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How can I write equivalent to this in pascal?

void push(struct node **head, struct node **member)
{
  (*head)->next = *member;
  (*member)->prev = *head;
  (*member)->next = NULL;
  *head = *member;
}

I've tried something like this:

procedure Push(head : nodeptr; prev : nodeptr; sym : nodeptr);
begin
    prev^.prev := sym;
    sym^.prev := prev;
    sym^.next := nil;
    prev := sym;
end;

In fact, I want to know how to do equivalent to this in pascal: *head = *member; where both are of struct node** type, 2D-pointer.

EDIT: I've added my pascal compiler. It might be relevant.

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2 Answers 2

up vote 2 down vote accepted

From this tutorial on pascal pointer to pointer, you could do something like this

program exPointertoPointers;
type
  iptr = ^integer;
  pointerptr = ^ iptr;
var
  num: integer;
  ptr: iptr;
  pptr: pointerptr;
  x, y : ^word;
begin
  num := 3000;
  (* take the address of var *)
  ptr := @num;
  (* take the address of ptr using address of operator @ *)
  pptr := @ptr;
  (* let us see the value and the adresses *)
  x:= addr(ptr);
  y := addr(pptr);
  writeln('Value of num = ', num );
  writeln('Value available at ptr^ = ', ptr^ );
  writeln('Value available at pptr^^ = ', pptr^^);
  writeln('Address at ptr = ', x^); 
  writeln('Address at pptr = ', y^);
end.
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How do I assign a x of pointer to record type to a y pointer-to-pointer to recored type? I tried x^.m := y^; in C it's x->m = *y where it's declared as struct node *x, **y; –  The Mask Dec 20 '13 at 19:03
    
I think you're looking for x^.m := @y; –  Elliott Frisch Dec 20 '13 at 19:05
    
I forget to mentioned I've tried this too. I got got "nodeptr" expected "node" –  The Mask Dec 20 '13 at 19:07
    
where is m define? Make sure it's of type ^ptr. –  Elliott Frisch Dec 20 '13 at 19:20
    
m is a member of record of ^ptr1 type that's a pointer to recored itself: type ptr1 = ^foo; ptr2 = ^ptr1; foo = record m : ptr1;. In this case: x^.m := y^; x is ptr1 and y of ptr2. –  The Mask Dec 20 '13 at 19:25

I think you can do a pointer to a pointer like so:

type
   ptr = ^integer;
   ptr_ptr = ^ ptr;

And then deference it like so:

ptr_ptr ^^

Therefore *head = *member; should probably look like head^^ := member^^.

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Thanks very much too –  The Mask Dec 20 '13 at 19:55

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