forked from espressif/arduino-esp32
Fixes UART pin setting + adds CTS/RTS HW Flow Control (#6272)
* fixes setPins and begin to keep rx/tx unmodified * adds Hardware Flow Control mode and CTS/RTS pin setting * adds Hardware Flow Control mode and CTS/RTS pin setting * adds Hardware Flow Control mode and CTS/RTS pin setting * adds Hardware Flow Control mode and CTS/RTS pin setting * Code Review
This commit is contained in:
@ -6,6 +6,7 @@
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#include "pins_arduino.h"
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#include "pins_arduino.h"
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#include "HardwareSerial.h"
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#include "HardwareSerial.h"
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#include "soc/soc_caps.h"
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#include "soc/soc_caps.h"
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#include "driver/uart.h"
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#ifndef SOC_RX0
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#ifndef SOC_RX0
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#if CONFIG_IDF_TARGET_ESP32
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#if CONFIG_IDF_TARGET_ESP32
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@ -114,7 +115,6 @@ void serialEventRun(void)
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}
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}
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#endif
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#endif
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HardwareSerial::HardwareSerial(int uart_nr) : _uart_nr(uart_nr), _uart(NULL), _rxBufferSize(256) {}
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HardwareSerial::HardwareSerial(int uart_nr) : _uart_nr(uart_nr), _uart(NULL), _rxBufferSize(256) {}
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void HardwareSerial::begin(unsigned long baud, uint32_t config, int8_t rxPin, int8_t txPin, bool invert, unsigned long timeout_ms, uint8_t rxfifo_full_thrhd)
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void HardwareSerial::begin(unsigned long baud, uint32_t config, int8_t rxPin, int8_t txPin, bool invert, unsigned long timeout_ms, uint8_t rxfifo_full_thrhd)
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@ -123,28 +123,39 @@ void HardwareSerial::begin(unsigned long baud, uint32_t config, int8_t rxPin, in
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log_e("Serial number is invalid, please use numers from 0 to %u", SOC_UART_NUM - 1);
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log_e("Serial number is invalid, please use numers from 0 to %u", SOC_UART_NUM - 1);
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return;
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return;
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}
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}
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// First Time or after end() --> set default Pins
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if (!uartIsDriverInstalled(_uart)) {
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switch (_uart_nr) {
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case UART_NUM_0:
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rxPin = rxPin < 0 ? SOC_RX0 : rxPin;
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txPin = txPin < 0 ? SOC_TX0 : txPin;
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break;
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#if SOC_UART_NUM > 1 // may save some flash bytes...
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case UART_NUM_1:
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rxPin = rxPin < 0 ? RX1 : rxPin;
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txPin = txPin < 0 ? TX1 : txPin;
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break;
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#endif
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#if SOC_UART_NUM > 2 // may save some flash bytes...
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case UART_NUM_2:
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rxPin = rxPin < 0 ? RX2 : rxPin;
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txPin = txPin < 0 ? TX2 : txPin;
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break;
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#endif
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default:
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log_e("Bad UART Number");
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return;
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}
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}
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if(_uart) {
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if(_uart) {
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// in this case it is a begin() over a previous begin() - maybe to change baud rate
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// in this case it is a begin() over a previous begin() - maybe to change baud rate
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// thus do not disable debug output
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// thus do not disable debug output
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end(false);
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end(false);
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}
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}
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if(_uart_nr == 0 && rxPin < 0 && txPin < 0) {
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rxPin = SOC_RX0;
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txPin = SOC_TX0;
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}
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#if SOC_UART_NUM > 1
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if(_uart_nr == 1 && rxPin < 0 && txPin < 0) {
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rxPin = RX1;
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txPin = TX1;
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}
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#endif
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#if SOC_UART_NUM > 2
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if(_uart_nr == 2 && rxPin < 0 && txPin < 0) {
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rxPin = RX2;
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txPin = TX2;
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}
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#endif
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// IDF UART driver keeps Pin setting on restarting. Negative Pin number will keep it unmodified.
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_uart = uartBegin(_uart_nr, baud ? baud : 9600, config, rxPin, txPin, _rxBufferSize, invert, rxfifo_full_thrhd);
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_uart = uartBegin(_uart_nr, baud ? baud : 9600, config, rxPin, txPin, _rxBufferSize, invert, rxfifo_full_thrhd);
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if (!baud) {
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if (!baud) {
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// using baud rate as zero, forces it to try to detect the current baud rate in place
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// using baud rate as zero, forces it to try to detect the current baud rate in place
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@ -280,9 +291,16 @@ void HardwareSerial::setRxInvert(bool invert)
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uartSetRxInvert(_uart, invert);
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uartSetRxInvert(_uart, invert);
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}
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}
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void HardwareSerial::setPins(uint8_t rxPin, uint8_t txPin)
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// negative Pin value will keep it unmodified
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void HardwareSerial::setPins(int8_t rxPin, int8_t txPin, int8_t ctsPin, int8_t rtsPin)
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{
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{
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uartSetPins(_uart, rxPin, txPin);
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uartSetPins(_uart, rxPin, txPin, ctsPin, rtsPin);
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}
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// Enables or disables Hardware Flow Control using RTS and/or CTS pins (must use setAllPins() before)
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void HardwareSerial::setHwFlowCtrlMode(uint8_t mode, uint8_t threshold)
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{
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uartSetHwFlowCtrlMode(_uart, mode, threshold);
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}
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}
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size_t HardwareSerial::setRxBufferSize(size_t new_size) {
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size_t HardwareSerial::setRxBufferSize(size_t new_size) {
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@ -107,7 +107,13 @@ public:
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void setDebugOutput(bool);
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void setDebugOutput(bool);
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void setRxInvert(bool);
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void setRxInvert(bool);
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void setPins(uint8_t rxPin, uint8_t txPin);
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// Negative Pin Number will keep it unmodified, thus this function can set individual pins
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// SetPins shall be called after Serial begin()
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void setPins(int8_t rxPin, int8_t txPin, int8_t ctsPin = -1, int8_t rtsPin = -1);
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// Enables or disables Hardware Flow Control using RTS and/or CTS pins (must use setAllPins() before)
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void setHwFlowCtrlMode(uint8_t mode = HW_FLOWCTRL_CTS_RTS, uint8_t threshold = 64); // 64 is half FIFO Length
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size_t setRxBufferSize(size_t new_size);
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size_t setRxBufferSize(size_t new_size);
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protected:
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protected:
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@ -155,15 +155,27 @@ bool uartIsDriverInstalled(uart_t* uart)
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return false;
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return false;
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}
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}
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void uartSetPins(uart_t* uart, uint8_t rxPin, uint8_t txPin)
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// Valid pin UART_PIN_NO_CHANGE is defined to (-1)
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// Negative Pin Number will keep it unmodified, thus this function can set individual pins
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void uartSetPins(uart_t* uart, int8_t rxPin, int8_t txPin, int8_t ctsPin, int8_t rtsPin)
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{
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{
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if(uart == NULL || rxPin >= SOC_GPIO_PIN_COUNT || txPin >= SOC_GPIO_PIN_COUNT) {
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if(uart == NULL) {
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return;
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return;
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}
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}
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UART_MUTEX_LOCK();
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UART_MUTEX_LOCK();
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ESP_ERROR_CHECK(uart_set_pin(uart->num, txPin, rxPin, UART_PIN_NO_CHANGE, UART_PIN_NO_CHANGE));
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// IDF uart_set_pin() will issue necessary Error Message and take care of all GPIO Number validation.
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UART_MUTEX_UNLOCK();
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uart_set_pin(uart->num, txPin, rxPin, ctsPin, rtsPin);
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UART_MUTEX_UNLOCK();
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}
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//
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void uartSetHwFlowCtrlMode(uart_t *uart, uint8_t mode, uint8_t threshold) {
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if(uart == NULL) {
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return;
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}
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// IDF will issue corresponding error message when mode or threshold are wrong and prevent crashing
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// IDF will check (mode > HW_FLOWCTRL_CTS_RTS || threshold >= SOC_UART_FIFO_LEN)
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uart_set_hw_flow_ctrl(uart->num, (uart_hw_flowcontrol_t) mode, threshold);
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}
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}
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@ -173,10 +185,6 @@ uart_t* uartBegin(uint8_t uart_nr, uint32_t baudrate, uint32_t config, int8_t rx
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return NULL;
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return NULL;
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}
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}
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if(rxPin == -1 && txPin == -1) {
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return NULL;
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}
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uart_t* uart = &_uart_bus_array[uart_nr];
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uart_t* uart = &_uart_bus_array[uart_nr];
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if (uart_is_driver_installed(uart_nr)) {
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if (uart_is_driver_installed(uart_nr)) {
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@ -48,6 +48,14 @@ extern "C" {
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#define SERIAL_7O2 0x800003b
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#define SERIAL_7O2 0x800003b
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#define SERIAL_8O2 0x800003f
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#define SERIAL_8O2 0x800003f
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// These are Hardware Flow Contol possible usage
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// equivalent to UDF enum uart_hw_flowcontrol_t from
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// https://github.com/espressif/esp-idf/blob/master/components/hal/include/hal/uart_types.h#L75-L81
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#define HW_FLOWCTRL_DISABLE 0x0 // disable HW Flow Control
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#define HW_FLOWCTRL_RTS 0x1 // use only RTS PIN for HW Flow Control
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#define HW_FLOWCTRL_CTS 0x2 // use only CTS PIN for HW Flow Control
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#define HW_FLOWCTRL_CTS_RTS 0x3 // use both CTS and RTS PIN for HW Flow Control
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struct uart_struct_t;
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struct uart_struct_t;
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typedef struct uart_struct_t uart_t;
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typedef struct uart_struct_t uart_t;
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@ -76,7 +84,12 @@ void uartSetDebug(uart_t* uart);
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int uartGetDebug();
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int uartGetDebug();
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bool uartIsDriverInstalled(uart_t* uart);
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bool uartIsDriverInstalled(uart_t* uart);
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void uartSetPins(uart_t* uart, uint8_t rxPin, uint8_t txPin);
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// Negative Pin Number will keep it unmodified, thus this function can set individual pins
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void uartSetPins(uart_t* uart, int8_t rxPin, int8_t txPin, int8_t ctsPin, int8_t rtsPin);
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// Enables or disables HW Flow Control function -- needs also to set CTS and/or RTS pins
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void uartSetHwFlowCtrlMode(uart_t *uart, uint8_t mode, uint8_t threshold);
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void uartStartDetectBaudrate(uart_t *uart);
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void uartStartDetectBaudrate(uart_t *uart);
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unsigned long uartDetectBaudrate(uart_t *uart);
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unsigned long uartDetectBaudrate(uart_t *uart);
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