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I need to generate a random number that is between a minimum value and 1 -> [min, 1)

I have been reading over the random class of java, and have found that when generating a random double, the result is a double from 0 to 1.0, however, you cannot limit the bound.

My original thought was to limit the top value of the random function to .7, but this is not possible with the random function.

If anyone could help me here's my code:

public static double random(){
        // generate an random number accuracy within range [min, 1)
        Random randomNum = new Random();
        double accuracy = min + randomNum.nextDouble();
        System.out.println("Min " + min);
        return accuracy;
    }

If for example we take min to be .2 in this case, then the possible results of the function as I understand are .2 to 1.2. How can I make it simply .2 to 1?

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3 Answers 3

up vote 2 down vote accepted

Correct me if I'm wrong, but wouldn't this work:

public static double random(int min, int max){
    Random randomNum = new Random();
    return (max - min) * randomNum.nextDouble() + min;
}

Explanation:

  • (max - min) returns the difference between max and min.
  • randomNum.nextDouble() returns a random number between 0 and 1
  • + min will add the min value so it's the lowest value

  • (max - min) * randomNum.nextDouble() returns a random number between 0 and max-min

  • (max - min) * randomNum.nextDouble() + min returns a random number between min and max
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 /**
  * A double uniformly distributed in the range [min, max).
  * @param min finite and inclusive.
  * @param max finite, > min, and exclusive.
  * @return d such that min <= d && d < max.
  */
 public static boolean uniformInRange(double min, double max, Random r) {
   assert min < max && !Double.isInfinite(min) && !Double.isInfinite(max);
   return min + (r.nextDouble() * (max - min));
 }

To use it, just call

 uniformInRange(min, 1.0d, randomNum)
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The earlier name was clearer imho, uniformInRange doesn't say anything about it being random. (ps: how many edits are you going to make, I've counted 10 already :P) –  Wolph Sep 11 '12 at 21:29
    
@WoLpH, I think the Random in signature makes it clear that this is a random number, and the word "uniform" is otherwise missing unless you delve into the Javadoc. On edits, yeah, I'm really bad at looking at my code and then noticing just one more thing to tweak :) –  Mike Samuel Sep 11 '12 at 21:32
    
@WoLpH It's doesn't really not say anything, "uniform" should be a good indicator to anyone who took statistics, especially in the context of random numbers. (Indicated by the containing package / class name for instance. Or the question being answered.) –  millimoose Sep 11 '12 at 21:33
    
@millimoose: you are right that "uniform" is quite clear in this context, but when I'm simply looking for a random function in my autocomplete list I would start by typing random<tab> ;) –  Wolph Sep 11 '12 at 21:35
    
@WoLpH, I think we're debating API design while missing a chunk of the picture : the class in which it appears. If you were working inside the Random class or a subclass, then no methods would show up for the prefix "random", but the class name would provide the missing context. If I were to build a complete library I would try to have a searchable class name while trying to avoid words like "random" which can lead to incorrect assumptions about "pseudo-random" vs "true-random". –  Mike Samuel Sep 11 '12 at 21:56

What about something like this?

double min = .2;
Random gen = new Random();
double rand = (gen.nextDouble() * 0.8) + min;

Here you are adding the min bound at the end, and multiplying your 0-1 ratio by 0.8, which is the difference between 0.2 and 1.

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