128

I have two doubles like the following

double min = 100;
double max = 101;

and with a random generator, I need to create a double value between the range of min and max.

Random r = new Random();
r.nextDouble();

but there is nothing here where we can specify the range.

217

To generate a random value between rangeMin and rangeMax:

Random r = new Random();
double randomValue = rangeMin + (rangeMax - rangeMin) * r.nextDouble();
  • 19
    This is generally correct, but beware of its limits. If you do double rangeMax= Double.MAX_VALUE; and double rangeMin= -rangeMax; you will always get an infinite value in return. You might want to check for Double.valueOf(rangeMax-rangeMin).isInfinite(). – lre Apr 7 '14 at 10:55
  • Note that the results of this will often exclude many double values in the desired range, if that range is larger than 0.0-1.0. If the desired range contains a larger number of values than the range 0.0-1.0 there will not be a value for each of them and they will never get generated. (By the pigeonhole principle!). Because of this Tunaki's solution is better. – Lii Jun 17 '18 at 12:38
  • @Lii there will not be a value for each of them why not? – K_7 Aug 20 at 0:47
  • 1
    @K_7: Say for example that there are 10,000 distinct double value between 0.0 and 1.0 (in reality there are probably more). But if the range between rangeMinand rangeMax is large, then there might be 10,000,000 distinct double values between them. The result of (rangeMax - rangeMin) * r.nextDouble() will only choose between 10,000 of those possible 10,000,000 values. (I feel that this is not a perfect explanation, but maybe it helps a little bit...) – Lii Aug 20 at 7:25
  • 1
    Ah I see. Basically, multiplying a number that can take a finite set of values doesn't change the size of that set. – K_7 Aug 22 at 14:27
120

This question was asked before Java 7 release but now, there is another possible way using Java 7 (and above) API:

double random = ThreadLocalRandom.current().nextDouble(min, max);

nextDouble will return a pseudorandom double value between the minimum (inclusive) and the maximum (exclusive). The bounds are not necessarily int, and can be double.

  • 5
    call requires api 21 – Xar E Ahmer Feb 1 '17 at 10:25
  • 2
    @XarEAhmer What's API 21? – Abhijit Sarkar Mar 4 at 5:44
  • Looks like he's referring to Android. – K_7 Aug 20 at 0:45
37

Use this:

double start = 400;
double end = 402;
double random = new Random().nextDouble();
double result = start + (random * (end - start));
System.out.println(result);

EDIT:

new Random().nextDouble(): randomly generates a number between 0 and 1.

start: start number, to shift number "to the right"

end - start: interval. Random gives you from 0% to 100% of this number, because random gives you a number from 0 to 1.


EDIT 2: Tks @daniel and @aaa bbb. My first answer was wrong.

4
import java.util.Random;
    public class MyClass {
         public static void main(String args[]) {
          Double min = 0.0; //  Set To Your Desired Min Value
          Double max = 10.0; //    Set To Your Desired Max Value
          double x = (Math.random() * ((max - min) + 1)) + min; //    This Will Create 
          A Random Number Inbetween Your Min And Max.
          double xrounded = Math.round(x * 100.0) / 100.0; // Creates Answer To 
          The Nearest 100 th, You Can Modify This To Change How It Rounds.
          System.out.println(xrounded); //    This Will Now Print Out The 
          Rounded, Random Number.
         }
    }
1
Random random = new Random();
double percent = 10.0; //10.0%
if (random.nextDouble() * 100D < percent) {
    //do
}

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