libata-sff.c 83.3 KB
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/*
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 *  libata-sff.c - helper library for PCI IDE BMDMA
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 *
 *  Maintained by:  Jeff Garzik <jgarzik@pobox.com>
 *    		    Please ALWAYS copy linux-ide@vger.kernel.org
 *		    on emails.
 *
 *  Copyright 2003-2006 Red Hat, Inc.  All rights reserved.
 *  Copyright 2003-2006 Jeff Garzik
 *
 *
 *  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, 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.
 *
 *  You should have received a copy of the GNU General Public License
 *  along with this program; see the file COPYING.  If not, write to
 *  the Free Software Foundation, 675 Mass Ave, Cambridge, MA 02139, USA.
 *
 *
 *  libata documentation is available via 'make {ps|pdf}docs',
 *  as Documentation/DocBook/libata.*
 *
 *  Hardware documentation available from http://www.t13.org/ and
 *  http://www.sata-io.org/
 *
 */

#include <linux/kernel.h>
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#include <linux/gfp.h>
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#include <linux/pci.h>
#include <linux/libata.h>
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#include <linux/highmem.h>
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#include "libata.h"

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static struct workqueue_struct *ata_sff_wq;

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const struct ata_port_operations ata_sff_port_ops = {
	.inherits		= &ata_base_port_ops,

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	.qc_prep		= ata_noop_qc_prep,
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	.qc_issue		= ata_sff_qc_issue,
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	.qc_fill_rtf		= ata_sff_qc_fill_rtf,
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	.freeze			= ata_sff_freeze,
	.thaw			= ata_sff_thaw,
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	.prereset		= ata_sff_prereset,
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	.softreset		= ata_sff_softreset,
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	.hardreset		= sata_sff_hardreset,
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	.postreset		= ata_sff_postreset,
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	.error_handler		= ata_sff_error_handler,

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	.sff_dev_select		= ata_sff_dev_select,
	.sff_check_status	= ata_sff_check_status,
	.sff_tf_load		= ata_sff_tf_load,
	.sff_tf_read		= ata_sff_tf_read,
	.sff_exec_command	= ata_sff_exec_command,
	.sff_data_xfer		= ata_sff_data_xfer,
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	.sff_drain_fifo		= ata_sff_drain_fifo,
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	.lost_interrupt		= ata_sff_lost_interrupt,
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};
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EXPORT_SYMBOL_GPL(ata_sff_port_ops);
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/**
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 *	ata_sff_check_status - Read device status reg & clear interrupt
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 *	@ap: port where the device is
 *
 *	Reads ATA taskfile status register for currently-selected device
 *	and return its value. This also clears pending interrupts
 *      from this device
 *
 *	LOCKING:
 *	Inherited from caller.
 */
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u8 ata_sff_check_status(struct ata_port *ap)
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{
	return ioread8(ap->ioaddr.status_addr);
}
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EXPORT_SYMBOL_GPL(ata_sff_check_status);
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/**
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 *	ata_sff_altstatus - Read device alternate status reg
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 *	@ap: port where the device is
 *
 *	Reads ATA taskfile alternate status register for
 *	currently-selected device and return its value.
 *
 *	Note: may NOT be used as the check_altstatus() entry in
 *	ata_port_operations.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
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static u8 ata_sff_altstatus(struct ata_port *ap)
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{
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	if (ap->ops->sff_check_altstatus)
		return ap->ops->sff_check_altstatus(ap);
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	return ioread8(ap->ioaddr.altstatus_addr);
}

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/**
 *	ata_sff_irq_status - Check if the device is busy
 *	@ap: port where the device is
 *
 *	Determine if the port is currently busy. Uses altstatus
 *	if available in order to avoid clearing shared IRQ status
 *	when finding an IRQ source. Non ctl capable devices don't
 *	share interrupt lines fortunately for us.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
static u8 ata_sff_irq_status(struct ata_port *ap)
{
	u8 status;

	if (ap->ops->sff_check_altstatus || ap->ioaddr.altstatus_addr) {
		status = ata_sff_altstatus(ap);
		/* Not us: We are busy */
		if (status & ATA_BUSY)
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			return status;
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	}
	/* Clear INTRQ latch */
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	status = ap->ops->sff_check_status(ap);
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	return status;
}

/**
 *	ata_sff_sync - Flush writes
 *	@ap: Port to wait for.
 *
 *	CAUTION:
 *	If we have an mmio device with no ctl and no altstatus
 *	method this will fail. No such devices are known to exist.
 *
 *	LOCKING:
 *	Inherited from caller.
 */

static void ata_sff_sync(struct ata_port *ap)
{
	if (ap->ops->sff_check_altstatus)
		ap->ops->sff_check_altstatus(ap);
	else if (ap->ioaddr.altstatus_addr)
		ioread8(ap->ioaddr.altstatus_addr);
}

/**
 *	ata_sff_pause		-	Flush writes and wait 400nS
 *	@ap: Port to pause for.
 *
 *	CAUTION:
 *	If we have an mmio device with no ctl and no altstatus
 *	method this will fail. No such devices are known to exist.
 *
 *	LOCKING:
 *	Inherited from caller.
 */

void ata_sff_pause(struct ata_port *ap)
{
	ata_sff_sync(ap);
	ndelay(400);
}
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EXPORT_SYMBOL_GPL(ata_sff_pause);
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/**
 *	ata_sff_dma_pause	-	Pause before commencing DMA
 *	@ap: Port to pause for.
 *
 *	Perform I/O fencing and ensure sufficient cycle delays occur
 *	for the HDMA1:0 transition
 */
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void ata_sff_dma_pause(struct ata_port *ap)
{
	if (ap->ops->sff_check_altstatus || ap->ioaddr.altstatus_addr) {
		/* An altstatus read will cause the needed delay without
		   messing up the IRQ status */
		ata_sff_altstatus(ap);
		return;
	}
	/* There are no DMA controllers without ctl. BUG here to ensure
	   we never violate the HDMA1:0 transition timing and risk
	   corruption. */
	BUG();
}
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EXPORT_SYMBOL_GPL(ata_sff_dma_pause);
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/**
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 *	ata_sff_busy_sleep - sleep until BSY clears, or timeout
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 *	@ap: port containing status register to be polled
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 *	@tmout_pat: impatience timeout in msecs
 *	@tmout: overall timeout in msecs
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 *
 *	Sleep until ATA Status register bit BSY clears,
 *	or a timeout occurs.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep).
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
 */
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int ata_sff_busy_sleep(struct ata_port *ap,
		       unsigned long tmout_pat, unsigned long tmout)
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{
	unsigned long timer_start, timeout;
	u8 status;

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	status = ata_sff_busy_wait(ap, ATA_BUSY, 300);
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	timer_start = jiffies;
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	timeout = ata_deadline(timer_start, tmout_pat);
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	while (status != 0xff && (status & ATA_BUSY) &&
	       time_before(jiffies, timeout)) {
		msleep(50);
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		status = ata_sff_busy_wait(ap, ATA_BUSY, 3);
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	}

	if (status != 0xff && (status & ATA_BUSY))
		ata_port_printk(ap, KERN_WARNING,
				"port is slow to respond, please be patient "
				"(Status 0x%x)\n", status);

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	timeout = ata_deadline(timer_start, tmout);
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	while (status != 0xff && (status & ATA_BUSY) &&
	       time_before(jiffies, timeout)) {
		msleep(50);
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		status = ap->ops->sff_check_status(ap);
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	}

	if (status == 0xff)
		return -ENODEV;

	if (status & ATA_BUSY) {
		ata_port_printk(ap, KERN_ERR, "port failed to respond "
				"(%lu secs, Status 0x%x)\n",
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				DIV_ROUND_UP(tmout, 1000), status);
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		return -EBUSY;
	}

	return 0;
}
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EXPORT_SYMBOL_GPL(ata_sff_busy_sleep);
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static int ata_sff_check_ready(struct ata_link *link)
{
	u8 status = link->ap->ops->sff_check_status(link->ap);

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	return ata_check_ready(status);
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}

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/**
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 *	ata_sff_wait_ready - sleep until BSY clears, or timeout
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 *	@link: SFF link to wait ready status for
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 *	@deadline: deadline jiffies for the operation
 *
 *	Sleep until ATA Status register bit BSY clears, or timeout
 *	occurs.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep).
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
 */
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int ata_sff_wait_ready(struct ata_link *link, unsigned long deadline)
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{
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	return ata_wait_ready(link, deadline, ata_sff_check_ready);
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}
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EXPORT_SYMBOL_GPL(ata_sff_wait_ready);
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/**
 *	ata_sff_set_devctl - Write device control reg
 *	@ap: port where the device is
 *	@ctl: value to write
 *
 *	Writes ATA taskfile device control register.
 *
 *	Note: may NOT be used as the sff_set_devctl() entry in
 *	ata_port_operations.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
static void ata_sff_set_devctl(struct ata_port *ap, u8 ctl)
{
	if (ap->ops->sff_set_devctl)
		ap->ops->sff_set_devctl(ap, ctl);
	else
		iowrite8(ctl, ap->ioaddr.ctl_addr);
}

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/**
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 *	ata_sff_dev_select - Select device 0/1 on ATA bus
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 *	@ap: ATA channel to manipulate
 *	@device: ATA device (numbered from zero) to select
 *
 *	Use the method defined in the ATA specification to
 *	make either device 0, or device 1, active on the
 *	ATA channel.  Works with both PIO and MMIO.
 *
 *	May be used as the dev_select() entry in ata_port_operations.
 *
 *	LOCKING:
 *	caller.
 */
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void ata_sff_dev_select(struct ata_port *ap, unsigned int device)
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{
	u8 tmp;

	if (device == 0)
		tmp = ATA_DEVICE_OBS;
	else
		tmp = ATA_DEVICE_OBS | ATA_DEV1;

	iowrite8(tmp, ap->ioaddr.device_addr);
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	ata_sff_pause(ap);	/* needed; also flushes, for mmio */
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}
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EXPORT_SYMBOL_GPL(ata_sff_dev_select);
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/**
 *	ata_dev_select - Select device 0/1 on ATA bus
 *	@ap: ATA channel to manipulate
 *	@device: ATA device (numbered from zero) to select
 *	@wait: non-zero to wait for Status register BSY bit to clear
 *	@can_sleep: non-zero if context allows sleeping
 *
 *	Use the method defined in the ATA specification to
 *	make either device 0, or device 1, active on the
 *	ATA channel.
 *
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 *	This is a high-level version of ata_sff_dev_select(), which
 *	additionally provides the services of inserting the proper
 *	pauses and status polling, where needed.
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 *
 *	LOCKING:
 *	caller.
 */
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static void ata_dev_select(struct ata_port *ap, unsigned int device,
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			   unsigned int wait, unsigned int can_sleep)
{
	if (ata_msg_probe(ap))
		ata_port_printk(ap, KERN_INFO, "ata_dev_select: ENTER, "
				"device %u, wait %u\n", device, wait);

	if (wait)
		ata_wait_idle(ap);

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	ap->ops->sff_dev_select(ap, device);
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	if (wait) {
		if (can_sleep && ap->link.device[device].class == ATA_DEV_ATAPI)
			msleep(150);
		ata_wait_idle(ap);
	}
}

/**
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 *	ata_sff_irq_on - Enable interrupts on a port.
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 *	@ap: Port on which interrupts are enabled.
 *
 *	Enable interrupts on a legacy IDE device using MMIO or PIO,
 *	wait for idle, clear any pending interrupts.
 *
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 *	Note: may NOT be used as the sff_irq_on() entry in
 *	ata_port_operations.
 *
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 *	LOCKING:
 *	Inherited from caller.
 */
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void ata_sff_irq_on(struct ata_port *ap)
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{
	struct ata_ioports *ioaddr = &ap->ioaddr;
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	if (ap->ops->sff_irq_on) {
		ap->ops->sff_irq_on(ap);
		return;
	}
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	ap->ctl &= ~ATA_NIEN;
	ap->last_ctl = ap->ctl;

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	if (ap->ops->sff_set_devctl || ioaddr->ctl_addr)
		ata_sff_set_devctl(ap, ap->ctl);
	ata_wait_idle(ap);
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	if (ap->ops->sff_irq_clear)
		ap->ops->sff_irq_clear(ap);
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}
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EXPORT_SYMBOL_GPL(ata_sff_irq_on);
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/**
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 *	ata_sff_tf_load - send taskfile registers to host controller
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 *	@ap: Port to which output is sent
 *	@tf: ATA taskfile register set
 *
 *	Outputs ATA taskfile to standard ATA host controller.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
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void ata_sff_tf_load(struct ata_port *ap, const struct ata_taskfile *tf)
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{
	struct ata_ioports *ioaddr = &ap->ioaddr;
	unsigned int is_addr = tf->flags & ATA_TFLAG_ISADDR;

	if (tf->ctl != ap->last_ctl) {
		if (ioaddr->ctl_addr)
			iowrite8(tf->ctl, ioaddr->ctl_addr);
		ap->last_ctl = tf->ctl;
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		ata_wait_idle(ap);
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	}

	if (is_addr && (tf->flags & ATA_TFLAG_LBA48)) {
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		WARN_ON_ONCE(!ioaddr->ctl_addr);
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		iowrite8(tf->hob_feature, ioaddr->feature_addr);
		iowrite8(tf->hob_nsect, ioaddr->nsect_addr);
		iowrite8(tf->hob_lbal, ioaddr->lbal_addr);
		iowrite8(tf->hob_lbam, ioaddr->lbam_addr);
		iowrite8(tf->hob_lbah, ioaddr->lbah_addr);
		VPRINTK("hob: feat 0x%X nsect 0x%X, lba 0x%X 0x%X 0x%X\n",
			tf->hob_feature,
			tf->hob_nsect,
			tf->hob_lbal,
			tf->hob_lbam,
			tf->hob_lbah);
	}

	if (is_addr) {
		iowrite8(tf->feature, ioaddr->feature_addr);
		iowrite8(tf->nsect, ioaddr->nsect_addr);
		iowrite8(tf->lbal, ioaddr->lbal_addr);
		iowrite8(tf->lbam, ioaddr->lbam_addr);
		iowrite8(tf->lbah, ioaddr->lbah_addr);
		VPRINTK("feat 0x%X nsect 0x%X lba 0x%X 0x%X 0x%X\n",
			tf->feature,
			tf->nsect,
			tf->lbal,
			tf->lbam,
			tf->lbah);
	}

	if (tf->flags & ATA_TFLAG_DEVICE) {
		iowrite8(tf->device, ioaddr->device_addr);
		VPRINTK("device 0x%X\n", tf->device);
	}
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	ata_wait_idle(ap);
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}
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EXPORT_SYMBOL_GPL(ata_sff_tf_load);
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/**
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 *	ata_sff_tf_read - input device's ATA taskfile shadow registers
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 *	@ap: Port from which input is read
 *	@tf: ATA taskfile register set for storing input
 *
 *	Reads ATA taskfile registers for currently-selected device
 *	into @tf. Assumes the device has a fully SFF compliant task file
 *	layout and behaviour. If you device does not (eg has a different
 *	status method) then you will need to provide a replacement tf_read
 *
 *	LOCKING:
 *	Inherited from caller.
 */
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void ata_sff_tf_read(struct ata_port *ap, struct ata_taskfile *tf)
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{
	struct ata_ioports *ioaddr = &ap->ioaddr;

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	tf->command = ata_sff_check_status(ap);
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	tf->feature = ioread8(ioaddr->error_addr);
	tf->nsect = ioread8(ioaddr->nsect_addr);
	tf->lbal = ioread8(ioaddr->lbal_addr);
	tf->lbam = ioread8(ioaddr->lbam_addr);
	tf->lbah = ioread8(ioaddr->lbah_addr);
	tf->device = ioread8(ioaddr->device_addr);

	if (tf->flags & ATA_TFLAG_LBA48) {
		if (likely(ioaddr->ctl_addr)) {
			iowrite8(tf->ctl | ATA_HOB, ioaddr->ctl_addr);
			tf->hob_feature = ioread8(ioaddr->error_addr);
			tf->hob_nsect = ioread8(ioaddr->nsect_addr);
			tf->hob_lbal = ioread8(ioaddr->lbal_addr);
			tf->hob_lbam = ioread8(ioaddr->lbam_addr);
			tf->hob_lbah = ioread8(ioaddr->lbah_addr);
			iowrite8(tf->ctl, ioaddr->ctl_addr);
			ap->last_ctl = tf->ctl;
		} else
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			WARN_ON_ONCE(1);
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	}
}
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EXPORT_SYMBOL_GPL(ata_sff_tf_read);
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/**
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 *	ata_sff_exec_command - issue ATA command to host controller
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 *	@ap: port to which command is being issued
 *	@tf: ATA taskfile register set
 *
 *	Issues ATA command, with proper synchronization with interrupt
 *	handler / other threads.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
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void ata_sff_exec_command(struct ata_port *ap, const struct ata_taskfile *tf)
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{
	DPRINTK("ata%u: cmd 0x%X\n", ap->print_id, tf->command);

	iowrite8(tf->command, ap->ioaddr.command_addr);
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	ata_sff_pause(ap);
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}
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EXPORT_SYMBOL_GPL(ata_sff_exec_command);
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/**
 *	ata_tf_to_host - issue ATA taskfile to host controller
 *	@ap: port to which command is being issued
 *	@tf: ATA taskfile register set
 *
 *	Issues ATA taskfile register set to ATA host controller,
 *	with proper synchronization with interrupt handler and
 *	other threads.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
static inline void ata_tf_to_host(struct ata_port *ap,
				  const struct ata_taskfile *tf)
{
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	ap->ops->sff_tf_load(ap, tf);
	ap->ops->sff_exec_command(ap, tf);
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}

/**
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 *	ata_sff_data_xfer - Transfer data by PIO
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 *	@dev: device to target
 *	@buf: data buffer
 *	@buflen: buffer length
 *	@rw: read/write
 *
 *	Transfer data from/to the device data register by PIO.
 *
 *	LOCKING:
 *	Inherited from caller.
 *
 *	RETURNS:
 *	Bytes consumed.
 */
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unsigned int ata_sff_data_xfer(struct ata_device *dev, unsigned char *buf,
			       unsigned int buflen, int rw)
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{
	struct ata_port *ap = dev->link->ap;
	void __iomem *data_addr = ap->ioaddr.data_addr;
	unsigned int words = buflen >> 1;

	/* Transfer multiple of 2 bytes */
	if (rw == READ)
		ioread16_rep(data_addr, buf, words);
	else
		iowrite16_rep(data_addr, buf, words);

570
	/* Transfer trailing byte, if any. */
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	if (unlikely(buflen & 0x01)) {
572
		unsigned char pad[2];
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		/* Point buf to the tail of buffer */
		buf += buflen - 1;

		/*
		 * Use io*16_rep() accessors here as well to avoid pointlessly
579
		 * swapping bytes to and from on the big endian machines...
580
		 */
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		if (rw == READ) {
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			ioread16_rep(data_addr, pad, 1);
			*buf = pad[0];
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		} else {
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			pad[0] = *buf;
			iowrite16_rep(data_addr, pad, 1);
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		}
		words++;
	}

	return words << 1;
}
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EXPORT_SYMBOL_GPL(ata_sff_data_xfer);
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/**
 *	ata_sff_data_xfer32 - Transfer data by PIO
 *	@dev: device to target
 *	@buf: data buffer
 *	@buflen: buffer length
 *	@rw: read/write
 *
 *	Transfer data from/to the device data register by PIO using 32bit
 *	I/O operations.
 *
 *	LOCKING:
 *	Inherited from caller.
 *
 *	RETURNS:
 *	Bytes consumed.
 */

unsigned int ata_sff_data_xfer32(struct ata_device *dev, unsigned char *buf,
			       unsigned int buflen, int rw)
{
	struct ata_port *ap = dev->link->ap;
	void __iomem *data_addr = ap->ioaddr.data_addr;
	unsigned int words = buflen >> 2;
	int slop = buflen & 3;
619

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	if (!(ap->pflags & ATA_PFLAG_PIO32))
		return ata_sff_data_xfer(dev, buf, buflen, rw);
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	/* Transfer multiple of 4 bytes */
	if (rw == READ)
		ioread32_rep(data_addr, buf, words);
	else
		iowrite32_rep(data_addr, buf, words);

629
	/* Transfer trailing bytes, if any */
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	if (unlikely(slop)) {
631 632 633 634 635 636 637
		unsigned char pad[4];

		/* Point buf to the tail of buffer */
		buf += buflen - slop;

		/*
		 * Use io*_rep() accessors here as well to avoid pointlessly
638
		 * swapping bytes to and from on the big endian machines...
639
		 */
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		if (rw == READ) {
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			if (slop < 3)
				ioread16_rep(data_addr, pad, 1);
			else
				ioread32_rep(data_addr, pad, 1);
			memcpy(buf, pad, slop);
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		} else {
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			memcpy(pad, buf, slop);
			if (slop < 3)
				iowrite16_rep(data_addr, pad, 1);
			else
				iowrite32_rep(data_addr, pad, 1);
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		}
	}
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	return (buflen + 1) & ~1;
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}
EXPORT_SYMBOL_GPL(ata_sff_data_xfer32);

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/**
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 *	ata_sff_data_xfer_noirq - Transfer data by PIO
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 *	@dev: device to target
 *	@buf: data buffer
 *	@buflen: buffer length
 *	@rw: read/write
 *
 *	Transfer data from/to the device data register by PIO. Do the
 *	transfer with interrupts disabled.
 *
 *	LOCKING:
 *	Inherited from caller.
 *
 *	RETURNS:
 *	Bytes consumed.
 */
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unsigned int ata_sff_data_xfer_noirq(struct ata_device *dev, unsigned char *buf,
				     unsigned int buflen, int rw)
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{
	unsigned long flags;
	unsigned int consumed;

	local_irq_save(flags);
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	consumed = ata_sff_data_xfer(dev, buf, buflen, rw);
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	local_irq_restore(flags);

	return consumed;
}
686
EXPORT_SYMBOL_GPL(ata_sff_data_xfer_noirq);
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/**
 *	ata_pio_sector - Transfer a sector of data.
 *	@qc: Command on going
 *
 *	Transfer qc->sect_size bytes of data from/to the ATA device.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
static void ata_pio_sector(struct ata_queued_cmd *qc)
{
	int do_write = (qc->tf.flags & ATA_TFLAG_WRITE);
	struct ata_port *ap = qc->ap;
	struct page *page;
	unsigned int offset;
	unsigned char *buf;

	if (qc->curbytes == qc->nbytes - qc->sect_size)
		ap->hsm_task_state = HSM_ST_LAST;

	page = sg_page(qc->cursg);
	offset = qc->cursg->offset + qc->cursg_ofs;

	/* get the current page and offset */
	page = nth_page(page, (offset >> PAGE_SHIFT));
	offset %= PAGE_SIZE;

	DPRINTK("data %s\n", qc->tf.flags & ATA_TFLAG_WRITE ? "write" : "read");

	if (PageHighMem(page)) {
		unsigned long flags;

		/* FIXME: use a bounce buffer */
		local_irq_save(flags);
		buf = kmap_atomic(page, KM_IRQ0);

		/* do the actual data transfer */
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		ap->ops->sff_data_xfer(qc->dev, buf + offset, qc->sect_size,
				       do_write);
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		kunmap_atomic(buf, KM_IRQ0);
		local_irq_restore(flags);
	} else {
		buf = page_address(page);
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		ap->ops->sff_data_xfer(qc->dev, buf + offset, qc->sect_size,
				       do_write);
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	}

736
	if (!do_write && !PageSlab(page))
737 738
		flush_dcache_page(page);

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	qc->curbytes += qc->sect_size;
	qc->cursg_ofs += qc->sect_size;

	if (qc->cursg_ofs == qc->cursg->length) {
		qc->cursg = sg_next(qc->cursg);
		qc->cursg_ofs = 0;
	}
}

/**
 *	ata_pio_sectors - Transfer one or many sectors.
 *	@qc: Command on going
 *
 *	Transfer one or many sectors of data from/to the
 *	ATA device for the DRQ request.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
static void ata_pio_sectors(struct ata_queued_cmd *qc)
{
	if (is_multi_taskfile(&qc->tf)) {
		/* READ/WRITE MULTIPLE */
		unsigned int nsect;

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		WARN_ON_ONCE(qc->dev->multi_count == 0);
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		nsect = min((qc->nbytes - qc->curbytes) / qc->sect_size,
			    qc->dev->multi_count);
		while (nsect--)
			ata_pio_sector(qc);
	} else
		ata_pio_sector(qc);

773
	ata_sff_sync(qc->ap); /* flush */
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}

/**
 *	atapi_send_cdb - Write CDB bytes to hardware
 *	@ap: Port to which ATAPI device is attached.
 *	@qc: Taskfile currently active
 *
 *	When device has indicated its readiness to accept
 *	a CDB, this function is called.  Send the CDB.
 *
 *	LOCKING:
 *	caller.
 */
static void atapi_send_cdb(struct ata_port *ap, struct ata_queued_cmd *qc)
{
	/* send SCSI cdb */
	DPRINTK("send cdb\n");
791
	WARN_ON_ONCE(qc->dev->cdb_len < 12);
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	ap->ops->sff_data_xfer(qc->dev, qc->cdb, qc->dev->cdb_len, 1);
794 795 796
	ata_sff_sync(ap);
	/* FIXME: If the CDB is for DMA do we need to do the transition delay
	   or is bmdma_start guaranteed to do it ? */
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	switch (qc->tf.protocol) {
	case ATAPI_PROT_PIO:
		ap->hsm_task_state = HSM_ST;
		break;
	case ATAPI_PROT_NODATA:
		ap->hsm_task_state = HSM_ST_LAST;
		break;
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#ifdef CONFIG_ATA_BMDMA
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	case ATAPI_PROT_DMA:
		ap->hsm_task_state = HSM_ST_LAST;
		/* initiate bmdma */
		ap->ops->bmdma_start(qc);
		break;
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#endif /* CONFIG_ATA_BMDMA */
	default:
		BUG();
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	}
}

/**
 *	__atapi_pio_bytes - Transfer data from/to the ATAPI device.
 *	@qc: Command on going
 *	@bytes: number of bytes
 *
 *	Transfer Transfer data from/to the ATAPI device.
 *
 *	LOCKING:
 *	Inherited from caller.
 *
 */
static int __atapi_pio_bytes(struct ata_queued_cmd *qc, unsigned int bytes)
{
	int rw = (qc->tf.flags & ATA_TFLAG_WRITE) ? WRITE : READ;
	struct ata_port *ap = qc->ap;
	struct ata_device *dev = qc->dev;
	struct ata_eh_info *ehi = &dev->link->eh_info;
	struct scatterlist *sg;
	struct page *page;
	unsigned char *buf;
	unsigned int offset, count, consumed;

next_sg:
	sg = qc->cursg;
	if (unlikely(!sg)) {
		ata_ehi_push_desc(ehi, "unexpected or too much trailing data "
				  "buf=%u cur=%u bytes=%u",
				  qc->nbytes, qc->curbytes, bytes);
		return -1;
	}

	page = sg_page(sg);
	offset = sg->offset + qc->cursg_ofs;

	/* get the current page and offset */
	page = nth_page(page, (offset >> PAGE_SHIFT));
	offset %= PAGE_SIZE;

	/* don't overrun current sg */
	count = min(sg->length - qc->cursg_ofs, bytes);

	/* don't cross page boundaries */
	count = min(count, (unsigned int)PAGE_SIZE - offset);

	DPRINTK("data %s\n", qc->tf.flags & ATA_TFLAG_WRITE ? "write" : "read");

	if (PageHighMem(page)) {
		unsigned long flags;

		/* FIXME: use bounce buffer */
		local_irq_save(flags);
		buf = kmap_atomic(page, KM_IRQ0);

		/* do the actual data transfer */
870 871
		consumed = ap->ops->sff_data_xfer(dev,  buf + offset,
								count, rw);
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		kunmap_atomic(buf, KM_IRQ0);
		local_irq_restore(flags);
	} else {
		buf = page_address(page);
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		consumed = ap->ops->sff_data_xfer(dev,  buf + offset,
								count, rw);
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	}

	bytes -= min(bytes, consumed);
	qc->curbytes += count;
	qc->cursg_ofs += count;

	if (qc->cursg_ofs == sg->length) {
		qc->cursg = sg_next(qc->cursg);
		qc->cursg_ofs = 0;
	}

890 891 892 893 894 895
	/*
	 * There used to be a  WARN_ON_ONCE(qc->cursg && count != consumed);
	 * Unfortunately __atapi_pio_bytes doesn't know enough to do the WARN
	 * check correctly as it doesn't know if it is the last request being
	 * made. Somebody should implement a proper sanity check.
	 */
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	if (bytes)
		goto next_sg;
	return 0;
}

/**
 *	atapi_pio_bytes - Transfer data from/to the ATAPI device.
 *	@qc: Command on going
 *
 *	Transfer Transfer data from/to the ATAPI device.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
static void atapi_pio_bytes(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
	struct ata_device *dev = qc->dev;
	struct ata_eh_info *ehi = &dev->link->eh_info;
	unsigned int ireason, bc_lo, bc_hi, bytes;
	int i_write, do_write = (qc->tf.flags & ATA_TFLAG_WRITE) ? 1 : 0;

	/* Abuse qc->result_tf for temp storage of intermediate TF
	 * here to save some kernel stack usage.
	 * For normal completion, qc->result_tf is not relevant. For
	 * error, qc->result_tf is later overwritten by ata_qc_complete().
	 * So, the correctness of qc->result_tf is not affected.
	 */
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	ap->ops->sff_tf_read(ap, &qc->result_tf);
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	ireason = qc->result_tf.nsect;
	bc_lo = qc->result_tf.lbam;
	bc_hi = qc->result_tf.lbah;
	bytes = (bc_hi << 8) | bc_lo;

	/* shall be cleared to zero, indicating xfer of data */
	if (unlikely(ireason & (1 << 0)))
		goto atapi_check;

	/* make sure transfer direction matches expected */
	i_write = ((ireason & (1 << 1)) == 0) ? 1 : 0;
	if (unlikely(do_write != i_write))
		goto atapi_check;

	if (unlikely(!bytes))
		goto atapi_check;

	VPRINTK("ata%u: xfering %d bytes\n", ap->print_id, bytes);

	if (unlikely(__atapi_pio_bytes(qc, bytes)))
		goto err_out;
946
	ata_sff_sync(ap); /* flush */
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	return;

 atapi_check:
	ata_ehi_push_desc(ehi, "ATAPI check failed (ireason=0x%x bytes=%u)",
			  ireason, bytes);
 err_out:
	qc->err_mask |= AC_ERR_HSM;
	ap->hsm_task_state = HSM_ST_ERR;
}

/**
 *	ata_hsm_ok_in_wq - Check if the qc can be handled in the workqueue.
 *	@ap: the target ata_port
 *	@qc: qc on going
 *
 *	RETURNS:
 *	1 if ok in workqueue, 0 otherwise.
 */
966 967
static inline int ata_hsm_ok_in_wq(struct ata_port *ap,
						struct ata_queued_cmd *qc)
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{
	if (qc->tf.flags & ATA_TFLAG_POLLING)
		return 1;

	if (ap->hsm_task_state == HSM_ST_FIRST) {
		if (qc->tf.protocol == ATA_PROT_PIO &&
974
		   (qc->tf.flags & ATA_TFLAG_WRITE))
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		    return 1;

		if (ata_is_atapi(qc->tf.protocol) &&
978
		   !(qc->dev->flags & ATA_DFLAG_CDB_INTR))
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			return 1;
	}

	return 0;
}

/**
 *	ata_hsm_qc_complete - finish a qc running on standard HSM
 *	@qc: Command to complete
 *	@in_wq: 1 if called from workqueue, 0 otherwise
 *
 *	Finish @qc which is running on standard HSM.
 *
 *	LOCKING:
 *	If @in_wq is zero, spin_lock_irqsave(host lock).
 *	Otherwise, none on entry and grabs host lock.
 */
static void ata_hsm_qc_complete(struct ata_queued_cmd *qc, int in_wq)
{
	struct ata_port *ap = qc->ap;
	unsigned long flags;

	if (ap->ops->error_handler) {
		if (in_wq) {
			spin_lock_irqsave(ap->lock, flags);

			/* EH might have kicked in while host lock is
			 * released.
			 */
			qc = ata_qc_from_tag(ap, qc->tag);
			if (qc) {
				if (likely(!(qc->err_mask & AC_ERR_HSM))) {
1011
					ata_sff_irq_on(ap);
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					ata_qc_complete(qc);
				} else
					ata_port_freeze(ap);
			}

			spin_unlock_irqrestore(ap->lock, flags);
		} else {
			if (likely(!(qc->err_mask & AC_ERR_HSM)))
				ata_qc_complete(qc);
			else
				ata_port_freeze(ap);
		}
	} else {
		if (in_wq) {
			spin_lock_irqsave(ap->lock, flags);
1027
			ata_sff_irq_on(ap);
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			ata_qc_complete(qc);
			spin_unlock_irqrestore(ap->lock, flags);
		} else
			ata_qc_complete(qc);
	}
}

/**
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 *	ata_sff_hsm_move - move the HSM to the next state.
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 *	@ap: the target ata_port
 *	@qc: qc on going
 *	@status: current device status
 *	@in_wq: 1 if called from workqueue, 0 otherwise
 *
 *	RETURNS:
 *	1 when poll next status needed, 0 otherwise.
 */
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int ata_sff_hsm_move(struct ata_port *ap, struct ata_queued_cmd *qc,
		     u8 status, int in_wq)
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{
1048
	struct ata_eh_info *ehi = &ap->link.eh_info;
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	unsigned long flags = 0;
	int poll_next;

1052
	WARN_ON_ONCE((qc->flags & ATA_QCFLAG_ACTIVE) == 0);
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	/* Make sure ata_sff_qc_issue() does not throw things
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	 * like DMA polling into the workqueue. Notice that
	 * in_wq is not equivalent to (qc->tf.flags & ATA_TFLAG_POLLING).
	 */
1058
	WARN_ON_ONCE(in_wq != ata_hsm_ok_in_wq(ap, qc));
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fsm_start:
	DPRINTK("ata%u: protocol %d task_state %d (dev_stat 0x%X)\n",
		ap->print_id, qc->tf.protocol, ap->hsm_task_state, status);

	switch (ap->hsm_task_state) {
	case HSM_ST_FIRST:
		/* Send first data block or PACKET CDB */

		/* If polling, we will stay in the work queue after
		 * sending the data. Otherwise, interrupt handler
		 * takes over after sending the data.
		 */
		poll_next = (qc->tf.flags & ATA_TFLAG_POLLING);

		/* check device status */
		if (unlikely((status & ATA_DRQ) == 0)) {
			/* handle BSY=0, DRQ=0 as error */
			if (likely(status & (ATA_ERR | ATA_DF)))
				/* device stops HSM for abort/error */
				qc->err_mask |= AC_ERR_DEV;
1080
			else {
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				/* HSM violation. Let EH handle this */
1082 1083
				ata_ehi_push_desc(ehi,
					"ST_FIRST: !(DRQ|ERR|DF)");
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				qc->err_mask |= AC_ERR_HSM;
1085
			}
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			ap->hsm_task_state = HSM_ST_ERR;
			goto fsm_start;
		}

		/* Device should not ask for data transfer (DRQ=1)
		 * when it finds something wrong.
		 * We ignore DRQ here and stop the HSM by
		 * changing hsm_task_state to HSM_ST_ERR and
		 * let the EH abort the command or reset the device.
		 */
		if (unlikely(status & (ATA_ERR | ATA_DF))) {
			/* Some ATAPI tape drives forget to clear the ERR bit
			 * when doing the next command (mostly request sense).
			 * We ignore ERR here to workaround and proceed sending
			 * the CDB.
			 */
			if (!(qc->dev->horkage & ATA_HORKAGE_STUCK_ERR)) {
1104 1105 1106
				ata_ehi_push_desc(ehi, "ST_FIRST: "
					"DRQ=1 with device error, "
					"dev_stat 0x%X", status);
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				qc->err_mask |= AC_ERR_HSM;
				ap->hsm_task_state = HSM_ST_ERR;
				goto fsm_start;
			}
		}

		/* Send the CDB (atapi) or the first data block (ata pio out).
		 * During the state transition, interrupt handler shouldn't
		 * be invoked before the data transfer is complete and
		 * hsm_task_state is changed. Hence, the following locking.
		 */
		if (in_wq)
			spin_lock_irqsave(ap->lock, flags);

		if (qc->tf.protocol == ATA_PROT_PIO) {
			/* PIO data out protocol.
			 * send first data block.
			 */

			/* ata_pio_sectors() might change the state
			 * to HSM_ST_LAST. so, the state is changed here
			 * before ata_pio_sectors().
			 */
			ap->hsm_task_state = HSM_ST;
			ata_pio_sectors(qc);
		} else
			/* send CDB */
			atapi_send_cdb(ap, qc);

		if (in_wq)
			spin_unlock_irqrestore(ap->lock, flags);

1139
		/* if polling, ata_sff_pio_task() handles the rest.
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		 * otherwise, interrupt handler takes over from here.
		 */
		break;

	case HSM_ST:
		/* complete command or read/write the data register */
		if (qc->tf.protocol == ATAPI_PROT_PIO) {
			/* ATAPI PIO protocol */
			if ((status & ATA_DRQ) == 0) {
				/* No more data to transfer or device error.
				 * Device error will be tagged in HSM_ST_LAST.
				 */
				ap->hsm_task_state = HSM_ST_LAST;
				goto fsm_start;
			}

			/* Device should not ask for data transfer (DRQ=1)
			 * when it finds something wrong.
			 * We ignore DRQ here and stop the HSM by
			 * changing hsm_task_state to HSM_ST_ERR and
			 * let the EH abort the command or reset the device.
			 */
			if (unlikely(status & (ATA_ERR | ATA_DF))) {
1163 1164 1165
				ata_ehi_push_desc(ehi, "ST-ATAPI: "
					"DRQ=1 with device error, "
					"dev_stat 0x%X", status);
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				qc->err_mask |= AC_ERR_HSM;
				ap->hsm_task_state = HSM_ST_ERR;
				goto fsm_start;
			}

			atapi_pio_bytes(qc);

			if (unlikely(ap->hsm_task_state == HSM_ST_ERR))
				/* bad ireason reported by device */
				goto fsm_start;

		} else {
			/* ATA PIO protocol */
			if (unlikely((status & ATA_DRQ) == 0)) {
				/* handle BSY=0, DRQ=0 as error */
1181
				if (likely(status & (ATA_ERR | ATA_DF))) {
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					/* device stops HSM for abort/error */
					qc->err_mask |= AC_ERR_DEV;
1184 1185 1186 1187 1188 1189 1190 1191 1192 1193

					/* If diagnostic failed and this is
					 * IDENTIFY, it's likely a phantom
					 * device.  Mark hint.
					 */
					if (qc->dev->horkage &
					    ATA_HORKAGE_DIAGNOSTIC)
						qc->err_mask |=
							AC_ERR_NODEV_HINT;
				} else {
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					/* HSM violation. Let EH handle this.
					 * Phantom devices also trigger this
					 * condition.  Mark hint.
					 */
1198
					ata_ehi_push_desc(ehi, "ST-ATA: "
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						"DRQ=0 without device error, "
1200
						"dev_stat 0x%X", status);
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					qc->err_mask |= AC_ERR_HSM |
							AC_ERR_NODEV_HINT;
1203
				}
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				ap->hsm_task_state = HSM_ST_ERR;
				goto fsm_start;
			}

			/* For PIO reads, some devices may ask for
			 * data transfer (DRQ=1) alone with ERR=1.
			 * We respect DRQ here and transfer one
			 * block of junk data before changing the
			 * hsm_task_state to HSM_ST_ERR.
			 *
			 * For PIO writes, ERR=1 DRQ=1 doesn't make
			 * sense since the data block has been
			 * transferred to the device.
			 */
			if (unlikely(status & (ATA_ERR | ATA_DF))) {
				/* data might be corrputed */
				qc->err_mask |= AC_ERR_DEV;

				if (!(qc->tf.flags & ATA_TFLAG_WRITE)) {
					ata_pio_sectors(qc);
					status = ata_wait_idle(ap);
				}

1228 1229 1230 1231
				if (status & (ATA_BUSY | ATA_DRQ)) {
					ata_ehi_push_desc(ehi, "ST-ATA: "
						"BUSY|DRQ persists on ERR|DF, "
						"dev_stat 0x%X", status);
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					qc->err_mask |= AC_ERR_HSM;
1233
				}
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1235 1236 1237 1238 1239 1240 1241 1242 1243 1244
				/* There are oddball controllers with
				 * status register stuck at 0x7f and
				 * lbal/m/h at zero which makes it
				 * pass all other presence detection
				 * mechanisms we have.  Set NODEV_HINT
				 * for it.  Kernel bz#7241.
				 */
				if (status == 0x7f)
					qc->err_mask |= AC_ERR_NODEV_HINT;

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				/* ata_pio_sectors() might change the
				 * state to HSM_ST_LAST. so, the state
				 * is changed after ata_pio_sectors().
				 */
				ap->hsm_task_state = HSM_ST_ERR;
				goto fsm_start;
			}

			ata_pio_sectors(qc);

			if (ap->hsm_task_state == HSM_ST_LAST &&
			    (!(qc->tf.flags & ATA_TFLAG_WRITE))) {
				/* all data read */
				status = ata_wait_idle(ap);
				goto fsm_start;
			}
		}

		poll_next = 1;
		break;

	case HSM_ST_LAST:
		if (unlikely(!ata_ok(status))) {
			qc->err_mask |= __ac_err_mask(status);
			ap->hsm_task_state = HSM_ST_ERR;
			goto fsm_start;
		}

		/* no more data to transfer */
		DPRINTK("ata%u: dev %u command complete, drv_stat 0x%x\n",
			ap->print_id, qc->dev->devno, status);

1277
		WARN_ON_ONCE(qc->err_mask & (AC_ERR_DEV | AC_ERR_HSM));
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		ap->hsm_task_state = HSM_ST_IDLE;

		/* complete taskfile transaction */
		ata_hsm_qc_complete(qc, in_wq);

		poll_next = 0;
		break;

	case HSM_ST_ERR:
		ap->hsm_task_state = HSM_ST_IDLE;

		/* complete taskfile transaction */
		ata_hsm_qc_complete(qc, in_wq);

		poll_next = 0;
		break;
	default:
		poll_next = 0;
		BUG();
	}

	return poll_next;
}
1302
EXPORT_SYMBOL_GPL(ata_sff_hsm_move);
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1304 1305 1306 1307 1308 1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323
void ata_sff_queue_pio_task(struct ata_port *ap, unsigned long delay)
{
	/* may fail if ata_sff_flush_pio_task() in progress */
	queue_delayed_work(ata_sff_wq, &ap->sff_pio_task,
			   msecs_to_jiffies(delay));
}
EXPORT_SYMBOL_GPL(ata_sff_queue_pio_task);

void ata_sff_flush_pio_task(struct ata_port *ap)
{
	DPRINTK("ENTER\n");

	cancel_rearming_delayed_work(&ap->sff_pio_task);
	ap->hsm_task_state = HSM_ST_IDLE;

	if (ata_msg_ctl(ap))
		ata_port_printk(ap, KERN_DEBUG, "%s: EXIT\n", __func__);
}

static void ata_sff_pio_task(struct work_struct *work)
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{
	struct ata_port *ap =
1326 1327
		container_of(work, struct ata_port, sff_pio_task.work);
	struct ata_queued_cmd *qc;
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	u8 status;
	int poll_next;

1331 1332 1333 1334 1335
	/* qc can be NULL if timeout occurred */
	qc = ata_qc_from_tag(ap, ap->link.active_tag);
	if (!qc)
		return;

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fsm_start:
1337
	WARN_ON_ONCE(ap->hsm_task_state == HSM_ST_IDLE);
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	/*
	 * This is purely heuristic.  This is a fast path.
	 * Sometimes when we enter, BSY will be cleared in
	 * a chk-status or two.  If not, the drive is probably seeking
	 * or something.  Snooze for a couple msecs, then
	 * chk-status again.  If still busy, queue delayed work.
	 */
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	status = ata_sff_busy_wait(ap, ATA_BUSY, 5);
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	if (status & ATA_BUSY) {
		msleep(2);
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		status = ata_sff_busy_wait(ap, ATA_BUSY, 10);
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		if (status & ATA_BUSY) {
1351
			ata_sff_queue_pio_task(ap, ATA_SHORT_PAUSE);
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			return;
		}
	}

	/* move the HSM */
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	poll_next = ata_sff_hsm_move(ap, qc, status, 1);
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	/* another command or interrupt handler
	 * may be running at this point.
	 */
	if (poll_next)
		goto fsm_start;
}

/**
1367
 *	ata_sff_qc_issue - issue taskfile to a SFF controller
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 *	@qc: command to issue to device
 *
1370 1371
 *	This function issues a PIO or NODATA command to a SFF
 *	controller.
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 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 *
 *	RETURNS:
 *	Zero on success, AC_ERR_* mask on failure
 */
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unsigned int ata_sff_qc_issue(struct ata_queued_cmd *qc)
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{
	struct ata_port *ap = qc->ap;

	/* Use polling pio if the LLD doesn't handle
	 * interrupt driven pio and atapi CDB interrupt.
	 */
1386 1387
	if (ap->flags & ATA_FLAG_PIO_POLLING)
		qc->tf.flags |= ATA_TFLAG_POLLING;
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	/* select the device */
	ata_dev_select(ap, qc->dev->devno, 1, 0);

	/* start the command */
	switch (qc->tf.protocol) {
	case ATA_PROT_NODATA:
		if (qc->tf.flags & ATA_TFLAG_POLLING)
			ata_qc_set_polling(qc);

		ata_tf_to_host(ap, &qc->tf);
		ap->hsm_task_state = HSM_ST_LAST;

		if (qc->tf.flags & ATA_TFLAG_POLLING)
1402
			ata_sff_queue_pio_task(ap, 0);
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		break;

	case ATA_PROT_PIO:
		if (qc->tf.flags & ATA_TFLAG_POLLING)
			ata_qc_set_polling(qc);

		ata_tf_to_host(ap, &qc->tf);

		if (qc->tf.flags & ATA_TFLAG_WRITE) {
			/* PIO data out protocol */
			ap->hsm_task_state = HSM_ST_FIRST;
1415
			ata_sff_queue_pio_task(ap, 0);
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1417 1418
			/* always send first data block using the
			 * ata_sff_pio_task() codepath.
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			 */
		} else {
			/* PIO data in protocol */
			ap->hsm_task_state = HSM_ST;

			if (qc->tf.flags & ATA_TFLAG_POLLING)
1425
				ata_sff_queue_pio_task(ap, 0);
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1427 1428 1429
			/* if polling, ata_sff_pio_task() handles the
			 * rest.  otherwise, interrupt handler takes
			 * over from here.
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			 */
		}

		break;

	case ATAPI_PROT_PIO:
	case ATAPI_PROT_NODATA:
		if (qc->tf.flags & ATA_TFLAG_POLLING)
			ata_qc_set_polling(qc);

		ata_tf_to_host(ap, &qc->tf);

		ap->hsm_task_state = HSM_ST_FIRST;

		/* send cdb by polling if no cdb interrupt */
		if ((!(qc->dev->flags & ATA_DFLAG_CDB_INTR)) ||
		    (qc->tf.flags & ATA_TFLAG_POLLING))
1447
			ata_sff_queue_pio_task(ap, 0);
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		break;

	default:
1451
		WARN_ON_ONCE(1);
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		return AC_ERR_SYSTEM;
	}

	return 0;
}
1457
EXPORT_SYMBOL_GPL(ata_sff_qc_issue);
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1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476
/**
 *	ata_sff_qc_fill_rtf - fill result TF using ->sff_tf_read
 *	@qc: qc to fill result TF for
 *
 *	@qc is finished and result TF needs to be filled.  Fill it
 *	using ->sff_tf_read.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 *
 *	RETURNS:
 *	true indicating that result TF is successfully filled.
 */
bool ata_sff_qc_fill_rtf(struct ata_queued_cmd *qc)
{
	qc->ap->ops->sff_tf_read(qc->ap, &qc->result_tf);
	return true;
}
1477
EXPORT_SYMBOL_GPL(ata_sff_qc_fill_rtf);
1478

1479
static unsigned int ata_sff_idle_irq(struct ata_port *ap)
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{
1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498 1499
	ap->stats.idle_irq++;

#ifdef ATA_IRQ_TRAP
	if ((ap->stats.idle_irq % 1000) == 0) {
		ap->ops->sff_check_status(ap);
		if (ap->ops->sff_irq_clear)
			ap->ops->sff_irq_clear(ap);
		ata_port_printk(ap, KERN_WARNING, "irq trap\n");
		return 1;
	}
#endif
	return 0;	/* irq not handled */
}

static unsigned int __ata_sff_port_intr(struct ata_port *ap,
					struct ata_queued_cmd *qc,
					bool hsmv_on_idle)
{
	u8 status;
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	VPRINTK("ata%u: protocol %d task_state %d\n",
		ap->print_id, qc->tf.protocol, ap->hsm_task_state);

	/* Check whether we are expecting interrupt in this state */
	switch (ap->hsm_task_state) {
	case HSM_ST_FIRST:
		/* Some pre-ATAPI-4 devices assert INTRQ
		 * at this state when ready to receive CDB.
		 */

		/* Check the ATA_DFLAG_CDB_INTR flag is enough here.
		 * The flag was turned on only for atapi devices.  No
		 * need to check ata_is_atapi(qc->tf.protocol) again.
		 */
		if (!(qc->dev->flags & ATA_DFLAG_CDB_INTR))
1516
			return ata_sff_idle_irq(ap);
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		break;
	case HSM_ST:
1519
	case HSM_ST_LAST:
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		break;
	default:
1522
		return ata_sff_idle_irq(ap);
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	}

1525 1526
	/* check main status, clearing INTRQ if needed */
	status = ata_sff_irq_status(ap);
1527
	if (status & ATA_BUSY) {
1528
		if (hsmv_on_idle) {
1529 1530 1531 1532
			/* BMDMA engine is already stopped, we're screwed */
			qc->err_mask |= AC_ERR_HSM;
			ap->hsm_task_state = HSM_ST_ERR;
		} else
1533
			return ata_sff_idle_irq(ap);
1534
	}
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1536
	/* clear irq events */
1537 1538
	if (ap->ops->sff_irq_clear)
		ap->ops->sff_irq_clear(ap);
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	ata_sff_hsm_move(ap, qc, status, 0);
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	return 1;	/* irq handled */
}

/**
1546 1547 1548
 *	ata_sff_port_intr - Handle SFF port interrupt
 *	@ap: Port on which interrupt arrived (possibly...)
 *	@qc: Taskfile currently active in engine
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 *
1550
 *	Handle port interrupt for given queued command.
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1551 1552
 *
 *	LOCKING:
1553
 *	spin_lock_irqsave(host lock)
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 *
 *	RETURNS:
1556
 *	One if interrupt was handled, zero if not (shared irq).
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 */
1558 1559 1560 1561 1562 1563 1564 1565
unsigned int ata_sff_port_intr(struct ata_port *ap, struct ata_queued_cmd *qc)
{
	return __ata_sff_port_intr(ap, qc, false);
}
EXPORT_SYMBOL_GPL(ata_sff_port_intr);

static inline irqreturn_t __ata_sff_interrupt(int irq, void *dev_instance,
	unsigned int (*port_intr)(struct ata_port *, struct ata_queued_cmd *))
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{
	struct ata_host *host = dev_instance;
1568
	bool retried = false;
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	unsigned int i;
1570
	unsigned int handled, idle, polling;
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	unsigned long flags;

	/* TODO: make _irqsave conditional on x86 PCI IDE legacy mode */
	spin_lock_irqsave(&host->lock, flags);

1576 1577
retry:
	handled = idle = polling = 0;
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	for (i = 0; i < host->n_ports; i++) {
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		struct ata_port *ap = host->ports[i];
		struct ata_queued_cmd *qc;
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		qc = ata_qc_from_tag(ap, ap->link.active_tag);
1583 1584
		if (qc) {
			if (!(qc->tf.flags & ATA_TFLAG_POLLING))
1585
				handled |= port_intr(ap, qc);
1586 1587
			else
				polling |= 1 << i;
1588 1589
		} else
			idle |= 1 << i;
1590 1591 1592 1593 1594 1595 1596
	}

	/*
	 * If no port was expecting IRQ but the controller is actually
	 * asserting IRQ line, nobody cared will ensue.  Check IRQ
	 * pending status if available and clear spurious IRQ.
	 */
1597 1598 1599
	if (!handled && !retried) {
		bool retry = false;

1600 1601 1602 1603 1604 1605 1606 1607 1608 1609
		for (i = 0; i < host->n_ports; i++) {
			struct ata_port *ap = host->ports[i];

			if (polling & (1 << i))
				continue;

			if (!ap->ops->sff_irq_check ||
			    !ap->ops->sff_irq_check(ap))
				continue;

1610 1611
			if (idle & (1 << i)) {
				ap->ops->sff_check_status(ap);
1612 1613
				if (ap->ops->sff_irq_clear)
					ap->ops->sff_irq_clear(ap);
1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626 1627
			} else {
				/* clear INTRQ and check if BUSY cleared */
				if (!(ap->ops->sff_check_status(ap) & ATA_BUSY))
					retry |= true;
				/*
				 * With command in flight, we can't do
				 * sff_irq_clear() w/o racing with completion.
				 */
			}
		}

		if (retry) {
			retried = true;
			goto retry;
1628
		}
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	}

	spin_unlock_irqrestore(&host->lock, flags);

	return IRQ_RETVAL(handled);
}
1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653

/**
 *	ata_sff_interrupt - Default SFF ATA host interrupt handler
 *	@irq: irq line (unused)
 *	@dev_instance: pointer to our ata_host information structure
 *
 *	Default interrupt handler for PCI IDE devices.  Calls
 *	ata_sff_port_intr() for each port that is not disabled.
 *
 *	LOCKING:
 *	Obtains host lock during operation.
 *
 *	RETURNS:
 *	IRQ_NONE or IRQ_HANDLED.
 */
irqreturn_t ata_sff_interrupt(int irq, void *dev_instance)
{
	return __ata_sff_interrupt(irq, dev_instance, ata_sff_port_intr);
}
1654
EXPORT_SYMBOL_GPL(ata_sff_interrupt);
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/**
 *	ata_sff_lost_interrupt	-	Check for an apparent lost interrupt
 *	@ap: port that appears to have timed out
 *
 *	Called from the libata error handlers when the core code suspects
 *	an interrupt has been lost. If it has complete anything we can and
 *	then return. Interface must support altstatus for this faster
 *	recovery to occur.
 *
 *	Locking:
 *	Caller holds host lock
 */

void ata_sff_lost_interrupt(struct ata_port *ap)
{
	u8 status;
	struct ata_queued_cmd *qc;

	/* Only one outstanding command per SFF channel */
	qc = ata_qc_from_tag(ap, ap->link.active_tag);
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	/* We cannot lose an interrupt on a non-existent or polled command */
	if (!qc || qc->tf.flags & ATA_TFLAG_POLLING)
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		return;
	/* See if the controller thinks it is still busy - if so the command
	   isn't a lost IRQ but is still in progress */
	status = ata_sff_altstatus(ap);
	if (status & ATA_BUSY)
		return;

	/* There was a command running, we are no longer busy and we have
	   no interrupt. */
	ata_port_printk(ap, KERN_WARNING, "lost interrupt (Status 0x%x)\n",
								status);
	/* Run the host interrupt logic as if the interrupt had not been
	   lost */
1691
	ata_sff_port_intr(ap, qc);
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}
EXPORT_SYMBOL_GPL(ata_sff_lost_interrupt);

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/**
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 *	ata_sff_freeze - Freeze SFF controller port
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 *	@ap: port to freeze
 *
1699
 *	Freeze SFF controller port.
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 *
 *	LOCKING:
 *	Inherited from caller.
 */
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void ata_sff_freeze(struct ata_port *ap)
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{
	ap->ctl |= ATA_NIEN;
	ap->last_ctl = ap->ctl;

1709 1710
	if (ap->ops->sff_set_devctl || ap->ioaddr.ctl_addr)
		ata_sff_set_devctl(ap, ap->ctl);
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	/* Under certain circumstances, some controllers raise IRQ on
	 * ATA_NIEN manipulation.  Also, many controllers fail to mask
	 * previously pending IRQ on ATA_NIEN assertion.  Clear it.
	 */
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	ap->ops->sff_check_status(ap);
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1718 1719
	if (ap->ops->sff_irq_clear)
		ap->ops->sff_irq_clear(ap);
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}
1721
EXPORT_SYMBOL_GPL(ata_sff_freeze);
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/**
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 *	ata_sff_thaw - Thaw SFF controller port
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 *	@ap: port to thaw
 *
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 *	Thaw SFF controller port.
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 *
 *	LOCKING:
 *	Inherited from caller.
 */
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void ata_sff_thaw(struct ata_port *ap)
1733
{
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	/* clear & re-enable interrupts */
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	ap->ops->sff_check_status(ap);
1736 1737
	if (ap->ops->sff_irq_clear)
		ap->ops->sff_irq_clear(ap);
1738
	ata_sff_irq_on(ap);
1739
}
1740
EXPORT_SYMBOL_GPL(ata_sff_thaw);
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1742 1743 1744 1745 1746 1747 1748 1749 1750 1751 1752 1753 1754 1755 1756 1757 1758 1759 1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771
/**
 *	ata_sff_prereset - prepare SFF link for reset
 *	@link: SFF link to be reset
 *	@deadline: deadline jiffies for the operation
 *
 *	SFF link @link is about to be reset.  Initialize it.  It first
 *	calls ata_std_prereset() and wait for !BSY if the port is
 *	being softreset.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep)
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
 */
int ata_sff_prereset(struct ata_link *link, unsigned long deadline)
{
	struct ata_eh_context *ehc = &link->eh_context;
	int rc;

	rc = ata_std_prereset(link, deadline);
	if (rc)
		return rc;

	/* if we're about to do hardreset, nothing more to do */
	if (ehc->i.action & ATA_EH_HARDRESET)
		return 0;

	/* wait for !BSY if we don't know that no device is attached */
	if (!ata_link_offline(link)) {
1772
		rc = ata_sff_wait_ready(link, deadline);
1773 1774 1775 1776 1777 1778 1779 1780 1781
		if (rc && rc != -ENODEV) {
			ata_link_printk(link, KERN_WARNING, "device not ready "
					"(errno=%d), forcing hardreset\n", rc);
			ehc->i.action |= ATA_EH_HARDRESET;
		}
	}

	return 0;
}
1782
EXPORT_SYMBOL_GPL(ata_sff_prereset);
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1784
/**
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 *	ata_devchk - PATA device presence detection
 *	@ap: ATA channel to examine
 *	@device: Device to examine (starting at zero)
1788
 *
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 *	This technique was originally described in
 *	Hale Landis's ATADRVR (www.ata-atapi.com), and
 *	later found its way into the ATA/ATAPI spec.
 *
 *	Write a pattern to the ATA shadow registers,
 *	and if a device is present, it will respond by
 *	correctly storing and echoing back the
 *	ATA shadow register contents.
1797 1798
 *
 *	LOCKING:
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 *	caller.
1800
 */
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static unsigned int ata_devchk(struct ata_port *ap, unsigned int device)
1802 1803
{
	struct ata_ioports *ioaddr = &ap->ioaddr;
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	u8 nsect, lbal;
1805

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	ap->ops->sff_dev_select(ap, device);
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	iowrite8(0x55, ioaddr->nsect_addr);
	iowrite8(0xaa, ioaddr->lbal_addr);
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	iowrite8(0xaa, ioaddr->nsect_addr);
	iowrite8(0x55, ioaddr->lbal_addr);
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	iowrite8(0x55, ioaddr->nsect_addr);
	iowrite8(0xaa, ioaddr->lbal_addr);

	nsect = ioread8(ioaddr->nsect_addr);
	lbal = ioread8(ioaddr->lbal_addr);

	if ((nsect == 0x55) && (lbal == 0xaa))
		return 1;	/* we found a device */

	return 0;		/* nothing found */
1824 1825
}

1826
/**
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 *	ata_sff_dev_classify - Parse returned ATA device signature
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 *	@dev: ATA device to classify (starting at zero)
 *	@present: device seems present
 *	@r_err: Value of error register on completion
1831
 *
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 *	After an event -- SRST, E.D.D., or SATA COMRESET -- occurs,
 *	an ATA/ATAPI-defined set of values is placed in the ATA
 *	shadow registers, indicating the results of device detection
 *	and diagnostics.
1836
 *
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 *	Select the ATA device, and read the values from the ATA shadow
 *	registers.  Then parse according to the Error register value,
 *	and the spec-defined values examined by ata_dev_classify().
1840 1841
 *
 *	LOCKING:
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 *	caller.
 *
 *	RETURNS:
 *	Device type - %ATA_DEV_ATA, %ATA_DEV_ATAPI or %ATA_DEV_NONE.
1846
 */
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unsigned int ata_sff_dev_classify(struct ata_device *dev, int present,
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				  u8 *r_err)
1849
{
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	struct ata_port *ap = dev->link->ap;
	struct ata_taskfile tf;
	unsigned int class;
	u8 err;

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	ap->ops->sff_dev_select(ap, dev->devno);
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	memset(&tf, 0, sizeof(tf));

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	ap->ops->sff_tf_read(ap, &tf);
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	err = tf.feature;
	if (r_err)
		*r_err = err;

	/* see if device passed diags: continue and warn later */
	if (err == 0)
		/* diagnostic fail : do nothing _YET_ */
		dev->horkage |= ATA_HORKAGE_DIAGNOSTIC;
	else if (err == 1)
		/* do nothing */ ;
	else if ((dev->devno == 0) && (err == 0x81))
		/* do nothing */ ;
	else
		return ATA_DEV_NONE;
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	/* determine if device is ATA or ATAPI */
	class = ata_dev_classify(&tf);
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	if (class == ATA_DEV_UNKNOWN) {
		/* If the device failed diagnostic, it's likely to
		 * have reported incorrect device signature too.
		 * Assume ATA device if the device seems present but
		 * device signature is invalid with diagnostic
		 * failure.
		 */
		if (present && (dev->horkage & ATA_HORKAGE_DIAGNOSTIC))
			class = ATA_DEV_ATA;
		else
			class = ATA_DEV_NONE;
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	} else if ((class == ATA_DEV_ATA) &&
		   (ap->ops->sff_check_status(ap) == 0))
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		class = ATA_DEV_NONE;

	return class;
1894
}
1895
EXPORT_SYMBOL_GPL(ata_sff_dev_classify);
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1897 1898 1899 1900 1901 1902 1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915
/**
 *	ata_sff_wait_after_reset - wait for devices to become ready after reset
 *	@link: SFF link which is just reset
 *	@devmask: mask of present devices
 *	@deadline: deadline jiffies for the operation
 *
 *	Wait devices attached to SFF @link to become ready after
 *	reset.  It contains preceding 150ms wait to avoid accessing TF
 *	status register too early.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep).
 *
 *	RETURNS:
 *	0 on success, -ENODEV if some or all of devices in @devmask
 *	don't seem to exist.  -errno on other errors.
 */
int ata_sff_wait_after_reset(struct ata_link *link, unsigned int devmask,
			     unsigned long deadline)
1916
{
1917
	struct ata_port *ap = link->ap;
1918
	struct ata_ioports *ioaddr = &ap->ioaddr;
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	unsigned int dev0 = devmask & (1 << 0);
	unsigned int dev1 = devmask & (1 << 1);
	int rc, ret = 0;
1922

1923
	msleep(ATA_WAIT_AFTER_RESET);
1924 1925 1926 1927 1928

	/* always check readiness of the master device */
	rc = ata_sff_wait_ready(link, deadline);
	/* -ENODEV means the odd clown forgot the D7 pulldown resistor
	 * and TF status is 0xff, bail out on it too.
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	 */
1930 1931
	if (rc)
		return rc;
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	/* if device 1 was found in ata_devchk, wait for register
	 * access briefly, then wait for BSY to clear.
	 */
	if (dev1) {
		int i;
1938

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		ap->ops->sff_dev_select(ap, 1);
1940

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		/* Wait for register access.  Some ATAPI devices fail
		 * to set nsect/lbal after reset, so don't waste too
		 * much time on it.  We're gonna wait for !BSY anyway.
		 */
		for (i = 0; i < 2; i++) {
			u8 nsect, lbal;

			nsect = ioread8(ioaddr->nsect_addr);
			lbal = ioread8(ioaddr->lbal_addr);
			if ((nsect == 1) && (lbal == 1))
				break;
			msleep(50);	/* give drive a breather */
		}

1955
		rc = ata_sff_wait_ready(link, deadline);
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		if (rc) {
			if (rc != -ENODEV)
				return rc;
			ret = rc;
		}
1961 1962
	}

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	/* is all this really necessary? */
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	ap->ops->sff_dev_select(ap, 0);
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	if (dev1)
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		ap->ops->sff_dev_select(ap, 1);
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	if (dev0)
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		ap->ops->sff_dev_select(ap, 0);
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	return ret;
1971
}
1972
EXPORT_SYMBOL_GPL(ata_sff_wait_after_reset);
1973

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static int ata_bus_softreset(struct ata_port *ap, unsigned int devmask,
			     unsigned long deadline)
1976
{
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	struct ata_ioports *ioaddr = &ap->ioaddr;
1978

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	DPRINTK("ata%u: bus reset via SRST\n", ap->print_id);

	/* software reset.  causes dev0 to be selected */
	iowrite8(ap->ctl, ioaddr->ctl_addr);
	udelay(20);	/* FIXME: flush */
	iowrite8(ap->ctl | ATA_SRST, ioaddr->ctl_addr);
	udelay(20);	/* FIXME: flush */
	iowrite8(ap->ctl, ioaddr->ctl_addr);
1987
	ap->last_ctl = ap->ctl;
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1989 1990
	/* wait the port to become ready */
	return ata_sff_wait_after_reset(&ap->link, devmask, deadline);
1991 1992
}

1993
/**
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 *	ata_sff_softreset - reset host port via ATA SRST
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 *	@link: ATA link to reset
 *	@classes: resulting classes of attached devices
 *	@deadline: deadline jiffies for the operation
1998
 *
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 *	Reset host port using ATA SRST.
2000 2001
 *
 *	LOCKING:
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 *	Kernel thread context (may sleep)
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
2006
 */
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int ata_sff_softreset(struct ata_link *link, unsigned int *classes,
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		      unsigned long deadline)
2009
{
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	struct ata_port *ap = link->ap;
	unsigned int slave_possible = ap->flags & ATA_FLAG_SLAVE_POSS;
	unsigned int devmask = 0;
	int rc;
	u8 err;
2015

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	DPRINTK("ENTER\n");
2017

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	/* determine if device 0/1 are present */
	if (ata_devchk(ap, 0))
		devmask |= (1 << 0);
	if (slave_possible && ata_devchk(ap, 1))
		devmask |= (1 << 1);

	/* select device 0 again */
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	ap->ops->sff_dev_select(ap, 0);
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	/* issue bus reset */
	DPRINTK("about to softreset, devmask=%x\n", devmask);
	rc = ata_bus_softreset(ap, devmask, deadline);
	/* if link is occupied, -ENODEV too is an error */
	if (rc && (rc != -ENODEV || sata_scr_valid(link))) {
		ata_link_printk(link, KERN_ERR, "SRST failed (errno=%d)\n", rc);
		return rc;
	}
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	/* determine by signature whether we have ATA or ATAPI devices */
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	classes[0] = ata_sff_dev_classify(&link->device[0],
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					  devmask & (1 << 0), &err);
	if (slave_possible && err != 0x81)
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		classes[1] = ata_sff_dev_classify(&link->device[1],
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						  devmask & (1 << 1), &err);

	DPRINTK("EXIT, classes[0]=%u [1]=%u\n", classes[0], classes[1]);
	return 0;
2045
}
2046
EXPORT_SYMBOL_GPL(ata_sff_softreset);
2047 2048

/**
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 *	sata_sff_hardreset - reset host port via SATA phy reset
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 *	@link: link to reset
 *	@class: resulting class of attached device
 *	@deadline: deadline jiffies for the operation
2053
 *
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 *	SATA phy-reset host port using DET bits of SControl register,
 *	wait for !BSY and classify the attached device.
2056 2057
 *
 *	LOCKING:
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 *	Kernel thread context (may sleep)
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
2062
 */
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int sata_sff_hardreset(struct ata_link *link, unsigned int *class,
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		       unsigned long deadline)
2065
{
2066 2067 2068
	struct ata_eh_context *ehc = &link->eh_context;
	const unsigned long *timing = sata_ehc_deb_timing(ehc);
	bool online;
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	int rc;

2071 2072 2073 2074
	rc = sata_link_hardreset(link, timing, deadline, &online,
				 ata_sff_check_ready);
	if (online)
		*class = ata_sff_dev_classify(link->device, 1, NULL);
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	DPRINTK("EXIT, class=%u\n", *class);
2077
	return rc;
2078
}
2079
EXPORT_SYMBOL_GPL(sata_sff_hardreset);
2080

2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111
/**
 *	ata_sff_postreset - SFF postreset callback
 *	@link: the target SFF ata_link
 *	@classes: classes of attached devices
 *
 *	This function is invoked after a successful reset.  It first
 *	calls ata_std_postreset() and performs SFF specific postreset
 *	processing.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep)
 */
void ata_sff_postreset(struct ata_link *link, unsigned int *classes)
{
	struct ata_port *ap = link->ap;

	ata_std_postreset(link, classes);

	/* is double-select really necessary? */
	if (classes[0] != ATA_DEV_NONE)
		ap->ops->sff_dev_select(ap, 1);
	if (classes[1] != ATA_DEV_NONE)
		ap->ops->sff_dev_select(ap, 0);

	/* bail out if no device is present */
	if (classes[0] == ATA_DEV_NONE && classes[1] == ATA_DEV_NONE) {
		DPRINTK("EXIT, no device\n");
		return;
	}

	/* set up device control */
2112 2113
	if (ap->ops->sff_set_devctl || ap->ioaddr.ctl_addr) {
		ata_sff_set_devctl(ap, ap->ctl);
2114 2115
		ap->last_ctl = ap->ctl;
	}
2116
}
2117
EXPORT_SYMBOL_GPL(ata_sff_postreset);
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/**
 *	ata_sff_drain_fifo - Stock FIFO drain logic for SFF controllers
 *	@qc: command
 *
 *	Drain the FIFO and device of any stuck data following a command
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 *	failing to complete. In some cases this is necessary before a
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 *	reset will recover the device.
 *
 */

void ata_sff_drain_fifo(struct ata_queued_cmd *qc)
{
	int count;
	struct ata_port *ap;

	/* We only need to flush incoming data when a command was running */
	if (qc == NULL || qc->dma_dir == DMA_TO_DEVICE)
		return;

	ap = qc->ap;
	/* Drain up to 64K of data before we give up this recovery method */
	for (count = 0; (ap->ops->sff_check_status(ap) & ATA_DRQ)
2141
						&& count < 65536; count += 2)
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		ioread16(ap->ioaddr.data_addr);

	/* Can become DEBUG later */
	if (count)
		ata_port_printk(ap, KERN_DEBUG,
			"drained %d bytes to clear DRQ.\n", count);

}
EXPORT_SYMBOL_GPL(ata_sff_drain_fifo);

2152
/**
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 *	ata_sff_error_handler - Stock error handler for SFF controller
2154 2155
 *	@ap: port to handle error for
 *
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 *	Stock error handler for SFF controller.  It can handle both
2157 2158 2159 2160 2161 2162 2163
 *	PATA and SATA controllers.  Many controllers should be able to
 *	use this EH as-is or with some added handling before and
 *	after.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep)
 */
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void ata_sff_error_handler(struct ata_port *ap)
2165
{
2166 2167
	ata_reset_fn_t softreset = ap->ops->softreset;
	ata_reset_fn_t hardreset = ap->ops->hardreset;
2168 2169 2170
	struct ata_queued_cmd *qc;
	unsigned long flags;

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	qc = __ata_qc_from_tag(ap, ap->link.active_tag);
2172 2173 2174
	if (qc && !(qc->flags & ATA_QCFLAG_FAILED))
		qc = NULL;

2175
	spin_lock_irqsave(ap->lock, flags);
2176

T
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2177 2178 2179 2180 2181 2182
	/*
	 * We *MUST* do FIFO draining before we issue a reset as
	 * several devices helpfully clear their internal state and
	 * will lock solid if we touch the data port post reset. Pass
	 * qc in case anyone wants to do different PIO/DMA recovery or
	 * has per command fixups
A
Alan Cox 已提交
2183
	 */
2184 2185
	if (ap->ops->sff_drain_fifo)
		ap->ops->sff_drain_fifo(qc);
2186

2187
	spin_unlock_irqrestore(ap->lock, flags);
2188

T
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2189
	/* ignore ata_sff_softreset if ctl isn't accessible */
T
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2190
	if (softreset == ata_sff_softreset && !ap->ioaddr.ctl_addr)
2191
		softreset = NULL;
T
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2192 2193 2194 2195

	/* ignore built-in hardresets if SCR access is not available */
	if ((hardreset == sata_std_hardreset ||
	     hardreset == sata_sff_hardreset) && !sata_scr_valid(&ap->link))
2196
		hardreset = NULL;
2197

2198 2199
	ata_do_eh(ap, ap->ops->prereset, softreset, hardreset,
		  ap->ops->postreset);
2200
}
2201
EXPORT_SYMBOL_GPL(ata_sff_error_handler);
2202

T
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2203
/**
T
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2204
 *	ata_sff_std_ports - initialize ioaddr with standard port offsets.
T
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2205 2206 2207 2208 2209 2210 2211 2212 2213
 *	@ioaddr: IO address structure to be initialized
 *
 *	Utility function which initializes data_addr, error_addr,
 *	feature_addr, nsect_addr, lbal_addr, lbam_addr, lbah_addr,
 *	device_addr, status_addr, and command_addr to standard offsets
 *	relative to cmd_addr.
 *
 *	Does not set ctl_addr, altstatus_addr, bmdma_addr, or scr_addr.
 */
T
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2214
void ata_sff_std_ports(struct ata_ioports *ioaddr)
T
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2215 2216 2217 2218 2219 2220 2221 2222 2223 2224 2225 2226
{
	ioaddr->data_addr = ioaddr->cmd_addr + ATA_REG_DATA;
	ioaddr->error_addr = ioaddr->cmd_addr + ATA_REG_ERR;
	ioaddr->feature_addr = ioaddr->cmd_addr + ATA_REG_FEATURE;
	ioaddr->nsect_addr = ioaddr->cmd_addr + ATA_REG_NSECT;
	ioaddr->lbal_addr = ioaddr->cmd_addr + ATA_REG_LBAL;
	ioaddr->lbam_addr = ioaddr->cmd_addr + ATA_REG_LBAM;
	ioaddr->lbah_addr = ioaddr->cmd_addr + ATA_REG_LBAH;
	ioaddr->device_addr = ioaddr->cmd_addr + ATA_REG_DEVICE;
	ioaddr->status_addr = ioaddr->cmd_addr + ATA_REG_STATUS;
	ioaddr->command_addr = ioaddr->cmd_addr + ATA_REG_CMD;
}
2227
EXPORT_SYMBOL_GPL(ata_sff_std_ports);
T
Tejun Heo 已提交
2228

2229
#ifdef CONFIG_PCI
2230

2231 2232 2233 2234 2235 2236
static int ata_resources_present(struct pci_dev *pdev, int port)
{
	int i;

	/* Check the PCI resources for this channel are enabled */
	port = port * 2;
2237
	for (i = 0; i < 2; i++) {
2238 2239 2240 2241 2242 2243 2244
		if (pci_resource_start(pdev, port + i) == 0 ||
		    pci_resource_len(pdev, port + i) == 0)
			return 0;
	}
	return 1;
}

2245
/**
T
Tejun Heo 已提交
2246
 *	ata_pci_sff_init_host - acquire native PCI ATA resources and init host
2247 2248
 *	@host: target ATA host
 *
T
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2249 2250 2251
 *	Acquire native PCI ATA resources for @host and initialize the
 *	first two ports of @host accordingly.  Ports marked dummy are
 *	skipped and allocation failure makes the port dummy.
2252
 *
2253 2254 2255 2256
 *	Note that native PCI resources are valid even for legacy hosts
 *	as we fix up pdev resources array early in boot, so this
 *	function can be used for both native and legacy SFF hosts.
 *
2257 2258 2259 2260
 *	LOCKING:
 *	Inherited from calling layer (may sleep).
 *
 *	RETURNS:
T
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2261 2262
 *	0 if at least one port is initialized, -ENODEV if no port is
 *	available.
2263
 */
T
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2264
int ata_pci_sff_init_host(struct ata_host *host)
2265 2266 2267
{
	struct device *gdev = host->dev;
	struct pci_dev *pdev = to_pci_dev(gdev);
T
Tejun Heo 已提交
2268
	unsigned int mask = 0;
2269 2270 2271 2272 2273 2274 2275 2276
	int i, rc;

	/* request, iomap BARs and init port addresses accordingly */
	for (i = 0; i < 2; i++) {
		struct ata_port *ap = host->ports[i];
		int base = i * 2;
		void __iomem * const *iomap;

T
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2277 2278 2279 2280 2281 2282 2283 2284 2285
		if (ata_port_is_dummy(ap))
			continue;

		/* Discard disabled ports.  Some controllers show
		 * their unused channels this way.  Disabled ports are
		 * made dummy.
		 */
		if (!ata_resources_present(pdev, i)) {
			ap->ops = &ata_dummy_port_ops;
2286
			continue;
T
Tejun Heo 已提交
2287
		}
2288

2289 2290
		rc = pcim_iomap_regions(pdev, 0x3 << base,
					dev_driver_string(gdev));
2291
		if (rc) {
T
Tejun Heo 已提交
2292 2293 2294
			dev_printk(KERN_WARNING, gdev,
				   "failed to request/iomap BARs for port %d "
				   "(errno=%d)\n", i, rc);
2295 2296
			if (rc == -EBUSY)
				pcim_pin_device(pdev);
T
Tejun Heo 已提交
2297 2298
			ap->ops = &ata_dummy_port_ops;
			continue;
2299 2300 2301 2302 2303 2304 2305
		}
		host->iomap = iomap = pcim_iomap_table(pdev);

		ap->ioaddr.cmd_addr = iomap[base];
		ap->ioaddr.altstatus_addr =
		ap->ioaddr.ctl_addr = (void __iomem *)
			((unsigned long)iomap[base + 1] | ATA_PCI_CTL_OFS);
T
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2306
		ata_sff_std_ports(&ap->ioaddr);
T
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2307

2308 2309 2310 2311
		ata_port_desc(ap, "cmd 0x%llx ctl 0x%llx",
			(unsigned long long)pci_resource_start(pdev, base),
			(unsigned long long)pci_resource_start(pdev, base + 1));

T
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2312 2313 2314 2315 2316 2317
		mask |= 1 << i;
	}

	if (!mask) {
		dev_printk(KERN_ERR, gdev, "no available native port\n");
		return -ENODEV;
2318 2319 2320 2321
	}

	return 0;
}
2322
EXPORT_SYMBOL_GPL(ata_pci_sff_init_host);
2323

2324
/**
T
Tejun Heo 已提交
2325
 *	ata_pci_sff_prepare_host - helper to prepare PCI PIO-only SFF ATA host
2326
 *	@pdev: target PCI device
T
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2327
 *	@ppi: array of port_info, must be enough for two ports
2328 2329
 *	@r_host: out argument for the initialized ATA host
 *
T
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2330 2331
 *	Helper to allocate PIO-only SFF ATA host for @pdev, acquire
 *	all PCI resources and initialize it accordingly in one go.
2332 2333 2334 2335 2336 2337 2338
 *
 *	LOCKING:
 *	Inherited from calling layer (may sleep).
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
 */
T
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2339
int ata_pci_sff_prepare_host(struct pci_dev *pdev,
2340
			     const struct ata_port_info * const *ppi,
2341
			     struct ata_host **r_host)
2342 2343 2344 2345 2346 2347 2348 2349 2350 2351 2352 2353 2354 2355 2356
{
	struct ata_host *host;
	int rc;

	if (!devres_open_group(&pdev->dev, NULL, GFP_KERNEL))
		return -ENOMEM;

	host = ata_host_alloc_pinfo(&pdev->dev, ppi, 2);
	if (!host) {
		dev_printk(KERN_ERR, &pdev->dev,
			   "failed to allocate ATA host\n");
		rc = -ENOMEM;
		goto err_out;
	}

T
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2357
	rc = ata_pci_sff_init_host(host);
2358 2359 2360 2361 2362 2363 2364
	if (rc)
		goto err_out;

	devres_remove_group(&pdev->dev, NULL);
	*r_host = host;
	return 0;

2365
err_out:
2366 2367 2368
	devres_release_group(&pdev->dev, NULL);
	return rc;
}
2369
EXPORT_SYMBOL_GPL(ata_pci_sff_prepare_host);
2370

2371
/**
T
Tejun Heo 已提交
2372
 *	ata_pci_sff_activate_host - start SFF host, request IRQ and register it
2373 2374 2375 2376 2377 2378 2379 2380 2381 2382 2383 2384 2385 2386
 *	@host: target SFF ATA host
 *	@irq_handler: irq_handler used when requesting IRQ(s)
 *	@sht: scsi_host_template to use when registering the host
 *
 *	This is the counterpart of ata_host_activate() for SFF ATA
 *	hosts.  This separate helper is necessary because SFF hosts
 *	use two separate interrupts in legacy mode.
 *
 *	LOCKING:
 *	Inherited from calling layer (may sleep).
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
 */
T
Tejun Heo 已提交
2387
int ata_pci_sff_activate_host(struct ata_host *host,
2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400 2401 2402 2403 2404 2405 2406 2407 2408 2409 2410 2411 2412 2413 2414 2415 2416 2417 2418 2419 2420 2421 2422 2423 2424 2425 2426 2427 2428 2429 2430 2431 2432 2433 2434 2435 2436 2437 2438 2439 2440 2441 2442 2443 2444 2445 2446 2447 2448 2449 2450 2451 2452 2453 2454
			      irq_handler_t irq_handler,
			      struct scsi_host_template *sht)
{
	struct device *dev = host->dev;
	struct pci_dev *pdev = to_pci_dev(dev);
	const char *drv_name = dev_driver_string(host->dev);
	int legacy_mode = 0, rc;

	rc = ata_host_start(host);
	if (rc)
		return rc;

	if ((pdev->class >> 8) == PCI_CLASS_STORAGE_IDE) {
		u8 tmp8, mask;

		/* TODO: What if one channel is in native mode ... */
		pci_read_config_byte(pdev, PCI_CLASS_PROG, &tmp8);
		mask = (1 << 2) | (1 << 0);
		if ((tmp8 & mask) != mask)
			legacy_mode = 1;
#if defined(CONFIG_NO_ATA_LEGACY)
		/* Some platforms with PCI limits cannot address compat
		   port space. In that case we punt if their firmware has
		   left a device in compatibility mode */
		if (legacy_mode) {
			printk(KERN_ERR "ata: Compatibility mode ATA is not supported on this platform, skipping.\n");
			return -EOPNOTSUPP;
		}
#endif
	}

	if (!devres_open_group(dev, NULL, GFP_KERNEL))
		return -ENOMEM;

	if (!legacy_mode && pdev->irq) {
		rc = devm_request_irq(dev, pdev->irq, irq_handler,
				      IRQF_SHARED, drv_name, host);
		if (rc)
			goto out;

		ata_port_desc(host->ports[0], "irq %d", pdev->irq);
		ata_port_desc(host->ports[1], "irq %d", pdev->irq);
	} else if (legacy_mode) {
		if (!ata_port_is_dummy(host->ports[0])) {
			rc = devm_request_irq(dev, ATA_PRIMARY_IRQ(pdev),
					      irq_handler, IRQF_SHARED,
					      drv_name, host);
			if (rc)
				goto out;

			ata_port_desc(host->ports[0], "irq %d",
				      ATA_PRIMARY_IRQ(pdev));
		}

		if (!ata_port_is_dummy(host->ports[1])) {
			rc = devm_request_irq(dev, ATA_SECONDARY_IRQ(pdev),
					      irq_handler, IRQF_SHARED,
					      drv_name, host);
			if (rc)
				goto out;

			ata_port_desc(host->ports[1], "irq %d",
				      ATA_SECONDARY_IRQ(pdev));
		}
	}

	rc = ata_host_register(host, sht);
2455
out:
2456 2457 2458 2459 2460 2461 2462
	if (rc == 0)
		devres_remove_group(dev, NULL);
	else
		devres_release_group(dev, NULL);

	return rc;
}
2463
EXPORT_SYMBOL_GPL(ata_pci_sff_activate_host);
2464

T
Tejun Heo 已提交
2465 2466 2467 2468 2469 2470 2471 2472 2473 2474 2475 2476 2477
static const struct ata_port_info *ata_sff_find_valid_pi(
					const struct ata_port_info * const *ppi)
{
	int i;

	/* look up the first valid port_info */
	for (i = 0; i < 2 && ppi[i]; i++)
		if (ppi[i]->port_ops != &ata_dummy_port_ops)
			return ppi[i];

	return NULL;
}

2478
/**
T
Tejun Heo 已提交
2479
 *	ata_pci_sff_init_one - Initialize/register PIO-only PCI IDE controller
2480
 *	@pdev: Controller to be initialized
T
Tejun Heo 已提交
2481
 *	@ppi: array of port_info, must be enough for two ports
2482
 *	@sht: scsi_host_template to use when registering the host
2483
 *	@host_priv: host private_data
2484
 *	@hflag: host flags
2485 2486 2487
 *
 *	This is a helper function which can be called from a driver's
 *	xxx_init_one() probe function if the hardware uses traditional
T
Tejun Heo 已提交
2488
 *	IDE taskfile registers and is PIO only.
2489
 *
2490 2491 2492 2493
 *	ASSUMPTION:
 *	Nobody makes a single channel controller that appears solely as
 *	the secondary legacy port on PCI.
 *
2494 2495 2496 2497 2498 2499
 *	LOCKING:
 *	Inherited from PCI layer (may sleep).
 *
 *	RETURNS:
 *	Zero on success, negative on errno-based value on error.
 */
T
Tejun Heo 已提交
2500
int ata_pci_sff_init_one(struct pci_dev *pdev,
2501 2502
		 const struct ata_port_info * const *ppi,
		 struct scsi_host_template *sht, void *host_priv, int hflag)
2503
{
2504
	struct device *dev = &pdev->dev;
T
Tejun Heo 已提交
2505
	const struct ata_port_info *pi;
2506
	struct ata_host *host = NULL;
T
Tejun Heo 已提交
2507
	int rc;
2508 2509 2510

	DPRINTK("ENTER\n");

T
Tejun Heo 已提交
2511
	pi = ata_sff_find_valid_pi(ppi);
T
Tejun Heo 已提交
2512 2513 2514 2515 2516
	if (!pi) {
		dev_printk(KERN_ERR, &pdev->dev,
			   "no valid port_info specified\n");
		return -EINVAL;
	}
2517

T
Tejun Heo 已提交
2518 2519
	if (!devres_open_group(dev, NULL, GFP_KERNEL))
		return -ENOMEM;
2520

2521
	rc = pcim_enable_device(pdev);
2522
	if (rc)
2523
		goto out;
2524

2525
	/* prepare and activate SFF host */
T
Tejun Heo 已提交
2526
	rc = ata_pci_sff_prepare_host(pdev, ppi, &host);
2527
	if (rc)
2528
		goto out;
2529
	host->private_data = host_priv;
2530
	host->flags |= hflag;
2531

T
Tejun Heo 已提交
2532
	rc = ata_pci_sff_activate_host(host, ata_sff_interrupt, sht);
2533
out:
2534 2535 2536 2537
	if (rc == 0)
		devres_remove_group(&pdev->dev, NULL);
	else
		devres_release_group(&pdev->dev, NULL);
2538

2539 2540
	return rc;
}
2541
EXPORT_SYMBOL_GPL(ata_pci_sff_init_one);
2542 2543

#endif /* CONFIG_PCI */
2544

T
Tejun Heo 已提交
2545 2546 2547 2548 2549 2550
/*
 *	BMDMA support
 */

#ifdef CONFIG_ATA_BMDMA

2551 2552 2553
const struct ata_port_operations ata_bmdma_port_ops = {
	.inherits		= &ata_sff_port_ops,

T
Tejun Heo 已提交
2554 2555 2556
	.error_handler		= ata_bmdma_error_handler,
	.post_internal_cmd	= ata_bmdma_post_internal_cmd,

2557
	.qc_prep		= ata_bmdma_qc_prep,
2558
	.qc_issue		= ata_bmdma_qc_issue,
2559

2560
	.sff_irq_clear		= ata_bmdma_irq_clear,
2561 2562 2563 2564
	.bmdma_setup		= ata_bmdma_setup,
	.bmdma_start		= ata_bmdma_start,
	.bmdma_stop		= ata_bmdma_stop,
	.bmdma_status		= ata_bmdma_status,
2565 2566

	.port_start		= ata_bmdma_port_start,
2567 2568 2569 2570 2571 2572 2573
};
EXPORT_SYMBOL_GPL(ata_bmdma_port_ops);

const struct ata_port_operations ata_bmdma32_port_ops = {
	.inherits		= &ata_bmdma_port_ops,

	.sff_data_xfer		= ata_sff_data_xfer32,
2574
	.port_start		= ata_bmdma_port_start32,
2575 2576 2577
};
EXPORT_SYMBOL_GPL(ata_bmdma32_port_ops);

2578 2579 2580 2581 2582 2583 2584 2585 2586 2587 2588 2589 2590 2591
/**
 *	ata_bmdma_fill_sg - Fill PCI IDE PRD table
 *	@qc: Metadata associated with taskfile to be transferred
 *
 *	Fill PCI IDE PRD (scatter-gather) table with segments
 *	associated with the current disk command.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 *
 */
static void ata_bmdma_fill_sg(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
T
Tejun Heo 已提交
2592
	struct ata_bmdma_prd *prd = ap->bmdma_prd;
2593 2594 2595 2596 2597 2598 2599 2600 2601 2602 2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613
	struct scatterlist *sg;
	unsigned int si, pi;

	pi = 0;
	for_each_sg(qc->sg, sg, qc->n_elem, si) {
		u32 addr, offset;
		u32 sg_len, len;

		/* determine if physical DMA addr spans 64K boundary.
		 * Note h/w doesn't support 64-bit, so we unconditionally
		 * truncate dma_addr_t to u32.
		 */
		addr = (u32) sg_dma_address(sg);
		sg_len = sg_dma_len(sg);

		while (sg_len) {
			offset = addr & 0xffff;
			len = sg_len;
			if ((offset + sg_len) > 0x10000)
				len = 0x10000 - offset;

T
Tejun Heo 已提交
2614 2615
			prd[pi].addr = cpu_to_le32(addr);
			prd[pi].flags_len = cpu_to_le32(len & 0xffff);
2616 2617 2618 2619 2620 2621 2622 2623
			VPRINTK("PRD[%u] = (0x%X, 0x%X)\n", pi, addr, len);

			pi++;
			sg_len -= len;
			addr += len;
		}
	}

T
Tejun Heo 已提交
2624
	prd[pi - 1].flags_len |= cpu_to_le32(ATA_PRD_EOT);
2625 2626 2627 2628 2629 2630 2631 2632 2633 2634 2635 2636 2637 2638 2639 2640 2641 2642
}

/**
 *	ata_bmdma_fill_sg_dumb - Fill PCI IDE PRD table
 *	@qc: Metadata associated with taskfile to be transferred
 *
 *	Fill PCI IDE PRD (scatter-gather) table with segments
 *	associated with the current disk command. Perform the fill
 *	so that we avoid writing any length 64K records for
 *	controllers that don't follow the spec.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 *
 */
static void ata_bmdma_fill_sg_dumb(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
T
Tejun Heo 已提交
2643
	struct ata_bmdma_prd *prd = ap->bmdma_prd;
2644 2645 2646 2647 2648 2649 2650 2651 2652 2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665
	struct scatterlist *sg;
	unsigned int si, pi;

	pi = 0;
	for_each_sg(qc->sg, sg, qc->n_elem, si) {
		u32 addr, offset;
		u32 sg_len, len, blen;

		/* determine if physical DMA addr spans 64K boundary.
		 * Note h/w doesn't support 64-bit, so we unconditionally
		 * truncate dma_addr_t to u32.
		 */
		addr = (u32) sg_dma_address(sg);
		sg_len = sg_dma_len(sg);

		while (sg_len) {
			offset = addr & 0xffff;
			len = sg_len;
			if ((offset + sg_len) > 0x10000)
				len = 0x10000 - offset;

			blen = len & 0xffff;
T
Tejun Heo 已提交
2666
			prd[pi].addr = cpu_to_le32(addr);
2667 2668 2669 2670
			if (blen == 0) {
				/* Some PATA chipsets like the CS5530 can't
				   cope with 0x0000 meaning 64K as the spec
				   says */
T
Tejun Heo 已提交
2671
				prd[pi].flags_len = cpu_to_le32(0x8000);
2672
				blen = 0x8000;
T
Tejun Heo 已提交
2673
				prd[++pi].addr = cpu_to_le32(addr + 0x8000);
2674
			}
T
Tejun Heo 已提交
2675
			prd[pi].flags_len = cpu_to_le32(blen);
2676 2677 2678 2679 2680 2681 2682 2683
			VPRINTK("PRD[%u] = (0x%X, 0x%X)\n", pi, addr, len);

			pi++;
			sg_len -= len;
			addr += len;
		}
	}

T
Tejun Heo 已提交
2684
	prd[pi - 1].flags_len |= cpu_to_le32(ATA_PRD_EOT);
2685 2686 2687 2688 2689 2690 2691 2692 2693 2694 2695 2696 2697 2698 2699 2700 2701 2702 2703 2704 2705 2706 2707 2708 2709 2710 2711 2712 2713 2714 2715 2716 2717 2718 2719 2720 2721 2722
}

/**
 *	ata_bmdma_qc_prep - Prepare taskfile for submission
 *	@qc: Metadata associated with taskfile to be prepared
 *
 *	Prepare ATA taskfile for submission.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
void ata_bmdma_qc_prep(struct ata_queued_cmd *qc)
{
	if (!(qc->flags & ATA_QCFLAG_DMAMAP))
		return;

	ata_bmdma_fill_sg(qc);
}
EXPORT_SYMBOL_GPL(ata_bmdma_qc_prep);

/**
 *	ata_bmdma_dumb_qc_prep - Prepare taskfile for submission
 *	@qc: Metadata associated with taskfile to be prepared
 *
 *	Prepare ATA taskfile for submission.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
void ata_bmdma_dumb_qc_prep(struct ata_queued_cmd *qc)
{
	if (!(qc->flags & ATA_QCFLAG_DMAMAP))
		return;

	ata_bmdma_fill_sg_dumb(qc);
}
EXPORT_SYMBOL_GPL(ata_bmdma_dumb_qc_prep);

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/**
 *	ata_bmdma_qc_issue - issue taskfile to a BMDMA controller
 *	@qc: command to issue to device
 *
 *	This function issues a PIO, NODATA or DMA command to a
 *	SFF/BMDMA controller.  PIO and NODATA are handled by
 *	ata_sff_qc_issue().
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 *
 *	RETURNS:
 *	Zero on success, AC_ERR_* mask on failure
 */
unsigned int ata_bmdma_qc_issue(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;

	/* defer PIO handling to sff_qc_issue */
	if (!ata_is_dma(qc->tf.protocol))
		return ata_sff_qc_issue(qc);

	/* select the device */
	ata_dev_select(ap, qc->dev->devno, 1, 0);

	/* start the command */
	switch (qc->tf.protocol) {
	case ATA_PROT_DMA:
		WARN_ON_ONCE(qc->tf.flags & ATA_TFLAG_POLLING);

		ap->ops->sff_tf_load(ap, &qc->tf);  /* load tf registers */
		ap->ops->bmdma_setup(qc);	    /* set up bmdma */
		ap->ops->bmdma_start(qc);	    /* initiate bmdma */
		ap->hsm_task_state = HSM_ST_LAST;
		break;

	case ATAPI_PROT_DMA:
		WARN_ON_ONCE(qc->tf.flags & ATA_TFLAG_POLLING);

		ap->ops->sff_tf_load(ap, &qc->tf);  /* load tf registers */
		ap->ops->bmdma_setup(qc);	    /* set up bmdma */
		ap->hsm_task_state = HSM_ST_FIRST;

		/* send cdb by polling if no cdb interrupt */
		if (!(qc->dev->flags & ATA_DFLAG_CDB_INTR))
			ata_sff_queue_pio_task(ap, 0);
		break;

	default:
		WARN_ON(1);
		return AC_ERR_SYSTEM;
	}

	return 0;
}
EXPORT_SYMBOL_GPL(ata_bmdma_qc_issue);

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/**
 *	ata_bmdma_port_intr - Handle BMDMA port interrupt
 *	@ap: Port on which interrupt arrived (possibly...)
 *	@qc: Taskfile currently active in engine
 *
 *	Handle port interrupt for given queued command.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 *
 *	RETURNS:
 *	One if interrupt was handled, zero if not (shared irq).
 */
unsigned int ata_bmdma_port_intr(struct ata_port *ap, struct ata_queued_cmd *qc)
{
	struct ata_eh_info *ehi = &ap->link.eh_info;
	u8 host_stat = 0;
	bool bmdma_stopped = false;
	unsigned int handled;

	if (ap->hsm_task_state == HSM_ST_LAST && ata_is_dma(qc->tf.protocol)) {
		/* check status of DMA engine */
		host_stat = ap->ops->bmdma_status(ap);
		VPRINTK("ata%u: host_stat 0x%X\n", ap->print_id, host_stat);

		/* if it's not our irq... */
		if (!(host_stat & ATA_DMA_INTR))
			return ata_sff_idle_irq(ap);

		/* before we do anything else, clear DMA-Start bit */
		ap->ops->bmdma_stop(qc);
		bmdma_stopped = true;

		if (unlikely(host_stat & ATA_DMA_ERR)) {
			/* error when transfering data to/from memory */
			qc->err_mask |= AC_ERR_HOST_BUS;
			ap->hsm_task_state = HSM_ST_ERR;
		}
	}

	handled = __ata_sff_port_intr(ap, qc, bmdma_stopped);

	if (unlikely(qc->err_mask) && ata_is_dma(qc->tf.protocol))
		ata_ehi_push_desc(ehi, "BMDMA stat 0x%x", host_stat);

	return handled;
}
EXPORT_SYMBOL_GPL(ata_bmdma_port_intr);

/**
 *	ata_bmdma_interrupt - Default BMDMA ATA host interrupt handler
 *	@irq: irq line (unused)
 *	@dev_instance: pointer to our ata_host information structure
 *
 *	Default interrupt handler for PCI IDE devices.  Calls
 *	ata_bmdma_port_intr() for each port that is not disabled.
 *
 *	LOCKING:
 *	Obtains host lock during operation.
 *
 *	RETURNS:
 *	IRQ_NONE or IRQ_HANDLED.
 */
irqreturn_t ata_bmdma_interrupt(int irq, void *dev_instance)
{
	return __ata_sff_interrupt(irq, dev_instance, ata_bmdma_port_intr);
}
EXPORT_SYMBOL_GPL(ata_bmdma_interrupt);

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/**
 *	ata_bmdma_error_handler - Stock error handler for BMDMA controller
 *	@ap: port to handle error for
 *
 *	Stock error handler for BMDMA controller.  It can handle both
 *	PATA and SATA controllers.  Most BMDMA controllers should be
 *	able to use this EH as-is or with some added handling before
 *	and after.
 *
 *	LOCKING:
 *	Kernel thread context (may sleep)
 */
void ata_bmdma_error_handler(struct ata_port *ap)
{
	struct ata_queued_cmd *qc;
	unsigned long flags;
	bool thaw = false;

	qc = __ata_qc_from_tag(ap, ap->link.active_tag);
	if (qc && !(qc->flags & ATA_QCFLAG_FAILED))
		qc = NULL;

	/* reset PIO HSM and stop DMA engine */
	spin_lock_irqsave(ap->lock, flags);

	if (qc && ata_is_dma(qc->tf.protocol)) {
		u8 host_stat;

		host_stat = ap->ops->bmdma_status(ap);

		/* BMDMA controllers indicate host bus error by
		 * setting DMA_ERR bit and timing out.  As it wasn't
		 * really a timeout event, adjust error mask and
		 * cancel frozen state.
		 */
		if (qc->err_mask == AC_ERR_TIMEOUT && (host_stat & ATA_DMA_ERR)) {
			qc->err_mask = AC_ERR_HOST_BUS;
			thaw = true;
		}

		ap->ops->bmdma_stop(qc);

		/* if we're gonna thaw, make sure IRQ is clear */
		if (thaw) {
			ap->ops->sff_check_status(ap);
2894 2895
			if (ap->ops->sff_irq_clear)
				ap->ops->sff_irq_clear(ap);
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		}
	}

	spin_unlock_irqrestore(ap->lock, flags);

	if (thaw)
		ata_eh_thaw_port(ap);

	ata_sff_error_handler(ap);
}
EXPORT_SYMBOL_GPL(ata_bmdma_error_handler);

/**
 *	ata_bmdma_post_internal_cmd - Stock post_internal_cmd for BMDMA
 *	@qc: internal command to clean up
 *
 *	LOCKING:
 *	Kernel thread context (may sleep)
 */
void ata_bmdma_post_internal_cmd(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
	unsigned long flags;

	if (ata_is_dma(qc->tf.protocol)) {
		spin_lock_irqsave(ap->lock, flags);
		ap->ops->bmdma_stop(qc);
		spin_unlock_irqrestore(ap->lock, flags);
	}
}
EXPORT_SYMBOL_GPL(ata_bmdma_post_internal_cmd);

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/**
 *	ata_bmdma_irq_clear - Clear PCI IDE BMDMA interrupt.
 *	@ap: Port associated with this ATA transaction.
 *
 *	Clear interrupt and error flags in DMA status register.
 *
 *	May be used as the irq_clear() entry in ata_port_operations.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
void ata_bmdma_irq_clear(struct ata_port *ap)
{
	void __iomem *mmio = ap->ioaddr.bmdma_addr;

	if (!mmio)
		return;

	iowrite8(ioread8(mmio + ATA_DMA_STATUS), mmio + ATA_DMA_STATUS);
}
EXPORT_SYMBOL_GPL(ata_bmdma_irq_clear);

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/**
 *	ata_bmdma_setup - Set up PCI IDE BMDMA transaction
 *	@qc: Info associated with this ATA transaction.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
void ata_bmdma_setup(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
	unsigned int rw = (qc->tf.flags & ATA_TFLAG_WRITE);
	u8 dmactl;

	/* load PRD table addr. */
	mb();	/* make sure PRD table writes are visible to controller */
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	iowrite32(ap->bmdma_prd_dma, ap->ioaddr.bmdma_addr + ATA_DMA_TABLE_OFS);
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	/* specify data direction, triple-check start bit is clear */
	dmactl = ioread8(ap->ioaddr.bmdma_addr + ATA_DMA_CMD);
	dmactl &= ~(ATA_DMA_WR | ATA_DMA_START);
	if (!rw)
		dmactl |= ATA_DMA_WR;
	iowrite8(dmactl, ap->ioaddr.bmdma_addr + ATA_DMA_CMD);

	/* issue r/w command */
	ap->ops->sff_exec_command(ap, &qc->tf);
}
EXPORT_SYMBOL_GPL(ata_bmdma_setup);

/**
 *	ata_bmdma_start - Start a PCI IDE BMDMA transaction
 *	@qc: Info associated with this ATA transaction.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
void ata_bmdma_start(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
	u8 dmactl;

	/* start host DMA transaction */
	dmactl = ioread8(ap->ioaddr.bmdma_addr + ATA_DMA_CMD);
	iowrite8(dmactl | ATA_DMA_START, ap->ioaddr.bmdma_addr + ATA_DMA_CMD);

	/* Strictly, one may wish to issue an ioread8() here, to
	 * flush the mmio write.  However, control also passes
	 * to the hardware at this point, and it will interrupt
	 * us when we are to resume control.  So, in effect,
	 * we don't care when the mmio write flushes.
	 * Further, a read of the DMA status register _immediately_
	 * following the write may not be what certain flaky hardware
	 * is expected, so I think it is best to not add a readb()
	 * without first all the MMIO ATA cards/mobos.
	 * Or maybe I'm just being paranoid.
	 *
	 * FIXME: The posting of this write means I/O starts are
	 * unneccessarily delayed for MMIO
	 */
}
EXPORT_SYMBOL_GPL(ata_bmdma_start);

/**
 *	ata_bmdma_stop - Stop PCI IDE BMDMA transfer
 *	@qc: Command we are ending DMA for
 *
 *	Clears the ATA_DMA_START flag in the dma control register
 *
 *	May be used as the bmdma_stop() entry in ata_port_operations.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
void ata_bmdma_stop(struct ata_queued_cmd *qc)
{
	struct ata_port *ap = qc->ap;
	void __iomem *mmio = ap->ioaddr.bmdma_addr;

	/* clear start/stop bit */
	iowrite8(ioread8(mmio + ATA_DMA_CMD) & ~ATA_DMA_START,
		 mmio + ATA_DMA_CMD);

	/* one-PIO-cycle guaranteed wait, per spec, for HDMA1:0 transition */
	ata_sff_dma_pause(ap);
}
EXPORT_SYMBOL_GPL(ata_bmdma_stop);

/**
 *	ata_bmdma_status - Read PCI IDE BMDMA status
 *	@ap: Port associated with this ATA transaction.
 *
 *	Read and return BMDMA status register.
 *
 *	May be used as the bmdma_status() entry in ata_port_operations.
 *
 *	LOCKING:
 *	spin_lock_irqsave(host lock)
 */
u8 ata_bmdma_status(struct ata_port *ap)
{
	return ioread8(ap->ioaddr.bmdma_addr + ATA_DMA_STATUS);
}
EXPORT_SYMBOL_GPL(ata_bmdma_status);

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/**
 *	ata_bmdma_port_start - Set port up for bmdma.
 *	@ap: Port to initialize
 *
 *	Called just after data structures for each port are
 *	initialized.  Allocates space for PRD table.
 *
 *	May be used as the port_start() entry in ata_port_operations.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
int ata_bmdma_port_start(struct ata_port *ap)
{
	if (ap->mwdma_mask || ap->udma_mask) {
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		ap->bmdma_prd =
			dmam_alloc_coherent(ap->host->dev, ATA_PRD_TBL_SZ,
					    &ap->bmdma_prd_dma, GFP_KERNEL);
		if (!ap->bmdma_prd)
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			return -ENOMEM;
	}

	return 0;
}
EXPORT_SYMBOL_GPL(ata_bmdma_port_start);

/**
 *	ata_bmdma_port_start32 - Set port up for dma.
 *	@ap: Port to initialize
 *
 *	Called just after data structures for each port are
 *	initialized.  Enables 32bit PIO and allocates space for PRD
 *	table.
 *
 *	May be used as the port_start() entry in ata_port_operations for
 *	devices that are capable of 32bit PIO.
 *
 *	LOCKING:
 *	Inherited from caller.
 */
int ata_bmdma_port_start32(struct ata_port *ap)
{
	ap->pflags |= ATA_PFLAG_PIO32 | ATA_PFLAG_PIO32CHANGE;
	return ata_bmdma_port_start(ap);
}
EXPORT_SYMBOL_GPL(ata_bmdma_port_start32);

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#ifdef CONFIG_PCI

/**
 *	ata_pci_bmdma_clear_simplex -	attempt to kick device out of simplex
 *	@pdev: PCI device
 *
 *	Some PCI ATA devices report simplex mode but in fact can be told to
 *	enter non simplex mode. This implements the necessary logic to
 *	perform the task on such devices. Calling it on other devices will
 *	have -undefined- behaviour.
 */
int ata_pci_bmdma_clear_simplex(struct pci_dev *pdev)
{
	unsigned long bmdma = pci_resource_start(pdev, 4);
	u8 simplex;

	if (bmdma == 0)
		return -ENOENT;

	simplex = inb(bmdma + 0x02);
	outb(simplex & 0x60, bmdma + 0x02);
	simplex = inb(bmdma + 0x02);
	if (simplex & 0x80)
		return -EOPNOTSUPP;
	return 0;
}
EXPORT_SYMBOL_GPL(ata_pci_bmdma_clear_simplex);

3130 3131 3132 3133 3134 3135 3136 3137 3138 3139 3140 3141 3142
static void ata_bmdma_nodma(struct ata_host *host, const char *reason)
{
	int i;

	dev_printk(KERN_ERR, host->dev, "BMDMA: %s, falling back to PIO\n",
		   reason);

	for (i = 0; i < 2; i++) {
		host->ports[i]->mwdma_mask = 0;
		host->ports[i]->udma_mask = 0;
	}
}

3143 3144 3145 3146 3147 3148 3149 3150 3151
/**
 *	ata_pci_bmdma_init - acquire PCI BMDMA resources and init ATA host
 *	@host: target ATA host
 *
 *	Acquire PCI BMDMA resources and initialize @host accordingly.
 *
 *	LOCKING:
 *	Inherited from calling layer (may sleep).
 */
3152
void ata_pci_bmdma_init(struct ata_host *host)
3153 3154 3155 3156 3157 3158
{
	struct device *gdev = host->dev;
	struct pci_dev *pdev = to_pci_dev(gdev);
	int i, rc;

	/* No BAR4 allocation: No DMA */
3159 3160 3161 3162
	if (pci_resource_start(pdev, 4) == 0) {
		ata_bmdma_nodma(host, "BAR4 is zero");
		return;
	}
3163

3164 3165 3166 3167 3168 3169
	/*
	 * Some controllers require BMDMA region to be initialized
	 * even if DMA is not in use to clear IRQ status via
	 * ->sff_irq_clear method.  Try to initialize bmdma_addr
	 * regardless of dma masks.
	 */
3170 3171
	rc = pci_set_dma_mask(pdev, ATA_DMA_MASK);
	if (rc)
3172 3173 3174 3175 3176 3177 3178
		ata_bmdma_nodma(host, "failed to set dma mask");
	if (!rc) {
		rc = pci_set_consistent_dma_mask(pdev, ATA_DMA_MASK);
		if (rc)
			ata_bmdma_nodma(host,
					"failed to set consistent dma mask");
	}
3179 3180 3181 3182

	/* request and iomap DMA region */
	rc = pcim_iomap_regions(pdev, 1 << 4, dev_driver_string(gdev));
	if (rc) {
3183 3184
		ata_bmdma_nodma(host, "failed to request/iomap BAR4");
		return;
3185 3186 3187 3188 3189 3190 3191 3192 3193 3194 3195 3196 3197 3198 3199 3200 3201 3202 3203 3204 3205
	}
	host->iomap = pcim_iomap_table(pdev);

	for (i = 0; i < 2; i++) {
		struct ata_port *ap = host->ports[i];
		void __iomem *bmdma = host->iomap[4] + 8 * i;

		if (ata_port_is_dummy(ap))
			continue;

		ap->ioaddr.bmdma_addr = bmdma;
		if ((!(ap->flags & ATA_FLAG_IGN_SIMPLEX)) &&
		    (ioread8(bmdma + 2) & 0x80))
			host->flags |= ATA_HOST_SIMPLEX;

		ata_port_desc(ap, "bmdma 0x%llx",
		    (unsigned long long)pci_resource_start(pdev, 4) + 8 * i);
	}
}
EXPORT_SYMBOL_GPL(ata_pci_bmdma_init);

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/**
 *	ata_pci_bmdma_prepare_host - helper to prepare PCI BMDMA ATA host
 *	@pdev: target PCI device
 *	@ppi: array of port_info, must be enough for two ports
 *	@r_host: out argument for the initialized ATA host
 *
 *	Helper to allocate BMDMA ATA host for @pdev, acquire all PCI
 *	resources and initialize it accordingly in one go.
 *
 *	LOCKING:
 *	Inherited from calling layer (may sleep).
 *
 *	RETURNS:
 *	0 on success, -errno otherwise.
 */
int ata_pci_bmdma_prepare_host(struct pci_dev *pdev,
			       const struct ata_port_info * const * ppi,
			       struct ata_host **r_host)
{
	int rc;

	rc = ata_pci_sff_prepare_host(pdev, ppi, r_host);
	if (rc)
		return rc;

	ata_pci_bmdma_init(*r_host);
	return 0;
}
EXPORT_SYMBOL_GPL(ata_pci_bmdma_prepare_host);

/**
 *	ata_pci_bmdma_init_one - Initialize/register BMDMA PCI IDE controller
 *	@pdev: Controller to be initialized
 *	@ppi: array of port_info, must be enough for two ports
 *	@sht: scsi_host_template to use when registering the host
 *	@host_priv: host private_data
 *	@hflags: host flags
 *
 *	This function is similar to ata_pci_sff_init_one() but also
 *	takes care of BMDMA initialization.
 *
 *	LOCKING:
 *	Inherited from PCI layer (may sleep).
 *
 *	RETURNS:
 *	Zero on success, negative on errno-based value on error.
 */
int ata_pci_bmdma_init_one(struct pci_dev *pdev,
			   const struct ata_port_info * const * ppi,
			   struct scsi_host_template *sht, void *host_priv,
			   int hflags)
{
	struct device *dev = &pdev->dev;
	const struct ata_port_info *pi;
	struct ata_host *host = NULL;
	int rc;

	DPRINTK("ENTER\n");

	pi = ata_sff_find_valid_pi(ppi);
	if (!pi) {
		dev_printk(KERN_ERR, &pdev->dev,
			   "no valid port_info specified\n");
		return -EINVAL;
	}

	if (!devres_open_group(dev, NULL, GFP_KERNEL))
		return -ENOMEM;

	rc = pcim_enable_device(pdev);
	if (rc)
		goto out;

	/* prepare and activate BMDMA host */
	rc = ata_pci_bmdma_prepare_host(pdev, ppi, &host);
	if (rc)
		goto out;
	host->private_data = host_priv;
	host->flags |= hflags;

	pci_set_master(pdev);
	rc = ata_pci_sff_activate_host(host, ata_bmdma_interrupt, sht);
 out:
	if (rc == 0)
		devres_remove_group(&pdev->dev, NULL);
	else
		devres_release_group(&pdev->dev, NULL);

	return rc;
}
EXPORT_SYMBOL_GPL(ata_pci_bmdma_init_one);

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#endif /* CONFIG_PCI */
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#endif /* CONFIG_ATA_BMDMA */
3300 3301 3302 3303 3304 3305 3306 3307 3308 3309 3310 3311 3312

/**
 *	ata_sff_port_init - Initialize SFF/BMDMA ATA port
 *	@ap: Port to initialize
 *
 *	Called on port allocation to initialize SFF/BMDMA specific
 *	fields.
 *
 *	LOCKING:
 *	None.
 */
void ata_sff_port_init(struct ata_port *ap)
{
3313
	INIT_DELAYED_WORK(&ap->sff_pio_task, ata_sff_pio_task);
3314 3315
	ap->ctl = ATA_DEVCTL_OBS;
	ap->last_ctl = 0xFF;
3316 3317 3318 3319
}

int __init ata_sff_init(void)
{
3320
	ata_sff_wq = alloc_workqueue("ata_sff", WQ_RESCUER, WQ_MAX_ACTIVE);
3321 3322 3323
	if (!ata_sff_wq)
		return -ENOMEM;

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	return 0;
}

void __exit ata_sff_exit(void)
{
3329
	destroy_workqueue(ata_sff_wq);
3330
}