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say i have the following C++ class.

class C
{
   int foo() const;
   int & foo();
};

and i just call myC.foo(), i can see using the debugger that it calls the one with the reference.

why?

thanks!

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4  
You don't think showing the definition of myC might be pertinent? –  ildjarn Jun 2 '11 at 17:08
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2 Answers

up vote 11 down vote accepted

It's likely because myC is a non-const value and hence the compiler is prefering the non-const method. The const method will only be preferred when accessed from a const value. For example

C value1;
value1.foo();  // int& foo();
const C value2;
value2.foo();  // int foo() const;

EDIT

Also, as Oli pointed out, overload resolution in C++ is not affected by the return type of the method. So it won't pick one of these signatures over the other based on the way in which the value is used.

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7  
+1: Indeed. Also worth mentioning that overload resolution is not affected by return type? –  Oli Charlesworth Jun 2 '11 at 17:09
    
@Oli, good call. Added a blurb. –  JaredPar Jun 2 '11 at 17:10
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Because myC must have not been an const obj.

C++ allows functions to be overloaded on the basis of the const keyword.

If a const object of the class is created only const member functions can be called through that object because they guarantee that they wont modify the state of the object.

a non const object can call both const as well as non const member functions but compilers gives preference to non const member functions over const member functions and hence the behavior in your case.

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