21

I have two classes that are structured like this:

public class Company {
     private List<Person> person;
     ...
     public List<Person> getPerson() {
          return person;
     }
     ...
}

public class Person {
     private String tag;
     ...
     public String getTag() {
          return tag;
     }
     ...
}

Basically the Company class has a List of Person objects, and each Person object can get a Tag value.

If I get the List of the Person objects, is there a way to use Stream from Java 8 to find the one Tag value that is the most common among all the Person objects (in case of a tie, maybe just a random of the most common)?

String mostCommonTag;
if(!company.getPerson().isEmpty) {
     mostCommonTag = company.getPerson().stream() //How to do this in Stream?
}
  • 1
    You can get a Map of Company to most used tag for that company using a Stream too. Also, no need for the !company.getPerson().isEmpty() etc. – Boris the Spider Apr 26 '17 at 6:41
28
String mostCommonTag = getPerson().stream()
        // filter some person without a tag out 
        .filter(it -> Objects.nonNull(it.getTag()))
        // summarize tags
        .collect(Collectors.groupingBy(Person::getTag, Collectors.counting()))
        // fetch the max entry
        .entrySet().stream().max(Map.Entry.comparingByValue())
        // map to tag
        .map(Map.Entry::getKey).orElse(null);

AND the getTag method appeared twice, you can simplify the code as further:

String mostCommonTag = getPerson().stream()
        // map person to tag & filter null tag out 
        .map(Person::getTag).filter(Objects::nonNull)
        // summarize tags
        .collect(Collectors.groupingBy(Function.identity(), Collectors.counting()))
        // fetch the max entry
        .entrySet().stream().max(Map.Entry.comparingByValue())
        // map to tag
        .map(Map.Entry::getKey).orElse(null);
| improve this answer | |
  • Thanks for the detailed answer. One clarification though, I am getting an "element cannot be mapped to a null key" exception due to apparently some Person without a Tag value. How should I handle this in the Stream. – 000000000000000000000 Apr 25 '17 at 18:43
5

You could collect the counts to a Map, then get the key with the highest value

List<String> foo = Arrays.asList("a","b","c","d","e","e","e","f","f","f","g");
Map<String, Long> f = foo
    .stream()
    .collect(Collectors.groupingBy(v -> v, Collectors.counting()));
String maxOccurence = 
            Collections.max(f.entrySet(), Comparator.comparing(Map.Entry::getValue)).getKey();

System.out.println(maxOccurence);
| improve this answer | |
5

This should work for you:

private void run() {
    List<Person> list = Arrays.asList(() -> "foo", () -> "foo", () -> "foo",
                                      () -> "bar", () -> "bar");
    Map<String, Long> commonness = list.stream()
            .collect(Collectors.groupingBy(Person::getTag, Collectors.counting()));
    Optional<String> mostCommon = commonness.entrySet().stream()
            .max(Map.Entry.comparingByValue())
            .map(Map.Entry::getKey);
    System.out.println(mostCommon.orElse("no elements in list"));
}

public interface Person {
    String getTag();
}

The commonness map contains the information which tag was found how often. The variable mostCommon contains the tag that was found most often. Also, mostCommon is empty, if the original list was empty.

| improve this answer | |
5

If you are open to using a third-party library, you can use Collectors2 from Eclipse Collections with a Java 8 Stream to create a Bag and request the topOccurrences, which will return a MutableList of ObjectIntPair which is the tag value and the count of the number of occurrences.

MutableList<ObjectIntPair<String>> topOccurrences = company.getPerson()
        .stream()
        .map(Person::getTag)
        .collect(Collectors2.toBag())
        .topOccurrences(1);
String mostCommonTag = topOccurrences.getFirst().getOne();

In the case of a tie, the MutableList will have more than one result.

Note: I am a committer for Eclipse Collections.

| improve this answer | |
3

This is helpful for you,

Map<String, Long> count = persons.stream().collect(
                Collectors.groupingBy(Person::getTag, Collectors.counting()));

Optional<Entry<String, Long>> maxValue = count .entrySet()
        .stream().max((entry1, entry2) -> entry1.getValue() > entry2.getValue() ? 1 : -1).get().getKey();

maxValue.get().getValue();
| improve this answer | |
  • 1
    This comparator does not handle equality - while this may work for max, it is usually not a good idea to do this - just use one of the numerous ways to get an appropriate Comparator, e.g. via Comparator.comparingLong, Long::compareTo, Map.Entry.comparingByValue – Hulk Apr 26 '17 at 10:05
3

One More solution by AbacusUtil

// Comparing the solution by jdk stream, 
// there is no "collect(Collectors.groupingBy(Person::getTag, Collectors.counting())).entrySet().stream"
Stream.of(company.getPerson()).map(Person::getTag).skipNull() //
        .groupBy(Fn.identity(), Collectors.counting()) //
        .max(Comparators.comparingByValue()).map(e -> e.getKey()).orNull();

// Or by multiset
Stream.of(company.getPerson()).map(Person::getTag).skipNull() //
        .toMultiset().maxOccurrences().map(e -> e.getKey()).orNull();
| improve this answer | |

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