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How can I create a array with 40 elements, with random values from 0 to 39 ? Like [4, 23, 7, 39, 19, 0, 9, 14 ...]

I tried using solutions from here:

http://freewebdesigntutorials.com/javaScriptTutorials/jsArrayObject/randomizeArrayElements.htm

but the array I get is very little randomized. It generates a lot of blocks of successive numbers...

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9 Answers 9

up vote 13 down vote accepted

Here's a solution that shuffles a list of unique numbers (no repeats, ever).

for (var a=[],i=0;i<40;++i) a[i]=i;

// http://stackoverflow.com/questions/962802#962890
function shuffle(array) {
  var tmp, current, top = array.length;
  if(top) while(--top) {
    current = Math.floor(Math.random() * (top + 1));
    tmp = array[current];
    array[current] = array[top];
    array[top] = tmp;
  }
  return array;
}

a = shuffle(a);

If you want to allow repeated values (which is not what the OP wanted) then look elsewhere. :)

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1  
This solution is good if the numbers should be unique, but this is a completely different statistical/probabilistic thing. I hope this was clear to the OP and was not relevant in their case, but in certain cases it can have a big impact on the correctness of the program. (I'm not critizing the answer, just raising a flag for future readers. You might want to mention that.) See also: en.wikipedia.org/wiki/Combination (distinction between "with" or "without repetition" –  chiccodoro Aug 25 '14 at 16:06

.. the array I get is very little randomized. It generates a lot of blocks of successive numbers...

Sequences of random items often contain blocks of successive numbers, see the Gambler's Fallacy. For example:

.. we have just tossed four heads in a row .. Since the probability of a run of five successive heads is only 1⁄32 .. a person subject to the gambler's fallacy might believe that this next flip was less likely to be heads than to be tails. http://en.wikipedia.org/wiki/Gamblers_fallacy

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+1 exactly. One needs to decide whether one needs real (statistically) random numbers, or numbers that "look random". –  chiccodoro Aug 25 '14 at 16:08

Math.random() will return a number between 0 and 1(exclusive). So, if you want 0-40, you can multiple it by 40, the highest the result can ever be is what you're multiplying by.

var arr = [];
for (var i=0, t=40; i<t; i++) {
    arr.push(Math.round(Math.random() * t))
}
document.write(arr);

http://jsfiddle.net/robert/tUW89/

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1  
To clarify: that's a letter L, not the number 1, in "l = 40", "i < l" and "Math.random() * l". The font makes it hard to tell. –  Mu Mind Apr 29 '11 at 20:17

Since the range of numbers is constrained, I'd say the best thing to do is generate the array, fill it with numbers zero through 39 (in order), then shuffle it.

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Here's a visualization of this technique (although that page uses a terrible shuffle algorithm). –  Phrogz Apr 29 '11 at 20:09
    
but how do I do that? –  Alexandra Apr 29 '11 at 20:09
    
I don't know that he wanted every number between, but rather completely random? If he's fine with random order, static values then this will work fine. –  Robert Apr 29 '11 at 20:10
    
which might do the job, but will give slightly different results than if you used Math.random() 40 times, since it will enforce each number appearing once and no repeats. –  Mu Mind Apr 29 '11 at 20:13
var myArray = [];
var arrayMax = 40;
var limit = arrayMax + 1;
for (var i = 0; i < arrayMax; i++) {
  myArray.push(Math.floor(Math.random()*limit));
}

This above is the traditional way of doing it but I second @Pointy and @Phrogz if you want to avoid duplicates in your array without having to do expensive computation

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from the page suggested by @Phrogz

for (var i=0,nums=[];i<49;i++) nums[i]={ n:i, rand:Math.random() };
nums.sort( function(a,b){ a=a.rand; b=b.rand; return a<b?-1:a>b?1:0 } );
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I needed something a bit different than what these solutions gave, in that I needed to create an array with a number of distinct random numbers held to a specified range. Below is my solution.

function getDistinctRandomIntForArray(array, range){
   var n = Math.floor((Math.random() * range));
   if(array.indexOf(n) == -1){        
    return n; 
   } else {
    return getDistinctRandomIntForArray(array, range); 
   }
}

function generateArrayOfRandomInts(count, range) {
   var array = []; 
   for (i=0; i<count; ++i){
    array[i] = getDistinctRandomIntForArray(array, range);
   };
   return array; 
}

I would have preferred to not create a loop that has the possibility to end up with a lot of unnecessary calls (if your count, and range are high and are close to the same number) but this is the best I could come up with.

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function shuffle(maxElements) {
    //create ordered array : 0,1,2,3..maxElements
    for (var temArr = [], i = 0; i < maxElements; i++) {
        temArr[i] = i;
    }

    for (var finalArr = [maxElements], i = 0; i < maxElements; i++) {
        //remove rundom element form the temArr and push it into finalArrr
        finalArr[i] = temArr.splice(Math.floor(Math.random() * (maxElements - i)), 1)[0];
    }

    return finalArr
}

I guess this method will solve the issue with the probabilities, only limited by random numbers generator.

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Using some new ES6 features, this can now be achieved using:

function getRandomInt(min, max) {
    "use strict";
    if (max < min) {
        // Swap min and max
        [min, max] = [min, max];
    }

    // Generate random number n, where min <= n <= max
    let range = max - min + 1;
    return Math.floor(Math.random() * range) + min;
}

let values = Array.from({length: 40}, () => getRandomInt(0, 40));

console.log(values);

Note that this solution will only work in modern browsers that support these ES6 features: arrow functions and Array.from().

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