to send probe requests for (including the 1508 * wildcard, if desired). A passive scan is indicated by having no SSIDs to 1509 * probe. Additionally, a scan request may contain extra information elements 1510 * that should be added to the probe request. The IEs are guaranteed to be 1511 * well-formed, and will not exceed the maximum length the driver advertised 1512 * in the wiphy structure. 1513 * 1514 * When scanning finds a BSS, cfg80211 needs to be notified of that, because 1515 * it is responsible for maintaining the BSS list; the driver should not 1516 * maintain a list itself. For this notification, various functions exist. 1517 * 1518 * Since drivers do not maintain a BSS list, there are also a number of 1519 * functions to search for a BSS and obtain information about it from the 1520 * BSS structure cfg80211 maintains. The BSS list is also made available 1521 * to userspace. 1522 */ 1523 1524 /** 1525 * struct cfg80211_ssid - SSID description 1526 * @ssid: the SSID 1527 * @ssid_len: length of the ssid 1528 */ 1529 struct cfg80211_ssid { 1530 u8 ssid[IEEE80211_MAX_SSID_LEN]; 1531 u8 ssid_len; 1532 }; 1533 1534 /** 1535 * struct cfg80211_scan_info - information about completed scan 1536 * @scan_start_tsf: scan start time in terms of the TSF of the BSS that the 1537 * wireless device that requested the scan is connected to. If this 1538 * information is not available, this field is left zero. 1539 * @tsf_bssid: the BSSID according to which %scan_start_tsf is set. 1540 * @aborted: set to true if the scan was aborted for any reason, 1541 * userspace will be notified of that 1542 */ 1543 struct cfg80211_scan_info { 1544 u64 scan_start_tsf; 1545 u8 tsf_bssid[ETH_ALEN] __aligned(2); 1546 bool aborted; 1547 }; 1548 1549 /** 1550 * struct cfg80211_scan_request - scan request description 1551 * 1552 * @ssids: SSIDs to scan for (active scan only) 1553 * @n_ssids: number of SSIDs 1554 * @channels: channels to scan on. 1555 * @n_channels: total number of channels to scan 1556 * @scan_width: channel width for scanning 1557 * @ie: optional information element(s) to add into Probe Request or %NULL 1558 * @ie_len: length of ie in octets 1559 * @duration: how long to listen on each channel, in TUs. If 1560 * %duration_mandatory is not set, this is the maximum dwell time and 1561 * the actual dwell time may be shorter. 1562 * @duration_mandatory: if set, the scan duration must be as specified by the 1563 * %duration field. 1564 * @flags: bit field of flags controlling operation 1565 * @rates: bitmap of rates to advertise for each band 1566 * @wiphy: the wiphy this was for 1567 * @scan_start: time (in jiffies) when the scan started 1568 * @wdev: the wireless device to scan for 1569 * @info: (internal) information about completed scan 1570 * @notified: (internal) scan request was notified as done or aborted 1571 * @no_cck: used to send probe requests at non CCK rate in 2GHz band 1572 * @mac_addr: MAC address used with randomisation 1573 * @mac_addr_mask: MAC address mask used with randomisation, bits that 1574 * are 0 in the mask should be randomised, bits that are 1 should 1575 * be taken from the @mac_addr 1576 * @bssid: BSSID to scan for (most commonly, the wildcard BSSID) 1577 */ 1578 struct cfg80211_scan_request { 1579 struct cfg80211_ssid *ssids; 1580 int n_ssids; 1581 u32 n_channels; 1582 enum nl80211_bss_scan_width scan_width; 1583 const u8 *ie; 1584 size_t ie_len; 1585 u16 duration; 1586 bool duration_mandatory; 1587 u32 flags; 1588 1589 u32 rates[NUM_NL80211_BANDS]; 1590 1591 struct wireless_dev *wdev; 1592 1593 u8 mac_addr[ETH_ALEN] __aligned(2); 1594 u8 mac_addr_mask[ETH_ALEN] __aligned(2); 1595 u8 bssid[ETH_ALEN] __aligned(2); 1596 1597 /* internal */ 1598 struct wiphy *wiphy; 1599 unsigned long scan_start; 1600 struct cfg80211_scan_info info; 1601 bool notified; 1602 bool no_cck; 1603 1604 /* keep last */ 1605 struct ieee80211_channel *channels[0]; 1606 }; 1607 1608 static inline void get_random_mask_addr(u8 *buf, const u8 *addr, const u8 *mask) 1609 { 1610 int i; 1611 1612 get_random_bytes(buf, ETH_ALEN); 1613 for (i = 0; i < ETH_ALEN; i++) { 1614 buf[i] &= ~mask[i]; 1615 buf[i] |= addr[i] & mask[i]; 1616 } 1617 } 1618 1619 /** 1620 * struct cfg80211_match_set - sets of attributes to match 1621 * 1622 * @ssid: SSID to be matched; may be zero-length in case of BSSID match 1623 * or no match (RSSI only) 1624 * @bssid: BSSID to be matched; may be all-zero BSSID in case of SSID match 1625 * or no match (RSSI only) 1626 * @rssi_thold: don't report scan results below this threshold (in s32 dBm) 1627 */ 1628 struct cfg80211_match_set { 1629 struct cfg80211_ssid ssid; 1630 u8 bssid[ETH_ALEN]; 1631 s32 rssi_thold; 1632 }; 1633 1634 /** 1635 * struct cfg80211_sched_scan_plan - scan plan for scheduled scan 1636 * 1637 * @interval: interval between scheduled scan iterations. In seconds. 1638 * @iterations: number of scan iterations in this scan plan. Zero means 1639 * infinite loop. 1640 * The last scan plan will always have this parameter set to zero, 1641 * all other scan plans will have a finite number of iterations. 1642 */ 1643 struct cfg80211_sched_scan_plan { 1644 u32 interval; 1645 u32 iterations; 1646 }; 1647 1648 /** 1649 * struct cfg80211_bss_select_adjust - BSS selection with RSSI adjustment. 1650 * 1651 * @band: band of BSS which should match for RSSI level adjustment. 1652 * @delta: value of RSSI level adjustment. 1653 */ 1654 struct cfg80211_bss_select_adjust { 1655 enum nl80211_band band; 1656 s8 delta; 1657 }; 1658 1659 /** 1660 * struct cfg80211_sched_scan_request - scheduled scan request description 1661 * 1662 * @reqid: identifies this request. 1663 * @ssids: SSIDs to scan for (passed in the probe_reqs in active scans) 1664 * @n_ssids: number of SSIDs 1665 * @n_channels: total number of channels to scan 1666 * @scan_width: channel width for scanning 1667 * @ie: optional information element(s) to add into Probe Request or %NULL 1668 * @ie_len: length of ie in octets 1669 * @flags: bit field of flags controlling operation 1670 * @match_sets: sets of parameters to be matched for a scan result 1671 * entry to be considered valid and to be passed to the host 1672 * (others are filtered out). 1673 * If ommited, all results are passed. 1674 * @n_match_sets: number of match sets 1675 * @report_results: indicates that results were reported for this request 1676 * @wiphy: the wiphy this was for 1677 * @dev: the interface 1678 * @scan_start: start time of the scheduled scan 1679 * @channels: channels to scan 1680 * @min_rssi_thold: for drivers only supporting a single threshold, this 1681 * contains the minimum over all matchsets 1682 * @mac_addr: MAC address used with randomisation 1683 * @mac_addr_mask: MAC address mask used with randomisation, bits that 1684 * are 0 in the mask should be randomised, bits that are 1 should 1685 * be taken from the @mac_addr 1686 * @scan_plans: scan plans to be executed in this scheduled scan. Lowest 1687 * index must be executed first. 1688 * @n_scan_plans: number of scan plans, at least 1. 1689 * @rcu_head: RCU callback used to free the struct 1690 * @owner_nlportid: netlink portid of owner (if this should is a request 1691 * owned by a particular socket) 1692 * @nl_owner_dead: netlink owner socket was closed - this request be freed 1693 * @list: for keeping list of requests. 1694 * @delay: delay in seconds to use before starting the first scan 1695 * cycle. The driver may ignore this parameter and start 1696 * immediately (or at any other time), if this feature is not 1697 * supported. 1698 * @relative_rssi_set: Indicates whether @relative_rssi is set or not. 1699 * @relative_rssi: Relative RSSI threshold in dB to restrict scan result 1700 * reporting in connected state to cases where a matching BSS is determined 1701 * to have better or slightly worse RSSI than the current connected BSS. 1702 * The relative RSSI threshold values are ignored in disconnected state. 1703 * @rssi_adjust: delta dB of RSSI preference to be given to the BSSs that belong 1704 * to the specified band while deciding whether a better BSS is reported 1705 * using @relative_rssi. If delta is a negative number, the BSSs that 1706 * belong to the specified band will be penalized by delta dB in relative 1707 * comparisions. 1708 */ 1709 struct cfg80211_sched_scan_request { 1710 u64 reqid; 1711 struct cfg80211_ssid *ssids; 1712 int n_ssids; 1713 u32 n_channels; 1714 enum nl80211_bss_scan_width scan_width; 1715 const u8 *ie; 1716 size_t ie_len; 1717 u32 flags; 1718 struct cfg80211_match_set *match_sets; 1719 int n_match_sets; 1720 s32 min_rssi_thold; 1721 u32 delay; 1722 struct cfg80211_sched_scan_plan *scan_plans; 1723 int n_scan_plans; 1724 1725 u8 mac_addr[ETH_ALEN] __aligned(2); 1726 u8 mac_addr_mask[ETH_ALEN] __aligned(2); 1727 1728 bool relative_rssi_set; 1729 s8 relative_rssi; 1730 struct cfg80211_bss_select_adjust rssi_adjust; 1731 1732 /* internal */ 1733 struct wiphy *wiphy; 1734 struct net_device *dev; 1735 unsigned long scan_start; 1736 bool report_results; 1737 struct rcu_head rcu_head; 1738 u32 owner_nlportid; 1739 bool nl_owner_dead; 1740 struct list_head list; 1741 1742 /* keep last */ 1743 struct ieee80211_channel *channels[0]; 1744 }; 1745 1746 /** 1747 * enum cfg80211_signal_type - signal type 1748 * 1749 * @CFG80211_SIGNAL_TYPE_NONE: no signal strength information available 1750 * @CFG80211_SIGNAL_TYPE_MBM: signal strength in mBm (100*dBm) 1751 * @CFG80211_SIGNAL_TYPE_UNSPEC: signal strength, increasing from 0 through 100 1752 */ 1753 enum cfg80211_signal_type { 1754 CFG80211_SIGNAL_TYPE_NONE, 1755 CFG80211_SIGNAL_TYPE_MBM, 1756 CFG80211_SIGNAL_TYPE_UNSPEC, 1757 }; 1758 1759 /** 1760 * struct cfg80211_inform_bss - BSS inform data 1761 * @chan: channel the frame was received on 1762 * @scan_width: scan width that was used 1763 * @signal: signal strength value, according to the wiphy's 1764 * signal type 1765 * @boottime_ns: timestamp (CLOCK_BOOTTIME) when the information was 1766 * received; should match the time when the frame was actually 1767 * received by the device (not just by the host, in case it was 1768 * buffered on the device) and be accurate to about 10ms. 1769 * If the frame isn't buffered, just passing the return value of 1770 * ktime_get_boot_ns() is likely appropriate. 1771 * @parent_tsf: the time at the start of reception of the first octet of the 1772 * timestamp field of the frame. The time is the TSF of the BSS specified 1773 * by %parent_bssid. 1774 * @parent_bssid: the BSS according to which %parent_tsf is set. This is set to 1775 * the BSS that requested the scan in which the beacon/probe was received. 1776 */ 1777 struct cfg80211_inform_bss { 1778 struct ieee80211_channel *chan; 1779 enum nl80211_bss_scan_width scan_width; 1780 s32 signal; 1781 u64 boottime_ns; 1782 u64 parent_tsf; 1783 u8 parent_bssid[ETH_ALEN] __aligned(2); 1784 }; 1785 1786 /** 1787 * struct cfg80211_bss_ies - BSS entry IE data 1788 * @tsf: TSF contained in the frame that carried these IEs 1789 * @rcu_head: internal use, for freeing 1790 * @len: length of the IEs 1791 * @from_beacon: these IEs are known to come from a beacon 1792 * @data: IE data 1793 */ 1794 struct cfg80211_bss_ies { 1795 u64 tsf; 1796 struct rcu_head rcu_head; 1797 int len; 1798 bool from_beacon; 1799 u8 data[]; 1800 }; 1801 1802 /** 1803 * struct cfg80211_bss - BSS description 1804 * 1805 * This structure describes a BSS (which may also be a mesh network) 1806 * for use in scan results and similar. 1807 * 1808 * @channel: channel this BSS is on 1809 * @scan_width: width of the control channel 1810 * @bssid: BSSID of the BSS 1811 * @beacon_interval: the beacon interval as from the frame 1812 * @capability: the capability field in host byte order 1813 * @ies: the information elements (Note that there is no guarantee that these 1814 * are well-formed!); this is a pointer to either the beacon_ies or 1815 * proberesp_ies depending on whether Probe Response frame has been 1816 * received. It is always non-%NULL. 1817 * @beacon_ies: the information elements from the last Beacon frame 1818 * (implementation note: if @hidden_beacon_bss is set this struct doesn't 1819 * own the beacon_ies, but they're just pointers to the ones from the 1820 * @hidden_beacon_bss struct) 1821 * @proberesp_ies: the information elements from the last Probe Response frame 1822 * @hidden_beacon_bss: in case this BSS struct represents a probe response from 1823 * a BSS that hides the SSID in its beacon, this points to the BSS struct 1824 * that holds the beacon data. @beacon_ies is still valid, of course, and 1825 * points to the same data as hidden_beacon_bss->beacon_ies in that case. 1826 * @signal: signal strength value (type depends on the wiphy's signal_type) 1827 * @priv: private area for driver use, has at least wiphy->bss_priv_size bytes 1828 */ 1829 struct cfg80211_bss { 1830 struct ieee80211_channel *channel; 1831 enum nl80211_bss_scan_width scan_width; 1832 1833 const struct cfg80211_bss_ies __rcu *ies; 1834 const struct cfg80211_bss_ies __rcu *beacon_ies; 1835 const struct cfg80211_bss_ies __rcu *proberesp_ies; 1836 1837 struct cfg80211_bss *hidden_beacon_bss; 1838 1839 s32 signal; 1840 1841 u16 beacon_interval; 1842 u16 capability; 1843 1844 u8 bssid[ETH_ALEN]; 1845 1846 u8 priv[0] __aligned(sizeof(void *)); 1847 }; 1848 1849 /** 1850 * ieee80211_bss_get_ie - find IE with given ID 1851 * @bss: the bss to search 1852 * @ie: the IE ID 1853 * 1854 * Note that the return value is an RCU-protected pointer, so 1855 * rcu_read_lock() must be held when calling this function. 1856 * Return: %NULL if not found. 1857 */ 1858 const u8 *ieee80211_bss_get_ie(struct cfg80211_bss *bss, u8 ie); 1859 1860 1861 /** 1862 * struct cfg80211_auth_request - Authentication request data 1863 * 1864 * This structure provides information needed to complete IEEE 802.11 1865 * authentication. 1866 * 1867 * @bss: The BSS to authenticate with, the callee must obtain a reference 1868 * to it if it needs to keep it. 1869 * @auth_type: Authentication type (algorithm) 1870 * @ie: Extra IEs to add to Authentication frame or %NULL 1871 * @ie_len: Length of ie buffer in octets 1872 * @key_len: length of WEP key for shared key authentication 1873 * @key_idx: index of WEP key for shared key authentication 1874 * @key: WEP key for shared key authentication 1875 * @auth_data: Fields and elements in Authentication frames. This contains 1876 * the authentication frame body (non-IE and IE data), excluding the 1877 * Authentication algorithm number, i.e., starting at the Authentication 1878 * transaction sequence number field. 1879 * @auth_data_len: Length of auth_data buffer in octets 1880 */ 1881 struct cfg80211_auth_request { 1882 struct cfg80211_bss *bss; 1883 const u8 *ie; 1884 size_t ie_len; 1885 enum nl80211_auth_type auth_type; 1886 const u8 *key; 1887 u8 key_len, key_idx; 1888 const u8 *auth_data; 1889 size_t auth_data_len; 1890 }; 1891 1892 /** 1893 * enum cfg80211_assoc_req_flags - Over-ride default behaviour in association. 1894 * 1895 * @ASSOC_REQ_DISABLE_HT: Disable HT (802.11n) 1896 * @ASSOC_REQ_DISABLE_VHT: Disable VHT 1897 * @ASSOC_REQ_USE_RRM: Declare RRM capability in this association 1898 */ 1899 enum cfg80211_assoc_req_flags { 1900 ASSOC_REQ_DISABLE_HT = BIT(0), 1901 ASSOC_REQ_DISABLE_VHT = BIT(1), 1902 ASSOC_REQ_USE_RRM = BIT(2), 1903 }; 1904 1905 /** 1906 * struct cfg80211_assoc_request - (Re)Association request data 1907 * 1908 * This structure provides information needed to complete IEEE 802.11 1909 * (re)association. 1910 * @bss: The BSS to associate with. If the call is successful the driver is 1911 * given a reference that it must give back to cfg80211_send_rx_assoc() 1912 * or to cfg80211_assoc_timeout(). To ensure proper refcounting, new 1913 * association requests while already associating must be rejected. 1914 * @ie: Extra IEs to add to (Re)Association Request frame or %NULL 1915 * @ie_len: Length of ie buffer in octets 1916 * @use_mfp: Use management frame protection (IEEE 802.11w) in this association 1917 * @crypto: crypto settings 1918 * @prev_bssid: previous BSSID, if not %NULL use reassociate frame. This is used 1919 * to indicate a request to reassociate within the ESS instead of a request 1920 * do the initial association with the ESS. When included, this is set to 1921 * the BSSID of the current association, i.e., to the value that is 1922 * included in the Current AP address field of the Reassociation Request 1923 * frame. 1924 * @flags: See &enum cfg80211_assoc_req_flags 1925 * @ht_capa: HT Capabilities over-rides. Values set in ht_capa_mask 1926 * will be used in ht_capa. Un-supported values will be ignored. 1927 * @ht_capa_mask: The bits of ht_capa which are to be used. 1928 * @vht_capa: VHT capability override 1929 * @vht_capa_mask: VHT capability mask indicating which fields to use 1930 * @fils_kek: FILS KEK for protecting (Re)Association Request/Response frame or 1931 * %NULL if FILS is not used. 1932 * @fils_kek_len: Length of fils_kek in octets 1933 * @fils_nonces: FILS nonces (part of AAD) for protecting (Re)Association 1934 * Request/Response frame or %NULL if FILS is not used. This field starts 1935 * with 16 octets of STA Nonce followed by 16 octets of AP Nonce. 1936 */ 1937 struct cfg80211_assoc_request { 1938 struct cfg80211_bss *bss; 1939 const u8 *ie, *prev_bssid; 1940 size_t ie_len; 1941 struct cfg80211_crypto_settings crypto; 1942 bool use_mfp; 1943 u32 flags; 1944 struct ieee80211_ht_cap ht_capa; 1945 struct ieee80211_ht_cap ht_capa_mask; 1946 struct ieee80211_vht_cap vht_capa, vht_capa_mask; 1947 const u8 *fils_kek; 1948 size_t fils_kek_len; 1949 const u8 *fils_nonces; 1950 }; 1951 1952 /** 1953 * struct cfg80211_deauth_request - Deauthentication request data 1954 * 1955 * This structure provides information needed to complete IEEE 802.11 1956 * deauthentication. 1957 * 1958 * @bssid: the BSSID of the BSS to deauthenticate from 1959 * @ie: Extra IEs to add to Deauthentication frame or %NULL 1960 * @ie_len: Length of ie buffer in octets 1961 * @reason_code: The reason code for the deauthentication 1962 * @local_state_change: if set, change local state only and 1963 * do not set a deauth frame 1964 */ 1965 struct cfg80211_deauth_request { 1966 const u8 *bssid; 1967 const u8 *ie; 1968 size_t ie_len; 1969 u16 reason_code; 1970 bool local_state_change; 1971 }; 1972 1973 /** 1974 * struct cfg80211_disassoc_request - Disassociation request data 1975 * 1976 * This structure provides information needed to complete IEEE 802.11 1977 * disassociation. 1978 * 1979 * @bss: the BSS to disassociate from 1980 * @ie: Extra IEs to add to Disassociation frame or %NULL 1981 * @ie_len: Length of ie buffer in octets 1982 * @reason_code: The reason code for the disassociation 1983 * @local_state_change: This is a request for a local state only, i.e., no 1984 * Disassociation frame is to be transmitted. 1985 */ 1986 struct cfg80211_disassoc_request { 1987 struct cfg80211_bss *bss; 1988 const u8 *ie; 1989 size_t ie_len; 1990 u16 reason_code; 1991 bool local_state_change; 1992 }; 1993 1994 /** 1995 * struct cfg80211_ibss_params - IBSS parameters 1996 * 1997 * This structure defines the IBSS parameters for the join_ibss() 1998 * method. 1999 * 2000 * @ssid: The SSID, will always be non-null. 2001 * @ssid_len: The length of the SSID, will always be non-zero. 2002 * @bssid: Fixed BSSID requested, maybe be %NULL, if set do not 2003 * search for IBSSs with a different BSSID. 2004 * @chandef: defines the channel to use if no other IBSS to join can be found 2005 * @channel_fixed: The channel should be fixed -- do not search for 2006 * IBSSs to join on other channels. 2007 * @ie: information element(s) to include in the beacon 2008 * @ie_len: length of that 2009 * @beacon_interval: beacon interval to use 2010 * @privacy: this is a protected network, keys will be configured 2011 * after joining 2012 * @control_port: whether user space controls IEEE 802.1X port, i.e., 2013 * sets/clears %NL80211_STA_FLAG_AUTHORIZED. If true, the driver is 2014 * required to assume that the port is unauthorized until authorized by 2015 * user space. Otherwise, port is marked authorized by default. 2016 * @userspace_handles_dfs: whether user space controls DFS operation, i.e. 2017 * changes the channel when a radar is detected. This is required 2018 * to operate on DFS channels. 2019 * @basic_rates: bitmap of basic rates to use when creating the IBSS 2020 * @mcast_rate: per-band multicast rate index + 1 (0: disabled) 2021 * @ht_capa: HT Capabilities over-rides. Values set in ht_capa_mask 2022 * will be used in ht_capa. Un-supported values will be ignored. 2023 * @ht_capa_mask: The bits of ht_capa which are to be used. 2024 */ 2025 struct cfg80211_ibss_params { 2026 const u8 *ssid; 2027 const u8 *bssid; 2028 struct cfg80211_chan_def chandef; 2029 const u8 *ie; 2030 u8 ssid_len, ie_len; 2031 u16 beacon_interval; 2032 u32 basic_rates; 2033 bool channel_fixed; 2034 bool privacy; 2035 bool control_port; 2036 bool userspace_handles_dfs; 2037 int mcast_rate[NUM_NL80211_BANDS]; 2038 struct ieee80211_ht_cap ht_capa; 2039 struct ieee80211_ht_cap ht_capa_mask; 2040 }; 2041 2042 /** 2043 * struct cfg80211_bss_selection - connection parameters for BSS selection. 2044 * 2045 * @behaviour: requested BSS selection behaviour. 2046 * @param: parameters for requestion behaviour. 2047 * @band_pref: preferred band for %NL80211_BSS_SELECT_ATTR_BAND_PREF. 2048 * @adjust: parameters for %NL80211_BSS_SELECT_ATTR_RSSI_ADJUST. 2049 */ 2050 struct cfg80211_bss_selection { 2051 enum nl80211_bss_select_attr behaviour; 2052 union { 2053 enum nl80211_band band_pref; 2054 struct cfg80211_bss_select_adjust adjust; 2055 } param; 2056 }; 2057 2058 /** 2059 * struct cfg80211_connect_params - Connection parameters 2060 * 2061 * This structure provides information needed to complete IEEE 802.11 2062 * authentication and association. 2063 * 2064 * @channel: The channel to use or %NULL if not specified (auto-select based 2065 * on scan results) 2066 * @channel_hint: The channel of the recommended BSS for initial connection or 2067 * %NULL if not specified 2068 * @bssid: The AP BSSID or %NULL if not specified (auto-select based on scan 2069 * results) 2070 * @bssid_hint: The recommended AP BSSID for initial connection to the BSS or 2071 * %NULL if not specified. Unlike the @bssid parameter, the driver is 2072 * allowed to ignore this @bssid_hint if it has knowledge of a better BSS 2073 * to use. 2074 * @ssid: SSID 2075 * @ssid_len: Length of ssid in octets 2076 * @auth_type: Authentication type (algorithm) 2077 * @ie: IEs for association request 2078 * @ie_len: Length of assoc_ie in octets 2079 * @privacy: indicates whether privacy-enabled APs should be used 2080 * @mfp: indicate whether management frame protection is used 2081 * @crypto: crypto settings 2082 * @key_len: length of WEP key for shared key authentication 2083 * @key_idx: index of WEP key for shared key authentication 2084 * @key: WEP key for shared key authentication 2085 * @flags: See &enum cfg80211_assoc_req_flags 2086 * @bg_scan_period: Background scan period in seconds 2087 * or -1 to indicate that default value is to be used. 2088 * @ht_capa: HT Capabilities over-rides. Values set in ht_capa_mask 2089 * will be used in ht_capa. Un-supported values will be ignored. 2090 * @ht_capa_mask: The bits of ht_capa which are to be used. 2091 * @vht_capa: VHT Capability overrides 2092 * @vht_capa_mask: The bits of vht_capa which are to be used. 2093 * @pbss: if set, connect to a PCP instead of AP. Valid for DMG 2094 * networks. 2095 * @bss_select: criteria to be used for BSS selection. 2096 * @prev_bssid: previous BSSID, if not %NULL use reassociate frame. This is used 2097 * to indicate a request to reassociate within the ESS instead of a request 2098 * do the initial association with the ESS. When included, this is set to 2099 * the BSSID of the current association, i.e., to the value that is 2100 * included in the Current AP address field of the Reassociation Request 2101 * frame. 2102 * @fils_erp_username: EAP re-authentication protocol (ERP) username part of the 2103 * NAI or %NULL if not specified. This is used to construct FILS wrapped 2104 * data IE. 2105 * @fils_erp_username_len: Length of @fils_erp_username in octets. 2106 * @fils_erp_realm: EAP re-authentication protocol (ERP) realm part of NAI or 2107 * %NULL if not specified. This specifies the domain name of ER server and 2108 * is used to construct FILS wrapped data IE. 2109 * @fils_erp_realm_len: Length of @fils_erp_realm in octets. 2110 * @fils_erp_next_seq_num: The next sequence number to use in the FILS ERP 2111 * messages. This is also used to construct FILS wrapped data IE. 2112 * @fils_erp_rrk: ERP re-authentication Root Key (rRK) used to derive additional 2113 * keys in FILS or %NULL if not specified. 2114 * @fils_erp_rrk_len: Length of @fils_erp_rrk in octets. 2115 * @want_1x: indicates user-space supports and wants to use 802.1X driver 2116 * offload of 4-way handshake. 2117 */ 2118 struct cfg80211_connect_params { 2119 struct ieee80211_channel *channel; 2120 struct ieee80211_channel *channel_hint; 2121 const u8 *bssid; 2122 const u8 *bssid_hint; 2123 const u8 *ssid; 2124 size_t ssid_len; 2125 enum nl80211_auth_type auth_type; 2126 const u8 *ie; 2127 size_t ie_len; 2128 bool privacy; 2129 enum nl80211_mfp mfp; 2130 struct cfg80211_crypto_settings crypto; 2131 const u8 *key; 2132 u8 key_len, key_idx; 2133 u32 flags; 2134 int bg_scan_period; 2135 struct ieee80211_ht_cap ht_capa; 2136 struct ieee80211_ht_cap ht_capa_mask; 2137 struct ieee80211_vht_cap vht_capa; 2138 struct ieee80211_vht_cap vht_capa_mask; 2139 bool pbss; 2140 struct cfg80211_bss_selection bss_select; 2141 const u8 *prev_bssid; 2142 const u8 *fils_erp_username; 2143 size_t fils_erp_username_len; 2144 const u8 *fils_erp_realm; 2145 size_t fils_erp_realm_len; 2146 u16 fils_erp_next_seq_num; 2147 const u8 *fils_erp_rrk; 2148 size_t fils_erp_rrk_len; 2149 bool want_1x; 2150 }; 2151 2152 /** 2153 * enum cfg80211_connect_params_changed - Connection parameters being updated 2154 * 2155 * This enum provides information of all connect parameters that 2156 * have to be updated as part of update_connect_params() call. 2157 * 2158 * @UPDATE_ASSOC_IES: Indicates whether association request IEs are updated 2159 */ 2160 enum cfg80211_connect_params_changed { 2161 UPDATE_ASSOC_IES = BIT(0), 2162 }; 2163 2164 /** 2165 * enum wiphy_params_flags - set_wiphy_params bitfield values 2166 * @WIPHY_PARAM_RETRY_SHORT: wiphy->retry_short has changed 2167 * @WIPHY_PARAM_RETRY_LONG: wiphy->retry_long has changed 2168 * @WIPHY_PARAM_FRAG_THRESHOLD: wiphy->frag_threshold has changed 2169 * @WIPHY_PARAM_RTS_THRESHOLD: wiphy->rts_threshold has changed 2170 * @WIPHY_PARAM_COVERAGE_CLASS: coverage class changed 2171 * @WIPHY_PARAM_DYN_ACK: dynack has been enabled 2172 */ 2173 enum wiphy_params_flags { 2174 WIPHY_PARAM_RETRY_SHORT = 1 << 0, 2175 WIPHY_PARAM_RETRY_LONG = 1 << 1, 2176 WIPHY_PARAM_FRAG_THRESHOLD = 1 << 2, 2177 WIPHY_PARAM_RTS_THRESHOLD = 1 << 3, 2178 WIPHY_PARAM_COVERAGE_CLASS = 1 << 4, 2179 WIPHY_PARAM_DYN_ACK = 1 << 5, 2180 }; 2181 2182 /** 2183 * struct cfg80211_pmksa - PMK Security Association 2184 * 2185 * This structure is passed to the set/del_pmksa() method for PMKSA 2186 * caching. 2187 * 2188 * @bssid: The AP's BSSID (may be %NULL). 2189 * @pmkid: The identifier to refer a PMKSA. 2190 * @pmk: The PMK for the PMKSA identified by @pmkid. This is used for key 2191 * derivation by a FILS STA. Otherwise, %NULL. 2192 * @pmk_len: Length of the @pmk. The length of @pmk can differ depending on 2193 * the hash algorithm used to generate this. 2194 * @ssid: SSID to specify the ESS within which a PMKSA is valid when using FILS 2195 * cache identifier (may be %NULL). 2196 * @ssid_len: Length of the @ssid in octets. 2197 * @cache_id: 2-octet cache identifier advertized by a FILS AP identifying the 2198 * scope of PMKSA. This is valid only if @ssid_len is non-zero (may be 2199 * %NULL). 2200 */ 2201 struct cfg80211_pmksa { 2202 const u8 *bssid; 2203 const u8 *pmkid; 2204 const u8 *pmk; 2205 size_t pmk_len; 2206 const u8 *ssid; 2207 size_t ssid_len; 2208 const u8 *cache_id; 2209 }; 2210 2211 /** 2212 * struct cfg80211_pkt_pattern - packet pattern 2213 * @mask: bitmask where to match pattern and where to ignore bytes, 2214 * one bit per byte, in same format as nl80211 2215 * @pattern: bytes to match where bitmask is 1 2216 * @pattern_len: length of pattern (in bytes) 2217 * @pkt_offset: packet offset (in bytes) 2218 * 2219 * Internal note: @mask and @pattern are allocated in one chunk of 2220 * memory, free @mask only! 2221 */ 2222 struct cfg80211_pkt_pattern { 2223 const u8 *mask, *pattern; 2224 int pattern_len; 2225 int pkt_offset; 2226 }; 2227 2228 /** 2229 * struct cfg80211_wowlan_tcp - TCP connection parameters 2230 * 2231 * @sock: (internal) socket for source port allocation 2232 * @src: source IP address 2233 * @dst: destination IP address 2234 * @dst_mac: destination MAC address 2235 * @src_port: source port 2236 * @dst_port: destination port 2237 * @payload_len: data payload length 2238 * @payload: data payload buffer 2239 * @payload_seq: payload sequence stamping configuration 2240 * @data_interval: interval at which to send data packets 2241 * @wake_len: wakeup payload match length 2242 * @wake_data: wakeup payload match data 2243 * @wake_mask: wakeup payload match mask 2244 * @tokens_size: length of the tokens buffer 2245 * @payload_tok: payload token usage configuration 2246 */ 2247 struct cfg80211_wowlan_tcp { 2248 struct socket *sock; 2249 __be32 src, dst; 2250 u16 src_port, dst_port; 2251 u8 dst_mac[ETH_ALEN]; 2252 int payload_len; 2253 const u8 *payload; 2254 struct nl80211_wowlan_tcp_data_seq payload_seq; 2255 u32 data_interval; 2256 u32 wake_len; 2257 const u8 *wake_data, *wake_mask; 2258 u32 tokens_size; 2259 /* must be last, variable member */ 2260 struct nl80211_wowlan_tcp_data_token payload_tok; 2261 }; 2262 2263 /** 2264 * struct cfg80211_wowlan - Wake on Wireless-LAN support info 2265 * 2266 * This structure defines the enabled WoWLAN triggers for the device. 2267 * @any: wake up on any activity -- special trigger if device continues 2268 * operating as normal during suspend 2269 * @disconnect: wake up if getting disconnected 2270 * @magic_pkt: wake up on receiving magic packet 2271 * @patterns: wake up on receiving packet matching a pattern 2272 * @n_patterns: number of patterns 2273 * @gtk_rekey_failure: wake up on GTK rekey failure 2274 * @eap_identity_req: wake up on EAP identity request packet 2275 * @four_way_handshake: wake up on 4-way handshake 2276 * @rfkill_release: wake up when rfkill is released 2277 * @tcp: TCP connection establishment/wakeup parameters, see nl80211.h. 2278 * NULL if not configured. 2279 * @nd_config: configuration for the scan to be used for net detect wake. 2280 */ 2281 struct cfg80211_wowlan { 2282 bool any, disconnect, magic_pkt, gtk_rekey_failure, 2283 eap_identity_req, four_way_handshake, 2284 rfkill_release; 2285 struct cfg80211_pkt_pattern *patterns; 2286 struct cfg80211_wowlan_tcp *tcp; 2287 int n_patterns; 2288 struct cfg80211_sched_scan_request *nd_config; 2289 }; 2290 2291 /** 2292 * struct cfg80211_coalesce_rules - Coalesce rule parameters 2293 * 2294 * This structure defines coalesce rule for the device. 2295 * @delay: maximum coalescing delay in msecs. 2296 * @condition: condition for packet coalescence. 2297 * see &enum nl80211_coalesce_condition. 2298 * @patterns: array of packet patterns 2299 * @n_patterns: number of patterns 2300 */ 2301 struct cfg80211_coalesce_rules { 2302 int delay; 2303 enum nl80211_coalesce_condition condition; 2304 struct cfg80211_pkt_pattern *patterns; 2305 int n_patterns; 2306 }; 2307 2308 /** 2309 * struct cfg80211_coalesce - Packet coalescing settings 2310 * 2311 * This structure defines coalescing settings. 2312 * @rules: array of coalesce rules 2313 * @n_rules: number of rules 2314 */ 2315 struct cfg80211_coalesce { 2316 struct cfg80211_coalesce_rules *rules; 2317 int n_rules; 2318 }; 2319 2320 /** 2321 * struct cfg80211_wowlan_nd_match - information about the match 2322 * 2323 * @ssid: SSID of the match that triggered the wake up 2324 * @n_channels: Number of channels where the match occurred. This 2325 * value may be zero if the driver can't report the channels. 2326 * @channels: center frequencies of the channels where a match 2327 * occurred (in MHz) 2328 */ 2329 struct cfg80211_wowlan_nd_match { 2330 struct cfg80211_ssid ssid; 2331 int n_channels; 2332 u32 channels[]; 2333 }; 2334 2335 /** 2336 * struct cfg80211_wowlan_nd_info - net detect wake up information 2337 * 2338 * @n_matches: Number of match information instances provided in 2339 * @matches. This value may be zero if the driver can't provide 2340 * match information. 2341 * @matches: Array of pointers to matches containing information about 2342 * the matches that triggered the wake up. 2343 */ 2344 struct cfg80211_wowlan_nd_info { 2345 int n_matches; 2346 struct cfg80211_wowlan_nd_match *matches[]; 2347 }; 2348 2349 /** 2350 * struct cfg80211_wowlan_wakeup - wakeup report 2351 * @disconnect: woke up by getting disconnected 2352 * @magic_pkt: woke up by receiving magic packet 2353 * @gtk_rekey_failure: woke up by GTK rekey failure 2354 * @eap_identity_req: woke up by EAP identity request packet 2355 * @four_way_handshake: woke up by 4-way handshake 2356 * @rfkill_release: woke up by rfkill being released 2357 * @pattern_idx: pattern that caused wakeup, -1 if not due to pattern 2358 * @packet_present_len: copied wakeup packet data 2359 * @packet_len: original wakeup packet length 2360 * @packet: The packet causing the wakeup, if any. 2361 * @packet_80211: For pattern match, magic packet and other data 2362 * frame triggers an 802.3 frame should be reported, for 2363 * disconnect due to deauth 802.11 frame. This indicates which 2364 * it is. 2365 * @tcp_match: TCP wakeup packet received 2366 * @tcp_connlost: TCP connection lost or failed to establish 2367 * @tcp_nomoretokens: TCP data ran out of tokens 2368 * @net_detect: if not %NULL, woke up because of net detect 2369 */ 2370 struct cfg80211_wowlan_wakeup { 2371 bool disconnect, magic_pkt, gtk_rekey_failure, 2372 eap_identity_req, four_way_handshake, 2373 rfkill_release, packet_80211, 2374 tcp_match, tcp_connlost, tcp_nomoretokens; 2375 s32 pattern_idx; 2376 u32 packet_present_len, packet_len; 2377 const void *packet; 2378 struct cfg80211_wowlan_nd_info *net_detect; 2379 }; 2380 2381 /** 2382 * struct cfg80211_gtk_rekey_data - rekey data 2383 * @kek: key encryption key (NL80211_KEK_LEN bytes) 2384 * @kck: key confirmation key (NL80211_KCK_LEN bytes) 2385 * @replay_ctr: replay counter (NL80211_REPLAY_CTR_LEN bytes) 2386 */ 2387 struct cfg80211_gtk_rekey_data { 2388 const u8 *kek, *kck, *replay_ctr; 2389 }; 2390 2391 /** 2392 * struct cfg80211_update_ft_ies_params - FT IE Information 2393 * 2394 * This structure provides information needed to update the fast transition IE 2395 * 2396 * @md: The Mobility Domain ID, 2 Octet value 2397 * @ie: Fast Transition IEs 2398 * @ie_len: Length of ft_ie in octets 2399 */ 2400 struct cfg80211_update_ft_ies_params { 2401 u16 md; 2402 const u8 *ie; 2403 size_t ie_len; 2404 }; 2405 2406 /** 2407 * struct cfg80211_mgmt_tx_params - mgmt tx parameters 2408 * 2409 * This structure provides information needed to transmit a mgmt frame 2410 * 2411 * @chan: channel to use 2412 * @offchan: indicates wether off channel operation is required 2413 * @wait: duration for ROC 2414 * @buf: buffer to transmit 2415 * @len: buffer length 2416 * @no_cck: don't use cck rates for this frame 2417 * @dont_wait_for_ack: tells the low level not to wait for an ack 2418 * @n_csa_offsets: length of csa_offsets array 2419 * @csa_offsets: array of all the csa offsets in the frame 2420 */ 2421 struct cfg80211_mgmt_tx_params { 2422 struct ieee80211_channel *chan; 2423 bool offchan; 2424 unsigned int wait; 2425 const u8 *buf; 2426 size_t len; 2427 bool no_cck; 2428 bool dont_wait_for_ack; 2429 int n_csa_offsets; 2430 const u16 *csa_offsets; 2431 }; 2432 2433 /** 2434 * struct cfg80211_dscp_exception - DSCP exception 2435 * 2436 * @dscp: DSCP value that does not adhere to the user priority range definition 2437 * @up: user priority value to which the corresponding DSCP value belongs 2438 */ 2439 struct cfg80211_dscp_exception { 2440 u8 dscp; 2441 u8 up; 2442 }; 2443 2444 /** 2445 * struct cfg80211_dscp_range - DSCP range definition for user priority 2446 * 2447 * @low: lowest DSCP value of this user priority range, inclusive 2448 * @high: highest DSCP value of this user priority range, inclusive 2449 */ 2450 struct cfg80211_dscp_range { 2451 u8 low; 2452 u8 high; 2453 }; 2454 2455 /* QoS Map Set element length defined in IEEE Std 802.11-2012, 8.4.2.97 */ 2456 #define IEEE80211_QOS_MAP_MAX_EX 21 2457 #define IEEE80211_QOS_MAP_LEN_MIN 16 2458 #define IEEE80211_QOS_MAP_LEN_MAX \ 2459 (IEEE80211_QOS_MAP_LEN_MIN + 2 * IEEE80211_QOS_MAP_MAX_EX) 2460 2461 /** 2462 * struct cfg80211_qos_map - QoS Map Information 2463 * 2464 * This struct defines the Interworking QoS map setting for DSCP values 2465 * 2466 * @num_des: number of DSCP exceptions (0..21) 2467 * @dscp_exception: optionally up to maximum of 21 DSCP exceptions from 2468 * the user priority DSCP range definition 2469 * @up: DSCP range definition for a particular user priority 2470 */ 2471 struct cfg80211_qos_map { 2472 u8 num_des; 2473 struct cfg80211_dscp_exception dscp_exception[IEEE80211_QOS_MAP_MAX_EX]; 2474 struct cfg80211_dscp_range up[8]; 2475 }; 2476 2477 /** 2478 * struct cfg80211_nan_conf - NAN configuration 2479 * 2480 * This struct defines NAN configuration parameters 2481 * 2482 * @master_pref: master preference (1 - 255) 2483 * @bands: operating bands, a bitmap of &enum nl80211_band values. 2484 * For instance, for NL80211_BAND_2GHZ, bit 0 would be set 2485 * (i.e. BIT(NL80211_BAND_2GHZ)). 2486 */ 2487 struct cfg80211_nan_conf { 2488 u8 master_pref; 2489 u8 bands; 2490 }; 2491 2492 /** 2493 * enum cfg80211_nan_conf_changes - indicates changed fields in NAN 2494 * configuration 2495 * 2496 * @CFG80211_NAN_CONF_CHANGED_PREF: master preference 2497 * @CFG80211_NAN_CONF_CHANGED_BANDS: operating bands 2498 */ 2499 enum cfg80211_nan_conf_changes { 2500 CFG80211_NAN_CONF_CHANGED_PREF = BIT(0), 2501 CFG80211_NAN_CONF_CHANGED_BANDS = BIT(1), 2502 }; 2503 2504 /** 2505 * struct cfg80211_nan_func_filter - a NAN function Rx / Tx filter 2506 * 2507 * @filter: the content of the filter 2508 * @len: the length of the filter 2509 */ 2510 struct cfg80211_nan_func_filter { 2511 const u8 *filter; 2512 u8 len; 2513 }; 2514 2515 /** 2516 * struct cfg80211_nan_func - a NAN function 2517 * 2518 * @type: &enum nl80211_nan_function_type 2519 * @service_id: the service ID of the function 2520 * @publish_type: &nl80211_nan_publish_type 2521 * @close_range: if true, the range should be limited. Threshold is 2522 * implementation specific. 2523 * @publish_bcast: if true, the solicited publish should be broadcasted 2524 * @subscribe_active: if true, the subscribe is active 2525 * @followup_id: the instance ID for follow up 2526 * @followup_reqid: the requestor instance ID for follow up 2527 * @followup_dest: MAC address of the recipient of the follow up 2528 * @ttl: time to live counter in DW. 2529 * @serv_spec_info: Service Specific Info 2530 * @serv_spec_info_len: Service Specific Info length 2531 * @srf_include: if true, SRF is inclusive 2532 * @srf_bf: Bloom Filter 2533 * @srf_bf_len: Bloom Filter length 2534 * @srf_bf_idx: Bloom Filter index 2535 * @srf_macs: SRF MAC addresses 2536 * @srf_num_macs: number of MAC addresses in SRF 2537 * @rx_filters: rx filters that are matched with corresponding peer's tx_filter 2538 * @tx_filters: filters that should be transmitted in the SDF. 2539 * @num_rx_filters: length of &rx_filters. 2540 * @num_tx_filters: length of &tx_filters. 2541 * @instance_id: driver allocated id of the function. 2542 * @cookie: unique NAN function identifier. 2543 */ 2544 struct cfg80211_nan_func { 2545 enum nl80211_nan_function_type type; 2546 u8 service_id[NL80211_NAN_FUNC_SERVICE_ID_LEN]; 2547 u8 publish_type; 2548 bool close_range; 2549 bool publish_bcast; 2550 bool subscribe_active; 2551 u8 followup_id; 2552 u8 followup_reqid; 2553 struct mac_address followup_dest; 2554 u32 ttl; 2555 const u8 *serv_spec_info; 2556 u8 serv_spec_info_len; 2557 bool srf_include; 2558 const u8 *srf_bf; 2559 u8 srf_bf_len; 2560 u8 srf_bf_idx; 2561 struct mac_address *srf_macs; 2562 int srf_num_macs; 2563 struct cfg80211_nan_func_filter *rx_filters; 2564 struct cfg80211_nan_func_filter *tx_filters; 2565 u8 num_tx_filters; 2566 u8 num_rx_filters; 2567 u8 instance_id; 2568 u64 cookie; 2569 }; 2570 2571 /** 2572 * struct cfg80211_pmk_conf - PMK configuration 2573 * 2574 * @aa: authenticator address 2575 * @pmk_len: PMK length in bytes. 2576 * @pmk: the PMK material 2577 * @pmk_r0_name: PMK-R0 Name. NULL if not applicable (i.e., the PMK 2578 * is not PMK-R0). When pmk_r0_name is not NULL, the pmk field 2579 * holds PMK-R0. 2580 */ 2581 struct cfg80211_pmk_conf { 2582 const u8 *aa; 2583 u8 pmk_len; 2584 const u8 *pmk; 2585 const u8 *pmk_r0_name; 2586 }; 2587 2588 /** 2589 * struct cfg80211_ops - backend description for wireless configuration 2590 * 2591 * This struct is registered by fullmac card drivers and/or wireless stacks 2592 * in order to handle configuration requests on their interfaces. 2593 * 2594 * All callbacks except where otherwise noted should return 0 2595 * on success or a negative error code. 2596 * 2597 * All operations are currently invoked under rtnl for consistency with the 2598 * wireless extensions but this is subject to reevaluation as soon as this 2599 * code is used more widely and we have a first user without wext. 2600 * 2601 * @suspend: wiphy device needs to be suspended. The variable @wow will 2602 * be %NULL or contain the enabled Wake-on-Wireless triggers that are 2603 * configured for the device. 2604 * @resume: wiphy device needs to be resumed 2605 * @set_wakeup: Called when WoWLAN is enabled/disabled, use this callback 2606 * to call device_set_wakeup_enable() to enable/disable wakeup from 2607 * the device. 2608 * 2609 * @add_virtual_intf: create a new virtual interface with the given name, 2610 * must set the struct wireless_dev's iftype. Beware: You must create 2611 * the new netdev in the wiphy's network namespace! Returns the struct 2612 * wireless_dev, or an ERR_PTR. For P2P device wdevs, the driver must 2613 * also set the address member in the wdev. 2614 * 2615 * @del_virtual_intf: remove the virtual interface 2616 * 2617 * @change_virtual_intf: change type/configuration of virtual interface, 2618 * keep the struct wireless_dev's iftype updated. 2619 * 2620 * @add_key: add a key with the given parameters. @mac_addr will be %NULL 2621 * when adding a group key. 2622 * 2623 * @get_key: get information about the key with the given parameters. 2624 * @mac_addr will be %NULL when requesting information for a group 2625 * key. All pointers given to the @callback function need not be valid 2626 * after it returns. This function should return an error if it is 2627 * not possible to retrieve the key, -ENOENT if it doesn't exist. 2628 * 2629 * @del_key: remove a key given the @mac_addr (%NULL for a group key) 2630 * and @key_index, return -ENOENT if the key doesn't exist. 2631 * 2632 * @set_default_key: set the default key on an interface 2633 * 2634 * @set_default_mgmt_key: set the default management frame key on an interface 2635 * 2636 * @set_rekey_data: give the data necessary for GTK rekeying to the driver 2637 * 2638 * @start_ap: Start acting in AP mode defined by the parameters. 2639 * @change_beacon: Change the beacon parameters for an access point mode 2640 * interface. This should reject the call when AP mode wasn't started. 2641 * @stop_ap: Stop being an AP, including stopping beaconing. 2642 * 2643 * @add_station: Add a new station. 2644 * @del_station: Remove a station 2645 * @change_station: Modify a given station. Note that flags changes are not much 2646 * validated in cfg80211, in particular the auth/assoc/authorized flags 2647 * might come to the driver in invalid combinations -- make sure to check 2648 * them, also against the existing state! Drivers must call 2649 * cfg80211_check_station_change() to validate the information. 2650 * @get_station: get station information for the station identified by @mac 2651 * @dump_station: dump station callback -- resume dump at index @idx 2652 * 2653 * @add_mpath: add a fixed mesh path 2654 * @del_mpath: delete a given mesh path 2655 * @change_mpath: change a given mesh path 2656 * @get_mpath: get a mesh path for the given parameters 2657 * @dump_mpath: dump mesh path callback -- resume dump at index @idx 2658 * @get_mpp: get a mesh proxy path for the given parameters 2659 * @dump_mpp: dump mesh proxy path callback -- resume dump at index @idx 2660 * @join_mesh: join the mesh network with the specified parameters 2661 * (invoked with the wireless_dev mutex held) 2662 * @leave_mesh: leave the current mesh network 2663 * (invoked with the wireless_dev mutex held) 2664 * 2665 * @get_mesh_config: Get the current mesh configuration 2666 * 2667 * @update_mesh_config: Update mesh parameters on a running mesh. 2668 * The mask is a bitfield which tells us which parameters to 2669 * set, and which to leave alone. 2670 * 2671 * @change_bss: Modify parameters for a given BSS. 2672 * 2673 * @set_txq_params: Set TX queue parameters 2674 * 2675 * @libertas_set_mesh_channel: Only for backward compatibility for libertas, 2676 * as it doesn't implement join_mesh and needs to set the channel to 2677 * join the mesh instead. 2678 * 2679 * @set_monitor_channel: Set the monitor mode channel for the device. If other 2680 * interfaces are active this callback should reject the configuration. 2681 * If no interfaces are active or the device is down, the channel should 2682 * be stored for when a monitor interface becomes active. 2683 * 2684 * @scan: Request to do a scan. If returning zero, the scan request is given 2685 * the driver, and will be valid until passed to cfg80211_scan_done(). 2686 * For scan results, call cfg80211_inform_bss(); you can call this outside 2687 * the scan/scan_done bracket too. 2688 * @abort_scan: Tell the driver to abort an ongoing scan. The driver shall 2689 * indicate the status of the scan through cfg80211_scan_done(). 2690 * 2691 * @auth: Request to authenticate with the specified peer 2692 * (invoked with the wireless_dev mutex held) 2693 * @assoc: Request to (re)associate with the specified peer 2694 * (invoked with the wireless_dev mutex held) 2695 * @deauth: Request to deauthenticate from the specified peer 2696 * (invoked with the wireless_dev mutex held) 2697 * @disassoc: Request to disassociate from the specified peer 2698 * (invoked with the wireless_dev mutex held) 2699 * 2700 * @connect: Connect to the ESS with the specified parameters. When connected, 2701 * call cfg80211_connect_result()/cfg80211_connect_bss() with status code 2702 * %WLAN_STATUS_SUCCESS. If the connection fails for some reason, call 2703 * cfg80211_connect_result()/cfg80211_connect_bss() with the status code 2704 * from the AP or cfg80211_connect_timeout() if no frame with status code 2705 * was received. 2706 * The driver is allowed to roam to other BSSes within the ESS when the 2707 * other BSS matches the connect parameters. When such roaming is initiated 2708 * by the driver, the driver is expected to verify that the target matches 2709 * the configured security parameters and to use Reassociation Request 2710 * frame instead of Association Request frame. 2711 * The connect function can also be used to request the driver to perform a 2712 * specific roam when connected to an ESS. In that case, the prev_bssid 2713 * parameter is set to the BSSID of the currently associated BSS as an 2714 * indication of requesting reassociation. 2715 * In both the driver-initiated and new connect() call initiated roaming 2716 * cases, the result of roaming is indicated with a call to 2717 * cfg80211_roamed(). (invoked with the wireless_dev mutex held) 2718 * @update_connect_params: Update the connect parameters while connected to a 2719 * BSS. The updated parameters can be used by driver/firmware for 2720 * subsequent BSS selection (roaming) decisions and to form the 2721 * Authentication/(Re)Association Request frames. This call does not 2722 * request an immediate disassociation or reassociation with the current 2723 * BSS, i.e., this impacts only subsequent (re)associations. The bits in 2724 * changed are defined in &enum cfg80211_connect_params_changed. 2725 * (invoked with the wireless_dev mutex held) 2726 * @disconnect: Disconnect from the BSS/ESS or stop connection attempts if 2727 * connection is in progress. Once done, call cfg80211_disconnected() in 2728 * case connection was already established (invoked with the 2729 * wireless_dev mutex held), otherwise call cfg80211_connect_timeout(). 2730 * 2731 * @join_ibss: Join the specified IBSS (or create if necessary). Once done, call 2732 * cfg80211_ibss_joined(), also call that function when changing BSSID due 2733 * to a merge. 2734 * (invoked with the wireless_dev mutex held) 2735 * @leave_ibss: Leave the IBSS. 2736 * (invoked with the wireless_dev mutex held) 2737 * 2738 * @set_mcast_rate: Set the specified multicast rate (only if vif is in ADHOC or 2739 * MESH mode) 2740 * 2741 * @set_wiphy_params: Notify that wiphy parameters have changed; 2742 * @changed bitfield (see &enum wiphy_params_flags) describes which values 2743 * have changed. The actual parameter values are available in 2744 * struct wiphy. If returning an error, no value should be changed. 2745 * 2746 * @set_tx_power: set the transmit power according to the parameters, 2747 * the power passed is in mBm, to get dBm use MBM_TO_DBM(). The 2748 * wdev may be %NULL if power was set for the wiphy, and will 2749 * always be %NULL unless the driver supports per-vif TX power 2750 * (as advertised by the nl80211 feature flag.) 2751 * @get_tx_power: store the current TX power into the dbm variable; 2752 * return 0 if successful 2753 * 2754 * @set_wds_peer: set the WDS peer for a WDS interface 2755 * 2756 * @rfkill_poll: polls the hw rfkill line, use cfg80211 reporting 2757 * functions to adjust rfkill hw state 2758 * 2759 * @dump_survey: get site survey information. 2760 * 2761 * @remain_on_channel: Request the driver to remain awake on the specified 2762 * channel for the specified duration to complete an off-channel 2763 * operation (e.g., public action frame exchange). When the driver is 2764 * ready on the requested channel, it must indicate this with an event 2765 * notification by calling cfg80211_ready_on_channel(). 2766 * @cancel_remain_on_channel: Cancel an on-going remain-on-channel operation. 2767 * This allows the operation to be terminated prior to timeout based on 2768 * the duration value. 2769 * @mgmt_tx: Transmit a management frame. 2770 * @mgmt_tx_cancel_wait: Cancel the wait time from transmitting a management 2771 * frame on another channel 2772 * 2773 * @testmode_cmd: run a test mode command; @wdev may be %NULL 2774 * @testmode_dump: Implement a test mode dump. The cb->args[2] and up may be 2775 * used by the function, but 0 and 1 must not be touched. Additionally, 2776 * return error codes other than -ENOBUFS and -ENOENT will terminate the 2777 * dump and return to userspace with an error, so be careful. If any data 2778 * was passed in from userspace then the data/len arguments will be present 2779 * and point to the data contained in %NL80211_ATTR_TESTDATA. 2780 * 2781 * @set_bitrate_mask: set the bitrate mask configuration 2782 * 2783 * @set_pmksa: Cache a PMKID for a BSSID. This is mostly useful for fullmac 2784 * devices running firmwares capable of generating the (re) association 2785 * RSN IE. It allows for faster roaming between WPA2 BSSIDs. 2786 * @del_pmksa: Delete a cached PMKID. 2787 * @flush_pmksa: Flush all cached PMKIDs. 2788 * @set_power_mgmt: Configure WLAN power management. A timeout value of -1 2789 * allows the driver to adjust the dynamic ps timeout value. 2790 * @set_cqm_rssi_config: Configure connection quality monitor RSSI threshold. 2791 * After configuration, the driver should (soon) send an event indicating 2792 * the current level is above/below the configured threshold; this may 2793 * need some care when the configuration is changed (without first being 2794 * disabled.) 2795 * @set_cqm_rssi_range_config: Configure two RSSI thresholds in the 2796 * connection quality monitor. An event is to be sent only when the 2797 * signal level is found to be outside the two values. The driver should 2798 * set %NL80211_EXT_FEATURE_CQM_RSSI_LIST if this method is implemented. 2799 * If it is provided then there's no point providing @set_cqm_rssi_config. 2800 * @set_cqm_txe_config: Configure connection quality monitor TX error 2801 * thresholds. 2802 * @sched_scan_start: Tell the driver to start a scheduled scan. 2803 * @sched_scan_stop: Tell the driver to stop an ongoing scheduled scan with 2804 * given request id. This call must stop the scheduled scan and be ready 2805 * for starting a new one before it returns, i.e. @sched_scan_start may be 2806 * called immediately after that again and should not fail in that case. 2807 * The driver should not call cfg80211_sched_scan_stopped() for a requested 2808 * stop (when this method returns 0). 2809 * 2810 * @mgmt_frame_register: Notify driver that a management frame type was 2811 * registered. The callback is allowed to sleep. 2812 * 2813 * @set_antenna: Set antenna configuration (tx_ant, rx_ant) on the device. 2814 * Parameters are bitmaps of allowed antennas to use for TX/RX. Drivers may 2815 * reject TX/RX mask combinations they cannot support by returning -EINVAL 2816 * (also see nl80211.h @NL80211_ATTR_WIPHY_ANTENNA_TX). 2817 * 2818 * @get_antenna: Get current antenna configuration from device (tx_ant, rx_ant). 2819 * 2820 * @tdls_mgmt: Transmit a TDLS management frame. 2821 * @tdls_oper: Perform a high-level TDLS operation (e.g. TDLS link setup). 2822 * 2823 * @probe_client: probe an associated client, must return a cookie that it 2824 * later passes to cfg80211_probe_status(). 2825 * 2826 * @set_noack_map: Set the NoAck Map for the TIDs. 2827 * 2828 * @get_channel: Get the current operating channel for the virtual interface. 2829 * For monitor interfaces, it should return %NULL unless there's a single 2830 * current monitoring channel. 2831 * 2832 * @start_p2p_device: Start the given P2P device. 2833 * @stop_p2p_device: Stop the given P2P device. 2834 * 2835 * @set_mac_acl: Sets MAC address control list in AP and P2P GO mode. 2836 * Parameters include ACL policy, an array of MAC address of stations 2837 * and the number of MAC addresses. If there is already a list in driver 2838 * this new list replaces the existing one. Driver has to clear its ACL 2839 * when number of MAC addresses entries is passed as 0. Drivers which 2840 * advertise the support for MAC based ACL have to implement this callback. 2841 * 2842 * @start_radar_detection: Start radar detection in the driver. 2843 * 2844 * @update_ft_ies: Provide updated Fast BSS Transition information to the 2845 * driver. If the SME is in the driver/firmware, this information can be 2846 * used in building Authentication and Reassociation Request frames. 2847 * 2848 * @crit_proto_start: Indicates a critical protocol needs more link reliability 2849 * for a given duration (milliseconds). The protocol is provided so the 2850 * driver can take the most appropriate actions. 2851 * @crit_proto_stop: Indicates critical protocol no longer needs increased link 2852 * reliability. This operation can not fail. 2853 * @set_coalesce: Set coalesce parameters. 2854 * 2855 * @channel_switch: initiate channel-switch procedure (with CSA). Driver is 2856 * responsible for veryfing if the switch is possible. Since this is 2857 * inherently tricky driver may decide to disconnect an interface later 2858 * with cfg80211_stop_iface(). This doesn't mean driver can accept 2859 * everything. It should do it's best to verify requests and reject them 2860 * as soon as possible. 2861 * 2862 * @set_qos_map: Set QoS mapping information to the driver 2863 * 2864 * @set_ap_chanwidth: Set the AP (including P2P GO) mode channel width for the 2865 * given interface This is used e.g. for dynamic HT 20/40 MHz channel width 2866 * changes during the lifetime of the BSS. 2867 * 2868 * @add_tx_ts: validate (if admitted_time is 0) or add a TX TS to the device 2869 * with the given parameters; action frame exchange has been handled by 2870 * userspace so this just has to modify the TX path to take the TS into 2871 * account. 2872 * If the admitted time is 0 just validate the parameters to make sure 2873 * the session can be created at all; it is valid to just always return 2874 * success for that but that may result in inefficient behaviour (handshake 2875 * with the peer followed by immediate teardown when the addition is later 2876 * rejected) 2877 * @del_tx_ts: remove an existing TX TS 2878 * 2879 * @join_ocb: join the OCB network with the specified parameters 2880 * (invoked with the wireless_dev mutex held) 2881 * @leave_ocb: leave the current OCB network 2882 * (invoked with the wireless_dev mutex held) 2883 * 2884 * @tdls_channel_switch: Start channel-switching with a TDLS peer. The driver 2885 * is responsible for continually initiating channel-switching operations 2886 * and returning to the base channel for communication with the AP. 2887 * @tdls_cancel_channel_switch: Stop channel-switching with a TDLS peer. Both 2888 * peers must be on the base channel when the call completes. 2889 * @start_nan: Start the NAN interface. 2890 * @stop_nan: Stop the NAN interface. 2891 * @add_nan_func: Add a NAN function. Returns negative value on failure. 2892 * On success @nan_func ownership is transferred to the driver and 2893 * it may access it outside of the scope of this function. The driver 2894 * should free the @nan_func when no longer needed by calling 2895 * cfg80211_free_nan_func(). 2896 * On success the driver should assign an instance_id in the 2897 * provided @nan_func. 2898 * @del_nan_func: Delete a NAN function. 2899 * @nan_change_conf: changes NAN configuration. The changed parameters must 2900 * be specified in @changes (using &enum cfg80211_nan_conf_changes); 2901 * All other parameters must be ignored. 2902 * 2903 * @set_multicast_to_unicast: configure multicast to unicast conversion for BSS 2904 * 2905 * @set_pmk: configure the PMK to be used for offloaded 802.1X 4-Way handshake. 2906 * If not deleted through @del_pmk the PMK remains valid until disconnect 2907 * upon which the driver should clear it. 2908 * (invoked with the wireless_dev mutex held) 2909 * @del_pmk: delete the previously configured PMK for the given authenticator. 2910 * (invoked with the wireless_dev mutex held) 2911 */ 2912 struct cfg80211_ops { 2913 int (*suspend)(struct wiphy *wiphy, struct cfg80211_wowlan *wow); 2914 int (*resume)(struct wiphy *wiphy); 2915 void (*set_wakeup)(struct wiphy *wiphy, bool enabled); 2916 2917 struct wireless_dev * (*add_virtual_intf)(struct wiphy *wiphy, 2918 const char *name, 2919 unsigned char name_assign_type, 2920 enum nl80211_iftype type, 2921 struct vif_params *params); 2922 int (*del_virtual_intf)(struct wiphy *wiphy, 2923 struct wireless_dev *wdev); 2924 int (*change_virtual_intf)(struct wiphy *wiphy, 2925 struct net_device *dev, 2926 enum nl80211_iftype type, 2927 struct vif_params *params); 2928 2929 int (*add_key)(struct wiphy *wiphy, struct net_device *netdev, 2930 u8 key_index, bool pairwise, const u8 *mac_addr, 2931 struct key_params *params); 2932 int (*get_key)(struct wiphy *wiphy, struct net_device *netdev, 2933 u8 key_index, bool pairwise, const u8 *mac_addr, 2934 void *cookie, 2935 void (*callback)(void *cookie, struct key_params*)); 2936 int (*del_key)(struct wiphy *wiphy, struct net_device *netdev, 2937 u8 key_index, bool pairwise, const u8 *mac_addr); 2938 int (*set_default_key)(struct wiphy *wiphy, 2939 struct net_device *netdev, 2940 u8 key_index, bool unicast, bool multicast); 2941 int (*set_default_mgmt_key)(struct wiphy *wiphy, 2942 struct net_device *netdev, 2943 u8 key_index); 2944 2945 int (*start_ap)(struct wiphy *wiphy, struct net_device *dev, 2946 struct cfg80211_ap_settings *settings); 2947 int (*change_beacon)(struct wiphy *wiphy, struct net_device *dev, 2948 struct cfg80211_beacon_data *info); 2949 int (*stop_ap)(struct wiphy *wiphy, struct net_device *dev); 2950 2951 2952 int (*add_station)(struct wiphy *wiphy, struct net_device *dev, 2953 const u8 *mac, 2954 struct station_parameters *params); 2955 int (*del_station)(struct wiphy *wiphy, struct net_device *dev, 2956 struct station_del_parameters *params); 2957 int (*change_station)(struct wiphy *wiphy, struct net_device *dev, 2958 const u8 *mac, 2959 struct station_parameters *params); 2960 int (*get_station)(struct wiphy *wiphy, struct net_device *dev, 2961 const u8 *mac, struct station_info *sinfo); 2962 int (*dump_station)(struct wiphy *wiphy, struct net_device *dev, 2963 int idx, u8 *mac, struct station_info *sinfo); 2964 2965 int (*add_mpath)(struct wiphy *wiphy, struct net_device *dev, 2966 const u8 *dst, const u8 *next_hop); 2967 int (*del_mpath)(struct wiphy *wiphy, struct net_device *dev, 2968 const u8 *dst); 2969 int (*change_mpath)(struct wiphy *wiphy, struct net_device *dev, 2970 const u8 *dst, const u8 *next_hop); 2971 int (*get_mpath)(struct wiphy *wiphy, struct net_device *dev, 2972 u8 *dst, u8 *next_hop, struct mpath_info *pinfo); 2973 int (*dump_mpath)(struct wiphy *wiphy, struct net_device *dev, 2974 int idx, u8 *dst, u8 *next_hop, 2975 struct mpath_info *pinfo); 2976 int (*get_mpp)(struct wiphy *wiphy, struct net_device *dev, 2977 u8 *dst, u8 *mpp, struct mpath_info *pinfo); 2978 int (*dump_mpp)(struct wiphy *wiphy, struct net_device *dev, 2979 int idx, u8 *dst, u8 *mpp, 2980 struct mpath_info *pinfo); 2981 int (*get_mesh_config)(struct wiphy *wiphy, 2982 struct net_device *dev, 2983 struct mesh_config *conf); 2984 int (*update_mesh_config)(struct wiphy *wiphy, 2985 struct net_device *dev, u32 mask, 2986 const struct mesh_config *nconf); 2987 int (*join_mesh)(struct wiphy *wiphy, struct net_device *dev, 2988 const struct mesh_config *conf, 2989 const struct mesh_setup *setup); 2990 int (*leave_mesh)(struct wiphy *wiphy, struct net_device *dev); 2991 2992 int (*join_ocb)(struct wiphy *wiphy, struct net_device *dev, 2993 struct ocb_setup *setup); 2994 int (*leave_ocb)(struct wiphy *wiphy, struct net_device *dev); 2995 2996 int (*change_bss)(struct wiphy *wiphy, struct net_device *dev, 2997 struct bss_parameters *params); 2998 2999 int (*set_txq_params)(struct wiphy *wiphy, struct net_device *dev, 3000 struct ieee80211_txq_params *params); 3001 3002 int (*libertas_set_mesh_channel)(struct wiphy *wiphy, 3003 struct net_device *dev, 3004 struct ieee80211_channel *chan); 3005 3006 int (*set_monitor_channel)(struct wiphy *wiphy, 3007 struct cfg80211_chan_def *chandef); 3008 3009 int (*scan)(struct wiphy *wiphy, 3010 struct cfg80211_scan_request *request); 3011 void (*abort_scan)(struct wiphy *wiphy, struct wireless_dev *wdev); 3012 3013 int (*auth)(struct wiphy *wiphy, struct net_device *dev, 3014 struct cfg80211_auth_request *req); 3015 int (*assoc)(struct wiphy *wiphy, struct net_device *dev, 3016 struct cfg80211_assoc_request *req); 3017 int (*deauth)(struct wiphy *wiphy, struct net_device *dev, 3018 struct cfg80211_deauth_request *req); 3019 int (*disassoc)(struct wiphy *wiphy, struct net_device *dev, 3020 struct cfg80211_disassoc_request *req); 3021 3022 int (*connect)(struct wiphy *wiphy, struct net_device *dev, 3023 struct cfg80211_connect_params *sme); 3024 int (*update_connect_params)(struct wiphy *wiphy, 3025 struct net_device *dev, 3026 struct cfg80211_connect_params *sme, 3027 u32 changed); 3028 int (*disconnect)(struct wiphy *wiphy, struct net_device *dev, 3029 u16 reason_code); 3030 3031 int (*join_ibss)(struct wiphy *wiphy, struct net_device *dev, 3032 struct cfg80211_ibss_params *params); 3033 int (*leave_ibss)(struct wiphy *wiphy, struct net_device *dev); 3034 3035 int (*set_mcast_rate)(struct wiphy *wiphy, struct net_device *dev, 3036 int rate[NUM_NL80211_BANDS]); 3037 3038 int (*set_wiphy_params)(struct wiphy *wiphy, u32 changed); 3039 3040 int (*set_tx_power)(struct wiphy *wiphy, struct wireless_dev *wdev, 3041 enum nl80211_tx_power_setting type, int mbm); 3042 int (*get_tx_power)(struct wiphy *wiphy, struct wireless_dev *wdev, 3043 int *dbm); 3044 3045 int (*set_wds_peer)(struct wiphy *wiphy, struct net_device *dev, 3046 const u8 *addr); 3047 3048 void (*rfkill_poll)(struct wiphy *wiphy); 3049 3050 #ifdef CONFIG_NL80211_TESTMODE 3051 int (*testmode_cmd)(struct wiphy *wiphy, struct wireless_dev *wdev, 3052 void *data, int len); 3053 int (*testmode_dump)(struct wiphy *wiphy, struct sk_buff *skb, 3054 struct netlink_callback *cb, 3055 void *data, int len); 3056 #endif 3057 3058 int (*set_bitrate_mask)(struct wiphy *wiphy, 3059 struct net_device *dev, 3060 const u8 *peer, 3061 const struct cfg80211_bitrate_mask *mask); 3062 3063 int (*dump_survey)(struct wiphy *wiphy, struct net_device *netdev, 3064 int idx, struct survey_info *info); 3065 3066 int (*set_pmksa)(struct wiphy *wiphy, struct net_device *netdev, 3067 struct cfg80211_pmksa *pmksa); 3068 int (*del_pmksa)(struct wiphy *wiphy, struct net_device *netdev, 3069 struct cfg80211_pmksa *pmksa); 3070 int (*flush_pmksa)(struct wiphy *wiphy, struct net_device *netdev); 3071 3072 int (*remain_on_channel)(struct wiphy *wiphy, 3073 struct wireless_dev *wdev, 3074 struct ieee80211_channel *chan, 3075 unsigned int duration, 3076 u64 *cookie); 3077 int (*cancel_remain_on_channel)(struct wiphy *wiphy, 3078 struct wireless_dev *wdev, 3079 u64 cookie); 3080 3081 int (*mgmt_tx)(struct wiphy *wiphy, struct wireless_dev *wdev, 3082 struct cfg80211_mgmt_tx_params *params, 3083 u64 *cookie); 3084 int (*mgmt_tx_cancel_wait)(struct wiphy *wiphy, 3085 struct wireless_dev *wdev, 3086 u64 cookie); 3087 3088 int (*set_power_mgmt)(struct wiphy *wiphy, struct net_device *dev, 3089 bool enabled, int timeout); 3090 3091 int (*set_cqm_rssi_config)(struct wiphy *wiphy, 3092 struct net_device *dev, 3093 s32 rssi_thold, u32 rssi_hyst); 3094 3095 int (*set_cqm_rssi_range_config)(struct wiphy *wiphy, 3096 struct net_device *dev, 3097 s32 rssi_low, s32 rssi_high); 3098 3099 int (*set_cqm_txe_config)(struct wiphy *wiphy, 3100 struct net_device *dev, 3101 u32 rate, u32 pkts, u32 intvl); 3102 3103 void (*mgmt_frame_register)(struct wiphy *wiphy, 3104 struct wireless_dev *wdev, 3105 u16 frame_type, bool reg); 3106 3107 int (*set_antenna)(struct wiphy *wiphy, u32 tx_ant, u32 rx_ant); 3108 int (*get_antenna)(struct wiphy *wiphy, u32 *tx_ant, u32 *rx_ant); 3109 3110 int (*sched_scan_start)(struct wiphy *wiphy, 3111 struct net_device *dev, 3112 struct cfg80211_sched_scan_request *request); 3113 int (*sched_scan_stop)(struct wiphy *wiphy, struct net_device *dev, 3114 u64 reqid); 3115 3116 int (*set_rekey_data)(struct wiphy *wiphy, struct net_device *dev, 3117 struct cfg80211_gtk_rekey_data *data); 3118 3119 int (*tdls_mgmt)(struct wiphy *wiphy, struct net_device *dev, 3120 const u8 *peer, u8 action_code, u8 dialog_token, 3121 u16 status_code, u32 peer_capability, 3122 bool initiator, const u8 *buf, size_t len); 3123 int (*tdls_oper)(struct wiphy *wiphy, struct net_device *dev, 3124 const u8 *peer, enum nl80211_tdls_operation oper); 3125 3126 int (*probe_client)(struct wiphy *wiphy, struct net_device *dev, 3127 const u8 *peer, u64 *cookie); 3128 3129 int (*set_noack_map)(struct wiphy *wiphy, 3130 struct net_device *dev, 3131 u16 noack_map); 3132 3133 int (*get_channel)(struct wiphy *wiphy, 3134 struct wireless_dev *wdev, 3135 struct cfg80211_chan_def *chandef); 3136 3137 int (*start_p2p_device)(struct wiphy *wiphy, 3138 struct wireless_dev *wdev); 3139 void (*stop_p2p_device)(struct wiphy *wiphy, 3140 struct wireless_dev *wdev); 3141 3142 int (*set_mac_acl)(struct wiphy *wiphy, struct net_device *dev, 3143 const struct cfg80211_acl_data *params); 3144 3145 int (*start_radar_detection)(struct wiphy *wiphy, 3146 struct net_device *dev, 3147 struct cfg80211_chan_def *chandef, 3148 u32 cac_time_ms); 3149 int (*update_ft_ies)(struct wiphy *wiphy, struct net_device *dev, 3150 struct cfg80211_update_ft_ies_params *ftie); 3151 int (*crit_proto_start)(struct wiphy *wiphy, 3152 struct wireless_dev *wdev, 3153 enum nl80211_crit_proto_id protocol, 3154 u16 duration); 3155 void (*crit_proto_stop)(struct wiphy *wiphy, 3156 struct wireless_dev *wdev); 3157 int (*set_coalesce)(struct wiphy *wiphy, 3158 struct cfg80211_coalesce *coalesce); 3159 3160 int (*channel_switch)(struct wiphy *wiphy, 3161 struct net_device *dev, 3162 struct cfg80211_csa_settings *params); 3163 3164 int (*set_qos_map)(struct wiphy *wiphy, 3165 struct net_device *dev, 3166 struct cfg80211_qos_map *qos_map); 3167 3168 int (*set_ap_chanwidth)(struct wiphy *wiphy, struct net_device *dev, 3169 struct cfg80211_chan_def *chandef); 3170 3171 int (*add_tx_ts)(struct wiphy *wiphy, struct net_device *dev, 3172 u8 tsid, const u8 *peer, u8 user_prio, 3173 u16 admitted_time); 3174 int (*del_tx_ts)(struct wiphy *wiphy, struct net_device *dev, 3175 u8 tsid, const u8 *peer); 3176 3177 int (*tdls_channel_switch)(struct wiphy *wiphy, 3178 struct net_device *dev, 3179 const u8 *addr, u8 oper_class, 3180 struct cfg80211_chan_def *chandef); 3181 void (*tdls_cancel_channel_switch)(struct wiphy *wiphy, 3182 struct net_device *dev, 3183 const u8 *addr); 3184 int (*start_nan)(struct wiphy *wiphy, struct wireless_dev *wdev, 3185 struct cfg80211_nan_conf *conf); 3186 void (*stop_nan)(struct wiphy *wiphy, struct wireless_dev *wdev); 3187 int (*add_nan_func)(struct wiphy *wiphy, struct wireless_dev *wdev, 3188 struct cfg80211_nan_func *nan_func); 3189 void (*del_nan_func)(struct wiphy *wiphy, struct wireless_dev *wdev, 3190 u64 cookie); 3191 int (*nan_change_conf)(struct wiphy *wiphy, 3192 struct wireless_dev *wdev, 3193 struct cfg80211_nan_conf *conf, 3194 u32 changes); 3195 3196 int (*set_multicast_to_unicast)(struct wiphy *wiphy, 3197 struct net_device *dev, 3198 const bool enabled); 3199 3200 int (*set_pmk)(struct wiphy *wiphy, struct net_device *dev, 3201 const struct cfg80211_pmk_conf *conf); 3202 int (*del_pmk)(struct wiphy *wiphy, struct net_device *dev, 3203 const u8 *aa); 3204 }; 3205 3206 /* 3207 * wireless hardware and networking interfaces structures 3208 * and registration/helper functions 3209 */ 3210 3211 /** 3212 * enum wiphy_flags - wiphy capability flags 3213 * 3214 * @WIPHY_FLAG_NETNS_OK: if not set, do not allow changing the netns of this 3215 * wiphy at all 3216 * @WIPHY_FLAG_PS_ON_BY_DEFAULT: if set to true, powersave will be enabled 3217 * by default -- this flag will be set depending on the kernel's default 3218 * on wiphy_new(), but can be changed by the driver if it has a good 3219 * reason to override the default 3220 * @WIPHY_FLAG_4ADDR_AP: supports 4addr mode even on AP (with a single station 3221 * on a VLAN interface) 3222 * @WIPHY_FLAG_4ADDR_STATION: supports 4addr mode even as a station 3223 * @WIPHY_FLAG_CONTROL_PORT_PROTOCOL: This device supports setting the 3224 * control port protocol ethertype. The device also honours the 3225 * control_port_no_encrypt flag. 3226 * @WIPHY_FLAG_IBSS_RSN: The device supports IBSS RSN. 3227 * @WIPHY_FLAG_MESH_AUTH: The device supports mesh authentication by routing 3228 * auth frames to userspace. See @NL80211_MESH_SETUP_USERSPACE_AUTH. 3229 * @WIPHY_FLAG_SUPPORTS_FW_ROAM: The device supports roaming feature in the 3230 * firmware. 3231 * @WIPHY_FLAG_AP_UAPSD: The device supports uapsd on AP. 3232 * @WIPHY_FLAG_SUPPORTS_TDLS: The device supports TDLS (802.11z) operation. 3233 * @WIPHY_FLAG_TDLS_EXTERNAL_SETUP: The device does not handle TDLS (802.11z) 3234 * link setup/discovery operations internally. Setup, discovery and 3235 * teardown packets should be sent through the @NL80211_CMD_TDLS_MGMT 3236 * command. When this flag is not set, @NL80211_CMD_TDLS_OPER should be 3237 * used for asking the driver/firmware to perform a TDLS operation. 3238 * @WIPHY_FLAG_HAVE_AP_SME: device integrates AP SME 3239 * @WIPHY_FLAG_REPORTS_OBSS: the device will report beacons from other BSSes 3240 * when there are virtual interfaces in AP mode by calling 3241 * cfg80211_report_obss_beacon(). 3242 * @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD: When operating as an AP, the device 3243 * responds to probe-requests in hardware. 3244 * @WIPHY_FLAG_OFFCHAN_TX: Device supports direct off-channel TX. 3245 * @WIPHY_FLAG_HAS_REMAIN_ON_CHANNEL: Device supports remain-on-channel call. 3246 * @WIPHY_FLAG_SUPPORTS_5_10_MHZ: Device supports 5 MHz and 10 MHz channels. 3247 * @WIPHY_FLAG_HAS_CHANNEL_SWITCH: Device supports channel switch in 3248 * beaconing mode (AP, IBSS, Mesh, ...). 3249 * @WIPHY_FLAG_HAS_STATIC_WEP: The device supports static WEP key installation 3250 * before connection. 3251 */ 3252 enum wiphy_flags { 3253 /* use hole at 0 */ 3254 /* use hole at 1 */ 3255 /* use hole at 2 */ 3256 WIPHY_FLAG_NETNS_OK = BIT(3), 3257 WIPHY_FLAG_PS_ON_BY_DEFAULT = BIT(4), 3258 WIPHY_FLAG_4ADDR_AP = BIT(5), 3259 WIPHY_FLAG_4ADDR_STATION = BIT(6), 3260 WIPHY_FLAG_CONTROL_PORT_PROTOCOL = BIT(7), 3261 WIPHY_FLAG_IBSS_RSN = BIT(8), 3262 WIPHY_FLAG_MESH_AUTH = BIT(10), 3263 /* use hole at 11 */ 3264 /* use hole at 12 */ 3265 WIPHY_FLAG_SUPPORTS_FW_ROAM = BIT(13), 3266 WIPHY_FLAG_AP_UAPSD = BIT(14), 3267 WIPHY_FLAG_SUPPORTS_TDLS = BIT(15), 3268 WIPHY_FLAG_TDLS_EXTERNAL_SETUP = BIT(16), 3269 WIPHY_FLAG_HAVE_AP_SME = BIT(17), 3270 WIPHY_FLAG_REPORTS_OBSS = BIT(18), 3271 WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD = BIT(19), 3272 WIPHY_FLAG_OFFCHAN_TX = BIT(20), 3273 WIPHY_FLAG_HAS_REMAIN_ON_CHANNEL = BIT(21), 3274 WIPHY_FLAG_SUPPORTS_5_10_MHZ = BIT(22), 3275 WIPHY_FLAG_HAS_CHANNEL_SWITCH = BIT(23), 3276 WIPHY_FLAG_HAS_STATIC_WEP = BIT(24), 3277 }; 3278 3279 /** 3280 * struct ieee80211_iface_limit - limit on certain interface types 3281 * @max: maximum number of interfaces of these types 3282 * @types: interface types (bits) 3283 */ 3284 struct ieee80211_iface_limit { 3285 u16 max; 3286 u16 types; 3287 }; 3288 3289 /** 3290 * struct ieee80211_iface_combination - possible interface combination 3291 * 3292 * With this structure the driver can describe which interface 3293 * combinations it supports concurrently. 3294 * 3295 * Examples: 3296 * 3297 * 1. Allow #STA <= 1, #AP <= 1, matching BI, channels = 1, 2 total: 3298 * 3299 * .. code-block:: c 3300 * 3301 * struct ieee80211_iface_limit limits1[] = { 3302 * { .max = 1, .types = BIT(NL80211_IFTYPE_STATION), }, 3303 * { .max = 1, .types = BIT(NL80211_IFTYPE_AP}, }, 3304 * }; 3305 * struct ieee80211_iface_combination combination1 = { 3306 * .limits = limits1, 3307 * .n_limits = ARRAY_SIZE(limits1), 3308 * .max_interfaces = 2, 3309 * .beacon_int_infra_match = true, 3310 * }; 3311 * 3312 * 3313 * 2. Allow #{AP, P2P-GO} <= 8, channels = 1, 8 total: 3314 * 3315 * .. code-block:: c 3316 * 3317 * struct ieee80211_iface_limit limits2[] = { 3318 * { .max = 8, .types = BIT(NL80211_IFTYPE_AP) | 3319 * BIT(NL80211_IFTYPE_P2P_GO), }, 3320 * }; 3321 * struct ieee80211_iface_combination combination2 = { 3322 * .limits = limits2, 3323 * .n_limits = ARRAY_SIZE(limits2), 3324 * .max_interfaces = 8, 3325 * .num_different_channels = 1, 3326 * }; 3327 * 3328 * 3329 * 3. Allow #STA <= 1, #{P2P-client,P2P-GO} <= 3 on two channels, 4 total. 3330 * 3331 * This allows for an infrastructure connection and three P2P connections. 3332 * 3333 * .. code-block:: c 3334 * 3335 * struct ieee80211_iface_limit limits3[] = { 3336 * { .max = 1, .types = BIT(NL80211_IFTYPE_STATION), }, 3337 * { .max = 3, .types = BIT(NL80211_IFTYPE_P2P_GO) | 3338 * BIT(NL80211_IFTYPE_P2P_CLIENT), }, 3339 * }; 3340 * struct ieee80211_iface_combination combination3 = { 3341 * .limits = limits3, 3342 * .n_limits = ARRAY_SIZE(limits3), 3343 * .max_interfaces = 4, 3344 * .num_different_channels = 2, 3345 * }; 3346 * 3347 */ 3348 struct ieee80211_iface_combination { 3349 /** 3350 * @limits: 3351 * limits for the given interface types 3352 */ 3353 const struct ieee80211_iface_limit *limits; 3354 3355 /** 3356 * @num_different_channels: 3357 * can use up to this many different channels 3358 */ 3359 u32 num_different_channels; 3360 3361 /** 3362 * @max_interfaces: 3363 * maximum number of interfaces in total allowed in this group 3364 */ 3365 u16 max_interfaces; 3366 3367 /** 3368 * @n_limits: 3369 * number of limitations 3370 */ 3371 u8 n_limits; 3372 3373 /** 3374 * @beacon_int_infra_match: 3375 * In this combination, the beacon intervals between infrastructure 3376 * and AP types must match. This is required only in special cases. 3377 */ 3378 bool beacon_int_infra_match; 3379 3380 /** 3381 * @radar_detect_widths: 3382 * bitmap of channel widths supported for radar detection 3383 */ 3384 u8 radar_detect_widths; 3385 3386 /** 3387 * @radar_detect_regions: 3388 * bitmap of regions supported for radar detection 3389 */ 3390 u8 radar_detect_regions; 3391 3392 /** 3393 * @beacon_int_min_gcd: 3394 * This interface combination supports different beacon intervals. 3395 * 3396 * = 0 3397 * all beacon intervals for different interface must be same. 3398 * > 0 3399 * any beacon interval for the interface part of this combination AND 3400 * GCD of all beacon intervals from beaconing interfaces of this 3401 * combination must be greater or equal to this value. 3402 */ 3403 u32 beacon_int_min_gcd; 3404 }; 3405 3406 struct ieee80211_txrx_stypes { 3407 u16 tx, rx; 3408 }; 3409 3410 /** 3411 * enum wiphy_wowlan_support_flags - WoWLAN support flags 3412 * @WIPHY_WOWLAN_ANY: supports wakeup for the special "any" 3413 * trigger that keeps the device operating as-is and 3414 * wakes up the host on any activity, for example a 3415 * received packet that passed filtering; note that the 3416 * packet should be preserved in that case 3417 * @WIPHY_WOWLAN_MAGIC_PKT: supports wakeup on magic packet 3418 * (see nl80211.h) 3419 * @WIPHY_WOWLAN_DISCONNECT: supports wakeup on disconnect 3420 * @WIPHY_WOWLAN_SUPPORTS_GTK_REKEY: supports GTK rekeying while asleep 3421 * @WIPHY_WOWLAN_GTK_REKEY_FAILURE: supports wakeup on GTK rekey failure 3422 * @WIPHY_WOWLAN_EAP_IDENTITY_REQ: supports wakeup on EAP identity request 3423 * @WIPHY_WOWLAN_4WAY_HANDSHAKE: supports wakeup on 4-way handshake failure 3424 * @WIPHY_WOWLAN_RFKILL_RELEASE: supports wakeup on RF-kill release 3425 * @WIPHY_WOWLAN_NET_DETECT: supports wakeup on network detection 3426 */ 3427 enum wiphy_wowlan_support_flags { 3428 WIPHY_WOWLAN_ANY = BIT(0), 3429 WIPHY_WOWLAN_MAGIC_PKT = BIT(1), 3430 WIPHY_WOWLAN_DISCONNECT = BIT(2), 3431 WIPHY_WOWLAN_SUPPORTS_GTK_REKEY = BIT(3), 3432 WIPHY_WOWLAN_GTK_REKEY_FAILURE = BIT(4), 3433 WIPHY_WOWLAN_EAP_IDENTITY_REQ = BIT(5), 3434 WIPHY_WOWLAN_4WAY_HANDSHAKE = BIT(6), 3435 WIPHY_WOWLAN_RFKILL_RELEASE = BIT(7), 3436 WIPHY_WOWLAN_NET_DETECT = BIT(8), 3437 }; 3438 3439 struct wiphy_wowlan_tcp_support { 3440 const struct nl80211_wowlan_tcp_data_token_feature *tok; 3441 u32 data_payload_max; 3442 u32 data_interval_max; 3443 u32 wake_payload_max; 3444 bool seq; 3445 }; 3446 3447 /** 3448 * struct wiphy_wowlan_support - WoWLAN support data 3449 * @flags: see &enum wiphy_wowlan_support_flags 3450 * @n_patterns: number of supported wakeup patterns 3451 * (see nl80211.h for the pattern definition) 3452 * @pattern_max_len: maximum length of each pattern 3453 * @pattern_min_len: minimum length of each pattern 3454 * @max_pkt_offset: maximum Rx packet offset 3455 * @max_nd_match_sets: maximum number of matchsets for net-detect, 3456 * similar, but not necessarily identical, to max_match_sets for 3457 * scheduled scans. 3458 * See &struct cfg80211_sched_scan_request.@match_sets for more 3459 * details. 3460 * @tcp: TCP wakeup support information 3461 */ 3462 struct wiphy_wowlan_support { 3463 u32 flags; 3464 int n_patterns; 3465 int pattern_max_len; 3466 int pattern_min_len; 3467 int max_pkt_offset; 3468 int max_nd_match_sets; 3469 const struct wiphy_wowlan_tcp_support *tcp; 3470 }; 3471 3472 /** 3473 * struct wiphy_coalesce_support - coalesce support data 3474 * @n_rules: maximum number of coalesce rules 3475 * @max_delay: maximum supported coalescing delay in msecs 3476 * @n_patterns: number of supported patterns in a rule 3477 * (see nl80211.h for the pattern definition) 3478 * @pattern_max_len: maximum length of each pattern 3479 * @pattern_min_len: minimum length of each pattern 3480 * @max_pkt_offset: maximum Rx packet offset 3481 */ 3482 struct wiphy_coalesce_support { 3483 int n_rules; 3484 int max_delay; 3485 int n_patterns; 3486 int pattern_max_len; 3487 int pattern_min_len; 3488 int max_pkt_offset; 3489 }; 3490 3491 /** 3492 * enum wiphy_vendor_command_flags - validation flags for vendor commands 3493 * @WIPHY_VENDOR_CMD_NEED_WDEV: vendor command requires wdev 3494 * @WIPHY_VENDOR_CMD_NEED_NETDEV: vendor command requires netdev 3495 * @WIPHY_VENDOR_CMD_NEED_RUNNING: interface/wdev must be up & running 3496 * (must be combined with %_WDEV or %_NETDEV) 3497 */ 3498 enum wiphy_vendor_command_flags { 3499 WIPHY_VENDOR_CMD_NEED_WDEV = BIT(0), 3500 WIPHY_VENDOR_CMD_NEED_NETDEV = BIT(1), 3501 WIPHY_VENDOR_CMD_NEED_RUNNING = BIT(2), 3502 }; 3503 3504 /** 3505 * struct wiphy_vendor_command - vendor command definition 3506 * @info: vendor command identifying information, as used in nl80211 3507 * @flags: flags, see &enum wiphy_vendor_command_flags 3508 * @doit: callback for the operation, note that wdev is %NULL if the 3509 * flags didn't ask for a wdev and non-%NULL otherwise; the data 3510 * pointer may be %NULL if userspace provided no data at all 3511 * @dumpit: dump callback, for transferring bigger/multiple items. The 3512 * @storage points to cb->args[5], ie. is preserved over the multiple 3513 * dumpit calls. 3514 * It's recommended to not have the same sub command with both @doit and 3515 * @dumpit, so that userspace can assume certain ones are get and others 3516 * are used with dump requests. 3517 */ 3518 struct wiphy_vendor_command { 3519 struct nl80211_vendor_cmd_info info; 3520 u32 flags; 3521 int (*doit)(struct wiphy *wiphy, struct wireless_dev *wdev, 3522 const void *data, int data_len); 3523 int (*dumpit)(struct wiphy *wiphy, struct wireless_dev *wdev, 3524 struct sk_buff *skb, const void *data, int data_len, 3525 unsigned long *storage); 3526 }; 3527 3528 /** 3529 * struct wiphy_iftype_ext_capab - extended capabilities per interface type 3530 * @iftype: interface type 3531 * @extended_capabilities: extended capabilities supported by the driver, 3532 * additional capabilities might be supported by userspace; these are the 3533 * 802.11 extended capabilities ("Extended Capabilities element") and are 3534 * in the same format as in the information element. See IEEE Std 3535 * 802.11-2012 8.4.2.29 for the defined fields. 3536 * @extended_capabilities_mask: mask of the valid values 3537 * @extended_capabilities_len: length of the extended capabilities 3538 */ 3539 struct wiphy_iftype_ext_capab { 3540 enum nl80211_iftype iftype; 3541 const u8 *extended_capabilities; 3542 const u8 *extended_capabilities_mask; 3543 u8 extended_capabilities_len; 3544 }; 3545 3546 /** 3547 * struct wiphy - wireless hardware description 3548 * @reg_notifier: the driver's regulatory notification callback, 3549 * note that if your driver uses wiphy_apply_custom_regulatory() 3550 * the reg_notifier's request can be passed as NULL 3551 * @regd: the driver's regulatory domain, if one was requested via 3552 * the regulatory_hint() API. This can be used by the driver 3553 * on the reg_notifier() if it chooses to ignore future 3554 * regulatory domain changes caused by other drivers. 3555 * @signal_type: signal type reported in &struct cfg80211_bss. 3556 * @cipher_suites: supported cipher suites 3557 * @n_cipher_suites: number of supported cipher suites 3558 * @retry_short: Retry limit for short frames (dot11ShortRetryLimit) 3559 * @retry_long: Retry limit for long frames (dot11LongRetryLimit) 3560 * @frag_threshold: Fragmentation threshold (dot11FragmentationThreshold); 3561 * -1 = fragmentation disabled, only odd values >= 256 used 3562 * @rts_threshold: RTS threshold (dot11RTSThreshold); -1 = RTS/CTS disabled 3563 * @_net: the network namespace this wiphy currently lives in 3564 * @perm_addr: permanent MAC address of this device 3565 * @addr_mask: If the device supports multiple MAC addresses by masking, 3566 * set this to a mask with variable bits set to 1, e.g. if the last 3567 * four bits are variable then set it to 00-00-00-00-00-0f. The actual 3568 * variable bits shall be determined by the interfaces added, with 3569 * interfaces not matching the mask being rejected to be brought up. 3570 * @n_addresses: number of addresses in @addresses. 3571 * @addresses: If the device has more than one address, set this pointer 3572 * to a list of addresses (6 bytes each). The first one will be used 3573 * by default for perm_addr. In this case, the mask should be set to 3574 * all-zeroes. In this case it is assumed that the device can handle 3575 * the same number of arbitrary MAC addresses. 3576 * @registered: protects ->resume and ->suspend sysfs callbacks against 3577 * unregister hardware 3578 * @debugfsdir: debugfs directory used for this wiphy, will be renamed 3579 * automatically on wiphy renames 3580 * @dev: (virtual) struct device for this wiphy 3581 * @registered: helps synchronize suspend/resume with wiphy unregister 3582 * @wext: wireless extension handlers 3583 * @priv: driver private data (sized according to wiphy_new() parameter) 3584 * @interface_modes: bitmask of interfaces types valid for this wiphy, 3585 * must be set by driver 3586 * @iface_combinations: Valid interface combinations array, should not 3587 * list single interface types. 3588 * @n_iface_combinations: number of entries in @iface_combinations array. 3589 * @software_iftypes: bitmask of software interface types, these are not 3590 * subject to any restrictions since they are purely managed in SW. 3591 * @flags: wiphy flags, see &enum wiphy_flags 3592 * @regulatory_flags: wiphy regulatory flags, see 3593 * &enum ieee80211_regulatory_flags 3594 * @features: features advertised to nl80211, see &enum nl80211_feature_flags. 3595 * @ext_features: extended features advertised to nl80211, see 3596 * &enum nl80211_ext_feature_index. 3597 * @bss_priv_size: each BSS struct has private data allocated with it, 3598 * this variable determines its size 3599 * @max_scan_ssids: maximum number of SSIDs the device can scan for in 3600 * any given scan 3601 * @max_sched_scan_reqs: maximum number of scheduled scan requests that 3602 * the device can run concurrently. 3603 * @max_sched_scan_ssids: maximum number of SSIDs the device can scan 3604 * for in any given scheduled scan 3605 * @max_match_sets: maximum number of match sets the device can handle 3606 * when performing a scheduled scan, 0 if filtering is not 3607 * supported. 3608 * @max_scan_ie_len: maximum length of user-controlled IEs device can 3609 * add to probe request frames transmitted during a scan, must not 3610 * include fixed IEs like supported rates 3611 * @max_sched_scan_ie_len: same as max_scan_ie_len, but for scheduled 3612 * scans 3613 * @max_sched_scan_plans: maximum number of scan plans (scan interval and number 3614 * of iterations) for scheduled scan supported by the device. 3615 * @max_sched_scan_plan_interval: maximum interval (in seconds) for a 3616 * single scan plan supported by the device. 3617 * @max_sched_scan_plan_iterations: maximum number of iterations for a single 3618 * scan plan supported by the device. 3619 * @coverage_class: current coverage class 3620 * @fw_version: firmware version for ethtool reporting 3621 * @hw_version: hardware version for ethtool reporting 3622 * @max_num_pmkids: maximum number of PMKIDs supported by device 3623 * @privid: a pointer that drivers can use to identify if an arbitrary 3624 * wiphy is theirs, e.g. in global notifiers 3625 * @bands: information about bands/channels supported by this device 3626 * 3627 * @mgmt_stypes: bitmasks of frame subtypes that can be subscribed to or 3628 * transmitted through nl80211, points to an array indexed by interface 3629 * type 3630 * 3631 * @available_antennas_tx: bitmap of antennas which are available to be 3632 * configured as TX antennas. Antenna configuration commands will be 3633 * rejected unless this or @available_antennas_rx is set. 3634 * 3635 * @available_antennas_rx: bitmap of antennas which are available to be 3636 * configured as RX antennas. Antenna configuration commands will be 3637 * rejected unless this or @available_antennas_tx is set. 3638 * 3639 * @probe_resp_offload: 3640 * Bitmap of supported protocols for probe response offloading. 3641 * See &enum nl80211_probe_resp_offload_support_attr. Only valid 3642 * when the wiphy flag @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD is set. 3643 * 3644 * @max_remain_on_channel_duration: Maximum time a remain-on-channel operation 3645 * may request, if implemented. 3646 * 3647 * @wowlan: WoWLAN support information 3648 * @wowlan_config: current WoWLAN configuration; this should usually not be 3649 * used since access to it is necessarily racy, use the parameter passed 3650 * to the suspend() operation instead. 3651 * 3652 * @ap_sme_capa: AP SME capabilities, flags from &enum nl80211_ap_sme_features. 3653 * @ht_capa_mod_mask: Specify what ht_cap values can be over-ridden. 3654 * If null, then none can be over-ridden. 3655 * @vht_capa_mod_mask: Specify what VHT capabilities can be over-ridden. 3656 * If null, then none can be over-ridden. 3657 * 3658 * @wdev_list: the list of associated (virtual) interfaces; this list must 3659 * not be modified by the driver, but can be read with RTNL/RCU protection. 3660 * 3661 * @max_acl_mac_addrs: Maximum number of MAC addresses that the device 3662 * supports for ACL. 3663 * 3664 * @extended_capabilities: extended capabilities supported by the driver, 3665 * additional capabilities might be supported by userspace; these are 3666 * the 802.11 extended capabilities ("Extended Capabilities element") 3667 * and are in the same format as in the information element. See 3668 * 802.11-2012 8.4.2.29 for the defined fields. These are the default 3669 * extended capabilities to be used if the capabilities are not specified 3670 * for a specific interface type in iftype_ext_capab. 3671 * @extended_capabilities_mask: mask of the valid values 3672 * @extended_capabilities_len: length of the extended capabilities 3673 * @iftype_ext_capab: array of extended capabilities per interface type 3674 * @num_iftype_ext_capab: number of interface types for which extended 3675 * capabilities are specified separately. 3676 * @coalesce: packet coalescing support information 3677 * 3678 * @vendor_commands: array of vendor commands supported by the hardware 3679 * @n_vendor_commands: number of vendor commands 3680 * @vendor_events: array of vendor events supported by the hardware 3681 * @n_vendor_events: number of vendor events 3682 * 3683 * @max_ap_assoc_sta: maximum number of associated stations supported in AP mode 3684 * (including P2P GO) or 0 to indicate no such limit is advertised. The 3685 * driver is allowed to advertise a theoretical limit that it can reach in 3686 * some cases, but may not always reach. 3687 * 3688 * @max_num_csa_counters: Number of supported csa_counters in beacons 3689 * and probe responses. This value should be set if the driver 3690 * wishes to limit the number of csa counters. Default (0) means 3691 * infinite. 3692 * @max_adj_channel_rssi_comp: max offset of between the channel on which the 3693 * frame was sent and the channel on which the frame was heard for which 3694 * the reported rssi is still valid. If a driver is able to compensate the 3695 * low rssi when a frame is heard on different channel, then it should set 3696 * this variable to the maximal offset for which it can compensate. 3697 * This value should be set in MHz. 3698 * @bss_select_support: bitmask indicating the BSS selection criteria supported 3699 * by the driver in the .connect() callback. The bit position maps to the 3700 * attribute indices defined in &enum nl80211_bss_select_attr. 3701 * 3702 * @cookie_counter: unique generic cookie counter, used to identify objects. 3703 * @nan_supported_bands: bands supported by the device in NAN mode, a 3704 * bitmap of &enum nl80211_band values. For instance, for 3705 * NL80211_BAND_2GHZ, bit 0 would be set 3706 * (i.e. BIT(NL80211_BAND_2GHZ)). 3707 */ 3708 struct wiphy { 3709 /* assign these fields before you register the wiphy */ 3710 3711 /* permanent MAC address(es) */ 3712 u8 perm_addr[ETH_ALEN]; 3713 u8 addr_mask[ETH_ALEN]; 3714 3715 struct mac_address *addresses; 3716 3717 const struct ieee80211_txrx_stypes *mgmt_stypes; 3718 3719 const struct ieee80211_iface_combination *iface_combinations; 3720 int n_iface_combinations; 3721 u16 software_iftypes; 3722 3723 u16 n_addresses; 3724 3725 /* Supported interface modes, OR together BIT(NL80211_IFTYPE_...) */ 3726 u16 interface_modes; 3727 3728 u16 max_acl_mac_addrs; 3729 3730 u32 flags, regulatory_flags, features; 3731 u8 ext_features[DIV_ROUND_UP(NUM_NL80211_EXT_FEATURES, 8)]; 3732 3733 u32 ap_sme_capa; 3734 3735 enum cfg80211_signal_type signal_type; 3736 3737 int bss_priv_size; 3738 u8 max_scan_ssids; 3739 u8 max_sched_scan_reqs; 3740 u8 max_sched_scan_ssids; 3741 u8 max_match_sets; 3742 u16 max_scan_ie_len; 3743 u16 max_sched_scan_ie_len; 3744 u32 max_sched_scan_plans; 3745 u32 max_sched_scan_plan_interval; 3746 u32 max_sched_scan_plan_iterations; 3747 3748 int n_cipher_suites; 3749 const u32 *cipher_suites; 3750 3751 u8 retry_short; 3752 u8 retry_long; 3753 u32 frag_threshold; 3754 u32 rts_threshold; 3755 u8 coverage_class; 3756 3757 char fw_version[ETHTOOL_FWVERS_LEN]; 3758 u32 hw_version; 3759 3760 #ifdef CONFIG_PM 3761 const struct wiphy_wowlan_support *wowlan; 3762 struct cfg80211_wowlan *wowlan_config; 3763 #endif 3764 3765 u16 max_remain_on_channel_duration; 3766 3767 u8 max_num_pmkids; 3768 3769 u32 available_antennas_tx; 3770 u32 available_antennas_rx; 3771 3772 /* 3773 * Bitmap of supported protocols for probe response offloading 3774 * see &enum nl80211_probe_resp_offload_support_attr. Only valid 3775 * when the wiphy flag @WIPHY_FLAG_AP_PROBE_RESP_OFFLOAD is set. 3776 */ 3777 u32 probe_resp_offload; 3778 3779 const u8 *extended_capabilities, *extended_capabilities_mask; 3780 u8 extended_capabilities_len; 3781 3782 const struct wiphy_iftype_ext_capab *iftype_ext_capab; 3783 unsigned int num_iftype_ext_capab; 3784 3785 /* If multiple wiphys are registered and you're handed e.g. 3786 * a regular netdev with assigned ieee80211_ptr, you won't 3787 * know whether it points to a wiphy your driver has registered 3788 * or not. Assign this to something global to your driver to 3789 * help determine whether you own this wiphy or not. */ 3790 const void *privid; 3791 3792 struct ieee80211_supported_band *bands[NUM_NL80211_BANDS]; 3793 3794 /* Lets us get back the wiphy on the callback */ 3795 void (*reg_notifier)(struct wiphy *wiphy, 3796 struct regulatory_request *request); 3797 3798 /* fields below are read-only, assigned by cfg80211 */ 3799 3800 const struct ieee80211_regdomain __rcu *regd; 3801 3802 /* the item in /sys/class/ieee80211/ points to this, 3803 * you need use set_wiphy_dev() (see below) */ 3804 struct device dev; 3805 3806 /* protects ->resume, ->suspend sysfs callbacks against unregister hw */ 3807 bool registered; 3808 3809 /* dir in debugfs: ieee80211/<wiphyname> */ 3810 struct dentry *debugfsdir; 3811 3812 const struct ieee80211_ht_cap *ht_capa_mod_mask; 3813 const struct ieee80211_vht_cap *vht_capa_mod_mask; 3814 3815 struct list_head wdev_list; 3816 3817 /* the network namespace this phy lives in currently */ 3818 possible_net_t _net; 3819 3820 #ifdef CONFIG_CFG80211_WEXT 3821 const struct iw_handler_def *wext; 3822 #endif 3823 3824 const struct wiphy_coalesce_support *coalesce; 3825 3826 const struct wiphy_vendor_command *vendor_commands; 3827 const struct nl80211_vendor_cmd_info *vendor_events; 3828 int n_vendor_commands, n_vendor_events; 3829 3830 u16 max_ap_assoc_sta; 3831 3832 u8 max_num_csa_counters; 3833 u8 max_adj_channel_rssi_comp; 3834 3835 u32 bss_select_support; 3836 3837 u64 cookie_counter; 3838 3839 u8 nan_supported_bands; 3840 3841 char priv[0] __aligned(NETDEV_ALIGN); 3842 }; 3843 3844 static inline struct net *wiphy_net(struct wiphy *wiphy) 3845 { 3846 return read_pnet(&wiphy->_net); 3847 } 3848 3849 static inline void wiphy_net_set(struct wiphy *wiphy, struct net *net) 3850 { 3851 write_pnet(&wiphy->_net, net); 3852 } 3853 3854 /** 3855 * wiphy_priv - return priv from wiphy 3856 * 3857 * @wiphy: the wiphy whose priv pointer to return 3858 * Return: The priv of @wiphy. 3859 */ 3860 static inline void *wiphy_priv(struct wiphy *wiphy) 3861 { 3862 BUG_ON(!wiphy); 3863 return &wiphy->priv; 3864 } 3865 3866 /** 3867 * priv_to_wiphy - return the wiphy containing the priv 3868 * 3869 * @priv: a pointer previously returned by wiphy_priv 3870 * Return: The wiphy of @priv. 3871 */ 3872 static inline struct wiphy *priv_to_wiphy(void *priv) 3873 { 3874 BUG_ON(!priv); 3875 return container_of(priv, struct wiphy, priv); 3876 } 3877 3878 /** 3879 * set_wiphy_dev - set device pointer for wiphy 3880 * 3881 * @wiphy: The wiphy whose device to bind 3882 * @dev: The device to parent it to 3883 */ 3884 static inline void set_wiphy_dev(struct wiphy *wiphy, struct device *dev) 3885 { 3886 wiphy->dev.parent = dev; 3887 } 3888 3889 /** 3890 * wiphy_dev - get wiphy dev pointer 3891 * 3892 * @wiphy: The wiphy whose device struct to look up 3893 * Return: The dev of @wiphy. 3894 */ 3895 static inline struct device *wiphy_dev(struct wiphy *wiphy) 3896 { 3897 return wiphy->dev.parent; 3898 } 3899 3900 /** 3901 * wiphy_name - get wiphy name 3902 * 3903 * @wiphy: The wiphy whose name to return 3904 * Return: The name of @wiphy. 3905 */ 3906 static inline const char *wiphy_name(const struct wiphy *wiphy) 3907 { 3908 return dev_name(&wiphy->dev); 3909 } 3910 3911 /** 3912 * wiphy_new_nm - create a new wiphy for use with cfg80211 3913 * 3914 * @ops: The configuration operations for this device 3915 * @sizeof_priv: The size of the private area to allocate 3916 * @requested_name: Request a particular name. 3917 * NULL is valid value, and means use the default phy%d naming. 3918 * 3919 * Create a new wiphy and associate the given operations with it. 3920 * @sizeof_priv bytes are allocated for private use. 3921 * 3922 * Return: A pointer to the new wiphy. This pointer must be 3923 * assigned to each netdev's ieee80211_ptr for proper operation. 3924 */ 3925 struct wiphy *wiphy_new_nm(const struct cfg80211_ops *ops, int sizeof_priv, 3926 const char *requested_name); 3927 3928 /** 3929 * wiphy_new - create a new wiphy for use with cfg80211 3930 * 3931 * @ops: The configuration operations for this device 3932 * @sizeof_priv: The size of the private area to allocate 3933 * 3934 * Create a new wiphy and associate the given operations with it. 3935 * @sizeof_priv bytes are allocated for private use. 3936 * 3937 * Return: A pointer to the new wiphy. This pointer must be 3938 * assigned to each netdev's ieee80211_ptr for proper operation. 3939 */ 3940 static inline struct wiphy *wiphy_new(const struct cfg80211_ops *ops, 3941 int sizeof_priv) 3942 { 3943 return wiphy_new_nm(ops, sizeof_priv, NULL); 3944 } 3945 3946 /** 3947 * wiphy_register - register a wiphy with cfg80211 3948 * 3949 * @wiphy: The wiphy to register. 3950 * 3951 * Return: A non-negative wiphy index or a negative error code. 3952 */ 3953 int wiphy_register(struct wiphy *wiphy); 3954 3955 /** 3956 * wiphy_unregister - deregister a wiphy from cfg80211 3957 * 3958 * @wiphy: The wiphy to unregister. 3959 * 3960 * After this call, no more requests can be made with this priv 3961 * pointer, but the call may sleep to wait for an outstanding 3962 * request that is being handled. 3963 */ 3964 void wiphy_unregister(struct wiphy *wiphy); 3965 3966 /** 3967 * wiphy_free - free wiphy 3968 * 3969 * @wiphy: The wiphy to free 3970 */ 3971 void wiphy_free(struct wiphy *wiphy); 3972 3973 /* internal structs */ 3974 struct cfg80211_conn; 3975 struct cfg80211_internal_bss; 3976 struct cfg80211_cached_keys; 3977 struct cfg80211_cqm_config; 3978 3979 /** 3980 * struct wireless_dev - wireless device state 3981 * 3982 * For netdevs, this structure must be allocated by the driver 3983 * that uses the ieee80211_ptr field in struct net_device (this 3984 * is intentional so it can be allocated along with the netdev.) 3985 * It need not be registered then as netdev registration will 3986 * be intercepted by cfg80211 to see the new wireless device. 3987 * 3988 * For non-netdev uses, it must also be allocated by the driver 3989 * in response to the cfg80211 callbacks that require it, as 3990 * there's no netdev registration in that case it may not be 3991 * allocated outside of callback operations that return it. 3992 * 3993 * @wiphy: pointer to hardware description 3994 * @iftype: interface type 3995 * @list: (private) Used to collect the interfaces 3996 * @netdev: (private) Used to reference back to the netdev, may be %NULL 3997 * @identifier: (private) Identifier used in nl80211 to identify this 3998 * wireless device if it has no netdev 3999 * @current_bss: (private) Used by the internal configuration code 4000 * @chandef: (private) Used by the internal configuration code to track 4001 * the user-set channel definition. 4002 * @preset_chandef: (private) Used by the internal configuration code to 4003 * track the channel to be used for AP later 4004 * @bssid: (private) Used by the internal configuration code 4005 * @ssid: (private) Used by the internal configuration code 4006 * @ssid_len: (private) Used by the internal configuration code 4007 * @mesh_id_len: (private) Used by the internal configuration code 4008 * @mesh_id_up_len: (private) Used by the internal configuration code 4009 * @wext: (private) Used by the internal wireless extensions compat code 4010 * @use_4addr: indicates 4addr mode is used on this interface, must be 4011 * set by driver (if supported) on add_interface BEFORE registering the 4012 * netdev and may otherwise be used by driver read-only, will be update 4013 * by cfg80211 on change_interface 4014 * @mgmt_registrations: list of registrations for management frames 4015 * @mgmt_registrations_lock: lock for the list 4016 * @mtx: mutex used to lock data in this struct, may be used by drivers 4017 * and some API functions require it held 4018 * @beacon_interval: beacon interval used on this device for transmitting 4019 * beacons, 0 when not valid 4020 * @address: The address for this device, valid only if @netdev is %NULL 4021 * @is_running: true if this is a non-netdev device that has been started, e.g. 4022 * the P2P Device. 4023 * @cac_started: true if DFS channel availability check has been started 4024 * @cac_start_time: timestamp (jiffies) when the dfs state was entered. 4025 * @cac_time_ms: CAC time in ms 4026 * @ps: powersave mode is enabled 4027 * @ps_timeout: dynamic powersave timeout 4028 * @ap_unexpected_nlportid: (private) netlink port ID of application 4029 * registered for unexpected class 3 frames (AP mode) 4030 * @conn: (private) cfg80211 software SME connection state machine data 4031 * @connect_keys: (private) keys to set after connection is established 4032 * @conn_bss_type: connecting/connected BSS type 4033 * @conn_owner_nlportid: (private) connection owner socket port ID 4034 * @disconnect_wk: (private) auto-disconnect work 4035 * @disconnect_bssid: (private) the BSSID to use for auto-disconnect 4036 * @ibss_fixed: (private) IBSS is using fixed BSSID 4037 * @ibss_dfs_possible: (private) IBSS may change to a DFS channel 4038 * @event_list: (private) list for internal event processing 4039 * @event_lock: (private) lock for event list 4040 * @owner_nlportid: (private) owner socket port ID 4041 * @nl_owner_dead: (private) owner socket went away 4042 * @cqm_config: (private) nl80211 RSSI monitor state 4043 */ 4044 struct wireless_dev { 4045 struct wiphy *wiphy; 4046 enum nl80211_iftype iftype; 4047 4048 /* the remainder of this struct should be private to cfg80211 */ 4049 struct list_head list; 4050 struct net_device *netdev; 4051 4052 u32 identifier; 4053 4054 struct list_head mgmt_registrations; 4055 spinlock_t mgmt_registrations_lock; 4056 4057 struct mutex mtx; 4058 4059 bool use_4addr, is_running; 4060 4061 u8 address[ETH_ALEN] __aligned(sizeof(u16)); 4062 4063 /* currently used for IBSS and SME - might be rearranged later */ 4064 u8 ssid[IEEE80211_MAX_SSID_LEN]; 4065 u8 ssid_len, mesh_id_len, mesh_id_up_len; 4066 struct cfg80211_conn *conn; 4067 struct cfg80211_cached_keys *connect_keys; 4068 enum ieee80211_bss_type conn_bss_type; 4069 u32 conn_owner_nlportid; 4070 4071 struct work_struct disconnect_wk; 4072 u8 disconnect_bssid[ETH_ALEN]; 4073 4074 struct list_head event_list; 4075 spinlock_t event_lock; 4076 4077 struct cfg80211_internal_bss *current_bss; /* associated / joined */ 4078 struct cfg80211_chan_def preset_chandef; 4079 struct cfg80211_chan_def chandef; 4080 4081 bool ibss_fixed; 4082 bool ibss_dfs_possible; 4083 4084 bool ps; 4085 int ps_timeout; 4086 4087 int beacon_interval; 4088 4089 u32 ap_unexpected_nlportid; 4090 4091 u32 owner_nlportid; 4092 bool nl_owner_dead; 4093 4094 bool cac_started; 4095 unsigned long cac_start_time; 4096 unsigned int cac_time_ms; 4097 4098 #ifdef CONFIG_CFG80211_WEXT 4099 /* wext data */ 4100 struct { 4101 struct cfg80211_ibss_params ibss; 4102 struct cfg80211_connect_params connect; 4103 struct cfg80211_cached_keys *keys; 4104 const u8 *ie; 4105 size_t ie_len; 4106 u8 bssid[ETH_ALEN], prev_bssid[ETH_ALEN]; 4107 u8 ssid[IEEE80211_MAX_SSID_LEN]; 4108 s8 default_key, default_mgmt_key; 4109 bool prev_bssid_valid; 4110 } wext; 4111 #endif 4112 4113 struct cfg80211_cqm_config *cqm_config; 4114 }; 4115 4116 static inline u8 *wdev_address(struct wireless_dev *wdev) 4117 { 4118 if (wdev->netdev) 4119 return wdev->netdev->dev_addr; 4120 return wdev->address; 4121 } 4122 4123 static inline bool wdev_running(struct wireless_dev *wdev) 4124 { 4125 if (wdev->netdev) 4126 return netif_running(wdev->netdev); 4127 return wdev->is_running; 4128 } 4129 4130 /** 4131 * wdev_priv - return wiphy priv from wireless_dev 4132 * 4133 * @wdev: The wireless device whose wiphy's priv pointer to return 4134 * Return: The wiphy priv of @wdev. 4135 */ 4136 static inline void *wdev_priv(struct wireless_dev *wdev) 4137 { 4138 BUG_ON(!wdev); 4139 return wiphy_priv(wdev->wiphy); 4140 } 4141 4142 /** 4143 * DOC: Utility functions 4144 * 4145 * cfg80211 offers a number of utility functions that can be useful. 4146 */ 4147 4148 /** 4149 * ieee80211_channel_to_frequency - convert channel number to frequency 4150 * @chan: channel number 4151 * @band: band, necessary due to channel number overlap 4152 * Return: The corresponding frequency (in MHz), or 0 if the conversion failed. 4153 */ 4154 int ieee80211_channel_to_frequency(int chan, enum nl80211_band band); 4155 4156 /** 4157 * ieee80211_frequency_to_channel - convert frequency to channel number 4158 * @freq: center frequency 4159 * Return: The corresponding channel, or 0 if the conversion failed. 4160 */ 4161 int ieee80211_frequency_to_channel(int freq); 4162 4163 /** 4164 * ieee80211_get_channel - get channel struct from wiphy for specified frequency 4165 * 4166 * @wiphy: the struct wiphy to get the channel for 4167 * @freq: the center frequency of the channel 4168 * 4169 * Return: The channel struct from @wiphy at @freq. 4170 */ 4171 struct ieee80211_channel *ieee80211_get_channel(struct wiphy *wiphy, int freq); 4172 4173 /** 4174 * ieee80211_get_response_rate - get basic rate for a given rate 4175 * 4176 * @sband: the band to look for rates in 4177 * @basic_rates: bitmap of basic rates 4178 * @bitrate: the bitrate for which to find the basic rate 4179 * 4180 * Return: The basic rate corresponding to a given bitrate, that 4181 * is the next lower bitrate contained in the basic rate map, 4182 * which is, for this function, given as a bitmap of indices of 4183 * rates in the band's bitrate table. 4184 */ 4185 struct ieee80211_rate * 4186 ieee80211_get_response_rate(struct ieee80211_supported_band *sband, 4187 u32 basic_rates, int bitrate); 4188 4189 /** 4190 * ieee80211_mandatory_rates - get mandatory rates for a given band 4191 * @sband: the band to look for rates in 4192 * @scan_width: width of the control channel 4193 * 4194 * This function returns a bitmap of the mandatory rates for the given 4195 * band, bits are set according to the rate position in the bitrates array. 4196 */ 4197 u32 ieee80211_mandatory_rates(struct ieee80211_supported_band *sband, 4198 enum nl80211_bss_scan_width scan_width); 4199 4200 /* 4201 * Radiotap parsing functions -- for controlled injection support 4202 * 4203 * Implemented in net/wireless/radiotap.c 4204 * Documentation in Documentation/networking/radiotap-headers.txt 4205 */ 4206 4207 struct radiotap_align_size { 4208 uint8_t align:4, size:4; 4209 }; 4210 4211 struct ieee80211_radiotap_namespace { 4212 const struct radiotap_align_size *align_size; 4213 int n_bits; 4214 uint32_t oui; 4215 uint8_t subns; 4216 }; 4217 4218 struct ieee80211_radiotap_vendor_namespaces { 4219 const struct ieee80211_radiotap_namespace *ns; 4220 int n_ns; 4221 }; 4222 4223 /** 4224 * struct ieee80211_radiotap_iterator - tracks walk thru present radiotap args 4225 * @this_arg_index: index of current arg, valid after each successful call 4226 * to ieee80211_radiotap_iterator_next() 4227 * @this_arg: pointer to current radiotap arg; it is valid after each 4228 * call to ieee80211_radiotap_iterator_next() but also after 4229 * ieee80211_radiotap_iterator_init() where it will point to 4230 * the beginning of the actual data portion 4231 * @this_arg_size: length of the current arg, for convenience 4232 * @current_namespace: pointer to the current namespace definition 4233 * (or internally %NULL if the current namespace is unknown) 4234 * @is_radiotap_ns: indicates whether the current namespace is the default 4235 * radiotap namespace or not 4236 * 4237 * @_rtheader: pointer to the radiotap header we are walking through 4238 * @_max_length: length of radiotap header in cpu byte ordering 4239 * @_arg_index: next argument index 4240 * @_arg: next argument pointer 4241 * @_next_bitmap: internal pointer to next present u32 4242 * @_bitmap_shifter: internal shifter for curr u32 bitmap, b0 set == arg present 4243 * @_vns: vendor namespace definitions 4244 * @_next_ns_data: beginning of the next namespace's data 4245 * @_reset_on_ext: internal; reset the arg index to 0 when going to the 4246 * next bitmap word 4247 * 4248 * Describes the radiotap parser state. Fields prefixed with an underscore 4249 * must not be used by users of the parser, only by the parser internally. 4250 */ 4251 4252 struct ieee80211_radiotap_iterator { 4253 struct ieee80211_radiotap_header *_rtheader; 4254 const struct ieee80211_radiotap_vendor_namespaces *_vns; 4255 const struct ieee80211_radiotap_namespace *current_namespace; 4256 4257 unsigned char *_arg, *_next_ns_data; 4258 __le32 *_next_bitmap; 4259 4260 unsigned char *this_arg; 4261 int this_arg_index; 4262 int this_arg_size; 4263 4264 int is_radiotap_ns; 4265 4266 int _max_length; 4267 int _arg_index; 4268 uint32_t _bitmap_shifter; 4269 int _reset_on_ext; 4270 }; 4271 4272 int 4273 ieee80211_radiotap_iterator_init(struct ieee80211_radiotap_iterator *iterator, 4274 struct ieee80211_radiotap_header *radiotap_header, 4275 int max_length, 4276 const struct ieee80211_radiotap_vendor_namespaces *vns); 4277 4278 int 4279 ieee80211_radiotap_iterator_next(struct ieee80211_radiotap_iterator *iterator); 4280 4281 4282 extern const unsigned char rfc1042_header[6]; 4283 extern const unsigned char bridge_tunnel_header[6]; 4284 4285 /** 4286 * ieee80211_get_hdrlen_from_skb - get header length from data 4287 * 4288 * @skb: the frame 4289 * 4290 * Given an skb with a raw 802.11 header at the data pointer this function 4291 * returns the 802.11 header length. 4292 * 4293 * Return: The 802.11 header length in bytes (not including encryption 4294 * headers). Or 0 if the data in the sk_buff is too short to contain a valid 4295 * 802.11 header. 4296 */ 4297 unsigned int ieee80211_get_hdrlen_from_skb(const struct sk_buff *skb); 4298 4299 /** 4300 * ieee80211_hdrlen - get header length in bytes from frame control 4301 * @fc: frame control field in little-endian format 4302 * Return: The header length in bytes. 4303 */ 4304 unsigned int __attribute_const__ ieee80211_hdrlen(__le16 fc); 4305 4306 /** 4307 * ieee80211_get_mesh_hdrlen - get mesh extension header length 4308 * @meshhdr: the mesh extension header, only the flags field 4309 * (first byte) will be accessed 4310 * Return: The length of the extension header, which is always at 4311 * least 6 bytes and at most 18 if address 5 and 6 are present. 4312 */ 4313 unsigned int ieee80211_get_mesh_hdrlen(struct ieee80211s_hdr *meshhdr); 4314 4315 /** 4316 * DOC: Data path helpers 4317 * 4318 * In addition to generic utilities, cfg80211 also offers 4319 * functions that help implement the data path for devices 4320 * that do not do the 802.11/802.3 conversion on the device. 4321 */ 4322 4323 /** 4324 * ieee80211_data_to_8023_exthdr - convert an 802.11 data frame to 802.3 4325 * @skb: the 802.11 data frame 4326 * @ehdr: pointer to a &struct ethhdr that will get the header, instead 4327 * of it being pushed into the SKB 4328 * @addr: the device MAC address 4329 * @iftype: the virtual interface type 4330 * Return: 0 on success. Non-zero on error. 4331 */ 4332 int ieee80211_data_to_8023_exthdr(struct sk_buff *skb, struct ethhdr *ehdr, 4333 const u8 *addr, enum nl80211_iftype iftype); 4334 4335 /** 4336 * ieee80211_data_to_8023 - convert an 802.11 data frame to 802.3 4337 * @skb: the 802.11 data frame 4338 * @addr: the device MAC address 4339 * @iftype: the virtual interface type 4340 * Return: 0 on success. Non-zero on error. 4341 */ 4342 static inline int ieee80211_data_to_8023(struct sk_buff *skb, const u8 *addr, 4343 enum nl80211_iftype iftype) 4344 { 4345 return ieee80211_data_to_8023_exthdr(skb, NULL, addr, iftype); 4346 } 4347 4348 /** 4349 * ieee80211_amsdu_to_8023s - decode an IEEE 802.11n A-MSDU frame 4350 * 4351 * Decode an IEEE 802.11 A-MSDU and convert it to a list of 802.3 frames. 4352 * The @list will be empty if the decode fails. The @skb must be fully 4353 * header-less before being passed in here; it is freed in this function. 4354 * 4355 * @skb: The input A-MSDU frame without any headers. 4356 * @list: The output list of 802.3 frames. It must be allocated and 4357 * initialized by by the caller. 4358 * @addr: The device MAC address. 4359 * @iftype: The device interface type. 4360 * @extra_headroom: The hardware extra headroom for SKBs in the @list. 4361 * @check_da: DA to check in the inner ethernet header, or NULL 4362 * @check_sa: SA to check in the inner ethernet header, or NULL 4363 */ 4364 void ieee80211_amsdu_to_8023s(struct sk_buff *skb, struct sk_buff_head *list, 4365 const u8 *addr, enum nl80211_iftype iftype, 4366 const unsigned int extra_headroom, 4367 const u8 *check_da, const u8 *check_sa); 4368 4369 /** 4370 * cfg80211_classify8021d - determine the 802.1p/1d tag for a data frame 4371 * @skb: the data frame 4372 * @qos_map: Interworking QoS mapping or %NULL if not in use 4373 * Return: The 802.1p/1d tag. 4374 */ 4375 unsigned int cfg80211_classify8021d(struct sk_buff *skb, 4376 struct cfg80211_qos_map *qos_map); 4377 4378 /** 4379 * cfg80211_find_ie_match - match information element and byte array in data 4380 * 4381 * @eid: element ID 4382 * @ies: data consisting of IEs 4383 * @len: length of data 4384 * @match: byte array to match 4385 * @match_len: number of bytes in the match array 4386 * @match_offset: offset in the IE where the byte array should match. 4387 * If match_len is zero, this must also be set to zero. 4388 * Otherwise this must be set to 2 or more, because the first 4389 * byte is the element id, which is already compared to eid, and 4390 * the second byte is the IE length. 4391 * 4392 * Return: %NULL if the element ID could not be found or if 4393 * the element is invalid (claims to be longer than the given 4394 * data) or if the byte array doesn't match, or a pointer to the first 4395 * byte of the requested element, that is the byte containing the 4396 * element ID. 4397 * 4398 * Note: There are no checks on the element length other than 4399 * having to fit into the given data and being large enough for the 4400 * byte array to match. 4401 */ 4402 const u8 *cfg80211_find_ie_match(u8 eid, const u8 *ies, int len, 4403 const u8 *match, int match_len, 4404 int match_offset); 4405 4406 /** 4407 * cfg80211_find_ie - find information element in data 4408 * 4409 * @eid: element ID 4410 * @ies: data consisting of IEs 4411 * @len: length of data 4412 * 4413 * Return: %NULL if the element ID could not be found or if 4414 * the element is invalid (claims to be longer than the given 4415 * data), or a pointer to the first byte of the requested 4416 * element, that is the byte containing the element ID. 4417 * 4418 * Note: There are no checks on the element length other than 4419 * having to fit into the given data. 4420 */ 4421 static inline const u8 *cfg80211_find_ie(u8 eid, const u8 *ies, int len) 4422 { 4423 return cfg80211_find_ie_match(eid, ies, len, NULL, 0, 0); 4424 } 4425 4426 /** 4427 * cfg80211_find_ext_ie - find information element with EID Extension in data 4428 * 4429 * @ext_eid: element ID Extension 4430 * @ies: data consisting of IEs 4431 * @len: length of data 4432 * 4433 * Return: %NULL if the extended element ID could not be found or if 4434 * the element is invalid (claims to be longer than the given 4435 * data), or a pointer to the first byte of the requested 4436 * element, that is the byte containing the element ID. 4437 * 4438 * Note: There are no checks on the element length other than 4439 * having to fit into the given data. 4440 */ 4441 static inline const u8 *cfg80211_find_ext_ie(u8 ext_eid, const u8 *ies, int len) 4442 { 4443 return cfg80211_find_ie_match(WLAN_EID_EXTENSION, ies, len, 4444 &ext_eid, 1, 2); 4445 } 4446 4447 /** 4448 * cfg80211_find_vendor_ie - find vendor specific information element in data 4449 * 4450 * @oui: vendor OUI 4451 * @oui_type: vendor-specific OUI type (must be < 0xff), negative means any 4452 * @ies: data consisting of IEs 4453 * @len: length of data 4454 * 4455 * Return: %NULL if the vendor specific element ID could not be found or if the 4456 * element is invalid (claims to be longer than the given data), or a pointer to 4457 * the first byte of the requested element, that is the byte containing the 4458 * element ID. 4459 * 4460 * Note: There are no checks on the element length other than having to fit into 4461 * the given data. 4462 */ 4463 const u8 *cfg80211_find_vendor_ie(unsigned int oui, int oui_type, 4464 const u8 *ies, int len); 4465 4466 /** 4467 * DOC: Regulatory enforcement infrastructure 4468 * 4469 * TODO 4470 */ 4471 4472 /** 4473 * regulatory_hint - driver hint to the wireless core a regulatory domain 4474 * @wiphy: the wireless device giving the hint (used only for reporting 4475 * conflicts) 4476 * @alpha2: the ISO/IEC 3166 alpha2 the driver claims its regulatory domain 4477 * should be in. If @rd is set this should be NULL. Note that if you 4478 * set this to NULL you should still set rd->alpha2 to some accepted 4479 * alpha2. 4480 * 4481 * Wireless drivers can use this function to hint to the wireless core 4482 * what it believes should be the current regulatory domain by 4483 * giving it an ISO/IEC 3166 alpha2 country code it knows its regulatory 4484 * domain should be in or by providing a completely build regulatory domain. 4485 * If the driver provides an ISO/IEC 3166 alpha2 userspace will be queried 4486 * for a regulatory domain structure for the respective country. 4487 * 4488 * The wiphy must have been registered to cfg80211 prior to this call. 4489 * For cfg80211 drivers this means you must first use wiphy_register(), 4490 * for mac80211 drivers you must first use ieee80211_register_hw(). 4491 * 4492 * Drivers should check the return value, its possible you can get 4493 * an -ENOMEM. 4494 * 4495 * Return: 0 on success. -ENOMEM. 4496 */ 4497 int regulatory_hint(struct wiphy *wiphy, const char *alpha2); 4498 4499 /** 4500 * regulatory_set_wiphy_regd - set regdom info for self managed drivers 4501 * @wiphy: the wireless device we want to process the regulatory domain on 4502 * @rd: the regulatory domain informatoin to use for this wiphy 4503 * 4504 * Set the regulatory domain information for self-managed wiphys, only they 4505 * may use this function. See %REGULATORY_WIPHY_SELF_MANAGED for more 4506 * information. 4507 * 4508 * Return: 0 on success. -EINVAL, -EPERM 4509 */ 4510 int regulatory_set_wiphy_regd(struct wiphy *wiphy, 4511 struct ieee80211_regdomain *rd); 4512 4513 /** 4514 * regulatory_set_wiphy_regd_sync_rtnl - set regdom for self-managed drivers 4515 * @wiphy: the wireless device we want to process the regulatory domain on 4516 * @rd: the regulatory domain information to use for this wiphy 4517 * 4518 * This functions requires the RTNL to be held and applies the new regdomain 4519 * synchronously to this wiphy. For more details see 4520 * regulatory_set_wiphy_regd(). 4521 * 4522 * Return: 0 on success. -EINVAL, -EPERM 4523 */ 4524 int regulatory_set_wiphy_regd_sync_rtnl(struct wiphy *wiphy, 4525 struct ieee80211_regdomain *rd); 4526 4527 /** 4528 * wiphy_apply_custom_regulatory - apply a custom driver regulatory domain 4529 * @wiphy: the wireless device we want to process the regulatory domain on 4530 * @regd: the custom regulatory domain to use for this wiphy 4531 * 4532 * Drivers can sometimes have custom regulatory domains which do not apply 4533 * to a specific country. Drivers can use this to apply such custom regulatory 4534 * domains. This routine must be called prior to wiphy registration. The 4535 * custom regulatory domain will be trusted completely and as such previous 4536 * default channel settings will be disregarded. If no rule is found for a 4537 * channel on the regulatory domain the channel will be disabled. 4538 * Drivers using this for a wiphy should also set the wiphy flag 4539 * REGULATORY_CUSTOM_REG or cfg80211 will set it for the wiphy 4540 * that called this helper. 4541 */ 4542 void wiphy_apply_custom_regulatory(struct wiphy *wiphy, 4543 const struct ieee80211_regdomain *regd); 4544 4545 /** 4546 * freq_reg_info - get regulatory information for the given frequency 4547 * @wiphy: the wiphy for which we want to process this rule for 4548 * @center_freq: Frequency in KHz for which we want regulatory information for 4549 * 4550 * Use this function to get the regulatory rule for a specific frequency on 4551 * a given wireless device. If the device has a specific regulatory domain 4552 * it wants to follow we respect that unless a country IE has been received 4553 * and processed already. 4554 * 4555 * Return: A valid pointer, or, when an error occurs, for example if no rule 4556 * can be found, the return value is encoded using ERR_PTR(). Use IS_ERR() to 4557 * check and PTR_ERR() to obtain the numeric return value. The numeric return 4558 * value will be -ERANGE if we determine the given center_freq does not even 4559 * have a regulatory rule for a frequency range in the center_freq's band. 4560 * See freq_in_rule_band() for our current definition of a band -- this is 4561 * purely subjective and right now it's 802.11 specific. 4562 */ 4563 const struct ieee80211_reg_rule *freq_reg_info(struct wiphy *wiphy, 4564 u32 center_freq); 4565 4566 /** 4567 * reg_initiator_name - map regulatory request initiator enum to name 4568 * @initiator: the regulatory request initiator 4569 * 4570 * You can use this to map the regulatory request initiator enum to a 4571 * proper string representation. 4572 */ 4573 const char *reg_initiator_name(enum nl80211_reg_initiator initiator); 4574 4575 /* 4576 * callbacks for asynchronous cfg80211 methods, notification 4577 * functions and BSS handling helpers 4578 */ 4579 4580 /** 4581 * cfg80211_scan_done - notify that scan finished 4582 * 4583 * @request: the corresponding scan request 4584 * @info: information about the completed scan 4585 */ 4586 void cfg80211_scan_done(struct cfg80211_scan_request *request, 4587 struct cfg80211_scan_info *info); 4588 4589 /** 4590 * cfg80211_sched_scan_results - notify that new scan results are available 4591 * 4592 * @wiphy: the wiphy which got scheduled scan results 4593 * @reqid: identifier for the related scheduled scan request 4594 */ 4595 void cfg80211_sched_scan_results(struct wiphy *wiphy, u64 reqid); 4596 4597 /** 4598 * cfg80211_sched_scan_stopped - notify that the scheduled scan has stopped 4599 * 4600 * @wiphy: the wiphy on which the scheduled scan stopped 4601 * @reqid: identifier for the related scheduled scan request 4602 * 4603 * The driver can call this function to inform cfg80211 that the 4604 * scheduled scan had to be stopped, for whatever reason. The driver 4605 * is then called back via the sched_scan_stop operation when done. 4606 */ 4607 void cfg80211_sched_scan_stopped(struct wiphy *wiphy, u64 reqid); 4608 4609 /** 4610 * cfg80211_sched_scan_stopped_rtnl - notify that the scheduled scan has stopped 4611 * 4612 * @wiphy: the wiphy on which the scheduled scan stopped 4613 * @reqid: identifier for the related scheduled scan request 4614 * 4615 * The driver can call this function to inform cfg80211 that the 4616 * scheduled scan had to be stopped, for whatever reason. The driver 4617 * is then called back via the sched_scan_stop operation when done. 4618 * This function should be called with rtnl locked. 4619 */ 4620 void cfg80211_sched_scan_stopped_rtnl(struct wiphy *wiphy, u64 reqid); 4621 4622 /** 4623 * cfg80211_inform_bss_frame_data - inform cfg80211 of a received BSS frame 4624 * @wiphy: the wiphy reporting the BSS 4625 * @data: the BSS metadata 4626 * @mgmt: the management frame (probe response or beacon) 4627 * @len: length of the management frame 4628 * @gfp: context flags 4629 * 4630 * This informs cfg80211 that BSS information was found and 4631 * the BSS should be updated/added. 4632 * 4633 * Return: A referenced struct, must be released with cfg80211_put_bss()! 4634 * Or %NULL on error. 4635 */ 4636 struct cfg80211_bss * __must_check 4637 cfg80211_inform_bss_frame_data(struct wiphy *wiphy, 4638 struct cfg80211_inform_bss *data, 4639 struct ieee80211_mgmt *mgmt, size_t len, 4640 gfp_t gfp); 4641 4642 static inline struct cfg80211_bss * __must_check 4643 cfg80211_inform_bss_width_frame(struct wiphy *wiphy, 4644 struct ieee80211_channel *rx_channel, 4645 enum nl80211_bss_scan_width scan_width, 4646 struct ieee80211_mgmt *mgmt, size_t len, 4647 s32 signal, gfp_t gfp) 4648 { 4649 struct cfg80211_inform_bss data = { 4650 .chan = rx_channel, 4651 .scan_width = scan_width, 4652 .signal = signal, 4653 }; 4654 4655 return cfg80211_inform_bss_frame_data(wiphy, &data, mgmt, len, gfp); 4656 } 4657 4658 static inline struct cfg80211_bss * __must_check 4659 cfg80211_inform_bss_frame(struct wiphy *wiphy, 4660 struct ieee80211_channel *rx_channel, 4661 struct ieee80211_mgmt *mgmt, size_t len, 4662 s32 signal, gfp_t gfp) 4663 { 4664 struct cfg80211_inform_bss data = { 4665 .chan = rx_channel, 4666 .scan_width = NL80211_BSS_CHAN_WIDTH_20, 4667 .signal = signal, 4668 }; 4669 4670 return cfg80211_inform_bss_frame_data(wiphy, &data, mgmt, len, gfp); 4671 } 4672 4673 /** 4674 * enum cfg80211_bss_frame_type - frame type that the BSS data came from 4675 * @CFG80211_BSS_FTYPE_UNKNOWN: driver doesn't know whether the data is 4676 * from a beacon or probe response 4677 * @CFG80211_BSS_FTYPE_BEACON: data comes from a beacon 4678 * @CFG80211_BSS_FTYPE_PRESP: data comes from a probe response 4679 */ 4680 enum cfg80211_bss_frame_type { 4681 CFG80211_BSS_FTYPE_UNKNOWN, 4682 CFG80211_BSS_FTYPE_BEACON, 4683 CFG80211_BSS_FTYPE_PRESP, 4684 }; 4685 4686 /** 4687 * cfg80211_inform_bss_data - inform cfg80211 of a new BSS 4688 * 4689 * @wiphy: the wiphy reporting the BSS 4690 * @data: the BSS metadata 4691 * @ftype: frame type (if known) 4692 * @bssid: the BSSID of the BSS 4693 * @tsf: the TSF sent by the peer in the beacon/probe response (or 0) 4694 * @capability: the capability field sent by the peer 4695 * @beacon_interval: the beacon interval announced by the peer 4696 * @ie: additional IEs sent by the peer 4697 * @ielen: length of the additional IEs 4698 * @gfp: context flags 4699 * 4700 * This informs cfg80211 that BSS information was found and 4701 * the BSS should be updated/added. 4702 * 4703 * Return: A referenced struct, must be released with cfg80211_put_bss()! 4704 * Or %NULL on error. 4705 */ 4706 struct cfg80211_bss * __must_check 4707 cfg80211_inform_bss_data(struct wiphy *wiphy, 4708 struct cfg80211_inform_bss *data, 4709 enum cfg80211_bss_frame_type ftype, 4710 const u8 *bssid, u64 tsf, u16 capability, 4711 u16 beacon_interval, const u8 *ie, size_t ielen, 4712 gfp_t gfp); 4713 4714 static inline struct cfg80211_bss * __must_check 4715 cfg80211_inform_bss_width(struct wiphy *wiphy, 4716 struct ieee80211_channel *rx_channel, 4717 enum nl80211_bss_scan_width scan_width, 4718 enum cfg80211_bss_frame_type ftype, 4719 const u8 *bssid, u64 tsf, u16 capability, 4720 u16 beacon_interval, const u8 *ie, size_t ielen, 4721 s32 signal, gfp_t gfp) 4722 { 4723 struct cfg80211_inform_bss data = { 4724 .chan = rx_channel, 4725 .scan_width = scan_width, 4726 .signal = signal, 4727 }; 4728 4729 return cfg80211_inform_bss_data(wiphy, &data, ftype, bssid, tsf, 4730 capability, beacon_interval, ie, ielen, 4731 gfp); 4732 } 4733 4734 static inline struct cfg80211_bss * __must_check 4735 cfg80211_inform_bss(struct wiphy *wiphy, 4736 struct ieee80211_channel *rx_channel, 4737 enum cfg80211_bss_frame_type ftype, 4738 const u8 *bssid, u64 tsf, u16 capability, 4739 u16 beacon_interval, const u8 *ie, size_t ielen, 4740 s32 signal, gfp_t gfp) 4741 { 4742 struct cfg80211_inform_bss data = { 4743 .chan = rx_channel, 4744 .scan_width = NL80211_BSS_CHAN_WIDTH_20, 4745 .signal = signal, 4746 }; 4747 4748 return cfg80211_inform_bss_data(wiphy, &data, ftype, bssid, tsf, 4749 capability, beacon_interval, ie, ielen, 4750 gfp); 4751 } 4752 4753 /** 4754 * cfg80211_get_bss - get a BSS reference 4755 * @wiphy: the wiphy this BSS struct belongs to 4756 * @channel: the channel to search on (or %NULL) 4757 * @bssid: the desired BSSID (or %NULL) 4758 * @ssid: the desired SSID (or %NULL) 4759 * @ssid_len: length of the SSID (or 0) 4760 * @bss_type: type of BSS, see &enum ieee80211_bss_type 4761 * @privacy: privacy filter, see &enum ieee80211_privacy 4762 */ 4763 struct cfg80211_bss *cfg80211_get_bss(struct wiphy *wiphy, 4764 struct ieee80211_channel *channel, 4765 const u8 *bssid, 4766 const u8 *ssid, size_t ssid_len, 4767 enum ieee80211_bss_type bss_type, 4768 enum ieee80211_privacy privacy); 4769 static inline struct cfg80211_bss * 4770 cfg80211_get_ibss(struct wiphy *wiphy, 4771 struct ieee80211_channel *channel, 4772 const u8 *ssid, size_t ssid_len) 4773 { 4774 return cfg80211_get_bss(wiphy, channel, NULL, ssid, ssid_len, 4775 IEEE80211_BSS_TYPE_IBSS, 4776 IEEE80211_PRIVACY_ANY); 4777 } 4778 4779 /** 4780 * cfg80211_ref_bss - reference BSS struct 4781 * @wiphy: the wiphy this BSS struct belongs to 4782 * @bss: the BSS struct to reference 4783 * 4784 * Increments the refcount of the given BSS struct. 4785 */ 4786 void cfg80211_ref_bss(struct wiphy *wiphy, struct cfg80211_bss *bss); 4787 4788 /** 4789 * cfg80211_put_bss - unref BSS struct 4790 * @wiphy: the wiphy this BSS struct belongs to 4791 * @bss: the BSS struct 4792 * 4793 * Decrements the refcount of the given BSS struct. 4794 */ 4795 void cfg80211_put_bss(struct wiphy *wiphy, struct cfg80211_bss *bss); 4796 4797 /** 4798 * cfg80211_unlink_bss - unlink BSS from internal data structures 4799 * @wiphy: the wiphy 4800 * @bss: the bss to remove 4801 * 4802 * This function removes the given BSS from the internal data structures 4803 * thereby making it no longer show up in scan results etc. Use this 4804 * function when you detect a BSS is gone. Normally BSSes will also time 4805 * out, so it is not necessary to use this function at all. 4806 */ 4807 void cfg80211_unlink_bss(struct wiphy *wiphy, struct cfg80211_bss *bss); 4808 4809 static inline enum nl80211_bss_scan_width 4810 cfg80211_chandef_to_scan_width(const struct cfg80211_chan_def *chandef) 4811 { 4812 switch (chandef->width) { 4813 case NL80211_CHAN_WIDTH_5: 4814 return NL80211_BSS_CHAN_WIDTH_5; 4815 case NL80211_CHAN_WIDTH_10: 4816 return NL80211_BSS_CHAN_WIDTH_10; 4817 default: 4818 return NL80211_BSS_CHAN_WIDTH_20; 4819 } 4820 } 4821 4822 /** 4823 * cfg80211_rx_mlme_mgmt - notification of processed MLME management frame 4824 * @dev: network device 4825 * @buf: authentication frame (header + body) 4826 * @len: length of the frame data 4827 * 4828 * This function is called whenever an authentication, disassociation or 4829 * deauthentication frame has been received and processed in station mode. 4830 * After being asked to authenticate via cfg80211_ops::auth() the driver must 4831 * call either this function or cfg80211_auth_timeout(). 4832 * After being asked to associate via cfg80211_ops::assoc() the driver must 4833 * call either this function or cfg80211_auth_timeout(). 4834 * While connected, the driver must calls this for received and processed 4835 * disassociation and deauthentication frames. If the frame couldn't be used 4836 * because it was unprotected, the driver must call the function 4837 * cfg80211_rx_unprot_mlme_mgmt() instead. 4838 * 4839 * This function may sleep. The caller must hold the corresponding wdev's mutex. 4840 */ 4841 void cfg80211_rx_mlme_mgmt(struct net_device *dev, const u8 *buf, size_t len); 4842 4843 /** 4844 * cfg80211_auth_timeout - notification of timed out authentication 4845 * @dev: network device 4846 * @addr: The MAC address of the device with which the authentication timed out 4847 * 4848 * This function may sleep. The caller must hold the corresponding wdev's 4849 * mutex. 4850 */ 4851 void cfg80211_auth_timeout(struct net_device *dev, const u8 *addr); 4852 4853 /** 4854 * cfg80211_rx_assoc_resp - notification of processed association response 4855 * @dev: network device 4856 * @bss: the BSS that association was requested with, ownership of the pointer 4857 * moves to cfg80211 in this call 4858 * @buf: authentication frame (header + body) 4859 * @len: length of the frame data 4860 * @uapsd_queues: bitmap of queues configured for uapsd. Same format 4861 * as the AC bitmap in the QoS info field 4862 * 4863 * After being asked to associate via cfg80211_ops::assoc() the driver must 4864 * call either this function or cfg80211_auth_timeout(). 4865 * 4866 * This function may sleep. The caller must hold the corresponding wdev's mutex. 4867 */ 4868 void cfg80211_rx_assoc_resp(struct net_device *dev, 4869 struct cfg80211_bss *bss, 4870 const u8 *buf, size_t len, 4871 int uapsd_queues); 4872 4873 /** 4874 * cfg80211_assoc_timeout - notification of timed out association 4875 * @dev: network device 4876 * @bss: The BSS entry with which association timed out. 4877 * 4878 * This function may sleep. The caller must hold the corresponding wdev's mutex. 4879 */ 4880 void cfg80211_assoc_timeout(struct net_device *dev, struct cfg80211_bss *bss); 4881 4882 /** 4883 * cfg80211_abandon_assoc - notify cfg80211 of abandoned association attempt 4884 * @dev: network device 4885 * @bss: The BSS entry with which association was abandoned. 4886 * 4887 * Call this whenever - for reasons reported through other API, like deauth RX, 4888 * an association attempt was abandoned. 4889 * This function may sleep. The caller must hold the corresponding wdev's mutex. 4890 */ 4891 void cfg80211_abandon_assoc(struct net_device *dev, struct cfg80211_bss *bss); 4892 4893 /** 4894 * cfg80211_tx_mlme_mgmt - notification of transmitted deauth/disassoc frame 4895 * @dev: network device 4896 * @buf: 802.11 frame (header + body) 4897 * @len: length of the frame data 4898 * 4899 * This function is called whenever deauthentication has been processed in 4900 * station mode. This includes both received deauthentication frames and 4901 * locally generated ones. This function may sleep. The caller must hold the 4902 * corresponding wdev's mutex. 4903 */ 4904 void cfg80211_tx_mlme_mgmt(struct net_device *dev, const u8 *buf, size_t len); 4905 4906 /** 4907 * cfg80211_rx_unprot_mlme_mgmt - notification of unprotected mlme mgmt frame 4908 * @dev: network device 4909 * @buf: deauthentication frame (header + body) 4910 * @len: length of the frame data 4911 * 4912 * This function is called whenever a received deauthentication or dissassoc 4913 * frame has been dropped in station mode because of MFP being used but the 4914 * frame was not protected. This function may sleep. 4915 */ 4916 void cfg80211_rx_unprot_mlme_mgmt(struct net_device *dev, 4917 const u8 *buf, size_t len); 4918 4919 /** 4920 * cfg80211_michael_mic_failure - notification of Michael MIC failure (TKIP) 4921 * @dev: network device 4922 * @addr: The source MAC address of the frame 4923 * @key_type: The key type that the received frame used 4924 * @key_id: Key identifier (0..3). Can be -1 if missing. 4925 * @tsc: The TSC value of the frame that generated the MIC failure (6 octets) 4926 * @gfp: allocation flags 4927 * 4928 * This function is called whenever the local MAC detects a MIC failure in a 4929 * received frame. This matches with MLME-MICHAELMICFAILURE.indication() 4930 * primitive. 4931 */ 4932 void cfg80211_michael_mic_failure(struct net_device *dev, const u8 *addr, 4933 enum nl80211_key_type key_type, int key_id, 4934 const u8 *tsc, gfp_t gfp); 4935 4936 /** 4937 * cfg80211_ibss_joined - notify cfg80211 that device joined an IBSS 4938 * 4939 * @dev: network device 4940 * @bssid: the BSSID of the IBSS joined 4941 * @channel: the channel of the IBSS joined 4942 * @gfp: allocation flags 4943 * 4944 * This function notifies cfg80211 that the device joined an IBSS or 4945 * switched to a different BSSID. Before this function can be called, 4946 * either a beacon has to have been received from the IBSS, or one of 4947 * the cfg80211_inform_bss{,_frame} functions must have been called 4948 * with the locally generated beacon -- this guarantees that there is 4949 * always a scan result for this IBSS. cfg80211 will handle the rest. 4950 */ 4951 void cfg80211_ibss_joined(struct net_device *dev, const u8 *bssid, 4952 struct ieee80211_channel *channel, gfp_t gfp); 4953 4954 /** 4955 * cfg80211_notify_new_candidate - notify cfg80211 of a new mesh peer candidate 4956 * 4957 * @dev: network device 4958 * @macaddr: the MAC address of the new candidate 4959 * @ie: information elements advertised by the peer candidate 4960 * @ie_len: lenght of the information elements buffer 4961 * @gfp: allocation flags 4962 * 4963 * This function notifies cfg80211 that the mesh peer candidate has been 4964 * detected, most likely via a beacon or, less likely, via a probe response. 4965 * cfg80211 then sends a notification to userspace. 4966 */ 4967 void cfg80211_notify_new_peer_candidate(struct net_device *dev, 4968 const u8 *macaddr, const u8 *ie, u8 ie_len, gfp_t gfp); 4969 4970 /** 4971 * DOC: RFkill integration 4972 * 4973 * RFkill integration in cfg80211 is almost invisible to drivers, 4974 * as cfg80211 automatically registers an rfkill instance for each 4975 * wireless device it knows about. Soft kill is also translated 4976 * into disconnecting and turning all interfaces off, drivers are 4977 * expected to turn off the device when all interfaces are down. 4978 * 4979 * However, devices may have a hard RFkill line, in which case they 4980 * also need to interact with the rfkill subsystem, via cfg80211. 4981 * They can do this with a few helper functions documented here. 4982 */ 4983 4984 /** 4985 * wiphy_rfkill_set_hw_state - notify cfg80211 about hw block state 4986 * @wiphy: the wiphy 4987 * @blocked: block status 4988 */ 4989 void wiphy_rfkill_set_hw_state(struct wiphy *wiphy, bool blocked); 4990 4991 /** 4992 * wiphy_rfkill_start_polling - start polling rfkill 4993 * @wiphy: the wiphy 4994 */ 4995 void wiphy_rfkill_start_polling(struct wiphy *wiphy); 4996 4997 /** 4998 * wiphy_rfkill_stop_polling - stop polling rfkill 4999 * @wiphy: the wiphy 5000 */ 5001 void wiphy_rfkill_stop_polling(struct wiphy *wiphy); 5002 5003 /** 5004 * DOC: Vendor commands 5005 * 5006 * Occasionally, there are special protocol or firmware features that 5007 * can't be implemented very openly. For this and similar cases, the 5008 * vendor command functionality allows implementing the features with 5009 * (typically closed-source) userspace and firmware, using nl80211 as 5010 * the configuration mechanism. 5011 * 5012 * A driver supporting vendor commands must register them as an array 5013 * in struct wiphy, with handlers for each one, each command has an 5014 * OUI and sub command ID to identify it. 5015 * 5016 * Note that this feature should not be (ab)used to implement protocol 5017 * features that could openly be shared across drivers. In particular, 5018 * it must never be required to use vendor commands to implement any 5019 * "normal" functionality that higher-level userspace like connection 5020 * managers etc. need. 5021 */ 5022 5023 struct sk_buff *__cfg80211_alloc_reply_skb(struct wiphy *wiphy, 5024 enum nl80211_commands cmd, 5025 enum nl80211_attrs attr, 5026 int approxlen); 5027 5028 struct sk_buff *__cfg80211_alloc_event_skb(struct wiphy *wiphy, 5029 struct wireless_dev *wdev, 5030 enum nl80211_commands cmd, 5031 enum nl80211_attrs attr, 5032 int vendor_event_idx, 5033 int approxlen, gfp_t gfp); 5034 5035 void __cfg80211_send_event_skb(struct sk_buff *skb, gfp_t gfp); 5036 5037 /** 5038 * cfg80211_vendor_cmd_alloc_reply_skb - allocate vendor command reply 5039 * @wiphy: the wiphy 5040 * @approxlen: an upper bound of the length of the data that will 5041 * be put into the skb 5042 * 5043 * This function allocates and pre-fills an skb for a reply to 5044 * a vendor command. Since it is intended for a reply, calling 5045 * it outside of a vendor command's doit() operation is invalid. 5046 * 5047 * The returned skb is pre-filled with some identifying data in 5048 * a way that any data that is put into the skb (with skb_put(), 5049 * nla_put() or similar) will end up being within the 5050 * %NL80211_ATTR_VENDOR_DATA attribute, so all that needs to be done 5051 * with the skb is adding data for the corresponding userspace tool 5052 * which can then read that data out of the vendor data attribute. 5053 * You must not modify the skb in any other way. 5054 * 5055 * When done, call cfg80211_vendor_cmd_reply() with the skb and return 5056 * its error code as the result of the doit() operation. 5057 * 5058 * Return: An allocated and pre-filled skb. %NULL if any errors happen. 5059 */ 5060 static inline struct sk_buff * 5061 cfg80211_vendor_cmd_alloc_reply_skb(struct wiphy *wiphy, int approxlen) 5062 { 5063 return __cfg80211_alloc_reply_skb(wiphy, NL80211_CMD_VENDOR, 5064 NL80211_ATTR_VENDOR_DATA, approxlen); 5065 } 5066 5067 /** 5068 * cfg80211_vendor_cmd_reply - send the reply skb 5069 * @skb: The skb, must have been allocated with 5070 * cfg80211_vendor_cmd_alloc_reply_skb() 5071 * 5072 * Since calling this function will usually be the last thing 5073 * before returning from the vendor command doit() you should 5074 * return the error code. Note that this function consumes the 5075 * skb regardless of the return value. 5076 * 5077 * Return: An error code or 0 on success. 5078 */ 5079 int cfg80211_vendor_cmd_reply(struct sk_buff *skb); 5080 5081 /** 5082 * cfg80211_vendor_event_alloc - allocate vendor-specific event skb 5083 * @wiphy: the wiphy 5084 * @wdev: the wireless device 5085 * @event_idx: index of the vendor event in the wiphy's vendor_events 5086 * @approxlen: an upper bound of the length of the data that will 5087 * be put into the skb 5088 * @gfp: allocation flags 5089 * 5090 * This function allocates and pre-fills an skb for an event on the 5091 * vendor-specific multicast group. 5092 * 5093 * If wdev != NULL, both the ifindex and identifier of the specified 5094 * wireless device are added to the event message before the vendor data 5095 * attribute. 5096 * 5097 * When done filling the skb, call cfg80211_vendor_event() with the 5098 * skb to send the event. 5099 * 5100 * Return: An allocated and pre-filled skb. %NULL if any errors happen. 5101 */ 5102 static inline struct sk_buff * 5103 cfg80211_vendor_event_alloc(struct wiphy *wiphy, struct wireless_dev *wdev, 5104 int approxlen, int event_idx, gfp_t gfp) 5105 { 5106 return __cfg80211_alloc_event_skb(wiphy, wdev, NL80211_CMD_VENDOR, 5107 NL80211_ATTR_VENDOR_DATA, 5108 event_idx, approxlen, gfp); 5109 } 5110 5111 /** 5112 * cfg80211_vendor_event - send the event 5113 * @skb: The skb, must have been allocated with cfg80211_vendor_event_alloc() 5114 * @gfp: allocation flags 5115 * 5116 * This function sends the given @skb, which must have been allocated 5117 * by cfg80211_vendor_event_alloc(), as an event. It always consumes it. 5118 */ 5119 static inline void cfg80211_vendor_event(struct sk_buff *skb, gfp_t gfp) 5120 { 5121 __cfg80211_send_event_skb(skb, gfp); 5122 } 5123 5124 #ifdef CONFIG_NL80211_TESTMODE 5125 /** 5126 * DOC: Test mode 5127 * 5128 * Test mode is a set of utility functions to allow drivers to 5129 * interact with driver-specific tools to aid, for instance, 5130 * factory programming. 5131 * 5132 * This chapter describes how drivers interact with it, for more 5133 * information see the nl80211 book's chapter on it. 5134 */ 5135 5136 /** 5137 * cfg80211_testmode_alloc_reply_skb - allocate testmode reply 5138 * @wiphy: the wiphy 5139 * @approxlen: an upper bound of the length of the data that will 5140 * be put into the skb 5141 * 5142 * This function allocates and pre-fills an skb for a reply to 5143 * the testmode command. Since it is intended for a reply, calling 5144 * it outside of the @testmode_cmd operation is invalid. 5145 * 5146 * The returned skb is pre-filled with the wiphy index and set up in 5147 * a way that any data that is put into the skb (with skb_put(), 5148 * nla_put() or similar) will end up being within the 5149 * %NL80211_ATTR_TESTDATA attribute, so all that needs to be done 5150 * with the skb is adding data for the corresponding userspace tool 5151 * which can then read that data out of the testdata attribute. You 5152 * must not modify the skb in any other way. 5153 * 5154 * When done, call cfg80211_testmode_reply() with the skb and return 5155 * its error code as the result of the @testmode_cmd operation. 5156 * 5157 * Return: An allocated and pre-filled skb. %NULL if any errors happen. 5158 */ 5159 static inline struct sk_buff * 5160 cfg80211_testmode_alloc_reply_skb(struct wiphy *wiphy, int approxlen) 5161 { 5162 return __cfg80211_alloc_reply_skb(wiphy, NL80211_CMD_TESTMODE, 5163 NL80211_ATTR_TESTDATA, approxlen); 5164 } 5165 5166 /** 5167 * cfg80211_testmode_reply - send the reply skb 5168 * @skb: The skb, must have been allocated with 5169 * cfg80211_testmode_alloc_reply_skb() 5170 * 5171 * Since calling this function will usually be the last thing 5172 * before returning from the @testmode_cmd you should return 5173 * the error code. Note that this function consumes the skb 5174 * regardless of the return value. 5175 * 5176 * Return: An error code or 0 on success. 5177 */ 5178 static inline int cfg80211_testmode_reply(struct sk_buff *skb) 5179 { 5180 return cfg80211_vendor_cmd_reply(skb); 5181 } 5182 5183 /** 5184 * cfg80211_testmode_alloc_event_skb - allocate testmode event 5185 * @wiphy: the wiphy 5186 * @approxlen: an upper bound of the length of the data that will 5187 * be put into the skb 5188 * @gfp: allocation flags 5189 * 5190 * This function allocates and pre-fills an skb for an event on the 5191 * testmode multicast group. 5192 * 5193 * The returned skb is set up in the same way as with 5194 * cfg80211_testmode_alloc_reply_skb() but prepared for an event. As 5195 * there, you should simply add data to it that will then end up in the 5196 * %NL80211_ATTR_TESTDATA attribute. Again, you must not modify the skb 5197 * in any other way. 5198 * 5199 * When done filling the skb, call cfg80211_testmode_event() with the 5200 * skb to send the event. 5201 * 5202 * Return: An allocated and pre-filled skb. %NULL if any errors happen. 5203 */ 5204 static inline struct sk_buff * 5205 cfg80211_testmode_alloc_event_skb(struct wiphy *wiphy, int approxlen, gfp_t gfp) 5206 { 5207 return __cfg80211_alloc_event_skb(wiphy, NULL, NL80211_CMD_TESTMODE, 5208 NL80211_ATTR_TESTDATA, -1, 5209 approxlen, gfp); 5210 } 5211 5212 /** 5213 * cfg80211_testmode_event - send the event 5214 * @skb: The skb, must have been allocated with 5215 * cfg80211_testmode_alloc_event_skb() 5216 * @gfp: allocation flags 5217 * 5218 * This function sends the given @skb, which must have been allocated 5219 * by cfg80211_testmode_alloc_event_skb(), as an event. It always 5220 * consumes it. 5221 */ 5222 static inline void cfg80211_testmode_event(struct sk_buff *skb, gfp_t gfp) 5223 { 5224 __cfg80211_send_event_skb(skb, gfp); 5225 } 5226 5227 #define CFG80211_TESTMODE_CMD(cmd) .testmode_cmd = (cmd), 5228 #define CFG80211_TESTMODE_DUMP(cmd) .testmode_dump = (cmd), 5229 #else 5230 #define CFG80211_TESTMODE_CMD(cmd) 5231 #define CFG80211_TESTMODE_DUMP(cmd) 5232 #endif 5233 5234 /** 5235 * struct cfg80211_connect_resp_params - Connection response params 5236 * @status: Status code, %WLAN_STATUS_SUCCESS for successful connection, use 5237 * %WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you 5238 * the real status code for failures. If this call is used to report a 5239 * failure due to a timeout (e.g., not receiving an Authentication frame 5240 * from the AP) instead of an explicit rejection by the AP, -1 is used to 5241 * indicate that this is a failure, but without a status code. 5242 * @timeout_reason is used to report the reason for the timeout in that 5243 * case. 5244 * @bssid: The BSSID of the AP (may be %NULL) 5245 * @bss: Entry of bss to which STA got connected to, can be obtained through 5246 * cfg80211_get_bss() (may be %NULL). Only one parameter among @bssid and 5247 * @bss needs to be specified. 5248 * @req_ie: Association request IEs (may be %NULL) 5249 * @req_ie_len: Association request IEs length 5250 * @resp_ie: Association response IEs (may be %NULL) 5251 * @resp_ie_len: Association response IEs length 5252 * @fils_kek: KEK derived from a successful FILS connection (may be %NULL) 5253 * @fils_kek_len: Length of @fils_kek in octets 5254 * @update_erp_next_seq_num: Boolean value to specify whether the value in 5255 * @fils_erp_next_seq_num is valid. 5256 * @fils_erp_next_seq_num: The next sequence number to use in ERP message in 5257 * FILS Authentication. This value should be specified irrespective of the 5258 * status for a FILS connection. 5259 * @pmk: A new PMK if derived from a successful FILS connection (may be %NULL). 5260 * @pmk_len: Length of @pmk in octets 5261 * @pmkid: A new PMKID if derived from a successful FILS connection or the PMKID 5262 * used for this FILS connection (may be %NULL). 5263 * @timeout_reason: Reason for connection timeout. This is used when the 5264 * connection fails due to a timeout instead of an explicit rejection from 5265 * the AP. %NL80211_TIMEOUT_UNSPECIFIED is used when the timeout reason is 5266 * not known. This value is used only if @status < 0 to indicate that the 5267 * failure is due to a timeout and not due to explicit rejection by the AP. 5268 * This value is ignored in other cases (@status >= 0). 5269 */ 5270 struct cfg80211_connect_resp_params { 5271 int status; 5272 const u8 *bssid; 5273 struct cfg80211_bss *bss; 5274 const u8 *req_ie; 5275 size_t req_ie_len; 5276 const u8 *resp_ie; 5277 size_t resp_ie_len; 5278 const u8 *fils_kek; 5279 size_t fils_kek_len; 5280 bool update_erp_next_seq_num; 5281 u16 fils_erp_next_seq_num; 5282 const u8 *pmk; 5283 size_t pmk_len; 5284 const u8 *pmkid; 5285 enum nl80211_timeout_reason timeout_reason; 5286 }; 5287 5288 /** 5289 * cfg80211_connect_done - notify cfg80211 of connection result 5290 * 5291 * @dev: network device 5292 * @params: connection response parameters 5293 * @gfp: allocation flags 5294 * 5295 * It should be called by the underlying driver once execution of the connection 5296 * request from connect() has been completed. This is similar to 5297 * cfg80211_connect_bss(), but takes a structure pointer for connection response 5298 * parameters. Only one of the functions among cfg80211_connect_bss(), 5299 * cfg80211_connect_result(), cfg80211_connect_timeout(), 5300 * and cfg80211_connect_done() should be called. 5301 */ 5302 void cfg80211_connect_done(struct net_device *dev, 5303 struct cfg80211_connect_resp_params *params, 5304 gfp_t gfp); 5305 5306 /** 5307 * cfg80211_connect_bss - notify cfg80211 of connection result 5308 * 5309 * @dev: network device 5310 * @bssid: the BSSID of the AP 5311 * @bss: entry of bss to which STA got connected to, can be obtained 5312 * through cfg80211_get_bss (may be %NULL) 5313 * @req_ie: association request IEs (maybe be %NULL) 5314 * @req_ie_len: association request IEs length 5315 * @resp_ie: association response IEs (may be %NULL) 5316 * @resp_ie_len: assoc response IEs length 5317 * @status: status code, %WLAN_STATUS_SUCCESS for successful connection, use 5318 * %WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you 5319 * the real status code for failures. If this call is used to report a 5320 * failure due to a timeout (e.g., not receiving an Authentication frame 5321 * from the AP) instead of an explicit rejection by the AP, -1 is used to 5322 * indicate that this is a failure, but without a status code. 5323 * @timeout_reason is used to report the reason for the timeout in that 5324 * case. 5325 * @gfp: allocation flags 5326 * @timeout_reason: reason for connection timeout. This is used when the 5327 * connection fails due to a timeout instead of an explicit rejection from 5328 * the AP. %NL80211_TIMEOUT_UNSPECIFIED is used when the timeout reason is 5329 * not known. This value is used only if @status < 0 to indicate that the 5330 * failure is due to a timeout and not due to explicit rejection by the AP. 5331 * This value is ignored in other cases (@status >= 0). 5332 * 5333 * It should be called by the underlying driver once execution of the connection 5334 * request from connect() has been completed. This is similar to 5335 * cfg80211_connect_result(), but with the option of identifying the exact bss 5336 * entry for the connection. Only one of the functions among 5337 * cfg80211_connect_bss(), cfg80211_connect_result(), 5338 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called. 5339 */ 5340 static inline void 5341 cfg80211_connect_bss(struct net_device *dev, const u8 *bssid, 5342 struct cfg80211_bss *bss, const u8 *req_ie, 5343 size_t req_ie_len, const u8 *resp_ie, 5344 size_t resp_ie_len, int status, gfp_t gfp, 5345 enum nl80211_timeout_reason timeout_reason) 5346 { 5347 struct cfg80211_connect_resp_params params; 5348 5349 memset(¶ms, 0, sizeof(params)); 5350 params.status = status; 5351 params.bssid = bssid; 5352 params.bss = bss; 5353 params.req_ie = req_ie; 5354 params.req_ie_len = req_ie_len; 5355 params.resp_ie = resp_ie; 5356 params.resp_ie_len = resp_ie_len; 5357 params.timeout_reason = timeout_reason; 5358 5359 cfg80211_connect_done(dev, ¶ms, gfp); 5360 } 5361 5362 /** 5363 * cfg80211_connect_result - notify cfg80211 of connection result 5364 * 5365 * @dev: network device 5366 * @bssid: the BSSID of the AP 5367 * @req_ie: association request IEs (maybe be %NULL) 5368 * @req_ie_len: association request IEs length 5369 * @resp_ie: association response IEs (may be %NULL) 5370 * @resp_ie_len: assoc response IEs length 5371 * @status: status code, %WLAN_STATUS_SUCCESS for successful connection, use 5372 * %WLAN_STATUS_UNSPECIFIED_FAILURE if your device cannot give you 5373 * the real status code for failures. 5374 * @gfp: allocation flags 5375 * 5376 * It should be called by the underlying driver once execution of the connection 5377 * request from connect() has been completed. This is similar to 5378 * cfg80211_connect_bss() which allows the exact bss entry to be specified. Only 5379 * one of the functions among cfg80211_connect_bss(), cfg80211_connect_result(), 5380 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called. 5381 */ 5382 static inline void 5383 cfg80211_connect_result(struct net_device *dev, const u8 *bssid, 5384 const u8 *req_ie, size_t req_ie_len, 5385 const u8 *resp_ie, size_t resp_ie_len, 5386 u16 status, gfp_t gfp) 5387 { 5388 cfg80211_connect_bss(dev, bssid, NULL, req_ie, req_ie_len, resp_ie, 5389 resp_ie_len, status, gfp, 5390 NL80211_TIMEOUT_UNSPECIFIED); 5391 } 5392 5393 /** 5394 * cfg80211_connect_timeout - notify cfg80211 of connection timeout 5395 * 5396 * @dev: network device 5397 * @bssid: the BSSID of the AP 5398 * @req_ie: association request IEs (maybe be %NULL) 5399 * @req_ie_len: association request IEs length 5400 * @gfp: allocation flags 5401 * @timeout_reason: reason for connection timeout. 5402 * 5403 * It should be called by the underlying driver whenever connect() has failed 5404 * in a sequence where no explicit authentication/association rejection was 5405 * received from the AP. This could happen, e.g., due to not being able to send 5406 * out the Authentication or Association Request frame or timing out while 5407 * waiting for the response. Only one of the functions among 5408 * cfg80211_connect_bss(), cfg80211_connect_result(), 5409 * cfg80211_connect_timeout(), and cfg80211_connect_done() should be called. 5410 */ 5411 static inline void 5412 cfg80211_connect_timeout(struct net_device *dev, const u8 *bssid, 5413 const u8 *req_ie, size_t req_ie_len, gfp_t gfp, 5414 enum nl80211_timeout_reason timeout_reason) 5415 { 5416 cfg80211_connect_bss(dev, bssid, NULL, req_ie, req_ie_len, NULL, 0, -1, 5417 gfp, timeout_reason); 5418 } 5419 5420 /** 5421 * struct cfg80211_roam_info - driver initiated roaming information 5422 * 5423 * @channel: the channel of the new AP 5424 * @bss: entry of bss to which STA got roamed (may be %NULL if %bssid is set) 5425 * @bssid: the BSSID of the new AP (may be %NULL if %bss is set) 5426 * @req_ie: association request IEs (maybe be %NULL) 5427 * @req_ie_len: association request IEs length 5428 * @resp_ie: association response IEs (may be %NULL) 5429 * @resp_ie_len: assoc response IEs length 5430 */ 5431 struct cfg80211_roam_info { 5432 struct ieee80211_channel *channel; 5433 struct cfg80211_bss *bss; 5434 const u8 *bssid; 5435 const u8 *req_ie; 5436 size_t req_ie_len; 5437 const u8 *resp_ie; 5438 size_t resp_ie_len; 5439 }; 5440 5441 /** 5442 * cfg80211_roamed - notify cfg80211 of roaming 5443 * 5444 * @dev: network device 5445 * @info: information about the new BSS. struct &cfg80211_roam_info. 5446 * @gfp: allocation flags 5447 * 5448 * This function may be called with the driver passing either the BSSID of the 5449 * new AP or passing the bss entry to avoid a race in timeout of the bss entry. 5450 * It should be called by the underlying driver whenever it roamed from one AP 5451 * to another while connected. Drivers which have roaming implemented in 5452 * firmware should pass the bss entry to avoid a race in bss entry timeout where 5453 * the bss entry of the new AP is seen in the driver, but gets timed out by the 5454 * time it is accessed in __cfg80211_roamed() due to delay in scheduling 5455 * rdev->event_work. In case of any failures, the reference is released 5456 * either in cfg80211_roamed() or in __cfg80211_romed(), Otherwise, it will be 5457 * released while diconneting from the current bss. 5458 */ 5459 void cfg80211_roamed(struct net_device *dev, struct cfg80211_roam_info *info, 5460 gfp_t gfp); 5461 5462 /** 5463 * cfg80211_port_authorized - notify cfg80211 of successful security association 5464 * 5465 * @dev: network device 5466 * @bssid: the BSSID of the AP 5467 * @gfp: allocation flags 5468 * 5469 * This function should be called by a driver that supports 4 way handshake 5470 * offload after a security association was successfully established (i.e., 5471 * the 4 way handshake was completed successfully). The call to this function 5472 * should be preceded with a call to cfg80211_connect_result(), 5473 * cfg80211_connect_done(), cfg80211_connect_bss() or cfg80211_roamed() to 5474 * indicate the 802.11 association. 5475 */ 5476 void cfg80211_port_authorized(struct net_device *dev, const u8 *bssid, 5477 gfp_t gfp); 5478 5479 /** 5480 * cfg80211_disconnected - notify cfg80211 that connection was dropped 5481 * 5482 * @dev: network device 5483 * @ie: information elements of the deauth/disassoc frame (may be %NULL) 5484 * @ie_len: length of IEs 5485 * @reason: reason code for the disconnection, set it to 0 if unknown 5486 * @locally_generated: disconnection was requested locally 5487 * @gfp: allocation flags 5488 * 5489 * After it calls this function, the driver should enter an idle state 5490 * and not try to connect to any AP any more. 5491 */ 5492 void cfg80211_disconnected(struct net_device *dev, u16 reason, 5493 const u8 *ie, size_t ie_len, 5494 bool locally_generated, gfp_t gfp); 5495 5496 /** 5497 * cfg80211_ready_on_channel - notification of remain_on_channel start 5498 * @wdev: wireless device 5499 * @cookie: the request cookie 5500 * @chan: The current channel (from remain_on_channel request) 5501 * @duration: Duration in milliseconds that the driver intents to remain on the 5502 * channel 5503 * @gfp: allocation flags 5504 */ 5505 void cfg80211_ready_on_channel(struct wireless_dev *wdev, u64 cookie, 5506 struct ieee80211_channel *chan, 5507 unsigned int duration, gfp_t gfp); 5508 5509 /** 5510 * cfg80211_remain_on_channel_expired - remain_on_channel duration expired 5511 * @wdev: wireless device 5512 * @cookie: the request cookie 5513 * @chan: The current channel (from remain_on_channel request) 5514 * @gfp: allocation flags 5515 */ 5516 void cfg80211_remain_on_channel_expired(struct wireless_dev *wdev, u64 cookie, 5517 struct ieee80211_channel *chan, 5518 gfp_t gfp); 5519 5520 5521 /** 5522 * cfg80211_new_sta - notify userspace about station 5523 * 5524 * @dev: the netdev 5525 * @mac_addr: the station's address 5526 * @sinfo: the station information 5527 * @gfp: allocation flags 5528 */ 5529 void cfg80211_new_sta(struct net_device *dev, const u8 *mac_addr, 5530 struct station_info *sinfo, gfp_t gfp); 5531 5532 /** 5533 * cfg80211_del_sta_sinfo - notify userspace about deletion of a station 5534 * @dev: the netdev 5535 * @mac_addr: the station's address 5536 * @sinfo: the station information/statistics 5537 * @gfp: allocation flags 5538 */ 5539 void cfg80211_del_sta_sinfo(struct net_device *dev, const u8 *mac_addr, 5540 struct station_info *sinfo, gfp_t gfp); 5541 5542 /** 5543 * cfg80211_del_sta - notify userspace about deletion of a station 5544 * 5545 * @dev: the netdev 5546 * @mac_addr: the station's address 5547 * @gfp: allocation flags 5548 */ 5549 static inline void cfg80211_del_sta(struct net_device *dev, 5550 const u8 *mac_addr, gfp_t gfp) 5551 { 5552 cfg80211_del_sta_sinfo(dev, mac_addr, NULL, gfp); 5553 } 5554 5555 /** 5556 * cfg80211_conn_failed - connection request failed notification 5557 * 5558 * @dev: the netdev 5559 * @mac_addr: the station's address 5560 * @reason: the reason for connection failure 5561 * @gfp: allocation flags 5562 * 5563 * Whenever a station tries to connect to an AP and if the station 5564 * could not connect to the AP as the AP has rejected the connection 5565 * for some reasons, this function is called. 5566 * 5567 * The reason for connection failure can be any of the value from 5568 * nl80211_connect_failed_reason enum 5569 */ 5570 void cfg80211_conn_failed(struct net_device *dev, const u8 *mac_addr, 5571 enum nl80211_connect_failed_reason reason, 5572 gfp_t gfp); 5573 5574 /** 5575 * cfg80211_rx_mgmt - notification of received, unprocessed management frame 5576 * @wdev: wireless device receiving the frame 5577 * @freq: Frequency on which the frame was received in MHz 5578 * @sig_dbm: signal strength in mBm, or 0 if unknown 5579 * @buf: Management frame (header + body) 5580 * @len: length of the frame data 5581 * @flags: flags, as defined in enum nl80211_rxmgmt_flags 5582 * 5583 * This function is called whenever an Action frame is received for a station 5584 * mode interface, but is not processed in kernel. 5585 * 5586 * Return: %true if a user space application has registered for this frame. 5587 * For action frames, that makes it responsible for rejecting unrecognized 5588 * action frames; %false otherwise, in which case for action frames the 5589 * driver is responsible for rejecting the frame. 5590 */ 5591 bool cfg80211_rx_mgmt(struct wireless_dev *wdev, int freq, int sig_dbm, 5592 const u8 *buf, size_t len, u32 flags); 5593 5594 /** 5595 * cfg80211_mgmt_tx_status - notification of TX status for management frame 5596 * @wdev: wireless device receiving the frame 5597 * @cookie: Cookie returned by cfg80211_ops::mgmt_tx() 5598 * @buf: Management frame (header + body) 5599 * @len: length of the frame data 5600 * @ack: Whether frame was acknowledged 5601 * @gfp: context flags 5602 * 5603 * This function is called whenever a management frame was requested to be 5604 * transmitted with cfg80211_ops::mgmt_tx() to report the TX status of the 5605 * transmission attempt. 5606 */ 5607 void cfg80211_mgmt_tx_status(struct wireless_dev *wdev, u64 cookie, 5608 const u8 *buf, size_t len, bool ack, gfp_t gfp); 5609 5610 5611 /** 5612 * cfg80211_cqm_rssi_notify - connection quality monitoring rssi event 5613 * @dev: network device 5614 * @rssi_event: the triggered RSSI event 5615 * @rssi_level: new RSSI level value or 0 if not available 5616 * @gfp: context flags 5617 * 5618 * This function is called when a configured connection quality monitoring 5619 * rssi threshold reached event occurs. 5620 */ 5621 void cfg80211_cqm_rssi_notify(struct net_device *dev, 5622 enum nl80211_cqm_rssi_threshold_event rssi_event, 5623 s32 rssi_level, gfp_t gfp); 5624 5625 /** 5626 * cfg80211_cqm_pktloss_notify - notify userspace about packetloss to peer 5627 * @dev: network device 5628 * @peer: peer's MAC address 5629 * @num_packets: how many packets were lost -- should be a fixed threshold 5630 * but probably no less than maybe 50, or maybe a throughput dependent 5631 * threshold (to account for temporary interference) 5632 * @gfp: context flags 5633 */ 5634 void cfg80211_cqm_pktloss_notify(struct net_device *dev, 5635 const u8 *peer, u32 num_packets, gfp_t gfp); 5636 5637 /** 5638 * cfg80211_cqm_txe_notify - TX error rate event 5639 * @dev: network device 5640 * @peer: peer's MAC address 5641 * @num_packets: how many packets were lost 5642 * @rate: % of packets which failed transmission 5643 * @intvl: interval (in s) over which the TX failure threshold was breached. 5644 * @gfp: context flags 5645 * 5646 * Notify userspace when configured % TX failures over number of packets in a 5647 * given interval is exceeded. 5648 */ 5649 void cfg80211_cqm_txe_notify(struct net_device *dev, const u8 *peer, 5650 u32 num_packets, u32 rate, u32 intvl, gfp_t gfp); 5651 5652 /** 5653 * cfg80211_cqm_beacon_loss_notify - beacon loss event 5654 * @dev: network device 5655 * @gfp: context flags 5656 * 5657 * Notify userspace about beacon loss from the connected AP. 5658 */ 5659 void cfg80211_cqm_beacon_loss_notify(struct net_device *dev, gfp_t gfp); 5660 5661 /** 5662 * cfg80211_radar_event - radar detection event 5663 * @wiphy: the wiphy 5664 * @chandef: chandef for the current channel 5665 * @gfp: context flags 5666 * 5667 * This function is called when a radar is detected on the current chanenl. 5668 */ 5669 void cfg80211_radar_event(struct wiphy *wiphy, 5670 struct cfg80211_chan_def *chandef, gfp_t gfp); 5671 5672 /** 5673 * cfg80211_cac_event - Channel availability check (CAC) event 5674 * @netdev: network device 5675 * @chandef: chandef for the current channel 5676 * @event: type of event 5677 * @gfp: context flags 5678 * 5679 * This function is called when a Channel availability check (CAC) is finished 5680 * or aborted. This must be called to notify the completion of a CAC process, 5681 * also by full-MAC drivers. 5682 */ 5683 void cfg80211_cac_event(struct net_device *netdev, 5684 const struct cfg80211_chan_def *chandef, 5685 enum nl80211_radar_event event, gfp_t gfp); 5686 5687 5688 /** 5689 * cfg80211_gtk_rekey_notify - notify userspace about driver rekeying 5690 * @dev: network device 5691 * @bssid: BSSID of AP (to avoid races) 5692 * @replay_ctr: new replay counter 5693 * @gfp: allocation flags 5694 */ 5695 void cfg80211_gtk_rekey_notify(struct net_device *dev, const u8 *bssid, 5696 const u8 *replay_ctr, gfp_t gfp); 5697 5698 /** 5699 * cfg80211_pmksa_candidate_notify - notify about PMKSA caching candidate 5700 * @dev: network device 5701 * @index: candidate index (the smaller the index, the higher the priority) 5702 * @bssid: BSSID of AP 5703 * @preauth: Whether AP advertises support for RSN pre-authentication 5704 * @gfp: allocation flags 5705 */ 5706 void cfg80211_pmksa_candidate_notify(struct net_device *dev, int index, 5707 const u8 *bssid, bool preauth, gfp_t gfp); 5708 5709 /** 5710 * cfg80211_rx_spurious_frame - inform userspace about a spurious frame 5711 * @dev: The device the frame matched to 5712 * @addr: the transmitter address 5713 * @gfp: context flags 5714 * 5715 * This function is used in AP mode (only!) to inform userspace that 5716 * a spurious class 3 frame was received, to be able to deauth the 5717 * sender. 5718 * Return: %true if the frame was passed to userspace (or this failed 5719 * for a reason other than not having a subscription.) 5720 */ 5721 bool cfg80211_rx_spurious_frame(struct net_device *dev, 5722 const u8 *addr, gfp_t gfp); 5723 5724 /** 5725 * cfg80211_rx_unexpected_4addr_frame - inform about unexpected WDS frame 5726 * @dev: The device the frame matched to 5727 * @addr: the transmitter address 5728 * @gfp: context flags 5729 * 5730 * This function is used in AP mode (only!) to inform userspace that 5731 * an associated station sent a 4addr frame but that wasn't expected. 5732 * It is allowed and desirable to send this event only once for each 5733 * station to avoid event flooding. 5734 * Return: %true if the frame was passed to userspace (or this failed 5735 * for a reason other than not having a subscription.) 5736 */ 5737 bool cfg80211_rx_unexpected_4addr_frame(struct net_device *dev, 5738 const u8 *addr, gfp_t gfp); 5739 5740 /** 5741 * cfg80211_probe_status - notify userspace about probe status 5742 * @dev: the device the probe was sent on 5743 * @addr: the address of the peer 5744 * @cookie: the cookie filled in @probe_client previously 5745 * @acked: indicates whether probe was acked or not 5746 * @gfp: allocation flags 5747 */ 5748 void cfg80211_probe_status(struct net_device *dev, const u8 *addr, 5749 u64 cookie, bool acked, gfp_t gfp); 5750 5751 /** 5752 * cfg80211_report_obss_beacon - report beacon from other APs 5753 * @wiphy: The wiphy that received the beacon 5754 * @frame: the frame 5755 * @len: length of the frame 5756 * @freq: frequency the frame was received on 5757 * @sig_dbm: signal strength in mBm, or 0 if unknown 5758 * 5759 * Use this function to report to userspace when a beacon was 5760 * received. It is not useful to call this when there is no 5761 * netdev that is in AP/GO mode. 5762 */ 5763 void cfg80211_report_obss_beacon(struct wiphy *wiphy, 5764 const u8 *frame, size_t len, 5765 int freq, int sig_dbm); 5766 5767 /** 5768 * cfg80211_reg_can_beacon - check if beaconing is allowed 5769 * @wiphy: the wiphy 5770 * @chandef: the channel definition 5771 * @iftype: interface type 5772 * 5773 * Return: %true if there is no secondary channel or the secondary channel(s) 5774 * can be used for beaconing (i.e. is not a radar channel etc.) 5775 */ 5776 bool cfg80211_reg_can_beacon(struct wiphy *wiphy, 5777 struct cfg80211_chan_def *chandef, 5778 enum nl80211_iftype iftype); 5779 5780 /** 5781 * cfg80211_reg_can_beacon_relax - check if beaconing is allowed with relaxation 5782 * @wiphy: the wiphy 5783 * @chandef: the channel definition 5784 * @iftype: interface type 5785 * 5786 * Return: %true if there is no secondary channel or the secondary channel(s) 5787 * can be used for beaconing (i.e. is not a radar channel etc.). This version 5788 * also checks if IR-relaxation conditions apply, to allow beaconing under 5789 * more permissive conditions. 5790 * 5791 * Requires the RTNL to be held. 5792 */ 5793 bool cfg80211_reg_can_beacon_relax(struct wiphy *wiphy, 5794 struct cfg80211_chan_def *chandef, 5795 enum nl80211_iftype iftype); 5796 5797 /* 5798 * cfg80211_ch_switch_notify - update wdev channel and notify userspace 5799 * @dev: the device which switched channels 5800 * @chandef: the new channel definition 5801 * 5802 * Caller must acquire wdev_lock, therefore must only be called from sleepable 5803 * driver context! 5804 */ 5805 void cfg80211_ch_switch_notify(struct net_device *dev, 5806 struct cfg80211_chan_def *chandef); 5807 5808 /* 5809 * cfg80211_ch_switch_started_notify - notify channel switch start 5810 * @dev: the device on which the channel switch started 5811 * @chandef: the future channel definition 5812 * @count: the number of TBTTs until the channel switch happens 5813 * 5814 * Inform the userspace about the channel switch that has just 5815 * started, so that it can take appropriate actions (eg. starting 5816 * channel switch on other vifs), if necessary. 5817 */ 5818 void cfg80211_ch_switch_started_notify(struct net_device *dev, 5819 struct cfg80211_chan_def *chandef, 5820 u8 count); 5821 5822 /** 5823 * ieee80211_operating_class_to_band - convert operating class to band 5824 * 5825 * @operating_class: the operating class to convert 5826 * @band: band pointer to fill 5827 * 5828 * Returns %true if the conversion was successful, %false otherwise. 5829 */ 5830 bool ieee80211_operating_class_to_band(u8 operating_class, 5831 enum nl80211_band *band); 5832 5833 /** 5834 * ieee80211_chandef_to_operating_class - convert chandef to operation class 5835 * 5836 * @chandef: the chandef to convert 5837 * @op_class: a pointer to the resulting operating class 5838 * 5839 * Returns %true if the conversion was successful, %false otherwise. 5840 */ 5841 bool ieee80211_chandef_to_operating_class(struct cfg80211_chan_def *chandef, 5842 u8 *op_class); 5843 5844 /* 5845 * cfg80211_tdls_oper_request - request userspace to perform TDLS operation 5846 * @dev: the device on which the operation is requested 5847 * @peer: the MAC address of the peer device 5848 * @oper: the requested TDLS operation (NL80211_TDLS_SETUP or 5849 * NL80211_TDLS_TEARDOWN) 5850 * @reason_code: the reason code for teardown request 5851 * @gfp: allocation flags 5852 * 5853 * This function is used to request userspace to perform TDLS operation that 5854 * requires knowledge of keys, i.e., link setup or teardown when the AP 5855 * connection uses encryption. This is optional mechanism for the driver to use 5856 * if it can automatically determine when a TDLS link could be useful (e.g., 5857 * based on traffic and signal strength for a peer). 5858 */ 5859 void cfg80211_tdls_oper_request(struct net_device *dev, const u8 *peer, 5860 enum nl80211_tdls_operation oper, 5861 u16 reason_code, gfp_t gfp); 5862 5863 /* 5864 * cfg80211_calculate_bitrate - calculate actual bitrate (in 100Kbps units) 5865 * @rate: given rate_info to calculate bitrate from 5866 * 5867 * return 0 if MCS index >= 32 5868 */ 5869 u32 cfg80211_calculate_bitrate(struct rate_info *rate); 5870 5871 /** 5872 * cfg80211_unregister_wdev - remove the given wdev 5873 * @wdev: struct wireless_dev to remove 5874 * 5875 * Call this function only for wdevs that have no netdev assigned, 5876 * e.g. P2P Devices. It removes the device from the list so that 5877 * it can no longer be used. It is necessary to call this function 5878 * even when cfg80211 requests the removal of the interface by 5879 * calling the del_virtual_intf() callback. The function must also 5880 * be called when the driver wishes to unregister the wdev, e.g. 5881 * when the device is unbound from the driver. 5882 * 5883 * Requires the RTNL to be held. 5884 */ 5885 void cfg80211_unregister_wdev(struct wireless_dev *wdev); 5886 5887 /** 5888 * struct cfg80211_ft_event - FT Information Elements 5889 * @ies: FT IEs 5890 * @ies_len: length of the FT IE in bytes 5891 * @target_ap: target AP's MAC address 5892 * @ric_ies: RIC IE 5893 * @ric_ies_len: length of the RIC IE in bytes 5894 */ 5895 struct cfg80211_ft_event_params { 5896 const u8 *ies; 5897 size_t ies_len; 5898 const u8 *target_ap; 5899 const u8 *ric_ies; 5900 size_t ric_ies_len; 5901 }; 5902 5903 /** 5904 * cfg80211_ft_event - notify userspace about FT IE and RIC IE 5905 * @netdev: network device 5906 * @ft_event: IE information 5907 */ 5908 void cfg80211_ft_event(struct net_device *netdev, 5909 struct cfg80211_ft_event_params *ft_event); 5910 5911 /** 5912 * cfg80211_get_p2p_attr - find and copy a P2P attribute from IE buffer 5913 * @ies: the input IE buffer 5914 * @len: the input length 5915 * @attr: the attribute ID to find 5916 * @buf: output buffer, can be %NULL if the data isn't needed, e.g. 5917 * if the function is only called to get the needed buffer size 5918 * @bufsize: size of the output buffer 5919 * 5920 * The function finds a given P2P attribute in the (vendor) IEs and 5921 * copies its contents to the given buffer. 5922 * 5923 * Return: A negative error code (-%EILSEQ or -%ENOENT) if the data is 5924 * malformed or the attribute can't be found (respectively), or the 5925 * length of the found attribute (which can be zero). 5926 */ 5927 int cfg80211_get_p2p_attr(const u8 *ies, unsigned int len, 5928 enum ieee80211_p2p_attr_id attr, 5929 u8 *buf, unsigned int bufsize); 5930 5931 /** 5932 * ieee80211_ie_split_ric - split an IE buffer according to ordering (with RIC) 5933 * @ies: the IE buffer 5934 * @ielen: the length of the IE buffer 5935 * @ids: an array with element IDs that are allowed before 5936 * the split. A WLAN_EID_EXTENSION value means that the next 5937 * EID in the list is a sub-element of the EXTENSION IE. 5938 * @n_ids: the size of the element ID array 5939 * @after_ric: array IE types that come after the RIC element 5940 * @n_after_ric: size of the @after_ric array 5941 * @offset: offset where to start splitting in the buffer 5942 * 5943 * This function splits an IE buffer by updating the @offset 5944 * variable to point to the location where the buffer should be 5945 * split. 5946 * 5947 * It assumes that the given IE buffer is well-formed, this 5948 * has to be guaranteed by the caller! 5949 * 5950 * It also assumes that the IEs in the buffer are ordered 5951 * correctly, if not the result of using this function will not 5952 * be ordered correctly either, i.e. it does no reordering. 5953 * 5954 * The function returns the offset where the next part of the 5955 * buffer starts, which may be @ielen if the entire (remainder) 5956 * of the buffer should be used. 5957 */ 5958 size_t ieee80211_ie_split_ric(const u8 *ies, size_t ielen, 5959 const u8 *ids, int n_ids, 5960 const u8 *after_ric, int n_after_ric, 5961 size_t offset); 5962 5963 /** 5964 * ieee80211_ie_split - split an IE buffer according to ordering 5965 * @ies: the IE buffer 5966 * @ielen: the length of the IE buffer 5967 * @ids: an array with element IDs that are allowed before 5968 * the split. A WLAN_EID_EXTENSION value means that the next 5969 * EID in the list is a sub-element of the EXTENSION IE. 5970 * @n_ids: the size of the element ID array 5971 * @offset: offset where to start splitting in the buffer 5972 * 5973 * This function splits an IE buffer by updating the @offset 5974 * variable to point to the location where the buffer should be 5975 * split. 5976 * 5977 * It assumes that the given IE buffer is well-formed, this 5978 * has to be guaranteed by the caller! 5979 * 5980 * It also assumes that the IEs in the buffer are ordered 5981 * correctly, if not the result of using this function will not 5982 * be ordered correctly either, i.e. it does no reordering. 5983 * 5984 * The function returns the offset where the next part of the 5985 * buffer starts, which may be @ielen if the entire (remainder) 5986 * of the buffer should be used. 5987 */ 5988 static inline size_t ieee80211_ie_split(const u8 *ies, size_t ielen, 5989 const u8 *ids, int n_ids, size_t offset) 5990 { 5991 return ieee80211_ie_split_ric(ies, ielen, ids, n_ids, NULL, 0, offset); 5992 } 5993 5994 /** 5995 * cfg80211_report_wowlan_wakeup - report wakeup from WoWLAN 5996 * @wdev: the wireless device reporting the wakeup 5997 * @wakeup: the wakeup report 5998 * @gfp: allocation flags 5999 * 6000 * This function reports that the given device woke up. If it 6001 * caused the wakeup, report the reason(s), otherwise you may 6002 * pass %NULL as the @wakeup parameter to advertise that something 6003 * else caused the wakeup. 6004 */ 6005 void cfg80211_report_wowlan_wakeup(struct wireless_dev *wdev, 6006 struct cfg80211_wowlan_wakeup *wakeup, 6007 gfp_t gfp); 6008 6009 /** 6010 * cfg80211_crit_proto_stopped() - indicate critical protocol stopped by driver. 6011 * 6012 * @wdev: the wireless device for which critical protocol is stopped. 6013 * @gfp: allocation flags 6014 * 6015 * This function can be called by the driver to indicate it has reverted 6016 * operation back to normal. One reason could be that the duration given 6017 * by .crit_proto_start() has expired. 6018 */ 6019 void cfg80211_crit_proto_stopped(struct wireless_dev *wdev, gfp_t gfp); 6020 6021 /** 6022 * ieee80211_get_num_supported_channels - get number of channels device has 6023 * @wiphy: the wiphy 6024 * 6025 * Return: the number of channels supported by the device. 6026 */ 6027 unsigned int ieee80211_get_num_supported_channels(struct wiphy *wiphy); 6028 6029 /** 6030 * cfg80211_check_combinations - check interface combinations 6031 * 6032 * @wiphy: the wiphy 6033 * @params: the interface combinations parameter 6034 * 6035 * This function can be called by the driver to check whether a 6036 * combination of interfaces and their types are allowed according to 6037 * the interface combinations. 6038 */ 6039 int cfg80211_check_combinations(struct wiphy *wiphy, 6040 struct iface_combination_params *params); 6041 6042 /** 6043 * cfg80211_iter_combinations - iterate over matching combinations 6044 * 6045 * @wiphy: the wiphy 6046 * @params: the interface combinations parameter 6047 * @iter: function to call for each matching combination 6048 * @data: pointer to pass to iter function 6049 * 6050 * This function can be called by the driver to check what possible 6051 * combinations it fits in at a given moment, e.g. for channel switching 6052 * purposes. 6053 */ 6054 int cfg80211_iter_combinations(struct wiphy *wiphy, 6055 struct iface_combination_params *params, 6056 void (*iter)(const struct ieee80211_iface_combination *c, 6057 void *data), 6058 void *data); 6059 6060 /* 6061 * cfg80211_stop_iface - trigger interface disconnection 6062 * 6063 * @wiphy: the wiphy 6064 * @wdev: wireless device 6065 * @gfp: context flags 6066 * 6067 * Trigger interface to be stopped as if AP was stopped, IBSS/mesh left, STA 6068 * disconnected. 6069 * 6070 * Note: This doesn't need any locks and is asynchronous. 6071 */ 6072 void cfg80211_stop_iface(struct wiphy *wiphy, struct wireless_dev *wdev, 6073 gfp_t gfp); 6074 6075 /** 6076 * cfg80211_shutdown_all_interfaces - shut down all interfaces for a wiphy 6077 * @wiphy: the wiphy to shut down 6078 * 6079 * This function shuts down all interfaces belonging to this wiphy by 6080 * calling dev_close() (and treating non-netdev interfaces as needed). 6081 * It shouldn't really be used unless there are some fatal device errors 6082 * that really can't be recovered in any other way. 6083 * 6084 * Callers must hold the RTNL and be able to deal with callbacks into 6085 * the driver while the function is running. 6086 */ 6087 void cfg80211_shutdown_all_interfaces(struct wiphy *wiphy); 6088 6089 /** 6090 * wiphy_ext_feature_set - set the extended feature flag 6091 * 6092 * @wiphy: the wiphy to modify. 6093 * @ftidx: extended feature bit index. 6094 * 6095 * The extended features are flagged in multiple bytes (see 6096 * &struct wiphy.@ext_features) 6097 */ 6098 static inline void wiphy_ext_feature_set(struct wiphy *wiphy, 6099 enum nl80211_ext_feature_index ftidx) 6100 { 6101 u8 *ft_byte; 6102 6103 ft_byte = &wiphy->ext_features[ftidx / 8]; 6104 *ft_byte |= BIT(ftidx % 8); 6105 } 6106 6107 /** 6108 * wiphy_ext_feature_isset - check the extended feature flag 6109 * 6110 * @wiphy: the wiphy to modify. 6111 * @ftidx: extended feature bit index. 6112 * 6113 * The extended features are flagged in multiple bytes (see 6114 * &struct wiphy.@ext_features) 6115 */ 6116 static inline bool 6117 wiphy_ext_feature_isset(struct wiphy *wiphy, 6118 enum nl80211_ext_feature_index ftidx) 6119 { 6120 u8 ft_byte; 6121 6122 ft_byte = wiphy->ext_features[ftidx / 8]; 6123 return (ft_byte & BIT(ftidx % 8)) != 0; 6124 } 6125 6126 /** 6127 * cfg80211_free_nan_func - free NAN function 6128 * @f: NAN function that should be freed 6129 * 6130 * Frees all the NAN function and all it's allocated members. 6131 */ 6132 void cfg80211_free_nan_func(struct cfg80211_nan_func *f); 6133 6134 /** 6135 * struct cfg80211_nan_match_params - NAN match parameters 6136 * @type: the type of the function that triggered a match. If it is 6137 * %NL80211_NAN_FUNC_SUBSCRIBE it means that we replied to a subscriber. 6138 * If it is %NL80211_NAN_FUNC_PUBLISH, it means that we got a discovery 6139 * result. 6140 * If it is %NL80211_NAN_FUNC_FOLLOW_UP, we received a follow up. 6141 * @inst_id: the local instance id 6142 * @peer_inst_id: the instance id of the peer's function 6143 * @addr: the MAC address of the peer 6144 * @info_len: the length of the &info 6145 * @info: the Service Specific Info from the peer (if any) 6146 * @cookie: unique identifier of the corresponding function 6147 */ 6148 struct cfg80211_nan_match_params { 6149 enum nl80211_nan_function_type type; 6150 u8 inst_id; 6151 u8 peer_inst_id; 6152 const u8 *addr; 6153 u8 info_len; 6154 const u8 *info; 6155 u64 cookie; 6156 }; 6157 6158 /** 6159 * cfg80211_nan_match - report a match for a NAN function. 6160 * @wdev: the wireless device reporting the match 6161 * @match: match notification parameters 6162 * @gfp: allocation flags 6163 * 6164 * This function reports that the a NAN function had a match. This 6165 * can be a subscribe that had a match or a solicited publish that 6166 * was sent. It can also be a follow up that was received. 6167 */ 6168 void cfg80211_nan_match(struct wireless_dev *wdev, 6169 struct cfg80211_nan_match_params *match, gfp_t gfp); 6170 6171 /** 6172 * cfg80211_nan_func_terminated - notify about NAN function termination. 6173 * 6174 * @wdev: the wireless device reporting the match 6175 * @inst_id: the local instance id 6176 * @reason: termination reason (one of the NL80211_NAN_FUNC_TERM_REASON_*) 6177 * @cookie: unique NAN function identifier 6178 * @gfp: allocation flags 6179 * 6180 * This function reports that the a NAN function is terminated. 6181 */ 6182 void cfg80211_nan_func_terminated(struct wireless_dev *wdev, 6183 u8 inst_id, 6184 enum nl80211_nan_func_term_reason reason, 6185 u64 cookie, gfp_t gfp); 6186 6187 /* ethtool helper */ 6188 void cfg80211_get_drvinfo(struct net_device *dev, struct ethtool_drvinfo *info); 6189 6190 /* Logging, debugging and troubleshooting/diagnostic helpers. */ 6191 6192 /* wiphy_printk helpers, similar to dev_printk */ 6193 6194 #define wiphy_printk(level, wiphy, format, args...) \ 6195 dev_printk(level, &(wiphy)->dev, format, ##args) 6196 #define wiphy_emerg(wiphy, format, args...) \ 6197 dev_emerg(&(wiphy)->dev, format, ##args) 6198 #define wiphy_alert(wiphy, format, args...) \ 6199 dev_alert(&(wiphy)->dev, format, ##args) 6200 #define wiphy_crit(wiphy, format, args...) \ 6201 dev_crit(&(wiphy)->dev, format, ##args) 6202 #define wiphy_err(wiphy, format, args...) \ 6203 dev_err(&(wiphy)->dev, format, ##args) 6204 #define wiphy_warn(wiphy, format, args...) \ 6205 dev_warn(&(wiphy)->dev, format, ##args) 6206 #define wiphy_notice(wiphy, format, args...) \ 6207 dev_notice(&(wiphy)->dev, format, ##args) 6208 #define wiphy_info(wiphy, format, args...) \ 6209 dev_info(&(wiphy)->dev, format, ##args) 6210 6211 #define wiphy_debug(wiphy, format, args...) \ 6212 wiphy_printk(KERN_DEBUG, wiphy, format, ##args) 6213 6214 #define wiphy_dbg(wiphy, format, args...) \ 6215 dev_dbg(&(wiphy)->dev, format, ##args) 6216 6217 #if defined(VERBOSE_DEBUG) 6218 #define wiphy_vdbg wiphy_dbg 6219 #else 6220 #define wiphy_vdbg(wiphy, format, args...) \ 6221 ({ \ 6222 if (0) \ 6223 wiphy_printk(KERN_DEBUG, wiphy, format, ##args); \ 6224 0; \ 6225 }) 6226 #endif 6227 6228 /* 6229 * wiphy_WARN() acts like wiphy_printk(), but with the key difference 6230 * of using a WARN/WARN_ON to get the message out, including the 6231 * file/line information and a backtrace. 6232 */ 6233 #define wiphy_WARN(wiphy, format, args...) \ 6234 WARN(1, "wiphy: %s\n" format, wiphy_name(wiphy), ##args); 6235 6236 #endif /* __NET_CFG80211_H */ 6237