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I have 3 options, and they have to happen in a particular ratio. Out of 10 times, this is the ratio:

  • 8x Option 1
  • 1x Option 2
  • 1x Option 3

Right now I have the following:

if (rand(8,10)) {
    option1();
} elseif (rand(1,10)) {
    option2();
} elseif (rand(1,10)) {
    option3();
} 

But this gets option 1 way more than 8 times. Option 2 never occurs and option 3 rarely.

So, what is the correct way to achieve this?

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3 Answers 3

up vote 2 down vote accepted

Try with something like this.

$roll = rand(1,10);   
if ($roll == 1) {
    option2();
} elseif ($roll == 2) {
    option3();
} else {
    option1();
} 

If random number is 1 (10% of the time), option 2.

If random number is 2 (10% of the time), option 3.

If random number is anything else (80% of the time), option 1.

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Thanks, this works :) –  priktop Apr 29 '11 at 13:43
$r = rand() / getrandmax();
if ($r <= 0.8) {
  option1();
} elseif ($r <= 0.9) {
  option2();
} else {
  option3();
}
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1  
@cmmi this will not maintain the exact ratio that priktop wants. –  Alec Smart Apr 29 '11 at 13:18
    
Thanks, it works better than my version, bit it seems that option3 never occurs? i've done 25 tests but no option 3 :( –  priktop Apr 29 '11 at 13:35
    
@Alec could you specify why this will not work as requested? I am wondering. 0 <= $r <= 1, so in 80% of the requests $r will be <= 0.8 –  pintxo Apr 29 '11 at 14:22
    
@Alec I just did a little benchmark. The distirbution is similar, no difference using the 0-1 approach or the rand(1,10) one. But interestingly the 0-1 approach seems to be faster then the 1-10 approach. Although the differences are minor. –  pintxo Apr 29 '11 at 14:41
    
@cmmi priktop wants the probability to be strictly enforced. So in a set of 10 outcomes, you want 8 of option1, 1 of option2 and 1 of option3. from the question atleast, it appears that he only wants the order randomized. –  Alec Smart Apr 30 '11 at 13:20

No, this is not the right way. You can use something like:

<?php

// Store in DB use of options 1, 2 and 3
//  field     value
// -----------------
//  options1   0
//  options2   0
//  options3   0

// If $options1 = 8, $options2= 1 and $options3 = 1, then clear all values from DB

$random = rand(1,3);

if ($random == 1) {
  if ($options1 < 9) { option1(); } else { // tryagain; }
} elseif (
...


// update DB with new value for used option

Sorry the code is slightly messed up (the if part) but I guess you can understand. Let me know if you need the whole code.

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1  
Whats the db good for? Probability usually doesnt (and never should) take care of any previous, or upcoming event. Therefore this is a wrong approach. –  KingCrunch Apr 29 '11 at 13:27
    
@KingCrunch if you want the ratio to be strictly enforced and only the order randomized you need a db to store the outcome. did you even read the code? –  Alec Smart Apr 30 '11 at 13:20

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