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voice-cat/core/src/net/transport.cpp

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#include "net/transport.h"
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#ifdef VOICECAT_HAS_NET
#include <cstring>
#include "crypto/crypto.h"
namespace voicecat::net {
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// ── TcpControlChannel ────────────────────────────────────────────────────────
TcpControlChannel::TcpControlChannel(TcpChannelCallbacks cbs)
: work_guard_(asio::make_work_guard(io_)),
socket_(io_),
strand_(io_.get_executor()),
cbs_(std::move(cbs)) {
net_thread_ = std::thread([this] { run_loop(); });
}
TcpControlChannel::~TcpControlChannel() { close(); }
void TcpControlChannel::run_loop() { io_.run(); }
void TcpControlChannel::async_connect(const std::string& host, uint16_t port) {
auto resolver = std::make_shared<asio::ip::tcp::resolver>(io_);
resolver->async_resolve(
host, std::to_string(port),
[this, resolver](std::error_code ec, asio::ip::tcp::resolver::results_type eps) {
if (ec) {
if (cbs_.on_connect_error) cbs_.on_connect_error(ec);
return;
}
asio::async_connect(socket_, eps,
[this](std::error_code ec2, const asio::ip::tcp::endpoint&) {
if (ec2) {
if (cbs_.on_connect_error) cbs_.on_connect_error(ec2);
return;
}
connected_.store(true, std::memory_order_release);
if (cbs_.on_connected) cbs_.on_connected();
start_read();
});
});
}
void TcpControlChannel::send_frame(std::vector<uint8_t> payload) {
std::vector<uint8_t> wire;
protocol::FrameCodec::emit(payload, wire);
asio::post(strand_, [this, w = std::move(wire)]() mutable {
send_queue_.push_back(std::move(w));
if (!sending_) do_send();
});
}
void TcpControlChannel::do_send() {
if (send_queue_.empty()) { sending_ = false; return; }
sending_ = true;
auto& front = send_queue_.front();
asio::async_write(socket_,
asio::buffer(front),
asio::bind_executor(strand_,
[this](std::error_code ec, std::size_t) {
if (ec) {
connected_.store(false, std::memory_order_release);
if (cbs_.on_error) cbs_.on_error(ec);
return;
}
send_queue_.pop_front();
do_send();
}));
}
void TcpControlChannel::start_read() {
asio::async_read(socket_, asio::buffer(len_buf_, 4),
[this](std::error_code ec, std::size_t n) { handle_length(ec, n); });
}
void TcpControlChannel::handle_length(std::error_code ec, std::size_t) {
if (ec) {
connected_.store(false, std::memory_order_release);
if (ec == asio::error::eof || ec == asio::error::connection_reset) {
if (cbs_.on_disconnected) cbs_.on_disconnected();
} else {
if (cbs_.on_error) cbs_.on_error(ec);
}
return;
}
uint32_t length =
(static_cast<uint32_t>(len_buf_[0]) << 24) |
(static_cast<uint32_t>(len_buf_[1]) << 16) |
(static_cast<uint32_t>(len_buf_[2]) << 8) |
static_cast<uint32_t>(len_buf_[3]);
if (length > protocol::kMaxFrameBytes) {
if (cbs_.on_error) cbs_.on_error(asio::error::message_size);
return;
}
if (length == 0) {
if (cbs_.on_frame) cbs_.on_frame({});
start_read();
return;
}
body_buf_.resize(length);
asio::async_read(socket_, asio::buffer(body_buf_),
[this, length](std::error_code ec, std::size_t n) { handle_body(length, ec, n); });
}
void TcpControlChannel::handle_body(uint32_t, std::error_code ec, std::size_t) {
if (ec) {
connected_.store(false, std::memory_order_release);
if (ec == asio::error::eof || ec == asio::error::connection_reset) {
if (cbs_.on_disconnected) cbs_.on_disconnected();
} else {
if (cbs_.on_error) cbs_.on_error(ec);
}
return;
}
if (cbs_.on_frame) cbs_.on_frame(body_buf_);
start_read();
}
void TcpControlChannel::close() {
if (closing_.exchange(true)) return;
asio::post(io_, [this] {
std::error_code ignored;
socket_.shutdown(asio::ip::tcp::socket::shutdown_both, ignored);
socket_.close(ignored);
});
work_guard_.reset();
if (net_thread_.joinable()) net_thread_.join();
}
// ── TcpServerConn ────────────────────────────────────────────────────────────
TcpServerConn::TcpServerConn(asio::ip::tcp::socket socket, TcpChannelCallbacks cbs)
: socket_(std::move(socket)),
strand_(asio::make_strand(socket_.get_executor())),
cbs_(std::move(cbs)) {}
TcpServerConn::TcpServerConn(asio::ip::tcp::socket socket, TcpChannelCallbacks cbs,
std::unique_ptr<crypto::TlsContext> tls)
: socket_(std::move(socket)),
strand_(asio::make_strand(socket_.get_executor())),
cbs_(std::move(cbs)),
tls_(std::move(tls)) {}
TcpServerConn::~TcpServerConn() {
close();
if (tls_thread_.joinable()) {
if (std::this_thread::get_id() == tls_thread_.get_id()) {
tls_thread_.detach(); // being destroyed from our own TLS thread — detach safely
} else {
tls_thread_.join();
}
}
}
void TcpServerConn::start() {
if (tls_) {
// Run TLS handshake on a temporary thread so we don't block the io_context.
auto self = shared_from_this();
std::thread([self] {
std::string err;
int fd = static_cast<int>(self->socket_.native_handle());
if (!self->tls_->handshake(fd, err)) {
if (!self->closing_.exchange(true)) {
if (self->cbs_.on_error) {
asio::post(self->strand_, [self] {
self->cbs_.on_error(
std::make_error_code(std::errc::connection_reset));
});
}
}
return;
}
self->connected_.store(true, std::memory_order_release);
// Export media keying material before the read loop starts.
if (self->cbs_.on_tls_ready) self->cbs_.on_tls_ready(*self->tls_);
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// 50 ms timeout so tls_read_loop can drain the send queue between reads.
self->tls_->set_read_timeout(50);
self->tls_thread_ = std::thread([self] { self->tls_read_loop(); });
}).detach();
} else {
connected_.store(true, std::memory_order_release);
start_read();
}
}
void TcpServerConn::tls_read_loop() {
std::vector<uint8_t> buf(16384);
while (!closing_.load(std::memory_order_acquire)) {
tls_drain_sends();
int n = tls_->read(buf.data(), buf.size());
if (crypto::TlsContext::is_timeout_error(n)) continue;
if (n <= 0) break;
std::vector<std::vector<uint8_t>> frames;
if (!codec_.feed(buf.data(), static_cast<size_t>(n), frames)) break;
for (auto& frame : frames) {
if (cbs_.on_frame) cbs_.on_frame(std::move(frame));
}
}
connected_.store(false, std::memory_order_release);
if (cbs_.on_disconnected) cbs_.on_disconnected();
}
void TcpServerConn::tls_drain_sends() {
while (true) {
std::vector<uint8_t> frame;
{
std::lock_guard lk(tls_send_mutex_);
if (tls_send_queue_.empty()) return;
frame = std::move(tls_send_queue_.front());
tls_send_queue_.pop_front();
}
size_t off = 0;
while (off < frame.size()) {
int n = tls_->write(frame.data() + off, frame.size() - off);
if (n <= 0) { closing_.store(true, std::memory_order_release); return; }
off += static_cast<size_t>(n);
}
}
}
void TcpServerConn::start_read() {
auto self = shared_from_this();
asio::async_read(socket_, asio::buffer(len_buf_, 4),
asio::bind_executor(strand_,
[this, self](std::error_code ec, std::size_t n) { handle_length(ec, n); }));
}
void TcpServerConn::handle_length(std::error_code ec, std::size_t) {
if (ec) {
connected_.store(false, std::memory_order_release);
if (ec == asio::error::eof || ec == asio::error::connection_reset) {
if (cbs_.on_disconnected) cbs_.on_disconnected();
} else {
if (cbs_.on_error) cbs_.on_error(ec);
}
return;
}
uint32_t length =
(static_cast<uint32_t>(len_buf_[0]) << 24) |
(static_cast<uint32_t>(len_buf_[1]) << 16) |
(static_cast<uint32_t>(len_buf_[2]) << 8) |
static_cast<uint32_t>(len_buf_[3]);
if (length > protocol::kMaxFrameBytes) {
if (cbs_.on_error) cbs_.on_error(asio::error::message_size);
return;
}
if (length == 0) {
if (cbs_.on_frame) cbs_.on_frame({});
start_read();
return;
}
body_buf_.resize(length);
auto self = shared_from_this();
asio::async_read(socket_, asio::buffer(body_buf_),
asio::bind_executor(strand_,
[this, self, length](std::error_code ec, std::size_t n) {
handle_body(length, ec, n);
}));
}
void TcpServerConn::handle_body(uint32_t, std::error_code ec, std::size_t) {
if (ec) {
connected_.store(false, std::memory_order_release);
if (ec == asio::error::eof || ec == asio::error::connection_reset) {
if (cbs_.on_disconnected) cbs_.on_disconnected();
} else {
if (cbs_.on_error) cbs_.on_error(ec);
}
return;
}
if (cbs_.on_frame) cbs_.on_frame(body_buf_);
start_read();
}
void TcpServerConn::send_frame(std::vector<uint8_t> payload) {
std::vector<uint8_t> wire;
protocol::FrameCodec::emit(payload, wire);
if (tls_) {
std::lock_guard lk(tls_send_mutex_);
tls_send_queue_.push_back(std::move(wire));
} else {
auto self = shared_from_this();
asio::post(strand_, [this, self, w = std::move(wire)]() mutable {
send_queue_.push_back(std::move(w));
if (!sending_) do_send();
});
}
}
void TcpServerConn::do_send() {
if (send_queue_.empty()) { sending_ = false; return; }
sending_ = true;
auto self = shared_from_this();
auto& front = send_queue_.front();
asio::async_write(socket_,
asio::buffer(front),
asio::bind_executor(strand_,
[this, self](std::error_code ec, std::size_t) {
if (ec) {
connected_.store(false, std::memory_order_release);
if (cbs_.on_error) cbs_.on_error(ec);
return;
}
send_queue_.pop_front();
do_send();
}));
}
void TcpServerConn::close() {
if (closing_.exchange(true)) return;
std::error_code ignored;
socket_.shutdown(asio::ip::tcp::socket::shutdown_both, ignored);
socket_.close(ignored);
connected_.store(false, std::memory_order_release);
// In non-TLS mode, the Asio async chain will naturally stop when the socket closes.
}
// ── TcpAcceptor ─────────────────────────────────────────────────────────────
TcpAcceptor::TcpAcceptor(asio::io_context& io, uint16_t port, ConnFactory factory)
: acceptor_(io, asio::ip::tcp::endpoint(asio::ip::tcp::v4(), port)),
factory_(std::move(factory)) {
acceptor_.set_option(asio::ip::tcp::acceptor::reuse_address(true));
}
void TcpAcceptor::start() { do_accept(); }
void TcpAcceptor::stop() {
stopped_ = true;
std::error_code ignored;
acceptor_.close(ignored);
}
void TcpAcceptor::do_accept() {
if (stopped_) return;
acceptor_.async_accept(
[this](std::error_code ec, asio::ip::tcp::socket socket) {
if (ec) {
if (!stopped_) do_accept();
return;
}
socket.set_option(asio::ip::tcp::no_delay(true));
auto conn = factory_(std::move(socket));
if (conn) conn->start();
do_accept();
});
}
// ── UdpMediaChannel ──────────────────────────────────────────────────────────
bool UdpMediaChannel::bind(asio::io_context& io, uint16_t port) {
if (bound_.load()) return false;
try {
socket_ = std::make_unique<asio::ip::udp::socket>(io);
socket_->open(asio::ip::udp::v4());
socket_->set_option(asio::socket_base::reuse_address(true));
socket_->bind(asio::ip::udp::endpoint(asio::ip::udp::v4(), port));
bound_.store(true, std::memory_order_release);
return true;
} catch (...) {
socket_.reset();
return false;
}
}
void UdpMediaChannel::start_recv(FrameCallback cb) {
frame_cb_ = std::move(cb);
do_recv();
}
void UdpMediaChannel::do_recv() {
if (!socket_ || closed_.load()) return;
socket_->async_receive_from(
asio::buffer(recv_buf_), sender_ep_,
[this](std::error_code ec, std::size_t n) {
if (ec || closed_.load()) return;
if (frame_cb_ && n > 0)
frame_cb_(recv_buf_.data(), n, sender_ep_);
do_recv();
});
}
void UdpMediaChannel::send_to(const uint8_t* data, size_t len,
asio::ip::udp::endpoint dst) {
if (!socket_ || closed_.load() || len == 0) return;
auto buf = std::make_shared<std::vector<uint8_t>>(data, data + len);
asio::post(socket_->get_executor(), [this, buf, dst]() mutable {
if (closed_.load()) return;
socket_->async_send_to(
asio::buffer(*buf), dst,
[buf](std::error_code, std::size_t) {});
});
}
void UdpMediaChannel::close() {
if (closed_.exchange(true)) return;
if (socket_) {
std::error_code ec;
socket_->cancel(ec);
socket_->close(ec);
}
}
asio::ip::udp::endpoint UdpMediaChannel::local_endpoint() const {
if (!socket_) return {};
std::error_code ec;
return socket_->local_endpoint(ec);
}
} // namespace voicecat::net
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#endif // VOICECAT_HAS_NET