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I've got a little jQuery here:

$.ajax({
    url: $this.fileUploadUrl,
    data: 'url=' + encodeURIComponent(file.name),
    type: 'POST',
    done: function () {
        file.status = plupload.DONE;
        $this.updateFileStatus(file);
    },
    fail: function () {
        file.status = plupload.FAILED;
        $this.updateFileStatus(file);
    }
});

If the server returns a HTTP 500 response, the fail callback does NOT run, and neither does done. I even tried adding always, which didn't work either. What am I missing?

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2 Answers 2

up vote 4 down vote accepted

What are done and fail? The documentation does not list them.

(They are member functions of the jqXHR object, but that's not the same as them being options in a call to $.ajax().)

Perhaps you're looking for success and error, respectively:

$.ajax({
    url: $this.fileUploadUrl,
    data: 'url=' + encodeURIComponent(file.name),
    type: 'POST',
    success: function(data, textStatus, jqXHR) {
        file.status = plupload.DONE;
        $this.updateFileStatus(file);
    },
    error: function(jqXHR, textStatus, errorThrown) {
        file.status = plupload.FAILED;
        $this.updateFileStatus(file);
    }
});

Or, to keep your original terminology, the following (which is not quite equivalent but close-ish):

$.ajax({
    url: $this.fileUploadUrl,
    data: 'url=' + encodeURIComponent(file.name),
    type: 'POST'
}).done(function() {
    file.status = plupload.DONE;
    $this.updateFileStatus(file);
}).fail(function() {
    file.status = plupload.FAILED;
    $this.updateFileStatus(file);
});
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3  
Ah, I read the documentation wrong. I saw "Deprecation Notice: The jqXHR.success(), jqXHR.error(), and jqXHR.complete() callbacks will be deprecated in jQuery 1.8. To prepare your code for their eventual removal, use jqXHR.done(), jqXHR.fail(), and jqXHR.always() instead."... do they intend to deprecate success and fail in the ajax method as well, and encourage us to use the jqXHR approach? –  Jake Petroules Jan 11 '12 at 22:36
    
@JakePetroules Why would they? Such is the brilliance of a [semi-]stable API and encapsulation :) The ajax function just takes in an object to be able to get "named parameters". –  user166390 Jan 11 '12 at 22:38
var request = $.ajax({
  url: $this.fileUploadUrl,
  type: "POST",
  data: 'url=' + encodeURIComponent(file.name)
});

request.done(function() {
  file.status = plupload.DONE;
  $this.updateFileStatus(file);
});

request.fail(function() {
  file.status = plupload.FAILED;
  $this.updateFileStatus(file);
});
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