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I'm trying to append two structures into one Ex.

l1 = add(1, add(2, NULL));
l2 = add(3, add(4, NULL));
myappend(l1,l2) = add(1,add(2,add(3,add(4,NULL))))

I tried many other ways that I can think of... but it doesn't work... can anyone help me out?

struct list_node {
   struct list_node * rest;
   int first;
};

list add(int in, list l) {
   list r = malloc(sizeof(struct list_node));
   r->first = in;
   r->rest = l;
   return r;
}
// My attempted solution;
list myappend(list l1,list l2){
   list k = malloc(sizeof(struct list_node));
   k=l2;
   k=add(l1,k);
   return k;
}
share|improve this question
    
"doesn't work" -- more precisely? – user529758 Jul 27 '12 at 6:46
    
"I tried many other ways that I can think of" such as? – Alexey Frunze Jul 27 '12 at 6:50
    
I don't see a definition for "list". What is it? – wildplasser Jul 27 '12 at 9:29
up vote 0 down vote accepted

I guess the type list is struct list_node *. If you can define a type for list, you can define a type for list with a last point to the last node of the list, example:

struct list {
    struct list_node *first;
    struct list_node *last;
}
void myappend(struct list *l1,struct list *l2){
   // check the argument here when needed.

   l1->last->rest = l2->first;
   l1->last = l2->last;
   free(l2);
}

If you want to keep the type list as struct list_node *, you should 1) Ensure the last node(of a list)'s rest is NULL. 2) Loop and find the last node of the fist list and do the merge(just link them).

You can also use recursion code:

list __add(struct list_node *first_node, list rest) { // split your list_add()
   first_node->rest = rest;
   return first_node
}
list add(int in, list l) {
   list r = malloc(sizeof(struct list_node));
   r->rest = NULL;
   r->first = in;
   return __add(r, l);
}
list myappend(list l1,list l2){
   if (l1)
       return __add(l1, myappend(l1->rest, l2));
   else
       return l2;
}
share|improve this answer
1  
Note: Don't use identifiers with leading underscores. They are reserved. – wildplasser Jul 27 '12 at 7:46
list myappend(list l1,list l2){ 
   list k = l1;
   while (k->rest != NULL)
   {
     k = k->rest;
   }
   k->rest = l2;
   return l1; 
}

Should work for you.

share|improve this answer
    
ah thank you!! just wondering is there more efficient way? – user1516649 Jul 27 '12 at 6:51
    
@user1516649 Without changing the data structure, I'm afraid, there isn't. – Alexey Frunze Jul 27 '12 at 6:51

Your solutions suffers of a number of problems.

Here you create a pointer to a list_node (that you call list)...

list k = malloc(sizeof(struct list_node));

... and then you throw that node away by overwriting that pointer with l2!

k=l2;

Here you pass l1 (a list) instead of an int, as a first argument.

k=add(l1,k);
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