tx.c 37.1 KB
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/****************************************************************************
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 * Driver for Solarflare network controllers and boards
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 * Copyright 2005-2006 Fen Systems Ltd.
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 * Copyright 2005-2013 Solarflare Communications Inc.
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 *
 * This program is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 as published
 * by the Free Software Foundation, incorporated herein by reference.
 */

#include <linux/pci.h>
#include <linux/tcp.h>
#include <linux/ip.h>
#include <linux/in.h>
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#include <linux/ipv6.h>
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#include <linux/slab.h>
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#include <net/ipv6.h>
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#include <linux/if_ether.h>
#include <linux/highmem.h>
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#include <linux/cache.h>
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#include "net_driver.h"
#include "efx.h"
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#include "io.h"
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#include "nic.h"
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#include "workarounds.h"
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#include "ef10_regs.h"
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#ifdef EFX_USE_PIO

#define EFX_PIOBUF_SIZE_MAX ER_DZ_TX_PIOBUF_SIZE
#define EFX_PIOBUF_SIZE_DEF ALIGN(256, L1_CACHE_BYTES)
unsigned int efx_piobuf_size __read_mostly = EFX_PIOBUF_SIZE_DEF;

#endif /* EFX_USE_PIO */

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static inline unsigned int
efx_tx_queue_get_insert_index(const struct efx_tx_queue *tx_queue)
{
	return tx_queue->insert_count & tx_queue->ptr_mask;
}

static inline struct efx_tx_buffer *
__efx_tx_queue_get_insert_buffer(const struct efx_tx_queue *tx_queue)
{
	return &tx_queue->buffer[efx_tx_queue_get_insert_index(tx_queue)];
}

static inline struct efx_tx_buffer *
efx_tx_queue_get_insert_buffer(const struct efx_tx_queue *tx_queue)
{
	struct efx_tx_buffer *buffer =
		__efx_tx_queue_get_insert_buffer(tx_queue);

	EFX_BUG_ON_PARANOID(buffer->len);
	EFX_BUG_ON_PARANOID(buffer->flags);
	EFX_BUG_ON_PARANOID(buffer->unmap_len);

	return buffer;
}

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static void efx_dequeue_buffer(struct efx_tx_queue *tx_queue,
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			       struct efx_tx_buffer *buffer,
			       unsigned int *pkts_compl,
			       unsigned int *bytes_compl)
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{
	if (buffer->unmap_len) {
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		struct device *dma_dev = &tx_queue->efx->pci_dev->dev;
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		dma_addr_t unmap_addr = buffer->dma_addr - buffer->dma_offset;
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		if (buffer->flags & EFX_TX_BUF_MAP_SINGLE)
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			dma_unmap_single(dma_dev, unmap_addr, buffer->unmap_len,
					 DMA_TO_DEVICE);
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		else
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			dma_unmap_page(dma_dev, unmap_addr, buffer->unmap_len,
				       DMA_TO_DEVICE);
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		buffer->unmap_len = 0;
	}

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	if (buffer->flags & EFX_TX_BUF_SKB) {
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		(*pkts_compl)++;
		(*bytes_compl) += buffer->skb->len;
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		dev_kfree_skb_any((struct sk_buff *) buffer->skb);
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		netif_vdbg(tx_queue->efx, tx_done, tx_queue->efx->net_dev,
			   "TX queue %d transmission id %x complete\n",
			   tx_queue->queue, tx_queue->read_count);
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	} else if (buffer->flags & EFX_TX_BUF_HEAP) {
		kfree(buffer->heap_buf);
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	}
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	buffer->len = 0;
	buffer->flags = 0;
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}

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static int efx_enqueue_skb_tso(struct efx_tx_queue *tx_queue,
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			       struct sk_buff *skb);
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static inline unsigned
efx_max_tx_len(struct efx_nic *efx, dma_addr_t dma_addr)
{
	/* Depending on the NIC revision, we can use descriptor
	 * lengths up to 8K or 8K-1.  However, since PCI Express
	 * devices must split read requests at 4K boundaries, there is
	 * little benefit from using descriptors that cross those
	 * boundaries and we keep things simple by not doing so.
	 */
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	unsigned len = (~dma_addr & (EFX_PAGE_SIZE - 1)) + 1;
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	/* Work around hardware bug for unaligned buffers. */
	if (EFX_WORKAROUND_5391(efx) && (dma_addr & 0xf))
		len = min_t(unsigned, len, 512 - (dma_addr & 0xf));

	return len;
}

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unsigned int efx_tx_max_skb_descs(struct efx_nic *efx)
{
	/* Header and payload descriptor for each output segment, plus
	 * one for every input fragment boundary within a segment
	 */
	unsigned int max_descs = EFX_TSO_MAX_SEGS * 2 + MAX_SKB_FRAGS;

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	/* Possibly one more per segment for the alignment workaround,
	 * or for option descriptors
	 */
	if (EFX_WORKAROUND_5391(efx) || efx_nic_rev(efx) >= EFX_REV_HUNT_A0)
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		max_descs += EFX_TSO_MAX_SEGS;

	/* Possibly more for PCIe page boundaries within input fragments */
	if (PAGE_SIZE > EFX_PAGE_SIZE)
		max_descs += max_t(unsigned int, MAX_SKB_FRAGS,
				   DIV_ROUND_UP(GSO_MAX_SIZE, EFX_PAGE_SIZE));

	return max_descs;
}

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/* Get partner of a TX queue, seen as part of the same net core queue */
static struct efx_tx_queue *efx_tx_queue_partner(struct efx_tx_queue *tx_queue)
{
	if (tx_queue->queue & EFX_TXQ_TYPE_OFFLOAD)
		return tx_queue - EFX_TXQ_TYPE_OFFLOAD;
	else
		return tx_queue + EFX_TXQ_TYPE_OFFLOAD;
}

static void efx_tx_maybe_stop_queue(struct efx_tx_queue *txq1)
{
	/* We need to consider both queues that the net core sees as one */
	struct efx_tx_queue *txq2 = efx_tx_queue_partner(txq1);
	struct efx_nic *efx = txq1->efx;
	unsigned int fill_level;

	fill_level = max(txq1->insert_count - txq1->old_read_count,
			 txq2->insert_count - txq2->old_read_count);
	if (likely(fill_level < efx->txq_stop_thresh))
		return;

	/* We used the stale old_read_count above, which gives us a
	 * pessimistic estimate of the fill level (which may even
	 * validly be >= efx->txq_entries).  Now try again using
	 * read_count (more likely to be a cache miss).
	 *
	 * If we read read_count and then conditionally stop the
	 * queue, it is possible for the completion path to race with
	 * us and complete all outstanding descriptors in the middle,
	 * after which there will be no more completions to wake it.
	 * Therefore we stop the queue first, then read read_count
	 * (with a memory barrier to ensure the ordering), then
	 * restart the queue if the fill level turns out to be low
	 * enough.
	 */
	netif_tx_stop_queue(txq1->core_txq);
	smp_mb();
	txq1->old_read_count = ACCESS_ONCE(txq1->read_count);
	txq2->old_read_count = ACCESS_ONCE(txq2->read_count);

	fill_level = max(txq1->insert_count - txq1->old_read_count,
			 txq2->insert_count - txq2->old_read_count);
	EFX_BUG_ON_PARANOID(fill_level >= efx->txq_entries);
	if (likely(fill_level < efx->txq_stop_thresh)) {
		smp_mb();
		if (likely(!efx->loopback_selftest))
			netif_tx_start_queue(txq1->core_txq);
	}
}

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#ifdef EFX_USE_PIO

struct efx_short_copy_buffer {
	int used;
	u8 buf[L1_CACHE_BYTES];
};

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/* Copy in explicit 64-bit writes. */
static void efx_memcpy_64(void __iomem *dest, void *src, size_t len)
{
	u64 *src64 = src;
	u64 __iomem *dest64 = dest;
	size_t l64 = len / 8;
	size_t i;

	for (i = 0; i < l64; i++)
		writeq(src64[i], &dest64[i]);
}

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/* Copy to PIO, respecting that writes to PIO buffers must be dword aligned.
 * Advances piobuf pointer. Leaves additional data in the copy buffer.
 */
static void efx_memcpy_toio_aligned(struct efx_nic *efx, u8 __iomem **piobuf,
				    u8 *data, int len,
				    struct efx_short_copy_buffer *copy_buf)
{
	int block_len = len & ~(sizeof(copy_buf->buf) - 1);

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	efx_memcpy_64(*piobuf, data, block_len);
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	*piobuf += block_len;
	len -= block_len;

	if (len) {
		data += block_len;
		BUG_ON(copy_buf->used);
		BUG_ON(len > sizeof(copy_buf->buf));
		memcpy(copy_buf->buf, data, len);
		copy_buf->used = len;
	}
}

/* Copy to PIO, respecting dword alignment, popping data from copy buffer first.
 * Advances piobuf pointer. Leaves additional data in the copy buffer.
 */
static void efx_memcpy_toio_aligned_cb(struct efx_nic *efx, u8 __iomem **piobuf,
				       u8 *data, int len,
				       struct efx_short_copy_buffer *copy_buf)
{
	if (copy_buf->used) {
		/* if the copy buffer is partially full, fill it up and write */
		int copy_to_buf =
			min_t(int, sizeof(copy_buf->buf) - copy_buf->used, len);

		memcpy(copy_buf->buf + copy_buf->used, data, copy_to_buf);
		copy_buf->used += copy_to_buf;

		/* if we didn't fill it up then we're done for now */
		if (copy_buf->used < sizeof(copy_buf->buf))
			return;

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		efx_memcpy_64(*piobuf, copy_buf->buf, sizeof(copy_buf->buf));
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		*piobuf += sizeof(copy_buf->buf);
		data += copy_to_buf;
		len -= copy_to_buf;
		copy_buf->used = 0;
	}

	efx_memcpy_toio_aligned(efx, piobuf, data, len, copy_buf);
}

static void efx_flush_copy_buffer(struct efx_nic *efx, u8 __iomem *piobuf,
				  struct efx_short_copy_buffer *copy_buf)
{
	/* if there's anything in it, write the whole buffer, including junk */
	if (copy_buf->used)
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		efx_memcpy_64(piobuf, copy_buf->buf, sizeof(copy_buf->buf));
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}

/* Traverse skb structure and copy fragments in to PIO buffer.
 * Advances piobuf pointer.
 */
static void efx_skb_copy_bits_to_pio(struct efx_nic *efx, struct sk_buff *skb,
				     u8 __iomem **piobuf,
				     struct efx_short_copy_buffer *copy_buf)
{
	int i;

	efx_memcpy_toio_aligned(efx, piobuf, skb->data, skb_headlen(skb),
				copy_buf);

	for (i = 0; i < skb_shinfo(skb)->nr_frags; ++i) {
		skb_frag_t *f = &skb_shinfo(skb)->frags[i];
		u8 *vaddr;

		vaddr = kmap_atomic(skb_frag_page(f));

		efx_memcpy_toio_aligned_cb(efx, piobuf, vaddr + f->page_offset,
					   skb_frag_size(f), copy_buf);
		kunmap_atomic(vaddr);
	}

	EFX_BUG_ON_PARANOID(skb_shinfo(skb)->frag_list);
}

static struct efx_tx_buffer *
efx_enqueue_skb_pio(struct efx_tx_queue *tx_queue, struct sk_buff *skb)
{
	struct efx_tx_buffer *buffer =
		efx_tx_queue_get_insert_buffer(tx_queue);
	u8 __iomem *piobuf = tx_queue->piobuf;

	/* Copy to PIO buffer. Ensure the writes are padded to the end
	 * of a cache line, as this is required for write-combining to be
	 * effective on at least x86.
	 */

	if (skb_shinfo(skb)->nr_frags) {
		/* The size of the copy buffer will ensure all writes
		 * are the size of a cache line.
		 */
		struct efx_short_copy_buffer copy_buf;

		copy_buf.used = 0;

		efx_skb_copy_bits_to_pio(tx_queue->efx, skb,
					 &piobuf, &copy_buf);
		efx_flush_copy_buffer(tx_queue->efx, piobuf, &copy_buf);
	} else {
		/* Pad the write to the size of a cache line.
		 * We can do this because we know the skb_shared_info sruct is
		 * after the source, and the destination buffer is big enough.
		 */
		BUILD_BUG_ON(L1_CACHE_BYTES >
			     SKB_DATA_ALIGN(sizeof(struct skb_shared_info)));
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		efx_memcpy_64(tx_queue->piobuf, skb->data,
			      ALIGN(skb->len, L1_CACHE_BYTES));
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	}

	EFX_POPULATE_QWORD_5(buffer->option,
			     ESF_DZ_TX_DESC_IS_OPT, 1,
			     ESF_DZ_TX_OPTION_TYPE, ESE_DZ_TX_OPTION_DESC_PIO,
			     ESF_DZ_TX_PIO_CONT, 0,
			     ESF_DZ_TX_PIO_BYTE_CNT, skb->len,
			     ESF_DZ_TX_PIO_BUF_ADDR,
			     tx_queue->piobuf_offset);
	++tx_queue->pio_packets;
	++tx_queue->insert_count;
	return buffer;
}
#endif /* EFX_USE_PIO */

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/*
 * Add a socket buffer to a TX queue
 *
 * This maps all fragments of a socket buffer for DMA and adds them to
 * the TX queue.  The queue's insert pointer will be incremented by
 * the number of fragments in the socket buffer.
 *
 * If any DMA mapping fails, any mapped fragments will be unmapped,
 * the queue's insert pointer will be restored to its original value.
 *
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 * This function is split out from efx_hard_start_xmit to allow the
 * loopback test to direct packets via specific TX queues.
 *
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 * Returns NETDEV_TX_OK.
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 * You must hold netif_tx_lock() to call this function.
 */
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netdev_tx_t efx_enqueue_skb(struct efx_tx_queue *tx_queue, struct sk_buff *skb)
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{
	struct efx_nic *efx = tx_queue->efx;
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	struct device *dma_dev = &efx->pci_dev->dev;
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	struct efx_tx_buffer *buffer;
	skb_frag_t *fragment;
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	unsigned int len, unmap_len = 0;
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	dma_addr_t dma_addr, unmap_addr = 0;
	unsigned int dma_len;
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	unsigned short dma_flags;
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	int i = 0;
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	EFX_BUG_ON_PARANOID(tx_queue->write_count != tx_queue->insert_count);

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	if (skb_shinfo(skb)->gso_size)
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		return efx_enqueue_skb_tso(tx_queue, skb);

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	/* Get size of the initial fragment */
	len = skb_headlen(skb);

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	/* Pad if necessary */
	if (EFX_WORKAROUND_15592(efx) && skb->len <= 32) {
		EFX_BUG_ON_PARANOID(skb->data_len);
		len = 32 + 1;
		if (skb_pad(skb, len - skb->len))
			return NETDEV_TX_OK;
	}

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	/* Consider using PIO for short packets */
#ifdef EFX_USE_PIO
	if (skb->len <= efx_piobuf_size && tx_queue->piobuf &&
	    efx_nic_tx_is_empty(tx_queue) &&
	    efx_nic_tx_is_empty(efx_tx_queue_partner(tx_queue))) {
		buffer = efx_enqueue_skb_pio(tx_queue, skb);
		dma_flags = EFX_TX_BUF_OPTION;
		goto finish_packet;
	}
#endif

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	/* Map for DMA.  Use dma_map_single rather than dma_map_page
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	 * since this is more efficient on machines with sparse
	 * memory.
	 */
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	dma_flags = EFX_TX_BUF_MAP_SINGLE;
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	dma_addr = dma_map_single(dma_dev, skb->data, len, PCI_DMA_TODEVICE);
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	/* Process all fragments */
	while (1) {
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		if (unlikely(dma_mapping_error(dma_dev, dma_addr)))
			goto dma_err;
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		/* Store fields for marking in the per-fragment final
		 * descriptor */
		unmap_len = len;
		unmap_addr = dma_addr;

		/* Add to TX queue, splitting across DMA boundaries */
		do {
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			buffer = efx_tx_queue_get_insert_buffer(tx_queue);
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			dma_len = efx_max_tx_len(efx, dma_addr);
			if (likely(dma_len >= len))
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				dma_len = len;

			/* Fill out per descriptor fields */
			buffer->len = dma_len;
			buffer->dma_addr = dma_addr;
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			buffer->flags = EFX_TX_BUF_CONT;
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			len -= dma_len;
			dma_addr += dma_len;
			++tx_queue->insert_count;
		} while (len);

		/* Transfer ownership of the unmapping to the final buffer */
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		buffer->flags = EFX_TX_BUF_CONT | dma_flags;
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		buffer->unmap_len = unmap_len;
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		buffer->dma_offset = buffer->dma_addr - unmap_addr;
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		unmap_len = 0;

		/* Get address and size of next fragment */
		if (i >= skb_shinfo(skb)->nr_frags)
			break;
		fragment = &skb_shinfo(skb)->frags[i];
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		len = skb_frag_size(fragment);
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		i++;
		/* Map for DMA */
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		dma_flags = 0;
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		dma_addr = skb_frag_dma_map(dma_dev, fragment, 0, len,
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					    DMA_TO_DEVICE);
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	}

	/* Transfer ownership of the skb to the final buffer */
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#ifdef EFX_USE_PIO
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finish_packet:
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#endif
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	buffer->skb = skb;
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	buffer->flags = EFX_TX_BUF_SKB | dma_flags;
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	netdev_tx_sent_queue(tx_queue->core_txq, skb->len);

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	/* Pass off to hardware */
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	efx_nic_push_buffers(tx_queue);
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	efx_tx_maybe_stop_queue(tx_queue);

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	return NETDEV_TX_OK;

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 dma_err:
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	netif_err(efx, tx_err, efx->net_dev,
		  " TX queue %d could not map skb with %d bytes %d "
		  "fragments for DMA\n", tx_queue->queue, skb->len,
		  skb_shinfo(skb)->nr_frags + 1);
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	/* Mark the packet as transmitted, and free the SKB ourselves */
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	dev_kfree_skb_any(skb);
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	/* Work backwards until we hit the original insert pointer value */
	while (tx_queue->insert_count != tx_queue->write_count) {
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		unsigned int pkts_compl = 0, bytes_compl = 0;
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		--tx_queue->insert_count;
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		buffer = __efx_tx_queue_get_insert_buffer(tx_queue);
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		efx_dequeue_buffer(tx_queue, buffer, &pkts_compl, &bytes_compl);
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	}

	/* Free the fragment we were mid-way through pushing */
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	if (unmap_len) {
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		if (dma_flags & EFX_TX_BUF_MAP_SINGLE)
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			dma_unmap_single(dma_dev, unmap_addr, unmap_len,
					 DMA_TO_DEVICE);
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		else
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			dma_unmap_page(dma_dev, unmap_addr, unmap_len,
				       DMA_TO_DEVICE);
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	}
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	return NETDEV_TX_OK;
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}

/* Remove packets from the TX queue
 *
 * This removes packets from the TX queue, up to and including the
 * specified index.
 */
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static void efx_dequeue_buffers(struct efx_tx_queue *tx_queue,
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				unsigned int index,
				unsigned int *pkts_compl,
				unsigned int *bytes_compl)
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{
	struct efx_nic *efx = tx_queue->efx;
	unsigned int stop_index, read_ptr;

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	stop_index = (index + 1) & tx_queue->ptr_mask;
	read_ptr = tx_queue->read_count & tx_queue->ptr_mask;
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	while (read_ptr != stop_index) {
		struct efx_tx_buffer *buffer = &tx_queue->buffer[read_ptr];
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		if (!(buffer->flags & EFX_TX_BUF_OPTION) &&
		    unlikely(buffer->len == 0)) {
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			netif_err(efx, tx_err, efx->net_dev,
				  "TX queue %d spurious TX completion id %x\n",
				  tx_queue->queue, read_ptr);
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			efx_schedule_reset(efx, RESET_TYPE_TX_SKIP);
			return;
		}

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		efx_dequeue_buffer(tx_queue, buffer, pkts_compl, bytes_compl);
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		++tx_queue->read_count;
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		read_ptr = tx_queue->read_count & tx_queue->ptr_mask;
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	}
}

/* Initiate a packet transmission.  We use one channel per CPU
 * (sharing when we have more CPUs than channels).  On Falcon, the TX
 * completion events will be directed back to the CPU that transmitted
 * the packet, which should be cache-efficient.
 *
 * Context: non-blocking.
 * Note that returning anything other than NETDEV_TX_OK will cause the
 * OS to free the skb.
 */
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netdev_tx_t efx_hard_start_xmit(struct sk_buff *skb,
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				struct net_device *net_dev)
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{
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	struct efx_nic *efx = netdev_priv(net_dev);
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	struct efx_tx_queue *tx_queue;
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	unsigned index, type;
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	EFX_WARN_ON_PARANOID(!netif_device_present(net_dev));
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	/* PTP "event" packet */
	if (unlikely(efx_xmit_with_hwtstamp(skb)) &&
	    unlikely(efx_ptp_is_ptp_tx(efx, skb))) {
		return efx_ptp_tx(efx, skb);
	}

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	index = skb_get_queue_mapping(skb);
	type = skb->ip_summed == CHECKSUM_PARTIAL ? EFX_TXQ_TYPE_OFFLOAD : 0;
	if (index >= efx->n_tx_channels) {
		index -= efx->n_tx_channels;
		type |= EFX_TXQ_TYPE_HIGHPRI;
	}
	tx_queue = efx_get_tx_queue(efx, index, type);
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	return efx_enqueue_skb(tx_queue, skb);
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}

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void efx_init_tx_queue_core_txq(struct efx_tx_queue *tx_queue)
{
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	struct efx_nic *efx = tx_queue->efx;

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	/* Must be inverse of queue lookup in efx_hard_start_xmit() */
564 565 566 567 568 569 570 571 572 573 574 575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591 592 593 594 595 596 597 598 599 600 601 602 603 604 605 606 607 608 609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625
	tx_queue->core_txq =
		netdev_get_tx_queue(efx->net_dev,
				    tx_queue->queue / EFX_TXQ_TYPES +
				    ((tx_queue->queue & EFX_TXQ_TYPE_HIGHPRI) ?
				     efx->n_tx_channels : 0));
}

int efx_setup_tc(struct net_device *net_dev, u8 num_tc)
{
	struct efx_nic *efx = netdev_priv(net_dev);
	struct efx_channel *channel;
	struct efx_tx_queue *tx_queue;
	unsigned tc;
	int rc;

	if (efx_nic_rev(efx) < EFX_REV_FALCON_B0 || num_tc > EFX_MAX_TX_TC)
		return -EINVAL;

	if (num_tc == net_dev->num_tc)
		return 0;

	for (tc = 0; tc < num_tc; tc++) {
		net_dev->tc_to_txq[tc].offset = tc * efx->n_tx_channels;
		net_dev->tc_to_txq[tc].count = efx->n_tx_channels;
	}

	if (num_tc > net_dev->num_tc) {
		/* Initialise high-priority queues as necessary */
		efx_for_each_channel(channel, efx) {
			efx_for_each_possible_channel_tx_queue(tx_queue,
							       channel) {
				if (!(tx_queue->queue & EFX_TXQ_TYPE_HIGHPRI))
					continue;
				if (!tx_queue->buffer) {
					rc = efx_probe_tx_queue(tx_queue);
					if (rc)
						return rc;
				}
				if (!tx_queue->initialised)
					efx_init_tx_queue(tx_queue);
				efx_init_tx_queue_core_txq(tx_queue);
			}
		}
	} else {
		/* Reduce number of classes before number of queues */
		net_dev->num_tc = num_tc;
	}

	rc = netif_set_real_num_tx_queues(net_dev,
					  max_t(int, num_tc, 1) *
					  efx->n_tx_channels);
	if (rc)
		return rc;

	/* Do not destroy high-priority queues when they become
	 * unused.  We would have to flush them first, and it is
	 * fairly difficult to flush a subset of TX queues.  Leave
	 * it to efx_fini_channels().
	 */

	net_dev->num_tc = num_tc;
	return 0;
626 627
}

628 629 630 631
void efx_xmit_done(struct efx_tx_queue *tx_queue, unsigned int index)
{
	unsigned fill_level;
	struct efx_nic *efx = tx_queue->efx;
632
	struct efx_tx_queue *txq2;
T
Tom Herbert 已提交
633
	unsigned int pkts_compl = 0, bytes_compl = 0;
634

635
	EFX_BUG_ON_PARANOID(index > tx_queue->ptr_mask);
636

T
Tom Herbert 已提交
637 638
	efx_dequeue_buffers(tx_queue, index, &pkts_compl, &bytes_compl);
	netdev_tx_completed_queue(tx_queue->core_txq, pkts_compl, bytes_compl);
639

640 641 642
	if (pkts_compl > 1)
		++tx_queue->merge_events;

643 644 645 646
	/* See if we need to restart the netif queue.  This memory
	 * barrier ensures that we write read_count (inside
	 * efx_dequeue_buffers()) before reading the queue status.
	 */
647
	smp_mb();
648
	if (unlikely(netif_tx_queue_stopped(tx_queue->core_txq)) &&
649
	    likely(efx->port_enabled) &&
650
	    likely(netif_device_present(efx->net_dev))) {
651 652 653 654
		txq2 = efx_tx_queue_partner(tx_queue);
		fill_level = max(tx_queue->insert_count - tx_queue->read_count,
				 txq2->insert_count - txq2->read_count);
		if (fill_level <= efx->txq_wake_thresh)
655
			netif_tx_wake_queue(tx_queue->core_txq);
656
	}
657 658 659 660 661 662 663 664 665 666

	/* Check whether the hardware queue is now empty */
	if ((int)(tx_queue->read_count - tx_queue->old_write_count) >= 0) {
		tx_queue->old_write_count = ACCESS_ONCE(tx_queue->write_count);
		if (tx_queue->read_count == tx_queue->old_write_count) {
			smp_mb();
			tx_queue->empty_read_count =
				tx_queue->read_count | EFX_EMPTY_COUNT_VALID;
		}
	}
667 668
}

669 670 671 672 673 674 675 676 677 678 679 680 681 682 683
/* Size of page-based TSO header buffers.  Larger blocks must be
 * allocated from the heap.
 */
#define TSOH_STD_SIZE	128
#define TSOH_PER_PAGE	(PAGE_SIZE / TSOH_STD_SIZE)

/* At most half the descriptors in the queue at any time will refer to
 * a TSO header buffer, since they must always be followed by a
 * payload descriptor referring to an skb.
 */
static unsigned int efx_tsoh_page_count(struct efx_tx_queue *tx_queue)
{
	return DIV_ROUND_UP(tx_queue->ptr_mask + 1, 2 * TSOH_PER_PAGE);
}

684 685 686
int efx_probe_tx_queue(struct efx_tx_queue *tx_queue)
{
	struct efx_nic *efx = tx_queue->efx;
687
	unsigned int entries;
688
	int rc;
689

690 691 692 693 694 695 696 697
	/* Create the smallest power-of-two aligned ring */
	entries = max(roundup_pow_of_two(efx->txq_entries), EFX_MIN_DMAQ_SIZE);
	EFX_BUG_ON_PARANOID(entries > EFX_MAX_DMAQ_SIZE);
	tx_queue->ptr_mask = entries - 1;

	netif_dbg(efx, probe, efx->net_dev,
		  "creating TX queue %d size %#x mask %#x\n",
		  tx_queue->queue, efx->txq_entries, tx_queue->ptr_mask);
698 699

	/* Allocate software ring */
700
	tx_queue->buffer = kcalloc(entries, sizeof(*tx_queue->buffer),
701
				   GFP_KERNEL);
702 703
	if (!tx_queue->buffer)
		return -ENOMEM;
704

705 706 707 708 709 710 711 712 713 714
	if (tx_queue->queue & EFX_TXQ_TYPE_OFFLOAD) {
		tx_queue->tsoh_page =
			kcalloc(efx_tsoh_page_count(tx_queue),
				sizeof(tx_queue->tsoh_page[0]), GFP_KERNEL);
		if (!tx_queue->tsoh_page) {
			rc = -ENOMEM;
			goto fail1;
		}
	}

715
	/* Allocate hardware ring */
716
	rc = efx_nic_probe_tx(tx_queue);
717
	if (rc)
718
		goto fail2;
719 720 721

	return 0;

722 723 724 725
fail2:
	kfree(tx_queue->tsoh_page);
	tx_queue->tsoh_page = NULL;
fail1:
726 727 728 729 730
	kfree(tx_queue->buffer);
	tx_queue->buffer = NULL;
	return rc;
}

731
void efx_init_tx_queue(struct efx_tx_queue *tx_queue)
732
{
733 734
	netif_dbg(tx_queue->efx, drv, tx_queue->efx->net_dev,
		  "initialising TX queue %d\n", tx_queue->queue);
735 736 737

	tx_queue->insert_count = 0;
	tx_queue->write_count = 0;
738
	tx_queue->old_write_count = 0;
739 740
	tx_queue->read_count = 0;
	tx_queue->old_read_count = 0;
741
	tx_queue->empty_read_count = 0 | EFX_EMPTY_COUNT_VALID;
742 743

	/* Set up TX descriptor ring */
744
	efx_nic_init_tx(tx_queue);
745 746

	tx_queue->initialised = true;
747 748
}

749
void efx_fini_tx_queue(struct efx_tx_queue *tx_queue)
750 751 752
{
	struct efx_tx_buffer *buffer;

753 754 755
	netif_dbg(tx_queue->efx, drv, tx_queue->efx->net_dev,
		  "shutting down TX queue %d\n", tx_queue->queue);

756 757 758 759 760
	if (!tx_queue->buffer)
		return;

	/* Free any buffers left in the ring */
	while (tx_queue->read_count != tx_queue->write_count) {
T
Tom Herbert 已提交
761
		unsigned int pkts_compl = 0, bytes_compl = 0;
762
		buffer = &tx_queue->buffer[tx_queue->read_count & tx_queue->ptr_mask];
T
Tom Herbert 已提交
763
		efx_dequeue_buffer(tx_queue, buffer, &pkts_compl, &bytes_compl);
764 765 766

		++tx_queue->read_count;
	}
T
Tom Herbert 已提交
767
	netdev_tx_reset_queue(tx_queue->core_txq);
768 769 770 771
}

void efx_remove_tx_queue(struct efx_tx_queue *tx_queue)
{
772 773
	int i;

774 775 776
	if (!tx_queue->buffer)
		return;

777 778
	netif_dbg(tx_queue->efx, drv, tx_queue->efx->net_dev,
		  "destroying TX queue %d\n", tx_queue->queue);
779
	efx_nic_remove_tx(tx_queue);
780

781 782 783 784 785 786 787 788
	if (tx_queue->tsoh_page) {
		for (i = 0; i < efx_tsoh_page_count(tx_queue); i++)
			efx_nic_free_buffer(tx_queue->efx,
					    &tx_queue->tsoh_page[i]);
		kfree(tx_queue->tsoh_page);
		tx_queue->tsoh_page = NULL;
	}

789 790 791 792 793
	kfree(tx_queue->buffer);
	tx_queue->buffer = NULL;
}


B
Ben Hutchings 已提交
794 795 796 797 798 799 800 801 802 803 804 805
/* Efx TCP segmentation acceleration.
 *
 * Why?  Because by doing it here in the driver we can go significantly
 * faster than the GSO.
 *
 * Requires TX checksum offload support.
 */

#define PTR_DIFF(p1, p2)  ((u8 *)(p1) - (u8 *)(p2))

/**
 * struct tso_state - TSO state for an SKB
806
 * @out_len: Remaining length in current segment
B
Ben Hutchings 已提交
807
 * @seqnum: Current sequence number
808
 * @ipv4_id: Current IPv4 ID, host endian
B
Ben Hutchings 已提交
809
 * @packet_space: Remaining space in current packet
810 811 812 813
 * @dma_addr: DMA address of current position
 * @in_len: Remaining length in current SKB fragment
 * @unmap_len: Length of SKB fragment
 * @unmap_addr: DMA address of SKB fragment
814
 * @dma_flags: TX buffer flags for DMA mapping - %EFX_TX_BUF_MAP_SINGLE or 0
B
Ben Hutchings 已提交
815
 * @protocol: Network protocol (after any VLAN header)
816 817
 * @ip_off: Offset of IP header
 * @tcp_off: Offset of TCP header
818
 * @header_len: Number of bytes of header
819
 * @ip_base_len: IPv4 tot_len or IPv6 payload_len, before TCP payload
820 821 822
 * @header_dma_addr: Header DMA address, when using option descriptors
 * @header_unmap_len: Header DMA mapped length, or 0 if not using option
 *	descriptors
B
Ben Hutchings 已提交
823 824 825 826 827
 *
 * The state used during segmentation.  It is put into this data structure
 * just to make it easy to pass into inline functions.
 */
struct tso_state {
828 829
	/* Output position */
	unsigned out_len;
B
Ben Hutchings 已提交
830
	unsigned seqnum;
831
	u16 ipv4_id;
B
Ben Hutchings 已提交
832 833
	unsigned packet_space;

834 835 836 837 838
	/* Input position */
	dma_addr_t dma_addr;
	unsigned in_len;
	unsigned unmap_len;
	dma_addr_t unmap_addr;
839
	unsigned short dma_flags;
840

B
Ben Hutchings 已提交
841
	__be16 protocol;
842 843
	unsigned int ip_off;
	unsigned int tcp_off;
844
	unsigned header_len;
845
	unsigned int ip_base_len;
846 847
	dma_addr_t header_dma_addr;
	unsigned int header_unmap_len;
B
Ben Hutchings 已提交
848 849 850 851 852
};


/*
 * Verify that our various assumptions about sk_buffs and the conditions
B
Ben Hutchings 已提交
853
 * under which TSO will be attempted hold true.  Return the protocol number.
B
Ben Hutchings 已提交
854
 */
B
Ben Hutchings 已提交
855
static __be16 efx_tso_check_protocol(struct sk_buff *skb)
B
Ben Hutchings 已提交
856
{
857 858
	__be16 protocol = skb->protocol;

B
Ben Hutchings 已提交
859
	EFX_BUG_ON_PARANOID(((struct ethhdr *)skb->data)->h_proto !=
860 861 862 863 864 865
			    protocol);
	if (protocol == htons(ETH_P_8021Q)) {
		struct vlan_ethhdr *veh = (struct vlan_ethhdr *)skb->data;
		protocol = veh->h_vlan_encapsulated_proto;
	}

B
Ben Hutchings 已提交
866 867 868 869 870 871
	if (protocol == htons(ETH_P_IP)) {
		EFX_BUG_ON_PARANOID(ip_hdr(skb)->protocol != IPPROTO_TCP);
	} else {
		EFX_BUG_ON_PARANOID(protocol != htons(ETH_P_IPV6));
		EFX_BUG_ON_PARANOID(ipv6_hdr(skb)->nexthdr != NEXTHDR_TCP);
	}
B
Ben Hutchings 已提交
872 873 874
	EFX_BUG_ON_PARANOID((PTR_DIFF(tcp_hdr(skb), skb->data)
			     + (tcp_hdr(skb)->doff << 2u)) >
			    skb_headlen(skb));
B
Ben Hutchings 已提交
875 876

	return protocol;
B
Ben Hutchings 已提交
877 878
}

879 880
static u8 *efx_tsoh_get_buffer(struct efx_tx_queue *tx_queue,
			       struct efx_tx_buffer *buffer, unsigned int len)
B
Ben Hutchings 已提交
881
{
882
	u8 *result;
B
Ben Hutchings 已提交
883

884 885 886
	EFX_BUG_ON_PARANOID(buffer->len);
	EFX_BUG_ON_PARANOID(buffer->flags);
	EFX_BUG_ON_PARANOID(buffer->unmap_len);
B
Ben Hutchings 已提交
887

888
	if (likely(len <= TSOH_STD_SIZE - NET_IP_ALIGN)) {
889 890 891 892 893
		unsigned index =
			(tx_queue->insert_count & tx_queue->ptr_mask) / 2;
		struct efx_buffer *page_buf =
			&tx_queue->tsoh_page[index / TSOH_PER_PAGE];
		unsigned offset =
894
			TSOH_STD_SIZE * (index % TSOH_PER_PAGE) + NET_IP_ALIGN;
B
Ben Hutchings 已提交
895

896
		if (unlikely(!page_buf->addr) &&
897 898
		    efx_nic_alloc_buffer(tx_queue->efx, page_buf, PAGE_SIZE,
					 GFP_ATOMIC))
899
			return NULL;
B
Ben Hutchings 已提交
900

901 902 903 904 905
		result = (u8 *)page_buf->addr + offset;
		buffer->dma_addr = page_buf->dma_addr + offset;
		buffer->flags = EFX_TX_BUF_CONT;
	} else {
		tx_queue->tso_long_headers++;
B
Ben Hutchings 已提交
906

907
		buffer->heap_buf = kmalloc(NET_IP_ALIGN + len, GFP_ATOMIC);
908 909
		if (unlikely(!buffer->heap_buf))
			return NULL;
910
		result = (u8 *)buffer->heap_buf + NET_IP_ALIGN;
911
		buffer->flags = EFX_TX_BUF_CONT | EFX_TX_BUF_HEAP;
B
Ben Hutchings 已提交
912 913
	}

914
	buffer->len = len;
B
Ben Hutchings 已提交
915

916
	return result;
B
Ben Hutchings 已提交
917 918 919 920 921 922 923
}

/**
 * efx_tx_queue_insert - push descriptors onto the TX queue
 * @tx_queue:		Efx TX queue
 * @dma_addr:		DMA address of fragment
 * @len:		Length of fragment
924
 * @final_buffer:	The final buffer inserted into the queue
B
Ben Hutchings 已提交
925
 *
926
 * Push descriptors onto the TX queue.
B
Ben Hutchings 已提交
927
 */
928 929 930
static void efx_tx_queue_insert(struct efx_tx_queue *tx_queue,
				dma_addr_t dma_addr, unsigned len,
				struct efx_tx_buffer **final_buffer)
B
Ben Hutchings 已提交
931 932 933
{
	struct efx_tx_buffer *buffer;
	struct efx_nic *efx = tx_queue->efx;
934
	unsigned dma_len;
B
Ben Hutchings 已提交
935 936 937 938

	EFX_BUG_ON_PARANOID(len <= 0);

	while (1) {
939
		buffer = efx_tx_queue_get_insert_buffer(tx_queue);
B
Ben Hutchings 已提交
940 941 942
		++tx_queue->insert_count;

		EFX_BUG_ON_PARANOID(tx_queue->insert_count -
943 944
				    tx_queue->read_count >=
				    efx->txq_entries);
B
Ben Hutchings 已提交
945 946 947

		buffer->dma_addr = dma_addr;

948
		dma_len = efx_max_tx_len(efx, dma_addr);
B
Ben Hutchings 已提交
949 950 951 952 953

		/* If there is enough space to send then do so */
		if (dma_len >= len)
			break;

954 955
		buffer->len = dma_len;
		buffer->flags = EFX_TX_BUF_CONT;
B
Ben Hutchings 已提交
956 957 958 959 960 961
		dma_addr += dma_len;
		len -= dma_len;
	}

	EFX_BUG_ON_PARANOID(!len);
	buffer->len = len;
962
	*final_buffer = buffer;
B
Ben Hutchings 已提交
963 964 965 966 967 968 969 970 971 972
}


/*
 * Put a TSO header into the TX queue.
 *
 * This is special-cased because we know that it is small enough to fit in
 * a single fragment, and we know it doesn't cross a page boundary.  It
 * also allows us to not worry about end-of-packet etc.
 */
973 974
static int efx_tso_put_header(struct efx_tx_queue *tx_queue,
			      struct efx_tx_buffer *buffer, u8 *header)
B
Ben Hutchings 已提交
975
{
976 977 978 979 980 981 982 983 984 985 986 987
	if (unlikely(buffer->flags & EFX_TX_BUF_HEAP)) {
		buffer->dma_addr = dma_map_single(&tx_queue->efx->pci_dev->dev,
						  header, buffer->len,
						  DMA_TO_DEVICE);
		if (unlikely(dma_mapping_error(&tx_queue->efx->pci_dev->dev,
					       buffer->dma_addr))) {
			kfree(buffer->heap_buf);
			buffer->len = 0;
			buffer->flags = 0;
			return -ENOMEM;
		}
		buffer->unmap_len = buffer->len;
988
		buffer->dma_offset = 0;
989 990
		buffer->flags |= EFX_TX_BUF_MAP_SINGLE;
	}
B
Ben Hutchings 已提交
991 992

	++tx_queue->insert_count;
993
	return 0;
B
Ben Hutchings 已提交
994 995 996
}


997 998 999
/* Remove buffers put into a tx_queue.  None of the buffers must have
 * an skb attached.
 */
B
Ben Hutchings 已提交
1000 1001 1002 1003 1004 1005 1006
static void efx_enqueue_unwind(struct efx_tx_queue *tx_queue)
{
	struct efx_tx_buffer *buffer;

	/* Work backwards until we hit the original insert pointer value */
	while (tx_queue->insert_count != tx_queue->write_count) {
		--tx_queue->insert_count;
1007
		buffer = __efx_tx_queue_get_insert_buffer(tx_queue);
1008
		efx_dequeue_buffer(tx_queue, buffer, NULL, NULL);
B
Ben Hutchings 已提交
1009 1010 1011 1012 1013
	}
}


/* Parse the SKB header and initialise state. */
1014 1015
static int tso_start(struct tso_state *st, struct efx_nic *efx,
		     const struct sk_buff *skb)
B
Ben Hutchings 已提交
1016
{
1017
	bool use_opt_desc = efx_nic_rev(efx) >= EFX_REV_HUNT_A0;
1018
	struct device *dma_dev = &efx->pci_dev->dev;
1019
	unsigned int header_len, in_len;
1020
	dma_addr_t dma_addr;
1021

1022 1023
	st->ip_off = skb_network_header(skb) - skb->data;
	st->tcp_off = skb_transport_header(skb) - skb->data;
1024 1025 1026 1027
	header_len = st->tcp_off + (tcp_hdr(skb)->doff << 2u);
	in_len = skb_headlen(skb) - header_len;
	st->header_len = header_len;
	st->in_len = in_len;
1028
	if (st->protocol == htons(ETH_P_IP)) {
1029
		st->ip_base_len = st->header_len - st->ip_off;
B
Ben Hutchings 已提交
1030
		st->ipv4_id = ntohs(ip_hdr(skb)->id);
1031
	} else {
1032
		st->ip_base_len = st->header_len - st->tcp_off;
B
Ben Hutchings 已提交
1033
		st->ipv4_id = 0;
1034
	}
B
Ben Hutchings 已提交
1035 1036 1037 1038 1039 1040
	st->seqnum = ntohl(tcp_hdr(skb)->seq);

	EFX_BUG_ON_PARANOID(tcp_hdr(skb)->urg);
	EFX_BUG_ON_PARANOID(tcp_hdr(skb)->syn);
	EFX_BUG_ON_PARANOID(tcp_hdr(skb)->rst);

1041 1042
	st->out_len = skb->len - header_len;

1043
	if (!use_opt_desc) {
1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062
		st->header_unmap_len = 0;

		if (likely(in_len == 0)) {
			st->dma_flags = 0;
			st->unmap_len = 0;
			return 0;
		}

		dma_addr = dma_map_single(dma_dev, skb->data + header_len,
					  in_len, DMA_TO_DEVICE);
		st->dma_flags = EFX_TX_BUF_MAP_SINGLE;
		st->dma_addr = dma_addr;
		st->unmap_addr = dma_addr;
		st->unmap_len = in_len;
	} else {
		dma_addr = dma_map_single(dma_dev, skb->data,
					  skb_headlen(skb), DMA_TO_DEVICE);
		st->header_dma_addr = dma_addr;
		st->header_unmap_len = skb_headlen(skb);
1063
		st->dma_flags = 0;
1064 1065
		st->dma_addr = dma_addr + header_len;
		st->unmap_len = 0;
1066 1067
	}

1068
	return unlikely(dma_mapping_error(dma_dev, dma_addr)) ? -ENOMEM : 0;
B
Ben Hutchings 已提交
1069 1070
}

1071 1072
static int tso_get_fragment(struct tso_state *st, struct efx_nic *efx,
			    skb_frag_t *frag)
B
Ben Hutchings 已提交
1073
{
1074
	st->unmap_addr = skb_frag_dma_map(&efx->pci_dev->dev, frag, 0,
E
Eric Dumazet 已提交
1075
					  skb_frag_size(frag), DMA_TO_DEVICE);
1076
	if (likely(!dma_mapping_error(&efx->pci_dev->dev, st->unmap_addr))) {
1077
		st->dma_flags = 0;
E
Eric Dumazet 已提交
1078 1079
		st->unmap_len = skb_frag_size(frag);
		st->in_len = skb_frag_size(frag);
1080
		st->dma_addr = st->unmap_addr;
1081 1082 1083 1084 1085
		return 0;
	}
	return -ENOMEM;
}

B
Ben Hutchings 已提交
1086 1087 1088 1089 1090 1091 1092 1093

/**
 * tso_fill_packet_with_fragment - form descriptors for the current fragment
 * @tx_queue:		Efx TX queue
 * @skb:		Socket buffer
 * @st:			TSO state
 *
 * Form descriptors for the current fragment, until we reach the end
1094
 * of fragment or end-of-packet.
B
Ben Hutchings 已提交
1095
 */
1096 1097 1098
static void tso_fill_packet_with_fragment(struct efx_tx_queue *tx_queue,
					  const struct sk_buff *skb,
					  struct tso_state *st)
B
Ben Hutchings 已提交
1099
{
1100
	struct efx_tx_buffer *buffer;
1101
	int n;
B
Ben Hutchings 已提交
1102

1103
	if (st->in_len == 0)
1104
		return;
B
Ben Hutchings 已提交
1105
	if (st->packet_space == 0)
1106
		return;
B
Ben Hutchings 已提交
1107

1108
	EFX_BUG_ON_PARANOID(st->in_len <= 0);
B
Ben Hutchings 已提交
1109 1110
	EFX_BUG_ON_PARANOID(st->packet_space <= 0);

1111
	n = min(st->in_len, st->packet_space);
B
Ben Hutchings 已提交
1112 1113

	st->packet_space -= n;
1114 1115
	st->out_len -= n;
	st->in_len -= n;
B
Ben Hutchings 已提交
1116

1117
	efx_tx_queue_insert(tx_queue, st->dma_addr, n, &buffer);
B
Ben Hutchings 已提交
1118

1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129
	if (st->out_len == 0) {
		/* Transfer ownership of the skb */
		buffer->skb = skb;
		buffer->flags = EFX_TX_BUF_SKB;
	} else if (st->packet_space != 0) {
		buffer->flags = EFX_TX_BUF_CONT;
	}

	if (st->in_len == 0) {
		/* Transfer ownership of the DMA mapping */
		buffer->unmap_len = st->unmap_len;
1130
		buffer->dma_offset = buffer->unmap_len - buffer->len;
1131 1132
		buffer->flags |= st->dma_flags;
		st->unmap_len = 0;
1133 1134
	}

1135
	st->dma_addr += n;
B
Ben Hutchings 已提交
1136 1137 1138 1139 1140 1141 1142 1143 1144 1145
}


/**
 * tso_start_new_packet - generate a new header and prepare for the new packet
 * @tx_queue:		Efx TX queue
 * @skb:		Socket buffer
 * @st:			TSO state
 *
 * Generate a new header and prepare for the new packet.  Return 0 on
1146
 * success, or -%ENOMEM if failed to alloc header.
B
Ben Hutchings 已提交
1147
 */
1148 1149 1150
static int tso_start_new_packet(struct efx_tx_queue *tx_queue,
				const struct sk_buff *skb,
				struct tso_state *st)
B
Ben Hutchings 已提交
1151
{
1152
	struct efx_tx_buffer *buffer =
1153
		efx_tx_queue_get_insert_buffer(tx_queue);
1154 1155
	bool is_last = st->out_len <= skb_shinfo(skb)->gso_size;
	u8 tcp_flags_clear;
B
Ben Hutchings 已提交
1156

1157
	if (!is_last) {
1158
		st->packet_space = skb_shinfo(skb)->gso_size;
1159
		tcp_flags_clear = 0x09; /* mask out FIN and PSH */
B
Ben Hutchings 已提交
1160
	} else {
1161
		st->packet_space = st->out_len;
1162
		tcp_flags_clear = 0x00;
B
Ben Hutchings 已提交
1163 1164
	}

1165 1166 1167 1168 1169 1170
	if (!st->header_unmap_len) {
		/* Allocate and insert a DMA-mapped header buffer. */
		struct tcphdr *tsoh_th;
		unsigned ip_length;
		u8 *header;
		int rc;
B
Ben Hutchings 已提交
1171

1172 1173 1174
		header = efx_tsoh_get_buffer(tx_queue, buffer, st->header_len);
		if (!header)
			return -ENOMEM;
B
Ben Hutchings 已提交
1175

1176 1177 1178 1179 1180 1181 1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201
		tsoh_th = (struct tcphdr *)(header + st->tcp_off);

		/* Copy and update the headers. */
		memcpy(header, skb->data, st->header_len);

		tsoh_th->seq = htonl(st->seqnum);
		((u8 *)tsoh_th)[13] &= ~tcp_flags_clear;

		ip_length = st->ip_base_len + st->packet_space;

		if (st->protocol == htons(ETH_P_IP)) {
			struct iphdr *tsoh_iph =
				(struct iphdr *)(header + st->ip_off);

			tsoh_iph->tot_len = htons(ip_length);
			tsoh_iph->id = htons(st->ipv4_id);
		} else {
			struct ipv6hdr *tsoh_iph =
				(struct ipv6hdr *)(header + st->ip_off);

			tsoh_iph->payload_len = htons(ip_length);
		}

		rc = efx_tso_put_header(tx_queue, buffer, header);
		if (unlikely(rc))
			return rc;
B
Ben Hutchings 已提交
1202
	} else {
1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218
		/* Send the original headers with a TSO option descriptor
		 * in front
		 */
		u8 tcp_flags = ((u8 *)tcp_hdr(skb))[13] & ~tcp_flags_clear;

		buffer->flags = EFX_TX_BUF_OPTION;
		buffer->len = 0;
		buffer->unmap_len = 0;
		EFX_POPULATE_QWORD_5(buffer->option,
				     ESF_DZ_TX_DESC_IS_OPT, 1,
				     ESF_DZ_TX_OPTION_TYPE,
				     ESE_DZ_TX_OPTION_DESC_TSO,
				     ESF_DZ_TX_TSO_TCP_FLAGS, tcp_flags,
				     ESF_DZ_TX_TSO_IP_ID, st->ipv4_id,
				     ESF_DZ_TX_TSO_TCP_SEQNO, st->seqnum);
		++tx_queue->insert_count;
B
Ben Hutchings 已提交
1219

1220 1221 1222
		/* We mapped the headers in tso_start().  Unmap them
		 * when the last segment is completed.
		 */
1223
		buffer = efx_tx_queue_get_insert_buffer(tx_queue);
1224 1225 1226 1227 1228
		buffer->dma_addr = st->header_dma_addr;
		buffer->len = st->header_len;
		if (is_last) {
			buffer->flags = EFX_TX_BUF_CONT | EFX_TX_BUF_MAP_SINGLE;
			buffer->unmap_len = st->header_unmap_len;
1229
			buffer->dma_offset = 0;
1230 1231 1232 1233 1234 1235 1236 1237 1238
			/* Ensure we only unmap them once in case of a
			 * later DMA mapping error and rollback
			 */
			st->header_unmap_len = 0;
		} else {
			buffer->flags = EFX_TX_BUF_CONT;
			buffer->unmap_len = 0;
		}
		++tx_queue->insert_count;
B
Ben Hutchings 已提交
1239
	}
B
Ben Hutchings 已提交
1240

1241 1242 1243 1244
	st->seqnum += skb_shinfo(skb)->gso_size;

	/* Linux leaves suitable gaps in the IP ID space for us to fill. */
	++st->ipv4_id;
1245

B
Ben Hutchings 已提交
1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260
	++tx_queue->tso_packets;

	return 0;
}


/**
 * efx_enqueue_skb_tso - segment and transmit a TSO socket buffer
 * @tx_queue:		Efx TX queue
 * @skb:		Socket buffer
 *
 * Context: You must hold netif_tx_lock() to call this function.
 *
 * Add socket buffer @skb to @tx_queue, doing TSO or return != 0 if
 * @skb was not enqueued.  In all cases @skb is consumed.  Return
1261
 * %NETDEV_TX_OK.
B
Ben Hutchings 已提交
1262 1263
 */
static int efx_enqueue_skb_tso(struct efx_tx_queue *tx_queue,
1264
			       struct sk_buff *skb)
B
Ben Hutchings 已提交
1265
{
1266
	struct efx_nic *efx = tx_queue->efx;
1267
	int frag_i, rc;
B
Ben Hutchings 已提交
1268 1269
	struct tso_state state;

B
Ben Hutchings 已提交
1270 1271
	/* Find the packet protocol and sanity-check it */
	state.protocol = efx_tso_check_protocol(skb);
B
Ben Hutchings 已提交
1272 1273 1274

	EFX_BUG_ON_PARANOID(tx_queue->write_count != tx_queue->insert_count);

1275 1276 1277
	rc = tso_start(&state, efx, skb);
	if (rc)
		goto mem_err;
B
Ben Hutchings 已提交
1278

1279
	if (likely(state.in_len == 0)) {
B
Ben Hutchings 已提交
1280 1281 1282
		/* Grab the first payload fragment. */
		EFX_BUG_ON_PARANOID(skb_shinfo(skb)->nr_frags < 1);
		frag_i = 0;
1283 1284
		rc = tso_get_fragment(&state, efx,
				      skb_shinfo(skb)->frags + frag_i);
B
Ben Hutchings 已提交
1285 1286 1287
		if (rc)
			goto mem_err;
	} else {
1288
		/* Payload starts in the header area. */
B
Ben Hutchings 已提交
1289 1290 1291 1292 1293 1294 1295
		frag_i = -1;
	}

	if (tso_start_new_packet(tx_queue, skb, &state) < 0)
		goto mem_err;

	while (1) {
1296
		tso_fill_packet_with_fragment(tx_queue, skb, &state);
B
Ben Hutchings 已提交
1297 1298

		/* Move onto the next fragment? */
1299
		if (state.in_len == 0) {
B
Ben Hutchings 已提交
1300 1301 1302
			if (++frag_i >= skb_shinfo(skb)->nr_frags)
				/* End of payload reached. */
				break;
1303 1304
			rc = tso_get_fragment(&state, efx,
					      skb_shinfo(skb)->frags + frag_i);
B
Ben Hutchings 已提交
1305 1306 1307 1308 1309 1310 1311 1312 1313 1314
			if (rc)
				goto mem_err;
		}

		/* Start at new packet? */
		if (state.packet_space == 0 &&
		    tso_start_new_packet(tx_queue, skb, &state) < 0)
			goto mem_err;
	}

1315 1316
	netdev_tx_sent_queue(tx_queue->core_txq, skb->len);

B
Ben Hutchings 已提交
1317
	/* Pass off to hardware */
1318
	efx_nic_push_buffers(tx_queue);
B
Ben Hutchings 已提交
1319

1320 1321
	efx_tx_maybe_stop_queue(tx_queue);

B
Ben Hutchings 已提交
1322 1323 1324 1325
	tx_queue->tso_bursts++;
	return NETDEV_TX_OK;

 mem_err:
1326
	netif_err(efx, tx_err, efx->net_dev,
1327
		  "Out of memory for TSO headers, or DMA mapping error\n");
1328
	dev_kfree_skb_any(skb);
B
Ben Hutchings 已提交
1329

1330
	/* Free the DMA mapping we were in the process of writing out */
1331
	if (state.unmap_len) {
1332
		if (state.dma_flags & EFX_TX_BUF_MAP_SINGLE)
1333 1334
			dma_unmap_single(&efx->pci_dev->dev, state.unmap_addr,
					 state.unmap_len, DMA_TO_DEVICE);
1335
		else
1336 1337
			dma_unmap_page(&efx->pci_dev->dev, state.unmap_addr,
				       state.unmap_len, DMA_TO_DEVICE);
1338
	}
1339

1340 1341 1342 1343 1344
	/* Free the header DMA mapping, if using option descriptors */
	if (state.header_unmap_len)
		dma_unmap_single(&efx->pci_dev->dev, state.header_dma_addr,
				 state.header_unmap_len, DMA_TO_DEVICE);

B
Ben Hutchings 已提交
1345
	efx_enqueue_unwind(tx_queue);
1346
	return NETDEV_TX_OK;
B
Ben Hutchings 已提交
1347
}