sge.c 48.5 KB
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/*****************************************************************************
 *                                                                           *
 * File: sge.c                                                               *
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 * $Revision: 1.26 $                                                         *
 * $Date: 2005/06/21 18:29:48 $                                              *
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 * Description:                                                              *
 *  DMA engine.                                                              *
 *  part of the Chelsio 10Gb Ethernet Driver.                                *
 *                                                                           *
 * 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.                                *
 *                                                                           *
 * 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.                 *
 *                                                                           *
 * THIS SOFTWARE IS PROVIDED ``AS IS'' AND WITHOUT ANY EXPRESS OR IMPLIED    *
 * WARRANTIES, INCLUDING, WITHOUT LIMITATION, THE IMPLIED WARRANTIES OF      *
 * MERCHANTABILITY AND FITNESS FOR A PARTICULAR PURPOSE.                     *
 *                                                                           *
 * http://www.chelsio.com                                                    *
 *                                                                           *
 * Copyright (c) 2003 - 2005 Chelsio Communications, Inc.                    *
 * All rights reserved.                                                      *
 *                                                                           *
 * Maintainers: maintainers@chelsio.com                                      *
 *                                                                           *
 * Authors: Dimitrios Michailidis   <dm@chelsio.com>                         *
 *          Tina Yang               <tainay@chelsio.com>                     *
 *          Felix Marti             <felix@chelsio.com>                      *
 *          Scott Bardone           <sbardone@chelsio.com>                   *
 *          Kurt Ottaway            <kottaway@chelsio.com>                   *
 *          Frank DiMambro          <frank@chelsio.com>                      *
 *                                                                           *
 * History:                                                                  *
 *                                                                           *
 ****************************************************************************/

#include "common.h"

#include <linux/config.h>
#include <linux/types.h>
#include <linux/errno.h>
#include <linux/pci.h>
#include <linux/netdevice.h>
#include <linux/etherdevice.h>
#include <linux/if_vlan.h>
#include <linux/skbuff.h>
#include <linux/init.h>
#include <linux/mm.h>
#include <linux/ip.h>
#include <linux/in.h>
#include <linux/if_arp.h>

#include "cpl5_cmd.h"
#include "sge.h"
#include "regs.h"
#include "espi.h"

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#ifdef NETIF_F_TSO
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#include <linux/tcp.h>
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#endif
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#define SGE_CMDQ_N		2
#define SGE_FREELQ_N		2
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#define SGE_CMDQ0_E_N		1024
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#define SGE_CMDQ1_E_N		128
#define SGE_FREEL_SIZE		4096
#define SGE_JUMBO_FREEL_SIZE	512
#define SGE_FREEL_REFILL_THRESH	16
#define SGE_RESPQ_E_N		1024
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#define SGE_INTRTIMER_NRES	1000
#define SGE_RX_COPY_THRES	256
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#define SGE_RX_SM_BUF_SIZE	1536

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# define SGE_RX_DROP_THRES 2

#define SGE_RESPQ_REPLENISH_THRES (SGE_RESPQ_E_N / 4)

/*
 * Period of the TX buffer reclaim timer.  This timer does not need to run
 * frequently as TX buffers are usually reclaimed by new TX packets.
 */
#define TX_RECLAIM_PERIOD (HZ / 4)
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#ifndef NET_IP_ALIGN
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# define NET_IP_ALIGN 2
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#endif

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#define M_CMD_LEN       0x7fffffff
#define V_CMD_LEN(v)    (v)
#define G_CMD_LEN(v)    ((v) & M_CMD_LEN)
#define V_CMD_GEN1(v)   ((v) << 31)
#define V_CMD_GEN2(v)   (v)
#define F_CMD_DATAVALID (1 << 1)
#define F_CMD_SOP       (1 << 2)
#define V_CMD_EOP(v)    ((v) << 3)

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/*
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 * Command queue, receive buffer list, and response queue descriptors.
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 */
#if defined(__BIG_ENDIAN_BITFIELD)
struct cmdQ_e {
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	u32 addr_lo;
	u32 len_gen;
	u32 flags;
	u32 addr_hi;
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};

struct freelQ_e {
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	u32 addr_lo;
	u32 len_gen;
	u32 gen2;
	u32 addr_hi;
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};

struct respQ_e {
	u32 Qsleeping		: 4;
	u32 Cmdq1CreditReturn	: 5;
	u32 Cmdq1DmaComplete	: 5;
	u32 Cmdq0CreditReturn	: 5;
	u32 Cmdq0DmaComplete	: 5;
	u32 FreelistQid		: 2;
	u32 CreditValid		: 1;
	u32 DataValid		: 1;
	u32 Offload		: 1;
	u32 Eop			: 1;
	u32 Sop			: 1;
	u32 GenerationBit	: 1;
	u32 BufferLength;
};
#elif defined(__LITTLE_ENDIAN_BITFIELD)
struct cmdQ_e {
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	u32 len_gen;
	u32 addr_lo;
	u32 addr_hi;
	u32 flags;
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};

struct freelQ_e {
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	u32 len_gen;
	u32 addr_lo;
	u32 addr_hi;
	u32 gen2;
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};

struct respQ_e {
	u32 BufferLength;
	u32 GenerationBit	: 1;
	u32 Sop			: 1;
	u32 Eop			: 1;
	u32 Offload		: 1;
	u32 DataValid		: 1;
	u32 CreditValid		: 1;
	u32 FreelistQid		: 2;
	u32 Cmdq0DmaComplete	: 5;
	u32 Cmdq0CreditReturn	: 5;
	u32 Cmdq1DmaComplete	: 5;
	u32 Cmdq1CreditReturn	: 5;
	u32 Qsleeping		: 4;
} ;
#endif

/*
 * SW Context Command and Freelist Queue Descriptors
 */
struct cmdQ_ce {
	struct sk_buff *skb;
	DECLARE_PCI_UNMAP_ADDR(dma_addr);
	DECLARE_PCI_UNMAP_LEN(dma_len);
};

struct freelQ_ce {
	struct sk_buff *skb;
	DECLARE_PCI_UNMAP_ADDR(dma_addr);
	DECLARE_PCI_UNMAP_LEN(dma_len);
};

/*
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 * SW command, freelist and response rings
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 */
struct cmdQ {
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	unsigned long   status;         /* HW DMA fetch status */
	unsigned int    in_use;         /* # of in-use command descriptors */
	unsigned int	size;	        /* # of descriptors */
	unsigned int	processed;      /* total # of descs HW has processed */
	unsigned int	cleaned;        /* total # of descs SW has reclaimed */
	unsigned int	stop_thres;     /* SW TX queue suspend threshold */
	u16		pidx;           /* producer index (SW) */
	u16		cidx;           /* consumer index (HW) */
	u8		genbit;         /* current generation (=valid) bit */
	u8		sop;            /* is next entry start of packet? */
	struct cmdQ_e  *entries;        /* HW command descriptor Q */
	struct cmdQ_ce *centries;       /* SW command context descriptor Q */
	spinlock_t	lock;           /* Lock to protect cmdQ enqueuing */
	dma_addr_t	dma_addr;       /* DMA addr HW command descriptor Q */
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};

struct freelQ {
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	unsigned int	credits;        /* # of available RX buffers */
	unsigned int	size;	        /* free list capacity */
	u16		pidx;           /* producer index (SW) */
	u16		cidx;           /* consumer index (HW) */
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	u16		rx_buffer_size; /* Buffer size on this free list */
	u16		dma_offset;     /* DMA offset to align IP headers */
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	u16		recycleq_idx;   /* skb recycle q to use */
	u8		genbit;	        /* current generation (=valid) bit */
	struct freelQ_e	*entries;       /* HW freelist descriptor Q */
	struct freelQ_ce *centries;     /* SW freelist context descriptor Q */
	dma_addr_t	dma_addr;       /* DMA addr HW freelist descriptor Q */
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};

struct respQ {
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	unsigned int	credits;        /* credits to be returned to SGE */
	unsigned int	size;	        /* # of response Q descriptors */
	u16		cidx;	        /* consumer index (SW) */
	u8		genbit;	        /* current generation(=valid) bit */
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	struct respQ_e *entries;        /* HW response descriptor Q */
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	dma_addr_t	dma_addr;       /* DMA addr HW response descriptor Q */
};

/* Bit flags for cmdQ.status */
enum {
	CMDQ_STAT_RUNNING = 1,          /* fetch engine is running */
	CMDQ_STAT_LAST_PKT_DB = 2       /* last packet rung the doorbell */
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};

/*
 * Main SGE data structure
 *
 * Interrupts are handled by a single CPU and it is likely that on a MP system
 * the application is migrated to another CPU. In that scenario, we try to
 * seperate the RX(in irq context) and TX state in order to decrease memory
 * contention.
 */
struct sge {
	struct adapter *adapter; 	/* adapter backpointer */
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	struct net_device *netdev;      /* netdevice backpointer */
	struct freelQ 	freelQ[SGE_FREELQ_N]; /* buffer free lists */
	struct respQ 	respQ;		/* response Q */
	unsigned long   stopped_tx_queues; /* bitmap of suspended Tx queues */
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	unsigned int	rx_pkt_pad;     /* RX padding for L2 packets */
	unsigned int	jumbo_fl;       /* jumbo freelist Q index */
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	unsigned int	intrtimer_nres;	/* no-resource interrupt timer */
	unsigned int	fixed_intrtimer;/* non-adaptive interrupt timer */
	struct timer_list tx_reclaim_timer; /* reclaims TX buffers */
	struct timer_list espibug_timer;
	unsigned int	espibug_timeout;
	struct sk_buff	*espibug_skb;
	u32		sge_control;	/* shadow value of sge control reg */
	struct sge_intr_counts stats;
	struct sge_port_stats port_stats[MAX_NPORTS];
	struct cmdQ cmdQ[SGE_CMDQ_N] ____cacheline_aligned_in_smp;
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};

/*
 * PIO to indicate that memory mapped Q contains valid descriptor(s).
 */
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static inline void doorbell_pio(struct adapter *adapter, u32 val)
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{
	wmb();
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	writel(val, adapter->regs + A_SG_DOORBELL);
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}

/*
 * Frees all RX buffers on the freelist Q. The caller must make sure that
 * the SGE is turned off before calling this function.
 */
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static void free_freelQ_buffers(struct pci_dev *pdev, struct freelQ *q)
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{
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	unsigned int cidx = q->cidx;
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	while (q->credits--) {
		struct freelQ_ce *ce = &q->centries[cidx];
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		pci_unmap_single(pdev, pci_unmap_addr(ce, dma_addr),
				 pci_unmap_len(ce, dma_len),
				 PCI_DMA_FROMDEVICE);
		dev_kfree_skb(ce->skb);
		ce->skb = NULL;
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		if (++cidx == q->size)
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			cidx = 0;
	}
}

/*
 * Free RX free list and response queue resources.
 */
static void free_rx_resources(struct sge *sge)
{
	struct pci_dev *pdev = sge->adapter->pdev;
	unsigned int size, i;

	if (sge->respQ.entries) {
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		size = sizeof(struct respQ_e) * sge->respQ.size;
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		pci_free_consistent(pdev, size, sge->respQ.entries,
				    sge->respQ.dma_addr);
	}

	for (i = 0; i < SGE_FREELQ_N; i++) {
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		struct freelQ *q = &sge->freelQ[i];
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		if (q->centries) {
			free_freelQ_buffers(pdev, q);
			kfree(q->centries);
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		}
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		if (q->entries) {
			size = sizeof(struct freelQ_e) * q->size;
			pci_free_consistent(pdev, size, q->entries,
					    q->dma_addr);
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		}
	}
}

/*
 * Allocates basic RX resources, consisting of memory mapped freelist Qs and a
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 * response queue.
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 */
static int alloc_rx_resources(struct sge *sge, struct sge_params *p)
{
	struct pci_dev *pdev = sge->adapter->pdev;
	unsigned int size, i;

	for (i = 0; i < SGE_FREELQ_N; i++) {
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		struct freelQ *q = &sge->freelQ[i];

		q->genbit = 1;
		q->size = p->freelQ_size[i];
		q->dma_offset = sge->rx_pkt_pad ? 0 : NET_IP_ALIGN;
		size = sizeof(struct freelQ_e) * q->size;
		q->entries = (struct freelQ_e *)
			      pci_alloc_consistent(pdev, size, &q->dma_addr);
		if (!q->entries)
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			goto err_no_mem;
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		memset(q->entries, 0, size);
		size = sizeof(struct freelQ_ce) * q->size;
		q->centries = kmalloc(size, GFP_KERNEL);
		if (!q->centries)
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			goto err_no_mem;
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		memset(q->centries, 0, size);
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	}

	/*
	 * Calculate the buffer sizes for the two free lists.  FL0 accommodates
	 * regular sized Ethernet frames, FL1 is sized not to exceed 16K,
	 * including all the sk_buff overhead.
	 *
	 * Note: For T2 FL0 and FL1 are reversed.
	 */
	sge->freelQ[!sge->jumbo_fl].rx_buffer_size = SGE_RX_SM_BUF_SIZE +
		sizeof(struct cpl_rx_data) +
		sge->freelQ[!sge->jumbo_fl].dma_offset;
	sge->freelQ[sge->jumbo_fl].rx_buffer_size = (16 * 1024) -
		SKB_DATA_ALIGN(sizeof(struct skb_shared_info));

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	/*
	 * Setup which skb recycle Q should be used when recycling buffers from
	 * each free list.
	 */
	sge->freelQ[!sge->jumbo_fl].recycleq_idx = 0;
	sge->freelQ[sge->jumbo_fl].recycleq_idx = 1;

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	sge->respQ.genbit = 1;
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	sge->respQ.size = SGE_RESPQ_E_N;
	sge->respQ.credits = 0;
	size = sizeof(struct respQ_e) * sge->respQ.size;
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	sge->respQ.entries = (struct respQ_e *)
		pci_alloc_consistent(pdev, size, &sge->respQ.dma_addr);
	if (!sge->respQ.entries)
		goto err_no_mem;
	memset(sge->respQ.entries, 0, size);
	return 0;

err_no_mem:
	free_rx_resources(sge);
	return -ENOMEM;
}

/*
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 * Reclaims n TX descriptors and frees the buffers associated with them.
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 */
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static void free_cmdQ_buffers(struct sge *sge, struct cmdQ *q, unsigned int n)
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{
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	struct cmdQ_ce *ce;
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	struct pci_dev *pdev = sge->adapter->pdev;
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	unsigned int cidx = q->cidx;
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	q->in_use -= n;
	ce = &q->centries[cidx];
	while (n--) {
		if (q->sop)
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			pci_unmap_single(pdev, pci_unmap_addr(ce, dma_addr),
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			 		 pci_unmap_len(ce, dma_len),
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					 PCI_DMA_TODEVICE);
		else
			pci_unmap_page(pdev, pci_unmap_addr(ce, dma_addr),
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			 	       pci_unmap_len(ce, dma_len),
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				       PCI_DMA_TODEVICE);
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		q->sop = 0;
		if (ce->skb) {
			dev_kfree_skb(ce->skb);
			q->sop = 1;
		}
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		ce++;
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		if (++cidx == q->size) {
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			cidx = 0;
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			ce = q->centries;
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		}
	}
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	q->cidx = cidx;
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}

/*
 * Free TX resources.
 *
 * Assumes that SGE is stopped and all interrupts are disabled.
 */
static void free_tx_resources(struct sge *sge)
{
	struct pci_dev *pdev = sge->adapter->pdev;
	unsigned int size, i;

	for (i = 0; i < SGE_CMDQ_N; i++) {
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		struct cmdQ *q = &sge->cmdQ[i];
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		if (q->centries) {
			if (q->in_use)
				free_cmdQ_buffers(sge, q, q->in_use);
			kfree(q->centries);
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		}
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		if (q->entries) {
			size = sizeof(struct cmdQ_e) * q->size;
			pci_free_consistent(pdev, size, q->entries,
					    q->dma_addr);
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		}
	}
}

/*
 * Allocates basic TX resources, consisting of memory mapped command Qs.
 */
static int alloc_tx_resources(struct sge *sge, struct sge_params *p)
{
	struct pci_dev *pdev = sge->adapter->pdev;
	unsigned int size, i;

	for (i = 0; i < SGE_CMDQ_N; i++) {
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		struct cmdQ *q = &sge->cmdQ[i];

		q->genbit = 1;
		q->sop = 1;
		q->size = p->cmdQ_size[i];
		q->in_use = 0;
		q->status = 0;
		q->processed = q->cleaned = 0;
		q->stop_thres = 0;
		spin_lock_init(&q->lock);
		size = sizeof(struct cmdQ_e) * q->size;
		q->entries = (struct cmdQ_e *)
			      pci_alloc_consistent(pdev, size, &q->dma_addr);
		if (!q->entries)
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			goto err_no_mem;
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		memset(q->entries, 0, size);
		size = sizeof(struct cmdQ_ce) * q->size;
		q->centries = kmalloc(size, GFP_KERNEL);
		if (!q->centries)
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			goto err_no_mem;
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		memset(q->centries, 0, size);
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	}

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	/*
	 * CommandQ 0 handles Ethernet and TOE packets, while queue 1 is TOE
	 * only.  For queue 0 set the stop threshold so we can handle one more
	 * packet from each port, plus reserve an additional 24 entries for
	 * Ethernet packets only.  Queue 1 never suspends nor do we reserve
	 * space for Ethernet packets.
	 */
	sge->cmdQ[0].stop_thres = sge->adapter->params.nports *
		(MAX_SKB_FRAGS + 1);
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	return 0;

err_no_mem:
	free_tx_resources(sge);
	return -ENOMEM;
}

static inline void setup_ring_params(struct adapter *adapter, u64 addr,
				     u32 size, int base_reg_lo,
				     int base_reg_hi, int size_reg)
{
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	writel((u32)addr, adapter->regs + base_reg_lo);
	writel(addr >> 32, adapter->regs + base_reg_hi);
	writel(size, adapter->regs + size_reg);
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}

/*
 * Enable/disable VLAN acceleration.
 */
void t1_set_vlan_accel(struct adapter *adapter, int on_off)
{
	struct sge *sge = adapter->sge;

	sge->sge_control &= ~F_VLAN_XTRACT;
	if (on_off)
		sge->sge_control |= F_VLAN_XTRACT;
	if (adapter->open_device_map) {
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		writel(sge->sge_control, adapter->regs + A_SG_CONTROL);
		readl(adapter->regs + A_SG_CONTROL); /* flush */
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	}
}

/*
 * Programs the various SGE registers. However, the engine is not yet enabled,
 * but sge->sge_control is setup and ready to go.
 */
static void configure_sge(struct sge *sge, struct sge_params *p)
{
	struct adapter *ap = sge->adapter;
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	writel(0, ap->regs + A_SG_CONTROL);
	setup_ring_params(ap, sge->cmdQ[0].dma_addr, sge->cmdQ[0].size,
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			  A_SG_CMD0BASELWR, A_SG_CMD0BASEUPR, A_SG_CMD0SIZE);
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	setup_ring_params(ap, sge->cmdQ[1].dma_addr, sge->cmdQ[1].size,
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			  A_SG_CMD1BASELWR, A_SG_CMD1BASEUPR, A_SG_CMD1SIZE);
	setup_ring_params(ap, sge->freelQ[0].dma_addr,
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			  sge->freelQ[0].size, A_SG_FL0BASELWR,
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			  A_SG_FL0BASEUPR, A_SG_FL0SIZE);
	setup_ring_params(ap, sge->freelQ[1].dma_addr,
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			  sge->freelQ[1].size, A_SG_FL1BASELWR,
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			  A_SG_FL1BASEUPR, A_SG_FL1SIZE);

	/* The threshold comparison uses <. */
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	writel(SGE_RX_SM_BUF_SIZE + 1, ap->regs + A_SG_FLTHRESHOLD);
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	setup_ring_params(ap, sge->respQ.dma_addr, sge->respQ.size,
			  A_SG_RSPBASELWR, A_SG_RSPBASEUPR, A_SG_RSPSIZE);
	writel((u32)sge->respQ.size - 1, ap->regs + A_SG_RSPQUEUECREDIT);
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	sge->sge_control = F_CMDQ0_ENABLE | F_CMDQ1_ENABLE | F_FL0_ENABLE |
		F_FL1_ENABLE | F_CPL_ENABLE | F_RESPONSE_QUEUE_ENABLE |
		V_CMDQ_PRIORITY(2) | F_DISABLE_CMDQ1_GTS | F_ISCSI_COALESCE |
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		F_DISABLE_FL0_GTS | F_DISABLE_FL1_GTS |
545 546 547 548 549 550
		V_RX_PKT_OFFSET(sge->rx_pkt_pad);

#if defined(__BIG_ENDIAN_BITFIELD)
	sge->sge_control |= F_ENABLE_BIG_ENDIAN;
#endif

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	/* Initialize no-resource timer */
	sge->intrtimer_nres = SGE_INTRTIMER_NRES * core_ticks_per_usec(ap);

	t1_sge_set_coalesce_params(sge, p);
555 556 557 558 559 560 561 562
}

/*
 * Return the payload capacity of the jumbo free-list buffers.
 */
static inline unsigned int jumbo_payload_capacity(const struct sge *sge)
{
	return sge->freelQ[sge->jumbo_fl].rx_buffer_size -
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		sge->freelQ[sge->jumbo_fl].dma_offset -
		sizeof(struct cpl_rx_data);
565 566 567 568 569 570 571
}

/*
 * Frees all SGE related resources and the sge structure itself
 */
void t1_sge_destroy(struct sge *sge)
{
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	if (sge->espibug_skb)
		kfree_skb(sge->espibug_skb);

575 576 577 578 579 580 581 582 583 584 585 586 587 588 589 590 591
	free_tx_resources(sge);
	free_rx_resources(sge);
	kfree(sge);
}

/*
 * Allocates new RX buffers on the freelist Q (and tracks them on the freelist
 * context Q) until the Q is full or alloc_skb fails.
 *
 * It is possible that the generation bits already match, indicating that the
 * buffer is already valid and nothing needs to be done. This happens when we
 * copied a received buffer into a new sk_buff during the interrupt processing.
 *
 * If the SGE doesn't automatically align packets properly (!sge->rx_pkt_pad),
 * we specify a RX_OFFSET in order to make sure that the IP header is 4B
 * aligned.
 */
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static void refill_free_list(struct sge *sge, struct freelQ *q)
593 594
{
	struct pci_dev *pdev = sge->adapter->pdev;
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	struct freelQ_ce *ce = &q->centries[q->pidx];
	struct freelQ_e *e = &q->entries[q->pidx];
	unsigned int dma_len = q->rx_buffer_size - q->dma_offset;
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	while (q->credits < q->size) {
		struct sk_buff *skb;
		dma_addr_t mapping;
603

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		skb = alloc_skb(q->rx_buffer_size, GFP_ATOMIC);
		if (!skb)
			break;

		skb_reserve(skb, q->dma_offset);
		mapping = pci_map_single(pdev, skb->data, dma_len,
					 PCI_DMA_FROMDEVICE);
		ce->skb = skb;
		pci_unmap_addr_set(ce, dma_addr, mapping);
		pci_unmap_len_set(ce, dma_len, dma_len);
		e->addr_lo = (u32)mapping;
		e->addr_hi = (u64)mapping >> 32;
		e->len_gen = V_CMD_LEN(dma_len) | V_CMD_GEN1(q->genbit);
		wmb();
		e->gen2 = V_CMD_GEN2(q->genbit);
619 620 621

		e++;
		ce++;
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		if (++q->pidx == q->size) {
			q->pidx = 0;
			q->genbit ^= 1;
			ce = q->centries;
			e = q->entries;
627
		}
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		q->credits++;
629 630 631 632 633
	}

}

/*
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 * Calls refill_free_list for both free lists. If we cannot fill at least 1/4
 * of both rings, we go into 'few interrupt mode' in order to give the system
 * time to free up resources.
637 638 639
 */
static void freelQs_empty(struct sge *sge)
{
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	struct adapter *adapter = sge->adapter;
	u32 irq_reg = readl(adapter->regs + A_SG_INT_ENABLE);
642 643 644 645 646
	u32 irqholdoff_reg;

	refill_free_list(sge, &sge->freelQ[0]);
	refill_free_list(sge, &sge->freelQ[1]);

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	if (sge->freelQ[0].credits > (sge->freelQ[0].size >> 2) &&
	    sge->freelQ[1].credits > (sge->freelQ[1].size >> 2)) {
649
		irq_reg |= F_FL_EXHAUSTED;
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		irqholdoff_reg = sge->fixed_intrtimer;
651 652 653 654 655
	} else {
		/* Clear the F_FL_EXHAUSTED interrupts for now */
		irq_reg &= ~F_FL_EXHAUSTED;
		irqholdoff_reg = sge->intrtimer_nres;
	}
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	writel(irqholdoff_reg, adapter->regs + A_SG_INTRTIMER);
	writel(irq_reg, adapter->regs + A_SG_INT_ENABLE);
658 659

	/* We reenable the Qs to force a freelist GTS interrupt later */
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	doorbell_pio(adapter, F_FL0_ENABLE | F_FL1_ENABLE);
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}

#define SGE_PL_INTR_MASK (F_PL_INTR_SGE_ERR | F_PL_INTR_SGE_DATA)
#define SGE_INT_FATAL (F_RESPQ_OVERFLOW | F_PACKET_TOO_BIG | F_PACKET_MISMATCH)
#define SGE_INT_ENABLE (F_RESPQ_EXHAUSTED | F_RESPQ_OVERFLOW | \
			F_FL_EXHAUSTED | F_PACKET_TOO_BIG | F_PACKET_MISMATCH)

/*
 * Disable SGE Interrupts
 */
void t1_sge_intr_disable(struct sge *sge)
{
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	u32 val = readl(sge->adapter->regs + A_PL_ENABLE);
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	writel(val & ~SGE_PL_INTR_MASK, sge->adapter->regs + A_PL_ENABLE);
	writel(0, sge->adapter->regs + A_SG_INT_ENABLE);
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}

/*
 * Enable SGE interrupts.
 */
void t1_sge_intr_enable(struct sge *sge)
{
	u32 en = SGE_INT_ENABLE;
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	u32 val = readl(sge->adapter->regs + A_PL_ENABLE);
686 687 688

	if (sge->adapter->flags & TSO_CAPABLE)
		en &= ~F_PACKET_TOO_BIG;
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	writel(en, sge->adapter->regs + A_SG_INT_ENABLE);
	writel(val | SGE_PL_INTR_MASK, sge->adapter->regs + A_PL_ENABLE);
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}

/*
 * Clear SGE interrupts.
 */
void t1_sge_intr_clear(struct sge *sge)
{
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	writel(SGE_PL_INTR_MASK, sge->adapter->regs + A_PL_CAUSE);
	writel(0xffffffff, sge->adapter->regs + A_SG_INT_CAUSE);
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}

/*
 * SGE 'Error' interrupt handler
 */
int t1_sge_intr_error_handler(struct sge *sge)
{
	struct adapter *adapter = sge->adapter;
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	u32 cause = readl(adapter->regs + A_SG_INT_CAUSE);
709 710 711 712

	if (adapter->flags & TSO_CAPABLE)
		cause &= ~F_PACKET_TOO_BIG;
	if (cause & F_RESPQ_EXHAUSTED)
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		sge->stats.respQ_empty++;
714
	if (cause & F_RESPQ_OVERFLOW) {
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		sge->stats.respQ_overflow++;
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		CH_ALERT("%s: SGE response queue overflow\n",
			 adapter->name);
	}
	if (cause & F_FL_EXHAUSTED) {
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		sge->stats.freelistQ_empty++;
721 722 723
		freelQs_empty(sge);
	}
	if (cause & F_PACKET_TOO_BIG) {
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		sge->stats.pkt_too_big++;
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		CH_ALERT("%s: SGE max packet size exceeded\n",
			 adapter->name);
	}
	if (cause & F_PACKET_MISMATCH) {
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		sge->stats.pkt_mismatch++;
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		CH_ALERT("%s: SGE packet mismatch\n", adapter->name);
	}
	if (cause & SGE_INT_FATAL)
		t1_fatal_err(adapter);

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	writel(cause, adapter->regs + A_SG_INT_CAUSE);
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	return 0;
}

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const struct sge_intr_counts *t1_sge_get_intr_counts(struct sge *sge)
{
	return &sge->stats;
}

const struct sge_port_stats *t1_sge_get_port_stats(struct sge *sge, int port)
{
	return &sge->port_stats[port];
}

/**
 *	recycle_fl_buf - recycle a free list buffer
 *	@fl: the free list
 *	@idx: index of buffer to recycle
753
 *
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 *	Recycles the specified buffer on the given free list by adding it at
 *	the next available slot on the list.
756
 */
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static void recycle_fl_buf(struct freelQ *fl, int idx)
758
{
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	struct freelQ_e *from = &fl->entries[idx];
	struct freelQ_e *to = &fl->entries[fl->pidx];
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	fl->centries[fl->pidx] = fl->centries[idx];
	to->addr_lo = from->addr_lo;
	to->addr_hi = from->addr_hi;
	to->len_gen = G_CMD_LEN(from->len_gen) | V_CMD_GEN1(fl->genbit);
	wmb();
	to->gen2 = V_CMD_GEN2(fl->genbit);
	fl->credits++;
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	if (++fl->pidx == fl->size) {
		fl->pidx = 0;
		fl->genbit ^= 1;
773
	}
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}
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/**
 *	get_packet - return the next ingress packet buffer
 *	@pdev: the PCI device that received the packet
 *	@fl: the SGE free list holding the packet
 *	@len: the actual packet length, excluding any SGE padding
 *	@dma_pad: padding at beginning of buffer left by SGE DMA
 *	@skb_pad: padding to be used if the packet is copied
 *	@copy_thres: length threshold under which a packet should be copied
 *	@drop_thres: # of remaining buffers before we start dropping packets
 *
 *	Get the next packet from a free list and complete setup of the
 *	sk_buff.  If the packet is small we make a copy and recycle the
 *	original buffer, otherwise we use the original buffer itself.  If a
 *	positive drop threshold is supplied packets are dropped and their
 *	buffers recycled if (a) the number of remaining buffers is under the
 *	threshold and the packet is too big to copy, or (b) the packet should
 *	be copied but there is no memory for the copy.
 */
static inline struct sk_buff *get_packet(struct pci_dev *pdev,
					 struct freelQ *fl, unsigned int len,
					 int dma_pad, int skb_pad,
					 unsigned int copy_thres,
					 unsigned int drop_thres)
{
	struct sk_buff *skb;
	struct freelQ_ce *ce = &fl->centries[fl->cidx];

	if (len < copy_thres) {
		skb = alloc_skb(len + skb_pad, GFP_ATOMIC);
		if (likely(skb != NULL)) {
			skb_reserve(skb, skb_pad);
			skb_put(skb, len);
			pci_dma_sync_single_for_cpu(pdev,
					    pci_unmap_addr(ce, dma_addr),
 					    pci_unmap_len(ce, dma_len),
					    PCI_DMA_FROMDEVICE);
			memcpy(skb->data, ce->skb->data + dma_pad, len);
			pci_dma_sync_single_for_device(pdev,
					    pci_unmap_addr(ce, dma_addr),
 					    pci_unmap_len(ce, dma_len),
					    PCI_DMA_FROMDEVICE);
		} else if (!drop_thres)
			goto use_orig_buf;
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		recycle_fl_buf(fl, fl->cidx);
		return skb;
822 823
	}

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	if (fl->credits < drop_thres) {
		recycle_fl_buf(fl, fl->cidx);
		return NULL;
	}
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use_orig_buf:
	pci_unmap_single(pdev, pci_unmap_addr(ce, dma_addr),
			 pci_unmap_len(ce, dma_len), PCI_DMA_FROMDEVICE);
	skb = ce->skb;
	skb_reserve(skb, dma_pad);
	skb_put(skb, len);
	return skb;
}
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/**
 *	unexpected_offload - handle an unexpected offload packet
 *	@adapter: the adapter
 *	@fl: the free list that received the packet
 *
 *	Called when we receive an unexpected offload packet (e.g., the TOE
 *	function is disabled or the card is a NIC).  Prints a message and
 *	recycles the buffer.
 */
static void unexpected_offload(struct adapter *adapter, struct freelQ *fl)
{
	struct freelQ_ce *ce = &fl->centries[fl->cidx];
	struct sk_buff *skb = ce->skb;

	pci_dma_sync_single_for_cpu(adapter->pdev, pci_unmap_addr(ce, dma_addr),
			    pci_unmap_len(ce, dma_len), PCI_DMA_FROMDEVICE);
	CH_ERR("%s: unexpected offload packet, cmd %u\n",
	       adapter->name, *skb->data);
	recycle_fl_buf(fl, fl->cidx);
857 858 859
}

/*
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 * Write the command descriptors to transmit the given skb starting at
 * descriptor pidx with the given generation.
862
 */
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static inline void write_tx_descs(struct adapter *adapter, struct sk_buff *skb,
				  unsigned int pidx, unsigned int gen,
				  struct cmdQ *q)
866
{
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	dma_addr_t mapping;
	struct cmdQ_e *e, *e1;
	struct cmdQ_ce *ce;
	unsigned int i, flags, nfrags = skb_shinfo(skb)->nr_frags;

	mapping = pci_map_single(adapter->pdev, skb->data,
				 skb->len - skb->data_len, PCI_DMA_TODEVICE);
	ce = &q->centries[pidx];
	ce->skb = NULL;
	pci_unmap_addr_set(ce, dma_addr, mapping);
	pci_unmap_len_set(ce, dma_len, skb->len - skb->data_len);
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	flags = F_CMD_DATAVALID | F_CMD_SOP | V_CMD_EOP(nfrags == 0) |
		V_CMD_GEN2(gen);
	e = &q->entries[pidx];
	e->addr_lo = (u32)mapping;
	e->addr_hi = (u64)mapping >> 32;
	e->len_gen = V_CMD_LEN(skb->len - skb->data_len) | V_CMD_GEN1(gen);
	for (e1 = e, i = 0; nfrags--; i++) {
		skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
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		ce++;
		e1++;
		if (++pidx == q->size) {
			pidx = 0;
			gen ^= 1;
			ce = q->centries;
			e1 = q->entries;
895 896
		}

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		mapping = pci_map_page(adapter->pdev, frag->page,
				       frag->page_offset, frag->size,
				       PCI_DMA_TODEVICE);
		ce->skb = NULL;
		pci_unmap_addr_set(ce, dma_addr, mapping);
		pci_unmap_len_set(ce, dma_len, frag->size);

		e1->addr_lo = (u32)mapping;
		e1->addr_hi = (u64)mapping >> 32;
		e1->len_gen = V_CMD_LEN(frag->size) | V_CMD_GEN1(gen);
		e1->flags = F_CMD_DATAVALID | V_CMD_EOP(nfrags == 0) |
			    V_CMD_GEN2(gen);
909 910
	}

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	ce->skb = skb;
	wmb();
	e->flags = flags;
}
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/*
 * Clean up completed Tx buffers.
 */
static inline void reclaim_completed_tx(struct sge *sge, struct cmdQ *q)
{
	unsigned int reclaim = q->processed - q->cleaned;
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	if (reclaim) {
		free_cmdQ_buffers(sge, q, reclaim);
		q->cleaned += reclaim;
926
	}
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}
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#ifndef SET_ETHTOOL_OPS
# define __netif_rx_complete(dev) netif_rx_complete(dev)
#endif
932

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/*
 * We cannot use the standard netif_rx_schedule_prep() because we have multiple
 * ports plus the TOE all multiplexing onto a single response queue, therefore
 * accepting new responses cannot depend on the state of any particular port.
 * So define our own equivalent that omits the netif_running() test.
 */
static inline int napi_schedule_prep(struct net_device *dev)
{
	return !test_and_set_bit(__LINK_STATE_RX_SCHED, &dev->state);
942 943 944
}


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/**
 *	sge_rx - process an ingress ethernet packet
 *	@sge: the sge structure
 *	@fl: the free list that contains the packet buffer
 *	@len: the packet length
950
 *
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 *	Process an ingress ethernet pakcet and deliver it to the stack.
952
 */
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static int sge_rx(struct sge *sge, struct freelQ *fl, unsigned int len)
954
{
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	struct sk_buff *skb;
	struct cpl_rx_pkt *p;
	struct adapter *adapter = sge->adapter;
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	sge->stats.ethernet_pkts++;
	skb = get_packet(adapter->pdev, fl, len - sge->rx_pkt_pad,
			 sge->rx_pkt_pad, 2, SGE_RX_COPY_THRES,
			 SGE_RX_DROP_THRES);
	if (!skb) {
		sge->port_stats[0].rx_drops++; /* charge only port 0 for now */
		return 0;
966
	}
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	p = (struct cpl_rx_pkt *)skb->data;
	skb_pull(skb, sizeof(*p));
	skb->dev = adapter->port[p->iff].dev;
	skb->dev->last_rx = jiffies;
	skb->protocol = eth_type_trans(skb, skb->dev);
	if ((adapter->flags & RX_CSUM_ENABLED) && p->csum == 0xffff &&
	    skb->protocol == htons(ETH_P_IP) &&
	    (skb->data[9] == IPPROTO_TCP || skb->data[9] == IPPROTO_UDP)) {
		sge->port_stats[p->iff].rx_cso_good++;
		skb->ip_summed = CHECKSUM_UNNECESSARY;
	} else
		skb->ip_summed = CHECKSUM_NONE;

	if (unlikely(adapter->vlan_grp && p->vlan_valid)) {
		sge->port_stats[p->iff].vlan_xtract++;
		if (adapter->params.sge.polling)
			vlan_hwaccel_receive_skb(skb, adapter->vlan_grp,
						 ntohs(p->vlan));
		else
			vlan_hwaccel_rx(skb, adapter->vlan_grp,
					ntohs(p->vlan));
	} else if (adapter->params.sge.polling)
		netif_receive_skb(skb);
	else
		netif_rx(skb);
	return 0;
994 995 996
}

/*
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 * Returns true if a command queue has enough available descriptors that
998 999
 * we can resume Tx operation after temporarily disabling its packet queue.
 */
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static inline int enough_free_Tx_descs(const struct cmdQ *q)
1001
{
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	unsigned int r = q->processed - q->cleaned;

	return q->in_use - r < (q->size >> 1);
1005 1006 1007
}

/*
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 * Called when sufficient space has become available in the SGE command queues
 * after the Tx packet schedulers have been suspended to restart the Tx path.
1010
 */
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static void restart_tx_queues(struct sge *sge)
1012
{
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	struct adapter *adap = sge->adapter;
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	if (enough_free_Tx_descs(&sge->cmdQ[0])) {
		int i;

		for_each_port(adap, i) {
			struct net_device *nd = adap->port[i].dev;

			if (test_and_clear_bit(nd->if_port,
					       &sge->stopped_tx_queues) &&
			    netif_running(nd)) {
				sge->stats.cmdQ_restarted[3]++;
				netif_wake_queue(nd);
			}
		}
	}
}

/*
 * update_tx_info is called from the interrupt handler/NAPI to return cmdQ0 
 * information.
 */
static unsigned int update_tx_info(struct adapter *adapter, 
					  unsigned int flags, 
					  unsigned int pr0)
{
	struct sge *sge = adapter->sge;
	struct cmdQ *cmdq = &sge->cmdQ[0];
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	cmdq->processed += pr0;
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	if (flags & F_CMDQ0_ENABLE) {
		clear_bit(CMDQ_STAT_RUNNING, &cmdq->status);
	
		if (cmdq->cleaned + cmdq->in_use != cmdq->processed &&
		    !test_and_set_bit(CMDQ_STAT_LAST_PKT_DB, &cmdq->status)) {
			set_bit(CMDQ_STAT_RUNNING, &cmdq->status);
			writel(F_CMDQ0_ENABLE, adapter->regs + A_SG_DOORBELL);
		}
	 	flags &= ~F_CMDQ0_ENABLE;
	}
	
	if (unlikely(sge->stopped_tx_queues != 0))
		restart_tx_queues(sge);
1057

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	return flags;
}
1060

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/*
 * Process SGE responses, up to the supplied budget.  Returns the number of
 * responses processed.  A negative budget is effectively unlimited.
 */
static int process_responses(struct adapter *adapter, int budget)
{
	struct sge *sge = adapter->sge;
	struct respQ *q = &sge->respQ;
	struct respQ_e *e = &q->entries[q->cidx];
	int budget_left = budget;
	unsigned int flags = 0;
	unsigned int cmdq_processed[SGE_CMDQ_N] = {0, 0};
	

	while (likely(budget_left && e->GenerationBit == q->genbit)) {
		flags |= e->Qsleeping;
		
		cmdq_processed[0] += e->Cmdq0CreditReturn;
		cmdq_processed[1] += e->Cmdq1CreditReturn;
		
		/* We batch updates to the TX side to avoid cacheline
		 * ping-pong of TX state information on MP where the sender
		 * might run on a different CPU than this function...
		 */
		if (unlikely(flags & F_CMDQ0_ENABLE || cmdq_processed[0] > 64)) {
			flags = update_tx_info(adapter, flags, cmdq_processed[0]);
			cmdq_processed[0] = 0;
		}
		if (unlikely(cmdq_processed[1] > 16)) {
			sge->cmdQ[1].processed += cmdq_processed[1];
			cmdq_processed[1] = 0;
1092 1093
		}
		if (likely(e->DataValid)) {
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			struct freelQ *fl = &sge->freelQ[e->FreelistQid];

			if (unlikely(!e->Sop || !e->Eop))
1097
				BUG();
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			if (unlikely(e->Offload))
				unexpected_offload(adapter, fl);
			else
				sge_rx(sge, fl, e->BufferLength);

			/*
			 * Note: this depends on each packet consuming a
			 * single free-list buffer; cf. the BUG above.
			 */
			if (++fl->cidx == fl->size)
				fl->cidx = 0;
			if (unlikely(--fl->credits <
				     fl->size - SGE_FREEL_REFILL_THRESH))
				refill_free_list(sge, fl);
		} else
			sge->stats.pure_rsps++;
1114 1115

		e++;
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		if (unlikely(++q->cidx == q->size)) {
			q->cidx = 0;
			q->genbit ^= 1;
			e = q->entries;
		}
		prefetch(e);

		if (++q->credits > SGE_RESPQ_REPLENISH_THRES) {
			writel(q->credits, adapter->regs + A_SG_RSPQUEUECREDIT);
			q->credits = 0;
1126
		}
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		--budget_left;
1128 1129
	}

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	flags = update_tx_info(adapter, flags, cmdq_processed[0]); 
	sge->cmdQ[1].processed += cmdq_processed[1];
1132

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	budget -= budget_left;
	return budget;
}
1136

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/*
 * A simpler version of process_responses() that handles only pure (i.e.,
 * non data-carrying) responses.  Such respones are too light-weight to justify
 * calling a softirq when using NAPI, so we handle them specially in hard
 * interrupt context.  The function is called with a pointer to a response,
 * which the caller must ensure is a valid pure response.  Returns 1 if it
 * encounters a valid data-carrying response, 0 otherwise.
 */
static int process_pure_responses(struct adapter *adapter, struct respQ_e *e)
{
	struct sge *sge = adapter->sge;
	struct respQ *q = &sge->respQ;
	unsigned int flags = 0;
	unsigned int cmdq_processed[SGE_CMDQ_N] = {0, 0};
1151

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	do {
		flags |= e->Qsleeping;
1154

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		cmdq_processed[0] += e->Cmdq0CreditReturn;
		cmdq_processed[1] += e->Cmdq1CreditReturn;
		
		e++;
		if (unlikely(++q->cidx == q->size)) {
			q->cidx = 0;
			q->genbit ^= 1;
			e = q->entries;
1163
		}
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		prefetch(e);
1165

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		if (++q->credits > SGE_RESPQ_REPLENISH_THRES) {
			writel(q->credits, adapter->regs + A_SG_RSPQUEUECREDIT);
			q->credits = 0;
1169
		}
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		sge->stats.pure_rsps++;
	} while (e->GenerationBit == q->genbit && !e->DataValid);
1172

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	flags = update_tx_info(adapter, flags, cmdq_processed[0]); 
	sge->cmdQ[1].processed += cmdq_processed[1];
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	return e->GenerationBit == q->genbit;
1177 1178 1179
}

/*
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 * Handler for new data events when using NAPI.  This does not need any locking
 * or protection from interrupts as data interrupts are off at this point and
 * other adapter interrupts do not interfere.
1183
 */
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static int t1_poll(struct net_device *dev, int *budget)
1185
{
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	struct adapter *adapter = dev->priv;
	int effective_budget = min(*budget, dev->quota);

	int work_done = process_responses(adapter, effective_budget);
	*budget -= work_done;
	dev->quota -= work_done;
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	if (work_done >= effective_budget)
		return 1;

	__netif_rx_complete(dev);
1197 1198

	/*
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	 * Because we don't atomically flush the following write it is
	 * possible that in very rare cases it can reach the device in a way
	 * that races with a new response being written plus an error interrupt
	 * causing the NAPI interrupt handler below to return unhandled status
	 * to the OS.  To protect against this would require flushing the write
	 * and doing both the write and the flush with interrupts off.  Way too
	 * expensive and unjustifiable given the rarity of the race.
1206
	 */
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	writel(adapter->sge->respQ.cidx, adapter->regs + A_SG_SLEEPING);
	return 0;
}
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/*
 * Returns true if the device is already scheduled for polling.
 */
static inline int napi_is_scheduled(struct net_device *dev)
{
	return test_bit(__LINK_STATE_RX_SCHED, &dev->state);
}
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/*
 * NAPI version of the main interrupt handler.
 */
static irqreturn_t t1_interrupt_napi(int irq, void *data, struct pt_regs *regs)
{
	int handled;
	struct adapter *adapter = data;
	struct sge *sge = adapter->sge;
	struct respQ *q = &adapter->sge->respQ;
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	/*
	 * Clear the SGE_DATA interrupt first thing.  Normally the NAPI
	 * handler has control of the response queue and the interrupt handler
	 * can look at the queue reliably only once it knows NAPI is off.
	 * We can't wait that long to clear the SGE_DATA interrupt because we
	 * could race with t1_poll rearming the SGE interrupt, so we need to
	 * clear the interrupt speculatively and really early on.
	 */
	writel(F_PL_INTR_SGE_DATA, adapter->regs + A_PL_CAUSE);

	spin_lock(&adapter->async_lock);
	if (!napi_is_scheduled(sge->netdev)) {
		struct respQ_e *e = &q->entries[q->cidx];

		if (e->GenerationBit == q->genbit) {
			if (e->DataValid ||
			    process_pure_responses(adapter, e)) {
				if (likely(napi_schedule_prep(sge->netdev)))
					__netif_rx_schedule(sge->netdev);
				else
					printk(KERN_CRIT
					       "NAPI schedule failure!\n");
			} else
			writel(q->cidx, adapter->regs + A_SG_SLEEPING);
			handled = 1;
			goto unlock;
		} else
		writel(q->cidx, adapter->regs + A_SG_SLEEPING);
	}  else
	if (readl(adapter->regs + A_PL_CAUSE) & F_PL_INTR_SGE_DATA)
		printk(KERN_ERR "data interrupt while NAPI running\n");
	
	handled = t1_slow_intr_handler(adapter);
	if (!handled)
		sge->stats.unhandled_irqs++;
 unlock:
	spin_unlock(&adapter->async_lock);
	return IRQ_RETVAL(handled != 0);
}
1268

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/*
 * Main interrupt handler, optimized assuming that we took a 'DATA'
 * interrupt.
 *
 * 1. Clear the interrupt
 * 2. Loop while we find valid descriptors and process them; accumulate
 *      information that can be processed after the loop
 * 3. Tell the SGE at which index we stopped processing descriptors
 * 4. Bookkeeping; free TX buffers, ring doorbell if there are any
 *      outstanding TX buffers waiting, replenish RX buffers, potentially
 *      reenable upper layers if they were turned off due to lack of TX
 *      resources which are available again.
 * 5. If we took an interrupt, but no valid respQ descriptors was found we
 *      let the slow_intr_handler run and do error handling.
 */
static irqreturn_t t1_interrupt(int irq, void *cookie, struct pt_regs *regs)
{
	int work_done;
	struct respQ_e *e;
	struct adapter *adapter = cookie;
	struct respQ *Q = &adapter->sge->respQ;
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	spin_lock(&adapter->async_lock);
	e = &Q->entries[Q->cidx];
	prefetch(e);
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	writel(F_PL_INTR_SGE_DATA, adapter->regs + A_PL_CAUSE);
1296

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	if (likely(e->GenerationBit == Q->genbit))
		work_done = process_responses(adapter, -1);
	else
		work_done = t1_slow_intr_handler(adapter);
1301

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	/*
	 * The unconditional clearing of the PL_CAUSE above may have raced
	 * with DMA completion and the corresponding generation of a response
	 * to cause us to miss the resulting data interrupt.  The next write
	 * is also unconditional to recover the missed interrupt and render
	 * this race harmless.
	 */
	writel(Q->cidx, adapter->regs + A_SG_SLEEPING);

	if (!work_done)
		adapter->sge->stats.unhandled_irqs++;
	spin_unlock(&adapter->async_lock);
	return IRQ_RETVAL(work_done != 0);
}

intr_handler_t t1_select_intr_handler(adapter_t *adapter)
{
	return adapter->params.sge.polling ? t1_interrupt_napi : t1_interrupt;
}

/*
 * Enqueues the sk_buff onto the cmdQ[qid] and has hardware fetch it.
 *
 * The code figures out how many entries the sk_buff will require in the
 * cmdQ and updates the cmdQ data structure with the state once the enqueue
 * has complete. Then, it doesn't access the global structure anymore, but
 * uses the corresponding fields on the stack. In conjuction with a spinlock
 * around that code, we can make the function reentrant without holding the
 * lock when we actually enqueue (which might be expensive, especially on
 * architectures with IO MMUs).
 *
 * This runs with softirqs disabled.
 */
1335 1336
static int t1_sge_tx(struct sk_buff *skb, struct adapter *adapter,
		     unsigned int qid, struct net_device *dev)
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{
	struct sge *sge = adapter->sge;
	struct cmdQ *q = &sge->cmdQ[qid];
	unsigned int credits, pidx, genbit, count;

	spin_lock(&q->lock);
	reclaim_completed_tx(sge, q);

	pidx = q->pidx;
	credits = q->size - q->in_use;
	count = 1 + skb_shinfo(skb)->nr_frags;

	{	/* Ethernet packet */
	 	if (unlikely(credits < count)) {
			netif_stop_queue(dev);
			set_bit(dev->if_port, &sge->stopped_tx_queues);
			sge->stats.cmdQ_full[3]++;
			spin_unlock(&q->lock);
1355 1356 1357 1358
			if (!netif_queue_stopped(dev))
				CH_ERR("%s: Tx ring full while queue awake!\n",
				       adapter->name);
			return NETDEV_TX_BUSY;
1359
		}
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		if (unlikely(credits - count < q->stop_thres)) {
			sge->stats.cmdQ_full[3]++;
			netif_stop_queue(dev);
			set_bit(dev->if_port, &sge->stopped_tx_queues);
		}
	}
	q->in_use += count;
	genbit = q->genbit;
	q->pidx += count;
	if (q->pidx >= q->size) {
		q->pidx -= q->size;
		q->genbit ^= 1;
1372
	}
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	spin_unlock(&q->lock);
1374

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	write_tx_descs(adapter, skb, pidx, genbit, q);
1376 1377 1378 1379 1380 1381 1382 1383

	/*
	 * We always ring the doorbell for cmdQ1.  For cmdQ0, we only ring
	 * the doorbell if the Q is asleep. There is a natural race, where
	 * the hardware is going to sleep just after we checked, however,
	 * then the interrupt handler will detect the outstanding TX packet
	 * and ring the doorbell for us.
	 */
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	if (qid)
		doorbell_pio(adapter, F_CMDQ1_ENABLE);
	else {
		clear_bit(CMDQ_STAT_LAST_PKT_DB, &q->status);
		if (test_and_set_bit(CMDQ_STAT_RUNNING, &q->status) == 0) {
			set_bit(CMDQ_STAT_LAST_PKT_DB, &q->status);
			writel(F_CMDQ0_ENABLE, adapter->regs + A_SG_DOORBELL);
		}
1392
	}
1393
	return NETDEV_TX_OK;
1394 1395 1396 1397
}

#define MK_ETH_TYPE_MSS(type, mss) (((mss) & 0x3FFF) | ((type) << 14))

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/*
 *	eth_hdr_len - return the length of an Ethernet header
 *	@data: pointer to the start of the Ethernet header
 *
 *	Returns the length of an Ethernet header, including optional VLAN tag.
 */
static inline int eth_hdr_len(const void *data)
{
	const struct ethhdr *e = data;

	return e->h_proto == htons(ETH_P_8021Q) ? VLAN_ETH_HLEN : ETH_HLEN;
}

1411 1412 1413 1414 1415 1416
/*
 * Adds the CPL header to the sk_buff and passes it to t1_sge_tx.
 */
int t1_start_xmit(struct sk_buff *skb, struct net_device *dev)
{
	struct adapter *adapter = dev->priv;
S
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	struct sge_port_stats *st = &adapter->sge->port_stats[dev->if_port];
	struct sge *sge = adapter->sge;
1419 1420
	struct cpl_tx_pkt *cpl;

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#ifdef NETIF_F_TSO
1422 1423 1424 1425
	if (skb_shinfo(skb)->tso_size) {
		int eth_type;
		struct cpl_tx_pkt_lso *hdr;

S
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1426 1427
		st->tso++;

1428 1429 1430 1431 1432 1433 1434 1435 1436 1437 1438 1439
		eth_type = skb->nh.raw - skb->data == ETH_HLEN ?
			CPL_ETH_II : CPL_ETH_II_VLAN;

		hdr = (struct cpl_tx_pkt_lso *)skb_push(skb, sizeof(*hdr));
		hdr->opcode = CPL_TX_PKT_LSO;
		hdr->ip_csum_dis = hdr->l4_csum_dis = 0;
		hdr->ip_hdr_words = skb->nh.iph->ihl;
		hdr->tcp_hdr_words = skb->h.th->doff;
		hdr->eth_type_mss = htons(MK_ETH_TYPE_MSS(eth_type,
						skb_shinfo(skb)->tso_size));
		hdr->len = htonl(skb->len - sizeof(*hdr));
		cpl = (struct cpl_tx_pkt *)hdr;
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1440
		sge->stats.tx_lso_pkts++;
1441
	} else
S
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1442
#endif
1443 1444
	{
		/*
S
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1445 1446 1447 1448
	 	 * Packets shorter than ETH_HLEN can break the MAC, drop them
		 * early.  Also, we may get oversized packets because some
		 * parts of the kernel don't handle our unusual hard_header_len
		 * right, drop those too.
1449
		 */
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1450 1451 1452
		if (unlikely(skb->len < ETH_HLEN ||
			     skb->len > dev->mtu + eth_hdr_len(skb->data))) {
			dev_kfree_skb_any(skb);
1453
			return NETDEV_TX_OK;
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		}

		/*
		 * We are using a non-standard hard_header_len and some kernel
		 * components, such as pktgen, do not handle it right.
		 * Complain when this happens but try to fix things up.
		 */
		if (unlikely(skb_headroom(skb) <
			     dev->hard_header_len - ETH_HLEN)) {
			struct sk_buff *orig_skb = skb;

			if (net_ratelimit())
				printk(KERN_ERR "%s: inadequate headroom in "
				       "Tx packet\n", dev->name);
			skb = skb_realloc_headroom(skb, sizeof(*cpl));
			dev_kfree_skb_any(orig_skb);
			if (!skb)
1471
				return NETDEV_TX_OK;
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		}
1473 1474 1475

		if (!(adapter->flags & UDP_CSUM_CAPABLE) &&
		    skb->ip_summed == CHECKSUM_HW &&
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		    skb->nh.iph->protocol == IPPROTO_UDP)
			if (unlikely(skb_checksum_help(skb, 0))) {
				dev_kfree_skb_any(skb);
1479
				return NETDEV_TX_OK;
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			}
1481

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1482 1483 1484 1485
		/* Hmmm, assuming to catch the gratious arp... and we'll use
		 * it to flush out stuck espi packets...
		  */
		if (unlikely(!adapter->sge->espibug_skb)) {
1486
			if (skb->protocol == htons(ETH_P_ARP) &&
S
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			    skb->nh.arph->ar_op == htons(ARPOP_REQUEST)) {
				adapter->sge->espibug_skb = skb;
				/* We want to re-use this skb later. We
				 * simply bump the reference count and it
				 * will not be freed...
				 */
				skb = skb_get(skb);
			}
1495
		}
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		cpl = (struct cpl_tx_pkt *)__skb_push(skb, sizeof(*cpl));
1498 1499 1500 1501
		cpl->opcode = CPL_TX_PKT;
		cpl->ip_csum_dis = 1;    /* SW calculates IP csum */
		cpl->l4_csum_dis = skb->ip_summed == CHECKSUM_HW ? 0 : 1;
		/* the length field isn't used so don't bother setting it */
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		st->tx_cso += (skb->ip_summed == CHECKSUM_HW);
		sge->stats.tx_do_cksum += (skb->ip_summed == CHECKSUM_HW);
		sge->stats.tx_reg_pkts++;
1506 1507 1508 1509 1510 1511 1512
	}
	cpl->iff = dev->if_port;

#if defined(CONFIG_VLAN_8021Q) || defined(CONFIG_VLAN_8021Q_MODULE)
	if (adapter->vlan_grp && vlan_tx_tag_present(skb)) {
		cpl->vlan_valid = 1;
		cpl->vlan = htons(vlan_tx_tag_get(skb));
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		st->vlan_insert++;
1514 1515 1516 1517 1518
	} else
#endif
		cpl->vlan_valid = 0;

	dev->trans_start = jiffies;
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	return t1_sge_tx(skb, adapter, 0, dev);
}
1521

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/*
 * Callback for the Tx buffer reclaim timer.  Runs with softirqs disabled.
 */
static void sge_tx_reclaim_cb(unsigned long data)
{
	int i;
	struct sge *sge = (struct sge *)data;

	for (i = 0; i < SGE_CMDQ_N; ++i) {
		struct cmdQ *q = &sge->cmdQ[i];

		if (!spin_trylock(&q->lock))
			continue;
1535

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		reclaim_completed_tx(sge, q);
		if (i == 0 && q->in_use)   /* flush pending credits */
			writel(F_CMDQ0_ENABLE,
				sge->adapter->regs + A_SG_DOORBELL);
1540

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		spin_unlock(&q->lock);
	}
	mod_timer(&sge->tx_reclaim_timer, jiffies + TX_RECLAIM_PERIOD);
}

/*
 * Propagate changes of the SGE coalescing parameters to the HW.
 */
int t1_sge_set_coalesce_params(struct sge *sge, struct sge_params *p)
{
	sge->netdev->poll = t1_poll;
	sge->fixed_intrtimer = p->rx_coalesce_usecs *
		core_ticks_per_usec(sge->adapter);
	writel(sge->fixed_intrtimer, sge->adapter->regs + A_SG_INTRTIMER);
1555 1556 1557
	return 0;
}

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/*
 * Allocates both RX and TX resources and configures the SGE. However,
 * the hardware is not enabled yet.
 */
int t1_sge_configure(struct sge *sge, struct sge_params *p)
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{
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	if (alloc_rx_resources(sge, p))
		return -ENOMEM;
	if (alloc_tx_resources(sge, p)) {
		free_rx_resources(sge);
		return -ENOMEM;
	}
	configure_sge(sge, p);

	/*
	 * Now that we have sized the free lists calculate the payload
	 * capacity of the large buffers.  Other parts of the driver use
	 * this to set the max offload coalescing size so that RX packets
	 * do not overflow our large buffers.
	 */
	p->large_buf_capacity = jumbo_payload_capacity(sge);
	return 0;
}
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/*
 * Disables the DMA engine.
 */
void t1_sge_stop(struct sge *sge)
{
	writel(0, sge->adapter->regs + A_SG_CONTROL);
	(void) readl(sge->adapter->regs + A_SG_CONTROL); /* flush */
	if (is_T2(sge->adapter))
		del_timer_sync(&sge->espibug_timer);
	del_timer_sync(&sge->tx_reclaim_timer);
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}

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/*
 * Enables the DMA engine.
 */
void t1_sge_start(struct sge *sge)
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{
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	refill_free_list(sge, &sge->freelQ[0]);
	refill_free_list(sge, &sge->freelQ[1]);

	writel(sge->sge_control, sge->adapter->regs + A_SG_CONTROL);
	doorbell_pio(sge->adapter, F_FL0_ENABLE | F_FL1_ENABLE);
	(void) readl(sge->adapter->regs + A_SG_CONTROL); /* flush */

	mod_timer(&sge->tx_reclaim_timer, jiffies + TX_RECLAIM_PERIOD);

	if (is_T2(sge->adapter)) 
		mod_timer(&sge->espibug_timer, jiffies + sge->espibug_timeout);
}

/*
 * Callback for the T2 ESPI 'stuck packet feature' workaorund
 */
static void espibug_workaround(void *data)
{
	struct adapter *adapter = (struct adapter *)data;
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	struct sge *sge = adapter->sge;

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	if (netif_running(adapter->port[0].dev)) {
		struct sk_buff *skb = sge->espibug_skb;

		u32 seop = t1_espi_get_mon(adapter, 0x930, 0);

		if ((seop & 0xfff0fff) == 0xfff && skb) {
			if (!skb->cb[0]) {
				u8 ch_mac_addr[ETH_ALEN] =
				    {0x0, 0x7, 0x43, 0x0, 0x0, 0x0};
				memcpy(skb->data + sizeof(struct cpl_tx_pkt),
				    ch_mac_addr, ETH_ALEN);
				memcpy(skb->data + skb->len - 10, ch_mac_addr,
				    ETH_ALEN);
				skb->cb[0] = 0xff;
			}

			/* bump the reference count to avoid freeing of the
			 * skb once the DMA has completed.
			 */
			skb = skb_get(skb);
			t1_sge_tx(skb, adapter, 0, adapter->port[0].dev);
		}
	}
	mod_timer(&sge->espibug_timer, jiffies + sge->espibug_timeout);
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}

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/*
 * Creates a t1_sge structure and returns suggested resource parameters.
 */
struct sge * __devinit t1_sge_create(struct adapter *adapter,
				     struct sge_params *p)
{
	struct sge *sge = kmalloc(sizeof(*sge), GFP_KERNEL);

	if (!sge)
		return NULL;
	memset(sge, 0, sizeof(*sge));

	sge->adapter = adapter;
	sge->netdev = adapter->port[0].dev;
	sge->rx_pkt_pad = t1_is_T1B(adapter) ? 0 : 2;
	sge->jumbo_fl = t1_is_T1B(adapter) ? 1 : 0;

	init_timer(&sge->tx_reclaim_timer);
	sge->tx_reclaim_timer.data = (unsigned long)sge;
	sge->tx_reclaim_timer.function = sge_tx_reclaim_cb;

	if (is_T2(sge->adapter)) {
		init_timer(&sge->espibug_timer);
		sge->espibug_timer.function = (void *)&espibug_workaround;
		sge->espibug_timer.data = (unsigned long)sge->adapter;
		sge->espibug_timeout = 1;
	}
	 

	p->cmdQ_size[0] = SGE_CMDQ0_E_N;
	p->cmdQ_size[1] = SGE_CMDQ1_E_N;
	p->freelQ_size[!sge->jumbo_fl] = SGE_FREEL_SIZE;
	p->freelQ_size[sge->jumbo_fl] = SGE_JUMBO_FREEL_SIZE;
	p->rx_coalesce_usecs =  50;
	p->coalesce_enable = 0;
	p->sample_interval_usecs = 0;
	p->polling = 0;

	return sge;
}