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Can someone please explain me why the JS output is "1 2 1 3" and not "1 2 3"?

I have used JS module.

JS Fiddle : http://jsfiddle.net/g6mJq/

I just want to know why the module is called is twice and where exactly in the code it happens?

Code:

(function() {
  var foo = function(arg) { // core constructor
    // ensure to use the `new` operator

    console.log("1");
    if (!(this instanceof foo))
    {
      console.log("2");
      return new foo(arg);
    }

    // store an argument for this example
    console.log("3");
    this.myArg = arg;
    //..
  };

  // create `fn` alias to `prototype` property
  foo.fn = foo.prototype = {

    init: function () {/*...*/
    }
    //...
  };

  // expose the library
  console.log("4");
  window.foo = foo;
  console.log("5");
})();

// Extension:

foo.fn.myPlugin = function () {
  console.log(this.myArg);
  return this; // return `this` for chainability
};
console.log("7");
foo("bar").myPlugin(); // alerts "bar"
share|improve this question
    
return new foo(arg); returns from the function and calls it again as a constructor. My guess is that you'd want return new foo.fn.init(arg) - though then you'd have to rework the instanceof checking as well. –  Fabrício Matté Dec 15 '13 at 17:26
    
Is the fiddle URL correct seems to point to wrong place. –  Captain John Dec 15 '13 at 17:28
    
Updated. Thanks. –  user2171262 Dec 15 '13 at 17:33

1 Answer 1

up vote 1 down vote accepted

Can someone please explain me why the JS output is "1 2 1 3" and not "1 2 3"?

Because this call to foo:

foo("bar").myPlugin();

...calls foo without using new, and so this instanceof foo just before console.log("2") is false (because this is either the global object or undefined, depending on whether you're using loose or strict mode), and so the function calls itself via new and returns the result rather than running the rest of its code directly. (This is a pattern used to make it possible to use the function both with and without new and get the result as though new had been used; in this case, foo is ensuring that the rest of its code [in the second call] is working with this referring to an object that is backed by foo.prototype [which has been aliased as foo.fn].)

...and where exactly in the code it happens?

The first call is the one I quoted above, which is very near the bottom of the code in the question. The second one is inside foo near the top:

return new foo(arg);

new foo does this:

  1. Create a new object.
  2. Set the new object's prototype to the object referenced by foo.prototype.
  3. Call foo with this referencing the new object.
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