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There seems to be many relavent questions talking about pointer vs. reference, but I couldn't find what I want to know. Basically, an object is passed in by a reference:

funcA(MyObject &objRef) { ... }

Within the function, can I get a pointer to that object instead of the reference? If I treat the reference objRef as an alias to the MyObject, would &objRef actually give me a pointer to the MyObject? It doesn't seem likely. I am confused.

Edit: Upon closer examination, objRef does give me back the pointer to object that I need - Most of you gave me correct info/answer, many thanks. I went along the answer that seems to be most illustrative in this case.

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1  
Why do you need a pointer from a reference? –  Griwes Feb 13 '12 at 16:02
    
@Griwes: Off the top of my head, pointer math may be desired or another API may want a pointer. –  Drew Dormann Feb 13 '12 at 16:05
    
what if you just get the address of the reference? &objRef –  vulkanino Feb 13 '12 at 16:06
    
@DrewDormann, what, pointer math on address of object passed by reference? Doesn't look like good design to me. –  Griwes Feb 13 '12 at 16:06
2  
An example would be a reference is passed in, the parsing of binary stream such as reinterpret_cast<char *> requires a pointer type instead. –  Oliver Feb 13 '12 at 16:12

6 Answers 6

up vote 21 down vote accepted

Yes, applying the address-of operator to the reference is the same as taking the address of the original object.

#include <iostream>

struct foo {};

void bar( const foo& obj )
{
  std::cout << &obj << std::endl;
}

int main()
{
  foo obj;
  std::cout << &obj << std::endl;
  bar( obj );

  return 0;
}

Result:

0x22ff1f
0x22ff1f
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3  
This isn't the "address of the reference". And yes, it's possible for a reference to take up space in memory and therefore have an address, but there's no type-safe way to find it. –  Ben Voigt Feb 13 '12 at 16:14

Any operator applied to a reference will actually apply to the object it refers to (§5/5 [expr]); the reference can be thought of as another name for the same object. Taking the address of a reference will therefore give you the address of the object that it refers to.

It as actually unspecified whether or not a reference requires storage (§8.3.2/4 [dcl.ref]) and so it wouldn't make sense to take the address of the reference itself.

As an example:

int x = 5;
int& y = x;
int* xp = &x;
int* yp = &y;

In the above example, xp and yp are equal - that is, the expression xp == yp evaluates to true because they both point to the same object.

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2  
The reference is NOT simply another name for the same object (the lifetime of a reference is distinct from the lifetime of the object it points to). However, your sample code will work, because using any operator on a reference actually uses the target object instead. –  Ben Voigt Feb 13 '12 at 16:13
    
Thanks. I made some corrections. –  Joseph Mansfield Feb 13 '12 at 16:32
    
@BenVoigt. There is no legal way for a reference to not live as long as the object. deleting at dynamic storage duration object that is referenced or returning a reference of an automatic storage duration object both invoke undefined behavior. –  Loki Astari Feb 13 '12 at 16:47
    
@Loki: What? A reference can definitely "not live as long as the object", and it can also outlive the object. Using a reference after the lifetime of its original target object has ended is undefined behavior under all but very specific and restricted conditions. –  Ben Voigt Feb 13 '12 at 16:53
1  
@Ben: Yes I always found one sided arguments (blogs) are the greatest way to get to the truth. You said it yourself a reference is an alias. Alias => 'Another Name'. Yes. perfectly legal code can still lead to undefined behavior. What I am saying is valid code (ie that does not invoke undefined behavior) a reference will not last longer than an object it refers too and acts as another name for an object. You are saying: A reference behaves like a pointer when we invoke undefined behavior. I say yep, so what. –  Loki Astari Feb 14 '12 at 15:25

The general solution is to use std::addressof, as in:

#include <type_traits>

void foo(T & x)
{
    T * p = std::addressof(x);
}

This works no matter whether T overloads operator& or not.

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Use the address-of (&) operator on the reference.

&objRef

Like any other operator used on a reference, this actually affects the referred-to object.

As @Kerrek points out, since the operator affects the referred-to object, if that object has an overloaded operator& function, this will call it instead and std::address_of is needed to get the true address.

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Use the address operator on the reference.

MyObject *ptr = &objRef;
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This doesn't get "the address of the reference". –  Ben Voigt Feb 13 '12 at 16:17
    
@BenVoigt: Would "Use the address operator on the reference" be more accurate? I get that you don't like my terminology, but I want to be sure why. –  Drew Dormann Feb 13 '12 at 16:45
    
Yes, that would be better. –  Ben Voigt Feb 13 '12 at 16:54

In C++, a reference is a restricted type of pointer. It can only be assigned once and can never have a NULL value. References are most useful when used to indicate that a parameter to a function is being Passed by Reference where the address of the variable is passed in. Without a Reference, Pass By Value is used instead.

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No. A reference is an alias to an existing object. Thinking of it as a fancy pointer will just confuse you when you start doing more complex stuff. –  Loki Astari Feb 13 '12 at 16:13
    
see source –  damson Feb 13 '12 at 16:16
    
@Loki: A reference is a handle. So is a pointer. Both of them consume storage (unless optimized away) and have distinct lifetime from the referred-to object. The similarities greatly outweigh the differences. –  Ben Voigt Feb 13 '12 at 16:16
    
@BenVoigt: Careful on terminology. Handle has other meanings in comp sci. But I take your point. But I disagree with your opinion. Also note 8.3.2 References [dcl.ref] para 4 <quote>it is unspecified whether or not a reference requires storage</quote> If a reference is like a pointer why can't I get a reference to my reference (its because it does not exist). It is simply an alias. –  Loki Astari Feb 13 '12 at 16:36
    
@damson: Yes there a lots of crap references on the web. Pick up a copy of the standard here: stackoverflow.com/a/4653479/14065 –  Loki Astari Feb 13 '12 at 16:39

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