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How can we assign a value to an item wrapped by std::reference_wrapper?

int a[] = {0, 1, 2, 3, 4};

std::vector <std::reference_wrapper<int>> v(a, a+5);

v[0] = 1234;  // Error, can not assign value !

Accoring to error, direct assignment is deleted:

error: use of deleted function 'std::reference_wrapper<_Tp>::reference_wrapper(_Tp&&) [with _Tp = int]'

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1 Answer 1

up vote 11 down vote accepted

Use the get() member function:

v[0].get() = 1111; // ok

Here is a list of all member functions of std::reference_wrapper. Since there is a operator=:

reference_wrapper& operator=( const reference_wrapper<T>& other );

the int literal is converted to a reference wrapper, which fails, and is the error message you see.

Alternatively, you could call the conversion operator explicit (static_cast<int&>(v[0]) = 1111;), but better use the get() method as showed above.

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1  
Just wondering, what's the use of the conversion operator if it can't be used like this? I find static_cast<int &>(v[0]) = 1111; a bit dumb when get() is there. –  chris Mar 17 '13 at 17:22
    
Maybe add that the non-explicit constructor of std::reference_wrapper is important here which e.g. boost::reference_wrapper has not. –  bamboon Mar 17 '13 at 17:26
2  
@chris, it's so you can pass a reference_wrapper<T> to a function taking T& (you could call get() there too, I guess, but it would just be more verbose). –  Stephen Lin Mar 17 '13 at 17:50
    
@StephenLin, Ah, good point, thank you. –  chris Mar 17 '13 at 18:04
    
@chris, the conversion operator is to get the reference out of the wrapper after passing it through some forwarding functions, it's not there to help you update the stored value. It wraps a reference, not a value. –  Jonathan Wakely Mar 17 '13 at 19:49

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