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I understood that when inserting new entry, stl map will copy construct and store value instead of pointer or reference.

However, I am confused by the following sample code:

int main( int argc, char** argv ){
    map<int, vector<int> > m;
    for(int i=0;i<10; i++){
        m[i] = vector<int>();
    }
    cout<<sizeof(m)<<endl;
    cout<<m[1].size()<<endl;
    for(map<int, vector<int> >::iterator it=m.begin(); it!=m.end(); it++){
        it->second.push_back(1);
        it->second.push_back(1);
        it->second.push_back(1);
    }
    cout<<sizeof(m)<<endl;
    cout<<m[1].size()<<endl
}

The outputs are

48
0 
48  
3

Why the size of the map is unchanged even though I am changing the values of the map?

share|improve this question

Firstly, if by size you mean the number of entries in the map, you need to use m.size() rather than sizeof(m). The latter measures the size (in bytes) of the std::map object, which isn't where the actual entries are stored. So that size won't change, no matter how many entries you add.

Secondly, your code doesn't actually add any new entries to the map. It only adds entries to some of the vectors in the map.

share|improve this answer
    
Thanks for your reply. As far as I understood, stl map stores value instead of pointer. i.e., when assign some object to the map, it will invoke the copy constructor to create an object in the map. However, sizeof(m)=>48, but sizeof(m[1])=>24, which means sizeof(m) is much smaller than sizeof(m[1])*m.size(). This leads me to think "m" stores pointer instead of a true vector. – Chao Jul 18 '13 at 20:00
    
@Chao Both statements are true, in a sense. Yes, it stores a pointer (because it has to: The size of the vector will change as you add and remove elements). But that pointer is not a pointer to the original vector that you passed. Map makes a copy of that vector and then (basically) stores a pointer to that copy. (The vector, by the way, does a similar thing internally: sizeof(m[1]) won't change no matter how many elements you add to the vector, because the vector itself contains merely a pointer to a separate, dynamically-allocated storage, which is were the elements are located). – jogojapan Jul 19 '13 at 0:55
    
Thanks. Very well explained. – Chao Jul 23 '13 at 17:18

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