Description

For the purpose of a unit test, I would like to check if a particular function has been bound.

Example

function foo() {}
var bar = foo.bind(context);

assertBound(bar); // --> true
assertBound(foo); // --> false

Question

Is there someway to check that bar has been bound that doesn't require mocking the bind function?

Notes

While How to get [[boundthis]] from function is asking about getting the [[boundthis]], I am wondering about just checking it has been bound.

  • In this case you'd need to hijack bind, not just create your own bind function. On the other hand, OP, specifies that he doesn't want to mock the bind function. I don't think that's possible. – MinusFour Oct 15 '15 at 14:16
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    Was going to vote to reopen, then noticed it had been. It looks like there might be a .name property available in some browsers that are starting to support ES6, where the name of a function returned from bind is "bound "+ originalFunctionName - won't post it as an answer as I'm unsure if it's defined exactly that way in the spec or not, but may get you started... – James Thorpe Oct 15 '15 at 14:32
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    @VisioN, OP doesn't want to get the bounded context. Just want to know if it's bounded. – MinusFour Oct 15 '15 at 14:36
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    @VisioN I think the OP only wants to know if it is bound, not what it's bound to. If it was what it was bound to, that's what the dupe was for. If it's just that it is bound, the name property in ES6 may be of use. – James Thorpe Oct 15 '15 at 14:36
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    I updated to remove the context bit so that it wasn't a duplicate. Sorry for the confusion; I should have noted that in my comment or update. – MitMaro Oct 15 '15 at 15:52
up vote 4 down vote accepted

{Function}.name in ES6

In ES6 all functions are given a static name property.

function aFunction () {}
console.log(aFunction.name) // => 'aFunction'

Unnamed functions like arrow functions have an empty string for their name:

var aFunction = function () {}
console.log(aFunction.name) // => ''

Both named and unnamed functions when bound to a context using Function#bind have their name preceded with 'bound ':

// Named function
function aFunction () {}
var boundFunc = aFunction.bind(this)
console.log(boundFunc.name) // => 'bound aFunction'

// Unnamed function
var anotherFunc = function () {} // or `anotherFunc = () => 0`
var anotherBoundFunc = anotherFunc.bind(this)
console.log(anotherBoundFunc.name) // => 'bound '

We can use this to see if a function is bound:

function assertBound (fn) {
    return typeof fn == 'function' && fn.name.startsWith('bound ');
}

Note: checking that the word bound has a space after it is important so that we don't catch functions like function boundFunction () {}, for example.

______

Function#toString in ES5

A hacky way to know if a user-defined function is bound in ES5 is to cast it to a string using Function#toString and looking for the text '[native code]':

function assertBound (fn) {
    return typeof fn == 'function' && fn.toString().indexOf('[native code]') > -1;
}
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    Beware of the [native code] trick, built-in functions are also stringified this way. – MinusFour Oct 15 '15 at 14:53
  • @MinusFour Absolutely. There isn't a reliable way of checking if a function is bound in ES5. (Rick Hitchcock's answer has a similar problem: many standard built-in functions don't have a prototype.) – sdgluck Oct 15 '15 at 15:22
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    I'd go for .startsWith instead of includes. Nice find! – Bergi Oct 15 '15 at 15:51
  • @Bergi Thanks! What's the reason for your preferring startsWith? – sdgluck Oct 15 '15 at 16:02
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    Well it does a different thing and is more efficient? includes looks everywhere in the name, but .bind() puts "bound " only in the beginning anyway. – Bergi Oct 15 '15 at 16:04

From http://www.ecma-international.org/ecma-262/5.1/#sec-15.3.4.5:

Function objects created using Function.prototype.bind do not have a prototype property

Here's a possible test:

function assertBound(obj) {
  return typeof obj==='function' && 
         typeof obj.prototype==='undefined';
}

Snippet:

function foo() {}

function assertBound(obj) {
  return typeof obj==='function' && 
         typeof obj.prototype==='undefined';
}

var context= {},
    bar1 = foo,
    bar2 = foo.bind(context);

console.clear();
console.log(assertBound(foo));      //false
console.log(assertBound(bar1));     //false
console.log(assertBound(bar2));     //true
console.log(assertBound(context));  //false

  • 1
    Of course, any function could have its .prototype property set to undefined or deleted altogether. – Bergi Oct 15 '15 at 15:52
  • True, but could there be a valid reason to do so? – Rick Hitchcock Oct 15 '15 at 16:13
  • 1
    Not exactly. But notice that in ES6, class methods and arrow functions won't have .prototype properties either, so this approach will break then. – Bergi Oct 15 '15 at 16:40
  • Good point, thanks. – Rick Hitchcock Oct 15 '15 at 16:45

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