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I have a kernel that calls a device function inside an if statement. The code is as follows:

__device__ void SetValues(int *ptr,int id)
{
    if(ptr[threadIdx.x]==id) //question related to here
          ptr[threadIdx.x]++;
}

__global__ void Kernel(int *ptr)
{
    if(threadIdx.x<2)
         SetValues(ptr,threadIdx.x);
}

In the kernel threads 0-1 call SetValues concurrently. What happens after that? I mean there are now 2 concurrent calls to SetValues. Does every function call execute serially? So they behave like 2 kernel function calls?

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1 Answer

up vote 16 down vote accepted

CUDA actually inlines all functions by default (although Fermi does also support function pointers and real function calls). So your example code gets compiled to something like this

__global__ void Kernel(int *ptr)
{
    if(threadIdx.x<2)
        if(ptr[threadIdx.x]==threadIdx.x)
            ptr[threadIdx.x]++;
}

Execution happens in parallel, just like normal code. If you engineer a memory race into a function, there is no serialization mechanism that can save you.

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i have a fermi card. does this mean that the function is Non-inlined? therefore the threadIdx.x in SetValues are all the threads and not just threads 0 and 1? –  scatman Apr 19 '11 at 6:58
1  
Functions are still inlined by default in Fermi. I think I understand what you are actually asking about now - which is what the scope of built-in per thread variables (like threadIdx) is inside device functions. Am I getting warmer? –  talonmies Apr 19 '11 at 7:16
    
yes that is my question. but since device functions are inline.. then i guess the scope of threads is the same as called using <<<blocks,threads>>> but because of the branch only threads 0 and 1 execute ptr[threadIdx.x]++. is this correct? –  scatman Apr 19 '11 at 7:31
    
Yes, of course it is. How could it be any other way? –  talonmies Apr 19 '11 at 7:34
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