rusefi/firmware/controllers/trigger/trigger_central.cpp

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/*
* @file trigger_central.cpp
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* Here we have a bunch of higher-level methods which are not directly related to actual signal decoding
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*
* @date Feb 23, 2014
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* @author Andrey Belomutskiy, (c) 2012-2020
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*/
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#include "global.h"
#include "os_access.h"
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#include "trigger_central.h"
#include "trigger_decoder.h"
#include "main_trigger_callback.h"
#include "engine_configuration.h"
#include "listener_array.h"
#include "pwm_generator_logic.h"
#include "tooth_logger.h"
#include "hip9011.h"
#include "logic_analyzer.h"
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#include "settings.h"
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#include "engine_math.h"
#include "local_version_holder.h"
#include "trigger_simulator.h"
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#include "rpm_calculator.h"
#include "tooth_logger.h"
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#include "perf_trace.h"
#include "map_averaging.h"
#include "main_trigger_callback.h"
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#if EFI_PROD_CODE
#include "pin_repository.h"
#endif /* EFI_PROD_CODE */
#if EFI_TUNER_STUDIO
#include "tunerstudio.h"
#endif /* EFI_TUNER_STUDIO */
#if EFI_ENGINE_SNIFFER
#include "engine_sniffer.h"
WaveChart waveChart;
#endif /* EFI_ENGINE_SNIFFER */
trigger_central_s::trigger_central_s() : hwEventCounters() {
}
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TriggerCentral::TriggerCentral() : trigger_central_s(),
vvtPosition(),
vvtSyncTimeNt() {
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triggerState.resetTriggerState();
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noiseFilter.resetAccumSignalData();
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}
void TriggerCentral::init(DECLARE_ENGINE_PARAMETER_SIGNATURE) {
INJECT_ENGINE_REFERENCE(&triggerState);
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for (int bankIndex = 0; bankIndex < BANKS_COUNT; bankIndex++) {
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for (int camIndex = 0; camIndex < CAMS_PER_BANK; camIndex++) {
INJECT_ENGINE_REFERENCE(&vvtState[bankIndex][camIndex]);
}
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}
}
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void TriggerNoiseFilter::resetAccumSignalData() {
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memset(lastSignalTimes, 0xff, sizeof(lastSignalTimes)); // = -1
memset(accumSignalPeriods, 0, sizeof(accumSignalPeriods));
memset(accumSignalPrevPeriods, 0, sizeof(accumSignalPrevPeriods));
}
int TriggerCentral::getHwEventCounter(int index) const {
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return hwEventCounters[index];
}
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#if EFI_SHAFT_POSITION_INPUT
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EXTERN_ENGINE;
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static Logging *logger;
angle_t TriggerCentral::getVVTPosition() {
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return vvtPosition[0][0];
}
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#define miataNbIndex (0)
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static bool vvtWithRealDecoder(vvt_mode_e vvtMode) {
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return vvtMode == VVT_MIATA_NB2
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|| vvtMode == VVT_BOSCH_QUICK_START
|| vvtMode == VVT_FORD_ST170
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|| vvtMode == VVT_4_1;
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}
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void hwHandleVvtCamSignal(trigger_value_e front, efitick_t nowNt, int index DECLARE_ENGINE_PARAMETER_SUFFIX) {
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int bankIndex = index / CAMS_PER_BANK;
int camIndex = index % CAMS_PER_BANK;
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TriggerCentral *tc = &engine->triggerCentral;
if (front == TV_RISE) {
tc->vvtEventRiseCounter++;
} else {
tc->vvtEventFallCounter++;
}
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#if VR_HW_CHECK_MODE
// some boards do not have hardware VR input LEDs which makes such boards harder to validate
// from experience we know that assembly mistakes happen and quality control is required
extern ioportid_t criticalErrorLedPort;
extern ioportmask_t criticalErrorLedPin;
for (int i = 0 ; i < 100 ; i++) {
// turning pin ON and busy-waiting a bit
palWritePad(criticalErrorLedPort, criticalErrorLedPin, 1);
}
palWritePad(criticalErrorLedPort, criticalErrorLedPin, 0);
#endif // VR_HW_CHECK_MODE
if (!CONFIG(displayLogicLevelsInEngineSniffer)) {
addEngineSnifferEvent(PROTOCOL_VVT_NAME, front == TV_RISE ? PROTOCOL_ES_UP : PROTOCOL_ES_DOWN);
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#if EFI_TOOTH_LOGGER
if (front == TV_RISE) {
LogTriggerTooth(SHAFT_SECONDARY_RISING, nowNt PASS_ENGINE_PARAMETER_SUFFIX);
} else {
LogTriggerTooth(SHAFT_SECONDARY_FALLING, nowNt PASS_ENGINE_PARAMETER_SUFFIX);
}
#endif /* EFI_TOOTH_LOGGER */
}
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if (!vvtWithRealDecoder(engineConfiguration->vvtMode[camIndex]) && (CONFIG(vvtCamSensorUseRise) ^ (front != TV_FALL))) {
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// todo: there should be a way to always use real trigger code for this logic?
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return;
}
if (CONFIG(displayLogicLevelsInEngineSniffer)) {
if (CONFIG(vvtCamSensorUseRise)) {
// todo: unify TS composite logger code with console Engine Sniffer
// todo: better API to reduce copy/paste?
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#if EFI_TOOTH_LOGGER
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LogTriggerTooth(SHAFT_SECONDARY_RISING, nowNt PASS_ENGINE_PARAMETER_SUFFIX);
LogTriggerTooth(SHAFT_SECONDARY_FALLING, nowNt PASS_ENGINE_PARAMETER_SUFFIX);
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#endif /* EFI_TOOTH_LOGGER */
addEngineSnifferEvent(PROTOCOL_VVT_NAME, PROTOCOL_ES_UP);
addEngineSnifferEvent(PROTOCOL_VVT_NAME, PROTOCOL_ES_DOWN);
} else {
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#if EFI_TOOTH_LOGGER
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LogTriggerTooth(SHAFT_SECONDARY_FALLING, nowNt PASS_ENGINE_PARAMETER_SUFFIX);
LogTriggerTooth(SHAFT_SECONDARY_RISING, nowNt PASS_ENGINE_PARAMETER_SUFFIX);
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#endif /* EFI_TOOTH_LOGGER */
addEngineSnifferEvent(PROTOCOL_VVT_NAME, PROTOCOL_ES_DOWN);
addEngineSnifferEvent(PROTOCOL_VVT_NAME, PROTOCOL_ES_UP);
}
}
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floatus_t oneDegreeUs = engine->rpmCalculator.oneDegreeUs;
if (cisnan(oneDegreeUs)) {
// todo: this code branch is slowing NB2 cranking since we require RPM sync for VVT sync!
// todo: smarter code
//
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// we are here if we are getting VVT position signals while engine is not running
// for example if crank position sensor is broken :)
return;
}
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ENGINE(triggerCentral).vvtState[bankIndex][camIndex].decodeTriggerEvent(
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ENGINE(triggerCentral).vvtShape[camIndex],
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nullptr,
nullptr,
engine->vvtTriggerConfiguration,
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front == TV_RISE ? SHAFT_PRIMARY_RISING : SHAFT_PRIMARY_FALLING, nowNt);
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tc->vvtCamCounter++;
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efitick_t offsetNt = nowNt - tc->timeAtVirtualZeroNt;
angle_t currentPosition = NT2US(offsetNt) / oneDegreeUs;
// convert engine cycle angle into trigger cycle angle
currentPosition -= tdcPosition();
// https://github.com/rusefi/rusefi/issues/1713 currentPosition could be negative that's expected
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#if EFI_UNIT_TEST
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tc->currentVVTEventPosition[bankIndex][camIndex] = currentPosition;
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#endif // EFI_UNIT_TEST
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if (engineConfiguration->debugMode == DBG_VVT) {
#if EFI_TUNER_STUDIO
tsOutputChannels.debugFloatField1 = currentPosition;
#endif /* EFI_TUNER_STUDIO */
}
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switch(engineConfiguration->vvtMode[camIndex]) {
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case VVT_2JZ:
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// we do not know if we are in sync or out of sync, so we have to be looking for both possibilities
if ((currentPosition < engineConfiguration->fsio_setting[14] || currentPosition > engineConfiguration->fsio_setting[15]) &&
(currentPosition < engineConfiguration->fsio_setting[14] + 360 || currentPosition > engineConfiguration->fsio_setting[15] + 360)) {
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// outside of the expected range
return;
}
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break;
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case VVT_MIATA_NB2:
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case VVT_BOSCH_QUICK_START:
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{
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if (engine->triggerCentral.vvtState[bankIndex][camIndex].currentCycle.current_index != 0) {
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// this is not NB2 sync tooth - exiting
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return;
}
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if (engineConfiguration->debugMode == DBG_VVT) {
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#if EFI_TUNER_STUDIO
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tsOutputChannels.debugIntField1++;
#endif /* EFI_TUNER_STUDIO */
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}
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}
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default:
// else, do nothing
break;
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}
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tc->vvtSyncTimeNt[bankIndex][camIndex] = nowNt;
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// we do NOT clamp VVT position into the [0, engineCycle) range - we expect vvtOffset to be configured so that
// it's not necessary
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tc->vvtPosition[bankIndex][camIndex] = engineConfiguration->vvtOffset - currentPosition;
if (tc->vvtPosition[bankIndex][camIndex] < 0 || tc->vvtPosition[bankIndex][camIndex] > ENGINE(engineCycle)) {
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warning(CUSTOM_ERR_VVT_OUT_OF_RANGE, "Please adjust vvtOffset since position %f", tc->vvtPosition);
}
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switch (engineConfiguration->vvtMode[camIndex]) {
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case VVT_FIRST_HALF:
{
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bool isEven = tc->triggerState.isEvenRevolution();
if (!isEven) {
/**
* we are here if we've detected the cam sensor within the wrong crank phase
* let's increase the trigger event counter, that would adjust the state of
* virtual crank-based trigger
*/
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tc->triggerState.incrementTotalEventCounter();
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if (engineConfiguration->debugMode == DBG_VVT) {
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#if EFI_TUNER_STUDIO
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tsOutputChannels.debugIntField1++;
#endif /* EFI_TUNER_STUDIO */
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}
}
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}
break;
case VVT_SECOND_HALF:
{
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bool isEven = tc->triggerState.isEvenRevolution();
if (isEven) {
// see above comment
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tc->triggerState.incrementTotalEventCounter();
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if (engineConfiguration->debugMode == DBG_VVT) {
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#if EFI_TUNER_STUDIO
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tsOutputChannels.debugIntField1++;
#endif /* EFI_TUNER_STUDIO */
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}
}
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}
break;
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case VVT_MIATA_NB2:
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/**
* NB2 is a symmetrical crank, there are four phases total
*/
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while (tc->triggerState.getTotalRevolutionCounter() % 4 != miataNbIndex) {
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tc->triggerState.incrementTotalEventCounter();
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}
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break;
default:
case VVT_INACTIVE:
// do nothing
break;
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}
}
#if EFI_PROD_CODE || EFI_SIMULATOR
int triggerReentraint = 0;
int maxTriggerReentraint = 0;
uint32_t triggerDuration;
uint32_t triggerMaxDuration = 0;
void hwHandleShaftSignal(trigger_event_e signal, efitick_t timestamp) {
ScopePerf perf(PE::HandleShaftSignal);
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// Don't accept trigger input in case of some problems
if (!engine->limpManager.allowTriggerInput()) {
return;
}
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#if VR_HW_CHECK_MODE
// some boards do not have hardware VR input LEDs which makes such boards harder to validate
// from experience we know that assembly mistakes happen and quality control is required
extern ioportid_t criticalErrorLedPort;
extern ioportmask_t criticalErrorLedPin;
for (int i = 0 ; i < 100 ; i++) {
// turning pin ON and busy-waiting a bit
palWritePad(criticalErrorLedPort, criticalErrorLedPin, 1);
}
palWritePad(criticalErrorLedPort, criticalErrorLedPin, 0);
#endif // VR_HW_CHECK_MODE
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#if EFI_TOOTH_LOGGER
// Log to the Tunerstudio tooth logger
// We want to do this before anything else as we
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// actually want to capture any noise/jitter that may be occurring
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bool logLogicState = CONFIG(displayLogicLevelsInEngineSniffer) && CONFIG(useOnlyRisingEdgeForTrigger);
if (!logLogicState) {
// we log physical state even if displayLogicLevelsInEngineSniffer if both fronts are used by decoder
LogTriggerTooth(signal, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
}
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#endif /* EFI_TOOTH_LOGGER */
// for effective noise filtering, we need both signal edges,
// so we pass them to handleShaftSignal() and defer this test
if (!CONFIG(useNoiselessTriggerDecoder)) {
if (!isUsefulSignal(signal, ENGINE(primaryTriggerConfiguration))) {
/**
* no need to process VR falls further
*/
return;
}
}
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#if EFI_TOOTH_LOGGER
if (logLogicState) {
LogTriggerTooth(signal, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
if (signal == SHAFT_PRIMARY_RISING) {
LogTriggerTooth(SHAFT_PRIMARY_FALLING, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
} else {
LogTriggerTooth(SHAFT_SECONDARY_FALLING, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
}
}
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#endif /* EFI_TOOTH_LOGGER */
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uint32_t triggerHandlerEntryTime = getTimeNowLowerNt();
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if (triggerReentraint > maxTriggerReentraint)
maxTriggerReentraint = triggerReentraint;
triggerReentraint++;
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ENGINE(triggerCentral).handleShaftSignal(signal, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
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triggerReentraint--;
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triggerDuration = getTimeNowLowerNt() - triggerHandlerEntryTime;
triggerMaxDuration = maxI(triggerMaxDuration, triggerDuration);
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}
#endif /* EFI_PROD_CODE */
void TriggerCentral::resetCounters() {
memset(hwEventCounters, 0, sizeof(hwEventCounters));
}
static char shaft_signal_msg_index[15];
static const bool isUpEvent[6] = { false, true, false, true, false, true };
static const char *eventId[6] = { PROTOCOL_CRANK1, PROTOCOL_CRANK1, PROTOCOL_CRANK2, PROTOCOL_CRANK2, PROTOCOL_CRANK3, PROTOCOL_CRANK3 };
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static void reportEventToWaveChart(trigger_event_e ckpSignalType, int index DECLARE_ENGINE_PARAMETER_SUFFIX) {
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if (!ENGINE(isEngineChartEnabled)) { // this is here just as a shortcut so that we avoid engine sniffer as soon as possible
return; // engineSnifferRpmThreshold is accounted for inside ENGINE(isEngineChartEnabled)
}
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itoa10(&shaft_signal_msg_index[2], index);
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bool isUp = isUpEvent[(int) ckpSignalType];
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shaft_signal_msg_index[0] = isUp ? 'u' : 'd';
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addEngineSnifferEvent(eventId[(int )ckpSignalType], (char* ) shaft_signal_msg_index);
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if (engineConfiguration->useOnlyRisingEdgeForTrigger) {
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// let's add the opposite event right away
shaft_signal_msg_index[0] = isUp ? 'd' : 'u';
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addEngineSnifferEvent(eventId[(int )ckpSignalType], (char* ) shaft_signal_msg_index);
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}
}
/**
* This is used to filter noise spikes (interference) in trigger signal. See
* The basic idea is to use not just edges, but the average amount of time the signal stays in '0' or '1'.
* So we update 'accumulated periods' to track where the signal is.
* And then compare between the current period and previous, with some tolerance (allowing for the wheel speed change).
* @return true if the signal is passed through.
*/
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bool TriggerNoiseFilter::noiseFilter(efitick_t nowNt,
TriggerState * triggerState,
trigger_event_e signal DECLARE_ENGINE_PARAMETER_SUFFIX) {
// todo: find a better place for these defs
static const trigger_event_e opposite[6] = { SHAFT_PRIMARY_RISING, SHAFT_PRIMARY_FALLING, SHAFT_SECONDARY_RISING, SHAFT_SECONDARY_FALLING,
SHAFT_3RD_RISING, SHAFT_3RD_FALLING };
static const trigger_wheel_e triggerIdx[6] = { T_PRIMARY, T_PRIMARY, T_SECONDARY, T_SECONDARY, T_CHANNEL_3, T_CHANNEL_3 };
// we process all trigger channels independently
trigger_wheel_e ti = triggerIdx[signal];
// falling is opposite to rising, and vise versa
trigger_event_e os = opposite[signal];
// todo: currently only primary channel is filtered, because there are some weird trigger types on other channels
if (ti != T_PRIMARY)
return true;
// update period accumulator: for rising signal, we update '0' accumulator, and for falling - '1'
if (lastSignalTimes[signal] != -1)
accumSignalPeriods[signal] += nowNt - lastSignalTimes[signal];
// save current time for this trigger channel
lastSignalTimes[signal] = nowNt;
// now we want to compare current accumulated period to the stored one
efitick_t currentPeriod = accumSignalPeriods[signal];
// the trick is to compare between different
efitick_t allowedPeriod = accumSignalPrevPeriods[os];
// but first check if we're expecting a gap
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bool isGapExpected = TRIGGER_WAVEFORM(isSynchronizationNeeded) && triggerState->shaft_is_synchronized &&
(triggerState->currentCycle.eventCount[ti] + 1) == TRIGGER_WAVEFORM(expectedEventCount[ti]);
if (isGapExpected) {
// usually we need to extend the period for gaps, based on the trigger info
allowedPeriod *= TRIGGER_WAVEFORM(syncRatioAvg);
}
// also we need some margin for rapidly changing trigger-wheel speed,
// that's why we expect the period to be no less than 2/3 of the previous period (this is just an empirical 'magic' coef.)
efitick_t minAllowedPeriod = 2 * allowedPeriod / 3;
// but no longer than 5/4 of the previous 'normal' period
efitick_t maxAllowedPeriod = 5 * allowedPeriod / 4;
// above all, check if the signal comes not too early
if (currentPeriod >= minAllowedPeriod) {
// now we store this period as a reference for the next time,
// BUT we store only 'normal' periods, and ignore too long periods (i.e. gaps)
if (!isGapExpected && (maxAllowedPeriod == 0 || currentPeriod <= maxAllowedPeriod)) {
accumSignalPrevPeriods[signal] = currentPeriod;
}
// reset accumulator
accumSignalPeriods[signal] = 0;
return true;
}
// all premature or extra-long events are ignored - treated as interference
return false;
}
/**
* This method is NOT invoked for VR falls.
*/
void TriggerCentral::handleShaftSignal(trigger_event_e signal, efitick_t timestamp DECLARE_ENGINE_PARAMETER_SUFFIX) {
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if (triggerShape.shapeDefinitionError) {
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// trigger is broken, we cannot do anything here
warning(CUSTOM_ERR_UNEXPECTED_SHAFT_EVENT, "Shaft event while trigger is mis-configured");
// magic value to indicate a problem
hwEventCounters[0] = 155;
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return;
}
// This code gathers some statistics on signals and compares accumulated periods to filter interference
if (CONFIG(useNoiselessTriggerDecoder)) {
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if (!noiseFilter.noiseFilter(timestamp, &triggerState, signal PASS_ENGINE_PARAMETER_SUFFIX)) {
return;
}
if (!isUsefulSignal(signal, ENGINE(primaryTriggerConfiguration))) {
return;
}
}
engine->onTriggerSignalEvent(timestamp);
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m_lastEventTimer.reset(timestamp);
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int eventIndex = (int) signal;
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efiAssertVoid(CUSTOM_TRIGGER_EVENT_TYPE, eventIndex >= 0 && eventIndex < HW_EVENT_TYPES, "signal type");
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hwEventCounters[eventIndex]++;
/**
* This invocation changes the state of triggerState
*/
triggerState.decodeTriggerEvent(triggerShape,
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nullptr,
engine,
engine->primaryTriggerConfiguration,
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signal, timestamp);
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/**
* If we only have a crank position sensor with four stroke, here we are extending crank revolutions with a 360 degree
* cycle into a four stroke, 720 degrees cycle.
*/
int triggerIndexForListeners;
operation_mode_e operationMode = engine->getOperationMode(PASS_ENGINE_PARAMETER_SIGNATURE);
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if (operationMode == FOUR_STROKE_CAM_SENSOR || operationMode == TWO_STROKE) {
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// That's easy - trigger cycle matches engine cycle
triggerIndexForListeners = triggerState.getCurrentIndex();
} else {
int crankDivider = operationMode == FOUR_STROKE_CRANK_SENSOR ? 2 : SYMMETRICAL_CRANK_SENSOR_DIVIDER;
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int crankInternalIndex = triggerState.getTotalRevolutionCounter() % crankDivider;
triggerIndexForListeners = triggerState.getCurrentIndex() + (crankInternalIndex * getTriggerSize());
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}
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if (triggerIndexForListeners == 0) {
timeAtVirtualZeroNt = timestamp;
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}
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reportEventToWaveChart(signal, triggerIndexForListeners PASS_ENGINE_PARAMETER_SUFFIX);
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if (!triggerState.shaft_is_synchronized) {
// we should not propagate event if we do not know where we are
return;
}
if (triggerState.isValidIndex(ENGINE(triggerCentral.triggerShape))) {
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ScopePerf perf(PE::ShaftPositionListeners);
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#if TRIGGER_EXTREME_LOGGING
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scheduleMsg(logger, "trigger %d %d %d", triggerIndexForListeners, getRevolutionCounter(), (int)getTimeNowUs());
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#endif /* TRIGGER_EXTREME_LOGGING */
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rpmShaftPositionCallback(signal, triggerIndexForListeners, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
#if !EFI_UNIT_TEST
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tdcMarkCallback(triggerIndexForListeners, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
#endif
#if !EFI_UNIT_TEST
#if EFI_MAP_AVERAGING
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mapAveragingTriggerCallback(triggerIndexForListeners, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
#endif /* EFI_MAP_AVERAGING */
#endif /* EFI_UNIT_TEST */
#if EFI_HIP_9011
if (CONFIG(isHip9011Enabled)) {
intHoldCallback(signal, triggerIndexForListeners, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
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}
#endif
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#if EFI_LOGIC_ANALYZER
waTriggerEventListener(signal, triggerIndexForListeners, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
#endif
mainTriggerCallback(triggerIndexForListeners, timestamp PASS_ENGINE_PARAMETER_SUFFIX);
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}
}
EXTERN_ENGINE;
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static void triggerShapeInfo(void) {
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#if EFI_PROD_CODE || EFI_SIMULATOR
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TriggerWaveform *shape = &engine->triggerCentral.triggerShape;
TriggerFormDetails *triggerFormDetails = &engine->triggerCentral.triggerFormDetails;
scheduleMsg(logger, "useRise=%s", boolToString(TRIGGER_WAVEFORM(useRiseEdge)));
scheduleMsg(logger, "gap from %.2f to %.2f", TRIGGER_WAVEFORM(syncronizationRatioFrom[0]), TRIGGER_WAVEFORM(syncronizationRatioTo[0]));
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for (size_t i = 0; i < shape->getSize(); i++) {
scheduleMsg(logger, "event %d %.2f", i, triggerFormDetails->eventAngles[i]);
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}
#endif
}
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#if EFI_PROD_CODE
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extern PwmConfig triggerSignal;
#endif /* #if EFI_PROD_CODE */
#if HAL_USE_ICU == TRUE
extern int icuRisingCallbackCounter;
extern int icuFallingCallbackCounter;
#endif /* HAL_USE_ICU */
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void triggerInfo(void) {
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#if EFI_PROD_CODE || EFI_SIMULATOR
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TriggerWaveform *ts = &engine->triggerCentral.triggerShape;
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#if (HAL_TRIGGER_USE_PAL == TRUE) && (PAL_USE_CALLBACKS == TRUE)
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scheduleMsg(logger, "trigger PAL mode %d", engine->hwTriggerInputEnabled);
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#else
#if HAL_USE_ICU == TRUE
scheduleMsg(logger, "trigger ICU hw: %d %d %d", icuRisingCallbackCounter, icuFallingCallbackCounter, engine->hwTriggerInputEnabled);
#endif /* HAL_USE_ICU */
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#endif /* HAL_TRIGGER_USE_PAL */
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scheduleMsg(logger, "Template %s (%d) trigger %s (%d) useRiseEdge=%s onlyFront=%s useOnlyFirstChannel=%s tdcOffset=%.2f",
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getConfigurationName(engineConfiguration->engineType), engineConfiguration->engineType,
getTrigger_type_e(engineConfiguration->trigger.type), engineConfiguration->trigger.type,
boolToString(TRIGGER_WAVEFORM(useRiseEdge)), boolToString(engineConfiguration->useOnlyRisingEdgeForTrigger),
boolToString(engineConfiguration->trigger.useOnlyFirstChannel), TRIGGER_WAVEFORM(tdcPosition));
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if (engineConfiguration->trigger.type == TT_TOOTHED_WHEEL) {
scheduleMsg(logger, "total %d/skipped %d", engineConfiguration->trigger.customTotalToothCount,
engineConfiguration->trigger.customSkippedToothCount);
}
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scheduleMsg(logger, "trigger#1 event counters up=%d/down=%d", engine->triggerCentral.getHwEventCounter(0),
engine->triggerCentral.getHwEventCounter(1));
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if (ts->needSecondTriggerInput) {
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scheduleMsg(logger, "trigger#2 event counters up=%d/down=%d", engine->triggerCentral.getHwEventCounter(2),
engine->triggerCentral.getHwEventCounter(3));
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}
scheduleMsg(logger, "expected cycle events %d/%d/%d", TRIGGER_WAVEFORM(expectedEventCount[0]),
TRIGGER_WAVEFORM(expectedEventCount[1]), TRIGGER_WAVEFORM(expectedEventCount[2]));
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scheduleMsg(logger, "trigger type=%d/need2ndChannel=%s", engineConfiguration->trigger.type,
boolToString(TRIGGER_WAVEFORM(needSecondTriggerInput)));
scheduleMsg(logger, "expected duty #0=%.2f/#1=%.2f", TRIGGER_WAVEFORM(expectedDutyCycle[0]), TRIGGER_WAVEFORM(expectedDutyCycle[1]));
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scheduleMsg(logger, "synchronizationNeeded=%s/isError=%s/total errors=%d ord_err=%d/total revolutions=%d/self=%s",
boolToString(ts->isSynchronizationNeeded),
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boolToString(isTriggerDecoderError()), engine->triggerCentral.triggerState.totalTriggerErrorCounter,
engine->triggerCentral.triggerState.orderingErrorCounter, engine->triggerCentral.triggerState.getTotalRevolutionCounter(),
boolToString(engine->directSelfStimulation));
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if (TRIGGER_WAVEFORM(isSynchronizationNeeded)) {
scheduleMsg(logger, "gap from %.2f to %.2f", TRIGGER_WAVEFORM(syncronizationRatioFrom[0]), TRIGGER_WAVEFORM(syncronizationRatioTo[0]));
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}
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#endif /* EFI_PROD_CODE || EFI_SIMULATOR */
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#if EFI_PROD_CODE
if (HAVE_CAM_INPUT()) {
scheduleMsg(logger, "VVT input: %s mode %s", hwPortname(engineConfiguration->camInputs[0]),
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getVvt_mode_e(engineConfiguration->vvtMode[0]));
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scheduleMsg(logger, "VVT event counters: %d/%d", engine->triggerCentral.vvtEventRiseCounter, engine->triggerCentral.vvtEventFallCounter);
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}
scheduleMsg(logger, "primary trigger input: %s", hwPortname(CONFIG(triggerInputPins)[0]));
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scheduleMsg(logger, "primary trigger simulator: %s %s freq=%d",
hwPortname(CONFIG(triggerSimulatorPins)[0]),
getPin_output_mode_e(CONFIG(triggerSimulatorPinModes)[0]),
CONFIG(triggerSimulatorFrequency));
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if (ts->needSecondTriggerInput) {
scheduleMsg(logger, "secondary trigger input: %s", hwPortname(CONFIG(triggerInputPins)[1]));
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#if EFI_EMULATE_POSITION_SENSORS
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scheduleMsg(logger, "secondary trigger simulator: %s %s phase=%d",
hwPortname(CONFIG(triggerSimulatorPins)[1]),
getPin_output_mode_e(CONFIG(triggerSimulatorPinModes)[1]), triggerSignal.safe.phaseIndex);
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#endif /* EFI_EMULATE_POSITION_SENSORS */
}
// scheduleMsg(logger, "3rd trigger simulator: %s %s", hwPortname(CONFIG(triggerSimulatorPins)[2]),
// getPin_output_mode_e(CONFIG(triggerSimulatorPinModes)[2]));
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scheduleMsg(logger, "trigger error extra LED: %s %s", hwPortname(CONFIG(triggerErrorPin)),
getPin_output_mode_e(CONFIG(triggerErrorPinMode)));
scheduleMsg(logger, "primary logic input: %s", hwPortname(CONFIG(logicAnalyzerPins)[0]));
scheduleMsg(logger, "secondary logic input: %s", hwPortname(CONFIG(logicAnalyzerPins)[1]));
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scheduleMsg(logger, "totalTriggerHandlerMaxTime=%d", triggerMaxDuration);
#endif /* EFI_PROD_CODE */
}
static void resetRunningTriggerCounters() {
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#if !EFI_UNIT_TEST
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engine->triggerCentral.resetCounters();
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triggerInfo();
#endif
}
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void onConfigurationChangeTriggerCallback(DECLARE_ENGINE_PARAMETER_SIGNATURE) {
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bool changed = false;
for (int i = 0; i < CAM_INPUTS_COUNT; i++) {
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changed |= isConfigurationChanged(camInputs[i]);
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}
changed |=
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isConfigurationChanged(trigger.type) ||
isConfigurationChanged(ambiguousOperationMode) ||
isConfigurationChanged(useOnlyRisingEdgeForTrigger) ||
isConfigurationChanged(globalTriggerAngleOffset) ||
isConfigurationChanged(trigger.customTotalToothCount) ||
isConfigurationChanged(trigger.customSkippedToothCount) ||
isConfigurationChanged(triggerInputPins[0]) ||
isConfigurationChanged(triggerInputPins[1]) ||
isConfigurationChanged(triggerInputPins[2]) ||
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isConfigurationChanged(vvtMode) ||
isConfigurationChanged(vvtCamSensorUseRise) ||
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isConfigurationChanged(vvtOffset);
if (changed) {
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assertEngineReference();
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#if EFI_ENGINE_CONTROL
ENGINE(initializeTriggerWaveform(logger PASS_ENGINE_PARAMETER_SUFFIX));
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engine->triggerCentral.noiseFilter.resetAccumSignalData();
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#endif
}
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#if EFI_DEFAILED_LOGGING
scheduleMsg(logger, "isTriggerConfigChanged=%d", engine->isTriggerConfigChanged);
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#endif /* EFI_DEFAILED_LOGGING */
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// we do not want to miss two updates in a row
engine->isTriggerConfigChanged = engine->isTriggerConfigChanged || changed;
}
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/**
* @returns true if configuration just changed, and if that change has affected trigger
*/
bool checkIfTriggerConfigChanged(DECLARE_ENGINE_PARAMETER_SIGNATURE) {
bool result = engine->triggerVersion.isOld(engine->getGlobalConfigurationVersion()) && engine->isTriggerConfigChanged;
engine->isTriggerConfigChanged = false; // whoever has called the method is supposed to react to changes
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return result;
}
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bool isTriggerConfigChanged(DECLARE_ENGINE_PARAMETER_SIGNATURE) {
return engine->isTriggerConfigChanged;
}
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void initTriggerCentral(Logging *sharedLogger) {
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logger = sharedLogger;
strcpy((char*) shaft_signal_msg_index, "x_");
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#if EFI_ENGINE_SNIFFER
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initWaveChart(&waveChart);
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#endif /* EFI_ENGINE_SNIFFER */
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#if EFI_PROD_CODE || EFI_SIMULATOR
addConsoleAction(CMD_TRIGGERINFO, triggerInfo);
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addConsoleAction("trigger_shape_info", triggerShapeInfo);
addConsoleAction("reset_trigger", resetRunningTriggerCounters);
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#endif // EFI_PROD_CODE || EFI_SIMULATOR
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}
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/**
* @return TRUE is something is wrong with trigger decoding
*/
bool isTriggerDecoderError(DECLARE_ENGINE_PARAMETER_SIGNATURE) {
return engine->triggerErrorDetection.sum(6) > 4;
}
#endif // EFI_SHAFT_POSITION_INPUT