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I have a cuda kernel wrapped in a while loop, like so:

while (i < particles) {
    ....
}

When I change this to the following:

while (true) {
    if (i >= particles) break;
    ....
}

...then compiling with nvcc --ptxas-options=-v indicates that the latter uses 8 fewer registers than the former!

Any idea what is going on here? I'm not sure if my version of nvcc is tailored for my particular graphics card, but my GPU has compute capability 2.1. My nvcc is part of cuda release 4.2.

EDIT: As I mentioned previously, the compiler (nvcc) is part of CUDA release 4.2. Here is the full command:

nvcc -arch=sm_13 --ptxas-options=-v -c kernel.cu

Output for the first case:

ptxas info    : Compiling entry function '_Z21condense_rates_kernelPKdS0_S0_S0_P29cuda_condense_rates_outputs_ti' for 'sm_13'
ptxas info    : Used 68 registers, 44+16 bytes smem, 112 bytes cmem[0], 28 bytes cmem[1]

Output for the second case:

ptxas info    : Compiling entry function '_Z21condense_rates_kernelPKdS0_S0_S0_P29cuda_condense_rates_outputs_ti' for 'sm_13'
ptxas info    : Used 60 registers, 44+16 bytes smem, 112 bytes cmem[0], 28 bytes cmem[1]

I could be wrong, but the compiler doesn't seem to indicate that there is any spilling to lmem between the two cases.

share|improve this question
    
Can you give us all the compiler version, the options and the entire output? Did it really save 8 registers or does it just spill them over? –  Pedro Jul 6 '12 at 22:09
    
Please provide the messages output by the compiler when compiling both codes. –  harrism Jul 9 '12 at 0:41

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