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Given an AngularJS ngController directive like this:

<div ng-controller="SomeCtrl as herpderp">…</div>

is there a way to get the namespace ("herpderp") from inside SomeCtrl? For example, when I want to use "herpderp" for registering that particular controller instance with some other part of my app, or track the controller under a clear name where $scope.$id wouldn't do.

Clarification / update: I know that inside my controller code I can access $scope.herpderp—in this particular example. The problem is that I am writing a controller than might be instantiated a few times in a page, in different parts, under different "names", so the $scope property (herpderp in the example above) would be different every time. So, taking my example, I'd like to get the information what "B" is in ng-controller="A as B" (SomeCtrl as herpderp).

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by namespace, do you mean the angular module? –  Dalorzo Feb 5 at 14:30
    
I mean I'd like to get the information "in the $scope, this controller instance is called herpderp". –  Carlo Zottmann Feb 5 at 14:32
    
to get the scope data from html is as simple as {{myVar} if you declared it as $scope.myVar –  Dalorzo Feb 5 at 14:34
    
@Dalorzo: thanks, but that's not what I was asking, sorry for the confusion. Please see the added clarification in the original question. –  Carlo Zottmann Feb 5 at 14:46

2 Answers 2

up vote 1 down vote accepted

So from your controller you want to find out how you created it? e.g. MyCtrl as A vs MyCtrl as B. If so I think you could do something like this.

for (key in $scope) {
    if ($scope[key] === this) {
        //if you created the controller with "MyCtrl as X" then this will log "X"
        console.log(key);
    }
}
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That does the trick. Much appreciated! –  Carlo Zottmann Feb 5 at 15:53

When you use the controller as syntax your controller will still be attached to the scope. So you can say $scope.herpderp.foo to access something on your controller. From inside your controller you can just use this.foo to access the same variable. And from html you would use herpderp.foo.

Not sure if that answers what you were asking though.

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Unfortunately, it isn't. I've just added a clarification in my original question. –  Carlo Zottmann Feb 5 at 14:44

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