5

Imagine you have a list of people, Roberts, Pauls, Richards, etc, these are people grouped by name into Map<String, List<Person>>. You want to find the oldest Paul, Robert, etc... You can do it like so:

public static void main(String... args) {
        List<Person> people = Arrays.asList(
                new Person(23, "Paul"),
                new Person(24, "Robert"),
                new Person(32, "Paul"),
                new Person(10, "Robert"),
                new Person(4, "Richard"),
                new Person(60, "Richard"),
                new Person(9, "Robert"),
                new Person(26, "Robert")
        );

        Person dummy = new Person(0, "");
        var mapping = people.stream().collect(groupingBy(Person::getName, reducing(dummy, (p1, p2) -> p1.getAge() < p2.getAge() ? p2 : p1)));
        mapping.entrySet().forEach(System.out::println);
    }

Say, I want to get a mapping in the form of Map<String, Integer> instead of Map<String, Person>, I can do it like so:

var mapping = people.stream().collect(groupingBy(Person::getName, mapping(Person::getAge, reducing(0, (p1, p2) -> p1 < p2 ? p2 : p1))));

The steps above are:

  • Group by name into Map<String/*Name*/, List<Person>>
  • Map that List<Person> into List<Integer>
  • Find maximum Integer in those lists.

I was wondering how to do:

  • Group by name into Map<String, List<Person>>
  • Find the oldest person in each group name, getting Map<String, Person>
  • Convert Map<String, Person> into Map<String, Integer>. And I want to do all that inside that chain of groupingBy's, reducing's and mapping's.

This is the "pseudocode":

var mapping = people.stream().collect(groupingBy(Person::getName, reducing(dummy, (p1, p2) -> p1.getAge() < p2.getAge() ? p2 : p1 /*, have to write some other collector factory method here*/)));

How can I achieve this?

|improve this question
  • Looks like collectingAndThen is the only way? I just googled that method. – Coder-Man May 30 '18 at 0:04
  • Do you actually need 3 maps? Or are you asking how to end up with Map<String, Integer>? – shmosel May 30 '18 at 0:06
  • @shmosel I don't need 3 maps, look at my code to see what type it returns. I don't create 3 maps anywhere. – Coder-Man May 30 '18 at 0:06
  • Your breakdowns aren't very accurate. None of the examples actually produce any lists. Either way, I don't understand the point of this question. What's the problem with the first way? – shmosel May 30 '18 at 0:17
  • 1
    @POrekhov The fact that this question is about the Stream API is already given by the [java-stream] tag. There is no requirement to acknowledge the fact that this API was introduced in Java 8 by tagging every [java-stream] question with [java-8]. The version specific tags are there to state that you want a version specific answer. Since APIs may change, most notably, they get extended and there might be simpler solutions using the new API version, that’s a restriction. But restricting the API to one version but actively using newer features in the example code is confusing. – Holger May 30 '18 at 12:31
4

If you really want to use groupingBy as mentioned in the problem statement, you can still do it like this:

final Map<String, Integer> oldestPersonByName = people.stream()
        .collect(Collectors.groupingBy(Person::getName, Collectors.reducing(0, Person::getAge, Integer::max)));

For the reduction you have to pass an identity element, mapping function and a binary operator used to reduce, which is max in this case.

|improve this answer
  • I wonder if -1 can be considered a valid identity if we know age is at least 0. – shmosel May 30 '18 at 3:05
  • That makes sense. Let me change my answer accordingly. – Ravindra Ranwala May 30 '18 at 3:10
  • 1
    I wasn't suggesting 0 is better. My issue is that an identity i for a function f must be a value such that f(i, x) returns x for any x. But I'm not sure if that's any possible x, or any x in the stream. If it's the former, the only valid identity would be Integer.MIN_VALUE. – shmosel May 30 '18 at 3:14
  • Yeah, finding the identity element for a reduction is sometimes tricky, and a wrong identity element would lead to subtle bugs which are hard to figure out. – Ravindra Ranwala May 30 '18 at 3:18
  • 2
    @shmosel well, if we can be sure that age is always non-negative, -1 would be a valid identity for max. Further, even if negative age values show up due to an error, max(-1, negative number) would still be negative, indicating that there is some error. – Holger May 30 '18 at 8:06
5

It is more straightforward to do this with the 3-argument version of toMap collector:

people.stream().collect(toMap(
        Person::getName, 
        Person::getAge, 
        Integer::max
    ));
|improve this answer
3

I think it would be like the following, also using maxBy instead of reducing.

people.stream().collect(
    groupingBy(
        Person::getName,
        collectingAndThen(
            maxBy(Comparator.comparing(Person::getAge)),
            (Optional<Person> max) -> max.get().getAge()
        )
    )
);
|improve this answer
  • Thought so, thanks, unfortunately I didn't know about collectingAndThen when I posted this. – Coder-Man May 30 '18 at 0:07
  • 1
    You are redundantly calling getAge(). In such a case, it makes more sense to map to the age first, then determine the maximum. collectingAndThen(mapping(Person::getAge, maxBy(naturalOrder())), Optional::get) or mapping(Person::getAge, reducing(-1, Math::max)), which has the handy abbreviation reducing(-1, Person::getAge, Math::max) – Holger May 30 '18 at 8:01

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