Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have a question about dojo/Deferred. I'll start with the question, then go into more detail about what I'm doing:

Is there a way to execute the same lines of code regardless of the outcome of the deferred, sort of like a finally block in a try...catch statement? From what I've read, it doesn't seem like there is, but maybe I'm understanding the documentation wrong and wanted to verify that with the SO community.

Here's what I'm doing:

In Dojo 1.9 (also works in 1.8), I instantiate a dojox.widget.Standby (a loading overlay) for a ContentPane before loading some data. Once the deferred call has completed, I want to hide my overlay as shown below:

standby = new Standby({
    ... // standby props
});
this.addChild(standby);
standby.show();

queryResults = grid.store.query({
    ... // query props
});
queryResults.then(function (results) {
    if (results) {
        ... // do something
    }

    standby.hide();
}, function (error) {
    ... // handle error

   standby.hide();
});

This works fine; however, presumably, I could have some process to be implement after the deferred completes that takes up several lines of code instead of just a single line and I wouldn't want to duplicate those lines of code. An alternative would be to create a private function and just call it with a one-liner in each block, but if there's a better way, I'd rather take that route.

Thanks in advance!

share|improve this question
up vote 5 down vote accepted

You can use the always method of the Promises API to execute a function regardless of whether the underlying Deferred succeeds or fails.

queryResult
   .then(onSuccess, onFailure)
   .always(function() {
      standby.hide();
   });
share|improve this answer

This is a good question. A dojo/Deferred object will return another Deferred object when Deferred#then is called. This allows you to chain a differed with multiple callbacks that are fired in a serial order. Therefore, I believe you can do something like this:

queryResults.then(function (results) {
   if (results) {
       ... // do something
   }
}, function (error) {
    ... // handle error
}).then(function(data){
    // This will be fired with data returned from the previous callback.
    standby.hide();
});

You can see this example fiddle that illustrates a similar, albeit simple, use case where regardless of if the Deferred is rejected or resolved, the callback to the second Deferred#then is fired after the initial error/success callback.

share|improve this answer
    
both you and @Lucas have answered my question since both of your answers are correct. I gave the 'Best Answer' to @Lucas because I think that always represents a clearer intent than an additional then. But I up-voted your answer for its correctness. – David Jun 27 '13 at 18:21
var deferred = new Deferred(); 
deferred.promise.always( function() { alert('ciao'); } );
share|improve this answer
    
This doesn't seem to add anything over the existing answers. – Bergi Nov 26 '15 at 5:44
    
yes it does, deffered extends promise, so i use the promise property without having to call the .then() function and set the callback functions. – max4ever Nov 27 '15 at 11:12
    
The other answers use .then() because the OP needs those outcome-dependent callback functions as well. – Bergi Nov 27 '15 at 11:29
    
the exact question is "Is there a way to execute the same lines of code regardless of the outcome of the deferred, sort of like a finally block in a try...catch statement?" no mention of then() – max4ever Dec 1 '15 at 11:49

Your Answer

 
discard

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.