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I have a variable that has a number between 1-3.

I need to randomly generate a new number between 1-3 but it must not be the same as the last one.

It happens in a loop hundreds of times.

What is the most efficient way of doing this?

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1  
is it between 1-3, are we talking whole numbers? so options are 1, 2 or 3? –  Filype Apr 17 '12 at 10:26
    
yes, only 1,2,3 –  Moshe Shaham Apr 17 '12 at 10:26
2  
You realise that generating a number from 1-3 without repeating is a) not random and b) functionally equivalent to selecting one of two numbers, i.e. probability 0.5? –  Widor Apr 17 '12 at 10:26
1  
ok i understand b) but why a)? –  Moshe Shaham Apr 17 '12 at 10:28
    
What have you tried so far? The efficiency of the loop depends on many things: Are you using this random in the loop only, should it be passed forward as an argument etc. –  Teemu Apr 17 '12 at 10:39

6 Answers 6

up vote 5 down vote accepted

May the powers of modular arithmetic help you!!

This function does what you want using the modulo operator:

/**
 * generate(1) will produce 2 or 3 with probablity .5
 * generate(2) will produce 1 or 3 with probablity .5
 * ... you get the idea.
 */
function generate(nb) {
    rnd = Math.round(Math.random())
    return 1 + (nb + rnd) % 3
}

if you want to avoid a function call, you can inline the code.

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1  
Nice, I did exactly the same inline :) –  Bergi Apr 17 '12 at 10:44

Here is a jsFiddle that solves your problem : http://jsfiddle.net/AsMWG/

I've created an array containing 1,2,3 and first I select any number and swap it with the last element. Then I only pick elements from position 0 and 1, and swap them with last element.

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var x = 1; // or 2 or 3
// this generates a new x out of [1,2,3] which is != x
x = (Math.floor(2*Math.random())+x) % 3 + 1;
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You can randomly generate numbers with the random number generator built in to javascript. You need to use Math.random().

If you're push()-ing into an array, you can always check if the previously inserted one is the same number, thus you regenerate the number. Here is an example:

var randomArr = [];
var count = 100;
var max = 3;
var min = 1;

while (randomArr.length < count) {
    var r = Math.floor(Math.random() * (max - min) + min);

    if (randomArr.length == 0) {
        // start condition
        randomArr.push(r); 
    } else if (randomArr[randomArr.length-1] !== r) { 
        // if the previous value is not the same 
        // then push that value into the array
        randomArr.push(r);
    }
}
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As Widor commented generating such a number is equivalent to generating a number with probability 0.5. So you can try something like this (not tested):

var x; /* your starting number: 1,2 or 3 */
var y = Math.round(Math.random()); /* generates 0 or 1 */

var i = 0;
var res = i+1;
while (i < y) {
   res = i+1;
   i++;
   if (i+1 == x) i++;
}
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The code is tested and it does for what you are after.

var RandomNumber = {

    lastSelected: 0,

    generate: function() {

        var random = Math.floor(Math.random()*3)+1;

        if(random == this.lastSelected) {
            generateNumber();
        }
        else {
            this.lastSelected = random;
            return random;
        }
    }
}


RandomNumber.generate();
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1  
Why was this downvoted? It's pretty good and not using array like all the others. –  Florian Margaine Apr 17 '12 at 10:45

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