sge.c 61.5 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/types.h>
#include <linux/errno.h>
#include <linux/pci.h>
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#include <linux/ktime.h>
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#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>
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#include <linux/tcp.h>
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#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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/* This belongs in if_ether.h */
#define ETH_P_CPL5 0xf
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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_TX_DESC_MAX_PLEN	16384
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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 */
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	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 */
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	u16		pidx;           /* producer index (SW) */
	u16		cidx;           /* consumer index (HW) */
	u8		genbit;         /* current generation (=valid) bit */
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	u8              sop;            /* is next entry start of packet? */
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	struct cmdQ_e  *entries;        /* HW command descriptor Q */
	struct cmdQ_ce *centries;       /* SW command context descriptor Q */
	dma_addr_t	dma_addr;       /* DMA addr HW command descriptor Q */
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	spinlock_t	lock;           /* Lock to protect cmdQ enqueuing */
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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 */
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	u16             dma_offset;     /* DMA offset to align IP headers */
	u16             recycleq_idx;   /* skb recycle q to use */
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	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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};

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/* T204 TX SW scheduler */

/* Per T204 TX port */
struct sched_port {
	unsigned int	avail;		/* available bits - quota */
	unsigned int	drain_bits_per_1024ns; /* drain rate */
	unsigned int	speed;		/* drain rate, mbps */
	unsigned int	mtu;		/* mtu size */
	struct sk_buff_head skbq;	/* pending skbs */
};

/* Per T204 device */
struct sched {
	ktime_t         last_updated;   /* last time quotas were computed */
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	unsigned int	max_avail;	/* max bits to be sent to any port */
	unsigned int	port;		/* port index (round robin ports) */
	unsigned int	num;		/* num skbs in per port queues */
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	struct sched_port p[MAX_NPORTS];
	struct tasklet_struct sched_tsk;/* tasklet used to run scheduler */
};
static void restart_sched(unsigned long);


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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 {
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	struct adapter *adapter;	/* adapter backpointer */
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	struct net_device *netdev;      /* netdevice backpointer */
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	struct freelQ	freelQ[SGE_FREELQ_N]; /* buffer free lists */
	struct respQ	respQ;		/* response Q */
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	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 */
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	unsigned int    fixed_intrtimer;/* non-adaptive interrupt timer */
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	struct timer_list tx_reclaim_timer; /* reclaims TX buffers */
	struct timer_list espibug_timer;
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	unsigned long	espibug_timeout;
	struct sk_buff	*espibug_skb[MAX_NPORTS];
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	u32		sge_control;	/* shadow value of sge control reg */
	struct sge_intr_counts stats;
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	struct sge_port_stats *port_stats[MAX_NPORTS];
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	struct sched	*tx_sched;
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	struct cmdQ cmdQ[SGE_CMDQ_N] ____cacheline_aligned_in_smp;
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};

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/*
 * stop tasklet and free all pending skb's
 */
static void tx_sched_stop(struct sge *sge)
{
	struct sched *s = sge->tx_sched;
	int i;

	tasklet_kill(&s->sched_tsk);

	for (i = 0; i < MAX_NPORTS; i++)
		__skb_queue_purge(&s->p[s->port].skbq);
}

/*
 * t1_sched_update_parms() is called when the MTU or link speed changes. It
 * re-computes scheduler parameters to scope with the change.
 */
unsigned int t1_sched_update_parms(struct sge *sge, unsigned int port,
				   unsigned int mtu, unsigned int speed)
{
	struct sched *s = sge->tx_sched;
	struct sched_port *p = &s->p[port];
	unsigned int max_avail_segs;

	pr_debug("t1_sched_update_params mtu=%d speed=%d\n", mtu, speed);
	if (speed)
		p->speed = speed;
	if (mtu)
		p->mtu = mtu;

	if (speed || mtu) {
		unsigned long long drain = 1024ULL * p->speed * (p->mtu - 40);
		do_div(drain, (p->mtu + 50) * 1000);
		p->drain_bits_per_1024ns = (unsigned int) drain;

		if (p->speed < 1000)
			p->drain_bits_per_1024ns =
				90 * p->drain_bits_per_1024ns / 100;
	}

	if (board_info(sge->adapter)->board == CHBT_BOARD_CHT204) {
		p->drain_bits_per_1024ns -= 16;
		s->max_avail = max(4096U, p->mtu + 16 + 14 + 4);
		max_avail_segs = max(1U, 4096 / (p->mtu - 40));
	} else {
		s->max_avail = 16384;
		max_avail_segs = max(1U, 9000 / (p->mtu - 40));
	}

	pr_debug("t1_sched_update_parms: mtu %u speed %u max_avail %u "
		 "max_avail_segs %u drain_bits_per_1024ns %u\n", p->mtu,
		 p->speed, s->max_avail, max_avail_segs,
		 p->drain_bits_per_1024ns);

	return max_avail_segs * (p->mtu - 40);
}

/*
 * t1_sched_max_avail_bytes() tells the scheduler the maximum amount of
 * data that can be pushed per port.
 */
void t1_sched_set_max_avail_bytes(struct sge *sge, unsigned int val)
{
	struct sched *s = sge->tx_sched;
	unsigned int i;

	s->max_avail = val;
	for (i = 0; i < MAX_NPORTS; i++)
		t1_sched_update_parms(sge, i, 0, 0);
}

/*
 * t1_sched_set_drain_bits_per_us() tells the scheduler at which rate a port
 * is draining.
 */
void t1_sched_set_drain_bits_per_us(struct sge *sge, unsigned int port,
					 unsigned int val)
{
	struct sched *s = sge->tx_sched;
	struct sched_port *p = &s->p[port];
	p->drain_bits_per_1024ns = val * 1024 / 1000;
	t1_sched_update_parms(sge, port, 0, 0);
}


/*
 * get_clock() implements a ns clock (see ktime_get)
 */
static inline ktime_t get_clock(void)
{
	struct timespec ts;

	ktime_get_ts(&ts);
	return timespec_to_ktime(ts);
}

/*
 * tx_sched_init() allocates resources and does basic initialization.
 */
static int tx_sched_init(struct sge *sge)
{
	struct sched *s;
	int i;

	s = kzalloc(sizeof (struct sched), GFP_KERNEL);
	if (!s)
		return -ENOMEM;

	pr_debug("tx_sched_init\n");
	tasklet_init(&s->sched_tsk, restart_sched, (unsigned long) sge);
	sge->tx_sched = s;

	for (i = 0; i < MAX_NPORTS; i++) {
		skb_queue_head_init(&s->p[i].skbq);
		t1_sched_update_parms(sge, i, 1500, 1000);
	}

	return 0;
}

/*
 * sched_update_avail() computes the delta since the last time it was called
 * and updates the per port quota (number of bits that can be sent to the any
 * port).
 */
static inline int sched_update_avail(struct sge *sge)
{
	struct sched *s = sge->tx_sched;
	ktime_t now = get_clock();
	unsigned int i;
	long long delta_time_ns;

	delta_time_ns = ktime_to_ns(ktime_sub(now, s->last_updated));

	pr_debug("sched_update_avail delta=%lld\n", delta_time_ns);
	if (delta_time_ns < 15000)
		return 0;

	for (i = 0; i < MAX_NPORTS; i++) {
		struct sched_port *p = &s->p[i];
		unsigned int delta_avail;

		delta_avail = (p->drain_bits_per_1024ns * delta_time_ns) >> 13;
		p->avail = min(p->avail + delta_avail, s->max_avail);
	}

	s->last_updated = now;

	return 1;
}

/*
 * sched_skb() is called from two different places. In the tx path, any
 * packet generating load on an output port will call sched_skb()
 * (skb != NULL). In addition, sched_skb() is called from the irq/soft irq
 * context (skb == NULL).
 * The scheduler only returns a skb (which will then be sent) if the
 * length of the skb is <= the current quota of the output port.
 */
static struct sk_buff *sched_skb(struct sge *sge, struct sk_buff *skb,
				unsigned int credits)
{
	struct sched *s = sge->tx_sched;
	struct sk_buff_head *skbq;
	unsigned int i, len, update = 1;

	pr_debug("sched_skb %p\n", skb);
	if (!skb) {
		if (!s->num)
			return NULL;
	} else {
		skbq = &s->p[skb->dev->if_port].skbq;
		__skb_queue_tail(skbq, skb);
		s->num++;
		skb = NULL;
	}

	if (credits < MAX_SKB_FRAGS + 1)
		goto out;

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	for (i = 0; i < MAX_NPORTS; i++) {
		s->port = ++s->port & (MAX_NPORTS - 1);
		skbq = &s->p[s->port].skbq;

		skb = skb_peek(skbq);

		if (!skb)
			continue;

		len = skb->len;
		if (len <= s->p[s->port].avail) {
			s->p[s->port].avail -= len;
			s->num--;
			__skb_unlink(skb, skbq);
			goto out;
		}
		skb = NULL;
	}

	if (update-- && sched_update_avail(sge))
		goto again;

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out:
	/* If there are more pending skbs, we use the hardware to schedule us
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	 * again.
	 */
	if (s->num && !skb) {
		struct cmdQ *q = &sge->cmdQ[0];
		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, sge->adapter->regs + A_SG_DOORBELL);
		}
	}
	pr_debug("sched_skb ret %p\n", skb);

	return skb;
}

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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;
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		q->centries = kzalloc(size, GFP_KERNEL);
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		if (!q->centries)
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			goto err_no_mem;
	}

	/*
	 * 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;
599 600 601 602 603

		size = (16 * 1024) -
		    SKB_DATA_ALIGN(sizeof(struct skb_shared_info));

	sge->freelQ[sge->jumbo_fl].rx_buffer_size = size;
604

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605 606 607 608 609 610 611
	/*
	 * 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;

612
	sge->respQ.genbit = 1;
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613 614 615
	sge->respQ.size = SGE_RESPQ_E_N;
	sge->respQ.credits = 0;
	size = sizeof(struct respQ_e) * sge->respQ.size;
616 617 618 619 620 621 622 623 624 625 626 627 628
	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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629
 * Reclaims n TX descriptors and frees the buffers associated with them.
630
 */
S
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631
static void free_cmdQ_buffers(struct sge *sge, struct cmdQ *q, unsigned int n)
632
{
S
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633
	struct cmdQ_ce *ce;
634
	struct pci_dev *pdev = sge->adapter->pdev;
S
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635
	unsigned int cidx = q->cidx;
636

S
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637 638 639
	q->in_use -= n;
	ce = &q->centries[cidx];
	while (n--) {
640 641 642 643
		if (q->sop) {
			if (likely(pci_unmap_len(ce, dma_len))) {
				pci_unmap_single(pdev,
						 pci_unmap_addr(ce, dma_addr),
644
						 pci_unmap_len(ce, dma_len),
645 646 647 648 649 650
						 PCI_DMA_TODEVICE);
				q->sop = 0;
			}
		} else {
			if (likely(pci_unmap_len(ce, dma_len))) {
				pci_unmap_page(pdev, pci_unmap_addr(ce, dma_addr),
651
					       pci_unmap_len(ce, dma_len),
652 653 654
					       PCI_DMA_TODEVICE);
			}
		}
S
Scott Bardone 已提交
655
		if (ce->skb) {
656
			dev_kfree_skb_any(ce->skb);
S
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657 658
			q->sop = 1;
		}
659
		ce++;
S
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660
		if (++cidx == q->size) {
661
			cidx = 0;
S
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662
			ce = q->centries;
663 664
		}
	}
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	q->cidx = cidx;
666 667 668 669 670 671 672 673 674 675 676 677 678
}

/*
 * 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];
680

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681 682 683 684
		if (q->centries) {
			if (q->in_use)
				free_cmdQ_buffers(sge, q, q->in_use);
			kfree(q->centries);
685
		}
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686 687 688 689
		if (q->entries) {
			size = sizeof(struct cmdQ_e) * q->size;
			pci_free_consistent(pdev, size, q->entries,
					    q->dma_addr);
690 691 692 693 694 695 696 697 698 699 700 701 702
		}
	}
}

/*
 * 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)
717
			goto err_no_mem;
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		memset(q->entries, 0, size);
		size = sizeof(struct cmdQ_ce) * q->size;
S
Stephen Hemminger 已提交
720
		q->centries = kzalloc(size, GFP_KERNEL);
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721
		if (!q->centries)
722 723 724
			goto err_no_mem;
	}

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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);
734 735 736 737 738 739 740 741 742 743 744
	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);
748 749 750 751 752 753 754 755 756 757 758 759 760
}

/*
 * 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);
762
		readl(adapter->regs + A_SG_CONTROL);   /* flush */
763 764 765 766 767 768 769 770 771 772
	}
}

/*
 * 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;
773

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	writel(0, ap->regs + A_SG_CONTROL);
	setup_ring_params(ap, sge->cmdQ[0].dma_addr, sge->cmdQ[0].size,
776
			  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,
778 779
			  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,
781 782
			  A_SG_FL0BASEUPR, A_SG_FL0SIZE);
	setup_ring_params(ap, sge->freelQ[1].dma_addr,
S
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783
			  sge->freelQ[1].size, A_SG_FL1BASELWR,
784 785 786
			  A_SG_FL1BASEUPR, A_SG_FL1SIZE);

	/* The threshold comparison uses <. */
S
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	writel(SGE_RX_SM_BUF_SIZE + 1, ap->regs + A_SG_FLTHRESHOLD);
788

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789 790 791
	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);
792 793 794 795 796 797 798 799 800 801

	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 |
		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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802 803 804 805
	/* Initialize no-resource timer */
	sge->intrtimer_nres = SGE_INTRTIMER_NRES * core_ticks_per_usec(ap);

	t1_sge_set_coalesce_params(sge, p);
806 807 808 809 810 811 812 813
}

/*
 * 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);
816 817 818 819 820 821 822
}

/*
 * Frees all SGE related resources and the sge structure itself
 */
void t1_sge_destroy(struct sge *sge)
{
823 824 825 826 827
	int i;

	for_each_port(sge->adapter, i)
		free_percpu(sge->port_stats[i]);

828
	kfree(sge->tx_sched);
829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845
	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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846
static void refill_free_list(struct sge *sge, struct freelQ *q)
847 848
{
	struct pci_dev *pdev = sge->adapter->pdev;
S
Scott Bardone 已提交
849 850 851
	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;
852

S
Scott Bardone 已提交
853 854 855
	while (q->credits < q->size) {
		struct sk_buff *skb;
		dma_addr_t mapping;
856

S
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857 858 859 860 861 862 863 864 865 866 867 868 869 870 871
		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);
872 873 874

		e++;
		ce++;
S
Scott Bardone 已提交
875 876 877 878 879
		if (++q->pidx == q->size) {
			q->pidx = 0;
			q->genbit ^= 1;
			ce = q->centries;
			e = q->entries;
880
		}
S
Scott Bardone 已提交
881
		q->credits++;
882 883 884 885
	}
}

/*
S
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886 887 888
 * 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.
889 890 891
 */
static void freelQs_empty(struct sge *sge)
{
S
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892 893
	struct adapter *adapter = sge->adapter;
	u32 irq_reg = readl(adapter->regs + A_SG_INT_ENABLE);
894 895 896 897 898
	u32 irqholdoff_reg;

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

S
Scott Bardone 已提交
899 900
	if (sge->freelQ[0].credits > (sge->freelQ[0].size >> 2) &&
	    sge->freelQ[1].credits > (sge->freelQ[1].size >> 2)) {
901
		irq_reg |= F_FL_EXHAUSTED;
S
Scott Bardone 已提交
902
		irqholdoff_reg = sge->fixed_intrtimer;
903 904 905 906 907
	} else {
		/* Clear the F_FL_EXHAUSTED interrupts for now */
		irq_reg &= ~F_FL_EXHAUSTED;
		irqholdoff_reg = sge->intrtimer_nres;
	}
S
Scott Bardone 已提交
908 909
	writel(irqholdoff_reg, adapter->regs + A_SG_INTRTIMER);
	writel(irq_reg, adapter->regs + A_SG_INT_ENABLE);
910 911

	/* We reenable the Qs to force a freelist GTS interrupt later */
S
Scott Bardone 已提交
912
	doorbell_pio(adapter, F_FL0_ENABLE | F_FL1_ENABLE);
913 914 915 916 917 918 919 920 921 922 923 924
}

#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)
{
S
Scott Bardone 已提交
925
	u32 val = readl(sge->adapter->regs + A_PL_ENABLE);
926

S
Scott Bardone 已提交
927 928
	writel(val & ~SGE_PL_INTR_MASK, sge->adapter->regs + A_PL_ENABLE);
	writel(0, sge->adapter->regs + A_SG_INT_ENABLE);
929 930 931 932 933 934 935 936
}

/*
 * Enable SGE interrupts.
 */
void t1_sge_intr_enable(struct sge *sge)
{
	u32 en = SGE_INT_ENABLE;
S
Scott Bardone 已提交
937
	u32 val = readl(sge->adapter->regs + A_PL_ENABLE);
938 939 940

	if (sge->adapter->flags & TSO_CAPABLE)
		en &= ~F_PACKET_TOO_BIG;
S
Scott Bardone 已提交
941 942
	writel(en, sge->adapter->regs + A_SG_INT_ENABLE);
	writel(val | SGE_PL_INTR_MASK, sge->adapter->regs + A_PL_ENABLE);
943 944 945 946 947 948 949
}

/*
 * Clear SGE interrupts.
 */
void t1_sge_intr_clear(struct sge *sge)
{
S
Scott Bardone 已提交
950 951
	writel(SGE_PL_INTR_MASK, sge->adapter->regs + A_PL_CAUSE);
	writel(0xffffffff, sge->adapter->regs + A_SG_INT_CAUSE);
952 953 954 955 956 957 958 959
}

/*
 * SGE 'Error' interrupt handler
 */
int t1_sge_intr_error_handler(struct sge *sge)
{
	struct adapter *adapter = sge->adapter;
S
Scott Bardone 已提交
960
	u32 cause = readl(adapter->regs + A_SG_INT_CAUSE);
961 962 963 964

	if (adapter->flags & TSO_CAPABLE)
		cause &= ~F_PACKET_TOO_BIG;
	if (cause & F_RESPQ_EXHAUSTED)
S
Scott Bardone 已提交
965
		sge->stats.respQ_empty++;
966
	if (cause & F_RESPQ_OVERFLOW) {
S
Scott Bardone 已提交
967
		sge->stats.respQ_overflow++;
968 969 970 971
		CH_ALERT("%s: SGE response queue overflow\n",
			 adapter->name);
	}
	if (cause & F_FL_EXHAUSTED) {
S
Scott Bardone 已提交
972
		sge->stats.freelistQ_empty++;
973 974 975
		freelQs_empty(sge);
	}
	if (cause & F_PACKET_TOO_BIG) {
S
Scott Bardone 已提交
976
		sge->stats.pkt_too_big++;
977 978 979 980
		CH_ALERT("%s: SGE max packet size exceeded\n",
			 adapter->name);
	}
	if (cause & F_PACKET_MISMATCH) {
S
Scott Bardone 已提交
981
		sge->stats.pkt_mismatch++;
982 983 984 985 986
		CH_ALERT("%s: SGE packet mismatch\n", adapter->name);
	}
	if (cause & SGE_INT_FATAL)
		t1_fatal_err(adapter);

S
Scott Bardone 已提交
987
	writel(cause, adapter->regs + A_SG_INT_CAUSE);
988 989 990
	return 0;
}

991
const struct sge_intr_counts *t1_sge_get_intr_counts(const struct sge *sge)
S
Scott Bardone 已提交
992 993 994 995
{
	return &sge->stats;
}

996 997
void t1_sge_get_port_stats(const struct sge *sge, int port,
			   struct sge_port_stats *ss)
S
Scott Bardone 已提交
998
{
999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012
	int cpu;

	memset(ss, 0, sizeof(*ss));
	for_each_possible_cpu(cpu) {
		struct sge_port_stats *st = per_cpu_ptr(sge->port_stats[port], cpu);

		ss->rx_packets += st->rx_packets;
		ss->rx_cso_good += st->rx_cso_good;
		ss->tx_packets += st->tx_packets;
		ss->tx_cso += st->tx_cso;
		ss->tx_tso += st->tx_tso;
		ss->vlan_xtract += st->vlan_xtract;
		ss->vlan_insert += st->vlan_insert;
	}
S
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1013 1014 1015 1016 1017 1018
}

/**
 *	recycle_fl_buf - recycle a free list buffer
 *	@fl: the free list
 *	@idx: index of buffer to recycle
1019
 *
S
Scott Bardone 已提交
1020 1021
 *	Recycles the specified buffer on the given free list by adding it at
 *	the next available slot on the list.
1022
 */
S
Scott Bardone 已提交
1023
static void recycle_fl_buf(struct freelQ *fl, int idx)
1024
{
S
Scott Bardone 已提交
1025 1026
	struct freelQ_e *from = &fl->entries[idx];
	struct freelQ_e *to = &fl->entries[fl->pidx];
1027

S
Scott Bardone 已提交
1028 1029 1030 1031 1032 1033 1034
	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++;
1035

S
Scott Bardone 已提交
1036 1037 1038
	if (++fl->pidx == fl->size) {
		fl->pidx = 0;
		fl->genbit ^= 1;
1039
	}
S
Scott Bardone 已提交
1040
}
1041

S
Scott Bardone 已提交
1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062 1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075
/**
 *	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),
1076
					    pci_unmap_len(ce, dma_len),
S
Scott Bardone 已提交
1077 1078 1079 1080
					    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),
1081
					    pci_unmap_len(ce, dma_len),
S
Scott Bardone 已提交
1082 1083 1084
					    PCI_DMA_FROMDEVICE);
		} else if (!drop_thres)
			goto use_orig_buf;
1085

S
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1086 1087
		recycle_fl_buf(fl, fl->cidx);
		return skb;
1088 1089
	}

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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);
1123 1124
}

1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137
/*
 * T1/T2 SGE limits the maximum DMA size per TX descriptor to
 * SGE_TX_DESC_MAX_PLEN (16KB). If the PAGE_SIZE is larger than 16KB, the
 * stack might send more than SGE_TX_DESC_MAX_PLEN in a contiguous manner.
 * Note that the *_large_page_tx_descs stuff will be optimized out when
 * PAGE_SIZE <= SGE_TX_DESC_MAX_PLEN.
 *
 * compute_large_page_descs() computes how many additional descriptors are
 * required to break down the stack's request.
 */
static inline unsigned int compute_large_page_tx_descs(struct sk_buff *skb)
{
	unsigned int count = 0;
1138

1139 1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171 1172 1173 1174 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 1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218
	if (PAGE_SIZE > SGE_TX_DESC_MAX_PLEN) {
		unsigned int nfrags = skb_shinfo(skb)->nr_frags;
		unsigned int i, len = skb->len - skb->data_len;
		while (len > SGE_TX_DESC_MAX_PLEN) {
			count++;
			len -= SGE_TX_DESC_MAX_PLEN;
		}
		for (i = 0; nfrags--; i++) {
			skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
			len = frag->size;
			while (len > SGE_TX_DESC_MAX_PLEN) {
				count++;
				len -= SGE_TX_DESC_MAX_PLEN;
			}
		}
	}
	return count;
}

/*
 * Write a cmdQ entry.
 *
 * Since this function writes the 'flags' field, it must not be used to
 * write the first cmdQ entry.
 */
static inline void write_tx_desc(struct cmdQ_e *e, dma_addr_t mapping,
				 unsigned int len, unsigned int gen,
				 unsigned int eop)
{
	if (unlikely(len > SGE_TX_DESC_MAX_PLEN))
		BUG();
	e->addr_lo = (u32)mapping;
	e->addr_hi = (u64)mapping >> 32;
	e->len_gen = V_CMD_LEN(len) | V_CMD_GEN1(gen);
	e->flags = F_CMD_DATAVALID | V_CMD_EOP(eop) | V_CMD_GEN2(gen);
}

/*
 * See comment for previous function.
 *
 * write_tx_descs_large_page() writes additional SGE tx descriptors if
 * *desc_len exceeds HW's capability.
 */
static inline unsigned int write_large_page_tx_descs(unsigned int pidx,
						     struct cmdQ_e **e,
						     struct cmdQ_ce **ce,
						     unsigned int *gen,
						     dma_addr_t *desc_mapping,
						     unsigned int *desc_len,
						     unsigned int nfrags,
						     struct cmdQ *q)
{
	if (PAGE_SIZE > SGE_TX_DESC_MAX_PLEN) {
		struct cmdQ_e *e1 = *e;
		struct cmdQ_ce *ce1 = *ce;

		while (*desc_len > SGE_TX_DESC_MAX_PLEN) {
			*desc_len -= SGE_TX_DESC_MAX_PLEN;
			write_tx_desc(e1, *desc_mapping, SGE_TX_DESC_MAX_PLEN,
				      *gen, nfrags == 0 && *desc_len == 0);
			ce1->skb = NULL;
			pci_unmap_len_set(ce1, dma_len, 0);
			*desc_mapping += SGE_TX_DESC_MAX_PLEN;
			if (*desc_len) {
				ce1++;
				e1++;
				if (++pidx == q->size) {
					pidx = 0;
					*gen ^= 1;
					ce1 = q->centries;
					e1 = q->entries;
				}
			}
		}
		*e = e1;
		*ce = ce1;
	}
	return pidx;
}

1219
/*
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 * Write the command descriptors to transmit the given skb starting at
 * descriptor pidx with the given generation.
1222
 */
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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)
1226
{
1227
	dma_addr_t mapping, desc_mapping;
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	struct cmdQ_e *e, *e1;
	struct cmdQ_ce *ce;
1230 1231
	unsigned int i, flags, first_desc_len, desc_len,
	    nfrags = skb_shinfo(skb)->nr_frags;
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1233
	e = e1 = &q->entries[pidx];
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	ce = &q->centries[pidx];
1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273

	mapping = pci_map_single(adapter->pdev, skb->data,
				skb->len - skb->data_len, PCI_DMA_TODEVICE);

	desc_mapping = mapping;
	desc_len = skb->len - skb->data_len;

	flags = F_CMD_DATAVALID | F_CMD_SOP |
	    V_CMD_EOP(nfrags == 0 && desc_len <= SGE_TX_DESC_MAX_PLEN) |
	    V_CMD_GEN2(gen);
	first_desc_len = (desc_len <= SGE_TX_DESC_MAX_PLEN) ?
	    desc_len : SGE_TX_DESC_MAX_PLEN;
	e->addr_lo = (u32)desc_mapping;
	e->addr_hi = (u64)desc_mapping >> 32;
	e->len_gen = V_CMD_LEN(first_desc_len) | V_CMD_GEN1(gen);
	ce->skb = NULL;
	pci_unmap_len_set(ce, dma_len, 0);

	if (PAGE_SIZE > SGE_TX_DESC_MAX_PLEN &&
	    desc_len > SGE_TX_DESC_MAX_PLEN) {
		desc_mapping += first_desc_len;
		desc_len -= first_desc_len;
		e1++;
		ce++;
		if (++pidx == q->size) {
			pidx = 0;
			gen ^= 1;
			e1 = q->entries;
			ce = q->centries;
		}
		pidx = write_large_page_tx_descs(pidx, &e1, &ce, &gen,
						 &desc_mapping, &desc_len,
						 nfrags, q);

		if (likely(desc_len))
			write_tx_desc(e1, desc_mapping, desc_len, gen,
				      nfrags == 0);
	}

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	ce->skb = NULL;
	pci_unmap_addr_set(ce, dma_addr, mapping);
	pci_unmap_len_set(ce, dma_len, skb->len - skb->data_len);
1277

1278
	for (i = 0; nfrags--; i++) {
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		skb_frag_t *frag = &skb_shinfo(skb)->frags[i];
		e1++;
1281
		ce++;
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		if (++pidx == q->size) {
			pidx = 0;
			gen ^= 1;
			e1 = q->entries;
1286
			ce = q->centries;
1287 1288
		}

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		mapping = pci_map_page(adapter->pdev, frag->page,
				       frag->page_offset, frag->size,
				       PCI_DMA_TODEVICE);
1292 1293 1294 1295 1296 1297 1298 1299 1300
		desc_mapping = mapping;
		desc_len = frag->size;

		pidx = write_large_page_tx_descs(pidx, &e1, &ce, &gen,
						 &desc_mapping, &desc_len,
						 nfrags, q);
		if (likely(desc_len))
			write_tx_desc(e1, desc_mapping, desc_len, gen,
				      nfrags == 0);
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		ce->skb = NULL;
		pci_unmap_addr_set(ce, dma_addr, mapping);
		pci_unmap_len_set(ce, dma_len, frag->size);
1304
	}
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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;
1316

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	if (reclaim) {
1318 1319
		pr_debug("reclaim_completed_tx processed:%d cleaned:%d\n",
			 q->processed, q->cleaned);
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		free_cmdQ_buffers(sge, q, reclaim);
		q->cleaned += reclaim;
1322
	}
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}
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1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339 1340 1341 1342 1343 1344
/*
 * Called from tasklet. Checks the scheduler for any
 * pending skbs that can be sent.
 */
static void restart_sched(unsigned long arg)
{
	struct sge *sge = (struct sge *) arg;
	struct adapter *adapter = sge->adapter;
	struct cmdQ *q = &sge->cmdQ[0];
	struct sk_buff *skb;
	unsigned int credits, queued_skb = 0;

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

	credits = q->size - q->in_use;
	pr_debug("restart_sched credits=%d\n", credits);
	while ((skb = sched_skb(sge, NULL, credits)) != NULL) {
		unsigned int genbit, pidx, count;
	        count = 1 + skb_shinfo(skb)->nr_frags;
1345
		count += compute_large_page_tx_descs(skb);
1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367
		q->in_use += count;
		genbit = q->genbit;
		pidx = q->pidx;
		q->pidx += count;
		if (q->pidx >= q->size) {
			q->pidx -= q->size;
			q->genbit ^= 1;
		}
		write_tx_descs(adapter, skb, pidx, genbit, q);
	        credits = q->size - q->in_use;
		queued_skb = 1;
	}

	if (queued_skb) {
		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);
		}
	}
	spin_unlock(&q->lock);
}
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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
1374
 *
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 *	Process an ingress ethernet pakcet and deliver it to the stack.
1376
 */
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static int sge_rx(struct sge *sge, struct freelQ *fl, unsigned int len)
1378
{
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	struct sk_buff *skb;
	struct cpl_rx_pkt *p;
	struct adapter *adapter = sge->adapter;
1382
	struct sge_port_stats *st;
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	skb = get_packet(adapter->pdev, fl, len - sge->rx_pkt_pad,
			 sge->rx_pkt_pad, 2, SGE_RX_COPY_THRES,
			 SGE_RX_DROP_THRES);
1387 1388
	if (unlikely(!skb)) {
		sge->stats.rx_drops++;
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		return 0;
1390
	}
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	p = (struct cpl_rx_pkt *)skb->data;
	skb_pull(skb, sizeof(*p));
1394 1395 1396 1397 1398
	if (p->iff >= adapter->params.nports) {
		kfree_skb(skb);
		return 0;
	}

1399
	skb->dev = adapter->port[p->iff].dev;
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	skb->dev->last_rx = jiffies;
1401 1402 1403
	st = per_cpu_ptr(sge->port_stats[p->iff], smp_processor_id());
	st->rx_packets++;

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	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)) {
1408
		++st->rx_cso_good;
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		skb->ip_summed = CHECKSUM_UNNECESSARY;
	} else
		skb->ip_summed = CHECKSUM_NONE;

	if (unlikely(adapter->vlan_grp && p->vlan_valid)) {
1414
		st->vlan_xtract++;
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#ifdef CONFIG_CHELSIO_T1_NAPI
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1416 1417
			vlan_hwaccel_receive_skb(skb, adapter->vlan_grp,
						 ntohs(p->vlan));
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#else
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1419 1420
			vlan_hwaccel_rx(skb, adapter->vlan_grp,
					ntohs(p->vlan));
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1421 1422 1423
#endif
	} else {
#ifdef CONFIG_CHELSIO_T1_NAPI
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		netif_receive_skb(skb);
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1425
#else
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1426
		netif_rx(skb);
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1427 1428
#endif
	}
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1429
	return 0;
1430 1431 1432
}

/*
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 * Returns true if a command queue has enough available descriptors that
1434 1435
 * 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)
1437
{
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1438 1439 1440
	unsigned int r = q->processed - q->cleaned;

	return q->in_use - r < (q->size >> 1);
1441 1442 1443
}

/*
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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.
1446
 */
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1447
static void restart_tx_queues(struct sge *sge)
1448
{
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1449
	struct adapter *adap = sge->adapter;
1450

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1451 1452 1453 1454 1455 1456 1457 1458 1459
	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)) {
1460
				sge->stats.cmdQ_restarted[2]++;
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				netif_wake_queue(nd);
			}
		}
	}
}

/*
1468
 * update_tx_info is called from the interrupt handler/NAPI to return cmdQ0
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 * information.
 */
1471 1472
static unsigned int update_tx_info(struct adapter *adapter,
					  unsigned int flags,
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1473 1474 1475 1476
					  unsigned int pr0)
{
	struct sge *sge = adapter->sge;
	struct cmdQ *cmdq = &sge->cmdQ[0];
1477

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	cmdq->processed += pr0;
1479 1480 1481 1482
	if (flags & (F_FL0_ENABLE | F_FL1_ENABLE)) {
		freelQs_empty(sge);
		flags &= ~(F_FL0_ENABLE | F_FL1_ENABLE);
	}
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	if (flags & F_CMDQ0_ENABLE) {
		clear_bit(CMDQ_STAT_RUNNING, &cmdq->status);
1485

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		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);
		}
1491 1492 1493 1494
		if (sge->tx_sched)
			tasklet_hi_schedule(&sge->tx_sched->sched_tsk);

		flags &= ~F_CMDQ0_ENABLE;
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1495
	}
1496

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1497 1498
	if (unlikely(sge->stopped_tx_queues != 0))
		restart_tx_queues(sge);
1499

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	return flags;
}
1502

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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};
1515

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1516 1517 1518

	while (likely(budget_left && e->GenerationBit == q->genbit)) {
		flags |= e->Qsleeping;
1519

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		cmdq_processed[0] += e->Cmdq0CreditReturn;
		cmdq_processed[1] += e->Cmdq1CreditReturn;
1522

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1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533
		/* 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;
1534 1535
		}
		if (likely(e->DataValid)) {
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			struct freelQ *fl = &sge->freelQ[e->FreelistQid];

1538
			BUG_ON(!e->Sop || !e->Eop);
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1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554
			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++;
1555 1556

		e++;
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1557 1558 1559 1560 1561 1562 1563 1564 1565 1566
		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;
1567
		}
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1568
		--budget_left;
1569 1570
	}

1571
	flags = update_tx_info(adapter, flags, cmdq_processed[0]);
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1572
	sge->cmdQ[1].processed += cmdq_processed[1];
1573

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1574 1575 1576
	budget -= budget_left;
	return budget;
}
1577

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1578
#ifdef CONFIG_CHELSIO_T1_NAPI
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1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592
/*
 * 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};
1593

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1594 1595
	do {
		flags |= e->Qsleeping;
1596

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1597 1598
		cmdq_processed[0] += e->Cmdq0CreditReturn;
		cmdq_processed[1] += e->Cmdq1CreditReturn;
1599

S
Scott Bardone 已提交
1600 1601 1602 1603 1604
		e++;
		if (unlikely(++q->cidx == q->size)) {
			q->cidx = 0;
			q->genbit ^= 1;
			e = q->entries;
1605
		}
S
Scott Bardone 已提交
1606
		prefetch(e);
1607

S
Scott Bardone 已提交
1608 1609 1610
		if (++q->credits > SGE_RESPQ_REPLENISH_THRES) {
			writel(q->credits, adapter->regs + A_SG_RSPQUEUECREDIT);
			q->credits = 0;
1611
		}
S
Scott Bardone 已提交
1612 1613
		sge->stats.pure_rsps++;
	} while (e->GenerationBit == q->genbit && !e->DataValid);
1614

1615
	flags = update_tx_info(adapter, flags, cmdq_processed[0]);
S
Scott Bardone 已提交
1616
	sge->cmdQ[1].processed += cmdq_processed[1];
1617

S
Scott Bardone 已提交
1618
	return e->GenerationBit == q->genbit;
1619 1620 1621
}

/*
S
Scott Bardone 已提交
1622 1623 1624
 * 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.
1625
 */
S
Stephen Hemminger 已提交
1626
int t1_poll(struct net_device *dev, int *budget)
1627
{
S
Scott Bardone 已提交
1628 1629 1630
	struct adapter *adapter = dev->priv;
	int effective_budget = min(*budget, dev->quota);
	int work_done = process_responses(adapter, effective_budget);
S
Stephen Hemminger 已提交
1631

S
Scott Bardone 已提交
1632 1633
	*budget -= work_done;
	dev->quota -= work_done;
1634

S
Scott Bardone 已提交
1635 1636 1637
	if (work_done >= effective_budget)
		return 1;

1638
	spin_lock_irq(&adapter->async_lock);
S
Scott Bardone 已提交
1639 1640
	__netif_rx_complete(dev);
	writel(adapter->sge->respQ.cidx, adapter->regs + A_SG_SLEEPING);
S
Stephen Hemminger 已提交
1641 1642
	writel(adapter->slow_intr_mask | F_PL_INTR_SGE_DATA,
	       adapter->regs + A_PL_ENABLE);
1643
	spin_unlock_irq(&adapter->async_lock);
1644

S
Stephen Hemminger 已提交
1645
	return 0;
S
Scott Bardone 已提交
1646
}
1647

S
Scott Bardone 已提交
1648 1649 1650
/*
 * NAPI version of the main interrupt handler.
 */
S
Stephen Hemminger 已提交
1651
irqreturn_t t1_interrupt(int irq, void *data)
S
Scott Bardone 已提交
1652 1653
{
	struct adapter *adapter = data;
1654
	struct net_device *dev = adapter->sge->netdev;
S
Scott Bardone 已提交
1655
	struct sge *sge = adapter->sge;
1656
	u32 cause;
S
Stephen Hemminger 已提交
1657
	int handled = 0;
1658

S
Stephen Hemminger 已提交
1659 1660 1661
	cause = readl(adapter->regs + A_PL_CAUSE);
	if (cause == 0 || cause == ~0)
		return IRQ_NONE;
S
Scott Bardone 已提交
1662 1663

	spin_lock(&adapter->async_lock);
1664
	if (cause & F_PL_INTR_SGE_DATA) {
S
Stephen Hemminger 已提交
1665
		struct respQ *q = &adapter->sge->respQ;
S
Scott Bardone 已提交
1666 1667
		struct respQ_e *e = &q->entries[q->cidx];

1668 1669
		handled = 1;
		writel(F_PL_INTR_SGE_DATA, adapter->regs + A_PL_CAUSE);
S
Stephen Hemminger 已提交
1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687

		if (e->GenerationBit == q->genbit &&
		    __netif_rx_schedule_prep(dev)) {
			if (e->DataValid || process_pure_responses(adapter, e)) {
				/* mask off data IRQ */
				writel(adapter->slow_intr_mask,
				       adapter->regs + A_PL_ENABLE);
				__netif_rx_schedule(sge->netdev);
				goto unlock;
			}
			/* no data, no NAPI needed */
			netif_poll_enable(dev);

		}
		writel(q->cidx, adapter->regs + A_SG_SLEEPING);
	} else
		handled = t1_slow_intr_handler(adapter);

S
Scott Bardone 已提交
1688 1689
	if (!handled)
		sge->stats.unhandled_irqs++;
S
Stephen Hemminger 已提交
1690
unlock:
S
Scott Bardone 已提交
1691 1692 1693
	spin_unlock(&adapter->async_lock);
	return IRQ_RETVAL(handled != 0);
}
1694

S
Stephen Hemminger 已提交
1695
#else
S
Scott Bardone 已提交
1696 1697 1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710
/*
 * 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.
 */
S
Stephen Hemminger 已提交
1711
irqreturn_t t1_interrupt(int irq, void *cookie)
S
Scott Bardone 已提交
1712 1713 1714 1715 1716
{
	int work_done;
	struct respQ_e *e;
	struct adapter *adapter = cookie;
	struct respQ *Q = &adapter->sge->respQ;
1717

S
Scott Bardone 已提交
1718 1719 1720
	spin_lock(&adapter->async_lock);
	e = &Q->entries[Q->cidx];
	prefetch(e);
1721

S
Scott Bardone 已提交
1722
	writel(F_PL_INTR_SGE_DATA, adapter->regs + A_PL_CAUSE);
1723

S
Scott Bardone 已提交
1724 1725 1726 1727
	if (likely(e->GenerationBit == Q->genbit))
		work_done = process_responses(adapter, -1);
	else
		work_done = t1_slow_intr_handler(adapter);
1728

S
Scott Bardone 已提交
1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742
	/*
	 * 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);
}
S
Stephen Hemminger 已提交
1743
#endif
S
Scott Bardone 已提交
1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757

/*
 * 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.
 */
1758 1759
static int t1_sge_tx(struct sk_buff *skb, struct adapter *adapter,
		     unsigned int qid, struct net_device *dev)
S
Scott Bardone 已提交
1760 1761 1762
{
	struct sge *sge = adapter->sge;
	struct cmdQ *q = &sge->cmdQ[qid];
1763
	unsigned int credits, pidx, genbit, count, use_sched_skb = 0;
S
Scott Bardone 已提交
1764

1765 1766 1767
	if (!spin_trylock(&q->lock))
		return NETDEV_TX_LOCKED;

S
Scott Bardone 已提交
1768 1769 1770 1771 1772
	reclaim_completed_tx(sge, q);

	pidx = q->pidx;
	credits = q->size - q->in_use;
	count = 1 + skb_shinfo(skb)->nr_frags;
1773
	count += compute_large_page_tx_descs(skb);
S
Scott Bardone 已提交
1774

1775 1776 1777
	/* Ethernet packet */
	if (unlikely(credits < count)) {
		if (!netif_queue_stopped(dev)) {
S
Scott Bardone 已提交
1778 1779
			netif_stop_queue(dev);
			set_bit(dev->if_port, &sge->stopped_tx_queues);
1780
			sge->stats.cmdQ_full[2]++;
1781 1782
			CH_ERR("%s: Tx ring full while queue awake!\n",
			       adapter->name);
1783
		}
1784 1785 1786 1787 1788 1789 1790 1791 1792 1793 1794 1795 1796 1797
		spin_unlock(&q->lock);
		return NETDEV_TX_BUSY;
	}

	if (unlikely(credits - count < q->stop_thres)) {
		netif_stop_queue(dev);
		set_bit(dev->if_port, &sge->stopped_tx_queues);
		sge->stats.cmdQ_full[2]++;
	}

	/* T204 cmdQ0 skbs that are destined for a certain port have to go
	 * through the scheduler.
	 */
	if (sge->tx_sched && !qid && skb->dev) {
1798
use_sched:
1799 1800 1801 1802 1803 1804 1805 1806
		use_sched_skb = 1;
		/* Note that the scheduler might return a different skb than
		 * the one passed in.
		 */
		skb = sched_skb(sge, skb, credits);
		if (!skb) {
			spin_unlock(&q->lock);
			return NETDEV_TX_OK;
S
Scott Bardone 已提交
1807
		}
1808 1809 1810
		pidx = q->pidx;
		count = 1 + skb_shinfo(skb)->nr_frags;
		count += compute_large_page_tx_descs(skb);
S
Scott Bardone 已提交
1811
	}
1812

S
Scott Bardone 已提交
1813 1814
	q->in_use += count;
	genbit = q->genbit;
1815
	pidx = q->pidx;
S
Scott Bardone 已提交
1816 1817 1818 1819
	q->pidx += count;
	if (q->pidx >= q->size) {
		q->pidx -= q->size;
		q->genbit ^= 1;
1820
	}
S
Scott Bardone 已提交
1821
	spin_unlock(&q->lock);
1822

S
Scott Bardone 已提交
1823
	write_tx_descs(adapter, skb, pidx, genbit, q);
1824 1825 1826 1827 1828 1829 1830 1831

	/*
	 * 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.
	 */
S
Scott Bardone 已提交
1832 1833 1834 1835 1836 1837 1838 1839
	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);
		}
1840
	}
1841 1842 1843 1844 1845 1846 1847 1848

	if (use_sched_skb) {
		if (spin_trylock(&q->lock)) {
			credits = q->size - q->in_use;
			skb = NULL;
			goto use_sched;
		}
	}
1849
	return NETDEV_TX_OK;
1850 1851 1852 1853
}

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

S
Scott Bardone 已提交
1854 1855 1856 1857 1858 1859 1860 1861 1862 1863 1864 1865 1866
/*
 *	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;
}

1867 1868 1869 1870 1871 1872
/*
 * 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
Scott Bardone 已提交
1873
	struct sge *sge = adapter->sge;
1874
	struct sge_port_stats *st = per_cpu_ptr(sge->port_stats[dev->if_port], smp_processor_id());
1875
	struct cpl_tx_pkt *cpl;
1876 1877
	struct sk_buff *orig_skb = skb;
	int ret;
1878

1879 1880 1881 1882
	if (skb->protocol == htons(ETH_P_CPL5))
		goto send;

	if (skb_shinfo(skb)->gso_size) {
1883 1884 1885
		int eth_type;
		struct cpl_tx_pkt_lso *hdr;

1886
		++st->tx_tso;
S
Scott Bardone 已提交
1887

1888 1889 1890 1891 1892 1893 1894 1895 1896
		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,
1897
							  skb_shinfo(skb)->gso_size));
1898 1899
		hdr->len = htonl(skb->len - sizeof(*hdr));
		cpl = (struct cpl_tx_pkt *)hdr;
1900
	} else {
1901
		/*
1902
		 * Packets shorter than ETH_HLEN can break the MAC, drop them
S
Scott Bardone 已提交
1903 1904 1905
		 * 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.
1906
		 */
S
Scott Bardone 已提交
1907 1908
		if (unlikely(skb->len < ETH_HLEN ||
			     skb->len > dev->mtu + eth_hdr_len(skb->data))) {
1909 1910
			pr_debug("%s: packet size %d hdr %d mtu%d\n", dev->name,
				 skb->len, eth_hdr_len(skb->data), dev->mtu);
S
Scott Bardone 已提交
1911
			dev_kfree_skb_any(skb);
1912
			return NETDEV_TX_OK;
S
Scott Bardone 已提交
1913 1914 1915 1916 1917 1918 1919
		}

		/*
		 * 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.
		 */
1920 1921 1922 1923
		if (unlikely(skb_headroom(skb) < dev->hard_header_len - ETH_HLEN)) {
			pr_debug("%s: headroom %d header_len %d\n", dev->name,
				 skb_headroom(skb), dev->hard_header_len);

S
Scott Bardone 已提交
1924 1925 1926 1927 1928 1929
			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)
1930
				return NETDEV_TX_OK;
S
Scott Bardone 已提交
1931
		}
1932 1933

		if (!(adapter->flags & UDP_CSUM_CAPABLE) &&
1934
		    skb->ip_summed == CHECKSUM_PARTIAL &&
1935
		    skb->nh.iph->protocol == IPPROTO_UDP) {
1936
			if (unlikely(skb_checksum_help(skb))) {
1937
				pr_debug("%s: unable to do udp checksum\n", dev->name);
S
Scott Bardone 已提交
1938
				dev_kfree_skb_any(skb);
1939
				return NETDEV_TX_OK;
S
Scott Bardone 已提交
1940
			}
1941
		}
1942

S
Scott Bardone 已提交
1943 1944
		/* Hmmm, assuming to catch the gratious arp... and we'll use
		 * it to flush out stuck espi packets...
1945 1946
		 */
		if ((unlikely(!adapter->sge->espibug_skb[dev->if_port]))) {
1947
			if (skb->protocol == htons(ETH_P_ARP) &&
S
Scott Bardone 已提交
1948
			    skb->nh.arph->ar_op == htons(ARPOP_REQUEST)) {
1949
				adapter->sge->espibug_skb[dev->if_port] = skb;
S
Scott Bardone 已提交
1950 1951 1952 1953 1954 1955
				/* We want to re-use this skb later. We
				 * simply bump the reference count and it
				 * will not be freed...
				 */
				skb = skb_get(skb);
			}
1956
		}
S
Scott Bardone 已提交
1957 1958

		cpl = (struct cpl_tx_pkt *)__skb_push(skb, sizeof(*cpl));
1959 1960
		cpl->opcode = CPL_TX_PKT;
		cpl->ip_csum_dis = 1;    /* SW calculates IP csum */
1961
		cpl->l4_csum_dis = skb->ip_summed == CHECKSUM_PARTIAL ? 0 : 1;
1962
		/* the length field isn't used so don't bother setting it */
S
Scott Bardone 已提交
1963

1964
		st->tx_cso += (skb->ip_summed == CHECKSUM_PARTIAL);
1965 1966 1967 1968 1969 1970 1971
	}
	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));
S
Scott Bardone 已提交
1972
		st->vlan_insert++;
1973 1974 1975 1976
	} else
#endif
		cpl->vlan_valid = 0;

1977
send:
1978
	st->tx_packets++;
1979
	dev->trans_start = jiffies;
1980 1981 1982 1983 1984 1985
	ret = t1_sge_tx(skb, adapter, 0, dev);

	/* If transmit busy, and we reallocated skb's due to headroom limit,
	 * then silently discard to avoid leak.
	 */
	if (unlikely(ret != NETDEV_TX_OK && skb != orig_skb)) {
1986
		dev_kfree_skb_any(skb);
1987
		ret = NETDEV_TX_OK;
1988
	}
1989
	return ret;
S
Scott Bardone 已提交
1990
}
1991

S
Scott Bardone 已提交
1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004
/*
 * 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;
2005

S
Scott Bardone 已提交
2006
		reclaim_completed_tx(sge, q);
2007 2008 2009
		if (i == 0 && q->in_use) {    /* flush pending credits */
			writel(F_CMDQ0_ENABLE, sge->adapter->regs + A_SG_DOORBELL);
		}
S
Scott Bardone 已提交
2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022
		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->fixed_intrtimer = p->rx_coalesce_usecs *
		core_ticks_per_usec(sge->adapter);
	writel(sge->fixed_intrtimer, sge->adapter->regs + A_SG_INTRTIMER);
2023 2024 2025
	return 0;
}

S
Scott Bardone 已提交
2026 2027 2028 2029 2030
/*
 * 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)
2031
{
S
Scott Bardone 已提交
2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048
	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;
}
2049

S
Scott Bardone 已提交
2050 2051 2052 2053 2054
/*
 * Disables the DMA engine.
 */
void t1_sge_stop(struct sge *sge)
{
2055
	int i;
S
Scott Bardone 已提交
2056
	writel(0, sge->adapter->regs + A_SG_CONTROL);
2057 2058
	readl(sge->adapter->regs + A_SG_CONTROL); /* flush */

S
Scott Bardone 已提交
2059 2060
	if (is_T2(sge->adapter))
		del_timer_sync(&sge->espibug_timer);
2061

S
Scott Bardone 已提交
2062
	del_timer_sync(&sge->tx_reclaim_timer);
2063 2064 2065 2066 2067 2068
	if (sge->tx_sched)
		tx_sched_stop(sge);

	for (i = 0; i < MAX_NPORTS; i++)
		if (sge->espibug_skb[i])
			kfree_skb(sge->espibug_skb[i]);
2069 2070
}

S
Scott Bardone 已提交
2071 2072 2073 2074
/*
 * Enables the DMA engine.
 */
void t1_sge_start(struct sge *sge)
2075
{
S
Scott Bardone 已提交
2076 2077 2078 2079 2080
	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);
2081
	readl(sge->adapter->regs + A_SG_CONTROL); /* flush */
S
Scott Bardone 已提交
2082 2083 2084

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

2085
	if (is_T2(sge->adapter))
S
Scott Bardone 已提交
2086 2087 2088 2089 2090 2091
		mod_timer(&sge->espibug_timer, jiffies + sge->espibug_timeout);
}

/*
 * Callback for the T2 ESPI 'stuck packet feature' workaorund
 */
2092
static void espibug_workaround_t204(unsigned long data)
S
Scott Bardone 已提交
2093 2094
{
	struct adapter *adapter = (struct adapter *)data;
2095
	struct sge *sge = adapter->sge;
2096 2097
	unsigned int nports = adapter->params.nports;
	u32 seop[MAX_NPORTS];
2098

2099 2100
	if (adapter->open_device_map & PORT_MASK) {
		int i;
2101 2102

		if (t1_espi_get_mon_t204(adapter, &(seop[0]), 0) < 0)
2103
			return;
2104

2105
		for (i = 0; i < nports; i++) {
2106 2107 2108 2109 2110 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122
			struct sk_buff *skb = sge->espibug_skb[i];

			if (!netif_running(adapter->port[i].dev) ||
			    netif_queue_stopped(adapter->port[i].dev) ||
			    !seop[i] || ((seop[i] & 0xfff) != 0) || !skb)
				continue;

			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;
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			}
2124 2125 2126 2127 2128 2129

			/* 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[i].dev);
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		}
	}
	mod_timer(&sge->espibug_timer, jiffies + sge->espibug_timeout);
2133 2134
}

2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164
static void espibug_workaround(unsigned long data)
{
	struct adapter *adapter = (struct adapter *)data;
	struct sge *sge = adapter->sge;

	if (netif_running(adapter->port[0].dev)) {
	        struct sk_buff *skb = sge->espibug_skb[0];
	        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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/*
 * Creates a t1_sge structure and returns suggested resource parameters.
 */
struct sge * __devinit t1_sge_create(struct adapter *adapter,
				     struct sge_params *p)
{
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Stephen Hemminger 已提交
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	struct sge *sge = kzalloc(sizeof(*sge), GFP_KERNEL);
2172
	int i;
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	if (!sge)
		return NULL;

	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;

2182 2183 2184 2185 2186 2187
	for_each_port(adapter, i) {
		sge->port_stats[i] = alloc_percpu(struct sge_port_stats);
		if (!sge->port_stats[i])
			goto nomem_port;
	}

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	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);
2194 2195 2196 2197 2198 2199 2200

		if (adapter->params.nports > 1) {
			tx_sched_init(sge);
			sge->espibug_timer.function = espibug_workaround_t204;
		} else {
			sge->espibug_timer.function = espibug_workaround;
		}
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		sge->espibug_timer.data = (unsigned long)sge->adapter;
2202

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		sge->espibug_timeout = 1;
2204 2205 2206
		/* for T204, every 10ms */
		if (adapter->params.nports > 1)
			sge->espibug_timeout = HZ/100;
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	}
2208

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	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;
2214 2215 2216 2217 2218 2219 2220 2221
	if (sge->tx_sched) {
		if (board_info(sge->adapter)->board == CHBT_BOARD_CHT204)
			p->rx_coalesce_usecs = 15;
		else
			p->rx_coalesce_usecs = 50;
	} else
		p->rx_coalesce_usecs = 50;

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	p->coalesce_enable = 0;
	p->sample_interval_usecs = 0;

	return sge;
2226 2227 2228 2229 2230 2231 2232 2233
nomem_port:
	while (i >= 0) {
		free_percpu(sge->port_stats[i]);
		--i;
	}
	kfree(sge);
	return NULL;

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}