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
574 lines
23 KiB
C
574 lines
23 KiB
C
// Copyright 2017 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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#ifndef OPENSSL_HEADER_CRYPTO_FIPSMODULE_AES_INTERNAL_H
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#define OPENSSL_HEADER_CRYPTO_FIPSMODULE_AES_INTERNAL_H
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#include <stdlib.h>
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#include "../bcm_interface.h"
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#include "../../internal.h"
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extern "C" {
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// block128_f is the type of an AES block cipher implementation.
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//
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// Unlike upstream OpenSSL, it and the other functions in this file hard-code
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// |AES_KEY|. It is undefined in C to call a function pointer with anything
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// other than the original type. Thus we either must match |block128_f| to the
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// type signature of |BCM_aes_encrypt| and friends or pass in |void*| wrapper
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// functions.
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//
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// These functions are called exclusively with AES, so we use the former.
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typedef void (*block128_f)(const uint8_t in[16], uint8_t out[16],
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const AES_KEY *key);
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// ctr128_f is the type of a function that performs CTR-mode encryption.
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typedef void (*ctr128_f)(const uint8_t *in, uint8_t *out, size_t blocks,
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const AES_KEY *key, const uint8_t ivec[16]);
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// aes_ctr_set_key initialises |*aes_key| using |key_bytes| bytes from |key|,
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// where |key_bytes| must either be 16, 24 or 32. If not NULL, |*out_block| is
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// set to a function that encrypts single blocks. If not NULL, |*out_is_hwaes|
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// is set to whether the hardware AES implementation was used. It returns a
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// function for optimised CTR-mode.
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ctr128_f aes_ctr_set_key(AES_KEY *aes_key, int *out_is_hwaes,
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block128_f *out_block, const uint8_t *key,
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size_t key_bytes);
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// AES implementations.
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#if !defined(OPENSSL_NO_ASM)
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#if defined(OPENSSL_X86) || defined(OPENSSL_X86_64)
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#define HWAES
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#define HWAES_ECB
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inline int hwaes_capable(void) { return CRYPTO_is_AESNI_capable(); }
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#define VPAES
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#define VPAES_CBC
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inline int vpaes_capable(void) { return CRYPTO_is_SSSE3_capable(); }
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#elif defined(OPENSSL_ARM) || defined(OPENSSL_AARCH64)
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#define HWAES
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inline int hwaes_capable(void) { return CRYPTO_is_ARMv8_AES_capable(); }
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#if defined(OPENSSL_ARM)
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#define BSAES
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#define VPAES
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inline int bsaes_capable(void) { return CRYPTO_is_NEON_capable(); }
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inline int vpaes_capable(void) { return CRYPTO_is_NEON_capable(); }
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#endif
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#if defined(OPENSSL_AARCH64)
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#define VPAES
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#define VPAES_CBC
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inline int vpaes_capable(void) { return CRYPTO_is_NEON_capable(); }
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#endif
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#endif
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#endif // !NO_ASM
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#if defined(HWAES)
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int aes_hw_set_encrypt_key(const uint8_t *user_key, int bits, AES_KEY *key);
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int aes_hw_set_decrypt_key(const uint8_t *user_key, int bits, AES_KEY *key);
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void aes_hw_encrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key);
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void aes_hw_decrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key);
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void aes_hw_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, uint8_t *ivec, int enc);
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void aes_hw_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16]);
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#if defined(OPENSSL_X86) || defined(OPENSSL_X86_64)
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// On x86 and x86_64, |aes_hw_set_decrypt_key| is implemented in terms of
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// |aes_hw_set_encrypt_key| and a conversion function.
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void aes_hw_encrypt_key_to_decrypt_key(AES_KEY *key);
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// There are two variants of this function, one which uses aeskeygenassist
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// ("base") and one which uses aesenclast + pshufb ("alt"). aesenclast is
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// overall faster but is slower on some older processors. It doesn't use AVX,
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// but AVX is used as a proxy to detecting this. See
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// https://groups.google.com/g/mailing.openssl.dev/c/OuFXwW4NfO8/m/7d2ZXVjkxVkJ
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//
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// TODO(davidben): It is unclear if the aeskeygenassist version is still
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// worthwhile. However, the aesenclast version requires SSSE3. SSSE3 long
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// predates AES-NI, but it's not clear if AES-NI implies SSSE3. In OpenSSL, the
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// CCM AES-NI assembly seems to assume it does.
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inline int aes_hw_set_encrypt_key_alt_capable(void) {
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return hwaes_capable() && CRYPTO_is_SSSE3_capable();
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}
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inline int aes_hw_set_encrypt_key_alt_preferred(void) {
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return hwaes_capable() && CRYPTO_is_AVX_capable();
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}
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int aes_hw_set_encrypt_key_base(const uint8_t *user_key, int bits,
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AES_KEY *key);
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int aes_hw_set_encrypt_key_alt(const uint8_t *user_key, int bits, AES_KEY *key);
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#endif // OPENSSL_X86 || OPENSSL_X86_64
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#else
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// If HWAES isn't defined then we provide dummy functions for each of the hwaes
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// functions.
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inline int hwaes_capable(void) { return 0; }
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inline int aes_hw_set_encrypt_key(const uint8_t *user_key, int bits,
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AES_KEY *key) {
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abort();
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}
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inline int aes_hw_set_decrypt_key(const uint8_t *user_key, int bits,
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AES_KEY *key) {
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abort();
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}
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inline void aes_hw_encrypt(const uint8_t *in, uint8_t *out,
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const AES_KEY *key) {
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abort();
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}
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inline void aes_hw_decrypt(const uint8_t *in, uint8_t *out,
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const AES_KEY *key) {
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abort();
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}
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inline void aes_hw_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, uint8_t *ivec, int enc) {
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abort();
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}
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inline void aes_hw_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out,
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size_t len, const AES_KEY *key,
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const uint8_t ivec[16]) {
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abort();
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}
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#endif // !HWAES
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#if defined(HWAES_ECB)
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void aes_hw_ecb_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, int enc);
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#endif // HWAES_ECB
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#if defined(BSAES)
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// Note |bsaes_cbc_encrypt| requires |enc| to be zero.
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void bsaes_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, uint8_t ivec[16], int enc);
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void bsaes_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16]);
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// VPAES to BSAES conversions are available on all BSAES platforms.
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void vpaes_encrypt_key_to_bsaes(AES_KEY *out_bsaes, const AES_KEY *vpaes);
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void vpaes_decrypt_key_to_bsaes(AES_KEY *out_bsaes, const AES_KEY *vpaes);
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void vpaes_ctr32_encrypt_blocks_with_bsaes(const uint8_t *in, uint8_t *out,
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size_t blocks, const AES_KEY *key,
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const uint8_t ivec[16]);
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#else
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inline int bsaes_capable(void) { return 0; }
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// On other platforms, bsaes_capable() will always return false and so the
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// following will never be called.
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inline void bsaes_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, uint8_t ivec[16], int enc) {
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abort();
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}
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inline void bsaes_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out,
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size_t len, const AES_KEY *key,
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const uint8_t ivec[16]) {
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abort();
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}
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inline void vpaes_encrypt_key_to_bsaes(AES_KEY *out_bsaes,
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const AES_KEY *vpaes) {
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abort();
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}
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inline void vpaes_decrypt_key_to_bsaes(AES_KEY *out_bsaes,
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const AES_KEY *vpaes) {
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abort();
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}
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#endif // !BSAES
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#if defined(VPAES)
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// On platforms where VPAES gets defined (just above), then these functions are
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// provided by asm.
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int vpaes_set_encrypt_key(const uint8_t *userKey, int bits, AES_KEY *key);
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int vpaes_set_decrypt_key(const uint8_t *userKey, int bits, AES_KEY *key);
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void vpaes_encrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key);
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void vpaes_decrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key);
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#if defined(VPAES_CBC)
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void vpaes_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, uint8_t *ivec, int enc);
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#endif
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void vpaes_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16]);
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#else
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inline int vpaes_capable(void) { return 0; }
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// On other platforms, vpaes_capable() will always return false and so the
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// following will never be called.
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inline int vpaes_set_encrypt_key(const uint8_t *userKey, int bits,
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AES_KEY *key) {
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abort();
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}
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inline int vpaes_set_decrypt_key(const uint8_t *userKey, int bits,
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AES_KEY *key) {
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abort();
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}
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inline void vpaes_encrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key) {
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abort();
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}
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inline void vpaes_decrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key) {
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abort();
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}
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inline void vpaes_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t length,
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const AES_KEY *key, uint8_t *ivec, int enc) {
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abort();
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}
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inline void vpaes_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out,
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size_t len, const AES_KEY *key,
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const uint8_t ivec[16]) {
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abort();
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}
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#endif // !VPAES
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int aes_nohw_set_encrypt_key(const uint8_t *key, unsigned bits,
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AES_KEY *aeskey);
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int aes_nohw_set_decrypt_key(const uint8_t *key, unsigned bits,
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AES_KEY *aeskey);
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void aes_nohw_encrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key);
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void aes_nohw_decrypt(const uint8_t *in, uint8_t *out, const AES_KEY *key);
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void aes_nohw_ctr32_encrypt_blocks(const uint8_t *in, uint8_t *out,
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size_t blocks, const AES_KEY *key,
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const uint8_t ivec[16]);
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void aes_nohw_cbc_encrypt(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, uint8_t *ivec, int enc);
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// Modes
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inline void CRYPTO_xor16(uint8_t out[16], const uint8_t a[16],
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const uint8_t b[16]) {
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// TODO(davidben): Ideally we'd leave this to the compiler, which could use
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// vector registers, etc. But the compiler doesn't know that |in| and |out|
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// cannot partially alias. |restrict| is slightly two strict (we allow exact
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// aliasing), but perhaps in-place could be a separate function?
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static_assert(16 % sizeof(crypto_word_t) == 0,
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"block cannot be evenly divided into words");
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for (size_t i = 0; i < 16; i += sizeof(crypto_word_t)) {
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CRYPTO_store_word_le(
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out + i, CRYPTO_load_word_le(a + i) ^ CRYPTO_load_word_le(b + i));
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}
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}
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// CTR.
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// CRYPTO_ctr128_encrypt_ctr32 encrypts (or decrypts, it's the same in CTR mode)
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// |len| bytes from |in| to |out| using |block| in counter mode. There's no
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// requirement that |len| be a multiple of any value and any partial blocks are
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// stored in |ecount_buf| and |*num|, which must be zeroed before the initial
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// call. The counter is a 128-bit, big-endian value in |ivec| and is
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// incremented by this function. If the counter overflows, it wraps around.
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// |ctr| must be a function that performs CTR mode but only deals with the lower
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// 32 bits of the counter.
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void CRYPTO_ctr128_encrypt_ctr32(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, uint8_t ivec[16],
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uint8_t ecount_buf[16], unsigned *num,
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ctr128_f ctr);
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// GCM.
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//
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// This API differs from the upstream API slightly. The |GCM128_CONTEXT| does
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// not have a |key| pointer that points to the key as upstream's version does.
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// Instead, every function takes a |key| parameter. This way |GCM128_CONTEXT|
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// can be safely copied. Additionally, |gcm_key| is split into a separate
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// struct.
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// gcm_impl_t specifies an assembly implementation of AES-GCM.
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enum gcm_impl_t {
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gcm_separate = 0, // No combined AES-GCM, but may have AES-CTR and GHASH.
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gcm_x86_aesni,
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gcm_x86_vaes_avx2,
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gcm_x86_vaes_avx512,
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gcm_arm64_aes,
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};
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typedef struct { uint64_t hi,lo; } u128;
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// gmult_func multiplies |Xi| by the GCM key and writes the result back to
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// |Xi|.
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typedef void (*gmult_func)(uint8_t Xi[16], const u128 Htable[16]);
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// ghash_func repeatedly multiplies |Xi| by the GCM key and adds in blocks from
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// |inp|. The result is written back to |Xi| and the |len| argument must be a
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// multiple of 16.
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typedef void (*ghash_func)(uint8_t Xi[16], const u128 Htable[16],
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const uint8_t *inp, size_t len);
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typedef struct gcm128_key_st {
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u128 Htable[16];
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gmult_func gmult;
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ghash_func ghash;
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AES_KEY aes;
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ctr128_f ctr;
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block128_f block;
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enum gcm_impl_t impl;
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} GCM128_KEY;
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// GCM128_CONTEXT contains state for a single GCM operation. The structure
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// should be zero-initialized before use.
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typedef struct {
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// The following 5 names follow names in GCM specification
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uint8_t Yi[16];
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uint8_t EKi[16];
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uint8_t EK0[16];
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struct {
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uint64_t aad;
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uint64_t msg;
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} len;
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uint8_t Xi[16];
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unsigned mres, ares;
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} GCM128_CONTEXT;
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#if defined(OPENSSL_X86) || defined(OPENSSL_X86_64)
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// crypto_gcm_clmul_enabled returns one if the CLMUL implementation of GCM is
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// used.
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int crypto_gcm_clmul_enabled(void);
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#endif
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// CRYPTO_ghash_init writes a precomputed table of powers of |gcm_key| to
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// |out_table| and sets |*out_mult| and |*out_hash| to (potentially hardware
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// accelerated) functions for performing operations in the GHASH field.
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void CRYPTO_ghash_init(gmult_func *out_mult, ghash_func *out_hash,
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u128 out_table[16], const uint8_t gcm_key[16]);
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// CRYPTO_gcm128_init_aes_key initialises |gcm_key| to with AES key |key|.
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void CRYPTO_gcm128_init_aes_key(GCM128_KEY *gcm_key, const uint8_t *key,
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size_t key_bytes);
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// CRYPTO_gcm128_init_ctx initializes |ctx| to encrypt with |key| and |iv|.
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void CRYPTO_gcm128_init_ctx(const GCM128_KEY *key, GCM128_CONTEXT *ctx,
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const uint8_t *iv, size_t iv_len);
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// CRYPTO_gcm128_aad adds to the authenticated data for an instance of GCM.
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// This must be called before and data is encrypted. |key| must be the same
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// value that was passed to |CRYPTO_gcm128_init_ctx|. It returns one on success
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// and zero otherwise.
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int CRYPTO_gcm128_aad(const GCM128_KEY *key, GCM128_CONTEXT *ctx,
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const uint8_t *aad, size_t aad_len);
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// CRYPTO_gcm128_encrypt encrypts |len| bytes from |in| to |out|. |key| must be
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// the same value that was passed to |CRYPTO_gcm128_init_ctx|. It returns one on
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// success and zero otherwise.
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int CRYPTO_gcm128_encrypt(const GCM128_KEY *key, GCM128_CONTEXT *ctx,
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const uint8_t *in, uint8_t *out, size_t len);
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// CRYPTO_gcm128_decrypt decrypts |len| bytes from |in| to |out|. |key| must be
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// the same value that was passed to |CRYPTO_gcm128_init_ctx|. It returns one on
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// success and zero otherwise.
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int CRYPTO_gcm128_decrypt(const GCM128_KEY *key, GCM128_CONTEXT *ctx,
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const uint8_t *in, uint8_t *out, size_t len);
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// CRYPTO_gcm128_finish calculates the authenticator and compares it against
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// |len| bytes of |tag|. |key| must be the same value that was passed to
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// |CRYPTO_gcm128_init_ctx|. It returns one on success and zero otherwise.
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int CRYPTO_gcm128_finish(const GCM128_KEY *key, GCM128_CONTEXT *ctx,
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const uint8_t *tag, size_t len);
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// CRYPTO_gcm128_tag calculates the authenticator and copies it into |tag|.
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// The minimum of |len| and 16 bytes are copied into |tag|. |key| must be the
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// same value that was passed to |CRYPTO_gcm128_init_ctx|.
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void CRYPTO_gcm128_tag(const GCM128_KEY *key, GCM128_CONTEXT *ctx, uint8_t *tag,
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size_t len);
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// GCM assembly.
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void gcm_init_nohw(u128 Htable[16], const uint64_t H[2]);
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void gcm_gmult_nohw(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_nohw(uint8_t Xi[16], const u128 Htable[16], const uint8_t *inp,
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size_t len);
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#if !defined(OPENSSL_NO_ASM)
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#if defined(OPENSSL_X86) || defined(OPENSSL_X86_64)
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#define GCM_FUNCREF
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void gcm_init_clmul(u128 Htable[16], const uint64_t Xi[2]);
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void gcm_gmult_clmul(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_clmul(uint8_t Xi[16], const u128 Htable[16], const uint8_t *inp,
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size_t len);
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void gcm_init_ssse3(u128 Htable[16], const uint64_t Xi[2]);
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void gcm_gmult_ssse3(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_ssse3(uint8_t Xi[16], const u128 Htable[16], const uint8_t *in,
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size_t len);
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#if defined(OPENSSL_X86_64)
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#define GHASH_ASM_X86_64
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void gcm_init_avx(u128 Htable[16], const uint64_t Xi[2]);
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void gcm_gmult_avx(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_avx(uint8_t Xi[16], const u128 Htable[16], const uint8_t *in,
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size_t len);
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#define HW_GCM
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size_t aesni_gcm_encrypt(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, uint8_t ivec[16],
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const u128 Htable[16], uint8_t Xi[16]);
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size_t aesni_gcm_decrypt(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, uint8_t ivec[16],
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const u128 Htable[16], uint8_t Xi[16]);
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void gcm_init_vpclmulqdq_avx2(u128 Htable[16], const uint64_t H[2]);
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void gcm_gmult_vpclmulqdq_avx2(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_vpclmulqdq_avx2(uint8_t Xi[16], const u128 Htable[16],
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const uint8_t *in, size_t len);
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void aes_gcm_enc_update_vaes_avx2(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16],
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const u128 Htable[16], uint8_t Xi[16]);
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void aes_gcm_dec_update_vaes_avx2(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16],
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const u128 Htable[16], uint8_t Xi[16]);
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void gcm_init_vpclmulqdq_avx512(u128 Htable[16], const uint64_t H[2]);
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void gcm_gmult_vpclmulqdq_avx512(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_vpclmulqdq_avx512(uint8_t Xi[16], const u128 Htable[16],
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const uint8_t *in, size_t len);
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void aes_gcm_enc_update_vaes_avx512(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16],
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const u128 Htable[16], uint8_t Xi[16]);
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void aes_gcm_dec_update_vaes_avx512(const uint8_t *in, uint8_t *out, size_t len,
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const AES_KEY *key, const uint8_t ivec[16],
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const u128 Htable[16], uint8_t Xi[16]);
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#endif // OPENSSL_X86_64
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#if defined(OPENSSL_X86)
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#define GHASH_ASM_X86
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#endif // OPENSSL_X86
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#elif defined(OPENSSL_ARM) || defined(OPENSSL_AARCH64)
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#define GHASH_ASM_ARM
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#define GCM_FUNCREF
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inline int gcm_pmull_capable(void) { return CRYPTO_is_ARMv8_PMULL_capable(); }
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void gcm_init_v8(u128 Htable[16], const uint64_t H[2]);
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void gcm_gmult_v8(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_v8(uint8_t Xi[16], const u128 Htable[16], const uint8_t *inp,
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size_t len);
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inline int gcm_neon_capable(void) { return CRYPTO_is_NEON_capable(); }
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void gcm_init_neon(u128 Htable[16], const uint64_t H[2]);
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void gcm_gmult_neon(uint8_t Xi[16], const u128 Htable[16]);
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void gcm_ghash_neon(uint8_t Xi[16], const u128 Htable[16], const uint8_t *inp,
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size_t len);
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#if defined(OPENSSL_AARCH64)
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#define HW_GCM
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// These functions are defined in aesv8-gcm-armv8.pl.
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void aes_gcm_enc_kernel(const uint8_t *in, uint64_t in_bits, void *out,
|
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void *Xi, uint8_t *ivec, const AES_KEY *key,
|
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const u128 Htable[16]);
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void aes_gcm_dec_kernel(const uint8_t *in, uint64_t in_bits, void *out,
|
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void *Xi, uint8_t *ivec, const AES_KEY *key,
|
|
const u128 Htable[16]);
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#endif
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#endif
|
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#endif // OPENSSL_NO_ASM
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// CBC.
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// cbc128_f is the type of a function that performs CBC-mode encryption.
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typedef void (*cbc128_f)(const uint8_t *in, uint8_t *out, size_t len,
|
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const AES_KEY *key, uint8_t ivec[16], int enc);
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// CRYPTO_cbc128_encrypt encrypts |len| bytes from |in| to |out| using the
|
|
// given IV and block cipher in CBC mode. The input need not be a multiple of
|
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// 128 bits long, but the output will round up to the nearest 128 bit multiple,
|
|
// zero padding the input if needed. The IV will be updated on return.
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void CRYPTO_cbc128_encrypt(const uint8_t *in, uint8_t *out, size_t len,
|
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const AES_KEY *key, uint8_t ivec[16],
|
|
block128_f block);
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|
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// CRYPTO_cbc128_decrypt decrypts |len| bytes from |in| to |out| using the
|
|
// given IV and block cipher in CBC mode. If |len| is not a multiple of 128
|
|
// bits then only that many bytes will be written, but a multiple of 128 bits
|
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// is always read from |in|. The IV will be updated on return.
|
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void CRYPTO_cbc128_decrypt(const uint8_t *in, uint8_t *out, size_t len,
|
|
const AES_KEY *key, uint8_t ivec[16],
|
|
block128_f block);
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// OFB.
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// CRYPTO_ofb128_encrypt encrypts (or decrypts, it's the same with OFB mode)
|
|
// |len| bytes from |in| to |out| using |block| in OFB mode. There's no
|
|
// requirement that |len| be a multiple of any value and any partial blocks are
|
|
// stored in |ivec| and |*num|, the latter must be zero before the initial
|
|
// call.
|
|
void CRYPTO_ofb128_encrypt(const uint8_t *in, uint8_t *out, size_t len,
|
|
const AES_KEY *key, uint8_t ivec[16], unsigned *num,
|
|
block128_f block);
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|
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|
|
// CFB.
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|
// CRYPTO_cfb128_encrypt encrypts (or decrypts, if |enc| is zero) |len| bytes
|
|
// from |in| to |out| using |block| in CFB mode. There's no requirement that
|
|
// |len| be a multiple of any value and any partial blocks are stored in |ivec|
|
|
// and |*num|, the latter must be zero before the initial call.
|
|
void CRYPTO_cfb128_encrypt(const uint8_t *in, uint8_t *out, size_t len,
|
|
const AES_KEY *key, uint8_t ivec[16], unsigned *num,
|
|
int enc, block128_f block);
|
|
|
|
// CRYPTO_cfb128_8_encrypt encrypts (or decrypts, if |enc| is zero) |len| bytes
|
|
// from |in| to |out| using |block| in CFB-8 mode. Prior to the first call
|
|
// |num| should be set to zero.
|
|
void CRYPTO_cfb128_8_encrypt(const uint8_t *in, uint8_t *out, size_t len,
|
|
const AES_KEY *key, uint8_t ivec[16],
|
|
unsigned *num, int enc, block128_f block);
|
|
|
|
// CRYPTO_cfb128_1_encrypt encrypts (or decrypts, if |enc| is zero) |len| bytes
|
|
// from |in| to |out| using |block| in CFB-1 mode. Prior to the first call
|
|
// |num| should be set to zero.
|
|
void CRYPTO_cfb128_1_encrypt(const uint8_t *in, uint8_t *out, size_t bits,
|
|
const AES_KEY *key, uint8_t ivec[16],
|
|
unsigned *num, int enc, block128_f block);
|
|
|
|
size_t CRYPTO_cts128_encrypt_block(const uint8_t *in, uint8_t *out, size_t len,
|
|
const AES_KEY *key, uint8_t ivec[16],
|
|
block128_f block);
|
|
|
|
|
|
} // extern C
|
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|
|
#endif // OPENSSL_HEADER_CRYPTO_FIPSMODULE_AES_INTERNAL_H
|