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I'm new to cuda; I have a 2D image (width, height) with 3 channels (colors). What I want is to lunch a kernel that have 3D block and 2D grid like this

kernel_2D_3D<<<dim3(1,m,n), dim3(3,TILEy,TILEz)>>>(float *in, float *out)

I use x for colors, y for width and z for height. My question is: How can I calculate the row and column of the image:

  1. unsigned int Row = ?
  2. unsigned int Col = ?

and the I use this function to calculate global unique index

__device__ int getGlobalIdx_2D_3D()
{
    int blockId = blockIdx.x+ blockIdx.y * gridDim.x; 

    int Idx = blockId * (blockDim.x * blockDim.y * blockDim.z)
                 + (threadIdx.z * (blockDim.x * blockDim.y))
                 + (threadIdx.y * blockDim.x)
                 + threadIdx.x;

    return Idx;
}
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1 Answer 1

up vote 1 down vote accepted

If you are using y for width and z for height, then the row and column of the image will be calculated like this inside the kernel:

unsigned int row = blockIdx.z * blockDim.z + threadIdx.z;
unsigned int col = blockIdx.y * blockDim.y + threadIdx.y;

The current channel would be equal to threadIdx.x.

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Ok I think I can't confirm that this answer is true or not because after some reading I discover that I can't do it in my laptop //There is 1 device supporting CUDA // Device 0 name: GeForce 9200M GS // Computational Capabilities: 1.1 // Maximum global memory size: 536150016 // Maximum constant memory size: 65536 // Maximum shared memory size per block: 16384 // Maximum block dimensions: 512 x 512 x 64 // Maximum grid dimensions: 65535 x 65535 x 1 // Warp size: 32 –  ALMIStack Jan 31 '13 at 18:38
    
@ALMIStack... Sorry for misunderstanding. I have removed the incorrect assumption. –  sgarizvi Jan 31 '13 at 18:40
1  
so grid.z = 1 and I need ((n+TILEz-1)/TILEz) –  ALMIStack Jan 31 '13 at 18:43
    
thank you sgar91 –  ALMIStack Jan 31 '13 at 18:46

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