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I've searched for a little bit now, but can't find a glm C function that runs on CUDA? Does anyone know if this is available somewhere? I need to run hundreds of simultaneous glm regressions on the same data set and using CUDA could help me.

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From within R, the gputools package has support for performing GLM regressions on GPUs. The code is freely available, and you may either look for whether there is C code that can be used or whether you can make calls from your C program to R.

Further information on the package may be found at:

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Hi,Thanks for the reply. To my knowledge, gputools uses an uncommented C library to perform the GLM regression, and I have not found the source code of it. I'll search more. –  user943987 Sep 26 '11 at 3:56
    
Can you simply make use of calls to R? If so, then it can take care of the regressions for you. You can call R from within C or as a standalone process or server. Also, if you choose to use a CPU method, be sure to use all of the best math libraries you can, such as ATLAS or the Intel & AMD options. In R, there's also a very fast regularized GLM solver called glmnet. –  Iterator Sep 26 '11 at 4:48
    
I am trying to run different regressions in parallel (on GPU), which I don't think is possible in R (please correct me if I'm wrong). R optimises the single regression using gputools. About calling R from within C, I don't think that running multiple R processes in parallel is a possibility. Again, please let me know if I'm wrong. Using a kernel looked like the natural solution to the problem to me, but I can't find any GLM function that runs on GPU, and this looked weird to me. Thanks for pointing me to glmnet. –  user943987 Sep 27 '11 at 3:43
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@user943987 You can run as many instances of R as you want, they operate independently. –  James Nov 22 '11 at 11:16
    
See the package in R base parallel. –  rpierce Oct 29 '14 at 14:57

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