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How to downsize std::vector?

According to cppreference, in std::vector::reserve(size_t n), n is "Minimum amount desired as capacity of allocated storage.". My question is : how to avoid any reallocation knowing only a maximum ?

As an example, let's say that I have a list of integers, but I don't know the size of this list (for example this list come from the reading of a file). But I know that the maximum size of this list is 1000. Let's say that the real size of the list is 800.

Currently, I use a std::reserve(1000), and then a loop of push_back(). Using reserve I prevent any reallocation. But how to free the extra space at the end of the push_backs ? (in the case of the example, how to release the 1000-800=200 extra space ?)

Thank you very much.

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marked as duplicate by Potatoswatter, chrisaycock, Nicol Bolas, David Brown, Robᵩ Apr 29 '12 at 2:59

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2 Answers 2

up vote 3 down vote accepted

You can use std::vector::shrink_to_fit()

std::vector<int> v;
for(int i=0;i<800;++i)

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Which requires C++11 support. And isn't guaranteed to shrink anything. –  Nicol Bolas Apr 29 '12 at 2:57
@NicolBolas Yes, the standard says it's a non-binding request and "Note: The request is non-binding to allow latitude for implementation-specific optimizations." An example of where a quality implementation may choose not to adjust the capacity is when the current capacity is already low enough that the container is taking advantage of something like a small string optimization. –  bames53 Apr 29 '12 at 3:35

You essentially need to create a new vector at the correct size and swap the two vectors' contents. Fortunately, in STL that's a one-liner Here's examples: How to downsize std::vector?

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So… it's a duplicate question. –  Potatoswatter Apr 29 '12 at 2:22

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