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From the annotated source code:

Create a safe reference to the Underscore object for use below.

 var _ = function(obj) {
    if (obj instanceof _) return obj;
    if (!(this instanceof _)) return new _(obj);
    this._wrapped = obj;
  };

I am having a hard time understand what did Jeremy mean by "creating a safe reference", and I am not 100% sure what that code is doing either.

Why not just do: var _ = {}? Where is the obj argument coming from and why do we have to check instanceof? Why returning using a new operator if it's not instaneof? And what is the purpose of the private variable _wrapped?

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Underscore may also be called as a function that takes a set as its first argument, see underscorejs.org/#chaining –  bfavaretto Nov 11 '13 at 3:19
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And _.f(x) can also be called as _(x).f() even without chaining in effect. –  mu is too short Nov 11 '13 at 3:24
    
@muistooshort that's what I meant, the link is because of the clear example in the first part of that doc section. –  bfavaretto Nov 11 '13 at 3:31
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The purpose of the private variable wrapped is to create a wrapped objects that underscore accesses in a few places. –  EmptyArsenal Nov 11 '13 at 20:18
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1 Answer

up vote 1 down vote accepted

By "safe reference", the author means a reference that won't be modified outside of the underscore closure. Note that the underscore documentation also mentions that hasdocs uses a "safe reference" to hasOwnProperty, "in case it's been overridden accidentally."

The code you asked about is motivated by behavior described in the chaining docs. Underscore supports two usage styles:

  • Functional style: _.isEmpty(obj)
  • Object-oriented style: _(obj).isEmpty()

The object-oriented style calls _(obj), which returns a new _ object, calling _(obj) again as a constructor. When _ is used as a constructor, this refers to the newly created object, so the last line of code executes, saving a reference to the value wrapped by the new _ object.

In other words, _ is a function, an object, and a constructor.

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