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Why is it that when the g_Fun() executes to the return temp it will call the copy constructor?

class CExample 
{
private:
 int a;

public:
 CExample(int b)
 { 
  a = b;
 }

 CExample(const CExample& C)
 {
  a = C.a;
  cout<<"copy"<<endl;
 }

     void Show ()
     {
         cout<<a<<endl;
     }
};

CExample g_Fun()
{
 CExample temp(0);
 return temp;
}

int main()
{
 g_Fun();
 return 0;
}
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2 Answers 2

Because you return by value, but note that calling the copy constructor is not required, because of RVO.

Depending on the optimization level, the copy-ctor might or might not be called - don't rely on either.

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That, and the expression g_Fun() still has a return value, even though the statement doesn't use it at all. –  aschepler Jan 24 '13 at 19:50
    
yes, but it is used as: CExample var = g_Fun(); –  user707549 Jan 24 '13 at 19:56
    
@ratzip all the more reason - that's copy initialization. Same rule applies (copy c-ctor can be called, but not required to) –  Luchian Grigore Jan 24 '13 at 19:57
    
In C++11 g_Fun() is guaranteed not to copy but to move instead. –  TemplateRex Jan 24 '13 at 20:04

A copy constructor may called whenever we return an object (not its reference) because its copy needed to be created which is done by default copy constructor.

CExample g_Fun()
{
 return CExample(0);    //to avoid the copy constructor call
 }
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1  
-1 the book is a lie. It can make no such guarantee. –  Luchian Grigore Jan 24 '13 at 19:49
    
    
ya agree with you completely. from last few days the stack overflow changes my mind about copy constructor. the book is informit.com/store/… –  Arpit Jan 24 '13 at 19:50
    
Then correct the answer. :) –  Luchian Grigore Jan 24 '13 at 19:52
    
It's still not correct. The copy constructor can be called, it doesn't have to. –  Luchian Grigore Jan 24 '13 at 19:54

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