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I have been trying to figure this out for sometime now..

The problem to solve..

Say I have 3 Points..

P1 ---------- P2, and P3 can be anywhere around P1 and P2

What is the formula to calculate so that P3 is interpolated onto the line between P1 and P2?

I need a formula that calculates new X,Y coordinates for P3 that falls on the line between P1 and P2..

My code as of so far..

        public Point lerp(Point P0, Point P1, Point P) 
        {
            double y1 = P0.Y + (P1.Y - P0.Y) * ((P.X - P0.X) / (P1.X - P0.X));
            double x1 = P.X;

            double y2 = P.Y;
            double x2 = P0.X + (P1.X - P0.X) * ((P.Y - P0.Y) / (P1.Y - P0.Y));

            return new Point((x1 + x2) / 2, (y1 + y2) / 2);
        }

And my reference.. http://en.wikipedia.org/wiki/Linear_interpolation

The above code gets it close, but its slightly off...

Here is the converted javascript code from Corey Ogburn

        public Point _pointOnLine(Point pt1, Point pt2, Point pt)
        {
            bool isValid = false;

            var r = new Point(0, 0);
            if (pt1.Y == pt2.Y && pt1.X == pt2.X) { pt1.Y -= 0.00001; }

            var U = ((pt.Y - pt1.Y) * (pt2.Y - pt1.Y)) + ((pt.X - pt1.X) * (pt2.X - pt1.X));

            var Udenom = Math.Pow(pt2.Y - pt1.Y, 2) + Math.Pow(pt2.X - pt1.X, 2);

            U /= Udenom;

            r.Y = pt1.Y + (U * (pt2.Y - pt1.Y));
            r.X = pt1.X + (U * (pt2.X - pt1.X));

            double minx, maxx, miny, maxy;

            minx = Math.Min(pt1.Y, pt2.Y);
            maxx = Math.Max(pt1.Y, pt2.Y);

            miny = Math.Min(pt1.X, pt2.X);
            maxy = Math.Max(pt1.X, pt2.X);

            isValid = (r.Y >= minx && r.Y <= maxx) && (r.X >= miny && r.X <= maxy);

            return isValid ? r : new Point();
        }
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1  
Umm... you mean P3 is some arbitrary point (probably not on the line) and project it to find a point on that line? Like casting a shadow? So given the projected point P4, you can draw a perpendicular line out from P1P2 and it would hit P3? –  Chris Sinclair Mar 5 '13 at 19:26
    
Yes, that's exactly what I am trying to do.. –  Chris Fazzio Mar 5 '13 at 19:29
    
I've changed title to match your comment - feel free to revert. –  Alexei Levenkov Mar 5 '13 at 19:33
    
Thanks.. In some cases it is more then just a little off.. I could really use a completely new approach at going about this.. "projecting a point" comment is very helpfull as I was not sure what this was called.. –  Chris Fazzio Mar 5 '13 at 19:40

3 Answers 3

up vote 3 down vote accepted

Here's some javascript code we've used here at work (a GIS company) to figure out the closest point on a line the mouse is next to in a situation where a user wants to split the line by adding a vertex to it. Should be easy to move over to C#:

function _pointOnLine(line1, line2, pt) {
    var isValid = false;

    var r = new Microsoft.Maps.Location(0, 0);
    if (line1.latitude == line2.latitude && line1.longitude == line2.longitude) line1.latitude -= 0.00001;

    var U = ((pt.latitude - line1.latitude) * (line2.latitude - line1.latitude)) + ((pt.longitude - line1.longitude) * (line2.longitude - line1.longitude));

    var Udenom = Math.pow(line2.latitude - line1.latitude, 2) + Math.pow(line2.longitude - line1.longitude, 2);

    U /= Udenom;

    r.latitude = line1.latitude + (U * (line2.latitude - line1.latitude));
    r.longitude = line1.longitude + (U * (line2.longitude - line1.longitude));

    var minx, maxx, miny, maxy;

    minx = Math.min(line1.latitude, line2.latitude);
    maxx = Math.max(line1.latitude, line2.latitude);

    miny = Math.min(line1.longitude, line2.longitude);
    maxy = Math.max(line1.longitude, line2.longitude);

    isValid = (r.latitude >= minx && r.latitude <= maxx) && (r.longitude >= miny && r.longitude <= maxy);

    return isValid ? r : null;
}

line1 is a point with a latitude and longitude to represent one of the endpoints of the line, equivalent to your P1. line2 is the other endpoint: P2. pt is your P3. This will return the point on the line that P3 is perpendicular through. If P3 is past either end of the line, this will return null which means that one of the two end points is the closest point to P3.

For clarity:

enter image description here

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Sounds like just what I needed.. Going to convert it and give it a shot.. Thanks –  Chris Fazzio Mar 5 '13 at 20:02
    
This works.. Awesome.. Thanks :) –  Chris Fazzio Mar 5 '13 at 20:10

The problem is that you Point has integer values for X and Y and therefore you are doing integer division. Try to cast your values into float or double, do the calculations and then return them back to the integers.

Note that when you are doing this: (P1.Y - P0.Y) * ((P.X - P0.X) / (P1.X - P0.X)) you are actualy loosing the precision since the result of 5/2 is 2, not 2.5 but when your values are real numbers then 5.0/2.0 is indeed 2.5.

You should try this:

double y1 = P0.Y + (double)(P1.Y - P0.Y) * ((double)(P.X - P0.X) / (double)(P1.X - P0.X));
double x1 = P.X; //these two are implicit casts

double y2 = P.Y;
double x2 = P0.X + (double)(P1.X - P0.X) * ((double)(P.Y - P0.Y) / (double)(P1.Y - P0.Y));

return new Point((x1 + x2) / 2.0, (y1 + y2) / 2.0); //put 2.0 for any case even though x1+x2 is `double`

Also, then you are converting from double to int, decimal part of the number is automatically cut off so for instance 3.87 will become 3. Than your last line should be more precise if you could use this:

   return new Point((x1 + x2) / 2.0 + 0.5, (y1 + y2) / 2.0 + 0.5);

which will effectively round double values to the closer integer value.

EDIT:

But if you just want to find the point p3 on the line between the two points, than it is easier to use this approach:

public Point lerp(Point P0, Point P1) 
{
      double x = ((double)P0.X + P1.X)/2.0;

      double y = (double)P0.Y + (double)(P1.Y - P0.Y) * ((double)(x - P0.X) / (double)(P1.X - P0.X));
      return new Point(x + 0.5, y + 0.5);
}
share|improve this answer
    
I tried it, basically the result was exactly the same though.. –  Chris Fazzio Mar 5 '13 at 19:38
    
Thanks, This is definitely helpful.. But maybe not exactly the answer I was looking for.. I will keep this in mind while figuring out a better formula.. –  Chris Fazzio Mar 5 '13 at 19:44
    
@ChrisFazzio Check the edited answer. MU and Real just started so I'll be off :-D –  Nikola Davidovic Mar 5 '13 at 19:49
    
Thanks, It actually works well if I don't add the + 0.5 to x and y at the end.. This will help me to solve/check my other logic greatly by just getting the point in the middle.. good idea.. :) Basically I have a long line with multiple points.. So the logic before this needs to determine the closest point to the mouse and the next closest point to that.. There are so many variables with figuring out the next closest point. I think this part will drive me crazy for a few days.. –  Chris Fazzio Mar 5 '13 at 19:56
    
@ChrisFazzio Adding 0.5 is a C style workaround, you could also use Math.Round(double a) method. My habit is using +0.5 but you should use what suits you the best. Glad I could help you! –  Nikola Davidovic Mar 5 '13 at 20:03

What you're trying to do is called projecting a point on a line and is a standard problem in linear algebra. See for instance http://intumath.org/Math/Geometry/Analytic%20Geometry/projectionofpoin.html

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