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In this code the kernel is not getting launch and I am unable to get the result on host. I am using CUDA 5 on Quadro Fx 3800 Nvidia card.

#define M 512
#define THREADS 128
typedef unsigned int uint;

__device__ void shiftRight(uint *x) // shift right
{
    if(*x) *x = *x >> 1;
}

__device__ uint checkOdd(uint *x)  //check for odd number
{
    if((*x & 1) == 0)
    {
        *x = *x - 1;
        return 1;
    }
    else
        return 1;
}

__device__ uint checkGreater(uint *x) // check for greater number
{
    if(*x > 1)
        return 1;
    else
        return 0;
}


__device__ uint subtract(uint *u, uint *v) // subtract two number
{
    return (*u -*v);
}

__device__ float modulus(uint *u, uint *v)
{
    return fmodf(__uint2float_rn (*u),__uint2float_rn (*v));
}

// kernel code handling two numbers and result number
__global__ void kernel(uint *u, uint *v,uint *w, int m)
{

    int tid = threadIdx.x + blockIdx.x * blockDim.x;

    extern __shared__ uint r[], s[], x[], y[];

    for (int i = threadIdx.x; i < m; i++)
    {
        r[i] = 0;
        s[i] = 0;
        x[i] = 0;
        y[i] = 0;
    }
    x[tid] = u[tid];
    y[tid] = v[tid];

    if(y[tid] > x[tid])
    {
        u[tid] = y[tid];
        v[tid] = x[tid];
    }


    if(tid < m)
    {
        if(checkOdd(&v[tid]))
        {
            while(checkGreater(&v[tid]))
            {
                r[tid] = __float2uint_rn (modulus(&u[tid],&v[tid]));
                s[tid] = subtract(&v[tid], &r[tid]);

                while(r[tid] > 0 && (r[tid] & 1) == 0)
                    shiftRight(&r[tid]);

                while(s[tid] > 0 && (s[tid] & 1) == 0)
                    shiftRight(&s[tid]);

                if(s[tid] < r[tid])
                {
                    u[tid] = r[tid];
                    v[tid] = s[tid];
                }
                else
                {
                    u[tid] = s[tid];
                    v[tid] = r[tid];
                }

            }//while end

            if (v[tid] == 1)
                w[tid] = 1;
            else
                w[tid]= u[tid];
        }
    }

}

// main program 
int main()
{
    uint *x, *y, *z;//for host
    uint *xd, *yd, *zd; //for device

    int size = M * sizeof(uint);

    //on host
    x = (uint *) malloc(size);
    y = (uint *) malloc(size);
    z = (uint *) malloc(size);

    //on device
    cudaMalloc((void** )&xd, size);
    cudaMalloc((void** )&yd, size);
    cudaMalloc((void** )&zd, size);

    //initialize x and y
    for(int i=0; i< M; i++)
    {
        x[i] = (uint)rand()%100000;
        y[i] = (uint)rand()%100000;
        z[i] = 0;
    }

    //display input
    /*    for(int i=0; i< M; i++)
          printf("%u and %u \n",x[i], y[i]);
     */
    //copy to device
    cudaMemcpy(xd, x, size, cudaMemcpyHostToDevice);
    cudaMemcpy(yd, y, size, cudaMemcpyHostToDevice);

    //kernel call
    kernel<<< M/THREADS, THREADS >>> (xd, yd, zd, M);

    //copy to host
    cudaMemcpy(z, zd, size, cudaMemcpyDeviceToHost);
    cudaCheckErrors("cudamalloc fail D");

    //display result
    for(int i=0; i<M; i++)
        printf("%u and %u =%u\n",x[i],y[i],z[i]);

    cudaFree(xd); cudaFree(yd);cudaFree(zd);
    free(x); free(y); free(z);

    return 0
}
share|improve this question
    
@Ren: The bold face came from #include statements in unformatted code. –  talonmies Apr 12 '13 at 10:13
2  
You have to specify the size of dynamic shared memory in the 3rd argument of kernel launch configuration like this <<<gridSize,blockSize,sharedmemoryBytes>>>, if you are declaring shared memory as extern __shared__. –  sgar91 Apr 12 '13 at 10:42
2  
ALso note that CUDA only supports a single dynamic shared memory allocation per kernel, so you will need a little bit of pointer arithmetic inside your kernel to set up the shared arrays correctly. –  talonmies Apr 12 '13 at 13:57
    
Did you try running cuda-memcheck on the application ? –  Vyas Apr 13 '13 at 1:07

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