46

My situation

  • Input: a set of rectangles
  • each rect is comprised of 4 doubles like this: (x0,y0,x1,y1)
  • they are not "rotated" at any angle, all they are "normal" rectangles that go "up/down" and "left/right" with respect to the screen
  • they are randomly placed - they may be touching at the edges, overlapping , or not have any contact
  • I will have several hundred rectangles
  • this is implemented in C#

I need to find

  • The area that is formed by their overlap - all the area in the canvas that more than one rectangle "covers" (for example with two rectangles, it would be the intersection)
  • I don't need the geometry of the overlap - just the area (example: 4 sq inches)
  • Overlaps shouldn't be counted multiple times - so for example imagine 3 rects that have the same size and position - they are right on top of each other - this area should be counted once (not three times)

Example

  • The image below contains thre rectangles: A,B,C
  • A and B overlap (as indicated by dashes)
  • B and C overlap (as indicated by dashes)
  • What I am looking for is the area where the dashes are shown

-

AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAAAAAAAAAAAAAAAA
AAAAAAAAAAAAAAAA--------------BBB
AAAAAAAAAAAAAAAA--------------BBB
AAAAAAAAAAAAAAAA--------------BBB
AAAAAAAAAAAAAAAA--------------BBB
                BBBBBBBBBBBBBBBBB
                BBBBBBBBBBBBBBBBB
                BBBBBBBBBBBBBBBBB
                BBBBBB-----------CCCCCCCC
                BBBBBB-----------CCCCCCCC
                BBBBBB-----------CCCCCCCC
                      CCCCCCCCCCCCCCCCCCC
                      CCCCCCCCCCCCCCCCCCC
                      CCCCCCCCCCCCCCCCCCC
                      CCCCCCCCCCCCCCCCCCC
  • If they're randomly placed, then you could have two different areas of overlap. Do you want the sum total of all overlaps or what? – Lance Roberts Oct 28 '08 at 19:14
  • Can you clarify? What is the answer for a scenario with three rectangles, A (0, 0, 10, 10), B (1, 1, 9, 9), and C (2, 2, 8, 8) -- i.e. C is fully inside B which is fully inside A? – vitule Oct 28 '08 at 19:23
  • @vitule: I would say answer is the area where all 3 overlap => area of C – lacop Oct 28 '08 at 19:30
  • Please answer the first comment so we know what problem needs to be solved. – Lance Roberts Oct 28 '08 at 19:55
  • @Lance: After rereading the question I think he wants the area of the "total overlap". This means there will be either one or none overlap area which is what he is looking for. – lacop Oct 28 '08 at 20:22

15 Answers 15

53

An efficient way of computing this area is to use a sweep algorithm. Let us assume that we sweep a vertical line L(x) through the union of rectangles U:

  • first of all, you need to build an event queue Q, which is, in this case, the ordered list of all x-coordinates (left and right) of the rectangles.
  • during the sweep, you should maintain a 1D datastructure, which should give you the total length of the intersection of L(x) and U. The important thing is that this length is constant between two consecutive events q and q' of Q. So, if l(q) denotes the total length of L(q+) (i.e. L just on the rightside of q) intersected with U, the area swept by L between events q and q' is exactly l(q)*(q' - q).
  • you just have to sum up all these swept areas to get the total one.

We still have to solve the 1D problem. You want a 1D structure, which computes dynamically a union of (vertical) segments. By dynamically, I mean that you sometimes add a new segment, and sometimes remove one.

I already detailed in my answer to this collapsing ranges question how to do it in a static way (which is in fact a 1D sweep). So if you want something simple, you can directly apply that (by recomputing the union for each event). If you want something more efficient, you just need to adapt it a bit:

  • assuming that you know the union of segments S1...Sn consists of disjoints segments D1...Dk. Adding Sn+1 is very easy, you just have to locate both ends of Sn+1 amongs the ends of D1...Dk.
  • assuming that you know the union of segments S1...Sn consists of disjoints segments D1...Dk, removing segment Si (assuming that Si was included in Dj) means recomputing the union of segments that Dj consisted of, except Si (using the static algorithm).

This is your dynamic algorithm. Assuming that you will use sorted sets with log-time location queries to represent D1...Dk, this is probably the most efficient non-specialized method you can get.

  • Yes, but after removing a segment S from the set you have to do the recomputing which is O(n) in the worst case. So the total running time O(n^2), isn't it? Imagine this case: bit.ly/8Zd5jO – Martin Konicek Oct 12 '10 at 17:36
  • 3
    @Martin: Unless you use a data structure like an interval tree. That would give you O(nlogn). – Thomas Ahle Dec 16 '11 at 22:55
  • @ThomasAhle: could you explain how to use an interval tree? I get that you can query an interval tree for intervals overlapping a given interval in O(log n + m), but how do you find the union of the intervals in O(log n + m)? – extraeee Feb 3 '15 at 22:49
  • @extraeee So we have reduced the problem to dynamic 1d union area. You have to be slightly smart, storing part results on the nodes of the tree. When adding or removing an interval you'll only have to change logn nodes. – Thomas Ahle Feb 3 '15 at 22:55
13

One way-out approach is to plot it to a canvas! Draw each rectangle using a semi-transparent colour. The .NET runtime will be doing the drawing in optimised, native code - or even using a hardware accelerator.

Then, you have to read-back the pixels. Is each pixel the background colour, the rectangle colour, or another colour? The only way it can be another colour is if two or more rectangles overlapped...

If this is too much of a cheat, I'd recommend the quad-tree as another answerer did, or the r-tree.

  • 1
    Actually, this isn't that bad of an idea, it solves the multiple intersections very easily. I guess it all depends on the kind of resolution you need though. – grapefrukt Oct 28 '08 at 22:10
  • 9
    why downvote? especially for LARGE sets of rectangles and limited required resolution, the O(1) performance of the bitmap method wins over the generally O(n^2) of the exact methods. Seriously, people.... – Jimmy Oct 28 '08 at 23:07
  • This is not an exact algorithm and not very tidy at all. It will also push you to use bigger rasters to get better precision, overall it just loses in speed to a sweeping algorithm which someone else probably already implemented. (Seriously, sweeping is fast!) – Lodewijk May 26 '14 at 21:31
10

This is some quick and dirty code that I used in the TopCoder SRM 160 Div 2.

t = top
b = botttom
l = left
r = right

public class Rect
{
    public int t, b, l, r;

    public Rect(int _l, int _b, int _r, int _t)
    {
        t = _t;
        b = _b;
        l = _l;
        r = _r;
    }   

    public bool Intersects(Rect R)
    {
        return !(l > R.r || R.l > r || R.b > t || b > R.t);
    }

    public Rect Intersection(Rect R)
    {
        if(!this.Intersects(R))
            return new Rect(0,0,0,0);
        int [] horiz = {l, r, R.l, R.r};
        Array.Sort(horiz);
        int [] vert = {b, t, R.b, R.t};
        Array.Sort(vert);

        return new Rect(horiz[1], vert[1], horiz[2], vert[2]);
    } 

    public int Area()
    {
        return (t - b)*(r-l);
    }

    public override string ToString()
    {
        return l + " " + b + " " + r + " " + t;
    }
}
  • I was really confused unless I read the question and found out it limited it's triangles to axis parallel to the X and Y axies. Knowing that this is good (although picking the second highest one can be faster than sorting it haha). – Lodewijk May 26 '14 at 21:35
10

The simplest solution

import numpy as np

A = np.zeros((100, 100))
B = np.zeros((100, 100))

A[rect1.top : rect1.bottom,  rect1.left : rect1.right] = 1
B[rect2.top : rect2.bottom,  rect2.left : rect2.right] = 1

area_of_union     = np.sum((A + B) > 0)
area_of_intersect = np.sum((A + B) > 1)

In this example, we create two zero-matrices that are the size of the canvas. For each rectangle, fill one of these matrices with ones where the rectangle takes up space. Then sum the matrices. Now sum(A+B > 0) is the area of the union, and sum(A+B > 1) is the area of the overlap. This example can easily generalize to multiple rectangles.

6

Here's something that off the top of my head sounds like it might work:

  1. Create a dictionary with a double key, and a list of rectangle+boolean values, like this:

    Dictionary< Double, List< KeyValuePair< Rectangle, Boolean>>> rectangles;

  2. For each rectangle in your set, find the corresponding list for the x0 and the x1 values, and add the rectangle to that list, with a boolean value of true for x0, and false for x1. This way you now have a complete list of all the x-coordinates that each rectangle either enters (true) or leaves (false) the x-direction

  3. Grab all the keys from that dictionary (all the distinct x-coordinates), sort them, and loop through them in order, make sure you can get at both the current x-value, and the next one as well (you need them both). This gives you individual strips of rectangles

  4. Maintain a set of rectangles you're currently looking at, which starts out empty. For each x-value you iterate over in point 3, if the rectangle is registered with a true value, add it to the set, otherwise remove it.
  5. For a strip, sort the rectangles by their y-coordinate
  6. Loop through the rectangles in the strip, counting overlapping distances (unclear to me as of yet how to do this efficiently)
  7. Calculate width of strip times height of overlapping distances to get areas

Example, 5 rectangles, draw on top of each other, from a to e:

aaaaaaaaaaaaaaaa          bbbbbbbbbbbbbbbbb
aaaaaaaaaaaaaaaa          bbbbbbbbbbbbbbbbb
aaaaaaaaaaaaaaaa          bbbbbbbbbbbbbbbbb
aaaaaaaaaaaaaaaa          bbbbbbbbbbbbbbbbb
aaaaaaaadddddddddddddddddddddddddddddbbbbbb
aaaaaaaadddddddddddddddddddddddddddddbbbbbb
        ddddddddddddddddddddddddddddd
        ddddddddddddddddddddddddddddd
        ddddddddddddddeeeeeeeeeeeeeeeeee
        ddddddddddddddeeeeeeeeeeeeeeeeee
        ddddddddddddddeeeeeeeeeeeeeeeeee
ccccccccddddddddddddddeeeeeeeeeeeeeeeeee
ccccccccddddddddddddddeeeeeeeeeeeeeeeeee
cccccccccccc          eeeeeeeeeeeeeeeeee
cccccccccccc          eeeeeeeeeeeeeeeeee
cccccccccccc
cccccccccccc

Here's the list of x-coordinates:

v       v  v   v      v   v         v  v  v   
|aaaaaaa|aa|aaaa      |   bbbbbbbbbb|bb|bbb
|aaaaaaa|aa|aaaa      |   bbbbbbbbbb|bb|bbb
|aaaaaaa|aa|aaaa      |   bbbbbbbbbb|bb|bbb
|aaaaaaa|aa|aaaa      |   bbbbbbbbbb|bb|bbb
|aaaaaaaddd|dddddddddd|ddddddddddddddbb|bbb
|aaaaaaaddd|dddddddddd|ddddddddddddddbb|bbb
|       ddd|dddddddddd|dddddddddddddd  |
|       ddd|dddddddddd|dddddddddddddd  |
|       ddd|ddddddddddeeeeeeeeeeeeeeeeee
|       ddd|ddddddddddeeeeeeeeeeeeeeeeee
|       ddd|ddddddddddeeeeeeeeeeeeeeeeee
ccccccccddd|ddddddddddeeeeeeeeeeeeeeeeee
ccccccccddd|ddddddddddeeeeeeeeeeeeeeeeee
cccccccccccc          eeeeeeeeeeeeeeeeee
cccccccccccc          eeeeeeeeeeeeeeeeee
cccccccccccc
cccccccccccc

The list would be (where each v is simply given a coordinate starting at 0 and going up):

0: +a, +c
1: +d
2: -c
3: -a
4: +e
5: +b
6: -d
7: -e
8: -b

Each strip would thus be (rectangles sorted from top to bottom):

0-1: a, c
1-2: a, d, c
2-3: a, d
3-4: d
4-5: d, e
5-6: b, d, e
6-7: b, e
7-8: b

for each strip, the overlap would be:

0-1: none
1-2: a/d, d/c
2-3: a/d
3-4: none
4-5: d/e
5-6: b/d, d/e
6-7: none
7-8: none

I'd imagine that a variation of the sort + enter/leave algorithm for the top-bottom check would be doable as well:

  1. sort the rectangles we're currently analyzing in the strip, top to bottom, for rectangles with the same top-coordinate, sort them by bottom coordinate as well
  2. iterate through the y-coordinates, and when you enter a rectangle, add it to the set, when you leave a rectangle, remove it from the set
  3. whenever the set has more than one rectangle, you have overlap (and if you make sure to add/remove all rectangles that have the same top/bottom coordinate you're currently looking at, multiple overlapping rectangles would not be a problem

For the 1-2 strip above, you would iterate like this:

0. empty set, zero sum
1. enter a, add a to set (1 rectangle in set)
2. enter d, add d to set (>1 rectangles in set = overlap, store this y-coordinate)
3. leave a, remove a from set (now back from >1 rectangles in set, add to sum: y - stored_y
4. enter c, add c to set (>1 rectangles in set = overlap, store this y-coordinate)
5. leave d, remove d from set (now back from >1 rectangles in set, add to sum: y - stored_y)
6. multiply sum with width of strip to get overlapping areas

You would not actually have to maintain an actual set here either, just the count of the rectangles you're inside, whenever this goes from 1 to 2, store the y, and whenever it goes from 2 down to 1, calculate current y - stored y, and sum this difference.

Hope this was understandable, and as I said, this is off the top of my head, not tested in any way.

3

Using the example:

   1   2   3   4   5   6

1  +---+---+
   |       |   
2  +   A   +---+---+
   |       | B     |
3  +       +   +---+---+
   |       |   |   |   |
4  +---+---+---+---+   +
               |       |
5              +   C   +
               |       |
6              +---+---+

1) collect all the x coordinates (both left and right) into a list, then sort it and remove duplicates

1 3 4 5 6

2) collect all the y coordinates (both top and bottom) into a list, then sort it and remove duplicates

1 2 3 4 6

3) create a 2D array by number of gaps between the unique x coordinates * number of gaps between the unique y coordinates.

4 * 4

4) paint all the rectangles into this grid, incrementing the count of each cell it occurs over:

   1   3   4   5   6

1  +---+
   | 1 | 0   0   0
2  +---+---+---+
   | 1 | 1 | 1 | 0
3  +---+---+---+---+
   | 1 | 1 | 2 | 1 |
4  +---+---+---+---+
     0   0 | 1 | 1 |
6          +---+---+

5) the sum total of the areas of the cells in the grid that have a count greater than one is the area of overlap. For better efficiency in sparse use-cases, you can actually keep a running total of the area as you paint the rectangles, each time you move a cell from 1 to 2.


In the question, the rectangles are described as being four doubles. Doubles typically contain rounding errors, and error might creep into your computed area of overlap. If the legal coordinates are at finite points, consider using an integer representation.


PS using the hardware accelerator as in my other answer is not such a shabby idea, if the resolution is acceptable. Its also easy to implement in a lot less code than the approach I outline above. Horses for courses.

  • This is an O(n^3) algorithm – gongzhitaao Dec 7 '15 at 15:59
3

Here's the code I wrote for the area sweep algorithm:

#include <iostream>
#include <vector>

using namespace std;


class Rectangle {
public:
    int x[2], y[2];

    Rectangle(int x1, int y1, int x2, int y2) {
        x[0] = x1;
        y[0] = y1;
        x[1] = x2;
        y[1] = y2; 
    };
    void print(void) {
        cout << "Rect: " << x[0] << " " << y[0] << " " << x[1] << " " << y[1] << " " <<endl;
    };
};

// return the iterator of rec in list
vector<Rectangle *>::iterator bin_search(vector<Rectangle *> &list, int begin, int end, Rectangle *rec) {
    cout << begin << " " <<end <<endl;
    int mid = (begin+end)/2;
    if (list[mid]->y[0] == rec->y[0]) {
        if (list[mid]->y[1] == rec->y[1])
            return list.begin() + mid;
        else if (list[mid]->y[1] < rec->y[1]) {
            if (mid == end)
                return list.begin() + mid+1;
            return bin_search(list,mid+1,mid,rec);
        }
        else {
            if (mid == begin)
                return list.begin()+mid;
            return bin_search(list,begin,mid-1,rec);
        }
    }
    else if (list[mid]->y[0] < rec->y[0]) {
        if (mid == end) {
            return list.begin() + mid+1;
        }
        return bin_search(list, mid+1, end, rec);
    }
    else {
        if (mid == begin) {
            return list.begin() + mid;
        }
        return bin_search(list, begin, mid-1, rec);
    }
}

// add rect to rects
void add_rec(Rectangle *rect, vector<Rectangle *> &rects) {
    if (rects.size() == 0) {
        rects.push_back(rect);
    }
    else {
        vector<Rectangle *>::iterator it = bin_search(rects, 0, rects.size()-1, rect);
        rects.insert(it, rect);
    }
}

// remove rec from rets
void remove_rec(Rectangle *rect, vector<Rectangle *> &rects) {
    vector<Rectangle *>::iterator it = bin_search(rects, 0, rects.size()-1, rect);
    rects.erase(it);
}

// calculate the total vertical length covered by rectangles in the active set
int vert_dist(vector<Rectangle *> as) {
    int n = as.size();

    int totallength = 0;
    int start, end;

    int i = 0;
    while (i < n) {
        start = as[i]->y[0];
        end = as[i]->y[1];
        while (i < n && as[i]->y[0] <= end) {
            if (as[i]->y[1] > end) {
                end = as[i]->y[1];
            }
            i++;
        }
        totallength += end-start;
    }
    return totallength;
}

bool mycomp1(Rectangle* a, Rectangle* b) {
    return (a->x[0] < b->x[0]);
}

bool mycomp2(Rectangle* a, Rectangle* b) {
    return (a->x[1] < b->x[1]);
}

int findarea(vector<Rectangle *> rects) {
    vector<Rectangle *> start = rects;
    vector<Rectangle *> end = rects;
    sort(start.begin(), start.end(), mycomp1);
    sort(end.begin(), end.end(), mycomp2);

    // active set
    vector<Rectangle *> as;

    int n = rects.size();

    int totalarea = 0;
    int current = start[0]->x[0];
    int next;
    int i = 0, j = 0;
    // big loop
    while (j < n) {
        cout << "loop---------------"<<endl;
        // add all recs that start at current
        while (i < n && start[i]->x[0] == current) {
            cout << "add" <<endl;
            // add start[i] to AS
            add_rec(start[i], as);
            cout << "after" <<endl;
            i++;
        }
        // remove all recs that end at current
        while (j < n && end[j]->x[1] == current) {
            cout << "remove" <<endl;
            // remove end[j] from AS
            remove_rec(end[j], as);
            cout << "after" <<endl;
            j++;
        }

        // find next event x
        if (i < n && j < n) {
            if (start[i]->x[0] <= end[j]->x[1]) {
                next = start[i]->x[0];
            }
            else {
                next = end[j]->x[1];
            }
        }
        else if (j < n) {
            next = end[j]->x[1];
        }

        // distance to next event
        int horiz = next - current;
        cout << "horiz: " << horiz <<endl;

        // figure out vertical dist
        int vert = vert_dist(as);
        cout << "vert: " << vert <<endl;

        totalarea += vert * horiz;

        current = next;
    }
    return totalarea;
}

int main() {
    vector<Rectangle *> rects;
    rects.push_back(new Rectangle(0,0,1,1));

    rects.push_back(new Rectangle(1,0,2,3));

    rects.push_back(new Rectangle(0,0,3,3));

    rects.push_back(new Rectangle(1,0,5,1));

    cout << findarea(rects) <<endl;
}
  • It seems your answer covers only the case where you can use the ++ for going over the "area". If the Rectangles are floats - your sollution doesn't help.. Am I right? – ephraim Oct 16 '17 at 12:29
2

You can simplify this problem quite a bit if you split each rectangle into smaller rectangles. Collect all of the X and Y coordinates of all the rectangles, and these become your split points - if a rectangle crosses the line, split it in two. When you're done, you have a list of rectangles that overlap either 0% or 100%, if you sort them it should be easy to find the identical ones.

  • 1
    This is the beginnings of a scan line (or sweep line) algorithm, which in turn is the start of a generalized boolean merge package. Do some googling on those terms and you'll find something that will scale up gracefully under a heavy rectangle load. – Don Wakefield Oct 28 '08 at 22:25
  • This solution can generate quadratically many rectangles: imagine many long narrow horizontal rectangles crossed by many narrow long vertical rectangles. The problem has a solution in O(n*log(n)) though. – Martin Konicek Oct 12 '10 at 17:38
2

There is a solution listed at the link http://codercareer.blogspot.com/2011/12/no-27-area-of-rectangles.html for finding the total area of multiple rectangles such that the overlapped area is counted only once.

The above solution can be extended to compute only the overlapped area(and that too only once even if the overlapped area is covered by multiple rectangles) with horizontal sweep lines for every pair of consecutive vertical sweep lines.

If aim is just to find out the total area covered by the all the rectangles, then horizontal sweep lines are not needed and just a merge of all the rectangles between two vertical sweep lines would give the area.

On the other hand, if you want to compute the overlapped area only, the horizontal sweep lines are needed to find out how many rectangles are overlapping in between vertical (y1, y2) sweep lines.

Here is the working code for the solution I implemented in Java.

import java.io.*;
import java.util.*;

class Solution {

static class Rectangle{
         int x;
         int y;
         int dx;
         int dy;

         Rectangle(int x, int y, int dx, int dy){
           this.x = x;
           this.y = y;
           this.dx = dx;
           this.dy = dy;
         }

         Range getBottomLeft(){
            return new Range(x, y);
         }

         Range getTopRight(){
            return new Range(x + dx, y + dy);
         }

         @Override
         public int hashCode(){
            return (x+y+dx+dy)/4;
         }

         @Override
         public boolean equals(Object other){
            Rectangle o = (Rectangle) other;
            return o.x == this.x && o.y == this.y && o.dx == this.dx && o.dy == this.dy;
         }

        @Override
        public String toString(){
            return String.format("X = %d, Y = %d, dx : %d, dy : %d", x, y, dx, dy);
        }
     }     

     static class RW{
         Rectangle r;
         boolean start;

         RW (Rectangle r, boolean start){
           this.r = r;
           this.start = start;
         }

         @Override
         public int hashCode(){
             return r.hashCode() + (start ? 1 : 0);
         }

         @Override
         public boolean equals(Object other){
              RW o = (RW)other;
             return o.start == this.start && o.r.equals(this.r);
         }

        @Override
        public String toString(){
            return "Rectangle : " + r.toString() + ", start = " + this.start;
        }
     }

     static class Range{
         int l;
         int u;   

       public Range(int l, int u){
         this.l = l;
         this.u = u;
       }

         @Override
         public int hashCode(){
            return (l+u)/2;
         }

         @Override
         public boolean equals(Object other){
            Range o = (Range) other;
            return o.l == this.l && o.u == this.u;
         }

        @Override
        public String toString(){
            return String.format("L = %d, U = %d", l, u);
        }
     }

     static class XComp implements Comparator<RW>{
             @Override
             public int compare(RW rw1, RW rw2){
                 //TODO : revisit these values.
                 Integer x1 = -1;
                 Integer x2 = -1;

                 if(rw1.start){
                     x1 = rw1.r.x;
                 }else{
                     x1 = rw1.r.x + rw1.r.dx;
                 }   

                 if(rw2.start){
                     x2 = rw2.r.x;
                 }else{
                     x2 = rw2.r.x + rw2.r.dx;
                 }

                 return x1.compareTo(x2);
             }
     }

     static class YComp implements Comparator<RW>{
             @Override
             public int compare(RW rw1, RW rw2){
                 //TODO : revisit these values.
                 Integer y1 = -1;
                 Integer y2 = -1;

                 if(rw1.start){
                     y1 = rw1.r.y;
                 }else{
                     y1 = rw1.r.y + rw1.r.dy;
                 }   

                 if(rw2.start){
                     y2 = rw2.r.y;
                 }else{
                     y2 = rw2.r.y + rw2.r.dy;
                 }

                 return y1.compareTo(y2);
             }
     }

     public static void main(String []args){
         Rectangle [] rects = new Rectangle[4];

         rects[0] = new Rectangle(10, 10, 10, 10);
         rects[1] = new Rectangle(15, 10, 10, 10);
         rects[2] = new Rectangle(20, 10, 10, 10);
         rects[3] = new Rectangle(25, 10, 10, 10);

         int totalArea = getArea(rects, false);
         System.out.println("Total Area : " + totalArea);

         int overlapArea = getArea(rects, true);              
         System.out.println("Overlap Area : " + overlapArea);
     }


     static int getArea(Rectangle []rects, boolean overlapOrTotal){
         printArr(rects);

         // step 1: create two wrappers for every rectangle
         RW []rws = getWrappers(rects);       

         printArr(rws);        

         // steps 2 : sort rectangles by their x-coordinates
         Arrays.sort(rws, new XComp());   

         printArr(rws);        

         // step 3 : group the rectangles in every range.
         Map<Range, List<Rectangle>> rangeGroups = groupRects(rws, true);

         for(Range xrange : rangeGroups.keySet()){
             List<Rectangle> xRangeRects = rangeGroups.get(xrange);
             System.out.println("Range : " + xrange);
             System.out.println("Rectangles : ");
             for(Rectangle rectx : xRangeRects){
                System.out.println("\t" + rectx);               
             }
         }   

         // step 4 : iterate through each of the pairs and their rectangles

         int sum = 0;
         for(Range range : rangeGroups.keySet()){
             List<Rectangle> rangeRects = rangeGroups.get(range);
             sum += getOverlapOrTotalArea(rangeRects, range, overlapOrTotal);
         }
         return sum;         
     }    

     static Map<Range, List<Rectangle>> groupRects(RW []rws, boolean isX){
         //group the rws with either x or y coordinates.

         Map<Range, List<Rectangle>> rangeGroups = new HashMap<Range, List<Rectangle>>();

         List<Rectangle> rangeRects = new ArrayList<Rectangle>();            

         int i=0;
         int prev = Integer.MAX_VALUE;

         while(i < rws.length){
             int curr = isX ? (rws[i].start ? rws[i].r.x : rws[i].r.x + rws[i].r.dx): (rws[i].start ? rws[i].r.y : rws[i].r.y + rws[i].r.dy);

             if(prev < curr){
                Range nRange = new Range(prev, curr);
                rangeGroups.put(nRange, rangeRects);
                rangeRects = new ArrayList<Rectangle>(rangeRects);
             }
             prev = curr;

             if(rws[i].start){
               rangeRects.add(rws[i].r);
             }else{
               rangeRects.remove(rws[i].r);
             }

           i++;
         }
       return rangeGroups;
     }

     static int getOverlapOrTotalArea(List<Rectangle> rangeRects, Range range, boolean isOverlap){
         //create horizontal sweep lines similar to vertical ones created above

         // Step 1 : create wrappers again
         RW []rws = getWrappers(rangeRects);

         // steps 2 : sort rectangles by their y-coordinates
         Arrays.sort(rws, new YComp());

         // step 3 : group the rectangles in every range.
         Map<Range, List<Rectangle>> yRangeGroups = groupRects(rws, false);

         //step 4 : for every range if there are more than one rectangles then computer their area only once.

         int sum = 0;
         for(Range yRange : yRangeGroups.keySet()){
             List<Rectangle> yRangeRects = yRangeGroups.get(yRange);

             if(isOverlap){
                 if(yRangeRects.size() > 1){
                     sum += getArea(range, yRange);
                 }
             }else{
                 if(yRangeRects.size() > 0){
                     sum += getArea(range, yRange);
                 }
             }
         }         
         return sum;
     } 

    static int getArea(Range r1, Range r2){
      return (r2.u-r2.l)*(r1.u-r1.l);      
    }

    static RW[] getWrappers(Rectangle []rects){
         RW[] wrappers = new RW[rects.length * 2];

         for(int i=0,j=0;i<rects.length;i++, j+=2){
             wrappers[j] = new RW(rects[i], true); 
             wrappers[j+1] = new RW(rects[i], false); 
         }
         return wrappers;
     }

    static RW[] getWrappers(List<Rectangle> rects){
         RW[] wrappers = new RW[rects.size() * 2];

         for(int i=0,j=0;i<rects.size();i++, j+=2){
             wrappers[j] = new RW(rects.get(i), true); 
             wrappers[j+1] = new RW(rects.get(i), false); 
         }
         return wrappers;
     }

  static void printArr(Object []a){
    for(int i=0; i < a.length;i++){
      System.out.println(a[i]);
    }
    System.out.println();
  }     
  • Links to external resources are encouraged, but please add context around the link so your fellow users will have some idea what it is and why it’s there. Always quote the most relevant part of an important link, in case the target site is unreachable or goes permanently offline. – davejal Jan 6 '16 at 2:16
  • @davejal, I updated the answer with context. Thanks. – tick_tack_techie Jan 6 '16 at 21:37
0

If your rectangles are going to be sparse (mostly not intersecting) then it might be worth a look at recursive dimensional clustering. Otherwise a quad-tree seems to be the way to go (as has been mentioned by other posters.

This is a common problem in collision detection in computer games, so there is no shortage of resources suggesting ways to solve it.

Here is a nice blog post summarizing RCD.

Here is a Dr.Dobbs article summarizing various collision detection algorithms, which would be suitable.

0

This type of collision detection is often called AABB (Axis Aligned Bounding Boxes), that's a good starting point for a google search.

  • This problem is not collision detection (finding if rectangle overlaps set of rectangles) but computing area of their union. For the overlap problem you can use the sweep line algorithm along with an interval tree (Introduction to algorithms book) which test for (interval)-(set of intervals) collision in O(log(n)). – Martin Konicek Oct 12 '10 at 17:42
0

You can find the overlap on the x and on the y axis and multiply those.

int LineOverlap(int line1a, line1b, line2a, line2b) 
{
  // assume line1a <= line1b and line2a <= line2b
  if (line1a < line2a) 
  {
    if (line1b > line2b)
      return line2b-line2a;
    else if (line1b > line2a)
      return line1b-line2a;
    else 
      return 0;
  }
  else if (line2a < line1b)
    return line2b-line1a;
  else 
    return 0;
}


int RectangleOverlap(Rect rectA, rectB) 
{
  return LineOverlap(rectA.x1, rectA.x2, rectB.x1, rectB.x2) *
    LineOverlap(rectA.y1, rectA.y2, rectB.y1, rectB.y2);
}
  • Edit: i useds int but you can replace them with doubles. – Toon Krijthe Oct 28 '08 at 19:23
  • 1
    It works for 2 rectangles. What if you have 3 that share overlapping area ? Even worse... what if you have 2 million rectangles ? – Guido Oct 28 '08 at 19:27
  • Thanks, I can see how this would help with two rectangles, but am not clear how can I account for having for example a hundred input rectangles that could be overlapping in many combinations. – namenlos Oct 28 '08 at 19:28
  • You could create the overlapping rectangle of rect1 and 2 and use that with 3, etc until all rectangles are passed. – Toon Krijthe Oct 28 '08 at 20:10
  • 1
    Oops, if I read the question "they are not "rotated" at any angle, all they are "normal" rectangles that go "up/down" and "left/right" with respect to the screen" – Egwor Oct 28 '08 at 21:05
0

I found a different solution than the sweep algorithm.

Since your rectangles are all rectangular placed, the horizontal and vertical lines of the rectangles will form a rectangular irregular grid. You can 'paint' the rectangles on this grid; which means, you can determine which fields of the grid will be filled out. Since the grid lines are formed from the boundaries of the given rectangles, a field in this grid will always either completely empty or completely filled by an rectangle.

I had to solve the problem in Java, so here's my solution: http://pastebin.com/03mss8yf

This function calculates of the complete area occupied by the rectangles. If you are interested only in the 'overlapping' part, you must extend the code block between lines 70 and 72. Maybe you can use a second set to store which grid fields are used more than once. Your code between line 70 and 72 should be replaced with a block like:

GridLocation gl = new GridLocation(curX, curY);
if(usedLocations.contains(gl) && usedLocations2.add(gl)) {
  ret += width*height;
} else {
  usedLocations.add(gl);
}

The variable usedLocations2 here is of the same type as usedLocations; it will be constructed at the same point.

I'm not really familiar with complexity calculations; so I don't know which of the two solutions (sweep or my grid solution) will perform/scale better.

0

Considering we have two rectangles (A and B) and we have their bottom left (x1,y1) and top right (x2,y2) coordination. The Using following piece of code you can calculate the overlapped area in C++.

    #include <iostream>
using namespace std;

int rectoverlap (int ax1, int ay1, int ax2, int ay2, int bx1, int by1, int bx2, int by2)
{
    int width, heigh, area;

    if (ax2<bx1 || ay2<by1 || ax1>bx2 || ay1>by2) {
        cout << "Rectangles are not overlapped" << endl;
        return 0;
    }
    if (ax2>=bx2 && bx1>=ax1){
        width=bx2-bx1;
        heigh=by2-by1;
    } else if (bx2>=ax2 && ax1>=bx1) {
        width=ax2-ax1;
        heigh=ay2-ay1;
    } else {
        if (ax2>bx2){
            width=bx2-ax1;
        } else {
            width=ax2-bx1;
        }
        if (ay2>by2){
            heigh=by2-ay1;
        } else {
            heigh=ay2-by1;
        }
    }
    area= heigh*width;
    return (area);
}

int main()
{
    int ax1,ay1,ax2,ay2,bx1,by1,bx2,by2;
    cout << "Inter the x value for bottom left for rectangle A" << endl;
    cin >> ax1;
    cout << "Inter the y value for bottom left for rectangle A" << endl;
    cin >> ay1;
    cout << "Inter the x value for top right for rectangle A" << endl;
    cin >> ax2;
    cout << "Inter the y value for top right for rectangle A" << endl;
    cin >> ay2;
    cout << "Inter the x value for bottom left for rectangle B" << endl;
    cin >> bx1;
    cout << "Inter the y value for bottom left for rectangle B" << endl;
    cin >> by1;
    cout << "Inter the x value for top right for rectangle B" << endl;
    cin >> bx2;
    cout << "Inter the y value for top right for rectangle B" << endl;
    cin >> by2;
    cout << "The overlapped area is " <<  rectoverlap (ax1, ay1, ax2, ay2, bx1, by1, bx2, by2) << endl;
}
0

The following answer should give the total Area only once. it comes previous answers, but implemented now in C#. It works also with floats (or double, if you need[it doesn't itterate over the VALUES).

Credits: http://codercareer.blogspot.co.il/2011/12/no-27-area-of-rectangles.html

EDIT: The OP asked for the overlapping area - thats obviously very simple:

var totArea = rects.Sum(x => x.Width * x.Height);

and then the answer is:

var overlappingArea =totArea-GetArea(rects)

Here is the code:

   #region rectangle overlapping
        /// <summary>
        /// see algorithm for detecting overlapping areas here: https://stackoverflow.com/a/245245/3225391
        /// or easier here:
        /// http://codercareer.blogspot.co.il/2011/12/no-27-area-of-rectangles.html
        /// </summary>
        /// <param name="dim"></param>
        /// <returns></returns>
        public static float GetArea(RectangleF[] rects)
        {
            List<float> xs = new List<float>();
            foreach (var item in rects)
            {
                xs.Add(item.X);
                xs.Add(item.Right);
            }
            xs = xs.OrderBy(x => x).Cast<float>().ToList();
            rects = rects.OrderBy(rec => rec.X).Cast<RectangleF>().ToArray();
            float area = 0f;
            for (int i = 0; i < xs.Count - 1; i++)
            {
                if (xs[i] == xs[i + 1])//not duplicate
                    continue;
                int j = 0;
                while (rects[j].Right < xs[i])
                    j++;
                List<Range> rangesOfY = new List<Range>();
                var rangeX = new Range(xs[i], xs[i + 1]);
                GetRangesOfY(rects, j, rangeX, out rangesOfY);
                area += GetRectArea(rangeX, rangesOfY);
            }
            return area;
        }

        private static void GetRangesOfY(RectangleF[] rects, int rectIdx, Range rangeX, out List<Range> rangesOfY)
        {
            rangesOfY = new List<Range>();
            for (int j = rectIdx; j < rects.Length; j++)
            {
                if (rangeX.less < rects[j].Right && rangeX.greater > rects[j].Left)
                {
                    rangesOfY = Range.AddRange(rangesOfY, new Range(rects[j].Top, rects[j].Bottom));
#if DEBUG
                    Range rectXRange = new Range(rects[j].Left, rects[j].Right);
#endif
                }
            }
        }

        static float GetRectArea(Range rangeX, List<Range> rangesOfY)
        {
            float width = rangeX.greater - rangeX.less,
                area = 0;

            foreach (var item in rangesOfY)
            {
                float height = item.greater - item.less;
                area += width * height;
            }
            return area;
        }

        internal class Range
        {
            internal static List<Range> AddRange(List<Range> lst, Range rng2add)
            {
                if (lst.isNullOrEmpty())
                {
                    return new List<Range>() { rng2add };
                }

                for (int i = lst.Count - 1; i >= 0; i--)
                {
                    var item = lst[i];
                    if (item.IsOverlapping(rng2add))
                    {
                        rng2add.Merge(item);
                        lst.Remove(item);
                    }
                }
                lst.Add(rng2add);
                return lst;
            }
            internal float greater, less;
            public override string ToString()
            {
                return $"ln{less} gtn{greater}";
            }

            internal Range(float less, float greater)
            {
                this.less = less;
                this.greater = greater;
            }

            private void Merge(Range rng2add)
            {
                this.less = Math.Min(rng2add.less, this.less);
                this.greater = Math.Max(rng2add.greater, this.greater);
            }
            private bool IsOverlapping(Range rng2add)
            {
                return !(less > rng2add.greater || rng2add.less > greater);
                //return
                //    this.greater < rng2add.greater && this.greater > rng2add.less
                //    || this.less > rng2add.less && this.less < rng2add.greater

                //    || rng2add.greater < this.greater && rng2add.greater > this.less
                //    || rng2add.less > this.less && rng2add.less < this.greater;
            }
        }
        #endregion rectangle overlapping

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