282 lines
8.3 KiB
C
282 lines
8.3 KiB
C
/*
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* @brief LPC13xx UART chip driver
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*
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* @note
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* Copyright(C) NXP Semiconductors, 2012
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* All rights reserved.
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*
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* @par
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* Software that is described herein is for illustrative purposes only
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* which provides customers with programming information regarding the
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* LPC products. This software is supplied "AS IS" without any warranties of
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* any kind, and NXP Semiconductors and its licensor disclaim any and
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* all warranties, express or implied, including all implied warranties of
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* merchantability, fitness for a particular purpose and non-infringement of
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* intellectual property rights. NXP Semiconductors assumes no responsibility
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* or liability for the use of the software, conveys no license or rights under any
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* patent, copyright, mask work right, or any other intellectual property rights in
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* or to any products. NXP Semiconductors reserves the right to make changes
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* in the software without notification. NXP Semiconductors also makes no
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* representation or warranty that such application will be suitable for the
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* specified use without further testing or modification.
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*
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* @par
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* Permission to use, copy, modify, and distribute this software and its
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* documentation is hereby granted, under NXP Semiconductors' and its
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* licensor's relevant copyrights in the software, without fee, provided that it
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* is used in conjunction with NXP Semiconductors microcontrollers. This
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* copyright, permission, and disclaimer notice must appear in all copies of
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* this code.
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*/
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#include "chip.h"
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/*****************************************************************************
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* Private types/enumerations/variables
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****************************************************************************/
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/*****************************************************************************
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* Public types/enumerations/variables
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****************************************************************************/
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/*****************************************************************************
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* Private functions
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****************************************************************************/
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/*****************************************************************************
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* Public functions
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****************************************************************************/
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/* Initializes the pUART peripheral */
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void Chip_UART_Init(LPC_USART_T *pUART)
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{
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Chip_Clock_EnablePeriphClock(SYSCTL_CLOCK_UART0);
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Chip_Clock_SetUARTClockDiv(1);
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/* Enable FIFOs by default, reset them */
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Chip_UART_SetupFIFOS(pUART, (UART_FCR_FIFO_EN | UART_FCR_RX_RS | UART_FCR_TX_RS));
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/* Default 8N1, with DLAB disabled */
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Chip_UART_ConfigData(pUART, (UART_LCR_WLEN8 | UART_LCR_SBS_1BIT | UART_LCR_PARITY_DIS));
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/* Disable fractional divider */
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pUART->FDR = 0x10;
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}
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/* De-initializes the pUART peripheral */
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void Chip_UART_DeInit(LPC_USART_T *pUART)
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{
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(void) pUART;
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Chip_Clock_DisablePeriphClock(SYSCTL_CLOCK_UART0);
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}
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/* Transmit a byte array through the UART peripheral (non-blocking) */
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int Chip_UART_Send(LPC_USART_T *pUART, const void *data, int numBytes)
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{
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int sent = 0;
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uint8_t *p8 = (uint8_t *) data;
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/* Send until the transmit FIFO is full or out of bytes */
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while ((sent < numBytes) &&
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((Chip_UART_ReadLineStatus(pUART) & UART_LSR_THRE) != 0)) {
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Chip_UART_SendByte(pUART, *p8);
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p8++;
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sent++;
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}
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return sent;
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}
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/* Transmit a byte array through the UART peripheral (blocking) */
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int Chip_UART_SendBlocking(LPC_USART_T *pUART, const void *data, int numBytes)
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{
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int pass, sent = 0;
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uint8_t *p8 = (uint8_t *) data;
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while (numBytes > 0) {
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pass = Chip_UART_Send(pUART, p8, numBytes);
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numBytes -= pass;
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sent += pass;
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p8 += pass;
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}
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return sent;
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}
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/* Read data through the UART peripheral (non-blocking) */
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int Chip_UART_Read(LPC_USART_T *pUART, void *data, int numBytes)
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{
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int readBytes = 0;
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uint8_t *p8 = (uint8_t *) data;
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/* Send until the transmit FIFO is full or out of bytes */
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while ((readBytes < numBytes) &&
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((Chip_UART_ReadLineStatus(pUART) & UART_LSR_RDR) != 0)) {
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*p8 = Chip_UART_ReadByte(pUART);
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p8++;
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readBytes++;
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}
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return readBytes;
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}
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/* Read data through the UART peripheral (blocking) */
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int Chip_UART_ReadBlocking(LPC_USART_T *pUART, void *data, int numBytes)
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{
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int pass, readBytes = 0;
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uint8_t *p8 = (uint8_t *) data;
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while (readBytes < numBytes) {
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pass = Chip_UART_Read(pUART, p8, numBytes);
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numBytes -= pass;
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readBytes += pass;
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p8 += pass;
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}
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return readBytes;
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}
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/* Determines and sets best dividers to get a target bit rate */
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uint32_t Chip_UART_SetBaud(LPC_USART_T *pUART, uint32_t baudrate)
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{
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uint32_t div, divh, divl, clkin;
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/* Determine UART clock in rate without FDR */
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clkin = Chip_Clock_GetMainClockRate();
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div = clkin / (baudrate * 16);
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/* High and low halves of the divider */
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divh = div / 256;
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divl = div - (divh * 256);
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Chip_UART_EnableDivisorAccess(pUART);
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Chip_UART_SetDivisorLatches(pUART, divl, divh);
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Chip_UART_DisableDivisorAccess(pUART);
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/* Fractional FDR alreadt setup for 1 in UART init */
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return clkin / div;
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}
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/* UART receive-only interrupt handler for ring buffers */
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void Chip_UART_RXIntHandlerRB(LPC_USART_T *pUART, RINGBUFF_T *pRB)
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{
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/* New data will be ignored if data not popped in time */
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while (Chip_UART_ReadLineStatus(pUART) & UART_LSR_RDR) {
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uint8_t ch = Chip_UART_ReadByte(pUART);
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RingBuffer_Insert(pRB, &ch);
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}
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}
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/* UART transmit-only interrupt handler for ring buffers */
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void Chip_UART_TXIntHandlerRB(LPC_USART_T *pUART, RINGBUFF_T *pRB)
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{
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uint8_t ch;
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/* Fill FIFO until full or until TX ring buffer is empty */
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while ((Chip_UART_ReadLineStatus(pUART) & UART_LSR_THRE) != 0 &&
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RingBuffer_Pop(pRB, &ch)) {
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Chip_UART_SendByte(pUART, ch);
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}
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}
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/* Populate a transmit ring buffer and start UART transmit */
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uint32_t Chip_UART_SendRB(LPC_USART_T *pUART, RINGBUFF_T *pRB, const void *data, int bytes)
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{
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uint32_t ret;
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uint8_t *p8 = (uint8_t *) data;
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/* Don't let UART transmit ring buffer change in the UART IRQ handler */
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Chip_UART_IntDisable(pUART, UART_IER_THREINT);
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/* Move as much data as possible into transmit ring buffer */
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ret = RingBuffer_InsertMult(pRB, p8, bytes);
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Chip_UART_TXIntHandlerRB(pUART, pRB);
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/* Add additional data to transmit ring buffer if possible */
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ret += RingBuffer_InsertMult(pRB, (p8 + ret), (bytes - ret));
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/* Enable UART transmit interrupt */
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Chip_UART_IntEnable(pUART, UART_IER_THREINT);
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return ret;
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}
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/* Copy data from a receive ring buffer */
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int Chip_UART_ReadRB(LPC_USART_T *pUART, RINGBUFF_T *pRB, void *data, int bytes)
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{
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(void) pUART;
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return RingBuffer_PopMult(pRB, (uint8_t *) data, bytes);
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}
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/* UART receive/transmit interrupt handler for ring buffers */
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void Chip_UART_IRQRBHandler(LPC_USART_T *pUART, RINGBUFF_T *pRXRB, RINGBUFF_T *pTXRB)
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{
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/* Handle transmit interrupt if enabled */
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if (pUART->IER & UART_IER_THREINT) {
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Chip_UART_TXIntHandlerRB(pUART, pTXRB);
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/* Disable transmit interrupt if the ring buffer is empty */
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if (RingBuffer_IsEmpty(pTXRB)) {
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Chip_UART_IntDisable(pUART, UART_IER_THREINT);
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}
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}
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/* Handle receive interrupt */
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Chip_UART_RXIntHandlerRB(pUART, pRXRB);
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}
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/* Determines and sets best dividers to get a target baud rate */
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uint32_t Chip_UART_SetBaudFDR(LPC_USART_T *pUART, uint32_t baudrate)
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{
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uint32_t uClk;
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uint32_t dval, mval;
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uint32_t dl;
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uint32_t rate16 = 16 * baudrate;
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uint32_t actualRate = 0;
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/* Get Clock rate */
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uClk = Chip_Clock_GetMainClockRate();
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/* The fractional is calculated as (PCLK % (16 * Baudrate)) / (16 * Baudrate)
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* Let's make it to be the ratio DivVal / MulVal
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*/
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dval = uClk % rate16;
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/* The PCLK / (16 * Baudrate) is fractional
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* => dval = pclk % rate16
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* mval = rate16;
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* now mormalize the ratio
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* dval / mval = 1 / new_mval
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* new_mval = mval / dval
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* new_dval = 1
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*/
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if (dval > 0) {
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mval = rate16 / dval;
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dval = 1;
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/* In case mval still bigger then 4 bits
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* no adjustment require
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*/
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if (mval > 12) {
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dval = 0;
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}
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}
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dval &= 0xf;
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mval &= 0xf;
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dl = uClk / (rate16 + rate16 *dval / mval);
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/* Update UART registers */
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Chip_UART_EnableDivisorAccess(pUART);
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Chip_UART_SetDivisorLatches(pUART, UART_LOAD_DLL(dl), UART_LOAD_DLM(dl));
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Chip_UART_DisableDivisorAccess(pUART);
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/* Set best fractional divider */
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pUART->FDR = (UART_FDR_MULVAL(mval) | UART_FDR_DIVADDVAL(dval));
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/* Return actual baud rate */
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actualRate = uClk / (16 * dl + 16 * dl * dval / mval);
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return actualRate;
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}
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