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I am working on a solution to a very common Java problem involving Strings:

"Write a method to see if a string is a permutation (anagram) of the other." (By the way, I have already graduated, this is not a homework assignment, but I am just simply trying to come up with a solution that I believe should work ON MY OWN. THIS IS NOT HOMEWORK!).

My solution is this: I am writing a method that takes two Strings. I iterate through one String and put the characters that are found into a HashMap, where the key is the letter, and the value is the number of occurrences of that letter, as an int. Once I finish iterating through the first String, I iterate through the second String and decrement the values of each character found in the same HashMap. Once a key reaches zero, I remove the key/value pair altogether from the HashMap. Once I finish iterating through the second String, I then merely check to see if the HashMap is empty. If it is, then the two Strings are permutations/anagrams of one another, otherwise the method returns false.

My method is as follows:

public boolean checkPermutation (String stringA, String stringB) {

        if (stringA.length() != stringB.length()) {

            return false;

        }

        else {


        HashMap alpha = new HashMap();

        for (int i = 0; i < stringA.length(); i++) {

            if (!alpha.containsKey(stringA.charAt(i))) {

                alpha.put(stringA.charAt(i), 0);
            }

            else {

                Integer value = (Integer) alpha.get(stringA.charAt(i));
                int newValue = value.intValue();
                alpha.put(stringA.charAt(i), newValue++);

            }

        }

        for (int j = 0; j < stringB.length(); j++) {

            if (alpha.containsKey(stringB.charAt(j))) {

                Integer value = (Integer) alpha.get(stringA.charAt(j));
                int newValue = value.intValue();//null pointer exception here

                if (newValue > 1) {

                    alpha.put(stringB.charAt(j), newValue--);

                }

                else {

                    alpha.remove(stringB.charAt(j));

                }

            }

        }

        if (alpha.isEmpty())
            return true;

        else
            return false;


        }
    }

My problem is that my solution is case-sensitive (i.e. If I enter "Hello", and "oellH", I get a null pointer exception). I would like to make this solution case-insensitive (if that makes sense), and figure out why i am getting a Null-Pointer Exception. Can anyone see what I am doing wrong?

As a minor follow up question, is such a solution of type O(n) despite there being two for-loops? Just wondering.

Thanks in advance to all who reply.

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2 Answers 2

up vote 1 down vote accepted
Integer value = (Integer) alpha.get(stringA.charAt(j));

Try changing stringA to stringB.

Integer value = (Integer) alpha.get(stringB.charAt(j));

Because if you give different String which dont have same characters in it the value will be null and it will through NPE.

Change both string to lowercase or uppercase.

stringA= stringA.toLowercase();
stringB= stringB.toLowercase();
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1  
Thanks very much for pointing that, I really feel stupid now :-) Is there a way now for me to make this case-insensitive? –  syedfa Feb 18 '13 at 5:11
1  
Thanks again, your solution worked! –  syedfa Feb 18 '13 at 5:25
    
@syedfa You are welcome. You can upvote too. Thanks –  Achintya Jha Feb 18 '13 at 5:43

The null pointer exception is thrown because you are checking for char of stringB in hashmap and then extracting value of stringA there may chances when that particular value is removed from the hashmap at that time the null pointer error is thrown.

If you carefully debug your code in

if (alpha.containsKey(stringB.charAt(j))) {
    Integer value = (Integer) alpha.get(stringA.charAt(j));
 ///Your code
}

Change it to

if (alpha.containsKey(stringB.charAt(j))) {
    Integer value = (Integer) alpha.get(stringB.charAt(j));
///Your code
}

For your other question to make it case insensitive make both the string in lower case o upper case before beginning the operation

stringA = stringA.toLowerCase();
stringB = stringB.toLowerCase();
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