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I need to merge two lists of strings in java and I'm not too sure on the best way to do it. I have to use iterators and the compareTo() method. For example...

Example: L1: A,B,C,D L2: B,D,F,G result: A,B,B,C,D,D,F,G

I can assume the input lists are already sorted and i cant use the contains() method. I have some initial checks but the while loop is what im stuck on.

public static ListADT<String> merge(ListADT<String> L1,ListADT<String> L2) throws BadListException {
ListADT<String> L3 = new ArrayList<String>;
if(L1 == null || L2 == null) {
    throw new BadListException();
}
Iterator<String> itr1 = new L1.iterator();
Iterator<String> itr2 = new L2.iterator();  
if(L1.size() == 0 && L2.size() == 0) {
    return L3;
}
if(L1.size() == 0 && L2.size() != 0) {
    for(int i = 0; i < L2.size(); i++) {
        return L3.add(L2.get(i));
    }
}
if(L2.size() == 0 && L1.size() != 0) {
    for(int i = 0; i < L1.size(); i++) {
        return L3.add(L1.get(i));
    }
}
while(itr1.hasNext() || irt2.hasNext()) {
    //merge the lists here?
}

}

Any help would be appreciated.

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3 Answers 3

Here's some pseudocode for the basic algorithm:

while(itr1 && itr2)
{
     if(itr1 value < it2 value)
         add itr1 to list
         increment itr1

     else
         add itr2 to list
         increment itr2
}

check if itr1 or itr2 still have more elements
while itr1 or itr2 has more elements, add those elements to the list

We know that the lists are sorted, so at each stage, we simply grab the smallest element from each list and add it to the merged list. If, at the end, one of the iterators is exhausted and the other is not, then we can simply iterate through the one which still has elements, appending each element in turn to the merged list.

As you've seen, doing this with Iterators in Java is a bit of a pain as next() removes the element. One way of getting around this is to utilize two Queues, one for each Iterator, that store the values from the call to next(). You then need to compare the head of each queue, adding the minimum to the merged list and then removing it from its respective Queue.

share|improve this answer
    
I think you're unnecessarily complicating the problem by introducing another data structure. All you need are variables to hold the current value from each list. See my answer: stackoverflow.com/a/14805301/44737 –  rob Feb 11 '13 at 3:29

It's fairly straightforward if you just use variables to hold the current value from each iterator. This solution assumes your lists do not contain null, but it would not be difficult to add null-handling since the lists are sorted.

package com.example;

import java.util.ArrayList;
import java.util.Arrays;
import java.util.Iterator;
import java.util.List;

public class IteratorMerge {

    /**
     * @param args
     */
    public static void main(String[] args) {
        List<String> list1 = Arrays.asList(new String[]{"A", "B", "C", "D"});
        List<String> list2 = Arrays.asList(new String[]{"B", "D", "F", "G"});

        System.out.println(merge(list1, list2));
    }

    public static List<String> merge(List<String> L1,List<String> L2) {
        List<String> L3 = new ArrayList<String>();

        Iterator<String> it1 = L1.iterator();
        Iterator<String> it2 = L2.iterator();

        String s1 = it1.hasNext() ? it1.next() : null;
        String s2 = it2.hasNext() ? it2.next() : null;
        while (s1 != null && s2 != null) {
            if (s1.compareTo(s2) < 0) { // s1 comes before s2
                L3.add(s1);
                s1 = it1.hasNext() ? it1.next() : null;
            }
            else { // s1 and s2 are equal, or s2 comes before s1
                L3.add(s2);
                s2 = it2.hasNext() ? it2.next() : null;
            }
        }

        // There is still at least one element from one of the lists which has not been added
        if (s1 != null) {
            L3.add(s1);
            while (it1.hasNext()) {
                L3.add(it1.next());
            }
        }
        else if (s2 != null) {
            L3.add(s2);
            while (it2.hasNext()) {
                L3.add(it2.next());
            }
        }

        return L3;
    }
}
share|improve this answer

Don't try to manage merging of an empty list with a non empty one as a special case, just loop until at least one of the iterators is valid and do your work directly there:

public static ListADT<String> merge(ListADT<String> L1,ListADT<String> L2) throws BadListException {
  ListADT<String> L3 = new ArrayList<String>;

  Iterator<String> itr1 = new L1.iterator(), itr2 = new L2.iterator();

  while (itr1.hasNext() || itr2.hasNext()) {
    if (!itr1.hasNext())
      L3.add(itr2.next());
    else if (!itr2.hasNext())
      L3.add(itr1.next());
    else {
      String s1 = peek from itr1
      String s2 = peek from itr2;

      if (s1.compareTo(s2) < 0) {
        L3.add(itr1.next());
        L3.add(itr2.next());
      }
      else {
        L3.add(itr2.next());
        L3.add(itr1.next())
      }
    }
  }
}
share|improve this answer
    
This is incorrect: L3.add(s1); L3.add(s2); the next item in the L1 could be less than s2, yet you have already added s2 to the output! The merging loop needs to advance only one, not both iterators, per loop iteration. Consider merging {1,2} and {3}. Your algorithm will produce {1, 3, 2}, because it would add 1 and then 3 in the same iteration, before getting a chance to look at 2. –  dasblinkenlight Feb 11 '13 at 2:02
    
Yes, wrote by impulse without noticing. Actually a Iterator<E> has no way to fetch an element without advancing the iterator IIRC. This completely defeats the purpose of using an iterator though. –  Jack Feb 11 '13 at 2:04
    
my next question is how do i get the next value without advancing the iterator so i can compareTo() the other value from the other list. –  user1874239 Feb 11 '13 at 2:25
    
@user1874239 See my answer for an idea as to how you can do this with Iterators in Java. –  Yuushi Feb 11 '13 at 2:33
    
You simply can't. JDK iterators are unfortunately limited. A solution would be to use for example a PeekingIterator from Guava library which is able to do it. Take a look here: docs.guava-libraries.googlecode.com/git/javadoc/com/google/… –  Jack Feb 11 '13 at 2:34

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