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I heard references in c++ can be intitalized only once but this is giving me 1 is my output and not returning any error!

 struct f { 
   f(int& g) : h(g) { 
     h = 1; 
   }

   ~f() { 
     h = 2; 
   } 

   int& h; 
 };

 int i() { 
   int j = 3; 
   f k(j); 
   return j;
 }
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Didn't know that structs can be used in the same way as classes in C++. Good question.. –  Nils Aug 5 '10 at 6:21
1  
Nils: The only difference between a struct and a class in C++ is default accessibility. For classes the default is private, but for structs the default is public. For compatibility with C, methinks... –  harald Aug 5 '10 at 6:47
    
It's not an issue with reference but with scoping and object life-time. –  Matthieu M. Aug 5 '10 at 8:30

3 Answers 3

up vote 9 down vote accepted

The destructor of f is called after the return value j is captured.

You might want something like this, if you wanted j to be 2:

int i( )  
{  
    int j=3;  
    {
        f k(j);  
    }
    return j; 
}

See http://stackoverflow.com/questions/2196327/c-destructor-function-call-order for a more detailed description of the order of destruction and the return statement.

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You are still initializing the reference only once; assignment and initialization are not the same. The initialization sets up h so that it references j (which you never change). Your assignment merely changes the value of j which is the same as h, but does not cause h to refer to a different variable.

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great. Thank you very much. –  brett Aug 5 '10 at 6:17

I hope this code is only to display the issue, storing a reference to a variable defined outside of the class is very dangerous as your class doesn't have any control over (or knowlege of) when the referenced variable goes out of scope.

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