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What is the difference between T& and T&& in template parameter? For example:

template<class T> void f(T& t) {...}
template<class T> void f(T&& t) {...}

I try the code

template<class T>
void f(T&& t)
{
    t = 5;
}

int main()
{
    int a = 0;
    f(a); //a == 5 why?        
    return 0;
}

I expect a = 0 but = 5, why?

share|improve this question
    
What compiler is this using, I've just trued gcc 4.8.1 and it won't compile with ambiguous warning, which is what I would expect. – Curg May 25 '14 at 21:04
up vote 4 down vote accepted

In the first case, whatever T is, t is always an lvalue reference:

T = U     =>   T & = U &
T = U &   =>   T & = U &
T = U &&  =>   T & = U &

In the second case, t may be an lvalue or rvalue reference. In other words, t is always a reference, but it can bind to any argument. It's a "universal" reference:

T = U     =>   T && = U &&
T = U &   =>   T && = U &
T = U &&  =>   T && = U &&

When you call the second template f(g()), then T is deduced as an lvalue reference if g() is an lvalue, and as a non-reference otherwise.

In your example f(a), since a is an lvalue, T is deduced as int &, so T && = int &, and so the function parameter t is bound to the object a, which you then modify.

share|improve this answer
    
I am not sure if I understand rightly. Please see my example testing. Thanks. – user1899020 May 24 '14 at 11:49
    
+1 just to encourage you to add references. :) – Cheers and hth. - Alf May 24 '14 at 12:01
    
Added link to Scott Meyers on universal references, not sure if that's best but it's something. – Cheers and hth. - Alf May 24 '14 at 12:06
    
@user1899020: I added a sentence addressing your example. – Kerrek SB May 24 '14 at 12:17

The first example is a traditional C++ reference

T& t

* Updated as my original terminology was wrong *

The second is a rvalue reference used by the C++ 11 move assignment operator

T&& t

which is still a reference but used with std::move to allow data to be moved instead of copied.

An example of this is the traditional assignment operator which takes a const reference and copies:

MyClass& MyClass::operator =(const MyClass& value) { /* copy value to myself ... */ }

The move assignment operator looks like this:

MyClass& MyClass::operator =(MyClass&& value) { /* move content of value to myself ... */ }

So if your class had a member variable which was something like this:

char* m_string

Then for the traditional assignment operator you would see this:

MyClass& MyClass::operator =(const MyClass& value)
{
    delete [] m_string;
    m_string = new char[strlen(value.m_string)+1];
    strcpy(m_string, value.m_string);
    return *this;
}

For the move assignment operator you would see this:

MyClass& MyClass::operator =(MyClass&& value)
{
    delete [] m_string;
    m_string = value.m_string;
    value.m_string = nullptr;
    return *this;
}

In the move example, the provided value has had the contents moved across and then cleared to avoid deleting m_string twice at a later stage.

To make the move happen do the following:

MyClass my_class1;
MyClass my_class2;
...

// move the contents of my_class1 to my_class2.
// operator =(MyClass&& value) will be called.
my_class2 = std::move(my_class1);
share|improve this answer
    
Also note that unless the object being passed into the assignment operator is considered temporary, std::move is required otherwise the compiler will pick the const reference version for safety reasons. – Curg May 24 '14 at 11:50
    
&& has effectively two meanings, namely as rvalue reference type builder (usual), or as a universal reference when the type is deduced, as in a templated parameter or an auto type. In the case of this question it's the latter meaning that's relevant. See Kerrek's anser. – Cheers and hth. - Alf May 24 '14 at 12:04
    
Explain what is incorrect? – Curg May 24 '14 at 12:10
    
I already did. Additionally you got the terminology wrong (&& is not called a "move operator"), but I downvoted for intended meaning. See my earlier comment. – Cheers and hth. - Alf May 24 '14 at 12:11
1  
@Curg T&& is not move operator. It is universal refrence It can be rvalue or lvalue depend on what you send to function . look at this blog post : isocpp.org/blog/2012/11/… – Omid May 24 '14 at 20:59

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