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Consider this code

class Foo {
private:
    Bar bar; //note: no reference

public:
   Foo(Bar& b) : bar(b) { }
};

Will Bar get copy-constructed?

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3  
@ildjarn: What other possibilities are there? (Other than simply failing to compile, of course.) –  Oliver Charlesworth Nov 15 '11 at 22:05
    
@Oli : None, I was temporarily confused. ;-] –  ildjarn Nov 15 '11 at 22:15

2 Answers 2

up vote 3 down vote accepted

That depends on the signatures of Bar's public constructors, either explicitly or implicitly defined.

To start with, the C++ standard allows for implicit conversion of references as long as the only difference in the underlying type is that the destination type is at least as cv-qualified than the source type, using the partial ordering defined in this table (C++11, §3.9.3/4):

no cv-qualifier < const
no cv-qualifier < volatile
no cv-qualifier < const volatile
const          < const volatile
volatile    < const volatile

So, taking that into account as well as §12.8/2:

A non-template constructor for class X is a copy constructor if its first parameter is of type X&, const X&, volatile X& or const volatile X&, and either there are no other parameters or else all other parameters have default arguments.

if Bar has a constructor with any of the following signatures:

Bar(Bar&);
Bar(Bar const&);
Bar(Bar volatile&);
Bar(Bar const volatile&);

then yes, b will be copy-constructed into Foo::bar.


EDIT: This was incorrect, I was thinking of operator= and the details of qualifying as a move-assignment operator.

Note that it's possible to have an eligible constructor that is not a copy constructor:

Bar(Bar);

This will work (read: compile), but it is not technically a copy constructor.

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Wouldn't a Bar(const Bar&) copy constructor work as well? –  Fred Larson Nov 15 '11 at 22:10
    
@Fred : Indeed, an oversight on my part; edited. –  ildjarn Nov 15 '11 at 22:10
    
"This will work (read: compile)". Does it? I don't have a standard handy, but ... ideone.com/9GIJu –  Robᵩ Nov 15 '11 at 22:11
1  
@Evgeni : Yes, that's wrong. Given that bar is a reference in that scenario, no copies are performed, just aliasing. –  ildjarn Nov 16 '11 at 16:34
1  
@Evgeni : Beware that holding references in a class makes that class non-assignable. In practice, this is often untenable, and it's better to use something like std::shared_ptr to avoid data duplication. –  ildjarn Nov 16 '11 at 20:05

Yes your member variable bar will be copy constructed, that's one of the benefits of using an initializer list as opposed to assigning the value in the body of the constructor.

If the Bar class does not have an accessible copy constructor and the compiler can't generate a default one, the code will fail to compile.

When you pass a reference to a copy constructor, you should generally make it a const reference.

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