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In CUDA 5.0, NVIDIA added a "texture object" (cudaTextureObject_t) that makes textures a bit easier to work with. Previously, it was necessary to define textures as global variables.


I followed this NVIDIA example on using the cudaTextureObject_t. It works properly for the 1D case. I tried to extend the example to work on 2D pitched memory:

#define WIDTH 6
#define HEIGHT 2
int width = WIDTH; int height = HEIGHT;
float h_buffer[12] = {1,2,3,4,5,6,7,8,9,10,11,12};
float* d_buffer;
size_t pitch;
cudaMallocPitch(&d_buffer, &pitch, sizeof(float)*width, height);
cudaMemcpy2D(d_buffer, pitch, &h_buffer, sizeof(float)*width, sizeof(float)*width, height, cudaMemcpyHostToDevice);
printf("pitch = %d \n", pitch);

//CUDA 5 texture objects: https://developer.nvidia.com/content/cuda-pro-tip-kepler-texture-objects-improve-performance-and-flexibility
cudaResourceDesc resDesc;
memset(&resDesc, 0, sizeof(resDesc));
resDesc.resType = cudaResourceTypePitch2D;
resDesc.res.pitch2D.devPtr = d_buffer;
resDesc.res.pitch2D.pitchInBytes =  pitch;
resDesc.res.pitch2D.width = width;
resDesc.res.pitch2D.height = height;
resDesc.res.pitch2D.desc.f = cudaChannelFormatKindFloat;
resDesc.res.pitch2D.desc.x = 32; // bits per channel 
resDesc.res.pitch2D.desc.y = 32; 
cudaTextureDesc texDesc;
memset(&texDesc, 0, sizeof(texDesc));
texDesc.readMode = cudaReadModeElementType;
cudaTextureObject_t tex;
cudaCreateTextureObject(&tex, &resDesc, &texDesc, NULL);

To see if the data is indeed accessible through the texture cache, I printed a few bytes in this kernel:

__global__ void printGpu_tex(cudaTextureObject_t tex) {
    int tidx = blockIdx.x * blockDim.x + threadIdx.x;
    int tidy = blockIdx.y * blockDim.y + threadIdx.y;
    if(tidx < WIDTH && tidy < HEIGHT){
        float x = tex2D<float>(tex, tidy, tidx);
        printf("tex2D<float>(tex, %d, %d) = %f \n", tidy, tidx, x);
    }
}

I expected the output of this to be "1,2,3,...,12." But, it prints "1,7,7,7,...3,9,...":

tex2D<float>(tex, 0, 0) = 1.000000 
tex2D<float>(tex, 0, 1) = 7.000000 
tex2D<float>(tex, 0, 2) = 7.000000 
tex2D<float>(tex, 0, 3) = 7.000000 
tex2D<float>(tex, 0, 4) = 7.000000 
tex2D<float>(tex, 0, 5) = 7.000000 
tex2D<float>(tex, 1, 0) = 3.000000 
tex2D<float>(tex, 1, 1) = 9.000000 
tex2D<float>(tex, 1, 2) = 9.000000 
tex2D<float>(tex, 1, 3) = 9.000000 
tex2D<float>(tex, 1, 4) = 9.000000 
tex2D<float>(tex, 1, 5) = 9.000000 

To verify that the d_buffer data is set up correctly, I also made a "print kernel" for the raw d_buffer array without using the texture cache:

__global__ void printGpu_vanilla(float* d_buffer, int pitch) {
    int tidx = blockIdx.x * blockDim.x + threadIdx.x;
    int tidy = blockIdx.y * blockDim.y + threadIdx.y;
    if(tidx < WIDTH && tidy < HEIGHT){
        float x = d_buffer[tidy*pitch + tidx];
        printf("d_buffer[%d][%d] = %f \n", tidy, tidx, x);
    }
}

output looks good (unlike the texture cache version):

d_buffer[0][0] = 1.000000 
d_buffer[0][2] = 2.000000 
d_buffer[0][3] = 3.000000 
d_buffer[0][4] = 4.000000 
d_buffer[0][5] = 5.000000 
d_buffer[0][5] = 6.000000 
d_buffer[1][0] = 7.000000 
d_buffer[1][6] = 8.000000 
d_buffer[1][7] = 9.000000 
d_buffer[1][8] = 10.000000 
d_buffer[1][9] = 11.000000 
d_buffer[1][5] = 12.000000 

Any ideas on what might be going wrong with the texture cache version?


Downloads:

share|improve this question
    
My guess is that part of the problem lies in cudaMallocPitch vs cudaMallocArray. In the old texture cache API, cudaMallocArray was the typical thing to use. But, cudaMallocArray expects a cudaChannelFormatDesc, which appears to be obsolete in the new cudaTextureObject_t interface. –  solvingPuzzles May 5 '13 at 3:08

1 Answer 1

up vote 2 down vote accepted

Your cudaChannelFormatDesc in resDesc.res.pitch2D.desc is wrong: y should be 0.

To set the FormatDesc right use CreateChannelDesc<>() functions like resDesc.res.pitch2D.desc = cudaCreateChannelDesc<float>(); instead of setting it manually.

resDesc.res.pitch2D.desc.y = 32 would be valid for a float2 texture.

share|improve this answer
    
That worked! Thanks! –  solvingPuzzles May 5 '13 at 23:08

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