kmemleak.c 59.2 KB
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// SPDX-License-Identifier: GPL-2.0-only
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/*
 * mm/kmemleak.c
 *
 * Copyright (C) 2008 ARM Limited
 * Written by Catalin Marinas <catalin.marinas@arm.com>
 *
 * For more information on the algorithm and kmemleak usage, please see
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 * Documentation/dev-tools/kmemleak.rst.
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 *
 * Notes on locking
 * ----------------
 *
 * The following locks and mutexes are used by kmemleak:
 *
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 * - kmemleak_lock (raw_spinlock_t): protects the object_list modifications and
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 *   accesses to the object_tree_root (or object_phys_tree_root). The
 *   object_list is the main list holding the metadata (struct kmemleak_object)
 *   for the allocated memory blocks. The object_tree_root and object_phys_tree_root
 *   are red black trees used to look-up metadata based on a pointer to the
 *   corresponding memory block. The object_phys_tree_root is for objects
 *   allocated with physical address. The kmemleak_object structures are
 *   added to the object_list and object_tree_root (or object_phys_tree_root)
 *   in the create_object() function called from the kmemleak_alloc() (or
 *   kmemleak_alloc_phys()) callback and removed in delete_object() called from
 *   the kmemleak_free() callback
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 * - kmemleak_object.lock (raw_spinlock_t): protects a kmemleak_object.
 *   Accesses to the metadata (e.g. count) are protected by this lock. Note
 *   that some members of this structure may be protected by other means
 *   (atomic or kmemleak_lock). This lock is also held when scanning the
 *   corresponding memory block to avoid the kernel freeing it via the
 *   kmemleak_free() callback. This is less heavyweight than holding a global
 *   lock like kmemleak_lock during scanning.
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 * - scan_mutex (mutex): ensures that only one thread may scan the memory for
 *   unreferenced objects at a time. The gray_list contains the objects which
 *   are already referenced or marked as false positives and need to be
 *   scanned. This list is only modified during a scanning episode when the
 *   scan_mutex is held. At the end of a scan, the gray_list is always empty.
 *   Note that the kmemleak_object.use_count is incremented when an object is
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 *   added to the gray_list and therefore cannot be freed. This mutex also
 *   prevents multiple users of the "kmemleak" debugfs file together with
 *   modifications to the memory scanning parameters including the scan_thread
 *   pointer
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 *
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 * Locks and mutexes are acquired/nested in the following order:
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 *
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 *   scan_mutex [-> object->lock] -> kmemleak_lock -> other_object->lock (SINGLE_DEPTH_NESTING)
 *
 * No kmemleak_lock and object->lock nesting is allowed outside scan_mutex
 * regions.
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 *
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 * The kmemleak_object structures have a use_count incremented or decremented
 * using the get_object()/put_object() functions. When the use_count becomes
 * 0, this count can no longer be incremented and put_object() schedules the
 * kmemleak_object freeing via an RCU callback. All calls to the get_object()
 * function must be protected by rcu_read_lock() to avoid accessing a freed
 * structure.
 */

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#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt

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#include <linux/init.h>
#include <linux/kernel.h>
#include <linux/list.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/sched/task_stack.h>
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#include <linux/jiffies.h>
#include <linux/delay.h>
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#include <linux/export.h>
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#include <linux/kthread.h>
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#include <linux/rbtree.h>
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#include <linux/fs.h>
#include <linux/debugfs.h>
#include <linux/seq_file.h>
#include <linux/cpumask.h>
#include <linux/spinlock.h>
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#include <linux/module.h>
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#include <linux/mutex.h>
#include <linux/rcupdate.h>
#include <linux/stacktrace.h>
#include <linux/cache.h>
#include <linux/percpu.h>
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#include <linux/memblock.h>
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#include <linux/pfn.h>
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#include <linux/mmzone.h>
#include <linux/slab.h>
#include <linux/thread_info.h>
#include <linux/err.h>
#include <linux/uaccess.h>
#include <linux/string.h>
#include <linux/nodemask.h>
#include <linux/mm.h>
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#include <linux/workqueue.h>
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#include <linux/crc32.h>
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#include <asm/sections.h>
#include <asm/processor.h>
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#include <linux/atomic.h>
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#include <linux/kasan.h>
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#include <linux/kfence.h>
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#include <linux/kmemleak.h>
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#include <linux/memory_hotplug.h>
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/*
 * Kmemleak configuration and common defines.
 */
#define MAX_TRACE		16	/* stack trace length */
#define MSECS_MIN_AGE		5000	/* minimum object age for reporting */
#define SECS_FIRST_SCAN		60	/* delay before the first scan */
#define SECS_SCAN_WAIT		600	/* subsequent auto scanning delay */
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#define MAX_SCAN_SIZE		4096	/* maximum size of a scanned block */
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#define BYTES_PER_POINTER	sizeof(void *)

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/* GFP bitmask for kmemleak internal allocations */
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#define gfp_kmemleak_mask(gfp)	(((gfp) & (GFP_KERNEL | GFP_ATOMIC | \
					   __GFP_NOLOCKDEP)) | \
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				 __GFP_NORETRY | __GFP_NOMEMALLOC | \
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				 __GFP_NOWARN)
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/* scanning area inside a memory block */
struct kmemleak_scan_area {
	struct hlist_node node;
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	unsigned long start;
	size_t size;
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};

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#define KMEMLEAK_GREY	0
#define KMEMLEAK_BLACK	-1

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/*
 * Structure holding the metadata for each allocated memory block.
 * Modifications to such objects should be made while holding the
 * object->lock. Insertions or deletions from object_list, gray_list or
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 * rb_node are already protected by the corresponding locks or mutex (see
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 * the notes on locking above). These objects are reference-counted
 * (use_count) and freed using the RCU mechanism.
 */
struct kmemleak_object {
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	raw_spinlock_t lock;
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	unsigned int flags;		/* object status flags */
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	struct list_head object_list;
	struct list_head gray_list;
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	struct rb_node rb_node;
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	struct rcu_head rcu;		/* object_list lockless traversal */
	/* object usage count; object freed when use_count == 0 */
	atomic_t use_count;
	unsigned long pointer;
	size_t size;
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	/* pass surplus references to this pointer */
	unsigned long excess_ref;
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	/* minimum number of a pointers found before it is considered leak */
	int min_count;
	/* the total number of pointers found pointing to this object */
	int count;
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	/* checksum for detecting modified objects */
	u32 checksum;
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	/* memory ranges to be scanned inside an object (empty for all) */
	struct hlist_head area_list;
	unsigned long trace[MAX_TRACE];
	unsigned int trace_len;
	unsigned long jiffies;		/* creation timestamp */
	pid_t pid;			/* pid of the current task */
	char comm[TASK_COMM_LEN];	/* executable name */
};

/* flag representing the memory block allocation status */
#define OBJECT_ALLOCATED	(1 << 0)
/* flag set after the first reporting of an unreference object */
#define OBJECT_REPORTED		(1 << 1)
/* flag set to not scan the object */
#define OBJECT_NO_SCAN		(1 << 2)
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/* flag set to fully scan the object when scan_area allocation failed */
#define OBJECT_FULL_SCAN	(1 << 3)
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/* flag set for object allocated with physical address */
#define OBJECT_PHYS		(1 << 4)
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#define HEX_PREFIX		"    "
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/* number of bytes to print per line; must be 16 or 32 */
#define HEX_ROW_SIZE		16
/* number of bytes to print at a time (1, 2, 4, 8) */
#define HEX_GROUP_SIZE		1
/* include ASCII after the hex output */
#define HEX_ASCII		1
/* max number of lines to be printed */
#define HEX_MAX_LINES		2

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/* the list of all allocated objects */
static LIST_HEAD(object_list);
/* the list of gray-colored objects (see color_gray comment below) */
static LIST_HEAD(gray_list);
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/* memory pool allocation */
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static struct kmemleak_object mem_pool[CONFIG_DEBUG_KMEMLEAK_MEM_POOL_SIZE];
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static int mem_pool_free_count = ARRAY_SIZE(mem_pool);
static LIST_HEAD(mem_pool_free_list);
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/* search tree for object boundaries */
static struct rb_root object_tree_root = RB_ROOT;
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/* search tree for object (with OBJECT_PHYS flag) boundaries */
static struct rb_root object_phys_tree_root = RB_ROOT;
/* protecting the access to object_list, object_tree_root (or object_phys_tree_root) */
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static DEFINE_RAW_SPINLOCK(kmemleak_lock);
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/* allocation caches for kmemleak internal data */
static struct kmem_cache *object_cache;
static struct kmem_cache *scan_area_cache;

/* set if tracing memory operations is enabled */
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static int kmemleak_enabled = 1;
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/* same as above but only for the kmemleak_free() callback */
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static int kmemleak_free_enabled = 1;
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/* set in the late_initcall if there were no errors */
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static int kmemleak_initialized;
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/* set if a kmemleak warning was issued */
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static int kmemleak_warning;
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/* set if a fatal kmemleak error has occurred */
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static int kmemleak_error;
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/* minimum and maximum address that may be valid pointers */
static unsigned long min_addr = ULONG_MAX;
static unsigned long max_addr;

static struct task_struct *scan_thread;
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/* used to avoid reporting of recently allocated objects */
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static unsigned long jiffies_min_age;
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static unsigned long jiffies_last_scan;
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/* delay between automatic memory scannings */
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static unsigned long jiffies_scan_wait;
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/* enables or disables the task stacks scanning */
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static int kmemleak_stack_scan = 1;
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/* protects the memory scanning, parameters and debug/kmemleak file access */
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static DEFINE_MUTEX(scan_mutex);
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/* setting kmemleak=on, will set this var, skipping the disable */
static int kmemleak_skip_disable;
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/* If there are leaks that can be reported */
static bool kmemleak_found_leaks;
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static bool kmemleak_verbose;
module_param_named(verbose, kmemleak_verbose, bool, 0600);

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static void kmemleak_disable(void);

/*
 * Print a warning and dump the stack trace.
 */
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#define kmemleak_warn(x...)	do {		\
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	pr_warn(x);				\
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	dump_stack();				\
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	kmemleak_warning = 1;			\
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} while (0)

/*
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 * Macro invoked when a serious kmemleak condition occurred and cannot be
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 * recovered from. Kmemleak will be disabled and further allocation/freeing
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 * tracing no longer available.
 */
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#define kmemleak_stop(x...)	do {	\
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	kmemleak_warn(x);		\
	kmemleak_disable();		\
} while (0)

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#define warn_or_seq_printf(seq, fmt, ...)	do {	\
	if (seq)					\
		seq_printf(seq, fmt, ##__VA_ARGS__);	\
	else						\
		pr_warn(fmt, ##__VA_ARGS__);		\
} while (0)

static void warn_or_seq_hex_dump(struct seq_file *seq, int prefix_type,
				 int rowsize, int groupsize, const void *buf,
				 size_t len, bool ascii)
{
	if (seq)
		seq_hex_dump(seq, HEX_PREFIX, prefix_type, rowsize, groupsize,
			     buf, len, ascii);
	else
		print_hex_dump(KERN_WARNING, pr_fmt(HEX_PREFIX), prefix_type,
			       rowsize, groupsize, buf, len, ascii);
}

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/*
 * Printing of the objects hex dump to the seq file. The number of lines to be
 * printed is limited to HEX_MAX_LINES to prevent seq file spamming. The
 * actual number of printed bytes depends on HEX_ROW_SIZE. It must be called
 * with the object->lock held.
 */
static void hex_dump_object(struct seq_file *seq,
			    struct kmemleak_object *object)
{
	const u8 *ptr = (const u8 *)object->pointer;
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	size_t len;
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	if (WARN_ON_ONCE(object->flags & OBJECT_PHYS))
		return;

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	/* limit the number of lines to HEX_MAX_LINES */
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	len = min_t(size_t, object->size, HEX_MAX_LINES * HEX_ROW_SIZE);
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	warn_or_seq_printf(seq, "  hex dump (first %zu bytes):\n", len);
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	kasan_disable_current();
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	warn_or_seq_hex_dump(seq, DUMP_PREFIX_NONE, HEX_ROW_SIZE,
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			     HEX_GROUP_SIZE, kasan_reset_tag((void *)ptr), len, HEX_ASCII);
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	kasan_enable_current();
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}

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/*
 * Object colors, encoded with count and min_count:
 * - white - orphan object, not enough references to it (count < min_count)
 * - gray  - not orphan, not marked as false positive (min_count == 0) or
 *		sufficient references to it (count >= min_count)
 * - black - ignore, it doesn't contain references (e.g. text section)
 *		(min_count == -1). No function defined for this color.
 * Newly created objects don't have any color assigned (object->count == -1)
 * before the next memory scan when they become white.
 */
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static bool color_white(const struct kmemleak_object *object)
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{
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	return object->count != KMEMLEAK_BLACK &&
		object->count < object->min_count;
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}

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static bool color_gray(const struct kmemleak_object *object)
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{
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	return object->min_count != KMEMLEAK_BLACK &&
		object->count >= object->min_count;
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}

/*
 * Objects are considered unreferenced only if their color is white, they have
 * not be deleted and have a minimum age to avoid false positives caused by
 * pointers temporarily stored in CPU registers.
 */
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static bool unreferenced_object(struct kmemleak_object *object)
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{
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	return (color_white(object) && object->flags & OBJECT_ALLOCATED) &&
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		time_before_eq(object->jiffies + jiffies_min_age,
			       jiffies_last_scan);
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}

/*
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 * Printing of the unreferenced objects information to the seq file. The
 * print_unreferenced function must be called with the object->lock held.
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 */
static void print_unreferenced(struct seq_file *seq,
			       struct kmemleak_object *object)
{
	int i;
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	unsigned int msecs_age = jiffies_to_msecs(jiffies - object->jiffies);
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	warn_or_seq_printf(seq, "unreferenced object 0x%08lx (size %zu):\n",
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		   object->pointer, object->size);
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	warn_or_seq_printf(seq, "  comm \"%s\", pid %d, jiffies %lu (age %d.%03ds)\n",
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		   object->comm, object->pid, object->jiffies,
		   msecs_age / 1000, msecs_age % 1000);
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	hex_dump_object(seq, object);
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	warn_or_seq_printf(seq, "  backtrace:\n");
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	for (i = 0; i < object->trace_len; i++) {
		void *ptr = (void *)object->trace[i];
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		warn_or_seq_printf(seq, "    [<%p>] %pS\n", ptr, ptr);
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	}
}

/*
 * Print the kmemleak_object information. This function is used mainly for
 * debugging special cases when kmemleak operations. It must be called with
 * the object->lock held.
 */
static void dump_object_info(struct kmemleak_object *object)
{
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	pr_notice("Object 0x%08lx (size %zu):\n",
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		  object->pointer, object->size);
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	pr_notice("  comm \"%s\", pid %d, jiffies %lu\n",
		  object->comm, object->pid, object->jiffies);
	pr_notice("  min_count = %d\n", object->min_count);
	pr_notice("  count = %d\n", object->count);
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	pr_notice("  flags = 0x%x\n", object->flags);
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	pr_notice("  checksum = %u\n", object->checksum);
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	pr_notice("  backtrace:\n");
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	stack_trace_print(object->trace, object->trace_len, 4);
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}

/*
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 * Look-up a memory block metadata (kmemleak_object) in the object search
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 * tree based on a pointer value. If alias is 0, only values pointing to the
 * beginning of the memory block are allowed. The kmemleak_lock must be held
 * when calling this function.
 */
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static struct kmemleak_object *__lookup_object(unsigned long ptr, int alias,
					       bool is_phys)
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{
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	struct rb_node *rb = is_phys ? object_phys_tree_root.rb_node :
			     object_tree_root.rb_node;
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	unsigned long untagged_ptr = (unsigned long)kasan_reset_tag((void *)ptr);
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	while (rb) {
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		struct kmemleak_object *object;
		unsigned long untagged_objp;

		object = rb_entry(rb, struct kmemleak_object, rb_node);
		untagged_objp = (unsigned long)kasan_reset_tag((void *)object->pointer);

		if (untagged_ptr < untagged_objp)
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			rb = object->rb_node.rb_left;
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		else if (untagged_objp + object->size <= untagged_ptr)
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			rb = object->rb_node.rb_right;
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		else if (untagged_objp == untagged_ptr || alias)
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			return object;
		else {
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			kmemleak_warn("Found object by alias at 0x%08lx\n",
				      ptr);
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			dump_object_info(object);
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			break;
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		}
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	}
	return NULL;
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}

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/* Look-up a kmemleak object which allocated with virtual address. */
static struct kmemleak_object *lookup_object(unsigned long ptr, int alias)
{
	return __lookup_object(ptr, alias, false);
}

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/*
 * Increment the object use_count. Return 1 if successful or 0 otherwise. Note
 * that once an object's use_count reached 0, the RCU freeing was already
 * registered and the object should no longer be used. This function must be
 * called under the protection of rcu_read_lock().
 */
static int get_object(struct kmemleak_object *object)
{
	return atomic_inc_not_zero(&object->use_count);
}

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/*
 * Memory pool allocation and freeing. kmemleak_lock must not be held.
 */
static struct kmemleak_object *mem_pool_alloc(gfp_t gfp)
{
	unsigned long flags;
	struct kmemleak_object *object;

	/* try the slab allocator first */
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	if (object_cache) {
		object = kmem_cache_alloc(object_cache, gfp_kmemleak_mask(gfp));
		if (object)
			return object;
	}
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	/* slab allocation failed, try the memory pool */
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	raw_spin_lock_irqsave(&kmemleak_lock, flags);
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	object = list_first_entry_or_null(&mem_pool_free_list,
					  typeof(*object), object_list);
	if (object)
		list_del(&object->object_list);
	else if (mem_pool_free_count)
		object = &mem_pool[--mem_pool_free_count];
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	else
		pr_warn_once("Memory pool empty, consider increasing CONFIG_DEBUG_KMEMLEAK_MEM_POOL_SIZE\n");
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	raw_spin_unlock_irqrestore(&kmemleak_lock, flags);
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	return object;
}

/*
 * Return the object to either the slab allocator or the memory pool.
 */
static void mem_pool_free(struct kmemleak_object *object)
{
	unsigned long flags;

	if (object < mem_pool || object >= mem_pool + ARRAY_SIZE(mem_pool)) {
		kmem_cache_free(object_cache, object);
		return;
	}

	/* add the object to the memory pool free list */
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	raw_spin_lock_irqsave(&kmemleak_lock, flags);
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	list_add(&object->object_list, &mem_pool_free_list);
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	raw_spin_unlock_irqrestore(&kmemleak_lock, flags);
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}

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/*
 * RCU callback to free a kmemleak_object.
 */
static void free_object_rcu(struct rcu_head *rcu)
{
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	struct hlist_node *tmp;
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	struct kmemleak_scan_area *area;
	struct kmemleak_object *object =
		container_of(rcu, struct kmemleak_object, rcu);

	/*
	 * Once use_count is 0 (guaranteed by put_object), there is no other
	 * code accessing this object, hence no need for locking.
	 */
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	hlist_for_each_entry_safe(area, tmp, &object->area_list, node) {
		hlist_del(&area->node);
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		kmem_cache_free(scan_area_cache, area);
	}
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	mem_pool_free(object);
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}

/*
 * Decrement the object use_count. Once the count is 0, free the object using
 * an RCU callback. Since put_object() may be called via the kmemleak_free() ->
 * delete_object() path, the delayed RCU freeing ensures that there is no
 * recursive call to the kernel allocator. Lock-less RCU object_list traversal
 * is also possible.
 */
static void put_object(struct kmemleak_object *object)
{
	if (!atomic_dec_and_test(&object->use_count))
		return;

	/* should only get here after delete_object was called */
	WARN_ON(object->flags & OBJECT_ALLOCATED);

521 522 523 524 525 526 527 528 529
	/*
	 * It may be too early for the RCU callbacks, however, there is no
	 * concurrent object_list traversal when !object_cache and all objects
	 * came from the memory pool. Free the object directly.
	 */
	if (object_cache)
		call_rcu(&object->rcu, free_object_rcu);
	else
		free_object_rcu(&object->rcu);
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}

/*
533
 * Look up an object in the object search tree and increase its use_count.
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 */
535 536
static struct kmemleak_object *__find_and_get_object(unsigned long ptr, int alias,
						     bool is_phys)
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537 538
{
	unsigned long flags;
539
	struct kmemleak_object *object;
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	rcu_read_lock();
542
	raw_spin_lock_irqsave(&kmemleak_lock, flags);
543
	object = __lookup_object(ptr, alias, is_phys);
544
	raw_spin_unlock_irqrestore(&kmemleak_lock, flags);
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	/* check whether the object is still available */
	if (object && !get_object(object))
		object = NULL;
	rcu_read_unlock();

	return object;
}

554 555 556 557 558 559
/* Look up and get an object which allocated with virtual address. */
static struct kmemleak_object *find_and_get_object(unsigned long ptr, int alias)
{
	return __find_and_get_object(ptr, alias, false);
}

560
/*
561 562 563
 * Remove an object from the object_tree_root (or object_phys_tree_root)
 * and object_list. Must be called with the kmemleak_lock held _if_ kmemleak
 * is still enabled.
564 565 566
 */
static void __remove_object(struct kmemleak_object *object)
{
567 568 569
	rb_erase(&object->rb_node, object->flags & OBJECT_PHYS ?
				   &object_phys_tree_root :
				   &object_tree_root);
570 571 572
	list_del_rcu(&object->object_list);
}

573 574
/*
 * Look up an object in the object search tree and remove it from both
575 576 577
 * object_tree_root (or object_phys_tree_root) and object_list. The
 * returned object's use_count should be at least 1, as initially set
 * by create_object().
578
 */
579 580
static struct kmemleak_object *find_and_remove_object(unsigned long ptr, int alias,
						      bool is_phys)
581 582 583 584
{
	unsigned long flags;
	struct kmemleak_object *object;

585
	raw_spin_lock_irqsave(&kmemleak_lock, flags);
586
	object = __lookup_object(ptr, alias, is_phys);
587 588
	if (object)
		__remove_object(object);
589
	raw_spin_unlock_irqrestore(&kmemleak_lock, flags);
590 591 592 593

	return object;
}

594 595 596 597 598
/*
 * Save stack trace to the given array of MAX_TRACE size.
 */
static int __save_stack_trace(unsigned long *trace)
{
599
	return stack_trace_save(trace, MAX_TRACE, 2);
600 601
}

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/*
 * Create the metadata (struct kmemleak_object) corresponding to an allocated
604 605
 * memory block and add it to the object_list and object_tree_root (or
 * object_phys_tree_root).
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 */
607 608 609
static struct kmemleak_object *__create_object(unsigned long ptr, size_t size,
					     int min_count, gfp_t gfp,
					     bool is_phys)
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{
	unsigned long flags;
612 613
	struct kmemleak_object *object, *parent;
	struct rb_node **link, *rb_parent;
614
	unsigned long untagged_ptr;
615
	unsigned long untagged_objp;
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616

617
	object = mem_pool_alloc(gfp);
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618
	if (!object) {
J
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619
		pr_warn("Cannot allocate a kmemleak_object structure\n");
620
		kmemleak_disable();
621
		return NULL;
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	}

	INIT_LIST_HEAD(&object->object_list);
	INIT_LIST_HEAD(&object->gray_list);
	INIT_HLIST_HEAD(&object->area_list);
627
	raw_spin_lock_init(&object->lock);
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	atomic_set(&object->use_count, 1);
629
	object->flags = OBJECT_ALLOCATED | (is_phys ? OBJECT_PHYS : 0);
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	object->pointer = ptr;
631
	object->size = kfence_ksize((void *)ptr) ?: size;
632
	object->excess_ref = 0;
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	object->min_count = min_count;
634
	object->count = 0;			/* white color initially */
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635
	object->jiffies = jiffies;
636
	object->checksum = 0;
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	/* task information */
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	if (in_hardirq()) {
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		object->pid = 0;
		strncpy(object->comm, "hardirq", sizeof(object->comm));
642
	} else if (in_serving_softirq()) {
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		object->pid = 0;
		strncpy(object->comm, "softirq", sizeof(object->comm));
	} else {
		object->pid = current->pid;
		/*
		 * There is a small chance of a race with set_task_comm(),
		 * however using get_task_comm() here may cause locking
		 * dependency issues with current->alloc_lock. In the worst
		 * case, the command line is not correct.
		 */
		strncpy(object->comm, current->comm, sizeof(object->comm));
	}

	/* kernel backtrace */
657
	object->trace_len = __save_stack_trace(object->trace);
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658

659
	raw_spin_lock_irqsave(&kmemleak_lock, flags);
660

661
	untagged_ptr = (unsigned long)kasan_reset_tag((void *)ptr);
662 663 664 665 666 667 668 669 670 671
	/*
	 * Only update min_addr and max_addr with object
	 * storing virtual address.
	 */
	if (!is_phys) {
		min_addr = min(min_addr, untagged_ptr);
		max_addr = max(max_addr, untagged_ptr + size);
	}
	link = is_phys ? &object_phys_tree_root.rb_node :
		&object_tree_root.rb_node;
672 673 674 675
	rb_parent = NULL;
	while (*link) {
		rb_parent = *link;
		parent = rb_entry(rb_parent, struct kmemleak_object, rb_node);
676 677
		untagged_objp = (unsigned long)kasan_reset_tag((void *)parent->pointer);
		if (untagged_ptr + size <= untagged_objp)
678
			link = &parent->rb_node.rb_left;
679
		else if (untagged_objp + parent->size <= untagged_ptr)
680 681
			link = &parent->rb_node.rb_right;
		else {
J
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682
			kmemleak_stop("Cannot insert 0x%lx into the object search tree (overlaps existing)\n",
683
				      ptr);
684 685 686 687 688
			/*
			 * No need for parent->lock here since "parent" cannot
			 * be freed while the kmemleak_lock is held.
			 */
			dump_object_info(parent);
689
			kmem_cache_free(object_cache, object);
690
			object = NULL;
691 692
			goto out;
		}
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693
	}
694
	rb_link_node(&object->rb_node, rb_parent, link);
695 696
	rb_insert_color(&object->rb_node, is_phys ? &object_phys_tree_root :
					  &object_tree_root);
697

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698 699
	list_add_tail_rcu(&object->object_list, &object_list);
out:
700
	raw_spin_unlock_irqrestore(&kmemleak_lock, flags);
701
	return object;
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}

704 705 706 707 708 709 710 711 712 713 714 715 716 717
/* Create kmemleak object which allocated with virtual address. */
static struct kmemleak_object *create_object(unsigned long ptr, size_t size,
					     int min_count, gfp_t gfp)
{
	return __create_object(ptr, size, min_count, gfp, false);
}

/* Create kmemleak object which allocated with physical address. */
static struct kmemleak_object *create_object_phys(unsigned long ptr, size_t size,
					     int min_count, gfp_t gfp)
{
	return __create_object(ptr, size, min_count, gfp, true);
}

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718
/*
719
 * Mark the object as not allocated and schedule RCU freeing via put_object().
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720
 */
721
static void __delete_object(struct kmemleak_object *object)
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722 723 724 725
{
	unsigned long flags;

	WARN_ON(!(object->flags & OBJECT_ALLOCATED));
726
	WARN_ON(atomic_read(&object->use_count) < 1);
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727 728 729 730 731

	/*
	 * Locking here also ensures that the corresponding memory block
	 * cannot be freed when it is being scanned.
	 */
732
	raw_spin_lock_irqsave(&object->lock, flags);
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733
	object->flags &= ~OBJECT_ALLOCATED;
734
	raw_spin_unlock_irqrestore(&object->lock, flags);
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735 736 737
	put_object(object);
}

738 739 740 741 742 743 744 745
/*
 * Look up the metadata (struct kmemleak_object) corresponding to ptr and
 * delete it.
 */
static void delete_object_full(unsigned long ptr)
{
	struct kmemleak_object *object;

746
	object = find_and_remove_object(ptr, 0, false);
747 748 749 750 751 752 753 754 755 756 757 758 759 760 761
	if (!object) {
#ifdef DEBUG
		kmemleak_warn("Freeing unknown object at 0x%08lx\n",
			      ptr);
#endif
		return;
	}
	__delete_object(object);
}

/*
 * Look up the metadata (struct kmemleak_object) corresponding to ptr and
 * delete it. If the memory block is partially freed, the function may create
 * additional metadata for the remaining parts of the block.
 */
762
static void delete_object_part(unsigned long ptr, size_t size, bool is_phys)
763 764 765 766
{
	struct kmemleak_object *object;
	unsigned long start, end;

767
	object = find_and_remove_object(ptr, 1, is_phys);
768 769
	if (!object) {
#ifdef DEBUG
J
Joe Perches 已提交
770 771
		kmemleak_warn("Partially freeing unknown object at 0x%08lx (size %zu)\n",
			      ptr, size);
772 773 774 775 776 777 778
#endif
		return;
	}

	/*
	 * Create one or two objects that may result from the memory block
	 * split. Note that partial freeing is only done by free_bootmem() and
779
	 * this happens before kmemleak_init() is called.
780 781 782 783
	 */
	start = object->pointer;
	end = object->pointer + object->size;
	if (ptr > start)
784
		__create_object(start, ptr - start, object->min_count,
785
			      GFP_KERNEL, is_phys);
786
	if (ptr + size < end)
787
		__create_object(ptr + size, end - ptr - size, object->min_count,
788
			      GFP_KERNEL, is_phys);
789

790
	__delete_object(object);
791
}
792 793 794 795 796 797 798 799 800

static void __paint_it(struct kmemleak_object *object, int color)
{
	object->min_count = color;
	if (color == KMEMLEAK_BLACK)
		object->flags |= OBJECT_NO_SCAN;
}

static void paint_it(struct kmemleak_object *object, int color)
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801 802
{
	unsigned long flags;
803

804
	raw_spin_lock_irqsave(&object->lock, flags);
805
	__paint_it(object, color);
806
	raw_spin_unlock_irqrestore(&object->lock, flags);
807 808
}

809
static void paint_ptr(unsigned long ptr, int color, bool is_phys)
810
{
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811 812
	struct kmemleak_object *object;

813
	object = __find_and_get_object(ptr, 0, is_phys);
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814
	if (!object) {
J
Joe Perches 已提交
815 816
		kmemleak_warn("Trying to color unknown object at 0x%08lx as %s\n",
			      ptr,
817 818
			      (color == KMEMLEAK_GREY) ? "Grey" :
			      (color == KMEMLEAK_BLACK) ? "Black" : "Unknown");
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819 820
		return;
	}
821
	paint_it(object, color);
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822 823 824
	put_object(object);
}

825
/*
826
 * Mark an object permanently as gray-colored so that it can no longer be
827 828 829 830
 * reported as a leak. This is used in general to mark a false positive.
 */
static void make_gray_object(unsigned long ptr)
{
831
	paint_ptr(ptr, KMEMLEAK_GREY, false);
832 833
}

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834 835 836 837
/*
 * Mark the object as black-colored so that it is ignored from scans and
 * reporting.
 */
838
static void make_black_object(unsigned long ptr, bool is_phys)
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839
{
840
	paint_ptr(ptr, KMEMLEAK_BLACK, is_phys);
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841 842 843 844 845 846
}

/*
 * Add a scanning area to the object. If at least one such area is added,
 * kmemleak will only scan these ranges rather than the whole memory block.
 */
847
static void add_scan_area(unsigned long ptr, size_t size, gfp_t gfp)
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848 849 850
{
	unsigned long flags;
	struct kmemleak_object *object;
851
	struct kmemleak_scan_area *area = NULL;
852 853
	unsigned long untagged_ptr;
	unsigned long untagged_objp;
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854

855
	object = find_and_get_object(ptr, 1);
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856
	if (!object) {
J
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857 858
		kmemleak_warn("Adding scan area to unknown object at 0x%08lx\n",
			      ptr);
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859 860 861
		return;
	}

862 863 864
	untagged_ptr = (unsigned long)kasan_reset_tag((void *)ptr);
	untagged_objp = (unsigned long)kasan_reset_tag((void *)object->pointer);

865 866
	if (scan_area_cache)
		area = kmem_cache_alloc(scan_area_cache, gfp_kmemleak_mask(gfp));
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867

868
	raw_spin_lock_irqsave(&object->lock, flags);
869 870 871 872 873 874
	if (!area) {
		pr_warn_once("Cannot allocate a scan area, scanning the full object\n");
		/* mark the object for full scan to avoid false positives */
		object->flags |= OBJECT_FULL_SCAN;
		goto out_unlock;
	}
875
	if (size == SIZE_MAX) {
876 877
		size = untagged_objp + object->size - untagged_ptr;
	} else if (untagged_ptr + size > untagged_objp + object->size) {
J
Joe Perches 已提交
878
		kmemleak_warn("Scan area larger than object 0x%08lx\n", ptr);
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879 880 881 882 883 884
		dump_object_info(object);
		kmem_cache_free(scan_area_cache, area);
		goto out_unlock;
	}

	INIT_HLIST_NODE(&area->node);
885 886
	area->start = ptr;
	area->size = size;
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887 888 889

	hlist_add_head(&area->node, &object->area_list);
out_unlock:
890
	raw_spin_unlock_irqrestore(&object->lock, flags);
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891 892 893
	put_object(object);
}

894 895 896 897 898 899 900 901 902 903 904 905 906 907 908 909 910 911
/*
 * Any surplus references (object already gray) to 'ptr' are passed to
 * 'excess_ref'. This is used in the vmalloc() case where a pointer to
 * vm_struct may be used as an alternative reference to the vmalloc'ed object
 * (see free_thread_stack()).
 */
static void object_set_excess_ref(unsigned long ptr, unsigned long excess_ref)
{
	unsigned long flags;
	struct kmemleak_object *object;

	object = find_and_get_object(ptr, 0);
	if (!object) {
		kmemleak_warn("Setting excess_ref on unknown object at 0x%08lx\n",
			      ptr);
		return;
	}

912
	raw_spin_lock_irqsave(&object->lock, flags);
913
	object->excess_ref = excess_ref;
914
	raw_spin_unlock_irqrestore(&object->lock, flags);
915 916 917
	put_object(object);
}

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918 919 920 921 922 923 924 925 926 927 928 929
/*
 * Set the OBJECT_NO_SCAN flag for the object corresponding to the give
 * pointer. Such object will not be scanned by kmemleak but references to it
 * are searched.
 */
static void object_no_scan(unsigned long ptr)
{
	unsigned long flags;
	struct kmemleak_object *object;

	object = find_and_get_object(ptr, 0);
	if (!object) {
J
Joe Perches 已提交
930
		kmemleak_warn("Not scanning unknown object at 0x%08lx\n", ptr);
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931 932 933
		return;
	}

934
	raw_spin_lock_irqsave(&object->lock, flags);
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935
	object->flags |= OBJECT_NO_SCAN;
936
	raw_spin_unlock_irqrestore(&object->lock, flags);
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937 938 939
	put_object(object);
}

940 941 942 943 944 945 946 947 948 949 950 951
/**
 * kmemleak_alloc - register a newly allocated object
 * @ptr:	pointer to beginning of the object
 * @size:	size of the object
 * @min_count:	minimum number of references to this object. If during memory
 *		scanning a number of references less than @min_count is found,
 *		the object is reported as a memory leak. If @min_count is 0,
 *		the object is never reported as a leak. If @min_count is -1,
 *		the object is ignored (not scanned and not reported as a leak)
 * @gfp:	kmalloc() flags used for kmemleak internal memory allocations
 *
 * This function is called from the kernel allocators when a new object
952
 * (memory block) is allocated (kmem_cache_alloc, kmalloc etc.).
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 */
954 955
void __ref kmemleak_alloc(const void *ptr, size_t size, int min_count,
			  gfp_t gfp)
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956 957 958
{
	pr_debug("%s(0x%p, %zu, %d)\n", __func__, ptr, size, min_count);

959
	if (kmemleak_enabled && ptr && !IS_ERR(ptr))
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960 961 962 963
		create_object((unsigned long)ptr, size, min_count, gfp);
}
EXPORT_SYMBOL_GPL(kmemleak_alloc);

964 965 966 967
/**
 * kmemleak_alloc_percpu - register a newly allocated __percpu object
 * @ptr:	__percpu pointer to beginning of the object
 * @size:	size of the object
968
 * @gfp:	flags used for kmemleak internal memory allocations
969 970
 *
 * This function is called from the kernel percpu allocator when a new object
971
 * (memory block) is allocated (alloc_percpu).
972
 */
973 974
void __ref kmemleak_alloc_percpu(const void __percpu *ptr, size_t size,
				 gfp_t gfp)
975 976 977 978 979 980 981 982 983
{
	unsigned int cpu;

	pr_debug("%s(0x%p, %zu)\n", __func__, ptr, size);

	/*
	 * Percpu allocations are only scanned and not reported as leaks
	 * (min_count is set to 0).
	 */
984
	if (kmemleak_enabled && ptr && !IS_ERR(ptr))
985 986
		for_each_possible_cpu(cpu)
			create_object((unsigned long)per_cpu_ptr(ptr, cpu),
987
				      size, 0, gfp);
988 989 990
}
EXPORT_SYMBOL_GPL(kmemleak_alloc_percpu);

991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015
/**
 * kmemleak_vmalloc - register a newly vmalloc'ed object
 * @area:	pointer to vm_struct
 * @size:	size of the object
 * @gfp:	__vmalloc() flags used for kmemleak internal memory allocations
 *
 * This function is called from the vmalloc() kernel allocator when a new
 * object (memory block) is allocated.
 */
void __ref kmemleak_vmalloc(const struct vm_struct *area, size_t size, gfp_t gfp)
{
	pr_debug("%s(0x%p, %zu)\n", __func__, area, size);

	/*
	 * A min_count = 2 is needed because vm_struct contains a reference to
	 * the virtual address of the vmalloc'ed block.
	 */
	if (kmemleak_enabled) {
		create_object((unsigned long)area->addr, size, 2, gfp);
		object_set_excess_ref((unsigned long)area,
				      (unsigned long)area->addr);
	}
}
EXPORT_SYMBOL_GPL(kmemleak_vmalloc);

1016 1017 1018 1019 1020 1021
/**
 * kmemleak_free - unregister a previously registered object
 * @ptr:	pointer to beginning of the object
 *
 * This function is called from the kernel allocators when an object (memory
 * block) is freed (kmem_cache_free, kfree, vfree etc.).
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1022
 */
1023
void __ref kmemleak_free(const void *ptr)
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1024 1025 1026
{
	pr_debug("%s(0x%p)\n", __func__, ptr);

1027
	if (kmemleak_free_enabled && ptr && !IS_ERR(ptr))
1028
		delete_object_full((unsigned long)ptr);
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1029 1030 1031
}
EXPORT_SYMBOL_GPL(kmemleak_free);

1032 1033 1034 1035 1036 1037 1038 1039
/**
 * kmemleak_free_part - partially unregister a previously registered object
 * @ptr:	pointer to the beginning or inside the object. This also
 *		represents the start of the range to be freed
 * @size:	size to be unregistered
 *
 * This function is called when only a part of a memory block is freed
 * (usually from the bootmem allocator).
1040
 */
1041
void __ref kmemleak_free_part(const void *ptr, size_t size)
1042 1043 1044
{
	pr_debug("%s(0x%p)\n", __func__, ptr);

1045
	if (kmemleak_enabled && ptr && !IS_ERR(ptr))
1046
		delete_object_part((unsigned long)ptr, size, false);
1047 1048 1049
}
EXPORT_SYMBOL_GPL(kmemleak_free_part);

1050 1051 1052 1053 1054 1055 1056 1057 1058 1059 1060 1061 1062
/**
 * kmemleak_free_percpu - unregister a previously registered __percpu object
 * @ptr:	__percpu pointer to beginning of the object
 *
 * This function is called from the kernel percpu allocator when an object
 * (memory block) is freed (free_percpu).
 */
void __ref kmemleak_free_percpu(const void __percpu *ptr)
{
	unsigned int cpu;

	pr_debug("%s(0x%p)\n", __func__, ptr);

1063
	if (kmemleak_free_enabled && ptr && !IS_ERR(ptr))
1064 1065 1066 1067 1068 1069
		for_each_possible_cpu(cpu)
			delete_object_full((unsigned long)per_cpu_ptr(ptr,
								      cpu));
}
EXPORT_SYMBOL_GPL(kmemleak_free_percpu);

1070 1071 1072 1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095
/**
 * kmemleak_update_trace - update object allocation stack trace
 * @ptr:	pointer to beginning of the object
 *
 * Override the object allocation stack trace for cases where the actual
 * allocation place is not always useful.
 */
void __ref kmemleak_update_trace(const void *ptr)
{
	struct kmemleak_object *object;
	unsigned long flags;

	pr_debug("%s(0x%p)\n", __func__, ptr);

	if (!kmemleak_enabled || IS_ERR_OR_NULL(ptr))
		return;

	object = find_and_get_object((unsigned long)ptr, 1);
	if (!object) {
#ifdef DEBUG
		kmemleak_warn("Updating stack trace for unknown object at %p\n",
			      ptr);
#endif
		return;
	}

1096
	raw_spin_lock_irqsave(&object->lock, flags);
1097
	object->trace_len = __save_stack_trace(object->trace);
1098
	raw_spin_unlock_irqrestore(&object->lock, flags);
1099 1100 1101 1102 1103

	put_object(object);
}
EXPORT_SYMBOL(kmemleak_update_trace);

1104 1105 1106 1107 1108 1109
/**
 * kmemleak_not_leak - mark an allocated object as false positive
 * @ptr:	pointer to beginning of the object
 *
 * Calling this function on an object will cause the memory block to no longer
 * be reported as leak and always be scanned.
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 */
1111
void __ref kmemleak_not_leak(const void *ptr)
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1112 1113 1114
{
	pr_debug("%s(0x%p)\n", __func__, ptr);

1115
	if (kmemleak_enabled && ptr && !IS_ERR(ptr))
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1116 1117 1118 1119
		make_gray_object((unsigned long)ptr);
}
EXPORT_SYMBOL(kmemleak_not_leak);

1120 1121 1122 1123 1124 1125 1126 1127
/**
 * kmemleak_ignore - ignore an allocated object
 * @ptr:	pointer to beginning of the object
 *
 * Calling this function on an object will cause the memory block to be
 * ignored (not scanned and not reported as a leak). This is usually done when
 * it is known that the corresponding block is not a leak and does not contain
 * any references to other allocated memory blocks.
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 */
1129
void __ref kmemleak_ignore(const void *ptr)
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1130 1131 1132
{
	pr_debug("%s(0x%p)\n", __func__, ptr);

1133
	if (kmemleak_enabled && ptr && !IS_ERR(ptr))
1134
		make_black_object((unsigned long)ptr, false);
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}
EXPORT_SYMBOL(kmemleak_ignore);

1138 1139 1140 1141 1142 1143 1144 1145 1146 1147
/**
 * kmemleak_scan_area - limit the range to be scanned in an allocated object
 * @ptr:	pointer to beginning or inside the object. This also
 *		represents the start of the scan area
 * @size:	size of the scan area
 * @gfp:	kmalloc() flags used for kmemleak internal memory allocations
 *
 * This function is used when it is known that only certain parts of an object
 * contain references to other objects. Kmemleak will only scan these areas
 * reducing the number false negatives.
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 */
1149
void __ref kmemleak_scan_area(const void *ptr, size_t size, gfp_t gfp)
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{
	pr_debug("%s(0x%p)\n", __func__, ptr);

1153
	if (kmemleak_enabled && ptr && size && !IS_ERR(ptr))
1154
		add_scan_area((unsigned long)ptr, size, gfp);
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}
EXPORT_SYMBOL(kmemleak_scan_area);

1158 1159 1160 1161 1162 1163 1164 1165
/**
 * kmemleak_no_scan - do not scan an allocated object
 * @ptr:	pointer to beginning of the object
 *
 * This function notifies kmemleak not to scan the given memory block. Useful
 * in situations where it is known that the given object does not contain any
 * references to other objects. Kmemleak will not scan such objects reducing
 * the number of false negatives.
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 */
1167
void __ref kmemleak_no_scan(const void *ptr)
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{
	pr_debug("%s(0x%p)\n", __func__, ptr);

1171
	if (kmemleak_enabled && ptr && !IS_ERR(ptr))
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		object_no_scan((unsigned long)ptr);
}
EXPORT_SYMBOL(kmemleak_no_scan);

1176 1177 1178
/**
 * kmemleak_alloc_phys - similar to kmemleak_alloc but taking a physical
 *			 address argument
1179 1180 1181
 * @phys:	physical address of the object
 * @size:	size of the object
 * @gfp:	kmalloc() flags used for kmemleak internal memory allocations
1182
 */
1183
void __ref kmemleak_alloc_phys(phys_addr_t phys, size_t size, gfp_t gfp)
1184
{
1185 1186
	pr_debug("%s(0x%pa, %zu)\n", __func__, &phys, size);

1187
	if (kmemleak_enabled)
1188 1189 1190 1191
		/*
		 * Create object with OBJECT_PHYS flag and
		 * assume min_count 0.
		 */
1192
		create_object_phys((unsigned long)phys, size, 0, gfp);
1193 1194 1195 1196 1197 1198
}
EXPORT_SYMBOL(kmemleak_alloc_phys);

/**
 * kmemleak_free_part_phys - similar to kmemleak_free_part but taking a
 *			     physical address argument
1199 1200 1201
 * @phys:	physical address if the beginning or inside an object. This
 *		also represents the start of the range to be freed
 * @size:	size to be unregistered
1202 1203 1204
 */
void __ref kmemleak_free_part_phys(phys_addr_t phys, size_t size)
{
1205 1206
	pr_debug("%s(0x%pa)\n", __func__, &phys);

1207
	if (kmemleak_enabled)
1208
		delete_object_part((unsigned long)phys, size, true);
1209 1210 1211 1212 1213 1214
}
EXPORT_SYMBOL(kmemleak_free_part_phys);

/**
 * kmemleak_ignore_phys - similar to kmemleak_ignore but taking a physical
 *			  address argument
1215
 * @phys:	physical address of the object
1216 1217 1218
 */
void __ref kmemleak_ignore_phys(phys_addr_t phys)
{
1219 1220
	pr_debug("%s(0x%pa)\n", __func__, &phys);

1221
	if (kmemleak_enabled)
1222
		make_black_object((unsigned long)phys, true);
1223 1224 1225
}
EXPORT_SYMBOL(kmemleak_ignore_phys);

1226 1227 1228 1229 1230 1231 1232
/*
 * Update an object's checksum and return true if it was modified.
 */
static bool update_checksum(struct kmemleak_object *object)
{
	u32 old_csum = object->checksum;

1233 1234 1235
	if (WARN_ON_ONCE(object->flags & OBJECT_PHYS))
		return false;

1236
	kasan_disable_current();
1237
	kcsan_disable_current();
1238
	object->checksum = crc32(0, kasan_reset_tag((void *)object->pointer), object->size);
1239
	kasan_enable_current();
1240
	kcsan_enable_current();
1241

1242 1243 1244
	return object->checksum != old_csum;
}

1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268
/*
 * Update an object's references. object->lock must be held by the caller.
 */
static void update_refs(struct kmemleak_object *object)
{
	if (!color_white(object)) {
		/* non-orphan, ignored or new */
		return;
	}

	/*
	 * Increase the object's reference count (number of pointers to the
	 * memory block). If this count reaches the required minimum, the
	 * object's color will become gray and it will be added to the
	 * gray_list.
	 */
	object->count++;
	if (color_gray(object)) {
		/* put_object() called when removing from gray_list */
		WARN_ON(!get_object(object));
		list_add_tail(&object->gray_list, &gray_list);
	}
}

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/*
B
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1270
 * Memory scanning is a long process and it needs to be interruptible. This
L
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1271
 * function checks whether such interrupt condition occurred.
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1272 1273 1274
 */
static int scan_should_stop(void)
{
1275
	if (!kmemleak_enabled)
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1276 1277 1278 1279 1280 1281 1282 1283 1284 1285 1286 1287 1288 1289 1290 1291 1292 1293 1294
		return 1;

	/*
	 * This function may be called from either process or kthread context,
	 * hence the need to check for both stop conditions.
	 */
	if (current->mm)
		return signal_pending(current);
	else
		return kthread_should_stop();

	return 0;
}

/*
 * Scan a memory block (exclusive range) for valid pointers and add those
 * found to the gray list.
 */
static void scan_block(void *_start, void *_end,
1295
		       struct kmemleak_object *scanned)
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1296 1297 1298 1299
{
	unsigned long *ptr;
	unsigned long *start = PTR_ALIGN(_start, BYTES_PER_POINTER);
	unsigned long *end = _end - (BYTES_PER_POINTER - 1);
1300
	unsigned long flags;
1301
	unsigned long untagged_ptr;
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1302

1303
	raw_spin_lock_irqsave(&kmemleak_lock, flags);
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1304 1305
	for (ptr = start; ptr < end; ptr++) {
		struct kmemleak_object *object;
1306
		unsigned long pointer;
1307
		unsigned long excess_ref;
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1308 1309 1310 1311

		if (scan_should_stop())
			break;

1312
		kasan_disable_current();
1313
		pointer = *(unsigned long *)kasan_reset_tag((void *)ptr);
1314
		kasan_enable_current();
1315

1316 1317
		untagged_ptr = (unsigned long)kasan_reset_tag((void *)pointer);
		if (untagged_ptr < min_addr || untagged_ptr >= max_addr)
1318 1319 1320 1321 1322 1323 1324 1325 1326
			continue;

		/*
		 * No need for get_object() here since we hold kmemleak_lock.
		 * object->use_count cannot be dropped to 0 while the object
		 * is still present in object_tree_root and object_list
		 * (with updates protected by kmemleak_lock).
		 */
		object = lookup_object(pointer, 1);
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		if (!object)
			continue;
1329
		if (object == scanned)
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1330 1331 1332 1333 1334 1335 1336 1337
			/* self referenced, ignore */
			continue;

		/*
		 * Avoid the lockdep recursive warning on object->lock being
		 * previously acquired in scan_object(). These locks are
		 * enclosed by scan_mutex.
		 */
1338
		raw_spin_lock_nested(&object->lock, SINGLE_DEPTH_NESTING);
1339 1340 1341 1342 1343 1344 1345 1346
		/* only pass surplus references (object already gray) */
		if (color_gray(object)) {
			excess_ref = object->excess_ref;
			/* no need for update_refs() if object already gray */
		} else {
			excess_ref = 0;
			update_refs(object);
		}
1347
		raw_spin_unlock(&object->lock);
1348 1349 1350 1351 1352 1353 1354 1355

		if (excess_ref) {
			object = lookup_object(excess_ref, 0);
			if (!object)
				continue;
			if (object == scanned)
				/* circular reference, ignore */
				continue;
1356
			raw_spin_lock_nested(&object->lock, SINGLE_DEPTH_NESTING);
1357
			update_refs(object);
1358
			raw_spin_unlock(&object->lock);
1359
		}
1360
	}
1361
	raw_spin_unlock_irqrestore(&kmemleak_lock, flags);
1362
}
1363

1364 1365 1366
/*
 * Scan a large memory block in MAX_SCAN_SIZE chunks to reduce the latency.
 */
1367
#ifdef CONFIG_SMP
1368 1369 1370 1371 1372 1373 1374 1375 1376
static void scan_large_block(void *start, void *end)
{
	void *next;

	while (start < end) {
		next = min(start + MAX_SCAN_SIZE, end);
		scan_block(start, next, NULL);
		start = next;
		cond_resched();
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	}
}
1379
#endif
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1380 1381 1382 1383 1384 1385 1386 1387 1388

/*
 * Scan a memory block corresponding to a kmemleak_object. A condition is
 * that object->use_count >= 1.
 */
static void scan_object(struct kmemleak_object *object)
{
	struct kmemleak_scan_area *area;
	unsigned long flags;
1389
	void *obj_ptr;
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1390 1391

	/*
1392 1393
	 * Once the object->lock is acquired, the corresponding memory block
	 * cannot be freed (the same lock is acquired in delete_object).
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1394
	 */
1395
	raw_spin_lock_irqsave(&object->lock, flags);
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1396 1397 1398 1399 1400
	if (object->flags & OBJECT_NO_SCAN)
		goto out;
	if (!(object->flags & OBJECT_ALLOCATED))
		/* already freed object */
		goto out;
1401 1402 1403 1404 1405

	obj_ptr = object->flags & OBJECT_PHYS ?
		  __va((phys_addr_t)object->pointer) :
		  (void *)object->pointer;

1406 1407
	if (hlist_empty(&object->area_list) ||
	    object->flags & OBJECT_FULL_SCAN) {
1408 1409
		void *start = obj_ptr;
		void *end = obj_ptr + object->size;
1410 1411 1412 1413 1414
		void *next;

		do {
			next = min(start + MAX_SCAN_SIZE, end);
			scan_block(start, next, object);
1415

1416 1417 1418
			start = next;
			if (start >= end)
				break;
1419

1420
			raw_spin_unlock_irqrestore(&object->lock, flags);
1421
			cond_resched();
1422
			raw_spin_lock_irqsave(&object->lock, flags);
1423
		} while (object->flags & OBJECT_ALLOCATED);
1424
	} else
1425
		hlist_for_each_entry(area, &object->area_list, node)
1426 1427
			scan_block((void *)area->start,
				   (void *)(area->start + area->size),
1428
				   object);
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out:
1430
	raw_spin_unlock_irqrestore(&object->lock, flags);
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1431 1432
}

1433 1434 1435 1436 1437 1438 1439 1440 1441 1442 1443 1444 1445 1446 1447 1448 1449 1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465
/*
 * Scan the objects already referenced (gray objects). More objects will be
 * referenced and, if there are no memory leaks, all the objects are scanned.
 */
static void scan_gray_list(void)
{
	struct kmemleak_object *object, *tmp;

	/*
	 * The list traversal is safe for both tail additions and removals
	 * from inside the loop. The kmemleak objects cannot be freed from
	 * outside the loop because their use_count was incremented.
	 */
	object = list_entry(gray_list.next, typeof(*object), gray_list);
	while (&object->gray_list != &gray_list) {
		cond_resched();

		/* may add new objects to the list */
		if (!scan_should_stop())
			scan_object(object);

		tmp = list_entry(object->gray_list.next, typeof(*object),
				 gray_list);

		/* remove the object from the list and release it */
		list_del(&object->gray_list);
		put_object(object);

		object = tmp;
	}
	WARN_ON(!list_empty(&gray_list));
}

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1466 1467 1468 1469 1470 1471 1472 1473
/*
 * Scan data sections and all the referenced memory blocks allocated via the
 * kernel's standard allocators. This function must be called with the
 * scan_mutex held.
 */
static void kmemleak_scan(void)
{
	unsigned long flags;
1474
	struct kmemleak_object *object;
1475 1476
	struct zone *zone;
	int __maybe_unused i;
1477
	int new_leaks = 0;
C
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1478

1479 1480
	jiffies_last_scan = jiffies;

C
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1481 1482 1483
	/* prepare the kmemleak_object's */
	rcu_read_lock();
	list_for_each_entry_rcu(object, &object_list, object_list) {
1484
		raw_spin_lock_irqsave(&object->lock, flags);
C
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1485 1486 1487 1488 1489 1490
#ifdef DEBUG
		/*
		 * With a few exceptions there should be a maximum of
		 * 1 reference to any object at this point.
		 */
		if (atomic_read(&object->use_count) > 1) {
J
Joe Perches 已提交
1491
			pr_debug("object->use_count = %d\n",
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1492 1493 1494 1495
				 atomic_read(&object->use_count));
			dump_object_info(object);
		}
#endif
1496 1497 1498 1499 1500 1501 1502 1503 1504 1505 1506

		/* ignore objects outside lowmem (paint them black) */
		if ((object->flags & OBJECT_PHYS) &&
		   !(object->flags & OBJECT_NO_SCAN)) {
			unsigned long phys = object->pointer;

			if (PHYS_PFN(phys) < min_low_pfn ||
			    PHYS_PFN(phys + object->size) >= max_low_pfn)
				__paint_it(object, KMEMLEAK_BLACK);
		}

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1507 1508 1509 1510 1511
		/* reset the reference count (whiten the object) */
		object->count = 0;
		if (color_gray(object) && get_object(object))
			list_add_tail(&object->gray_list, &gray_list);

1512
		raw_spin_unlock_irqrestore(&object->lock, flags);
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1513 1514 1515 1516 1517 1518
	}
	rcu_read_unlock();

#ifdef CONFIG_SMP
	/* per-cpu sections scanning */
	for_each_possible_cpu(i)
1519 1520
		scan_large_block(__per_cpu_start + per_cpu_offset(i),
				 __per_cpu_end + per_cpu_offset(i));
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1521 1522 1523
#endif

	/*
1524
	 * Struct page scanning for each node.
C
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1525
	 */
1526
	get_online_mems();
1527 1528 1529
	for_each_populated_zone(zone) {
		unsigned long start_pfn = zone->zone_start_pfn;
		unsigned long end_pfn = zone_end_pfn(zone);
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1530 1531 1532
		unsigned long pfn;

		for (pfn = start_pfn; pfn < end_pfn; pfn++) {
1533
			struct page *page = pfn_to_online_page(pfn);
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1534

1535 1536 1537
			if (!page)
				continue;

1538 1539
			/* only scan pages belonging to this zone */
			if (page_zone(page) != zone)
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1540 1541 1542 1543
				continue;
			/* only scan if page is in use */
			if (page_count(page) == 0)
				continue;
1544
			scan_block(page, page + 1, NULL);
1545
			if (!(pfn & 63))
1546
				cond_resched();
C
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1547 1548
		}
	}
1549
	put_online_mems();
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1550 1551

	/*
1552
	 * Scanning the task stacks (may introduce false negatives).
C
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1553 1554
	 */
	if (kmemleak_stack_scan) {
1555 1556
		struct task_struct *p, *g;

1557 1558
		rcu_read_lock();
		for_each_process_thread(g, p) {
1559 1560 1561 1562 1563
			void *stack = try_get_task_stack(p);
			if (stack) {
				scan_block(stack, stack + THREAD_SIZE, NULL);
				put_task_stack(p);
			}
1564 1565
		}
		rcu_read_unlock();
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1566 1567 1568 1569
	}

	/*
	 * Scan the objects already referenced from the sections scanned
1570
	 * above.
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1571
	 */
1572
	scan_gray_list();
1573 1574

	/*
1575 1576
	 * Check for new or unreferenced objects modified since the previous
	 * scan and color them gray until the next scan.
1577 1578 1579
	 */
	rcu_read_lock();
	list_for_each_entry_rcu(object, &object_list, object_list) {
1580
		raw_spin_lock_irqsave(&object->lock, flags);
1581 1582 1583 1584
		if (color_white(object) && (object->flags & OBJECT_ALLOCATED)
		    && update_checksum(object) && get_object(object)) {
			/* color it gray temporarily */
			object->count = object->min_count;
1585 1586
			list_add_tail(&object->gray_list, &gray_list);
		}
1587
		raw_spin_unlock_irqrestore(&object->lock, flags);
1588 1589 1590
	}
	rcu_read_unlock();

1591 1592 1593 1594
	/*
	 * Re-scan the gray list for modified unreferenced objects.
	 */
	scan_gray_list();
1595

1596
	/*
1597
	 * If scanning was stopped do not report any new unreferenced objects.
1598
	 */
1599
	if (scan_should_stop())
1600 1601
		return;

1602 1603 1604 1605 1606
	/*
	 * Scanning result reporting.
	 */
	rcu_read_lock();
	list_for_each_entry_rcu(object, &object_list, object_list) {
1607
		raw_spin_lock_irqsave(&object->lock, flags);
1608 1609 1610
		if (unreferenced_object(object) &&
		    !(object->flags & OBJECT_REPORTED)) {
			object->flags |= OBJECT_REPORTED;
1611 1612 1613 1614

			if (kmemleak_verbose)
				print_unreferenced(NULL, object);

1615 1616
			new_leaks++;
		}
1617
		raw_spin_unlock_irqrestore(&object->lock, flags);
1618 1619 1620
	}
	rcu_read_unlock();

1621 1622 1623
	if (new_leaks) {
		kmemleak_found_leaks = true;

J
Joe Perches 已提交
1624 1625
		pr_info("%d new suspected memory leaks (see /sys/kernel/debug/kmemleak)\n",
			new_leaks);
1626
	}
1627

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1628 1629 1630 1631 1632 1633 1634 1635
}

/*
 * Thread function performing automatic memory scanning. Unreferenced objects
 * at the end of a memory scan are reported but only the first time.
 */
static int kmemleak_scan_thread(void *arg)
{
1636
	static int first_run = IS_ENABLED(CONFIG_DEBUG_KMEMLEAK_AUTO_SCAN);
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1637

J
Joe Perches 已提交
1638
	pr_info("Automatic memory scanning thread started\n");
1639
	set_user_nice(current, 10);
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1640 1641 1642 1643 1644

	/*
	 * Wait before the first scan to allow the system to fully initialize.
	 */
	if (first_run) {
1645
		signed long timeout = msecs_to_jiffies(SECS_FIRST_SCAN * 1000);
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		first_run = 0;
1647 1648
		while (timeout && !kthread_should_stop())
			timeout = schedule_timeout_interruptible(timeout);
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	}

	while (!kthread_should_stop()) {
1652
		signed long timeout = READ_ONCE(jiffies_scan_wait);
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		mutex_lock(&scan_mutex);
		kmemleak_scan();
		mutex_unlock(&scan_mutex);
1657

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		/* wait before the next scan */
		while (timeout && !kthread_should_stop())
			timeout = schedule_timeout_interruptible(timeout);
	}

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	pr_info("Automatic memory scanning thread ended\n");
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	return 0;
}

/*
 * Start the automatic memory scanning thread. This function must be called
1670
 * with the scan_mutex held.
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 */
1672
static void start_scan_thread(void)
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{
	if (scan_thread)
		return;
	scan_thread = kthread_run(kmemleak_scan_thread, NULL, "kmemleak");
	if (IS_ERR(scan_thread)) {
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		pr_warn("Failed to create the scan thread\n");
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		scan_thread = NULL;
	}
}

/*
1684
 * Stop the automatic memory scanning thread.
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 */
1686
static void stop_scan_thread(void)
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{
	if (scan_thread) {
		kthread_stop(scan_thread);
		scan_thread = NULL;
	}
}

/*
 * Iterate over the object_list and return the first valid object at or after
 * the required position with its use_count incremented. The function triggers
 * a memory scanning when the pos argument points to the first position.
 */
static void *kmemleak_seq_start(struct seq_file *seq, loff_t *pos)
{
	struct kmemleak_object *object;
	loff_t n = *pos;
1703 1704 1705 1706 1707
	int err;

	err = mutex_lock_interruptible(&scan_mutex);
	if (err < 0)
		return ERR_PTR(err);
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	rcu_read_lock();
	list_for_each_entry_rcu(object, &object_list, object_list) {
		if (n-- > 0)
			continue;
		if (get_object(object))
			goto out;
	}
	object = NULL;
out:
	return object;
}

/*
 * Return the next object in the object_list. The function decrements the
 * use_count of the previous object and increases that of the next one.
 */
static void *kmemleak_seq_next(struct seq_file *seq, void *v, loff_t *pos)
{
	struct kmemleak_object *prev_obj = v;
	struct kmemleak_object *next_obj = NULL;
1729
	struct kmemleak_object *obj = prev_obj;
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	++(*pos);

1733
	list_for_each_entry_continue_rcu(obj, &object_list, object_list) {
1734 1735
		if (get_object(obj)) {
			next_obj = obj;
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			break;
1737
		}
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1738
	}
1739

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	put_object(prev_obj);
	return next_obj;
}

/*
 * Decrement the use_count of the last object required, if any.
 */
static void kmemleak_seq_stop(struct seq_file *seq, void *v)
{
1749 1750 1751 1752 1753
	if (!IS_ERR(v)) {
		/*
		 * kmemleak_seq_start may return ERR_PTR if the scan_mutex
		 * waiting was interrupted, so only release it if !IS_ERR.
		 */
1754
		rcu_read_unlock();
1755 1756 1757 1758
		mutex_unlock(&scan_mutex);
		if (v)
			put_object(v);
	}
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}

/*
 * Print the information for an unreferenced object to the seq file.
 */
static int kmemleak_seq_show(struct seq_file *seq, void *v)
{
	struct kmemleak_object *object = v;
	unsigned long flags;

1769
	raw_spin_lock_irqsave(&object->lock, flags);
1770
	if ((object->flags & OBJECT_REPORTED) && unreferenced_object(object))
1771
		print_unreferenced(seq, object);
1772
	raw_spin_unlock_irqrestore(&object->lock, flags);
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	return 0;
}

static const struct seq_operations kmemleak_seq_ops = {
	.start = kmemleak_seq_start,
	.next  = kmemleak_seq_next,
	.stop  = kmemleak_seq_stop,
	.show  = kmemleak_seq_show,
};

static int kmemleak_open(struct inode *inode, struct file *file)
{
1785
	return seq_open(file, &kmemleak_seq_ops);
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}

1788 1789 1790 1791 1792 1793
static int dump_str_object_info(const char *str)
{
	unsigned long flags;
	struct kmemleak_object *object;
	unsigned long addr;

1794 1795
	if (kstrtoul(str, 0, &addr))
		return -EINVAL;
1796 1797 1798 1799 1800 1801
	object = find_and_get_object(addr, 0);
	if (!object) {
		pr_info("Unknown object at 0x%08lx\n", addr);
		return -EINVAL;
	}

1802
	raw_spin_lock_irqsave(&object->lock, flags);
1803
	dump_object_info(object);
1804
	raw_spin_unlock_irqrestore(&object->lock, flags);
1805 1806 1807 1808 1809

	put_object(object);
	return 0;
}

1810 1811 1812 1813 1814 1815 1816 1817 1818 1819 1820 1821 1822
/*
 * We use grey instead of black to ensure we can do future scans on the same
 * objects. If we did not do future scans these black objects could
 * potentially contain references to newly allocated objects in the future and
 * we'd end up with false positives.
 */
static void kmemleak_clear(void)
{
	struct kmemleak_object *object;
	unsigned long flags;

	rcu_read_lock();
	list_for_each_entry_rcu(object, &object_list, object_list) {
1823
		raw_spin_lock_irqsave(&object->lock, flags);
1824 1825
		if ((object->flags & OBJECT_REPORTED) &&
		    unreferenced_object(object))
1826
			__paint_it(object, KMEMLEAK_GREY);
1827
		raw_spin_unlock_irqrestore(&object->lock, flags);
1828 1829
	}
	rcu_read_unlock();
1830 1831

	kmemleak_found_leaks = false;
1832 1833
}

1834 1835
static void __kmemleak_do_cleanup(void);

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/*
 * File write operation to configure kmemleak at run-time. The following
 * commands can be written to the /sys/kernel/debug/kmemleak file:
 *   off	- disable kmemleak (irreversible)
 *   stack=on	- enable the task stacks scanning
 *   stack=off	- disable the tasks stacks scanning
 *   scan=on	- start the automatic memory scanning thread
 *   scan=off	- stop the automatic memory scanning thread
 *   scan=...	- set the automatic memory scanning period in seconds (0 to
 *		  disable it)
1846
 *   scan	- trigger a memory scan
1847
 *   clear	- mark all current reported unreferenced kmemleak objects as
1848 1849
 *		  grey to ignore printing them, or free all kmemleak objects
 *		  if kmemleak has been disabled.
1850
 *   dump=...	- dump information about the object found at the given address
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 */
static ssize_t kmemleak_write(struct file *file, const char __user *user_buf,
			      size_t size, loff_t *ppos)
{
	char buf[64];
	int buf_size;
1857
	int ret;
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	buf_size = min(size, (sizeof(buf) - 1));
	if (strncpy_from_user(buf, user_buf, buf_size) < 0)
		return -EFAULT;
	buf[buf_size] = 0;

1864 1865 1866 1867
	ret = mutex_lock_interruptible(&scan_mutex);
	if (ret < 0)
		return ret;

1868
	if (strncmp(buf, "clear", 5) == 0) {
1869
		if (kmemleak_enabled)
1870 1871 1872 1873 1874 1875
			kmemleak_clear();
		else
			__kmemleak_do_cleanup();
		goto out;
	}

1876
	if (!kmemleak_enabled) {
1877
		ret = -EPERM;
1878 1879 1880
		goto out;
	}

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	if (strncmp(buf, "off", 3) == 0)
		kmemleak_disable();
	else if (strncmp(buf, "stack=on", 8) == 0)
		kmemleak_stack_scan = 1;
	else if (strncmp(buf, "stack=off", 9) == 0)
		kmemleak_stack_scan = 0;
	else if (strncmp(buf, "scan=on", 7) == 0)
		start_scan_thread();
	else if (strncmp(buf, "scan=off", 8) == 0)
		stop_scan_thread();
	else if (strncmp(buf, "scan=", 5) == 0) {
1892 1893
		unsigned secs;
		unsigned long msecs;
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1895
		ret = kstrtouint(buf + 5, 0, &secs);
1896 1897
		if (ret < 0)
			goto out;
1898 1899 1900 1901 1902

		msecs = secs * MSEC_PER_SEC;
		if (msecs > UINT_MAX)
			msecs = UINT_MAX;

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		stop_scan_thread();
1904 1905
		if (msecs) {
			WRITE_ONCE(jiffies_scan_wait, msecs_to_jiffies(msecs));
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			start_scan_thread();
		}
1908 1909
	} else if (strncmp(buf, "scan", 4) == 0)
		kmemleak_scan();
1910 1911
	else if (strncmp(buf, "dump=", 5) == 0)
		ret = dump_str_object_info(buf + 5);
1912
	else
1913 1914 1915 1916 1917 1918
		ret = -EINVAL;

out:
	mutex_unlock(&scan_mutex);
	if (ret < 0)
		return ret;
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	/* ignore the rest of the buffer, only one command at a time */
	*ppos += size;
	return size;
}

static const struct file_operations kmemleak_fops = {
	.owner		= THIS_MODULE,
	.open		= kmemleak_open,
	.read		= seq_read,
	.write		= kmemleak_write,
	.llseek		= seq_lseek,
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	.release	= seq_release,
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};

1934 1935
static void __kmemleak_do_cleanup(void)
{
1936
	struct kmemleak_object *object, *tmp;
1937

1938 1939 1940 1941 1942 1943 1944 1945
	/*
	 * Kmemleak has already been disabled, no need for RCU list traversal
	 * or kmemleak_lock held.
	 */
	list_for_each_entry_safe(object, tmp, &object_list, object_list) {
		__remove_object(object);
		__delete_object(object);
	}
1946 1947
}

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/*
1949 1950 1951
 * Stop the memory scanning thread and free the kmemleak internal objects if
 * no previous scan thread (otherwise, kmemleak may still have some useful
 * information on memory leaks).
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 */
1953
static void kmemleak_do_cleanup(struct work_struct *work)
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1954 1955 1956
{
	stop_scan_thread();

1957
	mutex_lock(&scan_mutex);
1958
	/*
1959 1960 1961 1962
	 * Once it is made sure that kmemleak_scan has stopped, it is safe to no
	 * longer track object freeing. Ordering of the scan thread stopping and
	 * the memory accesses below is guaranteed by the kthread_stop()
	 * function.
1963 1964
	 */
	kmemleak_free_enabled = 0;
1965
	mutex_unlock(&scan_mutex);
1966

1967 1968 1969
	if (!kmemleak_found_leaks)
		__kmemleak_do_cleanup();
	else
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		pr_info("Kmemleak disabled without freeing internal data. Reclaim the memory with \"echo clear > /sys/kernel/debug/kmemleak\".\n");
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}

1973
static DECLARE_WORK(cleanup_work, kmemleak_do_cleanup);
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/*
 * Disable kmemleak. No memory allocation/freeing will be traced once this
 * function is called. Disabling kmemleak is an irreversible operation.
 */
static void kmemleak_disable(void)
{
	/* atomically check whether it was already invoked */
1982
	if (cmpxchg(&kmemleak_error, 0, 1))
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1983 1984 1985
		return;

	/* stop any memory operation tracing */
1986
	kmemleak_enabled = 0;
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	/* check whether it is too early for a kernel thread */
1989
	if (kmemleak_initialized)
1990
		schedule_work(&cleanup_work);
1991 1992
	else
		kmemleak_free_enabled = 0;
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	pr_info("Kernel memory leak detector disabled\n");
}

/*
 * Allow boot-time kmemleak disabling (enabled by default).
 */
2000
static int __init kmemleak_boot_config(char *str)
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2001 2002 2003 2004 2005
{
	if (!str)
		return -EINVAL;
	if (strcmp(str, "off") == 0)
		kmemleak_disable();
2006 2007 2008
	else if (strcmp(str, "on") == 0)
		kmemleak_skip_disable = 1;
	else
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		return -EINVAL;
	return 0;
}
early_param("kmemleak", kmemleak_boot_config);

/*
2015
 * Kmemleak initialization.
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 */
void __init kmemleak_init(void)
{
2019 2020 2021 2022 2023 2024 2025
#ifdef CONFIG_DEBUG_KMEMLEAK_DEFAULT_OFF
	if (!kmemleak_skip_disable) {
		kmemleak_disable();
		return;
	}
#endif

2026 2027 2028
	if (kmemleak_error)
		return;

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	jiffies_min_age = msecs_to_jiffies(MSECS_MIN_AGE);
	jiffies_scan_wait = msecs_to_jiffies(SECS_SCAN_WAIT * 1000);

	object_cache = KMEM_CACHE(kmemleak_object, SLAB_NOLEAKTRACE);
	scan_area_cache = KMEM_CACHE(kmemleak_scan_area, SLAB_NOLEAKTRACE);

2035 2036 2037 2038 2039 2040
	/* register the data/bss sections */
	create_object((unsigned long)_sdata, _edata - _sdata,
		      KMEMLEAK_GREY, GFP_ATOMIC);
	create_object((unsigned long)__bss_start, __bss_stop - __bss_start,
		      KMEMLEAK_GREY, GFP_ATOMIC);
	/* only register .data..ro_after_init if not within .data */
2041
	if (&__start_ro_after_init < &_sdata || &__end_ro_after_init > &_edata)
2042 2043 2044
		create_object((unsigned long)__start_ro_after_init,
			      __end_ro_after_init - __start_ro_after_init,
			      KMEMLEAK_GREY, GFP_ATOMIC);
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}

/*
 * Late initialization function.
 */
static int __init kmemleak_late_init(void)
{
2052
	kmemleak_initialized = 1;
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2054
	debugfs_create_file("kmemleak", 0644, NULL, NULL, &kmemleak_fops);
2055

2056
	if (kmemleak_error) {
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		/*
L
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2058
		 * Some error occurred and kmemleak was disabled. There is a
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2059 2060 2061 2062
		 * small chance that kmemleak_disable() was called immediately
		 * after setting kmemleak_initialized and we may end up with
		 * two clean-up threads but serialized by scan_mutex.
		 */
2063
		schedule_work(&cleanup_work);
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2064 2065 2066
		return -ENOMEM;
	}

2067 2068 2069 2070 2071
	if (IS_ENABLED(CONFIG_DEBUG_KMEMLEAK_AUTO_SCAN)) {
		mutex_lock(&scan_mutex);
		start_scan_thread();
		mutex_unlock(&scan_mutex);
	}
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2073 2074
	pr_info("Kernel memory leak detector initialized (mem pool available: %d)\n",
		mem_pool_free_count);
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	return 0;
}
late_initcall(kmemleak_late_init);