#include <stdio.h>
#include <time.h>
#include "internal/cryptlib.h"
#include <openssl/opensslconf.h>
#include "crypto/rand.h"
#include <openssl/engine.h>
#include "internal/thread_once.h"
#include "crypto/rand_pool.h"
RAND_POOL *ossl_rand_pool_new(int entropy_requested, int secure,
size_t min_len, size_t max_len)
{
RAND_POOL *pool = OPENSSL_zalloc(sizeof(*pool));
size_t min_alloc_size = RAND_POOL_MIN_ALLOCATION(secure);
if (pool == NULL)
return NULL;
pool->min_len = min_len;
pool->max_len = (max_len > RAND_POOL_MAX_LENGTH) ? RAND_POOL_MAX_LENGTH : max_len;
pool->alloc_len = min_len < min_alloc_size ? min_alloc_size : min_len;
if (pool->alloc_len > pool->max_len)
pool->alloc_len = pool->max_len;
if (secure)
pool->buffer = OPENSSL_secure_zalloc(pool->alloc_len);
else
pool->buffer = OPENSSL_zalloc(pool->alloc_len);
if (pool->buffer == NULL)
goto err;
pool->entropy_requested = entropy_requested;
pool->secure = secure;
return pool;
err:
OPENSSL_free(pool);
return NULL;
}
RAND_POOL *ossl_rand_pool_attach(const unsigned char *buffer, size_t len,
size_t entropy)
{
RAND_POOL *pool = OPENSSL_zalloc(sizeof(*pool));
if (pool == NULL)
return NULL;
pool->buffer = (unsigned char *)buffer;
pool->len = len;
pool->attached = 1;
pool->min_len = pool->max_len = pool->alloc_len = pool->len;
pool->entropy = entropy;
return pool;
}
void ossl_rand_pool_free(RAND_POOL *pool)
{
if (pool == NULL)
return;
if (!pool->attached) {
if (pool->secure)
OPENSSL_secure_clear_free(pool->buffer, pool->alloc_len);
else
OPENSSL_clear_free(pool->buffer, pool->alloc_len);
}
OPENSSL_free(pool);
}
const unsigned char *ossl_rand_pool_buffer(RAND_POOL *pool)
{
return pool->buffer;
}
size_t ossl_rand_pool_entropy(RAND_POOL *pool)
{
return pool->entropy;
}
size_t ossl_rand_pool_length(RAND_POOL *pool)
{
return pool->len;
}
unsigned char *ossl_rand_pool_detach(RAND_POOL *pool)
{
unsigned char *ret = pool->buffer;
pool->buffer = NULL;
pool->entropy = 0;
return ret;
}
void ossl_rand_pool_reattach(RAND_POOL *pool, unsigned char *buffer)
{
pool->buffer = buffer;
OPENSSL_cleanse(pool->buffer, pool->len);
pool->len = 0;
}
#define ENTROPY_TO_BYTES(bits, entropy_factor) \
(((bits) * (entropy_factor) + 7) / 8)
size_t ossl_rand_pool_entropy_available(RAND_POOL *pool)
{
if (pool->entropy < pool->entropy_requested)
return 0;
if (pool->len < pool->min_len)
return 0;
return pool->entropy;
}
size_t ossl_rand_pool_entropy_needed(RAND_POOL *pool)
{
if (pool->entropy < pool->entropy_requested)
return pool->entropy_requested - pool->entropy;
return 0;
}
static int rand_pool_grow(RAND_POOL *pool, size_t len)
{
if (len > pool->alloc_len - pool->len) {
unsigned char *p;
const size_t limit = pool->max_len / 2;
size_t newlen = pool->alloc_len;
if (pool->attached || len > pool->max_len - pool->len) {
ERR_raise(ERR_LIB_RAND, ERR_R_INTERNAL_ERROR);
return 0;
}
do
newlen = newlen < limit ? newlen * 2 : pool->max_len;
while (len > newlen - pool->len);
if (pool->secure)
p = OPENSSL_secure_zalloc(newlen);
else
p = OPENSSL_zalloc(newlen);
if (p == NULL)
return 0;
memcpy(p, pool->buffer, pool->len);
if (pool->secure)
OPENSSL_secure_clear_free(pool->buffer, pool->alloc_len);
else
OPENSSL_clear_free(pool->buffer, pool->alloc_len);
pool->buffer = p;
pool->alloc_len = newlen;
}
return 1;
}
size_t ossl_rand_pool_bytes_needed(RAND_POOL *pool, unsigned int entropy_factor)
{
size_t bytes_needed;
size_t entropy_needed = ossl_rand_pool_entropy_needed(pool);
if (entropy_factor < 1) {
ERR_raise(ERR_LIB_RAND, RAND_R_ARGUMENT_OUT_OF_RANGE);
return 0;
}
bytes_needed = ENTROPY_TO_BYTES(entropy_needed, entropy_factor);
if (bytes_needed > pool->max_len - pool->len) {
ERR_raise_data(ERR_LIB_RAND, RAND_R_RANDOM_POOL_OVERFLOW,
"entropy_factor=%u, entropy_needed=%zu, bytes_needed=%zu,"
"pool->max_len=%zu, pool->len=%zu",
entropy_factor, entropy_needed, bytes_needed,
pool->max_len, pool->len);
return 0;
}
if (pool->len < pool->min_len && bytes_needed < pool->min_len - pool->len)
bytes_needed = pool->min_len - pool->len;
if (!rand_pool_grow(pool, bytes_needed)) {
pool->max_len = pool->len = 0;
return 0;
}
return bytes_needed;
}
size_t ossl_rand_pool_bytes_remaining(RAND_POOL *pool)
{
return pool->max_len - pool->len;
}
int ossl_rand_pool_add(RAND_POOL *pool,
const unsigned char *buffer, size_t len, size_t entropy)
{
if (len > pool->max_len - pool->len) {
ERR_raise(ERR_LIB_RAND, RAND_R_ENTROPY_INPUT_TOO_LONG);
return 0;
}
if (pool->buffer == NULL) {
ERR_raise(ERR_LIB_RAND, ERR_R_INTERNAL_ERROR);
return 0;
}
if (len > 0) {
if (pool->alloc_len > pool->len && pool->buffer + pool->len == buffer) {
ERR_raise(ERR_LIB_RAND, ERR_R_INTERNAL_ERROR);
return 0;
}
if (!rand_pool_grow(pool, len))
return 0;
memcpy(pool->buffer + pool->len, buffer, len);
pool->len += len;
pool->entropy += entropy;
}
return 1;
}
unsigned char *ossl_rand_pool_add_begin(RAND_POOL *pool, size_t len)
{
if (len == 0)
return NULL;
if (len > pool->max_len - pool->len) {
ERR_raise(ERR_LIB_RAND, RAND_R_RANDOM_POOL_OVERFLOW);
return NULL;
}
if (pool->buffer == NULL) {
ERR_raise(ERR_LIB_RAND, ERR_R_INTERNAL_ERROR);
return NULL;
}
if (!rand_pool_grow(pool, len))
return NULL;
return pool->buffer + pool->len;
}
int ossl_rand_pool_add_end(RAND_POOL *pool, size_t len, size_t entropy)
{
if (len > pool->alloc_len - pool->len) {
ERR_raise(ERR_LIB_RAND, RAND_R_RANDOM_POOL_OVERFLOW);
return 0;
}
if (len > 0) {
pool->len += len;
pool->entropy += entropy;
}
return 1;
}
int ossl_rand_pool_adin_mix_in(RAND_POOL *pool, const unsigned char *adin,
size_t adin_len)
{
if (adin == NULL || adin_len == 0)
return 1;
if (pool->buffer == NULL) {
ERR_raise(ERR_LIB_RAND, ERR_R_INTERNAL_ERROR);
return 0;
}
if (pool->len == 0) {
ERR_raise(ERR_LIB_RAND, RAND_R_RANDOM_POOL_IS_EMPTY);
return 0;
}
if (adin != NULL && adin_len > 0) {
size_t i;
for (i = 0; i < adin_len; ++i)
pool->buffer[i % pool->len] ^= adin[i];
}
return 1;
}