mac80211.h revision 0f78231bffb868a30e8533aace142213266bb811
1/*
2 * mac80211 <-> driver interface
3 *
4 * Copyright 2002-2005, Devicescape Software, Inc.
5 * Copyright 2006-2007	Jiri Benc <jbenc@suse.cz>
6 * Copyright 2007-2008	Johannes Berg <johannes@sipsolutions.net>
7 *
8 * This program is free software; you can redistribute it and/or modify
9 * it under the terms of the GNU General Public License version 2 as
10 * published by the Free Software Foundation.
11 */
12
13#ifndef MAC80211_H
14#define MAC80211_H
15
16#include <linux/kernel.h>
17#include <linux/if_ether.h>
18#include <linux/skbuff.h>
19#include <linux/wireless.h>
20#include <linux/device.h>
21#include <linux/ieee80211.h>
22#include <net/cfg80211.h>
23
24/**
25 * DOC: Introduction
26 *
27 * mac80211 is the Linux stack for 802.11 hardware that implements
28 * only partial functionality in hard- or firmware. This document
29 * defines the interface between mac80211 and low-level hardware
30 * drivers.
31 */
32
33/**
34 * DOC: Calling mac80211 from interrupts
35 *
36 * Only ieee80211_tx_status_irqsafe() and ieee80211_rx_irqsafe() can be
37 * called in hardware interrupt context. The low-level driver must not call any
38 * other functions in hardware interrupt context. If there is a need for such
39 * call, the low-level driver should first ACK the interrupt and perform the
40 * IEEE 802.11 code call after this, e.g. from a scheduled workqueue or even
41 * tasklet function.
42 *
43 * NOTE: If the driver opts to use the _irqsafe() functions, it may not also
44 *	 use the non-IRQ-safe functions!
45 */
46
47/**
48 * DOC: Warning
49 *
50 * If you're reading this document and not the header file itself, it will
51 * be incomplete because not all documentation has been converted yet.
52 */
53
54/**
55 * DOC: Frame format
56 *
57 * As a general rule, when frames are passed between mac80211 and the driver,
58 * they start with the IEEE 802.11 header and include the same octets that are
59 * sent over the air except for the FCS which should be calculated by the
60 * hardware.
61 *
62 * There are, however, various exceptions to this rule for advanced features:
63 *
64 * The first exception is for hardware encryption and decryption offload
65 * where the IV/ICV may or may not be generated in hardware.
66 *
67 * Secondly, when the hardware handles fragmentation, the frame handed to
68 * the driver from mac80211 is the MSDU, not the MPDU.
69 *
70 * Finally, for received frames, the driver is able to indicate that it has
71 * filled a radiotap header and put that in front of the frame; if it does
72 * not do so then mac80211 may add this under certain circumstances.
73 */
74
75/**
76 * DOC: mac80211 workqueue
77 *
78 * mac80211 provides its own workqueue for drivers and internal mac80211 use.
79 * The workqueue is a single threaded workqueue and can only be accessed by
80 * helpers for sanity checking. Drivers must ensure all work added onto the
81 * mac80211 workqueue should be cancelled on the driver stop() callback.
82 *
83 * mac80211 will flushed the workqueue upon interface removal and during
84 * suspend.
85 *
86 * All work performed on the mac80211 workqueue must not acquire the RTNL lock.
87 *
88 */
89
90/**
91 * enum ieee80211_max_queues - maximum number of queues
92 *
93 * @IEEE80211_MAX_QUEUES: Maximum number of regular device queues.
94 */
95enum ieee80211_max_queues {
96	IEEE80211_MAX_QUEUES =		4,
97};
98
99/**
100 * struct ieee80211_tx_queue_params - transmit queue configuration
101 *
102 * The information provided in this structure is required for QoS
103 * transmit queue configuration. Cf. IEEE 802.11 7.3.2.29.
104 *
105 * @aifs: arbitration interframe space [0..255]
106 * @cw_min: minimum contention window [a value of the form
107 *	2^n-1 in the range 1..32767]
108 * @cw_max: maximum contention window [like @cw_min]
109 * @txop: maximum burst time in units of 32 usecs, 0 meaning disabled
110 */
111struct ieee80211_tx_queue_params {
112	u16 txop;
113	u16 cw_min;
114	u16 cw_max;
115	u8 aifs;
116};
117
118/**
119 * struct ieee80211_tx_queue_stats - transmit queue statistics
120 *
121 * @len: number of packets in queue
122 * @limit: queue length limit
123 * @count: number of frames sent
124 */
125struct ieee80211_tx_queue_stats {
126	unsigned int len;
127	unsigned int limit;
128	unsigned int count;
129};
130
131struct ieee80211_low_level_stats {
132	unsigned int dot11ACKFailureCount;
133	unsigned int dot11RTSFailureCount;
134	unsigned int dot11FCSErrorCount;
135	unsigned int dot11RTSSuccessCount;
136};
137
138/**
139 * enum ieee80211_bss_change - BSS change notification flags
140 *
141 * These flags are used with the bss_info_changed() callback
142 * to indicate which BSS parameter changed.
143 *
144 * @BSS_CHANGED_ASSOC: association status changed (associated/disassociated),
145 *	also implies a change in the AID.
146 * @BSS_CHANGED_ERP_CTS_PROT: CTS protection changed
147 * @BSS_CHANGED_ERP_PREAMBLE: preamble changed
148 * @BSS_CHANGED_ERP_SLOT: slot timing changed
149 * @BSS_CHANGED_HT: 802.11n parameters changed
150 * @BSS_CHANGED_BASIC_RATES: Basic rateset changed
151 * @BSS_CHANGED_BEACON_INT: Beacon interval changed
152 * @BSS_CHANGED_BSSID: BSSID changed, for whatever
153 *	reason (IBSS and managed mode)
154 * @BSS_CHANGED_BEACON: Beacon data changed, retrieve
155 *	new beacon (beaconing modes)
156 * @BSS_CHANGED_BEACON_ENABLED: Beaconing should be
157 *	enabled/disabled (beaconing modes)
158 */
159enum ieee80211_bss_change {
160	BSS_CHANGED_ASSOC		= 1<<0,
161	BSS_CHANGED_ERP_CTS_PROT	= 1<<1,
162	BSS_CHANGED_ERP_PREAMBLE	= 1<<2,
163	BSS_CHANGED_ERP_SLOT		= 1<<3,
164	BSS_CHANGED_HT                  = 1<<4,
165	BSS_CHANGED_BASIC_RATES		= 1<<5,
166	BSS_CHANGED_BEACON_INT		= 1<<6,
167	BSS_CHANGED_BSSID		= 1<<7,
168	BSS_CHANGED_BEACON		= 1<<8,
169	BSS_CHANGED_BEACON_ENABLED	= 1<<9,
170};
171
172/**
173 * struct ieee80211_bss_conf - holds the BSS's changing parameters
174 *
175 * This structure keeps information about a BSS (and an association
176 * to that BSS) that can change during the lifetime of the BSS.
177 *
178 * @assoc: association status
179 * @aid: association ID number, valid only when @assoc is true
180 * @use_cts_prot: use CTS protection
181 * @use_short_preamble: use 802.11b short preamble;
182 *	if the hardware cannot handle this it must set the
183 *	IEEE80211_HW_2GHZ_SHORT_PREAMBLE_INCAPABLE hardware flag
184 * @use_short_slot: use short slot time (only relevant for ERP);
185 *	if the hardware cannot handle this it must set the
186 *	IEEE80211_HW_2GHZ_SHORT_SLOT_INCAPABLE hardware flag
187 * @dtim_period: num of beacons before the next DTIM, for PSM
188 * @timestamp: beacon timestamp
189 * @beacon_int: beacon interval
190 * @assoc_capability: capabilities taken from assoc resp
191 * @basic_rates: bitmap of basic rates, each bit stands for an
192 *	index into the rate table configured by the driver in
193 *	the current band.
194 * @bssid: The BSSID for this BSS
195 * @enable_beacon: whether beaconing should be enabled or not
196 * @ht_operation_mode: HT operation mode (like in &struct ieee80211_ht_info).
197 *	This field is only valid when the channel type is one of the HT types.
198 */
199struct ieee80211_bss_conf {
200	const u8 *bssid;
201	/* association related data */
202	bool assoc;
203	u16 aid;
204	/* erp related data */
205	bool use_cts_prot;
206	bool use_short_preamble;
207	bool use_short_slot;
208	bool enable_beacon;
209	u8 dtim_period;
210	u16 beacon_int;
211	u16 assoc_capability;
212	u64 timestamp;
213	u32 basic_rates;
214	u16 ht_operation_mode;
215};
216
217/**
218 * enum mac80211_tx_control_flags - flags to describe transmission information/status
219 *
220 * These flags are used with the @flags member of &ieee80211_tx_info.
221 *
222 * @IEEE80211_TX_CTL_REQ_TX_STATUS: require TX status callback for this frame.
223 * @IEEE80211_TX_CTL_ASSIGN_SEQ: The driver has to assign a sequence
224 *	number to this frame, taking care of not overwriting the fragment
225 *	number and increasing the sequence number only when the
226 *	IEEE80211_TX_CTL_FIRST_FRAGMENT flag is set. mac80211 will properly
227 *	assign sequence numbers to QoS-data frames but cannot do so correctly
228 *	for non-QoS-data and management frames because beacons need them from
229 *	that counter as well and mac80211 cannot guarantee proper sequencing.
230 *	If this flag is set, the driver should instruct the hardware to
231 *	assign a sequence number to the frame or assign one itself. Cf. IEEE
232 *	802.11-2007 7.1.3.4.1 paragraph 3. This flag will always be set for
233 *	beacons and always be clear for frames without a sequence number field.
234 * @IEEE80211_TX_CTL_NO_ACK: tell the low level not to wait for an ack
235 * @IEEE80211_TX_CTL_CLEAR_PS_FILT: clear powersave filter for destination
236 *	station
237 * @IEEE80211_TX_CTL_FIRST_FRAGMENT: this is a first fragment of the frame
238 * @IEEE80211_TX_CTL_SEND_AFTER_DTIM: send this frame after DTIM beacon
239 * @IEEE80211_TX_CTL_AMPDU: this frame should be sent as part of an A-MPDU
240 * @IEEE80211_TX_CTL_INJECTED: Frame was injected, internal to mac80211.
241 * @IEEE80211_TX_STAT_TX_FILTERED: The frame was not transmitted
242 *	because the destination STA was in powersave mode. Note that to
243 *	avoid race conditions, the filter must be set by the hardware or
244 *	firmware upon receiving a frame that indicates that the station
245 *	went to sleep (must be done on device to filter frames already on
246 *	the queue) and may only be unset after mac80211 gives the OK for
247 *	that by setting the IEEE80211_TX_CTL_CLEAR_PS_FILT (see above),
248 *	since only then is it guaranteed that no more frames are in the
249 *	hardware queue.
250 * @IEEE80211_TX_STAT_ACK: Frame was acknowledged
251 * @IEEE80211_TX_STAT_AMPDU: The frame was aggregated, so status
252 * 	is for the whole aggregation.
253 * @IEEE80211_TX_STAT_AMPDU_NO_BACK: no block ack was returned,
254 * 	so consider using block ack request (BAR).
255 * @IEEE80211_TX_CTL_RATE_CTRL_PROBE: internal to mac80211, can be
256 *	set by rate control algorithms to indicate probe rate, will
257 *	be cleared for fragmented frames (except on the last fragment)
258 * @IEEE80211_TX_INTFL_RCALGO: mac80211 internal flag, do not test or
259 *	set this flag in the driver; indicates that the rate control
260 *	algorithm was used and should be notified of TX status
261 * @IEEE80211_TX_INTFL_NEED_TXPROCESSING: completely internal to mac80211,
262 *	used to indicate that a pending frame requires TX processing before
263 *	it can be sent out.
264 * @IEEE80211_TX_INTFL_RETRIED: completely internal to mac80211,
265 *	used to indicate that a frame was already retried due to PS
266 * @IEEE80211_TX_INTFL_DONT_ENCRYPT: completely internal to mac80211,
267 *	used to indicate frame should not be encrypted
268 * @IEEE80211_TX_CTL_PSPOLL_RESPONSE: (internal?)
269 *	This frame is a response to a PS-poll frame and should be sent
270 *	although the station is in powersave mode.
271 * @IEEE80211_TX_CTL_MORE_FRAMES: More frames will be passed to the
272 *	transmit function after the current frame, this can be used
273 *	by drivers to kick the DMA queue only if unset or when the
274 *	queue gets full.
275 */
276enum mac80211_tx_control_flags {
277	IEEE80211_TX_CTL_REQ_TX_STATUS		= BIT(0),
278	IEEE80211_TX_CTL_ASSIGN_SEQ		= BIT(1),
279	IEEE80211_TX_CTL_NO_ACK			= BIT(2),
280	IEEE80211_TX_CTL_CLEAR_PS_FILT		= BIT(3),
281	IEEE80211_TX_CTL_FIRST_FRAGMENT		= BIT(4),
282	IEEE80211_TX_CTL_SEND_AFTER_DTIM	= BIT(5),
283	IEEE80211_TX_CTL_AMPDU			= BIT(6),
284	IEEE80211_TX_CTL_INJECTED		= BIT(7),
285	IEEE80211_TX_STAT_TX_FILTERED		= BIT(8),
286	IEEE80211_TX_STAT_ACK			= BIT(9),
287	IEEE80211_TX_STAT_AMPDU			= BIT(10),
288	IEEE80211_TX_STAT_AMPDU_NO_BACK		= BIT(11),
289	IEEE80211_TX_CTL_RATE_CTRL_PROBE	= BIT(12),
290	IEEE80211_TX_INTFL_RCALGO		= BIT(13),
291	IEEE80211_TX_INTFL_NEED_TXPROCESSING	= BIT(14),
292	IEEE80211_TX_INTFL_RETRIED		= BIT(15),
293	IEEE80211_TX_INTFL_DONT_ENCRYPT		= BIT(16),
294	IEEE80211_TX_CTL_PSPOLL_RESPONSE	= BIT(17),
295	IEEE80211_TX_CTL_MORE_FRAMES		= BIT(18),
296};
297
298/**
299 * enum mac80211_rate_control_flags - per-rate flags set by the
300 *	Rate Control algorithm.
301 *
302 * These flags are set by the Rate control algorithm for each rate during tx,
303 * in the @flags member of struct ieee80211_tx_rate.
304 *
305 * @IEEE80211_TX_RC_USE_RTS_CTS: Use RTS/CTS exchange for this rate.
306 * @IEEE80211_TX_RC_USE_CTS_PROTECT: CTS-to-self protection is required.
307 *	This is set if the current BSS requires ERP protection.
308 * @IEEE80211_TX_RC_USE_SHORT_PREAMBLE: Use short preamble.
309 * @IEEE80211_TX_RC_MCS: HT rate.
310 * @IEEE80211_TX_RC_GREEN_FIELD: Indicates whether this rate should be used in
311 *	Greenfield mode.
312 * @IEEE80211_TX_RC_40_MHZ_WIDTH: Indicates if the Channel Width should be 40 MHz.
313 * @IEEE80211_TX_RC_DUP_DATA: The frame should be transmitted on both of the
314 *	adjacent 20 MHz channels, if the current channel type is
315 *	NL80211_CHAN_HT40MINUS or NL80211_CHAN_HT40PLUS.
316 * @IEEE80211_TX_RC_SHORT_GI: Short Guard interval should be used for this rate.
317 */
318enum mac80211_rate_control_flags {
319	IEEE80211_TX_RC_USE_RTS_CTS		= BIT(0),
320	IEEE80211_TX_RC_USE_CTS_PROTECT		= BIT(1),
321	IEEE80211_TX_RC_USE_SHORT_PREAMBLE	= BIT(2),
322
323	/* rate index is an MCS rate number instead of an index */
324	IEEE80211_TX_RC_MCS			= BIT(3),
325	IEEE80211_TX_RC_GREEN_FIELD		= BIT(4),
326	IEEE80211_TX_RC_40_MHZ_WIDTH		= BIT(5),
327	IEEE80211_TX_RC_DUP_DATA		= BIT(6),
328	IEEE80211_TX_RC_SHORT_GI		= BIT(7),
329};
330
331
332/* there are 40 bytes if you don't need the rateset to be kept */
333#define IEEE80211_TX_INFO_DRIVER_DATA_SIZE 40
334
335/* if you do need the rateset, then you have less space */
336#define IEEE80211_TX_INFO_RATE_DRIVER_DATA_SIZE 24
337
338/* maximum number of rate stages */
339#define IEEE80211_TX_MAX_RATES	5
340
341/**
342 * struct ieee80211_tx_rate - rate selection/status
343 *
344 * @idx: rate index to attempt to send with
345 * @flags: rate control flags (&enum mac80211_rate_control_flags)
346 * @count: number of tries in this rate before going to the next rate
347 *
348 * A value of -1 for @idx indicates an invalid rate and, if used
349 * in an array of retry rates, that no more rates should be tried.
350 *
351 * When used for transmit status reporting, the driver should
352 * always report the rate along with the flags it used.
353 *
354 * &struct ieee80211_tx_info contains an array of these structs
355 * in the control information, and it will be filled by the rate
356 * control algorithm according to what should be sent. For example,
357 * if this array contains, in the format { <idx>, <count> } the
358 * information
359 *    { 3, 2 }, { 2, 2 }, { 1, 4 }, { -1, 0 }, { -1, 0 }
360 * then this means that the frame should be transmitted
361 * up to twice at rate 3, up to twice at rate 2, and up to four
362 * times at rate 1 if it doesn't get acknowledged. Say it gets
363 * acknowledged by the peer after the fifth attempt, the status
364 * information should then contain
365 *   { 3, 2 }, { 2, 2 }, { 1, 1 }, { -1, 0 } ...
366 * since it was transmitted twice at rate 3, twice at rate 2
367 * and once at rate 1 after which we received an acknowledgement.
368 */
369struct ieee80211_tx_rate {
370	s8 idx;
371	u8 count;
372	u8 flags;
373} __attribute__((packed));
374
375/**
376 * struct ieee80211_tx_info - skb transmit information
377 *
378 * This structure is placed in skb->cb for three uses:
379 *  (1) mac80211 TX control - mac80211 tells the driver what to do
380 *  (2) driver internal use (if applicable)
381 *  (3) TX status information - driver tells mac80211 what happened
382 *
383 * The TX control's sta pointer is only valid during the ->tx call,
384 * it may be NULL.
385 *
386 * @flags: transmit info flags, defined above
387 * @band: the band to transmit on (use for checking for races)
388 * @antenna_sel_tx: antenna to use, 0 for automatic diversity
389 * @pad: padding, ignore
390 * @control: union for control data
391 * @status: union for status data
392 * @driver_data: array of driver_data pointers
393 * @ampdu_ack_len: number of acked aggregated frames.
394 * 	relevant only if IEEE80211_TX_STATUS_AMPDU was set.
395 * @ampdu_ack_map: block ack bit map for the aggregation.
396 * 	relevant only if IEEE80211_TX_STATUS_AMPDU was set.
397 * @ampdu_len: number of aggregated frames.
398 * 	relevant only if IEEE80211_TX_STATUS_AMPDU was set.
399 * @ack_signal: signal strength of the ACK frame
400 */
401struct ieee80211_tx_info {
402	/* common information */
403	u32 flags;
404	u8 band;
405
406	u8 antenna_sel_tx;
407
408	/* 2 byte hole */
409	u8 pad[2];
410
411	union {
412		struct {
413			union {
414				/* rate control */
415				struct {
416					struct ieee80211_tx_rate rates[
417						IEEE80211_TX_MAX_RATES];
418					s8 rts_cts_rate_idx;
419				};
420				/* only needed before rate control */
421				unsigned long jiffies;
422			};
423			/* NB: vif can be NULL for injected frames */
424			struct ieee80211_vif *vif;
425			struct ieee80211_key_conf *hw_key;
426			struct ieee80211_sta *sta;
427		} control;
428		struct {
429			struct ieee80211_tx_rate rates[IEEE80211_TX_MAX_RATES];
430			u8 ampdu_ack_len;
431			u64 ampdu_ack_map;
432			int ack_signal;
433			u8 ampdu_len;
434			/* 7 bytes free */
435		} status;
436		struct {
437			struct ieee80211_tx_rate driver_rates[
438				IEEE80211_TX_MAX_RATES];
439			void *rate_driver_data[
440				IEEE80211_TX_INFO_RATE_DRIVER_DATA_SIZE / sizeof(void *)];
441		};
442		void *driver_data[
443			IEEE80211_TX_INFO_DRIVER_DATA_SIZE / sizeof(void *)];
444	};
445};
446
447static inline struct ieee80211_tx_info *IEEE80211_SKB_CB(struct sk_buff *skb)
448{
449	return (struct ieee80211_tx_info *)skb->cb;
450}
451
452static inline struct ieee80211_rx_status *IEEE80211_SKB_RXCB(struct sk_buff *skb)
453{
454	return (struct ieee80211_rx_status *)skb->cb;
455}
456
457/**
458 * ieee80211_tx_info_clear_status - clear TX status
459 *
460 * @info: The &struct ieee80211_tx_info to be cleared.
461 *
462 * When the driver passes an skb back to mac80211, it must report
463 * a number of things in TX status. This function clears everything
464 * in the TX status but the rate control information (it does clear
465 * the count since you need to fill that in anyway).
466 *
467 * NOTE: You can only use this function if you do NOT use
468 *	 info->driver_data! Use info->rate_driver_data
469 *	 instead if you need only the less space that allows.
470 */
471static inline void
472ieee80211_tx_info_clear_status(struct ieee80211_tx_info *info)
473{
474	int i;
475
476	BUILD_BUG_ON(offsetof(struct ieee80211_tx_info, status.rates) !=
477		     offsetof(struct ieee80211_tx_info, control.rates));
478	BUILD_BUG_ON(offsetof(struct ieee80211_tx_info, status.rates) !=
479		     offsetof(struct ieee80211_tx_info, driver_rates));
480	BUILD_BUG_ON(offsetof(struct ieee80211_tx_info, status.rates) != 8);
481	/* clear the rate counts */
482	for (i = 0; i < IEEE80211_TX_MAX_RATES; i++)
483		info->status.rates[i].count = 0;
484
485	BUILD_BUG_ON(
486	    offsetof(struct ieee80211_tx_info, status.ampdu_ack_len) != 23);
487	memset(&info->status.ampdu_ack_len, 0,
488	       sizeof(struct ieee80211_tx_info) -
489	       offsetof(struct ieee80211_tx_info, status.ampdu_ack_len));
490}
491
492
493/**
494 * enum mac80211_rx_flags - receive flags
495 *
496 * These flags are used with the @flag member of &struct ieee80211_rx_status.
497 * @RX_FLAG_MMIC_ERROR: Michael MIC error was reported on this frame.
498 *	Use together with %RX_FLAG_MMIC_STRIPPED.
499 * @RX_FLAG_DECRYPTED: This frame was decrypted in hardware.
500 * @RX_FLAG_MMIC_STRIPPED: the Michael MIC is stripped off this frame,
501 *	verification has been done by the hardware.
502 * @RX_FLAG_IV_STRIPPED: The IV/ICV are stripped from this frame.
503 *	If this flag is set, the stack cannot do any replay detection
504 *	hence the driver or hardware will have to do that.
505 * @RX_FLAG_FAILED_FCS_CRC: Set this flag if the FCS check failed on
506 *	the frame.
507 * @RX_FLAG_FAILED_PLCP_CRC: Set this flag if the PCLP check failed on
508 *	the frame.
509 * @RX_FLAG_TSFT: The timestamp passed in the RX status (@mactime field)
510 *	is valid. This is useful in monitor mode and necessary for beacon frames
511 *	to enable IBSS merging.
512 * @RX_FLAG_SHORTPRE: Short preamble was used for this frame
513 * @RX_FLAG_HT: HT MCS was used and rate_idx is MCS index
514 * @RX_FLAG_40MHZ: HT40 (40 MHz) was used
515 * @RX_FLAG_SHORT_GI: Short guard interval was used
516 * @RX_FLAG_INTERNAL_CMTR: set internally after frame was reported
517 *	on cooked monitor to avoid double-reporting it for multiple
518 *	virtual interfaces
519 */
520enum mac80211_rx_flags {
521	RX_FLAG_MMIC_ERROR	= 1<<0,
522	RX_FLAG_DECRYPTED	= 1<<1,
523	RX_FLAG_MMIC_STRIPPED	= 1<<3,
524	RX_FLAG_IV_STRIPPED	= 1<<4,
525	RX_FLAG_FAILED_FCS_CRC	= 1<<5,
526	RX_FLAG_FAILED_PLCP_CRC = 1<<6,
527	RX_FLAG_TSFT		= 1<<7,
528	RX_FLAG_SHORTPRE	= 1<<8,
529	RX_FLAG_HT		= 1<<9,
530	RX_FLAG_40MHZ		= 1<<10,
531	RX_FLAG_SHORT_GI	= 1<<11,
532	RX_FLAG_INTERNAL_CMTR	= 1<<12,
533};
534
535/**
536 * struct ieee80211_rx_status - receive status
537 *
538 * The low-level driver should provide this information (the subset
539 * supported by hardware) to the 802.11 code with each received
540 * frame, in the skb's control buffer (cb).
541 *
542 * @mactime: value in microseconds of the 64-bit Time Synchronization Function
543 * 	(TSF) timer when the first data symbol (MPDU) arrived at the hardware.
544 * @band: the active band when this frame was received
545 * @freq: frequency the radio was tuned to when receiving this frame, in MHz
546 * @signal: signal strength when receiving this frame, either in dBm, in dB or
547 *	unspecified depending on the hardware capabilities flags
548 *	@IEEE80211_HW_SIGNAL_*
549 * @noise: noise when receiving this frame, in dBm.
550 * @qual: overall signal quality indication, in percent (0-100).
551 * @antenna: antenna used
552 * @rate_idx: index of data rate into band's supported rates or MCS index if
553 *	HT rates are use (RX_FLAG_HT)
554 * @flag: %RX_FLAG_*
555 */
556struct ieee80211_rx_status {
557	u64 mactime;
558	enum ieee80211_band band;
559	int freq;
560	int signal;
561	int noise;
562	int __deprecated qual;
563	int antenna;
564	int rate_idx;
565	int flag;
566};
567
568/**
569 * enum ieee80211_conf_flags - configuration flags
570 *
571 * Flags to define PHY configuration options
572 *
573 * @IEEE80211_CONF_MONITOR: there's a monitor interface present -- use this
574 *	to determine for example whether to calculate timestamps for packets
575 *	or not, do not use instead of filter flags!
576 * @IEEE80211_CONF_PS: Enable 802.11 power save mode (managed mode only)
577 * @IEEE80211_CONF_IDLE: The device is running, but idle; if the flag is set
578 *	the driver should be prepared to handle configuration requests but
579 *	may turn the device off as much as possible. Typically, this flag will
580 *	be set when an interface is set UP but not associated or scanning, but
581 *	it can also be unset in that case when monitor interfaces are active.
582 */
583enum ieee80211_conf_flags {
584	IEEE80211_CONF_MONITOR		= (1<<0),
585	IEEE80211_CONF_PS		= (1<<1),
586	IEEE80211_CONF_IDLE		= (1<<2),
587};
588
589
590/**
591 * enum ieee80211_conf_changed - denotes which configuration changed
592 *
593 * @IEEE80211_CONF_CHANGE_LISTEN_INTERVAL: the listen interval changed
594 * @IEEE80211_CONF_CHANGE_MONITOR: the monitor flag changed
595 * @IEEE80211_CONF_CHANGE_PS: the PS flag or dynamic PS timeout changed
596 * @IEEE80211_CONF_CHANGE_POWER: the TX power changed
597 * @IEEE80211_CONF_CHANGE_CHANNEL: the channel/channel_type changed
598 * @IEEE80211_CONF_CHANGE_RETRY_LIMITS: retry limits changed
599 * @IEEE80211_CONF_CHANGE_IDLE: Idle flag changed
600 * @IEEE80211_CONF_CHANGE_SMPS: Spatial multiplexing powersave mode changed
601 */
602enum ieee80211_conf_changed {
603	IEEE80211_CONF_CHANGE_SMPS		= BIT(1),
604	IEEE80211_CONF_CHANGE_LISTEN_INTERVAL	= BIT(2),
605	IEEE80211_CONF_CHANGE_MONITOR		= BIT(3),
606	IEEE80211_CONF_CHANGE_PS		= BIT(4),
607	IEEE80211_CONF_CHANGE_POWER		= BIT(5),
608	IEEE80211_CONF_CHANGE_CHANNEL		= BIT(6),
609	IEEE80211_CONF_CHANGE_RETRY_LIMITS	= BIT(7),
610	IEEE80211_CONF_CHANGE_IDLE		= BIT(8),
611};
612
613/**
614 * enum ieee80211_smps_mode - spatial multiplexing power save mode
615 *
616 * @
617 */
618enum ieee80211_smps_mode {
619	IEEE80211_SMPS_AUTOMATIC,
620	IEEE80211_SMPS_OFF,
621	IEEE80211_SMPS_STATIC,
622	IEEE80211_SMPS_DYNAMIC,
623
624	/* keep last */
625	IEEE80211_SMPS_NUM_MODES,
626};
627
628/**
629 * struct ieee80211_conf - configuration of the device
630 *
631 * This struct indicates how the driver shall configure the hardware.
632 *
633 * @flags: configuration flags defined above
634 *
635 * @listen_interval: listen interval in units of beacon interval
636 * @max_sleep_period: the maximum number of beacon intervals to sleep for
637 *	before checking the beacon for a TIM bit (managed mode only); this
638 *	value will be only achievable between DTIM frames, the hardware
639 *	needs to check for the multicast traffic bit in DTIM beacons.
640 *	This variable is valid only when the CONF_PS flag is set.
641 * @dynamic_ps_timeout: The dynamic powersave timeout (in ms), see the
642 *	powersave documentation below. This variable is valid only when
643 *	the CONF_PS flag is set.
644 *
645 * @power_level: requested transmit power (in dBm)
646 *
647 * @channel: the channel to tune to
648 * @channel_type: the channel (HT) type
649 *
650 * @long_frame_max_tx_count: Maximum number of transmissions for a "long" frame
651 *    (a frame not RTS protected), called "dot11LongRetryLimit" in 802.11,
652 *    but actually means the number of transmissions not the number of retries
653 * @short_frame_max_tx_count: Maximum number of transmissions for a "short"
654 *    frame, called "dot11ShortRetryLimit" in 802.11, but actually means the
655 *    number of transmissions not the number of retries
656 *
657 * @smps_mode: spatial multiplexing powersave mode; note that
658 *	%IEEE80211_SMPS_STATIC is used when the device is not
659 *	configured for an HT channel
660 */
661struct ieee80211_conf {
662	u32 flags;
663	int power_level, dynamic_ps_timeout;
664	int max_sleep_period;
665
666	u16 listen_interval;
667
668	u8 long_frame_max_tx_count, short_frame_max_tx_count;
669
670	struct ieee80211_channel *channel;
671	enum nl80211_channel_type channel_type;
672	enum ieee80211_smps_mode smps_mode;
673};
674
675/**
676 * struct ieee80211_vif - per-interface data
677 *
678 * Data in this structure is continually present for driver
679 * use during the life of a virtual interface.
680 *
681 * @type: type of this virtual interface
682 * @bss_conf: BSS configuration for this interface, either our own
683 *	or the BSS we're associated to
684 * @addr: address of this interface
685 * @drv_priv: data area for driver use, will always be aligned to
686 *	sizeof(void *).
687 */
688struct ieee80211_vif {
689	enum nl80211_iftype type;
690	struct ieee80211_bss_conf bss_conf;
691	u8 addr[ETH_ALEN];
692	/* must be last */
693	u8 drv_priv[0] __attribute__((__aligned__(sizeof(void *))));
694};
695
696static inline bool ieee80211_vif_is_mesh(struct ieee80211_vif *vif)
697{
698#ifdef CONFIG_MAC80211_MESH
699	return vif->type == NL80211_IFTYPE_MESH_POINT;
700#endif
701	return false;
702}
703
704/**
705 * struct ieee80211_if_init_conf - initial configuration of an interface
706 *
707 * @vif: pointer to a driver-use per-interface structure. The pointer
708 *	itself is also used for various functions including
709 *	ieee80211_beacon_get() and ieee80211_get_buffered_bc().
710 * @type: one of &enum nl80211_iftype constants. Determines the type of
711 *	added/removed interface.
712 * @mac_addr: pointer to MAC address of the interface. This pointer is valid
713 *	until the interface is removed (i.e. it cannot be used after
714 *	remove_interface() callback was called for this interface).
715 *
716 * This structure is used in add_interface() and remove_interface()
717 * callbacks of &struct ieee80211_hw.
718 *
719 * When you allow multiple interfaces to be added to your PHY, take care
720 * that the hardware can actually handle multiple MAC addresses. However,
721 * also take care that when there's no interface left with mac_addr != %NULL
722 * you remove the MAC address from the device to avoid acknowledging packets
723 * in pure monitor mode.
724 */
725struct ieee80211_if_init_conf {
726	enum nl80211_iftype type;
727	struct ieee80211_vif *vif;
728	void *mac_addr;
729};
730
731/**
732 * enum ieee80211_key_alg - key algorithm
733 * @ALG_WEP: WEP40 or WEP104
734 * @ALG_TKIP: TKIP
735 * @ALG_CCMP: CCMP (AES)
736 * @ALG_AES_CMAC: AES-128-CMAC
737 */
738enum ieee80211_key_alg {
739	ALG_WEP,
740	ALG_TKIP,
741	ALG_CCMP,
742	ALG_AES_CMAC,
743};
744
745/**
746 * enum ieee80211_key_flags - key flags
747 *
748 * These flags are used for communication about keys between the driver
749 * and mac80211, with the @flags parameter of &struct ieee80211_key_conf.
750 *
751 * @IEEE80211_KEY_FLAG_WMM_STA: Set by mac80211, this flag indicates
752 *	that the STA this key will be used with could be using QoS.
753 * @IEEE80211_KEY_FLAG_GENERATE_IV: This flag should be set by the
754 *	driver to indicate that it requires IV generation for this
755 *	particular key.
756 * @IEEE80211_KEY_FLAG_GENERATE_MMIC: This flag should be set by
757 *	the driver for a TKIP key if it requires Michael MIC
758 *	generation in software.
759 * @IEEE80211_KEY_FLAG_PAIRWISE: Set by mac80211, this flag indicates
760 *	that the key is pairwise rather then a shared key.
761 * @IEEE80211_KEY_FLAG_SW_MGMT: This flag should be set by the driver for a
762 *	CCMP key if it requires CCMP encryption of management frames (MFP) to
763 *	be done in software.
764 */
765enum ieee80211_key_flags {
766	IEEE80211_KEY_FLAG_WMM_STA	= 1<<0,
767	IEEE80211_KEY_FLAG_GENERATE_IV	= 1<<1,
768	IEEE80211_KEY_FLAG_GENERATE_MMIC= 1<<2,
769	IEEE80211_KEY_FLAG_PAIRWISE	= 1<<3,
770	IEEE80211_KEY_FLAG_SW_MGMT	= 1<<4,
771};
772
773/**
774 * struct ieee80211_key_conf - key information
775 *
776 * This key information is given by mac80211 to the driver by
777 * the set_key() callback in &struct ieee80211_ops.
778 *
779 * @hw_key_idx: To be set by the driver, this is the key index the driver
780 *	wants to be given when a frame is transmitted and needs to be
781 *	encrypted in hardware.
782 * @alg: The key algorithm.
783 * @flags: key flags, see &enum ieee80211_key_flags.
784 * @keyidx: the key index (0-3)
785 * @keylen: key material length
786 * @key: key material. For ALG_TKIP the key is encoded as a 256-bit (32 byte)
787 * 	data block:
788 * 	- Temporal Encryption Key (128 bits)
789 * 	- Temporal Authenticator Tx MIC Key (64 bits)
790 * 	- Temporal Authenticator Rx MIC Key (64 bits)
791 * @icv_len: The ICV length for this key type
792 * @iv_len: The IV length for this key type
793 */
794struct ieee80211_key_conf {
795	enum ieee80211_key_alg alg;
796	u8 icv_len;
797	u8 iv_len;
798	u8 hw_key_idx;
799	u8 flags;
800	s8 keyidx;
801	u8 keylen;
802	u8 key[0];
803};
804
805/**
806 * enum set_key_cmd - key command
807 *
808 * Used with the set_key() callback in &struct ieee80211_ops, this
809 * indicates whether a key is being removed or added.
810 *
811 * @SET_KEY: a key is set
812 * @DISABLE_KEY: a key must be disabled
813 */
814enum set_key_cmd {
815	SET_KEY, DISABLE_KEY,
816};
817
818/**
819 * struct ieee80211_sta - station table entry
820 *
821 * A station table entry represents a station we are possibly
822 * communicating with. Since stations are RCU-managed in
823 * mac80211, any ieee80211_sta pointer you get access to must
824 * either be protected by rcu_read_lock() explicitly or implicitly,
825 * or you must take good care to not use such a pointer after a
826 * call to your sta_notify callback that removed it.
827 *
828 * @addr: MAC address
829 * @aid: AID we assigned to the station if we're an AP
830 * @supp_rates: Bitmap of supported rates (per band)
831 * @ht_cap: HT capabilities of this STA; restricted to our own TX capabilities
832 * @drv_priv: data area for driver use, will always be aligned to
833 *	sizeof(void *), size is determined in hw information.
834 */
835struct ieee80211_sta {
836	u32 supp_rates[IEEE80211_NUM_BANDS];
837	u8 addr[ETH_ALEN];
838	u16 aid;
839	struct ieee80211_sta_ht_cap ht_cap;
840
841	/* must be last */
842	u8 drv_priv[0] __attribute__((__aligned__(sizeof(void *))));
843};
844
845/**
846 * enum sta_notify_cmd - sta notify command
847 *
848 * Used with the sta_notify() callback in &struct ieee80211_ops, this
849 * indicates addition and removal of a station to station table,
850 * or if a associated station made a power state transition.
851 *
852 * @STA_NOTIFY_ADD: a station was added to the station table
853 * @STA_NOTIFY_REMOVE: a station being removed from the station table
854 * @STA_NOTIFY_SLEEP: a station is now sleeping
855 * @STA_NOTIFY_AWAKE: a sleeping station woke up
856 */
857enum sta_notify_cmd {
858	STA_NOTIFY_ADD, STA_NOTIFY_REMOVE,
859	STA_NOTIFY_SLEEP, STA_NOTIFY_AWAKE,
860};
861
862/**
863 * enum ieee80211_tkip_key_type - get tkip key
864 *
865 * Used by drivers which need to get a tkip key for skb. Some drivers need a
866 * phase 1 key, others need a phase 2 key. A single function allows the driver
867 * to get the key, this enum indicates what type of key is required.
868 *
869 * @IEEE80211_TKIP_P1_KEY: the driver needs a phase 1 key
870 * @IEEE80211_TKIP_P2_KEY: the driver needs a phase 2 key
871 */
872enum ieee80211_tkip_key_type {
873	IEEE80211_TKIP_P1_KEY,
874	IEEE80211_TKIP_P2_KEY,
875};
876
877/**
878 * enum ieee80211_hw_flags - hardware flags
879 *
880 * These flags are used to indicate hardware capabilities to
881 * the stack. Generally, flags here should have their meaning
882 * done in a way that the simplest hardware doesn't need setting
883 * any particular flags. There are some exceptions to this rule,
884 * however, so you are advised to review these flags carefully.
885 *
886 * @IEEE80211_HW_HAS_RATE_CONTROL:
887 *	The hardware or firmware includes rate control, and cannot be
888 *	controlled by the stack. As such, no rate control algorithm
889 *	should be instantiated, and the TX rate reported to userspace
890 *	will be taken from the TX status instead of the rate control
891 *	algorithm.
892 *	Note that this requires that the driver implement a number of
893 *	callbacks so it has the correct information, it needs to have
894 *	the @set_rts_threshold callback and must look at the BSS config
895 *	@use_cts_prot for G/N protection, @use_short_slot for slot
896 *	timing in 2.4 GHz and @use_short_preamble for preambles for
897 *	CCK frames.
898 *
899 * @IEEE80211_HW_RX_INCLUDES_FCS:
900 *	Indicates that received frames passed to the stack include
901 *	the FCS at the end.
902 *
903 * @IEEE80211_HW_HOST_BROADCAST_PS_BUFFERING:
904 *	Some wireless LAN chipsets buffer broadcast/multicast frames
905 *	for power saving stations in the hardware/firmware and others
906 *	rely on the host system for such buffering. This option is used
907 *	to configure the IEEE 802.11 upper layer to buffer broadcast and
908 *	multicast frames when there are power saving stations so that
909 *	the driver can fetch them with ieee80211_get_buffered_bc().
910 *
911 * @IEEE80211_HW_2GHZ_SHORT_SLOT_INCAPABLE:
912 *	Hardware is not capable of short slot operation on the 2.4 GHz band.
913 *
914 * @IEEE80211_HW_2GHZ_SHORT_PREAMBLE_INCAPABLE:
915 *	Hardware is not capable of receiving frames with short preamble on
916 *	the 2.4 GHz band.
917 *
918 * @IEEE80211_HW_SIGNAL_UNSPEC:
919 *	Hardware can provide signal values but we don't know its units. We
920 *	expect values between 0 and @max_signal.
921 *	If possible please provide dB or dBm instead.
922 *
923 * @IEEE80211_HW_SIGNAL_DBM:
924 *	Hardware gives signal values in dBm, decibel difference from
925 *	one milliwatt. This is the preferred method since it is standardized
926 *	between different devices. @max_signal does not need to be set.
927 *
928 * @IEEE80211_HW_NOISE_DBM:
929 *	Hardware can provide noise (radio interference) values in units dBm,
930 *      decibel difference from one milliwatt.
931 *
932 * @IEEE80211_HW_SPECTRUM_MGMT:
933 * 	Hardware supports spectrum management defined in 802.11h
934 * 	Measurement, Channel Switch, Quieting, TPC
935 *
936 * @IEEE80211_HW_AMPDU_AGGREGATION:
937 *	Hardware supports 11n A-MPDU aggregation.
938 *
939 * @IEEE80211_HW_SUPPORTS_PS:
940 *	Hardware has power save support (i.e. can go to sleep).
941 *
942 * @IEEE80211_HW_PS_NULLFUNC_STACK:
943 *	Hardware requires nullfunc frame handling in stack, implies
944 *	stack support for dynamic PS.
945 *
946 * @IEEE80211_HW_SUPPORTS_DYNAMIC_PS:
947 *	Hardware has support for dynamic PS.
948 *
949 * @IEEE80211_HW_MFP_CAPABLE:
950 *	Hardware supports management frame protection (MFP, IEEE 802.11w).
951 *
952 * @IEEE80211_HW_BEACON_FILTER:
953 *	Hardware supports dropping of irrelevant beacon frames to
954 *	avoid waking up cpu.
955 *
956 * @IEEE80211_HW_SUPPORTS_STATIC_SMPS:
957 *	Hardware supports static spatial multiplexing powersave,
958 *	ie. can turn off all but one chain even on HT connections
959 *	that should be using more chains.
960 *
961 * @IEEE80211_HW_SUPPORTS_DYNAMIC_SMPS:
962 *	Hardware supports dynamic spatial multiplexing powersave,
963 *	ie. can turn off all but one chain and then wake the rest
964 *	up as required after, for example, rts/cts handshake.
965 */
966enum ieee80211_hw_flags {
967	IEEE80211_HW_HAS_RATE_CONTROL			= 1<<0,
968	IEEE80211_HW_RX_INCLUDES_FCS			= 1<<1,
969	IEEE80211_HW_HOST_BROADCAST_PS_BUFFERING	= 1<<2,
970	IEEE80211_HW_2GHZ_SHORT_SLOT_INCAPABLE		= 1<<3,
971	IEEE80211_HW_2GHZ_SHORT_PREAMBLE_INCAPABLE	= 1<<4,
972	IEEE80211_HW_SIGNAL_UNSPEC			= 1<<5,
973	IEEE80211_HW_SIGNAL_DBM				= 1<<6,
974	IEEE80211_HW_NOISE_DBM				= 1<<7,
975	IEEE80211_HW_SPECTRUM_MGMT			= 1<<8,
976	IEEE80211_HW_AMPDU_AGGREGATION			= 1<<9,
977	IEEE80211_HW_SUPPORTS_PS			= 1<<10,
978	IEEE80211_HW_PS_NULLFUNC_STACK			= 1<<11,
979	IEEE80211_HW_SUPPORTS_DYNAMIC_PS		= 1<<12,
980	IEEE80211_HW_MFP_CAPABLE			= 1<<13,
981	IEEE80211_HW_BEACON_FILTER			= 1<<14,
982	IEEE80211_HW_SUPPORTS_STATIC_SMPS		= 1<<15,
983	IEEE80211_HW_SUPPORTS_DYNAMIC_SMPS		= 1<<16,
984};
985
986/**
987 * struct ieee80211_hw - hardware information and state
988 *
989 * This structure contains the configuration and hardware
990 * information for an 802.11 PHY.
991 *
992 * @wiphy: This points to the &struct wiphy allocated for this
993 *	802.11 PHY. You must fill in the @perm_addr and @dev
994 *	members of this structure using SET_IEEE80211_DEV()
995 *	and SET_IEEE80211_PERM_ADDR(). Additionally, all supported
996 *	bands (with channels, bitrates) are registered here.
997 *
998 * @conf: &struct ieee80211_conf, device configuration, don't use.
999 *
1000 * @priv: pointer to private area that was allocated for driver use
1001 *	along with this structure.
1002 *
1003 * @flags: hardware flags, see &enum ieee80211_hw_flags.
1004 *
1005 * @extra_tx_headroom: headroom to reserve in each transmit skb
1006 *	for use by the driver (e.g. for transmit headers.)
1007 *
1008 * @channel_change_time: time (in microseconds) it takes to change channels.
1009 *
1010 * @max_signal: Maximum value for signal (rssi) in RX information, used
1011 *     only when @IEEE80211_HW_SIGNAL_UNSPEC or @IEEE80211_HW_SIGNAL_DB
1012 *
1013 * @max_listen_interval: max listen interval in units of beacon interval
1014 *     that HW supports
1015 *
1016 * @queues: number of available hardware transmit queues for
1017 *	data packets. WMM/QoS requires at least four, these
1018 *	queues need to have configurable access parameters.
1019 *
1020 * @rate_control_algorithm: rate control algorithm for this hardware.
1021 *	If unset (NULL), the default algorithm will be used. Must be
1022 *	set before calling ieee80211_register_hw().
1023 *
1024 * @vif_data_size: size (in bytes) of the drv_priv data area
1025 *	within &struct ieee80211_vif.
1026 * @sta_data_size: size (in bytes) of the drv_priv data area
1027 *	within &struct ieee80211_sta.
1028 *
1029 * @max_rates: maximum number of alternate rate retry stages
1030 * @max_rate_tries: maximum number of tries for each stage
1031 */
1032struct ieee80211_hw {
1033	struct ieee80211_conf conf;
1034	struct wiphy *wiphy;
1035	const char *rate_control_algorithm;
1036	void *priv;
1037	u32 flags;
1038	unsigned int extra_tx_headroom;
1039	int channel_change_time;
1040	int vif_data_size;
1041	int sta_data_size;
1042	u16 queues;
1043	u16 max_listen_interval;
1044	s8 max_signal;
1045	u8 max_rates;
1046	u8 max_rate_tries;
1047};
1048
1049/**
1050 * wiphy_to_ieee80211_hw - return a mac80211 driver hw struct from a wiphy
1051 *
1052 * @wiphy: the &struct wiphy which we want to query
1053 *
1054 * mac80211 drivers can use this to get to their respective
1055 * &struct ieee80211_hw. Drivers wishing to get to their own private
1056 * structure can then access it via hw->priv. Note that mac802111 drivers should
1057 * not use wiphy_priv() to try to get their private driver structure as this
1058 * is already used internally by mac80211.
1059 */
1060struct ieee80211_hw *wiphy_to_ieee80211_hw(struct wiphy *wiphy);
1061
1062/**
1063 * SET_IEEE80211_DEV - set device for 802.11 hardware
1064 *
1065 * @hw: the &struct ieee80211_hw to set the device for
1066 * @dev: the &struct device of this 802.11 device
1067 */
1068static inline void SET_IEEE80211_DEV(struct ieee80211_hw *hw, struct device *dev)
1069{
1070	set_wiphy_dev(hw->wiphy, dev);
1071}
1072
1073/**
1074 * SET_IEEE80211_PERM_ADDR - set the permanent MAC address for 802.11 hardware
1075 *
1076 * @hw: the &struct ieee80211_hw to set the MAC address for
1077 * @addr: the address to set
1078 */
1079static inline void SET_IEEE80211_PERM_ADDR(struct ieee80211_hw *hw, u8 *addr)
1080{
1081	memcpy(hw->wiphy->perm_addr, addr, ETH_ALEN);
1082}
1083
1084static inline struct ieee80211_rate *
1085ieee80211_get_tx_rate(const struct ieee80211_hw *hw,
1086		      const struct ieee80211_tx_info *c)
1087{
1088	if (WARN_ON(c->control.rates[0].idx < 0))
1089		return NULL;
1090	return &hw->wiphy->bands[c->band]->bitrates[c->control.rates[0].idx];
1091}
1092
1093static inline struct ieee80211_rate *
1094ieee80211_get_rts_cts_rate(const struct ieee80211_hw *hw,
1095			   const struct ieee80211_tx_info *c)
1096{
1097	if (c->control.rts_cts_rate_idx < 0)
1098		return NULL;
1099	return &hw->wiphy->bands[c->band]->bitrates[c->control.rts_cts_rate_idx];
1100}
1101
1102static inline struct ieee80211_rate *
1103ieee80211_get_alt_retry_rate(const struct ieee80211_hw *hw,
1104			     const struct ieee80211_tx_info *c, int idx)
1105{
1106	if (c->control.rates[idx + 1].idx < 0)
1107		return NULL;
1108	return &hw->wiphy->bands[c->band]->bitrates[c->control.rates[idx + 1].idx];
1109}
1110
1111/**
1112 * DOC: Hardware crypto acceleration
1113 *
1114 * mac80211 is capable of taking advantage of many hardware
1115 * acceleration designs for encryption and decryption operations.
1116 *
1117 * The set_key() callback in the &struct ieee80211_ops for a given
1118 * device is called to enable hardware acceleration of encryption and
1119 * decryption. The callback takes a @sta parameter that will be NULL
1120 * for default keys or keys used for transmission only, or point to
1121 * the station information for the peer for individual keys.
1122 * Multiple transmission keys with the same key index may be used when
1123 * VLANs are configured for an access point.
1124 *
1125 * When transmitting, the TX control data will use the @hw_key_idx
1126 * selected by the driver by modifying the &struct ieee80211_key_conf
1127 * pointed to by the @key parameter to the set_key() function.
1128 *
1129 * The set_key() call for the %SET_KEY command should return 0 if
1130 * the key is now in use, -%EOPNOTSUPP or -%ENOSPC if it couldn't be
1131 * added; if you return 0 then hw_key_idx must be assigned to the
1132 * hardware key index, you are free to use the full u8 range.
1133 *
1134 * When the cmd is %DISABLE_KEY then it must succeed.
1135 *
1136 * Note that it is permissible to not decrypt a frame even if a key
1137 * for it has been uploaded to hardware, the stack will not make any
1138 * decision based on whether a key has been uploaded or not but rather
1139 * based on the receive flags.
1140 *
1141 * The &struct ieee80211_key_conf structure pointed to by the @key
1142 * parameter is guaranteed to be valid until another call to set_key()
1143 * removes it, but it can only be used as a cookie to differentiate
1144 * keys.
1145 *
1146 * In TKIP some HW need to be provided a phase 1 key, for RX decryption
1147 * acceleration (i.e. iwlwifi). Those drivers should provide update_tkip_key
1148 * handler.
1149 * The update_tkip_key() call updates the driver with the new phase 1 key.
1150 * This happens everytime the iv16 wraps around (every 65536 packets). The
1151 * set_key() call will happen only once for each key (unless the AP did
1152 * rekeying), it will not include a valid phase 1 key. The valid phase 1 key is
1153 * provided by update_tkip_key only. The trigger that makes mac80211 call this
1154 * handler is software decryption with wrap around of iv16.
1155 */
1156
1157/**
1158 * DOC: Powersave support
1159 *
1160 * mac80211 has support for various powersave implementations.
1161 *
1162 * First, it can support hardware that handles all powersaving by
1163 * itself, such hardware should simply set the %IEEE80211_HW_SUPPORTS_PS
1164 * hardware flag. In that case, it will be told about the desired
1165 * powersave mode depending on the association status, and the driver
1166 * must take care of sending nullfunc frames when necessary, i.e. when
1167 * entering and leaving powersave mode. The driver is required to look at
1168 * the AID in beacons and signal to the AP that it woke up when it finds
1169 * traffic directed to it. This mode supports dynamic PS by simply
1170 * enabling/disabling PS.
1171 *
1172 * Additionally, such hardware may set the %IEEE80211_HW_SUPPORTS_DYNAMIC_PS
1173 * flag to indicate that it can support dynamic PS mode itself (see below).
1174 *
1175 * Other hardware designs cannot send nullfunc frames by themselves and also
1176 * need software support for parsing the TIM bitmap. This is also supported
1177 * by mac80211 by combining the %IEEE80211_HW_SUPPORTS_PS and
1178 * %IEEE80211_HW_PS_NULLFUNC_STACK flags. The hardware is of course still
1179 * required to pass up beacons. The hardware is still required to handle
1180 * waking up for multicast traffic; if it cannot the driver must handle that
1181 * as best as it can, mac80211 is too slow.
1182 *
1183 * Dynamic powersave mode is an extension to normal powersave mode in which
1184 * the hardware stays awake for a user-specified period of time after sending
1185 * a frame so that reply frames need not be buffered and therefore delayed
1186 * to the next wakeup. This can either be supported by hardware, in which case
1187 * the driver needs to look at the @dynamic_ps_timeout hardware configuration
1188 * value, or by the stack if all nullfunc handling is in the stack.
1189 */
1190
1191/**
1192 * DOC: Beacon filter support
1193 *
1194 * Some hardware have beacon filter support to reduce host cpu wakeups
1195 * which will reduce system power consumption. It usuallly works so that
1196 * the firmware creates a checksum of the beacon but omits all constantly
1197 * changing elements (TSF, TIM etc). Whenever the checksum changes the
1198 * beacon is forwarded to the host, otherwise it will be just dropped. That
1199 * way the host will only receive beacons where some relevant information
1200 * (for example ERP protection or WMM settings) have changed.
1201 *
1202 * Beacon filter support is advertised with the %IEEE80211_HW_BEACON_FILTER
1203 * hardware capability. The driver needs to enable beacon filter support
1204 * whenever power save is enabled, that is %IEEE80211_CONF_PS is set. When
1205 * power save is enabled, the stack will not check for beacon loss and the
1206 * driver needs to notify about loss of beacons with ieee80211_beacon_loss().
1207 *
1208 * The time (or number of beacons missed) until the firmware notifies the
1209 * driver of a beacon loss event (which in turn causes the driver to call
1210 * ieee80211_beacon_loss()) should be configurable and will be controlled
1211 * by mac80211 and the roaming algorithm in the future.
1212 *
1213 * Since there may be constantly changing information elements that nothing
1214 * in the software stack cares about, we will, in the future, have mac80211
1215 * tell the driver which information elements are interesting in the sense
1216 * that we want to see changes in them. This will include
1217 *  - a list of information element IDs
1218 *  - a list of OUIs for the vendor information element
1219 *
1220 * Ideally, the hardware would filter out any beacons without changes in the
1221 * requested elements, but if it cannot support that it may, at the expense
1222 * of some efficiency, filter out only a subset. For example, if the device
1223 * doesn't support checking for OUIs it should pass up all changes in all
1224 * vendor information elements.
1225 *
1226 * Note that change, for the sake of simplification, also includes information
1227 * elements appearing or disappearing from the beacon.
1228 *
1229 * Some hardware supports an "ignore list" instead, just make sure nothing
1230 * that was requested is on the ignore list, and include commonly changing
1231 * information element IDs in the ignore list, for example 11 (BSS load) and
1232 * the various vendor-assigned IEs with unknown contents (128, 129, 133-136,
1233 * 149, 150, 155, 156, 173, 176, 178, 179, 219); for forward compatibility
1234 * it could also include some currently unused IDs.
1235 *
1236 *
1237 * In addition to these capabilities, hardware should support notifying the
1238 * host of changes in the beacon RSSI. This is relevant to implement roaming
1239 * when no traffic is flowing (when traffic is flowing we see the RSSI of
1240 * the received data packets). This can consist in notifying the host when
1241 * the RSSI changes significantly or when it drops below or rises above
1242 * configurable thresholds. In the future these thresholds will also be
1243 * configured by mac80211 (which gets them from userspace) to implement
1244 * them as the roaming algorithm requires.
1245 *
1246 * If the hardware cannot implement this, the driver should ask it to
1247 * periodically pass beacon frames to the host so that software can do the
1248 * signal strength threshold checking.
1249 */
1250
1251/**
1252 * DOC: Spatial multiplexing power save
1253 *
1254 * SMPS (Spatial multiplexing power save) is a mechanism to conserve
1255 * power in an 802.11n implementation. For details on the mechanism
1256 * and rationale, please refer to 802.11 (as amended by 802.11n-2009)
1257 * "11.2.3 SM power save".
1258 *
1259 * The mac80211 implementation is capable of sending action frames
1260 * to update the AP about the station's SMPS mode, and will instruct
1261 * the driver to enter the specific mode. It will also announce the
1262 * requested SMPS mode during the association handshake. Hardware
1263 * support for this feature is required, and can be indicated by
1264 * hardware flags.
1265 *
1266 * The default mode will be "automatic", which nl80211/cfg80211
1267 * defines to be dynamic SMPS in (regular) powersave, and SMPS
1268 * turned off otherwise.
1269 *
1270 * To support this feature, the driver must set the appropriate
1271 * hardware support flags, and handle the SMPS flag to the config()
1272 * operation. It will then with this mechanism be instructed to
1273 * enter the requested SMPS mode while associated to an HT AP.
1274 */
1275
1276/**
1277 * DOC: Frame filtering
1278 *
1279 * mac80211 requires to see many management frames for proper
1280 * operation, and users may want to see many more frames when
1281 * in monitor mode. However, for best CPU usage and power consumption,
1282 * having as few frames as possible percolate through the stack is
1283 * desirable. Hence, the hardware should filter as much as possible.
1284 *
1285 * To achieve this, mac80211 uses filter flags (see below) to tell
1286 * the driver's configure_filter() function which frames should be
1287 * passed to mac80211 and which should be filtered out.
1288 *
1289 * Before configure_filter() is invoked, the prepare_multicast()
1290 * callback is invoked with the parameters @mc_count and @mc_list
1291 * for the combined multicast address list of all virtual interfaces.
1292 * It's use is optional, and it returns a u64 that is passed to
1293 * configure_filter(). Additionally, configure_filter() has the
1294 * arguments @changed_flags telling which flags were changed and
1295 * @total_flags with the new flag states.
1296 *
1297 * If your device has no multicast address filters your driver will
1298 * need to check both the %FIF_ALLMULTI flag and the @mc_count
1299 * parameter to see whether multicast frames should be accepted
1300 * or dropped.
1301 *
1302 * All unsupported flags in @total_flags must be cleared.
1303 * Hardware does not support a flag if it is incapable of _passing_
1304 * the frame to the stack. Otherwise the driver must ignore
1305 * the flag, but not clear it.
1306 * You must _only_ clear the flag (announce no support for the
1307 * flag to mac80211) if you are not able to pass the packet type
1308 * to the stack (so the hardware always filters it).
1309 * So for example, you should clear @FIF_CONTROL, if your hardware
1310 * always filters control frames. If your hardware always passes
1311 * control frames to the kernel and is incapable of filtering them,
1312 * you do _not_ clear the @FIF_CONTROL flag.
1313 * This rule applies to all other FIF flags as well.
1314 */
1315
1316/**
1317 * enum ieee80211_filter_flags - hardware filter flags
1318 *
1319 * These flags determine what the filter in hardware should be
1320 * programmed to let through and what should not be passed to the
1321 * stack. It is always safe to pass more frames than requested,
1322 * but this has negative impact on power consumption.
1323 *
1324 * @FIF_PROMISC_IN_BSS: promiscuous mode within your BSS,
1325 *	think of the BSS as your network segment and then this corresponds
1326 *	to the regular ethernet device promiscuous mode.
1327 *
1328 * @FIF_ALLMULTI: pass all multicast frames, this is used if requested
1329 *	by the user or if the hardware is not capable of filtering by
1330 *	multicast address.
1331 *
1332 * @FIF_FCSFAIL: pass frames with failed FCS (but you need to set the
1333 *	%RX_FLAG_FAILED_FCS_CRC for them)
1334 *
1335 * @FIF_PLCPFAIL: pass frames with failed PLCP CRC (but you need to set
1336 *	the %RX_FLAG_FAILED_PLCP_CRC for them
1337 *
1338 * @FIF_BCN_PRBRESP_PROMISC: This flag is set during scanning to indicate
1339 *	to the hardware that it should not filter beacons or probe responses
1340 *	by BSSID. Filtering them can greatly reduce the amount of processing
1341 *	mac80211 needs to do and the amount of CPU wakeups, so you should
1342 *	honour this flag if possible.
1343 *
1344 * @FIF_CONTROL: pass control frames (except for PS Poll), if PROMISC_IN_BSS
1345 *  is not set then only those addressed to this station.
1346 *
1347 * @FIF_OTHER_BSS: pass frames destined to other BSSes
1348 *
1349 * @FIF_PSPOLL: pass PS Poll frames, if PROMISC_IN_BSS  is not set then only
1350 *  those addressed to this station.
1351 */
1352enum ieee80211_filter_flags {
1353	FIF_PROMISC_IN_BSS	= 1<<0,
1354	FIF_ALLMULTI		= 1<<1,
1355	FIF_FCSFAIL		= 1<<2,
1356	FIF_PLCPFAIL		= 1<<3,
1357	FIF_BCN_PRBRESP_PROMISC	= 1<<4,
1358	FIF_CONTROL		= 1<<5,
1359	FIF_OTHER_BSS		= 1<<6,
1360	FIF_PSPOLL		= 1<<7,
1361};
1362
1363/**
1364 * enum ieee80211_ampdu_mlme_action - A-MPDU actions
1365 *
1366 * These flags are used with the ampdu_action() callback in
1367 * &struct ieee80211_ops to indicate which action is needed.
1368 *
1369 * Note that drivers MUST be able to deal with a TX aggregation
1370 * session being stopped even before they OK'ed starting it by
1371 * calling ieee80211_start_tx_ba_cb(_irqsafe), because the peer
1372 * might receive the addBA frame and send a delBA right away!
1373 *
1374 * @IEEE80211_AMPDU_RX_START: start Rx aggregation
1375 * @IEEE80211_AMPDU_RX_STOP: stop Rx aggregation
1376 * @IEEE80211_AMPDU_TX_START: start Tx aggregation
1377 * @IEEE80211_AMPDU_TX_STOP: stop Tx aggregation
1378 * @IEEE80211_AMPDU_TX_OPERATIONAL: TX aggregation has become operational
1379 */
1380enum ieee80211_ampdu_mlme_action {
1381	IEEE80211_AMPDU_RX_START,
1382	IEEE80211_AMPDU_RX_STOP,
1383	IEEE80211_AMPDU_TX_START,
1384	IEEE80211_AMPDU_TX_STOP,
1385	IEEE80211_AMPDU_TX_OPERATIONAL,
1386};
1387
1388/**
1389 * struct ieee80211_ops - callbacks from mac80211 to the driver
1390 *
1391 * This structure contains various callbacks that the driver may
1392 * handle or, in some cases, must handle, for example to configure
1393 * the hardware to a new channel or to transmit a frame.
1394 *
1395 * @tx: Handler that 802.11 module calls for each transmitted frame.
1396 *	skb contains the buffer starting from the IEEE 802.11 header.
1397 *	The low-level driver should send the frame out based on
1398 *	configuration in the TX control data. This handler should,
1399 *	preferably, never fail and stop queues appropriately, more
1400 *	importantly, however, it must never fail for A-MPDU-queues.
1401 *	This function should return NETDEV_TX_OK except in very
1402 *	limited cases.
1403 *	Must be implemented and atomic.
1404 *
1405 * @start: Called before the first netdevice attached to the hardware
1406 *	is enabled. This should turn on the hardware and must turn on
1407 *	frame reception (for possibly enabled monitor interfaces.)
1408 *	Returns negative error codes, these may be seen in userspace,
1409 *	or zero.
1410 *	When the device is started it should not have a MAC address
1411 *	to avoid acknowledging frames before a non-monitor device
1412 *	is added.
1413 *	Must be implemented.
1414 *
1415 * @stop: Called after last netdevice attached to the hardware
1416 *	is disabled. This should turn off the hardware (at least
1417 *	it must turn off frame reception.)
1418 *	May be called right after add_interface if that rejects
1419 *	an interface. If you added any work onto the mac80211 workqueue
1420 *	you should ensure to cancel it on this callback.
1421 *	Must be implemented.
1422 *
1423 * @add_interface: Called when a netdevice attached to the hardware is
1424 *	enabled. Because it is not called for monitor mode devices, @start
1425 *	and @stop must be implemented.
1426 *	The driver should perform any initialization it needs before
1427 *	the device can be enabled. The initial configuration for the
1428 *	interface is given in the conf parameter.
1429 *	The callback may refuse to add an interface by returning a
1430 *	negative error code (which will be seen in userspace.)
1431 *	Must be implemented.
1432 *
1433 * @remove_interface: Notifies a driver that an interface is going down.
1434 *	The @stop callback is called after this if it is the last interface
1435 *	and no monitor interfaces are present.
1436 *	When all interfaces are removed, the MAC address in the hardware
1437 *	must be cleared so the device no longer acknowledges packets,
1438 *	the mac_addr member of the conf structure is, however, set to the
1439 *	MAC address of the device going away.
1440 *	Hence, this callback must be implemented.
1441 *
1442 * @config: Handler for configuration requests. IEEE 802.11 code calls this
1443 *	function to change hardware configuration, e.g., channel.
1444 *	This function should never fail but returns a negative error code
1445 *	if it does.
1446 *
1447 * @bss_info_changed: Handler for configuration requests related to BSS
1448 *	parameters that may vary during BSS's lifespan, and may affect low
1449 *	level driver (e.g. assoc/disassoc status, erp parameters).
1450 *	This function should not be used if no BSS has been set, unless
1451 *	for association indication. The @changed parameter indicates which
1452 *	of the bss parameters has changed when a call is made.
1453 *
1454 * @prepare_multicast: Prepare for multicast filter configuration.
1455 *	This callback is optional, and its return value is passed
1456 *	to configure_filter(). This callback must be atomic.
1457 *
1458 * @configure_filter: Configure the device's RX filter.
1459 *	See the section "Frame filtering" for more information.
1460 *	This callback must be implemented.
1461 *
1462 * @set_tim: Set TIM bit. mac80211 calls this function when a TIM bit
1463 * 	must be set or cleared for a given STA. Must be atomic.
1464 *
1465 * @set_key: See the section "Hardware crypto acceleration"
1466 *	This callback can sleep, and is only called between add_interface
1467 *	and remove_interface calls, i.e. while the given virtual interface
1468 *	is enabled.
1469 *	Returns a negative error code if the key can't be added.
1470 *
1471 * @update_tkip_key: See the section "Hardware crypto acceleration"
1472 * 	This callback will be called in the context of Rx. Called for drivers
1473 * 	which set IEEE80211_KEY_FLAG_TKIP_REQ_RX_P1_KEY.
1474 *
1475 * @hw_scan: Ask the hardware to service the scan request, no need to start
1476 *	the scan state machine in stack. The scan must honour the channel
1477 *	configuration done by the regulatory agent in the wiphy's
1478 *	registered bands. The hardware (or the driver) needs to make sure
1479 *	that power save is disabled.
1480 *	The @req ie/ie_len members are rewritten by mac80211 to contain the
1481 *	entire IEs after the SSID, so that drivers need not look at these
1482 *	at all but just send them after the SSID -- mac80211 includes the
1483 *	(extended) supported rates and HT information (where applicable).
1484 *	When the scan finishes, ieee80211_scan_completed() must be called;
1485 *	note that it also must be called when the scan cannot finish due to
1486 *	any error unless this callback returned a negative error code.
1487 *
1488 * @sw_scan_start: Notifier function that is called just before a software scan
1489 *	is started. Can be NULL, if the driver doesn't need this notification.
1490 *
1491 * @sw_scan_complete: Notifier function that is called just after a software scan
1492 *	finished. Can be NULL, if the driver doesn't need this notification.
1493 *
1494 * @get_stats: Return low-level statistics.
1495 * 	Returns zero if statistics are available.
1496 *
1497 * @get_tkip_seq: If your device implements TKIP encryption in hardware this
1498 *	callback should be provided to read the TKIP transmit IVs (both IV32
1499 *	and IV16) for the given key from hardware.
1500 *
1501 * @set_rts_threshold: Configuration of RTS threshold (if device needs it)
1502 *
1503 * @sta_notify: Notifies low level driver about addition, removal or power
1504 *	state transition of an associated station, AP,  IBSS/WDS/mesh peer etc.
1505 *	Must be atomic.
1506 *
1507 * @conf_tx: Configure TX queue parameters (EDCF (aifs, cw_min, cw_max),
1508 *	bursting) for a hardware TX queue.
1509 *	Returns a negative error code on failure.
1510 *
1511 * @get_tx_stats: Get statistics of the current TX queue status. This is used
1512 *	to get number of currently queued packets (queue length), maximum queue
1513 *	size (limit), and total number of packets sent using each TX queue
1514 *	(count). The 'stats' pointer points to an array that has hw->queues
1515 *	items.
1516 *
1517 * @get_tsf: Get the current TSF timer value from firmware/hardware. Currently,
1518 *	this is only used for IBSS mode BSSID merging and debugging. Is not a
1519 *	required function.
1520 *
1521 * @set_tsf: Set the TSF timer to the specified value in the firmware/hardware.
1522 *      Currently, this is only used for IBSS mode debugging. Is not a
1523 *	required function.
1524 *
1525 * @reset_tsf: Reset the TSF timer and allow firmware/hardware to synchronize
1526 *	with other STAs in the IBSS. This is only used in IBSS mode. This
1527 *	function is optional if the firmware/hardware takes full care of
1528 *	TSF synchronization.
1529 *
1530 * @tx_last_beacon: Determine whether the last IBSS beacon was sent by us.
1531 *	This is needed only for IBSS mode and the result of this function is
1532 *	used to determine whether to reply to Probe Requests.
1533 *	Returns non-zero if this device sent the last beacon.
1534 *
1535 * @ampdu_action: Perform a certain A-MPDU action
1536 * 	The RA/TID combination determines the destination and TID we want
1537 * 	the ampdu action to be performed for. The action is defined through
1538 * 	ieee80211_ampdu_mlme_action. Starting sequence number (@ssn)
1539 * 	is the first frame we expect to perform the action on. Notice
1540 * 	that TX/RX_STOP can pass NULL for this parameter.
1541 *	Returns a negative error code on failure.
1542 *
1543 * @rfkill_poll: Poll rfkill hardware state. If you need this, you also
1544 *	need to set wiphy->rfkill_poll to %true before registration,
1545 *	and need to call wiphy_rfkill_set_hw_state() in the callback.
1546 *
1547 * @testmode_cmd: Implement a cfg80211 test mode command.
1548 */
1549struct ieee80211_ops {
1550	int (*tx)(struct ieee80211_hw *hw, struct sk_buff *skb);
1551	int (*start)(struct ieee80211_hw *hw);
1552	void (*stop)(struct ieee80211_hw *hw);
1553	int (*add_interface)(struct ieee80211_hw *hw,
1554			     struct ieee80211_if_init_conf *conf);
1555	void (*remove_interface)(struct ieee80211_hw *hw,
1556				 struct ieee80211_if_init_conf *conf);
1557	int (*config)(struct ieee80211_hw *hw, u32 changed);
1558	void (*bss_info_changed)(struct ieee80211_hw *hw,
1559				 struct ieee80211_vif *vif,
1560				 struct ieee80211_bss_conf *info,
1561				 u32 changed);
1562	u64 (*prepare_multicast)(struct ieee80211_hw *hw,
1563				 int mc_count, struct dev_addr_list *mc_list);
1564	void (*configure_filter)(struct ieee80211_hw *hw,
1565				 unsigned int changed_flags,
1566				 unsigned int *total_flags,
1567				 u64 multicast);
1568	int (*set_tim)(struct ieee80211_hw *hw, struct ieee80211_sta *sta,
1569		       bool set);
1570	int (*set_key)(struct ieee80211_hw *hw, enum set_key_cmd cmd,
1571		       struct ieee80211_vif *vif, struct ieee80211_sta *sta,
1572		       struct ieee80211_key_conf *key);
1573	void (*update_tkip_key)(struct ieee80211_hw *hw,
1574			struct ieee80211_key_conf *conf, const u8 *address,
1575			u32 iv32, u16 *phase1key);
1576	int (*hw_scan)(struct ieee80211_hw *hw,
1577		       struct cfg80211_scan_request *req);
1578	void (*sw_scan_start)(struct ieee80211_hw *hw);
1579	void (*sw_scan_complete)(struct ieee80211_hw *hw);
1580	int (*get_stats)(struct ieee80211_hw *hw,
1581			 struct ieee80211_low_level_stats *stats);
1582	void (*get_tkip_seq)(struct ieee80211_hw *hw, u8 hw_key_idx,
1583			     u32 *iv32, u16 *iv16);
1584	int (*set_rts_threshold)(struct ieee80211_hw *hw, u32 value);
1585	void (*sta_notify)(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
1586			enum sta_notify_cmd, struct ieee80211_sta *sta);
1587	int (*conf_tx)(struct ieee80211_hw *hw, u16 queue,
1588		       const struct ieee80211_tx_queue_params *params);
1589	int (*get_tx_stats)(struct ieee80211_hw *hw,
1590			    struct ieee80211_tx_queue_stats *stats);
1591	u64 (*get_tsf)(struct ieee80211_hw *hw);
1592	void (*set_tsf)(struct ieee80211_hw *hw, u64 tsf);
1593	void (*reset_tsf)(struct ieee80211_hw *hw);
1594	int (*tx_last_beacon)(struct ieee80211_hw *hw);
1595	int (*ampdu_action)(struct ieee80211_hw *hw,
1596			    struct ieee80211_vif *vif,
1597			    enum ieee80211_ampdu_mlme_action action,
1598			    struct ieee80211_sta *sta, u16 tid, u16 *ssn);
1599
1600	void (*rfkill_poll)(struct ieee80211_hw *hw);
1601#ifdef CONFIG_NL80211_TESTMODE
1602	int (*testmode_cmd)(struct ieee80211_hw *hw, void *data, int len);
1603#endif
1604};
1605
1606/**
1607 * ieee80211_alloc_hw -  Allocate a new hardware device
1608 *
1609 * This must be called once for each hardware device. The returned pointer
1610 * must be used to refer to this device when calling other functions.
1611 * mac80211 allocates a private data area for the driver pointed to by
1612 * @priv in &struct ieee80211_hw, the size of this area is given as
1613 * @priv_data_len.
1614 *
1615 * @priv_data_len: length of private data
1616 * @ops: callbacks for this device
1617 */
1618struct ieee80211_hw *ieee80211_alloc_hw(size_t priv_data_len,
1619					const struct ieee80211_ops *ops);
1620
1621/**
1622 * ieee80211_register_hw - Register hardware device
1623 *
1624 * You must call this function before any other functions in
1625 * mac80211. Note that before a hardware can be registered, you
1626 * need to fill the contained wiphy's information.
1627 *
1628 * @hw: the device to register as returned by ieee80211_alloc_hw()
1629 */
1630int ieee80211_register_hw(struct ieee80211_hw *hw);
1631
1632#ifdef CONFIG_MAC80211_LEDS
1633extern char *__ieee80211_get_tx_led_name(struct ieee80211_hw *hw);
1634extern char *__ieee80211_get_rx_led_name(struct ieee80211_hw *hw);
1635extern char *__ieee80211_get_assoc_led_name(struct ieee80211_hw *hw);
1636extern char *__ieee80211_get_radio_led_name(struct ieee80211_hw *hw);
1637#endif
1638/**
1639 * ieee80211_get_tx_led_name - get name of TX LED
1640 *
1641 * mac80211 creates a transmit LED trigger for each wireless hardware
1642 * that can be used to drive LEDs if your driver registers a LED device.
1643 * This function returns the name (or %NULL if not configured for LEDs)
1644 * of the trigger so you can automatically link the LED device.
1645 *
1646 * @hw: the hardware to get the LED trigger name for
1647 */
1648static inline char *ieee80211_get_tx_led_name(struct ieee80211_hw *hw)
1649{
1650#ifdef CONFIG_MAC80211_LEDS
1651	return __ieee80211_get_tx_led_name(hw);
1652#else
1653	return NULL;
1654#endif
1655}
1656
1657/**
1658 * ieee80211_get_rx_led_name - get name of RX LED
1659 *
1660 * mac80211 creates a receive LED trigger for each wireless hardware
1661 * that can be used to drive LEDs if your driver registers a LED device.
1662 * This function returns the name (or %NULL if not configured for LEDs)
1663 * of the trigger so you can automatically link the LED device.
1664 *
1665 * @hw: the hardware to get the LED trigger name for
1666 */
1667static inline char *ieee80211_get_rx_led_name(struct ieee80211_hw *hw)
1668{
1669#ifdef CONFIG_MAC80211_LEDS
1670	return __ieee80211_get_rx_led_name(hw);
1671#else
1672	return NULL;
1673#endif
1674}
1675
1676/**
1677 * ieee80211_get_assoc_led_name - get name of association LED
1678 *
1679 * mac80211 creates a association LED trigger for each wireless hardware
1680 * that can be used to drive LEDs if your driver registers a LED device.
1681 * This function returns the name (or %NULL if not configured for LEDs)
1682 * of the trigger so you can automatically link the LED device.
1683 *
1684 * @hw: the hardware to get the LED trigger name for
1685 */
1686static inline char *ieee80211_get_assoc_led_name(struct ieee80211_hw *hw)
1687{
1688#ifdef CONFIG_MAC80211_LEDS
1689	return __ieee80211_get_assoc_led_name(hw);
1690#else
1691	return NULL;
1692#endif
1693}
1694
1695/**
1696 * ieee80211_get_radio_led_name - get name of radio LED
1697 *
1698 * mac80211 creates a radio change LED trigger for each wireless hardware
1699 * that can be used to drive LEDs if your driver registers a LED device.
1700 * This function returns the name (or %NULL if not configured for LEDs)
1701 * of the trigger so you can automatically link the LED device.
1702 *
1703 * @hw: the hardware to get the LED trigger name for
1704 */
1705static inline char *ieee80211_get_radio_led_name(struct ieee80211_hw *hw)
1706{
1707#ifdef CONFIG_MAC80211_LEDS
1708	return __ieee80211_get_radio_led_name(hw);
1709#else
1710	return NULL;
1711#endif
1712}
1713
1714/**
1715 * ieee80211_unregister_hw - Unregister a hardware device
1716 *
1717 * This function instructs mac80211 to free allocated resources
1718 * and unregister netdevices from the networking subsystem.
1719 *
1720 * @hw: the hardware to unregister
1721 */
1722void ieee80211_unregister_hw(struct ieee80211_hw *hw);
1723
1724/**
1725 * ieee80211_free_hw - free hardware descriptor
1726 *
1727 * This function frees everything that was allocated, including the
1728 * private data for the driver. You must call ieee80211_unregister_hw()
1729 * before calling this function.
1730 *
1731 * @hw: the hardware to free
1732 */
1733void ieee80211_free_hw(struct ieee80211_hw *hw);
1734
1735/**
1736 * ieee80211_restart_hw - restart hardware completely
1737 *
1738 * Call this function when the hardware was restarted for some reason
1739 * (hardware error, ...) and the driver is unable to restore its state
1740 * by itself. mac80211 assumes that at this point the driver/hardware
1741 * is completely uninitialised and stopped, it starts the process by
1742 * calling the ->start() operation. The driver will need to reset all
1743 * internal state that it has prior to calling this function.
1744 *
1745 * @hw: the hardware to restart
1746 */
1747void ieee80211_restart_hw(struct ieee80211_hw *hw);
1748
1749/**
1750 * ieee80211_rx - receive frame
1751 *
1752 * Use this function to hand received frames to mac80211. The receive
1753 * buffer in @skb must start with an IEEE 802.11 header.
1754 *
1755 * This function may not be called in IRQ context. Calls to this function
1756 * for a single hardware must be synchronized against each other. Calls to
1757 * this function, ieee80211_rx_ni() and ieee80211_rx_irqsafe() may not be
1758 * mixed for a single hardware.
1759 *
1760 * In process context use instead ieee80211_rx_ni().
1761 *
1762 * @hw: the hardware this frame came in on
1763 * @skb: the buffer to receive, owned by mac80211 after this call
1764 */
1765void ieee80211_rx(struct ieee80211_hw *hw, struct sk_buff *skb);
1766
1767/**
1768 * ieee80211_rx_irqsafe - receive frame
1769 *
1770 * Like ieee80211_rx() but can be called in IRQ context
1771 * (internally defers to a tasklet.)
1772 *
1773 * Calls to this function, ieee80211_rx() or ieee80211_rx_ni() may not
1774 * be mixed for a single hardware.
1775 *
1776 * @hw: the hardware this frame came in on
1777 * @skb: the buffer to receive, owned by mac80211 after this call
1778 */
1779void ieee80211_rx_irqsafe(struct ieee80211_hw *hw, struct sk_buff *skb);
1780
1781/**
1782 * ieee80211_rx_ni - receive frame (in process context)
1783 *
1784 * Like ieee80211_rx() but can be called in process context
1785 * (internally disables bottom halves).
1786 *
1787 * Calls to this function, ieee80211_rx() and ieee80211_rx_irqsafe() may
1788 * not be mixed for a single hardware.
1789 *
1790 * @hw: the hardware this frame came in on
1791 * @skb: the buffer to receive, owned by mac80211 after this call
1792 */
1793static inline void ieee80211_rx_ni(struct ieee80211_hw *hw,
1794				   struct sk_buff *skb)
1795{
1796	local_bh_disable();
1797	ieee80211_rx(hw, skb);
1798	local_bh_enable();
1799}
1800
1801/**
1802 * ieee80211_tx_status - transmit status callback
1803 *
1804 * Call this function for all transmitted frames after they have been
1805 * transmitted. It is permissible to not call this function for
1806 * multicast frames but this can affect statistics.
1807 *
1808 * This function may not be called in IRQ context. Calls to this function
1809 * for a single hardware must be synchronized against each other. Calls
1810 * to this function and ieee80211_tx_status_irqsafe() may not be mixed
1811 * for a single hardware.
1812 *
1813 * @hw: the hardware the frame was transmitted by
1814 * @skb: the frame that was transmitted, owned by mac80211 after this call
1815 */
1816void ieee80211_tx_status(struct ieee80211_hw *hw,
1817			 struct sk_buff *skb);
1818
1819/**
1820 * ieee80211_tx_status_irqsafe - IRQ-safe transmit status callback
1821 *
1822 * Like ieee80211_tx_status() but can be called in IRQ context
1823 * (internally defers to a tasklet.)
1824 *
1825 * Calls to this function and ieee80211_tx_status() may not be mixed for a
1826 * single hardware.
1827 *
1828 * @hw: the hardware the frame was transmitted by
1829 * @skb: the frame that was transmitted, owned by mac80211 after this call
1830 */
1831void ieee80211_tx_status_irqsafe(struct ieee80211_hw *hw,
1832				 struct sk_buff *skb);
1833
1834/**
1835 * ieee80211_beacon_get_tim - beacon generation function
1836 * @hw: pointer obtained from ieee80211_alloc_hw().
1837 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1838 * @tim_offset: pointer to variable that will receive the TIM IE offset.
1839 *	Set to 0 if invalid (in non-AP modes).
1840 * @tim_length: pointer to variable that will receive the TIM IE length,
1841 *	(including the ID and length bytes!).
1842 *	Set to 0 if invalid (in non-AP modes).
1843 *
1844 * If the driver implements beaconing modes, it must use this function to
1845 * obtain the beacon frame/template.
1846 *
1847 * If the beacon frames are generated by the host system (i.e., not in
1848 * hardware/firmware), the driver uses this function to get each beacon
1849 * frame from mac80211 -- it is responsible for calling this function
1850 * before the beacon is needed (e.g. based on hardware interrupt).
1851 *
1852 * If the beacon frames are generated by the device, then the driver
1853 * must use the returned beacon as the template and change the TIM IE
1854 * according to the current DTIM parameters/TIM bitmap.
1855 *
1856 * The driver is responsible for freeing the returned skb.
1857 */
1858struct sk_buff *ieee80211_beacon_get_tim(struct ieee80211_hw *hw,
1859					 struct ieee80211_vif *vif,
1860					 u16 *tim_offset, u16 *tim_length);
1861
1862/**
1863 * ieee80211_beacon_get - beacon generation function
1864 * @hw: pointer obtained from ieee80211_alloc_hw().
1865 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1866 *
1867 * See ieee80211_beacon_get_tim().
1868 */
1869static inline struct sk_buff *ieee80211_beacon_get(struct ieee80211_hw *hw,
1870						   struct ieee80211_vif *vif)
1871{
1872	return ieee80211_beacon_get_tim(hw, vif, NULL, NULL);
1873}
1874
1875/**
1876 * ieee80211_rts_get - RTS frame generation function
1877 * @hw: pointer obtained from ieee80211_alloc_hw().
1878 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1879 * @frame: pointer to the frame that is going to be protected by the RTS.
1880 * @frame_len: the frame length (in octets).
1881 * @frame_txctl: &struct ieee80211_tx_info of the frame.
1882 * @rts: The buffer where to store the RTS frame.
1883 *
1884 * If the RTS frames are generated by the host system (i.e., not in
1885 * hardware/firmware), the low-level driver uses this function to receive
1886 * the next RTS frame from the 802.11 code. The low-level is responsible
1887 * for calling this function before and RTS frame is needed.
1888 */
1889void ieee80211_rts_get(struct ieee80211_hw *hw, struct ieee80211_vif *vif,
1890		       const void *frame, size_t frame_len,
1891		       const struct ieee80211_tx_info *frame_txctl,
1892		       struct ieee80211_rts *rts);
1893
1894/**
1895 * ieee80211_rts_duration - Get the duration field for an RTS frame
1896 * @hw: pointer obtained from ieee80211_alloc_hw().
1897 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1898 * @frame_len: the length of the frame that is going to be protected by the RTS.
1899 * @frame_txctl: &struct ieee80211_tx_info of the frame.
1900 *
1901 * If the RTS is generated in firmware, but the host system must provide
1902 * the duration field, the low-level driver uses this function to receive
1903 * the duration field value in little-endian byteorder.
1904 */
1905__le16 ieee80211_rts_duration(struct ieee80211_hw *hw,
1906			      struct ieee80211_vif *vif, size_t frame_len,
1907			      const struct ieee80211_tx_info *frame_txctl);
1908
1909/**
1910 * ieee80211_ctstoself_get - CTS-to-self frame generation function
1911 * @hw: pointer obtained from ieee80211_alloc_hw().
1912 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1913 * @frame: pointer to the frame that is going to be protected by the CTS-to-self.
1914 * @frame_len: the frame length (in octets).
1915 * @frame_txctl: &struct ieee80211_tx_info of the frame.
1916 * @cts: The buffer where to store the CTS-to-self frame.
1917 *
1918 * If the CTS-to-self frames are generated by the host system (i.e., not in
1919 * hardware/firmware), the low-level driver uses this function to receive
1920 * the next CTS-to-self frame from the 802.11 code. The low-level is responsible
1921 * for calling this function before and CTS-to-self frame is needed.
1922 */
1923void ieee80211_ctstoself_get(struct ieee80211_hw *hw,
1924			     struct ieee80211_vif *vif,
1925			     const void *frame, size_t frame_len,
1926			     const struct ieee80211_tx_info *frame_txctl,
1927			     struct ieee80211_cts *cts);
1928
1929/**
1930 * ieee80211_ctstoself_duration - Get the duration field for a CTS-to-self frame
1931 * @hw: pointer obtained from ieee80211_alloc_hw().
1932 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1933 * @frame_len: the length of the frame that is going to be protected by the CTS-to-self.
1934 * @frame_txctl: &struct ieee80211_tx_info of the frame.
1935 *
1936 * If the CTS-to-self is generated in firmware, but the host system must provide
1937 * the duration field, the low-level driver uses this function to receive
1938 * the duration field value in little-endian byteorder.
1939 */
1940__le16 ieee80211_ctstoself_duration(struct ieee80211_hw *hw,
1941				    struct ieee80211_vif *vif,
1942				    size_t frame_len,
1943				    const struct ieee80211_tx_info *frame_txctl);
1944
1945/**
1946 * ieee80211_generic_frame_duration - Calculate the duration field for a frame
1947 * @hw: pointer obtained from ieee80211_alloc_hw().
1948 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1949 * @frame_len: the length of the frame.
1950 * @rate: the rate at which the frame is going to be transmitted.
1951 *
1952 * Calculate the duration field of some generic frame, given its
1953 * length and transmission rate (in 100kbps).
1954 */
1955__le16 ieee80211_generic_frame_duration(struct ieee80211_hw *hw,
1956					struct ieee80211_vif *vif,
1957					size_t frame_len,
1958					struct ieee80211_rate *rate);
1959
1960/**
1961 * ieee80211_get_buffered_bc - accessing buffered broadcast and multicast frames
1962 * @hw: pointer as obtained from ieee80211_alloc_hw().
1963 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
1964 *
1965 * Function for accessing buffered broadcast and multicast frames. If
1966 * hardware/firmware does not implement buffering of broadcast/multicast
1967 * frames when power saving is used, 802.11 code buffers them in the host
1968 * memory. The low-level driver uses this function to fetch next buffered
1969 * frame. In most cases, this is used when generating beacon frame. This
1970 * function returns a pointer to the next buffered skb or NULL if no more
1971 * buffered frames are available.
1972 *
1973 * Note: buffered frames are returned only after DTIM beacon frame was
1974 * generated with ieee80211_beacon_get() and the low-level driver must thus
1975 * call ieee80211_beacon_get() first. ieee80211_get_buffered_bc() returns
1976 * NULL if the previous generated beacon was not DTIM, so the low-level driver
1977 * does not need to check for DTIM beacons separately and should be able to
1978 * use common code for all beacons.
1979 */
1980struct sk_buff *
1981ieee80211_get_buffered_bc(struct ieee80211_hw *hw, struct ieee80211_vif *vif);
1982
1983/**
1984 * ieee80211_get_tkip_key - get a TKIP rc4 for skb
1985 *
1986 * This function computes a TKIP rc4 key for an skb. It computes
1987 * a phase 1 key if needed (iv16 wraps around). This function is to
1988 * be used by drivers which can do HW encryption but need to compute
1989 * to phase 1/2 key in SW.
1990 *
1991 * @keyconf: the parameter passed with the set key
1992 * @skb: the skb for which the key is needed
1993 * @type: TBD
1994 * @key: a buffer to which the key will be written
1995 */
1996void ieee80211_get_tkip_key(struct ieee80211_key_conf *keyconf,
1997				struct sk_buff *skb,
1998				enum ieee80211_tkip_key_type type, u8 *key);
1999/**
2000 * ieee80211_wake_queue - wake specific queue
2001 * @hw: pointer as obtained from ieee80211_alloc_hw().
2002 * @queue: queue number (counted from zero).
2003 *
2004 * Drivers should use this function instead of netif_wake_queue.
2005 */
2006void ieee80211_wake_queue(struct ieee80211_hw *hw, int queue);
2007
2008/**
2009 * ieee80211_stop_queue - stop specific queue
2010 * @hw: pointer as obtained from ieee80211_alloc_hw().
2011 * @queue: queue number (counted from zero).
2012 *
2013 * Drivers should use this function instead of netif_stop_queue.
2014 */
2015void ieee80211_stop_queue(struct ieee80211_hw *hw, int queue);
2016
2017/**
2018 * ieee80211_queue_stopped - test status of the queue
2019 * @hw: pointer as obtained from ieee80211_alloc_hw().
2020 * @queue: queue number (counted from zero).
2021 *
2022 * Drivers should use this function instead of netif_stop_queue.
2023 */
2024
2025int ieee80211_queue_stopped(struct ieee80211_hw *hw, int queue);
2026
2027/**
2028 * ieee80211_stop_queues - stop all queues
2029 * @hw: pointer as obtained from ieee80211_alloc_hw().
2030 *
2031 * Drivers should use this function instead of netif_stop_queue.
2032 */
2033void ieee80211_stop_queues(struct ieee80211_hw *hw);
2034
2035/**
2036 * ieee80211_wake_queues - wake all queues
2037 * @hw: pointer as obtained from ieee80211_alloc_hw().
2038 *
2039 * Drivers should use this function instead of netif_wake_queue.
2040 */
2041void ieee80211_wake_queues(struct ieee80211_hw *hw);
2042
2043/**
2044 * ieee80211_scan_completed - completed hardware scan
2045 *
2046 * When hardware scan offload is used (i.e. the hw_scan() callback is
2047 * assigned) this function needs to be called by the driver to notify
2048 * mac80211 that the scan finished.
2049 *
2050 * @hw: the hardware that finished the scan
2051 * @aborted: set to true if scan was aborted
2052 */
2053void ieee80211_scan_completed(struct ieee80211_hw *hw, bool aborted);
2054
2055/**
2056 * ieee80211_iterate_active_interfaces - iterate active interfaces
2057 *
2058 * This function iterates over the interfaces associated with a given
2059 * hardware that are currently active and calls the callback for them.
2060 * This function allows the iterator function to sleep, when the iterator
2061 * function is atomic @ieee80211_iterate_active_interfaces_atomic can
2062 * be used.
2063 *
2064 * @hw: the hardware struct of which the interfaces should be iterated over
2065 * @iterator: the iterator function to call
2066 * @data: first argument of the iterator function
2067 */
2068void ieee80211_iterate_active_interfaces(struct ieee80211_hw *hw,
2069					 void (*iterator)(void *data, u8 *mac,
2070						struct ieee80211_vif *vif),
2071					 void *data);
2072
2073/**
2074 * ieee80211_iterate_active_interfaces_atomic - iterate active interfaces
2075 *
2076 * This function iterates over the interfaces associated with a given
2077 * hardware that are currently active and calls the callback for them.
2078 * This function requires the iterator callback function to be atomic,
2079 * if that is not desired, use @ieee80211_iterate_active_interfaces instead.
2080 *
2081 * @hw: the hardware struct of which the interfaces should be iterated over
2082 * @iterator: the iterator function to call, cannot sleep
2083 * @data: first argument of the iterator function
2084 */
2085void ieee80211_iterate_active_interfaces_atomic(struct ieee80211_hw *hw,
2086						void (*iterator)(void *data,
2087						    u8 *mac,
2088						    struct ieee80211_vif *vif),
2089						void *data);
2090
2091/**
2092 * ieee80211_queue_work - add work onto the mac80211 workqueue
2093 *
2094 * Drivers and mac80211 use this to add work onto the mac80211 workqueue.
2095 * This helper ensures drivers are not queueing work when they should not be.
2096 *
2097 * @hw: the hardware struct for the interface we are adding work for
2098 * @work: the work we want to add onto the mac80211 workqueue
2099 */
2100void ieee80211_queue_work(struct ieee80211_hw *hw, struct work_struct *work);
2101
2102/**
2103 * ieee80211_queue_delayed_work - add work onto the mac80211 workqueue
2104 *
2105 * Drivers and mac80211 use this to queue delayed work onto the mac80211
2106 * workqueue.
2107 *
2108 * @hw: the hardware struct for the interface we are adding work for
2109 * @dwork: delayable work to queue onto the mac80211 workqueue
2110 * @delay: number of jiffies to wait before queueing
2111 */
2112void ieee80211_queue_delayed_work(struct ieee80211_hw *hw,
2113				  struct delayed_work *dwork,
2114				  unsigned long delay);
2115
2116/**
2117 * ieee80211_start_tx_ba_session - Start a tx Block Ack session.
2118 * @sta: the station for which to start a BA session
2119 * @tid: the TID to BA on.
2120 *
2121 * Return: success if addBA request was sent, failure otherwise
2122 *
2123 * Although mac80211/low level driver/user space application can estimate
2124 * the need to start aggregation on a certain RA/TID, the session level
2125 * will be managed by the mac80211.
2126 */
2127int ieee80211_start_tx_ba_session(struct ieee80211_sta *sta, u16 tid);
2128
2129/**
2130 * ieee80211_start_tx_ba_cb - low level driver ready to aggregate.
2131 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf
2132 * @ra: receiver address of the BA session recipient.
2133 * @tid: the TID to BA on.
2134 *
2135 * This function must be called by low level driver once it has
2136 * finished with preparations for the BA session.
2137 */
2138void ieee80211_start_tx_ba_cb(struct ieee80211_vif *vif, u8 *ra, u16 tid);
2139
2140/**
2141 * ieee80211_start_tx_ba_cb_irqsafe - low level driver ready to aggregate.
2142 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf
2143 * @ra: receiver address of the BA session recipient.
2144 * @tid: the TID to BA on.
2145 *
2146 * This function must be called by low level driver once it has
2147 * finished with preparations for the BA session.
2148 * This version of the function is IRQ-safe.
2149 */
2150void ieee80211_start_tx_ba_cb_irqsafe(struct ieee80211_vif *vif, const u8 *ra,
2151				      u16 tid);
2152
2153/**
2154 * ieee80211_stop_tx_ba_session - Stop a Block Ack session.
2155 * @sta: the station whose BA session to stop
2156 * @tid: the TID to stop BA.
2157 * @initiator: if indicates initiator DELBA frame will be sent.
2158 *
2159 * Return: error if no sta with matching da found, success otherwise
2160 *
2161 * Although mac80211/low level driver/user space application can estimate
2162 * the need to stop aggregation on a certain RA/TID, the session level
2163 * will be managed by the mac80211.
2164 */
2165int ieee80211_stop_tx_ba_session(struct ieee80211_sta *sta, u16 tid,
2166				 enum ieee80211_back_parties initiator);
2167
2168/**
2169 * ieee80211_stop_tx_ba_cb - low level driver ready to stop aggregate.
2170 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf
2171 * @ra: receiver address of the BA session recipient.
2172 * @tid: the desired TID to BA on.
2173 *
2174 * This function must be called by low level driver once it has
2175 * finished with preparations for the BA session tear down.
2176 */
2177void ieee80211_stop_tx_ba_cb(struct ieee80211_vif *vif, u8 *ra, u8 tid);
2178
2179/**
2180 * ieee80211_stop_tx_ba_cb_irqsafe - low level driver ready to stop aggregate.
2181 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf
2182 * @ra: receiver address of the BA session recipient.
2183 * @tid: the desired TID to BA on.
2184 *
2185 * This function must be called by low level driver once it has
2186 * finished with preparations for the BA session tear down.
2187 * This version of the function is IRQ-safe.
2188 */
2189void ieee80211_stop_tx_ba_cb_irqsafe(struct ieee80211_vif *vif, const u8 *ra,
2190				     u16 tid);
2191
2192/**
2193 * ieee80211_find_sta - find a station
2194 *
2195 * @vif: virtual interface to look for station on
2196 * @addr: station's address
2197 *
2198 * This function must be called under RCU lock and the
2199 * resulting pointer is only valid under RCU lock as well.
2200 */
2201struct ieee80211_sta *ieee80211_find_sta(struct ieee80211_vif *vif,
2202					 const u8 *addr);
2203
2204/**
2205 * ieee80211_find_sta_by_hw - find a station on hardware
2206 *
2207 * @hw: pointer as obtained from ieee80211_alloc_hw()
2208 * @addr: station's address
2209 *
2210 * This function must be called under RCU lock and the
2211 * resulting pointer is only valid under RCU lock as well.
2212 *
2213 * NOTE: This function should not be used! When mac80211 is converted
2214 *	 internally to properly keep track of stations on multiple
2215 *	 virtual interfaces, it will not always know which station to
2216 *	 return here since a single address might be used by multiple
2217 *	 logical stations (e.g. consider a station connecting to another
2218 *	 BSSID on the same AP hardware without disconnecting first).
2219 *
2220 * DO NOT USE THIS FUNCTION.
2221 */
2222struct ieee80211_sta *ieee80211_find_sta_by_hw(struct ieee80211_hw *hw,
2223					       const u8 *addr);
2224
2225/**
2226 * ieee80211_sta_block_awake - block station from waking up
2227 * @hw: the hardware
2228 * @pubsta: the station
2229 * @block: whether to block or unblock
2230 *
2231 * Some devices require that all frames that are on the queues
2232 * for a specific station that went to sleep are flushed before
2233 * a poll response or frames after the station woke up can be
2234 * delivered to that it. Note that such frames must be rejected
2235 * by the driver as filtered, with the appropriate status flag.
2236 *
2237 * This function allows implementing this mode in a race-free
2238 * manner.
2239 *
2240 * To do this, a driver must keep track of the number of frames
2241 * still enqueued for a specific station. If this number is not
2242 * zero when the station goes to sleep, the driver must call
2243 * this function to force mac80211 to consider the station to
2244 * be asleep regardless of the station's actual state. Once the
2245 * number of outstanding frames reaches zero, the driver must
2246 * call this function again to unblock the station. That will
2247 * cause mac80211 to be able to send ps-poll responses, and if
2248 * the station queried in the meantime then frames will also
2249 * be sent out as a result of this. Additionally, the driver
2250 * will be notified that the station woke up some time after
2251 * it is unblocked, regardless of whether the station actually
2252 * woke up while blocked or not.
2253 */
2254void ieee80211_sta_block_awake(struct ieee80211_hw *hw,
2255			       struct ieee80211_sta *pubsta, bool block);
2256
2257/**
2258 * ieee80211_beacon_loss - inform hardware does not receive beacons
2259 *
2260 * @vif: &struct ieee80211_vif pointer from &struct ieee80211_if_init_conf.
2261 *
2262 * When beacon filtering is enabled with IEEE80211_HW_BEACON_FILTERING and
2263 * IEEE80211_CONF_PS is set, the driver needs to inform whenever the
2264 * hardware is not receiving beacons with this function.
2265 */
2266void ieee80211_beacon_loss(struct ieee80211_vif *vif);
2267
2268/* Rate control API */
2269
2270/**
2271 * enum rate_control_changed - flags to indicate which parameter changed
2272 *
2273 * @IEEE80211_RC_HT_CHANGED: The HT parameters of the operating channel have
2274 *	changed, rate control algorithm can update its internal state if needed.
2275 */
2276enum rate_control_changed {
2277	IEEE80211_RC_HT_CHANGED = BIT(0)
2278};
2279
2280/**
2281 * struct ieee80211_tx_rate_control - rate control information for/from RC algo
2282 *
2283 * @hw: The hardware the algorithm is invoked for.
2284 * @sband: The band this frame is being transmitted on.
2285 * @bss_conf: the current BSS configuration
2286 * @reported_rate: The rate control algorithm can fill this in to indicate
2287 *	which rate should be reported to userspace as the current rate and
2288 *	used for rate calculations in the mesh network.
2289 * @rts: whether RTS will be used for this frame because it is longer than the
2290 *	RTS threshold
2291 * @short_preamble: whether mac80211 will request short-preamble transmission
2292 *	if the selected rate supports it
2293 * @max_rate_idx: user-requested maximum rate (not MCS for now)
2294 * @skb: the skb that will be transmitted, the control information in it needs
2295 *	to be filled in
2296 */
2297struct ieee80211_tx_rate_control {
2298	struct ieee80211_hw *hw;
2299	struct ieee80211_supported_band *sband;
2300	struct ieee80211_bss_conf *bss_conf;
2301	struct sk_buff *skb;
2302	struct ieee80211_tx_rate reported_rate;
2303	bool rts, short_preamble;
2304	u8 max_rate_idx;
2305};
2306
2307struct rate_control_ops {
2308	struct module *module;
2309	const char *name;
2310	void *(*alloc)(struct ieee80211_hw *hw, struct dentry *debugfsdir);
2311	void (*free)(void *priv);
2312
2313	void *(*alloc_sta)(void *priv, struct ieee80211_sta *sta, gfp_t gfp);
2314	void (*rate_init)(void *priv, struct ieee80211_supported_band *sband,
2315			  struct ieee80211_sta *sta, void *priv_sta);
2316	void (*rate_update)(void *priv, struct ieee80211_supported_band *sband,
2317			    struct ieee80211_sta *sta,
2318			    void *priv_sta, u32 changed);
2319	void (*free_sta)(void *priv, struct ieee80211_sta *sta,
2320			 void *priv_sta);
2321
2322	void (*tx_status)(void *priv, struct ieee80211_supported_band *sband,
2323			  struct ieee80211_sta *sta, void *priv_sta,
2324			  struct sk_buff *skb);
2325	void (*get_rate)(void *priv, struct ieee80211_sta *sta, void *priv_sta,
2326			 struct ieee80211_tx_rate_control *txrc);
2327
2328	void (*add_sta_debugfs)(void *priv, void *priv_sta,
2329				struct dentry *dir);
2330	void (*remove_sta_debugfs)(void *priv, void *priv_sta);
2331};
2332
2333static inline int rate_supported(struct ieee80211_sta *sta,
2334				 enum ieee80211_band band,
2335				 int index)
2336{
2337	return (sta == NULL || sta->supp_rates[band] & BIT(index));
2338}
2339
2340/**
2341 * rate_control_send_low - helper for drivers for management/no-ack frames
2342 *
2343 * Rate control algorithms that agree to use the lowest rate to
2344 * send management frames and NO_ACK data with the respective hw
2345 * retries should use this in the beginning of their mac80211 get_rate
2346 * callback. If true is returned the rate control can simply return.
2347 * If false is returned we guarantee that sta and sta and priv_sta is
2348 * not null.
2349 *
2350 * Rate control algorithms wishing to do more intelligent selection of
2351 * rate for multicast/broadcast frames may choose to not use this.
2352 *
2353 * @sta: &struct ieee80211_sta pointer to the target destination. Note
2354 * 	that this may be null.
2355 * @priv_sta: private rate control structure. This may be null.
2356 * @txrc: rate control information we sholud populate for mac80211.
2357 */
2358bool rate_control_send_low(struct ieee80211_sta *sta,
2359			   void *priv_sta,
2360			   struct ieee80211_tx_rate_control *txrc);
2361
2362
2363static inline s8
2364rate_lowest_index(struct ieee80211_supported_band *sband,
2365		  struct ieee80211_sta *sta)
2366{
2367	int i;
2368
2369	for (i = 0; i < sband->n_bitrates; i++)
2370		if (rate_supported(sta, sband->band, i))
2371			return i;
2372
2373	/* warn when we cannot find a rate. */
2374	WARN_ON(1);
2375
2376	return 0;
2377}
2378
2379static inline
2380bool rate_usable_index_exists(struct ieee80211_supported_band *sband,
2381			      struct ieee80211_sta *sta)
2382{
2383	unsigned int i;
2384
2385	for (i = 0; i < sband->n_bitrates; i++)
2386		if (rate_supported(sta, sband->band, i))
2387			return true;
2388	return false;
2389}
2390
2391int ieee80211_rate_control_register(struct rate_control_ops *ops);
2392void ieee80211_rate_control_unregister(struct rate_control_ops *ops);
2393
2394static inline bool
2395conf_is_ht20(struct ieee80211_conf *conf)
2396{
2397	return conf->channel_type == NL80211_CHAN_HT20;
2398}
2399
2400static inline bool
2401conf_is_ht40_minus(struct ieee80211_conf *conf)
2402{
2403	return conf->channel_type == NL80211_CHAN_HT40MINUS;
2404}
2405
2406static inline bool
2407conf_is_ht40_plus(struct ieee80211_conf *conf)
2408{
2409	return conf->channel_type == NL80211_CHAN_HT40PLUS;
2410}
2411
2412static inline bool
2413conf_is_ht40(struct ieee80211_conf *conf)
2414{
2415	return conf_is_ht40_minus(conf) || conf_is_ht40_plus(conf);
2416}
2417
2418static inline bool
2419conf_is_ht(struct ieee80211_conf *conf)
2420{
2421	return conf->channel_type != NL80211_CHAN_NO_HT;
2422}
2423
2424#endif /* MAC80211_H */
2425