0
num1 = randomNum.nextInt(20);
num2 = randomNum.nextInt(num1);

When I run this, i get
"Exception in thread "main" java.lang.illigalArgumentException: bound must be possitive
at java.util.Random.nextInt(Uknown Source)
at EquationMin.main(EquationMin.java:19)

  • num1 is zero in this case – AhmadWabbi May 23 '16 at 0:27
  • @A.Wabbi So, how could I fix this issue? – Eddie May 23 '16 at 0:29
  • num2 = randomNum.nextInt(num1+1); – AhmadWabbi May 23 '16 at 0:41
5

In theory/from a syntax-POV: yes

But there's a problem:

[Random#nextInt(int)] Returns a pseudorandom, uniformly distributed int value between 0 (inclusive) and the specified value (exclusive), drawn from this random number generator's sequence.

From the docs. This meansnum1 may actually turn out to be 0. But

[Random#nextInt(int)] Throws: IllegalArgumentException - if n is not positive

Since 0 per definition is not positive, this will cause a IllegalArgumentException.

The simplest workaround would be to simply add 1 to the parameter:

num1 = randomNum.nextInt(20);
num2 = randomNum.nextInt(num1 + 1);

to ensure, that the parameter for the second call of nextInt will never turn 0. Instead one could define a lower bound, like Math.max(num1, 1) or anything else.

  • Nicely stated, +1 – Arman May 23 '16 at 0:30

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