422 lines
11 KiB
C
422 lines
11 KiB
C
/*
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* Copyright (c) 2006-2022, RT-Thread Development Team
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*
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* SPDX-License-Identifier: Apache-2.0
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*
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* Change Logs:
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* Date Author Notes
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* 2022-02-16 Tuber first version
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*/
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#include <rtthread.h>
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#include <rtdevice.h>
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#include "board.h"
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#include "drv_uart.h"
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#ifdef BSP_USING_UART
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struct uart_device
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{
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struct rt_serial_device serial;
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char *name;
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};
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#ifdef BSP_USING_UART0
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static struct uart_device uart_device0 =
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{
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.name = "uart0",
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};
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#endif
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#ifdef BSP_USING_UART1
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static struct uart_device uart_device1 =
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{
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.name = "uart1",
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};
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#endif
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#ifdef BSP_USING_UART2
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static struct uart_device uart_device2 =
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{
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.name = "uart2",
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};
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#endif
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#ifdef BSP_USING_UART3
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static struct uart_device uart_device3 =
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{
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.name = "uart3",
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};
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#endif
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static rt_err_t uart_configure(struct rt_serial_device *serial, struct serial_configure *cfg)
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{
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UINT32 x;
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UINT8V R8_UARTx_FCR = 0, R8_UARTx_LCR = 0, R8_UARTx_IER = 0, R8_UARTx_DIV = 0;
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UINT16V R16_UARTx_DL = 0;
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struct uart_device *uart_device = serial->parent.user_data;
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//设置波特率
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x = 10 * GetSysClock() / 8 / cfg->baud_rate;
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x = (x + 5) / 10;
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R16_UARTx_DL = (UINT16)x;
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//设置数据长度
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switch (cfg->data_bits)
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{
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case DATA_BITS_5:
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//R8_UARTx_LCR |= 0x00;
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break;
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case DATA_BITS_6:
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R8_UARTx_LCR |= 0x01;
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break;
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case DATA_BITS_7:
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R8_UARTx_LCR |= 0x02;
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break;
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case DATA_BITS_8:
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default:
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R8_UARTx_LCR |= 0x03;
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break;
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}
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//设置停止位
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switch (cfg->stop_bits)
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{
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case STOP_BITS_2:
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R8_UARTx_LCR |= 0x04;
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break;
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case STOP_BITS_1:
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default:
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//R8_UARTx_LCR |= 0x00;
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break;
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}
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//设置校验位
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switch (cfg->parity)
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{
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case PARITY_ODD:
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R8_UART1_LCR |= R8_LCR_PAR_EN;
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//R8_UART1_LCR |= 0x00;
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break;
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case PARITY_EVEN:
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R8_UART1_LCR |= R8_LCR_PAR_EN;
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R8_UART1_LCR |= 0x10;
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break;
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case PARITY_NONE:
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default:
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//R8_UART1_LCR &= (~R8_UART1_LCR);
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break;
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}
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#ifdef BSP_USING_UART0
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if (uart_device == &uart_device0)
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{
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GPIOB_SetBits(GPIO_Pin_7);
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GPIOB_ModeCfg(GPIO_Pin_4, GPIO_ModeIN_PU); // RXD-配置上拉输入
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GPIOB_ModeCfg(GPIO_Pin_7, GPIO_ModeOut_PP_5mA); // TXD-配置推挽输出,注意先让IO口输出高电平
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R16_UART0_DL = R16_UARTx_DL;
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R8_UART0_FCR = (2 << 6) | RB_FCR_TX_FIFO_CLR | RB_FCR_RX_FIFO_CLR | RB_FCR_FIFO_EN; // FIFO打开,触发点4字节
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R8_UART0_LCR = R8_UARTx_LCR;
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R8_UART0_IER = RB_IER_TXD_EN;
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R8_UART0_DIV = 1;
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}
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#endif
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#ifdef BSP_USING_UART1
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if (uart_device == &uart_device1)
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{
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GPIOA_SetBits(GPIO_Pin_9);
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GPIOA_ModeCfg(GPIO_Pin_8, GPIO_ModeIN_PU); // RXD-配置上拉输入
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GPIOA_ModeCfg(GPIO_Pin_9, GPIO_ModeOut_PP_5mA); // TXD-配置推挽输出,注意先让IO口输出高电平
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R16_UART1_DL = R16_UARTx_DL;
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R8_UART1_FCR = (2 << 6) | RB_FCR_TX_FIFO_CLR | RB_FCR_RX_FIFO_CLR | RB_FCR_FIFO_EN; // FIFO打开,触发点4字节
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R8_UART1_LCR = R8_UARTx_LCR;
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R8_UART1_IER = RB_IER_TXD_EN;
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R8_UART1_DIV = 1;
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}
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#endif
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#ifdef BSP_USING_UART2
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if (uart_device == &uart_device2)
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{
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GPIOA_SetBits(GPIO_Pin_7);
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GPIOA_ModeCfg(GPIO_Pin_6, GPIO_ModeIN_PU); // RXD-配置上拉输入
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GPIOA_ModeCfg(GPIO_Pin_7, GPIO_ModeOut_PP_5mA); // TXD-配置推挽输出,注意先让IO口输出高电平
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R16_UART2_DL = R16_UARTx_DL;
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R8_UART2_FCR = (2 << 6) | RB_FCR_TX_FIFO_CLR | RB_FCR_RX_FIFO_CLR | RB_FCR_FIFO_EN; // FIFO打开,触发点4字节
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R8_UART2_LCR = R8_UARTx_LCR;
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R8_UART2_IER = RB_IER_TXD_EN;
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R8_UART2_DIV = 1;
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}
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#endif
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#ifdef BSP_USING_UART3
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if (uart_device == &uart_device3)
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{
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GPIOA_SetBits(GPIO_Pin_5);
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GPIOA_ModeCfg(GPIO_Pin_4, GPIO_ModeIN_PU); // RXD-配置上拉输入
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GPIOA_ModeCfg(GPIO_Pin_5, GPIO_ModeOut_PP_5mA); // TXD-配置推挽输出,注意先让IO口输出高电平
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R16_UART3_DL = R16_UARTx_DL;
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R8_UART3_FCR = (2 << 6) | RB_FCR_TX_FIFO_CLR | RB_FCR_RX_FIFO_CLR | RB_FCR_FIFO_EN; // FIFO打开,触发点4字节
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R8_UART3_LCR = R8_UARTx_LCR;
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R8_UART3_IER = RB_IER_TXD_EN;
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R8_UART3_DIV = 1;
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}
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#endif
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return RT_EOK;
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}
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static rt_err_t uart_control(struct rt_serial_device *serial, int cmd, void *arg)
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{
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struct uart_device *uart_device = serial->parent.user_data;
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switch (cmd)
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{
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case RT_DEVICE_CTRL_CLR_INT:
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#ifdef BSP_USING_UART0
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if (uart_device == &uart_device0)
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{
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UART0_INTCfg(DISABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART0_IRQn);
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}
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#endif
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#ifdef BSP_USING_UART1
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if (uart_device == &uart_device1)
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{
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UART1_INTCfg(DISABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART1_IRQn);
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}
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#endif
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#ifdef BSP_USING_UART2
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if (uart_device == &uart_device2)
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{
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UART2_INTCfg(DISABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART2_IRQn);
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}
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#endif
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#ifdef BSP_USING_UART3
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if (uart_device == &uart_device3)
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{
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UART3_INTCfg(DISABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART3_IRQn);
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}
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#endif
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break;
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case RT_DEVICE_CTRL_SET_INT:
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#ifdef BSP_USING_UART0
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if (uart_device == &uart_device0)
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{
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UART0_ByteTrigCfg(UART_1BYTE_TRIG);
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UART0_INTCfg(ENABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART0_IRQn);
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}
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#endif
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#ifdef BSP_USING_UART1
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if (uart_device == &uart_device1)
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{
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UART1_ByteTrigCfg(UART_1BYTE_TRIG);
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UART1_INTCfg(ENABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART1_IRQn);
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}
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#endif
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#ifdef BSP_USING_UART2
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if (uart_device == &uart_device2)
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{
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UART2_ByteTrigCfg(UART_1BYTE_TRIG);
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UART2_INTCfg(ENABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART2_IRQn);
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}
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#endif
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#ifdef BSP_USING_UART3
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if (uart_device == &uart_device3)
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{
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UART3_ByteTrigCfg(UART_1BYTE_TRIG);
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UART3_INTCfg(ENABLE, RB_IER_RECV_RDY);
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NVIC_EnableIRQ(UART3_IRQn);
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}
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#endif
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break;
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default:
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break;
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}
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return RT_EOK;
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}
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static int uart_putc(struct rt_serial_device *serial, char ch)
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{
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struct uart_device *uart_device = serial->parent.user_data;
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#ifdef BSP_USING_UART0
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if (uart_device == &uart_device0)
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{
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while (R8_UART0_TFC >= UART_FIFO_SIZE);
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R8_UART0_THR = ch;
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}
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#endif
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#ifdef BSP_USING_UART1
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if (uart_device == &uart_device1)
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{
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while (R8_UART1_TFC >= UART_FIFO_SIZE);
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R8_UART1_THR = ch;
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}
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#endif
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#ifdef BSP_USING_UART2
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if (uart_device == &uart_device2)
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{
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while (R8_UART2_TFC >= UART_FIFO_SIZE);
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R8_UART2_THR = ch;
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}
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#endif
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#ifdef BSP_USING_UART3
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if (uart_device == &uart_device3)
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{
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while (R8_UART3_TFC >= UART_FIFO_SIZE);
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R8_UART3_THR = ch;
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}
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#endif
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return 1;
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}
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static int uart_getc(struct rt_serial_device *serial)
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{
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struct uart_device *uart_device = serial->parent.user_data;
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#ifdef BSP_USING_UART0
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if (uart_device == &uart_device0)
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{
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if (R8_UART0_RFC > 0)
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{
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return R8_UART0_RBR;
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}
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}
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#endif
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#ifdef BSP_USING_UART1
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if (uart_device == &uart_device1)
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{
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if (R8_UART1_RFC > 0)
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{
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return R8_UART1_RBR;
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}
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}
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#endif
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#ifdef BSP_USING_UART2
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if (uart_device == &uart_device2)
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{
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if (R8_UART2_RFC > 0)
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{
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return R8_UART2_RBR;
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}
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}
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#endif
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#ifdef BSP_USING_UART3
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if (uart_device == &uart_device3)
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{
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if (R8_UART3_RFC > 0)
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{
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return R8_UART3_RBR;
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}
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}
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#endif
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return -1;
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}
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static const struct rt_uart_ops uart_ops =
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{
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.configure = uart_configure,
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.control = uart_control,
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.putc = uart_putc,
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.getc = uart_getc,
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.dma_transmit = RT_NULL,
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};
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void uart_isr(struct rt_serial_device *serial, UINT8 flag)
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{
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switch (flag)
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{
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case UART_II_RECV_RDY: // 数据达到设置触发点
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rt_hw_serial_isr(serial, RT_SERIAL_EVENT_RX_IND);
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break;
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case UART_II_RECV_TOUT: // 接收超时,暂时一帧数据接收完成
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rt_hw_serial_isr(serial, RT_SERIAL_EVENT_RX_TIMEOUT);
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break;
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case UART_II_THR_EMPTY: // 发送缓存区空,可继续发送
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rt_hw_serial_isr(serial, RT_SERIAL_EVENT_TX_DONE);
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break;
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default:
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break;
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}
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}
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#ifdef BSP_USING_UART0
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void UART0_IRQHandler(void)
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{
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rt_interrupt_enter();
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uart_isr(&uart_device0.serial, UART0_GetITFlag());
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rt_interrupt_leave();
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}
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#endif
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#ifdef BSP_USING_UART1
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void UART1_IRQHandler(void)
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{
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rt_interrupt_enter();
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uart_isr(&uart_device1.serial, UART1_GetITFlag());
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rt_interrupt_leave();
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}
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#endif
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#ifdef BSP_USING_UART2
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void UART2_IRQHandler(void)
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{
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rt_interrupt_enter();
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uart_isr(&uart_device2.serial, UART2_GetITFlag());
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rt_interrupt_leave();
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}
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#endif
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#ifdef BSP_USING_UART3
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void UART3_IRQHandler(void)
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{
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rt_interrupt_enter();
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uart_isr(&uart_device3.serial, UART3_GetITFlag());
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rt_interrupt_leave();
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}
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#endif
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int rt_hw_uart_init(void)
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{
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struct serial_configure config = RT_SERIAL_CONFIG_DEFAULT;
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#ifdef BSP_USING_UART0
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uart_device0.serial.config = config;
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uart_device0.serial.ops = &uart_ops;
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rt_hw_serial_register(&uart_device0.serial, uart_device0.name,
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RT_DEVICE_FLAG_RDWR | RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_INT_TX,
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&uart_device0);
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#endif
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#ifdef BSP_USING_UART1
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uart_device1.serial.config = config;
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uart_device1.serial.ops = &uart_ops;
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rt_hw_serial_register(&uart_device1.serial, uart_device1.name,
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RT_DEVICE_FLAG_RDWR | RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_INT_TX,
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&uart_device1);
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#endif
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#ifdef BSP_USING_UART2
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uart_device2.serial.config = config;
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uart_device2.serial.ops = &uart_ops;
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rt_hw_serial_register(&uart_device2.serial, uart_device2.name,
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RT_DEVICE_FLAG_RDWR | RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_INT_TX,
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&uart_device2);
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#endif
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#ifdef BSP_USING_UART3
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uart_device3.serial.config = config;
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uart_device3.serial.ops = &uart_ops;
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rt_hw_serial_register(&uart_device3.serial, uart_device3.name,
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RT_DEVICE_FLAG_RDWR | RT_DEVICE_FLAG_INT_RX | RT_DEVICE_FLAG_INT_TX,
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&uart_device3);
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#endif
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return RT_EOK;
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}
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#endif /* BSP_USING_UART */
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