mirror of
https://github.com/arwidcool/Solder-Plate.git
synced 2024-11-28 00:10:51 +01:00
stuff
This commit is contained in:
parent
0aac756d7e
commit
b91e4cee1f
@ -12,13 +12,14 @@ void EEPROMDataManager::setup()
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saveToEEPROM();
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}
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for (int i = 0; i < 6; i++)
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{
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uint16_t resUint;
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EEPROM.get(2 * i + EEPROM_START_TERMISTORS, resUint);
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float res = resUint / 1000.0;
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thermistors[i].setPotentiometerResistance(res);
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}
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// THermistors part. for now we let the user set the thermistor values in code.
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// for (int i = 0; i < 6; i++)
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// {
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// uint16_t resUint;
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// EEPROM.get(2 * i + EEPROM_START_TERMISTORS, resUint);
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// thermistors[i].setPotentiometerResistance(resUint);
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// }
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EEPROM.get(EEPROM_START_PLATERES, plateResistanceOhm);
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}
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@ -26,14 +27,15 @@ void EEPROMDataManager::saveToEEPROM()
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{
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EEPROM.begin();
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uint16_t tmp = 0x1234;
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EEPROM.put(0, &tmp); // initialize the EEPROM
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EEPROM.put(0, tmp); // initialize the EEPROM
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for (int i = 0; i < 6; i++)
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{
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float res = thermistors[i].getResistance();
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uint16_t resUint = res * 1000;
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EEPROM.put(2 * i + EEPROM_START_TERMISTORS, &resUint);
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}
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// THermistors part. for now we dont save the thermistor values in code.
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EEPROM.put(EEPROM_START_PLATERES, &plateResistanceOhm);
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// for (int i = 0; i < 6; i++)
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// {
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// uint16_t res = thermistors[i].getPotentiometerResistance();
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// EEPROM.put(2 * i + EEPROM_START_TERMISTORS, res);
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// }
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EEPROM.put(EEPROM_START_PLATERES, plateResistanceOhm);
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}
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@ -4,115 +4,131 @@
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#include "../common.h"
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#include <Arduino.h>
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class OledMenuItem
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{
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public:
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OledMenuItem(){};
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OledMenuItem(char *title) : title(title), identifier(0){};
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OledMenuItem(char *title, uint8_t identifier) : title(title), identifier(identifier){};
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class OledMenuItem {
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public:
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OledMenuItem(){};
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OledMenuItem(char *title): title(title), identifier(0) {};
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OledMenuItem(char *title, uint8_t identifier): title(title), identifier(identifier) {};
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char const * title;
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// Identifier c
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uint8_t identifier;
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char const *title;
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// Identifier c
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uint8_t identifier;
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};
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class OledMenu {
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public:
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OledMenu(){};
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OledMenu(uint8_t identifier): identifier(identifier), elementsLength(0), childrenLength(0) {};
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~OledMenu() {
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delete elements;
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delete children;
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delete childrenMatrix;
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};
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uint8_t identifier;
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void setChildren(OledMenu **children, int length) {
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this->children = children;
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this->childrenLength = length;
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for (int i=0; i<length; i++) {
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children[i]->parent = this;
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class OledMenu
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{
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public:
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OledMenu(){};
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OledMenu(uint8_t identifier) : identifier(identifier), elementsLength(0), childrenLength(0){};
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~OledMenu()
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{
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delete elements;
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delete children;
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delete childrenMatrix;
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};
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uint8_t identifier;
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void setChildren(OledMenu **children, int length)
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{
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this->children = children;
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this->childrenLength = length;
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for (int i = 0; i < length; i++)
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{
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children[i]->parent = this;
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}
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}
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void setElements(OledMenuItem *elements, int length)
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{
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this->elements = new OledMenuItem[length];
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for (int i = 0; i < length; i++)
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{
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this->elements[i].title = malloc(strlen(elements[i].title) + 1);
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memcpy(this->elements[i].title, elements[i].title, strlen(elements[i].title) + 1);
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this->elements[i].identifier = elements[i].identifier;
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Serial.println(String(this->elements[i].title) + " " + String(elements[i].title));
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}
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this->elementsLength = length;
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}
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void setChildrenMatrix(int length, uint8_t (*matrix)[2])
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{
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this->childrenMatrix = matrix;
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this->childrenMatrixLength = length;
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}
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// To be invoked when the user presses the SELECT btn
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// If null is returned then the menu should not be changed
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OledMenu *getNextMenu()
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{
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for (int i = 0; i < childrenMatrixLength; i++)
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{
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if (childrenMatrix[i][0] == curItem)
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{
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return children[childrenMatrix[i][1]];
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}
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}
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return nullptr;
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}
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void setElements(OledMenuItem *elements, int length) {
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this->elements = new OledMenuItem[length];
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for (int i=0; i<length; i++) {
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this->elements[i].title = malloc(strlen(elements[i].title) + 1);
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memcpy(this->elements[i].title, elements[i].title, strlen(elements[i].title) + 1);
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this->elements[i].identifier = elements[i].identifier;
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// To be invoked when the user presses the UP btn
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OledMenuItem goNextItem()
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{
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curItem++;
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curItem = curItem % elementsLength;
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Serial.println(String(elements[curItem].title) + " - " + String(curItem));
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return elements[curItem];
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}
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Serial.println(String(this->elements[i].title) + " " + String(elements[i].title));
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}
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this->elementsLength = length;
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// To be invoked when the user presses the DOWN btn
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OledMenuItem goPrevItem()
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{
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curItem--;
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if (curItem < 0)
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{
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curItem = elementsLength - 1;
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}
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Serial.println(String(elements[curItem].title) + " - " + String(curItem));
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void setChildrenMatrix(int length, uint8_t (*matrix)[2]) {
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this->childrenMatrix = matrix;
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this->childrenMatrixLength = length;
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}
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return elements[curItem];
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}
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// To be invoked when the user presses the SELECT btn
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// If null is returned then the menu should not be changed
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OledMenu *getNextMenu() {
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for (int i=0; i<childrenMatrixLength; i++) {
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if (childrenMatrix[i][0] == curItem) {
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return children[childrenMatrix[i][1]];
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}
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}
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return nullptr;
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}
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OledMenuItem itemAt(uint8_t index)
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{
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return elements[index];
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}
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// To be invoked when the user presses the UP btn
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OledMenuItem goNextItem() {
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curItem++;
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curItem = curItem % elementsLength;
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Serial.println(String(elements[curItem].title) + " - " + String(curItem));
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return elements[curItem];
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}
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OledMenuItem getCurItem()
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{
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return elements[curItem];
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}
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// To be invoked when the user presses the DOWN btn
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OledMenuItem goPrevItem() {
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curItem--;
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if (curItem < 0) {
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curItem = elementsLength - 1;
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}
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Serial.println(String(elements[curItem].title) + " - " + String(curItem));
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OledMenu *parent;
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return elements[curItem];
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}
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OledMenuItem getCurItem() {
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return elements[curItem];
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}
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OledMenu *parent;
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protected:
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int curItem = 0;
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OledMenuItem *elements;
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int elementsLength;
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OledMenu **children;
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int childrenLength;
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/**
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* Matrix of pairs of (element index, children index)
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* ex if element at index 0 should go to children at index 1 when user hits SELECT
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* then the matrix would be:
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* { ..., {0, 1}, ...}
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*/
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uint8_t (*childrenMatrix)[2]; // First is element index, second is children index,
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int childrenMatrixLength;
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protected:
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int curItem = 0;
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OledMenuItem *elements;
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int elementsLength;
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OledMenu **children;
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int childrenLength;
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/**
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* Matrix of pairs of (element index, children index)
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* ex if element at index 0 should go to children at index 1 when user hits SELECT
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* then the matrix would be:
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* { ..., {0, 1}, ...}
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*/
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uint8_t (*childrenMatrix)[2]; // First is element index, second is children index,
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int childrenMatrixLength;
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};
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#define SETMATRIX(menuItem, CODE) { Pair<ButtonKind,int> matrix[] = { CODE }; menuItem.setMatrix( sizeof(matrix)/sizeof(matrix[0]), matrix); }
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#define SETMATRIX(menuItem, CODE) \
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{ \
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Pair<ButtonKind, int> matrix[] = {CODE}; \
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menuItem.setMatrix(sizeof(matrix) / sizeof(matrix[0]), matrix); \
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}
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#define UPBUTTON(index) Pair<ButtonKind, int>(ButtonKind::UP, index),
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#define DOWNBUTTON(index) Pair<ButtonKind, int>(ButtonKind::DOWN, index),
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#define SELECTBUTTON(index) Pair<ButtonKind, int>(ButtonKind::SELECT, index),
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@ -5,7 +5,7 @@
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#define SCREEN_WIDTH 128
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#define SCREEN_HEIGHT 64
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#define OLED_RESET -1 // Reset pin # (or -1 if sharing Arduino reset pin)
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#define MENUID_PLATERES 2
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#define MENUID_DEBUG 2
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#define MENUITEM_THERMISTOR_START 150
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unsigned long lastProcessedReflowState = 0;
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@ -17,41 +17,82 @@ OledDisplay::OledDisplay()
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void OledDisplay::handleButtonStateChange(Pair<ButtonKind, StateChangeEvent<ButtonState>> change)
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{
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if (change.second.to == ButtonState::PRESSED)
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ReflowProcessState state = reflowProcessState.get();
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if (state == USER_INPUT)
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{
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if (change.first == ButtonKind::SELECT)
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if (change.second.to == ButtonState::PRESSED)
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{
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OledMenu *selectedMenu = curMenu->getNextMenu();
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if (selectedMenu != NULL)
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if (change.first == ButtonKind::SELECT)
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{
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curMenu = selectedMenu;
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OledMenu *selectedMenu = curMenu->getNextMenu();
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if (selectedMenu != NULL)
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{
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curMenu = selectedMenu;
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}
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}
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}
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else if (change.first == ButtonKind::BACK)
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{
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OledMenu *selectedMenu = curMenu->parent;
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if (selectedMenu != NULL)
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else if (change.first == ButtonKind::BACK)
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{
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curMenu = selectedMenu;
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OledMenu *selectedMenu = curMenu->parent;
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if (selectedMenu != NULL)
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{
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curMenu = selectedMenu;
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}
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}
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else if (change.first == ButtonKind::UP)
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{
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curMenu->goPrevItem();
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}
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else if (change.first == ButtonKind::DOWN)
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{
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curMenu->goNextItem();
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}
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}
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else if (change.first == ButtonKind::UP)
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{
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curMenu->goNextItem();
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}
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else if (change.first == ButtonKind::DOWN)
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{
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curMenu->goPrevItem();
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}
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}
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}
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void OledDisplay::handleDrawThermistorMenu(OledMenuItem menuItem)
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{
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int thermistorIndex = menuItem.identifier - MENUITEM_THERMISTOR_START;
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if (thermistorIndex == 6)
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{
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// Showing all thermistors values in a row
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display.setTextSize(1, 2);
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for (int i = 0; i < 6; i++)
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{
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int thermistorTemp = thermistors[i].getTemperature();
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display.setCursor(i < 3 ? 0 : (SCREEN_WIDTH / 2 + 20), 20 * (i % 3));
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display.println(String(i + 1) + " " + String(thermistorTemp));
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}
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centerText(menuItem.title);
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displayIndicators();
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}
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else if (thermistorIndex == 7)
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{
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display.setTextSize(1, 2);
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for (int i = 0; i < 6; i++)
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{
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float thermR = thermistors[i].getResistance();
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display.setCursor(i < 3 ? 0 : (SCREEN_WIDTH / 2 + 20), 20 * (i % 3));
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display.println(String(i + 1) + " " + String((int)(thermR)));
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}
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centerText(menuItem.title);
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displayIndicators();
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}
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else
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{
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int thermistorTemp = thermistors[thermistorIndex].getTemperature();
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centerText((String(menuItem.title) + ": " + String(thermistorTemp)).c_str());
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displayIndicators();
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}
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}
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void OledDisplay::setup()
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{
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curMenu = new OledMenu();
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curMenu->setElements(new OledMenuItem[3]{
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OledMenuItem("Reflow\0"),
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OledMenuItem("PlateR\0"),
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OledMenuItem("Temps\0"),
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OledMenuItem("Debug\0"),
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},
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3);
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@ -63,10 +104,11 @@ void OledDisplay::setup()
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}
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pickProfilesMenu->setElements(pickProfilesMenuItems, nReflowProfiles);
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OledMenu *plateRMenu = new OledMenu(MENUID_PLATERES);
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OledMenu *debugMenu = new OledMenu(MENUID_DEBUG);
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OledMenu *tempsMenu = new OledMenu(3);
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tempsMenu->setElements(new OledMenuItem[7]{
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OledMenuItem("ALL\0", MENUITEM_THERMISTOR_START + 6),
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tempsMenu->setElements(new OledMenuItem[8]{
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OledMenuItem("C\0", MENUITEM_THERMISTOR_START + 6),
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OledMenuItem("R\0", MENUITEM_THERMISTOR_START + 7),
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OledMenuItem("T1\0", MENUITEM_THERMISTOR_START + 0),
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OledMenuItem("T2\0", MENUITEM_THERMISTOR_START + 1),
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OledMenuItem("T3\0", MENUITEM_THERMISTOR_START + 2),
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@ -74,14 +116,14 @@ void OledDisplay::setup()
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OledMenuItem("T5\0", MENUITEM_THERMISTOR_START + 4),
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OledMenuItem("T6\0", MENUITEM_THERMISTOR_START + 5),
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},
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6);
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8);
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curMenu->setChildren(
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new OledMenu *[3]
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{
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pickProfilesMenu,
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plateRMenu,
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tempsMenu,
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debugMenu,
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},
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3);
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curMenu->setChildrenMatrix(3, new uint8_t[3][2]{
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@ -112,38 +154,11 @@ void OledDisplay::loop()
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ReflowProcessState state = reflowProcessState.get();
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if (state == USER_INPUT)
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{
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display.clearDisplay();
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display.setRotation(0);
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display.setTextSize(2);
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OledMenuItem menuItem = curMenu->getCurItem();
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display.setTextSize(2);
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if (menuItem.identifier >= MENUITEM_THERMISTOR_START && menuItem.identifier < MENUITEM_THERMISTOR_START + 7)
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{
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int thermistorIndex = menuItem.identifier - MENUITEM_THERMISTOR_START;
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if (thermistorIndex == 6) {
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// Showing all
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} else {
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int thermistorTemp = thermistors[thermistorIndex].getTemperature();
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centerText((String(menuItem.title) + ": " + String(thermistorTemp)).c_str());
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displayIndicators();
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}
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}
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else if (curMenu->identifier == MENUID_PLATERES)
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{
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// TODO: Logic for plate resistance
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}
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else
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{
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// draw menu item with selectors.
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centerText(menuItem.title);
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displayIndicators();
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}
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display.display();
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handleUserInputState();
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}
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else if (state >= REFLOW && state <= DONE)
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{
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handleReflowState();
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}
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// Loop implementation
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}
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@ -171,6 +186,7 @@ void OledDisplay::drawDebug()
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}
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void OledDisplay::displayIndicators()
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{
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display.setTextSize(2);
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display.setRotation(1);
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display.setCursor(0, SCREEN_WIDTH / 2 - 5);
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display.print("<");
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@ -190,16 +206,33 @@ void OledDisplay::centerText(const char *txt)
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void OledDisplay::handleUserInputState()
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{
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display.clearDisplay();
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display.setCursor(0, SCREEN_HEIGHT / 2 + 10);
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display.setRotation(0);
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display.setTextSize(2);
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display.display();
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OledMenuItem menuItem = curMenu->getCurItem();
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display.setTextSize(2);
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// THERMISTORS
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if (menuItem.identifier >= MENUITEM_THERMISTOR_START && menuItem.identifier < MENUITEM_THERMISTOR_START + 8)
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{
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handleDrawThermistorMenu(menuItem);
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}
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else if (curMenu->identifier == MENUID_DEBUG)
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{
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drawDebug();
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}
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else
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{
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// Default menu handling. Just display the title and the indicators to go back and forth
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centerText(menuItem.title);
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displayIndicators();
|
||||
display.display();
|
||||
}
|
||||
}
|
||||
void OledDisplay::handleReflowState()
|
||||
{
|
||||
display.clearDisplay();
|
||||
display.setCursor(0, 0);
|
||||
|
||||
display.println("REFLOW");
|
||||
ReflowProcessState state = reflowProcessState.get();
|
||||
centerText(STATE_STR(state));
|
||||
display.display();
|
||||
}
|
||||
|
@ -21,6 +21,7 @@ class OledDisplay {
|
||||
|
||||
void centerText(const char * text);
|
||||
void displayIndicators();
|
||||
void handleDrawThermistorMenu(OledMenuItem item);
|
||||
};
|
||||
|
||||
|
||||
|
@ -6,7 +6,7 @@ AnalogRef analogRef(5.0);
|
||||
TempCalibration calibration_100K_3950 = {25, 100000, 86, 10000, 170, 1000};
|
||||
// Initalize the 3950 100K thermistors with ACTUAL reference resistor measurnment(Measured between Left pin and GND when the board is powered off) using the default calibration data for 100K thermistor
|
||||
Thermistor thermistor1(THERMISTOR1_PIN, 2500);
|
||||
Thermistor thermistor2(THERMISTOR2_PIN, 2500);
|
||||
Thermistor thermistor2(THERMISTOR2_PIN, 1111);
|
||||
Thermistor thermistor3(THERMISTOR3_PIN, 2500);
|
||||
Thermistor thermistor4(THERMISTOR4_PIN, 2500);
|
||||
Thermistor thermistor5(THERMISTOR5_PIN, 2500);
|
||||
|
@ -1,12 +1,6 @@
|
||||
#include "Thermistor.h"
|
||||
|
||||
|
||||
void Thermistor::setPotentiometerResistance(float resistance)
|
||||
{
|
||||
setRes = resistance;
|
||||
calculateCoefficents(resistance, calibration);
|
||||
}
|
||||
|
||||
int Thermistor::getTemperature()
|
||||
{
|
||||
|
||||
@ -26,7 +20,7 @@ int Thermistor::getTemperature()
|
||||
return temp;
|
||||
}
|
||||
|
||||
void Thermistor::calculateCoefficents(float resistance, TempCalibration calibration)
|
||||
void Thermistor::calculateCoefficents(TempCalibration calibration)
|
||||
{
|
||||
|
||||
float lowK = calibration.lowC + K;
|
||||
|
@ -41,27 +41,27 @@ public:
|
||||
// Constructor
|
||||
Thermistor();
|
||||
|
||||
Thermistor(uint8_t pin, float resistance, TempCalibration calibration): thermistorPin(pin), setRes(resistance), calibration(calibration) {
|
||||
calculateCoefficents(resistance, calibration);
|
||||
Thermistor(uint8_t pin, uint16_t resistance, TempCalibration calibration): thermistorPin(pin), setRes(resistance), calibration(calibration) {
|
||||
calculateCoefficents(calibration);
|
||||
}
|
||||
|
||||
Thermistor(uint8_t pin, float resistance): thermistorPin(pin), setRes(resistance), calibration(calibration_100K_3950) {
|
||||
calculateCoefficents(resistance, calibration);
|
||||
Thermistor(uint8_t pin, uint16_t resistance): thermistorPin(pin), setRes(resistance), calibration(calibration_100K_3950) {
|
||||
calculateCoefficents(calibration);
|
||||
}
|
||||
|
||||
// Public Methods
|
||||
int getTemperature();
|
||||
float getResistance();
|
||||
void setPotentiometerResistance(float resistance);
|
||||
|
||||
void setPotentiometerResistance(uint16_t resistance) { setRes = resistance; };
|
||||
uint16_t getPotentiometerResistance() { return setRes; };
|
||||
// Public Variables
|
||||
void calculateCoefficents(float resistance, TempCalibration calibration);
|
||||
void calculateCoefficents(TempCalibration calibration);
|
||||
|
||||
private:
|
||||
const double K = 273.15;
|
||||
float sensorResistance;
|
||||
uint8_t thermistorPin;
|
||||
float setRes;
|
||||
uint16_t setRes;
|
||||
Coefficents coefficents;
|
||||
float referenceResistance;
|
||||
TempCalibration calibration;
|
||||
|
Loading…
Reference in New Issue
Block a user