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while studying linked list in c,i came across 2 different implementations of the head node. say if the following is the structure used:

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

then the first implementation is where the head node is just a dummy node with no actual data in it, but just a link to another node(the first actual node with data) like this:

struct node *head;
head->next = NULL;  //head->next would then be linked to the first node.

the second implementaton is the one where the head node is the first actual node with data in it which is stored using malloc command to allocate space to it.

my question is, how can we use the "head->next" in the first implementation where we havent allocated space for head using malloc at all? because as far as i know(correct me if am wrong), the two fields of the node can only be used once space has been allocated to that node.

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Show more source code. Your question is confusing. And what is the relation to node.js ? –  Basile Starynkevitch Jan 27 '14 at 6:57

3 Answers 3

Malloc is only required when dynamically allocating memory. If you write something like struct node head inside of a method, the head node will be allocated on the stack, and will live (and die) there. Thus, you could write data to this node, but it will die once the method finishes.

Or, you could define the head globally, in which case it will be statically allocated and will live forever until the program exits. Malloc is only required when you want to create a piece of memory which will live on after the function has exited. It is only cleared when you call free on the pointer.

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This is incorrect. You can write struct node *head anywhere you like and it still won't allocate a head node, it will allocate a pointer, not a node. On the other hand, if you write struct node head, then it will allocate a node using automatic storage. ("On the stack".) –  This isn't my real name Feb 16 '14 at 7:57
    
You're right, that's what I had meant but I guess I had a brain fart and made it a pointer. Fixed. –  George Feb 21 '14 at 18:25

You are missing a C dynamic memory allocation:

struct node *head = malloc(sizeof (struct node));
if (!head) { perror("malloc node"); exit(EXIT_FAILURE); };
head->next = NULL;
// initialize other fields of head

Don't forget to initialize all the fields of head ! Read malloc(3)

You could have a global variable  full_list containing the first pointer, e.g.

if (!full_list)
   full_list = head;

See also this... Read linked list wikipage.

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You are right, If you haven't initialize the head, then head will not point to next node so you have to initialize it that is why second implementation is used unanimously. If you are using first method, still you need to initialize it and if you are initializing it why now use its data variable too.

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