23

Following up on this answer for creating an array of specified length, I executed the below to get a corresponding result but filled with random numbers, instead of zeros.

var randoms = Array(4).fill(Math.floor(Math.random() * 9));

Well, mathematically speaking it's random, all right. But I'd like the randomness to be visible within the array and not only between runs, of course. Stupid computer... Don't do what I say. Do what I want!

I can iterate and put it my random (and varying) values. But I wonder, of pure curiosity, if it's possible to get the right result with a one-liner, like above, MatLab-style. Do I need to call eval(function()...)? I've heard a lot of bad things about eval...

Note that the above produces code like this:

[7, 7, 7, 7]
[3, 3, 3, 3]

etc. while I want something like

[1, 2, 3, 4]
[4, 3, 8, 4]

4
  • I don't understand But I'd like the randomness to be visible within the array and not only between runs, of course. AFAIU, you just want to create an array of length n with random numbers.
    – Tushar
    Jan 23, 2016 at 17:23
  • @Tushar If you run the line in the console, you'll see... It creates a single random number and copies it in on all places as a fix number. First when you run again, you'll get a set of other numbers (all the same for each run). Easy to miss, huh? I've updated the question. Thanks. Jan 23, 2016 at 17:26
  • "The fill() method fills all the elements of an array from a start index to an end index with a static [sic!] value." MDN Jan 23, 2016 at 17:31
  • 1
    @NinaScholz Yeah, that's what I recognized. It's a random value. True that. But not what I wanted. I recall a teacher claiming that there's no function for generating only prime numbers. I contradicted him by function(){ return 13; } He wasn't happy. Everybody else was amused. Jan 23, 2016 at 17:35

6 Answers 6

28

What does Array#fill do?

According to MDN

The fill() method fills all the elements of an array from a start index to an end index with a static value.

You can use Function#apply, Array#map, Math.floor(), Math.random().

In ES6, Array#from and Arrow function can be used.

Array.from({length: 6}, () => Math.floor(Math.random() * 9));

Array.apply(null, Array(6)).map(() => Math.floor(Math.random() * 9));

var randomArr = Array.from({length: 6}, () => Math.floor(Math.random() * 9));

document.getElementById('result').innerHTML = JSON.stringify(randomArr, 0, 4); // For demo only
<pre id="result"></pre>

In ES5:

Array.apply(null, Array(6)).map(function(item, index){
    return Math.floor(Math.random() * 9);
});

var randomArr = Array.apply(null, Array(6)).map(function(item, index){
    return Math.floor(Math.random() * 9)
});

document.getElementById('result').innerHTML = JSON.stringify(randomArr, 0, 4);
<pre id="result"></pre>

What is Array.apply(null, Array(n))? Can new Array(n) used here?

Both the above code create new array of six elements, each element having value as undefined. However, when used new syntax, the created array is not iterable. To make the array iterable, Array.apply(null, Array(6)) syntax is used.


If you have lodash included on page, it's really easy.

_.times(6, _.random.bind(0, 100))
        ^                        - Number of elements in array
                         ^       - Random number range min
                            ^^^  - Random number range max

Note: This answer is inspired from Colin Toh's blog

2
  • 1
    With ES2015 you can also do: Array.from({length: 6}, () => Math.floor(Math.random() * 9)) Jan 23, 2016 at 21:19
  • Thank you @NicolaBizzoca. Didn't know that. Updated answer.
    – Tushar
    Jan 24, 2016 at 6:19
12

I wonder if it's possible to get the right result with a one-liner...

var randoms = [...Array(4)].map(() => Math.floor(Math.random() * 9));

document.body.innerText = randoms;

0
6
var randoms = Array(4).fill(Math.floor(Math.random() * 9));

This line of code will create a list of 4 of the same number because fill takes a single value and repeats it for the length of the list. What you want to do is run the random number generator each time:

var makeARandomNumber = function(){
    return Math.floor(Math.random() * 9);
}
var randoms = Array(5).fill(0).map(makeARandomNumber);
console.log(randoms)
// => [4, 4, 3, 2, 6]

https://jsfiddle.net/t4jtjcde/

2
  • Yeah, I got that. I'm just unsure why @Tushar used apply() in there. It seems that I get the same result without it but I'm cautious enough to know that there might be dragons here and there. Also, I wonder why you're using the zero argument in fill(). I seem to be getting the same results without it (trying both fill(null) and simply fill()). Is it a better style? Does it prevent something down the road? Jan 24, 2016 at 14:40
  • re fill(0), just wanted to give it something, no real plan there. re Tushar's use of apply(), they mention that they do that to make the array iterable. I haven't played with it to test that behavior out, but not all objects respond to javascript's built-in looping constructs the way you'd expect because sometimes something look like an array when really it's an object with index properties. i choose to ignore these details and just use lodash for everything Jan 25, 2016 at 15:05
5

Short and simple ES6 approach -

// randomly generated n = 4 length array 0 <= array[n] <= 9
var randoms = Array.from({length: 4}, () => Math.floor(Math.random() * 10));

Enjoy!

2
  • What exactly is {length: 4} here? A search only pulls up the String length property, .length, which I believe is a different construction.
    – jtr13
    Mar 31, 2018 at 14:45
  • 1
    If as a first parameter we provide an object contained length property the Array.from() knows that it can generate a sequence of numbers. Read about it here - developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/… Apr 2, 2018 at 17:55
0

`const t = Array.from({length: n}, mapArrowFx);

1) const t10 = Array.from({length: 10}, (v, k) => k); [0, 1, 2, 3, 4, 5, 6, 7, 8, 9]

2) const tEven = Array.from({length: 10}, (v, k) => 2*k); [0, 2, 4, 6, 8, 10, 12, 14, 16, 18]

........

3)

let n=100; const tRandom= Array.from({length: n}, (v, k) => Math.floor(Math.random()*n));

...

1
  • 1
    Hmm... Are you sure this was a correct reply, mate? Seems a bit... random. Sep 23, 2016 at 10:33
0

Solution from Sized array of random unique numbers

const uniqRandomNumbers  = _.sampleSize(_.range(9), 4);
console.log(uniqRandomNumbers);
<script src="https://cdnjs.cloudflare.com/ajax/libs/lodash.js/4.17.5/lodash.min.js"></script>

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