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import java.util.*;
/*
 *  Remove duplicates from an unsorted linked list
 */
public class LinkedListNode {  
    public int data;  
    public LinkedListNode next;  

    public LinkedListNode(int data) {  
        this.data = data;    
    }  
}

public class Task {
    public static void deleteDups(LinkedListNode head){
      Hashtable<Integer, Boolean> table=new Hashtable<Integer, Boolean>();
      LinkedListNode previous=null;
      //nth node is not null
      while(head!=null){
        //have duplicate
            if(table.containsKey(head.data)){
                            //skip duplicate
                previous.next=head.next;
            }else{
            //put the element into hashtable
            table.put(head.data,true);
            //move to the next element
            previous=head;
            }
      //iterate
      head=head.next;
      }
   }
   public static void main (String args[]){
       LinkedList<Integer> list=new LinkedList<Integer>();
       list.addLast(1);
       list.addLast(2);
       list.addLast(3);
       list.addLast(3);
       list.addLast(3);
       list.addLast(4);
       list.addLast(4);
       System.out.println(list);
       LinkedListNode head=new LinkedListNode(list.getFirst());
       Task.deleteDups(head);
       System.out.println(list);
   }
}

The result: [1, 2, 3, 3, 3, 4, 4] [1, 2, 3, 3, 3, 4, 4] It seems it does not eliminate the duplicates. But I think the method is correct. Can anyone help me, why the method doesn't work? Thank you very much!

share|improve this question
    
stackoverflow.com/questions/9459557/… –  user2579943 Jul 14 '13 at 21:11
    
You are not at all returning the new list from the deleteDups method. –  Rohit Jain Jul 14 '13 at 21:11
5  
I suggest you use your debugger in your IDE to step through the code and understand it. If you don't know how to use it, it's never too late to learn. I would also not use Hashtable as it is a legacy class for the last 15 years or so. You should use a set like HashSet. –  Peter Lawrey Jul 14 '13 at 21:11
    
Your list is not connected. You're just adding nodes but your function will return right away because each element does not have a "next" pointer set –  Minh Nguyen Jul 14 '13 at 21:32

8 Answers 8

The first problem is that

LinkedListNode head=new LinkedListNode(list.getFirst());

does not actually initialize head with the contents of list. list.getFirst() simply returns the Integer 1, and head contains 1 as its only element. You would have to initialize head by looping through list in order to get all of the elements.

In addition, although

Task.deleteDups(head)

modifies head, this leaves list completely unchanged—there is no reason why the changes to head should propagate to list. Therefore, to check your method, you would have to loop down head and print out each element, rather than printing out list again.

share|improve this answer
  1. The solution you have provided does not modify the original list.
  2. To modify the original list and remove duplicates, we can iterate with two pointers. Current: which iterates through LinkedList, and runner which checks all subsequent nodes for duplicates.
  3. The code below runs in O(1) space but O(N square) time.

    public void deleteDups(LinkedListNode head){

    if(head == null)
        return;
    
    LinkedListNode currentNode = head;       
    while(currentNode!=null){
        LinkedListNode runner = currentNode;
        while(runner.next!=null){
            if(runner.next.data == currentNode.data)
                runner.next = runner.next.next;
            else
                runner = runner.next;
        }
        currentNode = currentNode.next;
    }
    

    }

Reference : Gayle laakmann mcdowell

share|improve this answer
    
Maxime : Care to upvote if you think the solution is correct ? :) –  Rambo7 Aug 24 '13 at 18:06
    
It is not the optimal solution, that's why is not the correct answer. –  Dídac Pérez Oct 20 '13 at 9:44
    
I never argued that my solution is optimal (already explained in the solution). Just because solution is not optimal doesn't mean solution is not correct. –  Rambo7 Oct 20 '13 at 21:18
    
This same solution is given in Cracking the coding interview –  Rushikesh Trivedi May 4 at 19:51

Ans is in C . first sorted link list sort() in nlog time and then deleted duplicate del_dip() .

node * partition(node *start)
{
    node *l1=start;
    node *temp1=NULL;
    node *temp2=NULL;
    if(start->next==NULL)
        return start;

    node * l2=f_b_split(start);
      if(l1->next!=NULL)
        temp1=partition(l1);
      if(l2->next!=NULL)
            temp2=partition(l2);

if(temp1==NULL || temp2==NULL)
    {
        if(temp1==NULL && temp2==NULL)
        temp1=s_m(l1,l2);

        else if(temp1==NULL)
        temp1=s_m(l1,temp2);

        else if(temp2==NULL)
        temp1=s_m(temp1,l2);
}
    else
            temp1=s_m(temp1,temp2);

    return temp1;
}

node * sort(node * start)
{
    node * temp=partition(start);
        return temp;
}

void del_dup(node * start)
{
  node * temp;
    start=sort(start);
    while(start!=NULL)
        {
        if(start->next!=NULL && start->data==start->next->data  )
            {
                temp=start->next;
                start->next=start->next->next;
                free(temp);
            continue;
            }
        start=start->next;
        }
}

void main()
 {
    del_dup(list1);
    print(list1);
} 
share|improve this answer

Iterate through the linked list, adding each element to a hash table. When we discover a duplicate element, we remove the element and continue iterating. We can do this all in one pass since we are using a linked list.

The following solution takes O(n) time, n is the number of element in the linked list.

public static void deleteDups (LinkedListNode n){
  Hashtable table = new Hashtable();
  LinkedListNode previous = null;
  while(n!=null){
      if(table.containsKey(n.data)){
          previous.next = n.next;
      } else {
          table.put(n.data, true);
          previous = n;
      }
      n = n.next;
  }
}
share|improve this answer
1  
Why did you use HashMap instead of HashSet? The value of the key is unnecessary here. Though HashSet is backed by HashMap but it makes no sense to use which is not required by the design. –  Himanshu Jul 13 at 3:50

Here's two ways of doing this in java. the method used above works in O(n) but requires additional space. Where as the second version runs in O(n^2) but requires no additional space.

import java.util.Hashtable;

public class LinkedList {
LinkedListNode head;

public static void main(String args[]){
    LinkedList list = new LinkedList();
    list.addNode(1);
    list.addNode(1);
    list.addNode(1);
    list.addNode(2);
    list.addNode(3);
    list.addNode(2);

    list.print();
    list.deleteDupsNoStorage(list.head);
    System.out.println();
    list.print();
}

public void print(){
    LinkedListNode n = head;
    while(n!=null){
        System.out.print(n.data +" ");
        n = n.next;
    }
}

public void deleteDups(LinkedListNode n){
    Hashtable<Integer, Boolean> table = new Hashtable<Integer, Boolean>();
    LinkedListNode prev = null;

    while(n !=null){
        if(table.containsKey(new Integer(n.data))){
            prev.next = n.next;     //skip the previously stored references next node
        }else{
            table.put(new Integer(n.data) , true);
            prev = n;       //stores a reference to n
        }

        n = n.next;
    }
}

public void deleteDupsNoStorage(LinkedListNode n){
    LinkedListNode current = n;

    while(current!=null){
        LinkedListNode runner = current;
        while(runner.next!=null){
            if(runner.next.data == current.data){
                runner.next = runner.next.next;
            }else{
                runner = runner.next;
            }
        }
        current = current.next;
    }

}

public void addNode(int d){
    LinkedListNode n = new LinkedListNode(d);
    if(this.head==null){
        this.head = n;
    }else{
        n.next = head;
        head = n;
    }
}

private class LinkedListNode{
    LinkedListNode next;
    int data;

    public LinkedListNode(int d){
        this.data = d;
    }
}
}
share|improve this answer

Try this it is working for delete the duplicate elements from your linkedList

package com.loknath.lab;

import java.util.ArrayList;
import java.util.HashSet;
import java.util.LinkedList;
import java.util.Set;

public class Task {
    public static void main(String[] args) {

        LinkedList<Integer> list = new LinkedList<Integer>();
        list.addLast(1);
        list.addLast(2);
        list.addLast(3);
        list.addLast(3);
        list.addLast(3);
        list.addLast(4);
        list.addLast(4);
        deleteDups(list);
        System.out.println(list);
    }

    public static void deleteDups(LinkedList<Integer> list) {
        Set s = new HashSet<Integer>();
        s.addAll(list);
        list.clear();
        list.addAll(s);

    }
}
share|improve this answer

Try This.Its working. // Removing Duplicates in Linked List

import java.io.*;
import java.util.*;
import java.text.*;
class LinkedListNode{
    int data;
    LinkedListNode next=null;

    public LinkedListNode(int d){
        data=d;
    }
    void appendToTail(int d){
        LinkedListNode newnode = new LinkedListNode(d);
        LinkedListNode n=this;
        while(n.next!=null){
            n=n.next;
        }
        n.next=newnode;
    }

    void print(){
        LinkedListNode n=this;
        System.out.print("Linked List: ");
        while(n.next!=null){
            System.out.print(n.data+" -> ");
            n=n.next;
        }
        System.out.println(n.data);
    }
}
class LinkedList2_0
{
    public static void deletenode2(LinkedListNode head,int d){
        LinkedListNode n=head;
        // If It's head node
        if(n.data==d){
            head=n.next;
        }
        //If its other
        while(n.next!=null){
            if(n.next.data==d){
                n.next=n.next.next;
            }
            n=n.next;
        }
    }

    public static void removeDuplicateWithBuffer(LinkedListNode head){
        LinkedListNode n=head;
        LinkedListNode prev=null;
        Hashtable<Integer, Boolean> table = new Hashtable<Integer, Boolean>();
        while(n!=null){
            if(table.containsKey(n.data)){
                prev.next=n.next;
            }
            else{
                table.put(n.data,true);
                prev=n;
            }
            n=n.next;
        }
    }
    public static void removeDuplicateWithoutBuffer(LinkedListNode head){
        LinkedListNode currentNode=head;
        while(currentNode!=null){
            LinkedListNode runner=currentNode;
            while(runner.next!=null){
                if(runner.next.data==currentNode.data){
                    runner.next=runner.next.next;
                }
                else
                    runner=runner.next;
            }
            currentNode=currentNode.next;
        }
    }
    public static void main(String[] args) throws java.lang.Exception {
        LinkedListNode head=new LinkedListNode(1);
        head.appendToTail(1);
        head.appendToTail(3);
        head.appendToTail(2);
        head.appendToTail(3);
        head.appendToTail(4);
        head.appendToTail(5);
        head.print();

        System.out.print("After Delete: ");
        deletenode2(head,4);
        head.print();

        //System.out.print("After Removing Duplicates(with buffer): ");
        //removeDuplicateWithBuffer(head);
        //head.print();

        System.out.print("After Removing Duplicates(Without buffer): ");
        removeDuplicateWithoutBuffer(head);
        head.print();

    }
}
share|improve this answer

here are a couple other solutions (slightly different from Cracking coding inerview, easier to read IMO).

public void deleteDupes(Node head) {

Node current = head;
while (current != null) {
    Node next = current.next;
    while (next != null) {
        if (current.data == next.data) {
            current.next = next.next;
            break;
        }

        next = next.next;
    }

    current = current.next;
}

}

public void deleteDupes(Node head) {
Node current = head;
while (current != null) {
    Node next = current.next;
    while (next != null) {
        if (current.data == next.data) {
            current.next = next.next;
            current = current.next;
            next = current.next;
        } else {
            next = next.next;
        }
    }

    current = current.next;
}

}

share|improve this answer

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