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I want to calculate a point on a line by the distance to the first point. Because I dont have any coordinates of the new point, i can't use the linear interpolation... I thought like this: Example Drawing (Sorry, I'm a new user and I am not allowed to post images)

But actually it doesnt work, so I ask you for help.

Here is the actual code in java:

    public static PointDouble interpolationByDistance(Line l, double d) {
    double x1 = l.p1.x, x2 = l.p2.x;
    double y1 = l.p1.y, y2 = l.p2.y;
    double ratioP = ratioLine_x_To_y(l);
    double disP = l.p1.distance(l.p2);
    double ratioDis = d / disP;
    PointDouble pn = l.p2.getLocation();
    pn.multi(ratioDis);
    System.out.println("dis: " + d);
    System.out.println("new point dis: " + l.p1.distance(pn));
    return pn;
}

Thank you.

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You might benefit from using more descriptive variable names. I'd be willing to bet it would make your life easier. – jonmorgan Feb 18 '12 at 16:56
up vote 2 down vote accepted

As a programmer you should love changing a problem to a one you have already solved. Find the ratio and then use the linear interpolation:

public static PointDouble interpolationByDistance(Line l, double d) {
  double len = l.p1.distance(l.p2);
  double ratio = d/len;
  double x = ratio*l.p2.x + (1.0 - ratio)*l.p1.x;
  double y = ratio*l.p2.y + (1.0 - ratio)*l.p1.y;
  System.out.println(x + ", " + y);
  ...
}
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Thank you, very nice algorithm! :) – Thomas Feb 18 '12 at 17:16
1  
Ah, I forgot to mention: line 3 should be "double ratio = d/len;". The full ratio needs to be used. – Thomas Feb 18 '12 at 17:32
    
Of course you are right :) this also saves us the special case. – Ivaylo Strandjev Feb 18 '12 at 18:07

The basics of this are quite simple:

f = 0.3;
xp = f * x1 + (1-f) * x2;
yp = f * y1 + (1-f) * y2;

To understand this, consider:

  • if f==0, then xp = x2, yp=y2
  • if f==1, then xp = x1, yp=y1
  • for any value of f between 0..1, you get a point between (x1,y1)..(x2,y2)

I'm not sure what you exactly intend to calculate. This takes a value f in the range 0..1. If you have d as an absolute length, do f=d/disP

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