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I'm trying to sort a linked-list. I have a Node called head and it's pointing to the next node, etc.

But when I try to sort the Nodes by the value they carry, I get the sort working because I see it printing out the stuff in the if-statement, but I'm not getting back the linked-list. Where did I go wrong?

Node* head;
void sortlist(){

Node * runner = head;
Node * runner2;

for(runner = head; runner->next != NULL; runner = runner->next){
    for(runner2 = runner->next; runner2->next != NULL; runner2 = runner2->next){
        if(runner->freq < runner2->freq){
            cout<< runner->freq<< " is LT "<<runner2->freq<< endl;
            Node * temp = runner;
            runner = runner2;
            runner2 = temp;
        }
    }
}

head = runner;
} 

I'm only getting back the first Node.

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head = runner;. I don't even need to go deep to know this is false. –  UmNyobe Mar 26 '13 at 15:54
    
The swapping seems to be working though, I think I'm just returning the wrong node, or maybe I lost the link? –  Adegoke A Mar 26 '13 at 15:55
1  
The swapping is not working. You need to be swapping runner->freq and runner2->freq, not the pointers themselves. Plus you need to get the algorithm right, even if you swapped the right things, this code would not sort. –  john Mar 26 '13 at 15:55
1  
You're not actually swapping anything other than your own pointers into the list. The list isn't being relinked, and you just point the head back at the last node after you're done. –  JasonD Mar 26 '13 at 15:56
1  
Welcome to SO! When dealing with pointers it is helpful to draw pictures to help you understand what is going on. From there, you can also use a debugger or cout statements to trace through your code to find out why it isn't doing what you want. –  Code-Apprentice Mar 26 '13 at 16:08

2 Answers 2

up vote 3 down vote accepted

In order to swap two elements in a linked list, consider what you need to change. For example, to get from

Head -> First -> Second -> (NULL)

to

Head -> Second -> First -> (NULL)

you need to update: Head.next, First.next and Second.next. You don't change any of those things when trying to swap nodes, so it can't possibly do what you expect.


Just swapping the values (ie, swap(runner->freq, runner2->freq)) would be much simpler.

share|improve this answer
    
yup swapping values is the way to go in most cases. –  UmNyobe Mar 26 '13 at 16:06
    
+1 for suggesting swapping values rather than messing with the pointers. –  Code-Apprentice Mar 26 '13 at 16:06
    
Swapping the values is certainly easier, but that can have performance implications if the linked-list contains large chunks of memory in its nodes, like a large struct for instance. –  2to1mux Mar 26 '13 at 16:37
    
That's true, and it's certainly worthwhile to learn how to swap nodes correctly - it just seemed like a long road from the problem statement. –  Useless Mar 26 '13 at 17:04

you will stop when runner->next == NULL;, which is supposed to be the last element. And then you set head = runner;, which means the head will always be the last element after this routine. Furthermore, I do not trust this swapping.

It seems you vaguely want to do an insertion sort. If you want to do a simple sorting on linked lists, I suggest you to use selection sort: You create another empty list l2, and each time you remove the minimum element from your first list, and add it as the head of l2. The code for the second list is simple:

void prepend(Node* node, Node** list){
   //null checks if you want
   node->next = *list;
   *list=node->next;
}
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