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Given a collection of thousands of points in 3D, I need to get the list of neighbours for each particle that fall inside some cutoff value (in terms of euclidean distance), and if possible, sorted from nearest fo farthest.

Which is the fastest GPU algorithm for this purpose in the CUDA or OpenCL languages?

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I think you are misunderstanding what CUDA and OpenCL are. –  Park Young-Bae Jul 18 '11 at 16:29
I rephrased the question –  flow Jul 18 '11 at 16:33
Is the cutoff value the same for all particles? –  Jonathan Dursi Jul 18 '11 at 17:48
yes, it is the same for all paraticles –  flow Jul 18 '11 at 17:59

3 Answers 3

up vote 3 down vote accepted

One of the fastest GPU MD codes I'm aware of, HALMD, uses a (highly tuned) version of the same sort of approach that is used in the CUDA SDK examples, "Particles". Both the HALMD paper and the Particles whitepaper are very clearly written. The underling algorithm is to assign particles into cutoff-radius-sized bins, do a radix sort based on that index, and then look at particles in the neighbouring bins.

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this is really cool since the paper is really well explained and all the functions and things are already implemented in the library! –  flow Jul 19 '11 at 2:04

CUDA and OpenCL are not algorithms, they are technologies that allow you to program the GPU.

Any of them is well suited to solve your problem. If I were you I would look into source code examples to feel what's like writing programs using these technologies, and then pick one to implement the algorithm you are interested in.

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I know, I just did not expressed that correctly –  flow Jul 18 '11 at 16:30

Fast k Nearest Neighbor Search using GPU

I haven't tested, used it, nothing. I just googled and posted the first link I found.

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it looks really interesting, thnaks –  flow Jul 19 '11 at 2:05
Source code to the link is available here: vincentfpgarcia.github.io/kNN-CUDA –  Keith Sep 17 '13 at 9:13

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