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With the following trivial deleter

struct CudaDeleter{ void operator()(void * ptr) { cudaFree( ptr ); } };

I get the following errors when using the deleter in code compiled with nvcc. The same deleter works fine with the vs2012 compiler

warning : "std::unique_ptr<_Ty, _Dx>::unique_ptr(
const std::unique_ptr<_Ty, _Dx>::_Myt &)
[with _Ty=const int, _Dx=cuda::CudaDeleter]"

error : function "cuda::CudaDeleter::operator()"
cannot be called with the given argument list

warning : "std::unique_ptr<_Ty, _Dx>::unique_ptr(
const std::unique_ptr<_Ty, _Dx>::_Myt &)
[with _Ty=float, _Dx=cuda::CudaDeleter]"

@talonmies: smart pointers are constructed with this function only

template <typename T>
std::unique_ptr<T, CudaDeleter> make_unique(size_t size)
{
    void * pMemory = nullptr;
    check( cudaMalloc(&pMemory, size) );
    return std::unique_ptr<T, CudaDeleter>( static_cast<T*>(pMemory) );
}
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The nvcc compiler seems to have too many of these strange quirks, another one would be failure to support range-for, failure to give proper errors when templates fail... Would it be best to compile as little code as possible with the nvcc compiler? –  aCuria Feb 19 '13 at 12:53
    
It is a pretty self explanatory error - you are passing a C++ smart pointer to the deleter function, and it expects void *. Don't blame the compiler..... –  talonmies Feb 19 '13 at 12:57
    
no, I am passing the deleter function to the smart pointer upon construction of the said smart pointer –  aCuria Feb 19 '13 at 12:59
    
Does nvcc support unique_ptr of c++11? You may have to enable c++11 feature for nvcc/gcc when using unique_ptr. On the other hand, void* is c-style code. template<class T> struct CudaDeleter{ void operator()(T* ptr){...}} may be a better deleting functor for unique_ptr. –  Eric Feb 19 '13 at 14:49
3  
The thing is that nvcc isn't a compiler. It doesn't compile code, and it isn't compiling this code, the host compiler is (so vs2012 in this case). What it does do is steer compilation and set compiler arguments. It is possible that c++11 support is being disabled by compiler options, but that is about all that could be happening. –  talonmies Feb 19 '13 at 15:53

2 Answers 2

The following works for me. Try the standalone code below, if it works then you need to identify the difference with your code, if not, then there's something different about your setup.

#include <iostream>
#include <memory>

struct CudaDeleter
{
    void operator()(void *p)
    {
        std::cout << "Free..." << std::endl;
        cudaError_t res = cudaFree(p);
        if (res != cudaSuccess)
        {
            std::cout << "Error freeing: " << cudaGetErrorString(res) << std::endl;
        }
    }
};

template <typename T>
std::unique_ptr<T, CudaDeleter> make_unique(size_t size)
{
    void *pMemory = nullptr;
    std::cout << "Allocate..." << std::endl;
    cudaError_t res = cudaMalloc(&pMemory, size);
    if (res != cudaSuccess)
    {
        std::cout << "Error allocating pMemory: " << cudaGetErrorString(res) << std::endl;
        throw;
    }
    return std::unique_ptr<T, CudaDeleter>(static_cast<T*>(pMemory));
}

int main(void)
{
    {
        std::cout << "Create..." << std::endl;
        std::unique_ptr<float, CudaDeleter> x = make_unique<float>(100*sizeof(float));
        std::cout << "Destroy..." << std::endl;
    }
    std::cout << "Done." << std::endl;
}
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I have found the issue I was having, in the end it was a mistake on my part

It is not that any T * cannot be cast into a void * but const T * cannot be cast into void *.

Furthermore a pointer to const cannot be freed by cudaFree, which means that Eric's suggestion of

template<class T> struct CudaDeleter{ void operator()(T* ptr){...}}

Will not work.

Something like this will work though

template <typename T>
std::unique_ptr<typename std::remove_const<T>::type, CudaDeleter> make_unique(size_t size)
{
    typename std::remove_const<T>::type * pMemory = nullptr;
    check( cudaMalloc(&pMemory, size) );
    return std::unique_ptr<typename std::remove_const<T>::type, CudaDeleter>( pMemory );
}
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