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I have a line identify by x1,y1,x2,y2 which are double values. Then I have several graphical objects (Let's name the class TShape) which cordinates are Left, Top, Right, Bottom: double. Only Top and Left properties are writable value. When dragging the TShape around the top and left values are updated.

I am using a function to discovery when TShape is near a Line. The function definition is:

function NearLine(const Target: TPoint; X1, Y1, X2, Y2: double; Off: integer = 5): boolean;

NearLine returns true if point specified by Target is near the line specified by Point1 and Point2. The point must be at the distance specified by Off.

I use the function with Off = 0;

In my implementation Target is the center of the TShape which I keep updated calculating it from Top and Left properties. Because Target is TPoint I do:

1-

CPoint.X := Trunc(Center.X);
CPoint.Y := Trunc(Center.Y);

2- and when the function NearLine above is true I force the mouse to release with:

3-

Mouse_Event(MOUSEEVENTF_ABSOLUTE or MOUSEEVENTF_LEFTUP, 0, 0, 0, 0);

1,2 an 3 are called within an event UpdateMove which is called while dragging the shape.

This allow me to "stick" the TShape almost near the line however it's not exactly what I want to achive... obviously there is an error due the Trunc function.
The error is:

deltaX := Frac(Center.X);
deltaY := Frac(Center.Y);

After releasing the mouse programmatically how I can force all the center therefore all the shapes to be perfectly lined (collinear) with the line?

Any help? :(

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If your point's aren't already collinear (and you need 3 points for that because two points are always collinear) you can force them to be collinear by wrapping space and having them go trough the 4th dimension (time?) –  Cosmin Prund Mar 25 '11 at 13:11
    
@Cosmin: love that comment. Must anticipate rectilinear responses on a programmer2programmer site :) –  sehe Mar 25 '11 at 13:16
    
please can you format the question so that it is easily readable. –  David Heffernan Mar 25 '11 at 13:33

1 Answer 1

You're asking the question wrong, that's why you cant' see the answer your self. If 3 points aren't collinear, you're not going to "force" them collinear unless you change the laws of math and/or physics.

What you probably want is to find a point on the line defined by two points that's closest to your point of reference. That's pretty simple geometry: The closest point is as at the "foot" of a perpendicular drawn from your third point to the line defined by the first two! You can solve that using the Pythagoran theory alone, you don't even need fancy analytic geometry.

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any code sample? :( –  marcostT Mar 25 '11 at 14:16
    
do we need a mathoverflow site ? -- oops I'll ask on meta instead –  sehe Mar 25 '11 at 14:20
    
@sehe: math.stackexchange.com already exists... –  Martijn Mar 25 '11 at 14:34
    
ok because i still don't understand I how to rate people. –  marcostT Mar 25 '11 at 19:36
    
>>Marcos, do you really need a code sample for this without trying first by yourself? R: Ye I will appreciate it, I am testing by myself almost since 2 weeks. The result is not so bad but not perfect due trunc function. –  marcostT Mar 25 '11 at 19:38

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