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Why the B(B&) ctor is called, instead of B(const B&), in the construction of object b1 ?

#include <iostream>
using namespace std;

struct B
{
    int i;
    B() : i(2) { }
    B(B& x) : i(x.i) { cout << "Copy constructor B(B&), i = " << i << endl; }
    B(const B& x) : i(x.i) { cout << "Copy constructor B(const B&), i = " << i << endl; }
};

int main()
{
    B b;
    B b1(b);
}
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1  
because b is not const? –  Preet Sangha Jan 24 '12 at 12:12

5 Answers 5

up vote 2 down vote accepted

13.3.3.2/3 says

Two implicit conversion sequences of the same form are indistinguishable conversion sequences unless one of the following rules apply:

— Standard conversion sequence S1 is a better conversion sequence than standard conversion sequence S2 if :

S1 and S2 are reference bindings (8.5.3), and the types to which the references refer are the same type except for top-level cv-qualifiers, and the type to which the reference initialized by S2 refers is more cv-qualified than the type to which the reference initialized by S1 refers. [Example:

int f(const int &);
int f(int &);
...
int i;
int j = f(i); // calls f(int&)

In your case since the argument is non-const, the non-const version of the copy c-tor is chosen because it is a better match.

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Great answer. Congratulations ! –  Ayrosa Jan 24 '12 at 12:59

This is because overload resolution applies, and since the argument to the constructor of b1 is b, and b happens to be non-const lvalue, then the constructor taking non-const lvlalue is selected. And that's the first one. Interestingly, both are copy constructors, but your code would be equaly valid with just the latter one.

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Any reference ? –  Belloc Jan 24 '12 at 12:21
1  
whole clause 12.8 in ISO/IEC 14882 is about copy constructors; anythying specific you are interested in? As far as overloading goes ... that's whole chapter 13. And it's rather complex. –  bronekk Jan 24 '12 at 12:27
    
... Plus a bunch of clauses relating to overload resolution... What is it that you are worried about? –  David Rodríguez - dribeas Jan 24 '12 at 12:47
    
@bronekk I can't find anything specifically related to my question in the Standard latest draft. –  Belloc Jan 24 '12 at 12:53
    
because there isn't; as I said there are whole clauses and chapters on the subject. –  bronekk Jan 24 '12 at 13:14

Because b is not const. Therefore, it matches the first copy ctor perfectly, so that's what the compiler uses.

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Could you give some reference ? –  Belloc Jan 24 '12 at 12:16

because b is not a constant.

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Try this:

int main() {
    const B b;
    B b1(b);
}

Also, it's a hard decision wheter you should use const or not ;)

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