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I want do do some flocking simulation, as described here.

For this I need to search for the nearest neighbours of each of my 2D points. However, I cannot use a static data structure like a k-d tree because the points are always moving...

What's a good (easy) datastructure/library that is able to achieve this? I'm working with C++...

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You might get some ideas from stackoverflow.com/questions/6871682/… –  Don Reba Aug 7 '11 at 9:14

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Maybe you want to try a quadtree or a spatial index? What's the problem with a k-d tree? Basically when have the edge the flock/points you can skip checking collision with edges far away. A spatial index can be a quadtree, r-tree, kd-tree or hilbert r-tree. A better answer can be read here: Approximate, incremental nearest-neighbour algorithm for moving bodies

"That is, recursively partition the "world" into a graph with four subnodes each. The tree can then quickly check which objects are inside a particular square of the world and discard the rest. A very effective culling technique often used for improving performance of collision detection in games."

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Isn't a k-d tree (or a quadtree, for that matter) static? Meaning you have to rebuild it in each step, after all the points have moved? –  Jan Rüegg Aug 7 '11 at 10:01
The idea of a quadtree is to reduce the 2d complexity to a 1d complexity. When you recursivley traverse the tree depth-first or breadth-first it becomes a simple task to fill the full tree? –  Phpdna Aug 7 '11 at 10:08
I guess a quadtree would work, sort of. However, simply iterating through all neighbours seemed to be fast enough for me... –  Jan Rüegg Nov 28 '12 at 11:29

People have studied this problem. The important keyword is kinetic, when looking for work in this ares.

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