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Imagine a function like this:

 function(Human *&human){
      // Implementation

Can you explain what exactly a *& is? And what would it be used for? How is different than just passing a pointer or a reference? Can you give a small and explanatory sample?

Thank you.

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You should see the type of the reference as "a reference to Human*", not "a *& to Human", then everything becomes clear: it's a pointer type which (the pointer itself, not what is stored behind it) is modifiable by reference. Like the referenced type is a "black box", as you would do by using a typedef or something like that. –  leemes Dec 20 '12 at 21:17

5 Answers 5

up vote 5 down vote accepted

It is like a double pointer. You're passing the pointer by reference allowing the 'function' function to modify the value of the pointer.

For example 'human' could be pointing to Jeff and function could modify it to point to Ann.

Human ann("Ann");

void function(Human *& human)
    human = &ann;

int main()
    Human jeff("Jeff");
    Human* p = &jeff;
    function(p);  // p now points to ann
    return 0;
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void doSomething(int &*hi);

will not work. You cannot point to references. However, this:

void doSomething(int *&hi); // is valid.

It is a reference to a pointer. This is useful because you can now get this pointer passed into the function to point to other "Human" types.

If you look at this code, it points "hi" to "someVar". But, for the original pointer passed to this function, nothing will have changed, since the pointer itself is being passed by value.

void doSomething(int *hi)
    hi = &someVar;

So you do this,

void doSomething(int *&hi)
    hi = &someVar;

So that the original pointer passed into the function is changed too.

If you understand "pointers to pointers", then just imagine that, except when something is a reference it can be treated like a "non-pointer".

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It's not a reference to a pointer. It's a pointer to a reference and it's not valid. Edit: the question is fixed now, but your answer isn't. –  Joseph Mansfield Dec 20 '12 at 21:13
I changed my question. Sorry. –  Koray Tugay Dec 20 '12 at 21:14
@sftrabbit I noticed that too. I changed my answer. Thanks. –  Aaron Dec 20 '12 at 21:15

"Takes an address of a pointer" - No, it doesn't. It takes supposed to take a reference to a pointer.

However, this is a syntax error. What you probably meant is

rettype function(Human *&human)

(Yes, it's also missing a return type...)

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they probably wanted a return type too. –  juanchopanza Dec 20 '12 at 21:14
@juanchopanza yeah sure, added that as well. –  user529758 Dec 20 '12 at 21:14

Since you wrote this code off the top of your head, I'm going to assume you meant to do something like this:

void f(T *&) {}

This function signature allows the pointer passed to become modifiable, something that isn't allowed with the alternate syntax int *. The pointer is effectively passed by reference as others here call it.

With this syntax, you are now able to modify the actual pointer and not just that which it points to. For example:

void f(int *& ptr) {
    ptr = new int;

int main() {
    int * x;
    f(ptr); // we are changing the pointer here

    delete x;

Summary (assume types are in parameters):

  1. T *: We are only able to change the value of the object to which the pointer points. Changing the parameter will not change the pointer passed.
  2. T *&: We can now change the actual pointer T, and the value of the object to which it points *T.
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Thanks. So if I pass a pointer to a function, I can not change what it points to? But I can change the value that it points to? But now I can also change WHAT it points to.. Thanks I guess I understand it. –  Koray Tugay Dec 20 '12 at 21:18
You can change what it points to (points to ann instead of jeff) and the data of the thing it points to: void function(Human*& human) { human->SetAge(35); } –  Mustafa Ozturk Dec 20 '12 at 21:23
@KorayTugay With this syntax, you are able to change both what the pointer points to, and that value of the object to which it points. Just doing void f(int *) {..} will restrict us to only being able to change the value of the object to which it points, and not the object the pointer is pointing. Do you need a clearer explanation? –  0x499602D2 Dec 20 '12 at 21:40
@David No thanks. Clear. –  Koray Tugay Dec 20 '12 at 21:47
@KorayTugay Nope: the parameter acts an alias in this case. The pointer passed to function will not be changed at all. The human pointer acts as a local variable that only holds the value of the passed pointer argument. Changing it won't affect the pointer at all. –  0x499602D2 Dec 20 '12 at 21:53

Even though it looks just like the address-of operator, it's not - it's a reference parameter. You use a reference when you want to be able to change the value at the caller's end. In this case the pointer is probably being set or changed within the function.

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