144

I'm reading STL source code and I have no idea what && address operator is supposed to do. Here is a code example from stl_vector.h:

vector&
operator=(vector&& __x) // <-- Note double ampersands here
{
    // NB: DR 675.
    this->clear();
    this->swap(__x); 
    return *this;
}

Does "Address of Address" make any sense? Why does it have two address operators instead of just one?

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  • 3
    Maybe it's an address of a reference. – Gabe Dec 28 '10 at 20:15
  • 1
    @Gabe; it's a declaration so that would make it a reference to a reference, which doesn't make any sense as the reference itself can't be modified. The address-of can only be used in the code, not when declaring (a parameter as in this case, or otherwise). Never seen anything like this though. – falstro Dec 28 '10 at 20:17
  • 5
    Even if there was only a single &, it would have nothing to do with the address-of operator, but instead signify that __x is a reference. – sepp2k Dec 28 '10 at 20:20
  • 1
    Possible duplicate of What does T&& (double ampersand) mean in C++11? – Trevor Boyd Smith Sep 4 '17 at 13:25
115

This is C++11 code. In C++11, the && token can be used to mean an "rvalue reference".

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180

&& is new in C++11. int&& a means "a" is an r-value reference. && is normally only used to declare a parameter of a function. And it only takes a r-value expression. If you don't know what an r-value is, the simple explanation is that it doesn't have a memory address. E.g. the number 6, and character 'v' are both r-values. int a, a is an l-value, however (a+2) is an r-value. For example:

void foo(int&& a)
{
    //Some magical code...
}

int main()
{
    int b;
    foo(b); //Error. An rValue reference cannot be pointed to a lValue.
    foo(5); //Compiles with no error.
    foo(b+3); //Compiles with no error.

    int&& c = b; //Error. An rValue reference cannot be pointed to a lValue.
    int&& d = 5; //Compiles with no error.
}

Hope that is informative.

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  • 11
    The only example I wish you'd add is how this works with std::move. Showing what would happen with int&& c = std::move( b );, etc. – Zzzach... Jul 24 '19 at 21:00
  • 4
    It looks like Sravani S blatantly plagiarized from you for TutorialsPoint on 15 Feb. 2018, here. – Gabriel Staples Apr 24 at 23:52
  • 5
    I just sent TutorialsPoint this message. The article, as plagiarized by them, looks like this. – Gabriel Staples Apr 24 at 23:58
87

&& is new in C++11, and it signifies that the function accepts an RValue-Reference -- that is, a reference to an argument that is about to be destroyed.

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  • @bronekk: Did you see the post date on this message? It wasn't published as of Dec. 28 2010. – Billy ONeal Jan 19 '12 at 18:31
  • sorry about that, removed now. Will be more careful next time :) – bronekk Jan 19 '12 at 21:38
35

As other answers have mentioned, the && token in this context is new to C++0x (the next C++ standard) and represent an "rvalue reference".

Rvalue references are one of the more important new things in the upcoming standard; they enable support for 'move' semantics on objects and permit perfect forwarding of function calls.

It's a rather complex topic - one of the best introductions (that's not merely cursory) is an article by Stephan T. Lavavej, "Rvalue References: C++0x Features in VC10, Part 2"

Note that the article is still quite heavy reading, but well worthwhile. And even though it's on a Microsoft VC++ Blog, all (or nearly all) the information is applicable to any C++0x compiler.

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  • The && token itself is not new; its meaning in declarations is. But you knew that. – aschepler Dec 28 '10 at 20:47
  • It's new in this context. But it is highly traditional for C/C++ to overload its tokens to have different meaning in different contexts. – Martin York Dec 28 '10 at 21:16
  • 1
    @aschkleper - of course... the logical-and operator didn't even enter my mind. I'll update the answer. – Michael Burr Dec 28 '10 at 21:44
4

I believe that is is a move operator. operator= is the assignment operator, say vector x = vector y. The clear() function call sounds like as if it is deleting the contents of the vector to prevent a memory leak. The operator returns a pointer to the new vector.

This way,

std::vector<int> a(100, 10);
std::vector<int> b = a;
for(unsigned int i = 0; i < b.size(); i++)
{
    std::cout << b[i] << ' ';
}

Even though we gave vector a values, vector b has the values. It's the magic of the operator=()!

MSDN -- How to create a move constructor

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  • 1
    What is your answer adding to this 4 year old question, which hasn't already been covered in the other answers? – Masked Man Dec 23 '14 at 17:12
  • 5
    I didn't notice any answer like this so I decided to add on. I came across this question by googling just today. – yash101 Dec 23 '14 at 18:36

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