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v6.2
   1// SPDX-License-Identifier: GPL-2.0-or-later
   2/*
   3 * Copyright IBM Corporation 2001, 2005, 2006
   4 * Copyright Dave Engebretsen & Todd Inglett 2001
   5 * Copyright Linas Vepstas 2005, 2006
   6 * Copyright 2001-2012 IBM Corporation.
   7 *
 
 
 
 
 
 
 
 
 
 
 
 
 
 
   8 * Please address comments and feedback to Linas Vepstas <linas@austin.ibm.com>
   9 */
  10
  11#include <linux/delay.h>
 
  12#include <linux/sched.h>
  13#include <linux/init.h>
  14#include <linux/list.h>
  15#include <linux/pci.h>
  16#include <linux/iommu.h>
  17#include <linux/proc_fs.h>
  18#include <linux/rbtree.h>
  19#include <linux/reboot.h>
  20#include <linux/seq_file.h>
  21#include <linux/spinlock.h>
  22#include <linux/export.h>
  23#include <linux/of.h>
  24#include <linux/debugfs.h>
  25
  26#include <linux/atomic.h>
 
  27#include <asm/eeh.h>
  28#include <asm/eeh_event.h>
  29#include <asm/io.h>
  30#include <asm/iommu.h>
  31#include <asm/machdep.h>
  32#include <asm/ppc-pci.h>
  33#include <asm/rtas.h>
  34#include <asm/pte-walk.h>
  35
  36
  37/** Overview:
  38 *  EEH, or "Enhanced Error Handling" is a PCI bridge technology for
  39 *  dealing with PCI bus errors that can't be dealt with within the
  40 *  usual PCI framework, except by check-stopping the CPU.  Systems
  41 *  that are designed for high-availability/reliability cannot afford
  42 *  to crash due to a "mere" PCI error, thus the need for EEH.
  43 *  An EEH-capable bridge operates by converting a detected error
  44 *  into a "slot freeze", taking the PCI adapter off-line, making
  45 *  the slot behave, from the OS'es point of view, as if the slot
  46 *  were "empty": all reads return 0xff's and all writes are silently
  47 *  ignored.  EEH slot isolation events can be triggered by parity
  48 *  errors on the address or data busses (e.g. during posted writes),
  49 *  which in turn might be caused by low voltage on the bus, dust,
  50 *  vibration, humidity, radioactivity or plain-old failed hardware.
  51 *
  52 *  Note, however, that one of the leading causes of EEH slot
  53 *  freeze events are buggy device drivers, buggy device microcode,
  54 *  or buggy device hardware.  This is because any attempt by the
  55 *  device to bus-master data to a memory address that is not
  56 *  assigned to the device will trigger a slot freeze.   (The idea
  57 *  is to prevent devices-gone-wild from corrupting system memory).
  58 *  Buggy hardware/drivers will have a miserable time co-existing
  59 *  with EEH.
  60 *
  61 *  Ideally, a PCI device driver, when suspecting that an isolation
  62 *  event has occurred (e.g. by reading 0xff's), will then ask EEH
  63 *  whether this is the case, and then take appropriate steps to
  64 *  reset the PCI slot, the PCI device, and then resume operations.
  65 *  However, until that day,  the checking is done here, with the
  66 *  eeh_check_failure() routine embedded in the MMIO macros.  If
  67 *  the slot is found to be isolated, an "EEH Event" is synthesized
  68 *  and sent out for processing.
  69 */
  70
  71/* If a device driver keeps reading an MMIO register in an interrupt
  72 * handler after a slot isolation event, it might be broken.
  73 * This sets the threshold for how many read attempts we allow
  74 * before printing an error message.
  75 */
  76#define EEH_MAX_FAILS	2100000
  77
  78/* Time to wait for a PCI slot to report status, in milliseconds */
  79#define PCI_BUS_RESET_WAIT_MSEC (5*60*1000)
  80
  81/*
  82 * EEH probe mode support, which is part of the flags,
  83 * is to support multiple platforms for EEH. Some platforms
  84 * like pSeries do PCI emunation based on device tree.
  85 * However, other platforms like powernv probe PCI devices
  86 * from hardware. The flag is used to distinguish that.
  87 * In addition, struct eeh_ops::probe would be invoked for
  88 * particular OF node or PCI device so that the corresponding
  89 * PE would be created there.
  90 */
  91int eeh_subsystem_flags;
  92EXPORT_SYMBOL(eeh_subsystem_flags);
  93
  94/*
  95 * EEH allowed maximal frozen times. If one particular PE's
  96 * frozen count in last hour exceeds this limit, the PE will
  97 * be forced to be offline permanently.
  98 */
  99u32 eeh_max_freezes = 5;
 100
 101/*
 102 * Controls whether a recovery event should be scheduled when an
 103 * isolated device is discovered. This is only really useful for
 104 * debugging problems with the EEH core.
 105 */
 106bool eeh_debugfs_no_recover;
 107
 108/* Platform dependent EEH operations */
 109struct eeh_ops *eeh_ops = NULL;
 110
 111/* Lock to avoid races due to multiple reports of an error */
 112DEFINE_RAW_SPINLOCK(confirm_error_lock);
 113EXPORT_SYMBOL_GPL(confirm_error_lock);
 114
 115/* Lock to protect passed flags */
 116static DEFINE_MUTEX(eeh_dev_mutex);
 117
 118/* Buffer for reporting pci register dumps. Its here in BSS, and
 119 * not dynamically alloced, so that it ends up in RMO where RTAS
 120 * can access it.
 121 */
 122#define EEH_PCI_REGS_LOG_LEN 8192
 123static unsigned char pci_regs_buf[EEH_PCI_REGS_LOG_LEN];
 124
 125/*
 126 * The struct is used to maintain the EEH global statistic
 127 * information. Besides, the EEH global statistics will be
 128 * exported to user space through procfs
 129 */
 130struct eeh_stats {
 131	u64 no_device;		/* PCI device not found		*/
 132	u64 no_dn;		/* OF node not found		*/
 133	u64 no_cfg_addr;	/* Config address not found	*/
 134	u64 ignored_check;	/* EEH check skipped		*/
 135	u64 total_mmio_ffs;	/* Total EEH checks		*/
 136	u64 false_positives;	/* Unnecessary EEH checks	*/
 137	u64 slot_resets;	/* PE reset			*/
 138};
 139
 140static struct eeh_stats eeh_stats;
 141
 142static int __init eeh_setup(char *str)
 143{
 144	if (!strcmp(str, "off"))
 145		eeh_add_flag(EEH_FORCE_DISABLED);
 146	else if (!strcmp(str, "early_log"))
 147		eeh_add_flag(EEH_EARLY_DUMP_LOG);
 148
 149	return 1;
 150}
 151__setup("eeh=", eeh_setup);
 152
 153void eeh_show_enabled(void)
 154{
 155	if (eeh_has_flag(EEH_FORCE_DISABLED))
 156		pr_info("EEH: Recovery disabled by kernel parameter.\n");
 157	else if (eeh_has_flag(EEH_ENABLED))
 158		pr_info("EEH: Capable adapter found: recovery enabled.\n");
 159	else
 160		pr_info("EEH: No capable adapters found: recovery disabled.\n");
 161}
 162
 163/*
 164 * This routine captures assorted PCI configuration space data
 165 * for the indicated PCI device, and puts them into a buffer
 166 * for RTAS error logging.
 167 */
 168static size_t eeh_dump_dev_log(struct eeh_dev *edev, char *buf, size_t len)
 169{
 
 170	u32 cfg;
 171	int cap, i;
 172	int n = 0, l = 0;
 173	char buffer[128];
 174
 175	n += scnprintf(buf+n, len-n, "%04x:%02x:%02x.%01x\n",
 176			edev->pe->phb->global_number, edev->bdfn >> 8,
 177			PCI_SLOT(edev->bdfn), PCI_FUNC(edev->bdfn));
 178	pr_warn("EEH: of node=%04x:%02x:%02x.%01x\n",
 179		edev->pe->phb->global_number, edev->bdfn >> 8,
 180		PCI_SLOT(edev->bdfn), PCI_FUNC(edev->bdfn));
 181
 182	eeh_ops->read_config(edev, PCI_VENDOR_ID, 4, &cfg);
 183	n += scnprintf(buf+n, len-n, "dev/vend:%08x\n", cfg);
 184	pr_warn("EEH: PCI device/vendor: %08x\n", cfg);
 185
 186	eeh_ops->read_config(edev, PCI_COMMAND, 4, &cfg);
 187	n += scnprintf(buf+n, len-n, "cmd/stat:%x\n", cfg);
 188	pr_warn("EEH: PCI cmd/status register: %08x\n", cfg);
 189
 190	/* Gather bridge-specific registers */
 191	if (edev->mode & EEH_DEV_BRIDGE) {
 192		eeh_ops->read_config(edev, PCI_SEC_STATUS, 2, &cfg);
 193		n += scnprintf(buf+n, len-n, "sec stat:%x\n", cfg);
 194		pr_warn("EEH: Bridge secondary status: %04x\n", cfg);
 195
 196		eeh_ops->read_config(edev, PCI_BRIDGE_CONTROL, 2, &cfg);
 197		n += scnprintf(buf+n, len-n, "brdg ctl:%x\n", cfg);
 198		pr_warn("EEH: Bridge control: %04x\n", cfg);
 199	}
 200
 201	/* Dump out the PCI-X command and status regs */
 202	cap = edev->pcix_cap;
 203	if (cap) {
 204		eeh_ops->read_config(edev, cap, 4, &cfg);
 205		n += scnprintf(buf+n, len-n, "pcix-cmd:%x\n", cfg);
 206		pr_warn("EEH: PCI-X cmd: %08x\n", cfg);
 207
 208		eeh_ops->read_config(edev, cap+4, 4, &cfg);
 209		n += scnprintf(buf+n, len-n, "pcix-stat:%x\n", cfg);
 210		pr_warn("EEH: PCI-X status: %08x\n", cfg);
 211	}
 212
 213	/* If PCI-E capable, dump PCI-E cap 10 */
 214	cap = edev->pcie_cap;
 215	if (cap) {
 216		n += scnprintf(buf+n, len-n, "pci-e cap10:\n");
 217		pr_warn("EEH: PCI-E capabilities and status follow:\n");
 218
 219		for (i=0; i<=8; i++) {
 220			eeh_ops->read_config(edev, cap+4*i, 4, &cfg);
 221			n += scnprintf(buf+n, len-n, "%02x:%x\n", 4*i, cfg);
 222
 223			if ((i % 4) == 0) {
 224				if (i != 0)
 225					pr_warn("%s\n", buffer);
 226
 227				l = scnprintf(buffer, sizeof(buffer),
 228					      "EEH: PCI-E %02x: %08x ",
 229					      4*i, cfg);
 230			} else {
 231				l += scnprintf(buffer+l, sizeof(buffer)-l,
 232					       "%08x ", cfg);
 233			}
 234
 235		}
 236
 237		pr_warn("%s\n", buffer);
 238	}
 239
 240	/* If AER capable, dump it */
 241	cap = edev->aer_cap;
 242	if (cap) {
 243		n += scnprintf(buf+n, len-n, "pci-e AER:\n");
 244		pr_warn("EEH: PCI-E AER capability register set follows:\n");
 245
 246		for (i=0; i<=13; i++) {
 247			eeh_ops->read_config(edev, cap+4*i, 4, &cfg);
 248			n += scnprintf(buf+n, len-n, "%02x:%x\n", 4*i, cfg);
 249
 250			if ((i % 4) == 0) {
 251				if (i != 0)
 252					pr_warn("%s\n", buffer);
 253
 254				l = scnprintf(buffer, sizeof(buffer),
 255					      "EEH: PCI-E AER %02x: %08x ",
 256					      4*i, cfg);
 257			} else {
 258				l += scnprintf(buffer+l, sizeof(buffer)-l,
 259					       "%08x ", cfg);
 260			}
 261		}
 262
 263		pr_warn("%s\n", buffer);
 264	}
 265
 266	return n;
 267}
 268
 269static void *eeh_dump_pe_log(struct eeh_pe *pe, void *flag)
 270{
 
 271	struct eeh_dev *edev, *tmp;
 272	size_t *plen = flag;
 273
 274	eeh_pe_for_each_dev(pe, edev, tmp)
 275		*plen += eeh_dump_dev_log(edev, pci_regs_buf + *plen,
 276					  EEH_PCI_REGS_LOG_LEN - *plen);
 277
 278	return NULL;
 279}
 280
 281/**
 282 * eeh_slot_error_detail - Generate combined log including driver log and error log
 283 * @pe: EEH PE
 284 * @severity: temporary or permanent error log
 285 *
 286 * This routine should be called to generate the combined log, which
 287 * is comprised of driver log and error log. The driver log is figured
 288 * out from the config space of the corresponding PCI device, while
 289 * the error log is fetched through platform dependent function call.
 290 */
 291void eeh_slot_error_detail(struct eeh_pe *pe, int severity)
 292{
 293	size_t loglen = 0;
 294
 295	/*
 296	 * When the PHB is fenced or dead, it's pointless to collect
 297	 * the data from PCI config space because it should return
 298	 * 0xFF's. For ER, we still retrieve the data from the PCI
 299	 * config space.
 300	 *
 301	 * For pHyp, we have to enable IO for log retrieval. Otherwise,
 302	 * 0xFF's is always returned from PCI config space.
 303	 *
 304	 * When the @severity is EEH_LOG_PERM, the PE is going to be
 305	 * removed. Prior to that, the drivers for devices included in
 306	 * the PE will be closed. The drivers rely on working IO path
 307	 * to bring the devices to quiet state. Otherwise, PCI traffic
 308	 * from those devices after they are removed is like to cause
 309	 * another unexpected EEH error.
 310	 */
 311	if (!(pe->type & EEH_PE_PHB)) {
 312		if (eeh_has_flag(EEH_ENABLE_IO_FOR_LOG) ||
 313		    severity == EEH_LOG_PERM)
 314			eeh_pci_enable(pe, EEH_OPT_THAW_MMIO);
 315
 316		/*
 317		 * The config space of some PCI devices can't be accessed
 318		 * when their PEs are in frozen state. Otherwise, fenced
 319		 * PHB might be seen. Those PEs are identified with flag
 320		 * EEH_PE_CFG_RESTRICTED, indicating EEH_PE_CFG_BLOCKED
 321		 * is set automatically when the PE is put to EEH_PE_ISOLATED.
 322		 *
 323		 * Restoring BARs possibly triggers PCI config access in
 324		 * (OPAL) firmware and then causes fenced PHB. If the
 325		 * PCI config is blocked with flag EEH_PE_CFG_BLOCKED, it's
 326		 * pointless to restore BARs and dump config space.
 327		 */
 328		eeh_ops->configure_bridge(pe);
 329		if (!(pe->state & EEH_PE_CFG_BLOCKED)) {
 330			eeh_pe_restore_bars(pe);
 331
 332			pci_regs_buf[0] = 0;
 333			eeh_pe_traverse(pe, eeh_dump_pe_log, &loglen);
 334		}
 335	}
 336
 337	eeh_ops->get_log(pe, severity, pci_regs_buf, loglen);
 338}
 339
 340/**
 341 * eeh_token_to_phys - Convert EEH address token to phys address
 342 * @token: I/O token, should be address in the form 0xA....
 343 *
 344 * This routine should be called to convert virtual I/O address
 345 * to physical one.
 346 */
 347static inline unsigned long eeh_token_to_phys(unsigned long token)
 348{
 349	return ppc_find_vmap_phys(token);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 350}
 351
 352/*
 353 * On PowerNV platform, we might already have fenced PHB there.
 354 * For that case, it's meaningless to recover frozen PE. Intead,
 355 * We have to handle fenced PHB firstly.
 356 */
 357static int eeh_phb_check_failure(struct eeh_pe *pe)
 358{
 359	struct eeh_pe *phb_pe;
 360	unsigned long flags;
 361	int ret;
 362
 363	if (!eeh_has_flag(EEH_PROBE_MODE_DEV))
 364		return -EPERM;
 365
 366	/* Find the PHB PE */
 367	phb_pe = eeh_phb_pe_get(pe->phb);
 368	if (!phb_pe) {
 369		pr_warn("%s Can't find PE for PHB#%x\n",
 370			__func__, pe->phb->global_number);
 371		return -EEXIST;
 372	}
 373
 374	/* If the PHB has been in problematic state */
 375	eeh_serialize_lock(&flags);
 376	if (phb_pe->state & EEH_PE_ISOLATED) {
 377		ret = 0;
 378		goto out;
 379	}
 380
 381	/* Check PHB state */
 382	ret = eeh_ops->get_state(phb_pe, NULL);
 383	if ((ret < 0) ||
 384	    (ret == EEH_STATE_NOT_SUPPORT) || eeh_state_active(ret)) {
 
 
 385		ret = 0;
 386		goto out;
 387	}
 388
 389	/* Isolate the PHB and send event */
 390	eeh_pe_mark_isolated(phb_pe);
 391	eeh_serialize_unlock(flags);
 392
 393	pr_debug("EEH: PHB#%x failure detected, location: %s\n",
 394		phb_pe->phb->global_number, eeh_pe_loc_get(phb_pe));
 
 395	eeh_send_failure_event(phb_pe);
 
 396	return 1;
 397out:
 398	eeh_serialize_unlock(flags);
 399	return ret;
 400}
 401
 402static inline const char *eeh_driver_name(struct pci_dev *pdev)
 403{
 404	if (pdev)
 405		return dev_driver_string(&pdev->dev);
 406
 407	return "<null>";
 408}
 409
 410/**
 411 * eeh_dev_check_failure - Check if all 1's data is due to EEH slot freeze
 412 * @edev: eeh device
 413 *
 414 * Check for an EEH failure for the given device node.  Call this
 415 * routine if the result of a read was all 0xff's and you want to
 416 * find out if this is due to an EEH slot freeze.  This routine
 417 * will query firmware for the EEH status.
 418 *
 419 * Returns 0 if there has not been an EEH error; otherwise returns
 420 * a non-zero value and queues up a slot isolation event notification.
 421 *
 422 * It is safe to call this routine in an interrupt context.
 423 */
 424int eeh_dev_check_failure(struct eeh_dev *edev)
 425{
 426	int ret;
 
 427	unsigned long flags;
 428	struct device_node *dn;
 429	struct pci_dev *dev;
 430	struct eeh_pe *pe, *parent_pe;
 431	int rc = 0;
 432	const char *location = NULL;
 433
 434	eeh_stats.total_mmio_ffs++;
 435
 436	if (!eeh_enabled())
 437		return 0;
 438
 439	if (!edev) {
 440		eeh_stats.no_dn++;
 441		return 0;
 442	}
 443	dev = eeh_dev_to_pci_dev(edev);
 444	pe = eeh_dev_to_pe(edev);
 445
 446	/* Access to IO BARs might get this far and still not want checking. */
 447	if (!pe) {
 448		eeh_stats.ignored_check++;
 449		eeh_edev_dbg(edev, "Ignored check\n");
 
 
 
 
 
 
 450		return 0;
 451	}
 452
 453	/*
 454	 * On PowerNV platform, we might already have fenced PHB
 455	 * there and we need take care of that firstly.
 456	 */
 457	ret = eeh_phb_check_failure(pe);
 458	if (ret > 0)
 459		return ret;
 460
 461	/*
 462	 * If the PE isn't owned by us, we shouldn't check the
 463	 * state. Instead, let the owner handle it if the PE has
 464	 * been frozen.
 465	 */
 466	if (eeh_pe_passed(pe))
 467		return 0;
 468
 469	/* If we already have a pending isolation event for this
 470	 * slot, we know it's bad already, we don't need to check.
 471	 * Do this checking under a lock; as multiple PCI devices
 472	 * in one slot might report errors simultaneously, and we
 473	 * only want one error recovery routine running.
 474	 */
 475	eeh_serialize_lock(&flags);
 476	rc = 1;
 477	if (pe->state & EEH_PE_ISOLATED) {
 478		pe->check_count++;
 479		if (pe->check_count == EEH_MAX_FAILS) {
 480			dn = pci_device_to_OF_node(dev);
 481			if (dn)
 482				location = of_get_property(dn, "ibm,loc-code",
 483						NULL);
 484			eeh_edev_err(edev, "%d reads ignored for recovering device at location=%s driver=%s\n",
 485				pe->check_count,
 486				location ? location : "unknown",
 487				eeh_driver_name(dev));
 488			eeh_edev_err(edev, "Might be infinite loop in %s driver\n",
 489				eeh_driver_name(dev));
 490			dump_stack();
 491		}
 492		goto dn_unlock;
 493	}
 494
 495	/*
 496	 * Now test for an EEH failure.  This is VERY expensive.
 497	 * Note that the eeh_config_addr may be a parent device
 498	 * in the case of a device behind a bridge, or it may be
 499	 * function zero of a multi-function device.
 500	 * In any case they must share a common PHB.
 501	 */
 502	ret = eeh_ops->get_state(pe, NULL);
 503
 504	/* Note that config-io to empty slots may fail;
 505	 * they are empty when they don't have children.
 506	 * We will punt with the following conditions: Failure to get
 507	 * PE's state, EEH not support and Permanently unavailable
 508	 * state, PE is in good state.
 509	 */
 510	if ((ret < 0) ||
 511	    (ret == EEH_STATE_NOT_SUPPORT) || eeh_state_active(ret)) {
 
 512		eeh_stats.false_positives++;
 513		pe->false_positives++;
 514		rc = 0;
 515		goto dn_unlock;
 516	}
 517
 518	/*
 519	 * It should be corner case that the parent PE has been
 520	 * put into frozen state as well. We should take care
 521	 * that at first.
 522	 */
 523	parent_pe = pe->parent;
 524	while (parent_pe) {
 525		/* Hit the ceiling ? */
 526		if (parent_pe->type & EEH_PE_PHB)
 527			break;
 528
 529		/* Frozen parent PE ? */
 530		ret = eeh_ops->get_state(parent_pe, NULL);
 531		if (ret > 0 && !eeh_state_active(ret)) {
 
 532			pe = parent_pe;
 533			pr_err("EEH: Failure of PHB#%x-PE#%x will be handled at parent PHB#%x-PE#%x.\n",
 534			       pe->phb->global_number, pe->addr,
 535			       pe->phb->global_number, parent_pe->addr);
 536		}
 537
 538		/* Next parent level */
 539		parent_pe = parent_pe->parent;
 540	}
 541
 542	eeh_stats.slot_resets++;
 543
 544	/* Avoid repeated reports of this failure, including problems
 545	 * with other functions on this device, and functions under
 546	 * bridges.
 547	 */
 548	eeh_pe_mark_isolated(pe);
 549	eeh_serialize_unlock(flags);
 550
 551	/* Most EEH events are due to device driver bugs.  Having
 552	 * a stack trace will help the device-driver authors figure
 553	 * out what happened.  So print that out.
 554	 */
 555	pr_debug("EEH: %s: Frozen PHB#%x-PE#%x detected\n",
 556		__func__, pe->phb->global_number, pe->addr);
 
 
 
 
 
 557	eeh_send_failure_event(pe);
 558
 559	return 1;
 560
 561dn_unlock:
 562	eeh_serialize_unlock(flags);
 563	return rc;
 564}
 565
 566EXPORT_SYMBOL_GPL(eeh_dev_check_failure);
 567
 568/**
 569 * eeh_check_failure - Check if all 1's data is due to EEH slot freeze
 570 * @token: I/O address
 571 *
 572 * Check for an EEH failure at the given I/O address. Call this
 573 * routine if the result of a read was all 0xff's and you want to
 574 * find out if this is due to an EEH slot freeze event. This routine
 575 * will query firmware for the EEH status.
 576 *
 577 * Note this routine is safe to call in an interrupt context.
 578 */
 579int eeh_check_failure(const volatile void __iomem *token)
 580{
 581	unsigned long addr;
 582	struct eeh_dev *edev;
 583
 584	/* Finding the phys addr + pci device; this is pretty quick. */
 585	addr = eeh_token_to_phys((unsigned long __force) token);
 586	edev = eeh_addr_cache_get_dev(addr);
 587	if (!edev) {
 588		eeh_stats.no_device++;
 589		return 0;
 590	}
 591
 592	return eeh_dev_check_failure(edev);
 593}
 594EXPORT_SYMBOL(eeh_check_failure);
 595
 596
 597/**
 598 * eeh_pci_enable - Enable MMIO or DMA transfers for this slot
 599 * @pe: EEH PE
 600 * @function: EEH option
 601 *
 602 * This routine should be called to reenable frozen MMIO or DMA
 603 * so that it would work correctly again. It's useful while doing
 604 * recovery or log collection on the indicated device.
 605 */
 606int eeh_pci_enable(struct eeh_pe *pe, int function)
 607{
 608	int active_flag, rc;
 609
 610	/*
 611	 * pHyp doesn't allow to enable IO or DMA on unfrozen PE.
 612	 * Also, it's pointless to enable them on unfrozen PE. So
 613	 * we have to check before enabling IO or DMA.
 614	 */
 615	switch (function) {
 616	case EEH_OPT_THAW_MMIO:
 617		active_flag = EEH_STATE_MMIO_ACTIVE | EEH_STATE_MMIO_ENABLED;
 618		break;
 619	case EEH_OPT_THAW_DMA:
 620		active_flag = EEH_STATE_DMA_ACTIVE;
 621		break;
 622	case EEH_OPT_DISABLE:
 623	case EEH_OPT_ENABLE:
 624	case EEH_OPT_FREEZE_PE:
 625		active_flag = 0;
 626		break;
 627	default:
 628		pr_warn("%s: Invalid function %d\n",
 629			__func__, function);
 630		return -EINVAL;
 631	}
 632
 633	/*
 634	 * Check if IO or DMA has been enabled before
 635	 * enabling them.
 636	 */
 637	if (active_flag) {
 638		rc = eeh_ops->get_state(pe, NULL);
 639		if (rc < 0)
 640			return rc;
 641
 642		/* Needn't enable it at all */
 643		if (rc == EEH_STATE_NOT_SUPPORT)
 644			return 0;
 645
 646		/* It's already enabled */
 647		if (rc & active_flag)
 648			return 0;
 649	}
 650
 651
 652	/* Issue the request */
 653	rc = eeh_ops->set_option(pe, function);
 654	if (rc)
 655		pr_warn("%s: Unexpected state change %d on "
 656			"PHB#%x-PE#%x, err=%d\n",
 657			__func__, function, pe->phb->global_number,
 658			pe->addr, rc);
 659
 660	/* Check if the request is finished successfully */
 661	if (active_flag) {
 662		rc = eeh_wait_state(pe, PCI_BUS_RESET_WAIT_MSEC);
 663		if (rc < 0)
 664			return rc;
 665
 666		if (rc & active_flag)
 667			return 0;
 668
 669		return -EIO;
 670	}
 671
 672	return rc;
 673}
 674
 675static void eeh_disable_and_save_dev_state(struct eeh_dev *edev,
 676					    void *userdata)
 677{
 
 678	struct pci_dev *pdev = eeh_dev_to_pci_dev(edev);
 679	struct pci_dev *dev = userdata;
 680
 681	/*
 682	 * The caller should have disabled and saved the
 683	 * state for the specified device
 684	 */
 685	if (!pdev || pdev == dev)
 686		return;
 687
 688	/* Ensure we have D0 power state */
 689	pci_set_power_state(pdev, PCI_D0);
 690
 691	/* Save device state */
 692	pci_save_state(pdev);
 693
 694	/*
 695	 * Disable device to avoid any DMA traffic and
 696	 * interrupt from the device
 697	 */
 698	pci_write_config_word(pdev, PCI_COMMAND, PCI_COMMAND_INTX_DISABLE);
 
 
 699}
 700
 701static void eeh_restore_dev_state(struct eeh_dev *edev, void *userdata)
 702{
 
 
 703	struct pci_dev *pdev = eeh_dev_to_pci_dev(edev);
 704	struct pci_dev *dev = userdata;
 705
 706	if (!pdev)
 707		return;
 708
 709	/* Apply customization from firmware */
 710	if (eeh_ops->restore_config)
 711		eeh_ops->restore_config(edev);
 712
 713	/* The caller should restore state for the specified device */
 714	if (pdev != dev)
 715		pci_restore_state(pdev);
 
 
 716}
 717
 718/**
 719 * pcibios_set_pcie_reset_state - Set PCI-E reset state
 720 * @dev: pci device struct
 721 * @state: reset state to enter
 722 *
 723 * Return value:
 724 * 	0 if success
 725 */
 726int pcibios_set_pcie_reset_state(struct pci_dev *dev, enum pcie_reset_state state)
 727{
 728	struct eeh_dev *edev = pci_dev_to_eeh_dev(dev);
 729	struct eeh_pe *pe = eeh_dev_to_pe(edev);
 730
 731	if (!pe) {
 732		pr_err("%s: No PE found on PCI device %s\n",
 733			__func__, pci_name(dev));
 734		return -EINVAL;
 735	}
 736
 737	switch (state) {
 738	case pcie_deassert_reset:
 739		eeh_ops->reset(pe, EEH_RESET_DEACTIVATE);
 740		eeh_unfreeze_pe(pe);
 741		if (!(pe->type & EEH_PE_VF))
 742			eeh_pe_state_clear(pe, EEH_PE_CFG_BLOCKED, true);
 743		eeh_pe_dev_traverse(pe, eeh_restore_dev_state, dev);
 744		eeh_pe_state_clear(pe, EEH_PE_ISOLATED, true);
 745		break;
 746	case pcie_hot_reset:
 747		eeh_pe_mark_isolated(pe);
 748		eeh_pe_state_clear(pe, EEH_PE_CFG_BLOCKED, true);
 749		eeh_ops->set_option(pe, EEH_OPT_FREEZE_PE);
 750		eeh_pe_dev_traverse(pe, eeh_disable_and_save_dev_state, dev);
 751		if (!(pe->type & EEH_PE_VF))
 752			eeh_pe_state_mark(pe, EEH_PE_CFG_BLOCKED);
 753		eeh_ops->reset(pe, EEH_RESET_HOT);
 754		break;
 755	case pcie_warm_reset:
 756		eeh_pe_mark_isolated(pe);
 757		eeh_pe_state_clear(pe, EEH_PE_CFG_BLOCKED, true);
 758		eeh_ops->set_option(pe, EEH_OPT_FREEZE_PE);
 759		eeh_pe_dev_traverse(pe, eeh_disable_and_save_dev_state, dev);
 760		if (!(pe->type & EEH_PE_VF))
 761			eeh_pe_state_mark(pe, EEH_PE_CFG_BLOCKED);
 762		eeh_ops->reset(pe, EEH_RESET_FUNDAMENTAL);
 763		break;
 764	default:
 765		eeh_pe_state_clear(pe, EEH_PE_ISOLATED | EEH_PE_CFG_BLOCKED, true);
 766		return -EINVAL;
 767	}
 768
 769	return 0;
 770}
 771
 772/**
 773 * eeh_set_dev_freset - Check the required reset for the indicated device
 774 * @edev: EEH device
 775 * @flag: return value
 776 *
 777 * Each device might have its preferred reset type: fundamental or
 778 * hot reset. The routine is used to collected the information for
 779 * the indicated device and its children so that the bunch of the
 780 * devices could be reset properly.
 781 */
 782static void eeh_set_dev_freset(struct eeh_dev *edev, void *flag)
 783{
 784	struct pci_dev *dev;
 785	unsigned int *freset = (unsigned int *)flag;
 
 786
 787	dev = eeh_dev_to_pci_dev(edev);
 788	if (dev)
 789		*freset |= dev->needs_freset;
 790}
 791
 792static void eeh_pe_refreeze_passed(struct eeh_pe *root)
 793{
 794	struct eeh_pe *pe;
 795	int state;
 796
 797	eeh_for_each_pe(root, pe) {
 798		if (eeh_pe_passed(pe)) {
 799			state = eeh_ops->get_state(pe, NULL);
 800			if (state &
 801			   (EEH_STATE_MMIO_ACTIVE | EEH_STATE_MMIO_ENABLED)) {
 802				pr_info("EEH: Passed-through PE PHB#%x-PE#%x was thawed by reset, re-freezing for safety.\n",
 803					pe->phb->global_number, pe->addr);
 804				eeh_pe_set_option(pe, EEH_OPT_FREEZE_PE);
 805			}
 806		}
 807	}
 808}
 809
 810/**
 811 * eeh_pe_reset_full - Complete a full reset process on the indicated PE
 812 * @pe: EEH PE
 813 * @include_passed: include passed-through devices?
 814 *
 815 * This function executes a full reset procedure on a PE, including setting
 816 * the appropriate flags, performing a fundamental or hot reset, and then
 817 * deactivating the reset status.  It is designed to be used within the EEH
 818 * subsystem, as opposed to eeh_pe_reset which is exported to drivers and
 819 * only performs a single operation at a time.
 820 *
 821 * This function will attempt to reset a PE three times before failing.
 822 */
 823int eeh_pe_reset_full(struct eeh_pe *pe, bool include_passed)
 824{
 
 825	int reset_state = (EEH_PE_RESET | EEH_PE_CFG_BLOCKED);
 826	int type = EEH_RESET_HOT;
 827	unsigned int freset = 0;
 828	int i, state = 0, ret;
 829
 830	/*
 831	 * Determine the type of reset to perform - hot or fundamental.
 832	 * Hot reset is the default operation, unless any device under the
 833	 * PE requires a fundamental reset.
 834	 */
 835	eeh_pe_dev_traverse(pe, eeh_set_dev_freset, &freset);
 836
 837	if (freset)
 838		type = EEH_RESET_FUNDAMENTAL;
 839
 840	/* Mark the PE as in reset state and block config space accesses */
 841	eeh_pe_state_mark(pe, reset_state);
 842
 843	/* Make three attempts at resetting the bus */
 844	for (i = 0; i < 3; i++) {
 845		ret = eeh_pe_reset(pe, type, include_passed);
 846		if (!ret)
 847			ret = eeh_pe_reset(pe, EEH_RESET_DEACTIVATE,
 848					   include_passed);
 849		if (ret) {
 850			ret = -EIO;
 851			pr_warn("EEH: Failure %d resetting PHB#%x-PE#%x (attempt %d)\n\n",
 852				state, pe->phb->global_number, pe->addr, i + 1);
 853			continue;
 854		}
 855		if (i)
 856			pr_warn("EEH: PHB#%x-PE#%x: Successful reset (attempt %d)\n",
 857				pe->phb->global_number, pe->addr, i + 1);
 858
 859		/* Wait until the PE is in a functioning state */
 860		state = eeh_wait_state(pe, PCI_BUS_RESET_WAIT_MSEC);
 
 
 
 861		if (state < 0) {
 862			pr_warn("EEH: Unrecoverable slot failure on PHB#%x-PE#%x",
 863				pe->phb->global_number, pe->addr);
 864			ret = -ENOTRECOVERABLE;
 865			break;
 866		}
 867		if (eeh_state_active(state))
 868			break;
 869		else
 870			pr_warn("EEH: PHB#%x-PE#%x: Slot inactive after reset: 0x%x (attempt %d)\n",
 871				pe->phb->global_number, pe->addr, state, i + 1);
 872	}
 873
 874	/* Resetting the PE may have unfrozen child PEs. If those PEs have been
 875	 * (potentially) passed through to a guest, re-freeze them:
 876	 */
 877	if (!include_passed)
 878		eeh_pe_refreeze_passed(pe);
 879
 880	eeh_pe_state_clear(pe, reset_state, true);
 881	return ret;
 882}
 883
 884/**
 885 * eeh_save_bars - Save device bars
 886 * @edev: PCI device associated EEH device
 887 *
 888 * Save the values of the device bars. Unlike the restore
 889 * routine, this routine is *not* recursive. This is because
 890 * PCI devices are added individually; but, for the restore,
 891 * an entire slot is reset at a time.
 892 */
 893void eeh_save_bars(struct eeh_dev *edev)
 894{
 
 895	int i;
 896
 897	if (!edev)
 
 898		return;
 899
 900	for (i = 0; i < 16; i++)
 901		eeh_ops->read_config(edev, i * 4, 4, &edev->config_space[i]);
 902
 903	/*
 904	 * For PCI bridges including root port, we need enable bus
 905	 * master explicitly. Otherwise, it can't fetch IODA table
 906	 * entries correctly. So we cache the bit in advance so that
 907	 * we can restore it after reset, either PHB range or PE range.
 908	 */
 909	if (edev->mode & EEH_DEV_BRIDGE)
 910		edev->config_space[1] |= PCI_COMMAND_MASTER;
 911}
 912
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 913static int eeh_reboot_notifier(struct notifier_block *nb,
 914			       unsigned long action, void *unused)
 915{
 916	eeh_clear_flag(EEH_ENABLED);
 917	return NOTIFY_DONE;
 918}
 919
 920static struct notifier_block eeh_reboot_nb = {
 921	.notifier_call = eeh_reboot_notifier,
 922};
 923
 924static int eeh_device_notifier(struct notifier_block *nb,
 925			       unsigned long action, void *data)
 926{
 927	struct device *dev = data;
 928
 929	switch (action) {
 930	/*
 931	 * Note: It's not possible to perform EEH device addition (i.e.
 932	 * {pseries,pnv}_pcibios_bus_add_device()) here because it depends on
 933	 * the device's resources, which have not yet been set up.
 934	 */
 935	case BUS_NOTIFY_DEL_DEVICE:
 936		eeh_remove_device(to_pci_dev(dev));
 937		break;
 938	default:
 939		break;
 940	}
 941	return NOTIFY_DONE;
 942}
 943
 944static struct notifier_block eeh_device_nb = {
 945	.notifier_call = eeh_device_notifier,
 946};
 947
 948/**
 949 * eeh_init - System wide EEH initialization
 950 * @ops: struct to trace EEH operation callback functions
 951 *
 952 * It's the platform's job to call this from an arch_initcall().
 
 
 
 
 
 
 
 
 
 
 953 */
 954int eeh_init(struct eeh_ops *ops)
 955{
 956	struct pci_controller *hose, *tmp;
 
 
 957	int ret = 0;
 958
 959	/* the platform should only initialise EEH once */
 960	if (WARN_ON(eeh_ops))
 961		return -EEXIST;
 962	if (WARN_ON(!ops))
 963		return -ENOENT;
 964	eeh_ops = ops;
 
 
 965
 966	/* Register reboot notifier */
 967	ret = register_reboot_notifier(&eeh_reboot_nb);
 968	if (ret) {
 969		pr_warn("%s: Failed to register reboot notifier (%d)\n",
 970			__func__, ret);
 971		return ret;
 972	}
 973
 974	ret = bus_register_notifier(&pci_bus_type, &eeh_device_nb);
 975	if (ret) {
 976		pr_warn("%s: Failed to register bus notifier (%d)\n",
 977			__func__, ret);
 
 
 
 
 
 
 
 978		return ret;
 
 
 
 
 
 979	}
 980
 981	/* Initialize PHB PEs */
 982	list_for_each_entry_safe(hose, tmp, &hose_list, list_node)
 983		eeh_phb_pe_create(hose);
 
 
 
 
 
 
 
 984
 985	eeh_addr_cache_init();
 
 
 
 986
 987	/* Initialize EEH event */
 988	return eeh_event_init();
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 989}
 990
 991/**
 992 * eeh_probe_device() - Perform EEH initialization for the indicated pci device
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 993 * @dev: pci device for which to set up EEH
 994 *
 995 * This routine must be used to complete EEH initialization for PCI
 996 * devices that were added after system boot (e.g. hotplug, dlpar).
 997 */
 998void eeh_probe_device(struct pci_dev *dev)
 999{
 
1000	struct eeh_dev *edev;
1001
1002	pr_debug("EEH: Adding device %s\n", pci_name(dev));
1003
1004	/*
1005	 * pci_dev_to_eeh_dev() can only work if eeh_probe_dev() was
1006	 * already called for this device.
1007	 */
1008	if (WARN_ON_ONCE(pci_dev_to_eeh_dev(dev))) {
1009		pci_dbg(dev, "Already bound to an eeh_dev!\n");
1010		return;
1011	}
1012
1013	edev = eeh_ops->probe(dev);
1014	if (!edev) {
1015		pr_debug("EEH: Adding device failed\n");
 
 
 
1016		return;
1017	}
1018
1019	/*
1020	 * FIXME: We rely on pcibios_release_device() to remove the
1021	 * existing EEH state. The release function is only called if
1022	 * the pci_dev's refcount drops to zero so if something is
1023	 * keeping a ref to a device (e.g. a filesystem) we need to
1024	 * remove the old EEH state.
1025	 *
1026	 * FIXME: HEY MA, LOOK AT ME, NO LOCKING!
1027	 */
1028	if (edev->pdev && edev->pdev != dev) {
1029		eeh_pe_tree_remove(edev);
1030		eeh_addr_cache_rmv_dev(edev->pdev);
1031		eeh_sysfs_remove_device(edev->pdev);
 
1032
1033		/*
1034		 * We definitely should have the PCI device removed
1035		 * though it wasn't correctly. So we needn't call
1036		 * into error handler afterwards.
1037		 */
1038		edev->mode |= EEH_DEV_NO_HANDLER;
 
 
 
1039	}
1040
1041	/* bind the pdev and the edev together */
 
 
1042	edev->pdev = dev;
1043	dev->dev.archdata.edev = edev;
 
1044	eeh_addr_cache_insert_dev(dev);
1045	eeh_sysfs_add_device(dev);
1046}
1047
1048/**
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1049 * eeh_remove_device - Undo EEH setup for the indicated pci device
1050 * @dev: pci device to be removed
1051 *
1052 * This routine should be called when a device is removed from
1053 * a running system (e.g. by hotplug or dlpar).  It unregisters
1054 * the PCI device from the EEH subsystem.  I/O errors affecting
1055 * this device will no longer be detected after this call; thus,
1056 * i/o errors affecting this slot may leave this device unusable.
1057 */
1058void eeh_remove_device(struct pci_dev *dev)
1059{
1060	struct eeh_dev *edev;
1061
1062	if (!dev || !eeh_enabled())
1063		return;
1064	edev = pci_dev_to_eeh_dev(dev);
1065
1066	/* Unregister the device with the EEH/PCI address search system */
1067	dev_dbg(&dev->dev, "EEH: Removing device\n");
1068
1069	if (!edev || !edev->pdev || !edev->pe) {
1070		dev_dbg(&dev->dev, "EEH: Device not referenced!\n");
1071		return;
1072	}
1073
1074	/*
1075	 * During the hotplug for EEH error recovery, we need the EEH
1076	 * device attached to the parent PE in order for BAR restore
1077	 * a bit later. So we keep it for BAR restore and remove it
1078	 * from the parent PE during the BAR resotre.
1079	 */
1080	edev->pdev = NULL;
1081
1082	/*
1083	 * eeh_sysfs_remove_device() uses pci_dev_to_eeh_dev() so we need to
1084	 * remove the sysfs files before clearing dev.archdata.edev
 
 
1085	 */
1086	if (edev->mode & EEH_DEV_SYSFS)
1087		eeh_sysfs_remove_device(dev);
 
 
 
 
1088
1089	/*
1090	 * We're removing from the PCI subsystem, that means
1091	 * the PCI device driver can't support EEH or not
1092	 * well. So we rely on hotplug completely to do recovery
1093	 * for the specific PCI device.
1094	 */
1095	edev->mode |= EEH_DEV_NO_HANDLER;
1096
1097	eeh_addr_cache_rmv_dev(dev);
1098
1099	/*
1100	 * The flag "in_error" is used to trace EEH devices for VFs
1101	 * in error state or not. It's set in eeh_report_error(). If
1102	 * it's not set, eeh_report_{reset,resume}() won't be called
1103	 * for the VF EEH device.
1104	 */
1105	edev->in_error = false;
1106	dev->dev.archdata.edev = NULL;
1107	if (!(edev->pe->state & EEH_PE_KEEP))
1108		eeh_pe_tree_remove(edev);
1109	else
1110		edev->mode |= EEH_DEV_DISCONNECTED;
1111}
1112
1113int eeh_unfreeze_pe(struct eeh_pe *pe)
1114{
1115	int ret;
1116
1117	ret = eeh_pci_enable(pe, EEH_OPT_THAW_MMIO);
1118	if (ret) {
1119		pr_warn("%s: Failure %d enabling IO on PHB#%x-PE#%x\n",
1120			__func__, ret, pe->phb->global_number, pe->addr);
1121		return ret;
1122	}
1123
1124	ret = eeh_pci_enable(pe, EEH_OPT_THAW_DMA);
1125	if (ret) {
1126		pr_warn("%s: Failure %d enabling DMA on PHB#%x-PE#%x\n",
1127			__func__, ret, pe->phb->global_number, pe->addr);
1128		return ret;
1129	}
1130
 
 
 
 
1131	return ret;
1132}
1133
1134
1135static struct pci_device_id eeh_reset_ids[] = {
1136	{ PCI_DEVICE(0x19a2, 0x0710) },	/* Emulex, BE     */
1137	{ PCI_DEVICE(0x10df, 0xe220) },	/* Emulex, Lancer */
1138	{ PCI_DEVICE(0x14e4, 0x1657) }, /* Broadcom BCM5719 */
1139	{ 0 }
1140};
1141
1142static int eeh_pe_change_owner(struct eeh_pe *pe)
1143{
1144	struct eeh_dev *edev, *tmp;
1145	struct pci_dev *pdev;
1146	struct pci_device_id *id;
1147	int ret;
1148
1149	/* Check PE state */
 
1150	ret = eeh_ops->get_state(pe, NULL);
1151	if (ret < 0 || ret == EEH_STATE_NOT_SUPPORT)
1152		return 0;
1153
1154	/* Unfrozen PE, nothing to do */
1155	if (eeh_state_active(ret))
1156		return 0;
1157
1158	/* Frozen PE, check if it needs PE level reset */
1159	eeh_pe_for_each_dev(pe, edev, tmp) {
1160		pdev = eeh_dev_to_pci_dev(edev);
1161		if (!pdev)
1162			continue;
1163
1164		for (id = &eeh_reset_ids[0]; id->vendor != 0; id++) {
1165			if (id->vendor != PCI_ANY_ID &&
1166			    id->vendor != pdev->vendor)
1167				continue;
1168			if (id->device != PCI_ANY_ID &&
1169			    id->device != pdev->device)
1170				continue;
1171			if (id->subvendor != PCI_ANY_ID &&
1172			    id->subvendor != pdev->subsystem_vendor)
1173				continue;
1174			if (id->subdevice != PCI_ANY_ID &&
1175			    id->subdevice != pdev->subsystem_device)
1176				continue;
1177
1178			return eeh_pe_reset_and_recover(pe);
1179		}
1180	}
1181
1182	ret = eeh_unfreeze_pe(pe);
1183	if (!ret)
1184		eeh_pe_state_clear(pe, EEH_PE_ISOLATED, true);
1185	return ret;
1186}
1187
1188/**
1189 * eeh_dev_open - Increase count of pass through devices for PE
1190 * @pdev: PCI device
1191 *
1192 * Increase count of passed through devices for the indicated
1193 * PE. In the result, the EEH errors detected on the PE won't be
1194 * reported. The PE owner will be responsible for detection
1195 * and recovery.
1196 */
1197int eeh_dev_open(struct pci_dev *pdev)
1198{
1199	struct eeh_dev *edev;
1200	int ret = -ENODEV;
1201
1202	mutex_lock(&eeh_dev_mutex);
1203
1204	/* No PCI device ? */
1205	if (!pdev)
1206		goto out;
1207
1208	/* No EEH device or PE ? */
1209	edev = pci_dev_to_eeh_dev(pdev);
1210	if (!edev || !edev->pe)
1211		goto out;
1212
1213	/*
1214	 * The PE might have been put into frozen state, but we
1215	 * didn't detect that yet. The passed through PCI devices
1216	 * in frozen PE won't work properly. Clear the frozen state
1217	 * in advance.
1218	 */
1219	ret = eeh_pe_change_owner(edev->pe);
1220	if (ret)
1221		goto out;
1222
1223	/* Increase PE's pass through count */
1224	atomic_inc(&edev->pe->pass_dev_cnt);
1225	mutex_unlock(&eeh_dev_mutex);
1226
1227	return 0;
1228out:
1229	mutex_unlock(&eeh_dev_mutex);
1230	return ret;
1231}
1232EXPORT_SYMBOL_GPL(eeh_dev_open);
1233
1234/**
1235 * eeh_dev_release - Decrease count of pass through devices for PE
1236 * @pdev: PCI device
1237 *
1238 * Decrease count of pass through devices for the indicated PE. If
1239 * there is no passed through device in PE, the EEH errors detected
1240 * on the PE will be reported and handled as usual.
1241 */
1242void eeh_dev_release(struct pci_dev *pdev)
1243{
1244	struct eeh_dev *edev;
1245
1246	mutex_lock(&eeh_dev_mutex);
1247
1248	/* No PCI device ? */
1249	if (!pdev)
1250		goto out;
1251
1252	/* No EEH device ? */
1253	edev = pci_dev_to_eeh_dev(pdev);
1254	if (!edev || !edev->pe || !eeh_pe_passed(edev->pe))
1255		goto out;
1256
1257	/* Decrease PE's pass through count */
1258	WARN_ON(atomic_dec_if_positive(&edev->pe->pass_dev_cnt) < 0);
1259	eeh_pe_change_owner(edev->pe);
1260out:
1261	mutex_unlock(&eeh_dev_mutex);
1262}
1263EXPORT_SYMBOL(eeh_dev_release);
1264
1265#ifdef CONFIG_IOMMU_API
1266
1267static int dev_has_iommu_table(struct device *dev, void *data)
1268{
1269	struct pci_dev *pdev = to_pci_dev(dev);
1270	struct pci_dev **ppdev = data;
1271
1272	if (!dev)
1273		return 0;
1274
1275	if (device_iommu_mapped(dev)) {
1276		*ppdev = pdev;
1277		return 1;
1278	}
1279
1280	return 0;
1281}
1282
1283/**
1284 * eeh_iommu_group_to_pe - Convert IOMMU group to EEH PE
1285 * @group: IOMMU group
1286 *
1287 * The routine is called to convert IOMMU group to EEH PE.
1288 */
1289struct eeh_pe *eeh_iommu_group_to_pe(struct iommu_group *group)
1290{
1291	struct pci_dev *pdev = NULL;
1292	struct eeh_dev *edev;
1293	int ret;
1294
1295	/* No IOMMU group ? */
1296	if (!group)
1297		return NULL;
1298
1299	ret = iommu_group_for_each_dev(group, &pdev, dev_has_iommu_table);
1300	if (!ret || !pdev)
1301		return NULL;
1302
1303	/* No EEH device or PE ? */
1304	edev = pci_dev_to_eeh_dev(pdev);
1305	if (!edev || !edev->pe)
1306		return NULL;
1307
1308	return edev->pe;
1309}
1310EXPORT_SYMBOL_GPL(eeh_iommu_group_to_pe);
1311
1312#endif /* CONFIG_IOMMU_API */
1313
1314/**
1315 * eeh_pe_set_option - Set options for the indicated PE
1316 * @pe: EEH PE
1317 * @option: requested option
1318 *
1319 * The routine is called to enable or disable EEH functionality
1320 * on the indicated PE, to enable IO or DMA for the frozen PE.
1321 */
1322int eeh_pe_set_option(struct eeh_pe *pe, int option)
1323{
1324	int ret = 0;
1325
1326	/* Invalid PE ? */
1327	if (!pe)
1328		return -ENODEV;
1329
1330	/*
1331	 * EEH functionality could possibly be disabled, just
1332	 * return error for the case. And the EEH functionality
1333	 * isn't expected to be disabled on one specific PE.
1334	 */
1335	switch (option) {
1336	case EEH_OPT_ENABLE:
1337		if (eeh_enabled()) {
1338			ret = eeh_pe_change_owner(pe);
1339			break;
1340		}
1341		ret = -EIO;
1342		break;
1343	case EEH_OPT_DISABLE:
1344		break;
1345	case EEH_OPT_THAW_MMIO:
1346	case EEH_OPT_THAW_DMA:
1347	case EEH_OPT_FREEZE_PE:
1348		if (!eeh_ops || !eeh_ops->set_option) {
1349			ret = -ENOENT;
1350			break;
1351		}
1352
1353		ret = eeh_pci_enable(pe, option);
1354		break;
1355	default:
1356		pr_debug("%s: Option %d out of range (%d, %d)\n",
1357			__func__, option, EEH_OPT_DISABLE, EEH_OPT_THAW_DMA);
1358		ret = -EINVAL;
1359	}
1360
1361	return ret;
1362}
1363EXPORT_SYMBOL_GPL(eeh_pe_set_option);
1364
1365/**
1366 * eeh_pe_get_state - Retrieve PE's state
1367 * @pe: EEH PE
1368 *
1369 * Retrieve the PE's state, which includes 3 aspects: enabled
1370 * DMA, enabled IO and asserted reset.
1371 */
1372int eeh_pe_get_state(struct eeh_pe *pe)
1373{
1374	int result, ret = 0;
1375	bool rst_active, dma_en, mmio_en;
1376
1377	/* Existing PE ? */
1378	if (!pe)
1379		return -ENODEV;
1380
1381	if (!eeh_ops || !eeh_ops->get_state)
1382		return -ENOENT;
1383
1384	/*
1385	 * If the parent PE is owned by the host kernel and is undergoing
1386	 * error recovery, we should return the PE state as temporarily
1387	 * unavailable so that the error recovery on the guest is suspended
1388	 * until the recovery completes on the host.
1389	 */
1390	if (pe->parent &&
1391	    !(pe->state & EEH_PE_REMOVED) &&
1392	    (pe->parent->state & (EEH_PE_ISOLATED | EEH_PE_RECOVERING)))
1393		return EEH_PE_STATE_UNAVAIL;
1394
1395	result = eeh_ops->get_state(pe, NULL);
1396	rst_active = !!(result & EEH_STATE_RESET_ACTIVE);
1397	dma_en = !!(result & EEH_STATE_DMA_ENABLED);
1398	mmio_en = !!(result & EEH_STATE_MMIO_ENABLED);
1399
1400	if (rst_active)
1401		ret = EEH_PE_STATE_RESET;
1402	else if (dma_en && mmio_en)
1403		ret = EEH_PE_STATE_NORMAL;
1404	else if (!dma_en && !mmio_en)
1405		ret = EEH_PE_STATE_STOPPED_IO_DMA;
1406	else if (!dma_en && mmio_en)
1407		ret = EEH_PE_STATE_STOPPED_DMA;
1408	else
1409		ret = EEH_PE_STATE_UNAVAIL;
1410
1411	return ret;
1412}
1413EXPORT_SYMBOL_GPL(eeh_pe_get_state);
1414
1415static int eeh_pe_reenable_devices(struct eeh_pe *pe, bool include_passed)
1416{
1417	struct eeh_dev *edev, *tmp;
1418	struct pci_dev *pdev;
1419	int ret = 0;
1420
 
1421	eeh_pe_restore_bars(pe);
1422
1423	/*
1424	 * Reenable PCI devices as the devices passed
1425	 * through are always enabled before the reset.
1426	 */
1427	eeh_pe_for_each_dev(pe, edev, tmp) {
1428		pdev = eeh_dev_to_pci_dev(edev);
1429		if (!pdev)
1430			continue;
1431
1432		ret = pci_reenable_device(pdev);
1433		if (ret) {
1434			pr_warn("%s: Failure %d reenabling %s\n",
1435				__func__, ret, pci_name(pdev));
1436			return ret;
1437		}
1438	}
1439
1440	/* The PE is still in frozen state */
1441	if (include_passed || !eeh_pe_passed(pe)) {
1442		ret = eeh_unfreeze_pe(pe);
1443	} else
1444		pr_info("EEH: Note: Leaving passthrough PHB#%x-PE#%x frozen.\n",
1445			pe->phb->global_number, pe->addr);
1446	if (!ret)
1447		eeh_pe_state_clear(pe, EEH_PE_ISOLATED, include_passed);
1448	return ret;
1449}
1450
1451
1452/**
1453 * eeh_pe_reset - Issue PE reset according to specified type
1454 * @pe: EEH PE
1455 * @option: reset type
1456 * @include_passed: include passed-through devices?
1457 *
1458 * The routine is called to reset the specified PE with the
1459 * indicated type, either fundamental reset or hot reset.
1460 * PE reset is the most important part for error recovery.
1461 */
1462int eeh_pe_reset(struct eeh_pe *pe, int option, bool include_passed)
1463{
1464	int ret = 0;
1465
1466	/* Invalid PE ? */
1467	if (!pe)
1468		return -ENODEV;
1469
1470	if (!eeh_ops || !eeh_ops->set_option || !eeh_ops->reset)
1471		return -ENOENT;
1472
1473	switch (option) {
1474	case EEH_RESET_DEACTIVATE:
1475		ret = eeh_ops->reset(pe, option);
1476		eeh_pe_state_clear(pe, EEH_PE_CFG_BLOCKED, include_passed);
1477		if (ret)
1478			break;
1479
1480		ret = eeh_pe_reenable_devices(pe, include_passed);
1481		break;
1482	case EEH_RESET_HOT:
1483	case EEH_RESET_FUNDAMENTAL:
1484		/*
1485		 * Proactively freeze the PE to drop all MMIO access
1486		 * during reset, which should be banned as it's always
1487		 * cause recursive EEH error.
1488		 */
1489		eeh_ops->set_option(pe, EEH_OPT_FREEZE_PE);
1490
1491		eeh_pe_state_mark(pe, EEH_PE_CFG_BLOCKED);
1492		ret = eeh_ops->reset(pe, option);
1493		break;
1494	default:
1495		pr_debug("%s: Unsupported option %d\n",
1496			__func__, option);
1497		ret = -EINVAL;
1498	}
1499
1500	return ret;
1501}
1502EXPORT_SYMBOL_GPL(eeh_pe_reset);
1503
1504/**
1505 * eeh_pe_configure - Configure PCI bridges after PE reset
1506 * @pe: EEH PE
1507 *
1508 * The routine is called to restore the PCI config space for
1509 * those PCI devices, especially PCI bridges affected by PE
1510 * reset issued previously.
1511 */
1512int eeh_pe_configure(struct eeh_pe *pe)
1513{
1514	int ret = 0;
1515
1516	/* Invalid PE ? */
1517	if (!pe)
1518		return -ENODEV;
1519
1520	return ret;
1521}
1522EXPORT_SYMBOL_GPL(eeh_pe_configure);
1523
1524/**
1525 * eeh_pe_inject_err - Injecting the specified PCI error to the indicated PE
1526 * @pe: the indicated PE
1527 * @type: error type
1528 * @func: error function
1529 * @addr: address
1530 * @mask: address mask
1531 *
1532 * The routine is called to inject the specified PCI error, which
1533 * is determined by @type and @func, to the indicated PE for
1534 * testing purpose.
1535 */
1536int eeh_pe_inject_err(struct eeh_pe *pe, int type, int func,
1537		      unsigned long addr, unsigned long mask)
1538{
1539	/* Invalid PE ? */
1540	if (!pe)
1541		return -ENODEV;
1542
1543	/* Unsupported operation ? */
1544	if (!eeh_ops || !eeh_ops->err_inject)
1545		return -ENOENT;
1546
1547	/* Check on PCI error type */
1548	if (type != EEH_ERR_TYPE_32 && type != EEH_ERR_TYPE_64)
1549		return -EINVAL;
1550
1551	/* Check on PCI error function */
1552	if (func < EEH_ERR_FUNC_MIN || func > EEH_ERR_FUNC_MAX)
1553		return -EINVAL;
1554
1555	return eeh_ops->err_inject(pe, type, func, addr, mask);
1556}
1557EXPORT_SYMBOL_GPL(eeh_pe_inject_err);
1558
1559#ifdef CONFIG_PROC_FS
1560static int proc_eeh_show(struct seq_file *m, void *v)
1561{
1562	if (!eeh_enabled()) {
1563		seq_printf(m, "EEH Subsystem is globally disabled\n");
1564		seq_printf(m, "eeh_total_mmio_ffs=%llu\n", eeh_stats.total_mmio_ffs);
1565	} else {
1566		seq_printf(m, "EEH Subsystem is enabled\n");
1567		seq_printf(m,
1568				"no device=%llu\n"
1569				"no device node=%llu\n"
1570				"no config address=%llu\n"
1571				"check not wanted=%llu\n"
1572				"eeh_total_mmio_ffs=%llu\n"
1573				"eeh_false_positives=%llu\n"
1574				"eeh_slot_resets=%llu\n",
1575				eeh_stats.no_device,
1576				eeh_stats.no_dn,
1577				eeh_stats.no_cfg_addr,
1578				eeh_stats.ignored_check,
1579				eeh_stats.total_mmio_ffs,
1580				eeh_stats.false_positives,
1581				eeh_stats.slot_resets);
1582	}
1583
1584	return 0;
1585}
1586#endif /* CONFIG_PROC_FS */
1587
1588#ifdef CONFIG_DEBUG_FS
1589
1590
1591static struct pci_dev *eeh_debug_lookup_pdev(struct file *filp,
1592					     const char __user *user_buf,
1593					     size_t count, loff_t *ppos)
1594{
1595	uint32_t domain, bus, dev, fn;
1596	struct pci_dev *pdev;
1597	char buf[20];
1598	int ret;
1599
1600	memset(buf, 0, sizeof(buf));
1601	ret = simple_write_to_buffer(buf, sizeof(buf)-1, ppos, user_buf, count);
1602	if (!ret)
1603		return ERR_PTR(-EFAULT);
1604
1605	ret = sscanf(buf, "%x:%x:%x.%x", &domain, &bus, &dev, &fn);
1606	if (ret != 4) {
1607		pr_err("%s: expected 4 args, got %d\n", __func__, ret);
1608		return ERR_PTR(-EINVAL);
1609	}
1610
1611	pdev = pci_get_domain_bus_and_slot(domain, bus, (dev << 3) | fn);
1612	if (!pdev)
1613		return ERR_PTR(-ENODEV);
1614
1615	return pdev;
1616}
1617
 
 
 
 
 
 
 
 
1618static int eeh_enable_dbgfs_set(void *data, u64 val)
1619{
1620	if (val)
1621		eeh_clear_flag(EEH_FORCE_DISABLED);
1622	else
1623		eeh_add_flag(EEH_FORCE_DISABLED);
1624
 
 
 
 
1625	return 0;
1626}
1627
1628static int eeh_enable_dbgfs_get(void *data, u64 *val)
1629{
1630	if (eeh_enabled())
1631		*val = 0x1ul;
1632	else
1633		*val = 0x0ul;
1634	return 0;
1635}
1636
1637DEFINE_DEBUGFS_ATTRIBUTE(eeh_enable_dbgfs_ops, eeh_enable_dbgfs_get,
1638			 eeh_enable_dbgfs_set, "0x%llx\n");
1639
1640static ssize_t eeh_force_recover_write(struct file *filp,
1641				const char __user *user_buf,
1642				size_t count, loff_t *ppos)
1643{
1644	struct pci_controller *hose;
1645	uint32_t phbid, pe_no;
1646	struct eeh_pe *pe;
1647	char buf[20];
1648	int ret;
1649
1650	ret = simple_write_to_buffer(buf, sizeof(buf), ppos, user_buf, count);
1651	if (!ret)
1652		return -EFAULT;
1653
1654	/*
1655	 * When PE is NULL the event is a "special" event. Rather than
1656	 * recovering a specific PE it forces the EEH core to scan for failed
1657	 * PHBs and recovers each. This needs to be done before any device
1658	 * recoveries can occur.
1659	 */
1660	if (!strncmp(buf, "hwcheck", 7)) {
1661		__eeh_send_failure_event(NULL);
1662		return count;
1663	}
1664
1665	ret = sscanf(buf, "%x:%x", &phbid, &pe_no);
1666	if (ret != 2)
1667		return -EINVAL;
1668
1669	hose = pci_find_controller_for_domain(phbid);
1670	if (!hose)
1671		return -ENODEV;
1672
1673	/* Retrieve PE */
1674	pe = eeh_pe_get(hose, pe_no);
1675	if (!pe)
1676		return -ENODEV;
1677
1678	/*
1679	 * We don't do any state checking here since the detection
1680	 * process is async to the recovery process. The recovery
1681	 * thread *should* not break even if we schedule a recovery
1682	 * from an odd state (e.g. PE removed, or recovery of a
1683	 * non-isolated PE)
1684	 */
1685	__eeh_send_failure_event(pe);
1686
1687	return ret < 0 ? ret : count;
1688}
1689
1690static const struct file_operations eeh_force_recover_fops = {
1691	.open	= simple_open,
1692	.llseek	= no_llseek,
1693	.write	= eeh_force_recover_write,
1694};
1695
1696static ssize_t eeh_debugfs_dev_usage(struct file *filp,
1697				char __user *user_buf,
1698				size_t count, loff_t *ppos)
1699{
1700	static const char usage[] = "input format: <domain>:<bus>:<dev>.<fn>\n";
1701
1702	return simple_read_from_buffer(user_buf, count, ppos,
1703				       usage, sizeof(usage) - 1);
1704}
1705
1706static ssize_t eeh_dev_check_write(struct file *filp,
1707				const char __user *user_buf,
1708				size_t count, loff_t *ppos)
1709{
1710	struct pci_dev *pdev;
1711	struct eeh_dev *edev;
1712	int ret;
1713
1714	pdev = eeh_debug_lookup_pdev(filp, user_buf, count, ppos);
1715	if (IS_ERR(pdev))
1716		return PTR_ERR(pdev);
1717
1718	edev = pci_dev_to_eeh_dev(pdev);
1719	if (!edev) {
1720		pci_err(pdev, "No eeh_dev for this device!\n");
1721		pci_dev_put(pdev);
1722		return -ENODEV;
1723	}
1724
1725	ret = eeh_dev_check_failure(edev);
1726	pci_info(pdev, "eeh_dev_check_failure(%s) = %d\n",
1727			pci_name(pdev), ret);
1728
1729	pci_dev_put(pdev);
1730
1731	return count;
1732}
1733
1734static const struct file_operations eeh_dev_check_fops = {
1735	.open	= simple_open,
1736	.llseek	= no_llseek,
1737	.write	= eeh_dev_check_write,
1738	.read   = eeh_debugfs_dev_usage,
1739};
1740
1741static int eeh_debugfs_break_device(struct pci_dev *pdev)
1742{
1743	struct resource *bar = NULL;
1744	void __iomem *mapped;
1745	u16 old, bit;
1746	int i, pos;
1747
1748	/* Do we have an MMIO BAR to disable? */
1749	for (i = 0; i <= PCI_STD_RESOURCE_END; i++) {
1750		struct resource *r = &pdev->resource[i];
1751
1752		if (!r->flags || !r->start)
1753			continue;
1754		if (r->flags & IORESOURCE_IO)
1755			continue;
1756		if (r->flags & IORESOURCE_UNSET)
1757			continue;
1758
1759		bar = r;
1760		break;
1761	}
1762
1763	if (!bar) {
1764		pci_err(pdev, "Unable to find Memory BAR to cause EEH with\n");
1765		return -ENXIO;
1766	}
1767
1768	pci_err(pdev, "Going to break: %pR\n", bar);
1769
1770	if (pdev->is_virtfn) {
1771#ifndef CONFIG_PCI_IOV
1772		return -ENXIO;
1773#else
1774		/*
1775		 * VFs don't have a per-function COMMAND register, so the best
1776		 * we can do is clear the Memory Space Enable bit in the PF's
1777		 * SRIOV control reg.
1778		 *
1779		 * Unfortunately, this requires that we have a PF (i.e doesn't
1780		 * work for a passed-through VF) and it has the potential side
1781		 * effect of also causing an EEH on every other VF under the
1782		 * PF. Oh well.
1783		 */
1784		pdev = pdev->physfn;
1785		if (!pdev)
1786			return -ENXIO; /* passed through VFs have no PF */
1787
1788		pos  = pci_find_ext_capability(pdev, PCI_EXT_CAP_ID_SRIOV);
1789		pos += PCI_SRIOV_CTRL;
1790		bit  = PCI_SRIOV_CTRL_MSE;
1791#endif /* !CONFIG_PCI_IOV */
1792	} else {
1793		bit = PCI_COMMAND_MEMORY;
1794		pos = PCI_COMMAND;
1795	}
1796
1797	/*
1798	 * Process here is:
1799	 *
1800	 * 1. Disable Memory space.
1801	 *
1802	 * 2. Perform an MMIO to the device. This should result in an error
1803	 *    (CA  / UR) being raised by the device which results in an EEH
1804	 *    PE freeze. Using the in_8() accessor skips the eeh detection hook
1805	 *    so the freeze hook so the EEH Detection machinery won't be
1806	 *    triggered here. This is to match the usual behaviour of EEH
1807	 *    where the HW will asynchronously freeze a PE and it's up to
1808	 *    the kernel to notice and deal with it.
1809	 *
1810	 * 3. Turn Memory space back on. This is more important for VFs
1811	 *    since recovery will probably fail if we don't. For normal
1812	 *    the COMMAND register is reset as a part of re-initialising
1813	 *    the device.
1814	 *
1815	 * Breaking stuff is the point so who cares if it's racy ;)
1816	 */
1817	pci_read_config_word(pdev, pos, &old);
1818
1819	mapped = ioremap(bar->start, PAGE_SIZE);
1820	if (!mapped) {
1821		pci_err(pdev, "Unable to map MMIO BAR %pR\n", bar);
1822		return -ENXIO;
1823	}
1824
1825	pci_write_config_word(pdev, pos, old & ~bit);
1826	in_8(mapped);
1827	pci_write_config_word(pdev, pos, old);
1828
1829	iounmap(mapped);
1830
1831	return 0;
1832}
1833
1834static ssize_t eeh_dev_break_write(struct file *filp,
1835				const char __user *user_buf,
1836				size_t count, loff_t *ppos)
1837{
1838	struct pci_dev *pdev;
1839	int ret;
1840
1841	pdev = eeh_debug_lookup_pdev(filp, user_buf, count, ppos);
1842	if (IS_ERR(pdev))
1843		return PTR_ERR(pdev);
1844
1845	ret = eeh_debugfs_break_device(pdev);
1846	pci_dev_put(pdev);
1847
1848	if (ret < 0)
1849		return ret;
1850
1851	return count;
1852}
1853
1854static const struct file_operations eeh_dev_break_fops = {
1855	.open	= simple_open,
1856	.llseek	= no_llseek,
1857	.write	= eeh_dev_break_write,
1858	.read   = eeh_debugfs_dev_usage,
1859};
1860
1861static ssize_t eeh_dev_can_recover(struct file *filp,
1862				   const char __user *user_buf,
1863				   size_t count, loff_t *ppos)
1864{
1865	struct pci_driver *drv;
1866	struct pci_dev *pdev;
1867	size_t ret;
1868
1869	pdev = eeh_debug_lookup_pdev(filp, user_buf, count, ppos);
1870	if (IS_ERR(pdev))
1871		return PTR_ERR(pdev);
1872
1873	/*
1874	 * In order for error recovery to work the driver needs to implement
1875	 * .error_detected(), so it can quiesce IO to the device, and
1876	 * .slot_reset() so it can re-initialise the device after a reset.
1877	 *
1878	 * Ideally they'd implement .resume() too, but some drivers which
1879	 * we need to support (notably IPR) don't so I guess we can tolerate
1880	 * that.
1881	 *
1882	 * .mmio_enabled() is mostly there as a work-around for devices which
1883	 * take forever to re-init after a hot reset. Implementing that is
1884	 * strictly optional.
1885	 */
1886	drv = pci_dev_driver(pdev);
1887	if (drv &&
1888	    drv->err_handler &&
1889	    drv->err_handler->error_detected &&
1890	    drv->err_handler->slot_reset) {
1891		ret = count;
1892	} else {
1893		ret = -EOPNOTSUPP;
1894	}
1895
1896	pci_dev_put(pdev);
1897
1898	return ret;
1899}
1900
1901static const struct file_operations eeh_dev_can_recover_fops = {
1902	.open	= simple_open,
1903	.llseek	= no_llseek,
1904	.write	= eeh_dev_can_recover,
1905	.read   = eeh_debugfs_dev_usage,
1906};
1907
1908#endif
1909
1910static int __init eeh_init_proc(void)
1911{
1912	if (machine_is(pseries) || machine_is(powernv)) {
1913		proc_create_single("powerpc/eeh", 0, NULL, proc_eeh_show);
1914#ifdef CONFIG_DEBUG_FS
1915		debugfs_create_file_unsafe("eeh_enable", 0600,
1916					   arch_debugfs_dir, NULL,
1917					   &eeh_enable_dbgfs_ops);
1918		debugfs_create_u32("eeh_max_freezes", 0600,
1919				arch_debugfs_dir, &eeh_max_freezes);
1920		debugfs_create_bool("eeh_disable_recovery", 0600,
1921				arch_debugfs_dir,
1922				&eeh_debugfs_no_recover);
1923		debugfs_create_file_unsafe("eeh_dev_check", 0600,
1924				arch_debugfs_dir, NULL,
1925				&eeh_dev_check_fops);
1926		debugfs_create_file_unsafe("eeh_dev_break", 0600,
1927				arch_debugfs_dir, NULL,
1928				&eeh_dev_break_fops);
1929		debugfs_create_file_unsafe("eeh_force_recover", 0600,
1930				arch_debugfs_dir, NULL,
1931				&eeh_force_recover_fops);
1932		debugfs_create_file_unsafe("eeh_dev_can_recover", 0600,
1933				arch_debugfs_dir, NULL,
1934				&eeh_dev_can_recover_fops);
1935		eeh_cache_debugfs_init();
1936#endif
1937	}
1938
1939	return 0;
1940}
1941__initcall(eeh_init_proc);
v4.10.11
 
   1/*
   2 * Copyright IBM Corporation 2001, 2005, 2006
   3 * Copyright Dave Engebretsen & Todd Inglett 2001
   4 * Copyright Linas Vepstas 2005, 2006
   5 * Copyright 2001-2012 IBM Corporation.
   6 *
   7 * This program is free software; you can redistribute it and/or modify
   8 * it under the terms of the GNU General Public License as published by
   9 * the Free Software Foundation; either version 2 of the License, or
  10 * (at your option) any later version.
  11 *
  12 * This program is distributed in the hope that it will be useful,
  13 * but WITHOUT ANY WARRANTY; without even the implied warranty of
  14 * MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE.  See the
  15 * GNU General Public License for more details.
  16 *
  17 * You should have received a copy of the GNU General Public License
  18 * along with this program; if not, write to the Free Software
  19 * Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA  02111-1307 USA
  20 *
  21 * Please address comments and feedback to Linas Vepstas <linas@austin.ibm.com>
  22 */
  23
  24#include <linux/delay.h>
  25#include <linux/debugfs.h>
  26#include <linux/sched.h>
  27#include <linux/init.h>
  28#include <linux/list.h>
  29#include <linux/pci.h>
  30#include <linux/iommu.h>
  31#include <linux/proc_fs.h>
  32#include <linux/rbtree.h>
  33#include <linux/reboot.h>
  34#include <linux/seq_file.h>
  35#include <linux/spinlock.h>
  36#include <linux/export.h>
  37#include <linux/of.h>
 
  38
  39#include <linux/atomic.h>
  40#include <asm/debug.h>
  41#include <asm/eeh.h>
  42#include <asm/eeh_event.h>
  43#include <asm/io.h>
  44#include <asm/iommu.h>
  45#include <asm/machdep.h>
  46#include <asm/ppc-pci.h>
  47#include <asm/rtas.h>
 
  48
  49
  50/** Overview:
  51 *  EEH, or "Enhanced Error Handling" is a PCI bridge technology for
  52 *  dealing with PCI bus errors that can't be dealt with within the
  53 *  usual PCI framework, except by check-stopping the CPU.  Systems
  54 *  that are designed for high-availability/reliability cannot afford
  55 *  to crash due to a "mere" PCI error, thus the need for EEH.
  56 *  An EEH-capable bridge operates by converting a detected error
  57 *  into a "slot freeze", taking the PCI adapter off-line, making
  58 *  the slot behave, from the OS'es point of view, as if the slot
  59 *  were "empty": all reads return 0xff's and all writes are silently
  60 *  ignored.  EEH slot isolation events can be triggered by parity
  61 *  errors on the address or data busses (e.g. during posted writes),
  62 *  which in turn might be caused by low voltage on the bus, dust,
  63 *  vibration, humidity, radioactivity or plain-old failed hardware.
  64 *
  65 *  Note, however, that one of the leading causes of EEH slot
  66 *  freeze events are buggy device drivers, buggy device microcode,
  67 *  or buggy device hardware.  This is because any attempt by the
  68 *  device to bus-master data to a memory address that is not
  69 *  assigned to the device will trigger a slot freeze.   (The idea
  70 *  is to prevent devices-gone-wild from corrupting system memory).
  71 *  Buggy hardware/drivers will have a miserable time co-existing
  72 *  with EEH.
  73 *
  74 *  Ideally, a PCI device driver, when suspecting that an isolation
  75 *  event has occurred (e.g. by reading 0xff's), will then ask EEH
  76 *  whether this is the case, and then take appropriate steps to
  77 *  reset the PCI slot, the PCI device, and then resume operations.
  78 *  However, until that day,  the checking is done here, with the
  79 *  eeh_check_failure() routine embedded in the MMIO macros.  If
  80 *  the slot is found to be isolated, an "EEH Event" is synthesized
  81 *  and sent out for processing.
  82 */
  83
  84/* If a device driver keeps reading an MMIO register in an interrupt
  85 * handler after a slot isolation event, it might be broken.
  86 * This sets the threshold for how many read attempts we allow
  87 * before printing an error message.
  88 */
  89#define EEH_MAX_FAILS	2100000
  90
  91/* Time to wait for a PCI slot to report status, in milliseconds */
  92#define PCI_BUS_RESET_WAIT_MSEC (5*60*1000)
  93
  94/*
  95 * EEH probe mode support, which is part of the flags,
  96 * is to support multiple platforms for EEH. Some platforms
  97 * like pSeries do PCI emunation based on device tree.
  98 * However, other platforms like powernv probe PCI devices
  99 * from hardware. The flag is used to distinguish that.
 100 * In addition, struct eeh_ops::probe would be invoked for
 101 * particular OF node or PCI device so that the corresponding
 102 * PE would be created there.
 103 */
 104int eeh_subsystem_flags;
 105EXPORT_SYMBOL(eeh_subsystem_flags);
 106
 107/*
 108 * EEH allowed maximal frozen times. If one particular PE's
 109 * frozen count in last hour exceeds this limit, the PE will
 110 * be forced to be offline permanently.
 111 */
 112int eeh_max_freezes = 5;
 
 
 
 
 
 
 
 113
 114/* Platform dependent EEH operations */
 115struct eeh_ops *eeh_ops = NULL;
 116
 117/* Lock to avoid races due to multiple reports of an error */
 118DEFINE_RAW_SPINLOCK(confirm_error_lock);
 119EXPORT_SYMBOL_GPL(confirm_error_lock);
 120
 121/* Lock to protect passed flags */
 122static DEFINE_MUTEX(eeh_dev_mutex);
 123
 124/* Buffer for reporting pci register dumps. Its here in BSS, and
 125 * not dynamically alloced, so that it ends up in RMO where RTAS
 126 * can access it.
 127 */
 128#define EEH_PCI_REGS_LOG_LEN 8192
 129static unsigned char pci_regs_buf[EEH_PCI_REGS_LOG_LEN];
 130
 131/*
 132 * The struct is used to maintain the EEH global statistic
 133 * information. Besides, the EEH global statistics will be
 134 * exported to user space through procfs
 135 */
 136struct eeh_stats {
 137	u64 no_device;		/* PCI device not found		*/
 138	u64 no_dn;		/* OF node not found		*/
 139	u64 no_cfg_addr;	/* Config address not found	*/
 140	u64 ignored_check;	/* EEH check skipped		*/
 141	u64 total_mmio_ffs;	/* Total EEH checks		*/
 142	u64 false_positives;	/* Unnecessary EEH checks	*/
 143	u64 slot_resets;	/* PE reset			*/
 144};
 145
 146static struct eeh_stats eeh_stats;
 147
 148static int __init eeh_setup(char *str)
 149{
 150	if (!strcmp(str, "off"))
 151		eeh_add_flag(EEH_FORCE_DISABLED);
 152	else if (!strcmp(str, "early_log"))
 153		eeh_add_flag(EEH_EARLY_DUMP_LOG);
 154
 155	return 1;
 156}
 157__setup("eeh=", eeh_setup);
 158
 
 
 
 
 
 
 
 
 
 
 159/*
 160 * This routine captures assorted PCI configuration space data
 161 * for the indicated PCI device, and puts them into a buffer
 162 * for RTAS error logging.
 163 */
 164static size_t eeh_dump_dev_log(struct eeh_dev *edev, char *buf, size_t len)
 165{
 166	struct pci_dn *pdn = eeh_dev_to_pdn(edev);
 167	u32 cfg;
 168	int cap, i;
 169	int n = 0, l = 0;
 170	char buffer[128];
 171
 172	n += scnprintf(buf+n, len-n, "%04x:%02x:%02x.%01x\n",
 173		       edev->phb->global_number, pdn->busno,
 174		       PCI_SLOT(pdn->devfn), PCI_FUNC(pdn->devfn));
 175	pr_warn("EEH: of node=%04x:%02x:%02x.%01x\n",
 176		edev->phb->global_number, pdn->busno,
 177		PCI_SLOT(pdn->devfn), PCI_FUNC(pdn->devfn));
 178
 179	eeh_ops->read_config(pdn, PCI_VENDOR_ID, 4, &cfg);
 180	n += scnprintf(buf+n, len-n, "dev/vend:%08x\n", cfg);
 181	pr_warn("EEH: PCI device/vendor: %08x\n", cfg);
 182
 183	eeh_ops->read_config(pdn, PCI_COMMAND, 4, &cfg);
 184	n += scnprintf(buf+n, len-n, "cmd/stat:%x\n", cfg);
 185	pr_warn("EEH: PCI cmd/status register: %08x\n", cfg);
 186
 187	/* Gather bridge-specific registers */
 188	if (edev->mode & EEH_DEV_BRIDGE) {
 189		eeh_ops->read_config(pdn, PCI_SEC_STATUS, 2, &cfg);
 190		n += scnprintf(buf+n, len-n, "sec stat:%x\n", cfg);
 191		pr_warn("EEH: Bridge secondary status: %04x\n", cfg);
 192
 193		eeh_ops->read_config(pdn, PCI_BRIDGE_CONTROL, 2, &cfg);
 194		n += scnprintf(buf+n, len-n, "brdg ctl:%x\n", cfg);
 195		pr_warn("EEH: Bridge control: %04x\n", cfg);
 196	}
 197
 198	/* Dump out the PCI-X command and status regs */
 199	cap = edev->pcix_cap;
 200	if (cap) {
 201		eeh_ops->read_config(pdn, cap, 4, &cfg);
 202		n += scnprintf(buf+n, len-n, "pcix-cmd:%x\n", cfg);
 203		pr_warn("EEH: PCI-X cmd: %08x\n", cfg);
 204
 205		eeh_ops->read_config(pdn, cap+4, 4, &cfg);
 206		n += scnprintf(buf+n, len-n, "pcix-stat:%x\n", cfg);
 207		pr_warn("EEH: PCI-X status: %08x\n", cfg);
 208	}
 209
 210	/* If PCI-E capable, dump PCI-E cap 10 */
 211	cap = edev->pcie_cap;
 212	if (cap) {
 213		n += scnprintf(buf+n, len-n, "pci-e cap10:\n");
 214		pr_warn("EEH: PCI-E capabilities and status follow:\n");
 215
 216		for (i=0; i<=8; i++) {
 217			eeh_ops->read_config(pdn, cap+4*i, 4, &cfg);
 218			n += scnprintf(buf+n, len-n, "%02x:%x\n", 4*i, cfg);
 219
 220			if ((i % 4) == 0) {
 221				if (i != 0)
 222					pr_warn("%s\n", buffer);
 223
 224				l = scnprintf(buffer, sizeof(buffer),
 225					      "EEH: PCI-E %02x: %08x ",
 226					      4*i, cfg);
 227			} else {
 228				l += scnprintf(buffer+l, sizeof(buffer)-l,
 229					       "%08x ", cfg);
 230			}
 231
 232		}
 233
 234		pr_warn("%s\n", buffer);
 235	}
 236
 237	/* If AER capable, dump it */
 238	cap = edev->aer_cap;
 239	if (cap) {
 240		n += scnprintf(buf+n, len-n, "pci-e AER:\n");
 241		pr_warn("EEH: PCI-E AER capability register set follows:\n");
 242
 243		for (i=0; i<=13; i++) {
 244			eeh_ops->read_config(pdn, cap+4*i, 4, &cfg);
 245			n += scnprintf(buf+n, len-n, "%02x:%x\n", 4*i, cfg);
 246
 247			if ((i % 4) == 0) {
 248				if (i != 0)
 249					pr_warn("%s\n", buffer);
 250
 251				l = scnprintf(buffer, sizeof(buffer),
 252					      "EEH: PCI-E AER %02x: %08x ",
 253					      4*i, cfg);
 254			} else {
 255				l += scnprintf(buffer+l, sizeof(buffer)-l,
 256					       "%08x ", cfg);
 257			}
 258		}
 259
 260		pr_warn("%s\n", buffer);
 261	}
 262
 263	return n;
 264}
 265
 266static void *eeh_dump_pe_log(void *data, void *flag)
 267{
 268	struct eeh_pe *pe = data;
 269	struct eeh_dev *edev, *tmp;
 270	size_t *plen = flag;
 271
 272	eeh_pe_for_each_dev(pe, edev, tmp)
 273		*plen += eeh_dump_dev_log(edev, pci_regs_buf + *plen,
 274					  EEH_PCI_REGS_LOG_LEN - *plen);
 275
 276	return NULL;
 277}
 278
 279/**
 280 * eeh_slot_error_detail - Generate combined log including driver log and error log
 281 * @pe: EEH PE
 282 * @severity: temporary or permanent error log
 283 *
 284 * This routine should be called to generate the combined log, which
 285 * is comprised of driver log and error log. The driver log is figured
 286 * out from the config space of the corresponding PCI device, while
 287 * the error log is fetched through platform dependent function call.
 288 */
 289void eeh_slot_error_detail(struct eeh_pe *pe, int severity)
 290{
 291	size_t loglen = 0;
 292
 293	/*
 294	 * When the PHB is fenced or dead, it's pointless to collect
 295	 * the data from PCI config space because it should return
 296	 * 0xFF's. For ER, we still retrieve the data from the PCI
 297	 * config space.
 298	 *
 299	 * For pHyp, we have to enable IO for log retrieval. Otherwise,
 300	 * 0xFF's is always returned from PCI config space.
 301	 *
 302	 * When the @severity is EEH_LOG_PERM, the PE is going to be
 303	 * removed. Prior to that, the drivers for devices included in
 304	 * the PE will be closed. The drivers rely on working IO path
 305	 * to bring the devices to quiet state. Otherwise, PCI traffic
 306	 * from those devices after they are removed is like to cause
 307	 * another unexpected EEH error.
 308	 */
 309	if (!(pe->type & EEH_PE_PHB)) {
 310		if (eeh_has_flag(EEH_ENABLE_IO_FOR_LOG) ||
 311		    severity == EEH_LOG_PERM)
 312			eeh_pci_enable(pe, EEH_OPT_THAW_MMIO);
 313
 314		/*
 315		 * The config space of some PCI devices can't be accessed
 316		 * when their PEs are in frozen state. Otherwise, fenced
 317		 * PHB might be seen. Those PEs are identified with flag
 318		 * EEH_PE_CFG_RESTRICTED, indicating EEH_PE_CFG_BLOCKED
 319		 * is set automatically when the PE is put to EEH_PE_ISOLATED.
 320		 *
 321		 * Restoring BARs possibly triggers PCI config access in
 322		 * (OPAL) firmware and then causes fenced PHB. If the
 323		 * PCI config is blocked with flag EEH_PE_CFG_BLOCKED, it's
 324		 * pointless to restore BARs and dump config space.
 325		 */
 326		eeh_ops->configure_bridge(pe);
 327		if (!(pe->state & EEH_PE_CFG_BLOCKED)) {
 328			eeh_pe_restore_bars(pe);
 329
 330			pci_regs_buf[0] = 0;
 331			eeh_pe_traverse(pe, eeh_dump_pe_log, &loglen);
 332		}
 333	}
 334
 335	eeh_ops->get_log(pe, severity, pci_regs_buf, loglen);
 336}
 337
 338/**
 339 * eeh_token_to_phys - Convert EEH address token to phys address
 340 * @token: I/O token, should be address in the form 0xA....
 341 *
 342 * This routine should be called to convert virtual I/O address
 343 * to physical one.
 344 */
 345static inline unsigned long eeh_token_to_phys(unsigned long token)
 346{
 347	pte_t *ptep;
 348	unsigned long pa;
 349	int hugepage_shift;
 350
 351	/*
 352	 * We won't find hugepages here(this is iomem). Hence we are not
 353	 * worried about _PAGE_SPLITTING/collapse. Also we will not hit
 354	 * page table free, because of init_mm.
 355	 */
 356	ptep = __find_linux_pte_or_hugepte(init_mm.pgd, token,
 357					   NULL, &hugepage_shift);
 358	if (!ptep)
 359		return token;
 360	WARN_ON(hugepage_shift);
 361	pa = pte_pfn(*ptep) << PAGE_SHIFT;
 362
 363	return pa | (token & (PAGE_SIZE-1));
 364}
 365
 366/*
 367 * On PowerNV platform, we might already have fenced PHB there.
 368 * For that case, it's meaningless to recover frozen PE. Intead,
 369 * We have to handle fenced PHB firstly.
 370 */
 371static int eeh_phb_check_failure(struct eeh_pe *pe)
 372{
 373	struct eeh_pe *phb_pe;
 374	unsigned long flags;
 375	int ret;
 376
 377	if (!eeh_has_flag(EEH_PROBE_MODE_DEV))
 378		return -EPERM;
 379
 380	/* Find the PHB PE */
 381	phb_pe = eeh_phb_pe_get(pe->phb);
 382	if (!phb_pe) {
 383		pr_warn("%s Can't find PE for PHB#%x\n",
 384			__func__, pe->phb->global_number);
 385		return -EEXIST;
 386	}
 387
 388	/* If the PHB has been in problematic state */
 389	eeh_serialize_lock(&flags);
 390	if (phb_pe->state & EEH_PE_ISOLATED) {
 391		ret = 0;
 392		goto out;
 393	}
 394
 395	/* Check PHB state */
 396	ret = eeh_ops->get_state(phb_pe, NULL);
 397	if ((ret < 0) ||
 398	    (ret == EEH_STATE_NOT_SUPPORT) ||
 399	    (ret & (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE)) ==
 400	    (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE)) {
 401		ret = 0;
 402		goto out;
 403	}
 404
 405	/* Isolate the PHB and send event */
 406	eeh_pe_state_mark(phb_pe, EEH_PE_ISOLATED);
 407	eeh_serialize_unlock(flags);
 408
 409	pr_err("EEH: PHB#%x failure detected, location: %s\n",
 410		phb_pe->phb->global_number, eeh_pe_loc_get(phb_pe));
 411	dump_stack();
 412	eeh_send_failure_event(phb_pe);
 413
 414	return 1;
 415out:
 416	eeh_serialize_unlock(flags);
 417	return ret;
 418}
 419
 
 
 
 
 
 
 
 
 420/**
 421 * eeh_dev_check_failure - Check if all 1's data is due to EEH slot freeze
 422 * @edev: eeh device
 423 *
 424 * Check for an EEH failure for the given device node.  Call this
 425 * routine if the result of a read was all 0xff's and you want to
 426 * find out if this is due to an EEH slot freeze.  This routine
 427 * will query firmware for the EEH status.
 428 *
 429 * Returns 0 if there has not been an EEH error; otherwise returns
 430 * a non-zero value and queues up a slot isolation event notification.
 431 *
 432 * It is safe to call this routine in an interrupt context.
 433 */
 434int eeh_dev_check_failure(struct eeh_dev *edev)
 435{
 436	int ret;
 437	int active_flags = (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE);
 438	unsigned long flags;
 439	struct pci_dn *pdn;
 440	struct pci_dev *dev;
 441	struct eeh_pe *pe, *parent_pe, *phb_pe;
 442	int rc = 0;
 443	const char *location = NULL;
 444
 445	eeh_stats.total_mmio_ffs++;
 446
 447	if (!eeh_enabled())
 448		return 0;
 449
 450	if (!edev) {
 451		eeh_stats.no_dn++;
 452		return 0;
 453	}
 454	dev = eeh_dev_to_pci_dev(edev);
 455	pe = eeh_dev_to_pe(edev);
 456
 457	/* Access to IO BARs might get this far and still not want checking. */
 458	if (!pe) {
 459		eeh_stats.ignored_check++;
 460		pr_debug("EEH: Ignored check for %s\n",
 461			eeh_pci_name(dev));
 462		return 0;
 463	}
 464
 465	if (!pe->addr && !pe->config_addr) {
 466		eeh_stats.no_cfg_addr++;
 467		return 0;
 468	}
 469
 470	/*
 471	 * On PowerNV platform, we might already have fenced PHB
 472	 * there and we need take care of that firstly.
 473	 */
 474	ret = eeh_phb_check_failure(pe);
 475	if (ret > 0)
 476		return ret;
 477
 478	/*
 479	 * If the PE isn't owned by us, we shouldn't check the
 480	 * state. Instead, let the owner handle it if the PE has
 481	 * been frozen.
 482	 */
 483	if (eeh_pe_passed(pe))
 484		return 0;
 485
 486	/* If we already have a pending isolation event for this
 487	 * slot, we know it's bad already, we don't need to check.
 488	 * Do this checking under a lock; as multiple PCI devices
 489	 * in one slot might report errors simultaneously, and we
 490	 * only want one error recovery routine running.
 491	 */
 492	eeh_serialize_lock(&flags);
 493	rc = 1;
 494	if (pe->state & EEH_PE_ISOLATED) {
 495		pe->check_count++;
 496		if (pe->check_count % EEH_MAX_FAILS == 0) {
 497			pdn = eeh_dev_to_pdn(edev);
 498			if (pdn->node)
 499				location = of_get_property(pdn->node, "ibm,loc-code", NULL);
 500			printk(KERN_ERR "EEH: %d reads ignored for recovering device at "
 501				"location=%s driver=%s pci addr=%s\n",
 502				pe->check_count,
 503				location ? location : "unknown",
 504				eeh_driver_name(dev), eeh_pci_name(dev));
 505			printk(KERN_ERR "EEH: Might be infinite loop in %s driver\n",
 506				eeh_driver_name(dev));
 507			dump_stack();
 508		}
 509		goto dn_unlock;
 510	}
 511
 512	/*
 513	 * Now test for an EEH failure.  This is VERY expensive.
 514	 * Note that the eeh_config_addr may be a parent device
 515	 * in the case of a device behind a bridge, or it may be
 516	 * function zero of a multi-function device.
 517	 * In any case they must share a common PHB.
 518	 */
 519	ret = eeh_ops->get_state(pe, NULL);
 520
 521	/* Note that config-io to empty slots may fail;
 522	 * they are empty when they don't have children.
 523	 * We will punt with the following conditions: Failure to get
 524	 * PE's state, EEH not support and Permanently unavailable
 525	 * state, PE is in good state.
 526	 */
 527	if ((ret < 0) ||
 528	    (ret == EEH_STATE_NOT_SUPPORT) ||
 529	    ((ret & active_flags) == active_flags)) {
 530		eeh_stats.false_positives++;
 531		pe->false_positives++;
 532		rc = 0;
 533		goto dn_unlock;
 534	}
 535
 536	/*
 537	 * It should be corner case that the parent PE has been
 538	 * put into frozen state as well. We should take care
 539	 * that at first.
 540	 */
 541	parent_pe = pe->parent;
 542	while (parent_pe) {
 543		/* Hit the ceiling ? */
 544		if (parent_pe->type & EEH_PE_PHB)
 545			break;
 546
 547		/* Frozen parent PE ? */
 548		ret = eeh_ops->get_state(parent_pe, NULL);
 549		if (ret > 0 &&
 550		    (ret & active_flags) != active_flags)
 551			pe = parent_pe;
 
 
 
 
 552
 553		/* Next parent level */
 554		parent_pe = parent_pe->parent;
 555	}
 556
 557	eeh_stats.slot_resets++;
 558
 559	/* Avoid repeated reports of this failure, including problems
 560	 * with other functions on this device, and functions under
 561	 * bridges.
 562	 */
 563	eeh_pe_state_mark(pe, EEH_PE_ISOLATED);
 564	eeh_serialize_unlock(flags);
 565
 566	/* Most EEH events are due to device driver bugs.  Having
 567	 * a stack trace will help the device-driver authors figure
 568	 * out what happened.  So print that out.
 569	 */
 570	phb_pe = eeh_phb_pe_get(pe->phb);
 571	pr_err("EEH: Frozen PHB#%x-PE#%x detected\n",
 572	       pe->phb->global_number, pe->addr);
 573	pr_err("EEH: PE location: %s, PHB location: %s\n",
 574	       eeh_pe_loc_get(pe), eeh_pe_loc_get(phb_pe));
 575	dump_stack();
 576
 577	eeh_send_failure_event(pe);
 578
 579	return 1;
 580
 581dn_unlock:
 582	eeh_serialize_unlock(flags);
 583	return rc;
 584}
 585
 586EXPORT_SYMBOL_GPL(eeh_dev_check_failure);
 587
 588/**
 589 * eeh_check_failure - Check if all 1's data is due to EEH slot freeze
 590 * @token: I/O address
 591 *
 592 * Check for an EEH failure at the given I/O address. Call this
 593 * routine if the result of a read was all 0xff's and you want to
 594 * find out if this is due to an EEH slot freeze event. This routine
 595 * will query firmware for the EEH status.
 596 *
 597 * Note this routine is safe to call in an interrupt context.
 598 */
 599int eeh_check_failure(const volatile void __iomem *token)
 600{
 601	unsigned long addr;
 602	struct eeh_dev *edev;
 603
 604	/* Finding the phys addr + pci device; this is pretty quick. */
 605	addr = eeh_token_to_phys((unsigned long __force) token);
 606	edev = eeh_addr_cache_get_dev(addr);
 607	if (!edev) {
 608		eeh_stats.no_device++;
 609		return 0;
 610	}
 611
 612	return eeh_dev_check_failure(edev);
 613}
 614EXPORT_SYMBOL(eeh_check_failure);
 615
 616
 617/**
 618 * eeh_pci_enable - Enable MMIO or DMA transfers for this slot
 619 * @pe: EEH PE
 
 620 *
 621 * This routine should be called to reenable frozen MMIO or DMA
 622 * so that it would work correctly again. It's useful while doing
 623 * recovery or log collection on the indicated device.
 624 */
 625int eeh_pci_enable(struct eeh_pe *pe, int function)
 626{
 627	int active_flag, rc;
 628
 629	/*
 630	 * pHyp doesn't allow to enable IO or DMA on unfrozen PE.
 631	 * Also, it's pointless to enable them on unfrozen PE. So
 632	 * we have to check before enabling IO or DMA.
 633	 */
 634	switch (function) {
 635	case EEH_OPT_THAW_MMIO:
 636		active_flag = EEH_STATE_MMIO_ACTIVE | EEH_STATE_MMIO_ENABLED;
 637		break;
 638	case EEH_OPT_THAW_DMA:
 639		active_flag = EEH_STATE_DMA_ACTIVE;
 640		break;
 641	case EEH_OPT_DISABLE:
 642	case EEH_OPT_ENABLE:
 643	case EEH_OPT_FREEZE_PE:
 644		active_flag = 0;
 645		break;
 646	default:
 647		pr_warn("%s: Invalid function %d\n",
 648			__func__, function);
 649		return -EINVAL;
 650	}
 651
 652	/*
 653	 * Check if IO or DMA has been enabled before
 654	 * enabling them.
 655	 */
 656	if (active_flag) {
 657		rc = eeh_ops->get_state(pe, NULL);
 658		if (rc < 0)
 659			return rc;
 660
 661		/* Needn't enable it at all */
 662		if (rc == EEH_STATE_NOT_SUPPORT)
 663			return 0;
 664
 665		/* It's already enabled */
 666		if (rc & active_flag)
 667			return 0;
 668	}
 669
 670
 671	/* Issue the request */
 672	rc = eeh_ops->set_option(pe, function);
 673	if (rc)
 674		pr_warn("%s: Unexpected state change %d on "
 675			"PHB#%x-PE#%x, err=%d\n",
 676			__func__, function, pe->phb->global_number,
 677			pe->addr, rc);
 678
 679	/* Check if the request is finished successfully */
 680	if (active_flag) {
 681		rc = eeh_ops->wait_state(pe, PCI_BUS_RESET_WAIT_MSEC);
 682		if (rc < 0)
 683			return rc;
 684
 685		if (rc & active_flag)
 686			return 0;
 687
 688		return -EIO;
 689	}
 690
 691	return rc;
 692}
 693
 694static void *eeh_disable_and_save_dev_state(void *data, void *userdata)
 
 695{
 696	struct eeh_dev *edev = data;
 697	struct pci_dev *pdev = eeh_dev_to_pci_dev(edev);
 698	struct pci_dev *dev = userdata;
 699
 700	/*
 701	 * The caller should have disabled and saved the
 702	 * state for the specified device
 703	 */
 704	if (!pdev || pdev == dev)
 705		return NULL;
 706
 707	/* Ensure we have D0 power state */
 708	pci_set_power_state(pdev, PCI_D0);
 709
 710	/* Save device state */
 711	pci_save_state(pdev);
 712
 713	/*
 714	 * Disable device to avoid any DMA traffic and
 715	 * interrupt from the device
 716	 */
 717	pci_write_config_word(pdev, PCI_COMMAND, PCI_COMMAND_INTX_DISABLE);
 718
 719	return NULL;
 720}
 721
 722static void *eeh_restore_dev_state(void *data, void *userdata)
 723{
 724	struct eeh_dev *edev = data;
 725	struct pci_dn *pdn = eeh_dev_to_pdn(edev);
 726	struct pci_dev *pdev = eeh_dev_to_pci_dev(edev);
 727	struct pci_dev *dev = userdata;
 728
 729	if (!pdev)
 730		return NULL;
 731
 732	/* Apply customization from firmware */
 733	if (pdn && eeh_ops->restore_config)
 734		eeh_ops->restore_config(pdn);
 735
 736	/* The caller should restore state for the specified device */
 737	if (pdev != dev)
 738		pci_restore_state(pdev);
 739
 740	return NULL;
 741}
 742
 743/**
 744 * pcibios_set_pcie_reset_state - Set PCI-E reset state
 745 * @dev: pci device struct
 746 * @state: reset state to enter
 747 *
 748 * Return value:
 749 * 	0 if success
 750 */
 751int pcibios_set_pcie_reset_state(struct pci_dev *dev, enum pcie_reset_state state)
 752{
 753	struct eeh_dev *edev = pci_dev_to_eeh_dev(dev);
 754	struct eeh_pe *pe = eeh_dev_to_pe(edev);
 755
 756	if (!pe) {
 757		pr_err("%s: No PE found on PCI device %s\n",
 758			__func__, pci_name(dev));
 759		return -EINVAL;
 760	}
 761
 762	switch (state) {
 763	case pcie_deassert_reset:
 764		eeh_ops->reset(pe, EEH_RESET_DEACTIVATE);
 765		eeh_unfreeze_pe(pe, false);
 766		if (!(pe->type & EEH_PE_VF))
 767			eeh_pe_state_clear(pe, EEH_PE_CFG_BLOCKED);
 768		eeh_pe_dev_traverse(pe, eeh_restore_dev_state, dev);
 769		eeh_pe_state_clear(pe, EEH_PE_ISOLATED);
 770		break;
 771	case pcie_hot_reset:
 772		eeh_pe_state_mark_with_cfg(pe, EEH_PE_ISOLATED);
 
 773		eeh_ops->set_option(pe, EEH_OPT_FREEZE_PE);
 774		eeh_pe_dev_traverse(pe, eeh_disable_and_save_dev_state, dev);
 775		if (!(pe->type & EEH_PE_VF))
 776			eeh_pe_state_mark(pe, EEH_PE_CFG_BLOCKED);
 777		eeh_ops->reset(pe, EEH_RESET_HOT);
 778		break;
 779	case pcie_warm_reset:
 780		eeh_pe_state_mark_with_cfg(pe, EEH_PE_ISOLATED);
 
 781		eeh_ops->set_option(pe, EEH_OPT_FREEZE_PE);
 782		eeh_pe_dev_traverse(pe, eeh_disable_and_save_dev_state, dev);
 783		if (!(pe->type & EEH_PE_VF))
 784			eeh_pe_state_mark(pe, EEH_PE_CFG_BLOCKED);
 785		eeh_ops->reset(pe, EEH_RESET_FUNDAMENTAL);
 786		break;
 787	default:
 788		eeh_pe_state_clear(pe, EEH_PE_ISOLATED | EEH_PE_CFG_BLOCKED);
 789		return -EINVAL;
 790	};
 791
 792	return 0;
 793}
 794
 795/**
 796 * eeh_set_pe_freset - Check the required reset for the indicated device
 797 * @data: EEH device
 798 * @flag: return value
 799 *
 800 * Each device might have its preferred reset type: fundamental or
 801 * hot reset. The routine is used to collected the information for
 802 * the indicated device and its children so that the bunch of the
 803 * devices could be reset properly.
 804 */
 805static void *eeh_set_dev_freset(void *data, void *flag)
 806{
 807	struct pci_dev *dev;
 808	unsigned int *freset = (unsigned int *)flag;
 809	struct eeh_dev *edev = (struct eeh_dev *)data;
 810
 811	dev = eeh_dev_to_pci_dev(edev);
 812	if (dev)
 813		*freset |= dev->needs_freset;
 
 
 
 
 
 
 814
 815	return NULL;
 
 
 
 
 
 
 
 
 
 
 816}
 817
 818/**
 819 * eeh_pe_reset_full - Complete a full reset process on the indicated PE
 820 * @pe: EEH PE
 
 821 *
 822 * This function executes a full reset procedure on a PE, including setting
 823 * the appropriate flags, performing a fundamental or hot reset, and then
 824 * deactivating the reset status.  It is designed to be used within the EEH
 825 * subsystem, as opposed to eeh_pe_reset which is exported to drivers and
 826 * only performs a single operation at a time.
 827 *
 828 * This function will attempt to reset a PE three times before failing.
 829 */
 830int eeh_pe_reset_full(struct eeh_pe *pe)
 831{
 832	int active_flags = (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE);
 833	int reset_state = (EEH_PE_RESET | EEH_PE_CFG_BLOCKED);
 834	int type = EEH_RESET_HOT;
 835	unsigned int freset = 0;
 836	int i, state, ret;
 837
 838	/*
 839	 * Determine the type of reset to perform - hot or fundamental.
 840	 * Hot reset is the default operation, unless any device under the
 841	 * PE requires a fundamental reset.
 842	 */
 843	eeh_pe_dev_traverse(pe, eeh_set_dev_freset, &freset);
 844
 845	if (freset)
 846		type = EEH_RESET_FUNDAMENTAL;
 847
 848	/* Mark the PE as in reset state and block config space accesses */
 849	eeh_pe_state_mark(pe, reset_state);
 850
 851	/* Make three attempts at resetting the bus */
 852	for (i = 0; i < 3; i++) {
 853		ret = eeh_pe_reset(pe, type);
 854		if (ret)
 855			break;
 856
 857		ret = eeh_pe_reset(pe, EEH_RESET_DEACTIVATE);
 858		if (ret)
 859			break;
 
 
 
 
 
 
 860
 861		/* Wait until the PE is in a functioning state */
 862		state = eeh_ops->wait_state(pe, PCI_BUS_RESET_WAIT_MSEC);
 863		if ((state & active_flags) == active_flags)
 864			break;
 865
 866		if (state < 0) {
 867			pr_warn("%s: Unrecoverable slot failure on PHB#%x-PE#%x",
 868				__func__, pe->phb->global_number, pe->addr);
 869			ret = -ENOTRECOVERABLE;
 870			break;
 871		}
 
 
 
 
 
 
 872
 873		/* Set error in case this is our last attempt */
 874		ret = -EIO;
 875		pr_warn("%s: Failure %d resetting PHB#%x-PE#%x\n (%d)\n",
 876			__func__, state, pe->phb->global_number, pe->addr, (i + 1));
 877	}
 878
 879	eeh_pe_state_clear(pe, reset_state);
 880	return ret;
 881}
 882
 883/**
 884 * eeh_save_bars - Save device bars
 885 * @edev: PCI device associated EEH device
 886 *
 887 * Save the values of the device bars. Unlike the restore
 888 * routine, this routine is *not* recursive. This is because
 889 * PCI devices are added individually; but, for the restore,
 890 * an entire slot is reset at a time.
 891 */
 892void eeh_save_bars(struct eeh_dev *edev)
 893{
 894	struct pci_dn *pdn;
 895	int i;
 896
 897	pdn = eeh_dev_to_pdn(edev);
 898	if (!pdn)
 899		return;
 900
 901	for (i = 0; i < 16; i++)
 902		eeh_ops->read_config(pdn, i * 4, 4, &edev->config_space[i]);
 903
 904	/*
 905	 * For PCI bridges including root port, we need enable bus
 906	 * master explicitly. Otherwise, it can't fetch IODA table
 907	 * entries correctly. So we cache the bit in advance so that
 908	 * we can restore it after reset, either PHB range or PE range.
 909	 */
 910	if (edev->mode & EEH_DEV_BRIDGE)
 911		edev->config_space[1] |= PCI_COMMAND_MASTER;
 912}
 913
 914/**
 915 * eeh_ops_register - Register platform dependent EEH operations
 916 * @ops: platform dependent EEH operations
 917 *
 918 * Register the platform dependent EEH operation callback
 919 * functions. The platform should call this function before
 920 * any other EEH operations.
 921 */
 922int __init eeh_ops_register(struct eeh_ops *ops)
 923{
 924	if (!ops->name) {
 925		pr_warn("%s: Invalid EEH ops name for %p\n",
 926			__func__, ops);
 927		return -EINVAL;
 928	}
 929
 930	if (eeh_ops && eeh_ops != ops) {
 931		pr_warn("%s: EEH ops of platform %s already existing (%s)\n",
 932			__func__, eeh_ops->name, ops->name);
 933		return -EEXIST;
 934	}
 935
 936	eeh_ops = ops;
 937
 938	return 0;
 939}
 940
 941/**
 942 * eeh_ops_unregister - Unreigster platform dependent EEH operations
 943 * @name: name of EEH platform operations
 944 *
 945 * Unregister the platform dependent EEH operation callback
 946 * functions.
 947 */
 948int __exit eeh_ops_unregister(const char *name)
 949{
 950	if (!name || !strlen(name)) {
 951		pr_warn("%s: Invalid EEH ops name\n",
 952			__func__);
 953		return -EINVAL;
 954	}
 955
 956	if (eeh_ops && !strcmp(eeh_ops->name, name)) {
 957		eeh_ops = NULL;
 958		return 0;
 959	}
 960
 961	return -EEXIST;
 962}
 963
 964static int eeh_reboot_notifier(struct notifier_block *nb,
 965			       unsigned long action, void *unused)
 966{
 967	eeh_clear_flag(EEH_ENABLED);
 968	return NOTIFY_DONE;
 969}
 970
 971static struct notifier_block eeh_reboot_nb = {
 972	.notifier_call = eeh_reboot_notifier,
 973};
 974
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 975/**
 976 * eeh_init - EEH initialization
 
 977 *
 978 * Initialize EEH by trying to enable it for all of the adapters in the system.
 979 * As a side effect we can determine here if eeh is supported at all.
 980 * Note that we leave EEH on so failed config cycles won't cause a machine
 981 * check.  If a user turns off EEH for a particular adapter they are really
 982 * telling Linux to ignore errors.  Some hardware (e.g. POWER5) won't
 983 * grant access to a slot if EEH isn't enabled, and so we always enable
 984 * EEH for all slots/all devices.
 985 *
 986 * The eeh-force-off option disables EEH checking globally, for all slots.
 987 * Even if force-off is set, the EEH hardware is still enabled, so that
 988 * newer systems can boot.
 989 */
 990int eeh_init(void)
 991{
 992	struct pci_controller *hose, *tmp;
 993	struct pci_dn *pdn;
 994	static int cnt = 0;
 995	int ret = 0;
 996
 997	/*
 998	 * We have to delay the initialization on PowerNV after
 999	 * the PCI hierarchy tree has been built because the PEs
1000	 * are figured out based on PCI devices instead of device
1001	 * tree nodes
1002	 */
1003	if (machine_is(powernv) && cnt++ <= 0)
1004		return ret;
1005
1006	/* Register reboot notifier */
1007	ret = register_reboot_notifier(&eeh_reboot_nb);
1008	if (ret) {
1009		pr_warn("%s: Failed to register notifier (%d)\n",
1010			__func__, ret);
1011		return ret;
1012	}
1013
1014	/* call platform initialization function */
1015	if (!eeh_ops) {
1016		pr_warn("%s: Platform EEH operation not found\n",
1017			__func__);
1018		return -EEXIST;
1019	} else if ((ret = eeh_ops->init()))
1020		return ret;
1021
1022	/* Initialize EEH event */
1023	ret = eeh_event_init();
1024	if (ret)
1025		return ret;
1026
1027	/* Enable EEH for all adapters */
1028	list_for_each_entry_safe(hose, tmp, &hose_list, list_node) {
1029		pdn = hose->pci_data;
1030		traverse_pci_dn(pdn, eeh_ops->probe, NULL);
1031	}
1032
1033	/*
1034	 * Call platform post-initialization. Actually, It's good chance
1035	 * to inform platform that EEH is ready to supply service if the
1036	 * I/O cache stuff has been built up.
1037	 */
1038	if (eeh_ops->post_init) {
1039		ret = eeh_ops->post_init();
1040		if (ret)
1041			return ret;
1042	}
1043
1044	if (eeh_enabled())
1045		pr_info("EEH: PCI Enhanced I/O Error Handling Enabled\n");
1046	else
1047		pr_info("EEH: No capable adapters found\n");
1048
1049	return ret;
1050}
1051
1052core_initcall_sync(eeh_init);
1053
1054/**
1055 * eeh_add_device_early - Enable EEH for the indicated device node
1056 * @pdn: PCI device node for which to set up EEH
1057 *
1058 * This routine must be used to perform EEH initialization for PCI
1059 * devices that were added after system boot (e.g. hotplug, dlpar).
1060 * This routine must be called before any i/o is performed to the
1061 * adapter (inluding any config-space i/o).
1062 * Whether this actually enables EEH or not for this device depends
1063 * on the CEC architecture, type of the device, on earlier boot
1064 * command-line arguments & etc.
1065 */
1066void eeh_add_device_early(struct pci_dn *pdn)
1067{
1068	struct pci_controller *phb;
1069	struct eeh_dev *edev = pdn_to_eeh_dev(pdn);
1070
1071	if (!edev)
1072		return;
1073
1074	if (!eeh_has_flag(EEH_PROBE_MODE_DEVTREE))
1075		return;
1076
1077	/* USB Bus children of PCI devices will not have BUID's */
1078	phb = edev->phb;
1079	if (NULL == phb ||
1080	    (eeh_has_flag(EEH_PROBE_MODE_DEVTREE) && 0 == phb->buid))
1081		return;
1082
1083	eeh_ops->probe(pdn, NULL);
1084}
1085
1086/**
1087 * eeh_add_device_tree_early - Enable EEH for the indicated device
1088 * @pdn: PCI device node
1089 *
1090 * This routine must be used to perform EEH initialization for the
1091 * indicated PCI device that was added after system boot (e.g.
1092 * hotplug, dlpar).
1093 */
1094void eeh_add_device_tree_early(struct pci_dn *pdn)
1095{
1096	struct pci_dn *n;
1097
1098	if (!pdn)
1099		return;
1100
1101	list_for_each_entry(n, &pdn->child_list, list)
1102		eeh_add_device_tree_early(n);
1103	eeh_add_device_early(pdn);
1104}
1105EXPORT_SYMBOL_GPL(eeh_add_device_tree_early);
1106
1107/**
1108 * eeh_add_device_late - Perform EEH initialization for the indicated pci device
1109 * @dev: pci device for which to set up EEH
1110 *
1111 * This routine must be used to complete EEH initialization for PCI
1112 * devices that were added after system boot (e.g. hotplug, dlpar).
1113 */
1114void eeh_add_device_late(struct pci_dev *dev)
1115{
1116	struct pci_dn *pdn;
1117	struct eeh_dev *edev;
1118
1119	if (!dev || !eeh_enabled())
 
 
 
 
 
 
 
1120		return;
 
1121
1122	pr_debug("EEH: Adding device %s\n", pci_name(dev));
1123
1124	pdn = pci_get_pdn_by_devfn(dev->bus, dev->devfn);
1125	edev = pdn_to_eeh_dev(pdn);
1126	if (edev->pdev == dev) {
1127		pr_debug("EEH: Already referenced !\n");
1128		return;
1129	}
1130
1131	/*
1132	 * The EEH cache might not be removed correctly because of
1133	 * unbalanced kref to the device during unplug time, which
1134	 * relies on pcibios_release_device(). So we have to remove
1135	 * that here explicitly.
 
 
 
1136	 */
1137	if (edev->pdev) {
1138		eeh_rmv_from_parent_pe(edev);
1139		eeh_addr_cache_rmv_dev(edev->pdev);
1140		eeh_sysfs_remove_device(edev->pdev);
1141		edev->mode &= ~EEH_DEV_SYSFS;
1142
1143		/*
1144		 * We definitely should have the PCI device removed
1145		 * though it wasn't correctly. So we needn't call
1146		 * into error handler afterwards.
1147		 */
1148		edev->mode |= EEH_DEV_NO_HANDLER;
1149
1150		edev->pdev = NULL;
1151		dev->dev.archdata.edev = NULL;
1152	}
1153
1154	if (eeh_has_flag(EEH_PROBE_MODE_DEV))
1155		eeh_ops->probe(pdn, NULL);
1156
1157	edev->pdev = dev;
1158	dev->dev.archdata.edev = edev;
1159
1160	eeh_addr_cache_insert_dev(dev);
 
1161}
1162
1163/**
1164 * eeh_add_device_tree_late - Perform EEH initialization for the indicated PCI bus
1165 * @bus: PCI bus
1166 *
1167 * This routine must be used to perform EEH initialization for PCI
1168 * devices which are attached to the indicated PCI bus. The PCI bus
1169 * is added after system boot through hotplug or dlpar.
1170 */
1171void eeh_add_device_tree_late(struct pci_bus *bus)
1172{
1173	struct pci_dev *dev;
1174
1175	list_for_each_entry(dev, &bus->devices, bus_list) {
1176		eeh_add_device_late(dev);
1177		if (dev->hdr_type == PCI_HEADER_TYPE_BRIDGE) {
1178			struct pci_bus *subbus = dev->subordinate;
1179			if (subbus)
1180				eeh_add_device_tree_late(subbus);
1181		}
1182	}
1183}
1184EXPORT_SYMBOL_GPL(eeh_add_device_tree_late);
1185
1186/**
1187 * eeh_add_sysfs_files - Add EEH sysfs files for the indicated PCI bus
1188 * @bus: PCI bus
1189 *
1190 * This routine must be used to add EEH sysfs files for PCI
1191 * devices which are attached to the indicated PCI bus. The PCI bus
1192 * is added after system boot through hotplug or dlpar.
1193 */
1194void eeh_add_sysfs_files(struct pci_bus *bus)
1195{
1196	struct pci_dev *dev;
1197
1198	list_for_each_entry(dev, &bus->devices, bus_list) {
1199		eeh_sysfs_add_device(dev);
1200		if (dev->hdr_type == PCI_HEADER_TYPE_BRIDGE) {
1201			struct pci_bus *subbus = dev->subordinate;
1202			if (subbus)
1203				eeh_add_sysfs_files(subbus);
1204		}
1205	}
1206}
1207EXPORT_SYMBOL_GPL(eeh_add_sysfs_files);
1208
1209/**
1210 * eeh_remove_device - Undo EEH setup for the indicated pci device
1211 * @dev: pci device to be removed
1212 *
1213 * This routine should be called when a device is removed from
1214 * a running system (e.g. by hotplug or dlpar).  It unregisters
1215 * the PCI device from the EEH subsystem.  I/O errors affecting
1216 * this device will no longer be detected after this call; thus,
1217 * i/o errors affecting this slot may leave this device unusable.
1218 */
1219void eeh_remove_device(struct pci_dev *dev)
1220{
1221	struct eeh_dev *edev;
1222
1223	if (!dev || !eeh_enabled())
1224		return;
1225	edev = pci_dev_to_eeh_dev(dev);
1226
1227	/* Unregister the device with the EEH/PCI address search system */
1228	pr_debug("EEH: Removing device %s\n", pci_name(dev));
1229
1230	if (!edev || !edev->pdev || !edev->pe) {
1231		pr_debug("EEH: Not referenced !\n");
1232		return;
1233	}
1234
1235	/*
1236	 * During the hotplug for EEH error recovery, we need the EEH
1237	 * device attached to the parent PE in order for BAR restore
1238	 * a bit later. So we keep it for BAR restore and remove it
1239	 * from the parent PE during the BAR resotre.
1240	 */
1241	edev->pdev = NULL;
1242
1243	/*
1244	 * The flag "in_error" is used to trace EEH devices for VFs
1245	 * in error state or not. It's set in eeh_report_error(). If
1246	 * it's not set, eeh_report_{reset,resume}() won't be called
1247	 * for the VF EEH device.
1248	 */
1249	edev->in_error = false;
1250	dev->dev.archdata.edev = NULL;
1251	if (!(edev->pe->state & EEH_PE_KEEP))
1252		eeh_rmv_from_parent_pe(edev);
1253	else
1254		edev->mode |= EEH_DEV_DISCONNECTED;
1255
1256	/*
1257	 * We're removing from the PCI subsystem, that means
1258	 * the PCI device driver can't support EEH or not
1259	 * well. So we rely on hotplug completely to do recovery
1260	 * for the specific PCI device.
1261	 */
1262	edev->mode |= EEH_DEV_NO_HANDLER;
1263
1264	eeh_addr_cache_rmv_dev(dev);
1265	eeh_sysfs_remove_device(dev);
1266	edev->mode &= ~EEH_DEV_SYSFS;
 
 
 
 
 
 
 
 
 
 
 
1267}
1268
1269int eeh_unfreeze_pe(struct eeh_pe *pe, bool sw_state)
1270{
1271	int ret;
1272
1273	ret = eeh_pci_enable(pe, EEH_OPT_THAW_MMIO);
1274	if (ret) {
1275		pr_warn("%s: Failure %d enabling IO on PHB#%x-PE#%x\n",
1276			__func__, ret, pe->phb->global_number, pe->addr);
1277		return ret;
1278	}
1279
1280	ret = eeh_pci_enable(pe, EEH_OPT_THAW_DMA);
1281	if (ret) {
1282		pr_warn("%s: Failure %d enabling DMA on PHB#%x-PE#%x\n",
1283			__func__, ret, pe->phb->global_number, pe->addr);
1284		return ret;
1285	}
1286
1287	/* Clear software isolated state */
1288	if (sw_state && (pe->state & EEH_PE_ISOLATED))
1289		eeh_pe_state_clear(pe, EEH_PE_ISOLATED);
1290
1291	return ret;
1292}
1293
1294
1295static struct pci_device_id eeh_reset_ids[] = {
1296	{ PCI_DEVICE(0x19a2, 0x0710) },	/* Emulex, BE     */
1297	{ PCI_DEVICE(0x10df, 0xe220) },	/* Emulex, Lancer */
1298	{ PCI_DEVICE(0x14e4, 0x1657) }, /* Broadcom BCM5719 */
1299	{ 0 }
1300};
1301
1302static int eeh_pe_change_owner(struct eeh_pe *pe)
1303{
1304	struct eeh_dev *edev, *tmp;
1305	struct pci_dev *pdev;
1306	struct pci_device_id *id;
1307	int flags, ret;
1308
1309	/* Check PE state */
1310	flags = (EEH_STATE_MMIO_ACTIVE | EEH_STATE_DMA_ACTIVE);
1311	ret = eeh_ops->get_state(pe, NULL);
1312	if (ret < 0 || ret == EEH_STATE_NOT_SUPPORT)
1313		return 0;
1314
1315	/* Unfrozen PE, nothing to do */
1316	if ((ret & flags) == flags)
1317		return 0;
1318
1319	/* Frozen PE, check if it needs PE level reset */
1320	eeh_pe_for_each_dev(pe, edev, tmp) {
1321		pdev = eeh_dev_to_pci_dev(edev);
1322		if (!pdev)
1323			continue;
1324
1325		for (id = &eeh_reset_ids[0]; id->vendor != 0; id++) {
1326			if (id->vendor != PCI_ANY_ID &&
1327			    id->vendor != pdev->vendor)
1328				continue;
1329			if (id->device != PCI_ANY_ID &&
1330			    id->device != pdev->device)
1331				continue;
1332			if (id->subvendor != PCI_ANY_ID &&
1333			    id->subvendor != pdev->subsystem_vendor)
1334				continue;
1335			if (id->subdevice != PCI_ANY_ID &&
1336			    id->subdevice != pdev->subsystem_device)
1337				continue;
1338
1339			return eeh_pe_reset_and_recover(pe);
1340		}
1341	}
1342
1343	return eeh_unfreeze_pe(pe, true);
 
 
 
1344}
1345
1346/**
1347 * eeh_dev_open - Increase count of pass through devices for PE
1348 * @pdev: PCI device
1349 *
1350 * Increase count of passed through devices for the indicated
1351 * PE. In the result, the EEH errors detected on the PE won't be
1352 * reported. The PE owner will be responsible for detection
1353 * and recovery.
1354 */
1355int eeh_dev_open(struct pci_dev *pdev)
1356{
1357	struct eeh_dev *edev;
1358	int ret = -ENODEV;
1359
1360	mutex_lock(&eeh_dev_mutex);
1361
1362	/* No PCI device ? */
1363	if (!pdev)
1364		goto out;
1365
1366	/* No EEH device or PE ? */
1367	edev = pci_dev_to_eeh_dev(pdev);
1368	if (!edev || !edev->pe)
1369		goto out;
1370
1371	/*
1372	 * The PE might have been put into frozen state, but we
1373	 * didn't detect that yet. The passed through PCI devices
1374	 * in frozen PE won't work properly. Clear the frozen state
1375	 * in advance.
1376	 */
1377	ret = eeh_pe_change_owner(edev->pe);
1378	if (ret)
1379		goto out;
1380
1381	/* Increase PE's pass through count */
1382	atomic_inc(&edev->pe->pass_dev_cnt);
1383	mutex_unlock(&eeh_dev_mutex);
1384
1385	return 0;
1386out:
1387	mutex_unlock(&eeh_dev_mutex);
1388	return ret;
1389}
1390EXPORT_SYMBOL_GPL(eeh_dev_open);
1391
1392/**
1393 * eeh_dev_release - Decrease count of pass through devices for PE
1394 * @pdev: PCI device
1395 *
1396 * Decrease count of pass through devices for the indicated PE. If
1397 * there is no passed through device in PE, the EEH errors detected
1398 * on the PE will be reported and handled as usual.
1399 */
1400void eeh_dev_release(struct pci_dev *pdev)
1401{
1402	struct eeh_dev *edev;
1403
1404	mutex_lock(&eeh_dev_mutex);
1405
1406	/* No PCI device ? */
1407	if (!pdev)
1408		goto out;
1409
1410	/* No EEH device ? */
1411	edev = pci_dev_to_eeh_dev(pdev);
1412	if (!edev || !edev->pe || !eeh_pe_passed(edev->pe))
1413		goto out;
1414
1415	/* Decrease PE's pass through count */
1416	WARN_ON(atomic_dec_if_positive(&edev->pe->pass_dev_cnt) < 0);
1417	eeh_pe_change_owner(edev->pe);
1418out:
1419	mutex_unlock(&eeh_dev_mutex);
1420}
1421EXPORT_SYMBOL(eeh_dev_release);
1422
1423#ifdef CONFIG_IOMMU_API
1424
1425static int dev_has_iommu_table(struct device *dev, void *data)
1426{
1427	struct pci_dev *pdev = to_pci_dev(dev);
1428	struct pci_dev **ppdev = data;
1429
1430	if (!dev)
1431		return 0;
1432
1433	if (dev->iommu_group) {
1434		*ppdev = pdev;
1435		return 1;
1436	}
1437
1438	return 0;
1439}
1440
1441/**
1442 * eeh_iommu_group_to_pe - Convert IOMMU group to EEH PE
1443 * @group: IOMMU group
1444 *
1445 * The routine is called to convert IOMMU group to EEH PE.
1446 */
1447struct eeh_pe *eeh_iommu_group_to_pe(struct iommu_group *group)
1448{
1449	struct pci_dev *pdev = NULL;
1450	struct eeh_dev *edev;
1451	int ret;
1452
1453	/* No IOMMU group ? */
1454	if (!group)
1455		return NULL;
1456
1457	ret = iommu_group_for_each_dev(group, &pdev, dev_has_iommu_table);
1458	if (!ret || !pdev)
1459		return NULL;
1460
1461	/* No EEH device or PE ? */
1462	edev = pci_dev_to_eeh_dev(pdev);
1463	if (!edev || !edev->pe)
1464		return NULL;
1465
1466	return edev->pe;
1467}
1468EXPORT_SYMBOL_GPL(eeh_iommu_group_to_pe);
1469
1470#endif /* CONFIG_IOMMU_API */
1471
1472/**
1473 * eeh_pe_set_option - Set options for the indicated PE
1474 * @pe: EEH PE
1475 * @option: requested option
1476 *
1477 * The routine is called to enable or disable EEH functionality
1478 * on the indicated PE, to enable IO or DMA for the frozen PE.
1479 */
1480int eeh_pe_set_option(struct eeh_pe *pe, int option)
1481{
1482	int ret = 0;
1483
1484	/* Invalid PE ? */
1485	if (!pe)
1486		return -ENODEV;
1487
1488	/*
1489	 * EEH functionality could possibly be disabled, just
1490	 * return error for the case. And the EEH functinality
1491	 * isn't expected to be disabled on one specific PE.
1492	 */
1493	switch (option) {
1494	case EEH_OPT_ENABLE:
1495		if (eeh_enabled()) {
1496			ret = eeh_pe_change_owner(pe);
1497			break;
1498		}
1499		ret = -EIO;
1500		break;
1501	case EEH_OPT_DISABLE:
1502		break;
1503	case EEH_OPT_THAW_MMIO:
1504	case EEH_OPT_THAW_DMA:
1505	case EEH_OPT_FREEZE_PE:
1506		if (!eeh_ops || !eeh_ops->set_option) {
1507			ret = -ENOENT;
1508			break;
1509		}
1510
1511		ret = eeh_pci_enable(pe, option);
1512		break;
1513	default:
1514		pr_debug("%s: Option %d out of range (%d, %d)\n",
1515			__func__, option, EEH_OPT_DISABLE, EEH_OPT_THAW_DMA);
1516		ret = -EINVAL;
1517	}
1518
1519	return ret;
1520}
1521EXPORT_SYMBOL_GPL(eeh_pe_set_option);
1522
1523/**
1524 * eeh_pe_get_state - Retrieve PE's state
1525 * @pe: EEH PE
1526 *
1527 * Retrieve the PE's state, which includes 3 aspects: enabled
1528 * DMA, enabled IO and asserted reset.
1529 */
1530int eeh_pe_get_state(struct eeh_pe *pe)
1531{
1532	int result, ret = 0;
1533	bool rst_active, dma_en, mmio_en;
1534
1535	/* Existing PE ? */
1536	if (!pe)
1537		return -ENODEV;
1538
1539	if (!eeh_ops || !eeh_ops->get_state)
1540		return -ENOENT;
1541
1542	/*
1543	 * If the parent PE is owned by the host kernel and is undergoing
1544	 * error recovery, we should return the PE state as temporarily
1545	 * unavailable so that the error recovery on the guest is suspended
1546	 * until the recovery completes on the host.
1547	 */
1548	if (pe->parent &&
1549	    !(pe->state & EEH_PE_REMOVED) &&
1550	    (pe->parent->state & (EEH_PE_ISOLATED | EEH_PE_RECOVERING)))
1551		return EEH_PE_STATE_UNAVAIL;
1552
1553	result = eeh_ops->get_state(pe, NULL);
1554	rst_active = !!(result & EEH_STATE_RESET_ACTIVE);
1555	dma_en = !!(result & EEH_STATE_DMA_ENABLED);
1556	mmio_en = !!(result & EEH_STATE_MMIO_ENABLED);
1557
1558	if (rst_active)
1559		ret = EEH_PE_STATE_RESET;
1560	else if (dma_en && mmio_en)
1561		ret = EEH_PE_STATE_NORMAL;
1562	else if (!dma_en && !mmio_en)
1563		ret = EEH_PE_STATE_STOPPED_IO_DMA;
1564	else if (!dma_en && mmio_en)
1565		ret = EEH_PE_STATE_STOPPED_DMA;
1566	else
1567		ret = EEH_PE_STATE_UNAVAIL;
1568
1569	return ret;
1570}
1571EXPORT_SYMBOL_GPL(eeh_pe_get_state);
1572
1573static int eeh_pe_reenable_devices(struct eeh_pe *pe)
1574{
1575	struct eeh_dev *edev, *tmp;
1576	struct pci_dev *pdev;
1577	int ret = 0;
1578
1579	/* Restore config space */
1580	eeh_pe_restore_bars(pe);
1581
1582	/*
1583	 * Reenable PCI devices as the devices passed
1584	 * through are always enabled before the reset.
1585	 */
1586	eeh_pe_for_each_dev(pe, edev, tmp) {
1587		pdev = eeh_dev_to_pci_dev(edev);
1588		if (!pdev)
1589			continue;
1590
1591		ret = pci_reenable_device(pdev);
1592		if (ret) {
1593			pr_warn("%s: Failure %d reenabling %s\n",
1594				__func__, ret, pci_name(pdev));
1595			return ret;
1596		}
1597	}
1598
1599	/* The PE is still in frozen state */
1600	return eeh_unfreeze_pe(pe, true);
 
 
 
 
 
 
 
1601}
1602
1603
1604/**
1605 * eeh_pe_reset - Issue PE reset according to specified type
1606 * @pe: EEH PE
1607 * @option: reset type
 
1608 *
1609 * The routine is called to reset the specified PE with the
1610 * indicated type, either fundamental reset or hot reset.
1611 * PE reset is the most important part for error recovery.
1612 */
1613int eeh_pe_reset(struct eeh_pe *pe, int option)
1614{
1615	int ret = 0;
1616
1617	/* Invalid PE ? */
1618	if (!pe)
1619		return -ENODEV;
1620
1621	if (!eeh_ops || !eeh_ops->set_option || !eeh_ops->reset)
1622		return -ENOENT;
1623
1624	switch (option) {
1625	case EEH_RESET_DEACTIVATE:
1626		ret = eeh_ops->reset(pe, option);
1627		eeh_pe_state_clear(pe, EEH_PE_CFG_BLOCKED);
1628		if (ret)
1629			break;
1630
1631		ret = eeh_pe_reenable_devices(pe);
1632		break;
1633	case EEH_RESET_HOT:
1634	case EEH_RESET_FUNDAMENTAL:
1635		/*
1636		 * Proactively freeze the PE to drop all MMIO access
1637		 * during reset, which should be banned as it's always
1638		 * cause recursive EEH error.
1639		 */
1640		eeh_ops->set_option(pe, EEH_OPT_FREEZE_PE);
1641
1642		eeh_pe_state_mark(pe, EEH_PE_CFG_BLOCKED);
1643		ret = eeh_ops->reset(pe, option);
1644		break;
1645	default:
1646		pr_debug("%s: Unsupported option %d\n",
1647			__func__, option);
1648		ret = -EINVAL;
1649	}
1650
1651	return ret;
1652}
1653EXPORT_SYMBOL_GPL(eeh_pe_reset);
1654
1655/**
1656 * eeh_pe_configure - Configure PCI bridges after PE reset
1657 * @pe: EEH PE
1658 *
1659 * The routine is called to restore the PCI config space for
1660 * those PCI devices, especially PCI bridges affected by PE
1661 * reset issued previously.
1662 */
1663int eeh_pe_configure(struct eeh_pe *pe)
1664{
1665	int ret = 0;
1666
1667	/* Invalid PE ? */
1668	if (!pe)
1669		return -ENODEV;
1670
1671	return ret;
1672}
1673EXPORT_SYMBOL_GPL(eeh_pe_configure);
1674
1675/**
1676 * eeh_pe_inject_err - Injecting the specified PCI error to the indicated PE
1677 * @pe: the indicated PE
1678 * @type: error type
1679 * @function: error function
1680 * @addr: address
1681 * @mask: address mask
1682 *
1683 * The routine is called to inject the specified PCI error, which
1684 * is determined by @type and @function, to the indicated PE for
1685 * testing purpose.
1686 */
1687int eeh_pe_inject_err(struct eeh_pe *pe, int type, int func,
1688		      unsigned long addr, unsigned long mask)
1689{
1690	/* Invalid PE ? */
1691	if (!pe)
1692		return -ENODEV;
1693
1694	/* Unsupported operation ? */
1695	if (!eeh_ops || !eeh_ops->err_inject)
1696		return -ENOENT;
1697
1698	/* Check on PCI error type */
1699	if (type != EEH_ERR_TYPE_32 && type != EEH_ERR_TYPE_64)
1700		return -EINVAL;
1701
1702	/* Check on PCI error function */
1703	if (func < EEH_ERR_FUNC_MIN || func > EEH_ERR_FUNC_MAX)
1704		return -EINVAL;
1705
1706	return eeh_ops->err_inject(pe, type, func, addr, mask);
1707}
1708EXPORT_SYMBOL_GPL(eeh_pe_inject_err);
1709
 
1710static int proc_eeh_show(struct seq_file *m, void *v)
1711{
1712	if (!eeh_enabled()) {
1713		seq_printf(m, "EEH Subsystem is globally disabled\n");
1714		seq_printf(m, "eeh_total_mmio_ffs=%llu\n", eeh_stats.total_mmio_ffs);
1715	} else {
1716		seq_printf(m, "EEH Subsystem is enabled\n");
1717		seq_printf(m,
1718				"no device=%llu\n"
1719				"no device node=%llu\n"
1720				"no config address=%llu\n"
1721				"check not wanted=%llu\n"
1722				"eeh_total_mmio_ffs=%llu\n"
1723				"eeh_false_positives=%llu\n"
1724				"eeh_slot_resets=%llu\n",
1725				eeh_stats.no_device,
1726				eeh_stats.no_dn,
1727				eeh_stats.no_cfg_addr,
1728				eeh_stats.ignored_check,
1729				eeh_stats.total_mmio_ffs,
1730				eeh_stats.false_positives,
1731				eeh_stats.slot_resets);
1732	}
1733
1734	return 0;
1735}
 
 
 
 
1736
1737static int proc_eeh_open(struct inode *inode, struct file *file)
 
 
1738{
1739	return single_open(file, proc_eeh_show, NULL);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1740}
1741
1742static const struct file_operations proc_eeh_operations = {
1743	.open      = proc_eeh_open,
1744	.read      = seq_read,
1745	.llseek    = seq_lseek,
1746	.release   = single_release,
1747};
1748
1749#ifdef CONFIG_DEBUG_FS
1750static int eeh_enable_dbgfs_set(void *data, u64 val)
1751{
1752	if (val)
1753		eeh_clear_flag(EEH_FORCE_DISABLED);
1754	else
1755		eeh_add_flag(EEH_FORCE_DISABLED);
1756
1757	/* Notify the backend */
1758	if (eeh_ops->post_init)
1759		eeh_ops->post_init();
1760
1761	return 0;
1762}
1763
1764static int eeh_enable_dbgfs_get(void *data, u64 *val)
1765{
1766	if (eeh_enabled())
1767		*val = 0x1ul;
1768	else
1769		*val = 0x0ul;
1770	return 0;
1771}
1772
1773static int eeh_freeze_dbgfs_set(void *data, u64 val)
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1774{
1775	eeh_max_freezes = val;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1776	return 0;
1777}
1778
1779static int eeh_freeze_dbgfs_get(void *data, u64 *val)
 
 
1780{
1781	*val = eeh_max_freezes;
1782	return 0;
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1783}
1784
1785DEFINE_SIMPLE_ATTRIBUTE(eeh_enable_dbgfs_ops, eeh_enable_dbgfs_get,
1786			eeh_enable_dbgfs_set, "0x%llx\n");
1787DEFINE_SIMPLE_ATTRIBUTE(eeh_freeze_dbgfs_ops, eeh_freeze_dbgfs_get,
1788			eeh_freeze_dbgfs_set, "0x%llx\n");
 
 
 
1789#endif
1790
1791static int __init eeh_init_proc(void)
1792{
1793	if (machine_is(pseries) || machine_is(powernv)) {
1794		proc_create("powerpc/eeh", 0, NULL, &proc_eeh_operations);
1795#ifdef CONFIG_DEBUG_FS
1796		debugfs_create_file("eeh_enable", 0600,
1797                                    powerpc_debugfs_root, NULL,
1798                                    &eeh_enable_dbgfs_ops);
1799		debugfs_create_file("eeh_max_freezes", 0600,
1800				    powerpc_debugfs_root, NULL,
1801				    &eeh_freeze_dbgfs_ops);
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1802#endif
1803	}
1804
1805	return 0;
1806}
1807__initcall(eeh_init_proc);