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
216 lines
5.9 KiB
C++
216 lines
5.9 KiB
C++
// Copyright 2011-2016 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/evp.h>
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#include <string.h>
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#include <openssl/aes.h>
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#include <openssl/cipher.h>
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#include "../../crypto/fipsmodule/cipher/internal.h"
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#include "../../crypto/fipsmodule/aes/internal.h"
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typedef struct xts128_context {
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AES_KEY *key1, *key2;
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block128_f block1, block2;
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} XTS128_CONTEXT;
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static size_t CRYPTO_xts128_encrypt(const XTS128_CONTEXT *ctx,
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const uint8_t iv[16], const uint8_t *inp,
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uint8_t *out, size_t len, int enc) {
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union {
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uint64_t u[2];
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uint32_t d[4];
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uint8_t c[16];
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} tweak, scratch;
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unsigned int i;
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if (len < 16) {
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return 0;
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}
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OPENSSL_memcpy(tweak.c, iv, 16);
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(*ctx->block2)(tweak.c, tweak.c, ctx->key2);
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if (!enc && (len % 16)) {
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len -= 16;
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}
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while (len >= 16) {
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OPENSSL_memcpy(scratch.c, inp, 16);
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scratch.u[0] ^= tweak.u[0];
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scratch.u[1] ^= tweak.u[1];
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(*ctx->block1)(scratch.c, scratch.c, ctx->key1);
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scratch.u[0] ^= tweak.u[0];
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scratch.u[1] ^= tweak.u[1];
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OPENSSL_memcpy(out, scratch.c, 16);
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inp += 16;
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out += 16;
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len -= 16;
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if (len == 0) {
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return 1;
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}
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unsigned int carry, res;
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res = 0x87 & (((int)tweak.d[3]) >> 31);
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carry = (unsigned int)(tweak.u[0] >> 63);
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tweak.u[0] = (tweak.u[0] << 1) ^ res;
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tweak.u[1] = (tweak.u[1] << 1) | carry;
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}
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if (enc) {
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for (i = 0; i < len; ++i) {
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uint8_t c = inp[i];
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out[i] = scratch.c[i];
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scratch.c[i] = c;
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}
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scratch.u[0] ^= tweak.u[0];
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scratch.u[1] ^= tweak.u[1];
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(*ctx->block1)(scratch.c, scratch.c, ctx->key1);
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scratch.u[0] ^= tweak.u[0];
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scratch.u[1] ^= tweak.u[1];
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OPENSSL_memcpy(out - 16, scratch.c, 16);
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} else {
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union {
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uint64_t u[2];
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uint8_t c[16];
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} tweak1;
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unsigned int carry, res;
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res = 0x87 & (((int)tweak.d[3]) >> 31);
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carry = (unsigned int)(tweak.u[0] >> 63);
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tweak1.u[0] = (tweak.u[0] << 1) ^ res;
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tweak1.u[1] = (tweak.u[1] << 1) | carry;
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OPENSSL_memcpy(scratch.c, inp, 16);
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scratch.u[0] ^= tweak1.u[0];
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scratch.u[1] ^= tweak1.u[1];
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(*ctx->block1)(scratch.c, scratch.c, ctx->key1);
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scratch.u[0] ^= tweak1.u[0];
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scratch.u[1] ^= tweak1.u[1];
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for (i = 0; i < len; ++i) {
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uint8_t c = inp[16 + i];
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out[16 + i] = scratch.c[i];
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scratch.c[i] = c;
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}
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scratch.u[0] ^= tweak.u[0];
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scratch.u[1] ^= tweak.u[1];
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(*ctx->block1)(scratch.c, scratch.c, ctx->key1);
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scratch.u[0] ^= tweak.u[0];
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scratch.u[1] ^= tweak.u[1];
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OPENSSL_memcpy(out, scratch.c, 16);
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}
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return 1;
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}
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typedef struct {
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union {
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double align;
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AES_KEY ks;
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} ks1, ks2; // AES key schedules to use
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XTS128_CONTEXT xts;
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} EVP_AES_XTS_CTX;
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static int aes_xts_init_key(EVP_CIPHER_CTX *ctx, const uint8_t *key,
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const uint8_t *iv, int enc) {
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EVP_AES_XTS_CTX *xctx = reinterpret_cast<EVP_AES_XTS_CTX *>(ctx->cipher_data);
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if (!iv && !key) {
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return 1;
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}
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if (key) {
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// key_len is two AES keys
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if (enc) {
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AES_set_encrypt_key(key, ctx->key_len * 4, &xctx->ks1.ks);
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xctx->xts.block1 = AES_encrypt;
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} else {
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AES_set_decrypt_key(key, ctx->key_len * 4, &xctx->ks1.ks);
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xctx->xts.block1 = AES_decrypt;
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}
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AES_set_encrypt_key(key + ctx->key_len / 2, ctx->key_len * 4,
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&xctx->ks2.ks);
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xctx->xts.block2 = AES_encrypt;
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xctx->xts.key1 = &xctx->ks1.ks;
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}
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if (iv) {
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xctx->xts.key2 = &xctx->ks2.ks;
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OPENSSL_memcpy(ctx->iv, iv, 16);
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}
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return 1;
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}
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static int aes_xts_cipher(EVP_CIPHER_CTX *ctx, uint8_t *out, const uint8_t *in,
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size_t len) {
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EVP_AES_XTS_CTX *xctx = reinterpret_cast<EVP_AES_XTS_CTX *>(ctx->cipher_data);
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if (!xctx->xts.key1 || !xctx->xts.key2 || !out || !in ||
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len < AES_BLOCK_SIZE ||
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!CRYPTO_xts128_encrypt(&xctx->xts, ctx->iv, in, out, len, ctx->encrypt)) {
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return 0;
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}
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return 1;
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}
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static int aes_xts_ctrl(EVP_CIPHER_CTX *c, int type, int arg, void *ptr) {
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EVP_AES_XTS_CTX *xctx = reinterpret_cast<EVP_AES_XTS_CTX *>(c->cipher_data);
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if (type == EVP_CTRL_COPY) {
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EVP_CIPHER_CTX *out = reinterpret_cast<EVP_CIPHER_CTX *>(ptr);
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EVP_AES_XTS_CTX *xctx_out =
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reinterpret_cast<EVP_AES_XTS_CTX *>(out->cipher_data);
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if (xctx->xts.key1) {
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if (xctx->xts.key1 != &xctx->ks1.ks) {
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return 0;
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}
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xctx_out->xts.key1 = &xctx_out->ks1.ks;
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}
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if (xctx->xts.key2) {
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if (xctx->xts.key2 != &xctx->ks2.ks) {
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return 0;
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}
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xctx_out->xts.key2 = &xctx_out->ks2.ks;
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}
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return 1;
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} else if (type != EVP_CTRL_INIT) {
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return -1;
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}
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// key1 and key2 are used as an indicator both key and IV are set
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xctx->xts.key1 = NULL;
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xctx->xts.key2 = NULL;
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return 1;
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}
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static const EVP_CIPHER aes_256_xts = {
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/* nid= */ NID_aes_256_xts,
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/* block_size= */ 1,
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/* key_len= */ 64 /* 2 AES-256 keys */,
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/* iv_len= */ 16,
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/* ctx_size= */ sizeof(EVP_AES_XTS_CTX),
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/* flags= */ EVP_CIPH_XTS_MODE | EVP_CIPH_CUSTOM_IV |
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EVP_CIPH_ALWAYS_CALL_INIT | EVP_CIPH_CTRL_INIT |
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EVP_CIPH_CUSTOM_COPY,
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/* init= */ aes_xts_init_key,
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/* cipher= */ aes_xts_cipher,
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/* cleanup= */ nullptr,
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/* ctrl= */ aes_xts_ctrl,
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};
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const EVP_CIPHER *EVP_aes_256_xts(void) { return &aes_256_xts; }
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