- CitrineOS core extracted (CSMS OCPP 2.0.1) - OpenOCPP extracted (firmware OCPP 1.6J/2.0.1) - ShapeShifter library installed (pip install -e) - ShapeShifter specification extracted - EVerest extracted TODO updated with progress
339 lines
11 KiB
C++
339 lines
11 KiB
C++
// SPDX-License-Identifier: Apache-2.0
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// Copyright 2020 - 2023 Pionix GmbH and Contributors to EVerest
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#include "tls_connection.hpp"
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#include "connection.hpp"
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#include "log.hpp"
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#include "v2g.hpp"
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#include "v2g_server.hpp"
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#include <everest/tls/tls.hpp>
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#include <new>
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#include <cassert>
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#include <cerrno>
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#include <cstring>
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#include <ctime>
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#include <memory>
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#include <sys/types.h>
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#include <thread>
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namespace {
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// used when ctx->network_read_timeout_tls is 0
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constexpr int default_timeout_ms = 1000;
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void process_connection_thread(std::shared_ptr<tls::ServerConnection> con, struct v2g_context* ctx) {
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assert(con != nullptr);
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assert(ctx != nullptr);
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openssl::pkey_ptr contract_public_key{nullptr, nullptr};
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auto connection = std::make_unique<v2g_connection>();
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connection->ctx = ctx;
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connection->is_tls_connection = true;
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connection->read = &tls::connection_read;
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connection->write = &tls::connection_write;
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connection->tls_connection = con.get();
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connection->pubkey = &contract_public_key;
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dlog(DLOG_LEVEL_INFO, "Incoming TLS connection");
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bool loop{true};
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bool tls_accepted{false};
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while (loop) {
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loop = false;
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const auto result = con->accept();
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switch (result) {
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case tls::Connection::result_t::success:
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tls_accepted = true;
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if (ctx->state == 0) {
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const auto rv = ::v2g_handle_connection(connection.get());
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dlog(DLOG_LEVEL_INFO, "v2g_dispatch_connection exited with %d", rv);
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} else {
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dlog(DLOG_LEVEL_INFO, "%s", "Closing tls-connection. v2g-session is already running");
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}
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con->shutdown();
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break;
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case tls::Connection::result_t::want_read:
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case tls::Connection::result_t::want_write:
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loop = con->wait_for(result, default_timeout_ms) == tls::Connection::result_t::success;
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break;
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case tls::Connection::result_t::closed:
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case tls::Connection::result_t::timeout:
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default:
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break;
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}
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}
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connection->tls_handshake_failed = !tls_accepted;
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connection->ctx->connection_initiated = false;
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::connection_teardown(connection.get());
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}
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void handle_new_connection_cb(tls::Server::ConnectionPtr&& con, struct v2g_context* ctx) {
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assert(con != nullptr);
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assert(ctx != nullptr);
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if (ctx->connection_initiated) {
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dlog(DLOG_LEVEL_ERROR, "Incoming TLS connection on %s, but there is already an active connection.",
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ctx->if_name);
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return;
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}
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ctx->connection_initiated = true;
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// create a thread to process this connection
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try {
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// passing unique pointers through thread parameters is problematic
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std::shared_ptr<tls::ServerConnection> connection(con.release());
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std::thread connection_loop(process_connection_thread, connection, ctx);
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connection_loop.detach();
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} catch (const std::system_error&) {
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// unable to start thread
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dlog(DLOG_LEVEL_ERROR, "pthread_create() failed: %s", strerror(errno));
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con->shutdown();
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ctx->connection_initiated = false;
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}
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}
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void server_loop_thread(struct v2g_context* ctx) {
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assert(ctx != nullptr);
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assert(ctx->tls_server != nullptr);
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const auto res = ctx->tls_server->serve([ctx](auto con) { handle_new_connection_cb(std::move(con), ctx); });
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if (res != tls::Server::state_t::stopped) {
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dlog(DLOG_LEVEL_ERROR, "tls::Server failed to serve");
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}
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}
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tls::Server::OptionalConfig configure_ssl(struct v2g_context* ctx) {
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try {
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dlog(DLOG_LEVEL_WARNING, "configure_ssl");
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auto config = std::make_unique<tls::Server::config_t>();
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// The config of interest is from Evse Security, no point in updating
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// config when there is a problem
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if (build_config(*config, ctx)) {
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return {{std::move(config)}};
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}
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} catch (const std::bad_alloc&) {
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dlog(DLOG_LEVEL_ERROR, "unable to create TLS config");
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}
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return std::nullopt;
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}
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} // namespace
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namespace tls {
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int connection_init(struct v2g_context* ctx) {
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using state_t = tls::Server::state_t;
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assert(ctx != nullptr);
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assert(ctx->tls_server != nullptr);
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assert(ctx->r_security != nullptr);
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int res{-1};
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tls::Server::config_t config;
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// build_config can fail due to issues with Evse Security,
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// this can be retried later. Not treated as an error.
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(void)build_config(config, ctx);
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// apply config
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ctx->tls_server->stop();
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ctx->tls_server->wait_stopped();
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const auto result = ctx->tls_server->init(config, [ctx]() { return configure_ssl(ctx); });
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if ((result == state_t::init_complete) || (result == state_t::init_socket)) {
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res = 0;
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}
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return res;
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}
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int connection_start_server(struct v2g_context* ctx) {
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assert(ctx != nullptr);
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assert(ctx->tls_server != nullptr);
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// only starts the TLS server
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int res = 0;
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try {
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ctx->tls_server->stop();
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ctx->tls_server->wait_stopped();
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if (ctx->tls_server->state() == tls::Server::state_t::stopped) {
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// need to re-initialise
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tls::connection_init(ctx);
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}
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std::thread serve_loop(server_loop_thread, ctx);
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serve_loop.detach();
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ctx->tls_server->wait_running();
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} catch (const std::system_error&) {
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// unable to start thread (caller logs failure)
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res = -1;
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}
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return res;
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}
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ssize_t connection_read(struct v2g_connection* conn, unsigned char* buf, const std::size_t count) {
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assert(conn != nullptr);
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assert(conn->tls_connection != nullptr);
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ssize_t result{0};
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std::size_t bytes_read{0};
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timespec ts_start{};
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if (clock_gettime(CLOCK_MONOTONIC, &ts_start) == -1) {
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dlog(DLOG_LEVEL_ERROR, "clock_gettime(ts_start) failed: %s", strerror(errno));
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result = -1;
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}
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while ((bytes_read < count) && (result >= 0)) {
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const std::size_t remaining = count - bytes_read;
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std::size_t bytes_in{0};
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auto* ptr = reinterpret_cast<std::byte*>(&buf[bytes_read]);
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const auto read_res = conn->tls_connection->read(ptr, remaining, bytes_in);
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switch (read_res) {
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case tls::Connection::result_t::success:
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bytes_read += bytes_in;
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break;
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case tls::Connection::result_t::want_read:
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case tls::Connection::result_t::want_write:
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conn->tls_connection->wait_for(read_res, default_timeout_ms);
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break;
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case tls::Connection::result_t::timeout:
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// is_sequence_timeout() is used to manage timeouts. Just loop and wait for more bytes
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break;
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case tls::Connection::result_t::closed:
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default:
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result = -1;
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break;
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}
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if (conn->ctx->is_connection_terminated) {
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dlog(DLOG_LEVEL_ERROR, "Reading from tcp-socket aborted");
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conn->tls_connection->shutdown();
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result = -2;
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}
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if (::is_sequence_timeout(ts_start, conn->ctx)) {
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break;
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}
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}
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return (result < 0) ? result : static_cast<ssize_t>(bytes_read);
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}
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ssize_t connection_write(struct v2g_connection* conn, unsigned char* buf, std::size_t count) {
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assert(conn != nullptr);
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assert(conn->tls_connection != nullptr);
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ssize_t result{0};
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std::size_t bytes_written{0};
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while ((bytes_written < count) && (result >= 0)) {
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const std::size_t remaining = count - bytes_written;
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std::size_t bytes_out{0};
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const auto* ptr = reinterpret_cast<std::byte*>(&buf[bytes_written]);
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const auto write_res = conn->tls_connection->write(ptr, remaining, bytes_out);
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switch (write_res) {
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case tls::Connection::result_t::success:
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bytes_written += bytes_out;
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break;
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case tls::Connection::result_t::want_read:
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case tls::Connection::result_t::want_write:
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conn->tls_connection->wait_for(write_res, default_timeout_ms);
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break;
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case tls::Connection::result_t::timeout:
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// is_sequence_timeout() is used to manage timeouts. Just loop and wait for more bytes
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break;
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case tls::Connection::result_t::closed:
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default:
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result = -1;
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break;
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}
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}
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if ((result == -1) && (conn->tls_connection->state() == tls::Connection::state_t::closed)) {
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// if the connection has closed - return the number of bytes sent
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result = 0;
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}
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return (result < 0) ? result : static_cast<ssize_t>(bytes_written);
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}
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bool build_config(tls::Server::config_t& config, struct v2g_context* ctx) {
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assert(ctx != nullptr);
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assert(ctx->r_security != nullptr);
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using types::evse_security::CaCertificateType;
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using types::evse_security::EncodingFormat;
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using types::evse_security::GetCertificateInfoStatus;
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using types::evse_security::LeafCertificateType;
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/*
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* libevse-security checks for an optional password and when one
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* isn't set is uses an empty string as the password rather than nullptr.
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* hence private keys are always encrypted.
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*/
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bool bResult{false};
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config.cipher_list = "ECDHE-ECDSA-AES128-SHA256";
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config.ciphersuites = ""; // disable TLS 1.3
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config.verify_client = false; // contract certificate managed in-band in 15118-2
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// use the existing configured socket
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// TODO(james-ctc): switch to server socket init code otherwise there
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// may be issues with reinitialisation
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config.socket = ctx->tls_socket.fd;
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config.io_timeout_ms = static_cast<std::int32_t>(ctx->network_read_timeout_tls);
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config.tls_key_logging = ctx->tls_key_logging;
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config.tls_key_logging_path = ctx->tls_key_logging_path;
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config.host = ctx->if_name;
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// information from libevse-security
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const auto cert_info =
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ctx->r_security->call_get_all_valid_certificates_info(LeafCertificateType::V2G, EncodingFormat::PEM, true);
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if (cert_info.status != GetCertificateInfoStatus::Accepted) {
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dlog(DLOG_LEVEL_ERROR, "Failed to read cert_info! Not Accepted");
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} else {
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if (!cert_info.info.empty()) {
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// process all known certificate chains
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for (const auto& chain : cert_info.info) {
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const auto cert_path = chain.certificate.value_or("");
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const auto key_path = chain.key;
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const auto root_pem = chain.certificate_root.value_or("");
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// workaround (see above libevse-security comment)
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const auto key_password = chain.password.value_or("");
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auto& ref = config.chains.emplace_back();
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ref.certificate_chain_file = cert_path.c_str();
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ref.private_key_file = key_path.c_str();
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ref.private_key_password = key_password.c_str();
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ref.trust_anchor_pem = root_pem.c_str();
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if (chain.ocsp) {
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for (const auto& ocsp : chain.ocsp.value()) {
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const char* file{nullptr};
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if (ocsp.ocsp_path) {
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file = ocsp.ocsp_path.value().c_str();
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}
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ref.ocsp_response_files.push_back(file);
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}
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}
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}
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bResult = true;
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} else {
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dlog(DLOG_LEVEL_ERROR, "Failed to read cert_info! Empty response");
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}
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}
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return bResult;
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}
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} // namespace tls
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