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For a given rectangle R1 I am trying to find out which are the other rectangles that could intersect with it IF I draw a vectical line segment.

The rectangles that intersect with R1 are marked in Red.

Every rectangle is characterized by its (top, left) and (bottom, right) coordinates.

R1 = [top, left, bottom, right],...,Rn = [top, left, bottom, right]

By using the coordinates and the vertical line. I want to find the rectangles that intersects with R1

Solution

I found the following library which does the same work as the icl boost library but must simpler: download site: [https://github.com/ekg/intervaltree][2]

#include <iostream>
#include <fstream>
#include "IntervalTree.h"

using namespace std;

struct Position
{
    int x;
    int y;
    string id;
};

int main()
{
    vector<Interval<Position>> intervals;
    intervals.push_back(Interval<Position>(4,10,{1,2,"r1"}));
    intervals.push_back(Interval<Position>(6,10,{-6,-3,"r2"}));
    intervals.push_back(Interval<Position>(8,10,{5,6,"r3"}));

    vector<Interval<Position> > results;
    vector<string> value;
    int start = 4;
    int stop = 10;

    IntervalTree<Position> tree(intervals);
   // tree.findContained(start, stop, results);
    tree.findOverlapping(start, stop, results);
    cout << "found " << results.size() << " overlapping intervals" << endl;
}

Example

  • LEFT = 4;
  • RIGHT = 10;
  • structure {1,2,"rc1"};

intervals.push_back(Interval(4,10,{1,2,"r1"}));

Rectangles

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1  
What do you have problem with? What have you tried? –  Joachim Pileborg Apr 24 at 9:16
    
I am trying to find out if this problem exists and if there is a specific algorithm to solve it @JoachimPileborg –  Hani Goc Apr 24 at 9:18
    
I was going towards the idea of sweep line algorithm. But sounded too complex for me. I wanted to find an easier way to do it –  Hani Goc Apr 24 at 9:20
2  
do you mean "find all rectangles that intersect with any vertical line that can be drawn through R1" ? I'm asking because this is entirely 1D problem of overlapping line segments. –  Agent_L Apr 24 at 9:25
    
@Agent_L yes That's what I want. All rectangles that intersect with any vertical line that can be drawn through R1" –  Hani Goc Apr 24 at 9:56

3 Answers 3

up vote 3 down vote accepted

You don't care where the rectangles are vertically. You can project everything onto the x-axis and then solve the corresponding 1-dimensional problem: you have a set of intervals and you want to know which overlap with a given interval. This is exactly what an interval tree is does:

https://en.wikipedia.org/wiki/Interval_tree

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Cotton can you please explain a little bit on th projection. What are the intervals? –  Hani Goc Apr 24 at 9:55
1  
Projecting a point (x, y) onto the x-axis is x. Projecting a rectangle (top, left), (bottom, right) onto the x-axis is the interval [left, right]. –  Cotton Seed Apr 24 at 10:01
    
Excuse me @Cotton last comment Just to see if I got it right. Every rectangle will be projected onto the X-axis. So i will have the following list: [[left1,right1], [left2,right2],....,[leftn,rightn]] I will construct an inverval Tree and see if they overlap? Operations: 1) Add the intervals 2) Given an interval x, find if x overlaps with any of the existing intervals. –  Hani Goc Apr 24 at 10:07
    
Yep! I think that should do it. Good luck! –  Cotton Seed Apr 24 at 10:13

Your need a collision detection algorithm. In C++ there's boost.geometry for doing such things among many others.

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Where:

  • Rect is a collection of all rectangles.
  • R is the rectangle to test
  • x1 is one x-coordinate
  • x2 is other x-coordinate

Pseudo Code

// make sure x1 is on the left of x2
if (R.x1 > R.x2)
    tmp = R.x2
    R.x2 = R.x1
    R.x1 = tmp
end if

for each Rect as r
    // don't test itself
    if (R != r)
        // make sure x1 is on the left of x2
        if (r.x1 > r.x2)
            tmp = r.x2
            r.x2 = r.x1
            r.x1 = tmp
        end if

        if ((r.x2 < R.x1) // if r rect to left of R rect
                || (r.x1 > R.x2)) // if r rect to right of R rect
            // r rect does not intersect R rect
        else
            // r rect does intersect R rect
        end if
    end if
end for
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