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JavaScript

I've tried searching for something like this, but I am not able to find it.

It's a simple idea:

a. Take a random number between 0 to 10.

b. Let's say the random number rolled is a 3.

c. Then, save the number (the 3).

d. Now, take another random number again between 0 to 10, but it can't be the 3, because it has already appeared.

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And what is the question? Have you tried to write a program and if so, where did you get stuck? Because the general idea of the program is already there (your list of subtasks sounds OK), and should work. –  fvu Oct 20 '12 at 11:03
    
Your problem isn't well-defined. Does the probability of the first item and the second item being chosen both have to be equal, or are they intentionally different? –  Kache Oct 20 '12 at 11:04
    
yes, of course i've tried, there are many codes in internet about generating random number with JS. but i don't know how to make the c) and d) –  seRgiOOOOOO Oct 20 '12 at 11:04
    
My -1. Lazy as hell. Can't even be bothered spelling the word 'something'. Just have a think about it for a second. How does drawing cards from a deck of them work? Simple. You shuffle, then 1 by 1 extract from the list (pile) of shuffled cards. –  enhzflep Oct 20 '12 at 11:05

4 Answers 4

up vote 6 down vote accepted

One solution is to generate an array (a "bucket") with all the values you want to pick, in this case all numbers from 0 to 10. Then you pick one randomly from the array and remove it from the bucket. Note that the example below doesn't check if the bucket is empty, so if you call the function below more than 10 times you will get an error.

var bucket = [];

for (var i=0;i<=10;i++) {
    bucket.push(i);
}

function getRandomFromBucket() {
   var randomIndex = Math.floor(Math.random()*bucket.length);
   return bucket.splice(randomIndex, 1)[0];
}

// will pick a random number between 0 and 10, and can be called 10 times
console.log(getRandomFromBucket());
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The most optimal and elegant solution! –  skovalyov Oct 20 '12 at 11:06
    
Really nice! +1 –  DarkCthulhu Oct 20 '12 at 11:07

Var rnd= getRnd();

While(rnd != lastRnd) rnd = getRnd();

Where getRnd is a function that generates your random number.

Actually you would have to check if your current random number were in an array... And if your list of possible random numbers is small beware of infinite loop.

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Theoretically, if you're really unlucky, this could loop for quite a while. –  Kache Oct 20 '12 at 11:04

You can use something like this:

/**
* range Get an array of numbers within a range
* @param min {number} Lowest number in array
* @param max {number} Highest number in array
* @param rand {bool} Shuffle array
* @return {array}
*/
range: function( min, max, rand ) {
  var arr = ( new Array( ++max - min ) )
    .join('.').split('.')
    .map(function( v,i ){ return min + i })
  return rand
    ? arr.map(function( v ) { return [ Math.random(), v ] })
       .sort().map(function( v ) { return v[ 1 ] })
    : arr
}

And use it like so:

var arr = range( 1, 10, true )

Now you have an array with 10 numbers from 1 to 10 in random order and never repeated. So next you can do this:

arr.forEach(function( num, i ) { 
  // do something, it will loop 10 times 
  // and num will always be a different number
  // from 1 to 10
});
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Just for fun: derived from @Strilles answer a 'bucket constructor'

function RandomBucket(from,until){
  min = (Number(from) || 0);
  max = (Number(until) || 10)+1;
  this.bucket = String(Array(max-min)).split(',').map(function(i){
     return min++;
  });

  if (!RandomBucket.prototype.get){
   RandomBucket.prototype.get = function(){
      var randomValue = 
        this.bucket.length < 2
        ? this.bucket.shift()
        : this.bucket.splice(Math.floor(Math.random()*this.bucket.length),1);
       return randomValue || 'bucket empty';
      };
  }
}

See JsFiddle for usage example

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