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If I have two vectors and want to combine them to one, I can do it the following way:

std::vector<T> a(100); // just some random size here
std::vector<T> b(100);

a.insert(std::end(a), std::begin(b), std::end(b));

That involves copying though, which I want to avoid. Is there any way to use move-semantics to get them together?
I highly doubt it, as a vector is supposed to be contiguous. However is there any way to do it with a deque?

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2 Answers 2

up vote 30 down vote accepted

Yes, use std::move:

#include <algorithm>
std::move(b.begin(), b.end(), std::back_inserter(a));

Alternatively, you can use move iterators:

         std::make_move_iterator(b.begin()), std::make_move_iterator(b.end()));

Remember to #include <iterator> in both cases, and before you begin, say:

a.reserve(a.size() + b.size());
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Thanks, now I know why there are two versions of std::move on cppreference. I always thought that was a bug and didn't check the second version out. – inf Mar 19 '12 at 21:55
I had completely missed that move was also an algorithm. – bames53 Mar 19 '12 at 21:59
@bames53 the same happend to me, but after hearing it, it makes total sense as there is also copy. – inf Mar 19 '12 at 22:01
Wow i didn't know this was available. Great answer. – 111111 Mar 19 '12 at 22:10
You cannot generalize this solution and hope that vectors will be always moved in place (without any new allocation). How will you guarantee that the merged vectors are contiguous in memory? – mustafabar Dec 12 '14 at 21:43

Depends on exactly what you want to move. When you move a vector, it is done by effectively swapping the internal array pointer. So you can make one vector point to the array previously owned by another vector.

But that won't let you merge two vectors.

The best you can do then is to move every individual member element, as shown in Kerrek's answer:

std::move(b.begin(), b.end(), std::back_inserter(a));

Again, this will iterate through the vector and move every element to the target vector.

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