Based on Nekogram. Key additions: - Rebrand to FoxiGram (app name, APK name, applicationId com.foxigram.app) - Embedded Xray (VLESS+Reality) proxy client via JNI libxray.so - Bundled hidden one-tap proxies (LTE + WiFi), read-only in UI - Auto-restore proxy on restart, rebind to active network (LTE/WiFi) - Server credentials externalized to git-ignored XrayServers.java (+ template) - libxray Go source included; compiled .so, keystore, google-services.json ignored
483 lines
18 KiB
C++
483 lines
18 KiB
C++
// Copyright 2014 The BoringSSL Authors
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//
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// Licensed under the Apache License, Version 2.0 (the "License");
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// you may not use this file except in compliance with the License.
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// You may obtain a copy of the License at
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//
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// https://www.apache.org/licenses/LICENSE-2.0
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//
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// Unless required by applicable law or agreed to in writing, software
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// distributed under the License is distributed on an "AS IS" BASIS,
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// WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
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// See the License for the specific language governing permissions and
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// limitations under the License.
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#include <assert.h>
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#include <limits.h>
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#include <string.h>
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#if defined(BORINGSSL_FIPS)
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#include <unistd.h>
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#endif
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#include <openssl/chacha.h>
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#include <openssl/ctrdrbg.h>
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#include <openssl/mem.h>
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#include "../../bcm_support.h"
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#include "../bcm_interface.h"
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#include "../delocate.h"
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#include "internal.h"
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// It's assumed that the operating system always has an unfailing source of
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// entropy which is accessed via |CRYPTO_sysrand[_for_seed]|. (If the operating
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// system entropy source fails, it's up to |CRYPTO_sysrand| to abort the
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// process—we don't try to handle it.)
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//
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// In addition, the hardware may provide a low-latency RNG. Intel's rdrand
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// instruction is the canonical example of this. When a hardware RNG is
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// available we don't need to worry about an RNG failure arising from fork()ing
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// the process or moving a VM, so we can keep thread-local RNG state and use it
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// as an additional-data input to CTR-DRBG.
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//
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// (We assume that the OS entropy is safe from fork()ing and VM duplication.
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// This might be a bit of a leap of faith, esp on Windows, but there's nothing
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// that we can do about it.)
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// kReseedInterval is the number of generate calls made to CTR-DRBG before
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// reseeding.
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static const unsigned kReseedInterval = 4096;
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// CRNGT_BLOCK_SIZE is the number of bytes in a “block” for the purposes of the
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// continuous random number generator test in FIPS 140-2, section 4.9.2.
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#define CRNGT_BLOCK_SIZE 16
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namespace {
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// rand_thread_state contains the per-thread state for the RNG.
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struct rand_thread_state {
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CTR_DRBG_STATE drbg;
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uint64_t fork_generation;
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// calls is the number of generate calls made on |drbg| since it was last
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// (re)seeded. This is bound by |kReseedInterval|.
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unsigned calls;
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// last_block_valid is non-zero iff |last_block| contains data from
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// |get_seed_entropy|.
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int last_block_valid;
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// fork_unsafe_buffering is non-zero iff, when |drbg| was last (re)seeded,
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// fork-unsafe buffering was enabled.
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int fork_unsafe_buffering;
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#if defined(BORINGSSL_FIPS)
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// last_block contains the previous block from |get_seed_entropy|.
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uint8_t last_block[CRNGT_BLOCK_SIZE];
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// next and prev form a NULL-terminated, double-linked list of all states in
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// a process.
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struct rand_thread_state *next, *prev;
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// clear_drbg_lock synchronizes between uses of |drbg| and
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// |rand_thread_state_clear_all| clearing it. This lock should be uncontended
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// in the common case, except on shutdown.
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CRYPTO_MUTEX clear_drbg_lock;
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#endif
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};
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} // namespace
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#if defined(BORINGSSL_FIPS)
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// thread_states_list is the head of a linked-list of all |rand_thread_state|
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// objects in the process, one per thread. This is needed because FIPS requires
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// that they be zeroed on process exit, but thread-local destructors aren't
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// called when the whole process is exiting.
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DEFINE_BSS_GET(struct rand_thread_state *, thread_states_list, nullptr)
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DEFINE_STATIC_MUTEX(thread_states_list_lock)
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static void rand_thread_state_clear_all(void) __attribute__((destructor));
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static void rand_thread_state_clear_all(void) {
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CRYPTO_MUTEX_lock_write(thread_states_list_lock_bss_get());
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for (struct rand_thread_state *cur = *thread_states_list_bss_get();
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cur != NULL; cur = cur->next) {
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CRYPTO_MUTEX_lock_write(&cur->clear_drbg_lock);
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CTR_DRBG_clear(&cur->drbg);
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}
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// The locks are deliberately left locked so that any threads that are still
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// running will hang if they try to call |BCM_rand_bytes|. It also ensures
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// |rand_thread_state_free| cannot free any thread state while we've taken the
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// lock.
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}
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#endif
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// rand_thread_state_free frees a |rand_thread_state|. This is called when a
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// thread exits.
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static void rand_thread_state_free(void *state_in) {
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struct rand_thread_state *state =
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reinterpret_cast<rand_thread_state *>(state_in);
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if (state_in == NULL) {
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return;
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}
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#if defined(BORINGSSL_FIPS)
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CRYPTO_MUTEX_lock_write(thread_states_list_lock_bss_get());
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if (state->prev != NULL) {
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state->prev->next = state->next;
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} else if (*thread_states_list_bss_get() == state) {
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// |state->prev| may be NULL either if it is the head of the list,
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// or if |state| is freed before it was added to the list at all.
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// Compare against the head of the list to distinguish these cases.
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*thread_states_list_bss_get() = state->next;
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}
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if (state->next != NULL) {
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state->next->prev = state->prev;
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}
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CRYPTO_MUTEX_unlock_write(thread_states_list_lock_bss_get());
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CTR_DRBG_clear(&state->drbg);
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#endif
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OPENSSL_free(state);
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}
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#if defined(OPENSSL_X86_64) && !defined(OPENSSL_NO_ASM) && \
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!defined(FUZZING_BUILD_MODE_UNSAFE_FOR_PRODUCTION)
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// rdrand should only be called if either |have_rdrand| or |have_fast_rdrand|
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// returned true.
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static int rdrand(uint8_t *buf, const size_t len) {
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const size_t len_multiple8 = len & ~7;
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if (!CRYPTO_rdrand_multiple8_buf(buf, len_multiple8)) {
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return 0;
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}
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const size_t remainder = len - len_multiple8;
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if (remainder != 0) {
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assert(remainder < 8);
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uint8_t rand_buf[8];
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if (!CRYPTO_rdrand(rand_buf)) {
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return 0;
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}
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OPENSSL_memcpy(buf + len_multiple8, rand_buf, remainder);
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}
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return 1;
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}
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#else
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static int rdrand(uint8_t *buf, size_t len) { return 0; }
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#endif
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bcm_status BCM_rand_bytes_hwrng(uint8_t *buf, const size_t len) {
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if (!have_rdrand()) {
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return bcm_status::failure;
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}
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if (rdrand(buf, len)) {
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return bcm_status::not_approved;
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}
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return bcm_status::failure;
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}
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#if defined(BORINGSSL_FIPS)
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// In passive entropy mode, entropy is supplied from outside of the module via
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// |BCM_rand_load_entropy| and is stored in global instance of the following
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// structure.
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struct entropy_buffer {
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// bytes contains entropy suitable for seeding a DRBG.
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uint8_t
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bytes[CRNGT_BLOCK_SIZE + CTR_DRBG_ENTROPY_LEN * BORINGSSL_FIPS_OVERREAD];
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// bytes_valid indicates the number of bytes of |bytes| that contain valid
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// data.
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size_t bytes_valid;
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// want_additional_input is true if any of the contents of |bytes| were
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// obtained via a method other than from the kernel. In these cases entropy
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// from the kernel is also provided via an additional input to the DRBG.
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int want_additional_input;
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};
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DEFINE_BSS_GET(struct entropy_buffer, entropy_buffer, {})
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DEFINE_STATIC_MUTEX(entropy_buffer_lock)
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bcm_infallible BCM_rand_load_entropy(const uint8_t *entropy, size_t entropy_len,
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int want_additional_input) {
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struct entropy_buffer *const buffer = entropy_buffer_bss_get();
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CRYPTO_MUTEX_lock_write(entropy_buffer_lock_bss_get());
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const size_t space = sizeof(buffer->bytes) - buffer->bytes_valid;
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if (entropy_len > space) {
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entropy_len = space;
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}
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OPENSSL_memcpy(&buffer->bytes[buffer->bytes_valid], entropy, entropy_len);
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buffer->bytes_valid += entropy_len;
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buffer->want_additional_input |= want_additional_input && (entropy_len != 0);
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CRYPTO_MUTEX_unlock_write(entropy_buffer_lock_bss_get());
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return bcm_infallible::not_approved;
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}
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// get_seed_entropy fills |out_entropy_len| bytes of |out_entropy| from the
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// global |entropy_buffer|.
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static void get_seed_entropy(uint8_t *out_entropy, size_t out_entropy_len,
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int *out_want_additional_input) {
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struct entropy_buffer *const buffer = entropy_buffer_bss_get();
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if (out_entropy_len > sizeof(buffer->bytes)) {
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abort();
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}
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CRYPTO_MUTEX_lock_write(entropy_buffer_lock_bss_get());
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while (buffer->bytes_valid < out_entropy_len) {
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CRYPTO_MUTEX_unlock_write(entropy_buffer_lock_bss_get());
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RAND_need_entropy(out_entropy_len - buffer->bytes_valid);
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CRYPTO_MUTEX_lock_write(entropy_buffer_lock_bss_get());
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}
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*out_want_additional_input = buffer->want_additional_input;
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OPENSSL_memcpy(out_entropy, buffer->bytes, out_entropy_len);
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OPENSSL_memmove(buffer->bytes, &buffer->bytes[out_entropy_len],
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buffer->bytes_valid - out_entropy_len);
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buffer->bytes_valid -= out_entropy_len;
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if (buffer->bytes_valid == 0) {
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buffer->want_additional_input = 0;
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}
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CRYPTO_MUTEX_unlock_write(entropy_buffer_lock_bss_get());
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}
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// rand_get_seed fills |seed| with entropy. In some cases, it will additionally
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// fill |additional_input| with entropy to supplement |seed|. It sets
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// |*out_additional_input_len| to the number of extra bytes.
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static void rand_get_seed(struct rand_thread_state *state,
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uint8_t seed[CTR_DRBG_ENTROPY_LEN],
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uint8_t additional_input[CTR_DRBG_ENTROPY_LEN],
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size_t *out_additional_input_len) {
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uint8_t entropy_bytes[sizeof(state->last_block) +
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CTR_DRBG_ENTROPY_LEN * BORINGSSL_FIPS_OVERREAD];
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uint8_t *entropy = entropy_bytes;
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size_t entropy_len = sizeof(entropy_bytes);
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if (state->last_block_valid) {
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// No need to fill |state->last_block| with entropy from the read.
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entropy += sizeof(state->last_block);
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entropy_len -= sizeof(state->last_block);
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}
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int want_additional_input;
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get_seed_entropy(entropy, entropy_len, &want_additional_input);
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if (!state->last_block_valid) {
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OPENSSL_memcpy(state->last_block, entropy, sizeof(state->last_block));
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entropy += sizeof(state->last_block);
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entropy_len -= sizeof(state->last_block);
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}
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// See FIPS 140-2, section 4.9.2. This is the “continuous random number
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// generator test” which causes the program to randomly abort. Hopefully the
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// rate of failure is small enough not to be a problem in practice.
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if (CRYPTO_memcmp(state->last_block, entropy, sizeof(state->last_block)) ==
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0) {
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fprintf(CRYPTO_get_stderr(), "CRNGT failed.\n");
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BORINGSSL_FIPS_abort();
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}
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assert(entropy_len % CRNGT_BLOCK_SIZE == 0);
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for (size_t i = CRNGT_BLOCK_SIZE; i < entropy_len; i += CRNGT_BLOCK_SIZE) {
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if (CRYPTO_memcmp(entropy + i - CRNGT_BLOCK_SIZE, entropy + i,
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CRNGT_BLOCK_SIZE) == 0) {
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fprintf(CRYPTO_get_stderr(), "CRNGT failed.\n");
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BORINGSSL_FIPS_abort();
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}
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}
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OPENSSL_memcpy(state->last_block, entropy + entropy_len - CRNGT_BLOCK_SIZE,
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CRNGT_BLOCK_SIZE);
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assert(entropy_len == BORINGSSL_FIPS_OVERREAD * CTR_DRBG_ENTROPY_LEN);
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OPENSSL_memcpy(seed, entropy, CTR_DRBG_ENTROPY_LEN);
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for (size_t i = 1; i < BORINGSSL_FIPS_OVERREAD; i++) {
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for (size_t j = 0; j < CTR_DRBG_ENTROPY_LEN; j++) {
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seed[j] ^= entropy[CTR_DRBG_ENTROPY_LEN * i + j];
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}
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}
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// If we used something other than system entropy then also
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// opportunistically read from the system. This avoids solely relying on the
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// hardware once the entropy pool has been initialized.
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*out_additional_input_len = 0;
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if (want_additional_input &&
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CRYPTO_sysrand_if_available(additional_input, CTR_DRBG_ENTROPY_LEN)) {
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*out_additional_input_len = CTR_DRBG_ENTROPY_LEN;
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}
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}
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#else
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// rand_get_seed fills |seed| with entropy. In some cases, it will additionally
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// fill |additional_input| with entropy to supplement |seed|. It sets
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// |*out_additional_input_len| to the number of extra bytes.
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static void rand_get_seed(struct rand_thread_state *state,
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uint8_t seed[CTR_DRBG_ENTROPY_LEN],
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uint8_t additional_input[CTR_DRBG_ENTROPY_LEN],
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size_t *out_additional_input_len) {
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// If not in FIPS mode, we don't overread from the system entropy source and
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// we don't depend only on the hardware RDRAND.
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CRYPTO_sysrand_for_seed(seed, CTR_DRBG_ENTROPY_LEN);
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*out_additional_input_len = 0;
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}
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#endif
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bcm_infallible BCM_rand_bytes_with_additional_data(
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uint8_t *out, size_t out_len, const uint8_t user_additional_data[32]) {
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if (out_len == 0) {
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return bcm_infallible::approved;
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}
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const uint64_t fork_generation = CRYPTO_get_fork_generation();
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const int fork_unsafe_buffering = rand_fork_unsafe_buffering_enabled();
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// Additional data is mixed into every CTR-DRBG call to protect, as best we
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// can, against forks & VM clones. We do not over-read this information and
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// don't reseed with it so, from the point of view of FIPS, this doesn't
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// provide “prediction resistance”. But, in practice, it does.
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uint8_t additional_data[32];
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// Intel chips have fast RDRAND instructions while, in other cases, RDRAND can
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// be _slower_ than a system call.
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if (!have_fast_rdrand() ||
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!rdrand(additional_data, sizeof(additional_data))) {
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// Without a hardware RNG to save us from address-space duplication, the OS
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// entropy is used. This can be expensive (one read per |RAND_bytes| call)
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// and so is disabled when we have fork detection, or if the application has
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// promised not to fork.
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if (fork_generation != 0 || fork_unsafe_buffering) {
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OPENSSL_memset(additional_data, 0, sizeof(additional_data));
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} else if (!have_rdrand()) {
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// No alternative so block for OS entropy.
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CRYPTO_sysrand(additional_data, sizeof(additional_data));
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} else if (!CRYPTO_sysrand_if_available(additional_data,
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sizeof(additional_data)) &&
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!rdrand(additional_data, sizeof(additional_data))) {
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// RDRAND failed: block for OS entropy.
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CRYPTO_sysrand(additional_data, sizeof(additional_data));
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}
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}
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for (size_t i = 0; i < sizeof(additional_data); i++) {
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additional_data[i] ^= user_additional_data[i];
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}
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struct rand_thread_state stack_state;
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struct rand_thread_state *state = reinterpret_cast<rand_thread_state *>(
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CRYPTO_get_thread_local(OPENSSL_THREAD_LOCAL_RAND));
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if (state == NULL) {
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state = reinterpret_cast<rand_thread_state *>(
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OPENSSL_zalloc(sizeof(struct rand_thread_state)));
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if (state == NULL ||
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!CRYPTO_set_thread_local(OPENSSL_THREAD_LOCAL_RAND, state,
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rand_thread_state_free)) {
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// If the system is out of memory, use an ephemeral state on the
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// stack.
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state = &stack_state;
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}
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state->last_block_valid = 0;
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uint8_t seed[CTR_DRBG_ENTROPY_LEN];
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uint8_t personalization[CTR_DRBG_ENTROPY_LEN] = {0};
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size_t personalization_len = 0;
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rand_get_seed(state, seed, personalization, &personalization_len);
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if (!CTR_DRBG_init(&state->drbg, seed, personalization,
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personalization_len)) {
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abort();
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}
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state->calls = 0;
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state->fork_generation = fork_generation;
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state->fork_unsafe_buffering = fork_unsafe_buffering;
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#if defined(BORINGSSL_FIPS)
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CRYPTO_MUTEX_init(&state->clear_drbg_lock);
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if (state != &stack_state) {
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CRYPTO_MUTEX_lock_write(thread_states_list_lock_bss_get());
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struct rand_thread_state **states_list = thread_states_list_bss_get();
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state->next = *states_list;
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if (state->next != NULL) {
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state->next->prev = state;
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}
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state->prev = NULL;
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*states_list = state;
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CRYPTO_MUTEX_unlock_write(thread_states_list_lock_bss_get());
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}
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#endif
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}
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if (state->calls >= kReseedInterval ||
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// If we've forked since |state| was last seeded, reseed.
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state->fork_generation != fork_generation ||
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// If |state| was seeded from a state with different fork-safety
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// preferences, reseed. Suppose |state| was fork-safe, then forked into
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// two children, but each of the children never fork and disable fork
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// safety. The children must reseed to avoid working from the same PRNG
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// state.
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state->fork_unsafe_buffering != fork_unsafe_buffering) {
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uint8_t seed[CTR_DRBG_ENTROPY_LEN];
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uint8_t reseed_additional_data[CTR_DRBG_ENTROPY_LEN] = {0};
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size_t reseed_additional_data_len = 0;
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rand_get_seed(state, seed, reseed_additional_data,
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&reseed_additional_data_len);
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#if defined(BORINGSSL_FIPS)
|
|
// Take a read lock around accesses to |state->drbg|. This is needed to
|
|
// avoid returning bad entropy if we race with
|
|
// |rand_thread_state_clear_all|.
|
|
CRYPTO_MUTEX_lock_read(&state->clear_drbg_lock);
|
|
#endif
|
|
if (!CTR_DRBG_reseed(&state->drbg, seed, reseed_additional_data,
|
|
reseed_additional_data_len)) {
|
|
abort();
|
|
}
|
|
state->calls = 0;
|
|
state->fork_generation = fork_generation;
|
|
state->fork_unsafe_buffering = fork_unsafe_buffering;
|
|
} else {
|
|
#if defined(BORINGSSL_FIPS)
|
|
CRYPTO_MUTEX_lock_read(&state->clear_drbg_lock);
|
|
#endif
|
|
}
|
|
|
|
int first_call = 1;
|
|
while (out_len > 0) {
|
|
size_t todo = out_len;
|
|
if (todo > CTR_DRBG_MAX_GENERATE_LENGTH) {
|
|
todo = CTR_DRBG_MAX_GENERATE_LENGTH;
|
|
}
|
|
|
|
if (!CTR_DRBG_generate(&state->drbg, out, todo, additional_data,
|
|
first_call ? sizeof(additional_data) : 0)) {
|
|
abort();
|
|
}
|
|
|
|
out += todo;
|
|
out_len -= todo;
|
|
// Though we only check before entering the loop, this cannot add enough to
|
|
// overflow a |size_t|.
|
|
state->calls++;
|
|
first_call = 0;
|
|
}
|
|
|
|
if (state == &stack_state) {
|
|
CTR_DRBG_clear(&state->drbg);
|
|
}
|
|
|
|
#if defined(BORINGSSL_FIPS)
|
|
CRYPTO_MUTEX_unlock_read(&state->clear_drbg_lock);
|
|
#endif
|
|
return bcm_infallible::approved;
|
|
}
|
|
|
|
bcm_infallible BCM_rand_bytes(uint8_t *out, size_t out_len) {
|
|
static const uint8_t kZeroAdditionalData[32] = {0};
|
|
BCM_rand_bytes_with_additional_data(out, out_len, kZeroAdditionalData);
|
|
return bcm_infallible::approved;
|
|
}
|