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https://github.com/RIOT-OS/RIOT.git
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219 lines
5.8 KiB
C
219 lines
5.8 KiB
C
/*
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* Copyright (C) 2014 Freie Universität Berlin
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*
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* This file is subject to the terms and conditions of the GNU Lesser General
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* Public License v2.1. See the file LICENSE in the top level directory for more
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* details.
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*/
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/**
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* @ingroup cpu_lpc1768
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* @ingroup drivers_periph_uart
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* @{
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*
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* @file
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* @brief Implementation of the low-level UART driver for the LPC1768
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*
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* @author Hauke Petersen <hauke.petersen@fu-berlin.de>
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* @}
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*/
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#include <stdint.h>
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#include "cpu.h"
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#include "periph/uart.h"
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#include "periph_conf.h"
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/**
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* @brief UART device configurations
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*/
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static uart_isr_ctx_t config[UART_NUMOF];
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static int init_base(uart_t uart, uint32_t baudrate);
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int uart_init(uart_t uart, uint32_t baudrate, uart_rx_cb_t rx_cb, void *arg)
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{
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int res = init_base(uart, baudrate);
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if (res != UART_OK) {
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return res;
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}
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/* save callbacks */
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config[uart].rx_cb = rx_cb;
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config[uart].arg = arg;
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switch (uart) {
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#if UART_0_EN
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case UART_0:
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/* configure and enable global device interrupts */
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NVIC_SetPriority(UART_0_IRQ, UART_IRQ_PRIO);
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NVIC_EnableIRQ(UART_0_IRQ);
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/* enable RX interrupt */
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UART_0_DEV->IER |= (1 << 0);
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break;
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#endif
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#if UART_1_EN
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case UART_1:
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/* configure and enable global device interrupts */
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NVIC_SetPriority(UART_1_IRQ, UART_IRQ_PRIO);
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NVIC_EnableIRQ(UART_1_IRQ);
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/* enable RX interrupt */
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UART_1_DEV->IER |= (1 << 0);
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break;
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#endif
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}
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return UART_OK;
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}
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static int init_base(uart_t uart, uint32_t baudrate)
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{
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switch (uart) {
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#if UART_0_EN
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case UART_0:
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/* this implementation only supports 115200 baud */
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if (baudrate != 115200) {
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return UART_NOBAUD;
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}
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/* power on UART device and select peripheral clock */
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UART_0_CLKEN();
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UART_0_CLKSEL();
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/* set mode to 8N1 and enable access to divisor latch */
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UART_0_DEV->LCR = ((0x3 << 0) | (1 << 7));
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/* set baud rate registers (fixed for now) */
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UART_0_DEV->DLM = 0;
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UART_0_DEV->DLL = 13;
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/* enable FIFOs */
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UART_0_DEV->FCR = 1;
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/* select and configure the pin for RX */
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UART_0_RX_PINSEL &= ~(0x3 << (UART_0_RX_PIN * 2));
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UART_0_RX_PINSEL |= (UART_0_AF << (UART_0_RX_PIN * 2));
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UART_0_RX_PINMODE &= ~(0x3 << (UART_0_RX_PIN * 2));
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UART_0_RX_PINMODE |= (0x2 << (UART_0_RX_PIN * 2));
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/* select and configure the pin for TX */
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UART_0_TX_PINSEL &= ~(0x3 << (UART_0_TX_PIN * 2));
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UART_0_TX_PINSEL |= (UART_0_AF << (UART_0_TX_PIN * 2));
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UART_0_TX_PINMODE &= ~(0x3 << (UART_0_TX_PIN * 2));
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UART_0_TX_PINMODE |= (0x2 << (UART_0_TX_PIN * 2));
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/* disable access to divisor latch */
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UART_0_DEV->LCR &= ~(1 << 7);
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break;
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#endif
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#if UART_1_EN
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case UART_1:
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/* this implementation only supports 115200 baud */
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if (baudrate != 115200) {
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return UART_NOBAUD;
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}
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/* power on UART device and select peripheral clock */
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UART_1_CLKEN();
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UART_1_CLKSEL();
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/* set mode to 8N1 and enable access to divisor latch */
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UART_1_DEV->LCR = ((0x3 << 0) | (1 << 7));
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/* set baud rate registers (fixed for now) */
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UART_1_DEV->DLM = 0;
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UART_1_DEV->DLL = 13;
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/* enable FIFOs */
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UART_1_DEV->FCR = 1;
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/* select and configure the pin for RX */
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UART_1_RX_PINSEL &= ~(0x3 << (UART_1_RX_PIN * 2));
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UART_1_RX_PINSEL |= (UART_1_AF << (UART_1_RX_PIN * 2));
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UART_1_RX_PINMODE &= ~(0x3 << (UART_1_RX_PIN * 2));
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UART_1_RX_PINMODE |= (0x2 << (UART_1_RX_PIN * 2));
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/* select and configure the pin for TX */
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UART_1_TX_PINSEL &= ~(0x3 << (UART_1_TX_PIN * 2));
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UART_1_TX_PINSEL |= (UART_1_AF << (UART_1_TX_PIN * 2));
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UART_1_TX_PINMODE &= ~(0x3 << (UART_1_TX_PIN * 2));
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UART_1_TX_PINMODE |= (0x2 << (UART_1_TX_PIN * 2));
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/* disable access to divisor latch */
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UART_1_DEV->LCR &= ~(1 << 7);
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break;
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#endif
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default:
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return UART_NODEV;
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}
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return UART_OK;
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}
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void uart_write(uart_t uart, const uint8_t *data, size_t len)
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{
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LPC_UART_TypeDef *dev;
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switch (uart) {
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#if UART_0_EN
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case UART_0:
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dev = (LPC_UART_TypeDef *)UART_0_DEV;
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break;
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#endif
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#if UART_1_EN
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case UART_1:
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dev = (LPC_UART_TypeDef *)UART_1_DEV;
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break;
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#endif
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default:
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return;
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}
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for (size_t i = 0; i < len; i++) {
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while (!(dev->LSR & (1 << 5))); /* wait for THRE bit to be set */
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dev->THR = data[i];
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}
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}
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void uart_poweron(uart_t uart)
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{
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switch (uart) {
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#if UART_0_EN
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case UART_0:
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UART_0_CLKEN();
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break;
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#endif
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#if UART_1_EN
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case UART_1:
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UART_1_CLKEN();
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break;
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#endif
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}
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}
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void uart_poweroff(uart_t uart)
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{
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switch (uart) {
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#if UART_0_EN
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case UART_0:
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UART_0_CLKDIS();
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break;
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#endif
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#if UART_1_EN
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case UART_1:
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UART_1_CLKDIS();
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break;
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#endif
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}
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}
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#if UART_0_EN
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void UART_0_ISR(void)
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{
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if (UART_0_DEV->LSR & (1 << 0)) { /* is RDR flag set? */
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uint8_t data = (uint8_t)UART_0_DEV->RBR;
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config[UART_0].rx_cb(config[UART_0].arg, data);
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}
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cortexm_isr_end();
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}
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#endif
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#if UART_1_EN
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void UART_1_ISR(void)
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{
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if (UART_1_DEV->LSR & (1 << 0)) { /* is RDR flag set? */
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uint8_t data = (uint8_t)UART_1_DEV->RBR;
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config[UART_1].rx_cb(config[UART_1].arg, data);
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}
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cortexm_isr_end();
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}
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#endif
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