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How can I tell if a point belongs to a certain line?

Examples are appreciated, if possible.

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Please be more specific. What information do you have to start with? Do you have an ordered pair of the point and an equation? –  Bravery Onions May 25 '09 at 16:58

10 Answers 10

up vote 23 down vote accepted

In the simplest form, just plug the coordinates into the line equation and check for equality.

Given:

Point p (X=4, Y=5)
Line l (Slope=1, YIntersect=1)

Plug in X and Y:

   Y = Slope * X + YIntersect
=> 5 = 1 * 4 + 1
=> 5 = 5

So yes, the point is on the line.

If your lines are represented in (X1,Y1),(X2,Y2) form, then you can calculate slope with:

 Slope = (y1 - y2) / (x1-x2)

And then get the Y-Intersect with this:

 Y-Intersect = - Slope * X1 + Y1;

Edit: I fixed the Y-Intersect (which has been X1 / Y1 ...)

You'll have to check that x1 - x2 is not 0. If it is, then checking if the point is on the line is a simple matter of checking if the Y value in your point is equal to either x1 or x2. Also, check that the X of the point is not 'x1' or 'x2'.

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What language library is this? –  Sandeep Datta May 25 '09 at 17:20
2  
It's not - it's just pseudo-code. –  Eclipse May 25 '09 at 17:48
18  
It's not even pseudo-code - it's just math. –  configurator May 25 '09 at 18:12
    
Yeah, pretty much. –  Eclipse May 25 '09 at 18:52
    
I would think about moving the EDIT: correction to the Y-Intersect formula over on top of the original incorrect version. Took a second reading to notice that. –  jacob Sep 17 '12 at 22:31

The best way to determine if a point R = (rx, ry) lies on the line connecting points P = (px, py) and Q = (qx, qy) is to check whether the determinant of the matrix

{{qx - px, qy - py}, {rx - px, ry - py}},

namely (qx - px) * (ry - py) - (qy - py) * (rx - px) is close to 0. This solution has several related advantages over the others posted: first, it requires no special case for vertical lines, second, it doesn't divide (usually a slow operation), third, it doesn't trigger bad floating-point behavior when the line is almost, but not quite vertical.

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For a line from 0,0 to 10,10 with a point 5.1, 5.1, the determinant is zero. But the point is not on the line. –  Andy Apr 14 '13 at 10:00
    
what does exactly mean "close to 0"? –  Leggy7 Jan 2 '14 at 8:49
    
This is a much better answer than the "accepted" one. The only thing missing is a definition of "close to". This has to be understood in the context of the numbers being subtracted: since there are 5 subtractions, there are 5 opportunities for "significant loss of precision", meaning that it's actually somewhat hard to put a good spec on "close to". –  Floris Feb 28 '14 at 5:31
    
@Andy: Think again - the line from (0,0) through (10,10) can be described by the equation y = x, and all points that solve this equation lie on the line. (5.1, 5.1) solves the equation, and thus lies on the line. –  Tomas Lycken May 13 '14 at 13:37

I just wrote an function which handles a few extra requirements since I use this check in a drawing application:

  • Fuzziness - There must be some room for error since the function is used to select lines by clicking on them.
  • The line got an EndPoint and a StartPoint, no infinite lines.
  • Must handle straight vertical and horizontal lines, (x2 - x1) == 0 causes division by zero in the other answers.
private const double SELECTION_FUZZINESS = 3;

internal override bool ContainsPoint(Point point)
{
    LineGeometry lineGeo = geometry as LineGeometry;
    Point leftPoint;
    Point rightPoint;

    // Normalize start/end to left right to make the offset calc simpler.
    if (lineGeo.StartPoint.X <= lineGeo.EndPoint.X)
    {
        leftPoint   = lineGeo.StartPoint;
        rightPoint  = lineGeo.EndPoint;
    }
    else
    {
        leftPoint   = lineGeo.EndPoint;
        rightPoint  = lineGeo.StartPoint;
    }

    // If point is out of bounds, no need to do further checks.                  
    if (point.X + SELECTION_FUZZINESS < leftPoint.X || rightPoint.X < point.X - SELECTION_FUZZINESS)
        return false;
    else if (point.Y + SELECTION_FUZZINESS < Math.Min(leftPoint.Y, rightPoint.Y) || Math.Max(leftPoint.Y, rightPoint.Y) < point.Y - SELECTION_FUZZINESS)
        return false;

    double deltaX = rightPoint.X - leftPoint.X;
    double deltaY = rightPoint.Y - leftPoint.Y;

    // If the line is straight, the earlier boundary check is enough to determine that the point is on the line.
    // Also prevents division by zero exceptions.
    if (deltaX == 0 || deltaY == 0) 
        return true;

    double slope        = deltaY / deltaX;
    double offset       = leftPoint.Y - leftPoint.X * slope;
    double calculatedY  = point.X * slope + offset;

    // Check calculated Y matches the points Y coord with some easing.
    bool lineContains = point.Y - SELECTION_FUZZINESS <= calculatedY && calculatedY <= point.Y + SELECTION_FUZZINESS;

    return lineContains;            
}
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4  
Why isnt this the accepted answer? All the others are just math and blah. This is a real world, battle-hardened function and should be preferred. I mean this is StackOverflow for gods sake, not MathOverflow. –  Geotarget Feb 18 '14 at 15:49

I think Mr.Patrick McDonald put the nearly correct answer and this is the correction of his answer:

public bool IsOnLine(Point endPoint1, Point endPoint2, Point checkPoint)
{
    return (((double)checkPoint.Y - endPoint1.Y)) / ((double)(checkPoint.X - endPoint1.X))
        == ((double)(endPoint2.Y - endPoint1.Y)) / ((double)(endPoint2.X - endPoint1.X));
}

and of course there are many other correct answers especially Mr.Josh but i found this is the best one.

Thankx for evryone.

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Gives you a div by zero if checkPoint.x == endPoint.x or if the end points have the same x value –  ThiefMaster Oct 16 '10 at 12:49

Given two points on the line L0 and L1 and the point to test P.

               (L1 - L0) * (P - L0)
n = (P - L0) - --------------------- (L1 - L0)
               (L1 - L0) * (L1 - L0)

The norm of the vector n is the distance of the point P from the line through L0 and L1. If this distance is zero or small enough (in the case of rounding errors), the point lies on the line.

The symbol * represents the dot product.

Example

P = (5, 5)

L0 = (0, 10)
L1 = (20, -10)

L1 - L0 = (20, -20)
P  - L0 = (5, -5)

              (20, -20) * (5, -5)
n = (5, -5) - --------------------- (20, -20)
              (20, -20) * (20, -20)

              200
  = (5, -5) - --- (20, -20)
              800

  = (5, -5) - (5, -5)

  = (0, 0)
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3  
+1 for mentioning rounding errors. Using exact equality in floating point arithmetic will cause the other proposed solutions to fail in a lot of cases. I'm not sure about the numerical robustness of the proposed algorithm, but numerical robustness is complicated enough that if precision is important, then it's advisable to look at scientific literature on the topic. Or at least use a library where it's probable that the author has done the research. –  Ants Aasma May 25 '09 at 21:32
    
I don't think that your example is correct, because after some transformations n = (p - L0) - (p - L0) and in every case you have you will get always n = (0, 0). –  nenito Jan 7 '12 at 9:47
y = m * x + c

This is the equation of a line. x & y are the co-ordinates. Each line is characterized by its slope (m ) and where it intersects the y-axis (c).

So given m & c for a line, you can determine if the point (x1, y1) is on the line by checking if the equation holds for x = x1 and y = y1

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Except that this equation can't describe a vertical line, and except that you didn't mention the possibility of the line's having non-zero thickness. –  ChrisW May 25 '09 at 17:04
4  
A line has no thickness. –  Willie Wheeler May 25 '09 at 18:12
1  
"A line has no thickness" -- It does when it's drawn on a screen (i.e. when it's a programming question): its thickness is at least one pixel, and may be more. –  ChrisW May 25 '09 at 19:01
2  
I would consider a line to be 1 pixel thick (when drawing to a screen), which works with this equation. If you wanted to find if a point is in a line with X thickness you're really asking if a point is in a rectangle. –  ebrown May 26 '09 at 17:57

If you have a line defined by its endpoints

PointF pt1, pt2;

and you have a point that you want to check

PointF checkPoint;

then you could define a function as follows:

bool IsOnLine(PointF endPoint1, PointF endPoint2, PointF checkPoint) 
{
    return (checkPoint.Y - endPoint1.Y) / (endPoint2.Y - endPoint1.Y)
        == (checkPoint.X - endPoint1.X) / (endPoint2.X - endPoint1.X);
}

and call it as follows:

if (IsOnLine(pt1, pt2, checkPoint) {
    // Is on line
}

You will need to check for division by zero though.

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Thank u very very much. –  Wahid Bitar May 25 '09 at 17:28
3  
This can't be right... Since point coordinates are ints, you'd have (a critical) loss of percision when the checkPoint is close to endPoint1 and far from endPoint2. Perhaps if you changed it to decimal or double it would work well for both sides, but I still wouldn't trust this equasion's exactness. –  configurator May 25 '09 at 18:15
    
Fair Point (pun intended), changed them to PointF –  Patrick McDonald May 26 '09 at 9:12
    
There are two problems left: You didn't check the end of the line, so (4,6) would be between (1,2) and (3,4) according to this function, and there's the problem of precision - suppose a line goes from (1,100) to (2,200). There's not a single point in the middle with integer coordinates - the check would always be false for integer coordinates. –  configurator May 28 '09 at 11:33
    
java.lang.ArithmeticException: divide by zero - NOT OK –  Manolescu Sebastian Jun 25 '13 at 11:57

Equation of the line is:

y = mx + c

So a point(a,b) is on this line if it satisfies this equation i.e. b = ma + c

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A 2D line is generally represented using an equation in two variables x and y here is a well known equation

y-y1 = (y1-y2)/(x1-x2) (x-x1)

Now imagine your GDI+ line is drawn from (0,0) to (100, 100) then the value of m=(0-100)/(0-100) = 1 thus the equation for your line is y-0=1*(x-0) => y=x

Now that we have an equation for the line in question its easy to test if a point belongs to this line. A given point (x3, y3) belongs to this line if it satisfies the line equation when you substitute x=x3 and y=y3. For example the point (10, 10) belongs to this line since 10=10 but (10,12) does not belong to this line since 12 != 10.

NOTE: For a vertical line the value of the slope (m) is infinite but for this special case you may use the equation for a vertical line directly x=c where c = x1 = x2.

Though I have to say I am not sure if this is the most efficient way of doing this. I will try and find a more efficient way when I have some more time on hand.

Hope this helps.

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Could you be more specific?

What programming language are you talking about?

What environment are you talking about?

What "lines" are you talking about? Text? What point? XY on the screen?

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1  
Excuse this I should have commented on the original question –  joshcomley May 25 '09 at 16:59
4  
You can still delete your post, and post the comment : ) –  Boris Guéry May 25 '09 at 17:01

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