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AnalogModule and DigitalModule classes still exist, at least until they are refactored into the classes that use them. Change-Id: I5544d5418822f19d54ba0a5d651e64fad8b7b10d
293 lines
7.8 KiB
C++
293 lines
7.8 KiB
C++
/*----------------------------------------------------------------------------*/
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/* Copyright (c) FIRST 2008. All Rights Reserved. */
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/* Open Source Software - may be modified and shared by FRC teams. The code */
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/* must be accompanied by the FIRST BSD license file in $(WIND_BASE)/WPILib. */
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/*----------------------------------------------------------------------------*/
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#include "DigitalOutput.h"
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#include "DigitalModule.h"
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//#include "NetworkCommunication/UsageReporting.h"
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#include "Resource.h"
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#include "WPIErrors.h"
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extern Resource *interruptsResource;
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/**
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* Create an instance of a DigitalOutput.
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* Creates a digital output given a channel. Common creation routine for all
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* constructors.
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*/
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void DigitalOutput::InitDigitalOutput(uint32_t channel)
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{
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m_table = NULL;
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char buf[64];
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if (!CheckDigitalChannel(channel))
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{
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snprintf(buf, 64, "Digital Channel %d", channel);
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wpi_setWPIErrorWithContext(ChannelIndexOutOfRange, buf);
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return;
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}
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m_channel = channel;
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m_pwmGenerator = ~0ul;
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m_module = DigitalModule::GetInstance(1);
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m_module->AllocateDIO(m_channel, false);
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HALReport(HALUsageReporting::kResourceType_DigitalOutput, channel);
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}
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/**
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* Create an instance of a digital output.
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* Create a digital output given a channel.
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*
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* @param channel The digital channel (0..19)
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*/
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DigitalOutput::DigitalOutput(uint32_t channel)
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{
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InitDigitalOutput(channel);
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}
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/**
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* Free the resources associated with a digital output.
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*/
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DigitalOutput::~DigitalOutput()
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{
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if (StatusIsFatal()) return;
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// Disable the PWM in case it was running.
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DisablePWM();
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m_module->FreeDIO(m_channel);
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}
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/**
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* Set the value of a digital output.
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* Set the value of a digital output to either one (true) or zero (false).
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*/
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void DigitalOutput::Set(uint32_t value)
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{
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if (StatusIsFatal()) return;
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m_module->SetDIO(m_channel, value);
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}
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/**
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* @return The GPIO channel number that this object represents.
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*/
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uint32_t DigitalOutput::GetChannel()
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{
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return m_channel;
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}
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/**
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* Output a single pulse on the digital output line.
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* Send a single pulse on the digital output line where the pulse diration is specified in seconds.
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* Maximum pulse length is 0.0016 seconds.
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* @param length The pulselength in seconds
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*/
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void DigitalOutput::Pulse(float length)
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{
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if (StatusIsFatal()) return;
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m_module->Pulse(m_channel, length);
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}
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/**
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* Determine if the pulse is still going.
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* Determine if a previously started pulse is still going.
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*/
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bool DigitalOutput::IsPulsing()
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{
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if (StatusIsFatal()) return false;
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return m_module->IsPulsing(m_channel);
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}
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/**
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* Change the PWM frequency of the PWM output on a Digital Output line.
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*
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* The valid range is from 0.6 Hz to 19 kHz. The frequency resolution is logarithmic.
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*
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* There is only one PWM frequency per digital module.
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*
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* @param rate The frequency to output all digital output PWM signals on this module.
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*/
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void DigitalOutput::SetPWMRate(float rate)
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{
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if (StatusIsFatal()) return;
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m_module->SetDO_PWMRate(rate);
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}
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/**
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* Enable a PWM Output on this line.
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*
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* Allocate one of the 4 DO PWM generator resources from this module.
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*
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* Supply the initial duty-cycle to output so as to avoid a glitch when first starting.
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*
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* The resolution of the duty cycle is 8-bit for low frequencies (1kHz or less)
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* but is reduced the higher the frequency of the PWM signal is.
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*
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* @param initialDutyCycle The duty-cycle to start generating. [0..1]
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*/
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void DigitalOutput::EnablePWM(float initialDutyCycle)
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{
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if (StatusIsFatal()) return;
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if (m_pwmGenerator != ~0ul) return;
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m_pwmGenerator = m_module->AllocateDO_PWM();
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m_module->SetDO_PWMDutyCycle(m_pwmGenerator, initialDutyCycle);
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m_module->SetDO_PWMOutputChannel(m_pwmGenerator, m_channel);
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}
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/**
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* Change this line from a PWM output back to a static Digital Output line.
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*
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* Free up one of the 4 DO PWM generator resources that were in use.
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*/
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void DigitalOutput::DisablePWM()
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{
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if (StatusIsFatal()) return;
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// Disable the output by routing to a dead bit.
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m_module->SetDO_PWMOutputChannel(m_pwmGenerator, kDigitalChannels);
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m_module->FreeDO_PWM(m_pwmGenerator);
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m_pwmGenerator = ~0ul;
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}
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/**
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* Change the duty-cycle that is being generated on the line.
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*
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* The resolution of the duty cycle is 8-bit for low frequencies (1kHz or less)
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* but is reduced the higher the frequency of the PWM signal is.
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*
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* @param dutyCycle The duty-cycle to change to. [0..1]
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*/
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void DigitalOutput::UpdateDutyCycle(float dutyCycle)
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{
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if (StatusIsFatal()) return;
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m_module->SetDO_PWMDutyCycle(m_pwmGenerator, dutyCycle);
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}
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/**
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* @return The value to be written to the channel field of a routing mux.
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*/
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uint32_t DigitalOutput::GetChannelForRouting()
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{
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return DigitalModule::RemapDigitalChannel(GetChannel() - 1);
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}
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/**
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* @return The value to be written to the module field of a routing mux.
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*/
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uint32_t DigitalOutput::GetModuleForRouting()
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{
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if (StatusIsFatal()) return 0;
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return m_module->GetNumber() - 1;
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}
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/**
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* @return The value to be written to the analog trigger field of a routing mux.
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*/
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bool DigitalOutput::GetAnalogTriggerForRouting()
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{
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return false;
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}
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/**
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* Request interrupts asynchronously on this digital output.
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* @param handler The address of the interrupt handler function of type tInterruptHandler that
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* will be called whenever there is an interrupt on the digitial output port.
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* Request interrupts in synchronus mode where the user program interrupt handler will be
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* called when an interrupt occurs.
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* The default is interrupt on rising edges only.
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*/
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void DigitalOutput::RequestInterrupts(InterruptHandlerFunction handler, void *param)
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{
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if (StatusIsFatal()) return;
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uint32_t index = interruptsResource->Allocate("Sync Interrupt");
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if (index == ~0ul)
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{
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CloneError(interruptsResource);
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return;
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}
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m_interruptIndex = index;
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// Creates a manager too
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AllocateInterrupts(false);
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int32_t status = 0;
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requestInterrupts(m_interrupt, 1, GetChannelForRouting(),
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GetAnalogTriggerForRouting(), &status);
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SetUpSourceEdge(true, false);
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attachInterruptHandler(m_interrupt, handler, param, &status);
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wpi_setErrorWithContext(status, getHALErrorMessage(status));
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}
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/**
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* Request interrupts synchronously on this digital output.
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* Request interrupts in synchronus mode where the user program will have to explicitly
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* wait for the interrupt to occur.
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* The default is interrupt on rising edges only.
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*/
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void DigitalOutput::RequestInterrupts()
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{
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if (StatusIsFatal()) return;
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uint32_t index = interruptsResource->Allocate("Sync Interrupt");
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if (index == ~0ul)
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{
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CloneError(interruptsResource);
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return;
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}
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m_interruptIndex = index;
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AllocateInterrupts(true);
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int32_t status = 0;
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requestInterrupts(m_interrupt, GetModuleForRouting(), GetChannelForRouting(),
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GetAnalogTriggerForRouting(), &status);
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wpi_setErrorWithContext(status, getHALErrorMessage(status));
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SetUpSourceEdge(true, false);
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}
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void DigitalOutput::SetUpSourceEdge(bool risingEdge, bool fallingEdge)
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{
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if (StatusIsFatal()) return;
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if (m_interrupt == NULL)
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{
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wpi_setWPIErrorWithContext(NullParameter, "You must call RequestInterrupts before SetUpSourceEdge");
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return;
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}
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if (m_interrupt != NULL)
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{
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int32_t status = 0;
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setInterruptUpSourceEdge(m_interrupt, risingEdge, fallingEdge, &status);
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wpi_setErrorWithContext(status, getHALErrorMessage(status));
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}
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}
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void DigitalOutput::ValueChanged(ITable* source, const std::string& key, EntryValue value, bool isNew) {
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Set(value.b);
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}
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void DigitalOutput::UpdateTable() {
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}
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void DigitalOutput::StartLiveWindowMode() {
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if (m_table != NULL) {
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m_table->AddTableListener("Value", this, true);
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}
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}
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void DigitalOutput::StopLiveWindowMode() {
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if (m_table != NULL) {
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m_table->RemoveTableListener(this);
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}
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}
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std::string DigitalOutput::GetSmartDashboardType() {
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return "Digital Output";
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}
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void DigitalOutput::InitTable(ITable *subTable) {
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m_table = subTable;
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UpdateTable();
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}
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ITable * DigitalOutput::GetTable() {
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return m_table;
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}
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