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Difference between pointer to a reference and reference to a pointer

I am newbie in C++ and I work on a pretty complicated project. When I tried to figure out something, I saw one interesting thing:

n->insertmeSort((Node *&)first);

When we deep into insertmeSort, we can see the same:

    void Node::insertme(Node *&to)
{
   if(!to) {
      to=this;
      return;
   }
   insertme(value>to->value ? to->right : to->left);
}

So the reason of my question is: Node *& - asterisk and ampersand, for what?

It looks pretty tricky, and interesting to me.

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marked as duplicate by AndreyT, WhozCraig, Mooing Duck, Fraser, evilone Nov 30 '12 at 5:47

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

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3 Answers 3

up vote 1 down vote accepted

It a reference to a pointer. Like any regular reference, but the underlying type is a pointer.

Prior to references pointer-by-reference had to be done with double-pointers (and some C-minded folk still do, I occasionally being one of them).

Lest there be any doubt, try this to really sink it in:

#include <iostream>
#include <cstdlib>

void foo (int *& p)
{
    std::cout << "&p: " << &p << std::endl;
}

int main(int argc, char *argv[])
{
    int *q = NULL;
    std::cout << "&q: " << &q << std::endl;
    foo(q);

    return EXIT_SUCCESS;
}

Output (your values will be different , but &p == &q)

&q: 0x7fff5fbff878
&p: 0x7fff5fbff878

It is hopefully pretty clear that p in foo() is indeed a reference to pointer q in main().

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This isn't a trick, it is simply the type -- "reference to pointer to Node".

n->insertmeSort((Node *&)first); calls insertmeSort with the result of casting first to a Node*&.

void Node::insertme(Node *&to) declares insertme as taking a reference to a pointer to a Node as an argument.

Example of how references and pointers work:

int main() {
    //Initialise `a` and `b` to 0
    int a{};
    int b{};
    int* pointer{&a}; //Initialise `pointer` with the address of (&) `a`
    int& reference{a};//Make `reference` be a reference to `a`
    int*& reference_to_pointer{pointer_x}; 

    //Now `a`, `*pointer`, `reference` and `*reference_to_pointer`
    //can all be used to manipulate `a`.
    //All these do the same thing (assign 10 to `a`):
    a = 10;
    *pointer = 10;
    reference = 10;
    *reference_to_pointer = 10;

    //`pointer` can be rebound to point to a different thing. This can
    //be done directly, or through `reference_to_pointer`.
    //These lines both do the same thing (make `pointer` point to `b`):
    pointer = &b;
    reference_to_pointer = &b;

    //Now `b`, `*pointer` and `*reference_to_pointer` can
    //all be used to manipulate `b`.
    //All these do the same thing (assign 20 to `b`):
    b = 20;
    *pointer = 20;
    *reference_to_pointer = 20;
}
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Yes, just a reference type to a pointer type. –  Healer Nov 30 '12 at 4:33
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*& means you are passing a pointer by reference. So in this case you are passing a pointer to an object by reference to this function. without the reference, this line would have no effect

if(!to) {
  to=this;
  return;

}

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