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STM32F4-Base/Drivers/BSP/NET/net_socket.c
2026-07-21 22:42:39 +08:00

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/*
* 模块名称Network Socket Core
* 模块功能BSD Socket API 核心实现,包含 Socket 管理、状态机、消息队列(线程安全)、事件处理、数据收发等功能,底层调用 CH395F 驱动
* 适用平台STM32F407ZGTx + CH395F 以太网芯片
* 作者:王建锋
* 创建日期2026-07-18
* 修改记录:
* 2026-07-18 王建锋 创建初始版本
* 2026-07-19 王建锋 添加消息队列线程安全机制,替换 xQueueCreate 为 CubeMX osMessageQueue
*/
#include <string.h>
#include <stdio.h>
#include "FreeRTOS.h"
#include "task.h"
#include "cmsis_os.h"
#include "net_socket.h"
#include "ch395f.h"
#include "main.h"
/*
* 调试输出配置
*/
#define DBG_TAG "[NET]"
#include "dbg_log.h"
/*
* 私有宏定义区
*/
#define NET_PHY_CHECK_INTERVAL_MS 5000U /* PHY 状态定期检查间隔ms */
/*
* 全局变量定义区 - 尽量避免使用全局变量
*/
static net_sock_t s_net_socks[NET_MAX_SOCKETS]; /* Socket 控制块数组 */
static int s_net_errno = 0; /* 最后错误码 */
static uint8_t s_net_initialized = 0; /* 初始化标志 */
static uint8_t s_local_ip[4]; /* 本机 IP 缓存网络序net_getsockname 用) */
static uint16_t s_dynamic_port = 49152; /* 动态端口分配起始值 */
/*
* 消息队列 - 线程安全核心
* 外部任务通过 net_send/net_recv/net_close 等 API 将请求放入队列,
* netTask 调用 net_process_messages() 串行处理所有 CH395F 操作
* 由 CubeMX 在 MX_FREERTOS_Init()osKernelInitialize 之后)中创建
*/
extern osMessageQueueId_t netMsgQueueHandle; /* CubeMX 生成的消息队列句柄 */
/*
* 私有函数声明区
*/
static int alloc_socket(void);
static void handle_connect_event(net_sock_t *p_sock);
static void handle_disconnect_event(net_sock_t *p_sock);
static void handle_recv_event(net_sock_t *p_sock);
static void handle_send_event(net_sock_t *p_sock);
static void handle_timeout_event(net_sock_t *p_sock);
static void fire_event(net_sock_t *p_sock, net_event_t event);
static void parse_ip_string(const char *str, uint8_t *ip_arr);
static int net_send_locked(net_sock_t *p_sock, const void *buf, int len);
static int net_recv_locked(net_sock_t *p_sock, void *buf, int len, int flags);
static int net_close_locked(net_sock_t *p_sock);
static int net_accept_locked(int sockfd, struct net_sockaddr *addr, int *addrlen);
/*
* 函数功能:网络子系统初始化(配置 CH395F + 启用多连接模式)
* 入口参数ip - IP 地址字符串 "192.168.1.100"NULL 使用 DHCP 自动获取 const char *
* mask - 子网掩码字符串 "255.255.255.0"NULL 使用默认值 const char *
* gateway - 网关地址字符串 "192.168.1.1"NULL 使用默认值 const char *
* 返回值0 - 初始化成功 int
* -1 - 初始化失败(芯片检测/复位/协议栈初始化失败) int
* 限定条件SPI2 已正确初始化netTask 尚未启动
* 函数说明1. 检查 CH395F 芯片是否存在并复位
* 2. 启用 TCP Server 多连接模式bit1=1设置 TCP MSS、重传参数、KeepAlive 参数
* 3. 配置 IP/网关/子网掩码,或启用 DHCP
* 4. 初始化 CH395F 协议栈并使能 PING 响应
*/
int net_init(const char *ip, const char *mask, const char *gateway) {
ch395f_status_t ret;
DBG_INFO("net_init: start");
/* 清零 Socket 控制块 */
memset(s_net_socks, 0, sizeof(s_net_socks));
s_net_errno = 0;
s_net_initialized = 0;
DBG_INFO("net_init: queue=%p", (void *)netMsgQueueHandle);
DBG_INFO("net_init: check_exist...");
/* 检查 CH395F 芯片 */
if (ch395f_check_exist() != CH395F_STATUS_OK) {
DBG_ERROR("net_init: ch395f_check_exist FAILED");
s_net_errno = NET_ERR;
return -1;
}
DBG_INFO("net_init: reset...");
/* 复位芯片 */
ch395f_reset();
DBG_INFO("net_init: set_fun_para...");
/* 启用单连接模式:每个 Socket 独立工作,支持多监听 SocketFTP PASV 需要) */
ch395f_set_fun_para(0x00);
DBG_INFO("net_init: set_tcp_mss...");
/* 设置 TCP MSS */
ch395f_set_tcp_mss(1460);
/* 设置 TCP 重传参数(必须在 INIT_CH395 之前<E4B98B>?*/
ch395f_set_retrans_count(8); /* 重传 8 <20>?*/
ch395f_set_retrans_period(500); /* 每次间隔 500ms总计 4s 重传窗口 */
/* 设置 TCP KeepAlive 参数(必须在 INIT_CH395 之前<EFBC8C>?ms必须为 500 的倍数IDLE > INTVL<56>?*/
ch395f_set_keepalive_idle(60000); /* 空闲 60 秒后开始探<E5A78B>?*/
ch395f_set_keepalive_intvl(5000); /* <20>?5 秒探测一<E6B58B>?*/
ch395f_set_keepalive_cnt(3); /* 最多探<E5A49A>?3 <20>?*/
/* 设置网络参数(必须在 INIT_CH395 之前<E4B98B>?*/
if (ip != NULL) {
uint8_t ip_arr[4];
uint8_t mask_arr[4];
uint8_t gw_arr[4];
parse_ip_string(ip, ip_arr);
parse_ip_string(mask, mask_arr);
parse_ip_string(gateway, gw_arr);
memcpy(s_local_ip, ip_arr, 4);
ch395f_set_ip_addr(ip_arr);
ch395f_set_gwip_addr(gw_arr);
ch395f_set_mask_addr(mask_arr);
} else {
/* 启用 DHCP */
ch395f_set_dhcp(1);
}
/* 初始<E5889D>?CH395F 协议栈(先不配置 buffer测试默认值是否工作 */
ret = ch395f_init();
if (ret != CH395F_STATUS_OK) {
s_net_errno = NET_ERR;
return -1;
}
/* 使能 PING 响应 */
ch395f_ping_enable(1);
s_net_initialized = 1;
return 0;
}
/*
* 函数功能:轮询 CH395F 中断状态,更新 Socket 连接状态并处理事件
* 返回值:本次轮询中发生事件的 Socket 数量 int >= 0
* 限定条件s_net_initialized == 1必须在 netTask 上下文中调用
* 函数说明1. GPIO 轮询 CH395F INT# 引脚电平(低电平有效),无需 EXTI 中断
* 2. 读取 GET_GLOB_INT_STATUS_ALL2 字节版)获取所有 Socket 的中断状态
* 3. 处理连接/断开/数据接收/发送完成/超时等事件,更新 Socket 状态机
* 4. RECV 中断为电平触发,每次 net_poll() 只处理一批中断,避免主循环饿死
*/
int net_poll(void) {
int event_count = 0;
int i;
uint16_t int_status;
if (!s_net_initialized) {
return 0;
}
/*
* GPIO 轮询模式:仅当 INT# 有效(低电平)时读取中断状态。
* 读取 GET_GLOB_INT_STATUS_ALLCH395F 拉高 INT#;若仍有中断则再次拉低。
*/
do
{
if (HAL_GPIO_ReadPin(CH395_INT_GPIO_Port, CH395_INT_Pin) == GPIO_PIN_SET) {
break;
}
int_status = ch395f_get_glob_int_status_all();
if (int_status == 0) {
break;
}
/* 诊断:每 3 秒打印一次全局中断状态和 Socket 状态。
* 注意:使用已读取的 int_status不要再读 GINT读即清除。 */
static uint32_t s_last_diag = 0;
uint32_t now_diag = HAL_GetTick();
if ((now_diag - s_last_diag >= 3000) || s_last_diag == 0) {
s_last_diag = now_diag;
DBG_INFO("GINT=0x%04X", int_status);
for (int di = 0; di < NET_MAX_SOCKETS; di++) {
DBG_INFO(" s%d: in_use=%d state=%d",
di, s_net_socks[di].in_use, s_net_socks[di].state);
}
}
if (int_status & CH395F_GINT_STAT_PHY_CHANGE) {
uint8_t phy = ch395f_get_phy_status();
DBG_INFO("PHY_CHANGE: 0x%02X", phy);
if (phy == CH395F_PHY_DISCONN) {
DBG_ERROR("PHY disconnected, sockets may need recovery");
}
}
/* 处理每个 Socket */
for (i = 0; i < NET_MAX_SOCKETS; i++) {
net_sock_t *p_sock = &s_net_socks[i];
/* 检查该 Socket 是否有中断全局中断状<E696AD>?bit4~bit11 对应 socket0~7<>?*/
if (!(int_status & (1U << (i + 4)))) {
continue;
}
/* 读取 Socket 中断状<E696AD>?*/
uint8_t sock_int = ch395f_get_sock_int_status(i);
/* 连接事件 */
if (sock_int & CH395F_SINT_STAT_CONNECT) {
handle_connect_event(p_sock);
event_count++;
}
/* 断开事件 */
if (sock_int & CH395F_SINT_STAT_DISCONNECT) {
handle_disconnect_event(p_sock);
event_count++;
}
/* 数据接收事件 */
if (sock_int & CH395F_SINT_STAT_RECV_OK) {
handle_recv_event(p_sock);
event_count++;
}
/* 发送完成事<E68890>?*/
if (sock_int & CH395F_SINT_STAT_SEND_OK) {
handle_send_event(p_sock);
event_count++;
}
/* 发送缓冲区空闲 */
if (sock_int & CH395F_SINT_STAT_SENBUF_FREE) {
p_sock->send_ready = 1;
}
/* 超时事件 */
if (sock_int & CH395F_SINT_STAT_SOCK_TIMEOUT) {
handle_timeout_event(p_sock);
event_count++;
}
}
/*
* 处理完毕后检查 INT# 是否仍为低电平。如果是,说明在处理期间有新中断产生,需要再次读取。
* 注意CH395F 的 RECV 中断是电平触发的(只要接收缓冲区有数据就保持低电平)。
* 如果不跳出循环net_poll() 会无限循环处理 RECV 中断,导致主循环中的应用代码(如 echo永远无法执行。
* 因此每次 net_poll() 调用只处理一批中断,由主循环负责读取数据。 */
} while (0);
/* 2 秒打印一次诊断信息(调试用) */
{
static uint32_t s_last_dbg = 0;
uint32_t now = HAL_GetTick();
if (now - s_last_dbg >= 2000) {
s_last_dbg = now;
uint8_t int_level = (HAL_GPIO_ReadPin(CH395_INT_GPIO_Port, CH395_INT_Pin) == GPIO_PIN_RESET) ? 1 : 0;
DBG_DEBUG("INT#=%d", int_level);
for (i = 0; i < NET_MAX_SOCKETS; i++) {
if (s_net_socks[i].in_use) {
uint8_t st[2];
ch395f_get_socket_status((uint8_t)i, st);
uint16_t rl = ch395f_get_recv_len((uint8_t)i);
DBG_DEBUG(" s%d:sw%d/tcp%d rl%d", i, st[0], st[1], rl);
}
}
}
}
return event_count;
}
/*
* 函数功能:处理消息队列中的请求
* 限定条件:必须在 netTask 上下文中调用(独占 CH395F 和 s_net_socks 访问权)
* 函数说明:每次调用处理一条消息。处理 send/recv 时内部会调用 net_poll()
* 等待操作完成。处理完毕后通知调用方任务。
*/
void net_process_messages(void) {
net_msg_t msg;
if (netMsgQueueHandle == NULL) {
return;
}
while (osMessageQueueGet(netMsgQueueHandle, &msg, NULL, 0) == osOK) {
switch (msg.type) {
case NET_MSG_SEND: {
net_sock_t *p_sock = net_get_sock(msg.sockfd);
if (p_sock == NULL || p_sock->state != NET_SOCK_STATE_ESTABLISHED) {
msg.result = -1;
} else {
msg.result = net_send_locked(p_sock, msg.buf, msg.len);
}
break;
}
case NET_MSG_RECV: {
net_sock_t *p_sock = net_get_sock(msg.sockfd);
if (p_sock == NULL) {
msg.result = -1;
} else {
msg.result = net_recv_locked(p_sock, msg.buf, msg.len, msg.flags);
}
break;
}
case NET_MSG_CLOSE: {
net_sock_t *p_sock = net_get_sock(msg.sockfd);
if (p_sock == NULL) {
msg.result = -1;
} else {
msg.result = net_close_locked(p_sock);
}
break;
}
case NET_MSG_CONNECT: {
msg.result = net_connect(msg.sockfd,
(const struct net_sockaddr *)&msg.addr,
msg.addrlen);
break;
}
case NET_MSG_LISTEN: {
msg.result = net_listen_locked(msg.sockfd, msg.flags);
break;
}
case NET_MSG_ACCEPT: {
struct net_sockaddr *p_addr = (struct net_sockaddr *)msg.buf;
int addrlen = msg.len;
int *p_addrlen = (p_addr != NULL && addrlen > 0) ? &addrlen : NULL;
msg.result = net_accept_locked(msg.sockfd, p_addr, p_addrlen);
break;
}
default:
msg.result = -1;
break;
}
xTaskNotify(msg.caller, (uint32_t)msg.result, eSetValueWithOverwrite);
}
}
/*
* 函数功能:创建 Socket分配空闲 Socket 控制块并初始化状态
* 入口参数domain - 地址族,仅支持 NET_AF_INET int
* type - SOCK_STREAM(TCP) 或 SOCK_DGRAM(UDP) int
* protocol - 通常为 0 int
* 返回值Socket 描述符 (0~7),失败返回 -1 int
* 限定条件net_init() 已调用成功s_net_initialized == 1
* 函数说明:自动分配一个空闲的 Socket 控制块in_use=0初始化为 CREATED 状态
*/
int net_socket(int domain, int type, int protocol) {
int sockfd;
net_sock_t *p_sock;
/* 参数检查*/
if (domain != NET_AF_INET) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
/* 分配空闲 Socket */
sockfd = alloc_socket();
if (sockfd < 0) {
s_net_errno = NET_ERR_NOMEM;
return -1;
}
p_sock = &s_net_socks[sockfd];
p_sock->ch395_sock = (uint8_t)sockfd;
p_sock->type = (uint8_t)type;
p_sock->state = NET_SOCK_STATE_CREATED;
p_sock->in_use = 1;
p_sock->send_ready = 1;
return sockfd;
}
/*
* 函数功能:绑定 Socket 到本地 IP 地址和端口号
* 入口参数sockfd - Socket 描述符 (0~7) int
* addr - 本地地址结构体指针 const struct net_sockaddr *
* addrlen - 地址结构体长度 int >= sizeof(struct net_sockaddr_in)
* 返回值0 - 绑定成功 int
* -1 - 绑定失败参数无效、Socket 未使用等) int
* 限定条件Socket 已通过 net_socket() 创建且未被其他操作占用net_init() 已调用
* 函数说明1. TCP Socket 仅记录本地端口,进入 BOUND 状态等待 listen
* 2. UDP SocketSOCK_DGRAM立即打开 CH395F Socket 并配置为 Server 模式
* - Socket 4~7 需显式分配收发缓冲区
*/
int net_bind(int sockfd, const struct net_sockaddr *addr, int addrlen) {
net_sock_t *p_sock;
const struct net_sockaddr_in *p_addr_in;
/* 参数检<E695B0>?*/
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
p_sock = &s_net_socks[sockfd];
if (!p_sock->in_use) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (addr == NULL || addrlen < (int)sizeof(struct net_sockaddr_in)) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
p_addr_in = (const struct net_sockaddr_in *)addr;
/* 设置本地端口(转换为主机序) */
p_sock->local_port = net_ntohs(p_addr_in->sin_port);
/* port=0 时自动分配动态端口49152~65535 */
if (p_sock->local_port == 0) {
p_sock->local_port = s_dynamic_port;
s_dynamic_port++;
if (s_dynamic_port > 65535) {
s_dynamic_port = 49152;
}
}
/* UDP (SOCK_DGRAM): 直接在此打开 CH395F Socket */
if (p_sock->type == NET_SOCK_DGRAM) {
uint8_t status;
/* Socket 4-7 默认无收发缓冲,需显式分配 */
if (sockfd >= 4) {
ch395f_set_send_buf((uint8_t)sockfd, 28, 2);
ch395f_set_recv_buf((uint8_t)sockfd, 30, 2);
}
ch395f_set_proto_type((uint8_t)sockfd, CH395F_PROTO_TYPE_UDP);
ch395f_set_sour_port((uint8_t)sockfd, p_sock->local_port);
/* DesIP=0xFFFFFFFF <20>?UDP Server 模式(接受任意来源) */
{
uint8_t broadcast[4] = {0xFF, 0xFF, 0xFF, 0xFF};
ch395f_set_des_ip((uint8_t)sockfd, broadcast);
}
ch395f_set_des_port((uint8_t)sockfd, 0);
status = ch395f_open_socket((uint8_t)sockfd);
if (status != CH395F_ERR_SUCCESS) {
DBG_ERROR("sock%d open_socket FAIL: status=0x%02X (expected 0x00)", sockfd, status);
s_net_errno = NET_ERR_BUSY;
return -1;
}
p_sock->state = NET_SOCK_STATE_UDP_OPEN;
} else {
p_sock->state = NET_SOCK_STATE_BOUND;
}
return 0;
}
/*
* 函数功能:启动 TCP Server 监听(内部版本,必须在 netTask 上下文调用)
* 入口参数sockfd - Socket 描述符 (0~7) int
* backlog - 数据 Socket 数量0=单连接模式) int
* 返回值0 - 成功,-1 - 失败 int
* 限定条件sockfd 已绑定且为 TCPnetTask 上下文
*/
int net_listen_locked(int sockfd, int backlog) {
net_sock_t *p_sock = &s_net_socks[sockfd];
uint8_t status;
if (!p_sock->in_use || p_sock->type != NET_SOCK_STREAM) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
if (p_sock->state != NET_SOCK_STATE_BOUND &&
p_sock->state != NET_SOCK_STATE_CREATED) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
/* 多连接模式:按 backlog 分配数据 Socket */
if (backlog > 0) {
int max_ds = NET_TCP_SERVER_DATA_SOCK_START + backlog;
if (max_ds > NET_MAX_SOCKETS) {
max_ds = NET_MAX_SOCKETS;
}
for (int ds = NET_TCP_SERVER_DATA_SOCK_START; ds < max_ds; ds++) {
uint8_t base = (uint8_t)(ds * 4);
ch395f_set_send_buf((uint8_t)ds, base, 2);
ch395f_set_recv_buf((uint8_t)ds, base + 2, 2);
ch395f_set_sour_port((uint8_t)ds, p_sock->local_port);
ch395f_set_proto_type((uint8_t)ds, CH395F_PROTO_TYPE_TCP);
s_net_socks[ds].in_use = 1;
s_net_socks[ds].state = NET_SOCK_STATE_TCP_ACCEPT;
s_net_socks[ds].type = NET_SOCK_STREAM;
s_net_socks[ds].ch395_sock = (uint8_t)ds;
s_net_socks[ds].send_ready = 1;
p_sock->data_socks[p_sock->data_sock_count++] = ds;
}
}
/* 配置监听 Socket */
ch395f_set_send_buf((uint8_t)sockfd, 0, 2);
ch395f_set_recv_buf((uint8_t)sockfd, 2, 2);
ch395f_set_proto_type(sockfd, CH395F_PROTO_TYPE_TCP);
ch395f_set_sour_port(sockfd, p_sock->local_port);
status = ch395f_open_socket(sockfd);
if (status != CH395F_ERR_SUCCESS) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
ch395f_tcp_listen(sockfd);
p_sock->state = NET_SOCK_STATE_LISTENING;
if (backlog == 0) {
p_sock->standalone_accept = 1;
}
for (int j = 0; j < NET_MAX_SOCKETS; j++) {
(void)ch395f_get_sock_int_status((uint8_t)j);
}
(void)ch395f_get_glob_int_status_all();
return 0;
}
/*
* 函数功能:启动 TCP Server 监听(线程安全版本,通过消息队列委托给 netTask
* 入口参数sockfd - Socket 描述符 int
* backlog - 数据 Socket 数量 int
* 返回值0 - 成功,-1 - 失败 int
* 限定条件net_init() + MX_FREERTOS_Init() 已执行;必须在任务上下文中调用
* 函数说明:通过消息队列委托给 netTask确保 SPI 串行化
*/
int net_listen(int sockfd, int backlog) {
net_msg_t msg;
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (netMsgQueueHandle == NULL) {
s_net_errno = NET_ERR;
return -1;
}
msg.type = NET_MSG_LISTEN;
msg.sockfd = sockfd;
msg.flags = backlog;
msg.caller = xTaskGetCurrentTaskHandle();
msg.result = -1;
if (osMessageQueuePut(netMsgQueueHandle, &msg, 0, osWaitForever) != osOK) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
{
uint32_t s_notified;
xTaskNotifyWait(0, 0, &s_notified, portMAX_DELAY);
msg.result = (int)s_notified;
}
if (msg.result < 0) {
s_net_errno = NET_ERR;
}
return msg.result;
}
/*
* 函数功能TCP Server 接受新连接(内部版本,必须在 netTask 上下文调用)
* 入口参数sockfd - 监听 Socket 描述符 int
* addr - 输出:客户端地址结构体指针 struct net_sockaddr *(可为 NULL
* addrlen - 输入输出:地址结构体长度 int *(可为 NULL
* 返回值:新连接的 Socket 描述符,失败返回 -1 int
* 限定条件Socket 处于 LISTENING 状态
* 函数说明:先查 data_socks[] 多连接数据 Socket再查 standalone_accept 单连接 Socket
*/
static int net_accept_locked(int sockfd, struct net_sockaddr *addr, int *addrlen) {
net_sock_t *p_listen_sock;
int i;
p_listen_sock = &s_net_socks[sockfd];
if (!p_listen_sock->in_use) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
if (p_listen_sock->state != NET_SOCK_STATE_LISTENING &&
!(p_listen_sock->standalone_accept && p_listen_sock->state == NET_SOCK_STATE_ESTABLISHED)) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
net_poll();
/* 多连接模式:查 data_socks */
for (i = 0; i < p_listen_sock->data_sock_count; i++) {
int data_sock = p_listen_sock->data_socks[i];
net_sock_t *p_data_cb = &s_net_socks[data_sock];
if (p_data_cb->state == NET_SOCK_STATE_ESTABLISHED) {
if (addr != NULL && addrlen != NULL) {
struct net_sockaddr_in *p_addr_in = (struct net_sockaddr_in *)addr;
p_addr_in->sin_family = NET_AF_INET;
p_addr_in->sin_port = net_htons(p_data_cb->remote_port);
p_addr_in->sin_addr.s_addr = p_data_cb->remote_ip;
*addrlen = sizeof(struct net_sockaddr_in);
}
return data_sock;
}
}
/* 单连接模式PASV查 standalone 监听者是否已 ESTABLISHED */
if (p_listen_sock->standalone_accept &&
p_listen_sock->state == NET_SOCK_STATE_ESTABLISHED) {
if (addr != NULL && addrlen != NULL) {
struct net_sockaddr_in *p_addr_in = (struct net_sockaddr_in *)addr;
p_addr_in->sin_family = NET_AF_INET;
p_addr_in->sin_port = net_htons(p_listen_sock->remote_port);
p_addr_in->sin_addr.s_addr = p_listen_sock->remote_ip;
*addrlen = sizeof(struct net_sockaddr_in);
}
return sockfd;
}
s_net_errno = NET_ERR_WOULDBLOCK;
return -1;
}
/*
* 函数功能TCP Server 接受新连接(线程安全版本,通过消息队列委托给 netTask
* 入口参数sockfd - 监听 Socket 描述符 int
* addr - 输出:客户端地址结构体指针 struct net_sockaddr *(可为 NULL
* addrlen - 输入输出:地址结构体长度 int *(可为 NULL
* 返回值:新连接的 Socket 描述符,失败返回 -1 int
* 限定条件Socket 处于 LISTENING 状态net_init() + MX_FREERTOS_Init() 已执行;非 netTask 上下文
* 函数说明:将接受请求放入消息队列,阻塞等待 netTask 处理完毕
*/
int net_accept(int sockfd, struct net_sockaddr *addr, int *addrlen) {
net_msg_t msg;
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (netMsgQueueHandle == NULL) {
s_net_errno = NET_ERR;
return -1;
}
msg.type = NET_MSG_ACCEPT;
msg.sockfd = sockfd;
msg.buf = (void *)addr;
msg.len = (addrlen != NULL) ? *addrlen : 0;
msg.caller = xTaskGetCurrentTaskHandle();
msg.result = -1;
if (osMessageQueuePut(netMsgQueueHandle, &msg, 0, osWaitForever) != osOK) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
{
uint32_t s_notified;
xTaskNotifyWait(0, 0, &s_notified, portMAX_DELAY);
msg.result = (int)s_notified;
}
if (addrlen != NULL && addr != NULL) {
*addrlen = sizeof(struct net_sockaddr_in);
}
if (msg.result < 0) {
s_net_errno = NET_ERR;
}
return msg.result;
}
/*
* 函数功能TCP Client 发起与服务器的连接
* 入口参数sockfd - Socket 描述符 (0~7),必须为已创建的 TCP Socket int
* addr - 服务器地址结构体指针 const struct net_sockaddr *
* addrlen - 地址结构体长度 int >= sizeof(struct net_sockaddr_in)
* 返回值0 - 连接请求发送成功(异步,需等待 ESTABLISHED int
* -1 - 连接失败(参数无效、状态错误等) int
* 限定条件Socket 已通过 net_socket() 创建且 type == NET_SOCK_STREAM尚未连接
* 函数说明:设置目标 IP 和端口后打开 CH395F Socket进入 CONNECTING 状态。连接建立需等待
* net_poll() 检测到 CONNECT 事件并将状态更新为 ESTABLISHED
*/
int net_connect(int sockfd, const struct net_sockaddr *addr, int addrlen) {
net_sock_t *p_sock;
const struct net_sockaddr_in *p_addr_in;
uint8_t status;
/* 参数检<E695B0>?*/
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
p_sock = &s_net_socks[sockfd];
if (!p_sock->in_use || p_sock->type != NET_SOCK_STREAM) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
if (addr == NULL || addrlen < (int)sizeof(struct net_sockaddr_in)) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
p_addr_in = (const struct net_sockaddr_in *)addr;
/* 保存远端地址 */
p_sock->remote_ip = p_addr_in->sin_addr.s_addr;
p_sock->remote_port = net_ntohs(p_addr_in->sin_port);
/* 转换 IP 为数组格式(低字节在前) */
p_sock->remote_ip_arr[0] = (uint8_t)(p_sock->remote_ip);
p_sock->remote_ip_arr[1] = (uint8_t)(p_sock->remote_ip >> 8);
p_sock->remote_ip_arr[2] = (uint8_t)(p_sock->remote_ip >> 16);
p_sock->remote_ip_arr[3] = (uint8_t)(p_sock->remote_ip >> 24);
/* 配置 CH395F Socket */
ch395f_set_proto_type(sockfd, CH395F_PROTO_TYPE_TCP);
ch395f_set_sour_port(sockfd, p_sock->local_port);
ch395f_set_des_ip(sockfd, p_sock->remote_ip_arr);
ch395f_set_des_port(sockfd, p_sock->remote_port);
status = ch395f_open_socket(sockfd);
if (status != CH395F_ERR_SUCCESS) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
/* 发起 TCP 连接 */
ch395f_tcp_connect(sockfd);
p_sock->state = NET_SOCK_STATE_CONNECTING;
return 0;
}
/*
* 函数功能:发送数据(内部锁定版本,必须在 netTask 上下文调用)
*/
static int net_send_locked(net_sock_t *p_sock, const void *buf, int len) {
int sent = 0;
uint32_t tick_start;
int sockfd = (int)(p_sock - s_net_socks);
if (buf == NULL || len <= 0) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
if (p_sock->state != NET_SOCK_STATE_ESTABLISHED) {
s_net_errno = NET_ERR_NOTCONN;
return -1;
}
tick_start = HAL_GetTick();
while (sent < len) {
int chunk = len - sent;
if (chunk > NET_SEND_BUF_SIZE) {
chunk = NET_SEND_BUF_SIZE;
}
if (!p_sock->send_ready) {
if (NET_SEND_TIMEOUT_MS > 0 &&
(HAL_GetTick() - tick_start) >= NET_SEND_TIMEOUT_MS) {
s_net_errno = NET_ERR_TIMEDOUT;
break;
}
net_poll();
continue;
}
ch395f_write_send_buf(sockfd, (uint8_t *)buf + sent, (uint16_t)chunk);
p_sock->send_ready = 0;
sent += chunk;
p_sock->send_bytes += (uint32_t)chunk;
tick_start = HAL_GetTick();
while (!p_sock->send_ready) {
net_poll();
if (NET_SEND_TIMEOUT_MS > 0 &&
(HAL_GetTick() - tick_start) >= NET_SEND_TIMEOUT_MS) {
break;
}
}
}
return sent;
}
/*
* 函数功能:接收数据(内部锁定版本,必须在 netTask 上下文调用)
*/
static int net_recv_locked(net_sock_t *p_sock, void *buf, int len, int flags) {
uint16_t recv_len;
uint32_t tick_start;
int sockfd = (int)(p_sock - s_net_socks);
if (buf == NULL || len <= 0) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
tick_start = HAL_GetTick();
while (1) {
net_poll();
recv_len = ch395f_get_recv_len(sockfd);
if (recv_len > 0) {
int read_len = (recv_len > (uint16_t)len) ? len : (int)recv_len;
ch395f_read_recv_buf(sockfd, (uint8_t *)buf, (uint16_t)read_len);
p_sock->recv_bytes += (uint32_t)read_len;
return read_len;
}
if (flags & NET_MSG_DONTWAIT) {
s_net_errno = NET_ERR_WOULDBLOCK;
return -1;
}
if (NET_RECV_TIMEOUT_MS > 0 &&
(HAL_GetTick() - tick_start) >= NET_RECV_TIMEOUT_MS) {
s_net_errno = NET_ERR_TIMEDOUT;
return -1;
}
if (p_sock->state == NET_SOCK_STATE_TCP_ACCEPT) {
return 0;
}
}
}
/*
* 函数功能:关闭 socket内部锁定版本必须在 netTask 上下文调用)
*/
static int net_close_locked(net_sock_t *p_sock) {
int sockfd = (int)(p_sock - s_net_socks);
ch395f_close_socket(sockfd);
memset(p_sock, 0, sizeof(net_sock_t));
return 0;
}
/*
* 函数功能:发送数据(线程安全版本,通过消息队列委托给 netTask
* 入口参数sockfd - Socket 描述符 int >= 0 && < NET_MAX_SOCKETS
* buf - 待发送数据缓冲区指针 const void *
* len - 数据长度 int > 0
* flags - 标志位,通常为 0 int
* 返回值:实际发送字节数 int >= 0 || -1
* -1 - 发送失败(参数无效、队列满等) int
* 限定条件Socket 处于 ESTABLISHED 状态net_init() + MX_FREERTOS_Init() 已执行;非 netTask 上下文
* 函数说明:将发送请求放入消息队列,阻塞等待 netTask 处理完毕并返回结果。netTask 内请使用 net_send_sock()
*/
int net_send(int sockfd, const void *buf, int len, int flags) {
(void)flags;
net_msg_t msg;
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (netMsgQueueHandle == NULL) {
s_net_errno = NET_ERR;
return -1;
}
msg.type = NET_MSG_SEND;
msg.sockfd = sockfd;
msg.buf = (void *)buf;
msg.len = len;
msg.flags = 0;
msg.caller = xTaskGetCurrentTaskHandle();
msg.result = -1;
if (osMessageQueuePut(netMsgQueueHandle, &msg, 0, osWaitForever) != osOK) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
{
uint32_t s_notified;
xTaskNotifyWait(0, 0, &s_notified, portMAX_DELAY);
msg.result = (int)s_notified;
}
if (msg.result < 0) {
s_net_errno = NET_ERR;
}
return msg.result;
}
/*
* 函数功能:接收数据(线程安全版本,通过消息队列委托给 netTask
* 入口参数sockfd - Socket 描述符 int >= 0 && < NET_MAX_SOCKETS
* buf - 接收缓冲区指针 void *
* len - 缓冲区大小 int > 0
* flags - 标志位0=阻塞NET_MSG_DONTWAIT=非阻塞 int
* 返回值:实际接收字节数 int >= 0 || 0 || -1
* 0 - 对端关闭连接 int
* -1 - 接收失败(参数无效、队列满等) int
* 限定条件Socket 处于 ESTABLISHED 状态net_init() + MX_FREERTOS_Init() 已执行;非 netTask 上下文
* 函数说明:将接收请求放入消息队列,阻塞等待 netTask 处理完毕并返回结果。netTask 内请使用 net_recv_sock()
*/
int net_recv(int sockfd, void *buf, int len, int flags) {
net_msg_t msg;
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (netMsgQueueHandle == NULL) {
s_net_errno = NET_ERR;
return -1;
}
msg.type = NET_MSG_RECV;
msg.sockfd = sockfd;
msg.buf = buf;
msg.len = len;
msg.flags = flags;
msg.caller = xTaskGetCurrentTaskHandle();
msg.result = -1;
if (osMessageQueuePut(netMsgQueueHandle, &msg, 0, osWaitForever) != osOK) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
{
uint32_t s_notified;
xTaskNotifyWait(0, 0, &s_notified, portMAX_DELAY);
msg.result = (int)s_notified;
}
if (msg.result < 0) {
s_net_errno = NET_ERR;
}
return msg.result;
}
/*
* 函数功能:关闭 Socket线程安全版本通过消息队列委托给 netTask
* 入口参数sockfd - Socket 描述符 int >= 0 && < NET_MAX_SOCKETS
* 返回值0 - 关闭成功 int
* -1 - 关闭失败 int
* 限定条件Socket 已创建且处于非 CLOSED 状态net_init() + MX_FREERTOS_Init() 已执行;非 netTask 上下文
* 函数说明:将关闭请求放入消息队列,阻塞等待 netTask 处理完毕。TCP Socket 先断开连接再释放控制块。
* netTask 内请使用 net_close_sock()
*/
int net_close(int sockfd) {
net_msg_t msg;
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (netMsgQueueHandle == NULL) {
s_net_errno = NET_ERR;
return -1;
}
msg.type = NET_MSG_CLOSE;
msg.sockfd = sockfd;
msg.caller = xTaskGetCurrentTaskHandle();
msg.result = -1;
if (osMessageQueuePut(netMsgQueueHandle, &msg, 0, osWaitForever) != osOK) {
s_net_errno = NET_ERR_BUSY;
return -1;
}
{
uint32_t s_notified;
xTaskNotifyWait(0, 0, &s_notified, portMAX_DELAY);
msg.result = (int)s_notified;
}
if (msg.result < 0) {
s_net_errno = NET_ERR;
}
return msg.result;
}
/*
* 函数功能:发送 UDP 数据报(含目标地址)
* 入口参数sockfd - Socket 描述符 int >= 0 && < NET_MAX_SOCKETS
* buf - 待发送数据缓冲区指针 const void *
* len - 数据长度 int > 0
* flags - 标志位,通常为 0 int
* dest_addr - 目标地址结构体指针 const struct net_sockaddr *
* addrlen - 目标地址结构体长度 int >= sizeof(struct net_sockaddr_in)
* 返回值:实际发送字节数 int > 0 || -1
* -1 - 发送失败 int
* 限定条件Socket 已创建且为 UDP 类型SOCK_DGRAMnet_init() 已调用
*/
int net_sendto(int sockfd, const void *buf, int len, int flags,
const struct net_sockaddr *dest_addr, int addrlen) {
net_sock_t *p_sock;
const struct net_sockaddr_in *p_addr_in;
int sent = 0;
uint32_t tick_start;
/* 参数检<E695B0>?*/
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
p_sock = &s_net_socks[sockfd];
if (!p_sock->in_use) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (buf == NULL || len <= 0) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
/* UDP 模式:设置目标地址 */
if (dest_addr != NULL && addrlen >= (int)sizeof(struct net_sockaddr_in)) {
p_addr_in = (const struct net_sockaddr_in *)dest_addr;
/* 转换 IP 为数组格<E7BB84>?*/
uint8_t ip_arr[4];
uint32_t ip = p_addr_in->sin_addr.s_addr;
ip_arr[0] = (uint8_t)(ip);
ip_arr[1] = (uint8_t)(ip >> 8);
ip_arr[2] = (uint8_t)(ip >> 16);
ip_arr[3] = (uint8_t)(ip >> 24);
ch395f_set_des_ip(sockfd, ip_arr);
ch395f_set_des_port(sockfd, net_ntohs(p_addr_in->sin_port));
}
tick_start = HAL_GetTick();
/* 发送数<E98081>?*/
while (sent < len) {
int chunk = len - sent;
if (chunk > NET_SEND_BUF_SIZE) {
chunk = NET_SEND_BUF_SIZE;
}
/* 检查发送缓冲区 */
if (!p_sock->send_ready) {
if (NET_SEND_TIMEOUT_MS > 0 &&
(HAL_GetTick() - tick_start) >= NET_SEND_TIMEOUT_MS) {
s_net_errno = NET_ERR_TIMEDOUT;
break;
}
net_poll();
continue;
}
ch395f_write_send_buf(sockfd, (uint8_t *)buf + sent, (uint16_t)chunk);
p_sock->send_ready = 0;
sent += chunk;
p_sock->send_bytes += (uint32_t)chunk;
/* 等待发送完<E98081>?*/
tick_start = HAL_GetTick();
while (!p_sock->send_ready) {
net_poll();
if (NET_SEND_TIMEOUT_MS > 0 &&
(HAL_GetTick() - tick_start) >= NET_SEND_TIMEOUT_MS) {
break;
}
}
}
return sent;
}
/*
* 函数功能:接收 UDP 数据报(含源地址)
* 入口参数sockfd - Socket 描述符 int >= 0 && < NET_MAX_SOCKETS
* buf - 接收缓冲区指针 void *
* len - 缓冲区大小 int > 0
* flags - 标志位,通常为 0 int
* src_addr - 输出:发送方地址结构体指针 struct net_sockaddr *(可为 NULL
* addrlen - 输入输出:源地址长度 int *(可为 NULL
* 返回值:实际接收字节数 int >= 0 || -1
* -1 - 接收失败 int
* 限定条件Socket 已创建且为 UDP 类型SOCK_DGRAMnet_init() 已调用;有数据可用
*/
int net_recvfrom(int sockfd, void *buf, int len, int flags,
struct net_sockaddr *src_addr, int *addrlen) {
net_sock_t *p_sock;
uint16_t recv_len;
uint32_t tick_start;
/* 参数检<E695B0>?*/
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
p_sock = &s_net_socks[sockfd];
if (!p_sock->in_use) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (buf == NULL || len <= 0) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
tick_start = HAL_GetTick();
while (1) {
net_poll();
recv_len = ch395f_get_recv_len(sockfd);
if (recv_len > 0) {
/* UDP Server 模式:前 8 字节为固定格式IP + 端口 + 长度<E995BF>?*/
if (p_sock->type == NET_SOCK_DGRAM && recv_len >= 8) {
uint8_t header[8];
ch395f_read_recv_buf(sockfd, header, 8);
recv_len -= 8;
/* 填充来源地址 */
if (src_addr != NULL && addrlen != NULL &&
*addrlen >= (int)sizeof(struct net_sockaddr_in)) {
struct net_sockaddr_in *p_addr_in = (struct net_sockaddr_in *)src_addr;
p_addr_in->sin_family = NET_AF_INET;
/* CH395F UDP <20>? [0-1] reserved [2-3] src_port(LE) [4-7] src_ip */
p_addr_in->sin_port = net_htons((uint16_t)(header[2] | (header[3] << 8)));
p_addr_in->sin_addr.s_addr = ((uint32_t)header[4]) |
((uint32_t)header[5] << 8) |
((uint32_t)header[6] << 16) |
((uint32_t)header[7] << 24);
*addrlen = sizeof(struct net_sockaddr_in);
}
}
/* 读取数据 */
if (recv_len > 0) {
int read_len = (recv_len > (uint16_t)len) ? len : (int)recv_len;
ch395f_read_recv_buf(sockfd, (uint8_t *)buf, (uint16_t)read_len);
p_sock->recv_bytes += (uint32_t)read_len;
return read_len;
}
}
/* 非阻塞模式检<E5BC8F>?*/
if (flags & NET_MSG_DONTWAIT) {
s_net_errno = NET_ERR_WOULDBLOCK;
return -1;
}
/* 超时检<E697B6>?*/
if (NET_RECV_TIMEOUT_MS > 0 &&
(HAL_GetTick() - tick_start) >= NET_RECV_TIMEOUT_MS) {
s_net_errno = NET_ERR_TIMEDOUT;
return -1;
}
}
}
/*
* 函数功能:发送数据(内部版本,绕过消息队列,供 netTask 直接使用)
*/
int net_send_sock(net_sock_t *p_sock, const void *buf, int len) {
if (p_sock == NULL) {
s_net_errno = NET_ERR_BADF;
return -1;
}
return net_send_locked(p_sock, buf, len);
}
/*
* 函数功能:接收数据(内部版本,绕过消息队列,供 netTask 直接使用)
* 入口参数p_sock - Socket 控制块指针 net_sock_t *
* buf - 接收缓冲区指针 void *
* len - 缓冲区大小 int > 0
* flags - 标志位NET_MSG_DONTWAIT=非阻塞 int
* 返回值:实际接收字节数 int >= 0 || 0 || -1
* 0 - 对端关闭连接 int
* -1 - 接收失败 int
* 限定条件:必须在 netTask 上下文中调用p_sock->in_use == 1
* 函数说明:直接操作 Socket 控制块,不经过消息队列。避免 netTask 向自身发送消息造成死锁
*/
int net_recv_sock(net_sock_t *p_sock, void *buf, int len, int flags) {
if (p_sock == NULL) {
s_net_errno = NET_ERR_BADF;
return -1;
}
return net_recv_locked(p_sock, buf, len, flags);
}
/*
* 函数功能:关闭 Socket内部版本绕过消息队列供 netTask 直接使用)
* 入口参数p_sock - Socket 控制块指针 net_sock_t *
* 返回值0 - 关闭成功 int
* -1 - 关闭失败 int
* 限定条件:必须在 netTask 上下文中调用p_sock->in_use == 1
* 函数说明:直接操作 Socket 控制块不经过消息队列。TCP Socket 先断开连接再释放控制块
*/
int net_close_sock(net_sock_t *p_sock) {
if (p_sock == NULL) {
s_net_errno = NET_ERR_BADF;
return -1;
}
return net_close_locked(p_sock);
}
/*
* 函数功能:注册 Socket 事件回调函数
* 入口参数sockfd - Socket 描述符 int >= 0 && < NET_MAX_SOCKETS
* cb - 回调函数指针 net_event_cb_t可为 NULL 取消注册)
* arg - 用户自定义参数指针 void *
* 返回值0 - 注册成功 int
* -1 - 注册失败 int
* 限定条件Socket 已创建且 in_use == 1net_init() 已调用
*/
int net_set_event_cb(int sockfd, net_event_cb_t cb, void *arg) {
net_sock_t *p_sock;
/* 参数检<E695B0>?*/
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
p_sock = &s_net_socks[sockfd];
if (!p_sock->in_use) {
s_net_errno = NET_ERR_BADF;
return -1;
}
p_sock->event_cb = cb;
p_sock->event_arg = arg;
return 0;
}
/*
* 函数功能:获取 Socket 最后一次操作返回的错误码
* 返回值当前错误码值NET_OK=0, NET_ERR_xxx=-N int
* 限定条件:无
* 函数说明:每次 net_*() API 调用失败后,错误码被设置。调用成功时不自动清零
*/
int net_get_errno(void) {
return s_net_errno;
}
/*
* 函数功能:将 IP 地址字符串转为网络字节序
*/
uint32_t net_inet_addr(const char *cp) {
uint32_t addr = 0;
uint32_t val;
int i;
if (cp == NULL) {
return 0;
}
for (i = 0; i < 4; i++) {
val = 0;
while (*cp >= '0' && *cp <= '9') {
val = val * 10 + (*cp - '0');
cp++;
}
addr |= (val << (i * 8));
if (*cp == '.') {
cp++;
}
}
return NET_htonl(addr);
}
/*
* 函数功能将网络字节<E5AD97>?IP 转为字符<E5AD97>? */
char *net_inet_ntoa(uint32_t addr, char *buf) {
uint32_t naddr = NET_ntohl(addr);
if (buf == NULL) {
return NULL;
}
sprintf(buf, "%lu.%lu.%lu.%lu",
(unsigned long)(naddr & 0xFF),
(unsigned long)((naddr >> 8) & 0xFF),
(unsigned long)((naddr >> 16) & 0xFF),
(unsigned long)((naddr >> 24) & 0xFF));
return buf;
}
/*
* 函数功能:端口字节序转换(主机序 -> 网络序)
*/
uint16_t net_htons(uint16_t hostshort) {
return NET_htons(hostshort);
}
/*
* 函数功能:端口字节序转换(网络序 -> 主机序)
*/
uint16_t net_ntohs(uint16_t netshort) {
return NET_ntohs(netshort);
}
/*
* 函数功能IP 地址字节序转换主机<E4B8BB>?-> 网络序)
*/
uint32_t net_htonl(uint32_t hostlong) {
return NET_htonl(hostlong);
}
/*
* 函数功能IP 地址字节序转换网络<E7BD91>?-> 主机序)
*/
uint32_t net_ntohl(uint32_t netlong) {
return NET_ntohl(netlong);
}
/*
* 私有函数实现<E5AE9E>? */
/*
* 函数功能分配空<E9858D>?Socket
* 返回值Socket 索引失败返<E8B4A5>?-1
*/
static int alloc_socket(void) {
int i;
for (i = 0; i < NET_MAX_SOCKETS; i++) {
if (!s_net_socks[i].in_use) {
return i;
}
}
return -1;
}
/*
* 函数功能处理连接事<E68EA5>? */
static void handle_connect_event(net_sock_t *p_sock) {
if (p_sock->state == NET_SOCK_STATE_LISTENING) {
if (p_sock->standalone_accept) {
/* 独立监听模式PASV收到 CONNECT 中断 = 自身有连接到达,转为 ESTABLISHED */
DBG_INFO("sock%d standalone accept", p_sock->ch395_sock);
uint8_t remote[6];
ch395f_get_remot_ipp(p_sock->ch395_sock, remote);
memcpy(p_sock->remote_ip_arr, remote, 4);
p_sock->remote_ip = ((uint32_t)remote[0]) |
((uint32_t)remote[1] << 8) |
((uint32_t)remote[2] << 16) |
((uint32_t)remote[3] << 24);
p_sock->remote_port = (uint16_t)(remote[4] | (remote[5] << 8));
p_sock->state = NET_SOCK_STATE_ESTABLISHED;
p_sock->send_ready = 1;
ch395f_set_keepalive_enable(p_sock->ch395_sock, 1);
fire_event(p_sock, NET_EVENT_CONNECTED);
} else {
/* 多连接模式:监听 Socket 收到 CONNECT 中断 = 有新连接被分配到数据 Socket
* Socket 0 自身保持 LISTENING不需要改变状态 */
fire_event(p_sock, NET_EVENT_CONNECTED);
}
}
else if (!p_sock->in_use) {
/* CH395F 自动打开的数<E79A84>?Socket多连接模式首次收到 CONNECT 中断 */
int sock_idx = (int)(p_sock - s_net_socks);
p_sock->ch395_sock = (uint8_t)sock_idx;
DBG_INFO("sock%d AUTO-OPENED, CONNECTED", p_sock->ch395_sock);
uint8_t remote[6];
ch395f_get_remot_ipp(p_sock->ch395_sock, remote);
memcpy(p_sock->remote_ip_arr, remote, 4);
p_sock->remote_ip = ((uint32_t)remote[0]) |
((uint32_t)remote[1] << 8) |
((uint32_t)remote[2] << 16) |
((uint32_t)remote[3] << 24);
p_sock->remote_port = (uint16_t)(remote[4] | (remote[5] << 8));
p_sock->in_use = 1;
p_sock->state = NET_SOCK_STATE_ESTABLISHED;
p_sock->send_ready = 1;
ch395f_set_keepalive_enable(p_sock->ch395_sock, 1);
fire_event(p_sock, NET_EVENT_CONNECTED);
}
else if (p_sock->state == NET_SOCK_STATE_CONNECTING) {
/* TCP Client 连接成功 */
uint8_t remote[6];
ch395f_get_remot_ipp(p_sock->ch395_sock, remote);
memcpy(p_sock->remote_ip_arr, remote, 4);
p_sock->remote_ip = ((uint32_t)remote[0]) |
((uint32_t)remote[1] << 8) |
((uint32_t)remote[2] << 16) |
((uint32_t)remote[3] << 24);
p_sock->remote_port = (uint16_t)(remote[4] | (remote[5] << 8));
p_sock->state = NET_SOCK_STATE_ESTABLISHED;
ch395f_set_keepalive_enable(p_sock->ch395_sock, 1);
fire_event(p_sock, NET_EVENT_CONNECTED);
}
else if (p_sock->state == NET_SOCK_STATE_TCP_ACCEPT) {
/* 数据 Socket 被分配了连接 */
DBG_INFO("data sock%d TCP_ACCEPT -> CONNECTED", p_sock->ch395_sock);
uint8_t remote[6];
ch395f_get_remot_ipp(p_sock->ch395_sock, remote);
memcpy(p_sock->remote_ip_arr, remote, 4);
p_sock->remote_ip = ((uint32_t)remote[0]) |
((uint32_t)remote[1] << 8) |
((uint32_t)remote[2] << 16) |
((uint32_t)remote[3] << 24);
p_sock->remote_port = (uint16_t)(remote[4] | (remote[5] << 8));
p_sock->state = NET_SOCK_STATE_ESTABLISHED;
p_sock->send_ready = 1;
ch395f_set_keepalive_enable(p_sock->ch395_sock, 1);
fire_event(p_sock, NET_EVENT_CONNECTED);
}
}
/*
* 函数功能:处理断开事件
* 函数说明CH395F <20>?DISCONNECT 中断后自动关<E58AA8>?Socket<EFBC88>?FUN_PARA_FLAG_SOCKET_CLOSE=0
* 必须重新 OPEN_SOCKET + TCP_LISTEN 才能接受新连<E696B0>? */
static void handle_disconnect_event(net_sock_t *p_sock) {
if (p_sock->state == NET_SOCK_STATE_LISTENING) {
DBG_ERROR("WARNING: listen sock%d got disconnect", p_sock->ch395_sock);
}
else if (p_sock->state == NET_SOCK_STATE_ESTABLISHED) {
/* CH395F 自动关闭<E585B3>?Socket恢复为未使用状<E794A8>?*/
DBG_INFO("sock%d DISCONNECTED, back to idle", p_sock->ch395_sock);
memset(p_sock->remote_ip_arr, 0, 4);
p_sock->remote_port = 0;
p_sock->send_ready = 1;
p_sock->state = NET_SOCK_STATE_TCP_ACCEPT;
fire_event(p_sock, NET_EVENT_DISCONNECTED);
} else if (p_sock->state == NET_SOCK_STATE_TCP_ACCEPT) {
memset(p_sock->remote_ip_arr, 0, 4);
p_sock->remote_port = 0;
p_sock->send_ready = 1;
} else if (p_sock->state != NET_SOCK_STATE_CLOSED) {
/* 未预期的断开 */
DBG_ERROR("sock%d disconnect in state %d", p_sock->ch395_sock, p_sock->state);
fire_event(p_sock, NET_EVENT_DISCONNECTED);
}
}
/*
* 函数功能处理数据接收事<E694B6>? */
static void handle_recv_event(net_sock_t *p_sock) {
uint16_t recv_len = ch395f_get_recv_len(p_sock->ch395_sock);
if (recv_len > 0) {
fire_event(p_sock, NET_EVENT_DATA_RECEIVED);
}
}
/*
* 函数功能处理发送完成事<E68890>? */
static void handle_send_event(net_sock_t *p_sock) {
fire_event(p_sock, NET_EVENT_SEND_COMPLETE);
}
/*
* 函数功能处理超时事<E697B6>? * 函数说明CH395F <20>?TIMEOUT 中断后同样自动关<E58AA8>?Socket<65>? * 需要重新打开并恢复监<E5A48D>? */
static void handle_timeout_event(net_sock_t *p_sock) {
if (p_sock->state == NET_SOCK_STATE_CONNECTING) {
/* TCP Client 连接超时 */
DBG_ERROR("sock%d CONNECT TIMEOUT", p_sock->ch395_sock);
p_sock->state = NET_SOCK_STATE_CREATED;
}
else if (p_sock->state == NET_SOCK_STATE_ESTABLISHED) {
if (p_sock->standalone_accept) {
/* 独立监听模式PASV断开后释放 Socket不清零整个控制块net_recv 中的任务仍需读 state */
DBG_INFO("sock%d DISCONNECTED, releasing", p_sock->ch395_sock);
p_sock->state = NET_SOCK_STATE_CLOSED;
p_sock->in_use = 0;
fire_event(p_sock, NET_EVENT_DISCONNECTED);
} else {
/* CH395F 自动关闭了 Socket恢复为未使用状态 */
DBG_INFO("sock%d DISCONNECTED, back to idle", p_sock->ch395_sock);
memset(p_sock->remote_ip_arr, 0, 4);
p_sock->remote_port = 0;
p_sock->send_ready = 1;
p_sock->state = NET_SOCK_STATE_TCP_ACCEPT;
fire_event(p_sock, NET_EVENT_DISCONNECTED);
}
}
else if (p_sock->state == NET_SOCK_STATE_LISTENING) {
/* 监听超时(异常情况) */
DBG_ERROR("sock%d LISTEN TIMEOUT", p_sock->ch395_sock);
}
fire_event(p_sock, NET_EVENT_TIMEOUT);
}
/*
* 函数功能触发事件回<E4BBB6>? */
static void fire_event(net_sock_t *p_sock, net_event_t event) {
if (p_sock->event_cb != NULL) {
p_sock->event_cb(p_sock->ch395_sock, event, p_sock->event_arg);
}
}
/*
* 函数功能<EFBC9A>?IP 地址字符串为数组
*/
static void parse_ip_string(const char *str, uint8_t *ip_arr) {
uint32_t val;
int i;
if (str == NULL || ip_arr == NULL) {
return;
}
for (i = 0; i < 4; i++) {
val = 0;
while (*str >= '0' && *str <= '9') {
val = val * 10 + (*str - '0');
str++;
}
ip_arr[i] = (uint8_t)val;
if (*str == '.') {
str++;
}
}
}
/*
* 函数功能<EFBC9A>?Socket 控制块指针内部使用<E4BDBF>? */
net_sock_t *net_get_sock(int sockfd) {
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
return NULL;
}
if (!s_net_socks[sockfd].in_use) {
return NULL;
}
return &s_net_socks[sockfd];
}
/*
* 函数功能:获取 Socket 本地地址IP + Port
* 入口参数sockfd - socket 描述符 int
* addr - 输出:本地地址 struct net_sockaddr *
* addrlen - 输入输出:地址结构体长度 int *
* 返回值0 - 成功,-1 - 失败 int
* 限定条件socket 已创建或已绑定
* 函数说明:返回 sin_family + sin_port网络序+ sin_addr网络序从 net_init 缓存的 s_local_ip
*/
int net_getsockname(int sockfd, struct net_sockaddr *addr, int *addrlen) {
if (sockfd < 0 || sockfd >= NET_MAX_SOCKETS) {
s_net_errno = NET_ERR_BADF;
return -1;
}
net_sock_t *p_sock = &s_net_socks[sockfd];
if (!p_sock->in_use && p_sock->state == NET_SOCK_STATE_CLOSED) {
s_net_errno = NET_ERR_BADF;
return -1;
}
if (addr == NULL || addrlen == NULL || *addrlen < (int)sizeof(struct net_sockaddr_in)) {
s_net_errno = NET_ERR_INVAL;
return -1;
}
struct net_sockaddr_in *p_addr_in = (struct net_sockaddr_in *)addr;
memset(p_addr_in, 0, sizeof(struct net_sockaddr_in));
p_addr_in->sin_family = NET_AF_INET;
p_addr_in->sin_port = net_htons(p_sock->local_port);
p_addr_in->sin_addr.s_addr = ((uint32_t)s_local_ip[0]) |
((uint32_t)s_local_ip[1] << 8) |
((uint32_t)s_local_ip[2] << 16) |
((uint32_t)s_local_ip[3] << 24);
*addrlen = sizeof(struct net_sockaddr_in);
return 0;
}