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 While writing simple OpenCL kernel I tried to use semaphores and it crushed my GPU Drivers (AMD 12.10). After checking out examples I found out, that crash happens only when local work size is not equal to 1. This code taken from example:

    #pragma OPENCL EXTENSION cl_khr_global_int32_base_atomics : enable
    #pragma OPENCL EXTENSION cl_khr_local_int32_base_atomics : enable
    #pragma OPENCL EXTENSION cl_khr_global_int32_extended_atomics : enable
    #pragma OPENCL EXTENSION cl_khr_local_int32_extended_atomics : enable

    void GetSemaphor(__global int * semaphor)
    {
      int occupied = atom_xchg(semaphor, 1);
      while(occupied > 0)
      {
          occupied = atom_xchg(semaphor, 1);
      }
    }

    void ReleaseSemaphor(__global int * semaphor)
    {
       int prevVal = atom_xchg(semaphor, 0);
    }

    __kernel void kernelNoAtomInc(__global int * num,
                __global int * semaphor)
    {
      int i = get_global_id(0);
      GetSemaphor(&semaphor[0]);
      {
        num[0]++;
      }
      ReleaseSemaphor(&semaphor[0]);
    }

In example author uses

CQ.Execute(kernelNoAtomInc, null, new long[1] { N }, new long[1] { 1 }, null);

Where N = global_work_size and local_work_size = 1
Now if I change 1 to null or 2 or 4 or any other number i tried - AMD drivers will crush.

CQ.Execute(kernelNoAtomInc, null, new long[1] { N }, new long[1] { 2 }, null);

I do not have other PC to test on it at the moment. However it seems strange that author deliberately left local_group_size = 1, that's why I think I missing something here. Can someone please explain this to me? Also, as far as I understand, leaving local_group_size at 1 will affect performance greatly or it won't? Thanks.

Host: Win8 x64, HD6870

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