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does somebody know how to do a module.exports?

I tried some different ways ending up with

export class Greeter {}

which will compile to

exports.Greeter = Greeter;

But what I really want is this:

exports = Greeter;

So that I can use it like this:

import Greeter = module("Greeter");
var greeter = new Greeter();

and not

import Greeter = module("Greeter");
var greeter = new Greeter.Greeter();

Is this possible with Typescript?

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5 Answers 5

up vote 14 down vote accepted

This has now been implemented and is ready in TypeScript 0.9 :)

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5  
For clarification (since I had to go dig this up), the syntax in 0.9 is available here: blogs.msdn.com/b/typescript/archive/2013/06/18/… (under "Export ="). –  Dan Jul 29 '13 at 8:36
1  
And for further clarification, for future readers, it has been implemented ALMOST exactly as the asker desired . . . But what I really want is export = Greeter;, that's exactly what you do :) –  Binary Worrier Dec 3 '14 at 13:26
    
I wanted to just expose a config object from config/db.ts and use that configuration in app. This is what I could do successfully in TypeScript 1.4: In config/db.ts write var config = {connStr:'postgres://user:pass@host/dbname'}; export = config; and in app.ts refer it as import dbConfig = require('./config/db'); dbConnect(dbConfig.connStr); –  Gurjeet Singh Feb 24 at 2:15

So I think I've found a workaround. Just wrap the keyword 'module' in parentheses in your .ts file:

declare var module: any;
(module).exports = MyClass;

The generated javascript file will be exactly the same:

(module).exports = MyClass;

Note, better than declaring var module yourself, download the node.d.ts definition file and stick it in the same directory as your typescript file. Here is a complete sample of an express node.js routing file which assumes node.d.ts is in same directory:

/// <reference path="node.d.ts" />
var SheetController = function () {
    this.view = function (req, res) {
        res.render('view-sheet');
    };
};
(module).exports = SheetController;

I can then new up a SheetController and (using express) assign the view method:

var sheetController = new SheetController();
app.get('/sheet/view', sheetController.view);

I suppose any keyword can be escaped using this pattern:

declare var reservedkeyword: any;
(reservedkeyword).anything = something;
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try this boilerplate app template https://github.com/ntheile/TypeScript-Backbone-Require-Boilerplate

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How does this address the problem? The example at that site still uses the module.classname syntax, though they are calling the module "Model". Note that using the folder name like that only works for one file - as soon as you have multiple files with exports in that folder the naming doesn't work. –  dcstraw Oct 18 '12 at 17:37

It's ugly and hacky, but you can still do:

class Greeter {}
declare var exports:any;
exports = Greeter;

Which compiles into:

var Greeter = (function () {
    function Greeter() { }
    return Greeter;
})();
exports = Greeter;
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1  
Unfortunately the TypeScript compiler doesn't seem to handle this well. For instance you can't derive from the class when you do this. –  dcstraw Oct 18 '12 at 17:33
    
how would this work? Isn't that the whole argument with CommonJs vs. AMD. That Common doesn't support returning stuff directly as the exports variable? –  George Mauer Nov 4 '12 at 15:39

Currently no. This is a limitation in TypeScript and a limitation in the current straw-man module specification being considered by ECMA which TypeScript is patterned after.

This would be a great suggestion to make on CodePlex.

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6  
typescript.codeplex.com/workitem/47 –  Kersten Oct 2 '12 at 22:45
4  
Seems like ECMA needs to be made aware of this too. This will cause a problem for ECMAScript 6 developers too down the road. –  dcstraw Oct 18 '12 at 17:40

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