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I have N values (integer). I'd like to know what is the most elegant way to randomly pick one of those values regarding a percentage. For example, for a 3 values example:

  • Value 1 has 30% chance to get picked
  • Value 2 has 12% chance to get picked
  • Value 3 has 45% chance to get picked

I need this for a program i'm developing with Java but a pseudo code algorithm or a code in any other language would be ok.

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pick one of those values regarding a percentage - didn't understand this sentence.. –  Rohit Jain Oct 1 '12 at 11:56
3  
30 + 12 + 45 equals 87. What about the other 13? –  David Grant Oct 1 '12 at 11:57

2 Answers 2

up vote 5 down vote accepted

One way of doing this without calculating values to use is

double d = Math.random() * 100;
if ((d -= 30) < 0) return 1;
if ((d -= 12) < 0) return 2;
if ((d -= 45) < 0) return 3;
return 4;
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Proposed algorithm:

  • generate a random number (n) between 0 and 1 (assuming your random generator is well distributed)
  • if n < 0.30 return value 1
  • if n < 0.42 return value 2
  • else if n < 0.87 return value 3
  • else say Hello (your numbers don't add up to 100%)
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2  
Not else but else if, because 30 + 12 + 45 < 100. –  sp00m Oct 1 '12 at 11:57
    
@sp00m well spotted –  assylias Oct 1 '12 at 11:57
    
use new Random().nextInt(87) an add 1 at the result (or decrease by one step of if) - to improve if selection use 45, 30, 12 order –  cl-r Oct 1 '12 at 12:04
1  
@assylias maybe you wanted to write if n < 0.30 ELSE if n < 0.42...? –  nathan Oct 1 '12 at 12:06
2  
@nathan The question being tagged java, it seems fairly intuitive that return value 1 will exit the whole if/else if block. –  assylias Oct 1 '12 at 12:14

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