memory-failure.c 52.8 KB
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// SPDX-License-Identifier: GPL-2.0-only
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/*
 * Copyright (C) 2008, 2009 Intel Corporation
 * Authors: Andi Kleen, Fengguang Wu
 *
 * High level machine check handler. Handles pages reported by the
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 * hardware as being corrupted usually due to a multi-bit ECC memory or cache
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 * failure.
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 * 
 * In addition there is a "soft offline" entry point that allows stop using
 * not-yet-corrupted-by-suspicious pages without killing anything.
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 *
 * Handles page cache pages in various states.	The tricky part
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 * here is that we can access any page asynchronously in respect to 
 * other VM users, because memory failures could happen anytime and 
 * anywhere. This could violate some of their assumptions. This is why 
 * this code has to be extremely careful. Generally it tries to use 
 * normal locking rules, as in get the standard locks, even if that means 
 * the error handling takes potentially a long time.
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 *
 * It can be very tempting to add handling for obscure cases here.
 * In general any code for handling new cases should only be added iff:
 * - You know how to test it.
 * - You have a test that can be added to mce-test
 *   https://git.kernel.org/cgit/utils/cpu/mce/mce-test.git/
 * - The case actually shows up as a frequent (top 10) page state in
 *   tools/vm/page-types when running a real workload.
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 * 
 * There are several operations here with exponential complexity because
 * of unsuitable VM data structures. For example the operation to map back 
 * from RMAP chains to processes has to walk the complete process list and 
 * has non linear complexity with the number. But since memory corruptions
 * are rare we hope to get away with this. This avoids impacting the core 
 * VM.
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 */
#include <linux/kernel.h>
#include <linux/mm.h>
#include <linux/page-flags.h>
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#include <linux/kernel-page-flags.h>
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#include <linux/sched/signal.h>
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#include <linux/sched/task.h>
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#include <linux/ksm.h>
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#include <linux/rmap.h>
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#include <linux/export.h>
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#include <linux/pagemap.h>
#include <linux/swap.h>
#include <linux/backing-dev.h>
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#include <linux/migrate.h>
#include <linux/suspend.h>
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#include <linux/slab.h>
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#include <linux/swapops.h>
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#include <linux/hugetlb.h>
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#include <linux/memory_hotplug.h>
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#include <linux/mm_inline.h>
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#include <linux/memremap.h>
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#include <linux/kfifo.h>
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#include <linux/ratelimit.h>
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#include <linux/page-isolation.h>
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#include "internal.h"
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#include "ras/ras_event.h"
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int sysctl_memory_failure_early_kill __read_mostly = 0;

int sysctl_memory_failure_recovery __read_mostly = 1;

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atomic_long_t num_poisoned_pages __read_mostly = ATOMIC_LONG_INIT(0);
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static bool page_handle_poison(struct page *page, bool hugepage_or_freepage, bool release)
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{
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	if (hugepage_or_freepage) {
		/*
		 * Doing this check for free pages is also fine since dissolve_free_huge_page
		 * returns 0 for non-hugetlb pages as well.
		 */
		if (dissolve_free_huge_page(page) || !take_page_off_buddy(page))
			/*
			 * We could fail to take off the target page from buddy
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			 * for example due to racy page allocation, but that's
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			 * acceptable because soft-offlined page is not broken
			 * and if someone really want to use it, they should
			 * take it.
			 */
			return false;
	}

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	SetPageHWPoison(page);
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	if (release)
		put_page(page);
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	page_ref_inc(page);
	num_poisoned_pages_inc();
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	return true;
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}

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#if defined(CONFIG_HWPOISON_INJECT) || defined(CONFIG_HWPOISON_INJECT_MODULE)

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u32 hwpoison_filter_enable = 0;
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u32 hwpoison_filter_dev_major = ~0U;
u32 hwpoison_filter_dev_minor = ~0U;
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u64 hwpoison_filter_flags_mask;
u64 hwpoison_filter_flags_value;
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EXPORT_SYMBOL_GPL(hwpoison_filter_enable);
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EXPORT_SYMBOL_GPL(hwpoison_filter_dev_major);
EXPORT_SYMBOL_GPL(hwpoison_filter_dev_minor);
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EXPORT_SYMBOL_GPL(hwpoison_filter_flags_mask);
EXPORT_SYMBOL_GPL(hwpoison_filter_flags_value);
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static int hwpoison_filter_dev(struct page *p)
{
	struct address_space *mapping;
	dev_t dev;

	if (hwpoison_filter_dev_major == ~0U &&
	    hwpoison_filter_dev_minor == ~0U)
		return 0;

	/*
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	 * page_mapping() does not accept slab pages.
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	 */
	if (PageSlab(p))
		return -EINVAL;

	mapping = page_mapping(p);
	if (mapping == NULL || mapping->host == NULL)
		return -EINVAL;

	dev = mapping->host->i_sb->s_dev;
	if (hwpoison_filter_dev_major != ~0U &&
	    hwpoison_filter_dev_major != MAJOR(dev))
		return -EINVAL;
	if (hwpoison_filter_dev_minor != ~0U &&
	    hwpoison_filter_dev_minor != MINOR(dev))
		return -EINVAL;

	return 0;
}

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static int hwpoison_filter_flags(struct page *p)
{
	if (!hwpoison_filter_flags_mask)
		return 0;

	if ((stable_page_flags(p) & hwpoison_filter_flags_mask) ==
				    hwpoison_filter_flags_value)
		return 0;
	else
		return -EINVAL;
}

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/*
 * This allows stress tests to limit test scope to a collection of tasks
 * by putting them under some memcg. This prevents killing unrelated/important
 * processes such as /sbin/init. Note that the target task may share clean
 * pages with init (eg. libc text), which is harmless. If the target task
 * share _dirty_ pages with another task B, the test scheme must make sure B
 * is also included in the memcg. At last, due to race conditions this filter
 * can only guarantee that the page either belongs to the memcg tasks, or is
 * a freed page.
 */
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#ifdef CONFIG_MEMCG
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u64 hwpoison_filter_memcg;
EXPORT_SYMBOL_GPL(hwpoison_filter_memcg);
static int hwpoison_filter_task(struct page *p)
{
	if (!hwpoison_filter_memcg)
		return 0;

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	if (page_cgroup_ino(p) != hwpoison_filter_memcg)
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		return -EINVAL;

	return 0;
}
#else
static int hwpoison_filter_task(struct page *p) { return 0; }
#endif

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int hwpoison_filter(struct page *p)
{
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	if (!hwpoison_filter_enable)
		return 0;

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	if (hwpoison_filter_dev(p))
		return -EINVAL;

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	if (hwpoison_filter_flags(p))
		return -EINVAL;

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	if (hwpoison_filter_task(p))
		return -EINVAL;

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	return 0;
}
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#else
int hwpoison_filter(struct page *p)
{
	return 0;
}
#endif

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EXPORT_SYMBOL_GPL(hwpoison_filter);

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/*
 * Kill all processes that have a poisoned page mapped and then isolate
 * the page.
 *
 * General strategy:
 * Find all processes having the page mapped and kill them.
 * But we keep a page reference around so that the page is not
 * actually freed yet.
 * Then stash the page away
 *
 * There's no convenient way to get back to mapped processes
 * from the VMAs. So do a brute-force search over all
 * running processes.
 *
 * Remember that machine checks are not common (or rather
 * if they are common you have other problems), so this shouldn't
 * be a performance issue.
 *
 * Also there are some races possible while we get from the
 * error detection to actually handle it.
 */

struct to_kill {
	struct list_head nd;
	struct task_struct *tsk;
	unsigned long addr;
	short size_shift;
};

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/*
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 * Send all the processes who have the page mapped a signal.
 * ``action optional'' if they are not immediately affected by the error
 * ``action required'' if error happened in current execution context
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 */
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static int kill_proc(struct to_kill *tk, unsigned long pfn, int flags)
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{
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	struct task_struct *t = tk->tsk;
	short addr_lsb = tk->size_shift;
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	int ret = 0;
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	pr_err("Memory failure: %#lx: Sending SIGBUS to %s:%d due to hardware memory corruption\n",
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			pfn, t->comm, t->pid);
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	if (flags & MF_ACTION_REQUIRED) {
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		if (t == current)
			ret = force_sig_mceerr(BUS_MCEERR_AR,
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					 (void __user *)tk->addr, addr_lsb);
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		else
			/* Signal other processes sharing the page if they have PF_MCE_EARLY set. */
			ret = send_sig_mceerr(BUS_MCEERR_AO, (void __user *)tk->addr,
				addr_lsb, t);
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	} else {
		/*
		 * Don't use force here, it's convenient if the signal
		 * can be temporarily blocked.
		 * This could cause a loop when the user sets SIGBUS
		 * to SIG_IGN, but hopefully no one will do that?
		 */
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		ret = send_sig_mceerr(BUS_MCEERR_AO, (void __user *)tk->addr,
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				      addr_lsb, t);  /* synchronous? */
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	}
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	if (ret < 0)
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		pr_info("Memory failure: Error sending signal to %s:%d: %d\n",
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			t->comm, t->pid, ret);
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	return ret;
}

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/*
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 * Unknown page type encountered. Try to check whether it can turn PageLRU by
 * lru_add_drain_all, or a free page by reclaiming slabs when possible.
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 */
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void shake_page(struct page *p, int access)
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{
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	if (PageHuge(p))
		return;

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	if (!PageSlab(p)) {
		lru_add_drain_all();
		if (PageLRU(p) || is_free_buddy_page(p))
			return;
	}
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	/*
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	 * Only call shrink_node_slabs here (which would also shrink
	 * other caches) if access is not potentially fatal.
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	 */
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	if (access)
		drop_slab_node(page_to_nid(p));
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}
EXPORT_SYMBOL_GPL(shake_page);

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static unsigned long dev_pagemap_mapping_shift(struct page *page,
		struct vm_area_struct *vma)
{
	unsigned long address = vma_address(page, vma);
	pgd_t *pgd;
	p4d_t *p4d;
	pud_t *pud;
	pmd_t *pmd;
	pte_t *pte;

	pgd = pgd_offset(vma->vm_mm, address);
	if (!pgd_present(*pgd))
		return 0;
	p4d = p4d_offset(pgd, address);
	if (!p4d_present(*p4d))
		return 0;
	pud = pud_offset(p4d, address);
	if (!pud_present(*pud))
		return 0;
	if (pud_devmap(*pud))
		return PUD_SHIFT;
	pmd = pmd_offset(pud, address);
	if (!pmd_present(*pmd))
		return 0;
	if (pmd_devmap(*pmd))
		return PMD_SHIFT;
	pte = pte_offset_map(pmd, address);
	if (!pte_present(*pte))
		return 0;
	if (pte_devmap(*pte))
		return PAGE_SHIFT;
	return 0;
}
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/*
 * Failure handling: if we can't find or can't kill a process there's
 * not much we can do.	We just print a message and ignore otherwise.
 */

/*
 * Schedule a process for later kill.
 * Uses GFP_ATOMIC allocations to avoid potential recursions in the VM.
 */
static void add_to_kill(struct task_struct *tsk, struct page *p,
		       struct vm_area_struct *vma,
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		       struct list_head *to_kill)
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{
	struct to_kill *tk;

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	tk = kmalloc(sizeof(struct to_kill), GFP_ATOMIC);
	if (!tk) {
		pr_err("Memory failure: Out of memory while machine check handling\n");
		return;
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	}
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	tk->addr = page_address_in_vma(p, vma);
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	if (is_zone_device_page(p))
		tk->size_shift = dev_pagemap_mapping_shift(p, vma);
	else
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		tk->size_shift = page_shift(compound_head(p));
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	/*
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	 * Send SIGKILL if "tk->addr == -EFAULT". Also, as
	 * "tk->size_shift" is always non-zero for !is_zone_device_page(),
	 * so "tk->size_shift == 0" effectively checks no mapping on
	 * ZONE_DEVICE. Indeed, when a devdax page is mmapped N times
	 * to a process' address space, it's possible not all N VMAs
	 * contain mappings for the page, but at least one VMA does.
	 * Only deliver SIGBUS with payload derived from the VMA that
	 * has a mapping for the page.
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	 */
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	if (tk->addr == -EFAULT) {
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		pr_info("Memory failure: Unable to find user space address %lx in %s\n",
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			page_to_pfn(p), tsk->comm);
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	} else if (tk->size_shift == 0) {
		kfree(tk);
		return;
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	}
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	get_task_struct(tsk);
	tk->tsk = tsk;
	list_add_tail(&tk->nd, to_kill);
}

/*
 * Kill the processes that have been collected earlier.
 *
 * Only do anything when DOIT is set, otherwise just free the list
 * (this is used for clean pages which do not need killing)
 * Also when FAIL is set do a force kill because something went
 * wrong earlier.
 */
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static void kill_procs(struct list_head *to_kill, int forcekill, bool fail,
		unsigned long pfn, int flags)
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{
	struct to_kill *tk, *next;

	list_for_each_entry_safe (tk, next, to_kill, nd) {
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		if (forcekill) {
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			/*
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			 * In case something went wrong with munmapping
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			 * make sure the process doesn't catch the
			 * signal and then access the memory. Just kill it.
			 */
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			if (fail || tk->addr == -EFAULT) {
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				pr_err("Memory failure: %#lx: forcibly killing %s:%d because of failure to unmap corrupted page\n",
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				       pfn, tk->tsk->comm, tk->tsk->pid);
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				do_send_sig_info(SIGKILL, SEND_SIG_PRIV,
						 tk->tsk, PIDTYPE_PID);
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			}

			/*
			 * In theory the process could have mapped
			 * something else on the address in-between. We could
			 * check for that, but we need to tell the
			 * process anyways.
			 */
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			else if (kill_proc(tk, pfn, flags) < 0)
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				pr_err("Memory failure: %#lx: Cannot send advisory machine check signal to %s:%d\n",
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				       pfn, tk->tsk->comm, tk->tsk->pid);
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		}
		put_task_struct(tk->tsk);
		kfree(tk);
	}
}

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/*
 * Find a dedicated thread which is supposed to handle SIGBUS(BUS_MCEERR_AO)
 * on behalf of the thread group. Return task_struct of the (first found)
 * dedicated thread if found, and return NULL otherwise.
 *
 * We already hold read_lock(&tasklist_lock) in the caller, so we don't
 * have to call rcu_read_lock/unlock() in this function.
 */
static struct task_struct *find_early_kill_thread(struct task_struct *tsk)
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{
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	struct task_struct *t;

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	for_each_thread(tsk, t) {
		if (t->flags & PF_MCE_PROCESS) {
			if (t->flags & PF_MCE_EARLY)
				return t;
		} else {
			if (sysctl_memory_failure_early_kill)
				return t;
		}
	}
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	return NULL;
}

/*
 * Determine whether a given process is "early kill" process which expects
 * to be signaled when some page under the process is hwpoisoned.
 * Return task_struct of the dedicated thread (main thread unless explicitly
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 * specified) if the process is "early kill" and otherwise returns NULL.
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 *
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 * Note that the above is true for Action Optional case. For Action Required
 * case, it's only meaningful to the current thread which need to be signaled
 * with SIGBUS, this error is Action Optional for other non current
 * processes sharing the same error page,if the process is "early kill", the
 * task_struct of the dedicated thread will also be returned.
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 */
static struct task_struct *task_early_kill(struct task_struct *tsk,
					   int force_early)
{
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	if (!tsk->mm)
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		return NULL;
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	/*
	 * Comparing ->mm here because current task might represent
	 * a subthread, while tsk always points to the main thread.
	 */
	if (force_early && tsk->mm == current->mm)
		return current;

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	return find_early_kill_thread(tsk);
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}

/*
 * Collect processes when the error hit an anonymous page.
 */
static void collect_procs_anon(struct page *page, struct list_head *to_kill,
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				int force_early)
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{
	struct vm_area_struct *vma;
	struct task_struct *tsk;
	struct anon_vma *av;
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	pgoff_t pgoff;
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	av = page_lock_anon_vma_read(page);
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	if (av == NULL)	/* Not actually mapped anymore */
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		return;

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	pgoff = page_to_pgoff(page);
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	read_lock(&tasklist_lock);
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	for_each_process (tsk) {
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		struct anon_vma_chain *vmac;
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		struct task_struct *t = task_early_kill(tsk, force_early);
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		if (!t)
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			continue;
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		anon_vma_interval_tree_foreach(vmac, &av->rb_root,
					       pgoff, pgoff) {
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			vma = vmac->vma;
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			if (!page_mapped_in_vma(page, vma))
				continue;
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			if (vma->vm_mm == t->mm)
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				add_to_kill(t, page, vma, to_kill);
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		}
	}
	read_unlock(&tasklist_lock);
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	page_unlock_anon_vma_read(av);
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}

/*
 * Collect processes when the error hit a file mapped page.
 */
static void collect_procs_file(struct page *page, struct list_head *to_kill,
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				int force_early)
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{
	struct vm_area_struct *vma;
	struct task_struct *tsk;
	struct address_space *mapping = page->mapping;
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	pgoff_t pgoff;
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	i_mmap_lock_read(mapping);
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	read_lock(&tasklist_lock);
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	pgoff = page_to_pgoff(page);
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	for_each_process(tsk) {
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		struct task_struct *t = task_early_kill(tsk, force_early);
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		if (!t)
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			continue;
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		vma_interval_tree_foreach(vma, &mapping->i_mmap, pgoff,
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				      pgoff) {
			/*
			 * Send early kill signal to tasks where a vma covers
			 * the page but the corrupted page is not necessarily
			 * mapped it in its pte.
			 * Assume applications who requested early kill want
			 * to be informed of all such data corruptions.
			 */
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			if (vma->vm_mm == t->mm)
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				add_to_kill(t, page, vma, to_kill);
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		}
	}
	read_unlock(&tasklist_lock);
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	i_mmap_unlock_read(mapping);
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}

/*
 * Collect the processes who have the corrupted page mapped to kill.
 */
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static void collect_procs(struct page *page, struct list_head *tokill,
				int force_early)
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{
	if (!page->mapping)
		return;

	if (PageAnon(page))
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		collect_procs_anon(page, tokill, force_early);
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	else
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		collect_procs_file(page, tokill, force_early);
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}

static const char *action_name[] = {
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	[MF_IGNORED] = "Ignored",
	[MF_FAILED] = "Failed",
	[MF_DELAYED] = "Delayed",
	[MF_RECOVERED] = "Recovered",
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};

static const char * const action_page_types[] = {
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	[MF_MSG_KERNEL]			= "reserved kernel page",
	[MF_MSG_KERNEL_HIGH_ORDER]	= "high-order kernel page",
	[MF_MSG_SLAB]			= "kernel slab page",
	[MF_MSG_DIFFERENT_COMPOUND]	= "different compound page after locking",
	[MF_MSG_POISONED_HUGE]		= "huge page already hardware poisoned",
	[MF_MSG_HUGE]			= "huge page",
	[MF_MSG_FREE_HUGE]		= "free huge page",
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	[MF_MSG_NON_PMD_HUGE]		= "non-pmd-sized huge page",
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	[MF_MSG_UNMAP_FAILED]		= "unmapping failed page",
	[MF_MSG_DIRTY_SWAPCACHE]	= "dirty swapcache page",
	[MF_MSG_CLEAN_SWAPCACHE]	= "clean swapcache page",
	[MF_MSG_DIRTY_MLOCKED_LRU]	= "dirty mlocked LRU page",
	[MF_MSG_CLEAN_MLOCKED_LRU]	= "clean mlocked LRU page",
	[MF_MSG_DIRTY_UNEVICTABLE_LRU]	= "dirty unevictable LRU page",
	[MF_MSG_CLEAN_UNEVICTABLE_LRU]	= "clean unevictable LRU page",
	[MF_MSG_DIRTY_LRU]		= "dirty LRU page",
	[MF_MSG_CLEAN_LRU]		= "clean LRU page",
	[MF_MSG_TRUNCATED_LRU]		= "already truncated LRU page",
	[MF_MSG_BUDDY]			= "free buddy page",
	[MF_MSG_BUDDY_2ND]		= "free buddy page (2nd try)",
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	[MF_MSG_DAX]			= "dax page",
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	[MF_MSG_UNSPLIT_THP]		= "unsplit thp",
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	[MF_MSG_UNKNOWN]		= "unknown page",
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};

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/*
 * XXX: It is possible that a page is isolated from LRU cache,
 * and then kept in swap cache or failed to remove from page cache.
 * The page count will stop it from being freed by unpoison.
 * Stress tests should be aware of this memory leak problem.
 */
static int delete_from_lru_cache(struct page *p)
{
	if (!isolate_lru_page(p)) {
		/*
		 * Clear sensible page flags, so that the buddy system won't
		 * complain when the page is unpoison-and-freed.
		 */
		ClearPageActive(p);
		ClearPageUnevictable(p);
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		/*
		 * Poisoned page might never drop its ref count to 0 so we have
		 * to uncharge it manually from its memcg.
		 */
		mem_cgroup_uncharge(p);

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		/*
		 * drop the page count elevated by isolate_lru_page()
		 */
615
		put_page(p);
616 617 618 619 620
		return 0;
	}
	return -EIO;
}

621 622 623 624 625 626 627 628 629 630 631 632 633 634 635 636 637 638 639 640 641 642 643 644 645 646 647 648 649 650 651 652 653
static int truncate_error_page(struct page *p, unsigned long pfn,
				struct address_space *mapping)
{
	int ret = MF_FAILED;

	if (mapping->a_ops->error_remove_page) {
		int err = mapping->a_ops->error_remove_page(mapping, p);

		if (err != 0) {
			pr_info("Memory failure: %#lx: Failed to punch page: %d\n",
				pfn, err);
		} else if (page_has_private(p) &&
			   !try_to_release_page(p, GFP_NOIO)) {
			pr_info("Memory failure: %#lx: failed to release buffers\n",
				pfn);
		} else {
			ret = MF_RECOVERED;
		}
	} else {
		/*
		 * If the file system doesn't support it just invalidate
		 * This fails on dirty or anything with private pages
		 */
		if (invalidate_inode_page(p))
			ret = MF_RECOVERED;
		else
			pr_info("Memory failure: %#lx: Failed to invalidate\n",
				pfn);
	}

	return ret;
}

654 655 656 657 658 659 660
/*
 * Error hit kernel page.
 * Do nothing, try to be lucky and not touch this instead. For a few cases we
 * could be more sophisticated.
 */
static int me_kernel(struct page *p, unsigned long pfn)
{
661
	return MF_IGNORED;
662 663 664 665 666 667 668
}

/*
 * Page in unknown state. Do nothing.
 */
static int me_unknown(struct page *p, unsigned long pfn)
{
669
	pr_err("Memory failure: %#lx: Unknown page state\n", pfn);
670
	return MF_FAILED;
671 672 673 674 675 676 677 678 679
}

/*
 * Clean (or cleaned) page cache page.
 */
static int me_pagecache_clean(struct page *p, unsigned long pfn)
{
	struct address_space *mapping;

680 681
	delete_from_lru_cache(p);

682 683 684 685 686
	/*
	 * For anonymous pages we're done the only reference left
	 * should be the one m_f() holds.
	 */
	if (PageAnon(p))
687
		return MF_RECOVERED;
688 689 690 691 692 693 694 695 696 697 698 699 700

	/*
	 * Now truncate the page in the page cache. This is really
	 * more like a "temporary hole punch"
	 * Don't do this for block devices when someone else
	 * has a reference, because it could be file system metadata
	 * and that's not safe to truncate.
	 */
	mapping = page_mapping(p);
	if (!mapping) {
		/*
		 * Page has been teared down in the meanwhile
		 */
701
		return MF_FAILED;
702 703 704 705 706 707 708
	}

	/*
	 * Truncation is a bit tricky. Enable it per file system for now.
	 *
	 * Open: to take i_mutex or not for this? Right now we don't.
	 */
709
	return truncate_error_page(p, pfn, mapping);
710 711 712
}

/*
713
 * Dirty pagecache page
714 715 716 717 718 719 720 721 722 723 724 725 726 727 728 729 730 731 732 733 734 735 736 737 738 739 740 741 742 743 744 745
 * Issues: when the error hit a hole page the error is not properly
 * propagated.
 */
static int me_pagecache_dirty(struct page *p, unsigned long pfn)
{
	struct address_space *mapping = page_mapping(p);

	SetPageError(p);
	/* TBD: print more information about the file. */
	if (mapping) {
		/*
		 * IO error will be reported by write(), fsync(), etc.
		 * who check the mapping.
		 * This way the application knows that something went
		 * wrong with its dirty file data.
		 *
		 * There's one open issue:
		 *
		 * The EIO will be only reported on the next IO
		 * operation and then cleared through the IO map.
		 * Normally Linux has two mechanisms to pass IO error
		 * first through the AS_EIO flag in the address space
		 * and then through the PageError flag in the page.
		 * Since we drop pages on memory failure handling the
		 * only mechanism open to use is through AS_AIO.
		 *
		 * This has the disadvantage that it gets cleared on
		 * the first operation that returns an error, while
		 * the PageError bit is more sticky and only cleared
		 * when the page is reread or dropped.  If an
		 * application assumes it will always get error on
		 * fsync, but does other operations on the fd before
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Lucas De Marchi 已提交
746
		 * and the page is dropped between then the error
747 748 749 750 751 752 753 754 755 756 757
		 * will not be properly reported.
		 *
		 * This can already happen even without hwpoisoned
		 * pages: first on metadata IO errors (which only
		 * report through AS_EIO) or when the page is dropped
		 * at the wrong time.
		 *
		 * So right now we assume that the application DTRT on
		 * the first EIO, but we're not worse than other parts
		 * of the kernel.
		 */
758
		mapping_set_error(mapping, -EIO);
759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782 783 784 785 786 787 788
	}

	return me_pagecache_clean(p, pfn);
}

/*
 * Clean and dirty swap cache.
 *
 * Dirty swap cache page is tricky to handle. The page could live both in page
 * cache and swap cache(ie. page is freshly swapped in). So it could be
 * referenced concurrently by 2 types of PTEs:
 * normal PTEs and swap PTEs. We try to handle them consistently by calling
 * try_to_unmap(TTU_IGNORE_HWPOISON) to convert the normal PTEs to swap PTEs,
 * and then
 *      - clear dirty bit to prevent IO
 *      - remove from LRU
 *      - but keep in the swap cache, so that when we return to it on
 *        a later page fault, we know the application is accessing
 *        corrupted data and shall be killed (we installed simple
 *        interception code in do_swap_page to catch it).
 *
 * Clean swap cache pages can be directly isolated. A later page fault will
 * bring in the known good data from disk.
 */
static int me_swapcache_dirty(struct page *p, unsigned long pfn)
{
	ClearPageDirty(p);
	/* Trigger EIO in shmem: */
	ClearPageUptodate(p);

789
	if (!delete_from_lru_cache(p))
790
		return MF_DELAYED;
791
	else
792
		return MF_FAILED;
793 794 795 796 797
}

static int me_swapcache_clean(struct page *p, unsigned long pfn)
{
	delete_from_swap_cache(p);
798

799
	if (!delete_from_lru_cache(p))
800
		return MF_RECOVERED;
801
	else
802
		return MF_FAILED;
803 804 805 806 807
}

/*
 * Huge pages. Needs work.
 * Issues:
808 809
 * - Error on hugepage is contained in hugepage unit (not in raw page unit.)
 *   To narrow down kill region to one page, we need to break up pmd.
810 811 812
 */
static int me_huge_page(struct page *p, unsigned long pfn)
{
813
	int res;
814
	struct page *hpage = compound_head(p);
815
	struct address_space *mapping;
816 817 818 819

	if (!PageHuge(hpage))
		return MF_DELAYED;

820 821 822 823
	mapping = page_mapping(hpage);
	if (mapping) {
		res = truncate_error_page(hpage, pfn, mapping);
	} else {
824
		res = MF_FAILED;
825 826 827 828 829 830 831 832
		unlock_page(hpage);
		/*
		 * migration entry prevents later access on error anonymous
		 * hugepage, so we can free and dissolve it into buddy to
		 * save healthy subpages.
		 */
		if (PageAnon(hpage))
			put_page(hpage);
833 834 835 836
		if (!dissolve_free_huge_page(p) && take_page_off_buddy(p)) {
			page_ref_inc(p);
			res = MF_RECOVERED;
		}
837
		lock_page(hpage);
838
	}
839 840

	return res;
841 842 843 844 845 846 847 848 849
}

/*
 * Various page states we can handle.
 *
 * A page state is defined by its current page->flags bits.
 * The table matches them in order and calls the right handler.
 *
 * This is quite tricky because we can access page at any time
L
Lucas De Marchi 已提交
850
 * in its live cycle, so all accesses have to be extremely careful.
851 852 853 854 855 856
 *
 * This is not complete. More states could be added.
 * For any missing state don't attempt recovery.
 */

#define dirty		(1UL << PG_dirty)
857
#define sc		((1UL << PG_swapcache) | (1UL << PG_swapbacked))
858 859 860 861 862 863 864 865 866 867
#define unevict		(1UL << PG_unevictable)
#define mlock		(1UL << PG_mlocked)
#define lru		(1UL << PG_lru)
#define head		(1UL << PG_head)
#define slab		(1UL << PG_slab)
#define reserved	(1UL << PG_reserved)

static struct page_state {
	unsigned long mask;
	unsigned long res;
868
	enum mf_action_page_type type;
869 870
	int (*action)(struct page *p, unsigned long pfn);
} error_states[] = {
871
	{ reserved,	reserved,	MF_MSG_KERNEL,	me_kernel },
872 873 874 875
	/*
	 * free pages are specially detected outside this table:
	 * PG_buddy pages only make a small fraction of all free pages.
	 */
876 877 878 879 880 881

	/*
	 * Could in theory check if slab page is free or if we can drop
	 * currently unused objects without touching them. But just
	 * treat it as standard kernel for now.
	 */
882
	{ slab,		slab,		MF_MSG_SLAB,	me_kernel },
883

884
	{ head,		head,		MF_MSG_HUGE,		me_huge_page },
885

886 887
	{ sc|dirty,	sc|dirty,	MF_MSG_DIRTY_SWAPCACHE,	me_swapcache_dirty },
	{ sc|dirty,	sc,		MF_MSG_CLEAN_SWAPCACHE,	me_swapcache_clean },
888

889 890
	{ mlock|dirty,	mlock|dirty,	MF_MSG_DIRTY_MLOCKED_LRU,	me_pagecache_dirty },
	{ mlock|dirty,	mlock,		MF_MSG_CLEAN_MLOCKED_LRU,	me_pagecache_clean },
891

892 893
	{ unevict|dirty, unevict|dirty,	MF_MSG_DIRTY_UNEVICTABLE_LRU,	me_pagecache_dirty },
	{ unevict|dirty, unevict,	MF_MSG_CLEAN_UNEVICTABLE_LRU,	me_pagecache_clean },
894

895 896
	{ lru|dirty,	lru|dirty,	MF_MSG_DIRTY_LRU,	me_pagecache_dirty },
	{ lru|dirty,	lru,		MF_MSG_CLEAN_LRU,	me_pagecache_clean },
897 898 899 900

	/*
	 * Catchall entry: must be at end.
	 */
901
	{ 0,		0,		MF_MSG_UNKNOWN,	me_unknown },
902 903
};

904 905 906 907 908 909 910 911 912
#undef dirty
#undef sc
#undef unevict
#undef mlock
#undef lru
#undef head
#undef slab
#undef reserved

913 914 915 916
/*
 * "Dirty/Clean" indication is not 100% accurate due to the possibility of
 * setting PG_dirty outside page lock. See also comment above set_page_dirty().
 */
917 918
static void action_result(unsigned long pfn, enum mf_action_page_type type,
			  enum mf_result result)
919
{
920 921
	trace_memory_failure_event(pfn, type, result);

922
	pr_err("Memory failure: %#lx: recovery action for %s: %s\n",
923
		pfn, action_page_types[type], action_name[result]);
924 925 926
}

static int page_action(struct page_state *ps, struct page *p,
927
			unsigned long pfn)
928 929
{
	int result;
930
	int count;
931 932

	result = ps->action(p, pfn);
933

934
	count = page_count(p) - 1;
935
	if (ps->action == me_swapcache_dirty && result == MF_DELAYED)
936
		count--;
937
	if (count > 0) {
938
		pr_err("Memory failure: %#lx: %s still referenced by %d users\n",
939
		       pfn, action_page_types[ps->type], count);
940
		result = MF_FAILED;
941
	}
942
	action_result(pfn, ps->type, result);
943 944 945 946 947 948

	/* Could do more checks here if page looks ok */
	/*
	 * Could adjust zone counters here to correct for the missing page.
	 */

949
	return (result == MF_RECOVERED || result == MF_DELAYED) ? 0 : -EBUSY;
950 951
}

952
/**
953
 * __get_hwpoison_page() - Get refcount for memory error handling:
954 955 956 957 958
 * @page:	raw error page (hit by memory error)
 *
 * Return: return 0 if failed to grab the refcount, otherwise true (some
 * non-zero value.)
 */
959
static int __get_hwpoison_page(struct page *page)
960 961 962
{
	struct page *head = compound_head(page);

963
	if (!PageHuge(head) && PageTransHuge(head)) {
964 965 966 967 968 969 970
		/*
		 * Non anonymous thp exists only in allocation/free time. We
		 * can't handle such a case correctly, so let's give it up.
		 * This should be better than triggering BUG_ON when kernel
		 * tries to touch the "partially handled" page.
		 */
		if (!PageAnon(head)) {
971
			pr_err("Memory failure: %#lx: non anonymous thp\n",
972 973 974
				page_to_pfn(page));
			return 0;
		}
975 976
	}

977 978 979 980
	if (get_page_unless_zero(head)) {
		if (head == compound_head(page))
			return 1;

981 982
		pr_info("Memory failure: %#lx cannot catch tail\n",
			page_to_pfn(page));
983 984 985 986
		put_page(head);
	}

	return 0;
987 988
}

989 990 991 992 993 994 995 996 997 998
/*
 * Safely get reference count of an arbitrary page.
 *
 * Returns 0 for a free page, 1 for an in-use page,
 * -EIO for a page-type we cannot handle and -EBUSY if we raced with an
 * allocation.
 * We only incremented refcount in case the page was already in-use and it
 * is a known type we can handle.
 */
static int get_any_page(struct page *p, unsigned long flags)
999
{
1000 1001
	int ret = 0, pass = 0;
	bool count_increased = false;
1002

1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017 1018 1019 1020 1021 1022 1023 1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034 1035
	if (flags & MF_COUNT_INCREASED)
		count_increased = true;

try_again:
	if (!count_increased && !__get_hwpoison_page(p)) {
		if (page_count(p)) {
			/* We raced with an allocation, retry. */
			if (pass++ < 3)
				goto try_again;
			ret = -EBUSY;
		} else if (!PageHuge(p) && !is_free_buddy_page(p)) {
			/* We raced with put_page, retry. */
			if (pass++ < 3)
				goto try_again;
			ret = -EIO;
		}
	} else {
		if (PageHuge(p) || PageLRU(p) || __PageMovable(p)) {
			ret = 1;
		} else {
			/*
			 * A page we cannot handle. Check whether we can turn
			 * it into something we can handle.
			 */
			if (pass++ < 3) {
				put_page(p);
				shake_page(p, 1);
				count_increased = false;
				goto try_again;
			}
			put_page(p);
			ret = -EIO;
		}
1036 1037 1038 1039 1040
	}

	return ret;
}

1041 1042 1043 1044 1045 1046 1047 1048 1049 1050 1051 1052 1053 1054 1055
static int get_hwpoison_page(struct page *p, unsigned long flags,
			     enum mf_flags ctxt)
{
	int ret;

	zone_pcp_disable(page_zone(p));
	if (ctxt == MF_SOFT_OFFLINE)
		ret = get_any_page(p, flags);
	else
		ret = __get_hwpoison_page(p);
	zone_pcp_enable(page_zone(p));

	return ret;
}

1056 1057 1058 1059
/*
 * Do all that is necessary to remove user space mappings. Unmap
 * the pages and send SIGBUS to the processes if the data was dirty.
 */
M
Minchan Kim 已提交
1060
static bool hwpoison_user_mappings(struct page *p, unsigned long pfn,
1061
				  int flags, struct page **hpagep)
1062
{
1063
	enum ttu_flags ttu = TTU_IGNORE_MLOCK;
1064 1065
	struct address_space *mapping;
	LIST_HEAD(tokill);
1066
	bool unmap_success = true;
1067
	int kill = 1, forcekill;
1068
	struct page *hpage = *hpagep;
1069
	bool mlocked = PageMlocked(hpage);
1070

1071 1072 1073 1074 1075
	/*
	 * Here we are interested only in user-mapped pages, so skip any
	 * other types of pages.
	 */
	if (PageReserved(p) || PageSlab(p))
M
Minchan Kim 已提交
1076
		return true;
1077
	if (!(PageLRU(hpage) || PageHuge(p)))
M
Minchan Kim 已提交
1078
		return true;
1079 1080 1081 1082 1083

	/*
	 * This check implies we don't kill processes if their pages
	 * are in the swap cache early. Those are always late kills.
	 */
1084
	if (!page_mapped(hpage))
M
Minchan Kim 已提交
1085
		return true;
W
Wu Fengguang 已提交
1086

1087
	if (PageKsm(p)) {
1088
		pr_err("Memory failure: %#lx: can't handle KSM pages.\n", pfn);
M
Minchan Kim 已提交
1089
		return false;
1090
	}
1091 1092

	if (PageSwapCache(p)) {
1093 1094
		pr_err("Memory failure: %#lx: keeping poisoned page in swap cache\n",
			pfn);
1095 1096 1097 1098 1099 1100
		ttu |= TTU_IGNORE_HWPOISON;
	}

	/*
	 * Propagate the dirty bit from PTEs to struct page first, because we
	 * need this to decide if we should kill or just drop the page.
1101 1102
	 * XXX: the dirty test could be racy: set_page_dirty() may not always
	 * be called inside page lock (it's recommended but not enforced).
1103
	 */
1104
	mapping = page_mapping(hpage);
1105
	if (!(flags & MF_MUST_KILL) && !PageDirty(hpage) && mapping &&
1106
	    mapping_can_writeback(mapping)) {
1107 1108
		if (page_mkclean(hpage)) {
			SetPageDirty(hpage);
1109 1110 1111
		} else {
			kill = 0;
			ttu |= TTU_IGNORE_HWPOISON;
1112
			pr_info("Memory failure: %#lx: corrupted page was clean: dropped without side effects\n",
1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125
				pfn);
		}
	}

	/*
	 * First collect all the processes that have the page
	 * mapped in dirty form.  This has to be done before try_to_unmap,
	 * because ttu takes the rmap data structures down.
	 *
	 * Error handling: We ignore errors here because
	 * there's nothing that can be done.
	 */
	if (kill)
1126
		collect_procs(hpage, &tokill, flags & MF_ACTION_REQUIRED);
1127

1128 1129 1130
	if (!PageHuge(hpage)) {
		unmap_success = try_to_unmap(hpage, ttu);
	} else {
1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141
		if (!PageAnon(hpage)) {
			/*
			 * For hugetlb pages in shared mappings, try_to_unmap
			 * could potentially call huge_pmd_unshare.  Because of
			 * this, take semaphore in write mode here and set
			 * TTU_RMAP_LOCKED to indicate we have taken the lock
			 * at this higer level.
			 */
			mapping = hugetlb_page_mapping_lock_write(hpage);
			if (mapping) {
				unmap_success = try_to_unmap(hpage,
1142
						     ttu|TTU_RMAP_LOCKED);
1143 1144 1145 1146 1147
				i_mmap_unlock_write(mapping);
			} else {
				pr_info("Memory failure: %#lx: could not lock mapping for mapped huge page\n", pfn);
				unmap_success = false;
			}
1148
		} else {
1149
			unmap_success = try_to_unmap(hpage, ttu);
1150 1151
		}
	}
M
Minchan Kim 已提交
1152
	if (!unmap_success)
1153
		pr_err("Memory failure: %#lx: failed to unmap page (mapcount=%d)\n",
1154
		       pfn, page_mapcount(hpage));
1155

1156 1157 1158 1159 1160 1161 1162
	/*
	 * try_to_unmap() might put mlocked page in lru cache, so call
	 * shake_page() again to ensure that it's flushed.
	 */
	if (mlocked)
		shake_page(hpage, 0);

1163 1164 1165 1166
	/*
	 * Now that the dirty bit has been propagated to the
	 * struct page and all unmaps done we can decide if
	 * killing is needed or not.  Only kill when the page
1167 1168
	 * was dirty or the process is not restartable,
	 * otherwise the tokill list is merely
1169 1170 1171 1172
	 * freed.  When there was a problem unmapping earlier
	 * use a more force-full uncatchable kill to prevent
	 * any accesses to the poisoned memory.
	 */
1173
	forcekill = PageDirty(hpage) || (flags & MF_MUST_KILL);
1174
	kill_procs(&tokill, forcekill, !unmap_success, pfn, flags);
W
Wu Fengguang 已提交
1175

M
Minchan Kim 已提交
1176
	return unmap_success;
1177 1178
}

1179 1180
static int identify_page_state(unsigned long pfn, struct page *p,
				unsigned long page_flags)
1181 1182
{
	struct page_state *ps;
1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201

	/*
	 * The first check uses the current page flags which may not have any
	 * relevant information. The second check with the saved page flags is
	 * carried out only if the first check can't determine the page status.
	 */
	for (ps = error_states;; ps++)
		if ((p->flags & ps->mask) == ps->res)
			break;

	page_flags |= (p->flags & (1UL << PG_dirty));

	if (!ps->mask)
		for (ps = error_states;; ps++)
			if ((page_flags & ps->mask) == ps->res)
				break;
	return page_action(ps, p, pfn);
}

1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220
static int try_to_split_thp_page(struct page *page, const char *msg)
{
	lock_page(page);
	if (!PageAnon(page) || unlikely(split_huge_page(page))) {
		unsigned long pfn = page_to_pfn(page);

		unlock_page(page);
		if (!PageAnon(page))
			pr_info("%s: %#lx: non anonymous thp\n", msg, pfn);
		else
			pr_info("%s: %#lx: thp split failed\n", msg, pfn);
		put_page(page);
		return -EBUSY;
	}
	unlock_page(page);

	return 0;
}

1221
static int memory_failure_hugetlb(unsigned long pfn, int flags)
1222
{
1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235
	struct page *p = pfn_to_page(pfn);
	struct page *head = compound_head(p);
	int res;
	unsigned long page_flags;

	if (TestSetPageHWPoison(head)) {
		pr_err("Memory failure: %#lx: already hardware poisoned\n",
		       pfn);
		return 0;
	}

	num_poisoned_pages_inc();

1236
	if (!(flags & MF_COUNT_INCREASED) && !get_hwpoison_page(p, flags, 0)) {
1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249
		/*
		 * Check "filter hit" and "race with other subpage."
		 */
		lock_page(head);
		if (PageHWPoison(head)) {
			if ((hwpoison_filter(p) && TestClearPageHWPoison(p))
			    || (p != head && TestSetPageHWPoison(head))) {
				num_poisoned_pages_dec();
				unlock_page(head);
				return 0;
			}
		}
		unlock_page(head);
1250 1251 1252 1253 1254 1255 1256
		res = MF_FAILED;
		if (!dissolve_free_huge_page(p) && take_page_off_buddy(p)) {
			page_ref_inc(p);
			res = MF_RECOVERED;
		}
		action_result(pfn, MF_MSG_FREE_HUGE, res);
		return res == MF_RECOVERED ? 0 : -EBUSY;
1257 1258 1259 1260 1261 1262 1263 1264 1265
	}

	lock_page(head);
	page_flags = head->flags;

	if (!PageHWPoison(head)) {
		pr_err("Memory failure: %#lx: just unpoisoned\n", pfn);
		num_poisoned_pages_dec();
		unlock_page(head);
1266
		put_page(head);
1267 1268 1269
		return 0;
	}

1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284
	/*
	 * TODO: hwpoison for pud-sized hugetlb doesn't work right now, so
	 * simply disable it. In order to make it work properly, we need
	 * make sure that:
	 *  - conversion of a pud that maps an error hugetlb into hwpoison
	 *    entry properly works, and
	 *  - other mm code walking over page table is aware of pud-aligned
	 *    hwpoison entries.
	 */
	if (huge_page_size(page_hstate(head)) > PMD_SIZE) {
		action_result(pfn, MF_MSG_NON_PMD_HUGE, MF_IGNORED);
		res = -EBUSY;
		goto out;
	}

1285
	if (!hwpoison_user_mappings(p, pfn, flags, &head)) {
1286 1287 1288 1289 1290
		action_result(pfn, MF_MSG_UNMAP_FAILED, MF_IGNORED);
		res = -EBUSY;
		goto out;
	}

1291
	res = identify_page_state(pfn, p, page_flags);
1292 1293 1294 1295 1296
out:
	unlock_page(head);
	return res;
}

1297 1298 1299 1300 1301 1302 1303 1304 1305 1306
static int memory_failure_dev_pagemap(unsigned long pfn, int flags,
		struct dev_pagemap *pgmap)
{
	struct page *page = pfn_to_page(pfn);
	const bool unmap_success = true;
	unsigned long size = 0;
	struct to_kill *tk;
	LIST_HEAD(tokill);
	int rc = -EBUSY;
	loff_t start;
1307
	dax_entry_t cookie;
1308

1309 1310 1311 1312 1313 1314
	if (flags & MF_COUNT_INCREASED)
		/*
		 * Drop the extra refcount in case we come from madvise().
		 */
		put_page(page);

1315 1316 1317 1318 1319 1320
	/* device metadata space is not recoverable */
	if (!pgmap_pfn_valid(pgmap, pfn)) {
		rc = -ENXIO;
		goto out;
	}

1321 1322 1323 1324 1325 1326 1327
	/*
	 * Prevent the inode from being freed while we are interrogating
	 * the address_space, typically this would be handled by
	 * lock_page(), but dax pages do not use the page lock. This
	 * also prevents changes to the mapping of this pfn until
	 * poison signaling is complete.
	 */
1328 1329
	cookie = dax_lock_page(page);
	if (!cookie)
1330 1331 1332 1333 1334 1335 1336
		goto out;

	if (hwpoison_filter(page)) {
		rc = 0;
		goto unlock;
	}

1337
	if (pgmap->type == MEMORY_DEVICE_PRIVATE) {
1338 1339 1340 1341 1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367 1368 1369 1370
		/*
		 * TODO: Handle HMM pages which may need coordination
		 * with device-side memory.
		 */
		goto unlock;
	}

	/*
	 * Use this flag as an indication that the dax page has been
	 * remapped UC to prevent speculative consumption of poison.
	 */
	SetPageHWPoison(page);

	/*
	 * Unlike System-RAM there is no possibility to swap in a
	 * different physical page at a given virtual address, so all
	 * userspace consumption of ZONE_DEVICE memory necessitates
	 * SIGBUS (i.e. MF_MUST_KILL)
	 */
	flags |= MF_ACTION_REQUIRED | MF_MUST_KILL;
	collect_procs(page, &tokill, flags & MF_ACTION_REQUIRED);

	list_for_each_entry(tk, &tokill, nd)
		if (tk->size_shift)
			size = max(size, 1UL << tk->size_shift);
	if (size) {
		/*
		 * Unmap the largest mapping to avoid breaking up
		 * device-dax mappings which are constant size. The
		 * actual size of the mapping being torn down is
		 * communicated in siginfo, see kill_proc()
		 */
		start = (page->index << PAGE_SHIFT) & ~(size - 1);
1371
		unmap_mapping_range(page->mapping, start, size, 0);
1372 1373 1374 1375
	}
	kill_procs(&tokill, flags & MF_MUST_KILL, !unmap_success, pfn, flags);
	rc = 0;
unlock:
1376
	dax_unlock_page(page, cookie);
1377 1378 1379 1380 1381 1382 1383
out:
	/* drop pgmap ref acquired in caller */
	put_dev_pagemap(pgmap);
	action_result(pfn, MF_MSG_DAX, rc ? MF_FAILED : MF_RECOVERED);
	return rc;
}

1384 1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399 1400
/**
 * memory_failure - Handle memory failure of a page.
 * @pfn: Page Number of the corrupted page
 * @flags: fine tune action taken
 *
 * This function is called by the low level machine check code
 * of an architecture when it detects hardware memory corruption
 * of a page. It tries its best to recover, which includes
 * dropping pages, killing processes etc.
 *
 * The function is primarily of use for corruptions that
 * happen outside the current execution context (e.g. when
 * detected by a background scrubber)
 *
 * Must run in process context (e.g. a work queue) with interrupts
 * enabled and no spinlocks hold.
 */
1401
int memory_failure(unsigned long pfn, int flags)
1402 1403
{
	struct page *p;
1404
	struct page *hpage;
1405
	struct page *orig_head;
1406
	struct dev_pagemap *pgmap;
1407
	int res;
1408
	unsigned long page_flags;
1409
	bool retry = true;
1410 1411

	if (!sysctl_memory_failure_recovery)
1412
		panic("Memory failure on page %lx", pfn);
1413

1414 1415 1416 1417 1418 1419 1420 1421
	p = pfn_to_online_page(pfn);
	if (!p) {
		if (pfn_valid(pfn)) {
			pgmap = get_dev_pagemap(pfn, NULL);
			if (pgmap)
				return memory_failure_dev_pagemap(pfn, flags,
								  pgmap);
		}
1422 1423
		pr_err("Memory failure: %#lx: memory outside kernel control\n",
			pfn);
1424
		return -ENXIO;
1425 1426
	}

1427
try_again:
1428
	if (PageHuge(p))
1429
		return memory_failure_hugetlb(pfn, flags);
1430
	if (TestSetPageHWPoison(p)) {
1431 1432
		pr_err("Memory failure: %#lx: already hardware poisoned\n",
			pfn);
1433 1434 1435
		return 0;
	}

1436
	orig_head = hpage = compound_head(p);
1437
	num_poisoned_pages_inc();
1438 1439 1440 1441 1442

	/*
	 * We need/can do nothing about count=0 pages.
	 * 1) it's a free page, and therefore in safe hand:
	 *    prep_new_page() will be the gate keeper.
1443
	 * 2) it's part of a non-compound high order page.
1444 1445 1446 1447
	 *    Implies some kernel user: cannot stop them from
	 *    R/W the page; let's pray that the page has been
	 *    used and will be freed some time later.
	 * In fact it's dangerous to directly bump up page count from 0,
1448
	 * that may make page_ref_freeze()/page_ref_unfreeze() mismatch.
1449
	 */
1450
	if (!(flags & MF_COUNT_INCREASED) && !get_hwpoison_page(p, flags, 0)) {
1451
		if (is_free_buddy_page(p)) {
1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466
			if (take_page_off_buddy(p)) {
				page_ref_inc(p);
				res = MF_RECOVERED;
			} else {
				/* We lost the race, try again */
				if (retry) {
					ClearPageHWPoison(p);
					num_poisoned_pages_dec();
					retry = false;
					goto try_again;
				}
				res = MF_FAILED;
			}
			action_result(pfn, MF_MSG_BUDDY, res);
			return res == MF_RECOVERED ? 0 : -EBUSY;
1467
		} else {
1468
			action_result(pfn, MF_MSG_KERNEL_HIGH_ORDER, MF_IGNORED);
1469 1470
			return -EBUSY;
		}
1471 1472
	}

1473
	if (PageTransHuge(hpage)) {
1474 1475
		if (try_to_split_thp_page(p, "Memory Failure") < 0) {
			action_result(pfn, MF_MSG_UNSPLIT_THP, MF_IGNORED);
1476
			return -EBUSY;
1477
		}
1478 1479 1480
		VM_BUG_ON_PAGE(!page_count(p), p);
	}

1481 1482 1483
	/*
	 * We ignore non-LRU pages for good reasons.
	 * - PG_locked is only well defined for LRU pages and a few others
1484
	 * - to avoid races with __SetPageLocked()
1485 1486 1487 1488
	 * - to avoid races with __SetPageSlab*() (and more non-atomic ops)
	 * The check (unnecessarily) ignores LRU pages being isolated and
	 * walked by the page reclaim code, however that's not a big loss.
	 */
1489
	shake_page(p, 0);
1490

1491
	lock_page(p);
W
Wu Fengguang 已提交
1492

1493 1494 1495 1496
	/*
	 * The page could have changed compound pages during the locking.
	 * If this happens just bail out.
	 */
1497
	if (PageCompound(p) && compound_head(p) != orig_head) {
1498
		action_result(pfn, MF_MSG_DIFFERENT_COMPOUND, MF_IGNORED);
1499 1500 1501 1502
		res = -EBUSY;
		goto out;
	}

1503 1504 1505 1506 1507 1508 1509
	/*
	 * We use page flags to determine what action should be taken, but
	 * the flags can be modified by the error containment action.  One
	 * example is an mlocked page, where PG_mlocked is cleared by
	 * page_remove_rmap() in try_to_unmap_one(). So to determine page status
	 * correctly, we save a copy of the page flags at this time.
	 */
1510
	page_flags = p->flags;
1511

W
Wu Fengguang 已提交
1512 1513 1514 1515
	/*
	 * unpoison always clear PG_hwpoison inside page lock
	 */
	if (!PageHWPoison(p)) {
1516
		pr_err("Memory failure: %#lx: just unpoisoned\n", pfn);
1517
		num_poisoned_pages_dec();
1518
		unlock_page(p);
1519
		put_page(p);
1520
		return 0;
W
Wu Fengguang 已提交
1521
	}
W
Wu Fengguang 已提交
1522 1523
	if (hwpoison_filter(p)) {
		if (TestClearPageHWPoison(p))
1524
			num_poisoned_pages_dec();
1525
		unlock_page(p);
1526
		put_page(p);
W
Wu Fengguang 已提交
1527 1528
		return 0;
	}
W
Wu Fengguang 已提交
1529

1530
	if (!PageTransTail(p) && !PageLRU(p))
1531 1532
		goto identify_page_state;

1533 1534 1535 1536
	/*
	 * It's very difficult to mess with pages currently under IO
	 * and in many cases impossible, so we just avoid it here.
	 */
1537 1538 1539 1540
	wait_on_page_writeback(p);

	/*
	 * Now take care of user space mappings.
1541
	 * Abort on fail: __delete_from_page_cache() assumes unmapped page.
1542
	 */
1543
	if (!hwpoison_user_mappings(p, pfn, flags, &p)) {
1544
		action_result(pfn, MF_MSG_UNMAP_FAILED, MF_IGNORED);
W
Wu Fengguang 已提交
1545 1546 1547
		res = -EBUSY;
		goto out;
	}
1548 1549 1550 1551

	/*
	 * Torn down by someone else?
	 */
1552
	if (PageLRU(p) && !PageSwapCache(p) && p->mapping == NULL) {
1553
		action_result(pfn, MF_MSG_TRUNCATED_LRU, MF_IGNORED);
1554
		res = -EBUSY;
1555 1556 1557
		goto out;
	}

1558
identify_page_state:
1559
	res = identify_page_state(pfn, p, page_flags);
1560
out:
1561
	unlock_page(p);
1562 1563
	return res;
}
1564
EXPORT_SYMBOL_GPL(memory_failure);
W
Wu Fengguang 已提交
1565

1566 1567 1568 1569 1570 1571 1572 1573 1574 1575 1576 1577 1578 1579 1580 1581 1582 1583 1584 1585 1586 1587 1588 1589 1590 1591 1592 1593 1594 1595 1596 1597 1598
#define MEMORY_FAILURE_FIFO_ORDER	4
#define MEMORY_FAILURE_FIFO_SIZE	(1 << MEMORY_FAILURE_FIFO_ORDER)

struct memory_failure_entry {
	unsigned long pfn;
	int flags;
};

struct memory_failure_cpu {
	DECLARE_KFIFO(fifo, struct memory_failure_entry,
		      MEMORY_FAILURE_FIFO_SIZE);
	spinlock_t lock;
	struct work_struct work;
};

static DEFINE_PER_CPU(struct memory_failure_cpu, memory_failure_cpu);

/**
 * memory_failure_queue - Schedule handling memory failure of a page.
 * @pfn: Page Number of the corrupted page
 * @flags: Flags for memory failure handling
 *
 * This function is called by the low level hardware error handler
 * when it detects hardware memory corruption of a page. It schedules
 * the recovering of error page, including dropping pages, killing
 * processes etc.
 *
 * The function is primarily of use for corruptions that
 * happen outside the current execution context (e.g. when
 * detected by a background scrubber)
 *
 * Can run in IRQ context.
 */
1599
void memory_failure_queue(unsigned long pfn, int flags)
1600 1601 1602 1603 1604 1605 1606 1607 1608 1609
{
	struct memory_failure_cpu *mf_cpu;
	unsigned long proc_flags;
	struct memory_failure_entry entry = {
		.pfn =		pfn,
		.flags =	flags,
	};

	mf_cpu = &get_cpu_var(memory_failure_cpu);
	spin_lock_irqsave(&mf_cpu->lock, proc_flags);
S
Stefani Seibold 已提交
1610
	if (kfifo_put(&mf_cpu->fifo, entry))
1611 1612
		schedule_work_on(smp_processor_id(), &mf_cpu->work);
	else
J
Joe Perches 已提交
1613
		pr_err("Memory failure: buffer overflow when queuing memory failure at %#lx\n",
1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626
		       pfn);
	spin_unlock_irqrestore(&mf_cpu->lock, proc_flags);
	put_cpu_var(memory_failure_cpu);
}
EXPORT_SYMBOL_GPL(memory_failure_queue);

static void memory_failure_work_func(struct work_struct *work)
{
	struct memory_failure_cpu *mf_cpu;
	struct memory_failure_entry entry = { 0, };
	unsigned long proc_flags;
	int gotten;

1627
	mf_cpu = container_of(work, struct memory_failure_cpu, work);
1628 1629 1630 1631 1632 1633
	for (;;) {
		spin_lock_irqsave(&mf_cpu->lock, proc_flags);
		gotten = kfifo_get(&mf_cpu->fifo, &entry);
		spin_unlock_irqrestore(&mf_cpu->lock, proc_flags);
		if (!gotten)
			break;
1634
		if (entry.flags & MF_SOFT_OFFLINE)
1635
			soft_offline_page(entry.pfn, entry.flags);
1636
		else
1637
			memory_failure(entry.pfn, entry.flags);
1638 1639 1640
	}
}

1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653
/*
 * Process memory_failure work queued on the specified CPU.
 * Used to avoid return-to-userspace racing with the memory_failure workqueue.
 */
void memory_failure_queue_kick(int cpu)
{
	struct memory_failure_cpu *mf_cpu;

	mf_cpu = &per_cpu(memory_failure_cpu, cpu);
	cancel_work_sync(&mf_cpu->work);
	memory_failure_work_func(&mf_cpu->work);
}

1654 1655 1656 1657 1658 1659 1660 1661 1662 1663 1664 1665 1666 1667 1668 1669
static int __init memory_failure_init(void)
{
	struct memory_failure_cpu *mf_cpu;
	int cpu;

	for_each_possible_cpu(cpu) {
		mf_cpu = &per_cpu(memory_failure_cpu, cpu);
		spin_lock_init(&mf_cpu->lock);
		INIT_KFIFO(mf_cpu->fifo);
		INIT_WORK(&mf_cpu->work, memory_failure_work_func);
	}

	return 0;
}
core_initcall(memory_failure_init);

1670 1671 1672 1673 1674 1675
#define unpoison_pr_info(fmt, pfn, rs)			\
({							\
	if (__ratelimit(rs))				\
		pr_info(fmt, pfn);			\
})

W
Wu Fengguang 已提交
1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692
/**
 * unpoison_memory - Unpoison a previously poisoned page
 * @pfn: Page number of the to be unpoisoned page
 *
 * Software-unpoison a page that has been poisoned by
 * memory_failure() earlier.
 *
 * This is only done on the software-level, so it only works
 * for linux injected failures, not real hardware failures
 *
 * Returns 0 for success, otherwise -errno.
 */
int unpoison_memory(unsigned long pfn)
{
	struct page *page;
	struct page *p;
	int freeit = 0;
1693
	unsigned long flags = 0;
1694 1695
	static DEFINE_RATELIMIT_STATE(unpoison_rs, DEFAULT_RATELIMIT_INTERVAL,
					DEFAULT_RATELIMIT_BURST);
W
Wu Fengguang 已提交
1696 1697 1698 1699 1700 1701 1702 1703

	if (!pfn_valid(pfn))
		return -ENXIO;

	p = pfn_to_page(pfn);
	page = compound_head(p);

	if (!PageHWPoison(p)) {
1704
		unpoison_pr_info("Unpoison: Page was already unpoisoned %#lx\n",
1705
				 pfn, &unpoison_rs);
W
Wu Fengguang 已提交
1706 1707 1708
		return 0;
	}

1709
	if (page_count(page) > 1) {
1710
		unpoison_pr_info("Unpoison: Someone grabs the hwpoison page %#lx\n",
1711
				 pfn, &unpoison_rs);
1712 1713 1714 1715
		return 0;
	}

	if (page_mapped(page)) {
1716
		unpoison_pr_info("Unpoison: Someone maps the hwpoison page %#lx\n",
1717
				 pfn, &unpoison_rs);
1718 1719 1720 1721
		return 0;
	}

	if (page_mapping(page)) {
1722
		unpoison_pr_info("Unpoison: the hwpoison page has non-NULL mapping %#lx\n",
1723
				 pfn, &unpoison_rs);
1724 1725 1726
		return 0;
	}

1727 1728 1729 1730 1731
	/*
	 * unpoison_memory() can encounter thp only when the thp is being
	 * worked by memory_failure() and the page lock is not held yet.
	 * In such case, we yield to memory_failure() and make unpoison fail.
	 */
1732
	if (!PageHuge(page) && PageTransHuge(page)) {
1733
		unpoison_pr_info("Unpoison: Memory failure is now running on %#lx\n",
1734
				 pfn, &unpoison_rs);
1735
		return 0;
1736 1737
	}

1738
	if (!get_hwpoison_page(p, flags, 0)) {
W
Wu Fengguang 已提交
1739
		if (TestClearPageHWPoison(p))
1740
			num_poisoned_pages_dec();
1741
		unpoison_pr_info("Unpoison: Software-unpoisoned free page %#lx\n",
1742
				 pfn, &unpoison_rs);
W
Wu Fengguang 已提交
1743 1744 1745
		return 0;
	}

J
Jens Axboe 已提交
1746
	lock_page(page);
W
Wu Fengguang 已提交
1747 1748 1749 1750 1751 1752
	/*
	 * This test is racy because PG_hwpoison is set outside of page lock.
	 * That's acceptable because that won't trigger kernel panic. Instead,
	 * the PG_hwpoison page will be caught and isolated on the entrance to
	 * the free buddy page pool.
	 */
1753
	if (TestClearPageHWPoison(page)) {
1754
		unpoison_pr_info("Unpoison: Software-unpoisoned page %#lx\n",
1755
				 pfn, &unpoison_rs);
1756
		num_poisoned_pages_dec();
W
Wu Fengguang 已提交
1757 1758 1759 1760
		freeit = 1;
	}
	unlock_page(page);

1761
	put_page(page);
1762
	if (freeit && !(pfn == my_zero_pfn(0) && page_count(p) == 1))
1763
		put_page(page);
W
Wu Fengguang 已提交
1764 1765 1766 1767

	return 0;
}
EXPORT_SYMBOL(unpoison_memory);
1768

1769
static bool isolate_page(struct page *page, struct list_head *pagelist)
1770
{
1771 1772
	bool isolated = false;
	bool lru = PageLRU(page);
1773

1774 1775 1776 1777 1778 1779 1780 1781 1782 1783
	if (PageHuge(page)) {
		isolated = isolate_huge_page(page, pagelist);
	} else {
		if (lru)
			isolated = !isolate_lru_page(page);
		else
			isolated = !isolate_movable_page(page, ISOLATE_UNEVICTABLE);

		if (isolated)
			list_add(&page->lru, pagelist);
1784
	}
1785

1786 1787 1788 1789
	if (isolated && lru)
		inc_node_page_state(page, NR_ISOLATED_ANON +
				    page_is_file_lru(page));

1790
	/*
1791 1792 1793 1794 1795
	 * If we succeed to isolate the page, we grabbed another refcount on
	 * the page, so we can safely drop the one we got from get_any_pages().
	 * If we failed to isolate the page, it means that we cannot go further
	 * and we will return an error, so drop the reference we got from
	 * get_any_pages() as well.
1796
	 */
1797 1798
	put_page(page);
	return isolated;
1799 1800
}

1801 1802 1803 1804 1805 1806
/*
 * __soft_offline_page handles hugetlb-pages and non-hugetlb pages.
 * If the page is a non-dirty unmapped page-cache page, it simply invalidates.
 * If the page is mapped, it migrates the contents over.
 */
static int __soft_offline_page(struct page *page)
1807
{
1808
	int ret = 0;
1809
	unsigned long pfn = page_to_pfn(page);
1810 1811 1812 1813
	struct page *hpage = compound_head(page);
	char const *msg_page[] = {"page", "hugepage"};
	bool huge = PageHuge(page);
	LIST_HEAD(pagelist);
1814 1815 1816 1817
	struct migration_target_control mtc = {
		.nid = NUMA_NO_NODE,
		.gfp_mask = GFP_USER | __GFP_MOVABLE | __GFP_RETRY_MAYFAIL,
	};
1818 1819

	/*
1820 1821 1822 1823
	 * Check PageHWPoison again inside page lock because PageHWPoison
	 * is set by memory_failure() outside page lock. Note that
	 * memory_failure() also double-checks PageHWPoison inside page lock,
	 * so there's no race between soft_offline_page() and memory_failure().
1824
	 */
1825
	lock_page(page);
1826 1827
	if (!PageHuge(page))
		wait_on_page_writeback(page);
1828 1829
	if (PageHWPoison(page)) {
		unlock_page(page);
1830
		put_page(page);
1831
		pr_info("soft offline: %#lx page already poisoned\n", pfn);
1832
		return 0;
1833
	}
1834 1835 1836 1837 1838 1839 1840

	if (!PageHuge(page))
		/*
		 * Try to invalidate first. This should work for
		 * non dirty unmapped page cache pages.
		 */
		ret = invalidate_inode_page(page);
1841
	unlock_page(page);
1842

1843 1844 1845 1846
	/*
	 * RED-PEN would be better to keep it isolated here, but we
	 * would need to fix isolation locking first.
	 */
1847
	if (ret) {
1848
		pr_info("soft_offline: %#lx: invalidated\n", pfn);
1849
		page_handle_poison(page, false, true);
1850
		return 0;
1851 1852
	}

1853
	if (isolate_page(hpage, &pagelist)) {
1854 1855
		ret = migrate_pages(&pagelist, alloc_migration_target, NULL,
			(unsigned long)&mtc, MIGRATE_SYNC, MR_MEMORY_FAILURE);
1856
		if (!ret) {
1857 1858 1859 1860
			bool release = !huge;

			if (!page_handle_poison(page, huge, release))
				ret = -EBUSY;
1861
		} else {
1862 1863
			if (!list_empty(&pagelist))
				putback_movable_pages(&pagelist);
1864

1865 1866
			pr_info("soft offline: %#lx: %s migration failed %d, type %lx (%pGp)\n",
				pfn, msg_page[huge], ret, page->flags, &page->flags);
1867
			if (ret > 0)
1868
				ret = -EBUSY;
1869 1870
		}
	} else {
1871 1872
		pr_info("soft offline: %#lx: %s isolation failed, page count %d, type %lx (%pGp)\n",
			pfn, msg_page[huge], page_count(page), page->flags, &page->flags);
1873
		ret = -EBUSY;
1874 1875 1876
	}
	return ret;
}
1877

1878
static int soft_offline_in_use_page(struct page *page)
1879 1880 1881
{
	struct page *hpage = compound_head(page);

1882 1883
	if (!PageHuge(page) && PageTransHuge(hpage))
		if (try_to_split_thp_page(page, "soft offline") < 0)
1884
			return -EBUSY;
1885
	return __soft_offline_page(page);
1886 1887
}

1888
static int soft_offline_free_page(struct page *page)
1889
{
1890
	int rc = 0;
1891

1892 1893
	if (!page_handle_poison(page, true, false))
		rc = -EBUSY;
1894

1895
	return rc;
1896 1897
}

1898 1899 1900 1901 1902 1903
static void put_ref_page(struct page *page)
{
	if (page)
		put_page(page);
}

1904 1905
/**
 * soft_offline_page - Soft offline a page.
1906
 * @pfn: pfn to soft-offline
1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925
 * @flags: flags. Same as memory_failure().
 *
 * Returns 0 on success, otherwise negated errno.
 *
 * Soft offline a page, by migration or invalidation,
 * without killing anything. This is for the case when
 * a page is not corrupted yet (so it's still valid to access),
 * but has had a number of corrected errors and is better taken
 * out.
 *
 * The actual policy on when to do that is maintained by
 * user space.
 *
 * This should never impact any application or cause data loss,
 * however it might take some time.
 *
 * This is not a 100% solution for all memory, but tries to be
 * ``good enough'' for the majority of memory.
 */
1926
int soft_offline_page(unsigned long pfn, int flags)
1927 1928
{
	int ret;
1929
	bool try_again = true;
1930 1931 1932
	struct page *page, *ref_page = NULL;

	WARN_ON_ONCE(!pfn_valid(pfn) && (flags & MF_COUNT_INCREASED));
1933

1934 1935
	if (!pfn_valid(pfn))
		return -ENXIO;
1936 1937 1938
	if (flags & MF_COUNT_INCREASED)
		ref_page = pfn_to_page(pfn);

1939 1940
	/* Only online pages can be soft-offlined (esp., not ZONE_DEVICE). */
	page = pfn_to_online_page(pfn);
1941 1942
	if (!page) {
		put_ref_page(ref_page);
1943
		return -EIO;
1944
	}
1945

1946
	if (PageHWPoison(page)) {
1947
		pr_info("%s: %#lx page already poisoned\n", __func__, pfn);
1948
		put_ref_page(ref_page);
1949
		return 0;
1950 1951
	}

1952
retry:
1953
	get_online_mems();
1954
	ret = get_hwpoison_page(page, flags, MF_SOFT_OFFLINE);
1955
	put_online_mems();
1956

1957
	if (ret > 0) {
1958
		ret = soft_offline_in_use_page(page);
1959
	} else if (ret == 0) {
1960 1961 1962 1963
		if (soft_offline_free_page(page) && try_again) {
			try_again = false;
			goto retry;
		}
1964
	} else if (ret == -EIO) {
1965
		pr_info("%s: %#lx: unknown page type: %lx (%pGp)\n",
1966 1967
			 __func__, pfn, page->flags, &page->flags);
	}
1968

1969 1970
	return ret;
}