1 /*
2 * Copyright (c) 2022-2024, Xiaohua Semiconductor Co., Ltd.
3 *
4 * SPDX-License-Identifier: Apache-2.0
5 *
6 * Change Logs:
7 * Date Author Notes
8 * 2024-12-30 CDT first version
9 */
10
11 /*
12 * 程序清单:这是一个 串口 设备使用例程
13 * 例程导出了 uart_sample_v1 命令到控制终端
14 * 命令解释:命令第二个参数是要使用的串口设备名称,为空则使用默认的串口设备(uart1)
15 * 程序功能:通过串口输出字符串:
16 * drv_usart: drv_usart_v1
17 * commnucation:using DMA/interrupt,
18 * uart_ch: uartx (x对应测试通道)
19 * 输出输入的字符
20 *
21 * 命令调用格式:
22 * uart1 中断,命令调用格式:uart_sample_v1 uart1 int
23 * uart1 DMA,命令调用格式:uart_sample_v1 uart1 dma
24 *
25 * 修改rtconfig.h
26 * #define RT_SERIAL_USING_DMA
27 * #define BSP_USING_UART
28 * #define BSP_USING_UART1
29 * #define BSP_UART1_RX_USING_DMA
30 * #define BSP_UART1_TX_USING_DMA
31 * #define BSP_USING_UART2
32 * #define BSP_UART2_RX_USING_DMA
33 * #define BSP_UART2_TX_USING_DMA
34 * #define BSP_USING_UART5
35 *
36 */
37
38 #include <rtthread.h>
39 #include <rtdevice.h>
40
41 #if defined(HC32F460) && defined(BSP_USING_UART2)
42 #define SAMPLE_DEFAULT_UART_NAME "uart2"
43 #elif defined(HC32F4A0) && defined (BSP_USING_UART6)
44 #define SAMPLE_DEFAULT_UART_NAME "uart6"
45 #elif defined(HC32F448) && defined (BSP_USING_UART1)
46 #define SAMPLE_DEFAULT_UART_NAME "uart1"
47 #elif defined(HC32F472) && defined (BSP_USING_UART1)
48 #define SAMPLE_DEFAULT_UART_NAME "uart1"
49 #elif defined(HC32F4A8) && defined (BSP_USING_UART6)
50 #define SAMPLE_DEFAULT_UART_NAME "uart6"
51 #elif defined(HC32F334) && defined (BSP_USING_UART1)
52 #define SAMPLE_DEFAULT_UART_NAME "uart1"
53 #endif
54
55 #if defined(SAMPLE_DEFAULT_UART_NAME)
56
57 /* 串口接收消息结构*/
58 struct rx_msg
59 {
60 rt_device_t dev;
61 rt_size_t size;
62 };
63
64 /* 消息队列控制块 */
65 static struct rt_messagequeue rx_mq;
66
67 /* 用于接收消息的信号量 */
68 static struct rt_semaphore rx_sem;
69
70 static rt_device_t serial;
71 static struct serial_configure config = RT_SERIAL_CONFIG_DEFAULT;
72
73 /* DMA接收数据回调函数 */
uart_input_dma(rt_device_t dev,rt_size_t size)74 static rt_err_t uart_input_dma(rt_device_t dev, rt_size_t size)
75 {
76 struct rx_msg msg;
77 rt_err_t result;
78
79 msg.dev = dev;
80 msg.size = size;
81
82 result = rt_mq_send(&rx_mq, &msg, sizeof(msg));
83 if (result == -RT_EFULL)
84 {
85 /* 消息队列满 */
86 rt_kprintf("message queue full!\n");
87 }
88 return result;
89 }
90
91 /* INT接收数据回调函数 */
uart_input_int(rt_device_t dev,rt_size_t size)92 static rt_err_t uart_input_int(rt_device_t dev, rt_size_t size)
93 {
94 /* 串口接收到数据后产生中断,调用此回调函数,然后发送接收信号量 */
95 rt_sem_release(&rx_sem);
96
97 return RT_EOK;
98 }
99
100 /* 发送完成回调函数 */
uart_ouput(rt_device_t dev,void * buffer)101 static rt_err_t uart_ouput(rt_device_t dev, void *buffer)
102 {
103 return RT_EOK;
104 }
105
serial_thread_entry_dma(void * parameter)106 static void serial_thread_entry_dma(void *parameter)
107 {
108 struct rx_msg msg;
109 rt_err_t result;
110 rt_uint32_t rx_length;
111 static char rx_buffer[256];
112 static rt_uint32_t buf_size = sizeof(rx_buffer);
113 static rt_uint32_t put_index = 0;
114
115 while (1)
116 {
117 rt_memset(&msg, 0, sizeof(msg));
118 /* 从消息队列中读取消息*/
119 result = rt_mq_recv(&rx_mq, &msg, sizeof(msg), RT_WAITING_FOREVER);
120 if (result > 0U)
121 {
122 /* 从串口读取数据*/
123 while (msg.size)
124 {
125 if (msg.size > (buf_size - put_index))
126 {
127 rx_length = rt_device_read(msg.dev, 0, rx_buffer + put_index, buf_size - put_index);
128 msg.size -= rx_length;
129 }
130 else
131 {
132 rx_length = rt_device_read(msg.dev, 0, rx_buffer + put_index, msg.size);
133 msg.size = 0UL;
134 }
135 rt_device_write(serial, 0, rx_buffer + put_index, rx_length);
136 put_index += rx_length;
137 put_index %= sizeof(rx_buffer);
138 }
139 }
140 }
141 }
142
serial_thread_entry_int(void * parameter)143 static void serial_thread_entry_int(void *parameter)
144 {
145 char ch;
146
147 while (1)
148 {
149 /* 从串口读取一个字节的数据,没有读取到则等待接收信号量 */
150 while (rt_device_read(serial, -1, &ch, 1) != 1)
151 {
152 /* 阻塞等待接收信号量,等到信号量后再次读取数据 */
153 rt_sem_take(&rx_sem, RT_WAITING_FOREVER);
154 }
155 /* 读取到的数据通过串口错位输出 */
156 rt_device_write(serial, 0, &ch, 1);
157 }
158 }
159
uart_sample_v1(int argc,char * argv[])160 int uart_sample_v1(int argc, char *argv[])
161 {
162 rt_thread_t thread;
163 rt_err_t ret = RT_EOK;
164 rt_size_t n;
165 rt_err_t open_flag = 0UL;
166 static char uart_name[RT_NAME_MAX];
167 static char comm_mode[RT_NAME_MAX];
168 const static char comm_mode_int[] = "int";
169 const static char comm_mode_dma[] = "dma";
170 const static char comm_info_dma[] = "\r\n drv_version: drv_usart_v1 \r\n communication: using DMA \r\n uart_ch: ";
171 const static char comm_info_int[] = "\r\n drv_version: drv_usart_v1 \r\n communication: using interrupt \r\n uart_ch: ";
172 static char comm_info[150];
173
174 rt_memset(uart_name, 0, sizeof(uart_name));
175 rt_memset(comm_mode, 0, sizeof(comm_mode));
176
177 if (argc == 1)
178 {
179 rt_strncpy(uart_name, SAMPLE_DEFAULT_UART_NAME, RT_NAME_MAX);
180 rt_strncpy(comm_mode, comm_mode_int, sizeof(comm_mode_int));
181 }
182 else if (argc == 2)
183 {
184 rt_strncpy(uart_name, argv[1], RT_NAME_MAX);
185 rt_strncpy(comm_mode, comm_mode_int, sizeof(comm_mode_int));
186 }
187 else if (argc == 3)
188 {
189 rt_strncpy(uart_name, argv[1], RT_NAME_MAX);
190 rt_strncpy(comm_mode, argv[2], RT_NAME_MAX);
191 }
192 else
193 {
194 rt_kprintf("argc error!\n");
195 return -RT_ERROR;
196 }
197
198 /* 查找系统中的串口设备 */
199 serial = rt_device_find(uart_name);
200 if (!serial)
201 {
202 rt_kprintf("find %s failed!\n", uart_name);
203 return -RT_ERROR;
204 }
205
206 /* modify configure */
207 config.baud_rate = BAUD_RATE_115200; //baudrate 115200
208 config.data_bits = DATA_BITS_8; //data bit 8
209 config.stop_bits = STOP_BITS_1; //stop bit 1
210 config.parity = PARITY_NONE;
211 rt_device_control(serial, RT_DEVICE_CTRL_CONFIG, &config);
212
213 if (0 == rt_strncmp(comm_mode, comm_mode_dma, 3))
214 {
215 static char msg_pool[256U];
216 /* 初始化消息队列 */
217 rt_mq_init(&rx_mq, "rx_mq",
218 msg_pool, /* 存放消息的缓冲区 */
219 sizeof(struct rx_msg), /* 一条消息的最大长度 */
220 sizeof(msg_pool), /* 存放消息的缓冲区大小 */
221 RT_IPC_FLAG_FIFO); /* 如果有多个线程等待,按照先来先得到的方法分配消息 */
222
223 /* 以DMA接收和发送模式打开串口设备 */
224 open_flag |= RT_DEVICE_FLAG_DMA_RX | RT_DEVICE_FLAG_DMA_TX;
225 rt_device_open(serial, open_flag);
226
227 /* 设置回调函数 */
228 rt_device_set_rx_indicate(serial, uart_input_dma);
229 rt_device_set_tx_complete(serial, uart_ouput);
230
231 /* 发送字符串 */
232 n = rt_strlen(comm_info_dma);
233 rt_strncpy(comm_info, comm_info_dma, n);
234 rt_strncpy(comm_info + n, uart_name, rt_strlen(uart_name));
235 rt_device_write(serial, 0, comm_info, rt_strlen(comm_info));
236
237 /* 创建 serial 线程 */
238 thread = rt_thread_create("serial", serial_thread_entry_dma, RT_NULL, 1024, 25, 10);
239 }
240 else if (0 == rt_strncmp(comm_mode, comm_mode_int, 3))
241 {
242 /* 以中断模式打开串口设备 */
243 open_flag = RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_INT_TX;
244 rt_sem_init(&rx_sem, "rx_sem", 0, RT_IPC_FLAG_FIFO);
245
246 rt_device_open(serial, open_flag);
247
248 /* 设置回调函数 */
249 rt_device_set_rx_indicate(serial, uart_input_int);
250 rt_device_set_tx_complete(serial, uart_ouput);
251
252 /* 发送字符串 */
253 n = rt_strlen(comm_info_int);
254 rt_strncpy(comm_info, comm_info_int, n);
255 rt_strncpy(comm_info + n, uart_name, rt_strlen(uart_name));
256 rt_device_write(serial, 0, comm_info, rt_strlen(comm_info));
257
258 /* 创建 serial 线程 */
259 thread = rt_thread_create("serial", serial_thread_entry_int, RT_NULL, 1024, 25, 10);
260 }
261 else
262 {
263 rt_kprintf("communication mode error, please input cmd: uart_sample_v1 %s int or uart_sample_v1 uartx dma!\n", uart_name);
264 return -RT_ERROR;
265 }
266
267 if (thread != RT_NULL)
268 {
269 rt_thread_startup(thread);
270 }
271 else
272 {
273 ret = -RT_ERROR;
274 }
275
276 return ret;
277 }
278 /* 导出到 msh 命令列表中 */
279 MSH_CMD_EXPORT(uart_sample_v1, uart device sample);
280
281 #endif
282