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When I call std::vector::reserve when the identifier is of type std::vector<Foo*> reserve(...) does nothing:

std::vector<int*> bar;

//I expect bar.size to return 20...
std::size_t sz = bar.size();
for(std::size_t i = 0; i < sz; ++i) {
    //Do Stuff to all items!

The aforementioned for loop runs exactly zero times and bar.size() returns zero. I do not remember if this is also true for all other STL containers, but if so, including the behavior for std::vector: WHY?

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In addition to the stuff below, I think you also mean to use std::vector<int*>::size_type rather than just std::size_t. I'm not sure it matters that much, but I've seen this mentioned as a "best practices" sort of thing for STL. You can also instantiate a vector with a size parameter. I think std::vector<int*> bar(20); for example should allocate space for 20 integer pointers for that array. – Mr. F Apr 3 '12 at 0:31
Pedantic code like for(std::vector<int*>::size_type i; i < sz; ++i) drives me mad. – user763305 Apr 3 '12 at 10:33

3 Answers 3

up vote 9 down vote accepted

.reserve() doesn't change the size of a vector. The member function you are looking for is .resize(). reserve() is simply an optimization. If you are going to add a bunch of things to a vector one-by-one using push_back() then telling it how many you will add using reserve() can make the code run a little bit faster. But just calling reserve() doesn't change the size.

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reserve changes the capacity of the vector, not the size. You probably want resize

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vector::reserve() changes the capacity of a vector, not its size.

capacity is how much memory has been allocated internally to hold elements of the vector. size is how many elements have actually held by the vector. vector::resize() affects the latter.

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