23

I want to order an ArrayList of strings by length, but not just in numeric order.

Say for example, the list contains these words:

cucumber
aeronomical
bacon
tea
telescopic
fantasmagorical

They need to be ordered by their difference in length to a special string, for example:

intelligent

So the final list would look like this (difference in brackets):

aeronomical     (0)
telescopic      (1)
fantasmagorical (3) - give priority to positive differences? doesn't really matter
cucumber        (3)
bacon           (6)
tea             (8)
1

10 Answers 10

30

Use a custom comparator:

public class MyComparator implements java.util.Comparator<String> {

    private int referenceLength;

    public MyComparator(String reference) {
        super();
        this.referenceLength = reference.length();
    }

    public int compare(String s1, String s2) {
        int dist1 = Math.abs(s1.length() - referenceLength);
        int dist2 = Math.abs(s2.length() - referenceLength);

        return dist1 - dist2;
    }
}

Then sort the list using java.util.Collections.sort(List, Comparator).

2
  • Priority to positive differences can be given by multiplying positive differences by two, and negative differences by negative two, then adding one. – Stephen Denne Sep 27 '11 at 21:22
  • You should make referenceLength final. – Steve Kuo Sep 27 '11 at 22:15
12

If you're using Java 8+ you can use a lambda expression to implement (@Barend's answer as) the comparator

List<String> strings = Arrays.asList(new String[] {"cucumber","aeronomical","bacon","tea","telescopic","fantasmagorical"});
strings.sort((s1, s2) -> Math.abs(s1.length() - "intelligent".length()) - Math.abs(s2.length() - "intelligent".length()));
2
  • 1
    Best solution for Java 8+. Short and precise. – Mugoma J. Okomba Mar 11 '17 at 5:49
  • 2
    In case you just want to sort by length: strings.sort((s1, s2) -> s1.length() - s2.length()); – PlsWork Sep 16 '18 at 18:38
9

If you are using java 8 you can also try using this lambda

packages.sort(Comparator.comparingInt(String::length));
5
  • String in Ascending order
class StringLengthListSort implements Comparator<String>{

    @Override
    public int compare(String s1, String s2) {
    return s1.length() - s2.length();
    }

    /**
     * @param args
     */
    public static void main(String[] args) {
    List<String> list = new ArrayList<String>();
    StringLengthListSort ss = new StringLengthListSort();
    list.add("ram");
    list.add("rahim");
    list.add("ramshyam");
    Collections.sort(list, ss);
    System.out.println(list);
    }

}
3

You'd do this with the version of Collections.sort() that takes an explicit Comparator.

0
2

The use of a custom comparator is correct. This is one way to implement it:

    Comparator c = new Comparator<String>()
    {
        public int compare(String s1, String s2) {
            return Integer.compare(s1.length(), s2.length());
        }
    };
    Collections.sort(results, c);
    return results;
1

I have a similar problem solved by lambda expression:

listBeforeSorting.sort((s1, s2) -> s1.length() - s2.length());

This way, we will get sorted-by-length(ascending order) list.

0

simple with Java8 solution with Comparator and Method reference only: Stream.of(list).flatMap(Collection::stream).sorted( Comparator.comparing( String::length)).collect(toList());

0
The shortest code for this-

public static void main(String... str) {
        List.of("am", "I", "Best", "the").stream().sorted((a, b) -> a.length() - b.length())
                .forEach(System.out::println);
    }
0
List<String> list = Arrays.asList("geeksforgeeks", "geeksfor", "geeks");
Collections.sort(list, new Comparator<String>(){
       public int compare(String s1, String s2){
                return s1.length() - s2.length();
       }
});

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