3411

How do I generate a random int value in a specific range?

I have tried the following, but those do not work:

Attempt 1:

randomNum = minimum + (int)(Math.random() * maximum);
// Bug: `randomNum` can be bigger than `maximum`.

Attempt 2:

Random rn = new Random();
int n = maximum - minimum + 1;
int i = rn.nextInt() % n;
randomNum =  minimum + i;
// Bug: `randomNum` can be smaller than `minimum`.

67 Answers 67

2

A simple way to generate n random numbers between a and b e.g a =90, b=100, n =20

Random r = new Random();
for(int i =0; i<20; i++){
    System.out.println(r.ints(90, 100).iterator().nextInt());
}

r.ints() returns an IntStream and has several useful methods, have look at its API.

1

Using Java 8 Streams,

  • Pass the initialCapacity - How many numbers
  • Pass the randomBound - from x to randomBound
  • Pass true/false for sorted or not
  • Pass an new Random() object

 

public static List<Integer> generateNumbers(int initialCapacity, int randomBound, Boolean sorted, Random random) {

    List<Integer> numbers = random.ints(initialCapacity, 1, randomBound).boxed().collect(Collectors.toList());

    if (sorted)
        numbers.sort(null);

    return numbers;
}

It generates numbers from 1-Randombound in this example.

1

here's a function that returns exactly one integer random number in a range defined by lowerBoundIncluded and upperBoundIncluded, as requested by user42155

SplittableRandom splittableRandom = new SplittableRandom();

BiFunction<Integer,Integer,Integer> randomInt = (lowerBoundIncluded, upperBoundIncluded)
    -> splittableRandom.nextInt( lowerBoundIncluded, upperBoundIncluded + 1 );

randomInt.apply( …, … ); // gets the random number


…or shorter for the one-time generation of a random number

new SplittableRandom().nextInt( lowerBoundIncluded, upperBoundIncluded + 1 );
0

Below is a sample class which shows how to generate random integers within a specific range. Assign any value you want as the maximum value to the variable 'max' and assign any value you want as the minimum value to the variable 'min'.

public class RandomTestClass {

    public static void main(String[] args) {
        Random r = new Random();
        int max = 10;
        int min = 5;
        int x;
        x = r.nextInt(max) + min;
        System.out.println(x);
    }

}
0
import java.util.Random;
public class Main
{
    public static void main(String[] args) {
        Random rand = new Random();
        System.out.printf("%04d%n", rand.nextInt(10000));
    }
}
  • 7
    Thank you for this code snippet, which might provide some limited short-term help. A proper explanation would greatly improve its long-term value by showing why this is a good solution to the problem, and would make it more useful to future readers with other, similar questions. Please edit your answer to add some explanation, including the assumptions you've made. In particular, it's not obvious how this code accepts the lower and upper bounds of the problem statement. – Toby Speight Dec 16 '19 at 11:17
0

This is very straightforward code that generates a random number between 1 and the variable maximum , then determines if that random number is smaller than minimum. If the answer is yes, than add minimum to the random number. Then return the number.

 public static int random(int minimum, int maximum) {
            int i = (int) (Math.random() * maximum);
            if (i < minimum) {
                return i + minimum;
            } else {
                return i;
            }
        }
-1

public static int getRandomNumberInts(int min, int max){ Random random = new Random(); return random.ints(min,(max+1)).findFirst().getAsInt(); }

We can try solving it using the new random.ints function in Java 8.

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