keyring.c 36.8 KB
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/* Keyring handling
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 *
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 * Copyright (C) 2004-2005, 2008, 2013 Red Hat, Inc. All Rights Reserved.
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 * Written by David Howells (dhowells@redhat.com)
 *
 * This program is free software; you can redistribute it and/or
 * modify it under the terms of the GNU General Public License
 * as published by the Free Software Foundation; either version
 * 2 of the License, or (at your option) any later version.
 */

#include <linux/module.h>
#include <linux/init.h>
#include <linux/sched.h>
#include <linux/slab.h>
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#include <linux/security.h>
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#include <linux/seq_file.h>
#include <linux/err.h>
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#include <keys/keyring-type.h>
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#include <keys/user-type.h>
#include <linux/assoc_array_priv.h>
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#include <linux/uaccess.h>
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#include "internal.h"

/*
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 * When plumbing the depths of the key tree, this sets a hard limit
 * set on how deep we're willing to go.
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 */
#define KEYRING_SEARCH_MAX_DEPTH 6

/*
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 * We keep all named keyrings in a hash to speed looking them up.
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 */
#define KEYRING_NAME_HASH_SIZE	(1 << 5)

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/*
 * We mark pointers we pass to the associative array with bit 1 set if
 * they're keyrings and clear otherwise.
 */
#define KEYRING_PTR_SUBTYPE	0x2UL

static inline bool keyring_ptr_is_keyring(const struct assoc_array_ptr *x)
{
	return (unsigned long)x & KEYRING_PTR_SUBTYPE;
}
static inline struct key *keyring_ptr_to_key(const struct assoc_array_ptr *x)
{
	void *object = assoc_array_ptr_to_leaf(x);
	return (struct key *)((unsigned long)object & ~KEYRING_PTR_SUBTYPE);
}
static inline void *keyring_key_to_ptr(struct key *key)
{
	if (key->type == &key_type_keyring)
		return (void *)((unsigned long)key | KEYRING_PTR_SUBTYPE);
	return key;
}

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static struct list_head	keyring_name_hash[KEYRING_NAME_HASH_SIZE];
static DEFINE_RWLOCK(keyring_name_lock);

static inline unsigned keyring_hash(const char *desc)
{
	unsigned bucket = 0;

	for (; *desc; desc++)
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		bucket += (unsigned char)*desc;
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	return bucket & (KEYRING_NAME_HASH_SIZE - 1);
}

/*
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 * The keyring key type definition.  Keyrings are simply keys of this type and
 * can be treated as ordinary keys in addition to having their own special
 * operations.
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 */
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static int keyring_preparse(struct key_preparsed_payload *prep);
static void keyring_free_preparse(struct key_preparsed_payload *prep);
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static int keyring_instantiate(struct key *keyring,
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			       struct key_preparsed_payload *prep);
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static void keyring_revoke(struct key *keyring);
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static void keyring_destroy(struct key *keyring);
static void keyring_describe(const struct key *keyring, struct seq_file *m);
static long keyring_read(const struct key *keyring,
			 char __user *buffer, size_t buflen);

struct key_type key_type_keyring = {
	.name		= "keyring",
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	.def_datalen	= 0,
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	.preparse	= keyring_preparse,
	.free_preparse	= keyring_free_preparse,
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	.instantiate	= keyring_instantiate,
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	.revoke		= keyring_revoke,
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	.destroy	= keyring_destroy,
	.describe	= keyring_describe,
	.read		= keyring_read,
};
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EXPORT_SYMBOL(key_type_keyring);

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/*
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 * Semaphore to serialise link/link calls to prevent two link calls in parallel
 * introducing a cycle.
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 */
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static DECLARE_RWSEM(keyring_serialise_link_sem);
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/*
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 * Publish the name of a keyring so that it can be found by name (if it has
 * one).
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 */
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static void keyring_publish_name(struct key *keyring)
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{
	int bucket;

	if (keyring->description) {
		bucket = keyring_hash(keyring->description);

		write_lock(&keyring_name_lock);

		if (!keyring_name_hash[bucket].next)
			INIT_LIST_HEAD(&keyring_name_hash[bucket]);

		list_add_tail(&keyring->type_data.link,
			      &keyring_name_hash[bucket]);

		write_unlock(&keyring_name_lock);
	}
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}
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/*
 * Preparse a keyring payload
 */
static int keyring_preparse(struct key_preparsed_payload *prep)
{
	return prep->datalen != 0 ? -EINVAL : 0;
}

/*
 * Free a preparse of a user defined key payload
 */
static void keyring_free_preparse(struct key_preparsed_payload *prep)
{
}

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/*
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 * Initialise a keyring.
 *
 * Returns 0 on success, -EINVAL if given any data.
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 */
static int keyring_instantiate(struct key *keyring,
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			       struct key_preparsed_payload *prep)
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{
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	assoc_array_init(&keyring->keys);
	/* make the keyring available by name if it has one */
	keyring_publish_name(keyring);
	return 0;
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}
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/*
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 * Multiply 64-bits by 32-bits to 96-bits and fold back to 64-bit.  Ideally we'd
 * fold the carry back too, but that requires inline asm.
 */
static u64 mult_64x32_and_fold(u64 x, u32 y)
{
	u64 hi = (u64)(u32)(x >> 32) * y;
	u64 lo = (u64)(u32)(x) * y;
	return lo + ((u64)(u32)hi << 32) + (u32)(hi >> 32);
}

/*
 * Hash a key type and description.
 */
static unsigned long hash_key_type_and_desc(const struct keyring_index_key *index_key)
{
	const unsigned level_shift = ASSOC_ARRAY_LEVEL_STEP;
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	const unsigned long fan_mask = ASSOC_ARRAY_FAN_MASK;
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	const char *description = index_key->description;
	unsigned long hash, type;
	u32 piece;
	u64 acc;
	int n, desc_len = index_key->desc_len;

	type = (unsigned long)index_key->type;

	acc = mult_64x32_and_fold(type, desc_len + 13);
	acc = mult_64x32_and_fold(acc, 9207);
	for (;;) {
		n = desc_len;
		if (n <= 0)
			break;
		if (n > 4)
			n = 4;
		piece = 0;
		memcpy(&piece, description, n);
		description += n;
		desc_len -= n;
		acc = mult_64x32_and_fold(acc, piece);
		acc = mult_64x32_and_fold(acc, 9207);
	}

	/* Fold the hash down to 32 bits if need be. */
	hash = acc;
	if (ASSOC_ARRAY_KEY_CHUNK_SIZE == 32)
		hash ^= acc >> 32;

	/* Squidge all the keyrings into a separate part of the tree to
	 * ordinary keys by making sure the lowest level segment in the hash is
	 * zero for keyrings and non-zero otherwise.
	 */
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	if (index_key->type != &key_type_keyring && (hash & fan_mask) == 0)
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		return hash | (hash >> (ASSOC_ARRAY_KEY_CHUNK_SIZE - level_shift)) | 1;
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	if (index_key->type == &key_type_keyring && (hash & fan_mask) != 0)
		return (hash + (hash << level_shift)) & ~fan_mask;
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	return hash;
}

/*
 * Build the next index key chunk.
 *
 * On 32-bit systems the index key is laid out as:
 *
 *	0	4	5	9...
 *	hash	desclen	typeptr	desc[]
 *
 * On 64-bit systems:
 *
 *	0	8	9	17...
 *	hash	desclen	typeptr	desc[]
 *
 * We return it one word-sized chunk at a time.
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 */
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static unsigned long keyring_get_key_chunk(const void *data, int level)
{
	const struct keyring_index_key *index_key = data;
	unsigned long chunk = 0;
	long offset = 0;
	int desc_len = index_key->desc_len, n = sizeof(chunk);

	level /= ASSOC_ARRAY_KEY_CHUNK_SIZE;
	switch (level) {
	case 0:
		return hash_key_type_and_desc(index_key);
	case 1:
		return ((unsigned long)index_key->type << 8) | desc_len;
	case 2:
		if (desc_len == 0)
			return (u8)((unsigned long)index_key->type >>
				    (ASSOC_ARRAY_KEY_CHUNK_SIZE - 8));
		n--;
		offset = 1;
	default:
		offset += sizeof(chunk) - 1;
		offset += (level - 3) * sizeof(chunk);
		if (offset >= desc_len)
			return 0;
		desc_len -= offset;
		if (desc_len > n)
			desc_len = n;
		offset += desc_len;
		do {
			chunk <<= 8;
			chunk |= ((u8*)index_key->description)[--offset];
		} while (--desc_len > 0);

		if (level == 2) {
			chunk <<= 8;
			chunk |= (u8)((unsigned long)index_key->type >>
				      (ASSOC_ARRAY_KEY_CHUNK_SIZE - 8));
		}
		return chunk;
	}
}

static unsigned long keyring_get_object_key_chunk(const void *object, int level)
{
	const struct key *key = keyring_ptr_to_key(object);
	return keyring_get_key_chunk(&key->index_key, level);
}

static bool keyring_compare_object(const void *object, const void *data)
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{
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	const struct keyring_index_key *index_key = data;
	const struct key *key = keyring_ptr_to_key(object);

	return key->index_key.type == index_key->type &&
		key->index_key.desc_len == index_key->desc_len &&
		memcmp(key->index_key.description, index_key->description,
		       index_key->desc_len) == 0;
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}
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/*
 * Compare the index keys of a pair of objects and determine the bit position
 * at which they differ - if they differ.
 */
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static int keyring_diff_objects(const void *object, const void *data)
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{
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	const struct key *key_a = keyring_ptr_to_key(object);
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	const struct keyring_index_key *a = &key_a->index_key;
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	const struct keyring_index_key *b = data;
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	unsigned long seg_a, seg_b;
	int level, i;

	level = 0;
	seg_a = hash_key_type_and_desc(a);
	seg_b = hash_key_type_and_desc(b);
	if ((seg_a ^ seg_b) != 0)
		goto differ;

	/* The number of bits contributed by the hash is controlled by a
	 * constant in the assoc_array headers.  Everything else thereafter we
	 * can deal with as being machine word-size dependent.
	 */
	level += ASSOC_ARRAY_KEY_CHUNK_SIZE / 8;
	seg_a = a->desc_len;
	seg_b = b->desc_len;
	if ((seg_a ^ seg_b) != 0)
		goto differ;

	/* The next bit may not work on big endian */
	level++;
	seg_a = (unsigned long)a->type;
	seg_b = (unsigned long)b->type;
	if ((seg_a ^ seg_b) != 0)
		goto differ;

	level += sizeof(unsigned long);
	if (a->desc_len == 0)
		goto same;

	i = 0;
	if (((unsigned long)a->description | (unsigned long)b->description) &
	    (sizeof(unsigned long) - 1)) {
		do {
			seg_a = *(unsigned long *)(a->description + i);
			seg_b = *(unsigned long *)(b->description + i);
			if ((seg_a ^ seg_b) != 0)
				goto differ_plus_i;
			i += sizeof(unsigned long);
		} while (i < (a->desc_len & (sizeof(unsigned long) - 1)));
	}

	for (; i < a->desc_len; i++) {
		seg_a = *(unsigned char *)(a->description + i);
		seg_b = *(unsigned char *)(b->description + i);
		if ((seg_a ^ seg_b) != 0)
			goto differ_plus_i;
	}

same:
	return -1;

differ_plus_i:
	level += i;
differ:
	i = level * 8 + __ffs(seg_a ^ seg_b);
	return i;
}

/*
 * Free an object after stripping the keyring flag off of the pointer.
 */
static void keyring_free_object(void *object)
{
	key_put(keyring_ptr_to_key(object));
}

/*
 * Operations for keyring management by the index-tree routines.
 */
static const struct assoc_array_ops keyring_assoc_array_ops = {
	.get_key_chunk		= keyring_get_key_chunk,
	.get_object_key_chunk	= keyring_get_object_key_chunk,
	.compare_object		= keyring_compare_object,
	.diff_objects		= keyring_diff_objects,
	.free_object		= keyring_free_object,
};

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/*
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 * Clean up a keyring when it is destroyed.  Unpublish its name if it had one
 * and dispose of its data.
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 *
 * The garbage collector detects the final key_put(), removes the keyring from
 * the serial number tree and then does RCU synchronisation before coming here,
 * so we shouldn't need to worry about code poking around here with the RCU
 * readlock held by this time.
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 */
static void keyring_destroy(struct key *keyring)
{
	if (keyring->description) {
		write_lock(&keyring_name_lock);
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		if (keyring->type_data.link.next != NULL &&
		    !list_empty(&keyring->type_data.link))
			list_del(&keyring->type_data.link);

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		write_unlock(&keyring_name_lock);
	}

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	assoc_array_destroy(&keyring->keys, &keyring_assoc_array_ops);
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}
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/*
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 * Describe a keyring for /proc.
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 */
static void keyring_describe(const struct key *keyring, struct seq_file *m)
{
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	if (keyring->description)
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		seq_puts(m, keyring->description);
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	else
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		seq_puts(m, "[anon]");

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	if (key_is_instantiated(keyring)) {
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		if (keyring->keys.nr_leaves_on_tree != 0)
			seq_printf(m, ": %lu", keyring->keys.nr_leaves_on_tree);
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		else
			seq_puts(m, ": empty");
	}
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}
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struct keyring_read_iterator_context {
	size_t			qty;
	size_t			count;
	key_serial_t __user	*buffer;
};

static int keyring_read_iterator(const void *object, void *data)
{
	struct keyring_read_iterator_context *ctx = data;
	const struct key *key = keyring_ptr_to_key(object);
	int ret;

	kenter("{%s,%d},,{%zu/%zu}",
	       key->type->name, key->serial, ctx->count, ctx->qty);

	if (ctx->count >= ctx->qty)
		return 1;

	ret = put_user(key->serial, ctx->buffer);
	if (ret < 0)
		return ret;
	ctx->buffer++;
	ctx->count += sizeof(key->serial);
	return 0;
}

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/*
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 * Read a list of key IDs from the keyring's contents in binary form
 *
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 * The keyring's semaphore is read-locked by the caller.  This prevents someone
 * from modifying it under us - which could cause us to read key IDs multiple
 * times.
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 */
static long keyring_read(const struct key *keyring,
			 char __user *buffer, size_t buflen)
{
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	struct keyring_read_iterator_context ctx;
	unsigned long nr_keys;
	int ret;
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	kenter("{%d},,%zu", key_serial(keyring), buflen);

	if (buflen & (sizeof(key_serial_t) - 1))
		return -EINVAL;

	nr_keys = keyring->keys.nr_leaves_on_tree;
	if (nr_keys == 0)
		return 0;
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	/* Calculate how much data we could return */
	ctx.qty = nr_keys * sizeof(key_serial_t);

	if (!buffer || !buflen)
		return ctx.qty;

	if (buflen > ctx.qty)
		ctx.qty = buflen;

	/* Copy the IDs of the subscribed keys into the buffer */
	ctx.buffer = (key_serial_t __user *)buffer;
	ctx.count = 0;
	ret = assoc_array_iterate(&keyring->keys, keyring_read_iterator, &ctx);
	if (ret < 0) {
		kleave(" = %d [iterate]", ret);
		return ret;
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	}

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	kleave(" = %zu [ok]", ctx.count);
	return ctx.count;
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}
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/*
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 * Allocate a keyring and link into the destination keyring.
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 */
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struct key *keyring_alloc(const char *description, kuid_t uid, kgid_t gid,
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			  const struct cred *cred, key_perm_t perm,
			  unsigned long flags, struct key *dest)
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{
	struct key *keyring;
	int ret;

	keyring = key_alloc(&key_type_keyring, description,
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			    uid, gid, cred, perm, flags);
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	if (!IS_ERR(keyring)) {
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		ret = key_instantiate_and_link(keyring, NULL, 0, dest, NULL);
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		if (ret < 0) {
			key_put(keyring);
			keyring = ERR_PTR(ret);
		}
	}

	return keyring;
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}
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EXPORT_SYMBOL(keyring_alloc);
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/*
 * By default, we keys found by getting an exact match on their descriptions.
 */
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bool key_default_cmp(const struct key *key,
		     const struct key_match_data *match_data)
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{
	return strcmp(key->description, match_data->raw_data) == 0;
}

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/*
 * Iteration function to consider each key found.
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 */
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static int keyring_search_iterator(const void *object, void *iterator_data)
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{
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	struct keyring_search_context *ctx = iterator_data;
	const struct key *key = keyring_ptr_to_key(object);
	unsigned long kflags = key->flags;
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	kenter("{%d}", key->serial);
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	/* ignore keys not of this type */
	if (key->type != ctx->index_key.type) {
		kleave(" = 0 [!type]");
		return 0;
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	}
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	/* skip invalidated, revoked and expired keys */
	if (ctx->flags & KEYRING_SEARCH_DO_STATE_CHECK) {
		if (kflags & ((1 << KEY_FLAG_INVALIDATED) |
			      (1 << KEY_FLAG_REVOKED))) {
			ctx->result = ERR_PTR(-EKEYREVOKED);
			kleave(" = %d [invrev]", ctx->skipped_ret);
			goto skipped;
		}
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		if (key->expiry && ctx->now.tv_sec >= key->expiry) {
			ctx->result = ERR_PTR(-EKEYEXPIRED);
			kleave(" = %d [expire]", ctx->skipped_ret);
			goto skipped;
		}
	}
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	/* keys that don't match */
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	if (!ctx->match_data.cmp(key, &ctx->match_data)) {
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		kleave(" = 0 [!match]");
		return 0;
	}
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	/* key must have search permissions */
	if (!(ctx->flags & KEYRING_SEARCH_NO_CHECK_PERM) &&
	    key_task_permission(make_key_ref(key, ctx->possessed),
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				ctx->cred, KEY_NEED_SEARCH) < 0) {
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		ctx->result = ERR_PTR(-EACCES);
		kleave(" = %d [!perm]", ctx->skipped_ret);
		goto skipped;
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	}

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	if (ctx->flags & KEYRING_SEARCH_DO_STATE_CHECK) {
		/* we set a different error code if we pass a negative key */
		if (kflags & (1 << KEY_FLAG_NEGATIVE)) {
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			smp_rmb();
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			ctx->result = ERR_PTR(key->type_data.reject_error);
			kleave(" = %d [neg]", ctx->skipped_ret);
			goto skipped;
		}
	}
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	/* Found */
	ctx->result = make_key_ref(key, ctx->possessed);
	kleave(" = 1 [found]");
	return 1;
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skipped:
	return ctx->skipped_ret;
}
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/*
 * Search inside a keyring for a key.  We can search by walking to it
 * directly based on its index-key or we can iterate over the entire
 * tree looking for it, based on the match function.
 */
static int search_keyring(struct key *keyring, struct keyring_search_context *ctx)
{
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	if (ctx->match_data.lookup_type == KEYRING_SEARCH_LOOKUP_DIRECT) {
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		const void *object;

		object = assoc_array_find(&keyring->keys,
					  &keyring_assoc_array_ops,
					  &ctx->index_key);
		return object ? ctx->iterator(object, ctx) : 0;
	}
	return assoc_array_iterate(&keyring->keys, ctx->iterator, ctx);
}
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607 608 609 610 611 612 613 614 615 616 617 618
/*
 * Search a tree of keyrings that point to other keyrings up to the maximum
 * depth.
 */
static bool search_nested_keyrings(struct key *keyring,
				   struct keyring_search_context *ctx)
{
	struct {
		struct key *keyring;
		struct assoc_array_node *node;
		int slot;
	} stack[KEYRING_SEARCH_MAX_DEPTH];
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Linus Torvalds 已提交
619

620 621 622 623 624
	struct assoc_array_shortcut *shortcut;
	struct assoc_array_node *node;
	struct assoc_array_ptr *ptr;
	struct key *key;
	int sp = 0, slot;
L
Linus Torvalds 已提交
625

626 627 628 629
	kenter("{%d},{%s,%s}",
	       keyring->serial,
	       ctx->index_key.type->name,
	       ctx->index_key.description);
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Linus Torvalds 已提交
630

631 632 633 634
#define STATE_CHECKS (KEYRING_SEARCH_NO_STATE_CHECK | KEYRING_SEARCH_DO_STATE_CHECK)
	BUG_ON((ctx->flags & STATE_CHECKS) == 0 ||
	       (ctx->flags & STATE_CHECKS) == STATE_CHECKS);

635 636
	if (ctx->index_key.description)
		ctx->index_key.desc_len = strlen(ctx->index_key.description);
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637

638 639 640
	/* Check to see if this top-level keyring is what we are looking for
	 * and whether it is valid or not.
	 */
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David Howells 已提交
641
	if (ctx->match_data.lookup_type == KEYRING_SEARCH_LOOKUP_ITERATE ||
642 643 644 645
	    keyring_compare_object(keyring, &ctx->index_key)) {
		ctx->skipped_ret = 2;
		switch (ctx->iterator(keyring_key_to_ptr(keyring), ctx)) {
		case 1:
D
David Howells 已提交
646
			goto found;
647 648 649 650
		case 2:
			return false;
		default:
			break;
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Linus Torvalds 已提交
651
		}
652
	}
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653

654 655 656 657 658 659 660 661 662 663 664 665 666
	ctx->skipped_ret = 0;

	/* Start processing a new keyring */
descend_to_keyring:
	kdebug("descend to %d", keyring->serial);
	if (keyring->flags & ((1 << KEY_FLAG_INVALIDATED) |
			      (1 << KEY_FLAG_REVOKED)))
		goto not_this_keyring;

	/* Search through the keys in this keyring before its searching its
	 * subtrees.
	 */
	if (search_keyring(keyring, ctx))
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667 668
		goto found;

669 670 671 672 673 674 675 676 677 678 679
	/* Then manually iterate through the keyrings nested in this one.
	 *
	 * Start from the root node of the index tree.  Because of the way the
	 * hash function has been set up, keyrings cluster on the leftmost
	 * branch of the root node (root slot 0) or in the root node itself.
	 * Non-keyrings avoid the leftmost branch of the root entirely (root
	 * slots 1-15).
	 */
	ptr = ACCESS_ONCE(keyring->keys.root);
	if (!ptr)
		goto not_this_keyring;
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680

681 682 683 684
	if (assoc_array_ptr_is_shortcut(ptr)) {
		/* If the root is a shortcut, either the keyring only contains
		 * keyring pointers (everything clusters behind root slot 0) or
		 * doesn't contain any keyring pointers.
L
Linus Torvalds 已提交
685
		 */
686 687 688 689 690 691 692 693 694 695 696 697 698 699 700 701 702 703 704 705 706 707 708 709 710 711 712 713
		shortcut = assoc_array_ptr_to_shortcut(ptr);
		smp_read_barrier_depends();
		if ((shortcut->index_key[0] & ASSOC_ARRAY_FAN_MASK) != 0)
			goto not_this_keyring;

		ptr = ACCESS_ONCE(shortcut->next_node);
		node = assoc_array_ptr_to_node(ptr);
		goto begin_node;
	}

	node = assoc_array_ptr_to_node(ptr);
	smp_read_barrier_depends();

	ptr = node->slots[0];
	if (!assoc_array_ptr_is_meta(ptr))
		goto begin_node;

descend_to_node:
	/* Descend to a more distal node in this keyring's content tree and go
	 * through that.
	 */
	kdebug("descend");
	if (assoc_array_ptr_is_shortcut(ptr)) {
		shortcut = assoc_array_ptr_to_shortcut(ptr);
		smp_read_barrier_depends();
		ptr = ACCESS_ONCE(shortcut->next_node);
		BUG_ON(!assoc_array_ptr_is_node(ptr));
	}
714
	node = assoc_array_ptr_to_node(ptr);
715 716 717 718 719 720 721 722 723 724 725 726 727 728

begin_node:
	kdebug("begin_node");
	smp_read_barrier_depends();
	slot = 0;
ascend_to_node:
	/* Go through the slots in a node */
	for (; slot < ASSOC_ARRAY_FAN_OUT; slot++) {
		ptr = ACCESS_ONCE(node->slots[slot]);

		if (assoc_array_ptr_is_meta(ptr) && node->back_pointer)
			goto descend_to_node;

		if (!keyring_ptr_is_keyring(ptr))
729
			continue;
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Linus Torvalds 已提交
730

731 732 733 734 735 736 737 738 739 740 741 742 743
		key = keyring_ptr_to_key(ptr);

		if (sp >= KEYRING_SEARCH_MAX_DEPTH) {
			if (ctx->flags & KEYRING_SEARCH_DETECT_TOO_DEEP) {
				ctx->result = ERR_PTR(-ELOOP);
				return false;
			}
			goto not_this_keyring;
		}

		/* Search a nested keyring */
		if (!(ctx->flags & KEYRING_SEARCH_NO_CHECK_PERM) &&
		    key_task_permission(make_key_ref(key, ctx->possessed),
744
					ctx->cred, KEY_NEED_SEARCH) < 0)
745
			continue;
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746 747

		/* stack the current position */
748
		stack[sp].keyring = keyring;
749 750
		stack[sp].node = node;
		stack[sp].slot = slot;
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751 752 753 754
		sp++;

		/* begin again with the new keyring */
		keyring = key;
755 756 757 758 759 760 761 762 763 764 765 766 767 768 769 770 771 772 773 774 775 776 777 778 779 780 781 782
		goto descend_to_keyring;
	}

	/* We've dealt with all the slots in the current node, so now we need
	 * to ascend to the parent and continue processing there.
	 */
	ptr = ACCESS_ONCE(node->back_pointer);
	slot = node->parent_slot;

	if (ptr && assoc_array_ptr_is_shortcut(ptr)) {
		shortcut = assoc_array_ptr_to_shortcut(ptr);
		smp_read_barrier_depends();
		ptr = ACCESS_ONCE(shortcut->back_pointer);
		slot = shortcut->parent_slot;
	}
	if (!ptr)
		goto not_this_keyring;
	node = assoc_array_ptr_to_node(ptr);
	smp_read_barrier_depends();
	slot++;

	/* If we've ascended to the root (zero backpointer), we must have just
	 * finished processing the leftmost branch rather than the root slots -
	 * so there can't be any more keyrings for us to find.
	 */
	if (node->back_pointer) {
		kdebug("ascend %d", slot);
		goto ascend_to_node;
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783 784
	}

785 786 787
	/* The keyring we're looking at was disqualified or didn't contain a
	 * matching key.
	 */
788
not_this_keyring:
789 790 791 792
	kdebug("not_this_keyring %d", sp);
	if (sp <= 0) {
		kleave(" = false");
		return false;
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793 794
	}

795 796 797 798 799 800 801
	/* Resume the processing of a keyring higher up in the tree */
	sp--;
	keyring = stack[sp].keyring;
	node = stack[sp].node;
	slot = stack[sp].slot + 1;
	kdebug("ascend to %d [%d]", keyring->serial, slot);
	goto ascend_to_node;
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802

803
	/* We found a viable match */
804
found:
805
	key = key_ref_to_ptr(ctx->result);
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806
	key_check(key);
807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835 836 837 838 839 840 841 842 843 844 845 846 847 848 849 850 851 852 853 854 855 856 857 858 859 860 861 862 863 864 865
	if (!(ctx->flags & KEYRING_SEARCH_NO_UPDATE_TIME)) {
		key->last_used_at = ctx->now.tv_sec;
		keyring->last_used_at = ctx->now.tv_sec;
		while (sp > 0)
			stack[--sp].keyring->last_used_at = ctx->now.tv_sec;
	}
	kleave(" = true");
	return true;
}

/**
 * keyring_search_aux - Search a keyring tree for a key matching some criteria
 * @keyring_ref: A pointer to the keyring with possession indicator.
 * @ctx: The keyring search context.
 *
 * Search the supplied keyring tree for a key that matches the criteria given.
 * The root keyring and any linked keyrings must grant Search permission to the
 * caller to be searchable and keys can only be found if they too grant Search
 * to the caller. The possession flag on the root keyring pointer controls use
 * of the possessor bits in permissions checking of the entire tree.  In
 * addition, the LSM gets to forbid keyring searches and key matches.
 *
 * The search is performed as a breadth-then-depth search up to the prescribed
 * limit (KEYRING_SEARCH_MAX_DEPTH).
 *
 * Keys are matched to the type provided and are then filtered by the match
 * function, which is given the description to use in any way it sees fit.  The
 * match function may use any attributes of a key that it wishes to to
 * determine the match.  Normally the match function from the key type would be
 * used.
 *
 * RCU can be used to prevent the keyring key lists from disappearing without
 * the need to take lots of locks.
 *
 * Returns a pointer to the found key and increments the key usage count if
 * successful; -EAGAIN if no matching keys were found, or if expired or revoked
 * keys were found; -ENOKEY if only negative keys were found; -ENOTDIR if the
 * specified keyring wasn't a keyring.
 *
 * In the case of a successful return, the possession attribute from
 * @keyring_ref is propagated to the returned key reference.
 */
key_ref_t keyring_search_aux(key_ref_t keyring_ref,
			     struct keyring_search_context *ctx)
{
	struct key *keyring;
	long err;

	ctx->iterator = keyring_search_iterator;
	ctx->possessed = is_key_possessed(keyring_ref);
	ctx->result = ERR_PTR(-EAGAIN);

	keyring = key_ref_to_ptr(keyring_ref);
	key_check(keyring);

	if (keyring->type != &key_type_keyring)
		return ERR_PTR(-ENOTDIR);

	if (!(ctx->flags & KEYRING_SEARCH_NO_CHECK_PERM)) {
866
		err = key_task_permission(keyring_ref, ctx->cred, KEY_NEED_SEARCH);
867 868 869 870 871 872 873 874
		if (err < 0)
			return ERR_PTR(err);
	}

	rcu_read_lock();
	ctx->now = current_kernel_time();
	if (search_nested_keyrings(keyring, ctx))
		__key_get(key_ref_to_ptr(ctx->result));
875
	rcu_read_unlock();
876
	return ctx->result;
877
}
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878

879 880 881 882 883 884 885
/**
 * keyring_search - Search the supplied keyring tree for a matching key
 * @keyring: The root of the keyring tree to be searched.
 * @type: The type of keyring we want to find.
 * @description: The name of the keyring we want to find.
 *
 * As keyring_search_aux() above, but using the current task's credentials and
886
 * type's default matching function and preferred search method.
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887
 */
888 889 890
key_ref_t keyring_search(key_ref_t keyring,
			 struct key_type *type,
			 const char *description)
L
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891
{
892 893 894 895
	struct keyring_search_context ctx = {
		.index_key.type		= type,
		.index_key.description	= description,
		.cred			= current_cred(),
896
		.match_data.cmp		= key_default_cmp,
D
David Howells 已提交
897 898 899
		.match_data.raw_data	= description,
		.match_data.lookup_type	= KEYRING_SEARCH_LOOKUP_DIRECT,
		.flags			= KEYRING_SEARCH_DO_STATE_CHECK,
900
	};
D
David Howells 已提交
901 902
	key_ref_t key;
	int ret;
903

D
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904 905 906 907 908 909 910 911 912 913 914
	if (type->match_preparse) {
		ret = type->match_preparse(&ctx.match_data);
		if (ret < 0)
			return ERR_PTR(ret);
	}

	key = keyring_search_aux(keyring, &ctx);

	if (type->match_free)
		type->match_free(&ctx.match_data);
	return key;
915
}
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916 917 918
EXPORT_SYMBOL(keyring_search);

/*
919
 * Search the given keyring for a key that might be updated.
920 921
 *
 * The caller must guarantee that the keyring is a keyring and that the
922 923
 * permission is granted to modify the keyring as no check is made here.  The
 * caller must also hold a lock on the keyring semaphore.
924 925
 *
 * Returns a pointer to the found key with usage count incremented if
926 927
 * successful and returns NULL if not found.  Revoked and invalidated keys are
 * skipped over.
928 929 930
 *
 * If successful, the possession indicator is propagated from the keyring ref
 * to the returned key reference.
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931
 */
932 933
key_ref_t find_key_to_update(key_ref_t keyring_ref,
			     const struct keyring_index_key *index_key)
L
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934
{
935
	struct key *keyring, *key;
936
	const void *object;
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937

938 939
	keyring = key_ref_to_ptr(keyring_ref);

940 941
	kenter("{%d},{%s,%s}",
	       keyring->serial, index_key->type->name, index_key->description);
942

943 944
	object = assoc_array_find(&keyring->keys, &keyring_assoc_array_ops,
				  index_key);
L
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945

946 947 948 949 950
	if (object)
		goto found;

	kleave(" = NULL");
	return NULL;
L
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951

952
found:
953 954 955 956 957 958
	key = keyring_ptr_to_key(object);
	if (key->flags & ((1 << KEY_FLAG_INVALIDATED) |
			  (1 << KEY_FLAG_REVOKED))) {
		kleave(" = NULL [x]");
		return NULL;
	}
959
	__key_get(key);
960 961
	kleave(" = {%d}", key->serial);
	return make_key_ref(key, is_key_possessed(keyring_ref));
962
}
L
Linus Torvalds 已提交
963 964

/*
965 966 967 968 969 970 971 972 973
 * Find a keyring with the specified name.
 *
 * All named keyrings in the current user namespace are searched, provided they
 * grant Search permission directly to the caller (unless this check is
 * skipped).  Keyrings whose usage points have reached zero or who have been
 * revoked are skipped.
 *
 * Returns a pointer to the keyring with the keyring's refcount having being
 * incremented on success.  -ENOKEY is returned if a key could not be found.
L
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974
 */
975
struct key *find_keyring_by_name(const char *name, bool skip_perm_check)
L
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976 977 978 979 980
{
	struct key *keyring;
	int bucket;

	if (!name)
981
		return ERR_PTR(-EINVAL);
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982 983 984 985 986 987 988 989 990 991 992 993

	bucket = keyring_hash(name);

	read_lock(&keyring_name_lock);

	if (keyring_name_hash[bucket].next) {
		/* search this hash bucket for a keyring with a matching name
		 * that's readable and that hasn't been revoked */
		list_for_each_entry(keyring,
				    &keyring_name_hash[bucket],
				    type_data.link
				    ) {
994
			if (!kuid_has_mapping(current_user_ns(), keyring->user->uid))
995 996
				continue;

997
			if (test_bit(KEY_FLAG_REVOKED, &keyring->flags))
L
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998 999 1000 1001 1002
				continue;

			if (strcmp(keyring->description, name) != 0)
				continue;

1003 1004
			if (!skip_perm_check &&
			    key_permission(make_key_ref(keyring, 0),
1005
					   KEY_NEED_SEARCH) < 0)
L
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1006 1007
				continue;

1008 1009 1010 1011 1012
			/* we've got a match but we might end up racing with
			 * key_cleanup() if the keyring is currently 'dead'
			 * (ie. it has a zero usage count) */
			if (!atomic_inc_not_zero(&keyring->usage))
				continue;
1013
			keyring->last_used_at = current_kernel_time().tv_sec;
1014
			goto out;
L
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1015 1016 1017 1018
		}
	}

	keyring = ERR_PTR(-ENOKEY);
1019 1020
out:
	read_unlock(&keyring_name_lock);
L
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1021
	return keyring;
1022
}
L
Linus Torvalds 已提交
1023

1024 1025 1026 1027 1028 1029 1030 1031
static int keyring_detect_cycle_iterator(const void *object,
					 void *iterator_data)
{
	struct keyring_search_context *ctx = iterator_data;
	const struct key *key = keyring_ptr_to_key(object);

	kenter("{%d}", key->serial);

1032 1033
	/* We might get a keyring with matching index-key that is nonetheless a
	 * different keyring. */
D
David Howells 已提交
1034
	if (key != ctx->match_data.raw_data)
1035 1036
		return 0;

1037 1038 1039 1040
	ctx->result = ERR_PTR(-EDEADLK);
	return 1;
}

L
Linus Torvalds 已提交
1041
/*
1042 1043 1044 1045 1046
 * See if a cycle will will be created by inserting acyclic tree B in acyclic
 * tree A at the topmost level (ie: as a direct child of A).
 *
 * Since we are adding B to A at the top level, checking for cycles should just
 * be a matter of seeing if node A is somewhere in tree B.
L
Linus Torvalds 已提交
1047 1048 1049
 */
static int keyring_detect_cycle(struct key *A, struct key *B)
{
1050
	struct keyring_search_context ctx = {
D
David Howells 已提交
1051 1052 1053 1054 1055 1056 1057 1058
		.index_key		= A->index_key,
		.match_data.raw_data	= A,
		.match_data.lookup_type = KEYRING_SEARCH_LOOKUP_DIRECT,
		.iterator		= keyring_detect_cycle_iterator,
		.flags			= (KEYRING_SEARCH_NO_STATE_CHECK |
					   KEYRING_SEARCH_NO_UPDATE_TIME |
					   KEYRING_SEARCH_NO_CHECK_PERM |
					   KEYRING_SEARCH_DETECT_TOO_DEEP),
1059
	};
L
Linus Torvalds 已提交
1060

1061
	rcu_read_lock();
1062
	search_nested_keyrings(B, &ctx);
1063
	rcu_read_unlock();
1064
	return PTR_ERR(ctx.result) == -EAGAIN ? 0 : PTR_ERR(ctx.result);
1065
}
1066

L
Linus Torvalds 已提交
1067
/*
1068
 * Preallocate memory so that a key can be linked into to a keyring.
L
Linus Torvalds 已提交
1069
 */
1070 1071 1072
int __key_link_begin(struct key *keyring,
		     const struct keyring_index_key *index_key,
		     struct assoc_array_edit **_edit)
1073
	__acquires(&keyring->sem)
D
David Howells 已提交
1074
	__acquires(&keyring_serialise_link_sem)
L
Linus Torvalds 已提交
1075
{
1076 1077
	struct assoc_array_edit *edit;
	int ret;
L
Linus Torvalds 已提交
1078

1079
	kenter("%d,%s,%s,",
1080 1081 1082
	       keyring->serial, index_key->type->name, index_key->description);

	BUG_ON(index_key->desc_len == 0);
L
Linus Torvalds 已提交
1083 1084

	if (keyring->type != &key_type_keyring)
1085 1086 1087 1088 1089 1090 1091
		return -ENOTDIR;

	down_write(&keyring->sem);

	ret = -EKEYREVOKED;
	if (test_bit(KEY_FLAG_REVOKED, &keyring->flags))
		goto error_krsem;
L
Linus Torvalds 已提交
1092

1093 1094
	/* serialise link/link calls to prevent parallel calls causing a cycle
	 * when linking two keyring in opposite orders */
1095
	if (index_key->type == &key_type_keyring)
1096 1097
		down_write(&keyring_serialise_link_sem);

1098 1099 1100 1101 1102 1103 1104 1105 1106
	/* Create an edit script that will insert/replace the key in the
	 * keyring tree.
	 */
	edit = assoc_array_insert(&keyring->keys,
				  &keyring_assoc_array_ops,
				  index_key,
				  NULL);
	if (IS_ERR(edit)) {
		ret = PTR_ERR(edit);
1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117
		goto error_sem;
	}

	/* If we're not replacing a link in-place then we're going to need some
	 * extra quota.
	 */
	if (!edit->dead_leaf) {
		ret = key_payload_reserve(keyring,
					  keyring->datalen + KEYQUOTA_LINK_BYTES);
		if (ret < 0)
			goto error_cancel;
L
Linus Torvalds 已提交
1118 1119
	}

1120
	*_edit = edit;
1121 1122
	kleave(" = 0");
	return 0;
L
Linus Torvalds 已提交
1123

1124 1125
error_cancel:
	assoc_array_cancel_edit(edit);
1126
error_sem:
1127
	if (index_key->type == &key_type_keyring)
1128 1129 1130 1131 1132 1133
		up_write(&keyring_serialise_link_sem);
error_krsem:
	up_write(&keyring->sem);
	kleave(" = %d", ret);
	return ret;
}
L
Linus Torvalds 已提交
1134

1135
/*
1136 1137 1138 1139
 * Check already instantiated keys aren't going to be a problem.
 *
 * The caller must have called __key_link_begin(). Don't need to call this for
 * keys that were created since __key_link_begin() was called.
1140 1141 1142 1143 1144 1145 1146 1147 1148 1149 1150
 */
int __key_link_check_live_key(struct key *keyring, struct key *key)
{
	if (key->type == &key_type_keyring)
		/* check that we aren't going to create a cycle by linking one
		 * keyring to another */
		return keyring_detect_cycle(keyring, key);
	return 0;
}

/*
1151 1152 1153 1154 1155 1156
 * Link a key into to a keyring.
 *
 * Must be called with __key_link_begin() having being called.  Discards any
 * already extant link to matching key if there is one, so that each keyring
 * holds at most one link to any given key of a particular type+description
 * combination.
1157
 */
1158
void __key_link(struct key *key, struct assoc_array_edit **_edit)
1159
{
1160
	__key_get(key);
1161 1162 1163
	assoc_array_insert_set_object(*_edit, keyring_key_to_ptr(key));
	assoc_array_apply_edit(*_edit);
	*_edit = NULL;
1164 1165 1166
}

/*
1167 1168 1169
 * Finish linking a key into to a keyring.
 *
 * Must be called with __key_link_begin() having being called.
1170
 */
1171 1172
void __key_link_end(struct key *keyring,
		    const struct keyring_index_key *index_key,
1173
		    struct assoc_array_edit *edit)
1174
	__releases(&keyring->sem)
D
David Howells 已提交
1175
	__releases(&keyring_serialise_link_sem)
1176
{
1177
	BUG_ON(index_key->type == NULL);
1178
	kenter("%d,%s,", keyring->serial, index_key->type->name);
1179

1180
	if (index_key->type == &key_type_keyring)
1181 1182
		up_write(&keyring_serialise_link_sem);

1183
	if (edit && !edit->dead_leaf) {
1184 1185 1186
		key_payload_reserve(keyring,
				    keyring->datalen - KEYQUOTA_LINK_BYTES);
		assoc_array_cancel_edit(edit);
1187 1188 1189
	}
	up_write(&keyring->sem);
}
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Linus Torvalds 已提交
1190

1191 1192 1193 1194 1195 1196 1197 1198 1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209
/**
 * key_link - Link a key to a keyring
 * @keyring: The keyring to make the link in.
 * @key: The key to link to.
 *
 * Make a link in a keyring to a key, such that the keyring holds a reference
 * on that key and the key can potentially be found by searching that keyring.
 *
 * This function will write-lock the keyring's semaphore and will consume some
 * of the user's key data quota to hold the link.
 *
 * Returns 0 if successful, -ENOTDIR if the keyring isn't a keyring,
 * -EKEYREVOKED if the keyring has been revoked, -ENFILE if the keyring is
 * full, -EDQUOT if there is insufficient key data quota remaining to add
 * another link or -ENOMEM if there's insufficient memory.
 *
 * It is assumed that the caller has checked that it is permitted for a link to
 * be made (the keyring should have Write permission and the key Link
 * permission).
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Linus Torvalds 已提交
1210 1211 1212
 */
int key_link(struct key *keyring, struct key *key)
{
1213
	struct assoc_array_edit *edit;
L
Linus Torvalds 已提交
1214 1215
	int ret;

1216 1217
	kenter("{%d,%d}", keyring->serial, atomic_read(&keyring->usage));

L
Linus Torvalds 已提交
1218 1219 1220
	key_check(keyring);
	key_check(key);

1221 1222 1223 1224
	if (test_bit(KEY_FLAG_TRUSTED_ONLY, &keyring->flags) &&
	    !test_bit(KEY_FLAG_TRUSTED, &key->flags))
		return -EPERM;

1225
	ret = __key_link_begin(keyring, &key->index_key, &edit);
1226
	if (ret == 0) {
1227
		kdebug("begun {%d,%d}", keyring->serial, atomic_read(&keyring->usage));
1228 1229
		ret = __key_link_check_live_key(keyring, key);
		if (ret == 0)
1230 1231
			__key_link(key, &edit);
		__key_link_end(keyring, &key->index_key, edit);
1232
	}
L
Linus Torvalds 已提交
1233

1234
	kleave(" = %d {%d,%d}", ret, keyring->serial, atomic_read(&keyring->usage));
L
Linus Torvalds 已提交
1235
	return ret;
1236
}
L
Linus Torvalds 已提交
1237 1238
EXPORT_SYMBOL(key_link);

1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254
/**
 * key_unlink - Unlink the first link to a key from a keyring.
 * @keyring: The keyring to remove the link from.
 * @key: The key the link is to.
 *
 * Remove a link from a keyring to a key.
 *
 * This function will write-lock the keyring's semaphore.
 *
 * Returns 0 if successful, -ENOTDIR if the keyring isn't a keyring, -ENOENT if
 * the key isn't linked to by the keyring or -ENOMEM if there's insufficient
 * memory.
 *
 * It is assumed that the caller has checked that it is permitted for a link to
 * be removed (the keyring should have Write permission; no permissions are
 * required on the key).
L
Linus Torvalds 已提交
1255 1256 1257
 */
int key_unlink(struct key *keyring, struct key *key)
{
1258 1259
	struct assoc_array_edit *edit;
	int ret;
L
Linus Torvalds 已提交
1260 1261 1262 1263 1264

	key_check(keyring);
	key_check(key);

	if (keyring->type != &key_type_keyring)
1265
		return -ENOTDIR;
L
Linus Torvalds 已提交
1266 1267 1268

	down_write(&keyring->sem);

1269 1270 1271 1272 1273
	edit = assoc_array_delete(&keyring->keys, &keyring_assoc_array_ops,
				  &key->index_key);
	if (IS_ERR(edit)) {
		ret = PTR_ERR(edit);
		goto error;
L
Linus Torvalds 已提交
1274 1275
	}
	ret = -ENOENT;
1276 1277
	if (edit == NULL)
		goto error;
L
Linus Torvalds 已提交
1278

1279
	assoc_array_apply_edit(edit);
1280
	key_payload_reserve(keyring, keyring->datalen - KEYQUOTA_LINK_BYTES);
L
Linus Torvalds 已提交
1281 1282
	ret = 0;

1283 1284
error:
	up_write(&keyring->sem);
1285
	return ret;
1286
}
L
Linus Torvalds 已提交
1287 1288
EXPORT_SYMBOL(key_unlink);

1289 1290 1291 1292 1293 1294 1295
/**
 * keyring_clear - Clear a keyring
 * @keyring: The keyring to clear.
 *
 * Clear the contents of the specified keyring.
 *
 * Returns 0 if successful or -ENOTDIR if the keyring isn't a keyring.
L
Linus Torvalds 已提交
1296 1297 1298
 */
int keyring_clear(struct key *keyring)
{
1299
	struct assoc_array_edit *edit;
1300
	int ret;
L
Linus Torvalds 已提交
1301

1302 1303
	if (keyring->type != &key_type_keyring)
		return -ENOTDIR;
L
Linus Torvalds 已提交
1304

1305
	down_write(&keyring->sem);
L
Linus Torvalds 已提交
1306

1307 1308 1309 1310 1311 1312 1313
	edit = assoc_array_clear(&keyring->keys, &keyring_assoc_array_ops);
	if (IS_ERR(edit)) {
		ret = PTR_ERR(edit);
	} else {
		if (edit)
			assoc_array_apply_edit(edit);
		key_payload_reserve(keyring, 0);
L
Linus Torvalds 已提交
1314 1315 1316
		ret = 0;
	}

1317
	up_write(&keyring->sem);
L
Linus Torvalds 已提交
1318
	return ret;
1319
}
L
Linus Torvalds 已提交
1320
EXPORT_SYMBOL(keyring_clear);
1321 1322

/*
1323 1324 1325
 * Dispose of the links from a revoked keyring.
 *
 * This is called with the key sem write-locked.
1326 1327 1328
 */
static void keyring_revoke(struct key *keyring)
{
1329
	struct assoc_array_edit *edit;
1330

1331 1332 1333 1334 1335 1336 1337
	edit = assoc_array_clear(&keyring->keys, &keyring_assoc_array_ops);
	if (!IS_ERR(edit)) {
		if (edit)
			assoc_array_apply_edit(edit);
		key_payload_reserve(keyring, 0);
	}
}
1338

1339
static bool keyring_gc_select_iterator(void *object, void *iterator_data)
1340 1341 1342
{
	struct key *key = keyring_ptr_to_key(object);
	time_t *limit = iterator_data;
1343

1344 1345 1346 1347
	if (key_is_dead(key, *limit))
		return false;
	key_get(key);
	return true;
1348
}
1349

1350 1351 1352 1353 1354 1355 1356 1357 1358
static int keyring_gc_check_iterator(const void *object, void *iterator_data)
{
	const struct key *key = keyring_ptr_to_key(object);
	time_t *limit = iterator_data;

	key_check(key);
	return key_is_dead(key, *limit);
}

1359
/*
1360
 * Garbage collect pointers from a keyring.
1361
 *
1362 1363
 * Not called with any locks held.  The keyring's key struct will not be
 * deallocated under us as only our caller may deallocate it.
1364 1365 1366
 */
void keyring_gc(struct key *keyring, time_t limit)
{
1367 1368 1369
	int result;

	kenter("%x{%s}", keyring->serial, keyring->description ?: "");
1370

1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387
	if (keyring->flags & ((1 << KEY_FLAG_INVALIDATED) |
			      (1 << KEY_FLAG_REVOKED)))
		goto dont_gc;

	/* scan the keyring looking for dead keys */
	rcu_read_lock();
	result = assoc_array_iterate(&keyring->keys,
				     keyring_gc_check_iterator, &limit);
	rcu_read_unlock();
	if (result == true)
		goto do_gc;

dont_gc:
	kleave(" [no gc]");
	return;

do_gc:
1388
	down_write(&keyring->sem);
1389
	assoc_array_gc(&keyring->keys, &keyring_assoc_array_ops,
1390
		       keyring_gc_select_iterator, &limit);
D
David Howells 已提交
1391
	up_write(&keyring->sem);
1392
	kleave(" [gc]");
1393
}