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Far better tip resistance measurement
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@@ -226,11 +226,12 @@ void setStatusLED(const enum StatusLED state) {
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// Dont have one
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}
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uint8_t lastTipResistance = 0; // default to unknown
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uint32_t tipResistanceReadings[4] = {0, 0, 0, 0};
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uint8_t tipResistanceReadingSlot = 0;
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uint8_t getTipResitanceX10() {
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// Return tip resistance in x10 ohms
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uint8_t lastTipResistance = 0; // default to unknown
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const uint8_t numTipResistanceReadings = 3;
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uint32_t tipResistanceReadings[3] = {0, 0, 0};
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uint8_t tipResistanceReadingSlot = 0;
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uint8_t getTipResitanceX10() {
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// Return tip resistance in x10 ohms
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// We can measure this using the op-amp
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return lastTipResistance;
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}
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@@ -255,30 +256,25 @@ uint8_t getTipThermalMass() {
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void performTipResistanceSampleReading() {
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// 0 = read then turn on pullup, 1 = read then turn off pullup, 2 = read then turn on pullup, 3 = final read + turn off pullup
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tipResistanceReadings[tipResistanceReadingSlot] = TipThermoModel::convertTipRawADCTouV(getTipRawTemp(0));
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gpio_write(TIP_RESISTANCE_SENSE, (tipResistanceReadingSlot % 2) ? 0 : 1);
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gpio_write(TIP_RESISTANCE_SENSE, tipResistanceReadingSlot == 0);
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tipResistanceReadingSlot++;
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}
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void FinishMeasureTipResistance() {
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// Otherwise we now have the 4 samples;
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// _^_^ order, 3 delta's, combine these
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// _^_ order, 2 delta's, combine these
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int32_t steps[4] = {
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// Close samples
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tipResistanceReadings[1] - tipResistanceReadings[0],
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tipResistanceReadings[3] - tipResistanceReadings[2],
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tipResistanceReadings[1] - tipResistanceReadings[2],
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// Longer time span samples
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tipResistanceReadings[3] - tipResistanceReadings[0],
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int32_t calculatedSkew = tipResistanceReadings[0] - tipResistanceReadings[2]; // If positive tip is cooling
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calculatedSkew /= 2; // divide by two to get offset per time constant
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};
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// The steps array now contains all 4 changes, these _should_ all be basically the same, but they may not be
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// For example, a hot tip cooling down. In this case there will a difference in them proportional to the temp drop during that time
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auto reading = (steps[0] + steps[1] + steps[2] + steps[3]) / 4;
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// MSG("Tip reading %lu \r\n");
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// As we are only detecting two resistances; we can split the difference for now
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int32_t reading = (((tipResistanceReadings[1] - tipResistanceReadings[0]) + calculatedSkew) // jump 1 - skew
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+ // +
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((tipResistanceReadings[1] - tipResistanceReadings[2]) + calculatedSkew) // jump 2 - skew
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) //
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/ 2; // Take average
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// lastTipResistance = reading / 100;
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// // As we are only detecting two resistances; we can split the difference for now
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uint8_t newRes = 0;
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if (reading > 8000) {
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// return; // Change nothing as probably disconnected tip
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@@ -299,7 +295,7 @@ void performTipMeasurementStep() {
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return;
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}
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nextTipMeasurement = xTaskGetTickCount() + TICKS_100MS;
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if (tipResistanceReadingSlot < 4) {
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if (tipResistanceReadingSlot < numTipResistanceReadings) {
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performTipResistanceSampleReading();
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return;
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}
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@@ -314,7 +310,7 @@ uint8_t preStartChecks() {
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performTipMeasurementStep();
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return preStartChecksDone();
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}
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uint8_t preStartChecksDone() { return (lastTipResistance == 0 || tipResistanceReadingSlot < 4 || tipMeasurementOccuring) ? 0 : 1; }
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uint8_t preStartChecksDone() { return (lastTipResistance == 0 || tipResistanceReadingSlot < numTipResistanceReadings || tipMeasurementOccuring) ? 0 : 1; }
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// Return hardware unique ID if possible
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uint64_t getDeviceID() {
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