190 lines
7.1 KiB
C++
190 lines
7.1 KiB
C++
/*
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Speeduino - Simple engine management for the Arduino Mega 2560 platform
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Copyright (C) Josh Stewart
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A full copy of the license may be found in the projects root directory
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*/
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//Old PID method. Retained incase the new one has issues
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//integerPID boostPID(&MAPx100, &boost_pwm_target_value, &boostTargetx100, configPage3.boostKP, configPage3.boostKI, configPage3.boostKD, DIRECT);
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integerPIDnew boostPID(¤tStatus.MAP, &boost_pwm_target_value, &boost_cl_target_boost, configPage3.boostKP, configPage3.boostKI, configPage3.boostKD, DIRECT); //This is the PID object if that algorithm is used. Needs to be global as it maintains state outside of each function call
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/*
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Fan control
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*/
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void initialiseFan()
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{
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if( configPage4.fanInv == 1 ) { fanHIGH = LOW; fanLOW = HIGH; }
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else { fanHIGH = HIGH; fanLOW = LOW; }
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digitalWrite(pinFan, fanLOW); //Initiallise program with the fan in the off state
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currentStatus.fanOn = false;
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}
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void fanControl()
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{
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if( configPage4.fanEnable == 1 )
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{
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int onTemp = (int)configPage4.fanSP - CALIBRATION_TEMPERATURE_OFFSET;
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int offTemp = onTemp - configPage4.fanHyster;
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if ( (!currentStatus.fanOn) && (currentStatus.coolant >= onTemp) ) { digitalWrite(pinFan,fanHIGH); currentStatus.fanOn = true; }
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if ( (currentStatus.fanOn) && (currentStatus.coolant <= offTemp) ) { digitalWrite(pinFan, fanLOW); currentStatus.fanOn = false; }
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}
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}
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#if defined(CORE_AVR) || defined(CORE_TEENSY)
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void initialiseAuxPWM()
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{
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#if defined(CORE_AVR)
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TCCR1B = 0x00; //Disbale Timer1 while we set it up
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TCNT1 = 0; //Reset Timer Count
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TIFR1 = 0x00; //Timer1 INT Flag Reg: Clear Timer Overflow Flag
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TCCR1A = 0x00; //Timer1 Control Reg A: Wave Gen Mode normal (Simply counts up from 0 to 65535 (16-bit int)
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TCCR1B = (1 << CS12); //Timer1 Control Reg B: Timer Prescaler set to 256. 1 tick = 16uS. Refer to http://www.instructables.com/files/orig/F3T/TIKL/H3WSA4V7/F3TTIKLH3WSA4V7.jpg
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#elif defined(CORE_TEENSY)
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//REALLY NEED TO DO THIS!
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#endif
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boost_pin_port = portOutputRegister(digitalPinToPort(pinBoost));
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boost_pin_mask = digitalPinToBitMask(pinBoost);
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vvt_pin_port = portOutputRegister(digitalPinToPort(pinVVT_1));
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vvt_pin_mask = digitalPinToBitMask(pinVVT_1);
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boost_pwm_max_count = 1000000L / (16 * configPage3.boostFreq * 2); //Converts the frequency in Hz to the number of ticks (at 16uS) it takes to complete 1 cycle. The x2 is there because the frequency is stored at half value (in a byte) to allow freqneucies up to 511Hz
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vvt_pwm_max_count = 1000000L / (16 * configPage3.vvtFreq * 2); //Converts the frequency in Hz to the number of ticks (at 16uS) it takes to complete 1 cycle
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//TIMSK1 |= (1 << OCIE1A); <---- Not required as compare A is turned on when needed by boost control
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ENABLE_VVT_TIMER(); //Turn on the B compare unit (ie turn on the interrupt)
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boostPID.SetOutputLimits(percentage(configPage1.boostMinDuty, boost_pwm_max_count) , percentage(configPage1.boostMaxDuty, boost_pwm_max_count));
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boostPID.SetTunings(configPage3.boostKP, configPage3.boostKI, configPage3.boostKD);
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boostPID.SetMode(AUTOMATIC); //Turn PID on
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currentStatus.boostDuty = 0;
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boostCounter = 0;
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}
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void boostControl()
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{
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if( configPage3.boostEnabled==1 )
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{
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if(currentStatus.MAP >= 100)
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{
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MAPx100 = currentStatus.MAP * 100;
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if( (boostCounter & 3) == 1) { boost_cl_target_boost = get3DTableValue(&boostTable, currentStatus.TPS, currentStatus.RPM) * 2; } //Boost target table is in kpa and divided by 2
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//If flex fuel is enabled, there can be an adder to the boost target based on ethanol content
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if( configPage1.flexEnabled == 1 )
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{
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int16_t boostAdder = (((int16_t)configPage1.flexBoostHigh - (int16_t)configPage1.flexBoostLow) * currentStatus.ethanolPct) / 100;
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boostAdder = boostAdder + configPage1.flexBoostLow; //Required in case flexBoostLow is less than 0
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boost_cl_target_boost = boost_cl_target_boost + boostAdder;
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}
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boostTargetx100 = boost_cl_target_boost * 100;
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currentStatus.boostTarget = boost_cl_target_boost >> 1; //Boost target is sent as a byte value to TS and so is divided by 2
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if(currentStatus.boostTarget > 0)
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{
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if( (boostCounter & 31) == 1) { boostPID.SetTunings(configPage3.boostKP, configPage3.boostKI, configPage3.boostKD); } //This only needs to be run very infrequently, once every 32 calls to boostControl(). This is approx. once per second
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boostPID.Compute();
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currentStatus.boostDuty = (unsigned long)(boost_pwm_target_value * 100UL) / boost_pwm_max_count;
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if(currentStatus.boostDuty == 0) { DISABLE_BOOST_TIMER(); BOOST_PIN_LOW(); } //If boost duty is 0, shut everything down
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else { ENABLE_BOOST_TIMER(); } //Turn on the compare unit (ie turn on the interrupt) if boost duty >0
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}
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else
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{
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//If boost target is 0, turn everything off
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DISABLE_BOOST_TIMER(); //Turn off timer
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BOOST_PIN_LOW();
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}
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}
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else
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{
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//Boost control does nothing if kPa below 100
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DISABLE_BOOST_TIMER(); //Turn off timer
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BOOST_PIN_LOW(); //Make sure solenoid is off (0% duty)
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}
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}
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else { DISABLE_BOOST_TIMER(); } // Disable timer channel
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boostCounter++;
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}
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void vvtControl()
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{
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if( configPage3.vvtEnabled == 1 )
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{
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byte vvtDuty = get3DTableValue(&vvtTable, currentStatus.TPS, currentStatus.RPM);
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if(vvtDuty == 0)
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{
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//Make sure solenoid is off (0% duty)
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VVT_PIN_LOW();
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DISABLE_VVT_TIMER();
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}
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else if (vvtDuty >= 100)
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{
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//Make sure solenoid is on (100% duty)
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VVT_PIN_HIGH();
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DISABLE_VVT_TIMER();
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}
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else
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{
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vvt_pwm_target_value = percentage(vvtDuty, vvt_pwm_max_count);
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ENABLE_VVT_TIMER();
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}
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}
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else { DISABLE_VVT_TIMER(); } // Disable timer channel
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}
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//The interrupt to control the Boost PWM
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#if defined(CORE_AVR)
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ISR(TIMER1_COMPA_vect)
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#elif defined (CORE_TEENSY)
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static inline void boostInterrupt() //Most ARM chips can simply call a function
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#endif
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{
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if (boost_pwm_state)
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{
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BOOST_PIN_LOW(); // Switch pin to low
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BOOST_TIMER_COMPARE = BOOST_TIMER_COUNTER + (boost_pwm_max_count - boost_pwm_cur_value);
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boost_pwm_state = false;
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}
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else
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{
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BOOST_PIN_HIGH(); // Switch pin high
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BOOST_TIMER_COMPARE = BOOST_TIMER_COUNTER + boost_pwm_target_value;
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boost_pwm_cur_value = boost_pwm_target_value;
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boost_pwm_state = true;
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}
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}
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//The interrupt to control the VVT PWM
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#if defined(CORE_AVR)
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ISR(TIMER1_COMPB_vect)
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#elif defined (CORE_TEENSY)
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static inline void vvtInterrupt() //Most ARM chips can simply call a function
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#endif
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{
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if (vvt_pwm_state)
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{
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VVT_PIN_LOW(); // Switch pin to low
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VVT_TIMER_COMPARE = VVT_TIMER_COUNTER + (vvt_pwm_max_count - vvt_pwm_cur_value);
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vvt_pwm_state = false;
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}
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else
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{
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VVT_PIN_HIGH(); // Switch pin high
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VVT_TIMER_COMPARE = VVT_TIMER_COUNTER + vvt_pwm_target_value;
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vvt_pwm_cur_value = vvt_pwm_target_value;
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vvt_pwm_state = true;
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}
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}
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#elif defined(CORE_STM32)
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//YET TO BE IMPLEMENTED ON STM32
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void initialiseAuxPWM() { }
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void boostControl() { }
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void vvtControl() { }
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#endif
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