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How do you get random Double values between 0.0 and 0.06 in Java?

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This is actually not as easy as it sounds. +1 –  Michael Myers Feb 9 '10 at 16:52
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When you say 'between', do you want the end points to be included or excluded as possible return values? –  AakashM Feb 9 '10 at 16:53
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You should clarify whether what you want is numbers in [0,0.06] or [0,0.06). The former, where the interval is closed (i.e., the endpoints are included) is not the same as the latter, where you can never get 0.06 as a value. –  uckelman Feb 9 '10 at 16:57
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@AakashM, @uckelman: that's not relevant in this case, because 0.06 can't be represented exactly as a double, so it can't ever be returned anyway. Or phrased differently: he can only ever achieve "[0.0, 0.6]". –  Joachim Sauer Feb 9 '10 at 17:02
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@Joachim Sauer: babbage.cs.qc.edu/IEEE-754/Decimal.html suggests it can be, as it happens (it's 1.92 / 32 and 1.92 can be represented exactly in a 52-bit mantissa) –  AakashM Feb 9 '10 at 17:08

5 Answers 5

up vote 14 down vote accepted

nextDouble() returns a random floating-point number uniformly distributed between 0 and 1. Simply scale the result as follows:

Random generator = new Random();
double number = generator.nextDouble() * .06;

See this documentation for more examples of Random.

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Also you may have to check that number is less than < 0.06, floating point operations are not exact [in the sense there is always some error/uncertainty which accumulates over many floating point operations]. –  Fakrudeen Feb 9 '10 at 19:58
    
Also beware of using a new instance of Random for every number you need. In that sense, uckelman's answer below is better as it specifically avoids that common mistake. –  Joey May 13 '10 at 19:42
    
@Fakrudeen, wow, indeed. number = Math.min(number, 0.06); –  Justin May 13 '10 at 19:50

This will give you a random double in the interval [0,0.06):

double r = Math.random()*0.06;
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you need to have a look at the Random class

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Based on this java doc (though watch the boundary condition):

 new Random().nextDouble() * 0.06
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To avoid the inexactness of floating point values you can use a double/integer calculation which is more accurate (at least on x86/x64 platforms)

double d = Math.random() * 6 / 100;
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