52

I am using Visual Studio 2013 fully patched. I have a website that i've just created and am trying to use jquery, jqueryui and jsrender. I am also trying to use TypeScript. In the ts file i'm getting an error as follows

Property 'fadeDiv' does not exist on type '{}'.

I have the correct references i think for jquery, jqueryui and jsrender for typescript.. but from what I've read this is looking like a d.ts issue. Was hoping someone could help me out.

there are no errors in javascript but i don't want to have Visual Studio saying there are errors if i can help it. Both times fadeDiv is mention in the javascript there is a red line under it and both errors say the same thing as above.

thanks shannon

/// <reference path="../scripts/typings/jquery/jquery.d.ts" />
/// <reference path="../scripts/typings/jqueryui/jqueryui.d.ts" />
/// <reference path="typings/jsrender/jsrender.d.ts" />

var SUCSS = {};

$(document).ready(function () {
   SUCSS.fadeDiv();
});

SUCSS.fadeDiv = function () {
var mFadeText: number;
$(function () {
    var mFade = "FadeText";
    //This part actually retrieves the info for the fadediv
    $.ajax({
        type: "POST",
        //url: "/js/General.aspx/_FadeDiv1",
        url: "/js/sucss/General.aspx/_FadeDivList",
        //data: "{'iInput':" + JSON.stringify(jInput) + "}",
        contentType: "application/json; charset=utf-8",
        dataType: "json",
        error: function (xhr, status, error) {
            // Show the error
            //alert(xhr.responseText);
        },
        success: function (msg) {
            mFadeText = msg.d.Fade;
            // Replace the div's content with the page method's return.
            if (msg.d.FadeType == 0) {//FadeDivType = List
                var template = $.templates("#theTmpl");
                var htmlOutput = template.render(msg.d);
                $("[id$=lblFadeDiv]").html(htmlOutput);
            }
            else {//FadeDivType = String
                $("[id$=lblFadeDiv]").html(msg.d.FadeDivString);
            }
        },
        complete: function () {
            if (mFadeText == 0) {
                $("[id$=lblFadeDiv]").fadeIn('slow').delay(5000).fadeOut('slow');
            }
        }
    });
});

For those who might read this later.. the SUCSS the namespace.. In typescript it appears I would have wanted to do something like this.

$(document).ready(function () {
    SUCSS.fadeDiv();
});
module SUCSS {
    export function fadeDiv () {};
};

So the function is made public by use of the export and i could call the SUCSS.fadeDiv to run on the page loading by calling it out in with the SUCSS.fadeDiv(); hope that can be helpful.

  • 1
    You seem to be missing at least the closing } brace, and perhaps other code. – mk. Dec 14 '15 at 19:12
  • You need to get this code down to a self-contained example so that people can actually reproduce the problem. As it stands you have tons of variables in use that don't have definitions, so we can only guess at their types. – Ryan Cavanaugh Dec 14 '15 at 19:22
85

Simply assign the any type to the object:

let bar = <any>{};
bar.foo = "foobar"; 
  • 2
    is better to use the any syntax: let bar = {} as any; bar.foo = "foobar"; – eKelvin Jan 15 '18 at 12:38
25

Access the field with array notation to avoid strict type checking on single field:

data['propertyName']; //will work even if data has not declared propertyName

You can also totally disable type checking on all variable fields:

let untypedVariable:any= <any>{}; //disable type checking while declaring the variable
untypedVariable.propertyName = anyValue; //any field in untypedVariable is assignable and readable without type checking

Note: This would be more dangerous than avoid type checking just for a single field access, since all consecutive accesses on all fields are untyped

  • 1
    What is the point in using TypeScript if we're just going to circumvent it with hacks like this? – Damien Roche Oct 8 '18 at 8:47
  • 1
    The Typescript type checking is not strict and mandatory, it is like a strong recommendation, you can bypass it any time everywhare by simply add <any>. Often you have to do it since in the web you interact with javascript libraries, untyped json APIS and dynamically generated objects. In cases like these, exceptionally, you have to be able to use functionalities like this, formally this is called reflection, and is a functionality that Java has too, so neither using Java or C# – Luca C. Oct 8 '18 at 10:28
14
let propertyName= data['propertyName'];
  • 1
    That was the only one which really solved my compilation issue. Even declaring like section: { year: any }[] made error: Property 'year' does not exist on type '{ year: Number; }[]'. – Paweł Stolka Sep 13 at 15:29
12

When you write the following line of code in TypeScript:

var SUCSS = {};

The type of SUCSS is inferred from the assignment (i.e. it is an empty object type).

You then go on to add a property to this type a few lines later:

SUCSS.fadeDiv = //...

And the compiler warns you that there is no property named fadeDiv on the SUCSS object (this kind of warning often helps you to catch a typo).

You can either... fix it by specifying the type of SUCSS (although this will prevent you from assigning {}, which doesn't satisfy the type you want):

var SUCSS : {fadeDiv: () => void;};

Or by assigning the full value in the first place and let TypeScript infer the types:

var SUCSS = {
    fadeDiv: function () {
        // Simplified version
        alert('Called my func');
    }
};
2

I suggest the following change

let propertyName =  {} as any;
  • 1
    Welcome to SO, Kovacs! Please edit your answer so that it does contain a short introductory paragraphy which relates to the question asked. In addition to that, a brief explanation would be cool, why your answer solves the issue. – B--rian Aug 6 at 12:58
0

Near the top of the file, you need to write var fadeDiv = ... instead of fadeDiv = ... so that the variable is actually declared.

The error "Property 'fadeDiv' does not exist on type '{}'." seems to be triggering on a line you haven't posted in your example (there is no access of a fadeDiv property anywhere in that snippet).

  • Sorry about that.. Here is the complete code... just had a namespace left out in the example but the error is the same. The error happens on the SUCSS.fadeDiv(); in the document load and also in the SUCSS.fadeDiv = function(){ line. – jvcoach23 Dec 14 '15 at 19:14
  • It's not much of an improvement because you haven't posted the definition of SUCSS either... – Ryan Cavanaugh Dec 14 '15 at 19:21
0
myFunction(
        contextParamers : {
            param1: any,
            param2: string
            param3: string          
        }){
          contextParamers.param1 = contextParamers.param1+ 'canChange';
          //contextParamers.param4 = "CannotChange";
          var contextParamers2 : any = contextParamers;// lost the typescript on the new object of type any
          contextParamers2.param4 =  'canChange';
          return contextParamers2;
      }

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