9

Consider the following

var a = {foo: "bar"};

Equivalent to

var a = {};
a.foo = "bar";

Equivalent to

var a = {};
a['foo'] = "bar";

Equivalent to

var a = {}
var b = "foo";
a[b] = "bar";

Is it possible to do something like

var b = "foo";
var a = { [b]: "bar" };

Such that the result would be

// => {foo: "bar"}

Acceptable solutions are in JavaScript or CoffeeScript

6

No.

There is no way to do it using object literal notation.


UPDATE: According to the ECMAScript standard 6.0 you are now able to do the following:

var b = 'foo';
var a = { [b]: 'bar' };

console.log( a.foo );  // "bar"

However, this solution won't work in old browsers, which do not support ES6.

  • 3
    Of course, then there's the better-left-unmentioned function that can do it at the expense of invoking the compiler each time it's run. – John Dvorak Dec 21 '12 at 22:06
5

ES6 supports computed properties.

// code from my original question now works in ES6 !
let b = "foo";
let a = { [b]: "bar" };

a.foo; //=> "bar"

Any expression can be used within the [] to define the property name

let a = {
  [(xs => xs.join(''))(['f','o','o'])]: 'bar'
};

a.foo; //=> "bar"

If you need to rely on this behavior in an ES5 world, you can lean on the very capable babel.js to transpile your ES6 code to ES5-compatible code.

4

JSON parse allows you to convert a JSON string into an object:

JSON.parse('{"'+dynamicProperty+'":"bar"}');

This is not exactly an object litteral, but if your objective is to enter your property name as a variable it works.

  • How the heck did I forget about this. Good thinking. I think you want a :, not a = though, right? – Ian Dec 21 '12 at 22:30
  • 1
    @Ian fixed, thx :-) – Christophe Dec 21 '12 at 22:32
  • 1
    A more accurate version (to account for double quotes and other special characters in property name) would be JSON.parse('{'+JSON.stringify(dynamicProperty)+':"bar"}'), but at that point why not just write it in two lines (pre ES6)? (Don't mind my time machine) – riv May 22 '18 at 1:24
4

As others have said, no, there's currently no syntax for interpolated key strings in object literals in CoffeeScript; but it seems at some point this feature existed! In these GitHub issues there's some discussion about it: #786 and #1731.

It's implemented in Coco and LiveScript as:

b = 'foo'
a = {"#{b}": 'baz'}

# Or..
a = {(b): 'bar'}
1

As of CoffeeScript version 1.9.1 this works:

b = "foo"
a = "#{b}": "bar"

It compiles to:

var a, b, obj;

b = "foo";

a = (
  obj = {},
  obj["" + b] = "bar",
  obj
);

Try it.

0

JavaScript

var a, b;
(a = {})[b = 'foo'] = 'bar';

CoffeeScript

(a = {})[b = 'foo'] = 'bar'
  • sorry, this is not an object literal. – user633183 Dec 21 '12 at 22:03
  • Which is basically the same thing as the OP mentioned. – VisioN Dec 21 '12 at 22:03
  • I was just giving you the most terse way to write it. – Casey Foster Dec 21 '12 at 22:04
  • @naomik How so? a is an object literal, and the property "foo" is immediately set as "bar". Unfortunately, it's technically already what the OP has, just condensed – Ian Dec 21 '12 at 22:05
  • @CaseyFoster, I appreciate you trying to help, but I need it to be an object literal. – user633183 Dec 21 '12 at 22:07
-1

To answer your question, this is the only way that I know of. It uses eval. But beware, eval is evil!

var b = "foo";
var a = eval('({ ' + b + ': ' + '"bar"' + ' })');

This is an ugly solution. To play it safe you should not rely on this. Don't use it!

  • Why is it evil in this case? I don't understand why people think eval is evil 100%... – Ian Dec 21 '12 at 22:24
  • Since people don't like eval there is another way: new Function("return {" + b + ": 'bar'}")(). – VisioN Dec 21 '12 at 22:24
  • @Ian Because there are very little if not no cases where eval is sufficiently applicable. eval in this case isn't even is a good solution, it's a hack. – 0x499602D2 Dec 21 '12 at 22:26
  • @David That doesn't make it evil. I could understand an argument that it's "unnecessary". When people say "evil", I bet they're thinking "DANGEROUS" because that's what people on SO immediately claim when they see it. I agree it's not a "solution", but since when are hacks not solutions? In this case, it's not like it goes out and does a bunch of extra things at a high expense of performance. Isn't this a/the way JSON is parsed if JSON is not available? You didn't see people looping through all characters of a JSON string, parsing it and building an object literal that way – Ian Dec 21 '12 at 22:34

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.