#1 - quicr module
This commit is contained in:
@@ -0,0 +1,70 @@
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#pragma once
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#include <cerrno>
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#include <cstring>
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#include <string>
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namespace tw::net {
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enum NetworkErrorType {
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MESSAGE_TOO_LONG = 90,
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ADDRESS_FAMILY_NOT_SUPPORTED = 97,
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BAD_FILE_DESCRIPTOR = 9,
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CONNECTION_RESET = 104,
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WOULD_BLOCK = 11,
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INTERRUPED = 4,
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INVALID_ARGUMENT = 22,
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NOT_CONNECTED = 107,
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NOT_SOCKET = 88,
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OPERATION_NOT_SUPPORTED = 95,
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TIMED_OUT = 110,
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IO_ERROR = 5,
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NO_BUFFER_SPACE = 105,
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NOT_ENOUGH_MEMORY = 12,
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DESTINATION_ADDRESS_REQUIRED = 89,
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BROKEN_PIPE = 32
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};
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struct NetworkError {
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NetworkErrorType m_type;
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public:
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static NetworkError from_errno(int err) {
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return { static_cast<NetworkErrorType>(err) };
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}
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std::string message() const {
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switch (m_type) {
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case BAD_FILE_DESCRIPTOR:
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return "The socket is not a valid file descriptor";
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case CONNECTION_RESET:
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return "A connection was forcibly closed by a peer.";
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case INTERRUPED:
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return "The function was interrupted by a signal that was caught, before any data was available.";
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case INVALID_ARGUMENT:
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return "The MSG_OOB flag is set and no out-of-band data is available.";
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case NOT_CONNECTED:
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return "A function is attempted on connection-mode socket that is not connected.";
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case NOT_SOCKET:
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return "Socket operation on non-socket.";
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case OPERATION_NOT_SUPPORTED:
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return "The specified flags are not supported for this socket type or protocol.";
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case TIMED_OUT:
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return "The connection timed out during connection establishment, or due to a transmission timeout on active connection.";
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case IO_ERROR:
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return "An I/O error occurred while reading from or writing to the file system.";
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case NO_BUFFER_SPACE:
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return "Insufficient resources were available in the system to perform the operation.";
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case NOT_ENOUGH_MEMORY:
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return "Insufficient memory was available to complete the operation.";
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case DESTINATION_ADDRESS_REQUIRED:
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return "The destination address is required for this operation.";
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case BROKEN_PIPE:
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return "The write end of a pipe or socket has been closed.";
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default:
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return std::string(strerror(static_cast<int>(m_type)));
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}
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}
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};
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}
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@@ -0,0 +1,126 @@
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#pragma once
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#include <cstring>
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#include <optional>
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#include <span>
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#include <spdlog/spdlog.h>
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#include <vector>
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namespace tw::net {
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/**
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* Circular byte buffer.
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*/
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class RingByteBuffer {
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public:
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RingByteBuffer(std::span<std::byte> target, bool is_for_reading) : buffer(target), writeOffset(is_for_reading ? target.size() : 0) {}
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size_t peek_bytes(void* dst, size_t size, size_t offset = 0) {
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if(remaining_read() - offset < size) {
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return 0;
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}
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size_t cursor = (readOffset + offset) % buffer.size();
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if(cursor + size <= buffer.size()) {
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std::memcpy(dst, buffer.data() + cursor, size);
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} else {
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size_t firstPart = buffer.size() - cursor;
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std::memcpy(dst, buffer.data() + cursor, firstPart);
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std::memcpy((std::byte*)dst + firstPart, buffer.data(), size - firstPart);
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}
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return size;
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}
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template<typename T>
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size_t pop_bytes(T* dst) {
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return pop_bytes(dst, sizeof(T));
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}
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size_t pop_bytes(void* dst, size_t size) {
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size_t peeked = peek_bytes(dst, size);
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if(peeked < size) {
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return 0;
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}
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skip(size);
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return size;
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}
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size_t pop_bytes(std::span<std::byte> dst) {
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return pop_bytes(dst.data(), dst.size());
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}
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template<typename T>
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size_t write_bytes(const T *data) {
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return write_bytes((void*)data, sizeof(T));
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}
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size_t write_bytes(void* data, size_t size) {
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return write_bytes(std::span<const std::byte>{(std::byte*)data, (std::byte*)data + size});
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}
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size_t write_bytes(std::span<const std::byte> data) {
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if(remaining_write() < data.size()) {
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return 0;
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}
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if(writeOffset + data.size() <= buffer.size()) {
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std::memcpy(buffer.data() + writeOffset, data.data(), data.size());
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writeOffset += data.size();
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} else {
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size_t firstPart = buffer.size() - writeOffset;
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std::memcpy(buffer.data() + writeOffset, data.data(), firstPart);
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std::memcpy(buffer.data(), data.data() + firstPart, data.size() - firstPart);
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writeOffset = (writeOffset + data.size()) % buffer.size();
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}
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return data.size();
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}
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size_t remaining_write() const {
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if(writeOffset >= readOffset) {
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return buffer.size() - writeOffset + readOffset;
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} else {
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return readOffset - writeOffset;
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}
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}
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size_t remaining_read() const {
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if(writeOffset >= readOffset) {
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return writeOffset - readOffset;
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}
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return buffer.size() - readOffset + writeOffset;
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}
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void reset() {
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readOffset = 0;
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writeOffset = 0;
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}
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void skip(size_t bytes) {
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readOffset = (readOffset + std::min(bytes, remaining_read())) % buffer.size();
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spdlog::info("New read offset: {}", readOffset);
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}
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void skip_write(size_t bytes) {
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writeOffset = (writeOffset + std::min(bytes, remaining_write())) % buffer.size();
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}
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std::span<std::byte> get_next_available_block() {
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if (writeOffset >= readOffset) {
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return std::span(buffer.data() + writeOffset, buffer.size() - writeOffset);
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} else {
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return std::span(buffer.data() + writeOffset, readOffset - writeOffset);
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}
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}
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private:
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std::span<std::byte> buffer;
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size_t readOffset = 0;
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size_t writeOffset = 0;
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};
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} // namespace tw::net
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@@ -0,0 +1,27 @@
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#pragma once
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#include "bytebuffer/ByteBuffer.hpp"
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#include <type_traits>
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namespace tw::net {
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template<typename T, typename Enable = void>
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struct ByteBufferCodec
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{
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static size_t encoding(RingByteBuffer&, T*, size_t offset)
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{
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static_assert(sizeof(T) == 0, "No decoder for this type");
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}
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};
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/**
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* Default implementation for trivially copyable types
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*/
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template<typename T>
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struct ByteBufferCodec<T, std::enable_if_t<std::is_trivially_copyable_v<T>>>
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{
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static size_t encoding(RingByteBuffer& buf, T* target, size_t offset)
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{
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return buf.peek_bytes(target, sizeof(T), offset);
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}
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};
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}
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@@ -0,0 +1,55 @@
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#pragma once
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#include "ByteBuffer.hpp"
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namespace tw::net {
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template<typename T, typename Enable = void>
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struct ByteBufferCodec
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{
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static T bytes(RingByteBuffer&, size_t)
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{
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static_assert(sizeof(T) == 0, "No decoder for this type");
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}
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};
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/**
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* Default implementation for trivially copyable types
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*/
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template<typename T>
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struct ByteBufferCodec<T, std::enable_if_t<std::is_trivially_copyable_v<T>>>
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{
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static std::optional<T> encoding(RingByteBuffer& buf, size_t offset = 0)
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{
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T value;
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size_t r = buf.peek_bytes(&value, sizeof(T), offset);
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if(r < sizeof(T)) {
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return {};
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}
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return value;
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}
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};
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struct ByteBufferDecoder {
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ByteBufferDecoder(RingByteBuffer& buf) : m_buf(buf) {}
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template<typename T>
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std::optional<T> pop(size_t offset = 0)
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{
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std::optional<T> s = ByteBufferCodec<T>::bytes(m_buf, offset);
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m_buf.skip(sizeof(T));
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return s;
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}
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template<typename T>
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std::optional<T> peek(size_t offset = 0) {
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return ByteBufferCodec<T>::bytes(m_buf, offset);
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}
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private:
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RingByteBuffer& m_buf;
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};
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}
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@@ -0,0 +1,25 @@
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#pragma once
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#include "ByteBuffer.hpp"
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#include "bytebuffer/ByteBufferCodec.hpp"
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namespace tw::net {
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struct ByteBufferDecoder {
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ByteBufferDecoder(RingByteBuffer& buf) : m_buf(buf) {}
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template<typename T>
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std::optional<T> push(size_t offset = 0)
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{
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std::optional<T> s = ByteBufferCodec<T>::bytes(m_buf, offset);
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m_buf.skip(sizeof(T));
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return s;
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}
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private:
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RingByteBuffer& m_buf;
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};
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}
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@@ -0,0 +1,78 @@
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#pragma once
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#include <cstring>
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#include <span>
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#include <spdlog/spdlog.h>
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namespace tw::net {
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/**
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* Circular byte buffer.
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*/
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class ByteBufferReader {
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public:
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ByteBufferReader(std::span<std::byte> target) : buffer(target), readOffset(0) {}
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ByteBufferReader(std::span<const std::byte> target) : buffer(target), readOffset(0) {}
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size_t peek_bytes(void* dst, size_t size, size_t offset = 0) {
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if(remaining() - offset < size) {
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spdlog::warn("Could not peek entire frame, remaining: {}/{}", remaining() - offset, size);
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return 0;
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}
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size_t cursor = readOffset + offset;
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// if(cursor + size <= buffer.size()) {
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std::memcpy(dst, buffer.data() + cursor, size);
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// } else {
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// size_t firstPart = buffer.size() - cursor;
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// std::memcpy(dst, buffer.data() + cursor, firstPart);
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// std::memcpy((std::byte*)dst + firstPart, buffer.data(), size - firstPart);
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// }
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return size;
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}
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template<typename T>
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size_t pop_bytes(T* dst) {
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return pop_bytes(dst, sizeof(T));
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}
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size_t pop_bytes(void* dst, size_t size) {
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size_t peeked = peek_bytes(dst, size);
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if(peeked < size) {
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spdlog::warn("Could not read entire frame, peeked only: {}/{}", peeked, size);
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return 0;
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}
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skip(size);
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return size;
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}
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size_t pop_bytes(std::span<std::byte> dst) {
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return pop_bytes(dst.data(), dst.size());
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}
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size_t position() const {
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return readOffset;
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}
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size_t remaining() const {
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return buffer.size() - readOffset;
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}
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void reset() {
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readOffset = 0;
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}
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void skip(size_t bytes) {
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readOffset = (readOffset + std::min(bytes, remaining()));
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}
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private:
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std::span<const std::byte> buffer;
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size_t readOffset = 0;
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};
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} // namespace tw::net
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@@ -0,0 +1,38 @@
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#pragma once
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#include "io/Read.hpp"
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#include "ByteBuffer.hpp"
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namespace tw::net {
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class ByteBufferStreamReader {
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public:
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static size_t read(Read<std::byte>* from, RingByteBuffer* to) {
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auto block = to->get_next_available_block();
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auto r = from->read_into(block);
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if(!r || *r == 0) {
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return 0;
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}
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to->skip_write(*r);
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if(*r == block.size()) {
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auto next_block = to->get_next_available_block();
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if(next_block.size() == 0) {
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return *r;
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}
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auto r2 = from->read_into(next_block);
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if(!r2 || *r2 == 0) {
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return *r;
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}
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to->skip_write(*r2);
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return *r + *r2;
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}
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return *r;
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}
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};
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}
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@@ -0,0 +1,64 @@
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#pragma once
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#include <cstring>
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#include <span>
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#include <spdlog/spdlog.h>
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namespace tw::net {
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/**
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* Circular byte buffer.
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*/
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class ByteBufferWriter {
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public:
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ByteBufferWriter(std::span<std::byte> target) : buffer(target) {}
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template<typename T>
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size_t write_bytes(const T *data) {
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return write_bytes((void*)data, sizeof(T));
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}
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size_t write_bytes(void* data, size_t size) {
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return write_bytes(std::span<const std::byte>{(std::byte*)data, (std::byte*)data + size});
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}
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size_t write_bytes(std::span<const std::byte> data) {
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if(remaining() < data.size()) {
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return 0;
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}
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if(writeOffset + data.size() <= buffer.size()) {
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std::memcpy(buffer.data() + writeOffset, data.data(), data.size());
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writeOffset += data.size();
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} else {
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size_t firstPart = buffer.size() - writeOffset;
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std::memcpy(buffer.data() + writeOffset, data.data(), firstPart);
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std::memcpy(buffer.data(), data.data() + firstPart, data.size() - firstPart);
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writeOffset = (writeOffset + data.size()) % buffer.size();
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}
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return data.size();
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}
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constexpr size_t length() const {
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return writeOffset;
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}
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size_t remaining() const {
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return buffer.size() - writeOffset;
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}
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void reset() {
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writeOffset = 0;
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}
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void skip_write(size_t bytes) {
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writeOffset = (writeOffset + std::min(bytes, remaining()));
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}
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private:
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std::span<std::byte> buffer;
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size_t writeOffset = 0;
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};
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} // namespace tw::net
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@@ -0,0 +1,13 @@
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#pragma once
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#include <exception>
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namespace tw::net {
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class ByteBufferOverflowException : public std::exception {
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const char* what() const noexcept override {
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return "Byte buffer overflow";
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}
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};
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}
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@@ -0,0 +1,65 @@
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#pragma once
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|
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#include "Read.hpp"
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|
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#include <spdlog/spdlog.h>
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#include <vector>
|
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|
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namespace tw::net {
|
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|
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template<typename T>
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class BufferReader : public Read<T> {
|
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Read<T>* m_readable;
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|
||||
std::vector<T> m_buffer;
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||||
|
||||
size_t m_head;
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||||
size_t m_tail;
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|
||||
size_t remaining_size() {
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||||
return m_head - m_tail;
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||||
}
|
||||
|
||||
public:
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||||
BufferReader(Read<T>* readable, size_t buffer_size) :
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||||
m_readable(readable),
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||||
m_buffer(buffer_size),
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||||
m_head(0),
|
||||
m_tail(0) {
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||||
|
||||
}
|
||||
|
||||
size_t read(std::span<T> target) override {
|
||||
size_t read_size = std::min(remaining_size(), target.size());
|
||||
std::copy(m_buffer.begin() + m_tail,
|
||||
m_buffer.begin() + m_tail + read_size,
|
||||
target.begin());
|
||||
|
||||
spdlog::info("Read {} bytes", read_size);
|
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|
||||
m_tail += read_size;
|
||||
|
||||
// read next chunk
|
||||
if(m_tail == m_head && read_size < target.size()) {
|
||||
spdlog::info("Reading next chunk");
|
||||
m_head = m_readable->read(std::span<T>(m_buffer.begin(), m_buffer.end()));
|
||||
m_tail = 0;
|
||||
}
|
||||
|
||||
if(target.size() > read_size && m_head > 0) {
|
||||
read_size += read(std::span<T>(target.begin() + read_size, target.end()));
|
||||
}
|
||||
|
||||
return read_size;
|
||||
}
|
||||
|
||||
std::optional<T> peek() {
|
||||
if(remaining_size() > 0) {
|
||||
return m_buffer[m_tail];
|
||||
}
|
||||
|
||||
return std::nullopt;
|
||||
}
|
||||
};
|
||||
|
||||
}
|
||||
@@ -0,0 +1,55 @@
|
||||
#pragma once
|
||||
|
||||
#include <cstdint>
|
||||
#include <cstddef>
|
||||
#include <vector>
|
||||
|
||||
#include "Write.hpp"
|
||||
|
||||
namespace tw::net {
|
||||
|
||||
template<typename T>
|
||||
class BufferWriter : public Write<T> {
|
||||
private:
|
||||
Write<T>* m_writeable;
|
||||
std::vector<T> m_buffer;
|
||||
uint32_t m_head;
|
||||
|
||||
public:
|
||||
size_t remaining_size() {
|
||||
return m_buffer.size() - m_head;
|
||||
}
|
||||
|
||||
BufferWriter(Write<T>* writeable, size_t buffer_size) :
|
||||
m_writeable(writeable),
|
||||
m_buffer(buffer_size),
|
||||
m_head(0)
|
||||
{ }
|
||||
|
||||
virtual size_t write(std::span<T> data) override {
|
||||
if(remaining_size() < data.size()) {
|
||||
size_t write_size = flush();
|
||||
write_size += m_writeable->write_into(data);
|
||||
m_head = 0;
|
||||
|
||||
return write_size;
|
||||
}
|
||||
|
||||
std::copy(data.begin(), data.end(), m_buffer.begin() + m_head);
|
||||
size_t write_size = data.size();
|
||||
|
||||
m_head += data.size();
|
||||
|
||||
return write_size;
|
||||
}
|
||||
|
||||
virtual size_t flush() override {
|
||||
m_writeable->write_into(std::span<T>(m_buffer.begin(), m_buffer.begin() + m_head));
|
||||
size_t write_size = m_head;
|
||||
m_head = 0;
|
||||
|
||||
return write_size;
|
||||
}
|
||||
};
|
||||
|
||||
}
|
||||
@@ -0,0 +1,45 @@
|
||||
#pragma once
|
||||
|
||||
#include "NetworkError.hpp"
|
||||
#include "tl/expected.hpp"
|
||||
#include <span>
|
||||
|
||||
namespace tw::net {
|
||||
|
||||
template<typename T>
|
||||
class Read {
|
||||
public:
|
||||
virtual ~Read() = default;
|
||||
virtual tl::expected<size_t, NetworkError> read_into(std::span<T> target) = 0;
|
||||
|
||||
tl::expected<size_t, NetworkError> read_exact_into(std::span<std::byte> data) {
|
||||
size_t total_read = 0;
|
||||
while (total_read < data.size()) {
|
||||
auto read = this->read_into(data.subspan(total_read));
|
||||
if(!read.has_value()) {
|
||||
if(read.error().m_type == NetworkErrorType::WOULD_BLOCK) {
|
||||
continue;
|
||||
} else {
|
||||
return read;
|
||||
}
|
||||
}
|
||||
|
||||
total_read += read.value();
|
||||
}
|
||||
return total_read;
|
||||
}
|
||||
|
||||
tl::expected<std::vector<std::byte>, NetworkError> read_exact(size_t size) {
|
||||
std::vector<std::byte> buffer(size);
|
||||
auto result = this->read_exact_into(std::span{buffer});
|
||||
|
||||
if(result.has_value()) {
|
||||
return buffer;
|
||||
}
|
||||
|
||||
return tl::make_unexpected(result.error());
|
||||
}
|
||||
|
||||
};
|
||||
|
||||
}
|
||||
@@ -0,0 +1,32 @@
|
||||
#pragma once
|
||||
|
||||
#include "NetworkError.hpp"
|
||||
#include <tl/expected.hpp>
|
||||
#include <limits>
|
||||
#include <span>
|
||||
#include <string>
|
||||
#include <type_traits>
|
||||
|
||||
namespace tw::net {
|
||||
|
||||
template<typename T>
|
||||
class Write {
|
||||
public:
|
||||
virtual ~Write() = default;
|
||||
|
||||
virtual tl::expected<size_t, NetworkError> write(std::span<T> data) = 0;
|
||||
|
||||
tl::expected<size_t, NetworkError> write(const std::string& data) {
|
||||
return write(std::span<std::byte>((std::byte*)(data.c_str()), data.size()));
|
||||
}
|
||||
|
||||
template<typename TNum,
|
||||
typename std::enable_if_t<std::is_integral<TNum>::value || std::is_enum<TNum>::value, bool> = true>
|
||||
tl::expected<size_t, NetworkError> write(TNum data) {
|
||||
return write(std::as_writable_bytes(std::span{&data, 1}));
|
||||
}
|
||||
|
||||
virtual size_t flush() = 0;
|
||||
};
|
||||
|
||||
}
|
||||
Reference in New Issue
Block a user