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hi I've vector<vector<int> > matrix; I initialize it by:

inline void resize(const UINT nrows, const UINT ncols, T val) {
vector<T> v_rows(ncols, val);
matrix.resize(nrows, v_rows);
}

now I'm concerned if I call resize again where the old ones go, do I have to call clear ? for the outer matrix ? or clear for each one matrix.at(i).clear(); or I don't need to do anything ?

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2 Answers 2

up vote 5 down vote accepted

You don't have to do anything as long a T manages it's own resources. Which, if it doesn't, clear() isn't going to help.

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T is going to be mostly numeric primitive type like int, double , float are those ok ? –  Ismail Marmoush Nov 23 '10 at 11:56
1  
Yep, in that case, resource management is automatic, since they just go on the stack. –  Benjamin Lindley Nov 23 '10 at 11:57
    
Nothing contained by a standard container goes onto stack. It's more a matter of whether a type manages any resources and how (e.g. pointer's don't "manage" memory they point to). –  eq- Nov 23 '10 at 12:24

If you call clear (or a resize with smaller size) on a vector of anything, then all elements from that vector which need to be deleted have their destructors called and their memory is released.

If you have a vector of vectors, then each inner vector's destructor will clean up its resources properly. When a row-vector or column-vector is destroyed, it cleans up after itself automatically.

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Interestingly enough, wikipedia disagrees with you one a statement. When you call clear on a vector, it will not change the capacity of the vector and in effect not release the memory. vector::clear - Erases all of the elements. (For most STL implementations this is O(n) time and does not reduce capacity) en.wikipedia.org/wiki/Vector_(C%2B%2B)#Overview_of_functions –  g19fanatic Nov 23 '10 at 12:22
    
Actual "memory management" is supposed to be abstracted away by std::vector. What's important is that after clear the objects are destroyed and the memory is, well... Not released as in "operator delete", but released as in "it's now available to be reused by new objects in the vector or returned to the operating system", which is whas I tried to say here- indeed imprecisely. –  Kos Nov 23 '10 at 12:30
    
Wikipedia is right, but unclear. It is definitely not returned to the OS. We know this because capacity does not change (i.e. is not allowed to) –  MSalters Nov 23 '10 at 12:35
    
It's true that destructors are called, though, so in this case of a vector<vector<T> >, presumably some memory will be released (in the sense that the destructed vectors will call std::allocator::deallocate, which may or may not call ::operator delete, which in turn may or may not release memory to the OS). –  Steve Jessop Nov 23 '10 at 13:26

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