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Actually this is a classic problem as SO user Victor put it (in another SO question regarding which tasks to ask during an interview).

I couldn't do it in an hour (sigh) so what is the algorithm that calculates the number of integer points within a triangle?

EDIT: Assume that the vertices are at integer coordinates. (otherwise it becomes a problem of finding all points within the triangle and then subtracting all the floating points to be left with only the integer points; a less elegant problem).

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What about points on one of the edges? Are the edges exclusive or inclusive? – Chet Jun 26 '09 at 14:29
2  
I don't understand the question, can you provide a little more detail? – samoz Jun 26 '09 at 14:30
    
@Chet: Assumedly inclusive. Your question only makes sense if there's a border of defined width around the triangle. In this case, it's a line with no width, so it would always be inclusive. Now, if there's a border with any width on it, then this question holds water. – Eric Jun 26 '09 at 14:32
1  
@samoz: for example, given a triangle with vertices (0,0), (0,3), (3,0), find the integer coordinates within - (i.e. 1,1) is one of them – jimyi Jun 26 '09 at 14:33
    
Can you link to the other question please – teabot Jun 26 '09 at 14:35

13 Answers 13

up vote 32 down vote accepted

Assuming the vertices are at integer coordinates, you can get the answer by constructing a rectangle around the triangle as explained in Kyle Schultz's An Investigation of Pick's Theorem.

For a j x k rectangle, the number of interior points is

I = (j – 1)(k – 1).

For the 5 x 3 rectangle below, there are 8 interior points.

alt text

For triangles with a vertical leg (j) and a horizontal leg (k) the number of interior points is given by

I = ((j – 1)(k – 1) - h) / 2

where h is the number of points interior to the rectangle that are coincident to the hypotenuse of the triangles (not the length).

alt text

For triangles with a vertical side or a horizontal side, the number of interior points (I) is given by

alt text

where j, k, h1, h2, and b are marked in the following diagram

alt text

Finally, the case of triangles with no vertical or horizontal sides can be split into two sub-cases, one where the area surrounding the triangle forms three triangles, and one where the surrounding area forms three triangles and a rectangle (see the diagrams below).

The number of interior points (I) in the first sub-case is given by

alt text

where all the variables are marked in the following diagram

alt text

The number of interior points (I) in the second sub-case is given by

alt text

where all the variables are marked in the following diagram

alt text

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Doesn't this assume vertices on integers? – Greg D Jun 26 '09 at 15:07
    
I knew there had to be a more elegant way! However, do the above methods assume that the triangle vertices are integers? What if they aren't round numbers? – gnovice Jun 26 '09 at 15:08
3  
You guys must have been reading while I was editing. :) – Bill the Lizard Jun 26 '09 at 15:09
1  
What is the best way to determine the number of integer points lying on a line segment between two integer points? Would the GCD( y2 - y1, x2 - x1 ) - 1 work? (that is, the greatest common divisor of the rise and the run would determine how many times we can evenly increment the rise and run and land on even coordinates.) – Cocksure Dec 6 '14 at 14:54
5  
@Cocksure Then don't bother with this, since the method shown doesn't work with our triangles. It's a lot easier to calculate A with Shoelace Formula, count the border points with GCD and solve Pick's Theorem for I= A - B/2 +1 – Sven Dec 6 '14 at 23:41

My knee-jerk reaction would be to brute-force it:

  • Find the maximum and minimum extent of the triangle in the x and y directions.
  • Loop over all combinations of integer points within those extents.
  • For each set of points, use one of the standard tests (Same side or Barycentric techniques, for example) to see if the point lies within the triangle. Since this sort of computation is a component of algorithms for detecting intersections between rays/line segments and triangles, you can also check this link for more info.
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1  
"bullet point 3 is left as an exercise for the reader..." – Tim Jun 26 '09 at 14:45
    
@tim: I added a couple of helpful links that I use frequently... no sense in me retyping it all when it's nicely written out and described elsewhere. =) – gnovice Jun 26 '09 at 14:55
    
It wasn't a complaint - I had already upvoted you. I was just quoting the college textbooks... – Tim Jun 26 '09 at 15:00
    
@tim: No worries, I knew you were being light-hearted. =) I was actually already adding the links when you left your comment. – gnovice Jun 26 '09 at 15:03

Pick's theorem (http://en.wikipedia.org/wiki/Pick%27s_theorem) states that the surface of a simple polygon placed on integer points is given by:

A = i + b/2 - 1

Here A is the surface of the triangle, i is the number of interior points and b is the number of boundary points. The number of boundary points b can be calculated easily by summing the greatest common divisor of the slopes of each line:

b =   gcd(abs(p0x - p1x), abs(p0y - p1y)) 
    + gcd(abs(p1x - p2x), abs(p1y - p2y)) 
    + gcd(abs(p2x - p0x), abs(p2y - p0y))

The surface can also be calculated. For a formula which calculates the surface see http://stackoverflow.com/a/14382692/2491535 . Combining these known values i can be calculated by:

i = A + 1 - b/2
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Ok I will propose one algorithm, it won't be brilliant, but it will work.

First, we will need a point in triangle test. I propose to use the "Barycentric Technique" as explained in this excellent post:

http://www.blackpawn.com/texts/pointinpoly/default.html

Now to the algorithm:

  1. let (x1,y1) (x2,y2) (x3,y3) be the triangle vertices

  2. let ymin = floor(min(y1,y2,y3)) ymax = ceiling(max(y1,y2,y3)) xmin = floor(min(x1,x2,x3)) ymax = ceiling(max(x1,x2,3))

  3. iterating from xmin to xmax and ymin to ymax you can enumerate all the integer points in the rectangular region that contains the triangle

  4. using the point in triangle test you can test for each point in the enumeration to see if it's on the triangle.

It's simple, I think it can be programmed in less than half hour.

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This is called the "Point in the Triangle" test.

Here is an article with several solutions to this problem: Point in the Triangle Test.

alt text

A common way to check if a point is in a triangle is to find the vectors connecting the point to each of the triangle's three vertices and sum the angles between those vectors. If the sum of the angles is 2*pi (360-degrees) then the point is inside the triangle, otherwise it is not.

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I only have half an answer for a non-brute-force method. If the vertices were integer, you could reduce it to figuring out how to find how many integer points the edges intersect. With that number and the area of the triangle (Heron's formula), you can use Pick's theorem to find the number of interior integer points.

Edit: for the other half, finding the integer points that intersect the edge, I suspect that it's the greatest common denominator between the x and y difference between the points minus one, or if the distance minus one if one of the x or y differences is zero.

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Quick n'dirty pseudocode:

-- Declare triangle
p1 2DPoint = (x1, y1);
p2 2DPoint = (x2, y2);
p3 2DPoint = (x3, y3);
triangle [2DPoint] := [p1, p2, p3];

-- Bounding box
xmin float = min(triangle[][0]);
xmax float = max(triangle[][0]);
ymin float = min(triangle[][1]);
ymax float = max(triangle[][1]);

result [[float]];

-- Points in bounding box might be inside the triangle
for x in xmin .. xmax {
  for y in ymin .. ymax {
    if a line starting in (x, y) and going in any direction crosses one, and only one, of the lines between the points in the triangle, or hits exactly one of the corners of the triangle {
      result[result.count] = (x, y);
    }
  }
}
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I have this idea -

Let A(x1, y1), B(x2, y2) and C(x3, y3) be the vertices of the triangle. Let 'count' be the number of integer points forming the triangle.

If we need the points on the triangle edges then using Euclidean Distance formula http://en.wikipedia.org/wiki/Euclidean_distance, the length of all three sides can be ascertained. The sum of length of all three sides - 3, would give that count.

To find the number of points inside the triangle we need to use a triangle fill algorithm and instead of doing the actual rendering i.e. executing drawpixel(x,y), just go through the loops and keep updating the count as we loop though. A triangle fill algorithm from

Fundamentals of Computer Graphics by Peter Shirley,Michael Ashikhmin

should help. Its referred here http://www.gidforums.com/t-20838.html

cheers

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I'd go like this :

Take the uppermost point of the triangle (the one with the highest Y coordinate). There are two "slopes" starting at that point. It's not the general solution, but for easy visualisation, think of one of both "going to the left" (decreasing x coordinates) and the other one "going to the right".

From those two slopes and any given Y coordinate less than the highest point, you should be able to compute the number of integer points that appear within the bounds set by the slopes. Iterating over decreasing Y coordinates, add all those number of points together.

Stop when your decreasing Y coordinates reach the second-highest point of the triangle.

You have now counted all points "above the second-highest point", and you are now left with the problem of "counting all the points within some (much smaller !!!) triangle, of which you know that its upper side parallels the X-axis.

Repeat the same procedure, but now with taking the "leftmost point" instead of the "uppermost", and with proceedding "by increasing x", instead of by "decreasing y".

After that, you are left with the problem of counting all the integer points within a, once again much smaller, triangle, of which you know that its upper side parallels the X-axis, and its left side parallels the Y-axis.

Keep repeating (recurring), until you count no points in the triangle you're left with.

(Have I now made your homework for you ?)

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There is no homework Mr Erwin other than challenging myself with other stuff than work from time to time. Question: How do you propose to compute the number of integer points within the bounds set by the slopes (see your second paragraph)? – tzup Jun 30 '09 at 3:56

(wierd) pseudo-code for a bit-better-than-brute-force (it should have O(n))
i hope you understand what i mean

n=0
p1,p2,p3 = order points by xcoordinate(p1,p2,p3)
for int i between p1.x and p2.x do
  a = (intersection point of the line p1-p2 and the line with x==i).y 
  b = (intersection point of the line p1-p3 and the line with x==i).y
  n += number of integers between floats (a, b)
end
for i between p2.x+1 and p3.x do
  a = (intersection point of the line p2-p3 and the line with x==i).y 
  b = (intersection point of the line p1-p3 and the line with x==i).y
  n += number of integers between floats (a, b)
end

this algorithm is rather easy to extend for vertices of type float (only needs some round at the "for i.." part, with a special case for p2.x being integer (there, rounded down=rounded up))
and there are some opportunities for optimization in a real implementation

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Here's another method, not necessarily the best, but sure to impress any interviewer.

First, call the point with the lowest X co-ord 'L', the point with the highest X co-ord 'R', and the remaining point 'M' (Left, Right, and Middle).

Then, set up two instances of Bresenham's line algorithm. Parameterize one instance to draw from L to R, and the second to draw from L to M. Run the algorithms simultaneously for X = X[L] to X[M]. But instead of drawing any lines or turning on any pixels, count the pixels between the lines.

After stepping from X[L] to X[M], change the parameters of the second Bresenham to draw from M to R, then continue to run the algorithms simultaneously for X = X[M] to X[R].

This is very similar to the solution proposed by Erwin Smout 7 hours ago, but using Bresenham instead of a line-slope formula.

I think that in order to count the columns of pixels, you will need to determine whether M lies above or below the line LR, and of course special cases will arise when two points have the same X or Y co-ordinate. But by the time this comes up, your interviewer will be suitably awed and you can move on to the next question.

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This post is really old, but if someone here wants to see an example of how to do it in Scala:

object TeslaTechQuestion {
    case class Coord(x:Float, y:Float)                                             // use case class, rather than Tuple

    val A = Coord(/*x*/, /*y*/)                                                        // shema:     B
    val B = Coord(/*x*/, /*y*/)                                                        //         A
    val C = Coord(/*x*/, /*y*/)                                                        //             C

    def gradient(a:Coord, b:Coord) = (b.y - a.y) / (b.x - a.x)                         // calculate 'a'
    def intersec(a:Coord, b:Coord) = a.y - gradient(a,b) * a.x                         // calculate 'b'
    def getCoord(a:Coord, b:Coord, x:Float) = (gradient(a,b) * x + intersec(a,b))      // calculate 'ax + b'

    def main(av:Array[String]) = {
        val (x, mX, y, mY) = (A.x, C.x, C.y, B.y)                                      // define minX, maxX, minY, maxY (bounding box limits)

    val sq = (x.toInt to mX.toInt)                                                     // define every integer coord,
        .flatMap(x => (y.toInt to mY.toInt).map(y => Coord(x,y)))                      // in bounding box.
        .toList

        val delimA = (A.x.toInt to B.x.toInt).map( x => Coord(x, getCoord(A,B,x)) )    // for line 'AB' : get every coordinate, for each integer on X axis
        val delimB = (B.x.toInt to C.x.toInt).map( x => Coord(x, getCoord(B,C,x)) )    // for line 'BC'
        val delimC = (A.x.toInt to C.x.toInt).map( x => Coord(x, getCoord(A,C,x)) )    // for line 'AC'

        var coords = sq                                                                // get every integer coord, between triangle's boundaries
            .filter( p => delimA.exists(d => p.x > d.x && p.y < d.y) )                 // exclude 'AB' coordinates
            .filter( p => delimB.exists(d => p.x < d.x && p.y < d.y) )                 // exclude 'BC'
            .filter( p => delimC.exists(d => p.x > d.x && p.y > d.y) )                 // exclude 'AC'
            .filter( c => c.x == c.x.toInt && c.y == c.y.toInt )                       // make sure coords are INTEGERS

        val qty = coords.size                                                          // number of points within the given triangle

        println( qty + " points within the triangle" )
    }
}
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Please, add some explanations to your code. – Alex Oct 17 '15 at 5:27
1  
this solution is so bad... it's taking quadratic space and roughly cubic time to do a constant time work. even stylish speaking it's not native to scala. val sq = part can be written into a comprehensive for comprehension. – HuStmpHrrr Jan 24 at 3:51

I found a quite useful link which clearly explains the solution to this problem. I am weak in coordinate geometry so I used this solution and coded it in Java which works (at least for the test cases I tried..)

http://mathforum.org/library/drmath/view/55169.html

public int points(int[][] vertices){
      int interiorPoints = 0;
      double triangleArea = 0;
      int x1 = vertices[0][0], x2 = vertices[1][0], x3 = vertices[2][0];
      int y1 = vertices[0][1], y2 = vertices[1][1], y3 = vertices[2][1];

      triangleArea = Math.abs(((x1-x2)*(y1+y2))                             
                + ((x2-x3)*(y2+y3))
                + ((x3-x1)*(y3+y1)));

      triangleArea /=2;
      triangleArea++;

      interiorPoints = Math.abs(gcd(x1-x2,y1-y2))
                + Math.abs(gcd(x2-x3, y2-y3))
                + Math.abs(gcd(x3-x1, y3-y1));

      interiorPoints /=2;

      return  (int)(triangleArea - interiorPoints);
 }
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