10

In javascript, shouldn't I alias a namespace?

In the Naming chapter of Google JavaScript Style Guide, it says:

//Do not alias namespaces.
myapp.main = function() {
  var namespace = some.long.namespace;
  namespace.MyClass.staticHelper(new namespace.MyClass());
};

But I cannot fully understand this issue. Why not alias a namespace for brevity?

6

You change this, which could break functions in the aliased namespace. Example:

var foo = {
    bar: function () {
        console.log(this.baz);
    },
    baz: 42
};

foo.bar(); // prints 42
var alias = foo.bar;
alias(); // prints undefined, because `this` is no longer `foo`
6
  • 2
    var alias = foo.bar.bind(foo); :p
    – jAndy
    Aug 1 '12 at 13:26
  • @jAndy yes, but that only works because my example is simple and the alias is to a function, not a "namespace"/object (as I'm sure you know). I'll update for clarity++.
    – Matt Ball
    Aug 1 '12 at 13:27
  • 4
    Namespaces are not functions usually, though, but rather objects containing e.g. functions. But it's good to mention this.
    – pimvdb
    Aug 1 '12 at 13:27
  • var alias = foo.bar; alias.call(foo); Aug 1 '12 at 13:28
  • 2
    In the example, alias will change this, but foo.bar is not a namespace. In fact foo is the namespace, it seems that I won't change this if I alias foo.
    – Miaonster
    Aug 1 '12 at 13:54
3

I think this rule applies to namespace objects only:

The name of a local alias should match the last part of the type.

What you should alias (see the rule one above) are the things you really want to use, in here the MyClass constructor/namespace.

Improveded code:

myapp.main = function() {
  var myClass = some.long.namespace.MyClass;
  myClass.staticHelper(new myClass());
};

Of course, this does not apply to the namespaces whose several properties you want to use. If your code had also a need for namespace.TheirClass, it would be OK.

3

The document explicitly says you should alias long namespaced types locally:

Use local aliases for fully-qualified types if doing so improves readability. The name of a local alias should match the last part of the type.

However, except for reference safety I can't imagine why you shouldn't alias namespaces

The problem with an aliased namespace is that the references don't point to the same instances anymore.

my.long.namespaces.myFunc()
// this refers to the same function, but is a different reference
var myLocalNamespace = my.long.namespace;
namespace.myFunc();
// and you can easily introduce bugs which are hard to find
myLocalNamespace.myFunc = "foobar";
myLocalNamespace.myFunc()  // throws a type error because myFunc is now a string

This bug is hard to search for.

Aliasing has a lot of benefits though. Each member lookup in JavaScript costs time. So having code that constantly needs to lookup a chain of members is wasted speed. Since the cost of a local var is negligible it is strongly advised using local vars whenever you are referring to long namespaces, function results (like $("something")) and so on. Also, it makes your code much more readable. Consider the following:

var handleNamespace = function() {
    my.really.long.namespace.foo = "bar";
    my.really.long.namespace.doIt(my.really.long.namespace.foo);
    my.really.long.namespace.member = my.really.long.namespace.somethingElse(my.really.long.namespace.addOne(2));
};

As you see this gets confusing rather quickly. Getting rid of repeated code saves processing power and makes your code more readable.

var handleNamespace = function() {
    var namespace = my.really.long.namespace,
        three = namespace.addOne(2);

    namespace.foo = "bar";
    namespace.doIt(namespace.foo);
    namespace.member = namespace.somethingElse(three);
};
2
  • 2
    "because you only changed the member of alias" - this is not correct. An object is shared between the places it is stored.
    – pimvdb
    Aug 1 '12 at 13:57
  • 1
    Of course. Sorry my mistake. I'll update the answer. I was actually thinking about the reference itself being exchangeable not the members. Aug 1 '12 at 15:23

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.