46

Could somebody show me a quick example how to sort an ArrayList alphabetically in Java 8 using the new lambda syntax.

1

11 Answers 11

65

For strings this would work

arrayList.sort((p1, p2) -> p1.compareTo(p2));
3
  • 36
    Better: arrayList.sort(String::compareTo) – Brian Goetz May 16 '14 at 19:32
  • 23
    Even better: arrayList.sort(Comparator.naturalOrder()) – Holger May 19 '14 at 9:08
  • 26
    Note that both .sort(String::compareTo) and .sort(Comparator.naturalOrder()) will sort all upper case letters before any lower case letters. Usually what you want is .sort(String::compareToIgnoreCase) – UTF_or_Death Apr 13 '16 at 16:58
31

Are you just sorting Strings? If so, you don't need lambdas; there's no point. You just do

import static java.util.Comparator.*;

list.sort(naturalOrder());

...though if you're sorting objects with a String field, then it makes somewhat more sense:

list.sort(comparing(Foo::getString));
0
9

Use list.sort(String::compareToIgnoreCase)

Using list.sort(String::compareTo) or list.sort(Comparator.naturalOrder()) will give incorrect (ie. non-alphabetical) results. It will sort any upper case letter before all lower case letters, so the array ["aAAA","Zzz", "zzz"] gets sorted to ["Zzz", "aAAA", "zzz"]

6

Suppose you have List of names(String) which you want to sort alphabetically.

List<String> result = names.stream().sorted(
                 Comparator.comparing(n->n.toString())).collect(Collectors.toList());

its working perfectly.

1
  • 1
    The Comparator is entirely unneeded. – River Jul 21 '17 at 17:59
3

Lambdas shouldn't be the goal. In your case, you can sort it the same way as in Java 1.2:

Collections.sort(list); // case sensitive
Collections.sort(list, String.CASE_INSENSITIVE_ORDER); // case insensitive

If you want to do it in Java 8 way:

list.sort(Comparator.naturalOrder()); // case sensitive
list.sort(String.CASE_INSENSITIVE_ORDER); // case insensitive

You can also use list.sort(null) but I don't recommend this because it's not type-safe.

2

In functional programming, you're not using the old objects to operate on them, but creating the new one in such a fashion:

list.stream().sorted().map(blah-blah).filter(...)...
7
  • This is incorrect, as now the stream no longer consists of the old elements, but of the mapped and filtered version. Consider a bank account which you want to sort by person name: If you do it like you suggest, then you start of with a stream of bank accounts, and end up with a stream of person names, while you want to end up with a stream of bank accounts again. – skiwi May 17 '14 at 10:04
  • Generally, when you write your programs in FP-style, you don't need to iterately save the results. So, this all is a new list(s): list.stream().sorted() is not sorting the old list, but creating the new one. – Dmitry Ginzburg May 17 '14 at 10:09
  • And that list has just became useless as you only have the person's name left (in my example), and you cannot reference it back (directly) to their bank account anymore. – skiwi May 17 '14 at 10:11
  • Also, possibly a source of your confusion (nothing to blame), is that the OP requested a method to sort a list, yet you only return an intermediary stream, you also will need to store it at some point, which you omitted from your answer. By trying to implement that, you may see the issue yourself aswell. – skiwi May 17 '14 at 10:12
  • 1
    @skiwi there's no need to specify the sort operator as OP wanted to sort Strings in lexicographic order, it's the default behavior. – Dmitry Ginzburg May 17 '14 at 10:19
2

A really generic solution would be to introduce some StreamUtil like

public class StreamUtil {

    private StreamUtil() {
    }       

    @SuppressWarnings({ "rawtypes", "unchecked" })
    public static <TYPE> Comparator<TYPE> sort(Function<TYPE, ? extends Comparable> getterFunction, boolean descending) {
        if (descending) {
            return (o1, o2) -> getterFunction.apply(o2).compareTo(getterFunction.apply(o1));
        }
        return (o1, o2) -> getterFunction.apply(o1).compareTo(getterFunction.apply(o2));
    }

}

The call would look something like

list.stream().sorted(sort(YourClass::getSortProperty, true));
0
2

Most concise:

Collections.sort(stringList, String::compareToIgnoreCase);
1

If you have an array with elements that have natural ordering (i.e String, int, double); then it can be achieved by:

List<String> myList = new ArrayList<>();
myList.add("A");
myList.add("D");
myList.add("C");
myList.add("B");
myList.sort(Comparator.comparing(s -> s));
myList.forEach(System.out::println);

If on the another hand you have an array of objects and you want to sort base on some sort of object field, then you can use:

class User {
    double score;
    // Constructor // Getters // Setters
}

List<User> users = new ArrayList<>();
users.add(new User(19d));
users.add(new User(67d));
users.add(new User(50d));
users.add(new User(91d));

List<User> sortedUsers = users
        .stream()
        .sorted(Comparator.comparing(User::getScore))
        .collect(Collectors.toList());

sortedUsers.forEach(System.out::println);

If the sorting is more complex, then you would have to write your own comparator and pass that in.

1
 List<Product> list = new ArrayList<>();
        List<String> list1 = new ArrayList<>();
        list.add(new Product(1));
        list.add(new Product(2));
        list.add(new Product(3));
        list.add(new Product(10));
 Collections.sort(list, Comparator.comparing((Product p) -> p.id));
        for (Product p : list) {
            System.out.println(p.id);
        }

1
  • Sticking to functional programming, for (Product p : list) { System.out.println(p.id); } can be written as list.stream().forEach(System.out::println); – Shahzad Oct 18 '20 at 15:04
0

The syntax including a custom comparator is quite simple, and quick, for example here the ArrayList being sorted contains JSONObjects, and I will sort it based on a property called 'order':

arrayList.sort((JSONObject o1, JSONObject o2)->o1.getInt("order")-o2.getInt("order"));

I think this is a really nice and concise syntax, easy to read and less bulky than non-lambda syntax.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.