我从代码开始,在按下按钮时使LED点亮。那行得通。 但是后来我尝试对其进行调整,以使按钮的作用类似于“开-关”开关,在此开关中,您只需按下一次即可在状态之间进行切换。
led适用于较旧的代码(如下),因此我认为它与接线无关。 仅供参考,我跳过了设置功能,它与我眨眼时一样。
// constants won't change. They're used here to
// set pin numbers:
const int buttonPin = 2; // the number of the pushbutton pin
const int ledPin = 13; // the number of the LED pin
// variables will change:
int buttonState = 0; // variable for reading the pushbutton status
int switcher = 0;
void loop() {
// read the state of the pushbutton value:
buttonState = digitalRead(buttonPin);
// check if the pushbutton is pressed.
// if it is, the buttonState is HIGH:
if (buttonState == HIGH) {
if (switcher = 0) {
switcher = 1;
delay(500);
}
else if (switcher = 1) {
switcher = 0;
delay(500);
}
}
if (switcher == 1) {
digitalWrite(ledPin, HIGH);
}
/*
else {
digitalWrite(ledPin, LOW);
}
*/
}
答案 0 :(得分:1)
基于https://www.arduino.cc/en/Tutorial/StateChangeDetection
/*
State change detection (edge detection)
Often, you don't need to know the state of a digital input all the time, but
you just need to know when the input changes from one state to another.
For example, you want to know when a button goes from OFF to ON. This is called
state change detection, or edge detection.
This example shows how to detect when a button or button changes from off to on
and on to off.
The circuit:
- pushbutton attached to pin 2 from +5V
- 10 kilohm resistor attached to pin 2 from ground
- LED attached from pin 13 to ground (or use the built-in LED on most
Arduino boards)
created 27 Sep 2005
modified 30 Aug 2011
by Tom Igoe
This example code is in the public domain.
http://www.arduino.cc/en/Tutorial/ButtonStateChange
*/
// this constant won't change:
const int buttonPin = 2; // the pin that the pushbutton is attached to
const int ledPin = 13; // the pin that the LED is attached to
// Variables will change:
int buttonPushCounter = 0; // counter for the number of button presses
int buttonState = 0; // current state of the button
int lastButtonState = 0; // previous state of the button
void setup() {
// initialize the button pin as a input:
pinMode(buttonPin, INPUT);
// initialize the LED as an output:
pinMode(ledPin, OUTPUT);
// initialize serial communication:
Serial.begin(9600);
}
void loop() {
// read the pushbutton input pin:
buttonState = digitalRead(buttonPin);
// compare the buttonState to its previous state
if (buttonState != lastButtonState) {
// if the state has changed, increment the counter
if (buttonState == HIGH) {
// if the current state is HIGH then the button went from off to on:
buttonPushCounter++;
Serial.println("on");
Serial.print("number of button pushes: ");
Serial.println(buttonPushCounter);
} else {
// if the current state is LOW then the button went from on to off:
Serial.println("off");
}
// Delay a little bit to avoid bouncing
delay(50);
}
// save the current state as the last state, for next time through the loop
lastButtonState = buttonState;
// turns on the LED every two button pushes by checking the modulo of the
// button push counter. the modulo function gives you the remainder of the
// division of two numbers:
if (buttonPushCounter % 2 == 0) {
digitalWrite(ledPin, HIGH);
} else {
digitalWrite(ledPin, LOW);
}
}
答案 1 :(得分:1)
使用此代码,当您按下按钮Led时将打开,而再次按下按钮Led时将始终处于关闭状态。
const int buttonPin = 2; // the number of the pushbutton pin
const int ledPin = 13; // the number of the LED pin
int switchState = 0; // actual read value from pin4
int oldSwitchState = 0; // last read value from pin4
int lightsOn = 0; // is the switch on = 1 or off = 0
void setup() {
Serial.begin(9600);
pinMode(ledPin, OUTPUT); // declare LED as output
pinMode(buttonPin, INPUT); // declare push button as input
}
void loop() {
switchState = digitalRead(buttonPin); // read the pushButton State
if (switchState != oldSwitchState) // catch change
{
oldSwitchState = switchState;
if (switchState == HIGH)
{
// toggle
lightsOn = !lightsOn; // invert the values
}
}
if (lightsOn)
{
digitalWrite(ledPin, HIGH); // set the LED on
Serial.println("LED Turned ON");
} else {
digitalWrite(ledPin, LOW); // set the LED off
Serial.println("LED Turned Off");
}
}
答案 2 :(得分:0)
Delay仅在您希望整个系统停止时使用。在Arduino生涯初期,它也用于学习目的。在实际的应用程序中,您将使用延迟库或使用计时。如果您在应用程序中使用延迟,那么您将无法读取按钮HIGH事件,这意味着仅在延迟500毫秒后才可以在501毫秒内准确读取按钮,您将拥有一个1毫秒或更短的窗口,对于人类而言,几乎是不可能的。无论如何,您应该查看Arduino的“ Blink Without Delay”示例。
此外,必须在设置中为按钮使用上拉电阻或为INPUT_PULLUP声明一个pinMode,以避免弹跳,请参见下面的示例。
// defined constants in Arduino don’t take up any program memory space on the chip.
#define buttonPin 2;
#define ledPin 13;
// bytes are half the size of int's, but restricted to a max value of 255
byte value;
byte oldValue = 0;
byte state = 0;
void setup()
{
pinMode(buttonPin , INPUT_PULLUP);
pinMode(ledPin, OUTPUT);
}
void loop()
{
value = digitalRead(buttonPin );
if(value && !oldValue) // same as if(button == high && oldValue == low)
{
//we have a new button press
if(state == 0) // if the state is off, turn it on
{
digitalWrite(ledPin, HIGH);
state = 1;
}
else // if the state is on, turn it off
{
digitalWrite(ledPin, LOW);
state = 0;
}
oldValue = 1;
}
else if(!value && oldValue) // same as if(button == low && oldValue == high)
{
// the button was released
oldValue = 0;
}
}