2

I want to use texture objects (not references) with doubles. The code below works when using floats, but double is not a supported data type.

Can I get around this using 2d textures and if so, how do I set up such a texture?

There is a similar question for texture references, but none for texture objects. Support for double type in texture memory in CUDA

__global__ void my_print(cudaTextureObject_t texObject)
{
    printf("%f\n",tex1Dfetch<double>(texObject,0));

    return;
}

int main()
{

    double i = 0.35;
    int numel = 50;

    double* d_data;
    cudaMalloc(&d_data,numel*sizeof(double));
    cudaMemcpy((void*)d_data,&i,1*sizeof(double), cudaMemcpyHostToDevice);


    cudaTextureDesc td;
    memset(&td, 0, sizeof(td));

    td.normalizedCoords = 0;
    td.addressMode[0] = cudaAddressModeClamp;
    td.readMode = cudaReadModeElementType;


    struct cudaResourceDesc resDesc;
    memset(&resDesc, 0, sizeof(resDesc));
    resDesc.resType = cudaResourceTypeLinear;
    resDesc.res.linear.devPtr = d_data;
    resDesc.res.linear.sizeInBytes = numel*sizeof(double);
    resDesc.res.linear.desc.f = cudaChannelFormatKindFloat;
    resDesc.res.linear.desc.x = 32;

    cudaTextureObject_t texObject = 0;
    gpuErrchk(cudaCreateTextureObject(&texObject, &resDesc, &td, NULL));

    my_print<<<1,1>>>(texObject);

    gpuErrchk(cudaDeviceSynchronize());
    return 0;
}

1 Answer 1

5

The idea is exactly the same as for texture references. You can access double precision by binding the data to a supported 64 bit type and casting the resulting read to a double. If you modify your code like this:

#include <vector>
#include <cstdio>

static __inline__ __device__ double fetch_double(uint2 p){
    return __hiloint2double(p.y, p.x);
}

#define gpuErrchk(ans) { gpuAssert((ans), __FILE__, __LINE__); }
inline void gpuAssert(cudaError_t code, const char *file, int line, bool abort=true)
{
   if (code != cudaSuccess) 
   {
      fprintf(stderr,"GPUassert: %s %s %d\n", cudaGetErrorString(code), file, line);
      if (abort) exit(code);
   }
}
__global__ void my_print(cudaTextureObject_t texObject)
{
    uint2 rval = tex1Dfetch<uint2>(texObject, 0);
    double dval = fetch_double(rval);
    printf("%f\n", dval);
}

int main()
{

    double i = 0.35;
    int numel = 50;

    std::vector<double> h_data(numel, i);
    double* d_data;
    cudaMalloc(&d_data,numel*sizeof(double));
    cudaMemcpy((void*)d_data, &h_data[0], numel*sizeof(double), cudaMemcpyHostToDevice);


    cudaTextureDesc td;
    memset(&td, 0, sizeof(td));
    td.normalizedCoords = 0;
    td.addressMode[0] = cudaAddressModeClamp;
    td.readMode = cudaReadModeElementType;


    struct cudaResourceDesc resDesc;
    memset(&resDesc, 0, sizeof(resDesc));
    resDesc.resType = cudaResourceTypeLinear;
    resDesc.res.linear.devPtr = d_data;
    resDesc.res.linear.sizeInBytes = numel*sizeof(double);
    resDesc.res.linear.desc.f = cudaChannelFormatKindUnsigned;
    resDesc.res.linear.desc.x = 32;
    resDesc.res.linear.desc.y = 32;

    cudaTextureObject_t texObject;
    gpuErrchk(cudaCreateTextureObject(&texObject, &resDesc, &td, NULL));

    my_print<<<1,1>>>(texObject);

    gpuErrchk(cudaDeviceSynchronize());
    return 0;
}

i.e. modify the channel description to 64 bits, read a uint2 from the texture object, and then cast it to a double, it should work as you want.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.