14

I was examining how UnderscoreJS implements their each/forEach

//somewhere up top:
var breaker = {};

//then the each function
var each = _.each = _.forEach = function (obj, iterator, context) {
    if (obj == null) return;
    if (nativeForEach && obj.forEach === nativeForEach) {
        obj.forEach(iterator, context);
    } else if (obj.length === +obj.length) {
        for (var i = 0, l = obj.length; i < l; i++) {
            if (iterator.call(context, obj[i], i, obj) === breaker) return;
        }
    } else {
        for (var key in obj) {
            if (_.has(obj, key)) {
                if (iterator.call(context, obj[key], key, obj) === breaker) return;
            }
        }
    }
};

//iterator = callback
//context  = optional third parameter of each to provide context in the callback
//obj      = the list
//key      = key of the object (i for index when an array)

Basically, it's executing the callback for each item in the object/array. But this like confuses me

if (iterator.call(context, obj[key], key, obj) === breaker) return;

From what I understand, if the callback returns an object, the loop breaks, but... Why it's comparing to breaker which is an internal object in the underscore module?. Doesn't it evaluate to false all the time since, even if the callback does return an object, it is always false since it's not the same object (therefore the loop never breaks). What's the reason behind this?

1
  • Another trick that I like, if you need to add values to the breaker objects is to instead create a Breaker class and use instanceof tests.
    – hugomg
    Jul 22, 2012 at 13:52

1 Answer 1

13

They use each internally for e.g. some. Since some does short-circuit, they can have each break there using the "secret" object, while not exposing this feature for regular users. They don't expose the break feature because the native function doesn't do that, either (so their shim is as native-like as possible). If they did, the break feature would only be available if the native function is unavailble, which isn't particularly helpful.

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.