246 lines
5.8 KiB
C++
246 lines
5.8 KiB
C++
#include "tb_uart.h"
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#include "tb_cli.h"
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#include "tb_constants.h"
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#include <algorithm>
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#include <cstdlib>
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#include <cerrno>
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#include <cstring>
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#include <iostream>
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#include <fcntl.h>
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#include <netinet/tcp.h>
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#include <sys/socket.h>
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#include <unistd.h>
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namespace {
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void close_fd(int &fd) {
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if (fd < 0)
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return;
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(void)::close(fd);
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fd = -1;
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}
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bool set_nonblocking(int fd) {
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int flags = fcntl(fd, F_GETFL, 0);
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if (flags < 0)
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return false;
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return fcntl(fd, F_SETFL, flags | O_NONBLOCK) == 0;
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}
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int send_flags() {
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int flags = 0;
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#ifdef MSG_NOSIGNAL
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flags |= MSG_NOSIGNAL;
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#endif
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return flags;
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}
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} // namespace
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tb_uart_state::tb_uart_state(const tb_cli_args &args) {
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uarts[0].init(args.uart0_port);
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uarts[1].init(args.uart1_port);
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if (args.uart0_port != 0)
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std::cout << "UART0 listening on port " << args.uart0_port << "\n";
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if (args.uart1_port != 0)
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std::cout << "UART1 listening on port " << args.uart1_port << "\n";
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}
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tb_uart_state::~tb_uart_state() {
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for (uint32_t i = 0; i < N_UARTS; ++i)
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uarts[i].close();
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}
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void tb_uart_state::uart::init(uint16_t port_) {
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port = port_;
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if (port == 0)
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return;
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server_fd = socket(AF_INET, SOCK_STREAM, 0);
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if (server_fd < 0) {
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std::cerr << "UART socket creation failed: " << strerror(errno) << "\n";
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exit(-1);
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}
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int opt = 1;
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if (setsockopt(server_fd, SOL_SOCKET, SO_REUSEADDR, &opt, sizeof(opt)) < 0) {
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std::cerr << "UART setsockopt(SO_REUSEADDR) failed: " << strerror(errno) << "\n";
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exit(-1);
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}
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#ifdef SO_REUSEPORT
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// Best-effort: can fail on some kernels/configs, but is not required.
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(void)setsockopt(server_fd, SOL_SOCKET, SO_REUSEPORT, &opt, sizeof(opt));
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#endif
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bind_addr.sin_family = AF_INET;
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bind_addr.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
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bind_addr.sin_port = htons(port);
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if (bind(server_fd, (struct sockaddr *)&bind_addr, sizeof(bind_addr)) < 0) {
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std::cerr << "UART bind failed: " << strerror(errno) << "\n";
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exit(-1);
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}
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if (listen(server_fd, 1) < 0) {
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std::cerr << "UART listen failed: " << strerror(errno) << "\n";
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exit(-1);
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}
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if (!set_nonblocking(server_fd)) {
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std::cerr << "UART fcntl(O_NONBLOCK) failed: " << strerror(errno) << "\n";
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exit(-1);
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}
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}
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void tb_uart_state::uart::close() {
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close_fd(client_fd);
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close_fd(server_fd);
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port = 0;
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overrun = false;
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rx_fifo.clear();
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tx_fifo.clear();
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}
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void tb_uart_state::uart::poll_accept(uint32_t uart_idx) {
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if (server_fd < 0 || client_fd >= 0)
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return;
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sockaddr_in peer {};
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socklen_t peer_len = sizeof(peer);
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int fd = accept(server_fd, (struct sockaddr *)&peer, &peer_len);
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if (fd < 0) {
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if (errno == EAGAIN || errno == EWOULDBLOCK || errno == EINTR)
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return;
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std::cerr << "UART" << uart_idx << " accept failed: " << strerror(errno) << "\n";
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return;
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}
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client_fd = fd;
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(void)set_nonblocking(client_fd);
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// Low-latency local socket traffic helps interactivity.
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int flag = 1;
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setsockopt(client_fd, IPPROTO_TCP, TCP_NODELAY, (char *)&flag, sizeof(flag));
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#ifdef SO_NOSIGPIPE
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// Best-effort: avoid SIGPIPE on some platforms.
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(void)setsockopt(client_fd, SOL_SOCKET, SO_NOSIGPIPE, &flag, sizeof(flag));
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#endif
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std::cout << "UART" << uart_idx << " connected\n";
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}
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void tb_uart_state::uart::poll_rx(uint32_t uart_idx) {
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poll_accept(uart_idx);
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if (client_fd < 0)
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return;
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uint8_t buf[1024];
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while (true) {
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ssize_t n = recv(client_fd, buf, sizeof(buf), MSG_DONTWAIT);
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if (n > 0) {
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for (ssize_t i = 0; i < n; ++i) {
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if (rx_fifo.size() >= rx_capacity) {
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overrun = true;
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continue;
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}
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rx_fifo.push_back(buf[i]);
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}
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continue;
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}
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if (n == 0) {
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close_fd(client_fd);
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std::cout << "UART" << uart_idx << " disconnected\n";
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return;
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}
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if (errno == EAGAIN || errno == EWOULDBLOCK || errno == EINTR)
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return;
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std::cerr << "UART" << uart_idx << " recv failed: " << strerror(errno) << "\n";
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close_fd(client_fd);
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std::cout << "UART" << uart_idx << " disconnected\n";
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return;
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}
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}
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void tb_uart_state::uart::poll_tx(uint32_t uart_idx) {
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poll_accept(uart_idx);
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if (client_fd < 0 || tx_fifo.empty())
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return;
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uint8_t buf[1024];
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while (!tx_fifo.empty()) {
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const size_t chunk = std::min(tx_fifo.size(), sizeof(buf));
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for (size_t i = 0; i < chunk; ++i)
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buf[i] = tx_fifo[i];
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ssize_t n = send(client_fd, buf, chunk, send_flags());
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if (n > 0) {
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for (ssize_t i = 0; i < n; ++i)
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tx_fifo.pop_front();
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continue;
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}
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if (n == 0)
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return;
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if (errno == EAGAIN || errno == EWOULDBLOCK || errno == EINTR)
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return;
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std::cerr << "UART" << uart_idx << " send failed: " << strerror(errno) << "\n";
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close_fd(client_fd);
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std::cout << "UART" << uart_idx << " disconnected\n";
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return;
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}
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}
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void tb_uart_state::step() {
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for (uint32_t i = 0; i < N_UARTS; ++i) {
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if (!uarts[i].tx_fifo.empty())
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uarts[i].poll_tx(i);
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}
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}
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uint32_t tb_uart_state::read_status(uint32_t uart_idx) {
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if (uart_idx >= N_UARTS)
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return 0;
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uart &u = uarts[uart_idx];
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u.poll_rx(uart_idx);
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u.poll_tx(uart_idx);
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uint32_t status = TB_UART_STATUS_TX_READY;
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if (!u.rx_fifo.empty())
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status |= TB_UART_STATUS_RX_AVAIL;
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if (u.connected())
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status |= TB_UART_STATUS_CONNECTED;
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if (u.overrun)
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status |= TB_UART_STATUS_OVERRUN;
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return status;
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}
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uint32_t tb_uart_state::read_data(uint32_t uart_idx) {
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if (uart_idx >= N_UARTS)
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return 0xffffffffu;
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uart &u = uarts[uart_idx];
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u.poll_rx(uart_idx);
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if (u.rx_fifo.empty())
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return 0xffffffffu;
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const uint8_t byte = u.rx_fifo.front();
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u.rx_fifo.pop_front();
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return byte;
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}
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void tb_uart_state::write_data(uint32_t uart_idx, uint8_t byte) {
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if (uart_idx >= N_UARTS)
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return;
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uart &u = uarts[uart_idx];
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if (u.server_fd < 0)
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return;
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if (u.tx_fifo.size() >= u.tx_capacity && !u.tx_fifo.empty())
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u.tx_fifo.pop_front();
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u.tx_fifo.push_back(byte);
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u.poll_tx(uart_idx);
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}
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void tb_uart_state::write_ctrl(uint32_t uart_idx, uint32_t value) {
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if (uart_idx >= N_UARTS)
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return;
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uart &u = uarts[uart_idx];
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if (value & TB_UART_CTRL_CLR_OVERRUN)
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u.overrun = false;
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}
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