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I'm attempting to use linked lists as a way to buildup my knowledge of pointers in C. So, I wrote a small example but when I compile it I'm getting an error I can't seem to figure out:

In function 'append_node': 
error: request for member ‘next’ in something not a structure or union

What's the proper way to access (or pass) a structure by reference?

#include <stdio.h>
#include <stdlib.h>

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

static int append_node(int val, struct node **head) {
  struct node *new_node;

  new_node = (struct node *) malloc(sizeof(struct node));
  new_node->val  = val;
  new_node->next = NULL

  *(head)->next = new;

  return 0;
}

int main() {
  int i;
  struct node *head;
  struct node *curr;

  head = NULL;
  curr = (struct node *) malloc(sizeof(struct node));

  for(i = 1; i <= 10; i++) {
      append_node(i, &curr);
      head = curr;
  }

  curr = head;
  while(curr) {
      printf("%d\n", curr->val);
      curr = curr->next ;
  }

  return 0;
}

Any help would be great!

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to all who replied so far: 1) the pointer to the new node is called new_node and not new. 2) by assigning the new node to (*head)->next, the rest of the list will be culled (and leaked): the idea is to have the new node become the new head, that's why the argument to the function is double pointer to the node –  Rom Jun 30 '11 at 3:57
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3 Answers

up vote 3 down vote accepted

Can I assume you're getting the error on this line?

  *(head)->next = new;

I think you need to make one trivial change:

  (*head)->next = new;

Since head is a pointer to a pointer, when you dereference it you get a pointer. The ->next operates on that pointer.

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Two problems:

There is a missing ; at the end of

new->next = NULL

and change

*(head)->next = new;

to

(*head)->next = new;
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Try this instead:

(*head)->next = new_node;

Turn **head to *head and then call members on it.

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