2 Copyright (C) 2004 - 2009 Ivo van Doorn <IvDoorn@gmail.com>
3 Copyright (C) 2004 - 2009 Gertjan van Wingerde <gwingerde@gmail.com>
4 <http://rt2x00.serialmonkey.com>
6 This program is free software; you can redistribute it and/or modify
7 it under the terms of the GNU General Public License as published by
8 the Free Software Foundation; either version 2 of the License, or
9 (at your option) any later version.
11 This program is distributed in the hope that it will be useful,
12 but WITHOUT ANY WARRANTY; without even the implied warranty of
13 MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
14 GNU General Public License for more details.
16 You should have received a copy of the GNU General Public License
17 along with this program; if not, write to the
18 Free Software Foundation, Inc.,
19 59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
24 Abstract: rt2x00 queue specific routines.
27 #include <linux/slab.h>
28 #include <linux/kernel.h>
29 #include <linux/module.h>
30 #include <linux/dma-mapping.h>
33 #include "rt2x00lib.h"
35 struct sk_buff
*rt2x00queue_alloc_rxskb(struct rt2x00_dev
*rt2x00dev
,
36 struct queue_entry
*entry
)
39 struct skb_frame_desc
*skbdesc
;
40 unsigned int frame_size
;
41 unsigned int head_size
= 0;
42 unsigned int tail_size
= 0;
45 * The frame size includes descriptor size, because the
46 * hardware directly receive the frame into the skbuffer.
48 frame_size
= entry
->queue
->data_size
+ entry
->queue
->desc_size
;
51 * The payload should be aligned to a 4-byte boundary,
52 * this means we need at least 3 bytes for moving the frame
53 * into the correct offset.
58 * For IV/EIV/ICV assembly we must make sure there is
59 * at least 8 bytes bytes available in headroom for IV/EIV
60 * and 8 bytes for ICV data as tailroon.
62 if (test_bit(CONFIG_SUPPORT_HW_CRYPTO
, &rt2x00dev
->flags
)) {
70 skb
= dev_alloc_skb(frame_size
+ head_size
+ tail_size
);
75 * Make sure we not have a frame with the requested bytes
76 * available in the head and tail.
78 skb_reserve(skb
, head_size
);
79 skb_put(skb
, frame_size
);
84 skbdesc
= get_skb_frame_desc(skb
);
85 memset(skbdesc
, 0, sizeof(*skbdesc
));
86 skbdesc
->entry
= entry
;
88 if (test_bit(DRIVER_REQUIRE_DMA
, &rt2x00dev
->flags
)) {
89 skbdesc
->skb_dma
= dma_map_single(rt2x00dev
->dev
,
93 skbdesc
->flags
|= SKBDESC_DMA_MAPPED_RX
;
99 void rt2x00queue_map_txskb(struct rt2x00_dev
*rt2x00dev
, struct sk_buff
*skb
)
101 struct skb_frame_desc
*skbdesc
= get_skb_frame_desc(skb
);
104 * If device has requested headroom, we should make sure that
105 * is also mapped to the DMA so it can be used for transfering
106 * additional descriptor information to the hardware.
108 skb_push(skb
, rt2x00dev
->ops
->extra_tx_headroom
);
111 dma_map_single(rt2x00dev
->dev
, skb
->data
, skb
->len
, DMA_TO_DEVICE
);
114 * Restore data pointer to original location again.
116 skb_pull(skb
, rt2x00dev
->ops
->extra_tx_headroom
);
118 skbdesc
->flags
|= SKBDESC_DMA_MAPPED_TX
;
120 EXPORT_SYMBOL_GPL(rt2x00queue_map_txskb
);
122 void rt2x00queue_unmap_skb(struct rt2x00_dev
*rt2x00dev
, struct sk_buff
*skb
)
124 struct skb_frame_desc
*skbdesc
= get_skb_frame_desc(skb
);
126 if (skbdesc
->flags
& SKBDESC_DMA_MAPPED_RX
) {
127 dma_unmap_single(rt2x00dev
->dev
, skbdesc
->skb_dma
, skb
->len
,
129 skbdesc
->flags
&= ~SKBDESC_DMA_MAPPED_RX
;
132 if (skbdesc
->flags
& SKBDESC_DMA_MAPPED_TX
) {
134 * Add headroom to the skb length, it has been removed
135 * by the driver, but it was actually mapped to DMA.
137 dma_unmap_single(rt2x00dev
->dev
, skbdesc
->skb_dma
,
138 skb
->len
+ rt2x00dev
->ops
->extra_tx_headroom
,
140 skbdesc
->flags
&= ~SKBDESC_DMA_MAPPED_TX
;
144 void rt2x00queue_free_skb(struct rt2x00_dev
*rt2x00dev
, struct sk_buff
*skb
)
149 rt2x00queue_unmap_skb(rt2x00dev
, skb
);
150 dev_kfree_skb_any(skb
);
153 void rt2x00queue_align_frame(struct sk_buff
*skb
)
155 unsigned int frame_length
= skb
->len
;
156 unsigned int align
= ALIGN_SIZE(skb
, 0);
161 skb_push(skb
, align
);
162 memmove(skb
->data
, skb
->data
+ align
, frame_length
);
163 skb_trim(skb
, frame_length
);
166 void rt2x00queue_align_payload(struct sk_buff
*skb
, unsigned int header_length
)
168 unsigned int frame_length
= skb
->len
;
169 unsigned int align
= ALIGN_SIZE(skb
, header_length
);
174 skb_push(skb
, align
);
175 memmove(skb
->data
, skb
->data
+ align
, frame_length
);
176 skb_trim(skb
, frame_length
);
179 void rt2x00queue_insert_l2pad(struct sk_buff
*skb
, unsigned int header_length
)
181 unsigned int payload_length
= skb
->len
- header_length
;
182 unsigned int header_align
= ALIGN_SIZE(skb
, 0);
183 unsigned int payload_align
= ALIGN_SIZE(skb
, header_length
);
184 unsigned int l2pad
= payload_length
? L2PAD_SIZE(header_length
) : 0;
187 * Adjust the header alignment if the payload needs to be moved more
190 if (payload_align
> header_align
)
193 /* There is nothing to do if no alignment is needed */
197 /* Reserve the amount of space needed in front of the frame */
198 skb_push(skb
, header_align
);
203 memmove(skb
->data
, skb
->data
+ header_align
, header_length
);
205 /* Move the payload, if present and if required */
206 if (payload_length
&& payload_align
)
207 memmove(skb
->data
+ header_length
+ l2pad
,
208 skb
->data
+ header_length
+ l2pad
+ payload_align
,
211 /* Trim the skb to the correct size */
212 skb_trim(skb
, header_length
+ l2pad
+ payload_length
);
215 void rt2x00queue_remove_l2pad(struct sk_buff
*skb
, unsigned int header_length
)
217 unsigned int l2pad
= L2PAD_SIZE(header_length
);
222 memmove(skb
->data
+ l2pad
, skb
->data
, header_length
);
223 skb_pull(skb
, l2pad
);
226 static void rt2x00queue_create_tx_descriptor_seq(struct queue_entry
*entry
,
227 struct txentry_desc
*txdesc
)
229 struct ieee80211_tx_info
*tx_info
= IEEE80211_SKB_CB(entry
->skb
);
230 struct ieee80211_hdr
*hdr
= (struct ieee80211_hdr
*)entry
->skb
->data
;
231 struct rt2x00_intf
*intf
= vif_to_intf(tx_info
->control
.vif
);
232 unsigned long irqflags
;
234 if (!(tx_info
->flags
& IEEE80211_TX_CTL_ASSIGN_SEQ
) ||
235 unlikely(!tx_info
->control
.vif
))
239 * Hardware should insert sequence counter.
240 * FIXME: We insert a software sequence counter first for
241 * hardware that doesn't support hardware sequence counting.
243 * This is wrong because beacons are not getting sequence
244 * numbers assigned properly.
246 * A secondary problem exists for drivers that cannot toggle
247 * sequence counting per-frame, since those will override the
248 * sequence counter given by mac80211.
250 spin_lock_irqsave(&intf
->seqlock
, irqflags
);
252 if (test_bit(ENTRY_TXD_FIRST_FRAGMENT
, &txdesc
->flags
))
254 hdr
->seq_ctrl
&= cpu_to_le16(IEEE80211_SCTL_FRAG
);
255 hdr
->seq_ctrl
|= cpu_to_le16(intf
->seqno
);
257 spin_unlock_irqrestore(&intf
->seqlock
, irqflags
);
259 __set_bit(ENTRY_TXD_GENERATE_SEQ
, &txdesc
->flags
);
262 static void rt2x00queue_create_tx_descriptor_plcp(struct queue_entry
*entry
,
263 struct txentry_desc
*txdesc
,
264 const struct rt2x00_rate
*hwrate
)
266 struct rt2x00_dev
*rt2x00dev
= entry
->queue
->rt2x00dev
;
267 struct ieee80211_tx_info
*tx_info
= IEEE80211_SKB_CB(entry
->skb
);
268 struct ieee80211_tx_rate
*txrate
= &tx_info
->control
.rates
[0];
269 unsigned int data_length
;
270 unsigned int duration
;
271 unsigned int residual
;
273 /* Data length + CRC + Crypto overhead (IV/EIV/ICV/MIC) */
274 data_length
= entry
->skb
->len
+ 4;
275 data_length
+= rt2x00crypto_tx_overhead(rt2x00dev
, entry
->skb
);
279 * Length calculation depends on OFDM/CCK rate.
281 txdesc
->signal
= hwrate
->plcp
;
282 txdesc
->service
= 0x04;
284 if (hwrate
->flags
& DEV_RATE_OFDM
) {
285 txdesc
->length_high
= (data_length
>> 6) & 0x3f;
286 txdesc
->length_low
= data_length
& 0x3f;
289 * Convert length to microseconds.
291 residual
= GET_DURATION_RES(data_length
, hwrate
->bitrate
);
292 duration
= GET_DURATION(data_length
, hwrate
->bitrate
);
298 * Check if we need to set the Length Extension
300 if (hwrate
->bitrate
== 110 && residual
<= 30)
301 txdesc
->service
|= 0x80;
304 txdesc
->length_high
= (duration
>> 8) & 0xff;
305 txdesc
->length_low
= duration
& 0xff;
308 * When preamble is enabled we should set the
309 * preamble bit for the signal.
311 if (txrate
->flags
& IEEE80211_TX_RC_USE_SHORT_PREAMBLE
)
312 txdesc
->signal
|= 0x08;
316 static void rt2x00queue_create_tx_descriptor(struct queue_entry
*entry
,
317 struct txentry_desc
*txdesc
)
319 struct rt2x00_dev
*rt2x00dev
= entry
->queue
->rt2x00dev
;
320 struct ieee80211_tx_info
*tx_info
= IEEE80211_SKB_CB(entry
->skb
);
321 struct ieee80211_hdr
*hdr
= (struct ieee80211_hdr
*)entry
->skb
->data
;
322 struct ieee80211_rate
*rate
=
323 ieee80211_get_tx_rate(rt2x00dev
->hw
, tx_info
);
324 const struct rt2x00_rate
*hwrate
;
326 memset(txdesc
, 0, sizeof(*txdesc
));
329 * Initialize information from queue
331 txdesc
->queue
= entry
->queue
->qid
;
332 txdesc
->cw_min
= entry
->queue
->cw_min
;
333 txdesc
->cw_max
= entry
->queue
->cw_max
;
334 txdesc
->aifs
= entry
->queue
->aifs
;
337 * Header and alignment information.
339 txdesc
->header_length
= ieee80211_get_hdrlen_from_skb(entry
->skb
);
340 if (test_bit(DRIVER_REQUIRE_L2PAD
, &rt2x00dev
->flags
) &&
341 (entry
->skb
->len
> txdesc
->header_length
))
342 txdesc
->l2pad
= L2PAD_SIZE(txdesc
->header_length
);
345 * Check whether this frame is to be acked.
347 if (!(tx_info
->flags
& IEEE80211_TX_CTL_NO_ACK
))
348 __set_bit(ENTRY_TXD_ACK
, &txdesc
->flags
);
351 * Check if this is a RTS/CTS frame
353 if (ieee80211_is_rts(hdr
->frame_control
) ||
354 ieee80211_is_cts(hdr
->frame_control
)) {
355 __set_bit(ENTRY_TXD_BURST
, &txdesc
->flags
);
356 if (ieee80211_is_rts(hdr
->frame_control
))
357 __set_bit(ENTRY_TXD_RTS_FRAME
, &txdesc
->flags
);
359 __set_bit(ENTRY_TXD_CTS_FRAME
, &txdesc
->flags
);
360 if (tx_info
->control
.rts_cts_rate_idx
>= 0)
362 ieee80211_get_rts_cts_rate(rt2x00dev
->hw
, tx_info
);
366 * Determine retry information.
368 txdesc
->retry_limit
= tx_info
->control
.rates
[0].count
- 1;
369 if (txdesc
->retry_limit
>= rt2x00dev
->long_retry
)
370 __set_bit(ENTRY_TXD_RETRY_MODE
, &txdesc
->flags
);
373 * Check if more fragments are pending
375 if (ieee80211_has_morefrags(hdr
->frame_control
) ||
376 (tx_info
->flags
& IEEE80211_TX_CTL_MORE_FRAMES
)) {
377 __set_bit(ENTRY_TXD_BURST
, &txdesc
->flags
);
378 __set_bit(ENTRY_TXD_MORE_FRAG
, &txdesc
->flags
);
382 * Beacons and probe responses require the tsf timestamp
383 * to be inserted into the frame, except for a frame that has been injected
384 * through a monitor interface. This latter is needed for testing a
387 if ((ieee80211_is_beacon(hdr
->frame_control
) ||
388 ieee80211_is_probe_resp(hdr
->frame_control
)) &&
389 (!(tx_info
->flags
& IEEE80211_TX_CTL_INJECTED
)))
390 __set_bit(ENTRY_TXD_REQ_TIMESTAMP
, &txdesc
->flags
);
393 * Determine with what IFS priority this frame should be send.
394 * Set ifs to IFS_SIFS when the this is not the first fragment,
395 * or this fragment came after RTS/CTS.
397 if ((tx_info
->flags
& IEEE80211_TX_CTL_FIRST_FRAGMENT
) &&
398 !test_bit(ENTRY_TXD_RTS_FRAME
, &txdesc
->flags
)) {
399 __set_bit(ENTRY_TXD_FIRST_FRAGMENT
, &txdesc
->flags
);
400 txdesc
->ifs
= IFS_BACKOFF
;
402 txdesc
->ifs
= IFS_SIFS
;
405 * Determine rate modulation.
407 hwrate
= rt2x00_get_rate(rate
->hw_value
);
408 txdesc
->rate_mode
= RATE_MODE_CCK
;
409 if (hwrate
->flags
& DEV_RATE_OFDM
)
410 txdesc
->rate_mode
= RATE_MODE_OFDM
;
413 * Apply TX descriptor handling by components
415 rt2x00crypto_create_tx_descriptor(entry
, txdesc
);
416 rt2x00ht_create_tx_descriptor(entry
, txdesc
, hwrate
);
417 rt2x00queue_create_tx_descriptor_seq(entry
, txdesc
);
418 rt2x00queue_create_tx_descriptor_plcp(entry
, txdesc
, hwrate
);
421 static void rt2x00queue_write_tx_descriptor(struct queue_entry
*entry
,
422 struct txentry_desc
*txdesc
)
424 struct data_queue
*queue
= entry
->queue
;
425 struct rt2x00_dev
*rt2x00dev
= queue
->rt2x00dev
;
427 rt2x00dev
->ops
->lib
->write_tx_desc(rt2x00dev
, entry
->skb
, txdesc
);
430 * All processing on the frame has been completed, this means
431 * it is now ready to be dumped to userspace through debugfs.
433 rt2x00debug_dump_frame(rt2x00dev
, DUMP_FRAME_TX
, entry
->skb
);
436 * Check if we need to kick the queue, there are however a few rules
437 * 1) Don't kick beacon queue
438 * 2) Don't kick unless this is the last in frame in a burst.
439 * When the burst flag is set, this frame is always followed
440 * by another frame which in some way are related to eachother.
441 * This is true for fragments, RTS or CTS-to-self frames.
442 * 3) Rule 2 can be broken when the available entries
443 * in the queue are less then a certain threshold.
445 if (entry
->queue
->qid
== QID_BEACON
)
448 if (rt2x00queue_threshold(queue
) ||
449 !test_bit(ENTRY_TXD_BURST
, &txdesc
->flags
))
450 rt2x00dev
->ops
->lib
->kick_tx_queue(rt2x00dev
, queue
->qid
);
453 int rt2x00queue_write_tx_frame(struct data_queue
*queue
, struct sk_buff
*skb
,
456 struct ieee80211_tx_info
*tx_info
;
457 struct queue_entry
*entry
= rt2x00queue_get_entry(queue
, Q_INDEX
);
458 struct txentry_desc txdesc
;
459 struct skb_frame_desc
*skbdesc
;
460 u8 rate_idx
, rate_flags
;
462 if (unlikely(rt2x00queue_full(queue
)))
465 if (test_and_set_bit(ENTRY_OWNER_DEVICE_DATA
, &entry
->flags
)) {
466 ERROR(queue
->rt2x00dev
,
467 "Arrived at non-free entry in the non-full queue %d.\n"
468 "Please file bug report to %s.\n",
469 queue
->qid
, DRV_PROJECT
);
474 * Copy all TX descriptor information into txdesc,
475 * after that we are free to use the skb->cb array
476 * for our information.
479 rt2x00queue_create_tx_descriptor(entry
, &txdesc
);
482 * All information is retrieved from the skb->cb array,
483 * now we should claim ownership of the driver part of that
484 * array, preserving the bitrate index and flags.
486 tx_info
= IEEE80211_SKB_CB(skb
);
487 rate_idx
= tx_info
->control
.rates
[0].idx
;
488 rate_flags
= tx_info
->control
.rates
[0].flags
;
489 skbdesc
= get_skb_frame_desc(skb
);
490 memset(skbdesc
, 0, sizeof(*skbdesc
));
491 skbdesc
->entry
= entry
;
492 skbdesc
->tx_rate_idx
= rate_idx
;
493 skbdesc
->tx_rate_flags
= rate_flags
;
496 skbdesc
->flags
|= SKBDESC_NOT_MAC80211
;
499 * When hardware encryption is supported, and this frame
500 * is to be encrypted, we should strip the IV/EIV data from
501 * the frame so we can provide it to the driver separately.
503 if (test_bit(ENTRY_TXD_ENCRYPT
, &txdesc
.flags
) &&
504 !test_bit(ENTRY_TXD_ENCRYPT_IV
, &txdesc
.flags
)) {
505 if (test_bit(DRIVER_REQUIRE_COPY_IV
, &queue
->rt2x00dev
->flags
))
506 rt2x00crypto_tx_copy_iv(skb
, &txdesc
);
508 rt2x00crypto_tx_remove_iv(skb
, &txdesc
);
512 * When DMA allocation is required we should guarentee to the
513 * driver that the DMA is aligned to a 4-byte boundary.
514 * However some drivers require L2 padding to pad the payload
515 * rather then the header. This could be a requirement for
516 * PCI and USB devices, while header alignment only is valid
519 if (test_bit(DRIVER_REQUIRE_L2PAD
, &queue
->rt2x00dev
->flags
))
520 rt2x00queue_insert_l2pad(entry
->skb
, txdesc
.header_length
);
521 else if (test_bit(DRIVER_REQUIRE_DMA
, &queue
->rt2x00dev
->flags
))
522 rt2x00queue_align_frame(entry
->skb
);
525 * It could be possible that the queue was corrupted and this
526 * call failed. Since we always return NETDEV_TX_OK to mac80211,
527 * this frame will simply be dropped.
529 if (unlikely(queue
->rt2x00dev
->ops
->lib
->write_tx_data(entry
,
531 clear_bit(ENTRY_OWNER_DEVICE_DATA
, &entry
->flags
);
536 if (test_bit(DRIVER_REQUIRE_DMA
, &queue
->rt2x00dev
->flags
))
537 rt2x00queue_map_txskb(queue
->rt2x00dev
, skb
);
539 set_bit(ENTRY_DATA_PENDING
, &entry
->flags
);
541 rt2x00queue_index_inc(queue
, Q_INDEX
);
542 rt2x00queue_write_tx_descriptor(entry
, &txdesc
);
547 int rt2x00queue_update_beacon(struct rt2x00_dev
*rt2x00dev
,
548 struct ieee80211_vif
*vif
,
549 const bool enable_beacon
)
551 struct rt2x00_intf
*intf
= vif_to_intf(vif
);
552 struct skb_frame_desc
*skbdesc
;
553 struct txentry_desc txdesc
;
556 if (unlikely(!intf
->beacon
))
559 mutex_lock(&intf
->beacon_skb_mutex
);
562 * Clean up the beacon skb.
564 rt2x00queue_free_skb(rt2x00dev
, intf
->beacon
->skb
);
565 intf
->beacon
->skb
= NULL
;
567 if (!enable_beacon
) {
568 rt2x00dev
->ops
->lib
->kill_tx_queue(rt2x00dev
, QID_BEACON
);
569 mutex_unlock(&intf
->beacon_skb_mutex
);
573 intf
->beacon
->skb
= ieee80211_beacon_get(rt2x00dev
->hw
, vif
);
574 if (!intf
->beacon
->skb
) {
575 mutex_unlock(&intf
->beacon_skb_mutex
);
580 * Copy all TX descriptor information into txdesc,
581 * after that we are free to use the skb->cb array
582 * for our information.
584 rt2x00queue_create_tx_descriptor(intf
->beacon
, &txdesc
);
587 * For the descriptor we use a local array from where the
588 * driver can move it to the correct location required for
591 memset(desc
, 0, sizeof(desc
));
594 * Fill in skb descriptor
596 skbdesc
= get_skb_frame_desc(intf
->beacon
->skb
);
597 memset(skbdesc
, 0, sizeof(*skbdesc
));
598 skbdesc
->desc
= desc
;
599 skbdesc
->desc_len
= intf
->beacon
->queue
->desc_size
;
600 skbdesc
->entry
= intf
->beacon
;
603 * Write TX descriptor into reserved room in front of the beacon.
605 rt2x00queue_write_tx_descriptor(intf
->beacon
, &txdesc
);
608 * Send beacon to hardware.
609 * Also enable beacon generation, which might have been disabled
610 * by the driver during the config_beacon() callback function.
612 rt2x00dev
->ops
->lib
->write_beacon(intf
->beacon
);
613 rt2x00dev
->ops
->lib
->kick_tx_queue(rt2x00dev
, QID_BEACON
);
615 mutex_unlock(&intf
->beacon_skb_mutex
);
620 struct data_queue
*rt2x00queue_get_queue(struct rt2x00_dev
*rt2x00dev
,
621 const enum data_queue_qid queue
)
623 int atim
= test_bit(DRIVER_REQUIRE_ATIM_QUEUE
, &rt2x00dev
->flags
);
626 return rt2x00dev
->rx
;
628 if (queue
< rt2x00dev
->ops
->tx_queues
&& rt2x00dev
->tx
)
629 return &rt2x00dev
->tx
[queue
];
634 if (queue
== QID_BEACON
)
635 return &rt2x00dev
->bcn
[0];
636 else if (queue
== QID_ATIM
&& atim
)
637 return &rt2x00dev
->bcn
[1];
641 EXPORT_SYMBOL_GPL(rt2x00queue_get_queue
);
643 struct queue_entry
*rt2x00queue_get_entry(struct data_queue
*queue
,
644 enum queue_index index
)
646 struct queue_entry
*entry
;
647 unsigned long irqflags
;
649 if (unlikely(index
>= Q_INDEX_MAX
)) {
650 ERROR(queue
->rt2x00dev
,
651 "Entry requested from invalid index type (%d)\n", index
);
655 spin_lock_irqsave(&queue
->lock
, irqflags
);
657 entry
= &queue
->entries
[queue
->index
[index
]];
659 spin_unlock_irqrestore(&queue
->lock
, irqflags
);
663 EXPORT_SYMBOL_GPL(rt2x00queue_get_entry
);
665 void rt2x00queue_index_inc(struct data_queue
*queue
, enum queue_index index
)
667 unsigned long irqflags
;
669 if (unlikely(index
>= Q_INDEX_MAX
)) {
670 ERROR(queue
->rt2x00dev
,
671 "Index change on invalid index type (%d)\n", index
);
675 spin_lock_irqsave(&queue
->lock
, irqflags
);
677 queue
->index
[index
]++;
678 if (queue
->index
[index
] >= queue
->limit
)
679 queue
->index
[index
] = 0;
681 if (index
== Q_INDEX
) {
683 } else if (index
== Q_INDEX_DONE
) {
688 spin_unlock_irqrestore(&queue
->lock
, irqflags
);
691 static void rt2x00queue_reset(struct data_queue
*queue
)
693 unsigned long irqflags
;
695 spin_lock_irqsave(&queue
->lock
, irqflags
);
699 memset(queue
->index
, 0, sizeof(queue
->index
));
701 spin_unlock_irqrestore(&queue
->lock
, irqflags
);
704 void rt2x00queue_stop_queues(struct rt2x00_dev
*rt2x00dev
)
706 struct data_queue
*queue
;
708 txall_queue_for_each(rt2x00dev
, queue
)
709 rt2x00dev
->ops
->lib
->kill_tx_queue(rt2x00dev
, queue
->qid
);
712 void rt2x00queue_init_queues(struct rt2x00_dev
*rt2x00dev
)
714 struct data_queue
*queue
;
717 queue_for_each(rt2x00dev
, queue
) {
718 rt2x00queue_reset(queue
);
720 for (i
= 0; i
< queue
->limit
; i
++) {
721 queue
->entries
[i
].flags
= 0;
723 rt2x00dev
->ops
->lib
->clear_entry(&queue
->entries
[i
]);
728 static int rt2x00queue_alloc_entries(struct data_queue
*queue
,
729 const struct data_queue_desc
*qdesc
)
731 struct queue_entry
*entries
;
732 unsigned int entry_size
;
735 rt2x00queue_reset(queue
);
737 queue
->limit
= qdesc
->entry_num
;
738 queue
->threshold
= DIV_ROUND_UP(qdesc
->entry_num
, 10);
739 queue
->data_size
= qdesc
->data_size
;
740 queue
->desc_size
= qdesc
->desc_size
;
743 * Allocate all queue entries.
745 entry_size
= sizeof(*entries
) + qdesc
->priv_size
;
746 entries
= kzalloc(queue
->limit
* entry_size
, GFP_KERNEL
);
750 #define QUEUE_ENTRY_PRIV_OFFSET(__base, __index, __limit, __esize, __psize) \
751 ( ((char *)(__base)) + ((__limit) * (__esize)) + \
752 ((__index) * (__psize)) )
754 for (i
= 0; i
< queue
->limit
; i
++) {
755 entries
[i
].flags
= 0;
756 entries
[i
].queue
= queue
;
757 entries
[i
].skb
= NULL
;
758 entries
[i
].entry_idx
= i
;
759 entries
[i
].priv_data
=
760 QUEUE_ENTRY_PRIV_OFFSET(entries
, i
, queue
->limit
,
761 sizeof(*entries
), qdesc
->priv_size
);
764 #undef QUEUE_ENTRY_PRIV_OFFSET
766 queue
->entries
= entries
;
771 static void rt2x00queue_free_skbs(struct rt2x00_dev
*rt2x00dev
,
772 struct data_queue
*queue
)
779 for (i
= 0; i
< queue
->limit
; i
++) {
780 if (queue
->entries
[i
].skb
)
781 rt2x00queue_free_skb(rt2x00dev
, queue
->entries
[i
].skb
);
785 static int rt2x00queue_alloc_rxskbs(struct rt2x00_dev
*rt2x00dev
,
786 struct data_queue
*queue
)
791 for (i
= 0; i
< queue
->limit
; i
++) {
792 skb
= rt2x00queue_alloc_rxskb(rt2x00dev
, &queue
->entries
[i
]);
795 queue
->entries
[i
].skb
= skb
;
801 int rt2x00queue_initialize(struct rt2x00_dev
*rt2x00dev
)
803 struct data_queue
*queue
;
806 status
= rt2x00queue_alloc_entries(rt2x00dev
->rx
, rt2x00dev
->ops
->rx
);
810 tx_queue_for_each(rt2x00dev
, queue
) {
811 status
= rt2x00queue_alloc_entries(queue
, rt2x00dev
->ops
->tx
);
816 status
= rt2x00queue_alloc_entries(rt2x00dev
->bcn
, rt2x00dev
->ops
->bcn
);
820 if (test_bit(DRIVER_REQUIRE_ATIM_QUEUE
, &rt2x00dev
->flags
)) {
821 status
= rt2x00queue_alloc_entries(&rt2x00dev
->bcn
[1],
822 rt2x00dev
->ops
->atim
);
827 status
= rt2x00queue_alloc_rxskbs(rt2x00dev
, rt2x00dev
->rx
);
834 ERROR(rt2x00dev
, "Queue entries allocation failed.\n");
836 rt2x00queue_uninitialize(rt2x00dev
);
841 void rt2x00queue_uninitialize(struct rt2x00_dev
*rt2x00dev
)
843 struct data_queue
*queue
;
845 rt2x00queue_free_skbs(rt2x00dev
, rt2x00dev
->rx
);
847 queue_for_each(rt2x00dev
, queue
) {
848 kfree(queue
->entries
);
849 queue
->entries
= NULL
;
853 static void rt2x00queue_init(struct rt2x00_dev
*rt2x00dev
,
854 struct data_queue
*queue
, enum data_queue_qid qid
)
856 spin_lock_init(&queue
->lock
);
858 queue
->rt2x00dev
= rt2x00dev
;
866 int rt2x00queue_allocate(struct rt2x00_dev
*rt2x00dev
)
868 struct data_queue
*queue
;
869 enum data_queue_qid qid
;
870 unsigned int req_atim
=
871 !!test_bit(DRIVER_REQUIRE_ATIM_QUEUE
, &rt2x00dev
->flags
);
874 * We need the following queues:
878 * Atim: 1 (if required)
880 rt2x00dev
->data_queues
= 2 + rt2x00dev
->ops
->tx_queues
+ req_atim
;
882 queue
= kzalloc(rt2x00dev
->data_queues
* sizeof(*queue
), GFP_KERNEL
);
884 ERROR(rt2x00dev
, "Queue allocation failed.\n");
889 * Initialize pointers
891 rt2x00dev
->rx
= queue
;
892 rt2x00dev
->tx
= &queue
[1];
893 rt2x00dev
->bcn
= &queue
[1 + rt2x00dev
->ops
->tx_queues
];
896 * Initialize queue parameters.
898 * TX: qid = QID_AC_BE + index
899 * TX: cw_min: 2^5 = 32.
900 * TX: cw_max: 2^10 = 1024.
901 * BCN: qid = QID_BEACON
902 * ATIM: qid = QID_ATIM
904 rt2x00queue_init(rt2x00dev
, rt2x00dev
->rx
, QID_RX
);
907 tx_queue_for_each(rt2x00dev
, queue
)
908 rt2x00queue_init(rt2x00dev
, queue
, qid
++);
910 rt2x00queue_init(rt2x00dev
, &rt2x00dev
->bcn
[0], QID_BEACON
);
912 rt2x00queue_init(rt2x00dev
, &rt2x00dev
->bcn
[1], QID_ATIM
);
917 void rt2x00queue_free(struct rt2x00_dev
*rt2x00dev
)
919 kfree(rt2x00dev
->rx
);
920 rt2x00dev
->rx
= NULL
;
921 rt2x00dev
->tx
= NULL
;
922 rt2x00dev
->bcn
= NULL
;