Cleanup I2C and drivers
This commit is contained in:
@@ -46,6 +46,8 @@ void reboot();
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//If the user has programmed in a bootup logo, draw it to the screen from flash
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//Returns 1 if the logo was printed so that the unit waits for the timeout or button
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uint8_t showBootLogoIfavailable();
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void delay_ms(uint16_t count);
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#ifdef __cplusplus
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}
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#endif
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@@ -250,3 +250,7 @@ void HAL_I2C_MemRxCpltCallback(I2C_HandleTypeDef *hi2c __unused) {
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void reboot() {
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NVIC_SystemReset();
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}
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void delay_ms(uint16_t count) {
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HAL_Delay(count);
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}
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@@ -6,25 +6,25 @@
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*/
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#include <I2C_Wrapper.hpp>
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#include "BSP.h"
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#include "Setup.h"
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#define I2CUSESDMA
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I2C_HandleTypeDef *FRToSI2C::i2c;
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SemaphoreHandle_t FRToSI2C::I2CSemaphore;
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StaticSemaphore_t FRToSI2C::xSemaphoreBuffer;
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void FRToSI2C::CpltCallback() {
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i2c->State = HAL_I2C_STATE_READY; // Force state reset (even if tx error)
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hi2c1.State = HAL_I2C_STATE_READY; // Force state reset (even if tx error)
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if (I2CSemaphore) {
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xSemaphoreGiveFromISR(I2CSemaphore, NULL);
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}
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}
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bool FRToSI2C::Mem_Read(uint16_t DevAddress, uint16_t MemAddress,
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uint16_t MemAddSize, uint8_t *pData, uint16_t Size) {
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uint8_t *pData, uint16_t Size) {
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if (I2CSemaphore == NULL) {
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// no RToS, run blocking code
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HAL_I2C_Mem_Read(i2c, DevAddress, MemAddress, MemAddSize, pData, Size,
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5000);
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HAL_I2C_Mem_Read(&hi2c1, DevAddress, MemAddress, I2C_MEMADD_SIZE_8BIT,
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pData, Size, 5000);
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return true;
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} else {
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// RToS is active, run threading
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@@ -32,10 +32,10 @@ bool FRToSI2C::Mem_Read(uint16_t DevAddress, uint16_t MemAddress,
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// Wait up to 1 second for the mutex
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if (xSemaphoreTake(I2CSemaphore, (TickType_t)50) == pdTRUE) {
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#ifdef I2CUSESDMA
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if (HAL_I2C_Mem_Read(i2c, DevAddress, MemAddress, MemAddSize, pData,
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Size, 500) != HAL_OK) {
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if (HAL_I2C_Mem_Read(&hi2c1, DevAddress, MemAddress,
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I2C_MEMADD_SIZE_8BIT, pData, Size, 500) != HAL_OK) {
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I2C1_ClearBusyFlagErratum();
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I2C_Unstick();
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xSemaphoreGive(I2CSemaphore);
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return false;
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} else {
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@@ -44,7 +44,7 @@ bool FRToSI2C::Mem_Read(uint16_t DevAddress, uint16_t MemAddress,
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}
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#else
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if (HAL_I2C_Mem_Read(i2c, DevAddress, MemAddress, MemAddSize, pData, Size,
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if (HAL_I2C_Mem_Read(&hi2c1, DevAddress, MemAddress, I2C_MEMADD_SIZE_8BIT, pData, Size,
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5000)==HAL_OK){
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xSemaphoreGive(I2CSemaphore);
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return true;
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@@ -59,36 +59,36 @@ bool FRToSI2C::Mem_Read(uint16_t DevAddress, uint16_t MemAddress,
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}
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void FRToSI2C::I2C_RegisterWrite(uint8_t address, uint8_t reg, uint8_t data) {
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Mem_Write(address, reg, I2C_MEMADD_SIZE_8BIT, &data, 1);
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Mem_Write(address, reg, &data, 1);
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}
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uint8_t FRToSI2C::I2C_RegisterRead(uint8_t add, uint8_t reg) {
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uint8_t tx_data[1];
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Mem_Read(add, reg, I2C_MEMADD_SIZE_8BIT, tx_data, 1);
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Mem_Read(add, reg, tx_data, 1);
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return tx_data[0];
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}
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void FRToSI2C::Mem_Write(uint16_t DevAddress, uint16_t MemAddress,
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uint16_t MemAddSize, uint8_t *pData, uint16_t Size) {
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uint8_t *pData, uint16_t Size) {
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if (I2CSemaphore == NULL) {
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// no RToS, run blocking code
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HAL_I2C_Mem_Write(i2c, DevAddress, MemAddress, MemAddSize, pData, Size,
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5000);
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HAL_I2C_Mem_Write(&hi2c1, DevAddress, MemAddress, I2C_MEMADD_SIZE_8BIT,
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pData, Size, 5000);
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} else {
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// RToS is active, run threading
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// Get the mutex so we can use the I2C port
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// Wait up to 1 second for the mutex
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if (xSemaphoreTake(I2CSemaphore, (TickType_t)50) == pdTRUE) {
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#ifdef I2CUSESDMA
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if (HAL_I2C_Mem_Write(i2c, DevAddress, MemAddress, MemAddSize,
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pData, Size, 500) != HAL_OK) {
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if (HAL_I2C_Mem_Write(&hi2c1, DevAddress, MemAddress,
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I2C_MEMADD_SIZE_8BIT, pData, Size, 500) != HAL_OK) {
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I2C1_ClearBusyFlagErratum();
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I2C_Unstick();
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xSemaphoreGive(I2CSemaphore);
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}
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xSemaphoreGive(I2CSemaphore);
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#else
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if (HAL_I2C_Mem_Write(i2c, DevAddress, MemAddress, MemAddSize, pData,
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if (HAL_I2C_Mem_Write(&hi2c1, DevAddress, MemAddress, I2C_MEMADD_SIZE_8BIT, pData,
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Size, 5000) != HAL_OK) {
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}
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xSemaphoreGive(I2CSemaphore);
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@@ -102,7 +102,7 @@ void FRToSI2C::Mem_Write(uint16_t DevAddress, uint16_t MemAddress,
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void FRToSI2C::Transmit(uint16_t DevAddress, uint8_t *pData, uint16_t Size) {
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if (I2CSemaphore == NULL) {
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// no RToS, run blocking code
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HAL_I2C_Master_Transmit(i2c, DevAddress, pData, Size, 5000);
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HAL_I2C_Master_Transmit(&hi2c1, DevAddress, pData, Size, 5000);
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} else {
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// RToS is active, run threading
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// Get the mutex so we can use the I2C port
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@@ -110,15 +110,15 @@ void FRToSI2C::Transmit(uint16_t DevAddress, uint8_t *pData, uint16_t Size) {
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if (xSemaphoreTake(I2CSemaphore, (TickType_t)50) == pdTRUE) {
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#ifdef I2CUSESDMA
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if (HAL_I2C_Master_Transmit_DMA(i2c, DevAddress, pData, Size)
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if (HAL_I2C_Master_Transmit_DMA(&hi2c1, DevAddress, pData, Size)
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!= HAL_OK) {
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I2C1_ClearBusyFlagErratum();
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I2C_Unstick();
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xSemaphoreGive(I2CSemaphore);
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}
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#else
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HAL_I2C_Master_Transmit(i2c, DevAddress, pData, Size, 5000);
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HAL_I2C_Master_Transmit(&hi2c1, DevAddress, pData, Size, 5000);
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xSemaphoreGive(I2CSemaphore);
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#endif
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@@ -130,13 +130,13 @@ void FRToSI2C::Transmit(uint16_t DevAddress, uint8_t *pData, uint16_t Size) {
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bool FRToSI2C::probe(uint16_t DevAddress) {
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uint8_t buffer[1];
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if (Mem_Read(DevAddress, 0, I2C_MEMADD_SIZE_8BIT, buffer, 1)) {
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if (Mem_Read(DevAddress, 0, buffer, 1)) {
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//ACK'd
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return true;
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}
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return false;
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}
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void FRToSI2C::I2C1_ClearBusyFlagErratum() {
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void FRToSI2C::I2C_Unstick() {
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unstick_I2C();
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}
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@@ -14,7 +14,7 @@ void preRToSInit() {
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*/
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HAL_Init();
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Setup_HAL(); // Setup all the HAL objects
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FRToSI2C::init(&hi2c1);
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FRToSI2C::init();
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HAL_Delay(50);
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HAL_GPIO_WritePin(OLED_RESET_GPIO_Port, OLED_RESET_Pin, GPIO_PIN_SET);
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HAL_Delay(50);
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@@ -12,8 +12,8 @@
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#include "Translation.h"
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#define FONT_12_WIDTH 12
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// FONTS ARE NO LONGER HERE, MOVED TO PYTHON AUTO GEN
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// THE MAIN FONTS ARE NO LONGER HERE, MOVED TO PYTHON AUTO GEN
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// THESE ARE ONLY THE SYMBOL FONTS
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const uint8_t ExtraFontChars[] = {
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//width = 12
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@@ -7,7 +7,7 @@
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#ifndef FRTOSI2C_HPP_
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#define FRTOSI2C_HPP_
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#include "stm32f1xx_hal.h"
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#include "cmsis_os.h"
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/*
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@@ -21,8 +21,7 @@
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class FRToSI2C {
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public:
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static void init(I2C_HandleTypeDef *i2chandle) {
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i2c = i2chandle;
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static void init() {
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I2CSemaphore = nullptr;
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}
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@@ -34,9 +33,9 @@ public:
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static void CpltCallback(); //Normal Tx Callback
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static bool Mem_Read(uint16_t DevAddress, uint16_t MemAddress,
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uint16_t MemAddSize, uint8_t *pData, uint16_t Size);
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uint8_t *pData, uint16_t Size);
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static void Mem_Write(uint16_t DevAddress, uint16_t MemAddress,
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uint16_t MemAddSize, uint8_t *pData, uint16_t Size);
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uint8_t *pData, uint16_t Size);
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//Returns true if device ACK's being addressed
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static bool probe(uint16_t DevAddress);
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@@ -45,8 +44,7 @@ public:
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static uint8_t I2C_RegisterRead(uint8_t address, uint8_t reg);
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private:
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static I2C_HandleTypeDef *i2c;
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static void I2C1_ClearBusyFlagErratum();
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static void I2C_Unstick();
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static SemaphoreHandle_t I2CSemaphore;
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static StaticSemaphore_t xSemaphoreBuffer;
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};
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@@ -38,7 +38,7 @@ void LIS2DH12::initalize() {
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void LIS2DH12::getAxisReadings(int16_t &x, int16_t &y, int16_t &z) {
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std::array<int16_t, 3> sensorData;
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FRToSI2C::Mem_Read(LIS2DH_I2C_ADDRESS, 0xA8, I2C_MEMADD_SIZE_8BIT,
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FRToSI2C::Mem_Read(LIS2DH_I2C_ADDRESS, 0xA8,
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reinterpret_cast<uint8_t*>(sensorData.begin()),
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sensorData.size() * sizeof(int16_t));
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@@ -7,7 +7,6 @@
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#ifndef LIS2DH12_HPP_
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#define LIS2DH12_HPP_
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#include "stm32f1xx_hal.h"
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#include "I2C_Wrapper.hpp"
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#include "LIS2DH12_defines.hpp"
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#include "BSP.h"
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@@ -42,7 +42,7 @@ void MMA8652FC::initalize() {
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i2c_registers[index].val);
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index++;
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HAL_Delay(2); // ~1ms delay
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delay_ms(2); // ~1ms delay
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while (index < (sizeof(i2c_registers) / sizeof(i2c_registers[0]))) {
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FRToSI2C::I2C_RegisterWrite(MMA8652FC_I2C_ADDRESS,
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@@ -72,7 +72,7 @@ void MMA8652FC::getAxisReadings(int16_t &x, int16_t &y, int16_t &z) {
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std::array<int16_t, 3> sensorData;
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FRToSI2C::Mem_Read(MMA8652FC_I2C_ADDRESS, OUT_X_MSB_REG,
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I2C_MEMADD_SIZE_8BIT, reinterpret_cast<uint8_t*>(sensorData.begin()),
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reinterpret_cast<uint8_t*>(sensorData.begin()),
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sensorData.size() * sizeof(int16_t));
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x = static_cast<int16_t>(__builtin_bswap16(
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@@ -7,7 +7,6 @@
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#ifndef MMA8652FC_HPP_
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#define MMA8652FC_HPP_
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#include "stm32f1xx_hal.h"
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#include "MMA8652FC_defines.h"
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#include "I2C_Wrapper.hpp"
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#include "BSP.h"
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@@ -63,7 +63,6 @@ uint8_t OLED_Setup_Array[] = {
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const uint8_t REFRESH_COMMANDS[17] = { 0x80, 0xAF, 0x80, 0x21, 0x80, 0x20, 0x80,
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0x7F, 0x80, 0xC0, 0x80, 0x22, 0x80, 0x00, 0x80, 0x01, 0x40 };
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/*
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* Animation timing function that follows a bezier curve.
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* @param t A given percentage value [0..<100]
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@@ -144,10 +143,10 @@ void OLED::drawScrollIndicator(uint8_t y, uint8_t height) {
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uint16_t whole;
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uint8_t strips[2];
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} column;
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column.whole = (1 << height) - 1;
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column.whole <<= y;
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// Draw a one pixel wide bar to the left with a single pixel as
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// the scroll indicator.
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fillArea(OLED_WIDTH - 1, 0, 1, 8, column.strips[0]);
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@@ -191,11 +190,14 @@ void OLED::transitionSecondaryFramebuffer(bool forwardNavigation) {
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offset = progress;
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memmove(&firstStripPtr[oldStart], &firstStripPtr[oldPrevious], OLED_WIDTH - progress);
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memmove(&secondStripPtr[oldStart], &secondStripPtr[oldPrevious], OLED_WIDTH - progress);
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memmove(&firstStripPtr[oldStart], &firstStripPtr[oldPrevious],
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OLED_WIDTH - progress);
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memmove(&secondStripPtr[oldStart], &secondStripPtr[oldPrevious],
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OLED_WIDTH - progress);
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memmove(&firstStripPtr[newStart], &firstBackStripPtr[newEnd], progress);
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memmove(&secondStripPtr[newStart], &secondBackStripPtr[newEnd], progress);
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memmove(&secondStripPtr[newStart], &secondBackStripPtr[newEnd],
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progress);
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refresh();
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osDelay(40);
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@@ -271,7 +273,7 @@ uint8_t OLED::getFont() {
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inline void stripLeaderZeros(char *buffer, uint8_t places) {
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//Removing the leading zero's by swapping them to SymbolSpace
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// Stop 1 short so that we dont blank entire number if its zero
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for (int i = 0; i < (places-1); i++) {
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for (int i = 0; i < (places - 1); i++) {
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if (buffer[i] == 2) {
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buffer[i] = SymbolSpace[0];
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} else {
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@@ -10,7 +10,6 @@
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#ifndef OLED_HPP_
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#define OLED_HPP_
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#include <BSP.h>
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#include "stm32f1xx_hal.h"
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#include <stdbool.h>
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#include <string.h>
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#include "I2C_Wrapper.hpp"
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@@ -27,12 +26,11 @@ extern "C" {
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#define OLED_HEIGHT 16
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#define FRAMEBUFFER_START 17
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class OLED {
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class OLED {
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public:
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enum DisplayState : bool {
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OFF = false,
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ON = true
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OFF = false, ON = true
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};
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static void initialize(); // Startup the I2C coms (brings screen out of reset etc)
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@@ -40,7 +38,7 @@ public:
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// Draw the buffer out to the LCD using the DMA Channel
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static void refresh() {
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FRToSI2C::Transmit( DEVICEADDR_OLED, screenBuffer,
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FRAMEBUFFER_START + (OLED_WIDTH * 2));
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FRAMEBUFFER_START + (OLED_WIDTH * 2));
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//DMA tx time is ~ 20mS Ensure after calling this you delay for at least 25ms
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//or we need to goto double buffering
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}
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@@ -49,16 +47,16 @@ public:
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displayState = state;
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screenBuffer[1] = (state == ON) ? 0xAF : 0xAE;
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}
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static void setRotation(bool leftHanded); // Set the rotation for the screen
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// Get the current rotation of the LCD
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static bool getRotation() {
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static bool getRotation() {
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return inLeftHandedMode;
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}
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static int16_t getCursorX() {
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return cursor_x;
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}
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static void print(const char* string);// Draw a string to the current location, with current font
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static void print(const char *string);// Draw a string to the current location, with current font
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// Set the cursor location by pixels
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static void setCursor(int16_t x, int16_t y) {
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cursor_x = x;
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@@ -71,11 +69,12 @@ public:
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}
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static void setFont(uint8_t fontNumber); // (Future) Set the font that is being used
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static uint8_t getFont();
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static void drawImage(const uint8_t* buffer, uint8_t x, uint8_t width) {
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static void drawImage(const uint8_t *buffer, uint8_t x, uint8_t width) {
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drawArea(x, 0, width, 16, buffer);
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}
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// Draws an image to the buffer, at x offset from top to bottom (fixed height renders)
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static void printNumber(uint16_t number, uint8_t places,bool noLeaderZeros=true);
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static void printNumber(uint16_t number, uint8_t places,
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bool noLeaderZeros = true);
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// Draws a number at the current cursor location
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// Clears the buffer
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static void clearScreen() {
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@@ -92,9 +91,9 @@ public:
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static void debugNumber(int32_t val);
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static void drawSymbol(uint8_t symbolID);//Used for drawing symbols of a predictable width
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static void drawArea(int16_t x, int8_t y, uint8_t wide, uint8_t height,
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const uint8_t* ptr); //Draw an area, but y must be aligned on 0/8 offset
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static void drawAreaSwapped(int16_t x, int8_t y, uint8_t wide, uint8_t height,
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const uint8_t* ptr); //Draw an area, but y must be aligned on 0/8 offset
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const uint8_t *ptr); //Draw an area, but y must be aligned on 0/8 offset
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static void drawAreaSwapped(int16_t x, int8_t y, uint8_t wide,
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uint8_t height, const uint8_t *ptr); //Draw an area, but y must be aligned on 0/8 offset
|
||||
static void fillArea(int16_t x, int8_t y, uint8_t wide, uint8_t height,
|
||||
const uint8_t value); //Fill an area, but y must be aligned on 0/8 offset
|
||||
static void drawFilledRect(uint8_t x0, uint8_t y0, uint8_t x1, uint8_t y1,
|
||||
@@ -106,9 +105,9 @@ public:
|
||||
private:
|
||||
static void drawChar(char c); // Draw a character to a specific location
|
||||
static void setFramebuffer(uint8_t *buffer);
|
||||
static const uint8_t* currentFont;// Pointer to the current font used for rendering to the buffer
|
||||
static uint8_t* firstStripPtr; // Pointers to the strips to allow for buffer having extra content
|
||||
static uint8_t* secondStripPtr; //Pointers to the strips
|
||||
static const uint8_t *currentFont; // Pointer to the current font used for rendering to the buffer
|
||||
static uint8_t *firstStripPtr; // Pointers to the strips to allow for buffer having extra content
|
||||
static uint8_t *secondStripPtr; //Pointers to the strips
|
||||
static bool inLeftHandedMode; // Whether the screen is in left or not (used for offsets in GRAM)
|
||||
static DisplayState displayState;
|
||||
static uint8_t fontWidth, fontHeight;
|
||||
|
||||
@@ -4,6 +4,9 @@
|
||||
* Created on: 19 Aug 2019
|
||||
* Author: ralim
|
||||
*/
|
||||
extern "C" {
|
||||
#include "FreeRTOSConfig.h"
|
||||
}
|
||||
#include <MMA8652FC.hpp>
|
||||
#include <gui.hpp>
|
||||
#include <main.hpp>
|
||||
@@ -14,7 +17,6 @@
|
||||
#include "Translation.h"
|
||||
#include "cmsis_os.h"
|
||||
#include "stdlib.h"
|
||||
#include "stm32f1xx_hal.h"
|
||||
#include "string.h"
|
||||
#include "TipThermoModel.h"
|
||||
#include "unit.h"
|
||||
@@ -30,10 +32,8 @@ extern osThreadId GUITaskHandle;
|
||||
extern osThreadId MOVTaskHandle;
|
||||
extern osThreadId PIDTaskHandle;
|
||||
|
||||
// TODO: express time constants in terms of dividends of portTICK_RATE_MS
|
||||
|
||||
#define MOVEMENT_INACTIVITY_TIME 6000
|
||||
#define BUTTON_INACTIVITY_TIME 6000
|
||||
#define MOVEMENT_INACTIVITY_TIME (60*configTICK_RATE_HZ)
|
||||
#define BUTTON_INACTIVITY_TIME (60*configTICK_RATE_HZ)
|
||||
|
||||
static uint16_t min(uint16_t a, uint16_t b) {
|
||||
if (a > b)
|
||||
@@ -58,36 +58,35 @@ void GUIDelay() {
|
||||
void gui_drawTipTemp(bool symbol) {
|
||||
// Draw tip temp handling unit conversion & tolerance near setpoint
|
||||
uint16_t Temp = 0;
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
if (systemSettings.temperatureInF)
|
||||
Temp = TipThermoModel::getTipInF();
|
||||
else
|
||||
#endif
|
||||
Temp = TipThermoModel::getTipInC();
|
||||
Temp = TipThermoModel::getTipInC();
|
||||
|
||||
OLED::printNumber(Temp, 3); // Draw the tip temp out finally
|
||||
if (symbol) {
|
||||
if (OLED::getFont() == 0) {
|
||||
//Big font, can draw nice symbols
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
if (systemSettings.temperatureInF)
|
||||
OLED::drawSymbol(0);
|
||||
else
|
||||
#endif
|
||||
OLED::drawSymbol(1);
|
||||
OLED::drawSymbol(1);
|
||||
} else {
|
||||
//Otherwise fall back to chars
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
if (systemSettings.temperatureInF)
|
||||
OLED::print(SymbolDegF);
|
||||
else
|
||||
#endif
|
||||
OLED::print(SymbolDegC);
|
||||
OLED::print(SymbolDegC);
|
||||
}
|
||||
}
|
||||
}
|
||||
|
||||
|
||||
#ifdef MODEL_TS100
|
||||
// returns true if undervoltage has occured
|
||||
static bool checkVoltageForExit() {
|
||||
@@ -180,36 +179,48 @@ static void gui_solderingTempAdjust() {
|
||||
// exit
|
||||
return;
|
||||
break;
|
||||
case BUTTON_B_LONG:
|
||||
case BUTTON_B_LONG:
|
||||
if (xTaskGetTickCount() - autoRepeatTimer
|
||||
+ autoRepeatAcceleration> PRESS_ACCEL_INTERVAL_MAX) {
|
||||
if(systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp += systemSettings.TempChangeLongStep;
|
||||
} else systemSettings.SolderingTemp -= systemSettings.TempChangeLongStep;
|
||||
|
||||
if (systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp +=
|
||||
systemSettings.TempChangeLongStep;
|
||||
} else
|
||||
systemSettings.SolderingTemp -=
|
||||
systemSettings.TempChangeLongStep;
|
||||
|
||||
autoRepeatTimer = xTaskGetTickCount();
|
||||
autoRepeatAcceleration += PRESS_ACCEL_STEP;
|
||||
}
|
||||
break;
|
||||
case BUTTON_B_SHORT:
|
||||
if(systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp += systemSettings.TempChangeShortStep;
|
||||
} else systemSettings.SolderingTemp -= systemSettings.TempChangeShortStep;
|
||||
break;
|
||||
case BUTTON_B_SHORT:
|
||||
if (systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp +=
|
||||
systemSettings.TempChangeShortStep;
|
||||
} else
|
||||
systemSettings.SolderingTemp -=
|
||||
systemSettings.TempChangeShortStep;
|
||||
break;
|
||||
case BUTTON_F_LONG:
|
||||
if (xTaskGetTickCount() - autoRepeatTimer
|
||||
+ autoRepeatAcceleration> PRESS_ACCEL_INTERVAL_MAX) {
|
||||
if(systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp -= systemSettings.TempChangeLongStep;
|
||||
} else systemSettings.SolderingTemp += systemSettings.TempChangeLongStep;
|
||||
if (systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp -=
|
||||
systemSettings.TempChangeLongStep;
|
||||
} else
|
||||
systemSettings.SolderingTemp +=
|
||||
systemSettings.TempChangeLongStep;
|
||||
autoRepeatTimer = xTaskGetTickCount();
|
||||
autoRepeatAcceleration += PRESS_ACCEL_STEP;
|
||||
}
|
||||
break;
|
||||
case BUTTON_F_SHORT:
|
||||
if(systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp -= systemSettings.TempChangeShortStep; // add 10
|
||||
} else systemSettings.SolderingTemp += systemSettings.TempChangeShortStep; // add 10
|
||||
if (systemSettings.ReverseButtonTempChangeEnabled) {
|
||||
systemSettings.SolderingTemp -=
|
||||
systemSettings.TempChangeShortStep; // add 10
|
||||
} else
|
||||
systemSettings.SolderingTemp +=
|
||||
systemSettings.TempChangeShortStep; // add 10
|
||||
break;
|
||||
default:
|
||||
break;
|
||||
@@ -220,7 +231,7 @@ case BUTTON_B_LONG:
|
||||
- PRESS_ACCEL_INTERVAL_MIN;
|
||||
}
|
||||
// constrain between 10-450 C
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
if (systemSettings.temperatureInF) {
|
||||
if (systemSettings.SolderingTemp > 850)
|
||||
systemSettings.SolderingTemp = 850;
|
||||
@@ -244,15 +255,18 @@ case BUTTON_B_LONG:
|
||||
#else
|
||||
if (OLED::getRotation()) {
|
||||
#endif
|
||||
OLED::print(systemSettings.ReverseButtonTempChangeEnabled ? SymbolPlus:SymbolMinus);
|
||||
} else {
|
||||
OLED::print(systemSettings.ReverseButtonTempChangeEnabled ? SymbolMinus:SymbolPlus);
|
||||
OLED::print(
|
||||
systemSettings.ReverseButtonTempChangeEnabled ?
|
||||
SymbolPlus : SymbolMinus);
|
||||
} else {
|
||||
OLED::print(
|
||||
systemSettings.ReverseButtonTempChangeEnabled ?
|
||||
SymbolMinus : SymbolPlus);
|
||||
}
|
||||
|
||||
|
||||
OLED::print(SymbolSpace);
|
||||
OLED::printNumber(systemSettings.SolderingTemp, 3);
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
#ifdef ENABLED_FAHRENHEIT_SUPPORT
|
||||
if (systemSettings.temperatureInF)
|
||||
OLED::drawSymbol(0);
|
||||
else
|
||||
@@ -266,9 +280,13 @@ case BUTTON_B_LONG:
|
||||
#else
|
||||
if (OLED::getRotation()) {
|
||||
#endif
|
||||
OLED::print(systemSettings.ReverseButtonTempChangeEnabled ? SymbolMinus:SymbolPlus);
|
||||
OLED::print(
|
||||
systemSettings.ReverseButtonTempChangeEnabled ?
|
||||
SymbolMinus : SymbolPlus);
|
||||
} else {
|
||||
OLED::print(systemSettings.ReverseButtonTempChangeEnabled ? SymbolPlus:SymbolMinus);
|
||||
OLED::print(
|
||||
systemSettings.ReverseButtonTempChangeEnabled ?
|
||||
SymbolPlus : SymbolMinus);
|
||||
}
|
||||
OLED::refresh();
|
||||
GUIDelay();
|
||||
@@ -283,8 +301,8 @@ static int gui_SolderingSleepingMode(bool stayOff) {
|
||||
if (buttons)
|
||||
return 0;
|
||||
if ((xTaskGetTickCount() > 100)
|
||||
&& ((accelInit && (xTaskGetTickCount() - lastMovementTime < 100))
|
||||
|| (xTaskGetTickCount() - lastButtonTime < 100)))
|
||||
&& ((accelInit && (xTaskGetTickCount() - lastMovementTime < 100))
|
||||
|| (xTaskGetTickCount() - lastButtonTime < 100)))
|
||||
return 0; // user moved or pressed a button, go back to soldering
|
||||
#ifdef MODEL_TS100
|
||||
if (checkVoltageForExit())
|
||||
@@ -298,8 +316,11 @@ static int gui_SolderingSleepingMode(bool stayOff) {
|
||||
} else
|
||||
#endif
|
||||
{
|
||||
currentTempTargetDegC = stayOff ? 0 : min(systemSettings.SleepTemp,
|
||||
systemSettings.SolderingTemp);
|
||||
currentTempTargetDegC =
|
||||
stayOff ?
|
||||
0 :
|
||||
min(systemSettings.SleepTemp,
|
||||
systemSettings.SolderingTemp);
|
||||
}
|
||||
// draw the lcd
|
||||
uint16_t tipTemp;
|
||||
@@ -656,32 +677,18 @@ void startGUITask(void const *argument __unused) {
|
||||
|
||||
if (systemSettings.autoStartMode) {
|
||||
// jump directly to the autostart mode
|
||||
if (systemSettings.autoStartMode == 1)
|
||||
{
|
||||
if (systemSettings.autoStartMode == 1) {
|
||||
gui_solderingMode(0);
|
||||
buttonLockout = true;
|
||||
}
|
||||
else if (systemSettings.autoStartMode == 2)
|
||||
{
|
||||
} else if (systemSettings.autoStartMode == 2) {
|
||||
gui_solderingMode(1);
|
||||
buttonLockout = true;
|
||||
}
|
||||
else if (systemSettings.autoStartMode == 3)
|
||||
{
|
||||
} else if (systemSettings.autoStartMode == 3) {
|
||||
gui_solderingMode(2);
|
||||
buttonLockout = true;
|
||||
}
|
||||
}
|
||||
|
||||
#ifdef ACCELDEBUG
|
||||
|
||||
for (;;) {
|
||||
HAL_IWDG_Refresh(&hiwdg);
|
||||
osDelay(100);
|
||||
}
|
||||
//^ Kept here for a way to block this thread
|
||||
#endif
|
||||
|
||||
for (;;) {
|
||||
ButtonState buttons = getButtonState();
|
||||
if (buttons != BUTTON_NONE) {
|
||||
|
||||
Reference in New Issue
Block a user