29

I am trying to generate random array of integers using new Stream API in Java 8. But I haven't understood this API clearly yet. So I need help. Here is my code.

Random random = new Random();
IntStream intStream = random.ints(low, high);
int[] array =  intStream.limit(limit) // Limit amount of elements
                                    .boxed() // cast to Integer
                                    .toArray();

But this code returns array of objects. What is wrong with it?

52

If you want primitive int values, do not call IntStream::boxed as that produces Integer objects by boxing.

Simply use Random::ints which returns an IntStream:

int[] array = new Random().ints(size, lowBound, highBound).toArray();
4
  • 1
    Can you please explain what is the purpose of using boxed ?
    – user3991417
    Sep 11 '14 at 17:18
  • 5
    @ketazafor: You'd only want to use boxed() if you did want an object array instead of an int[]. That's your whole problem. Sep 11 '14 at 17:22
  • Thx for answer, one more question is there any elegant way to generate randow string using stream api ?
    – user3991417
    Sep 11 '14 at 17:24
  • 1
    @ketazafor: depends on how your random String should be constructed. If it should interpret each random int as code point, combine the int stream of this answer with “Simplest way to print an IntStream as a String
    – Holger
    Sep 11 '14 at 17:47
5

There's no reason to boxed(). Just receive the Stream as an int[].

int[] array = intStream.limit(limit).toArray();
5

To generate random numbers from range 0 to 350, limiting the result to 10, and collect as a List. Later it could be typecasted.

However, There are no guarantees on the type, mutability, serializability, or thread-safety of the List returned.

List<Object> numbers =  new Random().ints(0,350).limit(10).boxed().collect(Collectors.toList());

and to get thearray of int use

int[] numbers =  new Random().ints(0,350).limit(10).toArray();
1
  • Thanks. I'm still new to streams, and .boxed() was what I was here looking for. Sep 15 '19 at 0:16
4

tl;dr

ThreadLocalRandom     // A random number generator isolated to the current thread.
.current()            // Returns the current thread's `ThreadLocalRandom` object.
.ints( low , high )   // Pass the "origin" (inclusive) and "bound" (exclusive).
.limit( 100 )         // How many elements (integers) do you want in your stream?
.toArray()            // Convert the stream of `int` values into an array `int[]`. 

ThreadLocalRandom

You can do it using ThreadLocalRandom.

The ints method generates an IntStream within your specified bounds. Note the the low is inclusive while the high is exclusive. If you want to include your high number, just add one while calling the ints method.

int[] randInts = ThreadLocalRandom.current().ints( low , high ).limit(100).toArray();

See this code run live at IdeOne.com.

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