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This question already has an answer here:

I am writing a 2D game in HTML5, Canvas, I need to resolve a circle - rectangle collision, this is my code:

function Rect(x, y, w, h) {
    this.x = x; // Top x
    this.y = y; // Top y
    this.w = w; // Width
    this.h = h; // Height
}
function Circle(x, y, r) {
    this.x = x; // Center x
    this.y = y; // Center y
    this.vx = 0; // Velocity x
    this.vy = 0; // Velocity y
    this.r = r; // Radius
    this.d = 0.7 // Density
}

var ball = new Circle(200, 300, 20);
var box = new Rect(150, 400, 200, 60);
var friction = 0.8, gravity = 0.5;

And this is the main loop in the game, as you see, the box is a still object, while the ball is a moving object:

function update() {
    ball.vx *= friction;
    ball.vy += gravity;
    ball.x += ball.vx;
    ball.y += ball.vy;

    if (collides(ball, box)) {
        resolve(ball, box); // Here is the problem, to resolve the collision.
    }

    render();

    requestAnimationFrame(update);
}

How do I solve this? Is there any kind of algorithm, and if so, how do I implement it into my code? No wiki links or libs, pleeaase!:

Number.prototype.clamp = function(min, max) {
    return Math.min(Math.max(this, min), max);
};
function collides(c, b) { // circle, box
    var cx = c.x.clamp(r.x, r.x + r.w);
    var cy = c.y.clamp(r.y, r.y + r.h);

    var dx = c.x - cx;
    var dy = c.y - cy;

    var d2 = dx * dx + dy * dy;
    return d2 < (c.r * c.r);
}
function resolve(c, b) {
    // ???
}

// Or just one function?
function collision(c, b) {
    // ???
}

EDIT: Found how to detect the collision BUT I still need to know how to resolve it.

marked as duplicate by Jason C, ChrisF Mar 25 '14 at 15:14

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

  • 2
    Somewhat related: Circle-Rectangle collision detection (intersection) – Cᴏʀʏ Mar 21 '14 at 21:27
  • It isn't the same language and yes, I've already seen that. So no, it's not possibly a dublicate. – super Mar 21 '14 at 21:28
  • 1
    Not exactly a duplicate, but the 3+ algorithms available there would directly translate to your answer. – Cᴏʀʏ Mar 21 '14 at 21:29
  • 3
    @Murplyx: I think we would be more inclined to help if you weren't demanding that we build your solution for you. There is more than enough information on Stack Overflow via the links posted to guide you to a solution. – Cᴏʀʏ Mar 21 '14 at 21:33
  • 1
    "No wiki links or libs, pleeaase!:" If you are unwilling to read and comprehend the information that already exists out there, then it is reasonable for us to assume that you will be unwilling to read and comprehend any answer that we'd spend our time typing here. A description here is no different than a description anywhere else, and the only thing that we would be able to do is repeat existing information. Please have a look at this article, paying special attention to "make a good impresssion". – Jason C Mar 23 '14 at 16:56

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