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I'm looking few exercise from university about C++ and I found out this exercise:

#include <iostream>
using namespace std;
int& f(int*&);
int& f(int*& x) {
    *x = 5;
    return *x;
}
int main() { 
    int y = 1, x; 
    int* z = &y; 
    x= f(z);
    cout << y << " " << x <<endl; 
}

I was wondering: does <any type>*& has any real sense? Isn't f(int*& x) the same as f(int x)? Aren't you passing the pointer to the L-value of the variable?

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IMO it would be clearer if it was written as int* &x. That way you can easily see which what the type and name is. –  Ash Burlaczenko Feb 18 '12 at 11:21
    
@AshBurlaczenko, maybe that's what I was getting wrong. Is the first "operator" always associated with the type and the second always associated to the var? If I declare int&*x would that be int& *x? –  Jefffrey Feb 18 '12 at 11:24
    
Also, you should note that in your example there is no point it the prototype declaration. A prototype is only need if the function is defined after it's first use. –  Ash Burlaczenko Feb 18 '12 at 11:25
    
@AshBurlaczenko, XCode was giving me a notice error for that. Then in the prototype I should define int& f(int*);? EDIT: No I tried it, it doesn't work like that. :( I think I'm more confused now... –  Jefffrey Feb 18 '12 at 11:26
    
Ok, maybe I was wrong. Thats what I've always thought though. –  Ash Burlaczenko Feb 18 '12 at 11:29
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6 Answers

up vote 3 down vote accepted

With int* &x you are passing the same pointer(by reference). Otherwise with only int* x you are passing a copy of the pointer and then you can't change the original one in the function. &x makes x an alias of the original parameter.

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Oh so the & isn't related to the type? It's int* &x and not int*& x? –  Jefffrey Feb 18 '12 at 11:21
    
You can write it both ways. The role of the & here is to make an alias of the parameter. You are working with the same thing, just with a different name. –  Petar Minchev Feb 18 '12 at 11:23
    
And yes, it is more logical to write int* &x, than int*& x. Because with the & you are making an alias of the passed parameter, not of the type. –  Petar Minchev Feb 18 '12 at 11:25
    
@Jeff Pigarelli - Imagine a swap function. An easy way to write it is this: void swap(int &x, int &y) { int t = x; x = y; y = t; } The essential thing here is that the & makes it that you are working with the original variables. –  Petar Minchev Feb 18 '12 at 11:27
    
There is no difference whatsoever between int*&x, int*& x, int* &x, int *&x, int* & x, int *& x, int * &x and int * & x. –  FredOverflow Feb 18 '12 at 11:30
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f(int*& x) is not the same as f(int x). In the first case x is a reference to an integer pointer whereas in the second case x is just an integer.

Lets start from the basics:

When you write f(int &x) means that x is a reference to an integer and you can change the value of x in the function and the change will be reflected in the calling function.

Similarly, when you write f(int*& x), it means that x is reference to an integer pointer and when you change the address that x points to, the change will also be reflected in the calling function.

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What's the type of X? –  Jefffrey Feb 18 '12 at 11:33
    
@JeffPigarelli See the update! –  Pulkit Goyal Feb 18 '12 at 11:39
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It's a reference to a pointer to an int. The function is then able to change the pointer if it wants to. In your example it doesn't make sense, but it obviously does have a use.

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nope: *& here doesn't mean "dereference addressof". It means: "pass a pointer byref".

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int& f(int*& x) {
    *x = 5;            // note: changes the pointee, not the pointer
    return *x;
}

In this example, you don't gain anything by passing the pointer by reference, since you're not changing the pointer. Passing a pointer by reference is only needed when you intend to change the pointer:

void f(int*& x) {
    x = new int(42);   // note: changes the pointer
}
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I think you are confusing sybols when they are used as operators or declarators.

If you use * when declaring variable, that means veriable is a pointer. When you use * as operator, that is dereference operator.

int *& name

simply means you are taking pointer to int by reference. **The * and & do not cancel each other out.**

If you had line of code like this:

var = *& var2;

then yes, it would be same as:

var = var2;
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no, it isn't. Byref and pointer passing is not the same. –  user529758 Feb 18 '12 at 11:17
    
References are not identical to pointers. They are conceptually related, but there are several important differences. –  delnan Feb 18 '12 at 11:18
    
It's not exactly the same; it can be used similarly to int**; but int ** requires that the extra level of indirection is dealt with explicitly: so in the example above, the caller would have to pass f(&z) instead of f(z), and the assignment in the body would be **x=5, not *x=5. –  BrendanMcK Feb 18 '12 at 11:20
1  
Sorry, that was just a quick answer. –  Rok Kralj Feb 18 '12 at 11:22
1  
It's OK, downvote removed. –  user529758 Feb 18 '12 at 11:23
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