39

I am trying to distinguish between left and right clicks in an OnClick function. But,

var r = React.createClass({
   handleClick : function(e){
       //left click
       if(e.which==1){ 
          //Do something
       }
   },
   render : function(){
       return <p onClick={this.handleClick}>Something </p>
   }
});

Turns out e.which is undefined for Synthetic Events. How can I distinguish between left and right clicks here?

57

You can do something like this too. Have both onClick and onContextMenu handlers

return <p onClick={this.handleClick} onContextMenu={this.handleClick}>Something </p>

You can either check for nativeEvent as the other answer suggests or check for type. (Also, prevent default if it is a right click.)

Using type

handleClick: function(e) {
  if (e.type === 'click') {
    console.log('Left click');
  } else if (e.type === 'contextmenu') {
    console.log('Right click');
  }
}

Using nativeEvent

handleClick: function(e) {
  if (e.nativeEvent.which === 1) {
    console.log('Left click');
  } else if (e.nativeEvent.which === 3) {
    console.log('Right click');
  }
}

Here is a demo http://jsbin.com/seyeliv/edit?html,output

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  • e.type's value is "click" for both left AND middle-scroll click. =\ (upvoted, went crazy looking for this answer) – HoldOffHunger Sep 13 '17 at 19:18
  • Note: for onMouseDown it's e.button === 0 – Colin D Oct 28 '19 at 3:47
18

The property you're looking for is e.button or e.buttons.

The button number that was pressed when the mouse event was fired: Left button=0, middle button=1 (if present), right button=2.
MDN:Web/Events/click

However, with or without react, I'm only getting click events with the left mouse button (trackpad). You could use onMouseDown which works for me.

Here's a demo using e.buttons. You may want to preventDefault in onContextMenu also.

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4

Use:

if (e.button === 0) { // or e.nativeEvent.which === 1
    // do something on left click
}

Here is a DEMO

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