Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm having trouble understanding lookAt and the rotations of the camera.

I have a circle of small spheres around [0,0,0] on the x-y plane.

The camera is placed at [0,0,30] and after a lookAt the rotation of the camera is [0,0,0]. The circle appears as if looking from above (as expected).

Then I move the camera to [30,0,0] and after a lookAt the rotation of the camera is [0,90deg,0]. The circle appears on its side, but vertically, not horizontally as I would expect. Why is the camera rotated by 90 degrees for y?

After that I move the camera to [0,30,0] and after a lookAt the rotation of the camera is [-90deg,0,90deg]. The circle again appears on its side, vertically, not horizontally.

Why is the camera rotating? I thought that there would be no rotation at all since it was on the x and y axes themselves.

Thank you for any help! :-)

Note: Originally posted at https://github.com/mrdoob/three.js/issues/2917 but was told to come to Stack Overflow.

share|improve this question
    
You need to study Euler angles -- three.js follows the intrinsic Tait Bryan convention. If you are new to this, it is not easy. Continue to do some simple experiments in three.js until you get it. –  WestLangley Jan 11 '13 at 4:39

1 Answer 1

To fix the problem you can specify the up vector for the camera before executing the lookAt() command.

// Place camera on x axis
camera.position.set(30,0,0);
camera.up = new THREE.Vector3(0,0,1);
camera.lookAt(new THREE.Vector3(0,0,0));

Change the vector to your needs. You can even turn it upside down by specifying a negative value: (0,0,-1). It is important to set the up vector BEFORE using lookAt().

I have created a full example at http://jsfiddle.net/VsWb9/991/ with 2 cubes. The smaller one is suppose to be on top of the big one (on the positive z-axis).

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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