random.c 51.9 KB
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// SPDX-License-Identifier: (GPL-2.0 OR BSD-3-Clause)
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/*
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 * Copyright (C) 2017-2022 Jason A. Donenfeld <Jason@zx2c4.com>. All Rights Reserved.
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 * Copyright Matt Mackall <mpm@selenic.com>, 2003, 2004, 2005
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 * Copyright Theodore Ts'o, 1994, 1995, 1996, 1997, 1998, 1999. All rights reserved.
 *
 * This driver produces cryptographically secure pseudorandom data. It is divided
 * into roughly six sections, each with a section header:
 *
 *   - Initialization and readiness waiting.
 *   - Fast key erasure RNG, the "crng".
 *   - Entropy accumulation and extraction routines.
 *   - Entropy collection routines.
 *   - Userspace reader/writer interfaces.
 *   - Sysctl interface.
 *
 * The high level overview is that there is one input pool, into which
 * various pieces of data are hashed. Some of that data is then "credited" as
 * having a certain number of bits of entropy. When enough bits of entropy are
 * available, the hash is finalized and handed as a key to a stream cipher that
 * expands it indefinitely for various consumers. This key is periodically
 * refreshed as the various entropy collectors, described below, add data to the
 * input pool and credit it. There is currently no Fortuna-like scheduler
 * involved, which can lead to malicious entropy sources causing a premature
 * reseed, and the entropy estimates are, at best, conservative guesses.
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 */

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#define pr_fmt(fmt) KBUILD_MODNAME ": " fmt

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#include <linux/utsname.h>
#include <linux/module.h>
#include <linux/kernel.h>
#include <linux/major.h>
#include <linux/string.h>
#include <linux/fcntl.h>
#include <linux/slab.h>
#include <linux/random.h>
#include <linux/poll.h>
#include <linux/init.h>
#include <linux/fs.h>
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#include <linux/blkdev.h>
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#include <linux/interrupt.h>
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#include <linux/mm.h>
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#include <linux/nodemask.h>
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#include <linux/spinlock.h>
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#include <linux/kthread.h>
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#include <linux/percpu.h>
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#include <linux/ptrace.h>
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#include <linux/workqueue.h>
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#include <linux/irq.h>
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#include <linux/ratelimit.h>
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#include <linux/syscalls.h>
#include <linux/completion.h>
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#include <linux/uuid.h>
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#include <linux/uaccess.h>
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#include <crypto/chacha.h>
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#include <crypto/blake2s.h>
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#include <asm/processor.h>
#include <asm/irq.h>
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#include <asm/irq_regs.h>
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#include <asm/io.h>

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/*********************************************************************
 *
 * Initialization and readiness waiting.
 *
 * Much of the RNG infrastructure is devoted to various dependencies
 * being able to wait until the RNG has collected enough entropy and
 * is ready for safe consumption.
 *
 *********************************************************************/
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/*
 * crng_init =  0 --> Uninitialized
 *		1 --> Initialized
 *		2 --> Initialized from input_pool
 *
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 * crng_init is protected by base_crng->lock, and only increases
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 * its value (from 0->1->2).
 */
static int crng_init = 0;
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#define crng_ready() (likely(crng_init > 1))
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/* Various types of waiters for crng_init->2 transition. */
static DECLARE_WAIT_QUEUE_HEAD(crng_init_wait);
static struct fasync_struct *fasync;
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static DEFINE_SPINLOCK(random_ready_chain_lock);
static RAW_NOTIFIER_HEAD(random_ready_chain);
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/* Control how we warn userspace. */
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static struct ratelimit_state unseeded_warning =
	RATELIMIT_STATE_INIT("warn_unseeded_randomness", HZ, 3);
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static struct ratelimit_state urandom_warning =
	RATELIMIT_STATE_INIT("warn_urandom_randomness", HZ, 3);
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static int ratelimit_disable __read_mostly;
module_param_named(ratelimit_disable, ratelimit_disable, int, 0644);
MODULE_PARM_DESC(ratelimit_disable, "Disable random ratelimit suppression");

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/*
 * Returns whether or not the input pool has been seeded and thus guaranteed
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 * to supply cryptographically secure random numbers. This applies to: the
 * /dev/urandom device, the get_random_bytes function, and the get_random_{u32,
 * ,u64,int,long} family of functions.
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 *
 * Returns: true if the input pool has been seeded.
 *          false if the input pool has not been seeded.
 */
bool rng_is_initialized(void)
{
	return crng_ready();
}
EXPORT_SYMBOL(rng_is_initialized);

/* Used by wait_for_random_bytes(), and considered an entropy collector, below. */
static void try_to_generate_entropy(void);

/*
 * Wait for the input pool to be seeded and thus guaranteed to supply
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 * cryptographically secure random numbers. This applies to: the /dev/urandom
 * device, the get_random_bytes function, and the get_random_{u32,u64,int,long}
 * family of functions. Using any of these functions without first calling
 * this function forfeits the guarantee of security.
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 *
 * Returns: 0 if the input pool has been seeded.
 *          -ERESTARTSYS if the function was interrupted by a signal.
 */
int wait_for_random_bytes(void)
{
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	while (!crng_ready()) {
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		int ret;
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		try_to_generate_entropy();
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		ret = wait_event_interruptible_timeout(crng_init_wait, crng_ready(), HZ);
		if (ret)
			return ret > 0 ? 0 : ret;
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	}
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	return 0;
}
EXPORT_SYMBOL(wait_for_random_bytes);

/*
 * Add a callback function that will be invoked when the input
 * pool is initialised.
 *
 * returns: 0 if callback is successfully added
 *	    -EALREADY if pool is already initialised (callback not called)
 */
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int register_random_ready_notifier(struct notifier_block *nb)
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{
	unsigned long flags;
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	int ret = -EALREADY;
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	if (crng_ready())
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		return ret;
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	spin_lock_irqsave(&random_ready_chain_lock, flags);
	if (!crng_ready())
		ret = raw_notifier_chain_register(&random_ready_chain, nb);
	spin_unlock_irqrestore(&random_ready_chain_lock, flags);
	return ret;
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}

/*
 * Delete a previously registered readiness callback function.
 */
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int unregister_random_ready_notifier(struct notifier_block *nb)
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{
	unsigned long flags;
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	int ret;
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	spin_lock_irqsave(&random_ready_chain_lock, flags);
	ret = raw_notifier_chain_unregister(&random_ready_chain, nb);
	spin_unlock_irqrestore(&random_ready_chain_lock, flags);
	return ret;
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}

static void process_random_ready_list(void)
{
	unsigned long flags;

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	spin_lock_irqsave(&random_ready_chain_lock, flags);
	raw_notifier_call_chain(&random_ready_chain, 0, NULL);
	spin_unlock_irqrestore(&random_ready_chain_lock, flags);
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}

#define warn_unseeded_randomness(previous) \
	_warn_unseeded_randomness(__func__, (void *)_RET_IP_, (previous))

static void _warn_unseeded_randomness(const char *func_name, void *caller, void **previous)
{
#ifdef CONFIG_WARN_ALL_UNSEEDED_RANDOM
	const bool print_once = false;
#else
	static bool print_once __read_mostly;
#endif

	if (print_once || crng_ready() ||
	    (previous && (caller == READ_ONCE(*previous))))
		return;
	WRITE_ONCE(*previous, caller);
#ifndef CONFIG_WARN_ALL_UNSEEDED_RANDOM
	print_once = true;
#endif
	if (__ratelimit(&unseeded_warning))
		printk_deferred(KERN_NOTICE "random: %s called from %pS with crng_init=%d\n",
				func_name, caller, crng_init);
}


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/*********************************************************************
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 *
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 * Fast key erasure RNG, the "crng".
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 *
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 * These functions expand entropy from the entropy extractor into
 * long streams for external consumption using the "fast key erasure"
 * RNG described at <https://blog.cr.yp.to/20170723-random.html>.
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 *
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 * There are a few exported interfaces for use by other drivers:
 *
 *	void get_random_bytes(void *buf, size_t nbytes)
 *	u32 get_random_u32()
 *	u64 get_random_u64()
 *	unsigned int get_random_int()
 *	unsigned long get_random_long()
 *
 * These interfaces will return the requested number of random bytes
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 * into the given buffer or as a return value. This is equivalent to
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 * a read from /dev/urandom. The u32, u64, int, and long family of
 * functions may be higher performance for one-off random integers,
 * because they do a bit of buffering and do not invoke reseeding
 * until the buffer is emptied.
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 *
 *********************************************************************/

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enum {
	CRNG_RESEED_INTERVAL = 300 * HZ,
	CRNG_INIT_CNT_THRESH = 2 * CHACHA_KEY_SIZE
};

static struct {
	u8 key[CHACHA_KEY_SIZE] __aligned(__alignof__(long));
	unsigned long birth;
	unsigned long generation;
	spinlock_t lock;
} base_crng = {
	.lock = __SPIN_LOCK_UNLOCKED(base_crng.lock)
};

struct crng {
	u8 key[CHACHA_KEY_SIZE];
	unsigned long generation;
	local_lock_t lock;
};

static DEFINE_PER_CPU(struct crng, crngs) = {
	.generation = ULONG_MAX,
	.lock = INIT_LOCAL_LOCK(crngs.lock),
};
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/* Used by crng_reseed() to extract a new seed from the input pool. */
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static bool drain_entropy(void *buf, size_t nbytes, bool force);
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/*
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 * This extracts a new crng key from the input pool, but only if there is a
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 * sufficient amount of entropy available or force is true, in order to
 * mitigate bruteforcing of newly added bits.
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 */
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static void crng_reseed(bool force)
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{
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	unsigned long flags;
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	unsigned long next_gen;
	u8 key[CHACHA_KEY_SIZE];
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	bool finalize_init = false;
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	/* Only reseed if we can, to prevent brute forcing a small amount of new bits. */
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	if (!drain_entropy(key, sizeof(key), force))
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		return;
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	/*
	 * We copy the new key into the base_crng, overwriting the old one,
	 * and update the generation counter. We avoid hitting ULONG_MAX,
	 * because the per-cpu crngs are initialized to ULONG_MAX, so this
	 * forces new CPUs that come online to always initialize.
	 */
	spin_lock_irqsave(&base_crng.lock, flags);
	memcpy(base_crng.key, key, sizeof(base_crng.key));
	next_gen = base_crng.generation + 1;
	if (next_gen == ULONG_MAX)
		++next_gen;
	WRITE_ONCE(base_crng.generation, next_gen);
	WRITE_ONCE(base_crng.birth, jiffies);
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	if (!crng_ready()) {
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		crng_init = 2;
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		finalize_init = true;
	}
	spin_unlock_irqrestore(&base_crng.lock, flags);
	memzero_explicit(key, sizeof(key));
	if (finalize_init) {
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		process_random_ready_list();
		wake_up_interruptible(&crng_init_wait);
		kill_fasync(&fasync, SIGIO, POLL_IN);
		pr_notice("crng init done\n");
		if (unseeded_warning.missed) {
			pr_notice("%d get_random_xx warning(s) missed due to ratelimiting\n",
				  unseeded_warning.missed);
			unseeded_warning.missed = 0;
		}
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		if (urandom_warning.missed) {
			pr_notice("%d urandom warning(s) missed due to ratelimiting\n",
				  urandom_warning.missed);
			urandom_warning.missed = 0;
		}
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	}
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}

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/*
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 * This generates a ChaCha block using the provided key, and then
 * immediately overwites that key with half the block. It returns
 * the resultant ChaCha state to the user, along with the second
 * half of the block containing 32 bytes of random data that may
 * be used; random_data_len may not be greater than 32.
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 */
static void crng_fast_key_erasure(u8 key[CHACHA_KEY_SIZE],
				  u32 chacha_state[CHACHA_STATE_WORDS],
				  u8 *random_data, size_t random_data_len)
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{
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	u8 first_block[CHACHA_BLOCK_SIZE];
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	BUG_ON(random_data_len > 32);

	chacha_init_consts(chacha_state);
	memcpy(&chacha_state[4], key, CHACHA_KEY_SIZE);
	memset(&chacha_state[12], 0, sizeof(u32) * 4);
	chacha20_block(chacha_state, first_block);

	memcpy(key, first_block, CHACHA_KEY_SIZE);
	memcpy(random_data, first_block + CHACHA_KEY_SIZE, random_data_len);
	memzero_explicit(first_block, sizeof(first_block));
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}

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/*
 * Return whether the crng seed is considered to be sufficiently
 * old that a reseeding might be attempted. This happens if the last
 * reseeding was CRNG_RESEED_INTERVAL ago, or during early boot, at
 * an interval proportional to the uptime.
 */
static bool crng_has_old_seed(void)
{
	static bool early_boot = true;
	unsigned long interval = CRNG_RESEED_INTERVAL;

	if (unlikely(READ_ONCE(early_boot))) {
		time64_t uptime = ktime_get_seconds();
		if (uptime >= CRNG_RESEED_INTERVAL / HZ * 2)
			WRITE_ONCE(early_boot, false);
		else
			interval = max_t(unsigned int, 5 * HZ,
					 (unsigned int)uptime / 2 * HZ);
	}
	return time_after(jiffies, READ_ONCE(base_crng.birth) + interval);
}

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/*
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 * This function returns a ChaCha state that you may use for generating
 * random data. It also returns up to 32 bytes on its own of random data
 * that may be used; random_data_len may not be greater than 32.
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 */
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static void crng_make_state(u32 chacha_state[CHACHA_STATE_WORDS],
			    u8 *random_data, size_t random_data_len)
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{
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	unsigned long flags;
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	struct crng *crng;
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	BUG_ON(random_data_len > 32);

	/*
	 * For the fast path, we check whether we're ready, unlocked first, and
	 * then re-check once locked later. In the case where we're really not
	 * ready, we do fast key erasure with the base_crng directly, because
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	 * this is what crng_pre_init_inject() mutates during early init.
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	 */
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	if (!crng_ready()) {
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		bool ready;

		spin_lock_irqsave(&base_crng.lock, flags);
		ready = crng_ready();
		if (!ready)
			crng_fast_key_erasure(base_crng.key, chacha_state,
					      random_data, random_data_len);
		spin_unlock_irqrestore(&base_crng.lock, flags);
		if (!ready)
			return;
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	}
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	/*
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	 * If the base_crng is old enough, we try to reseed, which in turn
	 * bumps the generation counter that we check below.
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	 */
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	if (unlikely(crng_has_old_seed()))
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		crng_reseed(false);
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	local_lock_irqsave(&crngs.lock, flags);
	crng = raw_cpu_ptr(&crngs);

	/*
	 * If our per-cpu crng is older than the base_crng, then it means
	 * somebody reseeded the base_crng. In that case, we do fast key
	 * erasure on the base_crng, and use its output as the new key
	 * for our per-cpu crng. This brings us up to date with base_crng.
	 */
	if (unlikely(crng->generation != READ_ONCE(base_crng.generation))) {
		spin_lock(&base_crng.lock);
		crng_fast_key_erasure(base_crng.key, chacha_state,
				      crng->key, sizeof(crng->key));
		crng->generation = base_crng.generation;
		spin_unlock(&base_crng.lock);
	}

	/*
	 * Finally, when we've made it this far, our per-cpu crng has an up
	 * to date key, and we can do fast key erasure with it to produce
	 * some random data and a ChaCha state for the caller. All other
	 * branches of this function are "unlikely", so most of the time we
	 * should wind up here immediately.
	 */
	crng_fast_key_erasure(crng->key, chacha_state, random_data, random_data_len);
	local_unlock_irqrestore(&crngs.lock, flags);
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}

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/*
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 * This function is for crng_init == 0 only. It loads entropy directly
 * into the crng's key, without going through the input pool. It is,
 * generally speaking, not very safe, but we use this only at early
 * boot time when it's better to have something there rather than
 * nothing.
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 *
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 * If account is set, then the crng_init_cnt counter is incremented.
 * This shouldn't be set by functions like add_device_randomness(),
 * where we can't trust the buffer passed to it is guaranteed to be
 * unpredictable (so it might not have any entropy at all).
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 */
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static void crng_pre_init_inject(const void *input, size_t len, bool account)
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{
	static int crng_init_cnt = 0;
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	struct blake2s_state hash;
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	unsigned long flags;

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	blake2s_init(&hash, sizeof(base_crng.key));
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	spin_lock_irqsave(&base_crng.lock, flags);
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	if (crng_init != 0) {
		spin_unlock_irqrestore(&base_crng.lock, flags);
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		return;
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	}

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	blake2s_update(&hash, base_crng.key, sizeof(base_crng.key));
	blake2s_update(&hash, input, len);
	blake2s_final(&hash, base_crng.key);
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	if (account) {
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		crng_init_cnt += min_t(size_t, len, CRNG_INIT_CNT_THRESH - crng_init_cnt);
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		if (crng_init_cnt >= CRNG_INIT_CNT_THRESH) {
			++base_crng.generation;
			crng_init = 1;
		}
	}
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	spin_unlock_irqrestore(&base_crng.lock, flags);
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	if (crng_init == 1)
		pr_notice("fast init done\n");
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}

static void _get_random_bytes(void *buf, size_t nbytes)
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{
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	u32 chacha_state[CHACHA_STATE_WORDS];
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	u8 tmp[CHACHA_BLOCK_SIZE];
	size_t len;

	if (!nbytes)
		return;

	len = min_t(size_t, 32, nbytes);
	crng_make_state(chacha_state, buf, len);
	nbytes -= len;
	buf += len;

	while (nbytes) {
		if (nbytes < CHACHA_BLOCK_SIZE) {
			chacha20_block(chacha_state, tmp);
			memcpy(buf, tmp, nbytes);
			memzero_explicit(tmp, sizeof(tmp));
			break;
		}

		chacha20_block(chacha_state, buf);
		if (unlikely(chacha_state[12] == 0))
			++chacha_state[13];
		nbytes -= CHACHA_BLOCK_SIZE;
		buf += CHACHA_BLOCK_SIZE;
	}

	memzero_explicit(chacha_state, sizeof(chacha_state));
}

/*
 * This function is the exported kernel interface.  It returns some
 * number of good random numbers, suitable for key generation, seeding
 * TCP sequence numbers, etc.  It does not rely on the hardware random
 * number generator.  For random bytes direct from the hardware RNG
 * (when available), use get_random_bytes_arch(). In order to ensure
 * that the randomness provided by this function is okay, the function
 * wait_for_random_bytes() should be called and return 0 at least once
 * at any point prior.
 */
void get_random_bytes(void *buf, size_t nbytes)
{
	static void *previous;

	warn_unseeded_randomness(&previous);
	_get_random_bytes(buf, nbytes);
}
EXPORT_SYMBOL(get_random_bytes);

static ssize_t get_random_bytes_user(void __user *buf, size_t nbytes)
{
	ssize_t ret = 0;
	size_t len;
	u32 chacha_state[CHACHA_STATE_WORDS];
	u8 output[CHACHA_BLOCK_SIZE];

	if (!nbytes)
		return 0;

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	/*
	 * Immediately overwrite the ChaCha key at index 4 with random
	 * bytes, in case userspace causes copy_to_user() below to sleep
	 * forever, so that we still retain forward secrecy in that case.
	 */
	crng_make_state(chacha_state, (u8 *)&chacha_state[4], CHACHA_KEY_SIZE);
	/*
	 * However, if we're doing a read of len <= 32, we don't need to
	 * use chacha_state after, so we can simply return those bytes to
	 * the user directly.
	 */
	if (nbytes <= CHACHA_KEY_SIZE) {
		ret = copy_to_user(buf, &chacha_state[4], nbytes) ? -EFAULT : nbytes;
		goto out_zero_chacha;
	}
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	do {
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		chacha20_block(chacha_state, output);
		if (unlikely(chacha_state[12] == 0))
			++chacha_state[13];

		len = min_t(size_t, nbytes, CHACHA_BLOCK_SIZE);
		if (copy_to_user(buf, output, len)) {
			ret = -EFAULT;
			break;
		}

		nbytes -= len;
		buf += len;
		ret += len;
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		BUILD_BUG_ON(PAGE_SIZE % CHACHA_BLOCK_SIZE != 0);
		if (!(ret % PAGE_SIZE) && nbytes) {
			if (signal_pending(current))
				break;
			cond_resched();
		}
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	} while (nbytes);
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	memzero_explicit(output, sizeof(output));
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out_zero_chacha:
	memzero_explicit(chacha_state, sizeof(chacha_state));
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	return ret;
}

/*
 * Batched entropy returns random integers. The quality of the random
 * number is good as /dev/urandom. In order to ensure that the randomness
 * provided by this function is okay, the function wait_for_random_bytes()
 * should be called and return 0 at least once at any point prior.
 */
struct batched_entropy {
	union {
		/*
		 * We make this 1.5x a ChaCha block, so that we get the
		 * remaining 32 bytes from fast key erasure, plus one full
		 * block from the detached ChaCha state. We can increase
		 * the size of this later if needed so long as we keep the
		 * formula of (integer_blocks + 0.5) * CHACHA_BLOCK_SIZE.
		 */
		u64 entropy_u64[CHACHA_BLOCK_SIZE * 3 / (2 * sizeof(u64))];
		u32 entropy_u32[CHACHA_BLOCK_SIZE * 3 / (2 * sizeof(u32))];
	};
	local_lock_t lock;
	unsigned long generation;
	unsigned int position;
};


static DEFINE_PER_CPU(struct batched_entropy, batched_entropy_u64) = {
	.lock = INIT_LOCAL_LOCK(batched_entropy_u64.lock),
	.position = UINT_MAX
};

u64 get_random_u64(void)
{
	u64 ret;
	unsigned long flags;
	struct batched_entropy *batch;
	static void *previous;
	unsigned long next_gen;

	warn_unseeded_randomness(&previous);

	local_lock_irqsave(&batched_entropy_u64.lock, flags);
	batch = raw_cpu_ptr(&batched_entropy_u64);

	next_gen = READ_ONCE(base_crng.generation);
	if (batch->position >= ARRAY_SIZE(batch->entropy_u64) ||
	    next_gen != batch->generation) {
		_get_random_bytes(batch->entropy_u64, sizeof(batch->entropy_u64));
		batch->position = 0;
		batch->generation = next_gen;
	}

	ret = batch->entropy_u64[batch->position];
	batch->entropy_u64[batch->position] = 0;
	++batch->position;
	local_unlock_irqrestore(&batched_entropy_u64.lock, flags);
	return ret;
}
EXPORT_SYMBOL(get_random_u64);

static DEFINE_PER_CPU(struct batched_entropy, batched_entropy_u32) = {
	.lock = INIT_LOCAL_LOCK(batched_entropy_u32.lock),
	.position = UINT_MAX
};

u32 get_random_u32(void)
{
	u32 ret;
	unsigned long flags;
	struct batched_entropy *batch;
	static void *previous;
	unsigned long next_gen;

	warn_unseeded_randomness(&previous);

	local_lock_irqsave(&batched_entropy_u32.lock, flags);
	batch = raw_cpu_ptr(&batched_entropy_u32);

	next_gen = READ_ONCE(base_crng.generation);
	if (batch->position >= ARRAY_SIZE(batch->entropy_u32) ||
	    next_gen != batch->generation) {
		_get_random_bytes(batch->entropy_u32, sizeof(batch->entropy_u32));
		batch->position = 0;
		batch->generation = next_gen;
	}

	ret = batch->entropy_u32[batch->position];
	batch->entropy_u32[batch->position] = 0;
	++batch->position;
	local_unlock_irqrestore(&batched_entropy_u32.lock, flags);
	return ret;
}
EXPORT_SYMBOL(get_random_u32);

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#ifdef CONFIG_SMP
/*
 * This function is called when the CPU is coming up, with entry
 * CPUHP_RANDOM_PREPARE, which comes before CPUHP_WORKQUEUE_PREP.
 */
int random_prepare_cpu(unsigned int cpu)
{
	/*
	 * When the cpu comes back online, immediately invalidate both
	 * the per-cpu crng and all batches, so that we serve fresh
	 * randomness.
	 */
	per_cpu_ptr(&crngs, cpu)->generation = ULONG_MAX;
	per_cpu_ptr(&batched_entropy_u32, cpu)->position = UINT_MAX;
	per_cpu_ptr(&batched_entropy_u64, cpu)->position = UINT_MAX;
	return 0;
}
#endif

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/**
 * randomize_page - Generate a random, page aligned address
 * @start:	The smallest acceptable address the caller will take.
 * @range:	The size of the area, starting at @start, within which the
 *		random address must fall.
 *
 * If @start + @range would overflow, @range is capped.
 *
 * NOTE: Historical use of randomize_range, which this replaces, presumed that
 * @start was already page aligned.  We now align it regardless.
 *
 * Return: A page aligned address within [start, start + range).  On error,
 * @start is returned.
 */
unsigned long randomize_page(unsigned long start, unsigned long range)
{
	if (!PAGE_ALIGNED(start)) {
		range -= PAGE_ALIGN(start) - start;
		start = PAGE_ALIGN(start);
	}

	if (start > ULONG_MAX - range)
		range = ULONG_MAX - start;

	range >>= PAGE_SHIFT;

	if (range == 0)
		return start;

	return start + (get_random_long() % range << PAGE_SHIFT);
}

/*
 * This function will use the architecture-specific hardware random
 * number generator if it is available. It is not recommended for
 * use. Use get_random_bytes() instead. It returns the number of
 * bytes filled in.
 */
size_t __must_check get_random_bytes_arch(void *buf, size_t nbytes)
{
	size_t left = nbytes;
	u8 *p = buf;

	while (left) {
		unsigned long v;
		size_t chunk = min_t(size_t, left, sizeof(unsigned long));

		if (!arch_get_random_long(&v))
			break;

		memcpy(p, &v, chunk);
		p += chunk;
		left -= chunk;
	}

	return nbytes - left;
}
EXPORT_SYMBOL(get_random_bytes_arch);

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/**********************************************************************
 *
 * Entropy accumulation and extraction routines.
 *
 * Callers may add entropy via:
 *
 *     static void mix_pool_bytes(const void *in, size_t nbytes)
 *
 * After which, if added entropy should be credited:
 *
 *     static void credit_entropy_bits(size_t nbits)
 *
 * Finally, extract entropy via these two, with the latter one
 * setting the entropy count to zero and extracting only if there
764
 * is POOL_MIN_BITS entropy credited prior or force is true:
765 766
 *
 *     static void extract_entropy(void *buf, size_t nbytes)
767
 *     static bool drain_entropy(void *buf, size_t nbytes, bool force)
768 769 770
 *
 **********************************************************************/

771 772 773 774 775
enum {
	POOL_BITS = BLAKE2S_HASH_SIZE * 8,
	POOL_MIN_BITS = POOL_BITS /* No point in settling for less. */
};

776
/* For notifying userspace should write into /dev/random. */
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static DECLARE_WAIT_QUEUE_HEAD(random_write_wait);

static struct {
	struct blake2s_state hash;
	spinlock_t lock;
	unsigned int entropy_count;
} input_pool = {
	.hash.h = { BLAKE2S_IV0 ^ (0x01010000 | BLAKE2S_HASH_SIZE),
		    BLAKE2S_IV1, BLAKE2S_IV2, BLAKE2S_IV3, BLAKE2S_IV4,
		    BLAKE2S_IV5, BLAKE2S_IV6, BLAKE2S_IV7 },
	.hash.outlen = BLAKE2S_HASH_SIZE,
	.lock = __SPIN_LOCK_UNLOCKED(input_pool.lock),
};

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static void _mix_pool_bytes(const void *in, size_t nbytes)
{
	blake2s_update(&input_pool.hash, in, nbytes);
}
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/*
 * This function adds bytes into the entropy "pool".  It does not
 * update the entropy estimate.  The caller should call
 * credit_entropy_bits if this is appropriate.
 */
801
static void mix_pool_bytes(const void *in, size_t nbytes)
802
{
803 804 805 806 807
	unsigned long flags;

	spin_lock_irqsave(&input_pool.lock, flags);
	_mix_pool_bytes(in, nbytes);
	spin_unlock_irqrestore(&input_pool.lock, flags);
808 809
}

810 811 812 813 814 815 816 817 818 819 820 821 822 823
static void credit_entropy_bits(size_t nbits)
{
	unsigned int entropy_count, orig, add;

	if (!nbits)
		return;

	add = min_t(size_t, nbits, POOL_BITS);

	do {
		orig = READ_ONCE(input_pool.entropy_count);
		entropy_count = min_t(unsigned int, POOL_BITS, orig + add);
	} while (cmpxchg(&input_pool.entropy_count, orig, entropy_count) != orig);

824
	if (!crng_ready() && entropy_count >= POOL_MIN_BITS)
825
		crng_reseed(false);
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}

/*
 * This is an HKDF-like construction for using the hashed collected entropy
 * as a PRF key, that's then expanded block-by-block.
 */
static void extract_entropy(void *buf, size_t nbytes)
833 834
{
	unsigned long flags;
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	u8 seed[BLAKE2S_HASH_SIZE], next_key[BLAKE2S_HASH_SIZE];
	struct {
		unsigned long rdseed[32 / sizeof(long)];
		size_t counter;
	} block;
	size_t i;

	for (i = 0; i < ARRAY_SIZE(block.rdseed); ++i) {
		if (!arch_get_random_seed_long(&block.rdseed[i]) &&
		    !arch_get_random_long(&block.rdseed[i]))
			block.rdseed[i] = random_get_entropy();
	}
847 848

	spin_lock_irqsave(&input_pool.lock, flags);
849 850 851 852 853 854 855 856 857

	/* seed = HASHPRF(last_key, entropy_input) */
	blake2s_final(&input_pool.hash, seed);

	/* next_key = HASHPRF(seed, RDSEED || 0) */
	block.counter = 0;
	blake2s(next_key, (u8 *)&block, seed, sizeof(next_key), sizeof(block), sizeof(seed));
	blake2s_init_key(&input_pool.hash, BLAKE2S_HASH_SIZE, next_key, sizeof(next_key));

858
	spin_unlock_irqrestore(&input_pool.lock, flags);
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	memzero_explicit(next_key, sizeof(next_key));

	while (nbytes) {
		i = min_t(size_t, nbytes, BLAKE2S_HASH_SIZE);
		/* output = HASHPRF(seed, RDSEED || ++counter) */
		++block.counter;
		blake2s(buf, (u8 *)&block, seed, i, sizeof(block), sizeof(seed));
		nbytes -= i;
		buf += i;
	}

	memzero_explicit(seed, sizeof(seed));
	memzero_explicit(&block, sizeof(block));
}

/*
875 876 877
 * First we make sure we have POOL_MIN_BITS of entropy in the pool unless force
 * is true, and then we set the entropy count to zero (but don't actually touch
 * any data). Only then can we extract a new key with extract_entropy().
878
 */
879
static bool drain_entropy(void *buf, size_t nbytes, bool force)
880 881 882 883
{
	unsigned int entropy_count;
	do {
		entropy_count = READ_ONCE(input_pool.entropy_count);
884
		if (!force && entropy_count < POOL_MIN_BITS)
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			return false;
	} while (cmpxchg(&input_pool.entropy_count, entropy_count, 0) != entropy_count);
	extract_entropy(buf, nbytes);
	wake_up_interruptible(&random_write_wait);
	kill_fasync(&fasync, SIGIO, POLL_OUT);
	return true;
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}

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/**********************************************************************
 *
 * Entropy collection routines.
 *
 * The following exported functions are used for pushing entropy into
 * the above entropy accumulation routines:
 *
 *	void add_device_randomness(const void *buf, size_t size);
 *	void add_input_randomness(unsigned int type, unsigned int code,
 *	                          unsigned int value);
 *	void add_disk_randomness(struct gendisk *disk);
 *	void add_hwgenerator_randomness(const void *buffer, size_t count,
 *					size_t entropy);
 *	void add_bootloader_randomness(const void *buf, size_t size);
908
 *	void add_vmfork_randomness(const void *unique_vm_id, size_t size);
909 910 911 912 913 914 915 916 917 918 919 920 921 922 923 924 925 926 927 928 929 930 931 932 933 934 935 936 937 938 939
 *	void add_interrupt_randomness(int irq);
 *
 * add_device_randomness() adds data to the input pool that
 * is likely to differ between two devices (or possibly even per boot).
 * This would be things like MAC addresses or serial numbers, or the
 * read-out of the RTC. This does *not* credit any actual entropy to
 * the pool, but it initializes the pool to different values for devices
 * that might otherwise be identical and have very little entropy
 * available to them (particularly common in the embedded world).
 *
 * add_input_randomness() uses the input layer interrupt timing, as well
 * as the event type information from the hardware.
 *
 * add_disk_randomness() uses what amounts to the seek time of block
 * layer request events, on a per-disk_devt basis, as input to the
 * entropy pool. Note that high-speed solid state drives with very low
 * seek times do not make for good sources of entropy, as their seek
 * times are usually fairly consistent.
 *
 * The above two routines try to estimate how many bits of entropy
 * to credit. They do this by keeping track of the first and second
 * order deltas of the event timings.
 *
 * add_hwgenerator_randomness() is for true hardware RNGs, and will credit
 * entropy as specified by the caller. If the entropy pool is full it will
 * block until more entropy is needed.
 *
 * add_bootloader_randomness() is the same as add_hwgenerator_randomness() or
 * add_device_randomness(), depending on whether or not the configuration
 * option CONFIG_RANDOM_TRUST_BOOTLOADER is set.
 *
940 941 942 943
 * add_vmfork_randomness() adds a unique (but not necessarily secret) ID
 * representing the current instance of a VM to the pool, without crediting,
 * and then force-reseeds the crng so that it takes effect immediately.
 *
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 * add_interrupt_randomness() uses the interrupt timing as random
 * inputs to the entropy pool. Using the cycle counters and the irq source
 * as inputs, it feeds the input pool roughly once a second or after 64
 * interrupts, crediting 1 bit of entropy for whichever comes first.
 *
 **********************************************************************/

static bool trust_cpu __ro_after_init = IS_ENABLED(CONFIG_RANDOM_TRUST_CPU);
952
static bool trust_bootloader __ro_after_init = IS_ENABLED(CONFIG_RANDOM_TRUST_BOOTLOADER);
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static int __init parse_trust_cpu(char *arg)
{
	return kstrtobool(arg, &trust_cpu);
}
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static int __init parse_trust_bootloader(char *arg)
{
	return kstrtobool(arg, &trust_bootloader);
}
961
early_param("random.trust_cpu", parse_trust_cpu);
962
early_param("random.trust_bootloader", parse_trust_bootloader);
963 964

/*
965 966 967 968 969
 * The first collection of entropy occurs at system boot while interrupts
 * are still turned off. Here we push in RDSEED, a timestamp, and utsname().
 * Depending on the above configuration knob, RDSEED may be considered
 * sufficient for initialization. Note that much earlier setup may already
 * have pushed entropy into the input pool by the time we get here.
970
 */
971
int __init rand_initialize(void)
972
{
973 974 975 976
	size_t i;
	ktime_t now = ktime_get_real();
	bool arch_init = true;
	unsigned long rv;
977

978 979 980 981 982
#if defined(LATENT_ENTROPY_PLUGIN)
	static const u8 compiletime_seed[BLAKE2S_BLOCK_SIZE] __initconst __latent_entropy;
	_mix_pool_bytes(compiletime_seed, sizeof(compiletime_seed));
#endif

983 984 985 986 987 988
	for (i = 0; i < BLAKE2S_BLOCK_SIZE; i += sizeof(rv)) {
		if (!arch_get_random_seed_long_early(&rv) &&
		    !arch_get_random_long_early(&rv)) {
			rv = random_get_entropy();
			arch_init = false;
		}
989
		_mix_pool_bytes(&rv, sizeof(rv));
990
	}
991 992
	_mix_pool_bytes(&now, sizeof(now));
	_mix_pool_bytes(utsname(), sizeof(*(utsname())));
993

994 995
	extract_entropy(base_crng.key, sizeof(base_crng.key));
	++base_crng.generation;
996

997
	if (arch_init && trust_cpu && !crng_ready()) {
998 999 1000
		crng_init = 2;
		pr_notice("crng init done (trusting CPU's manufacturer)\n");
	}
1001

1002 1003
	if (ratelimit_disable) {
		urandom_warning.interval = 0;
1004
		unseeded_warning.interval = 0;
1005
	}
1006
	return 0;
1007
}
1008

1009
/*
1010 1011
 * Add device- or boot-specific data to the input pool to help
 * initialize it.
1012
 *
1013 1014 1015
 * None of this adds any entropy; it is meant to avoid the problem of
 * the entropy pool having similar initial state across largely
 * identical devices.
1016
 */
1017
void add_device_randomness(const void *buf, size_t size)
1018
{
1019 1020
	cycles_t cycles = random_get_entropy();
	unsigned long flags, now = jiffies;
1021

1022
	if (crng_init == 0 && size)
1023
		crng_pre_init_inject(buf, size, false);
1024

1025
	spin_lock_irqsave(&input_pool.lock, flags);
1026 1027
	_mix_pool_bytes(&cycles, sizeof(cycles));
	_mix_pool_bytes(&now, sizeof(now));
1028
	_mix_pool_bytes(buf, size);
1029
	spin_unlock_irqrestore(&input_pool.lock, flags);
1030 1031 1032
}
EXPORT_SYMBOL(add_device_randomness);

1033 1034 1035 1036 1037 1038
/* There is one of these per entropy source */
struct timer_rand_state {
	unsigned long last_time;
	long last_delta, last_delta2;
};

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Linus Torvalds 已提交
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/*
 * This function adds entropy to the entropy "pool" by using timing
 * delays.  It uses the timer_rand_state structure to make an estimate
 * of how many bits of entropy this call has added to the pool.
 *
 * The number "num" is also added to the pool - it should somehow describe
 * the type of event which just happened.  This is currently 0-255 for
 * keyboard scan codes, and 256 upwards for interrupts.
 */
1048
static void add_timer_randomness(struct timer_rand_state *state, unsigned int num)
L
Linus Torvalds 已提交
1049
{
1050 1051
	cycles_t cycles = random_get_entropy();
	unsigned long flags, now = jiffies;
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Linus Torvalds 已提交
1052 1053
	long delta, delta2, delta3;

1054 1055 1056 1057 1058
	spin_lock_irqsave(&input_pool.lock, flags);
	_mix_pool_bytes(&cycles, sizeof(cycles));
	_mix_pool_bytes(&now, sizeof(now));
	_mix_pool_bytes(&num, sizeof(num));
	spin_unlock_irqrestore(&input_pool.lock, flags);
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Linus Torvalds 已提交
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	/*
	 * Calculate number of bits of randomness we probably added.
	 * We take into account the first, second and third-order deltas
	 * in order to make our estimate.
	 */
1065 1066
	delta = now - READ_ONCE(state->last_time);
	WRITE_ONCE(state->last_time, now);
1067

1068 1069
	delta2 = delta - READ_ONCE(state->last_delta);
	WRITE_ONCE(state->last_delta, delta);
1070

1071 1072
	delta3 = delta2 - READ_ONCE(state->last_delta2);
	WRITE_ONCE(state->last_delta2, delta2);
1073 1074 1075 1076 1077 1078 1079 1080 1081 1082 1083

	if (delta < 0)
		delta = -delta;
	if (delta2 < 0)
		delta2 = -delta2;
	if (delta3 < 0)
		delta3 = -delta3;
	if (delta > delta2)
		delta = delta2;
	if (delta > delta3)
		delta = delta3;
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Linus Torvalds 已提交
1084

1085 1086 1087
	/*
	 * delta is now minimum absolute delta.
	 * Round down by 1 bit on general principles,
1088
	 * and limit entropy estimate to 12 bits.
1089
	 */
1090
	credit_entropy_bits(min_t(unsigned int, fls(delta >> 1), 11));
L
Linus Torvalds 已提交
1091 1092
}

1093
void add_input_randomness(unsigned int type, unsigned int code,
1094
			  unsigned int value)
L
Linus Torvalds 已提交
1095 1096
{
	static unsigned char last_value;
1097
	static struct timer_rand_state input_timer_state = { INITIAL_JIFFIES };
L
Linus Torvalds 已提交
1098

1099
	/* Ignore autorepeat and the like. */
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Linus Torvalds 已提交
1100 1101 1102 1103 1104 1105 1106
	if (value == last_value)
		return;

	last_value = value;
	add_timer_randomness(&input_timer_state,
			     (type << 4) ^ code ^ (code >> 4) ^ value);
}
1107
EXPORT_SYMBOL_GPL(add_input_randomness);
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Linus Torvalds 已提交
1108

1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124 1125 1126 1127 1128 1129 1130 1131 1132 1133 1134 1135 1136 1137 1138 1139 1140 1141 1142
#ifdef CONFIG_BLOCK
void add_disk_randomness(struct gendisk *disk)
{
	if (!disk || !disk->random)
		return;
	/* First major is 1, so we get >= 0x200 here. */
	add_timer_randomness(disk->random, 0x100 + disk_devt(disk));
}
EXPORT_SYMBOL_GPL(add_disk_randomness);

void rand_initialize_disk(struct gendisk *disk)
{
	struct timer_rand_state *state;

	/*
	 * If kzalloc returns null, we just won't use that entropy
	 * source.
	 */
	state = kzalloc(sizeof(struct timer_rand_state), GFP_KERNEL);
	if (state) {
		state->last_time = INITIAL_JIFFIES;
		disk->random = state;
	}
}
#endif

/*
 * Interface for in-kernel drivers of true hardware RNGs.
 * Those devices may produce endless random bits and will be throttled
 * when our pool is full.
 */
void add_hwgenerator_randomness(const void *buffer, size_t count,
				size_t entropy)
{
1143
	if (unlikely(crng_init == 0 && entropy < POOL_MIN_BITS)) {
1144 1145 1146
		crng_pre_init_inject(buffer, count, true);
		mix_pool_bytes(buffer, count);
		return;
1147 1148 1149 1150 1151 1152 1153 1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165 1166 1167 1168 1169 1170 1171
	}

	/*
	 * Throttle writing if we're above the trickle threshold.
	 * We'll be woken up again once below POOL_MIN_BITS, when
	 * the calling thread is about to terminate, or once
	 * CRNG_RESEED_INTERVAL has elapsed.
	 */
	wait_event_interruptible_timeout(random_write_wait,
			!system_wq || kthread_should_stop() ||
			input_pool.entropy_count < POOL_MIN_BITS,
			CRNG_RESEED_INTERVAL);
	mix_pool_bytes(buffer, count);
	credit_entropy_bits(entropy);
}
EXPORT_SYMBOL_GPL(add_hwgenerator_randomness);

/*
 * Handle random seed passed by bootloader.
 * If the seed is trustworthy, it would be regarded as hardware RNGs. Otherwise
 * it would be regarded as device data.
 * The decision is controlled by CONFIG_RANDOM_TRUST_BOOTLOADER.
 */
void add_bootloader_randomness(const void *buf, size_t size)
{
1172
	if (trust_bootloader)
1173 1174 1175 1176 1177 1178
		add_hwgenerator_randomness(buf, size, size * 8);
	else
		add_device_randomness(buf, size);
}
EXPORT_SYMBOL_GPL(add_bootloader_randomness);

1179
#if IS_ENABLED(CONFIG_VMGENID)
1180 1181
static BLOCKING_NOTIFIER_HEAD(vmfork_chain);

1182 1183 1184 1185 1186 1187 1188 1189 1190 1191 1192 1193
/*
 * Handle a new unique VM ID, which is unique, not secret, so we
 * don't credit it, but we do immediately force a reseed after so
 * that it's used by the crng posthaste.
 */
void add_vmfork_randomness(const void *unique_vm_id, size_t size)
{
	add_device_randomness(unique_vm_id, size);
	if (crng_ready()) {
		crng_reseed(true);
		pr_notice("crng reseeded due to virtual machine fork\n");
	}
1194
	blocking_notifier_call_chain(&vmfork_chain, 0, NULL);
1195
}
1196
#if IS_MODULE(CONFIG_VMGENID)
1197
EXPORT_SYMBOL_GPL(add_vmfork_randomness);
1198
#endif
1199 1200 1201 1202 1203 1204 1205 1206 1207 1208 1209 1210

int register_random_vmfork_notifier(struct notifier_block *nb)
{
	return blocking_notifier_chain_register(&vmfork_chain, nb);
}
EXPORT_SYMBOL_GPL(register_random_vmfork_notifier);

int unregister_random_vmfork_notifier(struct notifier_block *nb)
{
	return blocking_notifier_chain_unregister(&vmfork_chain, nb);
}
EXPORT_SYMBOL_GPL(unregister_random_vmfork_notifier);
1211
#endif
1212

1213
struct fast_pool {
1214
	struct work_struct mix;
1215
	unsigned long pool[4];
1216
	unsigned long last;
1217
	unsigned int count;
1218 1219 1220
	u16 reg_idx;
};

1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231
static DEFINE_PER_CPU(struct fast_pool, irq_randomness) = {
#ifdef CONFIG_64BIT
	/* SipHash constants */
	.pool = { 0x736f6d6570736575UL, 0x646f72616e646f6dUL,
		  0x6c7967656e657261UL, 0x7465646279746573UL }
#else
	/* HalfSipHash constants */
	.pool = { 0, 0, 0x6c796765U, 0x74656462U }
#endif
};

1232
/*
1233 1234 1235 1236
 * This is [Half]SipHash-1-x, starting from an empty key. Because
 * the key is fixed, it assumes that its inputs are non-malicious,
 * and therefore this has no security on its own. s represents the
 * 128 or 256-bit SipHash state, while v represents a 128-bit input.
1237
 */
1238
static void fast_mix(unsigned long s[4], const unsigned long *v)
1239
{
1240
	size_t i;
1241

1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256
	for (i = 0; i < 16 / sizeof(long); ++i) {
		s[3] ^= v[i];
#ifdef CONFIG_64BIT
		s[0] += s[1]; s[1] = rol64(s[1], 13); s[1] ^= s[0]; s[0] = rol64(s[0], 32);
		s[2] += s[3]; s[3] = rol64(s[3], 16); s[3] ^= s[2];
		s[0] += s[3]; s[3] = rol64(s[3], 21); s[3] ^= s[0];
		s[2] += s[1]; s[1] = rol64(s[1], 17); s[1] ^= s[2]; s[2] = rol64(s[2], 32);
#else
		s[0] += s[1]; s[1] = rol32(s[1],  5); s[1] ^= s[0]; s[0] = rol32(s[0], 16);
		s[2] += s[3]; s[3] = rol32(s[3],  8); s[3] ^= s[2];
		s[0] += s[3]; s[3] = rol32(s[3],  7); s[3] ^= s[0];
		s[2] += s[1]; s[1] = rol32(s[1], 13); s[1] ^= s[2]; s[2] = rol32(s[2], 16);
#endif
		s[0] ^= v[i];
	}
1257 1258
}

1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281
#ifdef CONFIG_SMP
/*
 * This function is called when the CPU has just come online, with
 * entry CPUHP_AP_RANDOM_ONLINE, just after CPUHP_AP_WORKQUEUE_ONLINE.
 */
int random_online_cpu(unsigned int cpu)
{
	/*
	 * During CPU shutdown and before CPU onlining, add_interrupt_
	 * randomness() may schedule mix_interrupt_randomness(), and
	 * set the MIX_INFLIGHT flag. However, because the worker can
	 * be scheduled on a different CPU during this period, that
	 * flag will never be cleared. For that reason, we zero out
	 * the flag here, which runs just after workqueues are onlined
	 * for the CPU again. This also has the effect of setting the
	 * irq randomness count to zero so that new accumulated irqs
	 * are fresh.
	 */
	per_cpu_ptr(&irq_randomness, cpu)->count = 0;
	return 0;
}
#endif

1282
static unsigned long get_reg(struct fast_pool *f, struct pt_regs *regs)
1283
{
1284
	unsigned long *ptr = (unsigned long *)regs;
1285
	unsigned int idx;
1286 1287 1288

	if (regs == NULL)
		return 0;
1289
	idx = READ_ONCE(f->reg_idx);
1290
	if (idx >= sizeof(struct pt_regs) / sizeof(unsigned long))
1291 1292 1293
		idx = 0;
	ptr += idx++;
	WRITE_ONCE(f->reg_idx, idx);
1294
	return *ptr;
1295 1296
}

1297 1298 1299
static void mix_interrupt_randomness(struct work_struct *work)
{
	struct fast_pool *fast_pool = container_of(work, struct fast_pool, mix);
1300 1301 1302 1303 1304 1305 1306 1307 1308
	/*
	 * The size of the copied stack pool is explicitly 16 bytes so that we
	 * tax mix_pool_byte()'s compression function the same amount on all
	 * platforms. This means on 64-bit we copy half the pool into this,
	 * while on 32-bit we copy all of it. The entropy is supposed to be
	 * sufficiently dispersed between bits that in the sponge-like
	 * half case, on average we don't wind up "losing" some.
	 */
	u8 pool[16];
1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320

	/* Check to see if we're running on the wrong CPU due to hotplug. */
	local_irq_disable();
	if (fast_pool != this_cpu_ptr(&irq_randomness)) {
		local_irq_enable();
		return;
	}

	/*
	 * Copy the pool to the stack so that the mixer always has a
	 * consistent view, before we reenable irqs again.
	 */
1321
	memcpy(pool, fast_pool->pool, sizeof(pool));
1322
	fast_pool->count = 0;
1323 1324 1325
	fast_pool->last = jiffies;
	local_irq_enable();

1326 1327 1328 1329 1330 1331 1332 1333
	if (unlikely(crng_init == 0)) {
		crng_pre_init_inject(pool, sizeof(pool), true);
		mix_pool_bytes(pool, sizeof(pool));
	} else {
		mix_pool_bytes(pool, sizeof(pool));
		credit_entropy_bits(1);
	}

1334 1335 1336
	memzero_explicit(pool, sizeof(pool));
}

1337
void add_interrupt_randomness(int irq)
L
Linus Torvalds 已提交
1338
{
1339
	enum { MIX_INFLIGHT = 1U << 31 };
1340 1341
	cycles_t cycles = random_get_entropy();
	unsigned long now = jiffies;
1342 1343
	struct fast_pool *fast_pool = this_cpu_ptr(&irq_randomness);
	struct pt_regs *regs = get_irq_regs();
1344
	unsigned int new_count;
1345 1346 1347 1348 1349
	union {
		u32 u32[4];
		u64 u64[2];
		unsigned long longs[16 / sizeof(long)];
	} irq_data;
1350

1351 1352
	if (cycles == 0)
		cycles = get_reg(fast_pool, regs);
1353

1354
	if (sizeof(cycles) == 8)
1355
		irq_data.u64[0] = cycles ^ rol64(now, 32) ^ irq;
1356
	else {
1357 1358
		irq_data.u32[0] = cycles ^ irq;
		irq_data.u32[1] = now;
1359 1360 1361
	}

	if (sizeof(unsigned long) == 8)
1362
		irq_data.u64[1] = regs ? instruction_pointer(regs) : _RET_IP_;
1363
	else {
1364 1365
		irq_data.u32[2] = regs ? instruction_pointer(regs) : _RET_IP_;
		irq_data.u32[3] = get_reg(fast_pool, regs);
1366 1367
	}

1368
	fast_mix(fast_pool->pool, irq_data.longs);
1369
	new_count = ++fast_pool->count;
1370

1371
	if (new_count & MIX_INFLIGHT)
L
Linus Torvalds 已提交
1372 1373
		return;

1374 1375
	if (new_count < 64 && (!time_after(now, fast_pool->last + HZ) ||
			       unlikely(crng_init == 0)))
1376
		return;
1377

1378 1379
	if (unlikely(!fast_pool->mix.func))
		INIT_WORK(&fast_pool->mix, mix_interrupt_randomness);
1380
	fast_pool->count |= MIX_INFLIGHT;
1381
	queue_work_on(raw_smp_processor_id(), system_highpri_wq, &fast_pool->mix);
L
Linus Torvalds 已提交
1382
}
1383
EXPORT_SYMBOL_GPL(add_interrupt_randomness);
L
Linus Torvalds 已提交
1384

1385 1386 1387 1388 1389 1390 1391 1392 1393 1394 1395 1396 1397 1398 1399
/*
 * Each time the timer fires, we expect that we got an unpredictable
 * jump in the cycle counter. Even if the timer is running on another
 * CPU, the timer activity will be touching the stack of the CPU that is
 * generating entropy..
 *
 * Note that we don't re-arm the timer in the timer itself - we are
 * happy to be scheduled away, since that just makes the load more
 * complex, but we do not want the timer to keep ticking unless the
 * entropy loop is running.
 *
 * So the re-arming always happens in the entropy loop itself.
 */
static void entropy_timer(struct timer_list *t)
{
1400
	credit_entropy_bits(1);
1401 1402 1403 1404 1405 1406 1407 1408 1409
}

/*
 * If we have an actual cycle counter, see if we can
 * generate enough entropy with timing noise
 */
static void try_to_generate_entropy(void)
{
	struct {
1410
		cycles_t cycles;
1411 1412 1413
		struct timer_list timer;
	} stack;

1414
	stack.cycles = random_get_entropy();
1415 1416

	/* Slow counter - or none. Don't even bother */
1417
	if (stack.cycles == random_get_entropy())
1418 1419 1420
		return;

	timer_setup_on_stack(&stack.timer, entropy_timer, 0);
1421
	while (!crng_ready() && !signal_pending(current)) {
1422
		if (!timer_pending(&stack.timer))
1423
			mod_timer(&stack.timer, jiffies + 1);
1424
		mix_pool_bytes(&stack.cycles, sizeof(stack.cycles));
1425
		schedule();
1426
		stack.cycles = random_get_entropy();
1427 1428 1429 1430
	}

	del_timer_sync(&stack.timer);
	destroy_timer_on_stack(&stack.timer);
1431
	mix_pool_bytes(&stack.cycles, sizeof(stack.cycles));
1432 1433
}

1434 1435 1436 1437 1438 1439 1440 1441

/**********************************************************************
 *
 * Userspace reader/writer interfaces.
 *
 * getrandom(2) is the primary modern interface into the RNG and should
 * be used in preference to anything else.
 *
1442 1443 1444 1445 1446 1447 1448 1449
 * Reading from /dev/random has the same functionality as calling
 * getrandom(2) with flags=0. In earlier versions, however, it had
 * vastly different semantics and should therefore be avoided, to
 * prevent backwards compatibility issues.
 *
 * Reading from /dev/urandom has the same functionality as calling
 * getrandom(2) with flags=GRND_INSECURE. Because it does not block
 * waiting for the RNG to be ready, it should not be used.
1450 1451 1452 1453
 *
 * Writing to either /dev/random or /dev/urandom adds entropy to
 * the input pool but does not credit it.
 *
1454 1455
 * Polling on /dev/random indicates when the RNG is initialized, on
 * the read side, and when it wants new entropy, on the write side.
1456 1457 1458 1459 1460 1461 1462 1463 1464
 *
 * Both /dev/random and /dev/urandom have the same set of ioctls for
 * adding entropy, getting the entropy count, zeroing the count, and
 * reseeding the crng.
 *
 **********************************************************************/

SYSCALL_DEFINE3(getrandom, char __user *, buf, size_t, count, unsigned int,
		flags)
L
Linus Torvalds 已提交
1465
{
1466 1467
	if (flags & ~(GRND_NONBLOCK | GRND_RANDOM | GRND_INSECURE))
		return -EINVAL;
1468

1469 1470 1471 1472 1473 1474
	/*
	 * Requesting insecure and blocking randomness at the same time makes
	 * no sense.
	 */
	if ((flags & (GRND_INSECURE | GRND_RANDOM)) == (GRND_INSECURE | GRND_RANDOM))
		return -EINVAL;
1475

1476 1477
	if (count > INT_MAX)
		count = INT_MAX;
L
Linus Torvalds 已提交
1478

1479 1480
	if (!(flags & GRND_INSECURE) && !crng_ready()) {
		int ret;
1481

1482 1483 1484 1485 1486 1487 1488
		if (flags & GRND_NONBLOCK)
			return -EAGAIN;
		ret = wait_for_random_bytes();
		if (unlikely(ret))
			return ret;
	}
	return get_random_bytes_user(buf, count);
1489 1490
}

1491
static __poll_t random_poll(struct file *file, poll_table *wait)
L
Linus Torvalds 已提交
1492
{
1493
	__poll_t mask;
L
Linus Torvalds 已提交
1494

1495
	poll_wait(file, &crng_init_wait, wait);
1496 1497
	poll_wait(file, &random_write_wait, wait);
	mask = 0;
1498
	if (crng_ready())
1499
		mask |= EPOLLIN | EPOLLRDNORM;
1500
	if (input_pool.entropy_count < POOL_MIN_BITS)
1501
		mask |= EPOLLOUT | EPOLLWRNORM;
L
Linus Torvalds 已提交
1502 1503 1504
	return mask;
}

1505
static int write_pool(const char __user *ubuf, size_t count)
L
Linus Torvalds 已提交
1506
{
1507
	size_t len;
1508
	int ret = 0;
1509
	u8 block[BLAKE2S_BLOCK_SIZE];
L
Linus Torvalds 已提交
1510

1511 1512
	while (count) {
		len = min(count, sizeof(block));
1513 1514 1515 1516
		if (copy_from_user(block, ubuf, len)) {
			ret = -EFAULT;
			goto out;
		}
1517 1518 1519
		count -= len;
		ubuf += len;
		mix_pool_bytes(block, len);
1520
		cond_resched();
L
Linus Torvalds 已提交
1521
	}
1522

1523 1524 1525
out:
	memzero_explicit(block, sizeof(block));
	return ret;
1526 1527
}

1528 1529
static ssize_t random_write(struct file *file, const char __user *buffer,
			    size_t count, loff_t *ppos)
1530
{
1531
	int ret;
1532

1533
	ret = write_pool(buffer, count);
1534 1535 1536 1537
	if (ret)
		return ret;

	return (ssize_t)count;
L
Linus Torvalds 已提交
1538 1539
}

1540 1541 1542 1543 1544
static ssize_t urandom_read(struct file *file, char __user *buf, size_t nbytes,
			    loff_t *ppos)
{
	static int maxwarn = 10;

1545 1546 1547 1548 1549 1550 1551
	/*
	 * Opportunistically attempt to initialize the RNG on platforms that
	 * have fast cycle counters, but don't (for now) require it to succeed.
	 */
	if (!crng_ready())
		try_to_generate_entropy();

1552 1553 1554 1555 1556 1557 1558 1559 1560 1561
	if (!crng_ready() && maxwarn > 0) {
		maxwarn--;
		if (__ratelimit(&urandom_warning))
			pr_notice("%s: uninitialized urandom read (%zd bytes read)\n",
				  current->comm, nbytes);
	}

	return get_random_bytes_user(buf, nbytes);
}

1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572
static ssize_t random_read(struct file *file, char __user *buf, size_t nbytes,
			   loff_t *ppos)
{
	int ret;

	ret = wait_for_random_bytes();
	if (ret != 0)
		return ret;
	return get_random_bytes_user(buf, nbytes);
}

M
Matt Mackall 已提交
1573
static long random_ioctl(struct file *f, unsigned int cmd, unsigned long arg)
L
Linus Torvalds 已提交
1574 1575 1576 1577 1578 1579 1580
{
	int size, ent_count;
	int __user *p = (int __user *)arg;
	int retval;

	switch (cmd) {
	case RNDGETENTCNT:
1581
		/* Inherently racy, no point locking. */
1582
		if (put_user(input_pool.entropy_count, p))
L
Linus Torvalds 已提交
1583 1584 1585 1586 1587 1588 1589
			return -EFAULT;
		return 0;
	case RNDADDTOENTCNT:
		if (!capable(CAP_SYS_ADMIN))
			return -EPERM;
		if (get_user(ent_count, p))
			return -EFAULT;
1590 1591 1592 1593
		if (ent_count < 0)
			return -EINVAL;
		credit_entropy_bits(ent_count);
		return 0;
L
Linus Torvalds 已提交
1594 1595 1596 1597 1598 1599 1600 1601 1602
	case RNDADDENTROPY:
		if (!capable(CAP_SYS_ADMIN))
			return -EPERM;
		if (get_user(ent_count, p++))
			return -EFAULT;
		if (ent_count < 0)
			return -EINVAL;
		if (get_user(size, p++))
			return -EFAULT;
1603
		retval = write_pool((const char __user *)p, size);
L
Linus Torvalds 已提交
1604 1605
		if (retval < 0)
			return retval;
1606 1607
		credit_entropy_bits(ent_count);
		return 0;
L
Linus Torvalds 已提交
1608 1609
	case RNDZAPENTCNT:
	case RNDCLEARPOOL:
1610 1611 1612 1613
		/*
		 * Clear the entropy pool counters. We no longer clear
		 * the entropy pool, as that's silly.
		 */
L
Linus Torvalds 已提交
1614 1615
		if (!capable(CAP_SYS_ADMIN))
			return -EPERM;
1616
		if (xchg(&input_pool.entropy_count, 0) >= POOL_MIN_BITS) {
1617 1618 1619
			wake_up_interruptible(&random_write_wait);
			kill_fasync(&fasync, SIGIO, POLL_OUT);
		}
L
Linus Torvalds 已提交
1620
		return 0;
1621 1622 1623
	case RNDRESEEDCRNG:
		if (!capable(CAP_SYS_ADMIN))
			return -EPERM;
1624
		if (!crng_ready())
1625
			return -ENODATA;
1626
		crng_reseed(false);
1627
		return 0;
L
Linus Torvalds 已提交
1628 1629 1630 1631 1632
	default:
		return -EINVAL;
	}
}

1633 1634 1635 1636 1637
static int random_fasync(int fd, struct file *filp, int on)
{
	return fasync_helper(fd, filp, on, &fasync);
}

1638
const struct file_operations random_fops = {
1639
	.read = random_read,
L
Linus Torvalds 已提交
1640
	.write = random_write,
1641
	.poll = random_poll,
M
Matt Mackall 已提交
1642
	.unlocked_ioctl = random_ioctl,
1643
	.compat_ioctl = compat_ptr_ioctl,
1644
	.fasync = random_fasync,
1645
	.llseek = noop_llseek,
L
Linus Torvalds 已提交
1646 1647
};

1648 1649 1650 1651 1652 1653 1654 1655 1656
const struct file_operations urandom_fops = {
	.read = urandom_read,
	.write = random_write,
	.unlocked_ioctl = random_ioctl,
	.compat_ioctl = compat_ptr_ioctl,
	.fasync = random_fasync,
	.llseek = noop_llseek,
};

1657

L
Linus Torvalds 已提交
1658 1659
/********************************************************************
 *
1660 1661 1662 1663 1664 1665 1666 1667 1668 1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681
 * Sysctl interface.
 *
 * These are partly unused legacy knobs with dummy values to not break
 * userspace and partly still useful things. They are usually accessible
 * in /proc/sys/kernel/random/ and are as follows:
 *
 * - boot_id - a UUID representing the current boot.
 *
 * - uuid - a random UUID, different each time the file is read.
 *
 * - poolsize - the number of bits of entropy that the input pool can
 *   hold, tied to the POOL_BITS constant.
 *
 * - entropy_avail - the number of bits of entropy currently in the
 *   input pool. Always <= poolsize.
 *
 * - write_wakeup_threshold - the amount of entropy in the input pool
 *   below which write polls to /dev/random will unblock, requesting
 *   more entropy, tied to the POOL_MIN_BITS constant. It is writable
 *   to avoid breaking old userspaces, but writing to it does not
 *   change any behavior of the RNG.
 *
1682
 * - urandom_min_reseed_secs - fixed to the value CRNG_RESEED_INTERVAL.
1683 1684
 *   It is writable to avoid breaking old userspaces, but writing
 *   to it does not change any behavior of the RNG.
L
Linus Torvalds 已提交
1685 1686 1687 1688 1689 1690 1691
 *
 ********************************************************************/

#ifdef CONFIG_SYSCTL

#include <linux/sysctl.h>

1692
static int sysctl_random_min_urandom_seed = CRNG_RESEED_INTERVAL / HZ;
1693
static int sysctl_random_write_wakeup_bits = POOL_MIN_BITS;
1694
static int sysctl_poolsize = POOL_BITS;
1695
static u8 sysctl_bootid[UUID_SIZE];
L
Linus Torvalds 已提交
1696 1697

/*
G
Greg Price 已提交
1698
 * This function is used to return both the bootid UUID, and random
1699
 * UUID. The difference is in whether table->data is NULL; if it is,
L
Linus Torvalds 已提交
1700 1701
 * then a new UUID is generated and returned to the user.
 */
1702 1703
static int proc_do_uuid(struct ctl_table *table, int write, void *buffer,
			size_t *lenp, loff_t *ppos)
L
Linus Torvalds 已提交
1704
{
1705 1706 1707 1708 1709 1710 1711 1712 1713
	u8 tmp_uuid[UUID_SIZE], *uuid;
	char uuid_string[UUID_STRING_LEN + 1];
	struct ctl_table fake_table = {
		.data = uuid_string,
		.maxlen = UUID_STRING_LEN
	};

	if (write)
		return -EPERM;
L
Linus Torvalds 已提交
1714 1715 1716 1717 1718

	uuid = table->data;
	if (!uuid) {
		uuid = tmp_uuid;
		generate_random_uuid(uuid);
1719 1720 1721 1722 1723 1724 1725 1726
	} else {
		static DEFINE_SPINLOCK(bootid_spinlock);

		spin_lock(&bootid_spinlock);
		if (!uuid[8])
			generate_random_uuid(uuid);
		spin_unlock(&bootid_spinlock);
	}
L
Linus Torvalds 已提交
1727

1728 1729
	snprintf(uuid_string, sizeof(uuid_string), "%pU", uuid);
	return proc_dostring(&fake_table, 0, buffer, lenp, ppos);
L
Linus Torvalds 已提交
1730 1731
}

1732 1733 1734 1735 1736 1737 1738
/* The same as proc_dointvec, but writes don't change anything. */
static int proc_do_rointvec(struct ctl_table *table, int write, void *buffer,
			    size_t *lenp, loff_t *ppos)
{
	return write ? 0 : proc_dointvec(table, 0, buffer, lenp, ppos);
}

1739
static struct ctl_table random_table[] = {
L
Linus Torvalds 已提交
1740 1741 1742 1743 1744
	{
		.procname	= "poolsize",
		.data		= &sysctl_poolsize,
		.maxlen		= sizeof(int),
		.mode		= 0444,
1745
		.proc_handler	= proc_dointvec,
L
Linus Torvalds 已提交
1746 1747 1748
	},
	{
		.procname	= "entropy_avail",
1749
		.data		= &input_pool.entropy_count,
L
Linus Torvalds 已提交
1750 1751
		.maxlen		= sizeof(int),
		.mode		= 0444,
1752
		.proc_handler	= proc_dointvec,
L
Linus Torvalds 已提交
1753 1754 1755
	},
	{
		.procname	= "write_wakeup_threshold",
1756
		.data		= &sysctl_random_write_wakeup_bits,
L
Linus Torvalds 已提交
1757 1758
		.maxlen		= sizeof(int),
		.mode		= 0644,
1759
		.proc_handler	= proc_do_rointvec,
L
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	},
1761 1762
	{
		.procname	= "urandom_min_reseed_secs",
1763
		.data		= &sysctl_random_min_urandom_seed,
1764 1765
		.maxlen		= sizeof(int),
		.mode		= 0644,
1766
		.proc_handler	= proc_do_rointvec,
1767
	},
L
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	{
		.procname	= "boot_id",
		.data		= &sysctl_bootid,
		.mode		= 0444,
1772
		.proc_handler	= proc_do_uuid,
L
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	},
	{
		.procname	= "uuid",
		.mode		= 0444,
1777
		.proc_handler	= proc_do_uuid,
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	},
1779
	{ }
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};
1781 1782 1783 1784 1785 1786 1787 1788 1789 1790 1791

/*
 * rand_initialize() is called before sysctl_init(),
 * so we cannot call register_sysctl_init() in rand_initialize()
 */
static int __init random_sysctls_init(void)
{
	register_sysctl_init("kernel/random", random_table);
	return 0;
}
device_initcall(random_sysctls_init);
1792
#endif