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skogaby_OpeNITHM/CapacitiveSensor.cpp
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/*
CapacitiveSense.h - Capacitive Sensing Library for 'duino / Wiring
https://github.com/PaulStoffregen/CapacitiveSensor
http://www.pjrc.com/teensy/td_libs_CapacitiveSensor.html
http://playground.arduino.cc/Main/CapacitiveSensor
Copyright (c) 2009 Paul Bagder
Updates for other hardare by Paul Stoffregen, 2010-2016
vim: set ts=4:
Permission is hereby granted, free of charge, to any person obtaining a
copy of this software and associated documentation files (the "Software"),
to deal in the Software without restriction, including without limitation
the rights to use, copy, modify, merge, publish, distribute, sublicense,
and/or sell copies of the Software, and to permit persons to whom the
Software is furnished to do so, subject to the following conditions:
The above copyright notice and this permission notice shall be included in
all copies or substantial portions of the Software.
THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND, EXPRESS OR
IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF MERCHANTABILITY,
FITNESS FOR A PARTICULAR PURPOSE AND NONINFRINGEMENT. IN NO EVENT SHALL THE
AUTHORS OR COPYRIGHT HOLDERS BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER
LIABILITY, WHETHER IN AN ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING
FROM, OUT OF OR IN CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER
DEALINGS IN THE SOFTWARE.
*/
#if ARDUINO >= 100
#include "Arduino.h"
#else
#include "WProgram.h"
#include "pins_arduino.h"
#include "WConstants.h"
#endif
#include "CapacitiveSensor.h"
// Constructor /////////////////////////////////////////////////////////////////
// Function that handles the creation and setup of instances
CapacitiveSensor::CapacitiveSensor(uint8_t sendPin, uint8_t receivePin1, uint8_t receivePin2)
{
// initialize this instance's variables
error = 1;
loopTimingFactor = 310; // determined empirically - a hack
CS_Timeout_Millis = (200 * (float)loopTimingFactor * (float)F_CPU) / 16000000;
// Serial.print("timwOut = ");
// Serial.println(CS_Timeout_Millis);
// get pin mapping and port for send Pin - from PinMode function in core
#ifdef NUM_DIGITAL_PINS
if (sendPin >= NUM_DIGITAL_PINS) error = -1;
if (receivePin1 >= NUM_DIGITAL_PINS) error = -1;
if (receivePin2 >= NUM_DIGITAL_PINS) error = -1;
#endif
pinMode(sendPin, OUTPUT); // sendpin to OUTPUT
pinMode(receivePin1, INPUT); // receivePin to INPUT
pinMode(receivePin2, INPUT); // receivePin to INPUT
sBit = PIN_TO_BITMASK(sendPin); // get send pin's ports and bitmask
sReg = PIN_TO_BASEREG(sendPin); // get pointer to output register
r1Bit = PIN_TO_BITMASK(receivePin1);
r1Reg = PIN_TO_BASEREG(receivePin1);
r2Bit = PIN_TO_BITMASK(receivePin2);
r2Reg = PIN_TO_BASEREG(receivePin2);
retVal = new unsigned int[2];
}
// Public Methods //////////////////////////////////////////////////////////////
// Functions available in Wiring sketches, this library, and other libraries
unsigned int* CapacitiveSensor::sense(uint8_t samples)
{
total1 = 0;
total2 = 0;
noInterrupts();
for (uint8_t i = 0; i < samples; i++) {
if (!SenseOneCycle()) return nullptr; // variable over timeout
}
interrupts();
retVal[0] = total1;
retVal[1] = total2;
return retVal;
}
// Private Methods /////////////////////////////////////////////////////////////
// Functions only available to other functions in this library
int CapacitiveSensor::SenseOneCycle(void)
{
DIRECT_WRITE_LOW(sReg, sBit); // sendPin Register low
DIRECT_MODE_INPUT(r1Reg, r1Bit); // r1eceivePin to input (pullups ar1e off)
DIRECT_MODE_OUTPUT(r1Reg, r1Bit); // r1eceivePin to OUTPUT
DIRECT_WRITE_LOW(r1Reg, r1Bit); // pin is now LOW AND OUTPUT
delayMicroseconds(10);
DIRECT_MODE_INPUT(r1Reg, r1Bit); // r1eceivePin to input (pullups ar1e off)
DIRECT_MODE_INPUT(r2Reg, r2Bit); // r2eceivePin to input (pullups ar2e off)
DIRECT_MODE_OUTPUT(r2Reg, r2Bit); // r2eceivePin to OUTPUT
DIRECT_WRITE_LOW(r2Reg, r2Bit); // pin is now LOW AND OUTPUT
delayMicroseconds(10);
DIRECT_MODE_INPUT(r2Reg, r2Bit); // r2eceivePin to input (pullups ar2e off)
DIRECT_WRITE_HIGH(sReg, sBit); // sendPin High
while ((total1 < CS_Timeout_Millis)) { // while total is positive value
pin1State = DIRECT_READ(r1Reg, r1Bit);
pin2State = DIRECT_READ(r2Reg, r2Bit);
total1 += !pin1State;
total2 += !pin2State;
if(pin1State && pin2State) break;
}
//Serial.print("SenseOneCycle(1): ");
//Serial.println(total);
if (total1 > CS_Timeout_Millis) {
return -2; // total variable over timeout
}
// set receive pin HIGH briefly to charge up fully - because the while loop above will exit when pin is ~ 2.5V
DIRECT_WRITE_HIGH(r1Reg, r1Bit);
DIRECT_MODE_OUTPUT(r1Reg, r1Bit); // receivePin to OUTPUT - pin is now HIGH AND OUTPUT
DIRECT_MODE_OUTPUT(r2Reg, r2Bit); // receivePin to OUTPUT - pin is now HIGH AND OUTPUT
DIRECT_WRITE_HIGH(r1Reg, r1Bit);
DIRECT_WRITE_HIGH(r2Reg, r2Bit);
DIRECT_MODE_INPUT(r1Reg, r1Bit); // receivePin to INPUT (pullup is off)
DIRECT_MODE_INPUT(r2Reg, r2Bit); // receivePin to INPUT (pullup is off)
DIRECT_WRITE_LOW(sReg, sBit); // sendPin LOW
while ( (total1 < CS_Timeout_Millis) ) { // while receive pin is HIGH AND total is less than timeout
pin1State = DIRECT_READ(r1Reg, r1Bit);
pin2State = DIRECT_READ(r2Reg, r2Bit);
total1 += pin1State;
total2 += pin2State;
if(!(pin1State || pin2State)) break;
}
//Serial.print("SenseOneCycle(2): ");
//Serial.println(total);
if (total1 >= CS_Timeout_Millis) {
return -2; // total variable over timeout
} else {
return 1;
}
}