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Given n points on a 2-D plane, what is the point such that the distance from all the points is minimized? This point need not be from the set of points given. Is it centroid or something else?

How to find all such points(if more than one) with an algorithm?

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Don't close this, geometry algorithms are entirely within the scope of stack overflow – Nick Fortescue Dec 7 '09 at 8:46
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Is it homework? Also, in what language are you trying to implement this? – Piskvor Dec 7 '09 at 8:46
    
No its not homework. I am studying algorithms on computational geometry. So got a doubt.I am doing it in C. – nowonder Dec 7 '09 at 8:48
up vote 5 down vote accepted

This is known as the "Center of Distance" and is different from the centroid.

Firstly you have to define what measure of distance you are using. If we assume you are using the standard metric of d=sqrt( (x1-x2)^2 + (y1-y2)^2) then it is not unique, and the problem is minimising this sum.

The easiest example to show this answer is not unique is the straight line example. Any point in between the two points has an equal total distance from all points.

In 1D, the correct answer will be any answer that has the same number of points to the right and the left. As long as this is true, then any move to the left and right will increase and decrease the left and right sides by the same amount, and so leave the distance the same. This also proves the centroid is not necessarily the right answer.

If we extend to 2D this is no longer the case - as the sqrt makes the problem weighted. Surprisingly to me there does not seem to be a standard algorithm! The page here seems to use a brute force method. I never knew that!

If I wanted to use an algorithm, then I would find the median point in X and Y as a start point, then use a gradient descent algorithm - this would get the answer pretty quickly. The whole equation ends up as a quadratic, so it feels like there ought to be an exact solution.

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Doesn't the brute force algorithm in your first link do it for points on a sphere? – Matthijs Wessels Dec 7 '09 at 9:18
    
No, I said gradient descent for n points. Write your scoring function so that it calculated the total distance to all n points, then let your descent function minimise this value. I'm not going to add code in case it is homework, it should be easy to write. – Nick Fortescue Dec 7 '09 at 9:19
    
@Matthijs, quite probably, I didn't look too hard. Thanks for pointing out. It's an interesting question isn't it. – Nick Fortescue Dec 7 '09 at 9:20
    
@Nick Fortescue: Thank u sir. got it. – nowonder Dec 7 '09 at 9:20
    
@Nick Fortescue: Sorry for deleting the comment. I saw your answer to comment just after deleting it. – nowonder Dec 7 '09 at 9:22

There may be more than one point. Consider a plane with only two points on it. Those points describe a line-segment. Any point on that line-segment will have the same total distance from the two end-points.

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So how to find all such points with an algorithm? – nowonder Dec 7 '09 at 8:51
    
In fact the answer is going to be a simple polygon. The reason is that a sum of convex functions (like the distance function) is convex as well. You could probably find its exact coordinates by starting from a triangle and adding points. However doing it naively would be n^2. – Thomas Ahle Nov 15 '14 at 14:40

A brute force algo. might give you the best results. Firstly, locate a rectangle/any quadrilateral bounding the input points. Finally, for each point inside the rectangle, calculate distance from other points. Sum the distances of the point from the input set. Say this is the 'cost' of the point. Repeat for each point and select point with min. cost.

Intelligence can also be added to the algo. it can eliminate areas based on average cost, etc...

Thats how I would approach the problem at least... hope it helps.

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But it has very high complexity. Checking each point inside rectangle, how to do that, the point coordinates can be any floating point number. – nowonder Dec 7 '09 at 8:56
    
well obviously you need some step size, a minimum distance between two consecutive points, a simple example using C might be: for (int row = minR; row < maxR; row += rStep) for (int col = minC; col < maxC; col += cStep) [check distances and add the cost to an array] – Jibran Dec 7 '09 at 18:12

This is discussed in detail here http://www.ddj.com/architect/184405252?pgno=1

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This was interesting but solves a different problem. The questioner asked the point that minimises the distance to all points. The DDJ article finds the two points closest to each other. – Nick Fortescue Dec 16 '09 at 10:07

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