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I know STL containers like vector copies the object when it is added. push_back method looks like:

void push_back ( const T& x );

I am surprised to see that it takes the item as reference. I wrote a sample program to see how it works.

struct Foo
{
    Foo()
    {
    	std::cout << "Inside Foo constructor" << std::endl;
    }

    Foo(const Foo& f)
    {
    	std::cout << "inside copy constructor" << std::endl;
    }
};

Foo f;
std::vector<Foo> foos;
foos.push_back(f);

This copies the object and I can see it is calling copy-constructor.

My question is, when the push_back takes item as reference, how it is calling copy-constructor? Or am I missing something here?

Any thoughts..?

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3 Answers 3

up vote 10 down vote accepted

It probably uses "placement new" to construct the object in-place in its internal array. Placement new doesn't allocate any memory; it just places the object where you specify, and calls the constructor. The syntax is new (address) Class(constructor_arguments).

The copy constructor T::T(T const &) is called to create the copy in-place. Something like this (simplified):

template<T>
void vector<T>::push_back(T const &item) {
    // resize if necessary
    new (&d_array[d_size++]) T(item);
}

Note that T must have a copy constructor for this to work. By default (if you do nothing), it gets one for free. If you define it explicitly, it must be public for vector<T> to work.

Here's how GNU's libstdc++ does it, but I doubt that it'll be very enlightening. There is an allocator (the second template argument to vector) that makes it less straightforward.

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This is OK when T has got a parameterless constructor. But what will happen when it has a parameterized constructor? How vector can initialize new object? –  Appu Nov 7 '09 at 13:45
    
This is OK when T has got a copy constructor. Which is does, by default, and if you implement it, unless you explicitly made it private or protected. –  Thomas Nov 7 '09 at 14:00
    
I edited my answer to clarify. –  Thomas Nov 7 '09 at 14:04
    
Thanks. I will investigate further. –  Appu Nov 7 '09 at 14:04
1  
This would make a copy of the item when it is passed into the function (because it's pass-by-value), which the pass-by-reference version avoids. It could avoid placement new by using the = operator, but that would require that there is already an initialized object in that place (to call operator= on) and thus require T to have a default constructor. –  Thomas Nov 7 '09 at 14:38

The C++ SDK always takes const T & as function parameter for efficiency.

In your case if it take T as parameter, the copy action will be done twice, one for passing it to function push_back(f), one for internal adding it to the container. And by taking const T& as parameter only one copy is needed!

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4  
There is no C++ SDK. –  GManNickG Sep 15 '10 at 3:34
    
ok, I mean the back ground things like c++ language specification,STL ect... –  BeastToHuman Dec 25 '10 at 20:20

It uses the placement new operator and copy-constructs it to unitialized memory;

The placement new creates a new element at a specified adress in memory, in the vector case, the current end();

void push_back(const T& val){
::new (&*end()) T(val);
[increase end]
}

look at http://spotep.com/dev/devector.h which has quite clear code (as opposed to most STL implementations).

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