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425 lines
13 KiB
C++
425 lines
13 KiB
C++
/*****************************************************************************
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Copyright (C) 2013, 2015, Google Inc. All Rights Reserved.
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Copyright (C) 2014, 2021, MariaDB Corporation.
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This program is free software; you can redistribute it and/or modify it under
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the terms of the GNU General Public License as published by the Free Software
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Foundation; version 2 of the License.
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This program is distributed in the hope that it will be useful, but WITHOUT
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ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or FITNESS
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FOR A PARTICULAR PURPOSE. See the GNU General Public License for more details.
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You should have received a copy of the GNU General Public License along with
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this program; if not, write to the Free Software Foundation, Inc.,
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51 Franklin St, Fifth Floor, Boston, MA 02110-1335 USA
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*****************************************************************************/
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/**************************************************//**
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@file log0crypt.cc
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Innodb log encrypt/decrypt
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Created 11/25/2013 Minli Zhu Google
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Modified Jan Lindström jan.lindstrom@mariadb.com
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MDEV-11782: Rewritten for MariaDB 10.2 by Marko Mäkelä, MariaDB Corporation.
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*******************************************************/
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#include <my_global.h>
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#include "log0crypt.h"
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#include <mysql/service_my_crypt.h>
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#include "assume_aligned.h"
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#include "log0crypt.h"
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#include "log0recv.h" // for recv_sys
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/** innodb_encrypt_log: whether to encrypt the redo log */
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my_bool srv_encrypt_log;
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/** Redo log encryption key ID */
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#define LOG_DEFAULT_ENCRYPTION_KEY 1
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struct crypt_info_t {
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ulint checkpoint_no; /*!< checkpoint no; 32 bits */
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uint key_version; /*!< mysqld key version */
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/** random string for encrypting the key */
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alignas(8) byte crypt_msg[MY_AES_BLOCK_SIZE];
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/** the secret key */
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alignas(8) byte crypt_key[MY_AES_BLOCK_SIZE];
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/** a random string for the per-block initialization vector */
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alignas(4) byte crypt_nonce[4];
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};
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/** The crypt info */
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static crypt_info_t info;
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/** Initialization vector used for temporary files/tablespace */
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static byte tmp_iv[MY_AES_BLOCK_SIZE];
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/** Crypt info when upgrading from 10.1 */
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static crypt_info_t infos[5 * 2];
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/** First unused slot in infos[] */
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static size_t infos_used;
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/*********************************************************************//**
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Get a log block's start lsn.
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@return a log block's start lsn */
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static inline
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lsn_t
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log_block_get_start_lsn(
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/*====================*/
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lsn_t lsn, /*!< in: checkpoint lsn */
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ulint log_block_no) /*!< in: log block number */
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{
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lsn_t start_lsn =
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(lsn & (lsn_t)0xffffffff00000000ULL) |
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(((log_block_no - 1) & (lsn_t)0x3fffffff) << 9);
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return start_lsn;
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}
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/** Generate crypt key from crypt msg.
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@param[in,out] info encryption key
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@param[in] upgrade whether to use the key in MariaDB 10.1 format
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@return whether the operation was successful */
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static bool init_crypt_key(crypt_info_t* info, bool upgrade = false)
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{
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byte mysqld_key[MY_AES_MAX_KEY_LENGTH];
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uint keylen = sizeof mysqld_key;
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compile_time_assert(16 == sizeof info->crypt_key);
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compile_time_assert(16 == MY_AES_BLOCK_SIZE);
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if (uint rc = encryption_key_get(LOG_DEFAULT_ENCRYPTION_KEY,
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info->key_version, mysqld_key,
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&keylen)) {
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ib::error()
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<< "Obtaining redo log encryption key version "
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<< info->key_version << " failed (" << rc
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<< "). Maybe the key or the required encryption "
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"key management plugin was not found.";
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info->key_version = ENCRYPTION_KEY_VERSION_INVALID;
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return false;
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}
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if (upgrade) {
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while (keylen < sizeof mysqld_key) {
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mysqld_key[keylen++] = 0;
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}
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}
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uint dst_len;
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int err= my_aes_crypt(MY_AES_ECB,
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ENCRYPTION_FLAG_NOPAD | ENCRYPTION_FLAG_ENCRYPT,
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info->crypt_msg, MY_AES_BLOCK_SIZE,
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info->crypt_key, &dst_len,
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mysqld_key, keylen, NULL, 0);
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if (err != MY_AES_OK || dst_len != MY_AES_BLOCK_SIZE) {
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ib::error() << "Getting redo log crypto key failed: err = "
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<< err << ", len = " << dst_len;
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info->key_version = ENCRYPTION_KEY_VERSION_INVALID;
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return false;
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}
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return true;
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}
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/** Encrypt or decrypt log blocks.
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@param[in,out] buf log blocks to encrypt or decrypt
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@param[in] lsn log sequence number of the start of the buffer
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@param[in] size size of the buffer, in bytes
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@param[in] op whether to decrypt, encrypt, or rotate key and encrypt
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@return whether the operation succeeded (encrypt always does) */
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bool log_crypt(byte* buf, lsn_t lsn, ulint size, log_crypt_t op)
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{
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ut_ad(size % OS_FILE_LOG_BLOCK_SIZE == 0);
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ut_ad(ulint(buf) % OS_FILE_LOG_BLOCK_SIZE == 0);
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ut_a(info.key_version);
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alignas(8) byte aes_ctr_iv[MY_AES_BLOCK_SIZE];
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#define LOG_CRYPT_HDR_SIZE 4
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lsn &= ~lsn_t(OS_FILE_LOG_BLOCK_SIZE - 1);
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for (const byte* const end = buf + size; buf != end;
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buf += OS_FILE_LOG_BLOCK_SIZE, lsn += OS_FILE_LOG_BLOCK_SIZE) {
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alignas(4) byte dst[OS_FILE_LOG_BLOCK_SIZE - LOG_CRYPT_HDR_SIZE
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- LOG_BLOCK_CHECKSUM];
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/* The log block number is not encrypted. */
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memcpy_aligned<4>(dst, buf + LOG_BLOCK_HDR_NO, 4);
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memcpy_aligned<4>(aes_ctr_iv, buf + LOG_BLOCK_HDR_NO, 4);
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*aes_ctr_iv &= byte(~(LOG_BLOCK_FLUSH_BIT_MASK >> 24));
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static_assert(LOG_BLOCK_HDR_NO + 4 == LOG_CRYPT_HDR_SIZE,
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"compatibility");
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memcpy_aligned<4>(aes_ctr_iv + 4, info.crypt_nonce, 4);
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mach_write_to_8(my_assume_aligned<8>(aes_ctr_iv + 8), lsn);
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ut_ad(log_block_get_start_lsn(lsn,
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log_block_get_hdr_no(buf))
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== lsn);
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byte* key_ver = &buf[OS_FILE_LOG_BLOCK_SIZE - LOG_BLOCK_KEY
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- LOG_BLOCK_CHECKSUM];
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const size_t dst_size
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= log_sys.has_encryption_key_rotation()
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? sizeof dst - LOG_BLOCK_KEY
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: sizeof dst;
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if (log_sys.has_encryption_key_rotation()) {
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const uint key_version = info.key_version;
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switch (op) {
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case LOG_ENCRYPT_ROTATE_KEY:
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info.key_version
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= encryption_key_get_latest_version(
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LOG_DEFAULT_ENCRYPTION_KEY);
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if (key_version != info.key_version
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&& !init_crypt_key(&info)) {
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info.key_version = key_version;
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}
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/* fall through */
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case LOG_ENCRYPT:
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mach_write_to_4(key_ver, info.key_version);
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break;
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case LOG_DECRYPT:
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info.key_version = mach_read_from_4(key_ver);
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if (key_version != info.key_version
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&& !init_crypt_key(&info)) {
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return false;
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}
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}
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#ifndef DBUG_OFF
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if (key_version != info.key_version) {
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DBUG_PRINT("ib_log", ("key_version: %x -> %x",
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key_version,
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info.key_version));
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}
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#endif /* !DBUG_OFF */
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}
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ut_ad(LOG_CRYPT_HDR_SIZE + dst_size
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== log_sys.trailer_offset());
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uint dst_len;
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int rc = encryption_crypt(
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buf + LOG_CRYPT_HDR_SIZE, static_cast<uint>(dst_size),
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reinterpret_cast<byte*>(dst), &dst_len,
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const_cast<byte*>(info.crypt_key),
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MY_AES_BLOCK_SIZE,
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aes_ctr_iv, sizeof aes_ctr_iv,
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op == LOG_DECRYPT
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? ENCRYPTION_FLAG_DECRYPT | ENCRYPTION_FLAG_NOPAD
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: ENCRYPTION_FLAG_ENCRYPT | ENCRYPTION_FLAG_NOPAD,
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LOG_DEFAULT_ENCRYPTION_KEY,
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info.key_version);
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ut_a(rc == MY_AES_OK);
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ut_a(dst_len == dst_size);
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memcpy(buf + LOG_CRYPT_HDR_SIZE, dst, dst_size);
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}
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return true;
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}
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/** Initialize the redo log encryption key and random parameters
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when creating a new redo log.
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The random parameters will be persisted in the log checkpoint pages.
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@see log_crypt_write_checkpoint_buf()
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@see log_crypt_read_checkpoint_buf()
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@return whether the operation succeeded */
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bool log_crypt_init()
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{
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info.key_version=
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encryption_key_get_latest_version(LOG_DEFAULT_ENCRYPTION_KEY);
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if (info.key_version == ENCRYPTION_KEY_VERSION_INVALID)
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ib::error() << "log_crypt_init(): cannot get key version";
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else if (my_random_bytes(tmp_iv, MY_AES_BLOCK_SIZE) != MY_AES_OK ||
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my_random_bytes(info.crypt_msg, sizeof info.crypt_msg) !=
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MY_AES_OK ||
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my_random_bytes(info.crypt_nonce, sizeof info.crypt_nonce) !=
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MY_AES_OK)
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ib::error() << "log_crypt_init(): my_random_bytes() failed";
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else if (init_crypt_key(&info))
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goto func_exit;
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info.key_version= 0;
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func_exit:
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return info.key_version != 0;
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}
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/** Read the MariaDB 10.1 checkpoint crypto (version, msg and iv) info.
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@param[in] buf checkpoint buffer
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@return whether the operation was successful */
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ATTRIBUTE_COLD bool log_crypt_101_read_checkpoint(const byte* buf)
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{
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buf += 20 + 32 * 9;
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const size_t n = *buf++ == 2 ? std::min(unsigned(*buf++), 5U) : 0;
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for (size_t i = 0; i < n; i++) {
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struct crypt_info_t& info = infos[infos_used];
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unsigned checkpoint_no = mach_read_from_4(buf);
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for (size_t j = 0; j < infos_used; j++) {
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if (infos[j].checkpoint_no == checkpoint_no) {
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/* Do not overwrite an existing slot. */
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goto next_slot;
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}
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}
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if (infos_used >= UT_ARR_SIZE(infos)) {
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ut_ad("too many checkpoint pages" == 0);
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goto next_slot;
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}
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infos_used++;
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info.checkpoint_no = checkpoint_no;
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info.key_version = mach_read_from_4(buf + 4);
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memcpy(info.crypt_msg, buf + 8, MY_AES_BLOCK_SIZE);
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memcpy(info.crypt_nonce, buf + 24, sizeof info.crypt_nonce);
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if (!init_crypt_key(&info, true)) {
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return false;
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}
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next_slot:
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buf += 4 + 4 + 2 * MY_AES_BLOCK_SIZE;
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}
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return true;
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}
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/** Decrypt a MariaDB 10.1 redo log block.
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@param[in,out] buf log block
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@param[in] start_lsn server start LSN
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@return whether the decryption was successful */
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ATTRIBUTE_COLD bool log_crypt_101_read_block(byte* buf, lsn_t start_lsn)
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{
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const uint32_t checkpoint_no
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= uint32_t(log_block_get_checkpoint_no(buf));
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const crypt_info_t* info = infos;
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for (const crypt_info_t* const end = info + infos_used; info < end;
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info++) {
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if (info->key_version
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&& info->key_version != ENCRYPTION_KEY_VERSION_INVALID
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&& info->checkpoint_no == checkpoint_no) {
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goto found;
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}
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}
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if (infos_used == 0) {
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return false;
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}
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/* MariaDB Server 10.1 would use the first key if it fails to
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find a key for the current checkpoint. */
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info = infos;
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if (info->key_version == ENCRYPTION_KEY_VERSION_INVALID) {
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return false;
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}
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found:
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byte dst[OS_FILE_LOG_BLOCK_SIZE];
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uint dst_len;
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byte aes_ctr_iv[MY_AES_BLOCK_SIZE];
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const uint src_len = OS_FILE_LOG_BLOCK_SIZE - LOG_BLOCK_HDR_SIZE;
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ulint log_block_no = log_block_get_hdr_no(buf);
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/* The log block header is not encrypted. */
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memcpy(dst, buf, LOG_BLOCK_HDR_SIZE);
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memcpy(aes_ctr_iv, info->crypt_nonce, 3);
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mach_write_to_8(aes_ctr_iv + 3,
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log_block_get_start_lsn(start_lsn, log_block_no));
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memcpy(aes_ctr_iv + 11, buf, 4);
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aes_ctr_iv[11] &= byte(~(LOG_BLOCK_FLUSH_BIT_MASK >> 24));
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aes_ctr_iv[15] = 0;
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int rc = encryption_crypt(buf + LOG_BLOCK_HDR_SIZE, src_len,
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dst + LOG_BLOCK_HDR_SIZE, &dst_len,
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const_cast<byte*>(info->crypt_key),
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MY_AES_BLOCK_SIZE,
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aes_ctr_iv, MY_AES_BLOCK_SIZE,
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ENCRYPTION_FLAG_DECRYPT
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| ENCRYPTION_FLAG_NOPAD,
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LOG_DEFAULT_ENCRYPTION_KEY,
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info->key_version);
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if (rc != MY_AES_OK || dst_len != src_len) {
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return false;
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}
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memcpy(buf, dst, sizeof dst);
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return true;
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}
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/** Add the encryption information to a redo log checkpoint buffer.
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@param[in,out] buf checkpoint buffer */
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void log_crypt_write_checkpoint_buf(byte *buf)
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{
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ut_ad(info.key_version);
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compile_time_assert(16 == sizeof info.crypt_msg);
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compile_time_assert(16 == MY_AES_BLOCK_SIZE);
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compile_time_assert(LOG_CHECKPOINT_CRYPT_MESSAGE
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- LOG_CHECKPOINT_CRYPT_NONCE
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== sizeof info.crypt_nonce);
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memcpy(buf + LOG_CHECKPOINT_CRYPT_MESSAGE, info.crypt_msg,
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MY_AES_BLOCK_SIZE);
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memcpy(buf + LOG_CHECKPOINT_CRYPT_NONCE, info.crypt_nonce,
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sizeof info.crypt_nonce);
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mach_write_to_4(buf + LOG_CHECKPOINT_CRYPT_KEY, info.key_version);
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}
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/** Read the checkpoint crypto (version, msg and iv) info.
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@param[in] buf checkpoint buffer
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@return whether the operation was successful */
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bool log_crypt_read_checkpoint_buf(const byte* buf)
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{
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info.checkpoint_no = mach_read_from_4(buf + (LOG_CHECKPOINT_NO + 4));
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info.key_version = mach_read_from_4(buf + LOG_CHECKPOINT_CRYPT_KEY);
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#if MY_AES_BLOCK_SIZE != 16
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# error "MY_AES_BLOCK_SIZE != 16; redo log checkpoint format affected"
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#endif
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compile_time_assert(16 == sizeof info.crypt_msg);
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compile_time_assert(16 == MY_AES_BLOCK_SIZE);
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compile_time_assert(LOG_CHECKPOINT_CRYPT_MESSAGE
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- LOG_CHECKPOINT_CRYPT_NONCE
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== sizeof info.crypt_nonce);
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memcpy(info.crypt_msg, buf + LOG_CHECKPOINT_CRYPT_MESSAGE,
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MY_AES_BLOCK_SIZE);
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memcpy(info.crypt_nonce, buf + LOG_CHECKPOINT_CRYPT_NONCE,
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sizeof info.crypt_nonce);
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return init_crypt_key(&info);
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}
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/** Encrypt or decrypt a temporary file block.
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@param[in] src block to encrypt or decrypt
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@param[in] size size of the block
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@param[out] dst destination block
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@param[in] offs offset to block
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@param[in] encrypt true=encrypt; false=decrypt
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@return whether the operation succeeded */
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bool log_tmp_block_encrypt(
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const byte* src,
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ulint size,
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byte* dst,
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uint64_t offs,
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bool encrypt)
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{
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uint dst_len;
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uint64_t iv[MY_AES_BLOCK_SIZE / sizeof(uint64_t)];
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iv[0] = offs;
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memcpy(iv + 1, tmp_iv, sizeof iv - sizeof *iv);
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int rc = encryption_crypt(
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src, uint(size), dst, &dst_len,
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const_cast<byte*>(info.crypt_key), MY_AES_BLOCK_SIZE,
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reinterpret_cast<byte*>(iv), uint(sizeof iv),
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encrypt
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? ENCRYPTION_FLAG_ENCRYPT|ENCRYPTION_FLAG_NOPAD
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: ENCRYPTION_FLAG_DECRYPT|ENCRYPTION_FLAG_NOPAD,
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LOG_DEFAULT_ENCRYPTION_KEY, info.key_version);
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if (rc != MY_AES_OK) {
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ib::error() << (encrypt ? "Encryption" : "Decryption")
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<< " failed for temporary file: " << rc;
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}
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return rc == MY_AES_OK;
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}
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