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Given two rectangles with x, y, width, height in pixels and a rotation value in degrees -- how do I calculate the closest distance of their outlines toward each other?

Background: In a game written in Lua I'm randomly generating maps, but want to ensure certain rectangles aren't too close to each other -- this is needed because maps become unsolvable if the rectangles get into certain close-distance position, as a ball needs to pass between them. Speed isn't a huge issue as I don't have many rectangles and the map is just generated once per level. Previous links I found on StackOverflow are this and this

Many thanks in advance!

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The second link you posted has the exact answer you're looking for. In particular this link: cgm.cs.mcgill.ca/~orm/mind2p.html. The extra details in your question about Lua / pixels are just noise. –  deft_code Feb 18 '11 at 2:18
    
    
Similar question: How do you detect where two line segments intersect? –  moose Aug 8 '14 at 1:22

6 Answers 6

Pseudo-code:

distance_between_rectangles = some_scary_big_number;
For each edge1 in Rectangle1:
    For each edge2 in Rectangle2:
        distance = calculate shortest distance between edge1 and edge2
        if (distance < distance_between_rectangles)
            distance_between_rectangles = distance

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Agnius's answer relies on a DistanceBetweenLineSegments() function. Here is a case analysis that does not:

(1) Check if the rects intersect. If so, the distance between them is 0.
(2) If not, think of r2 as the center of a telephone key pad, #5.
(3) r1 may be fully in one of the extreme quadrants (#1, #3, #7, or #9). If so
    the distance is the distance from one rect corner to another (e.g., if r1 is
    in quadrant #1, the distance is the distance from the lower-right corner of
    r1 to the upper-left corner of r2).
(4) Otherwise r1 is to the left, right, above, or below r2 and the distance is
    the distance between the relevant sides (e.g., if r1 is above, the distance
    is the distance between r1's low y and r2's high y).
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This question depends on what kind of distance. Do you want, distance of centers, distance of edges or distance of closest corners?

I assume you mean the last one. If the X and Y values indicate the center of the rectangle then you can find each the corners by applying this trick

//Pseudo code
Vector2 BottomLeftCorner = new Vector2(width / 2, heigth / 2);
BottomLeftCorner = BottomLeftCorner * Matrix.CreateRotation(MathHelper.ToRadians(degrees));
//If LUA has no built in Vector/Matrix calculus search for "rotate Vector" on the web.
//this helps: http://www.kirupa.com/forum/archive/index.php/t-12181.html

BottomLeftCorner += new Vector2(X, Y); //add the origin so that we have to world position.

Do this for all corners of all rectangles, then just loop over all corners and calculate the distance (just abs(v1 - v2)).

I hope this helps you

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Thank you Roy. To clarify, I meant the distance between the outline of each rectangle, not the closest corners -- my goal is to know whether or not a ball of a specific given radius may still fit between the two rectangles at any point between them. Imagine the two rectangles to be stones (both rotated randomly, but never zero rotation), and the world having gravity -- I want to find out whether there is a theoretical chance that the ball, falling down from above, may get stuck between the two stones. –  Philipp Lenssen Feb 13 '11 at 13:55
    
Well, hmm that is a lot harder to calculate, I'll upvote this question, I'm curious if someone has a nice algorithm for this, it should be there. –  Roy T. Feb 14 '11 at 7:45

There are many algorithms to solve this and Agnius algorithm works fine. However I prefer the below since it seems more intuitive (you can do it on a piece of paper) and they don't rely on finding the smallest distance between lines but rather the distance between a point and a line.

The hard part is implementing the mathematical functions to find the distance between a line and a point, and to find if a point is facing a line. You can solve all this with simple trigonometry though. I have below the methodologies to do this.

For polygons (triangles, rectangles, hexagons, etc.) in arbitrary angles

  1. If polygons overlap, return 0
  2. Draw a line between the centres of the two polygons.
  3. Choose the intersecting edge from each polygon. (Here we reduce the problem)
  4. Find the smallest distance from these two edges. (You could just loop through each 4 points and look for the smallest distance to the edge of the other shape).

These algorithms work as long as any two edges of the shape don't create angles more than 180 degrees. The reason is that if something is above 180 degrees then it means that the some corners are inflated inside, like in a star.

Smallest distance between an edge and a point

  1. If point is not facing the face, then return the smallest of the two distances between the point and the edge cornerns.
  2. Draw a triangle from the three points (edge's points plus the solo point).
  3. We can easily get the distances between the three drawn lines with Pythagorean Theorem.
  4. Get the area of the triangle with Heron's formula.
  5. Calculate the height now with Area = 12⋅base⋅height with base being the edge's length.

Check to see if a point faces an edge

As before you make a triangle from an edge and a point. Now using the Cosine law you can find all the angles with just knowing the edge distances. As long as each angle from the edge to the point is below 90 degrees, the point is facing the edge.

I have an implementation in Python for all this here if you are interested.

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Not in Lua, a Python code based on M Katz's suggestion:

def rect_distance((x1, y1, x1b, y1b), (x2, y2, x2b, y2b)):
    left = x2b < x1:
    right = x1b < x2
    bottom = y2b < y1:
    top = y1b < y2:
    if top and left:
        return dist((x1, y1b), (x2b, y2))
    elif left and bottom:
        return dist((x1, y1), (x2b, y2b))
    elif bottom and right:
        return dist((x1b, y1), (x2, y2b))
    elif right and top:
        return dist((x1b, y1b), (x2, y2))
    elif left:
        return x1 - x2b
    elif right:
        return x2 - x1b
    elif bottom:
        return y1 - y2b
    elif top:
        return y2 - y1b
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