eeh.c 34.6 KB
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/*
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 * Copyright IBM Corporation 2001, 2005, 2006
 * Copyright Dave Engebretsen & Todd Inglett 2001
 * Copyright Linas Vepstas 2005, 2006
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 * Copyright 2001-2012 IBM Corporation.
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 *
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 * This program is free software; you can redistribute it and/or modify
 * it under the terms of the GNU General Public License as published by
 * the Free Software Foundation; either version 2 of the License, or
 * (at your option) any later version.
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 *
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 * This program is distributed in the hope that it will be useful,
 * but WITHOUT ANY WARRANTY; without even the implied warranty of
 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
 * GNU General Public License for more details.
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 *
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 * You should have received a copy of the GNU General Public License
 * along with this program; if not, write to the Free Software
 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307 USA
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 *
 * Please address comments and feedback to Linas Vepstas <linas@austin.ibm.com>
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 */

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#include <linux/delay.h>
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#include <linux/sched.h>
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#include <linux/init.h>
#include <linux/list.h>
#include <linux/pci.h>
#include <linux/proc_fs.h>
#include <linux/rbtree.h>
#include <linux/seq_file.h>
#include <linux/spinlock.h>
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#include <linux/export.h>
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#include <linux/of.h>

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#include <linux/atomic.h>
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#include <asm/eeh.h>
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#include <asm/eeh_event.h>
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#include <asm/io.h>
#include <asm/machdep.h>
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#include <asm/ppc-pci.h>
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#include <asm/rtas.h>


/** Overview:
 *  EEH, or "Extended Error Handling" is a PCI bridge technology for
 *  dealing with PCI bus errors that can't be dealt with within the
 *  usual PCI framework, except by check-stopping the CPU.  Systems
 *  that are designed for high-availability/reliability cannot afford
 *  to crash due to a "mere" PCI error, thus the need for EEH.
 *  An EEH-capable bridge operates by converting a detected error
 *  into a "slot freeze", taking the PCI adapter off-line, making
 *  the slot behave, from the OS'es point of view, as if the slot
 *  were "empty": all reads return 0xff's and all writes are silently
 *  ignored.  EEH slot isolation events can be triggered by parity
 *  errors on the address or data busses (e.g. during posted writes),
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 *  which in turn might be caused by low voltage on the bus, dust,
 *  vibration, humidity, radioactivity or plain-old failed hardware.
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 *
 *  Note, however, that one of the leading causes of EEH slot
 *  freeze events are buggy device drivers, buggy device microcode,
 *  or buggy device hardware.  This is because any attempt by the
 *  device to bus-master data to a memory address that is not
 *  assigned to the device will trigger a slot freeze.   (The idea
 *  is to prevent devices-gone-wild from corrupting system memory).
 *  Buggy hardware/drivers will have a miserable time co-existing
 *  with EEH.
 *
 *  Ideally, a PCI device driver, when suspecting that an isolation
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 *  event has occurred (e.g. by reading 0xff's), will then ask EEH
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 *  whether this is the case, and then take appropriate steps to
 *  reset the PCI slot, the PCI device, and then resume operations.
 *  However, until that day,  the checking is done here, with the
 *  eeh_check_failure() routine embedded in the MMIO macros.  If
 *  the slot is found to be isolated, an "EEH Event" is synthesized
 *  and sent out for processing.
 */

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/* If a device driver keeps reading an MMIO register in an interrupt
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 * handler after a slot isolation event, it might be broken.
 * This sets the threshold for how many read attempts we allow
 * before printing an error message.
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 */
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#define EEH_MAX_FAILS	2100000
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/* Time to wait for a PCI slot to report status, in milliseconds */
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#define PCI_BUS_RESET_WAIT_MSEC (60*1000)

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/* Platform dependent EEH operations */
struct eeh_ops *eeh_ops = NULL;

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int eeh_subsystem_enabled;
EXPORT_SYMBOL(eeh_subsystem_enabled);
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/* Lock to avoid races due to multiple reports of an error */
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static DEFINE_RAW_SPINLOCK(confirm_error_lock);
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/* Buffer for reporting pci register dumps. Its here in BSS, and
 * not dynamically alloced, so that it ends up in RMO where RTAS
 * can access it.
 */
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#define EEH_PCI_REGS_LOG_LEN 4096
static unsigned char pci_regs_buf[EEH_PCI_REGS_LOG_LEN];

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/*
 * The struct is used to maintain the EEH global statistic
 * information. Besides, the EEH global statistics will be
 * exported to user space through procfs
 */
struct eeh_stats {
	u64 no_device;		/* PCI device not found		*/
	u64 no_dn;		/* OF node not found		*/
	u64 no_cfg_addr;	/* Config address not found	*/
	u64 ignored_check;	/* EEH check skipped		*/
	u64 total_mmio_ffs;	/* Total EEH checks		*/
	u64 false_positives;	/* Unnecessary EEH checks	*/
	u64 slot_resets;	/* PE reset			*/
};

static struct eeh_stats eeh_stats;
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#define IS_BRIDGE(class_code) (((class_code)<<16) == PCI_BASE_CLASS_BRIDGE)

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/**
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 * eeh_gather_pci_data - Copy assorted PCI config space registers to buff
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 * @edev: device to report data for
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 * @buf: point to buffer in which to log
 * @len: amount of room in buffer
 *
 * This routine captures assorted PCI configuration space data,
 * and puts them into a buffer for RTAS error logging.
 */
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static size_t eeh_gather_pci_data(struct eeh_dev *edev, char * buf, size_t len)
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{
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	struct device_node *dn = eeh_dev_to_of_node(edev);
	struct pci_dev *dev = eeh_dev_to_pci_dev(edev);
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	u32 cfg;
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	int cap, i;
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	int n = 0;

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	n += scnprintf(buf+n, len-n, "%s\n", dn->full_name);
	printk(KERN_WARNING "EEH: of node=%s\n", dn->full_name);
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	eeh_ops->read_config(dn, PCI_VENDOR_ID, 4, &cfg);
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	n += scnprintf(buf+n, len-n, "dev/vend:%08x\n", cfg);
	printk(KERN_WARNING "EEH: PCI device/vendor: %08x\n", cfg);

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	eeh_ops->read_config(dn, PCI_COMMAND, 4, &cfg);
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	n += scnprintf(buf+n, len-n, "cmd/stat:%x\n", cfg);
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	printk(KERN_WARNING "EEH: PCI cmd/status register: %08x\n", cfg);

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	if (!dev) {
		printk(KERN_WARNING "EEH: no PCI device for this of node\n");
		return n;
	}

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	/* Gather bridge-specific registers */
	if (dev->class >> 16 == PCI_BASE_CLASS_BRIDGE) {
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		eeh_ops->read_config(dn, PCI_SEC_STATUS, 2, &cfg);
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		n += scnprintf(buf+n, len-n, "sec stat:%x\n", cfg);
		printk(KERN_WARNING "EEH: Bridge secondary status: %04x\n", cfg);

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		eeh_ops->read_config(dn, PCI_BRIDGE_CONTROL, 2, &cfg);
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		n += scnprintf(buf+n, len-n, "brdg ctl:%x\n", cfg);
		printk(KERN_WARNING "EEH: Bridge control: %04x\n", cfg);
	}

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	/* Dump out the PCI-X command and status regs */
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	cap = pci_find_capability(dev, PCI_CAP_ID_PCIX);
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	if (cap) {
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		eeh_ops->read_config(dn, cap, 4, &cfg);
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		n += scnprintf(buf+n, len-n, "pcix-cmd:%x\n", cfg);
		printk(KERN_WARNING "EEH: PCI-X cmd: %08x\n", cfg);

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		eeh_ops->read_config(dn, cap+4, 4, &cfg);
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		n += scnprintf(buf+n, len-n, "pcix-stat:%x\n", cfg);
		printk(KERN_WARNING "EEH: PCI-X status: %08x\n", cfg);
	}

	/* If PCI-E capable, dump PCI-E cap 10, and the AER */
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	cap = pci_find_capability(dev, PCI_CAP_ID_EXP);
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	if (cap) {
		n += scnprintf(buf+n, len-n, "pci-e cap10:\n");
		printk(KERN_WARNING
		       "EEH: PCI-E capabilities and status follow:\n");

		for (i=0; i<=8; i++) {
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			eeh_ops->read_config(dn, cap+4*i, 4, &cfg);
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			n += scnprintf(buf+n, len-n, "%02x:%x\n", 4*i, cfg);
			printk(KERN_WARNING "EEH: PCI-E %02x: %08x\n", i, cfg);
		}

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		cap = pci_find_ext_capability(dev, PCI_EXT_CAP_ID_ERR);
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		if (cap) {
			n += scnprintf(buf+n, len-n, "pci-e AER:\n");
			printk(KERN_WARNING
			       "EEH: PCI-E AER capability register set follows:\n");

			for (i=0; i<14; i++) {
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				eeh_ops->read_config(dn, cap+4*i, 4, &cfg);
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				n += scnprintf(buf+n, len-n, "%02x:%x\n", 4*i, cfg);
				printk(KERN_WARNING "EEH: PCI-E AER %02x: %08x\n", i, cfg);
			}
		}
	}
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	/* Gather status on devices under the bridge */
	if (dev->class >> 16 == PCI_BASE_CLASS_BRIDGE) {
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		struct device_node *child;
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		for_each_child_of_node(dn, child) {
			if (of_node_to_eeh_dev(child))
				n += eeh_gather_pci_data(of_node_to_eeh_dev(child), buf+n, len-n);
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		}
	}

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	return n;
}

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/**
 * eeh_slot_error_detail - Generate combined log including driver log and error log
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 * @edev: device to report error log for
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 * @severity: temporary or permanent error log
 *
 * This routine should be called to generate the combined log, which
 * is comprised of driver log and error log. The driver log is figured
 * out from the config space of the corresponding PCI device, while
 * the error log is fetched through platform dependent function call.
 */
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void eeh_slot_error_detail(struct eeh_dev *edev, int severity)
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{
	size_t loglen = 0;
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	pci_regs_buf[0] = 0;
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	eeh_pci_enable(edev, EEH_OPT_THAW_MMIO);
	eeh_ops->configure_bridge(eeh_dev_to_of_node(edev));
	eeh_restore_bars(edev);
	loglen = eeh_gather_pci_data(edev, pci_regs_buf, EEH_PCI_REGS_LOG_LEN);
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	eeh_ops->get_log(eeh_dev_to_of_node(edev), severity, pci_regs_buf, loglen);
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}

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/**
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 * eeh_token_to_phys - Convert EEH address token to phys address
 * @token: I/O token, should be address in the form 0xA....
 *
 * This routine should be called to convert virtual I/O address
 * to physical one.
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 */
static inline unsigned long eeh_token_to_phys(unsigned long token)
{
	pte_t *ptep;
	unsigned long pa;

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	ptep = find_linux_pte(init_mm.pgd, token);
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	if (!ptep)
		return token;
	pa = pte_pfn(*ptep) << PAGE_SHIFT;

	return pa | (token & (PAGE_SIZE-1));
}

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/**
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 * eeh_find_device_pe - Retrieve the PE for the given device
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 * @dn: device node
 *
 * Return the PE under which this device lies
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 */
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struct device_node *eeh_find_device_pe(struct device_node *dn)
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{
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	while (dn->parent && of_node_to_eeh_dev(dn->parent) &&
	       (of_node_to_eeh_dev(dn->parent)->mode & EEH_MODE_SUPPORTED)) {
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		dn = dn->parent;
	}
	return dn;
}

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/**
 * __eeh_mark_slot - Mark all child devices as failed
 * @parent: parent device
 * @mode_flag: failure flag
 *
 * Mark all devices that are children of this device as failed.
 * Mark the device driver too, so that it can see the failure
 * immediately; this is critical, since some drivers poll
 * status registers in interrupts ... If a driver is polling,
 * and the slot is frozen, then the driver can deadlock in
 * an interrupt context, which is bad.
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 */
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static void __eeh_mark_slot(struct device_node *parent, int mode_flag)
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{
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	struct device_node *dn;

	for_each_child_of_node(parent, dn) {
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		if (of_node_to_eeh_dev(dn)) {
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			/* Mark the pci device driver too */
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			struct pci_dev *dev = of_node_to_eeh_dev(dn)->pdev;
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			of_node_to_eeh_dev(dn)->mode |= mode_flag;
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			if (dev && dev->driver)
				dev->error_state = pci_channel_io_frozen;

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			__eeh_mark_slot(dn, mode_flag);
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		}
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	}
}

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/**
 * eeh_mark_slot - Mark the indicated device and its children as failed
 * @dn: parent device
 * @mode_flag: failure flag
 *
 * Mark the indicated device and its child devices as failed.
 * The device drivers are marked as failed as well.
 */
void eeh_mark_slot(struct device_node *dn, int mode_flag)
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{
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	struct pci_dev *dev;
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	dn = eeh_find_device_pe(dn);
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	/* Back up one, since config addrs might be shared */
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	if (!pcibios_find_pci_bus(dn) && of_node_to_eeh_dev(dn->parent))
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		dn = dn->parent;

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	of_node_to_eeh_dev(dn)->mode |= mode_flag;
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	/* Mark the pci device too */
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	dev = of_node_to_eeh_dev(dn)->pdev;
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	if (dev)
		dev->error_state = pci_channel_io_frozen;

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	__eeh_mark_slot(dn, mode_flag);
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}

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/**
 * __eeh_clear_slot - Clear failure flag for the child devices
 * @parent: parent device
 * @mode_flag: flag to be cleared
 *
 * Clear failure flag for the child devices.
 */
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static void __eeh_clear_slot(struct device_node *parent, int mode_flag)
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{
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	struct device_node *dn;

	for_each_child_of_node(parent, dn) {
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		if (of_node_to_eeh_dev(dn)) {
			of_node_to_eeh_dev(dn)->mode &= ~mode_flag;
			of_node_to_eeh_dev(dn)->check_count = 0;
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			__eeh_clear_slot(dn, mode_flag);
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		}
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	}
}

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/**
 * eeh_clear_slot - Clear failure flag for the indicated device and its children
 * @dn: parent device
 * @mode_flag: flag to be cleared
 *
 * Clear failure flag for the indicated device and its children.
 */
void eeh_clear_slot(struct device_node *dn, int mode_flag)
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{
	unsigned long flags;
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	raw_spin_lock_irqsave(&confirm_error_lock, flags);
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	dn = eeh_find_device_pe(dn);
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	/* Back up one, since config addrs might be shared */
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	if (!pcibios_find_pci_bus(dn) && of_node_to_eeh_dev(dn->parent))
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		dn = dn->parent;

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	of_node_to_eeh_dev(dn)->mode &= ~mode_flag;
	of_node_to_eeh_dev(dn)->check_count = 0;
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	__eeh_clear_slot(dn, mode_flag);
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	raw_spin_unlock_irqrestore(&confirm_error_lock, flags);
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}

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/**
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 * eeh_dn_check_failure - Check if all 1's data is due to EEH slot freeze
 * @dn: device node
 * @dev: pci device, if known
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 *
 * Check for an EEH failure for the given device node.  Call this
 * routine if the result of a read was all 0xff's and you want to
 * find out if this is due to an EEH slot freeze.  This routine
 * will query firmware for the EEH status.
 *
 * Returns 0 if there has not been an EEH error; otherwise returns
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 * a non-zero value and queues up a slot isolation event notification.
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 *
 * It is safe to call this routine in an interrupt context.
 */
int eeh_dn_check_failure(struct device_node *dn, struct pci_dev *dev)
{
	int ret;
	unsigned long flags;
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	struct eeh_dev *edev;
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	int rc = 0;
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	const char *location;
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	eeh_stats.total_mmio_ffs++;
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	if (!eeh_subsystem_enabled)
		return 0;

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	if (!dn) {
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		eeh_stats.no_dn++;
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		return 0;
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	}
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	dn = eeh_find_device_pe(dn);
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	edev = of_node_to_eeh_dev(dn);
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	/* Access to IO BARs might get this far and still not want checking. */
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	if (!(edev->mode & EEH_MODE_SUPPORTED) ||
	    edev->mode & EEH_MODE_NOCHECK) {
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		eeh_stats.ignored_check++;
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		pr_debug("EEH: Ignored check (%x) for %s %s\n",
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			edev->mode, eeh_pci_name(dev), dn->full_name);
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		return 0;
	}

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	if (!edev->config_addr && !edev->pe_config_addr) {
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		eeh_stats.no_cfg_addr++;
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		return 0;
	}

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	/* If we already have a pending isolation event for this
	 * slot, we know it's bad already, we don't need to check.
	 * Do this checking under a lock; as multiple PCI devices
	 * in one slot might report errors simultaneously, and we
	 * only want one error recovery routine running.
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	 */
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	raw_spin_lock_irqsave(&confirm_error_lock, flags);
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	rc = 1;
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	if (edev->mode & EEH_MODE_ISOLATED) {
		edev->check_count++;
		if (edev->check_count % EEH_MAX_FAILS == 0) {
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			location = of_get_property(dn, "ibm,loc-code", NULL);
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			printk(KERN_ERR "EEH: %d reads ignored for recovering device at "
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				"location=%s driver=%s pci addr=%s\n",
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				edev->check_count, location,
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				eeh_driver_name(dev), eeh_pci_name(dev));
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			printk(KERN_ERR "EEH: Might be infinite loop in %s driver\n",
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				eeh_driver_name(dev));
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			dump_stack();
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		}
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		goto dn_unlock;
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	}

	/*
	 * Now test for an EEH failure.  This is VERY expensive.
	 * Note that the eeh_config_addr may be a parent device
	 * in the case of a device behind a bridge, or it may be
	 * function zero of a multi-function device.
	 * In any case they must share a common PHB.
	 */
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	ret = eeh_ops->get_state(dn, NULL);
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	/* Note that config-io to empty slots may fail;
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	 * they are empty when they don't have children.
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	 * We will punt with the following conditions: Failure to get
	 * PE's state, EEH not support and Permanently unavailable
	 * state, PE is in good state.
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	 */
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	if ((ret < 0) ||
	    (ret == EEH_STATE_NOT_SUPPORT) ||
	    (ret & (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE)) ==
	    (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE)) {
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		eeh_stats.false_positives++;
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		edev->false_positives ++;
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		rc = 0;
		goto dn_unlock;
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	}

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	eeh_stats.slot_resets++;
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	/* Avoid repeated reports of this failure, including problems
	 * with other functions on this device, and functions under
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	 * bridges.
	 */
	eeh_mark_slot(dn, EEH_MODE_ISOLATED);
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	raw_spin_unlock_irqrestore(&confirm_error_lock, flags);
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	eeh_send_failure_event(edev);
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	/* Most EEH events are due to device driver bugs.  Having
	 * a stack trace will help the device-driver authors figure
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	 * out what happened.  So print that out.
	 */
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	WARN(1, "EEH: failure detected\n");
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	return 1;

dn_unlock:
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	raw_spin_unlock_irqrestore(&confirm_error_lock, flags);
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	return rc;
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}

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EXPORT_SYMBOL_GPL(eeh_dn_check_failure);
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/**
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 * eeh_check_failure - Check if all 1's data is due to EEH slot freeze
 * @token: I/O token, should be address in the form 0xA....
 * @val: value, should be all 1's (XXX why do we need this arg??)
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 *
 * Check for an EEH failure at the given token address.  Call this
 * routine if the result of a read was all 0xff's and you want to
 * find out if this is due to an EEH slot freeze event.  This routine
 * will query firmware for the EEH status.
 *
 * Note this routine is safe to call in an interrupt context.
 */
unsigned long eeh_check_failure(const volatile void __iomem *token, unsigned long val)
{
	unsigned long addr;
	struct pci_dev *dev;
	struct device_node *dn;

	/* Finding the phys addr + pci device; this is pretty quick. */
	addr = eeh_token_to_phys((unsigned long __force) token);
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	dev = pci_addr_cache_get_device(addr);
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	if (!dev) {
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		eeh_stats.no_device++;
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		return val;
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	}
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	dn = pci_device_to_OF_node(dev);
529
	eeh_dn_check_failure(dn, dev);
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	pci_dev_put(dev);
	return val;
}

EXPORT_SYMBOL(eeh_check_failure);

537

538
/**
539
 * eeh_pci_enable - Enable MMIO or DMA transfers for this slot
540
 * @edev: pci device node
541 542 543 544
 *
 * This routine should be called to reenable frozen MMIO or DMA
 * so that it would work correctly again. It's useful while doing
 * recovery or log collection on the indicated device.
545
 */
546
int eeh_pci_enable(struct eeh_dev *edev, int function)
547 548
{
	int rc;
549
	struct device_node *dn = eeh_dev_to_of_node(edev);
550

551
	rc = eeh_ops->set_option(dn, function);
552
	if (rc)
553
		printk(KERN_WARNING "EEH: Unexpected state change %d, err=%d dn=%s\n",
554
		        function, rc, dn->full_name);
555

556
	rc = eeh_ops->wait_state(dn, PCI_BUS_RESET_WAIT_MSEC);
557 558
	if (rc > 0 && (rc & EEH_STATE_MMIO_ENABLED) &&
	   (function == EEH_OPT_THAW_MMIO))
559 560
		return 0;

561 562 563
	return rc;
}

564 565
/**
 * pcibios_set_pcie_slot_reset - Set PCI-E reset state
566 567
 * @dev: pci device struct
 * @state: reset state to enter
568 569 570
 *
 * Return value:
 * 	0 if success
571
 */
572 573 574 575 576 577
int pcibios_set_pcie_reset_state(struct pci_dev *dev, enum pcie_reset_state state)
{
	struct device_node *dn = pci_device_to_OF_node(dev);

	switch (state) {
	case pcie_deassert_reset:
578
		eeh_ops->reset(dn, EEH_RESET_DEACTIVATE);
579 580
		break;
	case pcie_hot_reset:
581
		eeh_ops->reset(dn, EEH_RESET_HOT);
582 583
		break;
	case pcie_warm_reset:
584
		eeh_ops->reset(dn, EEH_RESET_FUNDAMENTAL);
585 586 587 588 589 590 591 592
		break;
	default:
		return -EINVAL;
	};

	return 0;
}

593
/**
594 595 596 597 598 599 600
 * __eeh_set_pe_freset - Check the required reset for child devices
 * @parent: parent device
 * @freset: return value
 *
 * Each device might have its preferred reset type: fundamental or
 * hot reset. The routine is used to collect the information from
 * the child devices so that they could be reset accordingly.
601
 */
602 603 604 605 606
void __eeh_set_pe_freset(struct device_node *parent, unsigned int *freset)
{
	struct device_node *dn;

	for_each_child_of_node(parent, dn) {
607 608
		if (of_node_to_eeh_dev(dn)) {
			struct pci_dev *dev = of_node_to_eeh_dev(dn)->pdev;
609 610 611 612 613 614 615 616 617 618 619 620 621 622 623 624 625 626 627 628 629 630

			if (dev && dev->driver)
				*freset |= dev->needs_freset;

			__eeh_set_pe_freset(dn, freset);
		}
	}
}

/**
 * eeh_set_pe_freset - Check the required reset for the indicated device and its children
 * @dn: parent device
 * @freset: return value
 *
 * Each device might have its preferred reset type: fundamental or
 * hot reset. The routine is used to collected the information for
 * the indicated device and its children so that the bunch of the
 * devices could be reset properly.
 */
void eeh_set_pe_freset(struct device_node *dn, unsigned int *freset)
{
	struct pci_dev *dev;
631
	dn = eeh_find_device_pe(dn);
632 633

	/* Back up one, since config addrs might be shared */
634
	if (!pcibios_find_pci_bus(dn) && of_node_to_eeh_dev(dn->parent))
635
		dn = dn->parent;
636

637
	dev = of_node_to_eeh_dev(dn)->pdev;
638 639 640 641 642 643 644
	if (dev)
		*freset |= dev->needs_freset;

	__eeh_set_pe_freset(dn, freset);
}

/**
645
 * eeh_reset_pe_once - Assert the pci #RST line for 1/4 second
646
 * @edev: pci device node to be reset.
647 648 649
 *
 * Assert the PCI #RST line for 1/4 second.
 */
650
static void eeh_reset_pe_once(struct eeh_dev *edev)
651
{
652
	unsigned int freset = 0;
653
	struct device_node *dn = eeh_dev_to_of_node(edev);
654

655 656 657 658 659 660
	/* Determine type of EEH reset required for
	 * Partitionable Endpoint, a hot-reset (1)
	 * or a fundamental reset (3).
	 * A fundamental reset required by any device under
	 * Partitionable Endpoint trumps hot-reset.
  	 */
661
	eeh_set_pe_freset(dn, &freset);
662 663

	if (freset)
664
		eeh_ops->reset(dn, EEH_RESET_FUNDAMENTAL);
665
	else
666
		eeh_ops->reset(dn, EEH_RESET_HOT);
667 668

	/* The PCI bus requires that the reset be held high for at least
669 670
	 * a 100 milliseconds. We wait a bit longer 'just in case'.
	 */
671
#define PCI_BUS_RST_HOLD_TIME_MSEC 250
672
	msleep(PCI_BUS_RST_HOLD_TIME_MSEC);
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	/* We might get hit with another EEH freeze as soon as the 
	 * pci slot reset line is dropped. Make sure we don't miss
676 677
	 * these, and clear the flag now.
	 */
678
	eeh_clear_slot(dn, EEH_MODE_ISOLATED);
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680
	eeh_ops->reset(dn, EEH_RESET_DEACTIVATE);
681 682 683

	/* After a PCI slot has been reset, the PCI Express spec requires
	 * a 1.5 second idle time for the bus to stabilize, before starting
684 685
	 * up traffic.
	 */
686
#define PCI_BUS_SETTLE_TIME_MSEC 1800
687
	msleep(PCI_BUS_SETTLE_TIME_MSEC);
688 689
}

690
/**
691
 * eeh_reset_pe - Reset the indicated PE
692
 * @edev: PCI device associated EEH device
693 694 695 696 697
 *
 * This routine should be called to reset indicated device, including
 * PE. A PE might include multiple PCI devices and sometimes PCI bridges
 * might be involved as well.
 */
698
int eeh_reset_pe(struct eeh_dev *edev)
699 700
{
	int i, rc;
701
	struct device_node *dn = eeh_dev_to_of_node(edev);
702

703 704
	/* Take three shots at resetting the bus */
	for (i=0; i<3; i++) {
705
		eeh_reset_pe_once(edev);
706

707
		rc = eeh_ops->wait_state(dn, PCI_BUS_RESET_WAIT_MSEC);
708
		if (rc == (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE))
709
			return 0;
710 711

		if (rc < 0) {
712
			printk(KERN_ERR "EEH: unrecoverable slot failure %s\n",
713
			       dn->full_name);
714
			return -1;
715
		}
716
		printk(KERN_ERR "EEH: bus reset %d failed on slot %s, rc=%d\n",
717
		       i+1, dn->full_name, rc);
718
	}
719

720
	return -1;
721 722
}

723 724 725 726 727 728 729 730 731
/** Save and restore of PCI BARs
 *
 * Although firmware will set up BARs during boot, it doesn't
 * set up device BAR's after a device reset, although it will,
 * if requested, set up bridge configuration. Thus, we need to
 * configure the PCI devices ourselves.  
 */

/**
732
 * eeh_restore_one_device_bars - Restore the Base Address Registers for one device
733
 * @edev: PCI device associated EEH device
734
 *
735 736 737 738
 * Loads the PCI configuration space base address registers,
 * the expansion ROM base address, the latency timer, and etc.
 * from the saved values in the device node.
 */
739
static inline void eeh_restore_one_device_bars(struct eeh_dev *edev)
740 741
{
	int i;
742
	u32 cmd;
743 744 745 746
	struct device_node *dn = eeh_dev_to_of_node(edev);

	if (!edev->phb)
		return;
747 748

	for (i=4; i<10; i++) {
749
		eeh_ops->write_config(dn, i*4, 4, edev->config_space[i]);
750 751 752
	}

	/* 12 == Expansion ROM Address */
753
	eeh_ops->write_config(dn, 12*4, 4, edev->config_space[12]);
754 755

#define BYTE_SWAP(OFF) (8*((OFF)/4)+3-(OFF))
756
#define SAVED_BYTE(OFF) (((u8 *)(edev->config_space))[BYTE_SWAP(OFF)])
757

758
	eeh_ops->write_config(dn, PCI_CACHE_LINE_SIZE, 1,
759 760
	            SAVED_BYTE(PCI_CACHE_LINE_SIZE));

761
	eeh_ops->write_config(dn, PCI_LATENCY_TIMER, 1,
762 763 764
	            SAVED_BYTE(PCI_LATENCY_TIMER));

	/* max latency, min grant, interrupt pin and line */
765
	eeh_ops->write_config(dn, 15*4, 4, edev->config_space[15]);
766 767

	/* Restore PERR & SERR bits, some devices require it,
768 769
	 * don't touch the other command bits
	 */
770
	eeh_ops->read_config(dn, PCI_COMMAND, 4, &cmd);
771
	if (edev->config_space[1] & PCI_COMMAND_PARITY)
772 773 774
		cmd |= PCI_COMMAND_PARITY;
	else
		cmd &= ~PCI_COMMAND_PARITY;
775
	if (edev->config_space[1] & PCI_COMMAND_SERR)
776 777 778
		cmd |= PCI_COMMAND_SERR;
	else
		cmd &= ~PCI_COMMAND_SERR;
779
	eeh_ops->write_config(dn, PCI_COMMAND, 4, cmd);
780 781 782
}

/**
783
 * eeh_restore_bars - Restore the PCI config space info
784
 * @edev: EEH device
785 786 787 788
 *
 * This routine performs a recursive walk to the children
 * of this device as well.
 */
789
void eeh_restore_bars(struct eeh_dev *edev)
790 791
{
	struct device_node *dn;
792
	if (!edev)
793 794
		return;
	
795 796
	if ((edev->mode & EEH_MODE_SUPPORTED) && !IS_BRIDGE(edev->class_code))
		eeh_restore_one_device_bars(edev);
797

798 799
	for_each_child_of_node(eeh_dev_to_of_node(edev), dn)
		eeh_restore_bars(of_node_to_eeh_dev(dn));
800 801 802
}

/**
803
 * eeh_save_bars - Save device bars
804
 * @edev: PCI device associated EEH device
805 806 807
 *
 * Save the values of the device bars. Unlike the restore
 * routine, this routine is *not* recursive. This is because
808
 * PCI devices are added individually; but, for the restore,
809 810
 * an entire slot is reset at a time.
 */
811
static void eeh_save_bars(struct eeh_dev *edev)
812 813
{
	int i;
814
	struct device_node *dn;
815

816
	if (!edev)
817
		return;
818
	dn = eeh_dev_to_of_node(edev);
819 820
	
	for (i = 0; i < 16; i++)
821
		eeh_ops->read_config(dn, i * 4, 4, &edev->config_space[i]);
822 823
}

824
/**
825
 * eeh_early_enable - Early enable EEH on the indicated device
826 827 828 829 830 831 832
 * @dn: device node
 * @data: BUID
 *
 * Enable EEH functionality on the specified PCI device. The function
 * is expected to be called before real PCI probing is done. However,
 * the PHBs have been initialized at this point.
 */
833
static void *eeh_early_enable(struct device_node *dn, void *data)
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{
	int ret;
836 837 838
	const u32 *class_code = of_get_property(dn, "class-code", NULL);
	const u32 *vendor_id = of_get_property(dn, "vendor-id", NULL);
	const u32 *device_id = of_get_property(dn, "device-id", NULL);
839
	const u32 *regs;
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	int enable;
841
	struct eeh_dev *edev = of_node_to_eeh_dev(dn);
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843 844 845 846 847
	edev->class_code = 0;
	edev->mode = 0;
	edev->check_count = 0;
	edev->freeze_count = 0;
	edev->false_positives = 0;
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849 850
	if (!of_device_is_available(dn))
		return NULL;
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	/* Ignore bad nodes. */
	if (!class_code || !vendor_id || !device_id)
		return NULL;

	/* There is nothing to check on PCI to ISA bridges */
	if (dn->type && !strcmp(dn->type, "isa")) {
858
		edev->mode |= EEH_MODE_NOCHECK;
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		return NULL;
	}
861
	edev->class_code = *class_code;
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	/* Ok... see if this device supports EEH.  Some do, some don't,
864 865
	 * and the only way to find out is to check each and every one.
	 */
866
	regs = of_get_property(dn, "reg", NULL);
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	if (regs) {
		/* First register entry is addr (00BBSS00)  */
		/* Try to enable eeh */
870
		ret = eeh_ops->set_option(dn, EEH_OPT_ENABLE);
871

872
		enable = 0;
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		if (ret == 0) {
874
			edev->config_addr = regs[0];
875 876

			/* If the newer, better, ibm,get-config-addr-info is supported, 
877 878
			 * then use that instead.
			 */
879
			edev->pe_config_addr = eeh_ops->get_pe_addr(dn);
880 881 882 883

			/* Some older systems (Power4) allow the
			 * ibm,set-eeh-option call to succeed even on nodes
			 * where EEH is not supported. Verify support
884 885
			 * explicitly.
			 */
886
			ret = eeh_ops->get_state(dn, NULL);
887
			if (ret > 0 && ret != EEH_STATE_NOT_SUPPORT)
888 889 890 891 892
				enable = 1;
		}

		if (enable) {
			eeh_subsystem_enabled = 1;
893
			edev->mode |= EEH_MODE_SUPPORTED;
894

895
			pr_debug("EEH: %s: eeh enabled, config=%x pe_config=%x\n",
896 897
				 dn->full_name, edev->config_addr,
				 edev->pe_config_addr);
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		} else {

			/* This device doesn't support EEH, but it may have an
901 902
			 * EEH parent, in which case we mark it as supported.
			 */
903 904
			if (dn->parent && of_node_to_eeh_dev(dn->parent) &&
			    (of_node_to_eeh_dev(dn->parent)->mode & EEH_MODE_SUPPORTED)) {
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				/* Parent supports EEH. */
906 907
				edev->mode |= EEH_MODE_SUPPORTED;
				edev->config_addr = of_node_to_eeh_dev(dn->parent)->config_addr;
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				return NULL;
			}
		}
	} else {
		printk(KERN_WARNING "EEH: %s: unable to get reg property.\n",
		       dn->full_name);
	}

916
	eeh_save_bars(edev);
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	return NULL;
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}

920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939 940 941 942 943 944 945 946 947 948 949 950 951 952 953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969
/**
 * eeh_ops_register - Register platform dependent EEH operations
 * @ops: platform dependent EEH operations
 *
 * Register the platform dependent EEH operation callback
 * functions. The platform should call this function before
 * any other EEH operations.
 */
int __init eeh_ops_register(struct eeh_ops *ops)
{
	if (!ops->name) {
		pr_warning("%s: Invalid EEH ops name for %p\n",
			__func__, ops);
		return -EINVAL;
	}

	if (eeh_ops && eeh_ops != ops) {
		pr_warning("%s: EEH ops of platform %s already existing (%s)\n",
			__func__, eeh_ops->name, ops->name);
		return -EEXIST;
	}

	eeh_ops = ops;

	return 0;
}

/**
 * eeh_ops_unregister - Unreigster platform dependent EEH operations
 * @name: name of EEH platform operations
 *
 * Unregister the platform dependent EEH operation callback
 * functions.
 */
int __exit eeh_ops_unregister(const char *name)
{
	if (!name || !strlen(name)) {
		pr_warning("%s: Invalid EEH ops name\n",
			__func__);
		return -EINVAL;
	}

	if (eeh_ops && !strcmp(eeh_ops->name, name)) {
		eeh_ops = NULL;
		return 0;
	}

	return -EEXIST;
}

970 971 972
/**
 * eeh_init - EEH initialization
 *
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 * Initialize EEH by trying to enable it for all of the adapters in the system.
 * As a side effect we can determine here if eeh is supported at all.
 * Note that we leave EEH on so failed config cycles won't cause a machine
 * check.  If a user turns off EEH for a particular adapter they are really
 * telling Linux to ignore errors.  Some hardware (e.g. POWER5) won't
 * grant access to a slot if EEH isn't enabled, and so we always enable
 * EEH for all slots/all devices.
 *
 * The eeh-force-off option disables EEH checking globally, for all slots.
 * Even if force-off is set, the EEH hardware is still enabled, so that
 * newer systems can boot.
 */
void __init eeh_init(void)
{
987 988
	struct pci_controller *hose, *tmp;
	struct device_node *phb;
989 990 991 992 993 994 995 996 997 998 999 1000
	int ret;

	/* call platform initialization function */
	if (!eeh_ops) {
		pr_warning("%s: Platform EEH operation not found\n",
			__func__);
		return;
	} else if ((ret = eeh_ops->init())) {
		pr_warning("%s: Failed to call platform init function (%d)\n",
			__func__, ret);
		return;
	}
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1002
	raw_spin_lock_init(&confirm_error_lock);
1003

1004 1005 1006
	/* Enable EEH for all adapters */
	list_for_each_entry_safe(hose, tmp, &hose_list, list_node) {
		phb = hose->dn;
1007
		traverse_pci_devices(phb, eeh_early_enable, NULL);
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	}

	if (eeh_subsystem_enabled)
		printk(KERN_INFO "EEH: PCI Enhanced I/O Error Handling Enabled\n");
	else
		printk(KERN_WARNING "EEH: No capable adapters found\n");
}

/**
1017
 * eeh_add_device_early - Enable EEH for the indicated device_node
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 * @dn: device node for which to set up EEH
 *
 * This routine must be used to perform EEH initialization for PCI
 * devices that were added after system boot (e.g. hotplug, dlpar).
 * This routine must be called before any i/o is performed to the
 * adapter (inluding any config-space i/o).
 * Whether this actually enables EEH or not for this device depends
 * on the CEC architecture, type of the device, on earlier boot
 * command-line arguments & etc.
 */
1028
static void eeh_add_device_early(struct device_node *dn)
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{
	struct pci_controller *phb;

1032
	if (!dn || !of_node_to_eeh_dev(dn))
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		return;
1034
	phb = of_node_to_eeh_dev(dn)->phb;
1035 1036 1037

	/* USB Bus children of PCI devices will not have BUID's */
	if (NULL == phb || 0 == phb->buid)
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		return;

1040
	eeh_early_enable(dn, NULL);
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}

1043 1044 1045 1046 1047 1048 1049 1050
/**
 * eeh_add_device_tree_early - Enable EEH for the indicated device
 * @dn: device node
 *
 * This routine must be used to perform EEH initialization for the
 * indicated PCI device that was added after system boot (e.g.
 * hotplug, dlpar).
 */
1051 1052 1053
void eeh_add_device_tree_early(struct device_node *dn)
{
	struct device_node *sib;
1054 1055

	for_each_child_of_node(dn, sib)
1056 1057 1058 1059 1060
		eeh_add_device_tree_early(sib);
	eeh_add_device_early(dn);
}
EXPORT_SYMBOL_GPL(eeh_add_device_tree_early);

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/**
1062
 * eeh_add_device_late - Perform EEH initialization for the indicated pci device
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 * @dev: pci device for which to set up EEH
 *
 * This routine must be used to complete EEH initialization for PCI
 * devices that were added after system boot (e.g. hotplug, dlpar).
 */
1068
static void eeh_add_device_late(struct pci_dev *dev)
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{
1070
	struct device_node *dn;
1071
	struct eeh_dev *edev;
1072

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	if (!dev || !eeh_subsystem_enabled)
		return;

1076
	pr_debug("EEH: Adding device %s\n", pci_name(dev));
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1078
	dn = pci_device_to_OF_node(dev);
1079
	edev = of_node_to_eeh_dev(dn);
1080
	if (edev->pdev == dev) {
1081 1082 1083
		pr_debug("EEH: Already referenced !\n");
		return;
	}
1084
	WARN_ON(edev->pdev);
1085

1086
	pci_dev_get(dev);
1087 1088
	edev->pdev = dev;
	dev->dev.archdata.edev = edev;
1089

1090 1091
	pci_addr_cache_insert_device(dev);
	eeh_sysfs_add_device(dev);
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}
1093

1094 1095 1096 1097 1098 1099 1100 1101
/**
 * eeh_add_device_tree_late - Perform EEH initialization for the indicated PCI bus
 * @bus: PCI bus
 *
 * This routine must be used to perform EEH initialization for PCI
 * devices which are attached to the indicated PCI bus. The PCI bus
 * is added after system boot through hotplug or dlpar.
 */
1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115
void eeh_add_device_tree_late(struct pci_bus *bus)
{
	struct pci_dev *dev;

	list_for_each_entry(dev, &bus->devices, bus_list) {
 		eeh_add_device_late(dev);
 		if (dev->hdr_type == PCI_HEADER_TYPE_BRIDGE) {
 			struct pci_bus *subbus = dev->subordinate;
 			if (subbus)
 				eeh_add_device_tree_late(subbus);
 		}
	}
}
EXPORT_SYMBOL_GPL(eeh_add_device_tree_late);
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/**
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 * eeh_remove_device - Undo EEH setup for the indicated pci device
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 * @dev: pci device to be removed
 *
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 * This routine should be called when a device is removed from
 * a running system (e.g. by hotplug or dlpar).  It unregisters
 * the PCI device from the EEH subsystem.  I/O errors affecting
 * this device will no longer be detected after this call; thus,
 * i/o errors affecting this slot may leave this device unusable.
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 */
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static void eeh_remove_device(struct pci_dev *dev)
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{
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	struct eeh_dev *edev;

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	if (!dev || !eeh_subsystem_enabled)
		return;
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	edev = pci_dev_to_eeh_dev(dev);
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	/* Unregister the device with the EEH/PCI address search system */
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	pr_debug("EEH: Removing device %s\n", pci_name(dev));
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	if (!edev || !edev->pdev) {
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		pr_debug("EEH: Not referenced !\n");
		return;
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	}
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	edev->pdev = NULL;
	dev->dev.archdata.edev = NULL;
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	pci_dev_put(dev);
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	pci_addr_cache_remove_device(dev);
	eeh_sysfs_remove_device(dev);
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}

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/**
 * eeh_remove_bus_device - Undo EEH setup for the indicated PCI device
 * @dev: PCI device
 *
 * This routine must be called when a device is removed from the
 * running system through hotplug or dlpar. The corresponding
 * PCI address cache will be removed.
 */
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void eeh_remove_bus_device(struct pci_dev *dev)
{
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	struct pci_bus *bus = dev->subordinate;
	struct pci_dev *child, *tmp;

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	eeh_remove_device(dev);
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	if (bus && dev->hdr_type == PCI_HEADER_TYPE_BRIDGE) {
		list_for_each_entry_safe(child, tmp, &bus->devices, bus_list)
			 eeh_remove_bus_device(child);
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	}
}
EXPORT_SYMBOL_GPL(eeh_remove_bus_device);

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static int proc_eeh_show(struct seq_file *m, void *v)
{
	if (0 == eeh_subsystem_enabled) {
		seq_printf(m, "EEH Subsystem is globally disabled\n");
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		seq_printf(m, "eeh_total_mmio_ffs=%llu\n", eeh_stats.total_mmio_ffs);
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	} else {
		seq_printf(m, "EEH Subsystem is enabled\n");
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		seq_printf(m,
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				"no device=%llu\n"
				"no device node=%llu\n"
				"no config address=%llu\n"
				"check not wanted=%llu\n"
				"eeh_total_mmio_ffs=%llu\n"
				"eeh_false_positives=%llu\n"
				"eeh_slot_resets=%llu\n",
				eeh_stats.no_device,
				eeh_stats.no_dn,
				eeh_stats.no_cfg_addr,
				eeh_stats.ignored_check,
				eeh_stats.total_mmio_ffs,
				eeh_stats.false_positives,
				eeh_stats.slot_resets);
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	}

	return 0;
}

static int proc_eeh_open(struct inode *inode, struct file *file)
{
	return single_open(file, proc_eeh_show, NULL);
}

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static const struct file_operations proc_eeh_operations = {
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	.open      = proc_eeh_open,
	.read      = seq_read,
	.llseek    = seq_lseek,
	.release   = single_release,
};

static int __init eeh_init_proc(void)
{
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	if (machine_is(pseries))
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		proc_create("powerpc/eeh", 0, NULL, &proc_eeh_operations);
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	return 0;
}
__initcall(eeh_init_proc);