102

I'm using a third-party library that has a function that takes functions as arguments. I'm doing some conditional checks to decide whether or not to add a particular function as a parameter and in some cases I don't want to provide a function. Providing null in that cases throws an error.

I found this code which works, but I don't fully understand what's happening.

compose(__DEV__ ? devTools() : f => f)

Is f => f equivalent to () => {} an empty anonymous function?

7
114

f => f is similar* to function(f){ return f; }

So close, but not quite what you expected.

* - as has been pointed out in comments, there are subtle differences, but for the sake of your question, I don't think they are particularly relevant. They are very relevant in other situations.

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  • 2
    I can think of at least two differences between f => f and function(f) { return f; } :) – Benjamin Gruenbaum Dec 20 '16 at 22:05
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    @BenjaminGruenbaum cool, go ahead - even update this answer if you think its relevant. – Jamiec Dec 20 '16 at 22:16
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    I don't think it's very relevant, just a pedant: new (f => f) throws, it has a different toString and for some reason I can't quite grok (f => f).arguments throws in Chrome but not FF or Edge. – Benjamin Gruenbaum Dec 20 '16 at 22:19
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    @BenjaminGruenbaum the handling of this is also different. (although the difference might not be observable if this doesn't appear in the function body... I'm not sure) – Gregory Nisbet Dec 20 '16 at 22:30
187

f => f is the identity function. It simply returns the argument that was passed in.

This function is often used as a default values for transformation processes, since it doesn't perform any transformation.

Is f => f equivalent to () => {} an empty anonymous function?

No. The empty function doesn't return anything. The identity function returns the passed in argument.

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    A+ for providing name, explanation, and a use case, and answering the actual question. – Thank you Dec 20 '16 at 19:32
19

If you want to know what f => f means, the left side is the parameter and the right side is the return value. So for example, f => f*2, is equivalent to:

function(f) { 
  return f * 2; 
}

The code which you describe returns whatever is supplied to it as input.

https://developer.mozilla.org/en/docs/Web/JavaScript/Reference/Functions/Arrow_functions

0
9

Others have already mentioned what f => f does, so I'm not going to go deeper into that. I'm just going to explain the rest of the function, because there's a bit of a difference between f => f and __DEV__ ? devTools() : f => f

The ternary operator checks if __DEV__ is a truthy value, and if so, it return function devTools(). otherwise, it return the identity function f => f which does nothing. Put differently: this code enables some development mode functions. Without the remaining code, it's hard to tell what this mode adds, but presumably, it will enable some extra logging information and less obfuscation.

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  • __DEV__ ? devTools() : f => f does not assign anything to f. Did you leave something out from the code example? – Felix Kling Dec 21 '16 at 15:11
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    It will not return the function, it will return the result of the function – Stephan Bijzitter Dec 21 '16 at 20:31
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    Your avatar annoys me and disturbs my day. I feel like 90's and my modem lost the connection. Still, +1 anyway, for a good answer. – Konrad Viltersten Dec 22 '16 at 17:36
  • @KonradViltersten You are not the first one to comment on my avatar. You're the first one who doesn't like it though. Most people appreciated the nostalgic factor and the small subversion of expectations it invokes. – Nzall Dec 22 '16 at 18:19
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    I hope that you got the irony, mate. It was meant as a joke, of course. Obviously, I like it and I find it refreshingly original. – Konrad Viltersten Dec 22 '16 at 19:40
9

Anytime with the similar dilemma, you can use Babel to get the answer.

It returned like this:

"use strict";

(function (f) {
  return f;
});

BTW, => you used is ES6 feature called arrow expression. The other expression of interest

() => {};  // es6

would convert to:

(function () {});

Since arrow function expressions are always anonymous it makes sense if you add the name to the function:

let empty = () => {}; // es6

would convert to

var empty = function empty() {}; 

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