5

Is there a way to copy some List (or combined string if necessary) N times in Java using Stream API

If the list consists of {"Hello", "world"} and N = 3, the result should be {"Hello", "world", "Hello", "world", "Hello", "world"}

What I've done so far is to get combined String element and I am not sure how to procees to copy it N times. While I can do it externally, I would like to see if it is possible to do with the help of streams

Optional<String> sentence = text.stream().reduce((value, combinedValue) -> { return value + ", " + combinedValue ;});

I would like to use stream, because I am planning to continue with other stream operations after the one above

  • 1
    The code you have given is probably better replaced with String.join(", ", text). – RealSkeptic Apr 3 at 11:29
  • @RealSkeptic you are right, just that I would like to use stream, because I am planning to continue with other stream operations after the one asked in the question – Hatik Apr 3 at 11:32
  • You should specify that in your question. The answers people give you assume that you want some kind of an end product, either a list or a string. – RealSkeptic Apr 3 at 11:34
  • @RealSkeptic I believe I specified it in the question, will try to edit it to be more clear though, thanks – Hatik Apr 3 at 11:41
6

You can use Collections.nCopies:

List<String> output =
    Collections.nCopies(3,text) // List<List<String>> with 3 copies of 
                                // original List
               .stream() // Stream<List<String>>
               .flatMap(List::stream) // Stream<String>
               .collect(Collectors.toList()); // List<String>

This will product the List:

[Hello, World, Hello, World, Hello, World]

for your sample input.

2

You can use an IntStream and flatMap to connect the text List multiple times:

List<String> result = IntStream.range(0, 3)
        .mapToObj(i -> text)
        .flatMap(List::stream)
        .collect(Collectors.toList());

The result looks like this:

[Hello, World, Hello, World, Hello, World]
  • Avoid boxing by replacing .boxed() .flatMap(i -> text.stream()) with .mapToObj(i -> text) .flatMap(List::stream) – Holger Apr 4 at 8:23
  • Why should I avoid using .boxed()? Can you explain it that a bit more? – Samuel Philipp Apr 4 at 8:31
  • 2
    It doesn’t apply in this simple scenario with that small range, but for large ranges, .boxed() implies potentially creating a new Integer instance for every element (outside the byte range), whereas .mapToObj(i -> text) always maps to the same, already existing object. It’s not that you should avoid boxing at all costs, but here, the alternative has the same simplicity, so why not use it (and then, it will be on par with what happens behind the scenes in the accepted answer) – Holger Apr 4 at 8:36
  • Thanks for the explanation @Holger. I updated my answer. – Samuel Philipp Apr 4 at 8:39

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