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I'm novice at C++, and I want to understand the difference between the examples below.

We can't create function

void someFunc(int &*a){
    int *b=new int; //just for example
    a=b;
}

but using typedef

typedef int* pint;

void someFunc(pint &a){
    int *b=new int; //just for example
    a=b;
}

everything is alright.

Is it just a compiler trick, or is the reason for such behavior more complicated?

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2  
Note that pint &a is int *& a, not int &* a. –  Griwes Apr 28 '12 at 11:55
1  
I was trained to read C declarations "inside-out"... start with the variable name, and read outwards. By that, int &*a reads as a pointer, to a reference, to int. Try int *&a? –  mjfgates Apr 28 '12 at 11:57
    
@mjfgates, thanks, now I'm understand where my mistake is :) –  Dmitry Zaitsev Apr 28 '12 at 11:59

2 Answers 2

up vote 10 down vote accepted

pint& a is equivalent to int*& a, not int&* a. You can't have a pointer-to-reference type in C++, but you can have a reference-to-pointer type.

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Thanks, now I'm understand it –  Dmitry Zaitsev Apr 28 '12 at 12:02

It's the order of the reference and pointer. In your first example it's

int &*a

Which is a pointer to a reference which is not allowed. In the second one it's

int *&a

Which is a reference to a pointer which is allowed.

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