22

I instantiate an std::vector foo(1000).

foo.size() is now 1000 and foo.capacity() is also 1000.

If I clear the vector with foo.clear(), the size() is now 0, but what is the capacity()? Does the standard say anything about that?

22

No, it doesn't. The capacity of a vector never decreases. That isn't mandated by the standard but it's so both in standard library implementations of VC++ and g++. In order to set the capacity just enough to fit the size, use the famous swap trick

vector<T>().swap(foo);

In C++11 standard, you can do it more explicitly:

foo.shrink_to_fit();
  • 9
    In 0x, vector has shrink_to_fit, but the standard remarks it's non-binding, which I presume means that implementation is not required to actually do that. – Cat Plus Plus Jul 30 '11 at 11:30
  • @Cat: I didn't know that! Interesting, thanks :) – Armen Tsirunyan Jul 30 '11 at 11:31
  • Can you please give a c++03 quote? It says that erase(.begin(), .end()) invalidates all iterators and references after the point of erase. That doesn't seem to say anything about the capacity. – Johannes Schaub - litb Jul 30 '11 at 11:32
  • @Johannes: I said that it's not mentioned in the standard! I said on most implementations it's so! – Armen Tsirunyan Jul 30 '11 at 11:33
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    @Armen: Yes, you cannot pass rvalues to swap, but you can call swap on rvalues, hence my swapping of the arguments :) – fredoverflow Jul 30 '11 at 12:02
5

To clear a vector and consume as little capacity as possible, use the swap trick:

std::vector<T>().swap(foo);

This creates an empty vector, swaps its internals with foo, and then destroys the temporary vector, getting rid of the elements that once belonged to foo and leaving foo as if it was freshly created.

  • I use std::swap(foo, ItemContainer()) and have typedef std::vector<T> ItemContainer somewhere else when possible. It is more recognizable (IMHO) to have a temporary passed as an argument than having it be the calling object and an lvalue. Your way is 100% fine though. – doug65536 Nov 19 '12 at 18:52
2

The standard does not say anything about the effect of clear on capacity.

0

No, clear doesn't affect it's capacity(), it's remain the same even if you do clear. If you want to shrink the vector to fit, you can use the following trick after calling clear: foo.swap(vector(foo));

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    It might. The standard does not specify it, so you should not rely on it. Though most implementations do it that way. – Björn Pollex Jul 30 '11 at 11:27
  • @BjörnPollex If the standard does not say that capacity can decrease, then it cannot. – curiousguy Jun 25 '13 at 1:23
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    @curiousguy: Actually if the standards don't explicitly say what happens, then it is open to happen any way the implementation wants to do it. – Zan Lynx Jul 21 '16 at 7:32
  • @ZanLynx No. The standard allows no such thing. If the standard doesn't allow it, then it shall not happen. – curiousguy Jul 21 '16 at 11:48

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