15

I am new to lambda expression and was trying to use it in my assignment.

The problem:

I have two maps m1 and m2 of type Map<Integer, String>, which has to be merged into a single map Map<Integer, List<String>>, where values of same keys in both the maps are collected into a List and put into a new Map.

Solution based on what I explored:

Map<Integer, List<String>> collated = 
                Stream.concat(m1.entrySet().stream(), m2.entrySet().stream()).collect(
                        Collectors.toMap(Entry::getKey,
                                Entry::getValue, (a, b) -> {
                                    List<String> merged = new ArrayList<String>(a);
                                    merged.addAll(b);
                                    return merged;
                                }));

But, this solution expects source List to be Map<Integer, List<String>> as the merge function in toMap expects operands and result to be of the same type.

I don't want to change the source collection. Please provide your inputs on achieving this using lambda expression.

11

I can't test it right now, but I think all you need it to change the mapping of the value from Entry::getValue to a List that contains that value :

Map<Integer, List<String>> collated = 
    Stream.concat(m1.entrySet().stream(), m2.entrySet().stream())
          .collect(Collectors.toMap(Entry::getKey,
                                    e -> {
                                          List<String> v = new ArrayList<String>();
                                          v.add(e.getValue());
                                          return v;
                                         },
                                    (a, b) -> {
                                         List<String> merged = new ArrayList<String>(a);
                                         merged.addAll(b);
                                         return merged;
                                    }));

EDIT: The idea was correct. The syntax wasn't. Current syntax works, though a bit ugly. There must be a shorter way to write it.

You can also replace e -> {..} with e -> new ArrayList<String>(Arrays.asList(new String[]{e.getValue()})).

or with e -> Stream.of(e.getValue()).collect(Collectors.toList())

EDIT :

Or you can do it with groupingBy :

Map<Integer, List<String>> collated = 
    Stream.concat(m1.entrySet().stream(), m2.entrySet().stream())
          .collect(Collectors.groupingBy(Map.Entry::getKey,
                                         Collectors.mapping(Map.Entry::getValue,
                                                            Collectors.toList())));
  • No, its not working for me – viktor Jul 18 '15 at 6:25
  • 2
    @viktor Did you try my original answer (which didn't pass compilation) or my updated answer? – Eran Jul 18 '15 at 6:29
  • Thanks Eran, this works. For my understanding - we are modifying value mapper to produce List and using the same merge function of merging Lists. Right? – viktor Jul 18 '15 at 6:44
  • 1
    @viktor You're welcome. Please check the last edit I posted. I think it's more elegant. – Eran Jul 18 '15 at 6:46
  • Thanks Eran, the second one looks more cleaner and concise. – viktor Jul 18 '15 at 6:57
21

That's a job for groupingBycollector:

Stream.of(m1,m2)
        .flatMap(m->m.entrySet().stream())
        .collect(groupingBy(
                Map.Entry::getKey,
                mapping(Map.Entry::getValue, toList())
        ));
  • 1
    Thanks Misha, this also works. Wondering performance wise what is better flatMap or concat? – viktor Jul 18 '15 at 7:00
  • 2
    @viktor, here should be no real difference. In parallel streams or collecting to an array concat may perform better as it properly calculates the total size of the stream. – Tagir Valeev Jul 18 '15 at 7:02
  • 2
    @viktor In addition to what @TagirValeev said, I believe concat has an advantage if you run this as parallel because concat can split within the two constituent streams, while flatMap will at most use 2 threads under current implementation. I cannot look at the streams library source right now, so I can be mistaken about this. For most practical (i.e. sequential) uses, the two are equivalent and flatMap is more concise, so that's what I used. – Misha Jul 18 '15 at 7:24
  • Thanks to both of your for providing detailed explanation. – viktor Jul 18 '15 at 7:27
3

Misha's solution is the best if you want pure Java-8 solution. If you don't mind using third-party libraries, it would be a little shorter using my StreamEx.

Map<Integer, List<String>> map = StreamEx.of(m1, m2)
        .flatMapToEntry(Function.identity())
        .grouping();

Internally it's the same as in Misha's solution, just syntactic sugar.

3

This seems like a great opportunity to use Guava's Multimap.

ListMultimap<Integer, String> collated = ArrayListMultimap.create();
collated.putAll(Multimaps.forMap(m1));
collated.putAll(Multimaps.forMap(m2));

And if you really need a Map<Integer, List<String>>:

Map<Integer, List<String>> mapCollated = Multimaps.asMap(collated);

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.