pch_can.c 32.7 KB
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/*
 * Copyright (C) 1999 - 2010 Intel Corporation.
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 * Copyright (C) 2010 OKI SEMICONDUCTOR CO., LTD.
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 *
 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; version 2 of the License.
 *
 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
 *
 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307, USA.
 */

#include <linux/interrupt.h>
#include <linux/delay.h>
#include <linux/io.h>
#include <linux/module.h>
#include <linux/sched.h>
#include <linux/pci.h>
#include <linux/init.h>
#include <linux/kernel.h>
#include <linux/types.h>
#include <linux/errno.h>
#include <linux/netdevice.h>
#include <linux/skbuff.h>
#include <linux/can.h>
#include <linux/can/dev.h>
#include <linux/can/error.h>

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#define PCH_CTRL_INIT		BIT(0) /* The INIT bit of CANCONT register. */
#define PCH_CTRL_IE		BIT(1) /* The IE bit of CAN control register */
#define PCH_CTRL_IE_SIE_EIE	(BIT(3) | BIT(2) | BIT(1))
#define PCH_CTRL_CCE		BIT(6)
#define PCH_CTRL_OPT		BIT(7) /* The OPT bit of CANCONT register. */
#define PCH_OPT_SILENT		BIT(3) /* The Silent bit of CANOPT reg. */
#define PCH_OPT_LBACK		BIT(4) /* The LoopBack bit of CANOPT reg. */

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#define PCH_CMASK_RX_TX_SET	0x00f3
#define PCH_CMASK_RX_TX_GET	0x0073
#define PCH_CMASK_ALL		0xff
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#define PCH_CMASK_NEWDAT	BIT(2)
#define PCH_CMASK_CLRINTPND	BIT(3)
#define PCH_CMASK_CTRL		BIT(4)
#define PCH_CMASK_ARB		BIT(5)
#define PCH_CMASK_MASK		BIT(6)
#define PCH_CMASK_RDWR		BIT(7)
#define PCH_IF_MCONT_NEWDAT	BIT(15)
#define PCH_IF_MCONT_MSGLOST	BIT(14)
#define PCH_IF_MCONT_INTPND	BIT(13)
#define PCH_IF_MCONT_UMASK	BIT(12)
#define PCH_IF_MCONT_TXIE	BIT(11)
#define PCH_IF_MCONT_RXIE	BIT(10)
#define PCH_IF_MCONT_RMTEN	BIT(9)
#define PCH_IF_MCONT_TXRQXT	BIT(8)
#define PCH_IF_MCONT_EOB	BIT(7)
#define PCH_IF_MCONT_DLC	(BIT(0) | BIT(1) | BIT(2) | BIT(3))
#define PCH_MASK2_MDIR_MXTD	(BIT(14) | BIT(15))
#define PCH_ID2_DIR		BIT(13)
#define PCH_ID2_XTD		BIT(14)
#define PCH_ID_MSGVAL		BIT(15)
#define PCH_IF_CREQ_BUSY	BIT(15)
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#define PCH_STATUS_INT		0x8000
#define PCH_REC			0x00007f00
#define PCH_TEC			0x000000ff
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#define PCH_TX_OK		BIT(3)
#define PCH_RX_OK		BIT(4)
#define PCH_EPASSIV		BIT(5)
#define PCH_EWARN		BIT(6)
#define PCH_BUS_OFF		BIT(7)
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/* bit position of certain controller bits. */
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#define PCH_BIT_BRP_SHIFT	0
#define PCH_BIT_SJW_SHIFT	6
#define PCH_BIT_TSEG1_SHIFT	8
#define PCH_BIT_TSEG2_SHIFT	12
#define PCH_BIT_BRPE_BRPE_SHIFT	6

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#define PCH_MSK_BITT_BRP	0x3f
#define PCH_MSK_BRPE_BRPE	0x3c0
#define PCH_MSK_CTRL_IE_SIE_EIE	0x07
#define PCH_COUNTER_LIMIT	10
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#define PCH_CAN_CLK		50000000	/* 50MHz */

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/*
 * Define the number of message object.
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 * PCH CAN communications are done via Message RAM.
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 * The Message RAM consists of 32 message objects.
 */
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#define PCH_RX_OBJ_NUM		26
#define PCH_TX_OBJ_NUM		6
#define PCH_RX_OBJ_START	1
#define PCH_RX_OBJ_END		PCH_RX_OBJ_NUM
#define PCH_TX_OBJ_START	(PCH_RX_OBJ_END + 1)
#define PCH_TX_OBJ_END		(PCH_RX_OBJ_NUM + PCH_TX_OBJ_NUM)
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#define PCH_FIFO_THRESH		16

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/* TxRqst2 show status of MsgObjNo.17~32 */
#define PCH_TREQ2_TX_MASK	(((1 << PCH_TX_OBJ_NUM) - 1) <<\
							(PCH_RX_OBJ_END - 16))

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enum pch_ifreg {
	PCH_RX_IFREG,
	PCH_TX_IFREG,
};

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enum pch_can_err {
	PCH_STUF_ERR = 1,
	PCH_FORM_ERR,
	PCH_ACK_ERR,
	PCH_BIT1_ERR,
	PCH_BIT0_ERR,
	PCH_CRC_ERR,
	PCH_LEC_ALL,
};

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enum pch_can_mode {
	PCH_CAN_ENABLE,
	PCH_CAN_DISABLE,
	PCH_CAN_ALL,
	PCH_CAN_NONE,
	PCH_CAN_STOP,
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	PCH_CAN_RUN,
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};

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struct pch_can_if_regs {
	u32 creq;
	u32 cmask;
	u32 mask1;
	u32 mask2;
	u32 id1;
	u32 id2;
	u32 mcont;
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	u32 data[4];
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	u32 rsv[13];
};

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struct pch_can_regs {
	u32 cont;
	u32 stat;
	u32 errc;
	u32 bitt;
	u32 intr;
	u32 opt;
	u32 brpe;
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	u32 reserve;
	struct pch_can_if_regs ifregs[2]; /* [0]=if1  [1]=if2 */
	u32 reserve1[8];
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	u32 treq1;
	u32 treq2;
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	u32 reserve2[6];
	u32 data1;
	u32 data2;
	u32 reserve3[6];
	u32 canipend1;
	u32 canipend2;
	u32 reserve4[6];
	u32 canmval1;
	u32 canmval2;
	u32 reserve5[37];
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	u32 srst;
};

struct pch_can_priv {
	struct can_priv can;
	struct pci_dev *dev;
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	u32 tx_enable[PCH_TX_OBJ_END];
	u32 rx_enable[PCH_TX_OBJ_END];
	u32 rx_link[PCH_TX_OBJ_END];
	u32 int_enables;
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	struct net_device *ndev;
	struct pch_can_regs __iomem *regs;
	struct napi_struct napi;
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	int tx_obj;	/* Point next Tx Obj index */
	int use_msi;
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};

static struct can_bittiming_const pch_can_bittiming_const = {
	.name = KBUILD_MODNAME,
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	.tseg1_min = 2,
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	.tseg1_max = 16,
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	.tseg2_min = 1,
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	.tseg2_max = 8,
	.sjw_max = 4,
	.brp_min = 1,
	.brp_max = 1024, /* 6bit + extended 4bit */
	.brp_inc = 1,
};

static DEFINE_PCI_DEVICE_TABLE(pch_pci_tbl) = {
	{PCI_VENDOR_ID_INTEL, 0x8818, PCI_ANY_ID, PCI_ANY_ID,},
	{0,}
};
MODULE_DEVICE_TABLE(pci, pch_pci_tbl);

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static inline void pch_can_bit_set(void __iomem *addr, u32 mask)
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{
	iowrite32(ioread32(addr) | mask, addr);
}

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static inline void pch_can_bit_clear(void __iomem *addr, u32 mask)
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{
	iowrite32(ioread32(addr) & ~mask, addr);
}

static void pch_can_set_run_mode(struct pch_can_priv *priv,
				 enum pch_can_mode mode)
{
	switch (mode) {
	case PCH_CAN_RUN:
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		pch_can_bit_clear(&priv->regs->cont, PCH_CTRL_INIT);
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		break;

	case PCH_CAN_STOP:
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		pch_can_bit_set(&priv->regs->cont, PCH_CTRL_INIT);
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		break;

	default:
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		netdev_err(priv->ndev, "%s -> Invalid Mode.\n", __func__);
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		break;
	}
}

static void pch_can_set_optmode(struct pch_can_priv *priv)
{
	u32 reg_val = ioread32(&priv->regs->opt);

	if (priv->can.ctrlmode & CAN_CTRLMODE_LISTENONLY)
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		reg_val |= PCH_OPT_SILENT;
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	if (priv->can.ctrlmode & CAN_CTRLMODE_LOOPBACK)
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		reg_val |= PCH_OPT_LBACK;
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	pch_can_bit_set(&priv->regs->cont, PCH_CTRL_OPT);
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	iowrite32(reg_val, &priv->regs->opt);
}

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static void pch_can_rw_msg_obj(void __iomem *creq_addr, u32 num)
{
	int counter = PCH_COUNTER_LIMIT;
	u32 ifx_creq;

	iowrite32(num, creq_addr);
	while (counter) {
		ifx_creq = ioread32(creq_addr) & PCH_IF_CREQ_BUSY;
		if (!ifx_creq)
			break;
		counter--;
		udelay(1);
	}
	if (!counter)
		pr_err("%s:IF1 BUSY Flag is set forever.\n", __func__);
}

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static void pch_can_set_int_enables(struct pch_can_priv *priv,
				    enum pch_can_mode interrupt_no)
{
	switch (interrupt_no) {
	case PCH_CAN_DISABLE:
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		pch_can_bit_clear(&priv->regs->cont, PCH_CTRL_IE);
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		break;

	case PCH_CAN_ALL:
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		pch_can_bit_set(&priv->regs->cont, PCH_CTRL_IE_SIE_EIE);
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		break;

	case PCH_CAN_NONE:
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		pch_can_bit_clear(&priv->regs->cont, PCH_CTRL_IE_SIE_EIE);
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		break;

	default:
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		netdev_err(priv->ndev, "Invalid interrupt number.\n");
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		break;
	}
}

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static void pch_can_set_rxtx(struct pch_can_priv *priv, u32 buff_num,
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			     int set, enum pch_ifreg dir)
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{
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	u32 ie;

	if (dir)
		ie = PCH_IF_MCONT_TXIE;
	else
		ie = PCH_IF_MCONT_RXIE;
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	/* Reading the Msg buffer from Message RAM to IF1/2 registers. */
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	iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[dir].cmask);
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	pch_can_rw_msg_obj(&priv->regs->ifregs[dir].creq, buff_num);
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	/* Setting the IF1/2MASK1 register to access MsgVal and RxIE bits */
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	iowrite32(PCH_CMASK_RDWR | PCH_CMASK_ARB | PCH_CMASK_CTRL,
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		  &priv->regs->ifregs[dir].cmask);
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	if (set) {
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		/* Setting the MsgVal and RxIE/TxIE bits */
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		pch_can_bit_set(&priv->regs->ifregs[dir].mcont, ie);
		pch_can_bit_set(&priv->regs->ifregs[dir].id2, PCH_ID_MSGVAL);
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	} else {
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		/* Clearing the MsgVal and RxIE/TxIE bits */
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		pch_can_bit_clear(&priv->regs->ifregs[dir].mcont, ie);
		pch_can_bit_clear(&priv->regs->ifregs[dir].id2, PCH_ID_MSGVAL);
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	}

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	pch_can_rw_msg_obj(&priv->regs->ifregs[dir].creq, buff_num);
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}

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static void pch_can_set_rx_all(struct pch_can_priv *priv, int set)
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{
	int i;

	/* Traversing to obtain the object configured as receivers. */
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	for (i = PCH_RX_OBJ_START; i <= PCH_RX_OBJ_END; i++)
		pch_can_set_rxtx(priv, i, set, PCH_RX_IFREG);
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}

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static void pch_can_set_tx_all(struct pch_can_priv *priv, int set)
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{
	int i;

	/* Traversing to obtain the object configured as transmit object. */
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	for (i = PCH_TX_OBJ_START; i <= PCH_TX_OBJ_END; i++)
		pch_can_set_rxtx(priv, i, set, PCH_TX_IFREG);
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}

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static u32 pch_can_int_pending(struct pch_can_priv *priv)
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{
	return ioread32(&priv->regs->intr) & 0xffff;
}

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static void pch_can_clear_if_buffers(struct pch_can_priv *priv)
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{
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	int i; /* Msg Obj ID (1~32) */
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	for (i = PCH_RX_OBJ_START; i <= PCH_TX_OBJ_END; i++) {
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		iowrite32(PCH_CMASK_RX_TX_SET, &priv->regs->ifregs[0].cmask);
		iowrite32(0xffff, &priv->regs->ifregs[0].mask1);
		iowrite32(0xffff, &priv->regs->ifregs[0].mask2);
		iowrite32(0x0, &priv->regs->ifregs[0].id1);
		iowrite32(0x0, &priv->regs->ifregs[0].id2);
		iowrite32(0x0, &priv->regs->ifregs[0].mcont);
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		iowrite32(0x0, &priv->regs->ifregs[0].data[0]);
		iowrite32(0x0, &priv->regs->ifregs[0].data[1]);
		iowrite32(0x0, &priv->regs->ifregs[0].data[2]);
		iowrite32(0x0, &priv->regs->ifregs[0].data[3]);
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		iowrite32(PCH_CMASK_RDWR | PCH_CMASK_MASK |
			  PCH_CMASK_ARB | PCH_CMASK_CTRL,
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			  &priv->regs->ifregs[0].cmask);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, i);
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	}
}

static void pch_can_config_rx_tx_buffers(struct pch_can_priv *priv)
{
	int i;

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	for (i = PCH_RX_OBJ_START; i <= PCH_RX_OBJ_END; i++) {
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		iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[0].cmask);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, i);
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		iowrite32(0x0, &priv->regs->ifregs[0].id1);
		iowrite32(0x0, &priv->regs->ifregs[0].id2);
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		pch_can_bit_set(&priv->regs->ifregs[0].mcont,
				PCH_IF_MCONT_UMASK);
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		/* In case FIFO mode, Last EoB of Rx Obj must be 1 */
		if (i == PCH_RX_OBJ_END)
			pch_can_bit_set(&priv->regs->ifregs[0].mcont,
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					PCH_IF_MCONT_EOB);
		else
			pch_can_bit_clear(&priv->regs->ifregs[0].mcont,
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					  PCH_IF_MCONT_EOB);
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		iowrite32(0, &priv->regs->ifregs[0].mask1);
		pch_can_bit_clear(&priv->regs->ifregs[0].mask2,
				  0x1fff | PCH_MASK2_MDIR_MXTD);
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		/* Setting CMASK for writing */
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		iowrite32(PCH_CMASK_RDWR | PCH_CMASK_MASK | PCH_CMASK_ARB |
			  PCH_CMASK_CTRL, &priv->regs->ifregs[0].cmask);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, i);
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	}
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	for (i = PCH_TX_OBJ_START; i <= PCH_TX_OBJ_END; i++) {
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		iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[1].cmask);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[1].creq, i);
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		/* Resetting DIR bit for reception */
		iowrite32(0x0, &priv->regs->ifregs[1].id1);
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		iowrite32(PCH_ID2_DIR, &priv->regs->ifregs[1].id2);
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		/* Setting EOB bit for transmitter */
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		iowrite32(PCH_IF_MCONT_EOB | PCH_IF_MCONT_UMASK,
			  &priv->regs->ifregs[1].mcont);
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		iowrite32(0, &priv->regs->ifregs[1].mask1);
		pch_can_bit_clear(&priv->regs->ifregs[1].mask2, 0x1fff);

		/* Setting CMASK for writing */
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		iowrite32(PCH_CMASK_RDWR | PCH_CMASK_MASK | PCH_CMASK_ARB |
			  PCH_CMASK_CTRL, &priv->regs->ifregs[1].cmask);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[1].creq, i);
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	}
}

static void pch_can_init(struct pch_can_priv *priv)
{
	/* Stopping the Can device. */
	pch_can_set_run_mode(priv, PCH_CAN_STOP);

	/* Clearing all the message object buffers. */
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	pch_can_clear_if_buffers(priv);
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	/* Configuring the respective message object as either rx/tx object. */
	pch_can_config_rx_tx_buffers(priv);

	/* Enabling the interrupts. */
	pch_can_set_int_enables(priv, PCH_CAN_ALL);
}

static void pch_can_release(struct pch_can_priv *priv)
{
	/* Stooping the CAN device. */
	pch_can_set_run_mode(priv, PCH_CAN_STOP);

	/* Disabling the interrupts. */
	pch_can_set_int_enables(priv, PCH_CAN_NONE);

	/* Disabling all the receive object. */
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	pch_can_set_rx_all(priv, 0);
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	/* Disabling all the transmit object. */
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	pch_can_set_tx_all(priv, 0);
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}

/* This function clears interrupt(s) from the CAN device. */
static void pch_can_int_clr(struct pch_can_priv *priv, u32 mask)
{
	/* Clear interrupt for transmit object */
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	if ((mask >= PCH_RX_OBJ_START) && (mask <= PCH_RX_OBJ_END)) {
		/* Setting CMASK for clearing the reception interrupts. */
		iowrite32(PCH_CMASK_RDWR | PCH_CMASK_CTRL | PCH_CMASK_ARB,
			  &priv->regs->ifregs[0].cmask);

		/* Clearing the Dir bit. */
		pch_can_bit_clear(&priv->regs->ifregs[0].id2, PCH_ID2_DIR);

		/* Clearing NewDat & IntPnd */
		pch_can_bit_clear(&priv->regs->ifregs[0].mcont,
				  PCH_IF_MCONT_NEWDAT | PCH_IF_MCONT_INTPND);

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		pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, mask);
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	} else if ((mask >= PCH_TX_OBJ_START) && (mask <= PCH_TX_OBJ_END)) {
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		/*
		 * Setting CMASK for clearing interrupts for frame transmission.
		 */
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		iowrite32(PCH_CMASK_RDWR | PCH_CMASK_CTRL | PCH_CMASK_ARB,
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			  &priv->regs->ifregs[1].cmask);
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		/* Resetting the ID registers. */
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		pch_can_bit_set(&priv->regs->ifregs[1].id2,
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			       PCH_ID2_DIR | (0x7ff << 2));
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		iowrite32(0x0, &priv->regs->ifregs[1].id1);
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		/* Claring NewDat, TxRqst & IntPnd */
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		pch_can_bit_clear(&priv->regs->ifregs[1].mcont,
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				  PCH_IF_MCONT_NEWDAT | PCH_IF_MCONT_INTPND |
				  PCH_IF_MCONT_TXRQXT);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[1].creq, mask);
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	}
}

static void pch_can_reset(struct pch_can_priv *priv)
{
	/* write to sw reset register */
	iowrite32(1, &priv->regs->srst);
	iowrite32(0, &priv->regs->srst);
}

static void pch_can_error(struct net_device *ndev, u32 status)
{
	struct sk_buff *skb;
	struct pch_can_priv *priv = netdev_priv(ndev);
	struct can_frame *cf;
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	u32 errc, lec;
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	struct net_device_stats *stats = &(priv->ndev->stats);
	enum can_state state = priv->can.state;

	skb = alloc_can_err_skb(ndev, &cf);
	if (!skb)
		return;

	if (status & PCH_BUS_OFF) {
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		pch_can_set_tx_all(priv, 0);
		pch_can_set_rx_all(priv, 0);
507 508 509 510 511
		state = CAN_STATE_BUS_OFF;
		cf->can_id |= CAN_ERR_BUSOFF;
		can_bus_off(ndev);
	}

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	errc = ioread32(&priv->regs->errc);
513 514 515 516 517
	/* Warning interrupt. */
	if (status & PCH_EWARN) {
		state = CAN_STATE_ERROR_WARNING;
		priv->can.can_stats.error_warning++;
		cf->can_id |= CAN_ERR_CRTL;
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		if (((errc & PCH_REC) >> 8) > 96)
519
			cf->data[1] |= CAN_ERR_CRTL_RX_WARNING;
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		if ((errc & PCH_TEC) > 96)
521
			cf->data[1] |= CAN_ERR_CRTL_TX_WARNING;
522
		netdev_dbg(ndev,
523 524 525 526 527 528 529
			"%s -> Error Counter is more than 96.\n", __func__);
	}
	/* Error passive interrupt. */
	if (status & PCH_EPASSIV) {
		priv->can.can_stats.error_passive++;
		state = CAN_STATE_ERROR_PASSIVE;
		cf->can_id |= CAN_ERR_CRTL;
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		if (((errc & PCH_REC) >> 8) > 127)
531
			cf->data[1] |= CAN_ERR_CRTL_RX_PASSIVE;
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		if ((errc & PCH_TEC) > 127)
533
			cf->data[1] |= CAN_ERR_CRTL_TX_PASSIVE;
534
		netdev_dbg(ndev,
535 536 537
			"%s -> CAN controller is ERROR PASSIVE .\n", __func__);
	}

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	lec = status & PCH_LEC_ALL;
	switch (lec) {
	case PCH_STUF_ERR:
		cf->data[2] |= CAN_ERR_PROT_STUFF;
542 543
		priv->can.can_stats.bus_error++;
		stats->rx_errors++;
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		break;
	case PCH_FORM_ERR:
		cf->data[2] |= CAN_ERR_PROT_FORM;
		priv->can.can_stats.bus_error++;
		stats->rx_errors++;
		break;
	case PCH_ACK_ERR:
		cf->can_id |= CAN_ERR_ACK;
		priv->can.can_stats.bus_error++;
		stats->rx_errors++;
		break;
	case PCH_BIT1_ERR:
	case PCH_BIT0_ERR:
		cf->data[2] |= CAN_ERR_PROT_BIT;
		priv->can.can_stats.bus_error++;
		stats->rx_errors++;
		break;
	case PCH_CRC_ERR:
		cf->data[2] |= CAN_ERR_PROT_LOC_CRC_SEQ |
			       CAN_ERR_PROT_LOC_CRC_DEL;
		priv->can.can_stats.bus_error++;
		stats->rx_errors++;
		break;
	case PCH_LEC_ALL: /* Written by CPU. No error status */
		break;
569 570
	}

571 572 573
	cf->data[6] = errc & PCH_TEC;
	cf->data[7] = (errc & PCH_REC) >> 8;

574
	priv->can.state = state;
575
	netif_receive_skb(skb);
576 577 578 579 580 581 582 583 584 585

	stats->rx_packets++;
	stats->rx_bytes += cf->can_dlc;
}

static irqreturn_t pch_can_interrupt(int irq, void *dev_id)
{
	struct net_device *ndev = (struct net_device *)dev_id;
	struct pch_can_priv *priv = netdev_priv(ndev);

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	if (!pch_can_int_pending(priv))
		return IRQ_NONE;

589 590 591 592 593
	pch_can_set_int_enables(priv, PCH_CAN_NONE);
	napi_schedule(&priv->napi);
	return IRQ_HANDLED;
}

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static void pch_fifo_thresh(struct pch_can_priv *priv, int obj_id)
{
	if (obj_id < PCH_FIFO_THRESH) {
		iowrite32(PCH_CMASK_RDWR | PCH_CMASK_CTRL |
			  PCH_CMASK_ARB, &priv->regs->ifregs[0].cmask);

		/* Clearing the Dir bit. */
		pch_can_bit_clear(&priv->regs->ifregs[0].id2, PCH_ID2_DIR);

		/* Clearing NewDat & IntPnd */
		pch_can_bit_clear(&priv->regs->ifregs[0].mcont,
				  PCH_IF_MCONT_INTPND);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, obj_id);
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	} else if (obj_id > PCH_FIFO_THRESH) {
		pch_can_int_clr(priv, obj_id);
	} else if (obj_id == PCH_FIFO_THRESH) {
		int cnt;
		for (cnt = 0; cnt < PCH_FIFO_THRESH; cnt++)
			pch_can_int_clr(priv, cnt + 1);
	}
}

static void pch_can_rx_msg_lost(struct net_device *ndev, int obj_id)
{
	struct pch_can_priv *priv = netdev_priv(ndev);
	struct net_device_stats *stats = &(priv->ndev->stats);
	struct sk_buff *skb;
	struct can_frame *cf;

	netdev_dbg(priv->ndev, "Msg Obj is overwritten.\n");
	pch_can_bit_clear(&priv->regs->ifregs[0].mcont,
			  PCH_IF_MCONT_MSGLOST);
	iowrite32(PCH_CMASK_RDWR | PCH_CMASK_CTRL,
		  &priv->regs->ifregs[0].cmask);
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	pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, obj_id);
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	skb = alloc_can_err_skb(ndev, &cf);
	if (!skb)
		return;

	cf->can_id |= CAN_ERR_CRTL;
	cf->data[1] = CAN_ERR_CRTL_RX_OVERFLOW;
	stats->rx_over_errors++;
	stats->rx_errors++;

	netif_receive_skb(skb);
}

static int pch_can_rx_normal(struct net_device *ndev, u32 obj_num, int quota)
643 644 645 646 647 648 649 650
{
	u32 reg;
	canid_t id;
	int rcv_pkts = 0;
	struct sk_buff *skb;
	struct can_frame *cf;
	struct pch_can_priv *priv = netdev_priv(ndev);
	struct net_device_stats *stats = &(priv->ndev->stats);
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	int i;
	u32 id2;
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	u16 data_reg;
654

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	do {
		/* Reading the messsage object from the Message RAM */
		iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[0].cmask);
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		pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, obj_num);
659

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		/* Reading the MCONT register. */
		reg = ioread32(&priv->regs->ifregs[0].mcont);

		if (reg & PCH_IF_MCONT_EOB)
			break;
665 666

		/* If MsgLost bit set. */
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		if (reg & PCH_IF_MCONT_MSGLOST) {
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			pch_can_rx_msg_lost(ndev, obj_num);
669
			rcv_pkts++;
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			quota--;
			obj_num++;
			continue;
		} else if (!(reg & PCH_IF_MCONT_NEWDAT)) {
			obj_num++;
			continue;
676 677 678
		}

		skb = alloc_can_skb(priv->ndev, &cf);
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		if (!skb) {
			netdev_err(ndev, "alloc_can_skb Failed\n");
			return rcv_pkts;
		}
683 684

		/* Get Received data */
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		id2 = ioread32(&priv->regs->ifregs[0].id2);
		if (id2 & PCH_ID2_XTD) {
687
			id = (ioread32(&priv->regs->ifregs[0].id1) & 0xffff);
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			id |= (((id2) & 0x1fff) << 16);
			cf->can_id = id | CAN_EFF_FLAG;
690
		} else {
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			id = (id2 >> 2) & CAN_SFF_MASK;
			cf->can_id = id;
693 694
		}

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		if (id2 & PCH_ID2_DIR)
696
			cf->can_id |= CAN_RTR_FLAG;
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		cf->can_dlc = get_can_dlc((ioread32(&priv->regs->
						    ifregs[0].mcont)) & 0xF);
700

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		for (i = 0; i < cf->can_dlc; i += 2) {
			data_reg = ioread16(&priv->regs->ifregs[0].data[i / 2]);
			cf->data[i] = data_reg;
			cf->data[i + 1] = data_reg >> 8;
705 706 707 708 709
		}

		netif_receive_skb(skb);
		rcv_pkts++;
		stats->rx_packets++;
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		quota--;
711 712
		stats->rx_bytes += cf->can_dlc;

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		pch_fifo_thresh(priv, obj_num);
		obj_num++;
	} while (quota > 0);
716 717 718

	return rcv_pkts;
}
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static void pch_can_tx_complete(struct net_device *ndev, u32 int_stat)
721 722 723 724
{
	struct pch_can_priv *priv = netdev_priv(ndev);
	struct net_device_stats *stats = &(priv->ndev->stats);
	u32 dlc;
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	can_get_echo_skb(ndev, int_stat - PCH_RX_OBJ_END - 1);
	iowrite32(PCH_CMASK_RX_TX_GET | PCH_CMASK_CLRINTPND,
		  &priv->regs->ifregs[1].cmask);
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	pch_can_rw_msg_obj(&priv->regs->ifregs[1].creq, int_stat);
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	dlc = get_can_dlc(ioread32(&priv->regs->ifregs[1].mcont) &
			  PCH_IF_MCONT_DLC);
	stats->tx_bytes += dlc;
	stats->tx_packets++;
	if (int_stat == PCH_TX_OBJ_END)
		netif_wake_queue(ndev);
}

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static int pch_can_poll(struct napi_struct *napi, int quota)
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{
	struct net_device *ndev = napi->dev;
	struct pch_can_priv *priv = netdev_priv(ndev);
742 743
	u32 int_stat;
	u32 reg_stat;
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	int quota_save = quota;
745 746 747

	int_stat = pch_can_int_pending(priv);
	if (!int_stat)
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		goto end;
749

750
	if (int_stat == PCH_STATUS_INT) {
751 752
		reg_stat = ioread32(&priv->regs->stat);

753 754 755 756 757
		if ((reg_stat & (PCH_BUS_OFF | PCH_LEC_ALL)) &&
		   ((reg_stat & PCH_LEC_ALL) != PCH_LEC_ALL)) {
			pch_can_error(ndev, reg_stat);
			quota--;
		}
758

759 760 761
		if (reg_stat & (PCH_TX_OK | PCH_RX_OK))
			pch_can_bit_clear(&priv->regs->stat,
					  reg_stat & (PCH_TX_OK | PCH_RX_OK));
762 763 764 765

		int_stat = pch_can_int_pending(priv);
	}

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	if (quota == 0)
		goto end;

769
	if ((int_stat >= PCH_RX_OBJ_START) && (int_stat <= PCH_RX_OBJ_END)) {
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		quota -= pch_can_rx_normal(ndev, int_stat, quota);
771 772 773
	} else if ((int_stat >= PCH_TX_OBJ_START) &&
		   (int_stat <= PCH_TX_OBJ_END)) {
		/* Handle transmission interrupt */
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		pch_can_tx_complete(ndev, int_stat);
775 776
	}

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end:
778 779 780
	napi_complete(napi);
	pch_can_set_int_enables(priv, PCH_CAN_ALL);

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	return quota_save - quota;
782 783 784 785 786 787 788 789 790 791
}

static int pch_set_bittiming(struct net_device *ndev)
{
	struct pch_can_priv *priv = netdev_priv(ndev);
	const struct can_bittiming *bt = &priv->can.bittiming;
	u32 canbit;
	u32 bepe;

	/* Setting the CCE bit for accessing the Can Timing register. */
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	pch_can_bit_set(&priv->regs->cont, PCH_CTRL_CCE);
793

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	canbit = (bt->brp - 1) & PCH_MSK_BITT_BRP;
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	canbit |= (bt->sjw - 1) << PCH_BIT_SJW_SHIFT;
	canbit |= (bt->phase_seg1 + bt->prop_seg - 1) << PCH_BIT_TSEG1_SHIFT;
	canbit |= (bt->phase_seg2 - 1) << PCH_BIT_TSEG2_SHIFT;
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	bepe = ((bt->brp - 1) & PCH_MSK_BRPE_BRPE) >> PCH_BIT_BRPE_BRPE_SHIFT;
799 800
	iowrite32(canbit, &priv->regs->bitt);
	iowrite32(bepe, &priv->regs->brpe);
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	pch_can_bit_clear(&priv->regs->cont, PCH_CTRL_CCE);
802 803 804 805 806 807 808 809 810 811 812 813 814 815

	return 0;
}

static void pch_can_start(struct net_device *ndev)
{
	struct pch_can_priv *priv = netdev_priv(ndev);

	if (priv->can.state != CAN_STATE_STOPPED)
		pch_can_reset(priv);

	pch_set_bittiming(ndev);
	pch_can_set_optmode(priv);

816 817
	pch_can_set_tx_all(priv, 1);
	pch_can_set_rx_all(priv, 1);
818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848

	/* Setting the CAN to run mode. */
	pch_can_set_run_mode(priv, PCH_CAN_RUN);

	priv->can.state = CAN_STATE_ERROR_ACTIVE;

	return;
}

static int pch_can_do_set_mode(struct net_device *ndev, enum can_mode mode)
{
	int ret = 0;

	switch (mode) {
	case CAN_MODE_START:
		pch_can_start(ndev);
		netif_wake_queue(ndev);
		break;
	default:
		ret = -EOPNOTSUPP;
		break;
	}

	return ret;
}

static int pch_can_open(struct net_device *ndev)
{
	struct pch_can_priv *priv = netdev_priv(ndev);
	int retval;

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	/* Regstering the interrupt. */
850 851 852
	retval = request_irq(priv->dev->irq, pch_can_interrupt, IRQF_SHARED,
			     ndev->name, ndev);
	if (retval) {
853
		netdev_err(ndev, "request_irq failed.\n");
854 855 856 857 858 859
		goto req_irq_err;
	}

	/* Open common can device */
	retval = open_candev(ndev);
	if (retval) {
860
		netdev_err(ndev, "open_candev() failed %d\n", retval);
861 862 863 864 865 866 867 868 869 870 871 872 873 874 875 876 877 878 879 880 881 882 883 884 885 886 887 888 889 890 891 892 893 894 895
		goto err_open_candev;
	}

	pch_can_init(priv);
	pch_can_start(ndev);
	napi_enable(&priv->napi);
	netif_start_queue(ndev);

	return 0;

err_open_candev:
	free_irq(priv->dev->irq, ndev);
req_irq_err:
	pch_can_release(priv);

	return retval;
}

static int pch_close(struct net_device *ndev)
{
	struct pch_can_priv *priv = netdev_priv(ndev);

	netif_stop_queue(ndev);
	napi_disable(&priv->napi);
	pch_can_release(priv);
	free_irq(priv->dev->irq, ndev);
	close_candev(ndev);
	priv->can.state = CAN_STATE_STOPPED;
	return 0;
}

static netdev_tx_t pch_xmit(struct sk_buff *skb, struct net_device *ndev)
{
	struct pch_can_priv *priv = netdev_priv(ndev);
	struct can_frame *cf = (struct can_frame *)skb->data;
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	int tx_obj_no;
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	int i;
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	u32 id2;
899 900 901 902

	if (can_dropped_invalid_skb(ndev, skb))
		return NETDEV_TX_OK;

903
	tx_obj_no = priv->tx_obj;
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	if (priv->tx_obj == PCH_TX_OBJ_END) {
		if (ioread32(&priv->regs->treq2) & PCH_TREQ2_TX_MASK)
			netif_stop_queue(ndev);
907

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		priv->tx_obj = PCH_TX_OBJ_START;
909
	} else {
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		priv->tx_obj++;
911 912 913
	}

	/* Setting the CMASK register. */
914
	pch_can_bit_set(&priv->regs->ifregs[1].cmask, PCH_CMASK_ALL);
915 916 917

	/* If ID extended is set. */
	if (cf->can_id & CAN_EFF_FLAG) {
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		iowrite32(cf->can_id & 0xffff, &priv->regs->ifregs[1].id1);
		id2 = ((cf->can_id >> 16) & 0x1fff) | PCH_ID2_XTD;
920
	} else {
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		iowrite32(0, &priv->regs->ifregs[1].id1);
		id2 = (cf->can_id & CAN_SFF_MASK) << 2;
923 924
	}

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	id2 |= PCH_ID_MSGVAL;

927
	/* If remote frame has to be transmitted.. */
928
	if (!(cf->can_id & CAN_RTR_FLAG))
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		id2 |= PCH_ID2_DIR;

	iowrite32(id2, &priv->regs->ifregs[1].id2);
932

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	/* Copy data to register */
	for (i = 0; i < cf->can_dlc; i += 2) {
		iowrite16(cf->data[i] | (cf->data[i + 1] << 8),
			  &priv->regs->ifregs[1].data[i / 2]);
937 938
	}

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	can_put_echo_skb(skb, ndev, tx_obj_no - PCH_RX_OBJ_END - 1);
940

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	/* Set the size of the data. Update if2_mcont */
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	iowrite32(cf->can_dlc | PCH_IF_MCONT_NEWDAT | PCH_IF_MCONT_TXRQXT |
		  PCH_IF_MCONT_TXIE, &priv->regs->ifregs[1].mcont);
944

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	pch_can_rw_msg_obj(&priv->regs->ifregs[1].creq, tx_obj_no);
946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961

	return NETDEV_TX_OK;
}

static const struct net_device_ops pch_can_netdev_ops = {
	.ndo_open		= pch_can_open,
	.ndo_stop		= pch_close,
	.ndo_start_xmit		= pch_xmit,
};

static void __devexit pch_can_remove(struct pci_dev *pdev)
{
	struct net_device *ndev = pci_get_drvdata(pdev);
	struct pch_can_priv *priv = netdev_priv(ndev);

	unregister_candev(priv->ndev);
962 963
	if (priv->use_msi)
		pci_disable_msi(priv->dev);
964 965 966 967
	pci_release_regions(pdev);
	pci_disable_device(pdev);
	pci_set_drvdata(pdev, NULL);
	pch_can_reset(priv);
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	pci_iounmap(pdev, priv->regs);
969
	free_candev(priv->ndev);
970 971 972
}

#ifdef CONFIG_PM
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static void pch_can_set_int_custom(struct pch_can_priv *priv)
{
	/* Clearing the IE, SIE and EIE bits of Can control register. */
	pch_can_bit_clear(&priv->regs->cont, PCH_CTRL_IE_SIE_EIE);

	/* Appropriately setting them. */
	pch_can_bit_set(&priv->regs->cont,
			((priv->int_enables & PCH_MSK_CTRL_IE_SIE_EIE) << 1));
}

/* This function retrieves interrupt enabled for the CAN device. */
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static u32 pch_can_get_int_enables(struct pch_can_priv *priv)
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{
	/* Obtaining the status of IE, SIE and EIE interrupt bits. */
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	return (ioread32(&priv->regs->cont) & PCH_CTRL_IE_SIE_EIE) >> 1;
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}

static u32 pch_can_get_rxtx_ir(struct pch_can_priv *priv, u32 buff_num,
			       enum pch_ifreg dir)
{
	u32 ie, enable;

	if (dir)
		ie = PCH_IF_MCONT_RXIE;
	else
		ie = PCH_IF_MCONT_TXIE;

	iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[dir].cmask);
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	pch_can_rw_msg_obj(&priv->regs->ifregs[dir].creq, buff_num);
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	if (((ioread32(&priv->regs->ifregs[dir].id2)) & PCH_ID_MSGVAL) &&
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			((ioread32(&priv->regs->ifregs[dir].mcont)) & ie))
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		enable = 1;
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	else
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		enable = 0;
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	return enable;
}

static void pch_can_set_rx_buffer_link(struct pch_can_priv *priv,
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				       u32 buffer_num, int set)
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{
	iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[0].cmask);
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	pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, buffer_num);
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	iowrite32(PCH_CMASK_RDWR | PCH_CMASK_CTRL,
		  &priv->regs->ifregs[0].cmask);
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	if (set)
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		pch_can_bit_clear(&priv->regs->ifregs[0].mcont,
				  PCH_IF_MCONT_EOB);
	else
		pch_can_bit_set(&priv->regs->ifregs[0].mcont, PCH_IF_MCONT_EOB);

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	pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, buffer_num);
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}

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static u32 pch_can_get_rx_buffer_link(struct pch_can_priv *priv, u32 buffer_num)
T
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{
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	u32 link;

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	iowrite32(PCH_CMASK_RX_TX_GET, &priv->regs->ifregs[0].cmask);
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	pch_can_rw_msg_obj(&priv->regs->ifregs[0].creq, buffer_num);
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	if (ioread32(&priv->regs->ifregs[0].mcont) & PCH_IF_MCONT_EOB)
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		link = 0;
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	else
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		link = 1;
	return link;
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}

static int pch_can_get_buffer_status(struct pch_can_priv *priv)
{
	return (ioread32(&priv->regs->treq1) & 0xffff) |
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	       (ioread32(&priv->regs->treq2) << 16);
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}

1048 1049
static int pch_can_suspend(struct pci_dev *pdev, pm_message_t state)
{
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	int i;
	int retval;
1052
	u32 buf_stat;	/* Variable for reading the transmit buffer status. */
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	int counter = PCH_COUNTER_LIMIT;
1054 1055 1056 1057 1058 1059 1060 1061

	struct net_device *dev = pci_get_drvdata(pdev);
	struct pch_can_priv *priv = netdev_priv(dev);

	/* Stop the CAN controller */
	pch_can_set_run_mode(priv, PCH_CAN_STOP);

	/* Indicate that we are aboutto/in suspend */
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	priv->can.state = CAN_STATE_STOPPED;
1063 1064 1065 1066 1067 1068 1069 1070 1071 1072 1073 1074 1075

	/* Waiting for all transmission to complete. */
	while (counter) {
		buf_stat = pch_can_get_buffer_status(priv);
		if (!buf_stat)
			break;
		counter--;
		udelay(1);
	}
	if (!counter)
		dev_err(&pdev->dev, "%s -> Transmission time out.\n", __func__);

	/* Save interrupt configuration and then disable them */
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	priv->int_enables = pch_can_get_int_enables(priv);
1077 1078 1079
	pch_can_set_int_enables(priv, PCH_CAN_DISABLE);

	/* Save Tx buffer enable state */
1080
	for (i = PCH_TX_OBJ_START; i <= PCH_TX_OBJ_END; i++)
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		priv->tx_enable[i - 1] = pch_can_get_rxtx_ir(priv, i,
							     PCH_TX_IFREG);
1083 1084

	/* Disable all Transmit buffers */
1085
	pch_can_set_tx_all(priv, 0);
1086 1087

	/* Save Rx buffer enable state */
1088
	for (i = PCH_RX_OBJ_START; i <= PCH_RX_OBJ_END; i++) {
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		priv->rx_enable[i - 1] = pch_can_get_rxtx_ir(priv, i,
							     PCH_RX_IFREG);
		priv->rx_link[i - 1] = pch_can_get_rx_buffer_link(priv, i);
1092 1093 1094
	}

	/* Disable all Receive buffers */
1095
	pch_can_set_rx_all(priv, 0);
1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109
	retval = pci_save_state(pdev);
	if (retval) {
		dev_err(&pdev->dev, "pci_save_state failed.\n");
	} else {
		pci_enable_wake(pdev, PCI_D3hot, 0);
		pci_disable_device(pdev);
		pci_set_power_state(pdev, pci_choose_state(pdev, state));
	}

	return retval;
}

static int pch_can_resume(struct pci_dev *pdev)
{
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	int i;
	int retval;
1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142
	struct net_device *dev = pci_get_drvdata(pdev);
	struct pch_can_priv *priv = netdev_priv(dev);

	pci_set_power_state(pdev, PCI_D0);
	pci_restore_state(pdev);
	retval = pci_enable_device(pdev);
	if (retval) {
		dev_err(&pdev->dev, "pci_enable_device failed.\n");
		return retval;
	}

	pci_enable_wake(pdev, PCI_D3hot, 0);

	priv->can.state = CAN_STATE_ERROR_ACTIVE;

	/* Disabling all interrupts. */
	pch_can_set_int_enables(priv, PCH_CAN_DISABLE);

	/* Setting the CAN device in Stop Mode. */
	pch_can_set_run_mode(priv, PCH_CAN_STOP);

	/* Configuring the transmit and receive buffers. */
	pch_can_config_rx_tx_buffers(priv);

	/* Restore the CAN state */
	pch_set_bittiming(dev);

	/* Listen/Active */
	pch_can_set_optmode(priv);

	/* Enabling the transmit buffer. */
1143
	for (i = PCH_TX_OBJ_START; i <= PCH_TX_OBJ_END; i++)
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		pch_can_set_rxtx(priv, i, priv->tx_enable[i - 1], PCH_TX_IFREG);
1145 1146

	/* Configuring the receive buffer and enabling them. */
1147 1148
	for (i = PCH_RX_OBJ_START; i <= PCH_RX_OBJ_END; i++) {
		/* Restore buffer link */
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		pch_can_set_rx_buffer_link(priv, i, priv->rx_link[i - 1]);
1150

1151
		/* Restore buffer enables */
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		pch_can_set_rxtx(priv, i, priv->rx_enable[i - 1], PCH_RX_IFREG);
1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171
	}

	/* Enable CAN Interrupts */
	pch_can_set_int_custom(priv);

	/* Restore Run Mode */
	pch_can_set_run_mode(priv, PCH_CAN_RUN);

	return retval;
}
#else
#define pch_can_suspend NULL
#define pch_can_resume NULL
#endif

static int pch_can_get_berr_counter(const struct net_device *dev,
				    struct can_berr_counter *bec)
{
	struct pch_can_priv *priv = netdev_priv(dev);
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	u32 errc = ioread32(&priv->regs->errc);
1173

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	bec->txerr = errc & PCH_TEC;
	bec->rxerr = (errc & PCH_REC) >> 8;
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

	return 0;
}

static int __devinit pch_can_probe(struct pci_dev *pdev,
				   const struct pci_device_id *id)
{
	struct net_device *ndev;
	struct pch_can_priv *priv;
	int rc;
	void __iomem *addr;

	rc = pci_enable_device(pdev);
	if (rc) {
		dev_err(&pdev->dev, "Failed pci_enable_device %d\n", rc);
		goto probe_exit_endev;
	}

	rc = pci_request_regions(pdev, KBUILD_MODNAME);
	if (rc) {
		dev_err(&pdev->dev, "Failed pci_request_regions %d\n", rc);
		goto probe_exit_pcireq;
	}

	addr = pci_iomap(pdev, 1, 0);
	if (!addr) {
		rc = -EIO;
		dev_err(&pdev->dev, "Failed pci_iomap\n");
		goto probe_exit_ipmap;
	}

1207
	ndev = alloc_candev(sizeof(struct pch_can_priv), PCH_TX_OBJ_END);
1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222
	if (!ndev) {
		rc = -ENOMEM;
		dev_err(&pdev->dev, "Failed alloc_candev\n");
		goto probe_exit_alloc_candev;
	}

	priv = netdev_priv(ndev);
	priv->ndev = ndev;
	priv->regs = addr;
	priv->dev = pdev;
	priv->can.bittiming_const = &pch_can_bittiming_const;
	priv->can.do_set_mode = pch_can_do_set_mode;
	priv->can.do_get_berr_counter = pch_can_get_berr_counter;
	priv->can.ctrlmode_supported = CAN_CTRLMODE_LISTENONLY |
				       CAN_CTRLMODE_LOOPBACK;
1223
	priv->tx_obj = PCH_TX_OBJ_START; /* Point head of Tx Obj */
1224 1225 1226 1227 1228 1229 1230 1231 1232

	ndev->irq = pdev->irq;
	ndev->flags |= IFF_ECHO;

	pci_set_drvdata(pdev, ndev);
	SET_NETDEV_DEV(ndev, &pdev->dev);
	ndev->netdev_ops = &pch_can_netdev_ops;
	priv->can.clock.freq = PCH_CAN_CLK; /* Hz */

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	netif_napi_add(ndev, &priv->napi, pch_can_poll, PCH_RX_OBJ_END);
1234

1235 1236 1237 1238 1239 1240
	rc = pci_enable_msi(priv->dev);
	if (rc) {
		netdev_err(ndev, "PCH CAN opened without MSI\n");
		priv->use_msi = 0;
	} else {
		netdev_err(ndev, "PCH CAN opened with MSI\n");
1241
		pci_set_master(pdev);
1242 1243 1244
		priv->use_msi = 1;
	}

1245 1246 1247 1248 1249 1250 1251 1252 1253
	rc = register_candev(ndev);
	if (rc) {
		dev_err(&pdev->dev, "Failed register_candev %d\n", rc);
		goto probe_exit_reg_candev;
	}

	return 0;

probe_exit_reg_candev:
1254 1255
	if (priv->use_msi)
		pci_disable_msi(priv->dev);
1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266
	free_candev(ndev);
probe_exit_alloc_candev:
	pci_iounmap(pdev, addr);
probe_exit_ipmap:
	pci_release_regions(pdev);
probe_exit_pcireq:
	pci_disable_device(pdev);
probe_exit_endev:
	return rc;
}

1267
static struct pci_driver pch_can_pci_driver = {
1268 1269 1270 1271 1272 1273 1274 1275 1276 1277
	.name = "pch_can",
	.id_table = pch_pci_tbl,
	.probe = pch_can_probe,
	.remove = __devexit_p(pch_can_remove),
	.suspend = pch_can_suspend,
	.resume = pch_can_resume,
};

static int __init pch_can_pci_init(void)
{
1278
	return pci_register_driver(&pch_can_pci_driver);
1279 1280 1281 1282 1283
}
module_init(pch_can_pci_init);

static void __exit pch_can_pci_exit(void)
{
1284
	pci_unregister_driver(&pch_can_pci_driver);
1285 1286 1287
}
module_exit(pch_can_pci_exit);

1288
MODULE_DESCRIPTION("Intel EG20T PCH CAN(Controller Area Network) Driver");
1289 1290
MODULE_LICENSE("GPL v2");
MODULE_VERSION("0.94");