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So I am attempting to learn C++ and I have come across something that puzzles me slightly. I have the code,

int x = 0;
int &y = x;
cout << &x<< " " << x << " " << &y << " " <<y<< endl;

This compiles fine and results in:

0 003AFA08 0 003AFA08

What I have trouble understanding why the conversion of x, an int, to &y, a reference, doesn't result in an error. At first I thought it was some sort of conversion however,

int &y = &x;

results in an error.

Can anyone explain why this works in this way? Thanks in advance.

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So you want to know why the stream insertion operator << can stringify the address of a variable as a numeric hex string but you can't assign the address of an int (with type int *) to int &? –  bobbymcr Dec 26 '11 at 5:05
3  
I guess it's 003AFA08 0 003AFA08 0 –  onemach Dec 26 '11 at 5:08

4 Answers 4

up vote 11 down vote accepted

int& is not an address. It is a reference.

int& y = x; declares y as a reference to x. It effectively means that y becomes another name for x. Any time you use y, it is as if you had said x.

Pointers (not references) are used to store addresses. int& y = &x; is not valid because &x is the address of x (it's an int*). y is a reference to an int, not a reference to an int*.

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1  
Thank you that just made C++ make so much more sense... –  jozefg Dec 26 '11 at 5:14
    
Strictly speaking, &x is not the address of x, but a pointer to x, even though the & operator is called address-of :) –  FredOverflow Dec 26 '11 at 11:38
1  
@FredOverflow: "A valid value of an object pointer type represents either the address of a byte in memory or a null pointer." Close enough for me. :) –  GManNickG Jan 2 '12 at 6:59
    
@GMan: "The result of the unary & operator is a pointer to its operand. [...] if the type of the expression is T, the result has type "pointer to T" and is a prvalue that is the address of the designated object." –  FredOverflow Jan 2 '12 at 13:00
    
@FredOverflow: "and is [...] the address of the designated object". So what's wrong with saying &x is the address of x? –  GManNickG Jan 2 '12 at 20:08

It isn't a conversion. When you have a variable type of T & where T is some random type, you are basically saying "I'm declaring a name which is an alias for another name or possibly an anonymous value.". It's more like a typedef than a pointer.

References happen to often be implemented as addresses, but that isn't a good model for thinking about what they are.

In your example that you're puzzled by:

int * const &y = &x;

would work just fine. Then y becomes an alias for the temporary result of taking the address of x. Notice that it is a reference to a pointer. It has to be a reference to a constant pointer because it is a reference to a temporary value.

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&y is not merely an address, it is a reference. This means that

int &y = x;

makes a clone of x by the name of y.

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Your problem is that &y isn't simply an address, but a reference. This means it behaves like a copy of x. It doesn't convert and it is actually becoming another name for x.

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