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Why the following produce between 0 - 9 and not 10?

My understanding is Math.random() create number between 0 to under 1.0.

So it can produce 0.99987 which becomes 10 by *10, isn't it?

int targetNumber = (int) (Math.random()* 10);
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You should be using Random.nextInt() to get "better" random numbers anyway: stackoverflow.com/questions/738629/… –  Goibniu Jun 22 '10 at 10:10

6 Answers 6

up vote 15 down vote accepted

Casting a double to an int in Java does integer truncation. This means that if your random number is 0.99987, then multiplying by 10 gives 9.9987, and integer truncation gives 9.

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From the Math javadoc :

"a pseudorandom double greater than or equal to 0.0 and less than 1.0"

1.0 is not a posible value with Math.random. So you can't obtain 10. And (int) 9.999 gives 9

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Cause (Math.random()* 10 gets rounded down using int(), so int(9.9999999) yields 9.

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Because (int) rounds down.
(int)9.999 results in 9. //integer truncation

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1  
There is a typo, (int)0.999 results in 0 –  pgras Jun 22 '10 at 10:58
    
Quite so. Thanks. –  Kobi Jun 22 '10 at 12:30

0.99987 which becomes 10 by *10

Not when I went to school. It becomes 9.9987.

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Use this

int targetNumber = (int) (Math.round(Math.random()* 10))
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2  
round will create bias - it gives half a chance to 10 and 0. [0-0.5] -> 0, [0.5-1.5] -> 1 –  Kobi Jun 22 '10 at 10:20

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