40

I'm trying to change the color of a cube based on a variable. I created two cubes and I want to change their color depending on the distance between them.

The cubes are created like this:

geometry = new THREE.CubeGeometry( 50, 50, 50 );
material = new THREE.MeshBasicMaterial( { color: 0xff0000, wireframe: true } );
cube = new THREE.Mesh( geometry, material );
scene.add( cube );

Now I tried something like this:

if(distance > 20)
{
cube.material.color = 0xffffff;
}

But it does not work. I looked in the examples but couldn't find anything appropriate.

75

You are not specifying the color value correctly.

cube.material.color.setHex( 0xffffff );
1
  • 2
    You can also use the base-10 integer equivalent as the parameter for setHex, as the two equate in JS.
    – andrewb
    May 12 '16 at 0:47
13
cube.material.color 

will give you the THREE.Color object:

Color

which has a bunch of methods you can use to set the color.

2
  • 2
    Need to have the actual method in the answer in case that link dies.
    – andrewb
    May 12 '16 at 0:47
  • Link died, correct answer is color.set(), 'cube.material.color.set( color )'
    – Ian Wise
    Jul 20 '17 at 5:29
6

My suggestion is attach a function to your object and then you can change the color of object during runtime easily.
Based on your code

geometry = new THREE.CubeGeometry( 50, 50, 50 );
material = new THREE.MeshBasicMaterial( { color: 0xff0000, wireframe: true } );
cube = new THREE.Mesh( geometry, material );

//here is the funcion defined and attached to the  object
cube.setColor = function(color){
     cube.material.color.set(color);
}


cube.setColor(0xFFFFFF)  //change color using hex value or
cube.setColor("blue")    //set material color by using color name

scene.add( cube );
1
  • 7
    Do not instantiate a new Color. Use cube.material.color.set( color ). Apr 21 '16 at 14:28

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.