68

The following is just a theoretical JavaScript question. I am curious if the following can be converting into a single statement:

if(!window.foo){
  window.foo = [];
}
window.foo.push('bar');

everyone has probably written this code before, but can it be done in one line?
At first I thought something like this would work:

(window.foo || window.foo = []).push('bar');

but that doesn't work because of an invalid assignment. Next I tried chaining something on the push, but that doesn't work because push does not return the array.

Any thoughts on if this can be done in plain JavaScript?
(the result by the way should be that window.foo = ['bar'])

8
  • 1
    Why do you need it in one line? most devs do foo = foo || []; Jan 30, 2013 at 21:29
  • 1
    I'm assuming you specifically want to use the push function? otherwise you could just have window.foo = window.foo || ['bar']
    – Jeff
    Jan 30, 2013 at 21:32
  • 2
    @Jeff I think he wants to push bar onto an existing foo too.
    – Neil
    Jan 30, 2013 at 21:34
  • 1
    yeah, this is something that would be in a loop, i should have mentioned it
    – mkoryak
    Jan 30, 2013 at 21:36
  • 1
    @jeff - i dont think so, this is a real usecase
    – mkoryak
    Feb 1, 2013 at 5:46

7 Answers 7

105

You've got your assignment backwards*. It should be:

(window.foo = window.foo || []).push('bar');

The || operator in JavaScript does not return a boolean value. If the left hand side is truthy, it returns the left hand side, otherwise it returns the right hand side.

a = a || [];

is equivalent to

a = a ? a : [];

So an alternative way of writing the above is:

(window.foo = window.foo ? window.foo : []).push('bar');

* see comments for details

1
  • No, the assignment isn't backwards, it's just a problem with operator priorities. What you show is a different way of doing it; it always assigns a value to the property instead of only doing the assignment if the property is not set.
    – Guffa
    Jan 30, 2013 at 21:40
17

Your code works just fine if you add parentheses so that it does what you intended:

(window.foo || (window.foo = [])).push('bar');

Without the parentheses, it thinks that it should evaluate window.foo || window.foo first, and then assign the array to the result of that, which is not possible.

2
  • 1
    It is great stuff like this works, but who wants to maintain it! I do not raise my hand. Jan 30, 2013 at 21:39
  • 2
    @epascarello I'd be fine with it. zzzzBov's answer is nicer, and it would be even nicer to have it on one line, but I can read this without pausing just fine - it's just what you're used to.
    – Jeff
    Jan 30, 2013 at 21:44
17

2021 Update

@zzzzBov's helpful answer,

(window.foo = window.foo || []).push('bar');

can be further simplified using the new ||= operator, logical OR assignment1,

(window.foo ||= []).push('bar');

1 See tcs39/proposal-logical-assignment, currently in Stage 4, and supported by major browsers.

14

This question got me playing with different options for fun. It's too bad push returns the length instead of the original array reference, but for even shorter expressions it can be helpful to have something that can be immediately iterated, mapped, etc.

window.foo = (window.foo||[]).concat(['bar']); // always returns array, allowing:
(window.foo = (window.foo||[]).concat(['bar'])).forEach( ... )

(window.foo = window.foo||[]).push('bar'); // always returns length

window.foo && window.foo.push('bar') || (window.foo = ['bar']); // playing around
0
7

The shortest way to do this is using Logical Nullish Assignment:

(window.foo ??= []).push('bar');

Source: https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Operators/Logical_nullish_assignment

0

You can use .concat instead of .push, since .concat returns the array and .push returns the array's length.

window.foo = (window.foo || []).concat('bar');

This way the code is easier to read and understand.


Shorter version with a new ||= operator: (may be slightly harder to read though)

window.foo ||= [].concat('bar');
0

In a similar case where I needed to merge the contents of two arrays if they existed, I made use of the spread operator:

window.foo = [...['bar'], ...window.foo ?== []]

This works for any array including 'bar'.

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