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if there difference between followed code samples?

ClassTwo ClassTwo::getOwnOne(){
    return *this;
}


 ClassTwo& ClassTwo::getOwnTwo(){
    return *this;
}

if there difference between followed code samples? is it same?

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Could anybody who downvoted explain why in a comment? –  HXCaine Apr 17 '13 at 13:36
    
@HXCaine I didn't downvote, but the original question title was poorly worded and it quickly accumulated downvotes, so I fixed it. –  Peter Wood Apr 17 '13 at 22:32
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5 Answers

ClassTwo ClassTwo::getOwnOne()

This returns a copy of the object it's called on.

ClassTwo& ClassTwo::getOwnTwo()

This returns a reference to the object it's called on.

They both do (more or less) the same thing if you use the result to create a new object:

ClassTwo c2a = c2.getOwnOne(); // New object
ClassTwo c2b = c2.getOwnTwo(); // New object too

but are different if you use them to initialise a reference:

ClassTwo const & c2a = c2.getOwnOne(); // New object (lifetime tied to reference)
ClassTwo const & c2b = c2.getOwnTwo(); // Reference to c2

ClassTwo & c2a = c2.getOwnOne(); // ERROR
ClassTwo & c2b = c2.getOwnTwo(); // Reference to c2

The third is an error because you can't bind a mutable reference to a temporary object.

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Even if you ignore the results, the version returning by value will construct a new ClassTwo to return. If ClassTwo doesn't support copy, it won't compile, and if the copy constructor does anything that is in any way visible, that will happen. –  James Kanze Apr 17 '13 at 13:04
    
@JamesKanze: Yes, I oversimplified a bit there. –  Mike Seymour Apr 17 '13 at 13:14
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The first one copies *this, the second one doesn't.

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They are not the same. The first one will implicitly call the copy constructor and return a copy of the object. The second one will return a reference to it.

You can verify this by adding a copy constuctor to your class, something like this (a useless one, just to display a message):

ClassTwo(const ClassTwo& in)
{
  cout << "I am the copy constructor" << endl;
}

If you call your getOwnOne() method, it will display the message. The getOwnTwo() wont.

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The first definition returns a copy of the object you are calling getOwnOne on. This means you'll be calling the class' constructor when you call this method.

The second method returns a reference to the object you're calling getOwnTwo on.

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Have a look at this. The second class can have Undefined Behaviour

Maybe since you get the same output with either. It makes you think they are same.

The first one returns the current object whereas the second one will typecast the returned object to its reference

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1  
No, there's no undefined behaviour here; returning a reference to a (non-local) object is fine. Nor is there any in the unrelated question you link to, despite the dodgy cast making it look like there could be. –  Mike Seymour Apr 17 '13 at 12:54
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