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
581 lines
16 KiB
C++
581 lines
16 KiB
C++
// Copyright 1995-2016 The OpenSSL Project Authors. All Rights Reserved.
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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 <openssl/mem.h>
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#include <assert.h>
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#include <errno.h>
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#include <limits.h>
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#include <stdarg.h>
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#include <stdio.h>
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#include <stdlib.h>
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#include <openssl/err.h>
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#if defined(OPENSSL_WINDOWS)
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#include <windows.h>
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#endif
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#if defined(BORINGSSL_MALLOC_FAILURE_TESTING)
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#include <errno.h>
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#include <signal.h>
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#include <unistd.h>
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#endif
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#include "internal.h"
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#define OPENSSL_MALLOC_PREFIX 8
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static_assert(OPENSSL_MALLOC_PREFIX >= sizeof(size_t), "size_t too large");
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#if defined(OPENSSL_ASAN)
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extern "C" {
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void __asan_poison_memory_region(const volatile void *addr, size_t size);
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void __asan_unpoison_memory_region(const volatile void *addr, size_t size);
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}
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#else
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static void __asan_poison_memory_region(const void *addr, size_t size) {}
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static void __asan_unpoison_memory_region(const void *addr, size_t size) {}
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#endif
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// Windows doesn't really support weak symbols as of May 2019, and Clang on
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// Windows will emit strong symbols instead. See
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// https://bugs.llvm.org/show_bug.cgi?id=37598
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//
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// EDK2 targets UEFI but builds as ELF and then translates the binary to
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// COFF(!). Thus it builds with __ELF__ defined but cannot actually cope with
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// weak symbols.
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#if !defined(__EDK2_BORINGSSL__) && defined(__ELF__) && defined(__GNUC__)
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#define WEAK_SYMBOL_FUNC(rettype, name, args) \
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extern "C" { \
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rettype name args __attribute__((weak)); \
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}
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#else
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#define WEAK_SYMBOL_FUNC(rettype, name, args) \
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static rettype(*const name) args = NULL;
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#endif
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#if defined(BORINGSSL_DETECT_SDALLOCX)
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// sdallocx is a sized |free| function. By passing the size (which we happen to
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// always know in BoringSSL), the malloc implementation can save work. We cannot
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// depend on |sdallocx| being available, however, so it's a weak symbol.
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//
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// This mechanism is kept opt-in because it assumes that, when |sdallocx| is
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// defined, it is part of the same allocator as |malloc|. This is usually true
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// but may break if |malloc| does not implement |sdallocx|, but some other
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// allocator with |sdallocx| is imported which does.
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WEAK_SYMBOL_FUNC(void, sdallocx, (void *ptr, size_t size, int flags))
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#else
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static void (*const sdallocx)(void *ptr, size_t size, int flags) = NULL;
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#endif
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// The following three functions can be defined to override default heap
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// allocation and freeing. If defined, it is the responsibility of
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// |OPENSSL_memory_free| to zero out the memory before returning it to the
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// system. |OPENSSL_memory_free| will not be passed NULL pointers.
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//
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// WARNING: These functions are called on every allocation and free in
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// BoringSSL across the entire process. They may be called by any code in the
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// process which calls BoringSSL, including in process initializers and thread
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// destructors. When called, BoringSSL may hold pthreads locks. Any other code
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// in the process which, directly or indirectly, calls BoringSSL may be on the
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// call stack and may itself be using arbitrary synchronization primitives.
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//
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// As a result, these functions may not have the usual programming environment
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// available to most C or C++ code. In particular, they may not call into
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// BoringSSL, or any library which depends on BoringSSL. Any synchronization
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// primitives used must tolerate every other synchronization primitive linked
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// into the process, including pthreads locks. Failing to meet these constraints
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// may result in deadlocks, crashes, or memory corruption.
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WEAK_SYMBOL_FUNC(void *, OPENSSL_memory_alloc, (size_t size))
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WEAK_SYMBOL_FUNC(void, OPENSSL_memory_free, (void *ptr))
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WEAK_SYMBOL_FUNC(size_t, OPENSSL_memory_get_size, (void *ptr))
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#if defined(BORINGSSL_MALLOC_FAILURE_TESTING)
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static CRYPTO_MUTEX malloc_failure_lock = CRYPTO_MUTEX_INIT;
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static uint64_t current_malloc_count = 0;
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static uint64_t malloc_number_to_fail = 0;
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static int malloc_failure_enabled = 0, break_on_malloc_fail = 0,
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any_malloc_failed = 0, disable_malloc_failures = 0;
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static void malloc_exit_handler(void) {
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CRYPTO_MUTEX_lock_read(&malloc_failure_lock);
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if (any_malloc_failed) {
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// Signal to the test driver that some allocation failed, so it knows to
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// increment the counter and continue.
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_exit(88);
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}
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CRYPTO_MUTEX_unlock_read(&malloc_failure_lock);
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}
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static void init_malloc_failure(void) {
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const char *env = getenv("MALLOC_NUMBER_TO_FAIL");
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if (env != NULL && env[0] != 0) {
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char *endptr;
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malloc_number_to_fail = strtoull(env, &endptr, 10);
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if (*endptr == 0) {
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malloc_failure_enabled = 1;
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atexit(malloc_exit_handler);
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}
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}
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break_on_malloc_fail = getenv("MALLOC_BREAK_ON_FAIL") != NULL;
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}
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// should_fail_allocation returns one if the current allocation should fail and
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// zero otherwise.
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static int should_fail_allocation() {
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static CRYPTO_once_t once = CRYPTO_ONCE_INIT;
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CRYPTO_once(&once, init_malloc_failure);
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if (!malloc_failure_enabled || disable_malloc_failures) {
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return 0;
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}
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// We lock just so multi-threaded tests are still correct, but we won't test
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// every malloc exhaustively.
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CRYPTO_MUTEX_lock_write(&malloc_failure_lock);
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int should_fail = current_malloc_count == malloc_number_to_fail;
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current_malloc_count++;
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any_malloc_failed = any_malloc_failed || should_fail;
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CRYPTO_MUTEX_unlock_write(&malloc_failure_lock);
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if (should_fail && break_on_malloc_fail) {
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raise(SIGTRAP);
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}
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if (should_fail) {
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errno = ENOMEM;
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}
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return should_fail;
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}
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void OPENSSL_reset_malloc_counter_for_testing(void) {
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CRYPTO_MUTEX_lock_write(&malloc_failure_lock);
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current_malloc_count = 0;
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CRYPTO_MUTEX_unlock_write(&malloc_failure_lock);
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}
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void OPENSSL_disable_malloc_failures_for_testing(void) {
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CRYPTO_MUTEX_lock_write(&malloc_failure_lock);
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BSSL_CHECK(!disable_malloc_failures);
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disable_malloc_failures = 1;
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CRYPTO_MUTEX_unlock_write(&malloc_failure_lock);
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}
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void OPENSSL_enable_malloc_failures_for_testing(void) {
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CRYPTO_MUTEX_lock_write(&malloc_failure_lock);
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BSSL_CHECK(disable_malloc_failures);
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disable_malloc_failures = 0;
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CRYPTO_MUTEX_unlock_write(&malloc_failure_lock);
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}
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#else
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static int should_fail_allocation(void) { return 0; }
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#endif
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void *OPENSSL_malloc(size_t size) {
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void *ptr = nullptr;
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if (should_fail_allocation()) {
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goto err;
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}
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if (OPENSSL_memory_alloc != NULL) {
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assert(OPENSSL_memory_free != NULL);
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assert(OPENSSL_memory_get_size != NULL);
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void *ptr2 = OPENSSL_memory_alloc(size);
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if (ptr2 == NULL && size != 0) {
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goto err;
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}
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return ptr2;
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}
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if (size + OPENSSL_MALLOC_PREFIX < size) {
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goto err;
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}
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ptr = malloc(size + OPENSSL_MALLOC_PREFIX);
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if (ptr == NULL) {
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goto err;
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}
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*(size_t *)ptr = size;
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__asan_poison_memory_region(ptr, OPENSSL_MALLOC_PREFIX);
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return ((uint8_t *)ptr) + OPENSSL_MALLOC_PREFIX;
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err:
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// This only works because ERR does not call OPENSSL_malloc.
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OPENSSL_PUT_ERROR(CRYPTO, ERR_R_MALLOC_FAILURE);
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return NULL;
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}
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void *OPENSSL_zalloc(size_t size) {
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void *ret = OPENSSL_malloc(size);
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if (ret != NULL) {
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OPENSSL_memset(ret, 0, size);
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}
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return ret;
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}
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void *OPENSSL_calloc(size_t num, size_t size) {
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if (size != 0 && num > SIZE_MAX / size) {
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OPENSSL_PUT_ERROR(CRYPTO, ERR_R_OVERFLOW);
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return NULL;
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}
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return OPENSSL_zalloc(num * size);
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}
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void OPENSSL_free(void *orig_ptr) {
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if (orig_ptr == NULL) {
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return;
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}
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if (OPENSSL_memory_free != NULL) {
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OPENSSL_memory_free(orig_ptr);
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return;
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}
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void *ptr = ((uint8_t *)orig_ptr) - OPENSSL_MALLOC_PREFIX;
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__asan_unpoison_memory_region(ptr, OPENSSL_MALLOC_PREFIX);
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size_t size = *(size_t *)ptr;
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OPENSSL_cleanse(ptr, size + OPENSSL_MALLOC_PREFIX);
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// ASan knows to intercept malloc and free, but not sdallocx.
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#if defined(OPENSSL_ASAN)
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(void)sdallocx;
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free(ptr);
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#else
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if (sdallocx) {
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sdallocx(ptr, size + OPENSSL_MALLOC_PREFIX, 0 /* flags */);
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} else {
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free(ptr);
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}
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#endif
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}
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void *OPENSSL_realloc(void *orig_ptr, size_t new_size) {
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if (orig_ptr == NULL) {
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return OPENSSL_malloc(new_size);
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}
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size_t old_size;
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if (OPENSSL_memory_get_size != NULL) {
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old_size = OPENSSL_memory_get_size(orig_ptr);
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} else {
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void *ptr = ((uint8_t *)orig_ptr) - OPENSSL_MALLOC_PREFIX;
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__asan_unpoison_memory_region(ptr, OPENSSL_MALLOC_PREFIX);
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old_size = *(size_t *)ptr;
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__asan_poison_memory_region(ptr, OPENSSL_MALLOC_PREFIX);
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}
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void *ret = OPENSSL_malloc(new_size);
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if (ret == NULL) {
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return NULL;
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}
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size_t to_copy = new_size;
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if (old_size < to_copy) {
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to_copy = old_size;
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}
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memcpy(ret, orig_ptr, to_copy);
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OPENSSL_free(orig_ptr);
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return ret;
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}
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void OPENSSL_cleanse(void *ptr, size_t len) {
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#if defined(OPENSSL_WINDOWS)
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SecureZeroMemory(ptr, len);
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#else
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OPENSSL_memset(ptr, 0, len);
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#if !defined(OPENSSL_NO_ASM)
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/* As best as we can tell, this is sufficient to break any optimisations that
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might try to eliminate "superfluous" memsets. If there's an easy way to
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detect memset_s, it would be better to use that. */
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__asm__ __volatile__("" : : "r"(ptr) : "memory");
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#endif
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#endif // !OPENSSL_NO_ASM
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}
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void OPENSSL_clear_free(void *ptr, size_t unused) { OPENSSL_free(ptr); }
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int CRYPTO_secure_malloc_init(size_t size, size_t min_size) { return 0; }
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int CRYPTO_secure_malloc_initialized(void) { return 0; }
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size_t CRYPTO_secure_used(void) { return 0; }
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void *OPENSSL_secure_malloc(size_t size) { return OPENSSL_malloc(size); }
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void OPENSSL_secure_clear_free(void *ptr, size_t len) {
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OPENSSL_clear_free(ptr, len);
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}
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int CRYPTO_memcmp(const void *in_a, const void *in_b, size_t len) {
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const uint8_t *a = reinterpret_cast<const uint8_t *>(in_a);
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const uint8_t *b = reinterpret_cast<const uint8_t *>(in_b);
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uint8_t x = 0;
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for (size_t i = 0; i < len; i++) {
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x |= a[i] ^ b[i];
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}
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return x;
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}
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uint32_t OPENSSL_hash32(const void *ptr, size_t len) {
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// These are the FNV-1a parameters for 32 bits.
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static const uint32_t kPrime = 16777619u;
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static const uint32_t kOffsetBasis = 2166136261u;
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const uint8_t *in = reinterpret_cast<const uint8_t *>(ptr);
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uint32_t h = kOffsetBasis;
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for (size_t i = 0; i < len; i++) {
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h ^= in[i];
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h *= kPrime;
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}
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return h;
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}
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uint32_t OPENSSL_strhash(const char *s) { return OPENSSL_hash32(s, strlen(s)); }
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size_t OPENSSL_strnlen(const char *s, size_t len) {
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for (size_t i = 0; i < len; i++) {
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if (s[i] == 0) {
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return i;
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}
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}
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return len;
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}
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char *OPENSSL_strdup(const char *s) {
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if (s == NULL) {
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return NULL;
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}
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// Copy the NUL terminator.
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return reinterpret_cast<char *>(OPENSSL_memdup(s, strlen(s) + 1));
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}
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int OPENSSL_isalpha(int c) {
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return (c >= 'a' && c <= 'z') || (c >= 'A' && c <= 'Z');
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}
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int OPENSSL_isdigit(int c) { return c >= '0' && c <= '9'; }
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int OPENSSL_isxdigit(int c) {
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return OPENSSL_isdigit(c) || (c >= 'a' && c <= 'f') || (c >= 'A' && c <= 'F');
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}
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int OPENSSL_fromxdigit(uint8_t *out, int c) {
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if (OPENSSL_isdigit(c)) {
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*out = c - '0';
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return 1;
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}
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if ('a' <= c && c <= 'f') {
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*out = c - 'a' + 10;
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return 1;
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}
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if ('A' <= c && c <= 'F') {
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*out = c - 'A' + 10;
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return 1;
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}
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return 0;
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}
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int OPENSSL_isalnum(int c) { return OPENSSL_isalpha(c) || OPENSSL_isdigit(c); }
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int OPENSSL_tolower(int c) {
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if (c >= 'A' && c <= 'Z') {
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return c + ('a' - 'A');
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}
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return c;
|
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}
|
|
|
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int OPENSSL_isspace(int c) {
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return c == '\t' || c == '\n' || c == '\v' || c == '\f' || c == '\r' ||
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c == ' ';
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}
|
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|
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int OPENSSL_strcasecmp(const char *a, const char *b) {
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for (size_t i = 0;; i++) {
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const int aa = OPENSSL_tolower(a[i]);
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const int bb = OPENSSL_tolower(b[i]);
|
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|
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if (aa < bb) {
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return -1;
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} else if (aa > bb) {
|
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return 1;
|
|
} else if (aa == 0) {
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return 0;
|
|
}
|
|
}
|
|
}
|
|
|
|
int OPENSSL_strncasecmp(const char *a, const char *b, size_t n) {
|
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for (size_t i = 0; i < n; i++) {
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const int aa = OPENSSL_tolower(a[i]);
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const int bb = OPENSSL_tolower(b[i]);
|
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|
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if (aa < bb) {
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return -1;
|
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} else if (aa > bb) {
|
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return 1;
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} else if (aa == 0) {
|
|
return 0;
|
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}
|
|
}
|
|
|
|
return 0;
|
|
}
|
|
|
|
int BIO_snprintf(char *buf, size_t n, const char *format, ...) {
|
|
va_list args;
|
|
va_start(args, format);
|
|
int ret = BIO_vsnprintf(buf, n, format, args);
|
|
va_end(args);
|
|
return ret;
|
|
}
|
|
|
|
int BIO_vsnprintf(char *buf, size_t n, const char *format, va_list args) {
|
|
return vsnprintf(buf, n, format, args);
|
|
}
|
|
|
|
int OPENSSL_vasprintf_internal(char **str, const char *format, va_list args,
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int system_malloc) {
|
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void *(*allocate)(size_t) = system_malloc ? malloc : OPENSSL_malloc;
|
|
void (*deallocate)(void *) = system_malloc ? free : OPENSSL_free;
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void *(*reallocate)(void *, size_t) =
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system_malloc ? realloc : OPENSSL_realloc;
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char *candidate = NULL;
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size_t candidate_len = 64; // TODO(bbe) what's the best initial size?
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int ret;
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|
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if ((candidate = reinterpret_cast<char *>(allocate(candidate_len))) == NULL) {
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goto err;
|
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}
|
|
va_list args_copy;
|
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va_copy(args_copy, args);
|
|
ret = vsnprintf(candidate, candidate_len, format, args_copy);
|
|
va_end(args_copy);
|
|
if (ret < 0) {
|
|
goto err;
|
|
}
|
|
if ((size_t)ret >= candidate_len) {
|
|
// Too big to fit in allocation.
|
|
char *tmp;
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|
|
|
candidate_len = (size_t)ret + 1;
|
|
if ((tmp = reinterpret_cast<char *>(
|
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reallocate(candidate, candidate_len))) == NULL) {
|
|
goto err;
|
|
}
|
|
candidate = tmp;
|
|
ret = vsnprintf(candidate, candidate_len, format, args);
|
|
}
|
|
// At this point this should not happen unless vsnprintf is insane.
|
|
if (ret < 0 || (size_t)ret >= candidate_len) {
|
|
goto err;
|
|
}
|
|
*str = candidate;
|
|
return ret;
|
|
|
|
err:
|
|
deallocate(candidate);
|
|
*str = NULL;
|
|
errno = ENOMEM;
|
|
return -1;
|
|
}
|
|
|
|
int OPENSSL_vasprintf(char **str, const char *format, va_list args) {
|
|
return OPENSSL_vasprintf_internal(str, format, args, /*system_malloc=*/0);
|
|
}
|
|
|
|
int OPENSSL_asprintf(char **str, const char *format, ...) {
|
|
va_list args;
|
|
va_start(args, format);
|
|
int ret = OPENSSL_vasprintf(str, format, args);
|
|
va_end(args);
|
|
return ret;
|
|
}
|
|
|
|
char *OPENSSL_strndup(const char *str, size_t size) {
|
|
size = OPENSSL_strnlen(str, size);
|
|
|
|
size_t alloc_size = size + 1;
|
|
if (alloc_size < size) {
|
|
// overflow
|
|
OPENSSL_PUT_ERROR(CRYPTO, ERR_R_MALLOC_FAILURE);
|
|
return NULL;
|
|
}
|
|
char *ret = reinterpret_cast<char *>(OPENSSL_malloc(alloc_size));
|
|
if (ret == NULL) {
|
|
return NULL;
|
|
}
|
|
|
|
OPENSSL_memcpy(ret, str, size);
|
|
ret[size] = '\0';
|
|
return ret;
|
|
}
|
|
|
|
size_t OPENSSL_strlcpy(char *dst, const char *src, size_t dst_size) {
|
|
size_t l = 0;
|
|
|
|
for (; dst_size > 1 && *src; dst_size--) {
|
|
*dst++ = *src++;
|
|
l++;
|
|
}
|
|
|
|
if (dst_size) {
|
|
*dst = 0;
|
|
}
|
|
|
|
return l + strlen(src);
|
|
}
|
|
|
|
size_t OPENSSL_strlcat(char *dst, const char *src, size_t dst_size) {
|
|
size_t l = 0;
|
|
for (; dst_size > 0 && *dst; dst_size--, dst++) {
|
|
l++;
|
|
}
|
|
return l + OPENSSL_strlcpy(dst, src, dst_size);
|
|
}
|
|
|
|
void *OPENSSL_memdup(const void *data, size_t size) {
|
|
if (size == 0) {
|
|
return NULL;
|
|
}
|
|
|
|
void *ret = OPENSSL_malloc(size);
|
|
if (ret == NULL) {
|
|
return NULL;
|
|
}
|
|
|
|
OPENSSL_memcpy(ret, data, size);
|
|
return ret;
|
|
}
|
|
|
|
void *CRYPTO_malloc(size_t size, const char *file, int line) {
|
|
return OPENSSL_malloc(size);
|
|
}
|
|
|
|
void *CRYPTO_realloc(void *ptr, size_t new_size, const char *file, int line) {
|
|
return OPENSSL_realloc(ptr, new_size);
|
|
}
|
|
|
|
void CRYPTO_free(void *ptr, const char *file, int line) { OPENSSL_free(ptr); }
|