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Is it legal to have a pointer of a reference in C++?

For example:

int &ref = array[idx];
func(&ref);

One reason I can think of why you might want to do this if func() already exists in a library which you can't change.

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Check this out it might help you understand. codeproject.com/KB/cpp/PtrToPtr.aspx –  user668693 Mar 21 '11 at 0:29

4 Answers 4

up vote 6 down vote accepted

That code is legal, but it does not create a pointer to the reference. It creates a pointer to the referent (the reference target).

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It is not. The address of a reference can be taken, but "pointer to a reference of T" is not a valid type. What you are doing here is taking a pointer to the object itself, since a reference to an object simply creates another name by which you can access that same object.

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No, a reference is NOT the object itself. But naming the reference results in an operation being performed on the referred-to object, in this case the address-of operation. –  Ben Voigt Mar 21 '11 at 0:34
    
@Ben: A reference may be implemented in some manner (e.g. a pointer), but at the language level it is the object in the sense that the ref and the obj always behave in a perfectly identical manner. I think we agree in essence but you find the wording inappropriate, in which case I have to admit it wasn't my creation: parashift.com/c++-faq-lite/references.html#faq-8.1 –  Jon Mar 21 '11 at 0:38
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The FAQ is very good in general, but that particular answer has some unfortunate oversimplification. This error has already been beaten to death in other stack overflow questions, but the simplest proof that the reference is not the object is to consider when the destructor gets called. –  Ben Voigt Mar 21 '11 at 0:41
    
@Ben: Touche. :) –  Jon Mar 21 '11 at 0:44
    

Pointer points to an object and reference is not an object to have pointer to it. Reference is just an alias.

This post on SO has information - Why pointers to a reference is illegal?

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If by "have a pointer of a reference" you mean taking the address of a reference (as in your sample: &ref), then it's perfectly legal. Any variable is an identifier, hence & can be applied by § 5.3.1-2 of C++-03. Expressions with reference types are lvalues, and thus & is applicable by the same section.

If by "have a pointer of a reference" you mean a type that's a pointer to a reference (e.g. int &*), then no, by § 8.3.2-4 (and the note at § 8.3.1-4).

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This doesn't answer the question. –  Matthew Flaschen Mar 21 '11 at 0:31
    
there is no "taking the address of the reference". The reference is transparent, the address-of operator (&) is applied to the referred-to object. –  Ben Voigt Mar 21 '11 at 0:37
    
@Matthew: why not? –  outis Mar 21 '11 at 0:42
    
@outis, it clearly asks about a "pointer to a reference." Your answer says nothing about pointers. –  Matthew Flaschen Mar 21 '11 at 0:43
    
@Ben: an expression can have reference type. That the value of applying & to the reference is equal to that of applying & to the referent is another matter, namely the behavior rather than the legality. –  outis Mar 21 '11 at 0:48

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