70

To better understand the new stream API I'm trying to convert some old code, but I'm stuck on this one.

 public Collection<? extends File> asDestSet() {
    HashMap<IFileSourceInfo, Set<File>> map = new HashMap<IFileSourceInfo, Set<File>>();
    //...
    Set<File> result = new HashSet<File>();
    for (Set<File> v : map.values()) {
        result.addAll(v);
    }
    return result;
}

I can't seem to create a valid Collector for it:

 public Collection<? extends File> asDestSet() {
    HashMap<IFileSourceInfo, Set<File>> map = new HashMap<IFileSourceInfo, Set<File>>();
    //...
    return map.values().stream().collect(/* what? */);
}
2
  • 9
    return map.values().stream().flatMap(Set::stream).collect(Collectors.toSet()); or .collect(toCollection(HashSet::new)); as there is no guarantee behind the set implementation returned by toSet().
    – Alexis C.
    May 26, 2015 at 17:18
  • 2
    or .collect(HashSet::new, Set::addAll, Set::addAll)
    – Misha
    May 26, 2015 at 20:55

1 Answer 1

129

Use flatMap:

return map.values().stream().flatMap(Set::stream).collect(Collectors.toSet());

The flatMap flattens all of your sets into single stream.

0

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