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I need to find a word in a string that is both the longest as well as even. A few examples:

The sentence Time to construct great art. This should return the string time because it is the greatest even length word, with the length being 4, it is not construct because construct is length 9 which is odd.

Also, in the example of Time to write great code. This should return the string Time, because it is even, and has a even length of 4. It will not return the word code because Time occurs first.

        String[] array = sentence.split(" ");
        String longestWord = " ";

        for (int i = 0; i < array.length; i ++) {
            if (array[i].length() >= longestWord.length()) {
                longestWord = array[i];
            }
        }

        System.out.println(longestWord);

My code successfully prints the longest word, however does not take into account whether the longest strings length is even and if it occurs first.

I have tried using some modulus characters in my for loop, but it is not tracking whether or not the greatest word is even, if not, move to next greatest word.

Also, I am having a hard time tracking if the word comes first or not.

What I've tried for accounting for even:

for (int i = 0; i < array.length; i ++) {
            if (array[i].length() >= longestWord.length()) {
                longestWord = array[i];
                if (longestWord.length() % 2 != 0) {
                    break;
                }
                else {
                    longestWord = array[i];
                }
            }
        }
  • To fix your longest word coming first error you should take a look at how you are comparing lengths. I don't want to spell it out completely just yet as this seems like a learning exercise and I want you to find the answer on your own but ping back if you are struggling. – Michael Platt Apr 9 at 19:21
  • Pattern.compile("\\p{L}+").matcher(input).results().map(MatchResult::group).filter(s -> (s.length() & 1) == 0).max(Comparator.comparing(String::length)).orElse(" ") – Andreas Apr 9 at 20:07
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The changes are that you compare the > from the longest length and not >= and check is the length is even.

To accommodate the cases where there are other symbols like '.', use Regex patterns.

public static void main(String[] args) {
    // TODO Auto-generated method stub

    String input = "I am good.";
    String[] input_words = input.split(" ");
    String longestWord = " ";

    for(String word : input_words) {
        Pattern p = Pattern.compile("^[a-zA-Z]+");
        Matcher m = p.matcher(word);
        m.find();
        if(m.group().length() % 2 == 0 && m.group().length() > longestWord.length()) {
            longestWord = m.group();
        }
    }
    System.out.println("result : " + longestWord);
}

This will print the largest first occurring even word

  • Welcome @JohnEgg – VSB Apr 9 at 19:31
  • This won't work on input "I am good." since it will result into "am" instead of "good". Generally on inputs where the longest even word is located before a punctuation mark. – Mark Apr 10 at 1:01
  • @JohnEgg if you have to consider this, better to go regex approach. I will update the answer soon – VSB Apr 10 at 8:12
  • @JohnEgg I have updated the answer with Regex, check – VSB Apr 10 at 8:56
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Using the % (modulus) operator is a common way of evaluating whether a number is odd or even by inspecting whether dividing by 2 elicits a remainder. You would use it here like so:

if (array[i].length() >= longestWord.length() && array[i].length() % 2 == 0) {
                longestWord = array[i];
         }

edit: I feel bad because this sounds like an assignment, so I won't solve the "coming first" part of the problem.

  • 1
    Thank you this really helped! – JohnEgg Apr 9 at 19:27
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You can use the modulo operator (%) to check if the string length is even:

string.length() % 2 == 0

To complete that you can use Arrays.stream() to find the longest string with even length:

String longestWord = Arrays.stream(sentence.split(" ")) // creates the stream with words
        .filter(s -> s.length() % 2 == 0) // filters only the even length strings
        .max(Comparator.comparingInt(String::length)) // finds the string with the max length
        .orElse(" "); // returns " " if none string is found

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