xmit.c 56.1 KB
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/*
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 * Copyright (c) 2008-2009 Atheros Communications Inc.
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 *
 * Permission to use, copy, modify, and/or distribute this software for any
 * purpose with or without fee is hereby granted, provided that the above
 * copyright notice and this permission notice appear in all copies.
 *
 * THE SOFTWARE IS PROVIDED "AS IS" AND THE AUTHOR DISCLAIMS ALL WARRANTIES
 * WITH REGARD TO THIS SOFTWARE INCLUDING ALL IMPLIED WARRANTIES OF
 * MERCHANTABILITY AND FITNESS. IN NO EVENT SHALL THE AUTHOR BE LIABLE FOR
 * ANY SPECIAL, DIRECT, INDIRECT, OR CONSEQUENTIAL DAMAGES OR ANY DAMAGES
 * WHATSOEVER RESULTING FROM LOSS OF USE, DATA OR PROFITS, WHETHER IN AN
 * ACTION OF CONTRACT, NEGLIGENCE OR OTHER TORTIOUS ACTION, ARISING OUT OF
 * OR IN CONNECTION WITH THE USE OR PERFORMANCE OF THIS SOFTWARE.
 */

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#include "ath9k.h"
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#define BITS_PER_BYTE           8
#define OFDM_PLCP_BITS          22
#define HT_RC_2_MCS(_rc)        ((_rc) & 0x0f)
#define HT_RC_2_STREAMS(_rc)    ((((_rc) & 0x78) >> 3) + 1)
#define L_STF                   8
#define L_LTF                   8
#define L_SIG                   4
#define HT_SIG                  8
#define HT_STF                  4
#define HT_LTF(_ns)             (4 * (_ns))
#define SYMBOL_TIME(_ns)        ((_ns) << 2) /* ns * 4 us */
#define SYMBOL_TIME_HALFGI(_ns) (((_ns) * 18 + 4) / 5)  /* ns * 3.6 us */
#define NUM_SYMBOLS_PER_USEC(_usec) (_usec >> 2)
#define NUM_SYMBOLS_PER_USEC_HALFGI(_usec) (((_usec*5)-4)/18)

#define OFDM_SIFS_TIME    	    16

static u32 bits_per_symbol[][2] = {
	/* 20MHz 40MHz */
	{    26,   54 },     /*  0: BPSK */
	{    52,  108 },     /*  1: QPSK 1/2 */
	{    78,  162 },     /*  2: QPSK 3/4 */
	{   104,  216 },     /*  3: 16-QAM 1/2 */
	{   156,  324 },     /*  4: 16-QAM 3/4 */
	{   208,  432 },     /*  5: 64-QAM 2/3 */
	{   234,  486 },     /*  6: 64-QAM 3/4 */
	{   260,  540 },     /*  7: 64-QAM 5/6 */
	{    52,  108 },     /*  8: BPSK */
	{   104,  216 },     /*  9: QPSK 1/2 */
	{   156,  324 },     /* 10: QPSK 3/4 */
	{   208,  432 },     /* 11: 16-QAM 1/2 */
	{   312,  648 },     /* 12: 16-QAM 3/4 */
	{   416,  864 },     /* 13: 64-QAM 2/3 */
	{   468,  972 },     /* 14: 64-QAM 3/4 */
	{   520, 1080 },     /* 15: 64-QAM 5/6 */
};

#define IS_HT_RATE(_rate)     ((_rate) & 0x80)

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static void ath_tx_send_ht_normal(struct ath_softc *sc, struct ath_txq *txq,
				  struct ath_atx_tid *tid,
				  struct list_head *bf_head);
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static void ath_tx_complete_buf(struct ath_softc *sc, struct ath_buf *bf,
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				struct ath_txq *txq,
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				struct list_head *bf_q,
				int txok, int sendbar);
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static void ath_tx_txqaddbuf(struct ath_softc *sc, struct ath_txq *txq,
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			     struct list_head *head);
static void ath_buf_set_rate(struct ath_softc *sc, struct ath_buf *bf);
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static int ath_tx_num_badfrms(struct ath_softc *sc, struct ath_buf *bf,
			      int txok);
static void ath_tx_rc_status(struct ath_buf *bf, struct ath_desc *ds,
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			     int nbad, int txok, bool update_rc);
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/*********************/
/* Aggregation logic */
/*********************/
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static void ath_tx_queue_tid(struct ath_txq *txq, struct ath_atx_tid *tid)
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{
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	struct ath_atx_ac *ac = tid->ac;
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	if (tid->paused)
		return;
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	if (tid->sched)
		return;
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	tid->sched = true;
	list_add_tail(&tid->list, &ac->tid_q);
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	if (ac->sched)
		return;
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	ac->sched = true;
	list_add_tail(&ac->list, &txq->axq_acq);
}
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static void ath_tx_pause_tid(struct ath_softc *sc, struct ath_atx_tid *tid)
{
	struct ath_txq *txq = &sc->tx.txq[tid->ac->qnum];
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	spin_lock_bh(&txq->axq_lock);
	tid->paused++;
	spin_unlock_bh(&txq->axq_lock);
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}

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static void ath_tx_resume_tid(struct ath_softc *sc, struct ath_atx_tid *tid)
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{
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	struct ath_txq *txq = &sc->tx.txq[tid->ac->qnum];
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	ASSERT(tid->paused > 0);
	spin_lock_bh(&txq->axq_lock);
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	tid->paused--;
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	if (tid->paused > 0)
		goto unlock;
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	if (list_empty(&tid->buf_q))
		goto unlock;
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	ath_tx_queue_tid(txq, tid);
	ath_txq_schedule(sc, txq);
unlock:
	spin_unlock_bh(&txq->axq_lock);
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}
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static void ath_tx_flush_tid(struct ath_softc *sc, struct ath_atx_tid *tid)
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{
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	struct ath_txq *txq = &sc->tx.txq[tid->ac->qnum];
	struct ath_buf *bf;
	struct list_head bf_head;
	INIT_LIST_HEAD(&bf_head);
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	ASSERT(tid->paused > 0);
	spin_lock_bh(&txq->axq_lock);
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	tid->paused--;
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	if (tid->paused > 0) {
		spin_unlock_bh(&txq->axq_lock);
		return;
	}
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	while (!list_empty(&tid->buf_q)) {
		bf = list_first_entry(&tid->buf_q, struct ath_buf, list);
		ASSERT(!bf_isretried(bf));
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		list_move_tail(&bf->list, &bf_head);
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		ath_tx_send_ht_normal(sc, txq, tid, &bf_head);
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	}
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	spin_unlock_bh(&txq->axq_lock);
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}
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static void ath_tx_update_baw(struct ath_softc *sc, struct ath_atx_tid *tid,
			      int seqno)
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{
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	int index, cindex;
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	index  = ATH_BA_INDEX(tid->seq_start, seqno);
	cindex = (tid->baw_head + index) & (ATH_TID_MAX_BUFS - 1);
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	tid->tx_buf[cindex] = NULL;
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	while (tid->baw_head != tid->baw_tail && !tid->tx_buf[tid->baw_head]) {
		INCR(tid->seq_start, IEEE80211_SEQ_MAX);
		INCR(tid->baw_head, ATH_TID_MAX_BUFS);
	}
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}
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static void ath_tx_addto_baw(struct ath_softc *sc, struct ath_atx_tid *tid,
			     struct ath_buf *bf)
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{
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	int index, cindex;
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	if (bf_isretried(bf))
		return;
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	index  = ATH_BA_INDEX(tid->seq_start, bf->bf_seqno);
	cindex = (tid->baw_head + index) & (ATH_TID_MAX_BUFS - 1);
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	ASSERT(tid->tx_buf[cindex] == NULL);
	tid->tx_buf[cindex] = bf;
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	if (index >= ((tid->baw_tail - tid->baw_head) &
		(ATH_TID_MAX_BUFS - 1))) {
		tid->baw_tail = cindex;
		INCR(tid->baw_tail, ATH_TID_MAX_BUFS);
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	}
}

/*
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 * TODO: For frame(s) that are in the retry state, we will reuse the
 * sequence number(s) without setting the retry bit. The
 * alternative is to give up on these and BAR the receiver's window
 * forward.
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 */
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static void ath_tid_drain(struct ath_softc *sc, struct ath_txq *txq,
			  struct ath_atx_tid *tid)
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{
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	struct ath_buf *bf;
	struct list_head bf_head;
	INIT_LIST_HEAD(&bf_head);
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	for (;;) {
		if (list_empty(&tid->buf_q))
			break;
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		bf = list_first_entry(&tid->buf_q, struct ath_buf, list);
		list_move_tail(&bf->list, &bf_head);
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		if (bf_isretried(bf))
			ath_tx_update_baw(sc, tid, bf->bf_seqno);
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		spin_unlock(&txq->axq_lock);
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		ath_tx_complete_buf(sc, bf, txq, &bf_head, 0, 0);
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		spin_lock(&txq->axq_lock);
	}
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	tid->seq_next = tid->seq_start;
	tid->baw_tail = tid->baw_head;
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}

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static void ath_tx_set_retry(struct ath_softc *sc, struct ath_txq *txq,
			     struct ath_buf *bf)
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{
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	struct sk_buff *skb;
	struct ieee80211_hdr *hdr;
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	bf->bf_state.bf_type |= BUF_RETRY;
	bf->bf_retries++;
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	TX_STAT_INC(txq->axq_qnum, a_retries);
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	skb = bf->bf_mpdu;
	hdr = (struct ieee80211_hdr *)skb->data;
	hdr->frame_control |= cpu_to_le16(IEEE80211_FCTL_RETRY);
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}

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static struct ath_buf* ath_clone_txbuf(struct ath_softc *sc, struct ath_buf *bf)
{
	struct ath_buf *tbf;

	spin_lock_bh(&sc->tx.txbuflock);
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	if (WARN_ON(list_empty(&sc->tx.txbuf))) {
		spin_unlock_bh(&sc->tx.txbuflock);
		return NULL;
	}
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	tbf = list_first_entry(&sc->tx.txbuf, struct ath_buf, list);
	list_del(&tbf->list);
	spin_unlock_bh(&sc->tx.txbuflock);

	ATH_TXBUF_RESET(tbf);

	tbf->bf_mpdu = bf->bf_mpdu;
	tbf->bf_buf_addr = bf->bf_buf_addr;
	*(tbf->bf_desc) = *(bf->bf_desc);
	tbf->bf_state = bf->bf_state;
	tbf->bf_dmacontext = bf->bf_dmacontext;

	return tbf;
}

static void ath_tx_complete_aggr(struct ath_softc *sc, struct ath_txq *txq,
				 struct ath_buf *bf, struct list_head *bf_q,
				 int txok)
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{
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	struct ath_node *an = NULL;
	struct sk_buff *skb;
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	struct ieee80211_sta *sta;
	struct ieee80211_hdr *hdr;
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	struct ath_atx_tid *tid = NULL;
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	struct ath_buf *bf_next, *bf_last = bf->bf_lastbf;
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	struct ath_desc *ds = bf_last->bf_desc;
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	struct list_head bf_head, bf_pending;
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	u16 seq_st = 0, acked_cnt = 0, txfail_cnt = 0;
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	u32 ba[WME_BA_BMP_SIZE >> 5];
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	int isaggr, txfail, txpending, sendbar = 0, needreset = 0, nbad = 0;
	bool rc_update = true;
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	skb = bf->bf_mpdu;
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	hdr = (struct ieee80211_hdr *)skb->data;

	rcu_read_lock();
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	sta = ieee80211_find_sta(sc->hw, hdr->addr1);
	if (!sta) {
		rcu_read_unlock();
		return;
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	}

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	an = (struct ath_node *)sta->drv_priv;
	tid = ATH_AN_2_TID(an, bf->bf_tidno);

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	isaggr = bf_isaggr(bf);
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	memset(ba, 0, WME_BA_BMP_SIZE >> 3);
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	if (isaggr && txok) {
		if (ATH_DS_TX_BA(ds)) {
			seq_st = ATH_DS_BA_SEQ(ds);
			memcpy(ba, ATH_DS_BA_BITMAP(ds),
			       WME_BA_BMP_SIZE >> 3);
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		} else {
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			/*
			 * AR5416 can become deaf/mute when BA
			 * issue happens. Chip needs to be reset.
			 * But AP code may have sychronization issues
			 * when perform internal reset in this routine.
			 * Only enable reset in STA mode for now.
			 */
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			if (sc->sc_ah->opmode == NL80211_IFTYPE_STATION)
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				needreset = 1;
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		}
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	}

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	INIT_LIST_HEAD(&bf_pending);
	INIT_LIST_HEAD(&bf_head);
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	nbad = ath_tx_num_badfrms(sc, bf, txok);
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	while (bf) {
		txfail = txpending = 0;
		bf_next = bf->bf_next;
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		if (ATH_BA_ISSET(ba, ATH_BA_INDEX(seq_st, bf->bf_seqno))) {
			/* transmit completion, subframe is
			 * acked by block ack */
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			acked_cnt++;
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		} else if (!isaggr && txok) {
			/* transmit completion */
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			acked_cnt++;
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		} else {
			if (!(tid->state & AGGR_CLEANUP) &&
			    ds->ds_txstat.ts_flags != ATH9K_TX_SW_ABORTED) {
				if (bf->bf_retries < ATH_MAX_SW_RETRIES) {
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					ath_tx_set_retry(sc, txq, bf);
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					txpending = 1;
				} else {
					bf->bf_state.bf_type |= BUF_XRETRY;
					txfail = 1;
					sendbar = 1;
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					txfail_cnt++;
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				}
			} else {
				/*
				 * cleanup in progress, just fail
				 * the un-acked sub-frames
				 */
				txfail = 1;
			}
		}
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		if (bf_next == NULL) {
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			/*
			 * Make sure the last desc is reclaimed if it
			 * not a holding desc.
			 */
			if (!bf_last->bf_stale)
				list_move_tail(&bf->list, &bf_head);
			else
				INIT_LIST_HEAD(&bf_head);
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		} else {
			ASSERT(!list_empty(bf_q));
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			list_move_tail(&bf->list, &bf_head);
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		}
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		if (!txpending) {
			/*
			 * complete the acked-ones/xretried ones; update
			 * block-ack window
			 */
			spin_lock_bh(&txq->axq_lock);
			ath_tx_update_baw(sc, tid, bf->bf_seqno);
			spin_unlock_bh(&txq->axq_lock);
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			if (rc_update && (acked_cnt == 1 || txfail_cnt == 1)) {
				ath_tx_rc_status(bf, ds, nbad, txok, true);
				rc_update = false;
			} else {
				ath_tx_rc_status(bf, ds, nbad, txok, false);
			}

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			ath_tx_complete_buf(sc, bf, txq, &bf_head, !txfail, sendbar);
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		} else {
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			/* retry the un-acked ones */
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			if (bf->bf_next == NULL && bf_last->bf_stale) {
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				struct ath_buf *tbf;
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				tbf = ath_clone_txbuf(sc, bf_last);
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				/*
				 * Update tx baw and complete the frame with
				 * failed status if we run out of tx buf
				 */
				if (!tbf) {
					spin_lock_bh(&txq->axq_lock);
					ath_tx_update_baw(sc, tid,
							  bf->bf_seqno);
					spin_unlock_bh(&txq->axq_lock);

					bf->bf_state.bf_type |= BUF_XRETRY;
					ath_tx_rc_status(bf, ds, nbad,
							 0, false);
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					ath_tx_complete_buf(sc, bf, txq,
							    &bf_head, 0, 0);
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					break;
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				}

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				ath9k_hw_cleartxdesc(sc->sc_ah, tbf->bf_desc);
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				list_add_tail(&tbf->list, &bf_head);
			} else {
				/*
				 * Clear descriptor status words for
				 * software retry
				 */
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				ath9k_hw_cleartxdesc(sc->sc_ah, bf->bf_desc);
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			}

			/*
			 * Put this buffer to the temporary pending
			 * queue to retain ordering
			 */
			list_splice_tail_init(&bf_head, &bf_pending);
		}

		bf = bf_next;
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	}

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	if (tid->state & AGGR_CLEANUP) {
		if (tid->baw_head == tid->baw_tail) {
			tid->state &= ~AGGR_ADDBA_COMPLETE;
			tid->state &= ~AGGR_CLEANUP;
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			/* send buffered frames as singles */
			ath_tx_flush_tid(sc, tid);
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		}
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		rcu_read_unlock();
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		return;
	}
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	/* prepend un-acked frames to the beginning of the pending frame queue */
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	if (!list_empty(&bf_pending)) {
		spin_lock_bh(&txq->axq_lock);
		list_splice(&bf_pending, &tid->buf_q);
		ath_tx_queue_tid(txq, tid);
		spin_unlock_bh(&txq->axq_lock);
	}
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	rcu_read_unlock();

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	if (needreset)
		ath_reset(sc, false);
}
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static u32 ath_lookup_rate(struct ath_softc *sc, struct ath_buf *bf,
			   struct ath_atx_tid *tid)
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{
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	const struct ath_rate_table *rate_table = sc->cur_rate_table;
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	struct sk_buff *skb;
	struct ieee80211_tx_info *tx_info;
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	struct ieee80211_tx_rate *rates;
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	struct ath_tx_info_priv *tx_info_priv;
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	u32 max_4ms_framelen, frmlen;
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	u16 aggr_limit, legacy = 0;
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	int i;
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	skb = bf->bf_mpdu;
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	tx_info = IEEE80211_SKB_CB(skb);
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	rates = tx_info->control.rates;
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	tx_info_priv = (struct ath_tx_info_priv *)tx_info->rate_driver_data[0];
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	/*
	 * Find the lowest frame length among the rate series that will have a
	 * 4ms transmit duration.
	 * TODO - TXOP limit needs to be considered.
	 */
	max_4ms_framelen = ATH_AMPDU_LIMIT_MAX;
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	for (i = 0; i < 4; i++) {
		if (rates[i].count) {
			if (!WLAN_RC_PHY_HT(rate_table->info[rates[i].idx].phy)) {
				legacy = 1;
				break;
			}

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			frmlen = rate_table->info[rates[i].idx].max_4ms_framelen;
			max_4ms_framelen = min(max_4ms_framelen, frmlen);
485 486
		}
	}
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488
	/*
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	 * limit aggregate size by the minimum rate if rate selected is
	 * not a probe rate, if rate selected is a probe rate then
	 * avoid aggregation of this packet.
492
	 */
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	if (tx_info->flags & IEEE80211_TX_CTL_RATE_CTRL_PROBE || legacy)
		return 0;
495

496
	aggr_limit = min(max_4ms_framelen, (u32)ATH_AMPDU_LIMIT_MAX);
497

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	/*
	 * h/w can accept aggregates upto 16 bit lengths (65535).
	 * The IE, however can hold upto 65536, which shows up here
	 * as zero. Ignore 65536 since we  are constrained by hw.
502
	 */
503 504
	if (tid->an->maxampdu)
		aggr_limit = min(aggr_limit, tid->an->maxampdu);
505

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	return aggr_limit;
}
508

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/*
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 * Returns the number of delimiters to be added to
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 * meet the minimum required mpdudensity.
 */
static int ath_compute_num_delims(struct ath_softc *sc, struct ath_atx_tid *tid,
				  struct ath_buf *bf, u16 frmlen)
{
516
	const struct ath_rate_table *rt = sc->cur_rate_table;
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	struct sk_buff *skb = bf->bf_mpdu;
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
519
	u32 nsymbits, nsymbols;
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	u16 minlen;
	u8 rc, flags, rix;
	int width, half_gi, ndelim, mindelim;

	/* Select standard number of delimiters based on frame length alone */
	ndelim = ATH_AGGR_GET_NDELIM(frmlen);
526 527

	/*
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	 * If encryption enabled, hardware requires some more padding between
	 * subframes.
	 * TODO - this could be improved to be dependent on the rate.
	 *      The hardware can keep up at lower rates, but not higher rates
532
	 */
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	if (bf->bf_keytype != ATH9K_KEY_TYPE_CLEAR)
		ndelim += ATH_AGGR_ENCRYPTDELIM;
535

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	/*
	 * Convert desired mpdu density from microeconds to bytes based
	 * on highest rate in rate series (i.e. first rate) to determine
	 * required minimum length for subframe. Take into account
	 * whether high rate is 20 or 40Mhz and half or full GI.
541
	 *
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	 * If there is no mpdu density restriction, no further calculation
	 * is needed.
	 */
545 546

	if (tid->an->mpdudensity == 0)
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		return ndelim;
548

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	rix = tx_info->control.rates[0].idx;
	flags = tx_info->control.rates[0].flags;
	rc = rt->info[rix].ratecode;
	width = (flags & IEEE80211_TX_RC_40_MHZ_WIDTH) ? 1 : 0;
	half_gi = (flags & IEEE80211_TX_RC_SHORT_GI) ? 1 : 0;
554

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	if (half_gi)
556
		nsymbols = NUM_SYMBOLS_PER_USEC_HALFGI(tid->an->mpdudensity);
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	else
558
		nsymbols = NUM_SYMBOLS_PER_USEC(tid->an->mpdudensity);
559

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	if (nsymbols == 0)
		nsymbols = 1;
562

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	nsymbits = bits_per_symbol[HT_RC_2_MCS(rc)][width];
	minlen = (nsymbols * nsymbits) / BITS_PER_BYTE;
565

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	if (frmlen < minlen) {
		mindelim = (minlen - frmlen) / ATH_AGGR_DELIM_SZ;
		ndelim = max(mindelim, ndelim);
569 570
	}

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	return ndelim;
572 573
}

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static enum ATH_AGGR_STATUS ath_tx_form_aggr(struct ath_softc *sc,
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					     struct ath_txq *txq,
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					     struct ath_atx_tid *tid,
					     struct list_head *bf_q)
578
{
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#define PADBYTES(_len) ((4 - ((_len) % 4)) % 4)
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	struct ath_buf *bf, *bf_first, *bf_prev = NULL;
	int rl = 0, nframes = 0, ndelim, prev_al = 0;
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	u16 aggr_limit = 0, al = 0, bpad = 0,
		al_delta, h_baw = tid->baw_size / 2;
	enum ATH_AGGR_STATUS status = ATH_AGGR_DONE;
585

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	bf_first = list_first_entry(&tid->buf_q, struct ath_buf, list);
587

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	do {
		bf = list_first_entry(&tid->buf_q, struct ath_buf, list);
590

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		/* do not step over block-ack window */
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		if (!BAW_WITHIN(tid->seq_start, tid->baw_size, bf->bf_seqno)) {
			status = ATH_AGGR_BAW_CLOSED;
			break;
		}
596

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		if (!rl) {
			aggr_limit = ath_lookup_rate(sc, bf, tid);
			rl = 1;
		}
601

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		/* do not exceed aggregation limit */
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		al_delta = ATH_AGGR_DELIM_SZ + bf->bf_frmlen;
604

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		if (nframes &&
		    (aggr_limit < (al + bpad + al_delta + prev_al))) {
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			status = ATH_AGGR_LIMITED;
			break;
		}
610

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		/* do not exceed subframe limit */
		if (nframes >= min((int)h_baw, ATH_AMPDU_SUBFRAME_DEFAULT)) {
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			status = ATH_AGGR_LIMITED;
			break;
		}
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		nframes++;
617

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		/* add padding for previous frame to aggregation length */
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		al += bpad + al_delta;
620

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		/*
		 * Get the delimiters needed to meet the MPDU
		 * density for this node.
		 */
		ndelim = ath_compute_num_delims(sc, tid, bf_first, bf->bf_frmlen);
		bpad = PADBYTES(al_delta) + (ndelim << 2);
627

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		bf->bf_next = NULL;
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		bf->bf_desc->ds_link = 0;
630

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		/* link buffers of this frame to the aggregate */
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		ath_tx_addto_baw(sc, tid, bf);
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		ath9k_hw_set11n_aggr_middle(sc->sc_ah, bf->bf_desc, ndelim);
		list_move_tail(&bf->list, bf_q);
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		if (bf_prev) {
			bf_prev->bf_next = bf;
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			bf_prev->bf_desc->ds_link = bf->bf_daddr;
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638 639
		}
		bf_prev = bf;
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	} while (!list_empty(&tid->buf_q));
642

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	bf_first->bf_al = al;
	bf_first->bf_nframes = nframes;
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	return status;
#undef PADBYTES
}
649

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static void ath_tx_sched_aggr(struct ath_softc *sc, struct ath_txq *txq,
			      struct ath_atx_tid *tid)
{
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	struct ath_buf *bf;
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	enum ATH_AGGR_STATUS status;
	struct list_head bf_q;
656

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	do {
		if (list_empty(&tid->buf_q))
			return;
660

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		INIT_LIST_HEAD(&bf_q);

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		status = ath_tx_form_aggr(sc, txq, tid, &bf_q);
664 665

		/*
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		 * no frames picked up to be aggregated;
		 * block-ack window is not open.
668
		 */
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669 670
		if (list_empty(&bf_q))
			break;
671

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		bf = list_first_entry(&bf_q, struct ath_buf, list);
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		bf->bf_lastbf = list_entry(bf_q.prev, struct ath_buf, list);
674

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		/* if only one frame, send as non-aggregate */
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		if (bf->bf_nframes == 1) {
			bf->bf_state.bf_type &= ~BUF_AGGR;
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			ath9k_hw_clr11n_aggr(sc->sc_ah, bf->bf_desc);
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			ath_buf_set_rate(sc, bf);
			ath_tx_txqaddbuf(sc, txq, &bf_q);
			continue;
		}
683

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		/* setup first desc of aggregate */
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		bf->bf_state.bf_type |= BUF_AGGR;
		ath_buf_set_rate(sc, bf);
		ath9k_hw_set11n_aggr_first(sc->sc_ah, bf->bf_desc, bf->bf_al);
688

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		/* anchor last desc of aggregate */
		ath9k_hw_set11n_aggr_last(sc->sc_ah, bf->bf_lastbf->bf_desc);
691

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		txq->axq_aggr_depth++;
		ath_tx_txqaddbuf(sc, txq, &bf_q);
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		TX_STAT_INC(txq->axq_qnum, a_aggr);
695

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	} while (txq->axq_depth < ATH_AGGR_MIN_QDEPTH &&
		 status != ATH_AGGR_BAW_CLOSED);
}

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void ath_tx_aggr_start(struct ath_softc *sc, struct ieee80211_sta *sta,
		       u16 tid, u16 *ssn)
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{
	struct ath_atx_tid *txtid;
	struct ath_node *an;

	an = (struct ath_node *)sta->drv_priv;
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	txtid = ATH_AN_2_TID(an, tid);
	txtid->state |= AGGR_ADDBA_PROGRESS;
	ath_tx_pause_tid(sc, txtid);
	*ssn = txtid->seq_start;
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}
712

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void ath_tx_aggr_stop(struct ath_softc *sc, struct ieee80211_sta *sta, u16 tid)
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{
	struct ath_node *an = (struct ath_node *)sta->drv_priv;
	struct ath_atx_tid *txtid = ATH_AN_2_TID(an, tid);
	struct ath_txq *txq = &sc->tx.txq[txtid->ac->qnum];
	struct ath_buf *bf;
	struct list_head bf_head;
	INIT_LIST_HEAD(&bf_head);
721

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	if (txtid->state & AGGR_CLEANUP)
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723
		return;
724

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725
	if (!(txtid->state & AGGR_ADDBA_COMPLETE)) {
726
		txtid->state &= ~AGGR_ADDBA_PROGRESS;
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		return;
S
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728
	}
729

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730 731 732 733 734 735 736 737 738 739 740 741 742 743
	ath_tx_pause_tid(sc, txtid);

	/* drop all software retried frames and mark this TID */
	spin_lock_bh(&txq->axq_lock);
	while (!list_empty(&txtid->buf_q)) {
		bf = list_first_entry(&txtid->buf_q, struct ath_buf, list);
		if (!bf_isretried(bf)) {
			/*
			 * NB: it's based on the assumption that
			 * software retried frame will always stay
			 * at the head of software queue.
			 */
			break;
		}
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		list_move_tail(&bf->list, &bf_head);
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745
		ath_tx_update_baw(sc, txtid, bf->bf_seqno);
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746
		ath_tx_complete_buf(sc, bf, txq, &bf_head, 0, 0);
747
	}
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748
	spin_unlock_bh(&txq->axq_lock);
749

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	if (txtid->baw_head != txtid->baw_tail) {
		txtid->state |= AGGR_CLEANUP;
	} else {
		txtid->state &= ~AGGR_ADDBA_COMPLETE;
		ath_tx_flush_tid(sc, txtid);
755
	}
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}
757

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void ath_tx_aggr_resume(struct ath_softc *sc, struct ieee80211_sta *sta, u16 tid)
{
	struct ath_atx_tid *txtid;
	struct ath_node *an;

	an = (struct ath_node *)sta->drv_priv;

	if (sc->sc_flags & SC_OP_TXAGGR) {
		txtid = ATH_AN_2_TID(an, tid);
		txtid->baw_size =
			IEEE80211_MIN_AMPDU_BUF << sta->ht_cap.ampdu_factor;
		txtid->state |= AGGR_ADDBA_COMPLETE;
		txtid->state &= ~AGGR_ADDBA_PROGRESS;
		ath_tx_resume_tid(sc, txtid);
	}
773 774
}

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bool ath_tx_aggr_check(struct ath_softc *sc, struct ath_node *an, u8 tidno)
776
{
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	struct ath_atx_tid *txtid;
778

S
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779 780
	if (!(sc->sc_flags & SC_OP_TXAGGR))
		return false;
781

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782 783
	txtid = ATH_AN_2_TID(an, tidno);

784
	if (!(txtid->state & (AGGR_ADDBA_COMPLETE | AGGR_ADDBA_PROGRESS)))
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			return true;
	return false;
787 788
}

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789 790 791
/********************/
/* Queue Management */
/********************/
792

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static void ath_txq_drain_pending_buffers(struct ath_softc *sc,
					  struct ath_txq *txq)
795
{
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796 797
	struct ath_atx_ac *ac, *ac_tmp;
	struct ath_atx_tid *tid, *tid_tmp;
798

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	list_for_each_entry_safe(ac, ac_tmp, &txq->axq_acq, list) {
		list_del(&ac->list);
		ac->sched = false;
		list_for_each_entry_safe(tid, tid_tmp, &ac->tid_q, list) {
			list_del(&tid->list);
			tid->sched = false;
			ath_tid_drain(sc, txq, tid);
		}
807 808 809
	}
}

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struct ath_txq *ath_txq_setup(struct ath_softc *sc, int qtype, int subtype)
811
{
812
	struct ath_hw *ah = sc->sc_ah;
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	struct ath9k_tx_queue_info qi;
	int qnum;
815

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816 817 818 819 820 821
	memset(&qi, 0, sizeof(qi));
	qi.tqi_subtype = subtype;
	qi.tqi_aifs = ATH9K_TXQ_USEDEFAULT;
	qi.tqi_cwmin = ATH9K_TXQ_USEDEFAULT;
	qi.tqi_cwmax = ATH9K_TXQ_USEDEFAULT;
	qi.tqi_physCompBuf = 0;
822 823

	/*
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824 825 826 827 828 829 830 831 832 833 834 835 836
	 * Enable interrupts only for EOL and DESC conditions.
	 * We mark tx descriptors to receive a DESC interrupt
	 * when a tx queue gets deep; otherwise waiting for the
	 * EOL to reap descriptors.  Note that this is done to
	 * reduce interrupt load and this only defers reaping
	 * descriptors, never transmitting frames.  Aside from
	 * reducing interrupts this also permits more concurrency.
	 * The only potential downside is if the tx queue backs
	 * up in which case the top half of the kernel may backup
	 * due to a lack of tx descriptors.
	 *
	 * The UAPSD queue is an exception, since we take a desc-
	 * based intr on the EOSP frames.
837
	 */
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	if (qtype == ATH9K_TX_QUEUE_UAPSD)
		qi.tqi_qflags = TXQ_FLAG_TXDESCINT_ENABLE;
	else
		qi.tqi_qflags = TXQ_FLAG_TXEOLINT_ENABLE |
			TXQ_FLAG_TXDESCINT_ENABLE;
	qnum = ath9k_hw_setuptxqueue(ah, qtype, &qi);
	if (qnum == -1) {
845
		/*
S
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846 847
		 * NB: don't print a message, this happens
		 * normally on parts with too few tx queues
848
		 */
S
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849
		return NULL;
850
	}
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851 852 853 854 855 856 857 858 859
	if (qnum >= ARRAY_SIZE(sc->tx.txq)) {
		DPRINTF(sc, ATH_DBG_FATAL,
			"qnum %u out of range, max %u!\n",
			qnum, (unsigned int)ARRAY_SIZE(sc->tx.txq));
		ath9k_hw_releasetxqueue(ah, qnum);
		return NULL;
	}
	if (!ATH_TXQ_SETUP(sc, qnum)) {
		struct ath_txq *txq = &sc->tx.txq[qnum];
860

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861 862 863 864 865 866 867 868
		txq->axq_qnum = qnum;
		txq->axq_link = NULL;
		INIT_LIST_HEAD(&txq->axq_q);
		INIT_LIST_HEAD(&txq->axq_acq);
		spin_lock_init(&txq->axq_lock);
		txq->axq_depth = 0;
		txq->axq_aggr_depth = 0;
		txq->axq_linkbuf = NULL;
869
		txq->axq_tx_inprogress = false;
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		sc->tx.txqsetup |= 1<<qnum;
	}
	return &sc->tx.txq[qnum];
873 874
}

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875
static int ath_tx_get_qnum(struct ath_softc *sc, int qtype, int haltype)
876
{
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877
	int qnum;
878

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879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899
	switch (qtype) {
	case ATH9K_TX_QUEUE_DATA:
		if (haltype >= ARRAY_SIZE(sc->tx.hwq_map)) {
			DPRINTF(sc, ATH_DBG_FATAL,
				"HAL AC %u out of range, max %zu!\n",
				haltype, ARRAY_SIZE(sc->tx.hwq_map));
			return -1;
		}
		qnum = sc->tx.hwq_map[haltype];
		break;
	case ATH9K_TX_QUEUE_BEACON:
		qnum = sc->beacon.beaconq;
		break;
	case ATH9K_TX_QUEUE_CAB:
		qnum = sc->beacon.cabq->axq_qnum;
		break;
	default:
		qnum = -1;
	}
	return qnum;
}
900

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struct ath_txq *ath_test_get_txq(struct ath_softc *sc, struct sk_buff *skb)
{
	struct ath_txq *txq = NULL;
	int qnum;
905

S
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906 907
	qnum = ath_get_hal_qnum(skb_get_queue_mapping(skb), sc);
	txq = &sc->tx.txq[qnum];
908

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909 910 911
	spin_lock_bh(&txq->axq_lock);

	if (txq->axq_depth >= (ATH_TXBUF - 20)) {
912
		DPRINTF(sc, ATH_DBG_XMIT,
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913 914 915 916 917 918
			"TX queue: %d is full, depth: %d\n",
			qnum, txq->axq_depth);
		ieee80211_stop_queue(sc->hw, skb_get_queue_mapping(skb));
		txq->stopped = 1;
		spin_unlock_bh(&txq->axq_lock);
		return NULL;
919 920
	}

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	spin_unlock_bh(&txq->axq_lock);

	return txq;
}

int ath_txq_update(struct ath_softc *sc, int qnum,
		   struct ath9k_tx_queue_info *qinfo)
{
929
	struct ath_hw *ah = sc->sc_ah;
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	int error = 0;
	struct ath9k_tx_queue_info qi;

	if (qnum == sc->beacon.beaconq) {
		/*
		 * XXX: for beacon queue, we just save the parameter.
		 * It will be picked up by ath_beaconq_config when
		 * it's necessary.
		 */
		sc->beacon.beacon_qi = *qinfo;
940
		return 0;
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	}
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	ASSERT(sc->tx.txq[qnum].axq_qnum == qnum);

	ath9k_hw_get_txq_props(ah, qnum, &qi);
	qi.tqi_aifs = qinfo->tqi_aifs;
	qi.tqi_cwmin = qinfo->tqi_cwmin;
	qi.tqi_cwmax = qinfo->tqi_cwmax;
	qi.tqi_burstTime = qinfo->tqi_burstTime;
	qi.tqi_readyTime = qinfo->tqi_readyTime;

	if (!ath9k_hw_set_txq_props(ah, qnum, &qi)) {
		DPRINTF(sc, ATH_DBG_FATAL,
			"Unable to update hardware queue %u!\n", qnum);
		error = -EIO;
	} else {
		ath9k_hw_resettxqueue(ah, qnum);
	}

	return error;
}

int ath_cabq_update(struct ath_softc *sc)
{
	struct ath9k_tx_queue_info qi;
	int qnum = sc->beacon.cabq->axq_qnum;
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	ath9k_hw_get_txq_props(sc->sc_ah, qnum, &qi);
969
	/*
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	 * Ensure the readytime % is within the bounds.
971
	 */
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	if (sc->config.cabqReadytime < ATH9K_READY_TIME_LO_BOUND)
		sc->config.cabqReadytime = ATH9K_READY_TIME_LO_BOUND;
	else if (sc->config.cabqReadytime > ATH9K_READY_TIME_HI_BOUND)
		sc->config.cabqReadytime = ATH9K_READY_TIME_HI_BOUND;
976

977
	qi.tqi_readyTime = (sc->beacon_interval *
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			    sc->config.cabqReadytime) / 100;
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	ath_txq_update(sc, qnum, &qi);

	return 0;
982 983
}

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/*
 * Drain a given TX queue (could be Beacon or Data)
 *
 * This assumes output has been stopped and
 * we do not need to block ath_tx_tasklet.
 */
void ath_draintxq(struct ath_softc *sc, struct ath_txq *txq, bool retry_tx)
991
{
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	struct ath_buf *bf, *lastbf;
	struct list_head bf_head;
994

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	INIT_LIST_HEAD(&bf_head);
996

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	for (;;) {
		spin_lock_bh(&txq->axq_lock);
999

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		if (list_empty(&txq->axq_q)) {
			txq->axq_link = NULL;
			txq->axq_linkbuf = NULL;
			spin_unlock_bh(&txq->axq_lock);
			break;
		}
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		bf = list_first_entry(&txq->axq_q, struct ath_buf, list);
1008

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		if (bf->bf_stale) {
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			list_del(&bf->list);
			spin_unlock_bh(&txq->axq_lock);
1012

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			spin_lock_bh(&sc->tx.txbuflock);
			list_add_tail(&bf->list, &sc->tx.txbuf);
			spin_unlock_bh(&sc->tx.txbuflock);
			continue;
		}
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		lastbf = bf->bf_lastbf;
		if (!retry_tx)
			lastbf->bf_desc->ds_txstat.ts_flags =
				ATH9K_TX_SW_ABORTED;
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		/* remove ath_buf's of the same mpdu from txq */
		list_cut_position(&bf_head, &txq->axq_q, &lastbf->list);
		txq->axq_depth--;
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		spin_unlock_bh(&txq->axq_lock);

		if (bf_isampdu(bf))
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			ath_tx_complete_aggr(sc, txq, bf, &bf_head, 0);
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		else
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			ath_tx_complete_buf(sc, bf, txq, &bf_head, 0, 0);
1034 1035
	}

1036 1037 1038 1039
	spin_lock_bh(&txq->axq_lock);
	txq->axq_tx_inprogress = false;
	spin_unlock_bh(&txq->axq_lock);

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	/* flush any pending frames if aggregation is enabled */
	if (sc->sc_flags & SC_OP_TXAGGR) {
		if (!retry_tx) {
			spin_lock_bh(&txq->axq_lock);
			ath_txq_drain_pending_buffers(sc, txq);
			spin_unlock_bh(&txq->axq_lock);
		}
	}
1048 1049
}

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void ath_drain_all_txq(struct ath_softc *sc, bool retry_tx)
1051
{
1052
	struct ath_hw *ah = sc->sc_ah;
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	struct ath_txq *txq;
	int i, npend = 0;

	if (sc->sc_flags & SC_OP_INVALID)
		return;

	/* Stop beacon queue */
	ath9k_hw_stoptxdma(sc->sc_ah, sc->beacon.beaconq);

	/* Stop data queues */
	for (i = 0; i < ATH9K_NUM_TX_QUEUES; i++) {
		if (ATH_TXQ_SETUP(sc, i)) {
			txq = &sc->tx.txq[i];
			ath9k_hw_stoptxdma(ah, txq->axq_qnum);
			npend += ath9k_hw_numtxpending(ah, txq->axq_qnum);
		}
	}

	if (npend) {
		int r;

		DPRINTF(sc, ATH_DBG_XMIT, "Unable to stop TxDMA. Reset HAL!\n");

		spin_lock_bh(&sc->sc_resetlock);
1077
		r = ath9k_hw_reset(ah, sc->sc_ah->curchan, true);
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		if (r)
			DPRINTF(sc, ATH_DBG_FATAL,
1080
				"Unable to reset hardware; reset status %d\n",
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				r);
		spin_unlock_bh(&sc->sc_resetlock);
	}

	for (i = 0; i < ATH9K_NUM_TX_QUEUES; i++) {
		if (ATH_TXQ_SETUP(sc, i))
			ath_draintxq(sc, &sc->tx.txq[i], retry_tx);
	}
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}
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void ath_tx_cleanupq(struct ath_softc *sc, struct ath_txq *txq)
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{
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	ath9k_hw_releasetxqueue(sc->sc_ah, txq->axq_qnum);
	sc->tx.txqsetup &= ~(1<<txq->axq_qnum);
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}
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void ath_txq_schedule(struct ath_softc *sc, struct ath_txq *txq)
{
	struct ath_atx_ac *ac;
	struct ath_atx_tid *tid;
1101

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	if (list_empty(&txq->axq_acq))
		return;
1104

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	ac = list_first_entry(&txq->axq_acq, struct ath_atx_ac, list);
	list_del(&ac->list);
	ac->sched = false;
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	do {
		if (list_empty(&ac->tid_q))
			return;
1112

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		tid = list_first_entry(&ac->tid_q, struct ath_atx_tid, list);
		list_del(&tid->list);
		tid->sched = false;
1116

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		if (tid->paused)
			continue;
1119

1120
		ath_tx_sched_aggr(sc, txq, tid);
1121 1122

		/*
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		 * add tid to round-robin queue if more frames
		 * are pending for the tid
1125
		 */
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		if (!list_empty(&tid->buf_q))
			ath_tx_queue_tid(txq, tid);
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		break;
	} while (!list_empty(&ac->tid_q));
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	if (!list_empty(&ac->tid_q)) {
		if (!ac->sched) {
			ac->sched = true;
			list_add_tail(&ac->list, &txq->axq_acq);
1136
		}
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	}
}
1139

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int ath_tx_setup(struct ath_softc *sc, int haltype)
{
	struct ath_txq *txq;
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	if (haltype >= ARRAY_SIZE(sc->tx.hwq_map)) {
		DPRINTF(sc, ATH_DBG_FATAL,
			"HAL AC %u out of range, max %zu!\n",
			 haltype, ARRAY_SIZE(sc->tx.hwq_map));
		return 0;
	}
	txq = ath_txq_setup(sc, ATH9K_TX_QUEUE_DATA, haltype);
	if (txq != NULL) {
		sc->tx.hwq_map[haltype] = txq->axq_qnum;
		return 1;
	} else
		return 0;
1156 1157
}

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/***********/
/* TX, DMA */
/***********/

1162
/*
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 * Insert a chain of ath_buf (descriptors) on a txq and
 * assume the descriptors are already chained together by caller.
1165
 */
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static void ath_tx_txqaddbuf(struct ath_softc *sc, struct ath_txq *txq,
			     struct list_head *head)
1168
{
1169
	struct ath_hw *ah = sc->sc_ah;
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	struct ath_buf *bf;
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	/*
	 * Insert the frame on the outbound list and
	 * pass it on to the hardware.
	 */
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	if (list_empty(head))
		return;
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	bf = list_first_entry(head, struct ath_buf, list);
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	list_splice_tail_init(head, &txq->axq_q);
	txq->axq_depth++;
	txq->axq_linkbuf = list_entry(txq->axq_q.prev, struct ath_buf, list);
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	DPRINTF(sc, ATH_DBG_QUEUE,
		"qnum: %d, txq depth: %d\n", txq->axq_qnum, txq->axq_depth);
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	if (txq->axq_link == NULL) {
		ath9k_hw_puttxbuf(ah, txq->axq_qnum, bf->bf_daddr);
		DPRINTF(sc, ATH_DBG_XMIT,
			"TXDP[%u] = %llx (%p)\n",
			txq->axq_qnum, ito64(bf->bf_daddr), bf->bf_desc);
	} else {
		*txq->axq_link = bf->bf_daddr;
		DPRINTF(sc, ATH_DBG_XMIT, "link[%u] (%p)=%llx (%p)\n",
			txq->axq_qnum, txq->axq_link,
			ito64(bf->bf_daddr), bf->bf_desc);
	}
	txq->axq_link = &(bf->bf_lastbf->bf_desc->ds_link);
	ath9k_hw_txstart(ah, txq->axq_qnum);
}
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static struct ath_buf *ath_tx_get_buffer(struct ath_softc *sc)
{
	struct ath_buf *bf = NULL;
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	spin_lock_bh(&sc->tx.txbuflock);
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	if (unlikely(list_empty(&sc->tx.txbuf))) {
		spin_unlock_bh(&sc->tx.txbuflock);
		return NULL;
	}
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	bf = list_first_entry(&sc->tx.txbuf, struct ath_buf, list);
	list_del(&bf->list);
1217

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	spin_unlock_bh(&sc->tx.txbuflock);
1219

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	return bf;
1221 1222
}

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static void ath_tx_send_ampdu(struct ath_softc *sc, struct ath_atx_tid *tid,
			      struct list_head *bf_head,
			      struct ath_tx_control *txctl)
1226 1227 1228
{
	struct ath_buf *bf;

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	bf = list_first_entry(bf_head, struct ath_buf, list);
	bf->bf_state.bf_type |= BUF_AMPDU;
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	TX_STAT_INC(txctl->txq->axq_qnum, a_queued);
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	/*
	 * Do not queue to h/w when any of the following conditions is true:
	 * - there are pending frames in software queue
	 * - the TID is currently paused for ADDBA/BAR request
	 * - seqno is not within block-ack window
	 * - h/w queue depth exceeds low water mark
	 */
	if (!list_empty(&tid->buf_q) || tid->paused ||
	    !BAW_WITHIN(tid->seq_start, tid->baw_size, bf->bf_seqno) ||
	    txctl->txq->axq_depth >= ATH_AGGR_MIN_QDEPTH) {
1243
		/*
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		 * Add this frame to software queue for scheduling later
		 * for aggregation.
1246
		 */
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		list_move_tail(&bf->list, &tid->buf_q);
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		ath_tx_queue_tid(txctl->txq, tid);
		return;
	}

	/* Add sub-frame to BAW */
	ath_tx_addto_baw(sc, tid, bf);

	/* Queue to h/w without aggregation */
	bf->bf_nframes = 1;
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	bf->bf_lastbf = bf;
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	ath_buf_set_rate(sc, bf);
	ath_tx_txqaddbuf(sc, txctl->txq, bf_head);
}

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static void ath_tx_send_ht_normal(struct ath_softc *sc, struct ath_txq *txq,
				  struct ath_atx_tid *tid,
				  struct list_head *bf_head)
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{
	struct ath_buf *bf;

	bf = list_first_entry(bf_head, struct ath_buf, list);
	bf->bf_state.bf_type &= ~BUF_AMPDU;

	/* update starting sequence number for subsequent ADDBA request */
	INCR(tid->seq_start, IEEE80211_SEQ_MAX);

	bf->bf_nframes = 1;
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	bf->bf_lastbf = bf;
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	ath_buf_set_rate(sc, bf);
	ath_tx_txqaddbuf(sc, txq, bf_head);
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	TX_STAT_INC(txq->axq_qnum, queued);
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}

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static void ath_tx_send_normal(struct ath_softc *sc, struct ath_txq *txq,
			       struct list_head *bf_head)
{
	struct ath_buf *bf;

	bf = list_first_entry(bf_head, struct ath_buf, list);

	bf->bf_lastbf = bf;
	bf->bf_nframes = 1;
	ath_buf_set_rate(sc, bf);
	ath_tx_txqaddbuf(sc, txq, bf_head);
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	TX_STAT_INC(txq->axq_qnum, queued);
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}

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static enum ath9k_pkt_type get_hw_packet_type(struct sk_buff *skb)
{
	struct ieee80211_hdr *hdr;
	enum ath9k_pkt_type htype;
	__le16 fc;

	hdr = (struct ieee80211_hdr *)skb->data;
	fc = hdr->frame_control;

	if (ieee80211_is_beacon(fc))
		htype = ATH9K_PKT_TYPE_BEACON;
	else if (ieee80211_is_probe_resp(fc))
		htype = ATH9K_PKT_TYPE_PROBE_RESP;
	else if (ieee80211_is_atim(fc))
		htype = ATH9K_PKT_TYPE_ATIM;
	else if (ieee80211_is_pspoll(fc))
		htype = ATH9K_PKT_TYPE_PSPOLL;
	else
		htype = ATH9K_PKT_TYPE_NORMAL;

	return htype;
}

static bool is_pae(struct sk_buff *skb)
{
	struct ieee80211_hdr *hdr;
	__le16 fc;

	hdr = (struct ieee80211_hdr *)skb->data;
	fc = hdr->frame_control;

	if (ieee80211_is_data(fc)) {
		if (ieee80211_is_nullfunc(fc) ||
		    /* Port Access Entity (IEEE 802.1X) */
		    (skb->protocol == cpu_to_be16(ETH_P_PAE))) {
			return true;
		}
	}

	return false;
}

static int get_hw_crypto_keytype(struct sk_buff *skb)
{
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);

	if (tx_info->control.hw_key) {
		if (tx_info->control.hw_key->alg == ALG_WEP)
			return ATH9K_KEY_TYPE_WEP;
		else if (tx_info->control.hw_key->alg == ALG_TKIP)
			return ATH9K_KEY_TYPE_TKIP;
		else if (tx_info->control.hw_key->alg == ALG_CCMP)
			return ATH9K_KEY_TYPE_AES;
	}

	return ATH9K_KEY_TYPE_CLEAR;
}

static void assign_aggr_tid_seqno(struct sk_buff *skb,
				  struct ath_buf *bf)
{
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
	struct ieee80211_hdr *hdr;
	struct ath_node *an;
	struct ath_atx_tid *tid;
	__le16 fc;
	u8 *qc;

	if (!tx_info->control.sta)
		return;

	an = (struct ath_node *)tx_info->control.sta->drv_priv;
	hdr = (struct ieee80211_hdr *)skb->data;
	fc = hdr->frame_control;

	if (ieee80211_is_data_qos(fc)) {
		qc = ieee80211_get_qos_ctl(hdr);
		bf->bf_tidno = qc[0] & 0xf;
	}

	/*
	 * For HT capable stations, we save tidno for later use.
	 * We also override seqno set by upper layer with the one
	 * in tx aggregation state.
	 *
	 * If fragmentation is on, the sequence number is
	 * not overridden, since it has been
	 * incremented by the fragmentation routine.
	 *
	 * FIXME: check if the fragmentation threshold exceeds
	 * IEEE80211 max.
	 */
	tid = ATH_AN_2_TID(an, bf->bf_tidno);
	hdr->seq_ctrl = cpu_to_le16(tid->seq_next <<
			IEEE80211_SEQ_SEQ_SHIFT);
	bf->bf_seqno = tid->seq_next;
	INCR(tid->seq_next, IEEE80211_SEQ_MAX);
}

static int setup_tx_flags(struct ath_softc *sc, struct sk_buff *skb,
			  struct ath_txq *txq)
{
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
	int flags = 0;

	flags |= ATH9K_TXDESC_CLRDMASK; /* needed for crypto errors */
	flags |= ATH9K_TXDESC_INTREQ;

	if (tx_info->flags & IEEE80211_TX_CTL_NO_ACK)
		flags |= ATH9K_TXDESC_NOACK;

	return flags;
}

/*
 * rix - rate index
 * pktlen - total bytes (delims + data + fcs + pads + pad delims)
 * width  - 0 for 20 MHz, 1 for 40 MHz
 * half_gi - to use 4us v/s 3.6 us for symbol time
 */
static u32 ath_pkt_duration(struct ath_softc *sc, u8 rix, struct ath_buf *bf,
			    int width, int half_gi, bool shortPreamble)
{
1418
	const struct ath_rate_table *rate_table = sc->cur_rate_table;
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	u32 nbits, nsymbits, duration, nsymbols;
	u8 rc;
	int streams, pktlen;

	pktlen = bf_isaggr(bf) ? bf->bf_al : bf->bf_frmlen;
	rc = rate_table->info[rix].ratecode;

	/* for legacy rates, use old function to compute packet duration */
	if (!IS_HT_RATE(rc))
		return ath9k_hw_computetxtime(sc->sc_ah, rate_table, pktlen,
					      rix, shortPreamble);

	/* find number of symbols: PLCP + data */
	nbits = (pktlen << 3) + OFDM_PLCP_BITS;
	nsymbits = bits_per_symbol[HT_RC_2_MCS(rc)][width];
	nsymbols = (nbits + nsymbits - 1) / nsymbits;

	if (!half_gi)
		duration = SYMBOL_TIME(nsymbols);
	else
		duration = SYMBOL_TIME_HALFGI(nsymbols);

	/* addup duration for legacy/ht training and signal fields */
	streams = HT_RC_2_STREAMS(rc);
	duration += L_STF + L_LTF + L_SIG + HT_SIG + HT_STF + HT_LTF(streams);

	return duration;
}

static void ath_buf_set_rate(struct ath_softc *sc, struct ath_buf *bf)
{
1450
	const struct ath_rate_table *rt = sc->cur_rate_table;
S
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1451 1452 1453 1454
	struct ath9k_11n_rate_series series[4];
	struct sk_buff *skb;
	struct ieee80211_tx_info *tx_info;
	struct ieee80211_tx_rate *rates;
1455
	struct ieee80211_hdr *hdr;
1456 1457
	int i, flags = 0;
	u8 rix = 0, ctsrate = 0;
1458
	bool is_pspoll;
S
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1459 1460 1461

	memset(series, 0, sizeof(struct ath9k_11n_rate_series) * 4);

S
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1462
	skb = bf->bf_mpdu;
S
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1463 1464
	tx_info = IEEE80211_SKB_CB(skb);
	rates = tx_info->control.rates;
1465 1466
	hdr = (struct ieee80211_hdr *)skb->data;
	is_pspoll = ieee80211_is_pspoll(hdr->frame_control);
S
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1467 1468

	/*
1469 1470 1471
	 * We check if Short Preamble is needed for the CTS rate by
	 * checking the BSS's global flag.
	 * But for the rate series, IEEE80211_TX_RC_USE_SHORT_PREAMBLE is used.
S
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1472
	 */
1473 1474 1475 1476 1477
	if (sc->sc_flags & SC_OP_PREAMBLE_SHORT)
		ctsrate = rt->info[tx_info->control.rts_cts_rate_idx].ratecode |
			rt->info[tx_info->control.rts_cts_rate_idx].short_preamble;
	else
		ctsrate = rt->info[tx_info->control.rts_cts_rate_idx].ratecode;
S
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1478

1479 1480 1481 1482
	/*
	 * ATH9K_TXDESC_RTSENA and ATH9K_TXDESC_CTSENA are mutually exclusive.
	 * Check the first rate in the series to decide whether RTS/CTS
	 * or CTS-to-self has to be used.
S
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1483
	 */
1484 1485 1486 1487
	if (rates[0].flags & IEEE80211_TX_RC_USE_CTS_PROTECT)
		flags = ATH9K_TXDESC_CTSENA;
	else if (rates[0].flags & IEEE80211_TX_RC_USE_RTS_CTS)
		flags = ATH9K_TXDESC_RTSENA;
S
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1488

1489
	/* FIXME: Handle aggregation protection */
S
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1490
	if (sc->config.ath_aggr_prot &&
S
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1491 1492 1493 1494 1495
	    (!bf_isaggr(bf) || (bf_isaggr(bf) && bf->bf_al < 8192))) {
		flags = ATH9K_TXDESC_RTSENA;
	}

	/* For AR5416 - RTS cannot be followed by a frame larger than 8K */
1496
	if (bf_isaggr(bf) && (bf->bf_al > sc->sc_ah->caps.rts_aggr_limit))
S
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1497 1498 1499 1500 1501 1502 1503 1504
		flags &= ~(ATH9K_TXDESC_RTSENA);

	for (i = 0; i < 4; i++) {
		if (!rates[i].count || (rates[i].idx < 0))
			continue;

		rix = rates[i].idx;
		series[i].Tries = rates[i].count;
S
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1505
		series[i].ChSel = sc->tx_chainmask;
S
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1506

1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518
		if (rates[i].flags & IEEE80211_TX_RC_USE_SHORT_PREAMBLE)
			series[i].Rate = rt->info[rix].ratecode |
				rt->info[rix].short_preamble;
		else
			series[i].Rate = rt->info[rix].ratecode;

		if (rates[i].flags & IEEE80211_TX_RC_USE_RTS_CTS)
			series[i].RateFlags |= ATH9K_RATESERIES_RTS_CTS;
		if (rates[i].flags & IEEE80211_TX_RC_40_MHZ_WIDTH)
			series[i].RateFlags |= ATH9K_RATESERIES_2040;
		if (rates[i].flags & IEEE80211_TX_RC_SHORT_GI)
			series[i].RateFlags |= ATH9K_RATESERIES_HALFGI;
S
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1519 1520 1521 1522

		series[i].PktDuration = ath_pkt_duration(sc, rix, bf,
			 (rates[i].flags & IEEE80211_TX_RC_40_MHZ_WIDTH) != 0,
			 (rates[i].flags & IEEE80211_TX_RC_SHORT_GI),
1523
			 (rates[i].flags & IEEE80211_TX_RC_USE_SHORT_PREAMBLE));
1524 1525
	}

S
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1526
	/* set dur_update_en for l-sig computation except for PS-Poll frames */
1527 1528
	ath9k_hw_set11n_ratescenario(sc->sc_ah, bf->bf_desc,
				     bf->bf_lastbf->bf_desc,
1529
				     !is_pspoll, ctsrate,
1530
				     0, series, 4, flags);
1531

S
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1532
	if (sc->config.ath_aggr_prot && flags)
1533
		ath9k_hw_set11n_burstduration(sc->sc_ah, bf->bf_desc, 8192);
1534 1535
}

1536
static int ath_tx_setup_buffer(struct ieee80211_hw *hw, struct ath_buf *bf,
1537
				struct sk_buff *skb,
S
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1538
				struct ath_tx_control *txctl)
1539
{
1540 1541
	struct ath_wiphy *aphy = hw->priv;
	struct ath_softc *sc = aphy->sc;
S
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1542 1543
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
1544
	struct ath_tx_info_priv *tx_info_priv;
S
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1545 1546
	int hdrlen;
	__le16 fc;
1547

1548 1549 1550
	tx_info_priv = kzalloc(sizeof(*tx_info_priv), GFP_ATOMIC);
	if (unlikely(!tx_info_priv))
		return -ENOMEM;
S
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1551
	tx_info->rate_driver_data[0] = tx_info_priv;
1552
	tx_info_priv->aphy = aphy;
1553
	tx_info_priv->frame_type = txctl->frame_type;
S
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1554 1555
	hdrlen = ieee80211_get_hdrlen_from_skb(skb);
	fc = hdr->frame_control;
1556

S
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1557
	ATH_TXBUF_RESET(bf);
1558

S
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1559
	bf->bf_frmlen = skb->len + FCS_LEN - (hdrlen & 3);
S
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1560

S
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1561
	if (conf_is_ht(&sc->hw->conf) && !is_pae(skb))
S
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1562
		bf->bf_state.bf_type |= BUF_HT;
S
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1563 1564 1565 1566 1567 1568 1569 1570 1571 1572 1573

	bf->bf_flags = setup_tx_flags(sc, skb, txctl->txq);

	bf->bf_keytype = get_hw_crypto_keytype(skb);
	if (bf->bf_keytype != ATH9K_KEY_TYPE_CLEAR) {
		bf->bf_frmlen += tx_info->control.hw_key->icv_len;
		bf->bf_keyix = tx_info->control.hw_key->hw_key_idx;
	} else {
		bf->bf_keyix = ATH9K_TXKEYIX_INVALID;
	}

1574
	if (ieee80211_is_data_qos(fc) && (sc->sc_flags & SC_OP_TXAGGR))
S
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1575 1576
		assign_aggr_tid_seqno(skb, bf);

1577
	bf->bf_mpdu = skb;
1578

1579 1580 1581
	bf->bf_dmacontext = dma_map_single(sc->dev, skb->data,
					   skb->len, DMA_TO_DEVICE);
	if (unlikely(dma_mapping_error(sc->dev, bf->bf_dmacontext))) {
1582
		bf->bf_mpdu = NULL;
S
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1583 1584 1585
		kfree(tx_info_priv);
		tx_info->rate_driver_data[0] = NULL;
		DPRINTF(sc, ATH_DBG_FATAL, "dma_mapping_error() on TX\n");
1586 1587 1588
		return -ENOMEM;
	}

S
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1589
	bf->bf_buf_addr = bf->bf_dmacontext;
1590
	return 0;
S
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1591 1592 1593 1594 1595 1596
}

/* FIXME: tx power */
static void ath_tx_start_dma(struct ath_softc *sc, struct ath_buf *bf,
			     struct ath_tx_control *txctl)
{
S
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1597
	struct sk_buff *skb = bf->bf_mpdu;
S
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1598
	struct ieee80211_tx_info *tx_info =  IEEE80211_SKB_CB(skb);
S
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1599
	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
S
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1600 1601 1602 1603
	struct ath_node *an = NULL;
	struct list_head bf_head;
	struct ath_desc *ds;
	struct ath_atx_tid *tid;
1604
	struct ath_hw *ah = sc->sc_ah;
S
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1605
	int frm_type;
S
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1606
	__le16 fc;
S
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1607 1608

	frm_type = get_hw_packet_type(skb);
S
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1609
	fc = hdr->frame_control;
S
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1610 1611 1612

	INIT_LIST_HEAD(&bf_head);
	list_add_tail(&bf->list, &bf_head);
1613 1614 1615 1616 1617

	ds = bf->bf_desc;
	ds->ds_link = 0;
	ds->ds_data = bf->bf_buf_addr;

S
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1618 1619 1620 1621
	ath9k_hw_set11n_txdesc(ah, ds, bf->bf_frmlen, frm_type, MAX_RATE_POWER,
			       bf->bf_keyix, bf->bf_keytype, bf->bf_flags);

	ath9k_hw_filltxdesc(ah, ds,
1622 1623 1624 1625
			    skb->len,	/* segment length */
			    true,	/* first segment */
			    true,	/* last segment */
			    ds);	/* first descriptor */
1626

S
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1627
	spin_lock_bh(&txctl->txq->axq_lock);
1628

1629 1630 1631 1632 1633
	if (bf_isht(bf) && (sc->sc_flags & SC_OP_TXAGGR) &&
	    tx_info->control.sta) {
		an = (struct ath_node *)tx_info->control.sta->drv_priv;
		tid = ATH_AN_2_TID(an, bf->bf_tidno);

S
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1634 1635 1636 1637 1638
		if (!ieee80211_is_data_qos(fc)) {
			ath_tx_send_normal(sc, txctl->txq, &bf_head);
			goto tx_done;
		}

1639
		if (tx_info->flags & IEEE80211_TX_CTL_AMPDU) {
1640 1641 1642 1643
			/*
			 * Try aggregation if it's a unicast data frame
			 * and the destination is HT capable.
			 */
S
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1644
			ath_tx_send_ampdu(sc, tid, &bf_head, txctl);
1645 1646
		} else {
			/*
S
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1647 1648
			 * Send this frame as regular when ADDBA
			 * exchange is neither complete nor pending.
1649
			 */
S
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1650 1651
			ath_tx_send_ht_normal(sc, txctl->txq,
					      tid, &bf_head);
1652 1653
		}
	} else {
S
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1654
		ath_tx_send_normal(sc, txctl->txq, &bf_head);
1655
	}
S
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1656

S
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1657
tx_done:
S
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1658
	spin_unlock_bh(&txctl->txq->axq_lock);
1659 1660
}

1661
/* Upon failure caller should free skb */
1662
int ath_tx_start(struct ieee80211_hw *hw, struct sk_buff *skb,
S
Sujith 已提交
1663
		 struct ath_tx_control *txctl)
1664
{
1665 1666
	struct ath_wiphy *aphy = hw->priv;
	struct ath_softc *sc = aphy->sc;
S
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1667
	struct ath_buf *bf;
1668
	int r;
1669

S
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1670 1671
	bf = ath_tx_get_buffer(sc);
	if (!bf) {
S
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1672
		DPRINTF(sc, ATH_DBG_XMIT, "TX buffers are full\n");
S
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1673 1674 1675
		return -1;
	}

1676
	r = ath_tx_setup_buffer(hw, bf, skb, txctl);
1677
	if (unlikely(r)) {
1678 1679
		struct ath_txq *txq = txctl->txq;

1680
		DPRINTF(sc, ATH_DBG_FATAL, "TX mem alloc failure\n");
1681 1682 1683 1684 1685 1686

		/* upon ath_tx_processq() this TX queue will be resumed, we
		 * guarantee this will happen by knowing beforehand that
		 * we will at least have to run TX completionon one buffer
		 * on the queue */
		spin_lock_bh(&txq->axq_lock);
1687
		if (sc->tx.txq[txq->axq_qnum].axq_depth > 1) {
1688 1689 1690 1691 1692 1693
			ieee80211_stop_queue(sc->hw,
				skb_get_queue_mapping(skb));
			txq->stopped = 1;
		}
		spin_unlock_bh(&txq->axq_lock);

S
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1694 1695 1696
		spin_lock_bh(&sc->tx.txbuflock);
		list_add_tail(&bf->list, &sc->tx.txbuf);
		spin_unlock_bh(&sc->tx.txbuflock);
1697

1698 1699 1700
		return r;
	}

1701
	ath_tx_start_dma(sc, bf, txctl);
1702

S
Sujith 已提交
1703
	return 0;
1704 1705
}

1706
void ath_tx_cabq(struct ieee80211_hw *hw, struct sk_buff *skb)
1707
{
1708 1709
	struct ath_wiphy *aphy = hw->priv;
	struct ath_softc *sc = aphy->sc;
S
Sujith 已提交
1710 1711 1712
	int hdrlen, padsize;
	struct ieee80211_tx_info *info = IEEE80211_SKB_CB(skb);
	struct ath_tx_control txctl;
1713

S
Sujith 已提交
1714
	memset(&txctl, 0, sizeof(struct ath_tx_control));
1715 1716

	/*
S
Sujith 已提交
1717 1718 1719
	 * As a temporary workaround, assign seq# here; this will likely need
	 * to be cleaned up to work better with Beacon transmission and virtual
	 * BSSes.
1720
	 */
S
Sujith 已提交
1721 1722 1723 1724 1725 1726
	if (info->flags & IEEE80211_TX_CTL_ASSIGN_SEQ) {
		struct ieee80211_hdr *hdr = (struct ieee80211_hdr *) skb->data;
		if (info->flags & IEEE80211_TX_CTL_FIRST_FRAGMENT)
			sc->tx.seq_no += 0x10;
		hdr->seq_ctrl &= cpu_to_le16(IEEE80211_SCTL_FRAG);
		hdr->seq_ctrl |= cpu_to_le16(sc->tx.seq_no);
1727 1728
	}

S
Sujith 已提交
1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739
	/* Add the padding after the header if this is not already done */
	hdrlen = ieee80211_get_hdrlen_from_skb(skb);
	if (hdrlen & 3) {
		padsize = hdrlen % 4;
		if (skb_headroom(skb) < padsize) {
			DPRINTF(sc, ATH_DBG_XMIT, "TX CABQ padding failed\n");
			dev_kfree_skb_any(skb);
			return;
		}
		skb_push(skb, padsize);
		memmove(skb->data, skb->data + padsize, hdrlen);
1740 1741
	}

S
Sujith 已提交
1742
	txctl.txq = sc->beacon.cabq;
1743

S
Sujith 已提交
1744
	DPRINTF(sc, ATH_DBG_XMIT, "transmitting CABQ packet, skb: %p\n", skb);
1745

1746
	if (ath_tx_start(hw, skb, &txctl) != 0) {
S
Sujith 已提交
1747 1748
		DPRINTF(sc, ATH_DBG_XMIT, "CABQ TX failed\n");
		goto exit;
1749 1750
	}

S
Sujith 已提交
1751 1752 1753
	return;
exit:
	dev_kfree_skb_any(skb);
1754 1755
}

S
Sujith 已提交
1756 1757 1758
/*****************/
/* TX Completion */
/*****************/
S
Sujith 已提交
1759

S
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1760
static void ath_tx_complete(struct ath_softc *sc, struct sk_buff *skb,
1761
			    int tx_flags)
S
Sujith 已提交
1762
{
S
Sujith 已提交
1763 1764 1765 1766
	struct ieee80211_hw *hw = sc->hw;
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
	struct ath_tx_info_priv *tx_info_priv = ATH_TX_INFO_PRIV(tx_info);
	int hdrlen, padsize;
1767
	int frame_type = ATH9K_NOT_INTERNAL;
S
Sujith 已提交
1768

S
Sujith 已提交
1769
	DPRINTF(sc, ATH_DBG_XMIT, "TX complete: skb: %p\n", skb);
S
Sujith 已提交
1770

1771
	if (tx_info_priv) {
1772
		hw = tx_info_priv->aphy->hw;
1773 1774
		frame_type = tx_info_priv->frame_type;
	}
1775

S
Sujith 已提交
1776 1777 1778 1779 1780
	if (tx_info->flags & IEEE80211_TX_CTL_NO_ACK ||
	    tx_info->flags & IEEE80211_TX_STAT_TX_FILTERED) {
		kfree(tx_info_priv);
		tx_info->rate_driver_data[0] = NULL;
	}
S
Sujith 已提交
1781

1782
	if (tx_flags & ATH_TX_BAR)
S
Sujith 已提交
1783 1784
		tx_info->flags |= IEEE80211_TX_STAT_AMPDU_NO_BACK;

1785
	if (!(tx_flags & (ATH_TX_ERROR | ATH_TX_XRETRY))) {
S
Sujith 已提交
1786 1787
		/* Frame was ACKed */
		tx_info->flags |= IEEE80211_TX_STAT_ACK;
S
Sujith 已提交
1788 1789
	}

S
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1790 1791 1792 1793 1794 1795 1796 1797 1798 1799
	hdrlen = ieee80211_get_hdrlen_from_skb(skb);
	padsize = hdrlen & 3;
	if (padsize && hdrlen >= 24) {
		/*
		 * Remove MAC header padding before giving the frame back to
		 * mac80211.
		 */
		memmove(skb->data + padsize, skb->data, hdrlen);
		skb_pull(skb, padsize);
	}
S
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1800

1801 1802 1803 1804 1805 1806 1807 1808 1809 1810
	if (sc->sc_flags & SC_OP_WAIT_FOR_TX_ACK) {
		sc->sc_flags &= ~SC_OP_WAIT_FOR_TX_ACK;
		DPRINTF(sc, ATH_DBG_PS, "Going back to sleep after having "
			"received TX status (0x%x)\n",
			sc->sc_flags & (SC_OP_WAIT_FOR_BEACON |
					SC_OP_WAIT_FOR_CAB |
					SC_OP_WAIT_FOR_PSPOLL_DATA |
					SC_OP_WAIT_FOR_TX_ACK));
	}

1811 1812 1813 1814
	if (frame_type == ATH9K_NOT_INTERNAL)
		ieee80211_tx_status(hw, skb);
	else
		ath9k_tx_status(hw, skb);
S
Sujith 已提交
1815
}
1816

S
Sujith 已提交
1817
static void ath_tx_complete_buf(struct ath_softc *sc, struct ath_buf *bf,
S
Sujith 已提交
1818
				struct ath_txq *txq,
S
Sujith 已提交
1819 1820
				struct list_head *bf_q,
				int txok, int sendbar)
1821
{
S
Sujith 已提交
1822 1823
	struct sk_buff *skb = bf->bf_mpdu;
	unsigned long flags;
1824
	int tx_flags = 0;
1825

S
Sujith 已提交
1826
	if (sendbar)
1827
		tx_flags = ATH_TX_BAR;
1828

S
Sujith 已提交
1829
	if (!txok) {
1830
		tx_flags |= ATH_TX_ERROR;
1831

S
Sujith 已提交
1832
		if (bf_isxretried(bf))
1833
			tx_flags |= ATH_TX_XRETRY;
1834 1835
	}

S
Sujith 已提交
1836
	dma_unmap_single(sc->dev, bf->bf_dmacontext, skb->len, DMA_TO_DEVICE);
1837
	ath_tx_complete(sc, skb, tx_flags);
S
Sujith 已提交
1838
	ath_debug_stat_tx(sc, txq, bf);
S
Sujith 已提交
1839 1840 1841 1842 1843 1844 1845

	/*
	 * Return the list of ath_buf of this mpdu to free queue
	 */
	spin_lock_irqsave(&sc->tx.txbuflock, flags);
	list_splice_tail_init(bf_q, &sc->tx.txbuf);
	spin_unlock_irqrestore(&sc->tx.txbuflock, flags);
1846 1847
}

S
Sujith 已提交
1848 1849
static int ath_tx_num_badfrms(struct ath_softc *sc, struct ath_buf *bf,
			      int txok)
1850
{
S
Sujith 已提交
1851 1852 1853 1854 1855 1856 1857
	struct ath_buf *bf_last = bf->bf_lastbf;
	struct ath_desc *ds = bf_last->bf_desc;
	u16 seq_st = 0;
	u32 ba[WME_BA_BMP_SIZE >> 5];
	int ba_index;
	int nbad = 0;
	int isaggr = 0;
1858

S
Sujith 已提交
1859 1860
	if (ds->ds_txstat.ts_flags == ATH9K_TX_SW_ABORTED)
		return 0;
1861

S
Sujith 已提交
1862 1863 1864 1865 1866
	isaggr = bf_isaggr(bf);
	if (isaggr) {
		seq_st = ATH_DS_BA_SEQ(ds);
		memcpy(ba, ATH_DS_BA_BITMAP(ds), WME_BA_BMP_SIZE >> 3);
	}
1867

S
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1868 1869 1870 1871 1872 1873 1874
	while (bf) {
		ba_index = ATH_BA_INDEX(seq_st, bf->bf_seqno);
		if (!txok || (isaggr && !ATH_BA_ISSET(ba, ba_index)))
			nbad++;

		bf = bf->bf_next;
	}
1875

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1876 1877
	return nbad;
}
1878

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1879
static void ath_tx_rc_status(struct ath_buf *bf, struct ath_desc *ds,
1880
			     int nbad, int txok, bool update_rc)
1881
{
S
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1882
	struct sk_buff *skb = bf->bf_mpdu;
1883
	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)skb->data;
S
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1884 1885
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(skb);
	struct ath_tx_info_priv *tx_info_priv = ATH_TX_INFO_PRIV(tx_info);
1886 1887
	struct ieee80211_hw *hw = tx_info_priv->aphy->hw;
	u8 i, tx_rateindex;
1888

S
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1889 1890 1891
	if (txok)
		tx_info->status.ack_signal = ds->ds_txstat.ts_rssi;

1892 1893 1894 1895
	tx_rateindex = ds->ds_txstat.ts_rateindex;
	WARN_ON(tx_rateindex >= hw->max_rates);

	tx_info_priv->update_rc = update_rc;
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1896 1897
	if (ds->ds_txstat.ts_status & ATH9K_TXERR_FILT)
		tx_info->flags |= IEEE80211_TX_STAT_TX_FILTERED;
1898

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1899
	if ((ds->ds_txstat.ts_status & ATH9K_TXERR_FILT) == 0 &&
1900
	    (bf->bf_flags & ATH9K_TXDESC_NOACK) == 0 && update_rc) {
1901
		if (ieee80211_is_data(hdr->frame_control)) {
S
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1902 1903 1904 1905 1906
			memcpy(&tx_info_priv->tx, &ds->ds_txstat,
			       sizeof(tx_info_priv->tx));
			tx_info_priv->n_frames = bf->bf_nframes;
			tx_info_priv->n_bad_frames = nbad;
		}
1907
	}
1908 1909 1910 1911 1912

	for (i = tx_rateindex + 1; i < hw->max_rates; i++)
		tx_info->status.rates[i].count = 0;

	tx_info->status.rates[tx_rateindex].count = bf->bf_retries + 1;
1913 1914
}

1915 1916 1917 1918 1919 1920
static void ath_wake_mac80211_queue(struct ath_softc *sc, struct ath_txq *txq)
{
	int qnum;

	spin_lock_bh(&txq->axq_lock);
	if (txq->stopped &&
1921
	    sc->tx.txq[txq->axq_qnum].axq_depth <= (ATH_TXBUF - 20)) {
1922 1923 1924 1925 1926 1927 1928 1929 1930
		qnum = ath_get_mac80211_qnum(txq->axq_qnum, sc);
		if (qnum != -1) {
			ieee80211_wake_queue(sc->hw, qnum);
			txq->stopped = 0;
		}
	}
	spin_unlock_bh(&txq->axq_lock);
}

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1931
static void ath_tx_processq(struct ath_softc *sc, struct ath_txq *txq)
1932
{
1933
	struct ath_hw *ah = sc->sc_ah;
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1934
	struct ath_buf *bf, *lastbf, *bf_held = NULL;
1935
	struct list_head bf_head;
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1936
	struct ath_desc *ds;
1937
	int txok;
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1938
	int status;
1939

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1940 1941 1942
	DPRINTF(sc, ATH_DBG_QUEUE, "tx queue %d (%x), link %p\n",
		txq->axq_qnum, ath9k_hw_gettxbuf(sc->sc_ah, txq->axq_qnum),
		txq->axq_link);
1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953

	for (;;) {
		spin_lock_bh(&txq->axq_lock);
		if (list_empty(&txq->axq_q)) {
			txq->axq_link = NULL;
			txq->axq_linkbuf = NULL;
			spin_unlock_bh(&txq->axq_lock);
			break;
		}
		bf = list_first_entry(&txq->axq_q, struct ath_buf, list);

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1954 1955 1956 1957 1958 1959 1960 1961 1962
		/*
		 * There is a race condition that a BH gets scheduled
		 * after sw writes TxE and before hw re-load the last
		 * descriptor to get the newly chained one.
		 * Software must keep the last DONE descriptor as a
		 * holding descriptor - software does so by marking
		 * it with the STALE flag.
		 */
		bf_held = NULL;
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1963
		if (bf->bf_stale) {
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1964 1965
			bf_held = bf;
			if (list_is_last(&bf_held->list, &txq->axq_q)) {
1966
				spin_unlock_bh(&txq->axq_lock);
S
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1967 1968 1969
				break;
			} else {
				bf = list_entry(bf_held->list.next,
1970
						struct ath_buf, list);
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1971
			}
1972 1973 1974
		}

		lastbf = bf->bf_lastbf;
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1975
		ds = lastbf->bf_desc;
1976

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1977 1978
		status = ath9k_hw_txprocdesc(ah, ds);
		if (status == -EINPROGRESS) {
1979
			spin_unlock_bh(&txq->axq_lock);
S
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1980
			break;
1981
		}
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1982 1983 1984 1985
		if (bf->bf_desc == txq->axq_lastdsWithCTS)
			txq->axq_lastdsWithCTS = NULL;
		if (ds == txq->axq_gatingds)
			txq->axq_gatingds = NULL;
1986

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1987 1988 1989 1990 1991
		/*
		 * Remove ath_buf's of the same transmit unit from txq,
		 * however leave the last descriptor back as the holding
		 * descriptor for hw.
		 */
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1992
		lastbf->bf_stale = true;
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1993 1994 1995 1996
		INIT_LIST_HEAD(&bf_head);
		if (!list_is_singular(&lastbf->list))
			list_cut_position(&bf_head,
				&txq->axq_q, lastbf->list.prev);
1997

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1998 1999 2000
		txq->axq_depth--;
		if (bf_isaggr(bf))
			txq->axq_aggr_depth--;
2001

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2002
		txok = (ds->ds_txstat.ts_status == 0);
2003
		txq->axq_tx_inprogress = false;
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2004
		spin_unlock_bh(&txq->axq_lock);
2005

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2006 2007
		if (bf_held) {
			spin_lock_bh(&sc->tx.txbuflock);
2008
			list_move_tail(&bf_held->list, &sc->tx.txbuf);
S
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2009 2010
			spin_unlock_bh(&sc->tx.txbuflock);
		}
2011

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2012 2013 2014 2015 2016 2017 2018 2019
		if (!bf_isampdu(bf)) {
			/*
			 * This frame is sent out as a single frame.
			 * Use hardware retry status for this frame.
			 */
			bf->bf_retries = ds->ds_txstat.ts_longretry;
			if (ds->ds_txstat.ts_status & ATH9K_TXERR_XRETRY)
				bf->bf_state.bf_type |= BUF_XRETRY;
2020
			ath_tx_rc_status(bf, ds, 0, txok, true);
S
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2021
		}
2022

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2023
		if (bf_isampdu(bf))
S
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2024
			ath_tx_complete_aggr(sc, txq, bf, &bf_head, txok);
S
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2025
		else
S
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2026
			ath_tx_complete_buf(sc, bf, txq, &bf_head, txok, 0);
2027

2028
		ath_wake_mac80211_queue(sc, txq);
2029

2030
		spin_lock_bh(&txq->axq_lock);
S
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2031 2032 2033
		if (sc->sc_flags & SC_OP_TXAGGR)
			ath_txq_schedule(sc, txq);
		spin_unlock_bh(&txq->axq_lock);
2034 2035 2036
	}
}

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2037
static void ath_tx_complete_poll_work(struct work_struct *work)
2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070
{
	struct ath_softc *sc = container_of(work, struct ath_softc,
			tx_complete_work.work);
	struct ath_txq *txq;
	int i;
	bool needreset = false;

	for (i = 0; i < ATH9K_NUM_TX_QUEUES; i++)
		if (ATH_TXQ_SETUP(sc, i)) {
			txq = &sc->tx.txq[i];
			spin_lock_bh(&txq->axq_lock);
			if (txq->axq_depth) {
				if (txq->axq_tx_inprogress) {
					needreset = true;
					spin_unlock_bh(&txq->axq_lock);
					break;
				} else {
					txq->axq_tx_inprogress = true;
				}
			}
			spin_unlock_bh(&txq->axq_lock);
		}

	if (needreset) {
		DPRINTF(sc, ATH_DBG_RESET, "tx hung, resetting the chip\n");
		ath_reset(sc, false);
	}

	queue_delayed_work(sc->hw->workqueue, &sc->tx_complete_work,
			msecs_to_jiffies(ATH_TX_COMPLETE_POLL_INT));
}


2071

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2072
void ath_tx_tasklet(struct ath_softc *sc)
2073
{
S
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2074 2075
	int i;
	u32 qcumask = ((1 << ATH9K_NUM_TX_QUEUES) - 1);
2076

S
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2077
	ath9k_hw_gettxintrtxqs(sc->sc_ah, &qcumask);
2078

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2079 2080 2081
	for (i = 0; i < ATH9K_NUM_TX_QUEUES; i++) {
		if (ATH_TXQ_SETUP(sc, i) && (qcumask & (1 << i)))
			ath_tx_processq(sc, &sc->tx.txq[i]);
2082 2083 2084
	}
}

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2085 2086 2087
/*****************/
/* Init, Cleanup */
/*****************/
2088

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2089
int ath_tx_init(struct ath_softc *sc, int nbufs)
2090
{
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2091
	int error = 0;
2092

2093
	spin_lock_init(&sc->tx.txbuflock);
2094

2095 2096 2097 2098 2099 2100 2101
	error = ath_descdma_setup(sc, &sc->tx.txdma, &sc->tx.txbuf,
				  "tx", nbufs, 1);
	if (error != 0) {
		DPRINTF(sc, ATH_DBG_FATAL,
			"Failed to allocate tx descriptors: %d\n", error);
		goto err;
	}
2102

2103 2104 2105 2106 2107 2108 2109
	error = ath_descdma_setup(sc, &sc->beacon.bdma, &sc->beacon.bbuf,
				  "beacon", ATH_BCBUF, 1);
	if (error != 0) {
		DPRINTF(sc, ATH_DBG_FATAL,
			"Failed to allocate beacon descriptors: %d\n", error);
		goto err;
	}
2110

2111 2112
	INIT_DELAYED_WORK(&sc->tx_complete_work, ath_tx_complete_poll_work);

2113
err:
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2114 2115
	if (error != 0)
		ath_tx_cleanup(sc);
2116

S
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2117
	return error;
2118 2119
}

2120
void ath_tx_cleanup(struct ath_softc *sc)
S
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2121 2122 2123 2124 2125 2126 2127
{
	if (sc->beacon.bdma.dd_desc_len != 0)
		ath_descdma_cleanup(sc, &sc->beacon.bdma, &sc->beacon.bbuf);

	if (sc->tx.txdma.dd_desc_len != 0)
		ath_descdma_cleanup(sc, &sc->tx.txdma, &sc->tx.txbuf);
}
2128 2129 2130

void ath_tx_node_init(struct ath_softc *sc, struct ath_node *an)
{
2131 2132 2133
	struct ath_atx_tid *tid;
	struct ath_atx_ac *ac;
	int tidno, acno;
2134

2135
	for (tidno = 0, tid = &an->tid[tidno];
2136 2137 2138 2139 2140 2141 2142 2143
	     tidno < WME_NUM_TID;
	     tidno++, tid++) {
		tid->an        = an;
		tid->tidno     = tidno;
		tid->seq_start = tid->seq_next = 0;
		tid->baw_size  = WME_MAX_BA;
		tid->baw_head  = tid->baw_tail = 0;
		tid->sched     = false;
S
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2144
		tid->paused    = false;
2145
		tid->state &= ~AGGR_CLEANUP;
2146 2147
		INIT_LIST_HEAD(&tid->buf_q);
		acno = TID_TO_WME_AC(tidno);
2148
		tid->ac = &an->ac[acno];
2149 2150
		tid->state &= ~AGGR_ADDBA_COMPLETE;
		tid->state &= ~AGGR_ADDBA_PROGRESS;
2151
	}
2152

2153
	for (acno = 0, ac = &an->ac[acno];
2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174
	     acno < WME_NUM_AC; acno++, ac++) {
		ac->sched    = false;
		INIT_LIST_HEAD(&ac->tid_q);

		switch (acno) {
		case WME_AC_BE:
			ac->qnum = ath_tx_get_qnum(sc,
				   ATH9K_TX_QUEUE_DATA, ATH9K_WME_AC_BE);
			break;
		case WME_AC_BK:
			ac->qnum = ath_tx_get_qnum(sc,
				   ATH9K_TX_QUEUE_DATA, ATH9K_WME_AC_BK);
			break;
		case WME_AC_VI:
			ac->qnum = ath_tx_get_qnum(sc,
				   ATH9K_TX_QUEUE_DATA, ATH9K_WME_AC_VI);
			break;
		case WME_AC_VO:
			ac->qnum = ath_tx_get_qnum(sc,
				   ATH9K_TX_QUEUE_DATA, ATH9K_WME_AC_VO);
			break;
2175 2176 2177 2178
		}
	}
}

S
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2179
void ath_tx_node_cleanup(struct ath_softc *sc, struct ath_node *an)
2180 2181 2182 2183 2184
{
	int i;
	struct ath_atx_ac *ac, *ac_tmp;
	struct ath_atx_tid *tid, *tid_tmp;
	struct ath_txq *txq;
S
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2185

2186 2187
	for (i = 0; i < ATH9K_NUM_TX_QUEUES; i++) {
		if (ATH_TXQ_SETUP(sc, i)) {
S
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2188
			txq = &sc->tx.txq[i];
2189

S
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2190
			spin_lock(&txq->axq_lock);
2191 2192 2193 2194 2195 2196 2197 2198 2199 2200 2201 2202 2203 2204

			list_for_each_entry_safe(ac,
					ac_tmp, &txq->axq_acq, list) {
				tid = list_first_entry(&ac->tid_q,
						struct ath_atx_tid, list);
				if (tid && tid->an != an)
					continue;
				list_del(&ac->list);
				ac->sched = false;

				list_for_each_entry_safe(tid,
						tid_tmp, &ac->tid_q, list) {
					list_del(&tid->list);
					tid->sched = false;
S
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2205
					ath_tid_drain(sc, txq, tid);
2206 2207
					tid->state &= ~AGGR_ADDBA_COMPLETE;
					tid->state &= ~AGGR_CLEANUP;
2208 2209 2210
				}
			}

S
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2211
			spin_unlock(&txq->axq_lock);
2212 2213 2214
		}
	}
}