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How can i create an instance of an interface ? example

@Connection(name="ClckCnt", version="1.0", description="Click Counter", maxsize=10000) 
public interface MyInterface extends DataService{


    @Update("CREATE TABLE IF NOT EXISTS clickcount ("
      + "id INTEGER NOT NULL PRIMARY KEY AUTOINCREMENT, "
      + "clicked INTEGER)")
  void initTable(VoidCallback callback);


     @Update("INSERT INTO clickcount (clicked) VALUES ({when.getTime()})")
  void insertClick(Date when, RowIdListCallback callback);
}

public class WebApp implements EntryPoint{

    MyInterface myInterface = GWT.create(MyInterface.class);

    public void onModuleLoad(){

    }
}

This kind of example i have from the gwt-html5-database project. in this project is a sample application and they did it the same way but it doesnt work. Somebody have an idea? Greets.

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1  
GWT can't magically create an instance of any old interface. The ClickCountDataService in the example project works because it extends DataService and uses annotations which tells GWT how to generate an implementation. –  Matt Ball Apr 22 '12 at 13:17
    
Also, that code won't even compile. myInterface.doSomething1(){ Window.alert("Hello"); } is not syntactically valid Java. –  Matt Ball Apr 22 '12 at 13:21
    
ok thx, but where do you see these annotations? –  Pero Apr 22 '12 at 13:32
    
On the ClickCountDataService interface. –  Matt Ball Apr 22 '12 at 14:24
    
i created an interface exactly the same like the interface ClickCountDataService which extends DataService and it doesnt work. –  Pero Apr 22 '12 at 19:26

1 Answer 1

See https://developers.google.com/web-toolkit/doc/latest/DevGuideCodingBasicsDeferred

You can either provide concrete implementations and chose the one to use depending on some properties (including, for example, user agent and/or locale), or use a generator. you can combine both: use a concrete implementation in some case, and a generator in another, depending on properties.

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