* fix(uart): ci uart test fail on esp32s2 after uart break * fix(uart): ci error with change pins test on ESP32 * fix(uart): ci test with perimgr using esp32 fails * feat(uart): avoid electrical noise before setting pins * fix(uart_ci): fixes the UART CI sketch due to IDF 5.3 pull up change * fix(uart_ci): keeping previous formatting and applying changes * feat(uart_ci): trick for passing esp32 wokwi ci test Wokwi ESP32 fails with the pinMode() in line 56|58 Real device with Arduino Core 3.1.2 and 3.2 needs it to fix the issue. This patch will skip the pinMode() when compiling with Wokwi and make it pass the CI test case. * feat(uart_ci): reverting the wokwi patch, once it didn't make any difference * fix(wokwi): Change CPU freq to 80 * fix(wokwi): Change CPU freq to 120 * ci(pre-commit): Apply automatic fixes * fix(uart_ci): fixes a couple typos in commentatries --------- Co-authored-by: Lucas Saavedra Vaz <32426024+lucasssvaz@users.noreply.github.com> Co-authored-by: Me No Dev <me-no-dev@users.noreply.github.com> Co-authored-by: pre-commit-ci-lite[bot] <117423508+pre-commit-ci-lite[bot]@users.noreply.github.com>
556 lines
17 KiB
C++
556 lines
17 KiB
C++
/* UART test
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*
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* This test is using UART0 (Serial) only for reporting test status and helping with the auto
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* baudrate detection test.
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* The other serials are used for testing.
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*/
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// Default pins:
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// | Name | ESP32 | S2 | S3 | C3 | C6 | H2 | P4 |
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// UART0 RX | SOC_RX0 | 3 | 44 | 44 | 20 | 17 | 23 | 38 |
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// UART0 TX | SOC_TX0 | 1 | 43 | 43 | 21 | 16 | 24 | 37 |
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// UART1 RX | RX1 | 26 | 4 | 15 | 18 | 4 | 0 | 11 |
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// UART1 TX | TX1 | 27 | 5 | 16 | 19 | 5 | 1 | 10 |
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// UART2 RX | RX2 | 4 | -- | 19 | -- | -- | -- | -- |
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// UART2 TX | TX2 | 25 | -- | 20 | -- | -- | -- | -- |
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/*
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* For each UART:
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*
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* terminal
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* | ^
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* v UART0 |
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* RX ^ TX
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* |
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* report status
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* |
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* TX <---> RX
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* UARTx
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*/
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#include <vector>
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#include <unity.h>
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#include "HardwareSerial.h"
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#include "esp_rom_gpio.h"
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#include "Wire.h"
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/* Utility defines */
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#define TEST_UART_NUM (uart_test_configs.size())
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/* Utility classes */
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class UARTTestConfig {
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public:
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int uart_num;
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HardwareSerial &serial;
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int peeked_char;
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int8_t default_rx_pin;
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int8_t default_tx_pin;
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String recv_msg;
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UARTTestConfig(int num, HardwareSerial &serial_ref, int8_t rx_pin, int8_t tx_pin)
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: uart_num(num), serial(serial_ref), peeked_char(-1), default_rx_pin(rx_pin), default_tx_pin(tx_pin), recv_msg("") {}
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void begin(unsigned long baudrate) {
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// pinMode will force enabling the internal pullup resistor (IDF 5.3.2 Change)
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pinMode(default_rx_pin, INPUT_PULLUP);
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serial.begin(baudrate, SERIAL_8N1, default_rx_pin, default_tx_pin);
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while (!serial) {
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delay(10);
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}
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}
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void end() {
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serial.end();
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}
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void reset_buffers() {
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recv_msg = "";
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peeked_char = -1;
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}
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void transmit_and_check_msg(const String &msg_append, bool perform_assert = true) {
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reset_buffers();
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delay(100);
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serial.print("Hello from Serial" + String(uart_num) + " " + msg_append);
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serial.flush();
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delay(100);
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if (perform_assert) {
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TEST_ASSERT_EQUAL_STRING(("Hello from Serial" + String(uart_num) + " " + msg_append).c_str(), recv_msg.c_str());
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log_d("UART%d received message: %s\n", uart_num, recv_msg.c_str());
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}
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}
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void onReceive() {
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char c;
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size_t available = serial.available();
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if (peeked_char == -1) {
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peeked_char = serial.peek();
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}
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while (available--) {
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c = (char)serial.read();
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recv_msg += c;
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}
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}
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};
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/* Utility global variables */
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[[maybe_unused]]
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static const int NEW_RX1 = 9;
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[[maybe_unused]]
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static const int NEW_TX1 = 10;
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std::vector<UARTTestConfig *> uart_test_configs;
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/* Utility functions */
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extern "C" int8_t uart_get_RxPin(uint8_t uart_num);
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extern "C" int8_t uart_get_TxPin(uint8_t uart_num);
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/* Tasks */
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// This task is used to send a message after a delay to test the auto baudrate detection
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void task_delayed_msg(void *pvParameters) {
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HardwareSerial &selected_serial = uart_test_configs.size() == 1 ? Serial : Serial1;
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delay(2000);
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selected_serial.println("Hello to detect baudrate");
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selected_serial.flush();
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vTaskDelete(NULL);
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}
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/* Unity functions */
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// This function is automatically called by unity before each test is run
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void setUp(void) {
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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//log_d("Setup internal loop-back from and back to UART%d TX >> UART%d RX", config.uart_num, config.uart_num);
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config.begin(115200);
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config.serial.onReceive([&config]() {
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config.onReceive();
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});
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uart_internal_loopback(config.uart_num, uart_get_RxPin(config.uart_num));
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}
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}
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// This function is automatically called by unity after each test is run
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void tearDown(void) {
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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config.end();
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}
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}
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/* Test functions */
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// This test checks if a message can be transmitted and received correctly using the default settings
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void basic_transmission_test(void) {
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log_d("Performing basic transmission test");
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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config.transmit_and_check_msg("");
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}
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Serial.println("Basic transmission test successful");
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}
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// This test checks if the baudrate can be changed and if the message can be transmitted and received correctly after the change
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void change_baudrate_test(void) {
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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log_d("Changing baudrate of UART%d to 9600", config.uart_num);
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//Baudrate error should be within 2% of the target baudrate
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config.serial.updateBaudRate(9600);
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TEST_ASSERT_UINT_WITHIN(192, 9600, config.serial.baudRate());
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log_d("Sending string on UART%d using 9600 baudrate", config.uart_num);
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config.transmit_and_check_msg("using 9600 baudrate");
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config.serial.begin(115200);
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TEST_ASSERT_UINT_WITHIN(2304, 115200, config.serial.baudRate());
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log_d("Sending string on UART%d using 115200 baudrate", config.uart_num);
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config.transmit_and_check_msg("using 115200 baudrate");
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}
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Serial.println("Change baudrate test successful");
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}
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// This test checks if the buffers can be resized properly
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void resize_buffers_test(void) {
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size_t ret;
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log_d("Trying to resize RX buffer while running.");
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ret = Serial1.setRxBufferSize(256);
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TEST_ASSERT_EQUAL(0, ret);
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log_d("Trying to resize TX buffer while running.");
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ret = Serial1.setTxBufferSize(256);
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TEST_ASSERT_EQUAL(0, ret);
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Serial1.end();
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log_d("Trying to resize RX buffer while stopped.");
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ret = Serial1.setRxBufferSize(256);
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TEST_ASSERT_EQUAL(256, ret);
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log_d("Trying to resize TX buffer while stopped.");
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ret = Serial1.setTxBufferSize(256);
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TEST_ASSERT_EQUAL(256, ret);
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Serial.println("Buffer resize test successful");
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}
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// This test checks if the begin function can be called when the UART is already running
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void begin_when_running_test(void) {
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log_d("Trying to set up serial twice");
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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// Calling twice should not crash
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config.begin(115200);
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config.begin(115200);
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}
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Serial.println("Begin when running test successful");
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}
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// This test checks if the end function can be called when the UART is already stopped
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void end_when_stopped_test(void) {
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log_d("Trying to end serial twice");
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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// Calling twice should not crash
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config.end();
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config.end();
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}
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Serial.println("End when stopped test successful");
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}
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// This test checks if all the UART methods work when the UART is running
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void enabled_uart_calls_test(void) {
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bool boolean_ret;
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long int integer_ret;
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uint8_t test_buf[1];
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log_d("Checking if Serial 1 can set the RX timeout while running");
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boolean_ret = Serial1.setRxTimeout(1);
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TEST_ASSERT_EQUAL(true, boolean_ret);
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log_d("Checking if Serial 1 can set the RX FIFO full interrupt threshold while running");
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boolean_ret = Serial1.setRxFIFOFull(120);
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TEST_ASSERT_EQUAL(true, boolean_ret);
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log_d("Checking if Serial 1 is writable while running");
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boolean_ret = Serial1.availableForWrite();
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TEST_ASSERT_EQUAL(true, boolean_ret);
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log_d("Checking if Serial 1 is peekable while running");
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TEST_ASSERT_GREATER_OR_EQUAL(0, uart_test_configs[0]->peeked_char);
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log_d("Checking if Serial 1 can read bytes while running");
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integer_ret = Serial1.readBytes(test_buf, 1);
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TEST_ASSERT_GREATER_OR_EQUAL(0, integer_ret);
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log_d("Checking if Serial 1 can set the flow control while running");
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boolean_ret = Serial1.setHwFlowCtrlMode(UART_HW_FLOWCTRL_DISABLE, 64);
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TEST_ASSERT_EQUAL(true, boolean_ret);
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log_d("Checking if Serial 1 can set the mode while running");
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boolean_ret = Serial1.setMode(UART_MODE_UART);
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TEST_ASSERT_EQUAL(true, boolean_ret);
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// Tests without return values. Just check for crashes.
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log_d("Checking if Serial 1 event queue can be reset while running");
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Serial1.eventQueueReset();
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log_d("Checking if Serial 1 debug output can be enabled while running");
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Serial1.setDebugOutput(true);
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Serial1.setDebugOutput(false);
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log_d("Checking if Serial 1 RX can be inverted while running");
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Serial1.setRxInvert(true);
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Serial1.setRxInvert(false);
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Serial.println("Enabled UART calls test successful");
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}
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// This test checks if all the UART methods work when the UART is stopped
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void disabled_uart_calls_test(void) {
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bool boolean_ret;
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int integer_ret;
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uint8_t test_buf[1];
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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config.end();
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}
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log_d("Checking if Serial 1 can set the RX timeout when stopped");
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boolean_ret = Serial1.setRxTimeout(1);
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TEST_ASSERT_EQUAL(false, boolean_ret);
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log_d("Checking if Serial 1 can set the RX FIFO full interrupt threshold when stopped");
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boolean_ret = Serial1.setRxFIFOFull(128);
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TEST_ASSERT_EQUAL(false, boolean_ret);
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log_d("Checking if Serial 1 is available when stopped");
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boolean_ret = Serial1.available();
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TEST_ASSERT_EQUAL(false, boolean_ret);
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log_d("Checking if Serial 1 is writable when stopped");
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boolean_ret = Serial1.availableForWrite();
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TEST_ASSERT_EQUAL(false, boolean_ret);
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log_d("Checking if Serial 1 is peekable when stopped");
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integer_ret = Serial1.peek();
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TEST_ASSERT_EQUAL(-1, integer_ret);
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log_d("Checking if Serial 1 is readable when stopped");
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integer_ret = Serial1.read();
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TEST_ASSERT_EQUAL(-1, integer_ret);
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log_d("Checking if Serial 1 can read bytes when stopped");
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integer_ret = Serial1.readBytes(test_buf, 1);
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TEST_ASSERT_EQUAL(0, integer_ret);
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log_d("Checking if Serial 1 can retrieve the baudrate when stopped");
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integer_ret = Serial1.baudRate();
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TEST_ASSERT_EQUAL(0, integer_ret);
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log_d("Checking if Serial 1 can set the flow control when stopped");
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boolean_ret = Serial1.setHwFlowCtrlMode(UART_HW_FLOWCTRL_DISABLE, 64);
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TEST_ASSERT_EQUAL(false, boolean_ret);
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log_d("Checking if Serial 1 can set the mode when stopped");
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boolean_ret = Serial1.setMode(UART_MODE_UART);
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TEST_ASSERT_EQUAL(false, boolean_ret);
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log_d("Checking if Serial 1 set the baudrate when stopped");
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Serial1.updateBaudRate(9600);
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integer_ret = Serial1.baudRate();
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TEST_ASSERT_EQUAL(0, integer_ret);
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// Tests without return values. Just check for crashes.
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log_d("Checking if Serial 1 event queue can be reset when stopped");
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Serial1.eventQueueReset();
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log_d("Checking if Serial 1 can be flushed when stopped");
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Serial1.flush();
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log_d("Checking if Serial 1 debug output can be enabled when stopped");
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Serial1.setDebugOutput(true);
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Serial1.setDebugOutput(false);
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log_d("Checking if Serial 1 RX can be inverted when stopped");
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Serial1.setRxInvert(true);
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Serial1.setRxInvert(false);
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Serial.println("Disabled UART calls test successful");
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}
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// This test checks if the pins can be changed and if the message can be transmitted and received correctly after the change
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void change_pins_test(void) {
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log_d("Disabling UART loopback");
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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esp_rom_gpio_connect_out_signal(config.default_rx_pin, SIG_GPIO_OUT_IDX, false, false);
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}
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log_d("Swapping UART pins and testing transmission");
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if (TEST_UART_NUM == 1) {
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UARTTestConfig &config = *uart_test_configs[0];
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// pinMode will force enabling the internal pullup resistor (IDF 5.3.2 Change)
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pinMode(NEW_RX1, INPUT_PULLUP);
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config.serial.setPins(NEW_RX1, NEW_TX1);
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TEST_ASSERT_EQUAL(NEW_RX1, uart_get_RxPin(config.uart_num));
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TEST_ASSERT_EQUAL(NEW_TX1, uart_get_TxPin(config.uart_num));
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uart_internal_loopback(config.uart_num, NEW_RX1);
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config.transmit_and_check_msg("using new pins");
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} else {
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for (int i = 0; i < TEST_UART_NUM; i++) {
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UARTTestConfig &config = *uart_test_configs[i];
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UARTTestConfig &next_uart = *uart_test_configs[(i + 1) % TEST_UART_NUM];
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config.serial.setPins(next_uart.default_rx_pin, next_uart.default_tx_pin);
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TEST_ASSERT_EQUAL(uart_get_RxPin(config.uart_num), next_uart.default_rx_pin);
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TEST_ASSERT_EQUAL(uart_get_TxPin(config.uart_num), next_uart.default_tx_pin);
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uart_internal_loopback(config.uart_num, next_uart.default_rx_pin);
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config.transmit_and_check_msg("using new pins");
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}
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}
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Serial.println("Change pins test successful");
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}
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// This test checks if the auto baudrate detection works on ESP32 and ESP32-S2
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#if CONFIG_IDF_TARGET_ESP32 || CONFIG_IDF_TARGET_ESP32S2
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void auto_baudrate_test(void) {
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log_d("Starting auto baudrate test");
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HardwareSerial *selected_serial;
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unsigned long baudrate;
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log_d("Stopping test serial. Using Serial2 for ESP32 and Serial1 for ESP32-S2.");
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if (TEST_UART_NUM == 1) {
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selected_serial = &Serial1;
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// UART1 pins were swapped because of ESP32-P4
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uart_internal_loopback(0, /*RX1*/ TX1);
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} else {
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#ifdef RX2
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selected_serial = &Serial2;
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uart_internal_loopback(1, RX2);
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#endif
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}
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//selected_serial->end(false);
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log_d("Starting delayed task to send message");
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xTaskCreate(task_delayed_msg, "task_delayed_msg", 2048, NULL, 2, NULL);
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log_d("Starting serial with auto baudrate detection");
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selected_serial->begin(0);
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baudrate = selected_serial->baudRate();
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if (TEST_UART_NUM == 1) {
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Serial.end();
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Serial.begin(115200);
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}
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TEST_ASSERT_UINT_WITHIN(2304, 115200, baudrate);
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Serial.println("Auto baudrate test successful");
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}
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#endif
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// This test checks if the peripheral manager can properly manage UART pins
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void periman_test(void) {
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log_d("Checking if peripheral manager can properly manage UART pins");
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log_d("Setting up I2C on the same pins as UART");
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for (auto *ref : uart_test_configs) {
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UARTTestConfig &config = *ref;
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Wire.begin(config.default_rx_pin, config.default_tx_pin);
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config.recv_msg = "";
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log_d("Trying to send message using UART%d with I2C enabled", config.uart_num);
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config.transmit_and_check_msg("while used by I2C", false);
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TEST_ASSERT_EQUAL_STRING("", config.recv_msg.c_str());
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log_d("Disabling I2C and re-enabling UART%d", config.uart_num);
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config.serial.setPins(config.default_rx_pin, config.default_tx_pin);
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uart_internal_loopback(config.uart_num, config.default_rx_pin);
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log_d("Trying to send message using UART%d with I2C disabled", config.uart_num);
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config.transmit_and_check_msg("while I2C is disabled");
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}
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Serial.println("Peripheral manager test successful");
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}
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// This test checks if messages can be transmitted and received correctly after changing the CPU frequency
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void change_cpu_frequency_test(void) {
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uint32_t old_freq = getCpuFrequencyMhz();
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uint32_t new_freq = getXtalFrequencyMhz();
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log_d("Changing CPU frequency from %dMHz to %dMHz", old_freq, new_freq);
|
|
Serial.flush();
|
|
setCpuFrequencyMhz(new_freq);
|
|
|
|
Serial.updateBaudRate(115200);
|
|
|
|
for (auto *ref : uart_test_configs) {
|
|
UARTTestConfig &config = *ref;
|
|
log_d("Trying to send message with the new CPU frequency on UART%d", config.uart_num);
|
|
config.transmit_and_check_msg("with new CPU frequency");
|
|
}
|
|
|
|
log_d("Changing CPU frequency back to %dMHz", old_freq);
|
|
Serial.flush();
|
|
setCpuFrequencyMhz(old_freq);
|
|
|
|
Serial.updateBaudRate(115200);
|
|
|
|
for (auto *ref : uart_test_configs) {
|
|
UARTTestConfig &config = *ref;
|
|
log_d("Trying to send message with the original CPU frequency on UART%d", config.uart_num);
|
|
config.transmit_and_check_msg("with the original CPU frequency");
|
|
}
|
|
|
|
Serial.println("Change CPU frequency test successful");
|
|
}
|
|
|
|
/* Main functions */
|
|
|
|
void setup() {
|
|
Serial.begin(115200);
|
|
while (!Serial) {
|
|
delay(10);
|
|
}
|
|
|
|
uart_test_configs = {
|
|
#if SOC_UART_HP_NUM >= 2 && defined(RX1) && defined(TX1)
|
|
// inverting RX1<->TX1 because ESP32-P4 has a problem with loopback on RX1 :: GPIO11 <-- UART_TX SGINAL
|
|
new UARTTestConfig(1, Serial1, TX1, RX1),
|
|
#endif
|
|
#if SOC_UART_HP_NUM >= 3 && defined(RX2) && defined(TX2)
|
|
new UARTTestConfig(2, Serial2, RX2, TX2),
|
|
#endif
|
|
#if SOC_UART_HP_NUM >= 4 && defined(RX3) && defined(TX3)
|
|
new UARTTestConfig(3, Serial3, RX3, TX3),
|
|
#endif
|
|
#if SOC_UART_HP_NUM >= 5 && defined(RX4) && defined(TX4)
|
|
new UARTTestConfig(4, Serial4, RX4, TX4)
|
|
#endif
|
|
};
|
|
|
|
if (TEST_UART_NUM == 0) {
|
|
log_e("This test requires at least one UART besides UART0 configured");
|
|
abort();
|
|
}
|
|
|
|
log_d("TEST_UART_NUM = %d", TEST_UART_NUM);
|
|
|
|
for (auto *ref : uart_test_configs) {
|
|
UARTTestConfig &config = *ref;
|
|
config.begin(115200);
|
|
log_d("Setup internal loop-back from and back to UART%d TX >> UART%d RX", config.uart_num, config.uart_num);
|
|
config.serial.onReceive([&config]() {
|
|
config.onReceive();
|
|
});
|
|
uart_internal_loopback(config.uart_num, uart_get_RxPin(config.uart_num));
|
|
}
|
|
|
|
log_d("Setup done. Starting tests");
|
|
|
|
UNITY_BEGIN();
|
|
RUN_TEST(begin_when_running_test);
|
|
RUN_TEST(basic_transmission_test);
|
|
RUN_TEST(resize_buffers_test);
|
|
RUN_TEST(change_baudrate_test);
|
|
RUN_TEST(change_cpu_frequency_test);
|
|
RUN_TEST(disabled_uart_calls_test);
|
|
RUN_TEST(enabled_uart_calls_test);
|
|
#if CONFIG_IDF_TARGET_ESP32 || CONFIG_IDF_TARGET_ESP32S2
|
|
RUN_TEST(auto_baudrate_test);
|
|
#endif
|
|
RUN_TEST(periman_test);
|
|
RUN_TEST(change_pins_test);
|
|
RUN_TEST(end_when_stopped_test);
|
|
UNITY_END();
|
|
}
|
|
|
|
void loop() {}
|