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// test_tcp_io.c — тесты библиотеки tcp_conn
#include <stdio.h>
#include <stdlib.h>
#include <string.h>
#include <assert.h>
#include <errno.h>
#include "../lib/platform_compat.h"
#include "../lib/u_async.h"
#include "../lib/tcp_io.h"
#include "../lib/debug_config.h"
#include "../lib/mem.h"
#ifndef MSG_NOSIGNAL
#define MSG_NOSIGNAL 0
#endif
static int tests_run = 0;
static int tests_passed = 0;
static int tests_failed = 0;
#define TEST_START(name) do { DEBUG_INFO(DEBUG_CATEGORY_SYS, "TEST: %s... ", name); tests_run++; } while(0)
#define TEST_PASS() do { DEBUG_INFO(DEBUG_CATEGORY_SYS, "PASS"); tests_passed++; } while(0)
#define TEST_FAIL(msg) do { DEBUG_ERROR(DEBUG_CATEGORY_SYS, "FAIL: %s", msg); tests_failed++; return; } while(0)
#define ASSERT_TRUE(cond, msg) do { if (!(cond)) TEST_FAIL(msg); } while(0)
#define ASSERT_EQ(a, b, msg) do { if ((a) != (b)) TEST_FAIL(msg); } while(0)
static int g_fin_count = 0;
static int g_error_count = 0;
static int g_last_error = 0;
static struct tcp_conn* g_last_fin_tc = NULL;
static int g_fin_sent_count = 0;
static int g_closed_count = 0;
static int g_last_event = 0; // 1=on_fin_sent, 2=on_closed — проверка порядка
static void on_fin(struct tcp_conn* tc, void* arg) {
(void)arg;
g_fin_count++;
g_last_fin_tc = tc;
}
static void on_error(struct tcp_conn* tc, int err, void* arg) {
(void)arg;
g_error_count++;
g_last_error = err;
}
static void on_fin_sent_cb(struct tcp_conn* tc, void* arg) {
(void)tc; (void)arg;
g_fin_sent_count++; g_last_event = 1;
}
static void on_closed_cb(struct tcp_conn* tc, void* arg) {
(void)tc; (void)arg;
g_closed_count++; g_last_event = 2;
}
static void reset_counters(void) {
g_fin_count = 0;
g_error_count = 0;
g_last_error = 0;
g_last_fin_tc = NULL;
g_fin_sent_count = 0;
g_closed_count = 0;
g_last_event = 0;
}
static int push_write(struct tcp_conn* tc, const uint8_t* data, size_t len) {
size_t offset = 0;
while (offset < len) {
size_t chunk = len - offset;
if (chunk > tc->write_chunk_size) chunk = tc->write_chunk_size;
struct ll_entry* e = queue_entry_new_from_pool(tc->entry_pool);
uint8_t* buf = memory_pool_alloc(tc->data_pool);
if (!e || !buf) { if (e) queue_entry_free(e); if (buf) memory_pool_free(tc->data_pool, buf); return -1; }
memcpy(buf, data + offset, chunk);
e->dgram = buf; e->len = (uint16_t)chunk;
queue_data_put(tc->write_queue, e);
offset += chunk;
}
return 0;
}
static void test_basic_send_recv(void) {
TEST_START("Basic send and recv via tcp_conn");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
// push_write отправляет данные синхронно через write_queue_fetch_cb
uint8_t send_buf[3000];
memset(send_buf, 'A', sizeof(send_buf));
int ret = push_write(tc, send_buf, sizeof(send_buf));
ASSERT_EQ(ret, 0, "push_write first call failed");
// Читаем с другой стороны
uint8_t recv_buf[4096] = {0};
ssize_t total = 0;
while (total < (ssize_t)sizeof(send_buf)) {
ssize_t n = recv(sv[1], recv_buf + total, sizeof(recv_buf) - total, 0);
ASSERT_TRUE(n >= 0, "recv failed on peer socket");
total += n;
}
ASSERT_TRUE(memcmp(send_buf, recv_buf, sizeof(send_buf)) == 0, "received data mismatch");
// Отправляем с другой стороны ДО poll — данные попадут в буфер ядра,
// и при EPOLLHUP handle_error вычитает их дренажом в read_queue
uint8_t peer_data[500];
memset(peer_data, 'B', sizeof(peer_data));
ssize_t wret = send(sv[1], peer_data, sizeof(peer_data), MSG_NOSIGNAL);
ASSERT_TRUE(wret == sizeof(peer_data), "send on peer socket failed");
uasync_poll(ua, 10);
struct ll_entry* e = queue_data_get(tc->read_queue);
ASSERT_TRUE(e != NULL, "no data in read_queue");
ASSERT_EQ(e->len, (int)sizeof(peer_data), "read_queue entry length mismatch");
ASSERT_TRUE(memcmp(e->dgram, peer_data, sizeof(peer_data)) == 0, "read_queue data mismatch");
queue_entry_free(e);
queue_resume_callback(tc->read_queue);
// Закрываем peer — EPOLLHUP обработан через error_cb (handle_error)
close(sv[1]);
uasync_poll(ua, 10);
ASSERT_EQ(g_error_count, 1, "error_cb not called on peer close");
tcp_conn_destroy(tc);
close(sv[0]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_partial_write(void) {
TEST_START("Partial write recovery");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 4096, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
// Заполняем приёмный буфер sv[1] маленькими чтениями, чтобы создать EAGAIN на sv[0]
// Отправляем много данных быстро, чтобы сокет заполнился
int send_size = 256;
uint8_t* big_buf = u_malloc(200000);
ASSERT_TRUE(big_buf != NULL, "malloc failed");
memset(big_buf, 'X', 200000);
int ret = push_write(tc, big_buf, 200000);
ASSERT_EQ(ret, 0, "push_write large failed");
uasync_poll(ua, 1); // write_cb отправляет что может
// Дрейним sv[1] и проверяем что все данные приходят
uint8_t read_buf[8192];
ssize_t got = 0;
int iterations = 0;
while (got < 200000 && iterations < 1000) {
uasync_poll(ua, 1); // write_cb может дослать остаток
ssize_t n = recv(sv[1], read_buf, sizeof(read_buf), 0);
if (n > 0) { got += n; iterations = 0; continue; }
iterations++;
}
ASSERT_TRUE(got == 200000, "not all data received");
u_free(big_buf);
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_high_water_pause(void) {
TEST_START("Read high-water pause and resume");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
// hw=2, lw=0 — пауза после 2 блоков, resume когда пусто
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 64, 8192, 2, 0, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
// Шлём 5 блоков по 64 байта с другой стороны
for (int i = 0; i < 5; i++) {
uint8_t buf[64];
memset(buf, (uint8_t)i, sizeof(buf));
ssize_t wret = send(sv[1], buf, sizeof(buf), MSG_NOSIGNAL);
ASSERT_TRUE(wret == sizeof(buf), "send failed on iteration");
}
// Крутим poll пока не упрёмся в high_water (нужно несколько poll-итераций)
for (int i = 0; i < 20; i++) {
uasync_poll(ua, 1);
if (tc->read_paused) break;
}
ASSERT_TRUE(tc->read_paused == 1, "read not paused at high water");
// Дрейним read_queue — после lw=0 должен сработать resume
int drained = 0;
struct ll_entry* e;
while ((e = queue_data_get(tc->read_queue)) != NULL) {
drained++;
queue_entry_free(e);
queue_resume_callback(tc->read_queue);
}
ASSERT_TRUE(drained >= 2, "should have at least 2 entries");
uasync_poll(ua, 10);
ASSERT_TRUE(tc->read_queue->count > 0, "read not resumed");
// Дрейним остаток
while ((e = queue_data_get(tc->read_queue)) != NULL) {
queue_entry_free(e);
queue_resume_callback(tc->read_queue);
}
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_connect_detection(void) {
TEST_START("Connect completion detection");
#ifdef _WIN32
TEST_PASS();
return;
#else
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int listen_fd = socket(AF_INET, SOCK_STREAM, 0);
ASSERT_TRUE(listen_fd >= 0, "socket failed");
struct sockaddr_in addr;
memset(&addr, 0, sizeof(addr));
addr.sin_family = AF_INET;
addr.sin_addr.s_addr = htonl(INADDR_LOOPBACK);
addr.sin_port = 0;
ASSERT_EQ(bind(listen_fd, (struct sockaddr*)&addr, sizeof(addr)), 0, "bind failed");
socklen_t alen = sizeof(addr);
getsockname(listen_fd, (struct sockaddr*)&addr, &alen);
ASSERT_EQ(listen(listen_fd, 1), 0, "listen failed");
int client_fd = socket(AF_INET, SOCK_STREAM, 0);
ASSERT_TRUE(client_fd >= 0, "socket failed");
fcntl(client_fd, F_SETFL, fcntl(client_fd, F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, client_fd, 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
ASSERT_EQ(tc->connected, 0, "should not be connected yet");
int ret = connect(client_fd, (struct sockaddr*)&addr, sizeof(addr));
ASSERT_TRUE(ret < 0 && errno == EINPROGRESS, "connect should return EINPROGRESS");
int server_fd = accept(listen_fd, NULL, NULL);
ASSERT_TRUE(server_fd >= 0, "accept failed");
uasync_poll(ua, 100);
ASSERT_EQ(tc->connected, 1, "connect not detected");
close(server_fd);
tcp_conn_destroy(tc);
close(listen_fd);
uasync_destroy(ua, 0);
TEST_PASS();
#endif
}
static void test_error_callback(void) {
TEST_START("Error callback on broken socket");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
close(sv[1]);
uasync_poll(ua, 10);
ASSERT_EQ(tc->error, 1, "error not set on broken connection");
tcp_conn_destroy(tc);
close(sv[0]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_connect_timeout(void) {
TEST_START("Connect timeout on black hole (200ms)");
#ifdef _WIN32
TEST_PASS();
return;
#else
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int fd = socket(AF_INET, SOCK_STREAM, 0);
ASSERT_TRUE(fd >= 0, "socket failed");
fcntl(fd, F_SETFL, fcntl(fd, F_GETFL, 0) | O_NONBLOCK);
struct sockaddr_in addr;
memset(&addr, 0, sizeof(addr));
addr.sin_family = AF_INET;
addr.sin_port = htons(81);
addr.sin_addr.s_addr = htonl(0xC0000201); // 192.0.2.1 (TEST-NET-1, RFC 5737) — чёрная дыра
int ret = connect(fd, (struct sockaddr*)&addr, sizeof(addr));
ASSERT_TRUE(ret < 0 && errno == EINPROGRESS, "connect should return EINPROGRESS");
struct tcp_conn* tc = tcp_conn_create(ua, fd, 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
ASSERT_EQ(tc->connected, 0, "should not be connected");
tcp_conn_set_connect_timeout(tc, 200);
// Крутим цикл (1 мс × 500) пока таймаут не сработает
int iterations = 0;
while (g_error_count == 0 && iterations < 500) {
uasync_poll(ua, 10);
iterations++;
}
ASSERT_EQ(g_error_count, 1, "on_error not called on connect timeout");
ASSERT_EQ(g_last_error, ETIMEDOUT, "on_error should report ETIMEDOUT");
ASSERT_EQ(tc->connected, 0, "connection should still be not connected");
ASSERT_EQ(tc->error, 1, "tc->error should be set");
tcp_conn_destroy(tc);
uasync_destroy(ua, 0);
TEST_PASS();
#endif
}
// ====================================================================
// FIN / Close через очередь — новые тесты
// ====================================================================
static void test_push_fin(void) {
TEST_START("push_fin via write_queue");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
tc->on_fin_sent = on_fin_sent_cb;
uint8_t data[64];
memset(data, 'D', sizeof(data));
ASSERT_EQ(push_write(tc, data, sizeof(data)), 0, "push_write failed");
ASSERT_EQ(tcp_conn_push_fin(tc), 0, "push_fin failed");
uasync_poll(ua, 10);
uint8_t recv_buf[128] = {0};
ssize_t total = 0;
while (total < (ssize_t)sizeof(data)) {
ssize_t n = recv(sv[1], recv_buf + total, sizeof(recv_buf) - total, 0);
ASSERT_TRUE(n >= 0, "recv failed on peer");
total += n;
}
ASSERT_EQ(total, (ssize_t)sizeof(data), "should receive all data before EOF");
ASSERT_TRUE(memcmp(data, recv_buf, sizeof(data)) == 0, "data mismatch");
// После всех данных — EOF (FIN)
ssize_t n = recv(sv[1], recv_buf, sizeof(recv_buf), 0);
ASSERT_EQ(n, 0, "should get EOF after FIN");
ASSERT_EQ(tc->fin_local, 1, "tc->fin_local not set");
ASSERT_EQ(g_fin_sent_count, 1, "on_fin_sent not called");
ASSERT_EQ(g_closed_count, 0, "on_closed should not be called");
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_push_close(void) {
TEST_START("push_close via write_queue");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
tc->on_closed = on_closed_cb;
uint8_t data[64];
memset(data, 'E', sizeof(data));
ASSERT_EQ(push_write(tc, data, sizeof(data)), 0, "push_write failed");
ASSERT_EQ(tcp_conn_push_close(tc), 0, "push_close failed");
uasync_poll(ua, 10);
// Peer должен получить данные перед закрытием
uint8_t recv_buf[128] = {0};
ssize_t total = recv(sv[1], recv_buf, sizeof(recv_buf), 0);
ASSERT_TRUE(total == sizeof(data), "peer should receive data");
ASSERT_TRUE(memcmp(data, recv_buf, sizeof(data)) == 0, "data mismatch");
ASSERT_EQ(tc->closed, 1, "tc->closed not set");
ASSERT_EQ(tc->sock, SOCKET_INVALID, "sock should be invalid after close");
ASSERT_EQ(g_closed_count, 1, "on_closed not called");
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_fin_data_ordering(void) {
TEST_START("Data before FIN ordering");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
tc->on_fin_sent = on_fin_sent_cb;
uint8_t data1[64], data2[32], data3[48];
memset(data1, 0x01, sizeof(data1)); memset(data2, 0x02, sizeof(data2)); memset(data3, 0x03, sizeof(data3));
ASSERT_EQ(push_write(tc, data1, sizeof(data1)), 0, "push_write data1");
ASSERT_EQ(push_write(tc, data2, sizeof(data2)), 0, "push_write data2");
ASSERT_EQ(push_write(tc, data3, sizeof(data3)), 0, "push_write data3");
ASSERT_EQ(tcp_conn_push_fin(tc), 0, "push_fin");
uasync_poll(ua, 10);
// TCP — поток, блоки могут склеиться. Читаем всё и сверяем суммарно.
uint8_t buf[256], ref[sizeof(data1)+sizeof(data2)+sizeof(data3)];
memcpy(ref, data1, sizeof(data1)); memcpy(ref + sizeof(data1), data2, sizeof(data2)); memcpy(ref + sizeof(data1) + sizeof(data2), data3, sizeof(data3));
ssize_t total = 0;
while (total < (ssize_t)sizeof(ref)) {
ssize_t n = recv(sv[1], buf + total, sizeof(buf) - total, 0);
ASSERT_TRUE(n > 0, "recv failed on peer");
total += n;
}
ASSERT_EQ(total, (ssize_t)sizeof(ref), "total received mismatch");
ASSERT_TRUE(memcmp(buf, ref, sizeof(ref)) == 0, "data content mismatch");
// EOF
ssize_t n = recv(sv[1], buf, sizeof(buf), 0);
ASSERT_EQ(n, 0, "should get EOF after data");
ASSERT_EQ(g_fin_sent_count, 1, "on_fin_sent should be called");
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_double_push_fin(void) {
TEST_START("Double push_fin ignored");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
tc->on_fin_sent = on_fin_sent_cb;
ASSERT_EQ(tcp_conn_push_fin(tc), 0, "first push_fin");
ASSERT_EQ(tcp_conn_push_fin(tc), -1, "second push_fin should return -1");
uasync_poll(ua, 10);
ASSERT_EQ(g_fin_sent_count, 1, "on_fin_sent called more than once");
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_double_push_close(void) {
TEST_START("Double push_close ignored");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
tc->on_closed = on_closed_cb;
ASSERT_EQ(tcp_conn_push_close(tc), 0, "first push_close");
uasync_poll(ua, 10);
ASSERT_EQ(g_closed_count, 1, "on_closed not called after first close");
ASSERT_EQ(tcp_conn_push_close(tc), -1, "second push_close should return -1");
ASSERT_EQ(g_closed_count, 1, "on_closed called more than once");
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
static void test_fin_before_close(void) {
TEST_START("FIN before close ordering");
uasync_t* ua = uasync_create();
ASSERT_TRUE(ua != NULL, "uasync_create failed");
reset_counters();
int sv[2];
ASSERT_EQ(socketpair(AF_UNIX, SOCK_STREAM, 0, sv), 0, "socketpair failed");
for (int i = 0; i < 2; i++) fcntl(sv[i], F_SETFL, fcntl(sv[i], F_GETFL, 0) | O_NONBLOCK);
struct tcp_conn* tc = tcp_conn_create(ua, sv[0], 1500, 8192, 32, 8, 0, on_fin, on_error, NULL);
ASSERT_TRUE(tc != NULL, "tcp_conn_create failed");
tc->on_fin_sent = on_fin_sent_cb;
tc->on_closed = on_closed_cb;
uint8_t data[32];
memset(data, 'F', sizeof(data));
ASSERT_EQ(push_write(tc, data, sizeof(data)), 0, "push_write");
ASSERT_EQ(tcp_conn_push_fin(tc), 0, "push_fin");
ASSERT_EQ(tcp_conn_push_close(tc), 0, "push_close");
uasync_poll(ua, 10);
// Peer получает данные
uint8_t buf[64];
ssize_t n = recv(sv[1], buf, sizeof(buf), 0);
ASSERT_EQ(n, (ssize_t)sizeof(data), "peer should get data");
ASSERT_EQ(g_fin_sent_count, 1, "on_fin_sent not called");
ASSERT_EQ(g_closed_count, 1, "on_closed not called");
tcp_conn_destroy(tc);
close(sv[1]);
uasync_destroy(ua, 0);
TEST_PASS();
}
int main(void) {
#ifdef _WIN32
printf("[SKIP] test_tcp_io — socketpair() not available on Windows\n");
return 0;
#else
debug_config_init();
debug_set_level(DEBUG_LEVEL_INFO);
debug_set_categories(DEBUG_CATEGORY_ALL);
DEBUG_INFO(DEBUG_CATEGORY_SYS, "=== tcp_io Unit Tests ===");
test_basic_send_recv();
test_partial_write();
test_high_water_pause();
test_connect_detection();
test_error_callback();
test_connect_timeout();
test_push_fin();
test_push_close();
test_fin_data_ordering();
test_double_push_fin();
test_double_push_close();
test_fin_before_close();
DEBUG_INFO(DEBUG_CATEGORY_SYS, "=== Test Statistics ===");
DEBUG_INFO(DEBUG_CATEGORY_SYS, "Tests run: %d", tests_run);
DEBUG_INFO(DEBUG_CATEGORY_SYS, "Tests passed: %d", tests_passed);
DEBUG_INFO(DEBUG_CATEGORY_SYS, "Tests failed: %d", tests_failed);
return (tests_failed > 0) ? 1 : 0;
#endif
}