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

void init(ListNode **head){
    (*head) = (ListNode *)malloc(sizeof(ListNode));
    (*head)->next = 0;

ListNode* another_init(){
    ListNode *head = (ListNode *)malloc(sizeof(ListNode));
    return head;

I have some problems: function init,why should I put a second rank pointer ?

2.Is function init the same with another_init ?

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Well, for a start, another_init misses out assigning 0 to next. – T.J. Crowder Aug 7 '13 at 11:35
possible duplicate of Passing arrays, pointers to int in C – user529758 Aug 7 '13 at 11:36
This: ^^ because in C, arguments are passed by value ("copied"). – user529758 Aug 7 '13 at 11:37

2 Answers 2

another_init is not "the same as" init. It doesn't set the next-pointer to 0. From malloc(3): malloc() allocates size bytes and returns a pointer to the allocated memory. The memory is not cleared.

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2.Is function init the same with another_init ?

In case you use malloc they are not equal If you use calloc ,they will be equal. function init,why should I put a second rank pointer ?

If you insist on malloc . You should set the next to 0 .

Or you will face bugs sometime. Thinks this:

Maybe you have a print_link function:

void print_link(struct node * head)
    node * now = head;
    while(now != NULL)
        now = now->next;

And if you just call this function after use the second init function. You never know what will happened.

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