21

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?

24

CUDA actually inlines all functions by default (although Fermi and newer architectures do also support a proper ABI with 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.

  • 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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