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I am writing a collision detection system in as3. It is intended to be simple: I have some moving rectangles and some static ones. When a moving rectangle collides with another rectangle, I would like to move the source (colliding) rectangle just outside of the collision area, but still as close as possible (based on the source's trajectory).

On every frame I update the positions of my moving rectangles and check for contact amongst all rectangles.

The below image represents the following:

a: Box #1 is moving at an angle of 45 degrees towards a static rectangle (#2).

b: After several 'ticks' we see Rectangle #1 move into the space of Rectangle #2 (the static one). This is the point at which impact is detected for the first time.

c: Now - what I would really like to do! - is move the source Rectangle #1 to the outskirts of Rectangle #2's collision area.

... So given the angle of movement of Rectangle #1 and, knowing the overall areas and positions of Rectangles #1 and #2, Is there a formula that provides the closest possible x and y co-ordinates for Rectangle #1 to be moved to (so that we are no longer in full collision, as we see in stage 'b').

Obviously I would like a solution that will work at any angle of movement and all sorts of rectangle shapes.

3 steps

Thanks in advance for your time on this :)

  • 1
    are velocities guaranteed to be lower than the width of any rectangle? i'm asking because this significantly increases the difficulty – Marton Pallagi Jul 9 '14 at 0:34
  • 1
    also, are the boxes rotated? if any of these is true, you are venturing into game engine territory, which is too broad for a single question – Marton Pallagi Jul 9 '14 at 0:42
  • No - there is no rotation. And velocities may be greater than the width or height of rectangle. Thank you! – Sean Patrick Sutton Jul 9 '14 at 9:44
2

Lets say your green square is colliding with the red one, with a velocity smaller than its width.enter image description here

The importance of this speed limit is, that this way you only need to check the collision points a,b,d, as long as you are moving "top right". This speed limit avoids collision points "moving past" their target, and missing collisions. Lets say "a" will move to point "p".

ie:

//check if p is inside the red box
if (p.x > f.x && p.x < g.x && p.y > i.y && p.y < f.y)
{
    //calculate the intersection of |if| with |aP|
    var x:Number = f.x;
    var y:Number = a.y + ((f.x - a.x) / (p.x - a.x)) * (p.y - a.y);
}
  • Thanks for you reply Marton. I am not sure I quite follow - I'm worried I have been unclear: I know that the interception has happened. I am able to get as far as step 'b' already. The difiiculty I have is in finding out the correct xy on rect #2's perimeter to place rect #1 (step 'c'). – Sean Patrick Sutton Jul 9 '14 at 12:19
  • yes, that is in my answer too... – Marton Pallagi Jul 9 '14 at 15:18
  • the intersection of |if| and |ap| is where the collision "happens" – Marton Pallagi Jul 9 '14 at 15:20
  • Ah yes! This is a big step forward. My model needs to account for more angles and the possibility of 1 - 4 points of the green rectangle being inside of the red rectangle. I can live with collisions being 'missed' if there is a complete pass through though. Thanks Marton! – Sean Patrick Sutton Jul 9 '14 at 15:40
  • just iterate through the points and check it for each of them...to decide which "side" it hits, check the angle where "a" would hit "f" exactly. Anything above and it hits |if|, anything below and it hits |fg| – Marton Pallagi Jul 9 '14 at 16:10
0

Assuming your rectangles are never rotated, you can check for the actual collision using an inbuilt method, Rectangle.intersects():

var rectangleA:Rectangle = objectA.getRect(objectA.parent);
var rectangleB:Rectangle = objectB.getRect(objectB.parent);

if(rectangleA.insersects(rectangleB))
{
    // Collision.
}

As for moving the rectangle back to the outside of the one it collided with, you can add 180 degrees to its trajectory and back up until the rectangles no longer intersect.

If you want more realistic collisions and rotated rectangles, use a physics engine like Box2D.

  • Thanks. I am looking for a solution that does not involve incrementally backing up and re-checking for a collision. – Sean Patrick Sutton Jul 9 '14 at 10:12
  • @SeanPatrickSutton Why? – Marty Jul 9 '14 at 10:32
  • For speed. Many of these processes could be going on each frame. I would like a nice clean formula - I'm confident there is a geometric solution, I just can't find it yet :) – Sean Patrick Sutton Jul 9 '14 at 11:36

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