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If I initialize x using thrust::device_vector<double> x(10), is it possible to create a device_vector y that spans x[2] through x[5]?

Note: I don't want memory to be copied, which happens when I use something like thrust::device_vector<double> y(x.begin(), x.end()).

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It seems like that every vector has its own memory area. However, you may reach the raw pointer in a vector. Furthermore, most of the algorithms accept ranges, so you may use x.begin() + N, instead of declaring another vector and using y.begin(). Why is it not enough? –  phoad Oct 2 '12 at 14:02
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up vote 4 down vote accepted

The thrust device_vector only has allocation or copy constructors, so there isn't a direct way to alias an existing vector or device pointer by constructing another device_vector. But as pointed out in comments, it really isn't needed either. Thrust algorithms always work on iterators, and it is possible to use iterator arithmetic to achieve the same outcome. For example this, creates a new vector via copy construction:

thrust::device_vector<double> x(10);
thrust::device_vector<double> y(x.begin()+2, x.begin()+5);

double val = thrust::reduce(y.begin(), y.end());

whereas this returns the same answer without it:

thrust::device_vector<double> x(10);

double val = thrust::reduce(x.begin()+2, x.begin()+5);

The result is the same in both cases, the second equivalent to creating an alias to a subset of the input vector.

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Thanks. This was my solution (although I used device pointers y_begin and y_end for clarity). I guess there's no better way. –  Rob DiPietro Oct 3 '12 at 11:49
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