12

I have this method:

filteredListIn.addAll(Stream.of(listRef)
    .filter(results ->
            results.getTitle().contains(query.toString().toLowerCase())
     ));

With these two variables:

private List<Results> listRef = new ArrayList<>();
List<Results> filteredListIn = new ArrayList<>();

But I'm getting

found for addAll(Stream) filteredListIn.addAll(Stream.of(listRef) ^ method Collection.addAll(Collection) is not applicable (argument mismatch; Stream cannot be converted to Collection) method List.addAll(Collection) is not applicable

What is the problem and how can I solve this?

Is it possible it's happening because I use external library for supporting streams under api 24?

10
0

You have to collect all stream elements in a list in order to add it to a collection:

filteredListIn.addAll(listRef.stream()
  .filter(results -> results.getTitle().contains(query.toString().toLowerCase()))
  .collect(Collectors.toList());
| improve this answer | |
  • 5
    Stream.of(listRef) will give back List<Results> and there is no method .getTitle() on List. So this code should throw an error. – Aniket Sahrawat May 25 at 10:09
  • So it should be listRef.stream() is what you are saying? – Titulum May 25 at 11:19
7
0

FYI Stream.of(listRef) will give back List<Results> and there is no method .getTitle() on List. I think you mean to do listRef.stream().filter... instead of Stream.of(listRef).filter...

Anyways, this is a standard example which demonstrates that you shouldn't use streams for every operation. You can reduce the streams to:

listRef.removeIf(results -> !results.getTitle().contains(query.toString().toLowerCase()));
filteredListIn.addAll(listRef);

Note: .removeIf will effectively operate on listRef so you should clone if required.

| improve this answer | |
  • 3
    Stream.of returns a stream of Results, it's the same as listRef.stream() so I can't see the problem there. developer.android.com/reference/java/util/stream/… – raven1981 May 25 at 10:33
  • 5
    @raven1981 Try it in your ide. Stream.of( accepts var-args, not Collection or List. – Aniket Sahrawat May 25 at 10:38
  • 6
    Yep, you're right, didn't notice the input parameters. Anyway, I see easier using the stream() method instead. – raven1981 May 25 at 10:39
  • What's the advantage of using this method over using the stream method? – Titulum May 27 at 6:46
  • 2
    @Titulum The biggest advantage is that it is concise. Also, Stream API will create additional objects and since this doesn't look like a operation on a big list it will be far more efficient than stream. – Aniket Sahrawat May 27 at 7:15
3
0

addAll expects a Collection parameter. As long as a stream is not collected, it is of type Stream which is independent of Collection. Other answers give you a simple solution: collect to a list, then add this list.

I want to mention though that this is not the most efficient solution and introduces quite some memory overhead: the stream is first collected to a new list, then all items of this list are copied to your existing list, and eventually the garbage collector will free the occupied space of the temporary list.

This overhead (allocating memory for the backing array of the temporary list) can be avoided by not collecting the stream, but iterating over its elements with the forEach terminal operation:

Stream.of(listRef)
        .filter(results -> results.getTitle().contains(query.toString().toLowerCase()))
        .forEach(filteredListIn::add);

If your list is empty to begin with, the best solution is to collect it directly:

final List<...> filteredListIn = Stream.of(listRef)
        .filter(results -> results.getTitle().contains(query.toString().toLowerCase()))
        .collect(Collectors.toList()); // or .toUnmodifiableList
| improve this answer | |

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