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How would I implement an interface that is indexible:

interface fooInterface{
    // indexable
    [index:string]:number;
    [index:number]:number;          
}


class Foo implements fooInterface{
    // What goes here? 
}
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blogs.msdn.com/b/typescript/archive/2013/01/24/… - Half way down you'll find 'Describing an Indexable Object'. My reading is that you don't ever implement it in the class definition, but only by addressing instance[index] - so your fooInterface can't be used via implements but only structurally, eg: var foo: fooInterface = {}; Not certain this is correct, though - hence comment rather than answer. –  JcFx Apr 27 '13 at 13:05
    
That is actually correct. Would be happy to mark that as answer. Its not in the class specification. –  basarat Apr 27 '13 at 14:12
1  
There are other things in typescript interfaces as well that you cannot implement in a class e.g. call signatures –  basarat Apr 27 '13 at 14:19
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1 Answer

up vote 3 down vote accepted

You don't ever implement it in the class definition, but only by addressing instance[index], so your fooInterface cannot be be used via implements on a TypeScript class, but can be used to describe the expected structure of an object, e,g. var foo: fooInterface = {};

Describing an Indexable Object

A common pattern in JavaScript is to use an object (e.g. {}) as way to map from a set of strings to a set of values. When those values are of the same type, you can use an interface to describe that indexing into an object always produces values of a certain type (in this case, Widget).

interface WidgetMap {
    [name: string]: Widget;
}

var map: WidgetMap = {};
map['gear'] = new GearWidget();
var w = map['gear']; // w is inferred to type Widget

Quote and Widget example taken from: http://blogs.msdn.com/b/typescript/archive/2013/01/24/interfaces-walkthrough.aspx

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