55

In python, you can do this:

[([None] * 9) for x in range(9)]

and you'll get this:

[[None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None],
 [None, None, None, None, None, None, None, None, None]]

How can I do the equivalent in javascript?

  • 6
    nested loops? Sometimes you'd be better off just sitting down and banging out some repetitive-looking code rather than wishing every language had ever possible shortcut in it. – Marc B Nov 28 '11 at 19:47
  • @Marc B - Beat me to the punch there – Richard JP Le Guen Nov 28 '11 at 19:48
  • You could do this shortcut in js as well if the undefined properties from new Array would enumerate ... too bad they don't :( – Esailija Nov 28 '11 at 19:57
  • @Esailija They do enumerate if (a) you fill them or (b) you iterate with for...of. – user663031 Oct 12 '15 at 11:46

17 Answers 17

69
var matrix = [];
for(var i=0; i<9; i++) {
    matrix[i] = new Array(9);
}

... or:

var matrix = [];
for(var i=0; i<9; i++) {
    matrix[i] = [];
    for(var j=0; j<9; j++) {
        matrix[i][j] = undefined;
    }
}
| improve this answer | |
  • 4
    That's not empty though. just replace the inner loop with matrix[j] = new Array(9) – Esailija Nov 28 '11 at 19:49
  • 1
    There is something vaguely unsatisfying intellectually about using two different paradigms to create an array, first a loop, then a constructor. – user663031 Oct 12 '15 at 11:27
  • 1
    Sure, this works, and may be the best solution. But somehow it seems to be missing the spirit of the question, which I interpreted as being "is there some equivalently compact and elegant way to do this". A little bit surprised that an answer that nests two loops to fill out a 2d array would both be upvoted so heavily and also accepted. – user663031 Oct 12 '15 at 11:49
73

Array.fill

Consider using fill:

Array(9).fill().map(()=>Array(9).fill())

The idea here is that fill() will fill out the items with undefined, which is enough to get map to work on them.

You could also fill directly:

Array(9).fill(Array(9))

Alternatives to Array(9).fill() include

Array(...Array(9))
[].push(...Array(9))
[].concat(Array(9))
Array.from(Array(9))

We can rewrite the solution a bit more semantically as:

function array9() { return Array(9).fill(); }
array9().map(array9)

or

function array(n) { return Array(n).fill(); }
array(9).map(() => array(9))

Array.from provides us with an optional second mapping argument, so we have the alternative of writing

Array.from(Array(9), () => Array.from(Array(9));

or, if you prefer

function array9(map) { return Array.from(Array(9), map); }
array9(array9);

For verbose description and examples, see Mozilla's Docs on Array.prototype.fill() here.
and for Array.from(), here.

Note that neither Array.prototype.fill() nor Array.from() has support in Internet Explorer. A polyfill for IE is available at the above MDN links.

Partitioning

partition(Array(81), 9)

if you have a partition utility handy. Here's a quick recursive one:

function partition(a, n) {
  return a.length ? [a.splice(0, n)].concat(partition(a, n)) : [];
}  

Looping

We can loop a bit more efficiently with

var a = [], b;
while (a.push(b = []) < 9) while (b.push(null) < 9);

Taking advantage of the fact that push returns the new array length.

| improve this answer | |
  • 1
    Very thorough. Nice response! – jamesplease Oct 12 '15 at 12:42
  • Note: If you want to fill the array with a certain number, e.g. 0, you can use var a = Array(rows).fill(Array(columns).fill(0));. Example – FatalMerlin Oct 17 '17 at 14:04
  • 29
    Note that using Array(9).fill(Array(9)) will set each row to the same array, meaning changing one row will affect the other rows. See this CodePen as an example: codepen.io/anon/pen/bMxjaG?editors=0012 – givemesnacks May 16 '18 at 0:39
  • @givemesnacks is right... it's useless if you want to write each element afterwards with a specific x, y because they all change ... – FluffyBeing Nov 15 '19 at 5:26
  • An edit should be made, because Array(9).fill(Array(9)) is a really dangerous piece of code.. – Tofandel May 13 at 14:00
13

// initializing depending on i,j:
var M=Array.from({length:9}, (_,i) => Array.from({length:9}, (_,j) => i+'x'+j))

// Print it:

console.table(M)
// M.forEach(r => console.log(r))
document.body.innerHTML = `<pre>${M.map(r => r.join('\t')).join('\n')}</pre>`
// JSON.stringify(M, null, 2) // bad for matrices

Beware that doing this below, is wrong:

// var M=Array(9).fill([]) // since arrays are sparse
// or Array(9).fill(Array(9).fill(0))// initialization

// M[4][4] = 1
// M[3][4] is now 1 too!

Because it creates the same reference of Array 9 times, so modifying an item modifies also items at the same index of other rows (since it's the same reference), so you need an additional call to .slice or .map on the rows to copy them (cf torazaburo's answer which fell in this trap)

note: It may look like this in the future, with slice-notation-literal proposal (stage 1)

const M = [...1:10].map(i => [...1:10].map(j => i+'x'+j))
| improve this answer | |
11

There is something about Array.fill I need to mention.

If you just use below method to create a 3x3 matrix.

Array(3).fill(Array(3).fill(0));

You will find that the values in the matrix is a reference.

enter image description here


Optimized solution (prevent passing by reference):

If you want to pass by value rather than reference, you can leverage Array.map to create it.

Array(3).fill(null).map(() => Array(3).fill(0));

enter image description here

| improve this answer | |
4

This is an exact fix to your problem, but I would advise against initializing the matrix with a default value that represents '0' or 'undefined', as Arrays in javascript are just regular objects, so you wind up wasting effort. If you want to default the cells to some meaningful value, then this snippet will work well, but if you want an uninitialized matrix, don't use this version:

/**
* Generates a matrix (ie: 2-D Array) with: 
* 'm' columns, 
* 'n' rows, 
* every cell defaulting to 'd';
*/
function Matrix(m, n, d){
    var mat = Array.apply(null, new Array(m)).map(
        Array.prototype.valueOf,
        Array.apply(null, new Array(n)).map(
            function() {
               return d;
            }
        )
    );
    return mat;
}

Usage:

< Matrix(3,2,'dobon');
> Array [ Array['dobon', 'dobon'], Array['dobon', 'dobon'], Array['dobon', 'dobon'] ]

If you would rather just create an uninitialized 2-D Array, then this will be more efficient than unnecessarily initializing every entry:

/**
* Generates a matrix (ie: 2-D Array) with: 
* 'm' columns, 
* 'n' rows, 
* every cell remains 'undefined';
*/
function Matrix(m, n){
    var mat = Array.apply(null, new Array(m)).map(
        Array.prototype.valueOf,
        new Array(n)
    );
    return mat;
}

Usage:

< Matrix(3,2);
> Array [ Array[2], Array[2], Array[2] ]
| improve this answer | |
  • could you explain please what's going on in your code? – Olena Horal Aug 31 '15 at 13:43
4

If you really like one-liners and there is a use for underscore.js in your project (which is a great library) you can do write-only things like:

_.range(9).map(function(n) {
      return _.range(9).map(function(n) {
            return null;
      });
});

But I would go with standard for-cycle version mentioned above.

| improve this answer | |
  • I think you're missing a paren somewhere.. jslint likes this slightly modified version _.range(16).map(function (x) { return _.range(16).map(function (y) { return null }); }); }); – synthesizerpatel Nov 23 '13 at 12:02
  • you don't need the inner _.range(9).map..., it can be replaced with new Array(9) – pomber Jul 9 '15 at 22:29
  • @pomber try new Array(9).map(i=>1) in you console – caub Jan 18 '16 at 17:07
1

The question is slightly ambiguous, since None can translate into either undefined or null. null is a better choice:

var a = [], b;
var i, j;
for (i = 0; i < 9; i++) {
  for (j = 0, b = []; j < 9; j++) {
    b.push(null);
  }
  a.push(b);
}

If undefined, you can be sloppy and just don't bother, everything is undefined anyway. :)

| improve this answer | |
0

Here's one, no looping:

(Math.pow(10, 20)+'').replace((/0/g),'1').split('').map(parseFloat);

Fill the '20' for length, use the (optional) regexp for handy transforms and map to ensure datatype. I added a function to the Array prototype to easily pull the parameters of 'map' into your functions.. bit risky, some people strongly oppose touching native prototypes, but it does come in handy..

    Array.prototype.$args = function(idx) {
        idx || (idx = 0);
        return function() {
            return arguments.length > idx ? arguments[idx] : null;
        };
    };

// Keys
(Math.pow(10, 20)+'').replace((/0/g),'1').split('').map(this.$args(1));
[0, 1, 2, 3, 4, 5, 6, 7, 8, 9, 10, 11, 12, 13, 14, 15, 16, 17, 18, 19, 20]

// Matrix
(Math.pow(10, 9)+'').replace((/0/g),'1').split('').map(this.$args(1)).map(this.$args(2))
| improve this answer | |
  • I'm not getting this. Where is the this in this.$args(1) given as the callaback to map supposed to come from? – user663031 Oct 12 '15 at 11:31
0

better. that exactly will work.

let mx = Matrix(9, 9);

function Matrix(w, h){
    let mx = Array(w);
    for(let i of mx.keys())
        mx[i] = Array(h);
    return mx;
}


what was shown

Array(9).fill(Array(9)); // Not correctly working

It does not work, because all cells are fill with one array

| improve this answer | |
0

Use this function or some like that. :)

function createMatrix(line, col, defaultValue = 0){ 
    return new Array(line).fill(defaultValue).map((x)=>{ return new Array(col).fill(defaultValue); return x; }); 
}
var myMatrix = createMatrix(9,9);
| improve this answer | |
0

JavaScript doesn’t have a built-in 2D array concept, but you can certainly create an array of arrays.

function createMatrix(row, column, isEmpty) {
        let matrix = []
        let array = []
        let rowColumn = row * column
        for (let i = 1; i <= rowColumn; i++) {
            isEmpty ?  array.push([]) :  array.push(i)

            if (i % column === 0) {
                matrix.push(array)
                array = []
            }
        }
        return matrix
    }

createMatrix(5, 3, true)

or

function createMatrix(row, column, from) {

        let [matrix, array] = [[], []],
            total = row * column

        for (let element = from || 1; element <= total; element++) {
            array.push(element)
            if (element % column === 0) {
                matrix.push(array)
                array = []
            }
        }

        return matrix
    }

createMatrix(5, 6, 1)
| improve this answer | |
-1

Well, you can create an empty 1-D array using the explicit Array constructor:

a = new Array(9)

To create an array of arrays, I think that you'll have to write a nested loop as Marc described.

| improve this answer | |
-1

You can add functionality to an Array by extending its prototype object.

Array.prototype.nullify = function( n ) {
    n = n >>> 0;
    for( var i = 0; i < n; ++i ) {
        this[ i ] = null;
    }
    return this;
};

Then:

var arr = [].nullify(9);

or:

var arr = [].nullify(9).map(function() { return [].nullify(9); });
| improve this answer | |
  • @Tobo It ensures it's a non-negative and casts to an int at the same time. If n is "-1" or -1 it'll become 4294967295. It's what I'd consider incorrect behavior as an exception being thrown or an empty result being returned is how most of the standard JS functions would handle this. It should ideally be if (typeof n !== "number" || n < 0 || isNaN(n)) { throw exception or return undefined/[] here }. Also, it's generally an anti-pattern to prototype your methods into the built in JS objects. Google on that subject if interested. – Joseph Lennox Apr 30 '14 at 17:59
-1

Coffeescript to the rescue!

[1..9].map -> [1..9].map -> null

| improve this answer | |
-1

I'll give it my shot as well

var c = Array;

for( var i = 0, a = c(9); i < 9; a[i] = c(9), i++ );

console.log( a.join(",") );
//",,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,,"

Readable and maintainable !

| improve this answer | |
-1
Array.from(new Array(row), () => new Array(col).fill(0));
| improve this answer | |
  • 1
    when using Array(row).fill(Array(col).fill(0)) if you try to modify an item you end up modifying the whole array – raquelhortab Jun 23 at 9:43
-2

With ES6 spread operator: Array(9).fill([...Array(9)])

| improve this answer | |

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