Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

My approach:

An array of fixed-length (lets say 20) each element is pointer to the first node of a linked list. so i have 20 different linked list.

This is the structure:

struct node{
       char data[16];
       struct node *next;
};

My declaration for that array

struct node *nodesArr[20];

now to add a new node to one of the linked list, i do this:

struct node *temp;

temp = nodesArr[i]; // i is declared and its less than 20
addNode(temp,word); // word is declared (char *word) and has a value ("hello")

The addNode function:

void addNode(struct node *q, char *d){
    if(q == NULL)
        q = malloc(sizeof(struct node));
    else{
        while(q->next != NULL)
            q = q->next;

        q->next = malloc(sizeof(struct node));
        q = q->next;
    }

    q->data = d; // this must done using strncpy
    q->next = NULL; 
}

and to print data from the array of linked list, i do this:

void print(){
    int i;
    struct node *temp;

    for(i=0 ; i < 20; i++){
        temp = nodesArr[i];
        while(temp != NULL){
            printf("%s\n",temp->data);
            temp = temp->next;
        }
    }
}

now compiler gives no error, the program run and i pass the data to it, and when i call print it doesn't print any thing,,??

UPDATE::

after I edited the code (thx for you), i think the problem in the print function,, any idea ?

share|improve this question
1  
Have you tried stepping it through a debugger, or adding useful printf statements? –  Oli Charlesworth Feb 9 '11 at 0:13
    
yeah i tried,, but i got nothing –  Rami Jarrar Feb 9 '11 at 0:17
    
You got nothing? So you couldn't, for instance, discover at what point all the elements of nodesArr became NULL? –  Oli Charlesworth Feb 9 '11 at 0:19

3 Answers 3

up vote 5 down vote accepted

The problem lies in addNode(). When the list is empty you do:

q = malloc(sizeof(struct node));

but the scope of q is limited to addNode(). You should have declared addNode() as

void addNode(struct node **q, char *d)

and adjust your code accordingly:

*q = malloc(sizeof(struct node));

and so on...

share|improve this answer
    
so that q = q->next , should be like this, *q = *q->next, or(*q)->next ?? –  Rami Jarrar Feb 9 '11 at 0:24
    
If it makes it any easier, once you have allocated, you can assign the pointed-to address to a single pointer and keep the rest of the code more or less like you have it now. struct node* sp; and then later sp = *q –  Jacobo de Vera Feb 9 '11 at 0:28
    
@Rami Jarrar: You have to use *q = (*q)->next. The C gurus will tell you that -> has a higher precedence than the dereference operator. The rest of us just use a pair of parentheses and don't bother thinking about it any more. –  thkala Feb 9 '11 at 0:47
    
can you look at my update :) –  Rami Jarrar Feb 9 '11 at 0:52
    
@Rami Jarrar: no, you need to use addNode(&(nodesArr[i]), word);. In your current version you are only modifying temp and not the place where it got its value. –  thkala Feb 9 '11 at 1:00

When you pass struct node *q to addNode you are giving it an address for an element in your array. If you use malloc inside, then you are overwriting this variable q, which is local to the function and now points to something different, but you haven't changed your original array. Try using a pointer to pointer to node (struct node **q).

share|improve this answer
void addNode(struct node *q, char *d){
    if(q == NULL)
        q = malloc(sizeof(struct node));

Here's the problem.

The new value of q doesn't ever get out of the function, so your array of linked lists never gets updated.

Normally the solution here is to use a double-pointer:

void addNode(struct node **q, char *d){
    if(*q == NULL)
        *q = malloc(sizeof(struct node));

And call it like so:

addNode(&nodesArr[i],word);

Then, if you malloc a new node, the value in the array will be set to point to the new node.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.