I have a JavaScript array like:

[["$6"], ["$12"], ["$25"], ["$25"], ["$18"], ["$22"], ["$10"]]

How would I go about merging the separate inner arrays into one like:

["$6", "$12", "$25", ...]
  • gist.github.com/Nishchit14/4c6a7349b3c778f7f97b912629a9f228 This link describe ES5 & ES6 flatten – Nishchit Dhanani Nov 17 '16 at 6:42
  • 11
    All of the solutions that use reduce + concat are O((N^2)/2) where as a accepted answer (just one call to concat) would be at most O(N*2) on a bad browser and O(N) on a good one. Also Denys solution is optimized for the actual question and upto 2x faster than the single concat. For the reduce folks it's fun to feel cool writing tiny code but for example if the array had 1000 one element subarrays all the reduce+concat solutions would be doing 500500 operations where as the single concat or simple loop would do 1000 operations. – gman Jul 30 '17 at 15:45
  • There's now a standard way to flatten arrays. See post: stackoverflow.com/a/51005394/1432509 – Alister Norris Sep 14 at 15:47

63 Answers 63

up vote 1339 down vote accepted

You can use concat to merge arrays:

var arrays = [["$6"], ["$12"], ["$25"], ["$25"], ["$18"], ["$22"], ["$10"]];
var merged = [].concat.apply([], arrays);

Using the apply method of concat will just take the second parameter as an array, so the last line is identical to this:

var merged2 = [].concat(["$6"], ["$12"], ["$25"], ["$25"], ["$18"], ["$22"], ["$10"]);
  • 7
    Note that concat does not modify the source array, so the merged array will remain empty after the call to concat. Better to say something like: merged = merged.concat.apply(merged, arrays); – Nate Jan 24 '13 at 21:12
  • 55
    var merged = [].concat.apply([], arrays); seems to work fine to get it on one line. edit: as Nikita's answer already shows. – Sean Mar 15 '13 at 16:37
  • 38
    Or Array.prototype.concat.apply([], arrays). – danhbear Jan 16 '14 at 1:03
  • 23
    Note: this answer only flattens one level deep. For a recursive flatten, see the answer by @Trindaz. – Phrogz Feb 21 '14 at 14:01
  • 129
    Further to @Sean's comment: ES6 syntax makes this super concise: var merged = [].concat(...arrays) – Sethi Jul 8 '15 at 13:50
up vote 371 down vote
+100

Here's a short function that uses some of the newer JavaScript array methods to flatten an n-dimensional array.

function flatten(arr) {
  return arr.reduce(function (flat, toFlatten) {
    return flat.concat(Array.isArray(toFlatten) ? flatten(toFlatten) : toFlatten);
  }, []);
}

Usage:

flatten([[1, 2, 3], [4, 5]]); // [1, 2, 3, 4, 5]
flatten([[[1, [1.1]], 2, 3], [4, 5]]); // [1, 1.1, 2, 3, 4, 5]
  • 12
    I like this approach. It's much more general and supports nested arrays – alfredocambera Jun 7 '15 at 23:51
  • 6
    What's the memory usage profile for this solution? Looks like it creates a lot of intermediate arrays during the tail recursion.... – JBRWilkinson Jul 28 '15 at 18:28
  • 5
    @ayjay, it's the starting accumulator value for the reduce function, what mdn calls the initial value. In this case it's the value of flat in the first call to the anonymous function passed to reduce. If it is not specified, then the first call to reduce binds the first value out of the array to flat, which would eventually result in 1 being bound to flat in both the examples. 1.concat is not a function. – Noah Freitas Nov 18 '15 at 2:32
  • 14
    Or in a shorter, sexier form: const flatten = (arr) => arr.reduce((flat, next) => flat.concat(next), []); – Tsvetomir Tsonev Aug 8 '16 at 14:18
  • 7
    Riffing on @TsvetomirTsonev and Noah's solutions for arbitrary nesting: const flatten = (arr) => arr.reduce((flat, next) => flat.concat(Array.isArray(next) ? flatten(next) : next), []); – Will Aug 16 '17 at 14:24

Here's a simple and performant functional solution:

var result = [].concat.apply([], [[1],[2,3],[4]]);
console.log(result); // [ 1, 2, 3, 4 ]

No imperative mess.

  • 10
    In CoffeeScript this is [].concat([[1],[2,3],[4]]...) – amoebe Jun 21 '13 at 18:49
  • 7
    @amoebe your answer gives [[1],[2,3],[4]] as a result. The solution that @Nikita gives is correct for CoffeeScript as well as JS. – Ryan Kennedy Jul 31 '13 at 17:22
  • 4
    Ahh, I found your error. You have an extra pair of square brackets in your notation, should be [].concat([1],[2,3],[4],...). – Ryan Kennedy Aug 6 '13 at 15:27
  • 21
    I think I found your error, too. The ... are actual code, not some ellipsis dots. – amoebe Feb 23 '14 at 20:01
  • 18
    @paldepind 1. You should get yourself acquainted at least with the definition of functional programming before making nonsense accusations. My code does not mutate values, that's why it's functional. Period. 2. JS's native functions get executed by the VM, which in most cases provides an optimized implementation done in C, not in libraries. 3. Even if my code used libraries implemented imperatively, it would still be functional itself. 4. Any language compiles to machine code, which is all about mutating memory cells, so by your definition every language is imperative, which is simply absurd. – Nikita Volkov Mar 25 '14 at 15:20

It can be best done by javascript reduce function.

var arrays = [["$6"], ["$12"], ["$25"], ["$25"], ["$18"], ["$22"], ["$10"], ["$0"], ["$15"],["$3"], ["$75"], ["$5"], ["$100"], ["$7"], ["$3"], ["$75"], ["$5"]];

arrays = arrays.reduce(function(a, b){
     return a.concat(b);
}, []);

Or, with ES2015:

arrays = arrays.reduce((a, b) => a.concat(b), []);

js-fiddle

Mozilla docs

  • Can you explain what is going on here? – chovy Dec 13 '14 at 9:28
  • 1
    @JohnS Actually reduce feeds onto concat a single (array) value per turn. Proof? take out reduce() and see if it works. reduce() here is an alternative to Function.prototype.apply() – André Werlang Feb 23 '15 at 14:55
  • 3
    I would have used reduce as well but one interesting thing I learned from this snippet is that most of the time you don't need to pass a initialValue :) – José F. Romaniello Aug 21 '15 at 19:44
  • 1
    The problem with reduce is that the array cannot be empty, so you will need to add an extra validation. – calbertts Jul 5 '16 at 22:57
  • 3
    @calbertts Just pass the initial value [] and no further validations are necessary. – ftor Aug 17 '16 at 12:38

Most of the answers here don't work on huge (e.g. 200 000 elements) arrays, and even if they do, they're slow. polkovnikov.ph's answer has the best performance, but it doesn't work for deep flattening.

Here is the fastest solution, which works also on arrays with multiple levels of nesting:

const flatten = function(arr, result = []) {
  for (let i = 0, length = arr.length; i < length; i++) {
    const value = arr[i];
    if (Array.isArray(value)) {
      flatten(value, result);
    } else {
      result.push(value);
    }
  }
  return result;
};

Examples

Huge arrays

flatten(Array(200000).fill([1]));

It handles huge arrays just fine. On my machine this code takes about 14 ms to execute.

Nested arrays

flatten(Array(2).fill(Array(2).fill(Array(2).fill([1]))));

It works with nested arrays. This code produces [1, 1, 1, 1, 1, 1, 1, 1].

Arrays with different levels of nesting

flatten([1, [1], [[1]]]);

It doesn't have any problems with flattening arrays like this one.

  • Except your huge array is pretty flat. This solution won't work for deeply nested arrays. No recursive solution will. In fact no browser but Safari has TCO right now, so no recursive algorithm will perform well. – nitely Mar 4 '17 at 16:01
  • @nitely But in what real-world situation would you have arrays with more than a few levels of nesting? – Michał Perłakowski Jun 6 '17 at 13:45
  • 1
    Usually, when the array is generated out of user generated content. – nitely Jun 6 '17 at 17:05
  • How slow was the other way using apply / spread? – 0xcaff Jun 18 '17 at 15:18
  • @0xcaff In Chrome it doesn't work at all with a 200 000-element array (you get RangeError: Maximum call stack size exceeded). For 20 000-element array it takes 2-5 milliseconds. – Michał Perłakowski Jun 18 '17 at 16:02

Update: it turned out that this solution doesn't work with large arrays. It you're looking for a better, faster solution, check out this answer.


function flatten(arr) {
  return [].concat(...arr)
}

Is simply expands arr and passes it as arguments to concat(), which merges all the arrays into one. It's equivalent to [].concat.apply([], arr).

You can also try this for deep flattening:

function deepFlatten(arr) {
  return flatten(           // return shalowly flattened array
    arr.map(x=>             // with each x in array
      Array.isArray(x)      // is x an array?
        ? deepFlatten(x)    // if yes, return deeply flattened x
        : x                 // if no, return just x
    )
  )
}

See demo on JSBin.

References for ECMAScript 6 elements used in this answer:


Side note: methods like find() and arrow functions are not supported by all browsers, but it doesn't mean that you can't use these features right now. Just use Babel — it transforms ES6 code into ES5.

  • Because almost all the replies here misuse apply in this way, I removed my comments from yours. I still think using apply/spread this way is bad advise, but since no one cares... – ftor Aug 17 '16 at 13:17
  • @LUH3417 It's not like that, I really appreciate your comments. It turned out you're right -- this solution indeed doesn't work with large arrays. I posted another answer which works fine even with arrays of 200 000 elements. – Michał Perłakowski Aug 17 '16 at 14:55
  • If you are using ES6, you can reducer further to: const flatten = arr => [].concat(...arr) – Eruant Sep 14 '17 at 10:49
  • ES6 spread operator, ftw – Cumulo Nimbus Dec 19 '17 at 17:11
  • 2
    @GEMI For example trying to flatten a 500000-element array using this method gives "RangeError: Maximum call stack size exceeded". – Michał Perłakowski Feb 6 at 15:21

You can use Underscore:

var x = [[1], [2], [3, 4]];

_.flatten(x); // => [1, 2, 3, 4]

Generic procedures mean we don't have to rewrite complexity each time we need to utilize a specific behaviour.

concatMap (or flatMap) is exactly what we need in this situation.

// concat :: ([a],[a]) -> [a]
const concat = (xs,ys) =>
  xs.concat (ys)

// concatMap :: (a -> [b]) -> [a] -> [b]
const concatMap = f => xs =>
  xs.map(f).reduce(concat, [])

// id :: a -> a
const id = x =>
  x

// flatten :: [[a]] -> [a]
const flatten =
  concatMap (id)

// your sample data
const data =
  [["$6"], ["$12"], ["$25"], ["$25"], ["$18"], ["$22"], ["$10"]]

console.log (flatten (data))

foresight

And yes, you guessed it correctly, it only flattens one level, which is exactly how it should work

Imagine some data set like this

// Player :: (String, Number) -> Player
const Player = (name,number) =>
  [ name, number ]

// team :: ( . Player) -> Team
const Team = (...players) =>
  players

// Game :: (Team, Team) -> Game
const Game = (teamA, teamB) =>
  [ teamA, teamB ]

// sample data
const teamA =
  Team (Player ('bob', 5), Player ('alice', 6))

const teamB =
  Team (Player ('ricky', 4), Player ('julian', 2))

const game =
  Game (teamA, teamB)

console.log (game)
// [ [ [ 'bob', 5 ], [ 'alice', 6 ] ],
//   [ [ 'ricky', 4 ], [ 'julian', 2 ] ] ]

Ok, now say we want to print a roster that shows all the players that will be participating in game

const gamePlayers = game =>
  flatten (game)

gamePlayers (game)
// => [ [ 'bob', 5 ], [ 'alice', 6 ], [ 'ricky', 4 ], [ 'julian', 2 ] ]

If our flatten procedure flattened nested arrays too, we'd end up with this garbage result …

const gamePlayers = game =>
  badGenericFlatten(game)

gamePlayers (game)
// => [ 'bob', 5, 'alice', 6, 'ricky', 4, 'julian', 2 ]

rollin' deep, baby

That's not to say sometimes you don't want to flatten nested arrays, too – only that shouldn't be the default behaviour.

We can make a deepFlatten procedure with ease …

// concat :: ([a],[a]) -> [a]
const concat = (xs,ys) =>
  xs.concat (ys)

// concatMap :: (a -> [b]) -> [a] -> [b]
const concatMap = f => xs =>
  xs.map(f).reduce(concat, [])

// id :: a -> a
const id = x =>
  x

// flatten :: [[a]] -> [a]
const flatten =
  concatMap (id)

// deepFlatten :: [[a]] -> [a]
const deepFlatten =
  concatMap (x =>
    Array.isArray (x) ? deepFlatten (x) : x)

// your sample data
const data =
  [0, [1, [2, [3, [4, 5], 6]]], [7, [8]], 9]

console.log (flatten (data))
// [ 0, 1, [ 2, [ 3, [ 4, 5 ], 6 ] ], 7, [ 8 ], 9 ]

console.log (deepFlatten (data))
// [ 0, 1, 2, 3, 4, 5, 6, 7, 8, 9 ]

There. Now you have a tool for each job – one for squashing one level of nesting, flatten, and one for obliterating all nesting deepFlatten.

Maybe you can call it obliterate or nuke if you don't like the name deepFlatten.


Don't iterate twice !

Of course the above implementations are clever and concise, but using a .map followed by a call to .reduce means we're actually doing more iterations than necessary

Using a trusty combinator I'm calling mapReduce helps keep the iterations to a minium; it takes a mapping function m :: a -> b, a reducing function r :: (b,a) ->b and returns a new reducing function - this combinator is at the heart of transducers; if you're interested, I've written other answers about them

// mapReduce = (a -> b, (b,a) -> b, (b,a) -> b)
const mapReduce = (m,r) =>
  (acc,x) => r (acc, m (x))

// concatMap :: (a -> [b]) -> [a] -> [b]
const concatMap = f => xs =>
  xs.reduce (mapReduce (f, concat), [])

// concat :: ([a],[a]) -> [a]
const concat = (xs,ys) =>
  xs.concat (ys)

// id :: a -> a
const id = x =>
  x

// flatten :: [[a]] -> [a]
const flatten =
  concatMap (id)
  
// deepFlatten :: [[a]] -> [a]
const deepFlatten =
  concatMap (x =>
    Array.isArray (x) ? deepFlatten (x) : x)

// your sample data
const data =
  [ [ [ 1, 2 ],
      [ 3, 4 ] ],
    [ [ 5, 6 ],
      [ 7, 8 ] ] ]

console.log (flatten (data))
// [ [ 1. 2 ], [ 3, 4 ], [ 5, 6 ], [ 7, 8 ] ]

console.log (deepFlatten (data))
// [ 1, 2, 3, 4, 5, 6, 7, 8 ]

  • Frequently, when I see your replies I want to withdraw mine, because they have become worthless. Great answer! concat itself doesn't blow up the stack, only ... and apply does (along with very large arrays). I didn't see it. I just feel terrible right now. – ftor Aug 18 '16 at 22:39
  • @LUH3417 you shouldn't feel terrible. You also provide good answers with well-written explanations. Everything here is a learning experience – I often make mistakes and write bad answers too. I revisit them in a couple months and think "wtf was I thinking?" and end up completely revising things. No answer is perfect. We're all at some point on a learning curve ^_^ – user633183 Aug 19 '16 at 2:13
  • 1
    Please note that concat in Javascript has a different meaning than in Haskell. Haskell's concat ([[a]] -> [a]) would be called flatten in Javascript and is implemented as foldr (++) [] (Javascript: foldr(concat) ([]) assuming curried functions). Javascript's concat is a weird append ((++) in Haskell), which can handle both [a] -> [a] -> [a] and a -> [a] -> [a]. – ftor Feb 3 '17 at 9:36
  • I guess a better name were flatMap, because that is exactly what concatMap is: The bind instance of the list monad. concatpMap is implemented as foldr ((++) . f) []. Translated into Javascript: const flatMap = f => foldr(comp(concat) (f)) ([]). This is of course similar to your implementation without comp. – ftor Feb 3 '17 at 9:36
  • what's the complexity of that algorithm? – George Katsanos Sep 22 '17 at 7:08

A solution for the more general case, when you may have some non-array elements in your array.

function flattenArrayOfArrays(a, r){
    if(!r){ r = []}
    for(var i=0; i<a.length; i++){
        if(a[i].constructor == Array){
            r.concat(flattenArrayOfArrays(a[i], r));
        }else{
            r.push(a[i]);
        }
    }
    return r;
}
  • 4
    This approach was very effective in flattening the nested array form of result-sets you get from a JsonPath query. – kevinjansz Jun 14 '13 at 6:26
  • 1
    Added as a method of arrays: Object.defineProperty(Array.prototype,'flatten',{value:function(r){for(var a=this,i=0,r=r||[];i<a.length;++i)if(a[i]!=null)a[i] instanceof Array?a[i].flatten(r):r.push(a[i]);return r}}); – Phrogz Feb 21 '14 at 13:59
  • This will break if we manually pass in the second argument. For example, try this: flattenArrayOfArrays (arr, 10) or this flattenArrayOfArrays(arr, [1,[3]]); - those second arguments are added to the output. – Om Shankar Aug 7 '15 at 19:10
  • 2
    this answer is not complete! the result of the recursion is never assigned anywhere, so result of recursions are lost – r3wt May 31 '16 at 18:29
  • 1
    @r3wt went ahead and added a fix. What you need to do is make sure that the current array you are maintaining, r, will actually concatenate the results from the recursion. – aug Mar 28 '17 at 1:29

To flatten an array of single element arrays, you don't need to import a library, a simple loop is both the simplest and most efficient solution :

for (var i = 0; i < a.length; i++) {
  a[i] = a[i][0];
}

To downvoters: please read the question, don't downvote because it doesn't suit your very different problem. This solution is both the fastest and simplest for the asked question.

  • 4
    I would say, "Don't look for things more cryptic." ^^ – user166390 Jun 2 '12 at 19:03
  • 3
    I mean... when I see people advising to use a library for that... that's crazy... – Denys Séguret Jun 2 '12 at 19:05
  • 3
    Ahh, to use a library just for this would be silly... but if it's already available. – user166390 Jun 2 '12 at 19:05
  • 9
    @dystroy The conditional part of the for loop isn't that readable. Or is it just me :D – Andreas Jun 2 '12 at 19:13
  • 4
    It doesn't really matter how cryptic it is. This code "flattens" this ['foo', ['bar']] to ['f', 'bar']. – jonschlinkert Feb 9 '14 at 0:06

There's a new native ECMA 2018 method called flat to do this exactly.

const arr1 = [1, 2, [3, 4]];
arr1.flat(); 
// [1, 2, 3, 4]

const arr2 = [1, 2, [3, 4, [5, 6]]];
arr2.flat();
// [1, 2, 3, 4, [5, 6]]

Another ECMAScript 6 solution in functional style:

Declare function:

const flatten = arr => arr.reduce(
  (a, b) => a.concat(Array.isArray(b) ? flatten(b) : b), []
);

and use it:

flatten( [1, [2,3], [4,[5,[6]]]] ) // -> [1,2,3,4,5,6]
  • 3
    This is nice and neat but I think you have done an ES6 overdose. There is no need for the outer function to be an arrow-function. I would stick with the arrow-function for the reduce callback but flatten itself ought to be a normal function. – Stephen Simpson Feb 23 '16 at 15:17
  • 1
    @StephenSimpson but is there a need for the outer function to be a non-arrow-function ? "flatten itself ought to be a normal function" – by "normal" you mean "non-arrow", but why? Why use an arrow function in the call to reduce then? Can you supply your line of reasoning? – user633183 Oct 3 '17 at 19:44
  • @naomik My reasoning is that it is unnecessary. It's mainly a matter of style; I should have much clearer in my comment. There is no major coding reason to use one or the other. However, the function is easier to see and read as non-arrow. The inner function is useful as an arrow function as it is more compact (and no context created of course). Arrow functions are great for creating compact easy to read function and avoiding this confusion. However, they can actually make it more difficult to read when a non-arrow would suffice. Others may disagree though! – Stephen Simpson Oct 4 '17 at 9:29
  • Getting a RangeError: Maximum call stack size exceeded – Matt Westlake Feb 7 at 14:31
  • @Matt, please share the evnironment you use to reproduce the error – diziaq Feb 8 at 4:21

What about using reduce(callback[, initialValue]) method of JavaScript 1.8

list.reduce( function( p,n){
    return p.concat( n  );
},[]);
  • 5
    [[1], [2,3]].reduce( (a,b) => a.concat(b), [] ) is more sexy. – golopot Jul 16 '16 at 3:12
  • 3
    Don't need second argument in our case simple [[1], [2,3]].reduce( (a,b) => a.concat(b)) – Umair Ahmed Dec 20 '16 at 13:40

Please note: When Function.prototype.apply ([].concat.apply([], arrays)) or the spread operator ([].concat(...arrays)) is used in order to flatten an array, both can cause stack overflows for large arrays, because every argument of a function is stored on the stack.

Here is a stack-safe implementation in functional style that weighs up the most important requirements against one another:

  • reusability
  • readability
  • conciseness
  • performance

// small, reusable auxiliary functions:

const foldl = f => acc => xs => xs.reduce(uncurry(f), acc); // aka reduce

const uncurry = f => (a, b) => f(a) (b);

const concat = xs => y => xs.concat(y);


// the actual function to flatten an array - a self-explanatory one-line:

const flatten = xs => foldl(concat) ([]) (xs);

// arbitrary array sizes (until the heap blows up :D)

const xs = [[1,2,3],[4,5,6],[7,8,9]];

console.log(flatten(xs));


// Deriving a recursive solution for deeply nested arrays is trivially now


// yet more small, reusable auxiliary functions:

const map = f => xs => xs.map(apply(f));

const apply = f => a => f(a);

const isArray = Array.isArray;


// the derived recursive function:

const flattenr = xs => flatten(map(x => isArray(x) ? flattenr(x) : x) (xs));

const ys = [1,[2,[3,[4,[5],6,],7],8],9];

console.log(flattenr(ys));

As soon as you get used to small arrow functions in curried form, function composition and higher order functions, this code reads like prose. Programming then merely consists of putting together small building blocks that always work as expected, because they don't contain any side effects.

  • 1
    Haha. Totally respect your answer, although reading functional programming like this is still like reading Japanese character by character to me (English speaker). – Tarwin Stroh-Spijer Nov 3 '16 at 20:55
  • 2
    If you find yourself implementing features of language A in language B not as a part of project with the sole goal of doing exactly this then someone somewhere had taken a wrong turn. Could it be you? Just going with const flatten = (arr) => arr.reduce((a, b) => a.concat(b), []); saves you visual garbage and explanation to your teammates why you need 3 extra functions and some function calls too. – Daerdemandt Feb 20 '17 at 16:29
  • 2
    @Daerdemandt But if you write it as separate functions, you will probably be able to reuse them in other code. – Michał Perłakowski Jun 18 '17 at 16:08
  • @MichałPerłakowski If you need to use them in several places then don't reinvent the wheel and choose a package from these - documented and supported by other people. – Daerdemandt Jun 18 '17 at 17:52
const common = arr.reduce((a, b) => [...a, ...b], [])

ES6 One Line Flatten

See lodash flatten, underscore flatten (shallow true)

function flatten(arr) {
  return arr.reduce((acc, e) => acc.concat(e), []);
}

or

function flatten(arr) {
  return [].concat.apply([], arr);
}

Tested with

test('already flatted', () => {
  expect(flatten([1, 2, 3, 4, 5])).toEqual([1, 2, 3, 4, 5]);
});

test('flats first level', () => {
  expect(flatten([1, [2, [3, [4]], 5]])).toEqual([1, 2, [3, [4]], 5]);
});

ES6 One Line Deep Flatten

See lodash flattenDeep, underscore flatten

function flattenDeep(arr) {
  return arr.reduce((acc, e) => Array.isArray(e) ? acc.concat(flattenDeep(e)) : acc.concat(e), []);
}

Tested with

test('already flatted', () => {
  expect(flattenDeep([1, 2, 3, 4, 5])).toEqual([1, 2, 3, 4, 5]);
});

test('flats', () => {
  expect(flattenDeep([1, [2, [3, [4]], 5]])).toEqual([1, 2, 3, 4, 5]);
});
  • Your 2nd example is better written as Array.prototype.concat.apply([], arr) because you create an extra array just to get to the concat function. Runtimes may or may not optimize it away when they run it, but accessing the function on the prototype doesn't look any uglier than this already is in any case. – Mörre Jul 14 at 20:58
var arrays = [["a"], ["b", "c"]];
Array.prototype.concat.apply([], arrays);

// gives ["a", "b", "c"]

(I'm just writing this as a separate answer, based on comment of @danhbear.)

If you only have arrays with 1 string element:

[["$6"], ["$12"], ["$25"], ["$25"]].join(',').split(',');

will do the job. Bt that specifically matches your code example.

  • 3
    Whoever down voted, please explain why. I was searching for a decent solution and of all the solutions I liked this one the most. – Anonymous Apr 18 '14 at 22:34
  • 2
    @Anonymous I didn't downvote it since it technically meets the requirements of the question, but it's likely because this is a pretty poor solution that isn't useful in the general case. Considering how many better solutions there are here, I'd never recommend someone go with this one as it breaks the moment you have more than one element, or when they're not strings. – Thor84no May 1 '15 at 15:53
  • 2
    I love this solution =) – Huei Tan Aug 10 '15 at 10:01
  • 2
    It doesn't handle just arrays with 1 string elements, it also handles this array ['$4', ["$6"], ["$12"], ["$25"], ["$25", "$33", ['$45']]].join(',').split(',') – alucic Jan 25 '16 at 1:17

I have done it using recursion and closures

function flatten(arr) {

  var temp = [];

  function recursiveFlatten(arr) { 
    for(var i = 0; i < arr.length; i++) {
      if(Array.isArray(arr[i])) {
        recursiveFlatten(arr[i]);
      } else {
        temp.push(arr[i]);
      }
    }
  }
  recursiveFlatten(arr);
  return temp;
}
  • 1
    Simple and sweet, this answer works better than the accepted answer. It flattens deeply nested levels to, not just the first level – Om Shankar Aug 7 '15 at 18:58
  • 1
    AFAIK that is lexical scoping and not a closure – dashambles Feb 3 '16 at 20:49
  • @dashambles is correct - the difference is that if it was a closure you would return the inner function to the outside and when the outer function is finished you can still use the inner function to access its scope. Here the lifetime of the outer function is longer than that of the inner function so a "closure" is never created. – Mörre Jul 14 at 20:26

I would rather transform the whole array, as-is, to a string, but unlike other answers, would do that using JSON.stringify and not use the toString() method, which produce an unwanted result.

With that JSON.stringify output, all that's left is to remove all brackets, wrap the result with start & ending brackets yet again, and serve the result with JSON.parse which brings the string back to "life".

  • Can handle infinite nested arrays without any speed costs.
  • Can rightly handle Array items which are strings containing commas.

var arr = ["abc",[[[6]]],["3,4"],"2"];

var s = "[" + JSON.stringify(arr).replace(/\[|]/g,'') +"]";
var flattened = JSON.parse(s);

console.log(flattened)

  • Only for multidimensional Array of Strings/Numbers (not Objects)
  • Your solution is incorrect. It will contain the comma when flattening inner arrays ["345", "2", "3,4", "2"] instead of separating each of those values to separate indices – pizza-r0b Nov 1 '16 at 22:05
  • @realseanp - you misunderstood the value in that Array item. I intentionally put that comma as a value and not as an Array delimiter comma to emphasize the power of my solution above all others, which would output "3,4". – vsync Nov 1 '16 at 23:20
  • 1
    I did misunderstand – pizza-r0b Nov 2 '16 at 0:20
  • that seems definitely the fastest solution I've seen for this; are you aware of any pitfalls @vsync (except the fact it looks a bit hacky of course - treating nested arrays as strings:D) – George Katsanos Sep 26 '17 at 19:58
  • @GeorgeKatsanos - This method will not work for array items (and nested items) which are not of Primitive value, for example an item which points to a DOM element – vsync Sep 27 '17 at 8:24

ES6 way:

const flatten = arr => arr.reduce((acc, next) => acc.concat(Array.isArray(next) ? flatten(next) : next), [])

const a = [1, [2, [3, [4, [5]]]]]
console.log(flatten(a))

ES5 way for flatten function with ES3 fallback for N-times nested arrays:

var flatten = (function() {
  if (!!Array.prototype.reduce && !!Array.isArray) {
    return function(array) {
      return array.reduce(function(prev, next) {
        return prev.concat(Array.isArray(next) ? flatten(next) : next);
      }, []);
    };
  } else {
    return function(array) {
      var arr = [];
      var i = 0;
      var len = array.length;
      var target;

      for (; i < len; i++) {
        target = array[i];
        arr = arr.concat(
          (Object.prototype.toString.call(target) === '[object Array]') ? flatten(target) : target
        );
      }

      return arr;
    };
  }
}());

var a = [1, [2, [3, [4, [5]]]]];
console.log(flatten(a));

  • ES6 way works for me. – Axel Feb 23 at 12:48

It looks like this looks like a job for RECURSION!

  • Handles multiple levels of nesting
  • Handles empty arrays and non array parameters
  • Has no mutation
  • Doesn't rely on modern browser features

Code:

var flatten = function(toFlatten) {
  var isArray = Object.prototype.toString.call(toFlatten) === '[object Array]';

  if (isArray && toFlatten.length > 0) {
    var head = toFlatten[0];
    var tail = toFlatten.slice(1);

    return flatten(head).concat(flatten(tail));
  } else {
    return [].concat(toFlatten);
  }
};

Usage:

flatten([1,[2,3],4,[[5,6],7]]);
// Result: [1, 2, 3, 4, 5, 6, 7] 
  • careful, flatten(new Array(15000).fill([1])) throws Uncaught RangeError: Maximum call stack size exceeded and freezed my devTools for 10 seconds – pietrovismara May 4 '17 at 22:42
  • @pietrovismara, my test is around 1s. – Ivan Yan Jun 6 '17 at 3:46

just the best solution without lodash

let flatten = arr => [].concat.apply([], arr.map(item => Array.isArray(item) ? flatten(item) : item))

A Haskellesque approach

function flatArray([x,...xs]){
  return x ? [...Array.isArray(x) ? flatArray(x) : [x], ...flatArray(xs)] : [];
}

var na = [[1,2],[3,[4,5]],[6,7,[[[8],9]]],10];
    fa = flatArray(na);
console.log(fa);

  • 1
    Why doesn't this answer have more upvotes?!! – monners Aug 9 '17 at 6:22
  • 1
    Agree with @monners. Hands down the most elegant solution in this whole thread. – Nicolás Fantone Aug 17 '17 at 13:18

That's not hard, just iterate over the arrays and merge them:

var result = [], input = [["$6"], ["$12"], ["$25"], ["$25"], ["$18"]];

for (var i = 0; i < input.length; ++i) {
    result = result.concat(input[i]);
}

The logic here is to convert input array to string and remove all brackets([]) and parse output to array. I'm using ES6 template feature for this.

var x=[1, 2, [3, 4, [5, 6,[7], 9],12, [12, 14]]];

var y=JSON.parse(`[${JSON.stringify(x).replace(/\[|]/g,'')}]`);

console.log(y)
  • 1
    Please edit your answer to include some explanation. Code-only answers do very little to educate future SO readers. Your answer is in the moderation queue for being low-quality. – mickmackusa Apr 21 '17 at 16:39
  • You are a god hahaha best answer ever – Waldemar Neto Apr 25 '17 at 2:04
  • this is the fastest and cleverest way to do it. I was using this to avoid recursion and easily rebuild the array, but yours is 3% faster. Way to go :) const flatten = function (A) { return A .toString() .split(',') .reduce( (a,c) => { let i = parseFloat(c); c = (!Number.isNaN(i)) ? i : c; a.push(c); return a; }, []); – Ady Ngom Sep 26 '17 at 12:14

I was goofing with ES6 Generators the other day and wrote this gist. Which contains...

function flatten(arrayOfArrays=[]){
  function* flatgen() {
    for( let item of arrayOfArrays ) {
      if ( Array.isArray( item )) {
        yield* flatten(item)
      } else {
        yield item
      }
    }
  }

  return [...flatgen()];
}

var flatArray = flatten([[1, [4]],[2],[3]]);
console.log(flatArray);

Basically I'm creating a generator that loops over the original input array, if it finds an array it uses the yield* operator in combination with recursion to continually flatten the internal arrays. If the item is not an array it just yields the single item. Then using the ES6 Spread operator (aka splat operator) I flatten out the generator into a new array instance.

I haven't tested the performance of this, but I figure it is a nice simple example of using generators and the yield* operator.

But again, I was just goofing so I'm sure there are more performant ways to do this.

I propose two short solutions without recursion. They are not optimal from a computational complexity point of view, but work fine in average cases:

let a = [1, [2, 3], [[4], 5, 6], 7, 8, [9, [[10]]]];

// Solution #1
while (a.find(x => Array.isArray(x)))
    a = a.reduce((x, y) => x.concat(y), []);

// Solution #2
let i = a.findIndex(x => Array.isArray(x));
while (i > -1)
{
    a.splice(i, 1, ...a[i]);
    i = a.findIndex(x => Array.isArray(x));
}
const flatten = array => array.reduce((a, b) => a.concat(Array.isArray(b) ? flatten(b) : b), []); 

Per request, Breaking down the one line is basically having this.

function flatten(array) {
  // reduce traverses the array and we return the result
  return array.reduce(function(acc, b) {
     // if is an array we use recursion to perform the same operations over the array we found 
     // else we just concat the element to the accumulator
     return acc.concat( Array.isArray(b) ? flatten(b) : b);
  }, []); // we initialize the accumulator on an empty array to collect all the elements
}
  • 3
    From review queue: May I request you to please add some more context around your answer. Code-only answers are difficult to understand. It will help the asker and future readers both if you can add more information in your post. – RBT May 13 '17 at 9:33
  • 1
    Your code is written in cutting-edge, shortest way but honestly It takes me more time to figure out what it is actually doing... not good for maintenance – meteorzeroo May 14 '17 at 20:10
  • Nice one! You can flatten array like objects too if you change Array.isArray(b) in to b.length and add a Array.from(array) after the return instead of array. – luwes Jun 10 '17 at 17:56

I recommend a space-efficient generator function:

function* flatten(arr) {
  if (!Array.isArray(arr)) yield arr;
  else for (let el of arr) yield* flatten(el);
}

// Example:
console.log(...flatten([1,[2,[3,[4]]]])); // 1 2 3 4

If desired, create an array of flattened values as follows:

let flattened = [...flatten([1,[2,[3,[4]]]])]; // [1, 2, 3, 4]

protected by Machavity Jan 2 at 20:04

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