Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Let us say I have the following object constructor:

function Foo(bar) {
    this.bar = bar;
}

If I run the function in the global scope without the new keyword then bar will be set in whatever scope Foo() is called in:

var foo = Foo(42);
console.log(bar); // 42
console.log(foo.bar); // ERROR

So my idea is to do something like this:

function Foo(bar) {
    if(!(this instanceof Foo)) {
        // return a Foo object
        return new Foo(bar);
    }
    this.bar = bar;
}

That way if I do new Foo(42) or Foo(42), it would always return a Foo object.

Is this ever a good idea? If so, when? When (and why) would it be wise to avoid this technique?

share|improve this question
1  
Have you ever heard anyone make a case against it? –  cookie monster Dec 31 '13 at 16:11
    
@cookiemonster Yes. Something along the lines of "Why would you do that?" "You are ruining the sanctity of javascript!" "Why would you force an object on someone when they don't want it?" –  qwertynl Dec 31 '13 at 16:13
    
None of those are cases against it. They appear to be the rantings of irrational minds. Have you heard an actual case? I can't imagine why such a guard would be undesirable. –  cookie monster Dec 31 '13 at 16:15
    
"Is this ever a good idea?" Doesn't your question itself demonstrate when/why it's a good idea? –  cookie monster Dec 31 '13 at 16:17
2  
@cookiemonster it is a good "idea" in my case, but other people might not agree and I would like to know why and in what case. –  qwertynl Dec 31 '13 at 16:17

4 Answers 4

up vote 6 down vote accepted

This can be useful for when you would like to internally construct an object wrapper.

A little known library internally uses this approach, jQuery.

They do not use the instanceof approach any longer though. Every time jQuery is called, it automatically does this:

// Define a local copy of jQuery
jQuery = function( selector, context ) {
 // Need init if jQuery is called (just allow error to be thrown if not included)
 return new jQuery.fn.init( selector, context );
}

Everything it does internally references this local copy. At the very end of its work, it then attaches it to the global scope

window.jQuery = window.$ = jQuery;

So every time you call $() it internally uses new. It is also assuming that you do not use new externally, but it really doesn't care if you do or not.


edit

jsFiddle Demo

//Foo entrance
function Foo(bar){
 //construct a new Foo object to return
 return new Foo.prototype.build(bar);
}

//constructor for returning new prototype
Foo.prototype.build = function(bar){
 //initialize base settings
 this.bar = bar;
 //chain object
 return this;
};

//this is the complex part
//tie the prototype of Foo.prototype.build.prototype to Foo.prototype
//so that is "seems" like Foo is the parent of the prototype assignments
//while allowing for the use of returning a new object in the Foo entrance
Foo.prototype.build.prototype = Foo.prototype;

//simple expansions at this point, nothing looks too different
//makes a function for a constructed Foo that logs hello
Foo.prototype.hello = function(){
 console.log("Hello "+this.bar+" :)");
 //returns this for chaining
 return this;
};

//more extensions, this one changes this.bar's value
Foo.prototype.setBar = function(arg){
 //accesses the current Foo instance's .bar property
 this.bar = arg;
 //returns this for chianing
 return this;
};

//should be seeing a pattern
Foo.prototype.goodbye = function(){
 console.log("Bye "+this.bar+" :(");
 return this;
};

var foo = Foo(42);
//console.log(bar); // ERROR
console.log(foo.bar); // 42
foo.hello(); //Hello 42 :)
foo.hello().setBar(9001).goodbye(); //Hello 42 :) Bye 9001 :(
Foo(12).hello(); //Hello 12 :)
share|improve this answer
    
So what does new jQuery(...) do? –  qwertynl Dec 31 '13 at 18:59
    
@qwertynl - It does the same thing as jQuery(...). There is no difference. –  Travis J Dec 31 '13 at 19:16
    
So new (new Foo(...)) does not do anything different from new Foo(...)? –  qwertynl Dec 31 '13 at 19:22
    
@qwertynl - Well that isn't really the same. When used on a function, new causes a Function object to be returned. This object is not a function, so you can't really use new on it. If you try, you will get an error: "TypeError: object is not a function". The reason that jQuery appears to get away with it, is that it is internally using this new version, so that no matter how it looks or is used externally, internally it will always have access to its prototype. It is also possible to not return the Function object. This can be accomplished by returning anything else. –  Travis J Dec 31 '13 at 19:47
1  
@qwertynl - I think the return value has to be a complex type. If it is a value type then you still get the constructed Function object. So return bar or return "hi" will still return a new Foo, but return [], or return {}, or return new Something(), or any other complex type will be returned instead. For example: function Foo(bar){ this.bar = bar; return []; } var foo = new Foo(42); console.log(foo); console.log(foo.bar);. foo is going to be [] and foo.bar is going to be undefined. Whereas if Foo returned bar, then foo would be a constructed Foo and foo.bar would be 42. –  Travis J Dec 31 '13 at 20:41

While I don't have anything against that style, I would not personally use it just to be consistent. Sure, I can make all my constructors like this but it would seem like a lot more code to write.

If I'm worried about accidentally invoking a constructor without new, I would rather use JSHint to warn me about it. See http://www.jshint.com/docs/options/#newcap.

share|improve this answer

Advocates of "readability" might describe it as an anti-pattern but you know your own code better than anyone else - if it works for you then go for it. Personally I'd rather have one way of doing one thing - it makes it clear and concise. If another developer enters the fray and tries to use my object with out instantiating it I'd rather it throw an error to tell him/her they are being daft.

share|improve this answer

I have one good reason to avoid it: if you're not forgetting to use new, then it's just unnecessary overhead. You may never notice this unless you're creating thousands of instances of a given object, but it's still there.

I recommend limiting the number of places in your code where new-based object creation is done - if you're not relying on it every place you need a new object, then you don't have to worry about forgetting it in one of them. There are numerous patterns that can help you here, but the simplest one is to just make one function somewhere that's responsible for object creation, and defer to that every time - whether it creates 1 instance or 1,000,000 instances is up to you.

That said, if this doesn't make sense then this sort of guard is an excellent fallback. Note that it bears a lot of similarity to how JavaScript's built-in type constructors double as type converters when used without new - so I would consider user-defined types as a particularly apt place to use this technique.

See also: Is JavaScript 's "new" Keyword Considered Harmful?

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.