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Remove floating point calculation from ac_dimmer ISR (#3770)
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0ac4c055de
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@ -121,11 +121,8 @@ void IRAM_ATTR HOT AcDimmerDataStore::gpio_intr() {
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// calculate time until enable in µs: (1.0-value)*cycle_time, but with integer arithmetic
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// calculate time until enable in µs: (1.0-value)*cycle_time, but with integer arithmetic
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// also take into account min_power
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// also take into account min_power
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auto min_us = this->cycle_time_us * this->min_power / 1000;
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auto min_us = this->cycle_time_us * this->min_power / 1000;
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// calculate required value to provide a true RMS voltage output
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this->enable_time_us = std::max((uint32_t) 1, ((65535 - this->value) * (this->cycle_time_us - min_us)) / 65535);
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this->enable_time_us =
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std::max((uint32_t) 1, (uint32_t)((65535 - (acos(1 - (2 * this->value / 65535.0)) / 3.14159 * 65535)) *
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(this->cycle_time_us - min_us)) /
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65535);
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if (this->method == DIM_METHOD_LEADING_PULSE) {
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if (this->method == DIM_METHOD_LEADING_PULSE) {
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// Minimum pulse time should be enough for the triac to trigger when it is close to the ZC zone
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// Minimum pulse time should be enough for the triac to trigger when it is close to the ZC zone
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// this is for brightness near 99%
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// this is for brightness near 99%
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@ -206,6 +203,7 @@ void AcDimmer::setup() {
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#endif
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#endif
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}
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}
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void AcDimmer::write_state(float state) {
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void AcDimmer::write_state(float state) {
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state = std::acos(1 - (2 * state)) / 3.14159; // RMS power compensation
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auto new_value = static_cast<uint16_t>(roundf(state * 65535));
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auto new_value = static_cast<uint16_t>(roundf(state * 65535));
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if (new_value != 0 && this->store_.value == 0)
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if (new_value != 0 && this->store_.value == 0)
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this->store_.init_cycle = this->init_with_half_cycle_;
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this->store_.init_cycle = this->init_with_half_cycle_;
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