Sign up ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

I'm using TS 0.9.5 and something just hit me.

class X { }

class Y { }

function y(p: Y) { }

y(new X);

How can this compile without errors? We have implicit any disabled, so it should be strongly typed. Is this a bug?

Here a playground sample:

edit: Now I understand the thing about empty classes. The thing is I had a different issue and tried to simplify. I simplified too much.

I actually have that problem with multiple overloads and one implementation with less specific signature.

Here the one that does compile but should not: sample 1

and heres the version that won't compile like expected but the implementations parameters and return types are completely unspecific: sample 2

I'm sorry it's a little convoluted sample.

share|improve this question
It's less clear what your question is now. Why do you think the first one shouldn't compile? – WiredPrairie Feb 17 '14 at 16:03
The first sample shouldn't compile because of the specs:… page 77 / 78 "Note that the signature of the actual function implementation is not included in the type." – hoferm Feb 17 '14 at 16:18
Yes, sorry for that. The problem with the first one is that the implementation of the queryViewSource should be invisible and not callable. it's not in the list of overloads, but yet it's compiles fine. – sharp johnny Feb 17 '14 at 16:19
@sharpjohnny Way to change your question, I hope that's your upvote against my answer, now that you understand empty classes. :) I have looked at Sample 1, but I am not seeing what you are seeing. You are exporting queryViewSource why should it be invisible? – Scott Feb 17 '14 at 18:22
yes thats my upvote, thanks :P the implementation must be exported, it wouldn't build otherwise. if you type in m.queryViewSource( you should see the dropdown-list of available overloads, eg. the two signatures, but the implementation itself is not available. But still you can pass in any parameter even if it's not visible as a overload. – sharp johnny Feb 18 '14 at 8:18

1 Answer 1

It's not a bug. TypeScript will ignore empty classes, interfaces and modules. As such because both X and Y are empty the type checking does not apply.

For the strong type checking of Y to work, you must define a property in Y.

class X {

class Y {
    name : string;

function y(p: Y) { }

y(new X()); // Fails because Y is now defined, and X is not compatible.

It is by design.

share|improve this answer
(Unfortunately, the question seems to have changed quite a lot, making your answer less relevant. You might want to have a look at the updated question. :) ). – WiredPrairie Feb 17 '14 at 16:04

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.