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I'm rather new to CUDA/Thrust and have a problem with a code snippet. To make it easier I have trimmed it down to the bare minimum. The code is the following:

struct functor{
functor(float (*g)(const float&)) : _g{g} {}

__host__ __device__ float operator()(const float& x) const { 
        return _g(x);
    }
private:
    float (*_g)(const float&);
};

__host__ __device__ float g(const float& x){return 3*x;}

int main(void){
thrust::device_vector<float> X(4,1);
thrust::transform(X.begin(), X.end(), X.begin(), functor(&g));
}

The idea is that I can pass any function to the functor, so I can apply that function to every element in a Vector. Unfortunately I'm uncertain to why I get the described error. I Compile with -w -O3 -shared -arch=sm_20 -std=c++11 -DTHRUST_DEBUG

I'm thankful for any help you all can give me :)

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  • The short reason is the &g isn't a pointer to a device function and it isn't valid to pass it to a closure which will run on the GPU
    – talonmies
    Jan 19, 2016 at 15:15

1 Answer 1

5

The address of a __device__ function, (or __host__ __device__) cannot be taken in host code, for use on the device:

thrust::transform(X.begin(), X.end(), X.begin(), functor(&g));
                                                         ^
                                                     You will not get the 
                                                     __device__ function
                                                     address here

There are many questions on stackoverflow which discuss usage of CUDA device function addresses passed via kernel calls. This answer links to several which may be of interest.

One possible approach to fix this would be to acquire the device function address in device code, and pass it to the host, for usage like you are describing:

$ cat t1057.cu
#include <thrust/device_vector.h>
#include <thrust/transform.h>
#include <thrust/copy.h>
#include <iostream>
struct functor{
functor(float (*g)(const float&)) : _g{g} {}

__host__ __device__ float operator()(const float& x) const {
        return _g(x);
    }
private:
    float (*_g)(const float&);
};

__host__ __device__ float g(const float& x){return 3*x;}

__device__ float (*d_g)(const float&) = g;

int main(void){
float (*h_g)(const float&) = NULL;
cudaMemcpyFromSymbol(&h_g, d_g, sizeof(void *));
thrust::device_vector<float> X(4,1);
thrust::transform(X.begin(), X.end(), X.begin(), functor(h_g));
thrust::copy_n(X.begin(), X.size(), std::ostream_iterator<float>(std::cout, ","));
std::cout << std::endl;
}
$ nvcc -o t1057 t1057.cu -std=c++11
$ ./t1057
3,3,3,3,
$

Another possible approach, leveraging the always-clever work by @m.s. here uses templating:

$ cat t1057.cu
#include <thrust/device_vector.h>
#include <thrust/transform.h>
#include <thrust/copy.h>
#include <iostream>

typedef float(*fptr_t)(const float&);

template <fptr_t F>
struct functor{

  __host__ __device__ float operator()(const float& x) const {
        return F(x);
    }
};

__host__ __device__ float g(const float& x){return 3*x;}


int main(void){
thrust::device_vector<float> X(4,1);
thrust::transform(X.begin(), X.end(), X.begin(), functor<g>());
thrust::copy_n(X.begin(), X.size(), std::ostream_iterator<float>(std::cout, ","));
std::cout << std::endl;
}
$ nvcc -o t1057 t1057.cu -std=c++11
$ ./t1057
3,3,3,3,
$
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  • I think that is the only way to do this (although I'm a bit surprised that static initialisation works like that). Once upon a time it would have been necessary to run a small "setter" kernel to get the address of the device function and set it to the global memory symbol.
    – talonmies
    Jan 19, 2016 at 15:29
  • @m.s. gave a clever approach using templating and c++11 here In effect, the function addresses are still being "captured" in device code. Jan 19, 2016 at 15:38

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