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I've been wondering:

struct node
{
    int data;
    struct node *next;
}*head;

I believe the *head variable is the first pointer of linked list, but why is it written outside of structure brackets? Why I need to write it outside of whole structure? Could anyone answer, because I'm abit lost in whole linked list thing. And why do we need to declare *next pointer with "struct node" if it is already in whole "node" structure?

  • You define a struct and a variable head. That is the syntax. – 2501 Dec 9 '14 at 12:31
  • could I just write a new line int *head; instead? – Rimantas Radžiūnas Dec 9 '14 at 12:33
  • Sure, you can do: struct node { int data; struct node *next; } ; struct node* head; Which is matching your code. – 2501 Dec 9 '14 at 12:34
  • *head after the struct means declaring a struct node * with identifier head. It's the same as saying struct node *head;. – bzeaman Dec 9 '14 at 12:34
  • Alright, got it. And what about struct node *next;? Why do I need to declare *next with a struct node if the pointer is already in the structure? – Rimantas Radžiūnas Dec 9 '14 at 12:37
5

head is just a pointer of type struct node*. An equivalent declaration is:

struct node
{
    int data;
    struct node *next;
};
struct node *head;

Note that even if you don't declare any variable of the type of the structure you're defining, you must put a semicolon after the closing curly brace.

The origin of this syntax is that the struct is a data type and the way you declare variables is by specifying their data type and their name. Indeed, you can do this:

struct {int a, b;} *variable;

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