mirror of
https://github.com/HikikoMarmy/Champions-Reborn-Server.git
synced 2026-04-04 08:49:47 -03:00
451 lines
9.1 KiB
C++
451 lines
9.1 KiB
C++
#include "Common/ByteStream.hpp"
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#include <codecvt>
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#include <span>
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ByteBuffer::ByteBuffer( const std::vector< uint8_t > &data )
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{
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this->m_buffer = data;
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this->m_position = 0;
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}
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ByteBuffer::ByteBuffer( const std::string &data )
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{
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this->m_buffer = std::vector< uint8_t >( data.begin(), data.end() );
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this->m_position = 0;
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}
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ByteBuffer::ByteBuffer( const uint8_t *data, uint32_t length )
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{
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this->m_buffer = std::vector< uint8_t >( data, data + length );
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this->m_position = 0;
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}
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ByteBuffer::ByteBuffer( uint32_t length )
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{
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this->m_buffer = std::vector< uint8_t >( length, 0 );
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this->m_position = 0;
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}
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ByteBuffer::ByteBuffer()
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{
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this->m_position = 0;
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}
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ByteBuffer::~ByteBuffer()
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{
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}
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void ByteBuffer::resize( uint32_t size )
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{
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m_buffer.resize( size );
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}
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void ByteBuffer::shrink_to_fit()
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{
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m_buffer.shrink_to_fit();
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}
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template < typename T >
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void ByteBuffer::write( T value )
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{
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write_bytes( ( uint8_t * )&value, sizeof( T ) );
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}
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template < typename T >
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T ByteBuffer::read()
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{
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if( m_position >= m_buffer.size() )
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{
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return (T)0;
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}
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T value = *( T * )&m_buffer[ m_position ];
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m_position += sizeof( T );
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return value;
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}
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void ByteBuffer::write_utf8( const std::string &str, std::optional<uint32_t> length )
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{
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if( length.has_value() )
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{
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write_u32( length.value() );
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if( length.value() > str.size() )
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{
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write_bytes( std::vector< uint8_t >( str.begin(), str.end() ) );
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write_bytes( std::vector< uint8_t >( length.value() - str.size(), 0 ) );
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}
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else
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{
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write_bytes( std::vector< uint8_t >( str.begin(), str.begin() + length.value() ) );
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}
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}
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else
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{
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write_u32( static_cast< uint32_t >( str.size() ) );
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write_bytes( std::vector< uint8_t >( str.begin(), str.end() ) );
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}
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}
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void ByteBuffer::write_utf16( const std::wstring &str, std::optional<uint32_t> length )
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{
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write_u32( static_cast< uint32_t >( str.size() ) );
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for( wchar_t ch : str )
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{
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uint16_t val = static_cast< uint16_t >( ch );
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write<uint8_t>( val & 0xFF );
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write<uint8_t>( ( val >> 8 ) & 0xFF );
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}
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}
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void ByteBuffer::write_sz_utf8( const std::string &str, std::optional<uint32_t> length )
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{
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if( length )
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{
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write_bytes( std::vector< uint8_t >( str.begin(), str.end() ) );
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write_bytes( std::vector< uint8_t >( length.value() - str.size(), 0 ) );
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}
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else
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{
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write_bytes( std::vector< uint8_t >( str.begin(), str.end() ) );
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write< uint8_t >( 0 );
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}
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}
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void ByteBuffer::write_sz_utf16( const std::wstring &str, std::optional<uint32_t> length )
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{
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for( wchar_t ch : str )
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{
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uint16_t val = static_cast< uint16_t >( ch );
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write<uint8_t>( val & 0xFF );
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write<uint8_t>( ( val >> 8 ) & 0xFF );
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}
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if( length )
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{
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size_t bytesWritten = str.size() * 2;
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size_t totalBytes = length.value();
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if( bytesWritten < totalBytes )
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{
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write_bytes( std::vector<uint8_t>( totalBytes - bytesWritten, 0 ) );
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}
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}
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else
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{
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write<uint16_t>( 0 );
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}
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}
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void ByteBuffer::write_encrypted_utf8( const std::string &str )
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{
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auto encrypted = RealmCrypt::encryptSymmetric( std::vector< uint8_t >( str.begin(), str.end() ) );
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write_u32( static_cast< uint32_t >( encrypted.size() ) + 4 );
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write_u32( static_cast< uint32_t >( str.size() ) );
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write_bytes( encrypted );
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}
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void ByteBuffer::write_encrypted_utf16( const std::wstring &str )
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{
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std::vector< uint8_t > utf16;
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for( auto c : str )
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{
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utf16.push_back( c & 0xFF );
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utf16.push_back( ( c >> 8 ) & 0xFF );
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}
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auto encrypted = RealmCrypt::encryptSymmetric( utf16 );
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uint32_t encryptedLength = static_cast< uint32_t >( encrypted.size() );
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uint32_t decryptedLength = static_cast< uint32_t >( utf16.size() );
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// Correct blockLength: in 2-byte words, including the 4-byte decrypted length
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write_u32( ( encryptedLength + 4 ) / 2 );
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write_u32( decryptedLength );
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write_bytes( encrypted );
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}
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uint8_t ByteBuffer::read_u8()
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{
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return read< uint8_t >();
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}
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uint16_t ByteBuffer::read_u16()
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{
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return read< uint16_t >();
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}
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uint32_t ByteBuffer::read_u32()
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{
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return read< uint32_t >();
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}
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int8_t ByteBuffer::read_i8()
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{
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return read< int8_t >();
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}
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int16_t ByteBuffer::read_i16()
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{
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return read< int16_t >();
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}
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int32_t ByteBuffer::read_i32()
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{
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return read< int32_t >();
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}
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float_t ByteBuffer::read_f32()
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{
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return read< float_t >();
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}
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std::string ByteBuffer::read_utf8( std::optional<uint32_t> length )
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{
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if( !length )
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{
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length = read_u32();
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}
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if( m_position + length.value() > m_buffer.size() )
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{
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throw std::runtime_error( "read_utf8: Attempt to read past end of buffer" );
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}
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std::string value( reinterpret_cast< const char * >( &m_buffer[ m_position ] ), length.value() );
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m_position += length.value();
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return value;
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}
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std::wstring ByteBuffer::read_utf16( std::optional<uint32_t> length )
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{
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if( !length )
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{
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length = read_u32();
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}
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uint32_t byteLength = length.value() * 2;
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if( m_position + byteLength > m_buffer.size() )
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{
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throw std::runtime_error( "read_utf16: Attempt to read past end of buffer" );
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}
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std::wstring value;
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value.reserve( length.value() );
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for( size_t i = 0; i < byteLength; i += 2 )
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{
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uint16_t ch = m_buffer[ m_position + i ] | ( m_buffer[ m_position + i + 1 ] << 8 );
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value.push_back( static_cast< wchar_t >( ch ) );
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}
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m_position += byteLength;
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return value;
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}
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std::string ByteBuffer::read_sz_utf8()
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{
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std::string value;
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while( m_buffer[ m_position ] != 0 )
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{
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value.push_back( m_buffer[ m_position ] );
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m_position++;
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}
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m_position++;
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return value;
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}
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std::wstring ByteBuffer::read_sz_utf16()
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{
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std::wstring value;
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while( m_buffer[ m_position ] != 0 || m_buffer[ m_position + 1 ] != 0 )
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{
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value.push_back( m_buffer[ m_position ] | ( m_buffer[ m_position + 1 ] << 8 ) );
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m_position += 2;
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}
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m_position += 2;
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return value;
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}
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std::string ByteBuffer::read_encrypted_utf8( bool hasBlockLength )
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{
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uint32_t encryptedLength = 0;
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uint32_t decryptedLength = 0;
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if( hasBlockLength )
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{
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uint32_t blockLength = read_u32() * 2;
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decryptedLength = read_u32();
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encryptedLength = blockLength - 4;
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}
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else
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{
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decryptedLength = read_u32();
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encryptedLength = Util::round_up( decryptedLength, 16 );
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}
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std::span< const uint8_t > encryptedBuffer( m_buffer.data() + m_position, encryptedLength );
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m_position += encryptedLength;
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if( decryptedLength == 0 )
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{
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return "";
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}
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// Decrypt the buffer
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std::vector< uint8_t > decryptedBuffer = RealmCrypt::decryptSymmetric( encryptedBuffer );
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std::string result( decryptedBuffer.begin(), decryptedBuffer.end() );
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return result;
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}
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std::wstring ByteBuffer::read_encrypted_utf16( bool hasBlockLength )
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{
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uint32_t encryptedLength = 0;
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uint32_t decryptedLength = 0;
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if( hasBlockLength )
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{
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uint32_t blockLength = read_u32() * 2;
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decryptedLength = read_u32(); // This length is already multiplied by sizeof(wchar_t)
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encryptedLength = blockLength - 4;
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}
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else
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{
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decryptedLength = read_u32();
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encryptedLength = Util::round_up( decryptedLength, 16 );
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}
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std::span< const uint8_t > encryptedBuffer( m_buffer.data() + m_position, encryptedLength );
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m_position += encryptedLength;
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if( decryptedLength == 0 )
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{
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return L"";
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}
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// Decrypt the buffer
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std::vector< uint8_t > decryptedBuffer = RealmCrypt::decryptSymmetric( encryptedBuffer );
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std::wstring result( decryptedLength / 2, L'\0' );
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std::memcpy( result.data(), decryptedBuffer.data(), decryptedLength );
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return result;
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}
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void ByteBuffer::write_bytes( const std::vector< uint8_t > &value )
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{
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std::copy( value.begin(), value.end(), std::back_inserter( m_buffer ) );
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m_position += value.size();
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}
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void ByteBuffer::write_bytes( const uint8_t *value, uint32_t length )
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{
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std::copy( value, value + length, std::back_inserter( m_buffer ) );
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m_position += length;
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}
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void ByteBuffer::write_encrypted_bytes( const std::vector<uint8_t> &value )
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{
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auto encrypted = RealmCrypt::encryptSymmetric( value );
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write_u32( static_cast< uint32_t >( encrypted.size() ) + 4 );
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write_u32( static_cast< uint32_t >( value.size() ) );
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write_bytes( encrypted );
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}
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std::vector<uint8_t> ByteBuffer::read_bytes( uint32_t length )
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{
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std::vector<uint8_t> value( length, 0 );
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std::copy( m_buffer.begin() + m_position, m_buffer.begin() + m_position + length, value.begin() );
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m_position += length;
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return value;
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}
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std::vector<uint8_t> ByteBuffer::read_encrypted_bytes( uint32_t length )
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{
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std::vector< uint8_t > encrypted = read_bytes( length );
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auto decrypted = RealmCrypt::decryptSymmetric( encrypted );
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return decrypted;
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}
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std::vector<uint8_t> ByteBuffer::get_buffer() const
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{
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return m_buffer;
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}
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size_t ByteBuffer::get_length() const
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{
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return m_buffer.size();
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}
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void ByteBuffer::set_position( size_t where )
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{
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if( where > m_buffer.size() )
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{
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where = m_buffer.size();
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}
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this->m_position = where;
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}
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size_t ByteBuffer::get_position() const
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{
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return this->m_position;
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}
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void ByteBuffer::write_u8( uint8_t value )
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{
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write< uint8_t >( value );
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}
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void ByteBuffer::write_u16( uint16_t value )
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{
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write< uint16_t >( value );
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}
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void ByteBuffer::write_u32( uint32_t value )
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{
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write< uint32_t >( value );
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}
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void ByteBuffer::write_i8( int8_t value )
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{
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write< int8_t >( value );
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}
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void ByteBuffer::write_i16( int16_t value )
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{
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write< int16_t >( value );
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}
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void ByteBuffer::write_i32( int32_t value )
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{
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write< int32_t >( value );
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}
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void ByteBuffer::write_f32( float_t value )
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{
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write< float_t >( value );
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}
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