rt2x00queue.c 30.1 KB
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/*
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	Copyright (C) 2010 Willow Garage <http://www.willowgarage.com>
	Copyright (C) 2004 - 2010 Ivo van Doorn <IvDoorn@gmail.com>
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	Copyright (C) 2004 - 2009 Gertjan van Wingerde <gwingerde@gmail.com>
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	<http://rt2x00.serialmonkey.com>

	This program is free software; you can redistribute it and/or modify
	it under the terms of the GNU General Public License as published by
	the Free Software Foundation; either version 2 of the License, or
	(at your option) any later version.

	This program is distributed in the hope that it will be useful,
	but WITHOUT ANY WARRANTY; without even the implied warranty of
	MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
	GNU General Public License for more details.

	You should have received a copy of the GNU General Public License
	along with this program; if not, write to the
	Free Software Foundation, Inc.,
	59 Temple Place - Suite 330, Boston, MA 02111-1307, USA.
 */

/*
	Module: rt2x00lib
	Abstract: rt2x00 queue specific routines.
 */

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#include <linux/slab.h>
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#include <linux/kernel.h>
#include <linux/module.h>
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#include <linux/dma-mapping.h>
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#include "rt2x00.h"
#include "rt2x00lib.h"

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struct sk_buff *rt2x00queue_alloc_rxskb(struct queue_entry *entry)
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{
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	struct rt2x00_dev *rt2x00dev = entry->queue->rt2x00dev;
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	struct sk_buff *skb;
	struct skb_frame_desc *skbdesc;
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	unsigned int frame_size;
	unsigned int head_size = 0;
	unsigned int tail_size = 0;
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	/*
	 * The frame size includes descriptor size, because the
	 * hardware directly receive the frame into the skbuffer.
	 */
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	frame_size = entry->queue->data_size + entry->queue->desc_size;
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	/*
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	 * The payload should be aligned to a 4-byte boundary,
	 * this means we need at least 3 bytes for moving the frame
	 * into the correct offset.
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	 */
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	head_size = 4;

	/*
	 * For IV/EIV/ICV assembly we must make sure there is
	 * at least 8 bytes bytes available in headroom for IV/EIV
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	 * and 8 bytes for ICV data as tailroon.
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	 */
	if (test_bit(CONFIG_SUPPORT_HW_CRYPTO, &rt2x00dev->flags)) {
		head_size += 8;
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		tail_size += 8;
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	}
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	/*
	 * Allocate skbuffer.
	 */
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	skb = dev_alloc_skb(frame_size + head_size + tail_size);
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	if (!skb)
		return NULL;

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	/*
	 * Make sure we not have a frame with the requested bytes
	 * available in the head and tail.
	 */
	skb_reserve(skb, head_size);
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	skb_put(skb, frame_size);

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	/*
	 * Populate skbdesc.
	 */
	skbdesc = get_skb_frame_desc(skb);
	memset(skbdesc, 0, sizeof(*skbdesc));
	skbdesc->entry = entry;

	if (test_bit(DRIVER_REQUIRE_DMA, &rt2x00dev->flags)) {
		skbdesc->skb_dma = dma_map_single(rt2x00dev->dev,
						  skb->data,
						  skb->len,
						  DMA_FROM_DEVICE);
		skbdesc->flags |= SKBDESC_DMA_MAPPED_RX;
	}

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	return skb;
}
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void rt2x00queue_map_txskb(struct queue_entry *entry)
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{
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	struct device *dev = entry->queue->rt2x00dev->dev;
	struct skb_frame_desc *skbdesc = get_skb_frame_desc(entry->skb);
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	skbdesc->skb_dma =
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	    dma_map_single(dev, entry->skb->data, entry->skb->len, DMA_TO_DEVICE);
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	skbdesc->flags |= SKBDESC_DMA_MAPPED_TX;
}
EXPORT_SYMBOL_GPL(rt2x00queue_map_txskb);

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void rt2x00queue_unmap_skb(struct queue_entry *entry)
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{
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	struct device *dev = entry->queue->rt2x00dev->dev;
	struct skb_frame_desc *skbdesc = get_skb_frame_desc(entry->skb);
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	if (skbdesc->flags & SKBDESC_DMA_MAPPED_RX) {
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		dma_unmap_single(dev, skbdesc->skb_dma, entry->skb->len,
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				 DMA_FROM_DEVICE);
		skbdesc->flags &= ~SKBDESC_DMA_MAPPED_RX;
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	} else if (skbdesc->flags & SKBDESC_DMA_MAPPED_TX) {
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		dma_unmap_single(dev, skbdesc->skb_dma, entry->skb->len,
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				 DMA_TO_DEVICE);
		skbdesc->flags &= ~SKBDESC_DMA_MAPPED_TX;
	}
}
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EXPORT_SYMBOL_GPL(rt2x00queue_unmap_skb);
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void rt2x00queue_free_skb(struct queue_entry *entry)
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{
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	if (!entry->skb)
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		return;

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	rt2x00queue_unmap_skb(entry);
	dev_kfree_skb_any(entry->skb);
	entry->skb = NULL;
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}
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void rt2x00queue_align_frame(struct sk_buff *skb)
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{
	unsigned int frame_length = skb->len;
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	unsigned int align = ALIGN_SIZE(skb, 0);
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	if (!align)
		return;

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	skb_push(skb, align);
	memmove(skb->data, skb->data + align, frame_length);
	skb_trim(skb, frame_length);
}

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void rt2x00queue_align_payload(struct sk_buff *skb, unsigned int header_length)
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{
	unsigned int frame_length = skb->len;
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	unsigned int align = ALIGN_SIZE(skb, header_length);
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	if (!align)
		return;

	skb_push(skb, align);
	memmove(skb->data, skb->data + align, frame_length);
	skb_trim(skb, frame_length);
}

void rt2x00queue_insert_l2pad(struct sk_buff *skb, unsigned int header_length)
{
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	unsigned int payload_length = skb->len - header_length;
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	unsigned int header_align = ALIGN_SIZE(skb, 0);
	unsigned int payload_align = ALIGN_SIZE(skb, header_length);
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	unsigned int l2pad = payload_length ? L2PAD_SIZE(header_length) : 0;
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	/*
	 * Adjust the header alignment if the payload needs to be moved more
	 * than the header.
	 */
	if (payload_align > header_align)
		header_align += 4;

	/* There is nothing to do if no alignment is needed */
	if (!header_align)
		return;
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	/* Reserve the amount of space needed in front of the frame */
	skb_push(skb, header_align);

	/*
	 * Move the header.
	 */
	memmove(skb->data, skb->data + header_align, header_length);

	/* Move the payload, if present and if required */
	if (payload_length && payload_align)
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		memmove(skb->data + header_length + l2pad,
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			skb->data + header_length + l2pad + payload_align,
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			payload_length);

	/* Trim the skb to the correct size */
	skb_trim(skb, header_length + l2pad + payload_length);
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}

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void rt2x00queue_remove_l2pad(struct sk_buff *skb, unsigned int header_length)
{
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	/*
	 * L2 padding is only present if the skb contains more than just the
	 * IEEE 802.11 header.
	 */
	unsigned int l2pad = (skb->len > header_length) ?
				L2PAD_SIZE(header_length) : 0;
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	if (!l2pad)
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		return;

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	memmove(skb->data + l2pad, skb->data, header_length);
	skb_pull(skb, l2pad);
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}

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static void rt2x00queue_create_tx_descriptor_seq(struct queue_entry *entry,
						 struct txentry_desc *txdesc)
{
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(entry->skb);
	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)entry->skb->data;
	struct rt2x00_intf *intf = vif_to_intf(tx_info->control.vif);
	unsigned long irqflags;

	if (!(tx_info->flags & IEEE80211_TX_CTL_ASSIGN_SEQ) ||
	    unlikely(!tx_info->control.vif))
		return;

	/*
	 * Hardware should insert sequence counter.
	 * FIXME: We insert a software sequence counter first for
	 * hardware that doesn't support hardware sequence counting.
	 *
	 * This is wrong because beacons are not getting sequence
	 * numbers assigned properly.
	 *
	 * A secondary problem exists for drivers that cannot toggle
	 * sequence counting per-frame, since those will override the
	 * sequence counter given by mac80211.
	 */
	spin_lock_irqsave(&intf->seqlock, irqflags);

	if (test_bit(ENTRY_TXD_FIRST_FRAGMENT, &txdesc->flags))
		intf->seqno += 0x10;
	hdr->seq_ctrl &= cpu_to_le16(IEEE80211_SCTL_FRAG);
	hdr->seq_ctrl |= cpu_to_le16(intf->seqno);

	spin_unlock_irqrestore(&intf->seqlock, irqflags);

	__set_bit(ENTRY_TXD_GENERATE_SEQ, &txdesc->flags);
}

static void rt2x00queue_create_tx_descriptor_plcp(struct queue_entry *entry,
						  struct txentry_desc *txdesc,
						  const struct rt2x00_rate *hwrate)
{
	struct rt2x00_dev *rt2x00dev = entry->queue->rt2x00dev;
	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(entry->skb);
	struct ieee80211_tx_rate *txrate = &tx_info->control.rates[0];
	unsigned int data_length;
	unsigned int duration;
	unsigned int residual;

	/* Data length + CRC + Crypto overhead (IV/EIV/ICV/MIC) */
	data_length = entry->skb->len + 4;
	data_length += rt2x00crypto_tx_overhead(rt2x00dev, entry->skb);

	/*
	 * PLCP setup
	 * Length calculation depends on OFDM/CCK rate.
	 */
	txdesc->signal = hwrate->plcp;
	txdesc->service = 0x04;

	if (hwrate->flags & DEV_RATE_OFDM) {
		txdesc->length_high = (data_length >> 6) & 0x3f;
		txdesc->length_low = data_length & 0x3f;
	} else {
		/*
		 * Convert length to microseconds.
		 */
		residual = GET_DURATION_RES(data_length, hwrate->bitrate);
		duration = GET_DURATION(data_length, hwrate->bitrate);

		if (residual != 0) {
			duration++;

			/*
			 * Check if we need to set the Length Extension
			 */
			if (hwrate->bitrate == 110 && residual <= 30)
				txdesc->service |= 0x80;
		}

		txdesc->length_high = (duration >> 8) & 0xff;
		txdesc->length_low = duration & 0xff;

		/*
		 * When preamble is enabled we should set the
		 * preamble bit for the signal.
		 */
		if (txrate->flags & IEEE80211_TX_RC_USE_SHORT_PREAMBLE)
			txdesc->signal |= 0x08;
	}
}

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static void rt2x00queue_create_tx_descriptor(struct queue_entry *entry,
					     struct txentry_desc *txdesc)
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{
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	struct rt2x00_dev *rt2x00dev = entry->queue->rt2x00dev;
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	struct ieee80211_tx_info *tx_info = IEEE80211_SKB_CB(entry->skb);
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	struct ieee80211_hdr *hdr = (struct ieee80211_hdr *)entry->skb->data;
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	struct ieee80211_rate *rate =
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	    ieee80211_get_tx_rate(rt2x00dev->hw, tx_info);
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	const struct rt2x00_rate *hwrate;

	memset(txdesc, 0, sizeof(*txdesc));

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	/*
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	 * Header and frame information.
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	 */
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	txdesc->length = entry->skb->len;
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	txdesc->header_length = ieee80211_get_hdrlen_from_skb(entry->skb);

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	/*
	 * Check whether this frame is to be acked.
	 */
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	if (!(tx_info->flags & IEEE80211_TX_CTL_NO_ACK))
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		__set_bit(ENTRY_TXD_ACK, &txdesc->flags);

	/*
	 * Check if this is a RTS/CTS frame
	 */
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	if (ieee80211_is_rts(hdr->frame_control) ||
	    ieee80211_is_cts(hdr->frame_control)) {
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		__set_bit(ENTRY_TXD_BURST, &txdesc->flags);
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		if (ieee80211_is_rts(hdr->frame_control))
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			__set_bit(ENTRY_TXD_RTS_FRAME, &txdesc->flags);
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		else
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			__set_bit(ENTRY_TXD_CTS_FRAME, &txdesc->flags);
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		if (tx_info->control.rts_cts_rate_idx >= 0)
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			rate =
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			    ieee80211_get_rts_cts_rate(rt2x00dev->hw, tx_info);
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	}

	/*
	 * Determine retry information.
	 */
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	txdesc->retry_limit = tx_info->control.rates[0].count - 1;
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	if (txdesc->retry_limit >= rt2x00dev->long_retry)
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		__set_bit(ENTRY_TXD_RETRY_MODE, &txdesc->flags);

	/*
	 * Check if more fragments are pending
	 */
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	if (ieee80211_has_morefrags(hdr->frame_control)) {
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		__set_bit(ENTRY_TXD_BURST, &txdesc->flags);
		__set_bit(ENTRY_TXD_MORE_FRAG, &txdesc->flags);
	}

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	/*
	 * Check if more frames (!= fragments) are pending
	 */
	if (tx_info->flags & IEEE80211_TX_CTL_MORE_FRAMES)
		__set_bit(ENTRY_TXD_BURST, &txdesc->flags);

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	/*
	 * Beacons and probe responses require the tsf timestamp
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	 * to be inserted into the frame, except for a frame that has been injected
	 * through a monitor interface. This latter is needed for testing a
	 * monitor interface.
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	 */
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	if ((ieee80211_is_beacon(hdr->frame_control) ||
	    ieee80211_is_probe_resp(hdr->frame_control)) &&
	    (!(tx_info->flags & IEEE80211_TX_CTL_INJECTED)))
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		__set_bit(ENTRY_TXD_REQ_TIMESTAMP, &txdesc->flags);

	/*
	 * Determine with what IFS priority this frame should be send.
	 * Set ifs to IFS_SIFS when the this is not the first fragment,
	 * or this fragment came after RTS/CTS.
	 */
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	if ((tx_info->flags & IEEE80211_TX_CTL_FIRST_FRAGMENT) &&
	    !test_bit(ENTRY_TXD_RTS_FRAME, &txdesc->flags)) {
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		__set_bit(ENTRY_TXD_FIRST_FRAGMENT, &txdesc->flags);
		txdesc->ifs = IFS_BACKOFF;
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	} else
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		txdesc->ifs = IFS_SIFS;

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	/*
	 * Determine rate modulation.
	 */
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	hwrate = rt2x00_get_rate(rate->hw_value);
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	txdesc->rate_mode = RATE_MODE_CCK;
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	if (hwrate->flags & DEV_RATE_OFDM)
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		txdesc->rate_mode = RATE_MODE_OFDM;
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	/*
	 * Apply TX descriptor handling by components
	 */
	rt2x00crypto_create_tx_descriptor(entry, txdesc);
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	rt2x00ht_create_tx_descriptor(entry, txdesc, hwrate);
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	rt2x00queue_create_tx_descriptor_seq(entry, txdesc);
	rt2x00queue_create_tx_descriptor_plcp(entry, txdesc, hwrate);
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}

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static int rt2x00queue_write_tx_data(struct queue_entry *entry,
				     struct txentry_desc *txdesc)
{
	struct rt2x00_dev *rt2x00dev = entry->queue->rt2x00dev;

	/*
	 * This should not happen, we already checked the entry
	 * was ours. When the hardware disagrees there has been
	 * a queue corruption!
	 */
	if (unlikely(rt2x00dev->ops->lib->get_entry_state &&
		     rt2x00dev->ops->lib->get_entry_state(entry))) {
		ERROR(rt2x00dev,
		      "Corrupt queue %d, accessing entry which is not ours.\n"
		      "Please file bug report to %s.\n",
		      entry->queue->qid, DRV_PROJECT);
		return -EINVAL;
	}

	/*
	 * Add the requested extra tx headroom in front of the skb.
	 */
	skb_push(entry->skb, rt2x00dev->ops->extra_tx_headroom);
	memset(entry->skb->data, 0, rt2x00dev->ops->extra_tx_headroom);

	/*
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	 * Call the driver's write_tx_data function, if it exists.
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	 */
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	if (rt2x00dev->ops->lib->write_tx_data)
		rt2x00dev->ops->lib->write_tx_data(entry, txdesc);
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	/*
	 * Map the skb to DMA.
	 */
	if (test_bit(DRIVER_REQUIRE_DMA, &rt2x00dev->flags))
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		rt2x00queue_map_txskb(entry);
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	return 0;
}

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static void rt2x00queue_write_tx_descriptor(struct queue_entry *entry,
					    struct txentry_desc *txdesc)
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{
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	struct data_queue *queue = entry->queue;
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	queue->rt2x00dev->ops->lib->write_tx_desc(entry, txdesc);
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	/*
	 * All processing on the frame has been completed, this means
	 * it is now ready to be dumped to userspace through debugfs.
	 */
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	rt2x00debug_dump_frame(queue->rt2x00dev, DUMP_FRAME_TX, entry->skb);
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}

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static void rt2x00queue_kick_tx_queue(struct data_queue *queue,
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				      struct txentry_desc *txdesc)
{
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	/*
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	 * Check if we need to kick the queue, there are however a few rules
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	 *	1) Don't kick unless this is the last in frame in a burst.
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	 *	   When the burst flag is set, this frame is always followed
	 *	   by another frame which in some way are related to eachother.
	 *	   This is true for fragments, RTS or CTS-to-self frames.
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	 *	2) Rule 1 can be broken when the available entries
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	 *	   in the queue are less then a certain threshold.
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	 */
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	if (rt2x00queue_threshold(queue) ||
	    !test_bit(ENTRY_TXD_BURST, &txdesc->flags))
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		queue->rt2x00dev->ops->lib->kick_queue(queue);
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}

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int rt2x00queue_write_tx_frame(struct data_queue *queue, struct sk_buff *skb,
			       bool local)
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{
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	struct ieee80211_tx_info *tx_info;
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	struct queue_entry *entry = rt2x00queue_get_entry(queue, Q_INDEX);
	struct txentry_desc txdesc;
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	struct skb_frame_desc *skbdesc;
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	u8 rate_idx, rate_flags;
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	if (unlikely(rt2x00queue_full(queue)))
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		return -ENOBUFS;
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	if (unlikely(test_and_set_bit(ENTRY_OWNER_DEVICE_DATA,
				      &entry->flags))) {
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		ERROR(queue->rt2x00dev,
		      "Arrived at non-free entry in the non-full queue %d.\n"
		      "Please file bug report to %s.\n",
		      queue->qid, DRV_PROJECT);
		return -EINVAL;
	}

	/*
	 * Copy all TX descriptor information into txdesc,
	 * after that we are free to use the skb->cb array
	 * for our information.
	 */
	entry->skb = skb;
	rt2x00queue_create_tx_descriptor(entry, &txdesc);

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	/*
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	 * All information is retrieved from the skb->cb array,
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	 * now we should claim ownership of the driver part of that
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	 * array, preserving the bitrate index and flags.
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	 */
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	tx_info = IEEE80211_SKB_CB(skb);
	rate_idx = tx_info->control.rates[0].idx;
	rate_flags = tx_info->control.rates[0].flags;
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	skbdesc = get_skb_frame_desc(skb);
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	memset(skbdesc, 0, sizeof(*skbdesc));
	skbdesc->entry = entry;
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	skbdesc->tx_rate_idx = rate_idx;
	skbdesc->tx_rate_flags = rate_flags;
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	if (local)
		skbdesc->flags |= SKBDESC_NOT_MAC80211;

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	/*
	 * When hardware encryption is supported, and this frame
	 * is to be encrypted, we should strip the IV/EIV data from
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	 * the frame so we can provide it to the driver separately.
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	 */
	if (test_bit(ENTRY_TXD_ENCRYPT, &txdesc.flags) &&
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	    !test_bit(ENTRY_TXD_ENCRYPT_IV, &txdesc.flags)) {
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		if (test_bit(DRIVER_REQUIRE_COPY_IV, &queue->rt2x00dev->flags))
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			rt2x00crypto_tx_copy_iv(skb, &txdesc);
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		else
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			rt2x00crypto_tx_remove_iv(skb, &txdesc);
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	}
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	/*
	 * When DMA allocation is required we should guarentee to the
	 * driver that the DMA is aligned to a 4-byte boundary.
	 * However some drivers require L2 padding to pad the payload
	 * rather then the header. This could be a requirement for
	 * PCI and USB devices, while header alignment only is valid
	 * for PCI devices.
	 */
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	if (test_bit(DRIVER_REQUIRE_L2PAD, &queue->rt2x00dev->flags))
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		rt2x00queue_insert_l2pad(entry->skb, txdesc.header_length);
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	else if (test_bit(DRIVER_REQUIRE_DMA, &queue->rt2x00dev->flags))
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		rt2x00queue_align_frame(entry->skb);
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	/*
	 * It could be possible that the queue was corrupted and this
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	 * call failed. Since we always return NETDEV_TX_OK to mac80211,
	 * this frame will simply be dropped.
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	 */
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	if (unlikely(rt2x00queue_write_tx_data(entry, &txdesc))) {
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		clear_bit(ENTRY_OWNER_DEVICE_DATA, &entry->flags);
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		entry->skb = NULL;
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		return -EIO;
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	}

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	set_bit(ENTRY_DATA_PENDING, &entry->flags);
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	rt2x00queue_index_inc(queue, Q_INDEX);
	rt2x00queue_write_tx_descriptor(entry, &txdesc);
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	rt2x00queue_kick_tx_queue(queue, &txdesc);
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	return 0;
}

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int rt2x00queue_update_beacon(struct rt2x00_dev *rt2x00dev,
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			      struct ieee80211_vif *vif,
			      const bool enable_beacon)
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{
	struct rt2x00_intf *intf = vif_to_intf(vif);
	struct skb_frame_desc *skbdesc;
	struct txentry_desc txdesc;

	if (unlikely(!intf->beacon))
		return -ENOBUFS;

580 581 582 583 584
	mutex_lock(&intf->beacon_skb_mutex);

	/*
	 * Clean up the beacon skb.
	 */
585
	rt2x00queue_free_skb(intf->beacon);
586

587
	if (!enable_beacon) {
588
		rt2x00queue_stop_queue(intf->beacon->queue);
589
		mutex_unlock(&intf->beacon_skb_mutex);
590 591 592
		return 0;
	}

593
	intf->beacon->skb = ieee80211_beacon_get(rt2x00dev->hw, vif);
594 595
	if (!intf->beacon->skb) {
		mutex_unlock(&intf->beacon_skb_mutex);
596
		return -ENOMEM;
597
	}
598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613

	/*
	 * Copy all TX descriptor information into txdesc,
	 * after that we are free to use the skb->cb array
	 * for our information.
	 */
	rt2x00queue_create_tx_descriptor(intf->beacon, &txdesc);

	/*
	 * Fill in skb descriptor
	 */
	skbdesc = get_skb_frame_desc(intf->beacon->skb);
	memset(skbdesc, 0, sizeof(*skbdesc));
	skbdesc->entry = intf->beacon;

	/*
614
	 * Send beacon to hardware and enable beacon genaration..
615
	 */
616
	rt2x00dev->ops->lib->write_beacon(intf->beacon, &txdesc);
617

618 619
	mutex_unlock(&intf->beacon_skb_mutex);

620 621 622
	return 0;
}

623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645
void rt2x00queue_for_each_entry(struct data_queue *queue,
				enum queue_index start,
				enum queue_index end,
				void (*fn)(struct queue_entry *entry))
{
	unsigned long irqflags;
	unsigned int index_start;
	unsigned int index_end;
	unsigned int i;

	if (unlikely(start >= Q_INDEX_MAX || end >= Q_INDEX_MAX)) {
		ERROR(queue->rt2x00dev,
		      "Entry requested from invalid index range (%d - %d)\n",
		      start, end);
		return;
	}

	/*
	 * Only protect the range we are going to loop over,
	 * if during our loop a extra entry is set to pending
	 * it should not be kicked during this run, since it
	 * is part of another TX operation.
	 */
646
	spin_lock_irqsave(&queue->index_lock, irqflags);
647 648
	index_start = queue->index[start];
	index_end = queue->index[end];
649
	spin_unlock_irqrestore(&queue->index_lock, irqflags);
650 651 652 653 654 655 656 657 658 659 660 661 662 663 664 665 666 667

	/*
	 * Start from the TX done pointer, this guarentees that we will
	 * send out all frames in the correct order.
	 */
	if (index_start < index_end) {
		for (i = index_start; i < index_end; i++)
			fn(&queue->entries[i]);
	} else {
		for (i = index_start; i < queue->limit; i++)
			fn(&queue->entries[i]);

		for (i = 0; i < index_end; i++)
			fn(&queue->entries[i]);
	}
}
EXPORT_SYMBOL_GPL(rt2x00queue_for_each_entry);

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struct data_queue *rt2x00queue_get_queue(struct rt2x00_dev *rt2x00dev,
669
					 const enum data_queue_qid queue)
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{
	int atim = test_bit(DRIVER_REQUIRE_ATIM_QUEUE, &rt2x00dev->flags);

673 674 675
	if (queue == QID_RX)
		return rt2x00dev->rx;

676
	if (queue < rt2x00dev->ops->tx_queues && rt2x00dev->tx)
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		return &rt2x00dev->tx[queue];

	if (!rt2x00dev->bcn)
		return NULL;

682
	if (queue == QID_BEACON)
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		return &rt2x00dev->bcn[0];
684
	else if (queue == QID_ATIM && atim)
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		return &rt2x00dev->bcn[1];

	return NULL;
}
EXPORT_SYMBOL_GPL(rt2x00queue_get_queue);

struct queue_entry *rt2x00queue_get_entry(struct data_queue *queue,
					  enum queue_index index)
{
	struct queue_entry *entry;
695
	unsigned long irqflags;
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	if (unlikely(index >= Q_INDEX_MAX)) {
		ERROR(queue->rt2x00dev,
		      "Entry requested from invalid index type (%d)\n", index);
		return NULL;
	}

703
	spin_lock_irqsave(&queue->index_lock, irqflags);
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	entry = &queue->entries[queue->index[index]];

707
	spin_unlock_irqrestore(&queue->index_lock, irqflags);
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	return entry;
}
EXPORT_SYMBOL_GPL(rt2x00queue_get_entry);

void rt2x00queue_index_inc(struct data_queue *queue, enum queue_index index)
{
715 716
	unsigned long irqflags;

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	if (unlikely(index >= Q_INDEX_MAX)) {
		ERROR(queue->rt2x00dev,
		      "Index change on invalid index type (%d)\n", index);
		return;
	}

723
	spin_lock_irqsave(&queue->index_lock, irqflags);
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	queue->index[index]++;
	if (queue->index[index] >= queue->limit)
		queue->index[index] = 0;

729 730
	queue->last_action[index] = jiffies;

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	if (index == Q_INDEX) {
		queue->length++;
	} else if (index == Q_INDEX_DONE) {
		queue->length--;
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		queue->count++;
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	}
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738
	spin_unlock_irqrestore(&queue->index_lock, irqflags);
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}

741 742 743 744 745 746 747 748 749 750 751 752 753 754 755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782
void rt2x00queue_pause_queue(struct data_queue *queue)
{
	if (!test_bit(DEVICE_STATE_PRESENT, &queue->rt2x00dev->flags) ||
	    !test_bit(QUEUE_STARTED, &queue->flags) ||
	    test_and_set_bit(QUEUE_PAUSED, &queue->flags))
		return;

	switch (queue->qid) {
	case QID_AC_BE:
	case QID_AC_BK:
	case QID_AC_VI:
	case QID_AC_VO:
		/*
		 * For TX queues, we have to disable the queue
		 * inside mac80211.
		 */
		ieee80211_stop_queue(queue->rt2x00dev->hw, queue->qid);
		break;
	default:
		break;
	}
}
EXPORT_SYMBOL_GPL(rt2x00queue_pause_queue);

void rt2x00queue_unpause_queue(struct data_queue *queue)
{
	if (!test_bit(DEVICE_STATE_PRESENT, &queue->rt2x00dev->flags) ||
	    !test_bit(QUEUE_STARTED, &queue->flags) ||
	    !test_and_clear_bit(QUEUE_PAUSED, &queue->flags))
		return;

	switch (queue->qid) {
	case QID_AC_BE:
	case QID_AC_BK:
	case QID_AC_VI:
	case QID_AC_VO:
		/*
		 * For TX queues, we have to enable the queue
		 * inside mac80211.
		 */
		ieee80211_wake_queue(queue->rt2x00dev->hw, queue->qid);
		break;
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	case QID_RX:
		/*
		 * For RX we need to kick the queue now in order to
		 * receive frames.
		 */
		queue->rt2x00dev->ops->lib->kick_queue(queue);
789 790 791 792 793 794 795 796 797 798 799 800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831
	default:
		break;
	}
}
EXPORT_SYMBOL_GPL(rt2x00queue_unpause_queue);

void rt2x00queue_start_queue(struct data_queue *queue)
{
	mutex_lock(&queue->status_lock);

	if (!test_bit(DEVICE_STATE_PRESENT, &queue->rt2x00dev->flags) ||
	    test_and_set_bit(QUEUE_STARTED, &queue->flags)) {
		mutex_unlock(&queue->status_lock);
		return;
	}

	set_bit(QUEUE_PAUSED, &queue->flags);

	queue->rt2x00dev->ops->lib->start_queue(queue);

	rt2x00queue_unpause_queue(queue);

	mutex_unlock(&queue->status_lock);
}
EXPORT_SYMBOL_GPL(rt2x00queue_start_queue);

void rt2x00queue_stop_queue(struct data_queue *queue)
{
	mutex_lock(&queue->status_lock);

	if (!test_and_clear_bit(QUEUE_STARTED, &queue->flags)) {
		mutex_unlock(&queue->status_lock);
		return;
	}

	rt2x00queue_pause_queue(queue);

	queue->rt2x00dev->ops->lib->stop_queue(queue);

	mutex_unlock(&queue->status_lock);
}
EXPORT_SYMBOL_GPL(rt2x00queue_stop_queue);

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void rt2x00queue_flush_queue(struct data_queue *queue, bool drop)
{
	unsigned int i;
	bool started;
	bool tx_queue =
		(queue->qid == QID_AC_BE) ||
		(queue->qid == QID_AC_BK) ||
		(queue->qid == QID_AC_VI) ||
		(queue->qid == QID_AC_VO);

	mutex_lock(&queue->status_lock);

	/*
	 * If the queue has been started, we must stop it temporarily
	 * to prevent any new frames to be queued on the device. If
	 * we are not dropping the pending frames, the queue must
	 * only be stopped in the software and not the hardware,
	 * otherwise the queue will never become empty on its own.
	 */
	started = test_bit(QUEUE_STARTED, &queue->flags);
	if (started) {
		/*
		 * Pause the queue
		 */
		rt2x00queue_pause_queue(queue);

		/*
		 * If we are not supposed to drop any pending
		 * frames, this means we must force a start (=kick)
		 * to the queue to make sure the hardware will
		 * start transmitting.
		 */
		if (!drop && tx_queue)
			queue->rt2x00dev->ops->lib->kick_queue(queue);
	}

	/*
	 * Check if driver supports flushing, we can only guarentee
	 * full support for flushing if the driver is able
	 * to cancel all pending frames (drop = true).
	 */
	if (drop && queue->rt2x00dev->ops->lib->flush_queue)
		queue->rt2x00dev->ops->lib->flush_queue(queue);

	/*
	 * When we don't want to drop any frames, or when
	 * the driver doesn't fully flush the queue correcly,
	 * we must wait for the queue to become empty.
	 */
	for (i = 0; !rt2x00queue_empty(queue) && i < 100; i++)
		msleep(10);

	/*
	 * The queue flush has failed...
	 */
	if (unlikely(!rt2x00queue_empty(queue)))
		WARNING(queue->rt2x00dev, "Queue %d failed to flush", queue->qid);

	/*
	 * Restore the queue to the previous status
	 */
	if (started)
		rt2x00queue_unpause_queue(queue);

	mutex_unlock(&queue->status_lock);
}
EXPORT_SYMBOL_GPL(rt2x00queue_flush_queue);

900 901 902 903 904 905 906 907 908 909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933
void rt2x00queue_start_queues(struct rt2x00_dev *rt2x00dev)
{
	struct data_queue *queue;

	/*
	 * rt2x00queue_start_queue will call ieee80211_wake_queue
	 * for each queue after is has been properly initialized.
	 */
	tx_queue_for_each(rt2x00dev, queue)
		rt2x00queue_start_queue(queue);

	rt2x00queue_start_queue(rt2x00dev->rx);
}
EXPORT_SYMBOL_GPL(rt2x00queue_start_queues);

void rt2x00queue_stop_queues(struct rt2x00_dev *rt2x00dev)
{
	struct data_queue *queue;

	/*
	 * rt2x00queue_stop_queue will call ieee80211_stop_queue
	 * as well, but we are completely shutting doing everything
	 * now, so it is much safer to stop all TX queues at once,
	 * and use rt2x00queue_stop_queue for cleaning up.
	 */
	ieee80211_stop_queues(rt2x00dev->hw);

	tx_queue_for_each(rt2x00dev, queue)
		rt2x00queue_stop_queue(queue);

	rt2x00queue_stop_queue(rt2x00dev->rx);
}
EXPORT_SYMBOL_GPL(rt2x00queue_stop_queues);

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void rt2x00queue_flush_queues(struct rt2x00_dev *rt2x00dev, bool drop)
{
	struct data_queue *queue;

	tx_queue_for_each(rt2x00dev, queue)
		rt2x00queue_flush_queue(queue, drop);

	rt2x00queue_flush_queue(rt2x00dev->rx, drop);
}
EXPORT_SYMBOL_GPL(rt2x00queue_flush_queues);

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945 946
static void rt2x00queue_reset(struct data_queue *queue)
{
947
	unsigned long irqflags;
948
	unsigned int i;
949

950
	spin_lock_irqsave(&queue->index_lock, irqflags);
I
Ivo van Doorn 已提交
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	queue->count = 0;
	queue->length = 0;
954 955 956 957 958

	for (i = 0; i < Q_INDEX_MAX; i++) {
		queue->index[i] = 0;
		queue->last_action[i] = jiffies;
	}
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960
	spin_unlock_irqrestore(&queue->index_lock, irqflags);
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}

963
void rt2x00queue_init_queues(struct rt2x00_dev *rt2x00dev)
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{
	struct data_queue *queue;
	unsigned int i;

968
	queue_for_each(rt2x00dev, queue) {
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969 970
		rt2x00queue_reset(queue);

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		for (i = 0; i < queue->limit; i++)
972
			rt2x00dev->ops->lib->clear_entry(&queue->entries[i]);
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	}
}

static int rt2x00queue_alloc_entries(struct data_queue *queue,
				     const struct data_queue_desc *qdesc)
{
	struct queue_entry *entries;
	unsigned int entry_size;
	unsigned int i;

	rt2x00queue_reset(queue);

	queue->limit = qdesc->entry_num;
986
	queue->threshold = DIV_ROUND_UP(qdesc->entry_num, 10);
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987 988 989 990 991 992 993
	queue->data_size = qdesc->data_size;
	queue->desc_size = qdesc->desc_size;

	/*
	 * Allocate all queue entries.
	 */
	entry_size = sizeof(*entries) + qdesc->priv_size;
994
	entries = kcalloc(queue->limit, entry_size, GFP_KERNEL);
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	if (!entries)
		return -ENOMEM;

#define QUEUE_ENTRY_PRIV_OFFSET(__base, __index, __limit, __esize, __psize) \
999 1000
	(((char *)(__base)) + ((__limit) * (__esize)) + \
	    ((__index) * (__psize)))
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	for (i = 0; i < queue->limit; i++) {
		entries[i].flags = 0;
		entries[i].queue = queue;
		entries[i].skb = NULL;
		entries[i].entry_idx = i;
		entries[i].priv_data =
		    QUEUE_ENTRY_PRIV_OFFSET(entries, i, queue->limit,
					    sizeof(*entries), qdesc->priv_size);
	}

#undef QUEUE_ENTRY_PRIV_OFFSET

	queue->entries = entries;

	return 0;
}

1019
static void rt2x00queue_free_skbs(struct data_queue *queue)
1020 1021 1022 1023 1024 1025 1026
{
	unsigned int i;

	if (!queue->entries)
		return;

	for (i = 0; i < queue->limit; i++) {
1027
		rt2x00queue_free_skb(&queue->entries[i]);
1028 1029 1030
	}
}

1031
static int rt2x00queue_alloc_rxskbs(struct data_queue *queue)
1032 1033 1034 1035 1036
{
	unsigned int i;
	struct sk_buff *skb;

	for (i = 0; i < queue->limit; i++) {
1037
		skb = rt2x00queue_alloc_rxskb(&queue->entries[i]);
1038
		if (!skb)
1039
			return -ENOMEM;
1040 1041 1042 1043 1044 1045
		queue->entries[i].skb = skb;
	}

	return 0;
}

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int rt2x00queue_initialize(struct rt2x00_dev *rt2x00dev)
{
	struct data_queue *queue;
	int status;

	status = rt2x00queue_alloc_entries(rt2x00dev->rx, rt2x00dev->ops->rx);
	if (status)
		goto exit;

	tx_queue_for_each(rt2x00dev, queue) {
		status = rt2x00queue_alloc_entries(queue, rt2x00dev->ops->tx);
		if (status)
			goto exit;
	}

	status = rt2x00queue_alloc_entries(rt2x00dev->bcn, rt2x00dev->ops->bcn);
	if (status)
		goto exit;

1065 1066 1067 1068 1069 1070
	if (test_bit(DRIVER_REQUIRE_ATIM_QUEUE, &rt2x00dev->flags)) {
		status = rt2x00queue_alloc_entries(&rt2x00dev->bcn[1],
						   rt2x00dev->ops->atim);
		if (status)
			goto exit;
	}
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1072
	status = rt2x00queue_alloc_rxskbs(rt2x00dev->rx);
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	if (status)
		goto exit;

	return 0;

exit:
	ERROR(rt2x00dev, "Queue entries allocation failed.\n");

	rt2x00queue_uninitialize(rt2x00dev);

	return status;
}

void rt2x00queue_uninitialize(struct rt2x00_dev *rt2x00dev)
{
	struct data_queue *queue;

1090
	rt2x00queue_free_skbs(rt2x00dev->rx);
1091

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	queue_for_each(rt2x00dev, queue) {
		kfree(queue->entries);
		queue->entries = NULL;
	}
}

1098 1099 1100
static void rt2x00queue_init(struct rt2x00_dev *rt2x00dev,
			     struct data_queue *queue, enum data_queue_qid qid)
{
1101
	mutex_init(&queue->status_lock);
1102
	spin_lock_init(&queue->index_lock);
1103 1104 1105

	queue->rt2x00dev = rt2x00dev;
	queue->qid = qid;
1106
	queue->txop = 0;
1107 1108 1109 1110 1111
	queue->aifs = 2;
	queue->cw_min = 5;
	queue->cw_max = 10;
}

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int rt2x00queue_allocate(struct rt2x00_dev *rt2x00dev)
{
	struct data_queue *queue;
	enum data_queue_qid qid;
	unsigned int req_atim =
	    !!test_bit(DRIVER_REQUIRE_ATIM_QUEUE, &rt2x00dev->flags);

	/*
	 * We need the following queues:
	 * RX: 1
1122
	 * TX: ops->tx_queues
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	 * Beacon: 1
	 * Atim: 1 (if required)
	 */
1126
	rt2x00dev->data_queues = 2 + rt2x00dev->ops->tx_queues + req_atim;
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1128
	queue = kcalloc(rt2x00dev->data_queues, sizeof(*queue), GFP_KERNEL);
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	if (!queue) {
		ERROR(rt2x00dev, "Queue allocation failed.\n");
		return -ENOMEM;
	}

	/*
	 * Initialize pointers
	 */
	rt2x00dev->rx = queue;
	rt2x00dev->tx = &queue[1];
1139
	rt2x00dev->bcn = &queue[1 + rt2x00dev->ops->tx_queues];
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1140 1141 1142 1143 1144 1145 1146

	/*
	 * Initialize queue parameters.
	 * RX: qid = QID_RX
	 * TX: qid = QID_AC_BE + index
	 * TX: cw_min: 2^5 = 32.
	 * TX: cw_max: 2^10 = 1024.
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	 * BCN: qid = QID_BEACON
	 * ATIM: qid = QID_ATIM
I
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1149
	 */
1150
	rt2x00queue_init(rt2x00dev, rt2x00dev->rx, QID_RX);
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1151

1152 1153 1154
	qid = QID_AC_BE;
	tx_queue_for_each(rt2x00dev, queue)
		rt2x00queue_init(rt2x00dev, queue, qid++);
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1155

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1156
	rt2x00queue_init(rt2x00dev, &rt2x00dev->bcn[0], QID_BEACON);
I
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1157
	if (req_atim)
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1158
		rt2x00queue_init(rt2x00dev, &rt2x00dev->bcn[1], QID_ATIM);
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	return 0;
}

void rt2x00queue_free(struct rt2x00_dev *rt2x00dev)
{
	kfree(rt2x00dev->rx);
	rt2x00dev->rx = NULL;
	rt2x00dev->tx = NULL;
	rt2x00dev->bcn = NULL;
}