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struct ll {
    int num;
    struct ll *next;
};

struct ll *head;

main() {
    /* code to assign head pointer some memory */

    print(head->next);
}

I read that the print() function in above code moves the poiner to next item. How does this move the head pointer to next item?

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print() must look something like:

print(struct ll *foo) {
  // code
  head = head->next;
  // other code
}

Note that this is not good code in a variety of ways, but that's how it would move head to point to the next item.

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1  
head is undefined in your code? Perhaps you meant foo->head = foo->head->next; – dcousens Oct 22 '11 at 0:02
1  
@Daniel Actually, he probably meant foo = foo->next;. – Mateen Ulhaq Oct 22 '11 at 0:07
1  
@Daniel: head is defined as a global variable in the OP's code. – jwodder Oct 22 '11 at 0:07
    
@Danel i have declared head as pointer – user1005284 Oct 22 '11 at 0:21

Your head pointer is a global and you don't want to alter it while simply traversing the list. This will walk through the list and print each num field.

void print(struct ll *node) {
    while (node) {
        printf("%d\n", node->num);
        node = node->next;
    }
}

main() {
    /* code to assign head pointer some memory */
    print(head);
}
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