Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have the following vector:

thrust::host_vector< T , thrust::cuda::experimental::pinned_allocator< T > > h_vector

where T, in my current case, is of type float. I would like to access the i-th element in a correct fashion from the thrust point of view.

The naïve approach was:

float el = h_vector[i];

which resulted in the following error:

../src/gpu.cuh(134): error: a reference of type "float &" (not const-qualified) cannot be initialized with a value of type "thrust::host_vector<float, thrust::system::cuda::experimental::pinned_allocator<float>>"

Apparently, the h_array[i] type is reference, so i went on trying to use thrust::raw_refence_cast and thrust::pointer to retrieve my float data to no avail.

In the end, i came up with:

    float *raw = thrust::raw_pointer_cast(h_array->data());
    float el = raw[i];

Is there a better way to accomplish this?

EDIT: prototype code

#include <thrust/host_vector.h>
#include <thrust/system/cuda/experimental/pinned_allocator.h>

static const int DATA_SIZE = 1024;

int main()
{

    thrust::host_vector<float, thrust::cuda::experimental::pinned_allocator<float> > *hh = new thrust::host_vector<float, thrust::cuda::experimental::pinned_allocator<float> >(DATA_SIZE);
    float member, *fptr;
    int i;

//  member = hh[1]; //fails

    fptr = thrust::raw_pointer_cast(hh->data()); //works
    member = fptr[1];
    return 0;
}

EDIT 2: I actually used the vector as this one:

thrust::host_vector< T , thrust::cuda::experimental::pinned_allocator< T > > *h_vector

rendering my original question completely misleading.

share|improve this question
1  
what is h_array ? The name of your vector is h_vector. I think the problem is not as you are describing it here, and you should provide a complete, simple reproducer, along with version details of thrust, cuda, and host compiler that you are using (which is what SO expects). I tried to create a simple reproducer based on what you're showing and had no problems with it. Take a look here. Please provide a complete reproducer along the lines of the example I have shown, including the complete compiler error output. – Robert Crovella Sep 25 '13 at 1:51
    
Thanks for pointing the type error out. I just added a small test case which reproduces my error. Note that, although in the piece provided i declared as a pointer to the host_vector and used new, the original code is a template class which should have the host_vector as a member. – Eduardo Sep 25 '13 at 6:23
up vote 1 down vote accepted

I don't know why you need this level of complication in your code. Did you look at the example I posted here?

Anyway, this line of code:

   thrust::host_vector<float, thrust::cuda::experimental::pinned_allocator<float> > *hh = new thrust::host_vector<float, thrust::cuda::experimental::pinned_allocator<float> >(DATA_SIZE);

creates a pointer to vector. That is not the same thing as a vector.

Using a construct like this:

member = hh[1];

when hh is a pointer to a vector is not a valid way of attempting to access an element in the vector. This would be a valid way of indexing into an array of vectors, which is not what you are trying to do.

If you do this on the other hand:

member = (*hh)[1];

I believe your compile error will go away. It does for me.

Note that I don't think this is a CUDA or thrust issue. I run into similar trouble trying your approach with std::vector. Also note that nowhere in your original question did you indicate that h_vector was a pointer to a vector, and the line of code that you did show did not create it that way. So your edited/prototype code differs markedly from your original description.

share|improve this answer
    
You are right! I totally missed the *. I took the first excerpt from a typedef and fogot to reproduce exactly how i used. My apologies for misleading you and thank you very much for you help! – Eduardo Sep 26 '13 at 13:32

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

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