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I have two lists (ArrayList) in java .

The values of list1 = [1,2,3]

the values of list2 = [2,3,4]

The program's output should say '1' is missing and '4' is a new element . How do we go about doing that ?

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1  
See this for reference: stackoverflow.com/questions/23445/… –  timbooo May 4 '11 at 5:04
    
If your arrays are known to be sorted, you can do a single pass solution... so please give additional details if you are looking for something faster/more efficient than copying into a Set. –  Dilum Ranatunga May 4 '11 at 5:36
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3 Answers 3

up vote 5 down vote accepted

Just use Sets and the removeAll method,

Set missing = new HashSet(list1);
missing.removeAll(list2);
System.out.println("missing:" + missing);

Set extra = new HashSet(list2);
extra.removeAll(list1);
System.out.println("extra:" + extra);
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Kind of, but removeAll() returns a boolean not another Set, and your parens are mismatched –  Simon Nickerson May 4 '11 at 5:20
    
thanks,your a human compiler –  sbridges May 4 '11 at 5:27
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I believe we can pick first element and iterate through the 2nd list and check if the element is available if its there in the second list skip and pick next element of the first list. And repeat for the extra element logic too. Just i am worried about complexity! If we want to use collections then it might be even easier. But I think using plane arrays might be better!

This should help:

 for (int i = 0; i < list1.size(); i++) {
      if (list2.contains(list1.get(i))) 
     return;
      else
    S.o.p("missing:"+list1.get(i));
      }
 for (int j=0; j<list2.size();j++){
      if (list1.contains(list2.get(j))) 
     return;
      else
    S.o.p("new element:"+list1.get(j));

    } 
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Why the return? You need to carry on looping until you've exhausted the list. Plus this is an O(n^2) algorithm, which is fine for small lists but will quickly exhaust your patience if the lists are large. –  Simon Nickerson May 4 '11 at 5:22
    
yes complexity is an issue. –  java_enthu May 6 '11 at 6:23
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  import java.util.*;      

  class Demo{      
     public static void main(String ...args){      
         List list1 = new ArrayList();       
         List list2 = new ArrayList();      

         list1.add(new Integer("1"));     
         list1.add(new Integer("2"));      
         list1.add(new Integer("3"));           

         list2.add(new Integer("2"));      
         list2.add(new Integer("3"));     
         list2.add(new Integer("4"));     

         for(int i = 0; i < list1.size(); i++) {      
            if (list2.contains(list1.get(i)))                      
                continue;      
            else     System.out.println("missing:"+list1.get(i));       
         }     
         for(int j=0; j<list2.size();j++){     
            if (list1.contains(list2.get(j)))                  
                 continue;     
            else     System.out.println("new element:"+list2.get(j));              
         }        
  }      

}

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