### Releases v1.3.1 1. Using `float` instead of `ulong` for better interval accuracy
171 lines
5.9 KiB
Arduino
171 lines
5.9 KiB
Arduino
/****************************************************************************************************************************
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Change_Interval.ino
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RPi_Pico_ISR_Timer-Impl.h
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For RP2040-based boards such as RASPBERRY_PI_PICO, ADAFRUIT_FEATHER_RP2040 and GENERIC_RP2040.
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Written by Khoi Hoang
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Built by Khoi Hoang https://github.com/khoih-prog/RPI_PICO_TimerInterrupt
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Licensed under MIT license
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The RPI_PICO system timer peripheral provides a global microsecond timebase for the system, and generates
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interrupts based on this timebase. It supports the following features:
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• A single 64-bit counter, incrementing once per microsecond
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• This counter can be read from a pair of latching registers, for race-free reads over a 32-bit bus.
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• Four alarms: match on the lower 32 bits of counter, IRQ on match: TIMER_IRQ_0-TIMER_IRQ_3
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Now even you use all these new 16 ISR-based timers,with their maximum interval practically unlimited (limited only by
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unsigned long miliseconds), you just consume only one RPI_PICO timer and avoid conflicting with other cores' tasks.
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The accuracy is nearly perfect compared to software timers. The most important feature is they're ISR-based timers
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Therefore, their executions are not blocked by bad-behaving functions / tasks.
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This important feature is absolutely necessary for mission-critical tasks.
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*****************************************************************************************************************************/
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/*
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Notes:
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Special design is necessary to share data between interrupt code and the rest of your program.
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Variables usually need to be "volatile" types. Volatile tells the compiler to avoid optimizations that assume
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variable can not spontaneously change. Because your function may change variables while your program is using them,
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the compiler needs this hint. But volatile alone is often not enough.
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When accessing shared variables, usually interrupts must be disabled. Even with volatile,
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if the interrupt changes a multi-byte variable between a sequence of instructions, it can be read incorrectly.
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If your data is multiple variables, such as an array and a count, usually interrupts need to be disabled
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or the entire sequence of your code which accesses the data.
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*/
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// These define's must be placed at the beginning before #include "TimerInterrupt_Generic.h"
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// _TIMERINTERRUPT_LOGLEVEL_ from 0 to 4
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// Don't define _TIMERINTERRUPT_LOGLEVEL_ > 0. Only for special ISR debugging only. Can hang the system.
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#define TIMER_INTERRUPT_DEBUG 1
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#define _TIMERINTERRUPT_LOGLEVEL_ 4
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// Can be included as many times as necessary, without `Multiple Definitions` Linker Error
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#include "RPi_Pico_TimerInterrupt.h"
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#ifndef LED_BUILTIN
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#define LED_BUILTIN 25
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#endif
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#define PIN_D1 1 // Pin D1 mapped to pin GPIO1 of RPI_PICO
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volatile uint32_t Timer0Count = 0;
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volatile uint32_t Timer1Count = 0;
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bool TimerHandler0(struct repeating_timer *t)
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{
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(void) t;
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static bool toggle0 = false;
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// Flag for checking to be sure ISR is working as Serial.print is not OK here in ISR
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Timer0Count++;
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#if (TIMER_INTERRUPT_DEBUG > 0)
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Serial.print("ITimer0: millis() = "); Serial.println(millis());
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#endif
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//timer interrupt toggles pin LED_BUILTIN
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digitalWrite(LED_BUILTIN, toggle0);
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toggle0 = !toggle0;
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return true;
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}
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bool TimerHandler1(struct repeating_timer *t)
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{
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(void) t;
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static bool toggle1 = false;
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// Flag for checking to be sure ISR is working as Serial.print is not OK here in ISR
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Timer1Count++;
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#if (TIMER_INTERRUPT_DEBUG > 0)
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Serial.print("ITimer1: millis() = "); Serial.println(millis());
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#endif
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//timer interrupt toggles PIN_D1
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digitalWrite(PIN_D1, toggle1);
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toggle1 = !toggle1;
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return true;
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}
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void printResult(uint32_t currTime)
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{
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Serial.print(F("Time = ")); Serial.print(currTime);
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Serial.print(F(", Timer0Count = ")); Serial.print(Timer0Count);
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Serial.print(F(", Timer1Count = ")); Serial.println(Timer1Count);
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}
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#define TIMER0_INTERVAL_MS 2000
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#define TIMER1_INTERVAL_MS 5000
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// Init ESP32 timer 0
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RPI_PICO_Timer ITimer0(0);
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RPI_PICO_Timer ITimer1(1);
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void setup()
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{
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pinMode(LED_BUILTIN, OUTPUT);
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pinMode(PIN_D1, OUTPUT);
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Serial.begin(115200);
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while (!Serial);
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delay(100);
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Serial.print(F("\nStarting Change_Interval on ")); Serial.println(BOARD_NAME);
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Serial.println(RPI_PICO_TIMER_INTERRUPT_VERSION);
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Serial.print(F("CPU Frequency = ")); Serial.print(F_CPU / 1000000); Serial.println(F(" MHz"));
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// Interval in microsecs
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if (ITimer0.attachInterruptInterval(TIMER0_INTERVAL_MS * 1000, TimerHandler0))
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{
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Serial.print(F("Starting ITimer0 OK, millis() = ")); Serial.println(millis());
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}
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else
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Serial.println(F("Can't set ITimer0. Select another freq. or timer"));
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// Interval in microsecs
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if (ITimer1.attachInterruptInterval(TIMER1_INTERVAL_MS * 1000, TimerHandler1))
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{
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Serial.print(F("Starting ITimer1 OK, millis() = ")); Serial.println(millis());
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}
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else
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Serial.println(F("Can't set ITimer1. Select another freq. or timer"));
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}
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#define CHECK_INTERVAL_MS 10000L
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#define CHANGE_INTERVAL_MS 20000L
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void loop()
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{
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static uint32_t lastTime = 0;
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static uint32_t lastChangeTime = 0;
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static uint32_t currTime;
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static uint32_t multFactor = 0;
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currTime = millis();
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if (currTime - lastTime > CHECK_INTERVAL_MS)
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{
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printResult(currTime);
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lastTime = currTime;
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if (currTime - lastChangeTime > CHANGE_INTERVAL_MS)
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{
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//setInterval(unsigned long interval, timerCallback callback)
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multFactor = (multFactor + 1) % 2;
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ITimer0.setInterval(TIMER0_INTERVAL_MS * 1000 * (multFactor + 1), TimerHandler0);
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ITimer1.setInterval(TIMER1_INTERVAL_MS * 1000 * (multFactor + 1), TimerHandler1);
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Serial.print(F("Changing Interval, Timer0 = ")); Serial.print(TIMER0_INTERVAL_MS * (multFactor + 1));
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Serial.print(F(", Timer1 = ")); Serial.println(TIMER1_INTERVAL_MS * (multFactor + 1));
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lastChangeTime = currTime;
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}
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}
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}
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