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This is a pretty simple java (though probably applicable to all programming) question:

Math.random() returns a number from 0.0 to 1.0.

If I want to return an int from 0 to 100 I would do:

(int) Math.floor(Math.random()*101)

From 1 to 100 I would do:

(int) Math.ceil(Math.random()*100)

What if I wanted to do it from (3,5]?

Is it: (Math.random()*5+3)?

What about (2,3] or [1,2]?

Thanks

P.S. I know about nextInt() in java.lang.util.Random. I want to learn how to do this with Math.random()

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For [3,5]: (int)Math.floor(Math.random()*3) + 3 –  good_evening Nov 1 '11 at 2:19
1  
BTW: the range is from 0.0 inclusive to 1.0 exclusive (you won't actaully get 1.0 ever) Using nextInt() is a far better choice, not only is it simpler but also much faster. –  Peter Lawrey Nov 1 '11 at 8:23
    
Using Math.ceil is wrong, it gives the wrong result when Math.random() returns 0. –  starblue Nov 2 '11 at 7:26
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3 Answers 3

up vote 24 down vote accepted
int randomWithRange(int min, int max)
{
   int range = (max - min) + 1;     
   return (int)(Math.random() * range) + min;
}

Output of randomWithRange(2, 5) 10 times:

5
2
3
3
2
4
4
4
5
4

The bounds are inclusive, ie [2,5], and min must be less than max in the above example.

EDIT: If someone was going to try and be stupid and reverse min and max, you could change the code to:

int randomWithRange(int min, int max)
{
   int range = Math.abs(max - min) + 1;     
   return (int)(Math.random() * range) + (min <= max ? min : max);
}

EDIT2: For your question about doubles, it's just:

double randomWithRange(double min, double max)
{
   double range = (max - min);     
   return (Math.random() * range) + min;
}

And again if you want to idiot-proof it it's just:

double randomWithRange(double min, double max)
{
   double range = Math.abs(max - min);     
   return (Math.random() * range) + (min <= max ? min : max);
}
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What if you don't use (int) and want it to return a double? –  switz Nov 1 '11 at 2:36
    
If you want double then just replace the ints with doubles (and the typecast is unnecessary). I assumed you wanted ints but I'll add to my post. –  AusCBloke Nov 1 '11 at 2:40
    
Actually with doubles remove the + 1 also since Math.random() isn't being truncated. However, the range will be [min, max) since Math.random "Returns a double value with a positive sign, greater than or equal to 0.0 and less than 1.0." There'd be a very minimal chance of the number being exactly max anyway even if it was possible. –  AusCBloke Nov 1 '11 at 2:47
    
Ah, you saw it yourself while I typed. –  Daniel Fischer Nov 1 '11 at 2:50
    
@DanielFischer Yeah I almost fudged up the double one. Good eye. –  AusCBloke Nov 1 '11 at 2:52
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The Random class of Java located in the java.util package will serve your purpose better. It has some nextInt() methods that return an integer. The one taking an int argument will generate a number between 0 and that int, the latter not inclusive.

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I updated my question, I'd like to know how to do it with Math.random(). Thanks. –  switz Nov 1 '11 at 2:17
2  
@Switz Yeah, I just realized you wanted to know how to do it manually, rather than using some class. Sorry, getting too drunk to post on SO, probably. –  G_H Nov 1 '11 at 2:20
    
+1 for the more reliable way to do it. –  trashgod Nov 1 '11 at 2:29
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If you want to generate a number from 0 to 100 then your code would look like this:

(int)(Math.random() * 101);

To generate a number from 10 to 20 :

(int)(Math.random() * 11 + 10);

In the general case:

(int)(Math.random() * ((upperbound - lowerbound) + 1) + lowerbound);

(where lowerbound is inclusive and upperbound exclusive).

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