dm9000.c 32.1 KB
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/*
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 *      Davicom DM9000 Fast Ethernet driver for Linux.
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 * 	Copyright (C) 1997  Sten Wang
 *
 * 	This program is free software; you can redistribute it and/or
 * 	modify it under the terms of the GNU General Public License
 * 	as published by the Free Software Foundation; either version 2
 * 	of the License, or (at your option) any later version.
 *
 * 	This program is distributed in the hope that it will be useful,
 * 	but WITHOUT ANY WARRANTY; without even the implied warranty of
 * 	MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * 	GNU General Public License for more details.
 *
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 * (C) Copyright 1997-1998 DAVICOM Semiconductor,Inc. All Rights Reserved.
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 *
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 * Additional updates, Copyright:
 *	Ben Dooks <ben@simtec.co.uk>
 *	Sascha Hauer <s.hauer@pengutronix.de>
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 */

#include <linux/module.h>
#include <linux/ioport.h>
#include <linux/netdevice.h>
#include <linux/etherdevice.h>
#include <linux/init.h>
#include <linux/skbuff.h>
#include <linux/spinlock.h>
#include <linux/crc32.h>
#include <linux/mii.h>
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#include <linux/ethtool.h>
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#include <linux/dm9000.h>
#include <linux/delay.h>
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#include <linux/platform_device.h>
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#include <linux/irq.h>
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#include <asm/delay.h>
#include <asm/irq.h>
#include <asm/io.h>

#include "dm9000.h"

/* Board/System/Debug information/definition ---------------- */

#define DM9000_PHY		0x40	/* PHY address 0x01 */

#define CARDNAME "dm9000"
#define PFX CARDNAME ": "
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#define DRV_VERSION	"1.30"
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#ifdef CONFIG_BLACKFIN
#define readsb	insb
#define readsw	insw
#define readsl	insl
#define writesb	outsb
#define writesw	outsw
#define writesl	outsl
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#define DEFAULT_TRIGGER IRQF_TRIGGER_HIGH
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#else
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#define DEFAULT_TRIGGER (0)
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#endif

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/*
 * Transmit timeout, default 5 seconds.
 */
static int watchdog = 5000;
module_param(watchdog, int, 0400);
MODULE_PARM_DESC(watchdog, "transmit timeout in milliseconds");

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/* DM9000 register address locking.
 *
 * The DM9000 uses an address register to control where data written
 * to the data register goes. This means that the address register
 * must be preserved over interrupts or similar calls.
 *
 * During interrupt and other critical calls, a spinlock is used to
 * protect the system, but the calls themselves save the address
 * in the address register in case they are interrupting another
 * access to the device.
 *
 * For general accesses a lock is provided so that calls which are
 * allowed to sleep are serialised so that the address register does
 * not need to be saved. This lock also serves to serialise access
 * to the EEPROM and PHY access registers which are shared between
 * these two devices.
 */

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/* Structure/enum declaration ------------------------------- */
typedef struct board_info {

	void __iomem *io_addr;	/* Register I/O base address */
	void __iomem *io_data;	/* Data I/O address */
	u16 irq;		/* IRQ */

	u16 tx_pkt_cnt;
	u16 queue_pkt_len;
	u16 queue_start_addr;
	u16 dbug_cnt;
	u8 io_mode;		/* 0:word, 2:byte */
	u8 phy_addr;
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	unsigned int flags;
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	unsigned int in_suspend :1;
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	int debug_level;

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	void (*inblk)(void __iomem *port, void *data, int length);
	void (*outblk)(void __iomem *port, void *data, int length);
	void (*dumpblk)(void __iomem *port, int length);

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	struct device	*dev;	     /* parent device */

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	struct resource	*addr_res;   /* resources found */
	struct resource *data_res;
	struct resource	*addr_req;   /* resources requested */
	struct resource *data_req;
	struct resource *irq_res;

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	struct mutex	 addr_lock;	/* phy and eeprom access lock */

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	spinlock_t lock;

	struct mii_if_info mii;
	u32 msg_enable;
} board_info_t;

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/* debug code */

#define dm9000_dbg(db, lev, msg...) do {		\
	if ((lev) < CONFIG_DM9000_DEBUGLEVEL &&		\
	    (lev) < db->debug_level) {			\
		dev_dbg(db->dev, msg);			\
	}						\
} while (0)

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static inline board_info_t *to_dm9000_board(struct net_device *dev)
{
	return dev->priv;
}

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/* function declaration ------------------------------------- */
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static int dm9000_probe(struct platform_device *);
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static int dm9000_open(struct net_device *);
static int dm9000_start_xmit(struct sk_buff *, struct net_device *);
static int dm9000_stop(struct net_device *);
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static int dm9000_ioctl(struct net_device *dev, struct ifreq *req, int cmd);
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static void dm9000_init_dm9000(struct net_device *);

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static irqreturn_t dm9000_interrupt(int, void *);
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static int dm9000_phy_read(struct net_device *dev, int phyaddr_unsused, int reg);
static void dm9000_phy_write(struct net_device *dev, int phyaddr_unused, int reg,
			   int value);
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static void dm9000_read_eeprom(board_info_t *, int addr, u8 *to);
static void dm9000_write_eeprom(board_info_t *, int addr, u8 *dp);
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static void dm9000_rx(struct net_device *);
static void dm9000_hash_table(struct net_device *);

/* DM9000 network board routine ---------------------------- */

static void
dm9000_reset(board_info_t * db)
{
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	dev_dbg(db->dev, "resetting device\n");

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	/* RESET device */
	writeb(DM9000_NCR, db->io_addr);
	udelay(200);
	writeb(NCR_RST, db->io_data);
	udelay(200);
}

/*
 *   Read a byte from I/O port
 */
static u8
ior(board_info_t * db, int reg)
{
	writeb(reg, db->io_addr);
	return readb(db->io_data);
}

/*
 *   Write a byte to I/O port
 */

static void
iow(board_info_t * db, int reg, int value)
{
	writeb(reg, db->io_addr);
	writeb(value, db->io_data);
}

/* routines for sending block to chip */

static void dm9000_outblk_8bit(void __iomem *reg, void *data, int count)
{
	writesb(reg, data, count);
}

static void dm9000_outblk_16bit(void __iomem *reg, void *data, int count)
{
	writesw(reg, data, (count+1) >> 1);
}

static void dm9000_outblk_32bit(void __iomem *reg, void *data, int count)
{
	writesl(reg, data, (count+3) >> 2);
}

/* input block from chip to memory */

static void dm9000_inblk_8bit(void __iomem *reg, void *data, int count)
{
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	readsb(reg, data, count);
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}


static void dm9000_inblk_16bit(void __iomem *reg, void *data, int count)
{
	readsw(reg, data, (count+1) >> 1);
}

static void dm9000_inblk_32bit(void __iomem *reg, void *data, int count)
{
	readsl(reg, data, (count+3) >> 2);
}

/* dump block from chip to null */

static void dm9000_dumpblk_8bit(void __iomem *reg, int count)
{
	int i;
	int tmp;

	for (i = 0; i < count; i++)
		tmp = readb(reg);
}

static void dm9000_dumpblk_16bit(void __iomem *reg, int count)
{
	int i;
	int tmp;

	count = (count + 1) >> 1;

	for (i = 0; i < count; i++)
		tmp = readw(reg);
}

static void dm9000_dumpblk_32bit(void __iomem *reg, int count)
{
	int i;
	int tmp;

	count = (count + 3) >> 2;

	for (i = 0; i < count; i++)
		tmp = readl(reg);
}

/* dm9000_set_io
 *
 * select the specified set of io routines to use with the
 * device
 */

static void dm9000_set_io(struct board_info *db, int byte_width)
{
	/* use the size of the data resource to work out what IO
	 * routines we want to use
	 */

	switch (byte_width) {
	case 1:
		db->dumpblk = dm9000_dumpblk_8bit;
		db->outblk  = dm9000_outblk_8bit;
		db->inblk   = dm9000_inblk_8bit;
		break;


	case 3:
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		dev_dbg(db->dev, ": 3 byte IO, falling back to 16bit\n");
	case 2:
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		db->dumpblk = dm9000_dumpblk_16bit;
		db->outblk  = dm9000_outblk_16bit;
		db->inblk   = dm9000_inblk_16bit;
		break;

	case 4:
	default:
		db->dumpblk = dm9000_dumpblk_32bit;
		db->outblk  = dm9000_outblk_32bit;
		db->inblk   = dm9000_inblk_32bit;
		break;
	}
}


/* Our watchdog timed out. Called by the networking layer */
static void dm9000_timeout(struct net_device *dev)
{
	board_info_t *db = (board_info_t *) dev->priv;
	u8 reg_save;
	unsigned long flags;

	/* Save previous register address */
	reg_save = readb(db->io_addr);
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	spin_lock_irqsave(&db->lock,flags);
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	netif_stop_queue(dev);
	dm9000_reset(db);
	dm9000_init_dm9000(dev);
	/* We can accept TX packets again */
	dev->trans_start = jiffies;
	netif_wake_queue(dev);

	/* Restore previous register address */
	writeb(reg_save, db->io_addr);
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	spin_unlock_irqrestore(&db->lock,flags);
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}

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#ifdef CONFIG_NET_POLL_CONTROLLER
/*
 *Used by netconsole
 */
static void dm9000_poll_controller(struct net_device *dev)
{
	disable_irq(dev->irq);
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	dm9000_interrupt(dev->irq,dev);
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	enable_irq(dev->irq);
}
#endif
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static int dm9000_ioctl(struct net_device *dev, struct ifreq *req, int cmd)
{
	board_info_t *dm = to_dm9000_board(dev);

	if (!netif_running(dev))
		return -EINVAL;

	return generic_mii_ioctl(&dm->mii, if_mii(req), cmd, NULL);
}

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/* ethtool ops */

static void dm9000_get_drvinfo(struct net_device *dev,
			       struct ethtool_drvinfo *info)
{
	board_info_t *dm = to_dm9000_board(dev);

	strcpy(info->driver, CARDNAME);
	strcpy(info->version, DRV_VERSION);
	strcpy(info->bus_info, to_platform_device(dm->dev)->name);
}

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static u32 dm9000_get_msglevel(struct net_device *dev)
{
	board_info_t *dm = to_dm9000_board(dev);

	return dm->msg_enable;
}

static void dm9000_set_msglevel(struct net_device *dev, u32 value)
{
	board_info_t *dm = to_dm9000_board(dev);

	dm->msg_enable = value;
}

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static int dm9000_get_settings(struct net_device *dev, struct ethtool_cmd *cmd)
{
	board_info_t *dm = to_dm9000_board(dev);

	mii_ethtool_gset(&dm->mii, cmd);
	return 0;
}

static int dm9000_set_settings(struct net_device *dev, struct ethtool_cmd *cmd)
{
	board_info_t *dm = to_dm9000_board(dev);

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	return mii_ethtool_sset(&dm->mii, cmd);
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}

static int dm9000_nway_reset(struct net_device *dev)
{
	board_info_t *dm = to_dm9000_board(dev);
	return mii_nway_restart(&dm->mii);
}

static u32 dm9000_get_link(struct net_device *dev)
{
	board_info_t *dm = to_dm9000_board(dev);
	return mii_link_ok(&dm->mii);
}

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#define DM_EEPROM_MAGIC		(0x444D394B)

static int dm9000_get_eeprom_len(struct net_device *dev)
{
	return 128;
}

static int dm9000_get_eeprom(struct net_device *dev,
			     struct ethtool_eeprom *ee, u8 *data)
{
	board_info_t *dm = to_dm9000_board(dev);
	int offset = ee->offset;
	int len = ee->len;
	int i;

	/* EEPROM access is aligned to two bytes */

	if ((len & 1) != 0 || (offset & 1) != 0)
		return -EINVAL;

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	if (dm->flags & DM9000_PLATF_NO_EEPROM)
		return -ENOENT;

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	ee->magic = DM_EEPROM_MAGIC;

	for (i = 0; i < len; i += 2)
		dm9000_read_eeprom(dm, (offset + i) / 2, data + i);

	return 0;
}

static int dm9000_set_eeprom(struct net_device *dev,
			     struct ethtool_eeprom *ee, u8 *data)
{
	board_info_t *dm = to_dm9000_board(dev);
	int offset = ee->offset;
	int len = ee->len;
	int i;

	/* EEPROM access is aligned to two bytes */

	if ((len & 1) != 0 || (offset & 1) != 0)
		return -EINVAL;

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	if (dm->flags & DM9000_PLATF_NO_EEPROM)
		return -ENOENT;

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	if (ee->magic != DM_EEPROM_MAGIC)
		return -EINVAL;

	for (i = 0; i < len; i += 2)
		dm9000_write_eeprom(dm, (offset + i) / 2, data + i);

	return 0;
}

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static const struct ethtool_ops dm9000_ethtool_ops = {
	.get_drvinfo		= dm9000_get_drvinfo,
	.get_settings		= dm9000_get_settings,
	.set_settings		= dm9000_set_settings,
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	.get_msglevel		= dm9000_get_msglevel,
	.set_msglevel		= dm9000_set_msglevel,
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	.nway_reset		= dm9000_nway_reset,
	.get_link		= dm9000_get_link,
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 	.get_eeprom_len		= dm9000_get_eeprom_len,
 	.get_eeprom		= dm9000_get_eeprom,
 	.set_eeprom		= dm9000_set_eeprom,
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};


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/* dm9000_release_board
 *
 * release a board, and any mapped resources
 */

static void
dm9000_release_board(struct platform_device *pdev, struct board_info *db)
{
	if (db->data_res == NULL) {
		if (db->addr_res != NULL)
			release_mem_region((unsigned long)db->io_addr, 4);
		return;
	}

	/* unmap our resources */

	iounmap(db->io_addr);
	iounmap(db->io_data);

	/* release the resources */

	if (db->data_req != NULL) {
		release_resource(db->data_req);
		kfree(db->data_req);
	}

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	if (db->addr_req != NULL) {
		release_resource(db->addr_req);
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		kfree(db->addr_req);
	}
}

#define res_size(_r) (((_r)->end - (_r)->start) + 1)

/*
 * Search DM9000 board, allocate space and register it
 */
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static int __devinit
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dm9000_probe(struct platform_device *pdev)
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{
	struct dm9000_plat_data *pdata = pdev->dev.platform_data;
	struct board_info *db;	/* Point a board information structure */
	struct net_device *ndev;
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	const unsigned char *mac_src;
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	unsigned long base;
	int ret = 0;
	int iosize;
	int i;
	u32 id_val;

	/* Init network device */
	ndev = alloc_etherdev(sizeof (struct board_info));
	if (!ndev) {
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		dev_err(&pdev->dev, "could not allocate device.\n");
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		return -ENOMEM;
	}

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	SET_NETDEV_DEV(ndev, &pdev->dev);
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	dev_dbg(&pdev->dev, "dm9000_probe()\n");
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	/* setup board info structure */
	db = (struct board_info *) ndev->priv;
	memset(db, 0, sizeof (*db));

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	db->dev = &pdev->dev;

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	spin_lock_init(&db->lock);
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	mutex_init(&db->addr_lock);
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	if (pdev->num_resources < 2) {
		ret = -ENODEV;
		goto out;
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	} else if (pdev->num_resources == 2) {
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		base = pdev->resource[0].start;

		if (!request_mem_region(base, 4, ndev->name)) {
			ret = -EBUSY;
			goto out;
		}

		ndev->base_addr = base;
		ndev->irq = pdev->resource[1].start;
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		db->io_addr = (void __iomem *)base;
		db->io_data = (void __iomem *)(base + 4);
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		/* ensure at least we have a default set of IO routines */
		dm9000_set_io(db, 2);

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	} else {
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		db->addr_res = platform_get_resource(pdev, IORESOURCE_MEM, 0);
		db->data_res = platform_get_resource(pdev, IORESOURCE_MEM, 1);
		db->irq_res  = platform_get_resource(pdev, IORESOURCE_IRQ, 0);

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		if (db->addr_res == NULL || db->data_res == NULL ||
		    db->irq_res == NULL) {
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			dev_err(db->dev, "insufficient resources\n");
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			ret = -ENOENT;
			goto out;
		}

		i = res_size(db->addr_res);
		db->addr_req = request_mem_region(db->addr_res->start, i,
						  pdev->name);

		if (db->addr_req == NULL) {
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			dev_err(db->dev, "cannot claim address reg area\n");
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			ret = -EIO;
			goto out;
		}

		db->io_addr = ioremap(db->addr_res->start, i);

		if (db->io_addr == NULL) {
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			dev_err(db->dev, "failed to ioremap address reg\n");
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			ret = -EINVAL;
			goto out;
		}

		iosize = res_size(db->data_res);
		db->data_req = request_mem_region(db->data_res->start, iosize,
						  pdev->name);

		if (db->data_req == NULL) {
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			dev_err(db->dev, "cannot claim data reg area\n");
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			ret = -EIO;
			goto out;
		}

		db->io_data = ioremap(db->data_res->start, iosize);

		if (db->io_data == NULL) {
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			dev_err(db->dev,"failed to ioremap data reg\n");
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			ret = -EINVAL;
			goto out;
		}

		/* fill in parameters for net-dev structure */

		ndev->base_addr = (unsigned long)db->io_addr;
		ndev->irq	= db->irq_res->start;

		/* ensure at least we have a default set of IO routines */
		dm9000_set_io(db, iosize);
	}

	/* check to see if anything is being over-ridden */
	if (pdata != NULL) {
		/* check to see if the driver wants to over-ride the
		 * default IO width */

		if (pdata->flags & DM9000_PLATF_8BITONLY)
			dm9000_set_io(db, 1);

		if (pdata->flags & DM9000_PLATF_16BITONLY)
			dm9000_set_io(db, 2);

		if (pdata->flags & DM9000_PLATF_32BITONLY)
			dm9000_set_io(db, 4);

		/* check to see if there are any IO routine
		 * over-rides */

		if (pdata->inblk != NULL)
			db->inblk = pdata->inblk;

		if (pdata->outblk != NULL)
			db->outblk = pdata->outblk;

		if (pdata->dumpblk != NULL)
			db->dumpblk = pdata->dumpblk;
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		db->flags = pdata->flags;
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	}

	dm9000_reset(db);

	/* try two times, DM9000 sometimes gets the first read wrong */
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	for (i = 0; i < 8; i++) {
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		id_val  = ior(db, DM9000_VIDL);
		id_val |= (u32)ior(db, DM9000_VIDH) << 8;
		id_val |= (u32)ior(db, DM9000_PIDL) << 16;
		id_val |= (u32)ior(db, DM9000_PIDH) << 24;

		if (id_val == DM9000_ID)
			break;
655
		dev_err(db->dev, "read wrong id 0x%08x\n", id_val);
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	}

	if (id_val != DM9000_ID) {
659
		dev_err(db->dev, "wrong id: 0x%08x\n", id_val);
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		ret = -ENODEV;
		goto out;
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	}

	/* from this point we assume that we have found a DM9000 */

	/* driver system function */
	ether_setup(ndev);

	ndev->open		 = &dm9000_open;
	ndev->hard_start_xmit    = &dm9000_start_xmit;
	ndev->tx_timeout         = &dm9000_timeout;
	ndev->watchdog_timeo = msecs_to_jiffies(watchdog);
	ndev->stop		 = &dm9000_stop;
	ndev->set_multicast_list = &dm9000_hash_table;
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	ndev->ethtool_ops	 = &dm9000_ethtool_ops;
676
	ndev->do_ioctl		 = &dm9000_ioctl;
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678 679 680
#ifdef CONFIG_NET_POLL_CONTROLLER
	ndev->poll_controller	 = &dm9000_poll_controller;
#endif
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	db->msg_enable       = NETIF_MSG_LINK;
	db->mii.phy_id_mask  = 0x1f;
	db->mii.reg_num_mask = 0x1f;
	db->mii.force_media  = 0;
	db->mii.full_duplex  = 0;
	db->mii.dev	     = ndev;
	db->mii.mdio_read    = dm9000_phy_read;
	db->mii.mdio_write   = dm9000_phy_write;

691 692
	mac_src = "eeprom";

693 694 695
	/* try reading the node address from the attached EEPROM */
	for (i = 0; i < 6; i += 2)
		dm9000_read_eeprom(db, i / 2, ndev->dev_addr+i);
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697 698
	if (!is_valid_ether_addr(ndev->dev_addr)) {
		/* try reading from mac */
699 700
		
		mac_src = "chip";
701 702 703 704
		for (i = 0; i < 6; i++)
			ndev->dev_addr[i] = ior(db, i+DM9000_PAR);
	}

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	if (!is_valid_ether_addr(ndev->dev_addr))
706 707
		dev_warn(db->dev, "%s: Invalid ethernet MAC address. Please "
			 "set using ifconfig\n", ndev->name);
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709
	platform_set_drvdata(pdev, ndev);
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	ret = register_netdev(ndev);

	if (ret == 0) {
713
		DECLARE_MAC_BUF(mac);
714
		printk("%s: dm9000 at %p,%p IRQ %d MAC: %s (%s)\n",
715
		       ndev->name,  db->io_addr, db->io_data, ndev->irq,
716
		       print_mac(mac, ndev->dev_addr), mac_src);
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	}
	return 0;

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out:
721
	dev_err(db->dev, "not found (%d).\n", ret);
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	dm9000_release_board(pdev, db);
724
	free_netdev(ndev);
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	return ret;
}

/*
 *  Open the interface.
 *  The interface is opened whenever "ifconfig" actives it.
 */
static int
dm9000_open(struct net_device *dev)
{
	board_info_t *db = (board_info_t *) dev->priv;
737
	unsigned long irqflags = db->irq_res->flags & IRQF_TRIGGER_MASK;
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739 740
	if (netif_msg_ifup(db))
		dev_dbg(db->dev, "enabling %s\n", dev->name);
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742 743 744 745 746 747 748 749 750 751 752
	/* If there is no IRQ type specified, default to something that
	 * may work, and tell the user that this is a problem */

	if (irqflags == IRQF_TRIGGER_NONE) {
		dev_warn(db->dev, "WARNING: no IRQ resource flags set.\n");
		irqflags = DEFAULT_TRIGGER;
	}
	
	irqflags |= IRQF_SHARED;

	if (request_irq(dev->irq, &dm9000_interrupt, irqflags, dev->name, dev))
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		return -EAGAIN;

	/* Initialize DM9000 board */
	dm9000_reset(db);
	dm9000_init_dm9000(dev);

	/* Init driver variable */
	db->dbug_cnt = 0;

	mii_check_media(&db->mii, netif_msg_link(db), 1);
	netif_start_queue(dev);

	return 0;
}

/*
 * Initilize dm9000 board
 */
static void
dm9000_init_dm9000(struct net_device *dev)
{
	board_info_t *db = (board_info_t *) dev->priv;

776
	dm9000_dbg(db, 1, "entering %s\n", __func__);
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	/* I/O mode */
	db->io_mode = ior(db, DM9000_ISR) >> 6;	/* ISR bit7:6 keeps I/O mode */

	/* GPIO0 on pre-activate PHY */
	iow(db, DM9000_GPR, 0);	/* REG_1F bit0 activate phyxcer */
	iow(db, DM9000_GPCR, GPCR_GEP_CNTL);	/* Let GPIO0 output */
	iow(db, DM9000_GPR, 0);	/* Enable PHY */

786 787 788
	if (db->flags & DM9000_PLATF_EXT_PHY)
		iow(db, DM9000_NCR, NCR_EXT_PHY);

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	/* Program operating register */
	iow(db, DM9000_TCR, 0);	        /* TX Polling clear */
	iow(db, DM9000_BPTR, 0x3f);	/* Less 3Kb, 200us */
	iow(db, DM9000_FCR, 0xff);	/* Flow Control */
	iow(db, DM9000_SMCR, 0);        /* Special Mode */
	/* clear TX status */
	iow(db, DM9000_NSR, NSR_WAKEST | NSR_TX2END | NSR_TX1END);
	iow(db, DM9000_ISR, ISR_CLR_STATUS); /* Clear interrupt status */

	/* Set address filter table */
	dm9000_hash_table(dev);

	/* Enable TX/RX interrupt mask */
	iow(db, DM9000_IMR, IMR_PAR | IMR_PTM | IMR_PRM);

	/* Init Driver variable */
	db->tx_pkt_cnt = 0;
	db->queue_pkt_len = 0;
	dev->trans_start = 0;
}

/*
 *  Hardware start transmission.
 *  Send a packet to media from the upper layer.
 */
static int
dm9000_start_xmit(struct sk_buff *skb, struct net_device *dev)
{
817
	unsigned long flags;
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	board_info_t *db = (board_info_t *) dev->priv;

820
	dm9000_dbg(db, 3, "%s:\n", __func__);
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	if (db->tx_pkt_cnt > 1)
		return 1;

825
	spin_lock_irqsave(&db->lock, flags);
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	/* Move data to DM9000 TX RAM */
	writeb(DM9000_MWCMD, db->io_addr);

	(db->outblk)(db->io_data, skb->data, skb->len);
831
	dev->stats.tx_bytes += skb->len;
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833
	db->tx_pkt_cnt++;
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	/* TX control: First packet immediately send, second packet queue */
835
	if (db->tx_pkt_cnt == 1) {
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		/* Set TX length to DM9000 */
837 838
		iow(db, DM9000_TXPLL, skb->len);
		iow(db, DM9000_TXPLH, skb->len >> 8);
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		/* Issue TX polling command */
		iow(db, DM9000_TCR, TCR_TXREQ);	/* Cleared after TX complete */

		dev->trans_start = jiffies;	/* save the time stamp */
	} else {
		/* Second packet */
		db->queue_pkt_len = skb->len;
847
		netif_stop_queue(dev);
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	}

850 851
	spin_unlock_irqrestore(&db->lock, flags);

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	/* free this SKB */
	dev_kfree_skb(skb);

	return 0;
}

static void
dm9000_shutdown(struct net_device *dev)
{
	board_info_t *db = (board_info_t *) dev->priv;

	/* RESET device */
	dm9000_phy_write(dev, 0, MII_BMCR, BMCR_RESET);	/* PHY RESET */
	iow(db, DM9000_GPR, 0x01);	/* Power-Down PHY */
	iow(db, DM9000_IMR, IMR_PAR);	/* Disable all interrupt */
	iow(db, DM9000_RCR, 0x00);	/* Disable RX */
}

/*
 * Stop the interface.
 * The interface is stopped when it is brought.
 */
static int
dm9000_stop(struct net_device *ndev)
{
	board_info_t *db = (board_info_t *) ndev->priv;

879 880
	if (netif_msg_ifdown(db))
		dev_dbg(db->dev, "shutting down %s\n", ndev->name);
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	netif_stop_queue(ndev);
	netif_carrier_off(ndev);

	/* free interrupt */
	free_irq(ndev->irq, ndev);

	dm9000_shutdown(ndev);

	return 0;
}

/*
 * DM9000 interrupt handler
 * receive the packet to upper layer, free the transmitted packet
 */

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static void
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dm9000_tx_done(struct net_device *dev, board_info_t * db)
{
	int tx_status = ior(db, DM9000_NSR);	/* Got TX status */

	if (tx_status & (NSR_TX2END | NSR_TX1END)) {
		/* One packet sent complete */
		db->tx_pkt_cnt--;
906
		dev->stats.tx_packets++;
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908 909 910
		if (netif_msg_tx_done(db))
			dev_dbg(db->dev, "tx done, NSR %02x\n", tx_status);

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		/* Queue packet check & send */
		if (db->tx_pkt_cnt > 0) {
913 914
			iow(db, DM9000_TXPLL, db->queue_pkt_len);
			iow(db, DM9000_TXPLH, db->queue_pkt_len >> 8);
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			iow(db, DM9000_TCR, TCR_TXREQ);
			dev->trans_start = jiffies;
		}
		netif_wake_queue(dev);
	}
}

static irqreturn_t
923
dm9000_interrupt(int irq, void *dev_id)
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{
	struct net_device *dev = dev_id;
926
	board_info_t *db = (board_info_t *) dev->priv;
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	int int_status;
	u8 reg_save;

930
	dm9000_dbg(db, 3, "entering %s\n", __func__);
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	/* A real interrupt coming */
933

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	spin_lock(&db->lock);

	/* Save previous register address */
	reg_save = readb(db->io_addr);

	/* Disable all interrupts */
	iow(db, DM9000_IMR, IMR_PAR);

	/* Got DM9000 interrupt status */
	int_status = ior(db, DM9000_ISR);	/* Got ISR */
	iow(db, DM9000_ISR, int_status);	/* Clear ISR status */

946 947 948
	if (netif_msg_intr(db))
		dev_dbg(db->dev, "interrupt status %02x\n", int_status);

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	/* Received the coming packet */
	if (int_status & ISR_PRS)
		dm9000_rx(dev);

	/* Trnasmit Interrupt check */
	if (int_status & ISR_PTS)
		dm9000_tx_done(dev, db);

	/* Re-enable interrupt mask */
	iow(db, DM9000_IMR, IMR_PAR | IMR_PTM | IMR_PRM);

	/* Restore previous register address */
	writeb(reg_save, db->io_addr);

	spin_unlock(&db->lock);

	return IRQ_HANDLED;
}

struct dm9000_rxhdr {
969 970
	u8	RxPktReady;
	u8	RxStatus;
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	__le16	RxLen;
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} __attribute__((__packed__));

/*
 *  Received a packet and pass to upper layer
 */
static void
dm9000_rx(struct net_device *dev)
{
	board_info_t *db = (board_info_t *) dev->priv;
	struct dm9000_rxhdr rxhdr;
	struct sk_buff *skb;
	u8 rxbyte, *rdptr;
984
	bool GoodPacket;
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	int RxLen;

	/* Check packet ready or not */
	do {
		ior(db, DM9000_MRCMDX);	/* Dummy read */

		/* Get most updated data */
		rxbyte = readb(db->io_data);

		/* Status check: this byte must be 0 or 1 */
		if (rxbyte > DM9000_PKT_RDY) {
996
			dev_warn(db->dev, "status check fail: %d\n", rxbyte);
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			iow(db, DM9000_RCR, 0x00);	/* Stop Device */
			iow(db, DM9000_ISR, IMR_PAR);	/* Stop INT request */
			return;
		}

		if (rxbyte != DM9000_PKT_RDY)
			return;

		/* A packet ready now  & Get status/length */
1006
		GoodPacket = true;
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		writeb(DM9000_MRCMD, db->io_addr);

		(db->inblk)(db->io_data, &rxhdr, sizeof(rxhdr));

1011
		RxLen = le16_to_cpu(rxhdr.RxLen);
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1013 1014 1015 1016
		if (netif_msg_rx_status(db))
			dev_dbg(db->dev, "RX: status %02x, length %04x\n",
				rxhdr.RxStatus, RxLen);

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		/* Packet Status check */
		if (RxLen < 0x40) {
1019
			GoodPacket = false;
1020 1021
			if (netif_msg_rx_err(db))
				dev_dbg(db->dev, "RX: Bad Packet (runt)\n");
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		}

		if (RxLen > DM9000_PKT_MAX) {
1025
			dev_dbg(db->dev, "RST: RX Len:%x\n", RxLen);
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		}

1028
		if (rxhdr.RxStatus & 0xbf) {
1029
			GoodPacket = false;
1030
			if (rxhdr.RxStatus & 0x01) {
1031 1032
				if (netif_msg_rx_err(db))
					dev_dbg(db->dev, "fifo error\n");
1033
				dev->stats.rx_fifo_errors++;
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			}
1035
			if (rxhdr.RxStatus & 0x02) {
1036 1037
				if (netif_msg_rx_err(db))
					dev_dbg(db->dev, "crc error\n");
1038
				dev->stats.rx_crc_errors++;
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			}
1040
			if (rxhdr.RxStatus & 0x80) {
1041 1042
				if (netif_msg_rx_err(db))
					dev_dbg(db->dev, "length error\n");
1043
				dev->stats.rx_length_errors++;
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			}
		}

		/* Move data from DM9000 */
		if (GoodPacket
		    && ((skb = dev_alloc_skb(RxLen + 4)) != NULL)) {
			skb_reserve(skb, 2);
			rdptr = (u8 *) skb_put(skb, RxLen - 4);

			/* Read received packet from RX SRAM */

			(db->inblk)(db->io_data, rdptr, RxLen);
1056
			dev->stats.rx_bytes += RxLen;
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			/* Pass to upper layer */
			skb->protocol = eth_type_trans(skb, dev);
			netif_rx(skb);
1061
			dev->stats.rx_packets++;
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		} else {
			/* need to dump the packet's data */

			(db->dumpblk)(db->io_data, RxLen);
		}
	} while (rxbyte == DM9000_PKT_RDY);
}

1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100 1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114
static unsigned int
dm9000_read_locked(board_info_t *db, int reg)
{
	unsigned long flags;
	unsigned int ret;

	spin_lock_irqsave(&db->lock, flags);
	ret = ior(db, reg);
	spin_unlock_irqrestore(&db->lock, flags);

	return ret;
}

static int dm9000_wait_eeprom(board_info_t *db)
{
	unsigned int status;
	int timeout = 8;	/* wait max 8msec */

	/* The DM9000 data sheets say we should be able to
	 * poll the ERRE bit in EPCR to wait for the EEPROM
	 * operation. From testing several chips, this bit
	 * does not seem to work. 
	 *
	 * We attempt to use the bit, but fall back to the
	 * timeout (which is why we do not return an error
	 * on expiry) to say that the EEPROM operation has
	 * completed.
	 */

	while (1) {
		status = dm9000_read_locked(db, DM9000_EPCR);

		if ((status & EPCR_ERRE) == 0)
			break;

		if (timeout-- < 0) {
			dev_dbg(db->dev, "timeout waiting EEPROM\n");
			break;
		}
	}

	return 0;
}

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/*
1116
 *  Read a word data from EEPROM
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 */
1118
static void
1119
dm9000_read_eeprom(board_info_t *db, int offset, u8 *to)
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{
1121 1122
	unsigned long flags;

1123 1124 1125 1126 1127 1128
	if (db->flags & DM9000_PLATF_NO_EEPROM) {
		to[0] = 0xff;
		to[1] = 0xff;
		return;
	}

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	mutex_lock(&db->addr_lock);

1131 1132
	spin_lock_irqsave(&db->lock, flags);

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	iow(db, DM9000_EPAR, offset);
	iow(db, DM9000_EPCR, EPCR_ERPRR);
1135 1136 1137

	spin_unlock_irqrestore(&db->lock, flags);

1138 1139 1140 1141
	dm9000_wait_eeprom(db);

	/* delay for at-least 150uS */
	msleep(1);
1142 1143 1144

	spin_lock_irqsave(&db->lock, flags);

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	iow(db, DM9000_EPCR, 0x0);
1146 1147 1148

	to[0] = ior(db, DM9000_EPDRL);
	to[1] = ior(db, DM9000_EPDRH);
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1150 1151
	spin_unlock_irqrestore(&db->lock, flags);

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	mutex_unlock(&db->addr_lock);
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}

/*
 * Write a word data to SROM
 */
static void
1159
dm9000_write_eeprom(board_info_t *db, int offset, u8 *data)
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{
1161 1162
	unsigned long flags;

1163 1164 1165
	if (db->flags & DM9000_PLATF_NO_EEPROM)
		return;

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	mutex_lock(&db->addr_lock);

1168
	spin_lock_irqsave(&db->lock, flags);
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	iow(db, DM9000_EPAR, offset);
1170 1171
	iow(db, DM9000_EPDRH, data[1]);
	iow(db, DM9000_EPDRL, data[0]);
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	iow(db, DM9000_EPCR, EPCR_WEP | EPCR_ERPRW);
1173 1174
	spin_unlock_irqrestore(&db->lock, flags);

1175 1176 1177
	dm9000_wait_eeprom(db);

	mdelay(1);	/* wait at least 150uS to clear */
1178 1179

	spin_lock_irqsave(&db->lock, flags);
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	iow(db, DM9000_EPCR, 0);
1181
	spin_unlock_irqrestore(&db->lock, flags);
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	mutex_unlock(&db->addr_lock);
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}

/*
 *  Set DM9000 multicast address
 */
static void
dm9000_hash_table(struct net_device *dev)
{
	board_info_t *db = (board_info_t *) dev->priv;
	struct dev_mc_list *mcptr = dev->mc_list;
	int mc_cnt = dev->mc_count;
1195
	int i, oft;
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	u32 hash_val;
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	u16 hash_table[4];
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	u8 rcr = RCR_DIS_LONG | RCR_DIS_CRC | RCR_RXEN;
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	unsigned long flags;

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	dm9000_dbg(db, 1, "entering %s\n", __func__);
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	spin_lock_irqsave(&db->lock, flags);
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	for (i = 0, oft = DM9000_PAR; i < 6; i++, oft++)
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		iow(db, oft, dev->dev_addr[i]);

	/* Clear Hash Table */
	for (i = 0; i < 4; i++)
		hash_table[i] = 0x0;

	/* broadcast address */
	hash_table[3] = 0x8000;

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	if (dev->flags & IFF_PROMISC)
		rcr |= RCR_PRMSC;

	if (dev->flags & IFF_ALLMULTI)
		rcr |= RCR_ALL;

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	/* the multicast address in Hash Table : 64 bits */
	for (i = 0; i < mc_cnt; i++, mcptr = mcptr->next) {
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		hash_val = ether_crc_le(6, mcptr->dmi_addr) & 0x3f;
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		hash_table[hash_val / 16] |= (u16) 1 << (hash_val % 16);
	}

	/* Write the hash table to MAC MD table */
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	for (i = 0, oft = DM9000_MAR; i < 4; i++) {
		iow(db, oft++, hash_table[i]);
		iow(db, oft++, hash_table[i] >> 8);
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	}

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	iow(db, DM9000_RCR, rcr);
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	spin_unlock_irqrestore(&db->lock, flags);
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}


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/*
 * Sleep, either by using msleep() or if we are suspending, then
 * use mdelay() to sleep.
 */
static void dm9000_msleep(board_info_t *db, unsigned int ms)
{
	if (db->in_suspend)
		mdelay(ms);
	else
		msleep(ms);
}

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/*
 *   Read a word from phyxcer
 */
static int
dm9000_phy_read(struct net_device *dev, int phy_reg_unused, int reg)
{
	board_info_t *db = (board_info_t *) dev->priv;
	unsigned long flags;
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	unsigned int reg_save;
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	int ret;

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	mutex_lock(&db->addr_lock);

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	spin_lock_irqsave(&db->lock,flags);
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	/* Save previous register address */
	reg_save = readb(db->io_addr);

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	/* Fill the phyxcer register into REG_0C */
	iow(db, DM9000_EPAR, DM9000_PHY | reg);

	iow(db, DM9000_EPCR, 0xc);	/* Issue phyxcer read command */
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	writeb(reg_save, db->io_addr);
	spin_unlock_irqrestore(&db->lock,flags);

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	dm9000_msleep(db, 1);		/* Wait read complete */
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	spin_lock_irqsave(&db->lock,flags);
	reg_save = readb(db->io_addr);

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	iow(db, DM9000_EPCR, 0x0);	/* Clear phyxcer read command */

	/* The read data keeps on REG_0D & REG_0E */
	ret = (ior(db, DM9000_EPDRH) << 8) | ior(db, DM9000_EPDRL);

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	/* restore the previous address */
	writeb(reg_save, db->io_addr);
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	spin_unlock_irqrestore(&db->lock,flags);

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	mutex_unlock(&db->addr_lock);
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	dm9000_dbg(db, 5, "phy_read[%02x] -> %04x\n", reg, ret);
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	return ret;
}

/*
 *   Write a word to phyxcer
 */
static void
dm9000_phy_write(struct net_device *dev, int phyaddr_unused, int reg, int value)
{
	board_info_t *db = (board_info_t *) dev->priv;
	unsigned long flags;
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	unsigned long reg_save;
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	dm9000_dbg(db, 5, "phy_write[%02x] = %04x\n", reg, value);
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	mutex_lock(&db->addr_lock);

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	spin_lock_irqsave(&db->lock,flags);

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	/* Save previous register address */
	reg_save = readb(db->io_addr);

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	/* Fill the phyxcer register into REG_0C */
	iow(db, DM9000_EPAR, DM9000_PHY | reg);

	/* Fill the written data into REG_0D & REG_0E */
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	iow(db, DM9000_EPDRL, value);
	iow(db, DM9000_EPDRH, value >> 8);
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	iow(db, DM9000_EPCR, 0xa);	/* Issue phyxcer write command */
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	writeb(reg_save, db->io_addr);
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	spin_unlock_irqrestore(&db->lock, flags);
1325

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	dm9000_msleep(db, 1);		/* Wait write complete */
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	spin_lock_irqsave(&db->lock,flags);
	reg_save = readb(db->io_addr);

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	iow(db, DM9000_EPCR, 0x0);	/* Clear phyxcer write command */

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	/* restore the previous address */
	writeb(reg_save, db->io_addr);

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	spin_unlock_irqrestore(&db->lock, flags);
	mutex_unlock(&db->addr_lock);
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}

static int
1341
dm9000_drv_suspend(struct platform_device *dev, pm_message_t state)
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{
1343
	struct net_device *ndev = platform_get_drvdata(dev);
1344
	board_info_t *db;
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1346
	if (ndev) {
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		db = (board_info_t *) ndev->priv;
		db->in_suspend = 1;

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		if (netif_running(ndev)) {
			netif_device_detach(ndev);
			dm9000_shutdown(ndev);
		}
	}
	return 0;
}

static int
1359
dm9000_drv_resume(struct platform_device *dev)
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{
1361
	struct net_device *ndev = platform_get_drvdata(dev);
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	board_info_t *db = (board_info_t *) ndev->priv;

1364
	if (ndev) {
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		if (netif_running(ndev)) {
			dm9000_reset(db);
			dm9000_init_dm9000(ndev);

			netif_device_attach(ndev);
		}
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		db->in_suspend = 0;
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	}
	return 0;
}

1378
static int __devexit
1379
dm9000_drv_remove(struct platform_device *pdev)
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{
1381
	struct net_device *ndev = platform_get_drvdata(pdev);
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1383
	platform_set_drvdata(pdev, NULL);
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	unregister_netdev(ndev);
	dm9000_release_board(pdev, (board_info_t *) ndev->priv);
1387
	free_netdev(ndev);		/* free device structure */
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1389
	dev_dbg(&pdev->dev, "released and freed device\n");
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	return 0;
}

1393
static struct platform_driver dm9000_driver = {
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	.driver	= {
		.name    = "dm9000",
		.owner	 = THIS_MODULE,
	},
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	.probe   = dm9000_probe,
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	.remove  = __devexit_p(dm9000_drv_remove),
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	.suspend = dm9000_drv_suspend,
	.resume  = dm9000_drv_resume,
};

static int __init
dm9000_init(void)
{
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	printk(KERN_INFO "%s Ethernet Driver, V%s\n", CARDNAME, DRV_VERSION);
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1409
	return platform_driver_register(&dm9000_driver);	/* search board and register */
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}

static void __exit
dm9000_cleanup(void)
{
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	platform_driver_unregister(&dm9000_driver);
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}

module_init(dm9000_init);
module_exit(dm9000_cleanup);

MODULE_AUTHOR("Sascha Hauer, Ben Dooks");
MODULE_DESCRIPTION("Davicom DM9000 network driver");
MODULE_LICENSE("GPL");
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MODULE_ALIAS("platform:dm9000");