mirror of
https://github.com/zerotier/ZeroTierOne.git
synced 2025-04-25 00:17:22 +02:00
605 lines
16 KiB
C++
605 lines
16 KiB
C++
/*
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* Copyright (c)2013-2020 ZeroTier, Inc.
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*
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* Use of this software is governed by the Business Source License included
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* in the LICENSE.TXT file in the project's root directory.
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*
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* Change Date: 2024-01-01
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*
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* On the date above, in accordance with the Business Source License, use
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* of this software will be governed by version 2.0 of the Apache License.
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*/
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/****/
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#ifndef ZT_AES_HPP
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#define ZT_AES_HPP
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#include "Constants.hpp"
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#include "Utils.hpp"
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#include "SHA512.hpp"
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#include <cstdint>
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#include <cstring>
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#ifndef ZT_AES_NO_ACCEL
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#ifdef ZT_ARCH_X64
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#include <xmmintrin.h>
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#include <emmintrin.h>
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#include <immintrin.h>
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#define ZT_AES_AESNI 1
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#endif
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#endif
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namespace ZeroTier {
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/**
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* AES-256 and pals including GMAC, CTR, etc.
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*
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* This includes hardware acceleration for certain processors. The software
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* mode is fallback and is significantly slower.
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*/
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class AES
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{
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public:
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/**
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* @return True if this system has hardware AES acceleration
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*/
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static ZT_INLINE bool accelerated()
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{
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#ifdef ZT_AES_AESNI
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return Utils::CPUID.aes;
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#else
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return false;
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#endif
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}
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/**
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* Create an un-initialized AES instance (must call init() before use)
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*/
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ZT_INLINE AES() noexcept {}
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/**
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* Create an AES instance with the given key
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*
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* @param key 256-bit key
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*/
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explicit ZT_INLINE AES(const void *const key) noexcept
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{
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this->init(key);
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}
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ZT_INLINE ~AES()
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{
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Utils::burn(&_k,sizeof(_k));
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}
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/**
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* Set (or re-set) this AES256 cipher's key
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*
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* @param key 256-bit / 32-byte key
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*/
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ZT_INLINE void init(const void *const key) noexcept
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{
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#ifdef ZT_AES_AESNI
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if (likely(Utils::CPUID.aes)) {
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_init_aesni(reinterpret_cast<const uint8_t *>(key));
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return;
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}
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#endif
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_initSW(reinterpret_cast<const uint8_t *>(key));
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}
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/**
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* Encrypt a single AES block
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*
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* @param in Input block
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* @param out Output block (can be same as input)
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*/
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ZT_INLINE void encrypt(const void *const in,void *const out) const noexcept
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{
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#ifdef ZT_AES_AESNI
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if (likely(Utils::CPUID.aes)) {
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_encrypt_aesni(in,out);
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return;
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}
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#endif
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_encryptSW(reinterpret_cast<const uint8_t *>(in),reinterpret_cast<uint8_t *>(out));
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}
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/**
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* Decrypt a single AES block
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*
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* @param in Input block
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* @param out Output block (can be same as input)
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*/
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ZT_INLINE void decrypt(const void *const in,void *const out) const noexcept
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{
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#ifdef ZT_AES_AESNI
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if (likely(Utils::CPUID.aes)) {
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_decrypt_aesni(in,out);
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return;
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}
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#endif
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_decryptSW(reinterpret_cast<const uint8_t *>(in),reinterpret_cast<uint8_t *>(out));
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}
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class GMACSIVEncryptor;
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class GMACSIVDecryptor;
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/**
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* Streaming GMAC calculator
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*/
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class GMAC
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{
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friend class GMACSIVEncryptor;
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friend class GMACSIVDecryptor;
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public:
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/**
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* Create a new instance of GMAC (must be initialized with init() before use)
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*
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* @param aes Keyed AES instance to use
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*/
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ZT_INLINE GMAC(const AES &aes) : _aes(aes) {}
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/**
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* Reset and initialize for a new GMAC calculation
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*
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* @param iv 96-bit initialization vector (pad with zeroes if actual IV is shorter)
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*/
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ZT_INLINE void init(const uint8_t iv[12]) noexcept
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{
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_rp = 0;
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_len = 0;
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// We fill the least significant 32 bits in the _iv field with 1 since in GCM mode
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// this would hold the counter, but we're not doing GCM. The counter is therefore
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// always 1.
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#ifdef ZT_AES_AESNI // also implies an x64 processor
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*reinterpret_cast<uint64_t *>(_iv) = *reinterpret_cast<const uint64_t *>(iv);
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*reinterpret_cast<uint32_t *>(_iv + 8) = *reinterpret_cast<const uint64_t *>(iv + 8);
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*reinterpret_cast<uint32_t *>(_iv + 12) = 0x01000000; // 0x00000001 in big-endian byte order
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#else
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for(int i=0;i<12;++i)
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_iv[i] = iv[i];
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_iv[12] = 0;
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_iv[13] = 0;
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_iv[14] = 0;
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_iv[15] = 1;
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#endif
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_y[0] = 0;
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_y[1] = 0;
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}
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/**
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* Process data through GMAC
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*
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* @param data Bytes to process
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* @param len Length of input
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*/
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void update(const void *data,unsigned int len) noexcept;
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/**
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* Process any remaining cached bytes and generate tag
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*
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* Don't call finish() more than once or you'll get an invalid result.
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*
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* @param tag 128-bit GMAC tag (can be truncated)
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*/
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void finish(uint8_t tag[16]) noexcept;
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private:
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const AES &_aes;
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unsigned int _rp;
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unsigned int _len;
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uint8_t _r[16]; // remainder
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uint8_t _iv[16];
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uint64_t _y[2];
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};
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/**
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* Streaming AES-CTR encrypt/decrypt
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*
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* NOTE: this doesn't support overflow of the counter in the least significant 32 bits.
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* AES-GMAC-CTR doesn't need this, so we don't support it as an optimization.
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*/
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class CTR
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{
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friend class GMACSIVEncryptor;
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friend class GMACSIVDecryptor;
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public:
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ZT_INLINE CTR(const AES &aes) noexcept : _aes(aes) {}
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/**
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* Initialize this CTR instance to encrypt a new stream
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*
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* @param iv Unique initialization vector and initial 32-bit counter (least significant 32 bits, big-endian)
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* @param output Buffer to which to store output (MUST be large enough for total bytes processed!)
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*/
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ZT_INLINE void init(const uint8_t iv[16],void *const output) noexcept
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{
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Utils::copy<16>(_ctr,iv);
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_out = reinterpret_cast<uint8_t *>(output);
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_len = 0;
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}
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/**
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* Initialize this CTR instance to encrypt a new stream
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*
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* @param iv Unique initialization vector
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* @param ic Initial counter (must be in big-endian byte order!)
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* @param output Buffer to which to store output (MUST be large enough for total bytes processed!)
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*/
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ZT_INLINE void init(const uint8_t iv[12],const uint32_t ic,void *const output) noexcept
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{
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Utils::copy<12>(_ctr,iv);
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reinterpret_cast<uint32_t *>(_ctr)[3] = ic;
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_out = reinterpret_cast<uint8_t *>(output);
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_len = 0;
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}
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/**
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* Encrypt or decrypt data, writing result to the output provided to init()
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*
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* @param input Input data
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* @param len Length of input
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*/
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void crypt(const void *input,unsigned int len) noexcept;
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/**
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* Finish any remaining bytes if total bytes processed wasn't a multiple of 16
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*
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* Don't call more than once for a given stream or data may be corrupted.
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*/
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void finish() noexcept;
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private:
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const AES &_aes;
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uint64_t _ctr[2];
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uint8_t *_out;
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unsigned int _len;
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};
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/**
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* Encryptor for GMAC-SIV
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*/
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class GMACSIVEncryptor
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{
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public:
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/**
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* Create a new AES-GMAC-SIV encryptor keyed with the provided AES instances
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*
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* @param k0 First of two AES instances keyed with K0
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* @param k1 Second of two AES instances keyed with K1
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*/
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ZT_INLINE GMACSIVEncryptor(const AES &k0,const AES &k1) noexcept :
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_gmac(k0),
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_ctr(k1) {}
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/**
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* Initialize AES-GMAC-SIV
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*
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* @param iv IV in network byte order (byte order in which it will appear on the wire)
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* @param output Pointer to buffer to receive ciphertext, must be large enough for all to-be-processed data!
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*/
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ZT_INLINE void init(const uint64_t iv,void *const output) noexcept
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{
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// Output buffer to receive the result of AES-CTR encryption.
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_output = output;
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// Initialize GMAC with 64-bit IV (and remaining 32 bits padded to zero).
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_tag[0] = iv;
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_tag[1] = 0;
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_gmac.init(reinterpret_cast<const uint8_t *>(_tag));
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}
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/**
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* Process AAD (additional authenticated data) that is not being encrypted
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*
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* This must be called prior to update1, finish1, etc. if there is AAD to include
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* in the MAC that is not included in the plaintext.
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*
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* This currently only supports one chunk of AAD. Don't call multiple times per message.
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*
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* @param aad Additional authenticated data
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* @param len Length of AAD in bytes
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*/
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ZT_INLINE void aad(const void *const aad,unsigned int len) noexcept
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{
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// Feed ADD into GMAC first
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_gmac.update(aad,len);
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// End of AAD is padded to a multiple of 16 bytes to ensure unique encoding.
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len &= 0xfU;
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if (len != 0)
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_gmac.update(Utils::ZERO256,16 - len);
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}
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/**
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* First pass plaintext input function
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*
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* @param input Plaintext chunk
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* @param len Length of plaintext chunk
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*/
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ZT_INLINE void update1(const void *const input,const unsigned int len) noexcept
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{
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_gmac.update(input,len);
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}
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/**
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* Finish first pass, compute CTR IV, initialize second pass.
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*/
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ZT_INLINE void finish1() noexcept
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{
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uint64_t tmp[2];
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// Compute 128-bit GMAC tag.
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_gmac.finish(reinterpret_cast<uint8_t *>(tmp));
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// Truncate to 64 bits, concatenate after 64-bit message IV, and encrypt with AES.
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_tag[1] = tmp[0];
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_ctr._aes.encrypt(_tag,_tag);
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// Mask least significant 32 bits to get CTR IV and initialize CTR.
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tmp[0] = _tag[0];
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#if __BYTE_ORDER == __BIG_ENDIAN
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ctrIv[1] = _iv[1] & 0xffffffff00000000ULL;
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#else
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tmp[1] = _tag[1] & 0x00000000ffffffffULL;
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#endif
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_ctr.init(reinterpret_cast<const uint8_t *>(tmp),_output);
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}
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/**
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* Second pass plaintext input function
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*
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* The same plaintext must be fed in the second time in the same order,
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* though chunk boundaries do not have to be the same.
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*
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* @param input Plaintext chunk
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* @param len Length of plaintext chunk
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*/
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ZT_INLINE void update2(const void *const input,const unsigned int len) noexcept
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{
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_ctr.crypt(input,len);
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}
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/**
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* Finish second pass and return a pointer to the opaque 128-bit IV+MAC block
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*
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* The returned pointer remains valid as long as this object exists and init()
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* is not called again.
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*
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* @return Pointer to 128-bit opaque IV+MAC (packed into two 64-bit integers)
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*/
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ZT_INLINE const uint64_t *finish2()
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{
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_ctr.finish();
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return _tag;
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}
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private:
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void *_output;
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uint64_t _tag[2];
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AES::GMAC _gmac;
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AES::CTR _ctr;
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};
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/**
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* Decryptor for GMAC-SIV
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*/
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class GMACSIVDecryptor
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{
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public:
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ZT_INLINE GMACSIVDecryptor(const AES &k0,const AES &k1) noexcept :
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_ctr(k1),
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_gmac(k0) {}
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/**
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* Initialize decryptor for a new message
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*
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* @param tag 128-bit combined IV/MAC originally created by GMAC-SIV encryption
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* @param output Buffer in which to write output plaintext (must be large enough!)
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*/
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ZT_INLINE void init(const uint64_t tag[2],void *const output) noexcept
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{
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// Init CTR with the most significant 96 bits of the tag (as in encryption).
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uint64_t tmp[2];
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tmp[0] = tag[0];
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#if __BYTE_ORDER == __BIG_ENDIAN
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tmp[1] = tag[1] & 0xffffffff00000000ULL;
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#else
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tmp[1] = tag[1] & 0x00000000ffffffffULL;
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#endif
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_ctr.init(reinterpret_cast<const uint8_t *>(tmp),output);
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// Decrypt the opaque tag to yield the original IV and 64-bit truncated MAC.
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_ctr._aes.decrypt(tag,_ivMac);
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// Initialize GMAC with the original IV.
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tmp[0] = _ivMac[0];
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tmp[1] = 0;
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_gmac.init(reinterpret_cast<const uint8_t *>(tmp));
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_output = output;
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_decryptedLen = 0;
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}
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/**
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* Process AAD (additional authenticated data) that wasn't encrypted
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*
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* @param aad Additional authenticated data
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* @param len Length of AAD in bytes
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*/
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ZT_INLINE void aad(const void *const aad,unsigned int len) noexcept
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{
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_gmac.update(aad,len);
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len &= 0xfU;
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if (len != 0)
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_gmac.update(Utils::ZERO256,16 - len);
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}
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/**
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* Feed ciphertext into the decryptor
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*
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* Unlike encryption, GMAC-SIV decryption requires only one pass.
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*
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* @param input Input ciphertext
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* @param len Length of ciphertext
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*/
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ZT_INLINE void update(const void *const input,const unsigned int len) noexcept
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{
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_ctr.crypt(input,len);
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_decryptedLen += len;
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}
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/**
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* Flush decryption, compute MAC, and verify
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*
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* @return True if resulting plaintext (and AAD) pass message authentication check
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*/
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ZT_INLINE bool finish() noexcept
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{
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// Flush any remaining bytes from CTR.
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_ctr.finish();
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// Feed plaintext through GMAC.
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_gmac.update(_output,_decryptedLen);
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uint64_t gmacTag[2];
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_gmac.finish(reinterpret_cast<uint8_t *>(gmacTag));
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// MAC passes if its first 64 bits equals the MAC we got by decrypting the tag.
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return gmacTag[0] == _ivMac[1];
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}
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private:
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uint64_t _ivMac[2];
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AES::CTR _ctr;
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AES::GMAC _gmac;
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void *_output;
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unsigned int _decryptedLen;
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};
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private:
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static const uint32_t Te0[256];
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static const uint32_t Te1[256];
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static const uint32_t Te2[256];
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static const uint32_t Te3[256];
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static const uint32_t Te4[256];
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static const uint32_t Td0[256];
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static const uint32_t Td1[256];
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static const uint32_t Td2[256];
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static const uint32_t Td3[256];
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static const uint8_t Td4[256];
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static const uint32_t rcon[10];
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void _initSW(const uint8_t key[32]) noexcept;
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void _encryptSW(const uint8_t in[16],uint8_t out[16]) const noexcept;
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void _decryptSW(const uint8_t in[16],uint8_t out[16]) const noexcept;
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union {
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#ifdef ZT_AES_AESNI
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struct {
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__m128i k[28];
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__m128i h,hh,hhh,hhhh;
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} ni;
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#endif
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struct {
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uint64_t h[2];
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uint32_t ek[60];
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uint32_t dk[60];
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} sw;
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} _k;
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#ifdef ZT_AES_AESNI
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static const __m128i s_shuf;
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void _init_aesni(const uint8_t key[32]) noexcept;
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ZT_INLINE void _encrypt_aesni(const void *const in,void *const out) const noexcept
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{
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__m128i tmp = _mm_loadu_si128((const __m128i *)in);
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tmp = _mm_xor_si128(tmp,_k.ni.k[0]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[1]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[2]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[3]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[4]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[5]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[6]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[7]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[8]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[9]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[10]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[11]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[12]);
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tmp = _mm_aesenc_si128(tmp,_k.ni.k[13]);
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_mm_storeu_si128((__m128i *)out,_mm_aesenclast_si128(tmp,_k.ni.k[14]));
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}
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ZT_INLINE void _decrypt_aesni(const void *in,void *out) const noexcept
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{
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__m128i tmp = _mm_loadu_si128((const __m128i *)in);
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tmp = _mm_xor_si128(tmp,_k.ni.k[14]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[15]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[16]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[17]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[18]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[19]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[20]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[21]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[22]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[23]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[24]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[25]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[26]);
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tmp = _mm_aesdec_si128(tmp,_k.ni.k[27]);
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_mm_storeu_si128((__m128i *)out,_mm_aesdeclast_si128(tmp,_k.ni.k[0]));
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}
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static ZT_INLINE __m128i _mult_block_aesni(const __m128i shuf,const __m128i h,__m128i y) noexcept
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{
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y = _mm_shuffle_epi8(y,shuf);
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__m128i t1 = _mm_clmulepi64_si128(h,y,0x00);
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__m128i t2 = _mm_clmulepi64_si128(h,y,0x01);
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__m128i t3 = _mm_clmulepi64_si128(h,y,0x10);
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__m128i t4 = _mm_clmulepi64_si128(h,y,0x11);
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t2 = _mm_xor_si128(t2,t3);
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t3 = _mm_slli_si128(t2,8);
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t2 = _mm_srli_si128(t2,8);
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t1 = _mm_xor_si128(t1,t3);
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t4 = _mm_xor_si128(t4,t2);
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__m128i t5 = _mm_srli_epi32(t1,31);
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t1 = _mm_slli_epi32(t1,1);
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|
__m128i t6 = _mm_srli_epi32(t4,31);
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t4 = _mm_slli_epi32(t4,1);
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t3 = _mm_srli_si128(t5,12);
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|
t6 = _mm_slli_si128(t6,4);
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|
t5 = _mm_slli_si128(t5,4);
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|
t1 = _mm_or_si128(t1,t5);
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|
t4 = _mm_or_si128(t4,t6);
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|
t4 = _mm_or_si128(t4,t3);
|
|
t5 = _mm_slli_epi32(t1,31);
|
|
t6 = _mm_slli_epi32(t1,30);
|
|
t3 = _mm_slli_epi32(t1,25);
|
|
t5 = _mm_xor_si128(t5,t6);
|
|
t5 = _mm_xor_si128(t5,t3);
|
|
t6 = _mm_srli_si128(t5,4);
|
|
t4 = _mm_xor_si128(t4,t6);
|
|
t5 = _mm_slli_si128(t5,12);
|
|
t1 = _mm_xor_si128(t1,t5);
|
|
t4 = _mm_xor_si128(t4,t1);
|
|
t5 = _mm_srli_epi32(t1,1);
|
|
t2 = _mm_srli_epi32(t1,2);
|
|
t3 = _mm_srli_epi32(t1,7);
|
|
t4 = _mm_xor_si128(t4,t2);
|
|
t4 = _mm_xor_si128(t4,t3);
|
|
t4 = _mm_xor_si128(t4,t5);
|
|
return _mm_shuffle_epi8(t4,shuf);
|
|
}
|
|
#endif
|
|
};
|
|
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} // namespace ZeroTier
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#endif
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