25

I have a class like this

public class Example {
    private List<Integer> ids;

    public getIds() {
        return this.ids; 
    }
}

If I have a list of objects of this class like this

List<Example> examples;

How would I be able to map the id lists of all examples into one list? I tried like this:

List<Integer> concat = examples.stream().map(Example::getIds).collect(Collectors.toList());

but getting an error with Collectors.toList()

What would be the correct way to achive this with Java 8 stream api?

2
41

Use flatMap:

List<Integer> concat = examples.stream()
    .flatMap(e -> e.getIds().stream())
    .collect(Collectors.toList());
7
  • Can you explain the difference between flatMap and map
    – CraigR8806
    Apr 28 '17 at 14:06
  • 5
    @CraigR8806 Extensive explanations here Apr 28 '17 at 14:08
  • What would happen if e.getIds() returns an empty list or null? How could a test for empty list or null be included into the statement?
    – gabriel
    Aug 24 '17 at 10:08
  • @gabriel "empty list" well, there's nothing in the list, but it would work just the same. "null" a NullPointerException would be thrown. How would you want to handle null; and why would you want to (specially) handle an empty list? Aug 24 '17 at 10:13
  • 1
    Well you could do something like { List<Integer> ids = e.getIds(); if (ids == null) ids = Collections.emptyList(); return ids.stream(); }. But consider that the null might itself be a bug; so it might be better to fix it rather than work around it. Aug 24 '17 at 10:22
6

Another solution by using method reference expression instead of lambda expression:

List<Integer> concat = examples.stream()
                               .map(Example::getIds)
                               .flatMap(List::stream)
                               .collect(Collectors.toList());

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