1 // SPDX-License-Identifier: GPL-2.0-only
3 * Copyright 2002-2005, Instant802 Networks, Inc.
4 * Copyright 2006-2007 Jiri Benc <jbenc@suse.cz>
5 * Copyright 2013-2014 Intel Mobile Communications GmbH
6 * Copyright (C) 2015 - 2017 Intel Deutschland GmbH
7 * Copyright (C) 2018-2020 Intel Corporation
10 #include <linux/module.h>
11 #include <linux/init.h>
12 #include <linux/etherdevice.h>
13 #include <linux/netdevice.h>
14 #include <linux/types.h>
15 #include <linux/slab.h>
16 #include <linux/skbuff.h>
17 #include <linux/if_arp.h>
18 #include <linux/timer.h>
19 #include <linux/rtnetlink.h>
21 #include <net/codel.h>
22 #include <net/mac80211.h>
23 #include "ieee80211_i.h"
24 #include "driver-ops.h"
27 #include "debugfs_sta.h"
32 * DOC: STA information lifetime rules
34 * STA info structures (&struct sta_info) are managed in a hash table
35 * for faster lookup and a list for iteration. They are managed using
36 * RCU, i.e. access to the list and hash table is protected by RCU.
38 * Upon allocating a STA info structure with sta_info_alloc(), the caller
39 * owns that structure. It must then insert it into the hash table using
40 * either sta_info_insert() or sta_info_insert_rcu(); only in the latter
41 * case (which acquires an rcu read section but must not be called from
42 * within one) will the pointer still be valid after the call. Note that
43 * the caller may not do much with the STA info before inserting it, in
44 * particular, it may not start any mesh peer link management or add
47 * When the insertion fails (sta_info_insert()) returns non-zero), the
48 * structure will have been freed by sta_info_insert()!
50 * Station entries are added by mac80211 when you establish a link with a
51 * peer. This means different things for the different type of interfaces
52 * we support. For a regular station this mean we add the AP sta when we
53 * receive an association response from the AP. For IBSS this occurs when
54 * get to know about a peer on the same IBSS. For WDS we add the sta for
55 * the peer immediately upon device open. When using AP mode we add stations
56 * for each respective station upon request from userspace through nl80211.
58 * In order to remove a STA info structure, various sta_info_destroy_*()
59 * calls are available.
61 * There is no concept of ownership on a STA entry, each structure is
62 * owned by the global hash table/list until it is removed. All users of
63 * the structure need to be RCU protected so that the structure won't be
64 * freed before they are done using it.
67 static const struct rhashtable_params sta_rht_params
= {
68 .nelem_hint
= 3, /* start small */
69 .automatic_shrinking
= true,
70 .head_offset
= offsetof(struct sta_info
, hash_node
),
71 .key_offset
= offsetof(struct sta_info
, addr
),
73 .max_size
= CONFIG_MAC80211_STA_HASH_MAX_SIZE
,
76 /* Caller must hold local->sta_mtx */
77 static int sta_info_hash_del(struct ieee80211_local
*local
,
80 return rhltable_remove(&local
->sta_hash
, &sta
->hash_node
,
84 static void __cleanup_single_sta(struct sta_info
*sta
)
87 struct tid_ampdu_tx
*tid_tx
;
88 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
89 struct ieee80211_local
*local
= sdata
->local
;
92 if (test_sta_flag(sta
, WLAN_STA_PS_STA
) ||
93 test_sta_flag(sta
, WLAN_STA_PS_DRIVER
) ||
94 test_sta_flag(sta
, WLAN_STA_PS_DELIVER
)) {
95 if (sta
->sdata
->vif
.type
== NL80211_IFTYPE_AP
||
96 sta
->sdata
->vif
.type
== NL80211_IFTYPE_AP_VLAN
)
98 else if (ieee80211_vif_is_mesh(&sdata
->vif
))
99 ps
= &sdata
->u
.mesh
.ps
;
103 clear_sta_flag(sta
, WLAN_STA_PS_STA
);
104 clear_sta_flag(sta
, WLAN_STA_PS_DRIVER
);
105 clear_sta_flag(sta
, WLAN_STA_PS_DELIVER
);
107 atomic_dec(&ps
->num_sta_ps
);
110 if (sta
->sta
.txq
[0]) {
111 for (i
= 0; i
< ARRAY_SIZE(sta
->sta
.txq
); i
++) {
112 struct txq_info
*txqi
;
114 if (!sta
->sta
.txq
[i
])
117 txqi
= to_txq_info(sta
->sta
.txq
[i
]);
119 ieee80211_txq_purge(local
, txqi
);
123 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++) {
124 local
->total_ps_buffered
-= skb_queue_len(&sta
->ps_tx_buf
[ac
]);
125 ieee80211_purge_tx_queue(&local
->hw
, &sta
->ps_tx_buf
[ac
]);
126 ieee80211_purge_tx_queue(&local
->hw
, &sta
->tx_filtered
[ac
]);
129 if (ieee80211_vif_is_mesh(&sdata
->vif
))
130 mesh_sta_cleanup(sta
);
132 cancel_work_sync(&sta
->drv_deliver_wk
);
135 * Destroy aggregation state here. It would be nice to wait for the
136 * driver to finish aggregation stop and then clean up, but for now
137 * drivers have to handle aggregation stop being requested, followed
138 * directly by station destruction.
140 for (i
= 0; i
< IEEE80211_NUM_TIDS
; i
++) {
141 kfree(sta
->ampdu_mlme
.tid_start_tx
[i
]);
142 tid_tx
= rcu_dereference_raw(sta
->ampdu_mlme
.tid_tx
[i
]);
145 ieee80211_purge_tx_queue(&local
->hw
, &tid_tx
->pending
);
150 static void cleanup_single_sta(struct sta_info
*sta
)
152 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
153 struct ieee80211_local
*local
= sdata
->local
;
155 __cleanup_single_sta(sta
);
156 sta_info_free(local
, sta
);
159 struct rhlist_head
*sta_info_hash_lookup(struct ieee80211_local
*local
,
162 return rhltable_lookup(&local
->sta_hash
, addr
, sta_rht_params
);
165 /* protected by RCU */
166 struct sta_info
*sta_info_get(struct ieee80211_sub_if_data
*sdata
,
169 struct ieee80211_local
*local
= sdata
->local
;
170 struct rhlist_head
*tmp
;
171 struct sta_info
*sta
;
174 for_each_sta_info(local
, addr
, sta
, tmp
) {
175 if (sta
->sdata
== sdata
) {
177 /* this is safe as the caller must already hold
178 * another rcu read section or the mutex
188 * Get sta info either from the specified interface
189 * or from one of its vlans
191 struct sta_info
*sta_info_get_bss(struct ieee80211_sub_if_data
*sdata
,
194 struct ieee80211_local
*local
= sdata
->local
;
195 struct rhlist_head
*tmp
;
196 struct sta_info
*sta
;
199 for_each_sta_info(local
, addr
, sta
, tmp
) {
200 if (sta
->sdata
== sdata
||
201 (sta
->sdata
->bss
&& sta
->sdata
->bss
== sdata
->bss
)) {
203 /* this is safe as the caller must already hold
204 * another rcu read section or the mutex
213 struct sta_info
*sta_info_get_by_addrs(struct ieee80211_local
*local
,
214 const u8
*sta_addr
, const u8
*vif_addr
)
216 struct rhlist_head
*tmp
;
217 struct sta_info
*sta
;
219 for_each_sta_info(local
, sta_addr
, sta
, tmp
) {
220 if (ether_addr_equal(vif_addr
, sta
->sdata
->vif
.addr
))
227 struct sta_info
*sta_info_get_by_idx(struct ieee80211_sub_if_data
*sdata
,
230 struct ieee80211_local
*local
= sdata
->local
;
231 struct sta_info
*sta
;
234 list_for_each_entry_rcu(sta
, &local
->sta_list
, list
,
235 lockdep_is_held(&local
->sta_mtx
)) {
236 if (sdata
!= sta
->sdata
)
249 * sta_info_free - free STA
251 * @local: pointer to the global information
252 * @sta: STA info to free
254 * This function must undo everything done by sta_info_alloc()
255 * that may happen before sta_info_insert(). It may only be
256 * called when sta_info_insert() has not been attempted (and
257 * if that fails, the station is freed anyway.)
259 void sta_info_free(struct ieee80211_local
*local
, struct sta_info
*sta
)
262 rate_control_free_sta(sta
);
264 sta_dbg(sta
->sdata
, "Destroyed STA %pM\n", sta
->sta
.addr
);
267 kfree(to_txq_info(sta
->sta
.txq
[0]));
268 kfree(rcu_dereference_raw(sta
->sta
.rates
));
269 #ifdef CONFIG_MAC80211_MESH
272 free_percpu(sta
->pcpu_rx_stats
);
276 /* Caller must hold local->sta_mtx */
277 static int sta_info_hash_add(struct ieee80211_local
*local
,
278 struct sta_info
*sta
)
280 return rhltable_insert(&local
->sta_hash
, &sta
->hash_node
,
284 static void sta_deliver_ps_frames(struct work_struct
*wk
)
286 struct sta_info
*sta
;
288 sta
= container_of(wk
, struct sta_info
, drv_deliver_wk
);
294 if (!test_sta_flag(sta
, WLAN_STA_PS_STA
))
295 ieee80211_sta_ps_deliver_wakeup(sta
);
296 else if (test_and_clear_sta_flag(sta
, WLAN_STA_PSPOLL
))
297 ieee80211_sta_ps_deliver_poll_response(sta
);
298 else if (test_and_clear_sta_flag(sta
, WLAN_STA_UAPSD
))
299 ieee80211_sta_ps_deliver_uapsd(sta
);
303 static int sta_prepare_rate_control(struct ieee80211_local
*local
,
304 struct sta_info
*sta
, gfp_t gfp
)
306 if (ieee80211_hw_check(&local
->hw
, HAS_RATE_CONTROL
))
309 sta
->rate_ctrl
= local
->rate_ctrl
;
310 sta
->rate_ctrl_priv
= rate_control_alloc_sta(sta
->rate_ctrl
,
312 if (!sta
->rate_ctrl_priv
)
318 struct sta_info
*sta_info_alloc(struct ieee80211_sub_if_data
*sdata
,
319 const u8
*addr
, gfp_t gfp
)
321 struct ieee80211_local
*local
= sdata
->local
;
322 struct ieee80211_hw
*hw
= &local
->hw
;
323 struct sta_info
*sta
;
326 sta
= kzalloc(sizeof(*sta
) + hw
->sta_data_size
, gfp
);
330 if (ieee80211_hw_check(hw
, USES_RSS
)) {
332 alloc_percpu_gfp(struct ieee80211_sta_rx_stats
, gfp
);
333 if (!sta
->pcpu_rx_stats
)
337 spin_lock_init(&sta
->lock
);
338 spin_lock_init(&sta
->ps_lock
);
339 INIT_WORK(&sta
->drv_deliver_wk
, sta_deliver_ps_frames
);
340 INIT_WORK(&sta
->ampdu_mlme
.work
, ieee80211_ba_session_work
);
341 mutex_init(&sta
->ampdu_mlme
.mtx
);
342 #ifdef CONFIG_MAC80211_MESH
343 if (ieee80211_vif_is_mesh(&sdata
->vif
)) {
344 sta
->mesh
= kzalloc(sizeof(*sta
->mesh
), gfp
);
347 sta
->mesh
->plink_sta
= sta
;
348 spin_lock_init(&sta
->mesh
->plink_lock
);
349 if (ieee80211_vif_is_mesh(&sdata
->vif
) &&
350 !sdata
->u
.mesh
.user_mpm
)
351 timer_setup(&sta
->mesh
->plink_timer
, mesh_plink_timer
,
353 sta
->mesh
->nonpeer_pm
= NL80211_MESH_POWER_ACTIVE
;
357 memcpy(sta
->addr
, addr
, ETH_ALEN
);
358 memcpy(sta
->sta
.addr
, addr
, ETH_ALEN
);
359 sta
->sta
.max_rx_aggregation_subframes
=
360 local
->hw
.max_rx_aggregation_subframes
;
362 /* Extended Key ID needs to install keys for keyid 0 and 1 Rx-only.
363 * The Tx path starts to use a key as soon as the key slot ptk_idx
364 * references to is not NULL. To not use the initial Rx-only key
365 * prematurely for Tx initialize ptk_idx to an impossible PTK keyid
366 * which always will refer to a NULL key.
368 BUILD_BUG_ON(ARRAY_SIZE(sta
->ptk
) <= INVALID_PTK_KEYIDX
);
369 sta
->ptk_idx
= INVALID_PTK_KEYIDX
;
373 sta
->rx_stats
.last_rx
= jiffies
;
375 u64_stats_init(&sta
->rx_stats
.syncp
);
377 sta
->sta_state
= IEEE80211_STA_NONE
;
379 /* Mark TID as unreserved */
380 sta
->reserved_tid
= IEEE80211_TID_UNRESERVED
;
382 sta
->last_connected
= ktime_get_seconds();
383 ewma_signal_init(&sta
->rx_stats_avg
.signal
);
384 ewma_avg_signal_init(&sta
->status_stats
.avg_ack_signal
);
385 for (i
= 0; i
< ARRAY_SIZE(sta
->rx_stats_avg
.chain_signal
); i
++)
386 ewma_signal_init(&sta
->rx_stats_avg
.chain_signal
[i
]);
388 if (local
->ops
->wake_tx_queue
) {
390 int size
= sizeof(struct txq_info
) +
391 ALIGN(hw
->txq_data_size
, sizeof(void *));
393 txq_data
= kcalloc(ARRAY_SIZE(sta
->sta
.txq
), size
, gfp
);
397 for (i
= 0; i
< ARRAY_SIZE(sta
->sta
.txq
); i
++) {
398 struct txq_info
*txq
= txq_data
+ i
* size
;
400 /* might not do anything for the bufferable MMPDU TXQ */
401 ieee80211_txq_init(sdata
, sta
, txq
, i
);
405 if (sta_prepare_rate_control(local
, sta
, gfp
))
408 sta
->airtime_weight
= IEEE80211_DEFAULT_AIRTIME_WEIGHT
;
410 for (i
= 0; i
< IEEE80211_NUM_ACS
; i
++) {
411 skb_queue_head_init(&sta
->ps_tx_buf
[i
]);
412 skb_queue_head_init(&sta
->tx_filtered
[i
]);
413 sta
->airtime
[i
].deficit
= sta
->airtime_weight
;
414 atomic_set(&sta
->airtime
[i
].aql_tx_pending
, 0);
415 sta
->airtime
[i
].aql_limit_low
= local
->aql_txq_limit_low
[i
];
416 sta
->airtime
[i
].aql_limit_high
= local
->aql_txq_limit_high
[i
];
419 for (i
= 0; i
< IEEE80211_NUM_TIDS
; i
++)
420 sta
->last_seq_ctrl
[i
] = cpu_to_le16(USHRT_MAX
);
422 for (i
= 0; i
< NUM_NL80211_BANDS
; i
++) {
426 if (!hw
->wiphy
->bands
[i
])
430 case NL80211_BAND_2GHZ
:
432 * We use both here, even if we cannot really know for
433 * sure the station will support both, but the only use
434 * for this is when we don't know anything yet and send
435 * management frames, and then we'll pick the lowest
436 * possible rate anyway.
437 * If we don't include _G here, we cannot find a rate
438 * in P2P, and thus trigger the WARN_ONCE() in rate.c
440 mandatory
= IEEE80211_RATE_MANDATORY_B
|
441 IEEE80211_RATE_MANDATORY_G
;
443 case NL80211_BAND_5GHZ
:
444 mandatory
= IEEE80211_RATE_MANDATORY_A
;
446 case NL80211_BAND_60GHZ
:
452 for (r
= 0; r
< hw
->wiphy
->bands
[i
]->n_bitrates
; r
++) {
453 struct ieee80211_rate
*rate
;
455 rate
= &hw
->wiphy
->bands
[i
]->bitrates
[r
];
457 if (!(rate
->flags
& mandatory
))
459 sta
->sta
.supp_rates
[i
] |= BIT(r
);
463 sta
->sta
.smps_mode
= IEEE80211_SMPS_OFF
;
464 if (sdata
->vif
.type
== NL80211_IFTYPE_AP
||
465 sdata
->vif
.type
== NL80211_IFTYPE_AP_VLAN
) {
466 struct ieee80211_supported_band
*sband
;
469 sband
= ieee80211_get_sband(sdata
);
473 smps
= (sband
->ht_cap
.cap
& IEEE80211_HT_CAP_SM_PS
) >>
474 IEEE80211_HT_CAP_SM_PS_SHIFT
;
476 * Assume that hostapd advertises our caps in the beacon and
477 * this is the known_smps_mode for a station that just assciated
480 case WLAN_HT_SMPS_CONTROL_DISABLED
:
481 sta
->known_smps_mode
= IEEE80211_SMPS_OFF
;
483 case WLAN_HT_SMPS_CONTROL_STATIC
:
484 sta
->known_smps_mode
= IEEE80211_SMPS_STATIC
;
486 case WLAN_HT_SMPS_CONTROL_DYNAMIC
:
487 sta
->known_smps_mode
= IEEE80211_SMPS_DYNAMIC
;
494 sta
->sta
.max_rc_amsdu_len
= IEEE80211_MAX_MPDU_LEN_HT_BA
;
496 sta
->cparams
.ce_threshold
= CODEL_DISABLED_THRESHOLD
;
497 sta
->cparams
.target
= MS2TIME(20);
498 sta
->cparams
.interval
= MS2TIME(100);
499 sta
->cparams
.ecn
= true;
501 sta_dbg(sdata
, "Allocated STA %pM\n", sta
->sta
.addr
);
507 kfree(to_txq_info(sta
->sta
.txq
[0]));
509 free_percpu(sta
->pcpu_rx_stats
);
510 #ifdef CONFIG_MAC80211_MESH
517 static int sta_info_insert_check(struct sta_info
*sta
)
519 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
522 * Can't be a WARN_ON because it can be triggered through a race:
523 * something inserts a STA (on one CPU) without holding the RTNL
524 * and another CPU turns off the net device.
526 if (unlikely(!ieee80211_sdata_running(sdata
)))
529 if (WARN_ON(ether_addr_equal(sta
->sta
.addr
, sdata
->vif
.addr
) ||
530 is_multicast_ether_addr(sta
->sta
.addr
)))
533 /* The RCU read lock is required by rhashtable due to
534 * asynchronous resize/rehash. We also require the mutex
538 lockdep_assert_held(&sdata
->local
->sta_mtx
);
539 if (ieee80211_hw_check(&sdata
->local
->hw
, NEEDS_UNIQUE_STA_ADDR
) &&
540 ieee80211_find_sta_by_ifaddr(&sdata
->local
->hw
, sta
->addr
, NULL
)) {
549 static int sta_info_insert_drv_state(struct ieee80211_local
*local
,
550 struct ieee80211_sub_if_data
*sdata
,
551 struct sta_info
*sta
)
553 enum ieee80211_sta_state state
;
556 for (state
= IEEE80211_STA_NOTEXIST
; state
< sta
->sta_state
; state
++) {
557 err
= drv_sta_state(local
, sdata
, sta
, state
, state
+ 1);
564 * Drivers using legacy sta_add/sta_remove callbacks only
565 * get uploaded set to true after sta_add is called.
567 if (!local
->ops
->sta_add
)
568 sta
->uploaded
= true;
572 if (sdata
->vif
.type
== NL80211_IFTYPE_ADHOC
) {
574 "failed to move IBSS STA %pM to state %d (%d) - keeping it anyway\n",
575 sta
->sta
.addr
, state
+ 1, err
);
579 /* unwind on error */
580 for (; state
> IEEE80211_STA_NOTEXIST
; state
--)
581 WARN_ON(drv_sta_state(local
, sdata
, sta
, state
, state
- 1));
587 ieee80211_recalc_p2p_go_ps_allowed(struct ieee80211_sub_if_data
*sdata
)
589 struct ieee80211_local
*local
= sdata
->local
;
590 bool allow_p2p_go_ps
= sdata
->vif
.p2p
;
591 struct sta_info
*sta
;
594 list_for_each_entry_rcu(sta
, &local
->sta_list
, list
) {
595 if (sdata
!= sta
->sdata
||
596 !test_sta_flag(sta
, WLAN_STA_ASSOC
))
598 if (!sta
->sta
.support_p2p_ps
) {
599 allow_p2p_go_ps
= false;
605 if (allow_p2p_go_ps
!= sdata
->vif
.bss_conf
.allow_p2p_go_ps
) {
606 sdata
->vif
.bss_conf
.allow_p2p_go_ps
= allow_p2p_go_ps
;
607 ieee80211_bss_info_change_notify(sdata
, BSS_CHANGED_P2P_PS
);
612 * should be called with sta_mtx locked
613 * this function replaces the mutex lock
616 static int sta_info_insert_finish(struct sta_info
*sta
) __acquires(RCU
)
618 struct ieee80211_local
*local
= sta
->local
;
619 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
620 struct station_info
*sinfo
= NULL
;
623 lockdep_assert_held(&local
->sta_mtx
);
625 /* check if STA exists already */
626 if (sta_info_get_bss(sdata
, sta
->sta
.addr
)) {
631 sinfo
= kzalloc(sizeof(struct station_info
), GFP_KERNEL
);
638 local
->sta_generation
++;
641 /* simplify things and don't accept BA sessions yet */
642 set_sta_flag(sta
, WLAN_STA_BLOCK_BA
);
644 /* make the station visible */
645 err
= sta_info_hash_add(local
, sta
);
649 list_add_tail_rcu(&sta
->list
, &local
->sta_list
);
652 err
= sta_info_insert_drv_state(local
, sdata
, sta
);
656 set_sta_flag(sta
, WLAN_STA_INSERTED
);
658 if (sta
->sta_state
>= IEEE80211_STA_ASSOC
) {
659 ieee80211_recalc_min_chandef(sta
->sdata
);
660 if (!sta
->sta
.support_p2p_ps
)
661 ieee80211_recalc_p2p_go_ps_allowed(sta
->sdata
);
664 /* accept BA sessions now */
665 clear_sta_flag(sta
, WLAN_STA_BLOCK_BA
);
667 ieee80211_sta_debugfs_add(sta
);
668 rate_control_add_sta_debugfs(sta
);
670 sinfo
->generation
= local
->sta_generation
;
671 cfg80211_new_sta(sdata
->dev
, sta
->sta
.addr
, sinfo
, GFP_KERNEL
);
674 sta_dbg(sdata
, "Inserted STA %pM\n", sta
->sta
.addr
);
676 /* move reference to rcu-protected */
678 mutex_unlock(&local
->sta_mtx
);
680 if (ieee80211_vif_is_mesh(&sdata
->vif
))
681 mesh_accept_plinks_update(sdata
);
685 sta_info_hash_del(local
, sta
);
686 list_del_rcu(&sta
->list
);
690 __cleanup_single_sta(sta
);
692 mutex_unlock(&local
->sta_mtx
);
698 int sta_info_insert_rcu(struct sta_info
*sta
) __acquires(RCU
)
700 struct ieee80211_local
*local
= sta
->local
;
705 mutex_lock(&local
->sta_mtx
);
707 err
= sta_info_insert_check(sta
);
709 mutex_unlock(&local
->sta_mtx
);
714 err
= sta_info_insert_finish(sta
);
720 sta_info_free(local
, sta
);
724 int sta_info_insert(struct sta_info
*sta
)
726 int err
= sta_info_insert_rcu(sta
);
733 static inline void __bss_tim_set(u8
*tim
, u16 id
)
736 * This format has been mandated by the IEEE specifications,
737 * so this line may not be changed to use the __set_bit() format.
739 tim
[id
/ 8] |= (1 << (id
% 8));
742 static inline void __bss_tim_clear(u8
*tim
, u16 id
)
745 * This format has been mandated by the IEEE specifications,
746 * so this line may not be changed to use the __clear_bit() format.
748 tim
[id
/ 8] &= ~(1 << (id
% 8));
751 static inline bool __bss_tim_get(u8
*tim
, u16 id
)
754 * This format has been mandated by the IEEE specifications,
755 * so this line may not be changed to use the test_bit() format.
757 return tim
[id
/ 8] & (1 << (id
% 8));
760 static unsigned long ieee80211_tids_for_ac(int ac
)
762 /* If we ever support TIDs > 7, this obviously needs to be adjusted */
764 case IEEE80211_AC_VO
:
765 return BIT(6) | BIT(7);
766 case IEEE80211_AC_VI
:
767 return BIT(4) | BIT(5);
768 case IEEE80211_AC_BE
:
769 return BIT(0) | BIT(3);
770 case IEEE80211_AC_BK
:
771 return BIT(1) | BIT(2);
778 static void __sta_info_recalc_tim(struct sta_info
*sta
, bool ignore_pending
)
780 struct ieee80211_local
*local
= sta
->local
;
782 bool indicate_tim
= false;
783 u8 ignore_for_tim
= sta
->sta
.uapsd_queues
;
785 u16 id
= sta
->sta
.aid
;
787 if (sta
->sdata
->vif
.type
== NL80211_IFTYPE_AP
||
788 sta
->sdata
->vif
.type
== NL80211_IFTYPE_AP_VLAN
) {
789 if (WARN_ON_ONCE(!sta
->sdata
->bss
))
792 ps
= &sta
->sdata
->bss
->ps
;
793 #ifdef CONFIG_MAC80211_MESH
794 } else if (ieee80211_vif_is_mesh(&sta
->sdata
->vif
)) {
795 ps
= &sta
->sdata
->u
.mesh
.ps
;
801 /* No need to do anything if the driver does all */
802 if (ieee80211_hw_check(&local
->hw
, AP_LINK_PS
) && !local
->ops
->set_tim
)
809 * If all ACs are delivery-enabled then we should build
810 * the TIM bit for all ACs anyway; if only some are then
811 * we ignore those and build the TIM bit using only the
814 if (ignore_for_tim
== BIT(IEEE80211_NUM_ACS
) - 1)
818 ignore_for_tim
= BIT(IEEE80211_NUM_ACS
) - 1;
820 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++) {
823 if (ignore_for_tim
& ieee80211_ac_to_qos_mask
[ac
])
826 indicate_tim
|= !skb_queue_empty(&sta
->tx_filtered
[ac
]) ||
827 !skb_queue_empty(&sta
->ps_tx_buf
[ac
]);
831 tids
= ieee80211_tids_for_ac(ac
);
834 sta
->driver_buffered_tids
& tids
;
836 sta
->txq_buffered_tids
& tids
;
840 spin_lock_bh(&local
->tim_lock
);
842 if (indicate_tim
== __bss_tim_get(ps
->tim
, id
))
846 __bss_tim_set(ps
->tim
, id
);
848 __bss_tim_clear(ps
->tim
, id
);
850 if (local
->ops
->set_tim
&& !WARN_ON(sta
->dead
)) {
851 local
->tim_in_locked_section
= true;
852 drv_set_tim(local
, &sta
->sta
, indicate_tim
);
853 local
->tim_in_locked_section
= false;
857 spin_unlock_bh(&local
->tim_lock
);
860 void sta_info_recalc_tim(struct sta_info
*sta
)
862 __sta_info_recalc_tim(sta
, false);
865 static bool sta_info_buffer_expired(struct sta_info
*sta
, struct sk_buff
*skb
)
867 struct ieee80211_tx_info
*info
;
873 info
= IEEE80211_SKB_CB(skb
);
875 /* Timeout: (2 * listen_interval * beacon_int * 1024 / 1000000) sec */
876 timeout
= (sta
->listen_interval
*
877 sta
->sdata
->vif
.bss_conf
.beacon_int
*
879 if (timeout
< STA_TX_BUFFER_EXPIRE
)
880 timeout
= STA_TX_BUFFER_EXPIRE
;
881 return time_after(jiffies
, info
->control
.jiffies
+ timeout
);
885 static bool sta_info_cleanup_expire_buffered_ac(struct ieee80211_local
*local
,
886 struct sta_info
*sta
, int ac
)
892 * First check for frames that should expire on the filtered
893 * queue. Frames here were rejected by the driver and are on
894 * a separate queue to avoid reordering with normal PS-buffered
895 * frames. They also aren't accounted for right now in the
896 * total_ps_buffered counter.
899 spin_lock_irqsave(&sta
->tx_filtered
[ac
].lock
, flags
);
900 skb
= skb_peek(&sta
->tx_filtered
[ac
]);
901 if (sta_info_buffer_expired(sta
, skb
))
902 skb
= __skb_dequeue(&sta
->tx_filtered
[ac
]);
905 spin_unlock_irqrestore(&sta
->tx_filtered
[ac
].lock
, flags
);
908 * Frames are queued in order, so if this one
909 * hasn't expired yet we can stop testing. If
910 * we actually reached the end of the queue we
911 * also need to stop, of course.
915 ieee80211_free_txskb(&local
->hw
, skb
);
919 * Now also check the normal PS-buffered queue, this will
920 * only find something if the filtered queue was emptied
921 * since the filtered frames are all before the normal PS
925 spin_lock_irqsave(&sta
->ps_tx_buf
[ac
].lock
, flags
);
926 skb
= skb_peek(&sta
->ps_tx_buf
[ac
]);
927 if (sta_info_buffer_expired(sta
, skb
))
928 skb
= __skb_dequeue(&sta
->ps_tx_buf
[ac
]);
931 spin_unlock_irqrestore(&sta
->ps_tx_buf
[ac
].lock
, flags
);
934 * frames are queued in order, so if this one
935 * hasn't expired yet (or we reached the end of
936 * the queue) we can stop testing
941 local
->total_ps_buffered
--;
942 ps_dbg(sta
->sdata
, "Buffered frame expired (STA %pM)\n",
944 ieee80211_free_txskb(&local
->hw
, skb
);
948 * Finally, recalculate the TIM bit for this station -- it might
949 * now be clear because the station was too slow to retrieve its
952 sta_info_recalc_tim(sta
);
955 * Return whether there are any frames still buffered, this is
956 * used to check whether the cleanup timer still needs to run,
957 * if there are no frames we don't need to rearm the timer.
959 return !(skb_queue_empty(&sta
->ps_tx_buf
[ac
]) &&
960 skb_queue_empty(&sta
->tx_filtered
[ac
]));
963 static bool sta_info_cleanup_expire_buffered(struct ieee80211_local
*local
,
964 struct sta_info
*sta
)
966 bool have_buffered
= false;
969 /* This is only necessary for stations on BSS/MBSS interfaces */
970 if (!sta
->sdata
->bss
&&
971 !ieee80211_vif_is_mesh(&sta
->sdata
->vif
))
974 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++)
976 sta_info_cleanup_expire_buffered_ac(local
, sta
, ac
);
978 return have_buffered
;
981 static int __must_check
__sta_info_destroy_part1(struct sta_info
*sta
)
983 struct ieee80211_local
*local
;
984 struct ieee80211_sub_if_data
*sdata
;
995 lockdep_assert_held(&local
->sta_mtx
);
998 * Before removing the station from the driver and
999 * rate control, it might still start new aggregation
1000 * sessions -- block that to make sure the tear-down
1001 * will be sufficient.
1003 set_sta_flag(sta
, WLAN_STA_BLOCK_BA
);
1004 ieee80211_sta_tear_down_BA_sessions(sta
, AGG_STOP_DESTROY_STA
);
1007 * Before removing the station from the driver there might be pending
1008 * rx frames on RSS queues sent prior to the disassociation - wait for
1009 * all such frames to be processed.
1011 drv_sync_rx_queues(local
, sta
);
1013 ret
= sta_info_hash_del(local
, sta
);
1018 * for TDLS peers, make sure to return to the base channel before
1021 if (test_sta_flag(sta
, WLAN_STA_TDLS_OFF_CHANNEL
)) {
1022 drv_tdls_cancel_channel_switch(local
, sdata
, &sta
->sta
);
1023 clear_sta_flag(sta
, WLAN_STA_TDLS_OFF_CHANNEL
);
1026 list_del_rcu(&sta
->list
);
1027 sta
->removed
= true;
1029 drv_sta_pre_rcu_remove(local
, sta
->sdata
, sta
);
1031 if (sdata
->vif
.type
== NL80211_IFTYPE_AP_VLAN
&&
1032 rcu_access_pointer(sdata
->u
.vlan
.sta
) == sta
)
1033 RCU_INIT_POINTER(sdata
->u
.vlan
.sta
, NULL
);
1038 static void __sta_info_destroy_part2(struct sta_info
*sta
)
1040 struct ieee80211_local
*local
= sta
->local
;
1041 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
1042 struct station_info
*sinfo
;
1046 * NOTE: This assumes at least synchronize_net() was done
1047 * after _part1 and before _part2!
1051 lockdep_assert_held(&local
->sta_mtx
);
1053 while (sta
->sta_state
== IEEE80211_STA_AUTHORIZED
) {
1054 ret
= sta_info_move_state(sta
, IEEE80211_STA_ASSOC
);
1058 /* now keys can no longer be reached */
1059 ieee80211_free_sta_keys(local
, sta
);
1061 /* disable TIM bit - last chance to tell driver */
1062 __sta_info_recalc_tim(sta
, true);
1067 local
->sta_generation
++;
1069 while (sta
->sta_state
> IEEE80211_STA_NONE
) {
1070 ret
= sta_info_move_state(sta
, sta
->sta_state
- 1);
1077 if (sta
->uploaded
) {
1078 ret
= drv_sta_state(local
, sdata
, sta
, IEEE80211_STA_NONE
,
1079 IEEE80211_STA_NOTEXIST
);
1080 WARN_ON_ONCE(ret
!= 0);
1083 sta_dbg(sdata
, "Removed STA %pM\n", sta
->sta
.addr
);
1085 sinfo
= kzalloc(sizeof(*sinfo
), GFP_KERNEL
);
1087 sta_set_sinfo(sta
, sinfo
, true);
1088 cfg80211_del_sta_sinfo(sdata
->dev
, sta
->sta
.addr
, sinfo
, GFP_KERNEL
);
1091 ieee80211_sta_debugfs_remove(sta
);
1093 cleanup_single_sta(sta
);
1096 int __must_check
__sta_info_destroy(struct sta_info
*sta
)
1098 int err
= __sta_info_destroy_part1(sta
);
1105 __sta_info_destroy_part2(sta
);
1110 int sta_info_destroy_addr(struct ieee80211_sub_if_data
*sdata
, const u8
*addr
)
1112 struct sta_info
*sta
;
1115 mutex_lock(&sdata
->local
->sta_mtx
);
1116 sta
= sta_info_get(sdata
, addr
);
1117 ret
= __sta_info_destroy(sta
);
1118 mutex_unlock(&sdata
->local
->sta_mtx
);
1123 int sta_info_destroy_addr_bss(struct ieee80211_sub_if_data
*sdata
,
1126 struct sta_info
*sta
;
1129 mutex_lock(&sdata
->local
->sta_mtx
);
1130 sta
= sta_info_get_bss(sdata
, addr
);
1131 ret
= __sta_info_destroy(sta
);
1132 mutex_unlock(&sdata
->local
->sta_mtx
);
1137 static void sta_info_cleanup(struct timer_list
*t
)
1139 struct ieee80211_local
*local
= from_timer(local
, t
, sta_cleanup
);
1140 struct sta_info
*sta
;
1141 bool timer_needed
= false;
1144 list_for_each_entry_rcu(sta
, &local
->sta_list
, list
)
1145 if (sta_info_cleanup_expire_buffered(local
, sta
))
1146 timer_needed
= true;
1149 if (local
->quiescing
)
1155 mod_timer(&local
->sta_cleanup
,
1156 round_jiffies(jiffies
+ STA_INFO_CLEANUP_INTERVAL
));
1159 int sta_info_init(struct ieee80211_local
*local
)
1163 err
= rhltable_init(&local
->sta_hash
, &sta_rht_params
);
1167 spin_lock_init(&local
->tim_lock
);
1168 mutex_init(&local
->sta_mtx
);
1169 INIT_LIST_HEAD(&local
->sta_list
);
1171 timer_setup(&local
->sta_cleanup
, sta_info_cleanup
, 0);
1175 void sta_info_stop(struct ieee80211_local
*local
)
1177 del_timer_sync(&local
->sta_cleanup
);
1178 rhltable_destroy(&local
->sta_hash
);
1182 int __sta_info_flush(struct ieee80211_sub_if_data
*sdata
, bool vlans
)
1184 struct ieee80211_local
*local
= sdata
->local
;
1185 struct sta_info
*sta
, *tmp
;
1186 LIST_HEAD(free_list
);
1191 WARN_ON(vlans
&& sdata
->vif
.type
!= NL80211_IFTYPE_AP
);
1192 WARN_ON(vlans
&& !sdata
->bss
);
1194 mutex_lock(&local
->sta_mtx
);
1195 list_for_each_entry_safe(sta
, tmp
, &local
->sta_list
, list
) {
1196 if (sdata
== sta
->sdata
||
1197 (vlans
&& sdata
->bss
== sta
->sdata
->bss
)) {
1198 if (!WARN_ON(__sta_info_destroy_part1(sta
)))
1199 list_add(&sta
->free_list
, &free_list
);
1204 if (!list_empty(&free_list
)) {
1206 list_for_each_entry_safe(sta
, tmp
, &free_list
, free_list
)
1207 __sta_info_destroy_part2(sta
);
1209 mutex_unlock(&local
->sta_mtx
);
1214 void ieee80211_sta_expire(struct ieee80211_sub_if_data
*sdata
,
1215 unsigned long exp_time
)
1217 struct ieee80211_local
*local
= sdata
->local
;
1218 struct sta_info
*sta
, *tmp
;
1220 mutex_lock(&local
->sta_mtx
);
1222 list_for_each_entry_safe(sta
, tmp
, &local
->sta_list
, list
) {
1223 unsigned long last_active
= ieee80211_sta_last_active(sta
);
1225 if (sdata
!= sta
->sdata
)
1228 if (time_is_before_jiffies(last_active
+ exp_time
)) {
1229 sta_dbg(sta
->sdata
, "expiring inactive STA %pM\n",
1232 if (ieee80211_vif_is_mesh(&sdata
->vif
) &&
1233 test_sta_flag(sta
, WLAN_STA_PS_STA
))
1234 atomic_dec(&sdata
->u
.mesh
.ps
.num_sta_ps
);
1236 WARN_ON(__sta_info_destroy(sta
));
1240 mutex_unlock(&local
->sta_mtx
);
1243 struct ieee80211_sta
*ieee80211_find_sta_by_ifaddr(struct ieee80211_hw
*hw
,
1245 const u8
*localaddr
)
1247 struct ieee80211_local
*local
= hw_to_local(hw
);
1248 struct rhlist_head
*tmp
;
1249 struct sta_info
*sta
;
1252 * Just return a random station if localaddr is NULL
1253 * ... first in list.
1255 for_each_sta_info(local
, addr
, sta
, tmp
) {
1257 !ether_addr_equal(sta
->sdata
->vif
.addr
, localaddr
))
1266 EXPORT_SYMBOL_GPL(ieee80211_find_sta_by_ifaddr
);
1268 struct ieee80211_sta
*ieee80211_find_sta(struct ieee80211_vif
*vif
,
1271 struct sta_info
*sta
;
1276 sta
= sta_info_get_bss(vif_to_sdata(vif
), addr
);
1285 EXPORT_SYMBOL(ieee80211_find_sta
);
1287 /* powersave support code */
1288 void ieee80211_sta_ps_deliver_wakeup(struct sta_info
*sta
)
1290 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
1291 struct ieee80211_local
*local
= sdata
->local
;
1292 struct sk_buff_head pending
;
1293 int filtered
= 0, buffered
= 0, ac
, i
;
1294 unsigned long flags
;
1297 if (sdata
->vif
.type
== NL80211_IFTYPE_AP_VLAN
)
1298 sdata
= container_of(sdata
->bss
, struct ieee80211_sub_if_data
,
1301 if (sdata
->vif
.type
== NL80211_IFTYPE_AP
)
1302 ps
= &sdata
->bss
->ps
;
1303 else if (ieee80211_vif_is_mesh(&sdata
->vif
))
1304 ps
= &sdata
->u
.mesh
.ps
;
1308 clear_sta_flag(sta
, WLAN_STA_SP
);
1310 BUILD_BUG_ON(BITS_TO_LONGS(IEEE80211_NUM_TIDS
) > 1);
1311 sta
->driver_buffered_tids
= 0;
1312 sta
->txq_buffered_tids
= 0;
1314 if (!ieee80211_hw_check(&local
->hw
, AP_LINK_PS
))
1315 drv_sta_notify(local
, sdata
, STA_NOTIFY_AWAKE
, &sta
->sta
);
1317 for (i
= 0; i
< ARRAY_SIZE(sta
->sta
.txq
); i
++) {
1318 if (!sta
->sta
.txq
[i
] || !txq_has_queue(sta
->sta
.txq
[i
]))
1321 schedule_and_wake_txq(local
, to_txq_info(sta
->sta
.txq
[i
]));
1324 skb_queue_head_init(&pending
);
1326 /* sync with ieee80211_tx_h_unicast_ps_buf */
1327 spin_lock(&sta
->ps_lock
);
1328 /* Send all buffered frames to the station */
1329 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++) {
1330 int count
= skb_queue_len(&pending
), tmp
;
1332 spin_lock_irqsave(&sta
->tx_filtered
[ac
].lock
, flags
);
1333 skb_queue_splice_tail_init(&sta
->tx_filtered
[ac
], &pending
);
1334 spin_unlock_irqrestore(&sta
->tx_filtered
[ac
].lock
, flags
);
1335 tmp
= skb_queue_len(&pending
);
1336 filtered
+= tmp
- count
;
1339 spin_lock_irqsave(&sta
->ps_tx_buf
[ac
].lock
, flags
);
1340 skb_queue_splice_tail_init(&sta
->ps_tx_buf
[ac
], &pending
);
1341 spin_unlock_irqrestore(&sta
->ps_tx_buf
[ac
].lock
, flags
);
1342 tmp
= skb_queue_len(&pending
);
1343 buffered
+= tmp
- count
;
1346 ieee80211_add_pending_skbs(local
, &pending
);
1348 /* now we're no longer in the deliver code */
1349 clear_sta_flag(sta
, WLAN_STA_PS_DELIVER
);
1351 /* The station might have polled and then woken up before we responded,
1352 * so clear these flags now to avoid them sticking around.
1354 clear_sta_flag(sta
, WLAN_STA_PSPOLL
);
1355 clear_sta_flag(sta
, WLAN_STA_UAPSD
);
1356 spin_unlock(&sta
->ps_lock
);
1358 atomic_dec(&ps
->num_sta_ps
);
1360 local
->total_ps_buffered
-= buffered
;
1362 sta_info_recalc_tim(sta
);
1365 "STA %pM aid %d sending %d filtered/%d PS frames since STA woke up\n",
1366 sta
->sta
.addr
, sta
->sta
.aid
, filtered
, buffered
);
1368 ieee80211_check_fast_xmit(sta
);
1371 static void ieee80211_send_null_response(struct sta_info
*sta
, int tid
,
1372 enum ieee80211_frame_release_type reason
,
1373 bool call_driver
, bool more_data
)
1375 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
1376 struct ieee80211_local
*local
= sdata
->local
;
1377 struct ieee80211_qos_hdr
*nullfunc
;
1378 struct sk_buff
*skb
;
1379 int size
= sizeof(*nullfunc
);
1381 bool qos
= sta
->sta
.wme
;
1382 struct ieee80211_tx_info
*info
;
1383 struct ieee80211_chanctx_conf
*chanctx_conf
;
1385 /* Don't send NDPs when STA is connected HE */
1386 if (sdata
->vif
.type
== NL80211_IFTYPE_STATION
&&
1387 !(sdata
->u
.mgd
.flags
& IEEE80211_STA_DISABLE_HE
))
1391 fc
= cpu_to_le16(IEEE80211_FTYPE_DATA
|
1392 IEEE80211_STYPE_QOS_NULLFUNC
|
1393 IEEE80211_FCTL_FROMDS
);
1396 fc
= cpu_to_le16(IEEE80211_FTYPE_DATA
|
1397 IEEE80211_STYPE_NULLFUNC
|
1398 IEEE80211_FCTL_FROMDS
);
1401 skb
= dev_alloc_skb(local
->hw
.extra_tx_headroom
+ size
);
1405 skb_reserve(skb
, local
->hw
.extra_tx_headroom
);
1407 nullfunc
= skb_put(skb
, size
);
1408 nullfunc
->frame_control
= fc
;
1409 nullfunc
->duration_id
= 0;
1410 memcpy(nullfunc
->addr1
, sta
->sta
.addr
, ETH_ALEN
);
1411 memcpy(nullfunc
->addr2
, sdata
->vif
.addr
, ETH_ALEN
);
1412 memcpy(nullfunc
->addr3
, sdata
->vif
.addr
, ETH_ALEN
);
1413 nullfunc
->seq_ctrl
= 0;
1415 skb
->priority
= tid
;
1416 skb_set_queue_mapping(skb
, ieee802_1d_to_ac
[tid
]);
1418 nullfunc
->qos_ctrl
= cpu_to_le16(tid
);
1420 if (reason
== IEEE80211_FRAME_RELEASE_UAPSD
) {
1421 nullfunc
->qos_ctrl
|=
1422 cpu_to_le16(IEEE80211_QOS_CTL_EOSP
);
1424 nullfunc
->frame_control
|=
1425 cpu_to_le16(IEEE80211_FCTL_MOREDATA
);
1429 info
= IEEE80211_SKB_CB(skb
);
1432 * Tell TX path to send this frame even though the
1433 * STA may still remain is PS mode after this frame
1434 * exchange. Also set EOSP to indicate this packet
1435 * ends the poll/service period.
1437 info
->flags
|= IEEE80211_TX_CTL_NO_PS_BUFFER
|
1438 IEEE80211_TX_STATUS_EOSP
|
1439 IEEE80211_TX_CTL_REQ_TX_STATUS
;
1441 info
->control
.flags
|= IEEE80211_TX_CTRL_PS_RESPONSE
;
1444 drv_allow_buffered_frames(local
, sta
, BIT(tid
), 1,
1447 skb
->dev
= sdata
->dev
;
1450 chanctx_conf
= rcu_dereference(sdata
->vif
.chanctx_conf
);
1451 if (WARN_ON(!chanctx_conf
)) {
1457 info
->band
= chanctx_conf
->def
.chan
->band
;
1458 ieee80211_xmit(sdata
, sta
, skb
, 0);
1462 static int find_highest_prio_tid(unsigned long tids
)
1464 /* lower 3 TIDs aren't ordered perfectly */
1466 return fls(tids
) - 1;
1467 /* TID 0 is BE just like TID 3 */
1470 return fls(tids
) - 1;
1473 /* Indicates if the MORE_DATA bit should be set in the last
1474 * frame obtained by ieee80211_sta_ps_get_frames.
1475 * Note that driver_release_tids is relevant only if
1476 * reason = IEEE80211_FRAME_RELEASE_PSPOLL
1479 ieee80211_sta_ps_more_data(struct sta_info
*sta
, u8 ignored_acs
,
1480 enum ieee80211_frame_release_type reason
,
1481 unsigned long driver_release_tids
)
1485 /* If the driver has data on more than one TID then
1486 * certainly there's more data if we release just a
1487 * single frame now (from a single TID). This will
1488 * only happen for PS-Poll.
1490 if (reason
== IEEE80211_FRAME_RELEASE_PSPOLL
&&
1491 hweight16(driver_release_tids
) > 1)
1494 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++) {
1495 if (ignored_acs
& ieee80211_ac_to_qos_mask
[ac
])
1498 if (!skb_queue_empty(&sta
->tx_filtered
[ac
]) ||
1499 !skb_queue_empty(&sta
->ps_tx_buf
[ac
]))
1507 ieee80211_sta_ps_get_frames(struct sta_info
*sta
, int n_frames
, u8 ignored_acs
,
1508 enum ieee80211_frame_release_type reason
,
1509 struct sk_buff_head
*frames
,
1510 unsigned long *driver_release_tids
)
1512 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
1513 struct ieee80211_local
*local
= sdata
->local
;
1516 /* Get response frame(s) and more data bit for the last one. */
1517 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++) {
1520 if (ignored_acs
& ieee80211_ac_to_qos_mask
[ac
])
1523 tids
= ieee80211_tids_for_ac(ac
);
1525 /* if we already have frames from software, then we can't also
1526 * release from hardware queues
1528 if (skb_queue_empty(frames
)) {
1529 *driver_release_tids
|=
1530 sta
->driver_buffered_tids
& tids
;
1531 *driver_release_tids
|= sta
->txq_buffered_tids
& tids
;
1534 if (!*driver_release_tids
) {
1535 struct sk_buff
*skb
;
1537 while (n_frames
> 0) {
1538 skb
= skb_dequeue(&sta
->tx_filtered
[ac
]);
1541 &sta
->ps_tx_buf
[ac
]);
1543 local
->total_ps_buffered
--;
1548 __skb_queue_tail(frames
, skb
);
1552 /* If we have more frames buffered on this AC, then abort the
1553 * loop since we can't send more data from other ACs before
1554 * the buffered frames from this.
1556 if (!skb_queue_empty(&sta
->tx_filtered
[ac
]) ||
1557 !skb_queue_empty(&sta
->ps_tx_buf
[ac
]))
1563 ieee80211_sta_ps_deliver_response(struct sta_info
*sta
,
1564 int n_frames
, u8 ignored_acs
,
1565 enum ieee80211_frame_release_type reason
)
1567 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
1568 struct ieee80211_local
*local
= sdata
->local
;
1569 unsigned long driver_release_tids
= 0;
1570 struct sk_buff_head frames
;
1573 /* Service or PS-Poll period starts */
1574 set_sta_flag(sta
, WLAN_STA_SP
);
1576 __skb_queue_head_init(&frames
);
1578 ieee80211_sta_ps_get_frames(sta
, n_frames
, ignored_acs
, reason
,
1579 &frames
, &driver_release_tids
);
1581 more_data
= ieee80211_sta_ps_more_data(sta
, ignored_acs
, reason
, driver_release_tids
);
1583 if (driver_release_tids
&& reason
== IEEE80211_FRAME_RELEASE_PSPOLL
)
1584 driver_release_tids
=
1585 BIT(find_highest_prio_tid(driver_release_tids
));
1587 if (skb_queue_empty(&frames
) && !driver_release_tids
) {
1591 * For PS-Poll, this can only happen due to a race condition
1592 * when we set the TIM bit and the station notices it, but
1593 * before it can poll for the frame we expire it.
1595 * For uAPSD, this is said in the standard (11.2.1.5 h):
1596 * At each unscheduled SP for a non-AP STA, the AP shall
1597 * attempt to transmit at least one MSDU or MMPDU, but no
1598 * more than the value specified in the Max SP Length field
1599 * in the QoS Capability element from delivery-enabled ACs,
1600 * that are destined for the non-AP STA.
1602 * Since we have no other MSDU/MMPDU, transmit a QoS null frame.
1605 /* This will evaluate to 1, 3, 5 or 7. */
1606 for (ac
= IEEE80211_AC_VO
; ac
< IEEE80211_NUM_ACS
; ac
++)
1607 if (!(ignored_acs
& ieee80211_ac_to_qos_mask
[ac
]))
1611 ieee80211_send_null_response(sta
, tid
, reason
, true, false);
1612 } else if (!driver_release_tids
) {
1613 struct sk_buff_head pending
;
1614 struct sk_buff
*skb
;
1617 bool need_null
= false;
1619 skb_queue_head_init(&pending
);
1621 while ((skb
= __skb_dequeue(&frames
))) {
1622 struct ieee80211_tx_info
*info
= IEEE80211_SKB_CB(skb
);
1623 struct ieee80211_hdr
*hdr
= (void *) skb
->data
;
1629 * Tell TX path to send this frame even though the
1630 * STA may still remain is PS mode after this frame
1633 info
->flags
|= IEEE80211_TX_CTL_NO_PS_BUFFER
;
1634 info
->control
.flags
|= IEEE80211_TX_CTRL_PS_RESPONSE
;
1637 * Use MoreData flag to indicate whether there are
1638 * more buffered frames for this STA
1640 if (more_data
|| !skb_queue_empty(&frames
))
1641 hdr
->frame_control
|=
1642 cpu_to_le16(IEEE80211_FCTL_MOREDATA
);
1644 hdr
->frame_control
&=
1645 cpu_to_le16(~IEEE80211_FCTL_MOREDATA
);
1647 if (ieee80211_is_data_qos(hdr
->frame_control
) ||
1648 ieee80211_is_qos_nullfunc(hdr
->frame_control
))
1649 qoshdr
= ieee80211_get_qos_ctl(hdr
);
1651 tids
|= BIT(skb
->priority
);
1653 __skb_queue_tail(&pending
, skb
);
1655 /* end service period after last frame or add one */
1656 if (!skb_queue_empty(&frames
))
1659 if (reason
!= IEEE80211_FRAME_RELEASE_UAPSD
) {
1660 /* for PS-Poll, there's only one frame */
1661 info
->flags
|= IEEE80211_TX_STATUS_EOSP
|
1662 IEEE80211_TX_CTL_REQ_TX_STATUS
;
1666 /* For uAPSD, things are a bit more complicated. If the
1667 * last frame has a QoS header (i.e. is a QoS-data or
1668 * QoS-nulldata frame) then just set the EOSP bit there
1670 * If the frame doesn't have a QoS header (which means
1671 * it should be a bufferable MMPDU) then we can't set
1672 * the EOSP bit in the QoS header; add a QoS-nulldata
1673 * frame to the list to send it after the MMPDU.
1675 * Note that this code is only in the mac80211-release
1676 * code path, we assume that the driver will not buffer
1677 * anything but QoS-data frames, or if it does, will
1678 * create the QoS-nulldata frame by itself if needed.
1680 * Cf. 802.11-2012 10.2.1.10 (c).
1683 *qoshdr
|= IEEE80211_QOS_CTL_EOSP
;
1685 info
->flags
|= IEEE80211_TX_STATUS_EOSP
|
1686 IEEE80211_TX_CTL_REQ_TX_STATUS
;
1688 /* The standard isn't completely clear on this
1689 * as it says the more-data bit should be set
1690 * if there are more BUs. The QoS-Null frame
1691 * we're about to send isn't buffered yet, we
1692 * only create it below, but let's pretend it
1693 * was buffered just in case some clients only
1694 * expect more-data=0 when eosp=1.
1696 hdr
->frame_control
|=
1697 cpu_to_le16(IEEE80211_FCTL_MOREDATA
);
1704 drv_allow_buffered_frames(local
, sta
, tids
, num
,
1707 ieee80211_add_pending_skbs(local
, &pending
);
1710 ieee80211_send_null_response(
1711 sta
, find_highest_prio_tid(tids
),
1712 reason
, false, false);
1714 sta_info_recalc_tim(sta
);
1719 * We need to release a frame that is buffered somewhere in the
1720 * driver ... it'll have to handle that.
1721 * Note that the driver also has to check the number of frames
1722 * on the TIDs we're releasing from - if there are more than
1723 * n_frames it has to set the more-data bit (if we didn't ask
1724 * it to set it anyway due to other buffered frames); if there
1725 * are fewer than n_frames it has to make sure to adjust that
1726 * to allow the service period to end properly.
1728 drv_release_buffered_frames(local
, sta
, driver_release_tids
,
1729 n_frames
, reason
, more_data
);
1732 * Note that we don't recalculate the TIM bit here as it would
1733 * most likely have no effect at all unless the driver told us
1734 * that the TID(s) became empty before returning here from the
1736 * Either way, however, when the driver tells us that the TID(s)
1737 * became empty or we find that a txq became empty, we'll do the
1738 * TIM recalculation.
1741 if (!sta
->sta
.txq
[0])
1744 for (tid
= 0; tid
< ARRAY_SIZE(sta
->sta
.txq
); tid
++) {
1745 if (!sta
->sta
.txq
[tid
] ||
1746 !(driver_release_tids
& BIT(tid
)) ||
1747 txq_has_queue(sta
->sta
.txq
[tid
]))
1750 sta_info_recalc_tim(sta
);
1756 void ieee80211_sta_ps_deliver_poll_response(struct sta_info
*sta
)
1758 u8 ignore_for_response
= sta
->sta
.uapsd_queues
;
1761 * If all ACs are delivery-enabled then we should reply
1762 * from any of them, if only some are enabled we reply
1763 * only from the non-enabled ones.
1765 if (ignore_for_response
== BIT(IEEE80211_NUM_ACS
) - 1)
1766 ignore_for_response
= 0;
1768 ieee80211_sta_ps_deliver_response(sta
, 1, ignore_for_response
,
1769 IEEE80211_FRAME_RELEASE_PSPOLL
);
1772 void ieee80211_sta_ps_deliver_uapsd(struct sta_info
*sta
)
1774 int n_frames
= sta
->sta
.max_sp
;
1775 u8 delivery_enabled
= sta
->sta
.uapsd_queues
;
1778 * If we ever grow support for TSPEC this might happen if
1779 * the TSPEC update from hostapd comes in between a trigger
1780 * frame setting WLAN_STA_UAPSD in the RX path and this
1781 * actually getting called.
1783 if (!delivery_enabled
)
1786 switch (sta
->sta
.max_sp
) {
1797 /* XXX: what is a good value? */
1802 ieee80211_sta_ps_deliver_response(sta
, n_frames
, ~delivery_enabled
,
1803 IEEE80211_FRAME_RELEASE_UAPSD
);
1806 void ieee80211_sta_block_awake(struct ieee80211_hw
*hw
,
1807 struct ieee80211_sta
*pubsta
, bool block
)
1809 struct sta_info
*sta
= container_of(pubsta
, struct sta_info
, sta
);
1811 trace_api_sta_block_awake(sta
->local
, pubsta
, block
);
1814 set_sta_flag(sta
, WLAN_STA_PS_DRIVER
);
1815 ieee80211_clear_fast_xmit(sta
);
1819 if (!test_sta_flag(sta
, WLAN_STA_PS_DRIVER
))
1822 if (!test_sta_flag(sta
, WLAN_STA_PS_STA
)) {
1823 set_sta_flag(sta
, WLAN_STA_PS_DELIVER
);
1824 clear_sta_flag(sta
, WLAN_STA_PS_DRIVER
);
1825 ieee80211_queue_work(hw
, &sta
->drv_deliver_wk
);
1826 } else if (test_sta_flag(sta
, WLAN_STA_PSPOLL
) ||
1827 test_sta_flag(sta
, WLAN_STA_UAPSD
)) {
1828 /* must be asleep in this case */
1829 clear_sta_flag(sta
, WLAN_STA_PS_DRIVER
);
1830 ieee80211_queue_work(hw
, &sta
->drv_deliver_wk
);
1832 clear_sta_flag(sta
, WLAN_STA_PS_DRIVER
);
1833 ieee80211_check_fast_xmit(sta
);
1836 EXPORT_SYMBOL(ieee80211_sta_block_awake
);
1838 void ieee80211_sta_eosp(struct ieee80211_sta
*pubsta
)
1840 struct sta_info
*sta
= container_of(pubsta
, struct sta_info
, sta
);
1841 struct ieee80211_local
*local
= sta
->local
;
1843 trace_api_eosp(local
, pubsta
);
1845 clear_sta_flag(sta
, WLAN_STA_SP
);
1847 EXPORT_SYMBOL(ieee80211_sta_eosp
);
1849 void ieee80211_send_eosp_nullfunc(struct ieee80211_sta
*pubsta
, int tid
)
1851 struct sta_info
*sta
= container_of(pubsta
, struct sta_info
, sta
);
1852 enum ieee80211_frame_release_type reason
;
1855 trace_api_send_eosp_nullfunc(sta
->local
, pubsta
, tid
);
1857 reason
= IEEE80211_FRAME_RELEASE_UAPSD
;
1858 more_data
= ieee80211_sta_ps_more_data(sta
, ~sta
->sta
.uapsd_queues
,
1861 ieee80211_send_null_response(sta
, tid
, reason
, false, more_data
);
1863 EXPORT_SYMBOL(ieee80211_send_eosp_nullfunc
);
1865 void ieee80211_sta_set_buffered(struct ieee80211_sta
*pubsta
,
1866 u8 tid
, bool buffered
)
1868 struct sta_info
*sta
= container_of(pubsta
, struct sta_info
, sta
);
1870 if (WARN_ON(tid
>= IEEE80211_NUM_TIDS
))
1873 trace_api_sta_set_buffered(sta
->local
, pubsta
, tid
, buffered
);
1876 set_bit(tid
, &sta
->driver_buffered_tids
);
1878 clear_bit(tid
, &sta
->driver_buffered_tids
);
1880 sta_info_recalc_tim(sta
);
1882 EXPORT_SYMBOL(ieee80211_sta_set_buffered
);
1884 void ieee80211_sta_register_airtime(struct ieee80211_sta
*pubsta
, u8 tid
,
1885 u32 tx_airtime
, u32 rx_airtime
)
1887 struct sta_info
*sta
= container_of(pubsta
, struct sta_info
, sta
);
1888 struct ieee80211_local
*local
= sta
->sdata
->local
;
1889 u8 ac
= ieee80211_ac_from_tid(tid
);
1892 if (sta
->local
->airtime_flags
& AIRTIME_USE_TX
)
1893 airtime
+= tx_airtime
;
1894 if (sta
->local
->airtime_flags
& AIRTIME_USE_RX
)
1895 airtime
+= rx_airtime
;
1897 spin_lock_bh(&local
->active_txq_lock
[ac
]);
1898 sta
->airtime
[ac
].tx_airtime
+= tx_airtime
;
1899 sta
->airtime
[ac
].rx_airtime
+= rx_airtime
;
1900 sta
->airtime
[ac
].deficit
-= airtime
;
1901 spin_unlock_bh(&local
->active_txq_lock
[ac
]);
1903 EXPORT_SYMBOL(ieee80211_sta_register_airtime
);
1905 void ieee80211_sta_update_pending_airtime(struct ieee80211_local
*local
,
1906 struct sta_info
*sta
, u8 ac
,
1907 u16 tx_airtime
, bool tx_completed
)
1911 if (!wiphy_ext_feature_isset(local
->hw
.wiphy
, NL80211_EXT_FEATURE_AQL
))
1914 if (!tx_completed
) {
1916 atomic_add(tx_airtime
,
1917 &sta
->airtime
[ac
].aql_tx_pending
);
1919 atomic_add(tx_airtime
, &local
->aql_total_pending_airtime
);
1924 tx_pending
= atomic_sub_return(tx_airtime
,
1925 &sta
->airtime
[ac
].aql_tx_pending
);
1926 if (WARN_ONCE(tx_pending
< 0,
1927 "STA %pM AC %d txq pending airtime underflow: %u, %u",
1928 sta
->addr
, ac
, tx_pending
, tx_airtime
))
1929 atomic_cmpxchg(&sta
->airtime
[ac
].aql_tx_pending
,
1933 tx_pending
= atomic_sub_return(tx_airtime
,
1934 &local
->aql_total_pending_airtime
);
1935 if (WARN_ONCE(tx_pending
< 0,
1936 "Device %s AC %d pending airtime underflow: %u, %u",
1937 wiphy_name(local
->hw
.wiphy
), ac
, tx_pending
,
1939 atomic_cmpxchg(&local
->aql_total_pending_airtime
,
1943 int sta_info_move_state(struct sta_info
*sta
,
1944 enum ieee80211_sta_state new_state
)
1948 if (sta
->sta_state
== new_state
)
1951 /* check allowed transitions first */
1953 switch (new_state
) {
1954 case IEEE80211_STA_NONE
:
1955 if (sta
->sta_state
!= IEEE80211_STA_AUTH
)
1958 case IEEE80211_STA_AUTH
:
1959 if (sta
->sta_state
!= IEEE80211_STA_NONE
&&
1960 sta
->sta_state
!= IEEE80211_STA_ASSOC
)
1963 case IEEE80211_STA_ASSOC
:
1964 if (sta
->sta_state
!= IEEE80211_STA_AUTH
&&
1965 sta
->sta_state
!= IEEE80211_STA_AUTHORIZED
)
1968 case IEEE80211_STA_AUTHORIZED
:
1969 if (sta
->sta_state
!= IEEE80211_STA_ASSOC
)
1973 WARN(1, "invalid state %d", new_state
);
1977 sta_dbg(sta
->sdata
, "moving STA %pM to state %d\n",
1978 sta
->sta
.addr
, new_state
);
1981 * notify the driver before the actual changes so it can
1982 * fail the transition
1984 if (test_sta_flag(sta
, WLAN_STA_INSERTED
)) {
1985 int err
= drv_sta_state(sta
->local
, sta
->sdata
, sta
,
1986 sta
->sta_state
, new_state
);
1991 /* reflect the change in all state variables */
1993 switch (new_state
) {
1994 case IEEE80211_STA_NONE
:
1995 if (sta
->sta_state
== IEEE80211_STA_AUTH
)
1996 clear_bit(WLAN_STA_AUTH
, &sta
->_flags
);
1998 case IEEE80211_STA_AUTH
:
1999 if (sta
->sta_state
== IEEE80211_STA_NONE
) {
2000 set_bit(WLAN_STA_AUTH
, &sta
->_flags
);
2001 } else if (sta
->sta_state
== IEEE80211_STA_ASSOC
) {
2002 clear_bit(WLAN_STA_ASSOC
, &sta
->_flags
);
2003 ieee80211_recalc_min_chandef(sta
->sdata
);
2004 if (!sta
->sta
.support_p2p_ps
)
2005 ieee80211_recalc_p2p_go_ps_allowed(sta
->sdata
);
2008 case IEEE80211_STA_ASSOC
:
2009 if (sta
->sta_state
== IEEE80211_STA_AUTH
) {
2010 set_bit(WLAN_STA_ASSOC
, &sta
->_flags
);
2011 sta
->assoc_at
= ktime_get_boottime_ns();
2012 ieee80211_recalc_min_chandef(sta
->sdata
);
2013 if (!sta
->sta
.support_p2p_ps
)
2014 ieee80211_recalc_p2p_go_ps_allowed(sta
->sdata
);
2015 } else if (sta
->sta_state
== IEEE80211_STA_AUTHORIZED
) {
2016 ieee80211_vif_dec_num_mcast(sta
->sdata
);
2017 clear_bit(WLAN_STA_AUTHORIZED
, &sta
->_flags
);
2018 ieee80211_clear_fast_xmit(sta
);
2019 ieee80211_clear_fast_rx(sta
);
2022 case IEEE80211_STA_AUTHORIZED
:
2023 if (sta
->sta_state
== IEEE80211_STA_ASSOC
) {
2024 ieee80211_vif_inc_num_mcast(sta
->sdata
);
2025 set_bit(WLAN_STA_AUTHORIZED
, &sta
->_flags
);
2026 ieee80211_check_fast_xmit(sta
);
2027 ieee80211_check_fast_rx(sta
);
2029 if (sta
->sdata
->vif
.type
== NL80211_IFTYPE_AP_VLAN
||
2030 sta
->sdata
->vif
.type
== NL80211_IFTYPE_AP
)
2031 cfg80211_send_layer2_update(sta
->sdata
->dev
,
2038 sta
->sta_state
= new_state
;
2043 u8
sta_info_tx_streams(struct sta_info
*sta
)
2045 struct ieee80211_sta_ht_cap
*ht_cap
= &sta
->sta
.ht_cap
;
2048 if (!sta
->sta
.ht_cap
.ht_supported
)
2051 if (sta
->sta
.vht_cap
.vht_supported
) {
2054 le16_to_cpu(sta
->sta
.vht_cap
.vht_mcs
.tx_mcs_map
);
2056 for (i
= 7; i
>= 0; i
--)
2057 if ((tx_mcs_map
& (0x3 << (i
* 2))) !=
2058 IEEE80211_VHT_MCS_NOT_SUPPORTED
)
2062 if (ht_cap
->mcs
.rx_mask
[3])
2064 else if (ht_cap
->mcs
.rx_mask
[2])
2066 else if (ht_cap
->mcs
.rx_mask
[1])
2071 if (!(ht_cap
->mcs
.tx_params
& IEEE80211_HT_MCS_TX_RX_DIFF
))
2074 return ((ht_cap
->mcs
.tx_params
& IEEE80211_HT_MCS_TX_MAX_STREAMS_MASK
)
2075 >> IEEE80211_HT_MCS_TX_MAX_STREAMS_SHIFT
) + 1;
2078 static struct ieee80211_sta_rx_stats
*
2079 sta_get_last_rx_stats(struct sta_info
*sta
)
2081 struct ieee80211_sta_rx_stats
*stats
= &sta
->rx_stats
;
2082 struct ieee80211_local
*local
= sta
->local
;
2085 if (!ieee80211_hw_check(&local
->hw
, USES_RSS
))
2088 for_each_possible_cpu(cpu
) {
2089 struct ieee80211_sta_rx_stats
*cpustats
;
2091 cpustats
= per_cpu_ptr(sta
->pcpu_rx_stats
, cpu
);
2093 if (time_after(cpustats
->last_rx
, stats
->last_rx
))
2100 static void sta_stats_decode_rate(struct ieee80211_local
*local
, u32 rate
,
2101 struct rate_info
*rinfo
)
2103 rinfo
->bw
= STA_STATS_GET(BW
, rate
);
2105 switch (STA_STATS_GET(TYPE
, rate
)) {
2106 case STA_STATS_RATE_TYPE_VHT
:
2107 rinfo
->flags
= RATE_INFO_FLAGS_VHT_MCS
;
2108 rinfo
->mcs
= STA_STATS_GET(VHT_MCS
, rate
);
2109 rinfo
->nss
= STA_STATS_GET(VHT_NSS
, rate
);
2110 if (STA_STATS_GET(SGI
, rate
))
2111 rinfo
->flags
|= RATE_INFO_FLAGS_SHORT_GI
;
2113 case STA_STATS_RATE_TYPE_HT
:
2114 rinfo
->flags
= RATE_INFO_FLAGS_MCS
;
2115 rinfo
->mcs
= STA_STATS_GET(HT_MCS
, rate
);
2116 if (STA_STATS_GET(SGI
, rate
))
2117 rinfo
->flags
|= RATE_INFO_FLAGS_SHORT_GI
;
2119 case STA_STATS_RATE_TYPE_LEGACY
: {
2120 struct ieee80211_supported_band
*sband
;
2123 int band
= STA_STATS_GET(LEGACY_BAND
, rate
);
2124 int rate_idx
= STA_STATS_GET(LEGACY_IDX
, rate
);
2126 sband
= local
->hw
.wiphy
->bands
[band
];
2127 brate
= sband
->bitrates
[rate_idx
].bitrate
;
2128 if (rinfo
->bw
== RATE_INFO_BW_5
)
2130 else if (rinfo
->bw
== RATE_INFO_BW_10
)
2134 rinfo
->legacy
= DIV_ROUND_UP(brate
, 1 << shift
);
2137 case STA_STATS_RATE_TYPE_HE
:
2138 rinfo
->flags
= RATE_INFO_FLAGS_HE_MCS
;
2139 rinfo
->mcs
= STA_STATS_GET(HE_MCS
, rate
);
2140 rinfo
->nss
= STA_STATS_GET(HE_NSS
, rate
);
2141 rinfo
->he_gi
= STA_STATS_GET(HE_GI
, rate
);
2142 rinfo
->he_ru_alloc
= STA_STATS_GET(HE_RU
, rate
);
2143 rinfo
->he_dcm
= STA_STATS_GET(HE_DCM
, rate
);
2148 static int sta_set_rate_info_rx(struct sta_info
*sta
, struct rate_info
*rinfo
)
2150 u16 rate
= READ_ONCE(sta_get_last_rx_stats(sta
)->last_rate
);
2152 if (rate
== STA_STATS_RATE_INVALID
)
2155 sta_stats_decode_rate(sta
->local
, rate
, rinfo
);
2159 static inline u64
sta_get_tidstats_msdu(struct ieee80211_sta_rx_stats
*rxstats
,
2166 start
= u64_stats_fetch_begin(&rxstats
->syncp
);
2167 value
= rxstats
->msdu
[tid
];
2168 } while (u64_stats_fetch_retry(&rxstats
->syncp
, start
));
2173 static void sta_set_tidstats(struct sta_info
*sta
,
2174 struct cfg80211_tid_stats
*tidstats
,
2177 struct ieee80211_local
*local
= sta
->local
;
2180 if (!(tidstats
->filled
& BIT(NL80211_TID_STATS_RX_MSDU
))) {
2181 if (!ieee80211_hw_check(&local
->hw
, USES_RSS
))
2182 tidstats
->rx_msdu
+=
2183 sta_get_tidstats_msdu(&sta
->rx_stats
, tid
);
2185 if (sta
->pcpu_rx_stats
) {
2186 for_each_possible_cpu(cpu
) {
2187 struct ieee80211_sta_rx_stats
*cpurxs
;
2189 cpurxs
= per_cpu_ptr(sta
->pcpu_rx_stats
, cpu
);
2190 tidstats
->rx_msdu
+=
2191 sta_get_tidstats_msdu(cpurxs
, tid
);
2195 tidstats
->filled
|= BIT(NL80211_TID_STATS_RX_MSDU
);
2198 if (!(tidstats
->filled
& BIT(NL80211_TID_STATS_TX_MSDU
))) {
2199 tidstats
->filled
|= BIT(NL80211_TID_STATS_TX_MSDU
);
2200 tidstats
->tx_msdu
= sta
->tx_stats
.msdu
[tid
];
2203 if (!(tidstats
->filled
& BIT(NL80211_TID_STATS_TX_MSDU_RETRIES
)) &&
2204 ieee80211_hw_check(&local
->hw
, REPORTS_TX_ACK_STATUS
)) {
2205 tidstats
->filled
|= BIT(NL80211_TID_STATS_TX_MSDU_RETRIES
);
2206 tidstats
->tx_msdu_retries
= sta
->status_stats
.msdu_retries
[tid
];
2209 if (!(tidstats
->filled
& BIT(NL80211_TID_STATS_TX_MSDU_FAILED
)) &&
2210 ieee80211_hw_check(&local
->hw
, REPORTS_TX_ACK_STATUS
)) {
2211 tidstats
->filled
|= BIT(NL80211_TID_STATS_TX_MSDU_FAILED
);
2212 tidstats
->tx_msdu_failed
= sta
->status_stats
.msdu_failed
[tid
];
2215 if (local
->ops
->wake_tx_queue
&& tid
< IEEE80211_NUM_TIDS
) {
2216 spin_lock_bh(&local
->fq
.lock
);
2219 tidstats
->filled
|= BIT(NL80211_TID_STATS_TXQ_STATS
);
2220 ieee80211_fill_txq_stats(&tidstats
->txq_stats
,
2221 to_txq_info(sta
->sta
.txq
[tid
]));
2224 spin_unlock_bh(&local
->fq
.lock
);
2228 static inline u64
sta_get_stats_bytes(struct ieee80211_sta_rx_stats
*rxstats
)
2234 start
= u64_stats_fetch_begin(&rxstats
->syncp
);
2235 value
= rxstats
->bytes
;
2236 } while (u64_stats_fetch_retry(&rxstats
->syncp
, start
));
2241 void sta_set_sinfo(struct sta_info
*sta
, struct station_info
*sinfo
,
2244 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
2245 struct ieee80211_local
*local
= sdata
->local
;
2248 struct ieee80211_sta_rx_stats
*last_rxstats
;
2250 last_rxstats
= sta_get_last_rx_stats(sta
);
2252 sinfo
->generation
= sdata
->local
->sta_generation
;
2254 /* do before driver, so beacon filtering drivers have a
2255 * chance to e.g. just add the number of filtered beacons
2256 * (or just modify the value entirely, of course)
2258 if (sdata
->vif
.type
== NL80211_IFTYPE_STATION
)
2259 sinfo
->rx_beacon
= sdata
->u
.mgd
.count_beacon_signal
;
2261 drv_sta_statistics(local
, sdata
, &sta
->sta
, sinfo
);
2263 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_INACTIVE_TIME
) |
2264 BIT_ULL(NL80211_STA_INFO_STA_FLAGS
) |
2265 BIT_ULL(NL80211_STA_INFO_BSS_PARAM
) |
2266 BIT_ULL(NL80211_STA_INFO_CONNECTED_TIME
) |
2267 BIT_ULL(NL80211_STA_INFO_ASSOC_AT_BOOTTIME
) |
2268 BIT_ULL(NL80211_STA_INFO_RX_DROP_MISC
);
2270 if (sdata
->vif
.type
== NL80211_IFTYPE_STATION
) {
2271 sinfo
->beacon_loss_count
= sdata
->u
.mgd
.beacon_loss_count
;
2272 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_BEACON_LOSS
);
2275 sinfo
->connected_time
= ktime_get_seconds() - sta
->last_connected
;
2276 sinfo
->assoc_at
= sta
->assoc_at
;
2277 sinfo
->inactive_time
=
2278 jiffies_to_msecs(jiffies
- ieee80211_sta_last_active(sta
));
2280 if (!(sinfo
->filled
& (BIT_ULL(NL80211_STA_INFO_TX_BYTES64
) |
2281 BIT_ULL(NL80211_STA_INFO_TX_BYTES
)))) {
2282 sinfo
->tx_bytes
= 0;
2283 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++)
2284 sinfo
->tx_bytes
+= sta
->tx_stats
.bytes
[ac
];
2285 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_TX_BYTES64
);
2288 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_TX_PACKETS
))) {
2289 sinfo
->tx_packets
= 0;
2290 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++)
2291 sinfo
->tx_packets
+= sta
->tx_stats
.packets
[ac
];
2292 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_TX_PACKETS
);
2295 if (!(sinfo
->filled
& (BIT_ULL(NL80211_STA_INFO_RX_BYTES64
) |
2296 BIT_ULL(NL80211_STA_INFO_RX_BYTES
)))) {
2297 if (!ieee80211_hw_check(&local
->hw
, USES_RSS
))
2298 sinfo
->rx_bytes
+= sta_get_stats_bytes(&sta
->rx_stats
);
2300 if (sta
->pcpu_rx_stats
) {
2301 for_each_possible_cpu(cpu
) {
2302 struct ieee80211_sta_rx_stats
*cpurxs
;
2304 cpurxs
= per_cpu_ptr(sta
->pcpu_rx_stats
, cpu
);
2305 sinfo
->rx_bytes
+= sta_get_stats_bytes(cpurxs
);
2309 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_RX_BYTES64
);
2312 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_RX_PACKETS
))) {
2313 sinfo
->rx_packets
= sta
->rx_stats
.packets
;
2314 if (sta
->pcpu_rx_stats
) {
2315 for_each_possible_cpu(cpu
) {
2316 struct ieee80211_sta_rx_stats
*cpurxs
;
2318 cpurxs
= per_cpu_ptr(sta
->pcpu_rx_stats
, cpu
);
2319 sinfo
->rx_packets
+= cpurxs
->packets
;
2322 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_RX_PACKETS
);
2325 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_TX_RETRIES
))) {
2326 sinfo
->tx_retries
= sta
->status_stats
.retry_count
;
2327 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_TX_RETRIES
);
2330 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_TX_FAILED
))) {
2331 sinfo
->tx_failed
= sta
->status_stats
.retry_failed
;
2332 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_TX_FAILED
);
2335 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_RX_DURATION
))) {
2336 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++)
2337 sinfo
->rx_duration
+= sta
->airtime
[ac
].rx_airtime
;
2338 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_RX_DURATION
);
2341 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_TX_DURATION
))) {
2342 for (ac
= 0; ac
< IEEE80211_NUM_ACS
; ac
++)
2343 sinfo
->tx_duration
+= sta
->airtime
[ac
].tx_airtime
;
2344 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_TX_DURATION
);
2347 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_AIRTIME_WEIGHT
))) {
2348 sinfo
->airtime_weight
= sta
->airtime_weight
;
2349 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_AIRTIME_WEIGHT
);
2352 sinfo
->rx_dropped_misc
= sta
->rx_stats
.dropped
;
2353 if (sta
->pcpu_rx_stats
) {
2354 for_each_possible_cpu(cpu
) {
2355 struct ieee80211_sta_rx_stats
*cpurxs
;
2357 cpurxs
= per_cpu_ptr(sta
->pcpu_rx_stats
, cpu
);
2358 sinfo
->rx_dropped_misc
+= cpurxs
->dropped
;
2362 if (sdata
->vif
.type
== NL80211_IFTYPE_STATION
&&
2363 !(sdata
->vif
.driver_flags
& IEEE80211_VIF_BEACON_FILTER
)) {
2364 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_BEACON_RX
) |
2365 BIT_ULL(NL80211_STA_INFO_BEACON_SIGNAL_AVG
);
2366 sinfo
->rx_beacon_signal_avg
= ieee80211_ave_rssi(&sdata
->vif
);
2369 if (ieee80211_hw_check(&sta
->local
->hw
, SIGNAL_DBM
) ||
2370 ieee80211_hw_check(&sta
->local
->hw
, SIGNAL_UNSPEC
)) {
2371 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_SIGNAL
))) {
2372 sinfo
->signal
= (s8
)last_rxstats
->last_signal
;
2373 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_SIGNAL
);
2376 if (!sta
->pcpu_rx_stats
&&
2377 !(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_SIGNAL_AVG
))) {
2379 -ewma_signal_read(&sta
->rx_stats_avg
.signal
);
2380 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_SIGNAL_AVG
);
2384 /* for the average - if pcpu_rx_stats isn't set - rxstats must point to
2385 * the sta->rx_stats struct, so the check here is fine with and without
2388 if (last_rxstats
->chains
&&
2389 !(sinfo
->filled
& (BIT_ULL(NL80211_STA_INFO_CHAIN_SIGNAL
) |
2390 BIT_ULL(NL80211_STA_INFO_CHAIN_SIGNAL_AVG
)))) {
2391 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_CHAIN_SIGNAL
);
2392 if (!sta
->pcpu_rx_stats
)
2393 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_CHAIN_SIGNAL_AVG
);
2395 sinfo
->chains
= last_rxstats
->chains
;
2397 for (i
= 0; i
< ARRAY_SIZE(sinfo
->chain_signal
); i
++) {
2398 sinfo
->chain_signal
[i
] =
2399 last_rxstats
->chain_signal_last
[i
];
2400 sinfo
->chain_signal_avg
[i
] =
2401 -ewma_signal_read(&sta
->rx_stats_avg
.chain_signal
[i
]);
2405 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_TX_BITRATE
))) {
2406 sta_set_rate_info_tx(sta
, &sta
->tx_stats
.last_rate
,
2408 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_TX_BITRATE
);
2411 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_RX_BITRATE
))) {
2412 if (sta_set_rate_info_rx(sta
, &sinfo
->rxrate
) == 0)
2413 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_RX_BITRATE
);
2416 if (tidstats
&& !cfg80211_sinfo_alloc_tid_stats(sinfo
, GFP_KERNEL
)) {
2417 for (i
= 0; i
< IEEE80211_NUM_TIDS
+ 1; i
++)
2418 sta_set_tidstats(sta
, &sinfo
->pertid
[i
], i
);
2421 if (ieee80211_vif_is_mesh(&sdata
->vif
)) {
2422 #ifdef CONFIG_MAC80211_MESH
2423 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_LLID
) |
2424 BIT_ULL(NL80211_STA_INFO_PLID
) |
2425 BIT_ULL(NL80211_STA_INFO_PLINK_STATE
) |
2426 BIT_ULL(NL80211_STA_INFO_LOCAL_PM
) |
2427 BIT_ULL(NL80211_STA_INFO_PEER_PM
) |
2428 BIT_ULL(NL80211_STA_INFO_NONPEER_PM
) |
2429 BIT_ULL(NL80211_STA_INFO_CONNECTED_TO_GATE
);
2431 sinfo
->llid
= sta
->mesh
->llid
;
2432 sinfo
->plid
= sta
->mesh
->plid
;
2433 sinfo
->plink_state
= sta
->mesh
->plink_state
;
2434 if (test_sta_flag(sta
, WLAN_STA_TOFFSET_KNOWN
)) {
2435 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_T_OFFSET
);
2436 sinfo
->t_offset
= sta
->mesh
->t_offset
;
2438 sinfo
->local_pm
= sta
->mesh
->local_pm
;
2439 sinfo
->peer_pm
= sta
->mesh
->peer_pm
;
2440 sinfo
->nonpeer_pm
= sta
->mesh
->nonpeer_pm
;
2441 sinfo
->connected_to_gate
= sta
->mesh
->connected_to_gate
;
2445 sinfo
->bss_param
.flags
= 0;
2446 if (sdata
->vif
.bss_conf
.use_cts_prot
)
2447 sinfo
->bss_param
.flags
|= BSS_PARAM_FLAGS_CTS_PROT
;
2448 if (sdata
->vif
.bss_conf
.use_short_preamble
)
2449 sinfo
->bss_param
.flags
|= BSS_PARAM_FLAGS_SHORT_PREAMBLE
;
2450 if (sdata
->vif
.bss_conf
.use_short_slot
)
2451 sinfo
->bss_param
.flags
|= BSS_PARAM_FLAGS_SHORT_SLOT_TIME
;
2452 sinfo
->bss_param
.dtim_period
= sdata
->vif
.bss_conf
.dtim_period
;
2453 sinfo
->bss_param
.beacon_interval
= sdata
->vif
.bss_conf
.beacon_int
;
2455 sinfo
->sta_flags
.set
= 0;
2456 sinfo
->sta_flags
.mask
= BIT(NL80211_STA_FLAG_AUTHORIZED
) |
2457 BIT(NL80211_STA_FLAG_SHORT_PREAMBLE
) |
2458 BIT(NL80211_STA_FLAG_WME
) |
2459 BIT(NL80211_STA_FLAG_MFP
) |
2460 BIT(NL80211_STA_FLAG_AUTHENTICATED
) |
2461 BIT(NL80211_STA_FLAG_ASSOCIATED
) |
2462 BIT(NL80211_STA_FLAG_TDLS_PEER
);
2463 if (test_sta_flag(sta
, WLAN_STA_AUTHORIZED
))
2464 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_AUTHORIZED
);
2465 if (test_sta_flag(sta
, WLAN_STA_SHORT_PREAMBLE
))
2466 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_SHORT_PREAMBLE
);
2468 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_WME
);
2469 if (test_sta_flag(sta
, WLAN_STA_MFP
))
2470 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_MFP
);
2471 if (test_sta_flag(sta
, WLAN_STA_AUTH
))
2472 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_AUTHENTICATED
);
2473 if (test_sta_flag(sta
, WLAN_STA_ASSOC
))
2474 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_ASSOCIATED
);
2475 if (test_sta_flag(sta
, WLAN_STA_TDLS_PEER
))
2476 sinfo
->sta_flags
.set
|= BIT(NL80211_STA_FLAG_TDLS_PEER
);
2478 thr
= sta_get_expected_throughput(sta
);
2481 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_EXPECTED_THROUGHPUT
);
2482 sinfo
->expected_throughput
= thr
;
2485 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_ACK_SIGNAL
)) &&
2486 sta
->status_stats
.ack_signal_filled
) {
2487 sinfo
->ack_signal
= sta
->status_stats
.last_ack_signal
;
2488 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_ACK_SIGNAL
);
2491 if (!(sinfo
->filled
& BIT_ULL(NL80211_STA_INFO_ACK_SIGNAL_AVG
)) &&
2492 sta
->status_stats
.ack_signal_filled
) {
2493 sinfo
->avg_ack_signal
=
2494 -(s8
)ewma_avg_signal_read(
2495 &sta
->status_stats
.avg_ack_signal
);
2497 BIT_ULL(NL80211_STA_INFO_ACK_SIGNAL_AVG
);
2500 if (ieee80211_vif_is_mesh(&sdata
->vif
)) {
2501 sinfo
->filled
|= BIT_ULL(NL80211_STA_INFO_AIRTIME_LINK_METRIC
);
2502 sinfo
->airtime_link_metric
=
2503 airtime_link_metric_get(local
, sta
);
2507 u32
sta_get_expected_throughput(struct sta_info
*sta
)
2509 struct ieee80211_sub_if_data
*sdata
= sta
->sdata
;
2510 struct ieee80211_local
*local
= sdata
->local
;
2511 struct rate_control_ref
*ref
= NULL
;
2514 if (test_sta_flag(sta
, WLAN_STA_RATE_CONTROL
))
2515 ref
= local
->rate_ctrl
;
2517 /* check if the driver has a SW RC implementation */
2518 if (ref
&& ref
->ops
->get_expected_throughput
)
2519 thr
= ref
->ops
->get_expected_throughput(sta
->rate_ctrl_priv
);
2521 thr
= drv_get_expected_throughput(local
, sta
);
2526 unsigned long ieee80211_sta_last_active(struct sta_info
*sta
)
2528 struct ieee80211_sta_rx_stats
*stats
= sta_get_last_rx_stats(sta
);
2530 if (!sta
->status_stats
.last_ack
||
2531 time_after(stats
->last_rx
, sta
->status_stats
.last_ack
))
2532 return stats
->last_rx
;
2533 return sta
->status_stats
.last_ack
;
2536 static void sta_update_codel_params(struct sta_info
*sta
, u32 thr
)
2538 if (!sta
->sdata
->local
->ops
->wake_tx_queue
)
2541 if (thr
&& thr
< STA_SLOW_THRESHOLD
* sta
->local
->num_sta
) {
2542 sta
->cparams
.target
= MS2TIME(50);
2543 sta
->cparams
.interval
= MS2TIME(300);
2544 sta
->cparams
.ecn
= false;
2546 sta
->cparams
.target
= MS2TIME(20);
2547 sta
->cparams
.interval
= MS2TIME(100);
2548 sta
->cparams
.ecn
= true;
2552 void ieee80211_sta_set_expected_throughput(struct ieee80211_sta
*pubsta
,
2555 struct sta_info
*sta
= container_of(pubsta
, struct sta_info
, sta
);
2557 sta_update_codel_params(sta
, thr
);