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I have just downloaded the TypeScript documentation. I have a some JavaScript classes and I would like to create and use these class in a TypeScript test application

How can I call a JavaScript function of an included JavaScript from TypeScript. I do not want to create a "d.ts" file. Just to create my classes, call its methods, access its properties.

How do I do that?


I am trying to use kendoUI with TypeScript.

For instance to show a window I have to do:

  1. Have a HTML to represent the content of a window. I have a div with an id logonDialog. This div
    is initially hidden;
  2. I create the window: logonDlg.kendoWindow(logOnParams);
  3. Then using jQuery I show the div: using logonDlg.show();

Example

var logonDlg = $("logonDialog");

if (!logonDlg.data("kendoWindow")) {
   logonDlg.kendoWindow(logOnParams);
   logonDlg.show();
}

It is working OK. The JS is generated as I want but I receive an error since The property 'kendoWindow' does not exist on value of type 'JQuery'.

How can I disable this kind of error. I could not make, what Ryan said, to work.

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3 Answers 3

up vote 1 down vote accepted

You just do it. TypeScript won't stop you. You will see warnings in the compiler output but tsc will generate your JS file just fine.

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Thanks to all of you. I will try it soon. –  mvbaffa Oct 3 '12 at 23:42
    
this is not the case in vs2013? Building stops and i can not run my project. –  zoidbergi Aug 6 '13 at 14:49

If you want to stop the errors without doing much else extra work, you can 'declare' the objects from your JS code:

declare var w; // implicit type here is 'any'
// (later, anywhere in your file...)
var x = new w(); // you can do whatever you want with w now without getting errors
w.x = 4; // etc.
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There is a better solution. Just cast the jQuery logonDlg to any like this:

(<any>logonDlg).kendoWindow(logOnParams);

The code will be a bit different but will work the same.

  1. Without the cast th generated code is like this: logonDlg.kendoWindow(logOnParams);
  2. With the cast will be like this: (logonDlg).kendoWindow(logOnParams);

Both work OK.

Regards

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