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I'm making a game and I have a vector of bullets flying around. When the bullet is finished, I do bullets.erase(bullets.begin() + i); Then the bullet disappears. However it does notseem to get rod of the memory. If I create 5000 bullets then create 5,000 more after those die off, memory stays the same, but if I create 5,000 more while those 5000 are flying, it will allocate new space. What do I have to do to actually free up this memory?

Thanks

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How are you doing it? STL, Boost, roll-your-own, or something else? –  John Feb 12 '10 at 18:09
    
STL vector is the one –  Milo Feb 12 '10 at 18:10
    
You can use std::vector::resize() to shrink the size. See cplusplus.com/reference/stl/vector/resize –  Thomas Matthews Feb 12 '10 at 19:30
    
@Thomas: that will shrink the size but not the capacity. The amount of memory allocated would not change. –  Dan Feb 14 '10 at 17:17

6 Answers 6

up vote 12 down vote accepted

The std::vector class automatically manages its internal memory. It will expand to hold as many items as you put into it, but in general it will not shrink on its own as you remove items (although it will of course release the memory when it destructs).

The std::vector has two relevant concepts of "size". First is the "reserved" size, which is how much memory it has allocated from the system to use for storing vector elements. The second is the "used" size, which is how many elements are logically in the vector. Clearly, the reserved size must be at least as large as the used size. You can discover the used size with the size() method (which I'm sure you already know), and you can discover the reserved size using the capacity() method.

Usually, when the used and reserved sizes are the same, and you try to insert a new element, the vector will allocate a new internal buffer of twice the previous reserved size, and copy all of the existing elements into that buffer. This is transparent to you except that it will invalidate any iterators that you are holding. As I noted before, AFAIK, most STL implementations will never shrink the reserved size as a response to an erasure.

Unfortunately, while you can force a vector to increase its reserved size using the reserve() method, this does not work for decreasing the reserved capacity. As far as I can tell, your best bet for effecting a reduction in capacity is to do the following:

std::vector<Bullet>(myVector).swap(myVector);

What this will do is create a temporary vector which is a copy of the original vector (but with the minimum necessary capacity), and then swap the internal buffers of the two vectors. This will cause your original vector to have the same data but a potentially smaller reserved size.

Now, because creating that temporary copy is a relatively expensive operation (i.e. it takes a lot more processor time than normal reads/insertions/deletions), you don't want to do it every time you erase an element. For the same reason, this is why the vector doubles its reserved size rather than increasing it by 1 when you need to exceed the existing size. Therefore, what I would recommend is that after you have erased a relatively large number of elements, and you know you will not be adding that many more any time soon, perform the swap 'trick' above to reduce the capacity.

Finally, you may also want to consider using something other than a std::vector for this. Erasing elements from the middle of a vector, which it seems that you are doing frequently, is a slow operation compared to many other types of data structures (since the vector has to copy all of the subsequent elements back one slot to fill the hole). Which data structure is best for your purposes depends on what else you are doing with the data.

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+1 for the point about erasing from the middle being expensive, as well as the comprehensiveness of this answer. –  Steven Sudit Feb 12 '10 at 18:49
1  
myVector.swap(std::vector<Bullet>(myVector)); is not valid C++03, because swap takes its argument by reference, and the constructor call is an rvalue. Switch the parameters to make the code conformant: std::vector<Bullet>(myVector).swap(myVector); –  FredOverflow Feb 13 '10 at 0:50
    
@Fred Thanks, you're completely right. I wrote it the other way because it seems easier to follow what's going on that way, but forgot about that caveat. Fixed. –  Tyler McHenry Feb 13 '10 at 4:57
    
Probably worth noting that the reason resizes are so expensive is because std::vector guarantee's that elements are stored in contiguous storage locations in the same way that an array is. –  Winder Mar 2 '10 at 15:30

First, std::vector erase method is not very effecient, it has to move all items after the deleted one. If order of vector items (bullets) does not matter, swapping the deleted bullet with the last bullet and deleting the last bullet will be faster (so you get constant complexity instead of linear complexity).

Second, what is the real problem - that after deletion of the 10,000 items, memory is not freed up? Are we talking about free memory reported by operating system, or free space on the heap? It is possible (and very likely), that some other object was allocated after the position of the data of the vector, so it is not possible to simply free this memory to operating system; but it can be reused for other, newly created objects.

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I suggest you to take a look at these two idioms and pick the one that fits you the most:
Shrink to fit
Clear & minimize

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+1 for putting names on the idioms, it's easier to memorize and communicate. –  Matthieu M. Feb 13 '10 at 14:10
    
Thanks, this book btw is golden :) –  the_drow Feb 13 '10 at 19:02

That is how normally vector's memory allocation model behaves to provide an amortized constant time push_back operation, Basically it tries to guess that you might want to fill the erased part with a new element so it doesn't free the memory. By doing this it can avoid constant allocation and deallocations. To go around this, you can use the swap trick to free the unused vector memory. You have to swap your empty vector with a temporary unnamed vector so that when temporary vector goes out of scope it frees the memory in its destructor, Something like: vector<int>(c).swap(c)

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That sounds a bit hackish –  Milo Feb 12 '10 at 18:10
    
It's a well-known hack. By design, vectors do not shrink on their own. –  Steven Sudit Feb 12 '10 at 18:11
    
is there an stl that can do what I want? –  Milo Feb 12 '10 at 18:13
2  
It's such a well-known hack it's called an 'idiom' ;) See this: gotw.ca/gotw/054.htm –  Dan Feb 12 '10 at 18:15
2  
@Dan: I like that. I think I'll steal it: "No, boss, it's not a hack, it's an idiom." –  Steven Sudit Feb 12 '10 at 18:47

It may not get rid of the memory.
But next time you need to add a bullit it does not need to re-allocate more space.
It will not re-use the memory that the erased bullet came from.

Note:
If you are erasing from the middle of a container relatively often then vector may not be the correct container. This is becuase if you remove element n then all the elements from [n+1,end) must be moved down one space in memory.

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When the bullet is finished, I do bullets.erase(bullets.begin() + i);

Don't do that. If multiple bullets are finished per frame, you get horrible performance, because the bullets that aren't finished will get copied over and over, which really isn't necessary. Here is what I would do:

#include <algorithm>
#include <functional>
#include <vector>

class Bullet
{
    // ...
public:
    bool is_finished() const;
};

int main()
{
    std::vector<Bullet> bullets;
    // ...
    bullets.erase(
        std::remove_if(
            bullets.begin(),
            bullets.end(),
            std::mem_fun_ref(&Bullet::is_finished)
        ),
        bullets.end()
    );
}

This approach only moves each live bullet at most once.

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