172

I have 2 arrays:

var a = [1, 2, 3]
var b = [a, b, c]

What I want to get as a result is:

[[1, a], [2, b], [3, c]]

It seems simple but I just can't figure out.

I want the result to be one array with each of the elements from the two arrays zipped together.

2
  • 3
    Note that array map() is not supported in IE8, if that is a problem. Polyfill here developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/…
    – TimHayes
    Feb 25 '14 at 13:37
  • 14
    This question is NOT a duplicate as it only asks for 2 arrays to be zipped instead of N arrays. Thus it is a special case for which there are specialized, more performant solutions.
    – le_m
    Jun 4 '16 at 0:52
285

Use the map method:

var a = [1, 2, 3]
var b = ['a', 'b', 'c']

var c = a.map(function(e, i) {
  return [e, b[i]];
});

console.log(c)

DEMO

13
  • 4
    Total javascript noob here, but I was under the impression that the index has to come before the element? that is, .map(function(index,element))?
    – runawaykid
    Oct 29 '16 at 11:05
  • 10
    @runawaykid The answer is correct. You can see the MDN map documentation on the callback parameter. Params are (in order): currentvalue, index, array
    – icc97
    Jan 6 '17 at 15:22
  • 11
    Using the arrow notation is even a bit nicer: var c = a.map((e, i) => [e, b[i]]);
    – marczoid
    Nov 15 '17 at 10:39
  • 1
    How would you create a dictionary/object from this?
    – Climax
    Apr 26 '18 at 6:50
  • 3
    Just note that if the arrays are different lengths, then this will either pad the right side with undefined values (if a is longer) or will omit some entries (if b is longer).
    – ErikE
    Feb 19 '20 at 18:56
67

Zip Arrays of same length:

Using Array.prototype.map()

const zip = (a, b) => a.map((k, i) => [k, b[i]]);

console.log(zip([1,2,3], ["a","b","c"]));
// [[1, "a"], [2, "b"], [3, "c"]]

Zip Arrays of different length:

Using Array.from()

const zip = (a, b) => Array.from(Array(Math.max(b.length, a.length)), (_, i) => [a[i], b[i]]);

console.log( zip([1,2,3], ["a","b","c","d"]) );
// [[1, "a"], [2, "b"], [3, "c"], [undefined, "d"]]

Using Array.prototype.fill() and Array.prototype.map()

const zip = (a, b) => Array(Math.max(b.length, a.length)).fill().map((_,i) => [a[i], b[i]]);

console.log(zip([1,2,3], ["a","b","c","d"]));
// [[1, "a"], [2, "b"], [3, "c"], [undefined, "d"]]

7
  • 1
    Thanks for this. Foruntanely map worked in my environment nevertheless I've recorded this method just in case.
    – userMod2
    Feb 26 '14 at 13:05
  • This const zip = (arr1, arr2) => arr1.map((k, i) => [k, arr2[i]]); is concise and elegant Jun 1 '20 at 3:01
  • 1
    Elegant, but faulty. Classic zip must be commutative, this implementation is not. check out with arrays of different length.
    – goteguru
    Nov 11 '20 at 10:11
  • 1
    Thank you @goteguru, I added two more example for array of different length. Nov 11 '20 at 18:28
  • 3
    Thx @RokoC.Buljan, nice. However I think it should be Math.min. zip comes from the functional languages (just like filter, map, reduce and friends) and it's main purpose is to feeding two streams into one binary computation. The result is undefined anyway if one of them is missing, therefore we should stop early. Moreover, in FP the streams may be infinite (!) which would mean the above algorithm never stops. Of course it's not the case using js Arrays, but still this is the classic "zip". (Performance wise: imagine one array has 100k items, and the other has only twelve).
    – goteguru
    Nov 12 '20 at 20:20

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