31

Is there some difference between using Array.from(document.querySelectorAll('div')) or [...document.querySelectorAll('div')]?

Here is a example:

let spreadDivArray = [...document.querySelectorAll('div')];
console.log(spreadDivArray);

let divArrayFrom = Array.from(document.querySelectorAll('div'));
console.log(divArrayFrom);

The console.log() will log the same result.

Is there any performance difference?

  • good thing with spread operator is that it supports Object. performance.. idk – Semi-Friends Nov 11 '16 at 12:40
  • To find out if there's any performance difference, run a benchmark. The results are likely to be quite different depending on whether you're in a native ES6 environment or transpiling to ES5. – user663031 Nov 11 '16 at 12:46
  • 6
    The main difference is that Array.from works with array-like objects which don't implement the iterator protocol (i.e. Symbol.iterator). Even with ES6 and new browser specs, there are fewer and fewer of those. – nils Nov 11 '16 at 12:46
  • 4
    ... is not an operator! – Felix Kling Nov 11 '16 at 15:56
31

Spread element (it's not an operator) works only with objects that are iterable (i.e. implement the @@iterator method). Array.from() works also on array-like objects (i.e. objects that have the length property and indexed elements) which are not iterable. See this example:

const arrayLikeObject = { 0: 'a', 1: 'b', length: 2 };

// This logs ['a', 'b']
console.log(Array.from(arrayLikeObject));
// This throws TypeError: arrayLikeObject[Symbol.iterator] is not a function
console.log([...arrayLikeObject]);

Also, if you just want to convert something to array, I think it's better to use Array.from() because it's more readable. Spread elements are useful for example when you want to concatenate multiple arrays (['a', 'b', ...someArray, ...someOtherArray]).

  • While I agree that Array.from() is an extremely readable way to implement this, I feel that the spread element syntax ...arrayLikeObject is just as readable for people (or more so). – qarthandso Aug 21 '17 at 0:32
  • 1
    Also note spread syntax (...arrayLikeObject) is much shorter. That can be a factor sometimes, though maybe it shouldn't be. – trysis Jun 6 '18 at 13:26
  • @qarthandso If we are spreading into the new (different) array, then I would agree. But if we need to duplicate an array (into exact same one), then Array.from looks more attractive and at least in some cases more readable, i.e when we need to pass a starting value of Array.prototype.reduce to be the array, on which we called it. – Eduard Sep 10 '18 at 12:32
6

Well, Array.from is a static method, i.e., a function whereas the spread syntax is part of the array literal syntax. You can pass functions around like data, you can invoke them once, several times or not at all. This isn't possible with the spread syntax, which is static in this regard.

Another difference, which @nils has already pointed out, is that Array.from also works with array-like objects, which don't implement the iterable protocol. spread on the other hand requires iterables.

  • "Array.from also works with array-like objects, which don't implement the iterable protocol" -- can you give an example of one such object? – mpen Aug 9 '17 at 0:39
  • Nevermind, Michał gave an example. – mpen Aug 9 '17 at 0:47
2

The difference is that spread allows an array to be expanded. Whereas from() creates a new array. .from() doesn't expand upon anything, it creates a new array based on the data provided; the spread operator on the other hand can expands an array with new properties.

  • 6
    Well, array literals always create a new array as well… – Bergi Nov 11 '16 at 12:53
  • 3
    I'm not sure whether I just misunderstand your wording, but are you suggesting that the spread operator mutates the array instead of creating a new one? – Bergi Nov 11 '16 at 12:55
  • 1
    @Bergi well the spread operator doesn't create an array. The array creation in OP's example is done via the square brackets surrounding the spread operator. – James Donnelly Nov 11 '16 at 13:00
  • 1
    Ah, OK, I just wanted to be sure you meant the right thing. Maybe it would help if you said "expands the array literal" instead of "expands an array", since it doesn't operate on arbitrary arrays. – Bergi Nov 11 '16 at 13:03
-1

Using Babel is a good way to see what's happening internally.

Heads up, though. Make sure latest is selected in Babel, as the default is wrong.

Using your example above, this is the output.

function _toConsumableArray(arr) { if (Array.isArray(arr)) { for (var i = 0, arr2 = Array(arr.length); i < arr.length; i++) { arr2[i] = arr[i]; } return arr2; } else { return Array.from(arr); } }

var spreadDivArray = [].concat(_toConsumableArray(document.querySelectorAll('div')));
console.log(spreadDivArray);

var divArrayFrom = Array.from(document.querySelectorAll('div'));
console.log(divArrayFrom);
  • 2
    [].concat doesn't appear to work if the node list is not concatspreadable? Is that a Babel output? – Bergi Nov 11 '16 at 13:04
  • Is that a Babel output Indeed, I just copied the code to babeljs.io, have you an example?, maybe babel does other transformations when required. This of course is only doing testing for this specific case. – Keith Nov 11 '16 at 13:07
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    The babeljs.io repl has some weird options, it's not really reliable. Using [].concat is an incorrect simplification (does only do the same as spread syntax on array arguments), which might be caused by a bug in Babel or some unknown setting. – Bergi Nov 11 '16 at 13:11
  • Oh, right.. I'll have to keep an eye on that one. At first I thought I would delete this post, but thinking on might be worth keeping open as I wasn't aware babel was buggy. What do you think? – Keith Nov 11 '16 at 13:21
  • 1
    Ah, clicking latest in babel makes a difference.. I'll update answer.. with new output.. Thanks for the heads up. – Keith Nov 11 '16 at 13:24

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