34

How do I make it so ..

  • 80% of the time it will say sendMessage("hi");
  • 5 % of the time it will say sendMessage("bye");
  • and 15% of the time it will say sendMessage("Test");

Does it have to do something with Math.random()? like

if (Math.random() * 100 < 80) {
sendMessage("hi");
}
else if (Math.random() * 100 < 5) {
sendMessage("bye");
}
  • 7
    hmmm ... that adds up to 145%. – john.k.doe Jul 19 '12 at 0:07
  • 1
    it's possible, if you look at it as if he has three chances to say something or nothing; once 90%, once 50% and once 5% – Tom Jul 19 '12 at 0:09
  • its definetly not impossible , its like a scrolling add that give greater priority to certain ads, you could do something like an array where there are 100 items , 40 are a, 30 are b , and 30 are c , then randomly choose one, just not 90%, 50%, and 5% - rethink your math – Scott Selby Jul 19 '12 at 0:10
  • @Tom: as in, it is possible for it to say "hi bye test"? The code uses else if, not a simple if, so I doubt that's a real option, but still, good catch. – sarnold Jul 19 '12 at 0:10
  • now that it no longer says 145%, either the solutions below that suggest calling random once and using the result would be the way to accomplish this. – john.k.doe Jul 19 '12 at 0:14
45

Yes, Math.random() is an excellent way to accomplish this. What you want to do is compute a single random number, and then make decisions based on that:

var d = Math.random();
if (d < 0.5)
    // 50% chance of being here
else if (d < 0.7)
    // 20% chance of being here
else
    // 30% chance of being here

That way you don't miss any possibilities.

  • 3
    The key point to make is that you should generate and use ONE random number. – Stephen C Jul 19 '12 at 0:40
  • why'd you put the word "double" – jack blank Jan 21 '15 at 7:50
  • 4
    @user2537537 -- the first line declares (and defines) a Java double-precision floating-point variable; that's just the correct Java syntax for declaring a variable. – Ernest Friedman-Hill Jan 21 '15 at 12:55
  • Wait, shouldn't it be "<= 0.5" instead of "< 0.5", because how it is now is 49% chance, not 50%. – Dysanix Official Jan 20 '17 at 20:36
  • 1
    better (and more generic) soluion here: stackoverflow.com/questions/44437797/… – symcbean Apr 24 at 15:21
16

For cases like this it is usually best to generate one random number and select the case based on that single number, like so:

int foo = Math.random() * 100;
if (foo < 80) // 0-79
    sendMessage("hi");
else if (foo < 85) // 80-84
    sendMessage("bye");
else // 85-99
    sendMessage("test");
  • @john: Thanks for fixing my stupid. :) – sarnold Jul 19 '12 at 0:11
0

I made a percentage chance function by creating a pool and using the fisher yates shuffle algorithm for a completely random chance. The snippet below tests the chance randomness 20 times.

var arrayShuffle = function(array) {
   for ( var i = 0, length = array.length, swap = 0, temp = ''; i < length; i++ ) {
      swap        = Math.floor(Math.random() * (i + 1));
      temp        = array[swap];
      array[swap] = array[i];
      array[i]    = temp;
   }
   return array;
};

var percentageChance = function(values, chances) {
   for ( var i = 0, pool = []; i < chances.length; i++ ) {
      for ( var i2 = 0; i2 < chances[i]; i2++ ) {
         pool.push(i);
      }
   }
   return values[arrayShuffle(pool)['0']];
};

for ( var i = 0; i < 20; i++ ) {
   console.log(percentageChance(['hi', 'test', 'bye'], [80, 15, 5]));
}

-2

Here is a very simple approximate solution to the problem. Sort an array of true/false values randomly and then pick the first item.

This should give a 1 in 3 chance of being true..

var a = [true, false, false]
a.sort(function(){ return Math.random() >= 0.5 ? 1 : -1 })[0]
  • Array.prptotype.sort may call the sort function more than once with the same arguments. If you want the probability to be exactly 1/3 you need to make your sort function idempotent. – Chris Browne Jun 27 '18 at 7:30
  • @chris-browne I did say that it's an "approximates solution" but I will make the fix so that it's closer to 1/3. Thanks for the input. – seanbehan Jun 27 '18 at 23:24

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