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The following code will throw a warning:

warning C4239: nonstandard extension used : 'argument' : conversion from 'std::unique_ptr<_Ty>' to 'std::unique_ptr<_Ty> &'

std::unique_ptr<T> foo() { return std::unique_ptr<T>( new T ); }
std::unique_ptr<T> myVar;
myVar.swap(foo());

I would like to know what is the proper way to handle this situation.

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3 Answers 3

up vote 6 down vote accepted

The swap member function of std::unique_ptr takes a non-const lvalue reference and the expression foo() is an rvalue as foo is a function returning an object (as opposed to a reference). You cannot bind an rvalue to a non-const lvalue reference.

Note that you can do the swap the other way around:

foo().swap(myVar);

The simpler thing to do is a straight initialize:

std::unique_ptr<T> myVar(foo());
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1  
Unfortunately, Visual Studio doesn't support uniform initialization syntax –  Praetorian Aug 24 '12 at 23:01
    
@Prætorian: Bother. Let me fix. –  Charles Bailey Aug 24 '12 at 23:02

std::unique_ptr::swap takes a non-const reference to the other pointer. You cannot bind an r-value to a non-const reference, although VC++ allows that through a non-standard extension. Hence the warning.

To get rid of the warning either store the return value of foo in a variable and then swap, or reverse the order of the swap.

foo().swap( myVar );
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You are trying to swap into a temporary. You could try this instead:

std::unique_ptr<T> foo() { return std::unique_ptr<T>( new T ); }
std::unique_ptr<T> myVar1;
std::unique_ptr<T> myVar2 = foo();
myVar1.swap(myVar2);

Note this is not specific to std::unique_ptr. The following would be illegal for the same reason:

void foo(std::string& s) { .... }
std::string bar() { .... }

foo(bar());
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Whats wrong with swapping into a temporary? This was not a warning in VS11 –  aCuria Aug 24 '12 at 23:31
1  
@aCuria the language doesn't allow you to bind non-const references to temporaries. The logic is that it doesn't make sense to change something that will disappear immediately. –  juanchopanza Aug 25 '12 at 5:59
    
+1 for the reply, but I think in my case it makes sense for it to disappear (dtor gets called) immediately. I am using it for graphics resources (say a texture) that are expected to be screen-sized. When the screen resolution is changed, the old texture should be swapped out for a new one and the old one destroyed... hence I want to do texture.swap(newtexture); –  aCuria Aug 26 '12 at 3:38

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