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.

There are many posts with probably with same question but the problem says it has to be done by

 node* reverseList (node * lh)
                              {
                               if(lh==NULL)............ ;

                                else if (lh->next==NULL)...........;

                                else ...........;
                              } 

the three blanks must be filled the first two are simply

return NULL 

and

return lh 

repectively

one way could be just to go down and reverse the pointers but in that case how can i keep the tail intact even after backtracking? is it possible at all?

share|improve this question

3 Answers 3

up vote 3 down vote accepted

The trick to solving recursive problems is to pretend that you are done already. To solve this homework by yourself, you need to answer three questions:

  • How do you reverse an empty list? (i.e. a list with lh set to NULL)?
  • How do you reverse a list with only one item?
  • If someone could reverse all items on the list except the initial one for you, where do you add the first item from the initial list to the pre-reversed "tail" portion of the list?

You answered the first two already: NULL and lh are the right answers. Now think of the third one:

else {
    node *reversedTail = reverseList(lh->next);
    ...
}

At this point, reversedTail contains pre-reversed tail of your list. All you need to do is set lh->next to NULL, add it to the back of the list that you are holding, and return reversedTail. The final code looks like this:

else {
    node *reversedTail = reverseList(lh->next);
    node *p = reversedTail; 
    while (p->next) p = p->next;
    p->next = lh;
    lh->next = NULL;
    return reversedTail;
}
share|improve this answer
    
Real nice answer! Clear, complete, and gives the rationale. –  Pete Wilson Dec 12 '11 at 17:05
    
@PeteWilson Thanks! –  dasblinkenlight Dec 12 '11 at 17:13
    
this not actually a homework problem but a previous year's sem end test paper ..anyways do you mean to do something like this? tail = reverse(lh->next); lh->next = NULL; return tail; i am not getting what are we trying to do –  Aseem Dua Dec 12 '11 at 17:21
    
@AseemDua No, that code is not complete, because lh gets lost. You need to traverse the tail until you see an element with next set to NULL, and assign lh to that element's next. –  dasblinkenlight Dec 12 '11 at 17:25
    
thats what is said by reversing the pointers.. but when i back track the original tail gets lost.. how do i retain it? –  Aseem Dua Dec 12 '11 at 17:28

I think this answers it:

node *reverseList(node *lh)
{
    if (!lh) return NULL;
    else if (!lh->next) return lh;
    else {
        node *new_head = reverseList(lh->next);
        lh->next->next = lh;
        lh->next = NULL;
        return new_head;
    }
}

It returns the head of the reversed list, i.e. the tail of the original list.

head = reverse_list(head);
share|improve this answer

Below is an API which does the reversal of a Single linked list, this one of the best algo that i have seen:

void iterative_reverse() 
{ 

    mynode *p, *q, *r; 

    if(head == (mynode *)0) 
    { return; 
    } 

    p = head; 
    q = p->next; 
    p->next = (mynode *)0; 

    while (q != (mynode *)0) 
    { 
        r = q->next; 
        q->next = p; 
        p = q; 
        q = r; 
    } 
    head = p; 
 }
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.