64

Is there a Java 'finally' analogue in jQuery AJAX calls? I have this code here. In my always I throw an exception, however I ALWAYS want it to go to the then() method.

    call.xmlHttpReq = $.ajax({
        url : url,
        dataType : 'json',
        type : 'GET'
    }).always(function(processedDataOrXHRWrapper, textStatus, xhrWrapperOrErrorThrown) {

       throw "something";

    }).then(function() {

        alert("i want to always run no matter what");
    });

I have tried to use done(), complete(), and the another always(), but nothing seems to work.

Here is JSFiddle :

http://jsfiddle.net/qv3t3L0m/

  • just append it to always... – David Fregoli Apr 10 '13 at 12:16
  • 1
    You cannot catch asynchronically thrown errors it that's what you're looking for. You will need to wrap it into a try-catch-finally statement yourself. – Bergi Apr 10 '13 at 12:18
  • 2
    It Always goes to the always() function, that's why it's so aptly named. – adeneo Apr 10 '13 at 12:18
  • Unless jQuery handles every try/catch in a callback, throw "something"; will simply stop code execution. – plalx Apr 10 '13 at 12:18
  • @Bergi, I'm not familiar with jQuery's promises impl, but if it's Promises/A+ compliant, then errors thrown will be passed to an errorHandler passed to then. So if he passes a second function to then, that will receive "something" as a parameter. – David McMullin Apr 10 '13 at 12:22
91

See this example:

$.ajax({
        type: "GET",
        dataType: dataType,
        contentType: contentType,
        async: TRUE,
        url: $('html form:nth-child(1)').attr('action') + "?" $('html form:nth-child(1)').serialize(),
        success: function(data) {
            console.log("FUNFOU!");
        },
        error: function(data) {
            console.log("NÃO FUNFOU!");
        },
        complete: function(data) {
            console.log("SEMPRE FUNFA!"); 
            //A function to be called when the request finishes 
            // (after success and error callbacks are executed). 
        }
    });

For more informations: http://api.jquery.com/jquery.ajax/

38

.always() should work. See the The jqXHR Object section at http://api.jquery.com/jQuery.ajax/.

jqXHR.always(function(data|jqXHR, textStatus, jqXHR|errorThrown) { }); An alternative construct to the complete callback option, the .always() method replaces the deprecated .complete() method.

In response to a successful request, the function's arguments are the same as those of .done(): data, textStatus, and the jqXHR object. For failed requests the arguments are the same as those of .fail(): the jqXHR object, textStatus, and errorThrown. Refer to deferred.always() for implementation details.

See also http://api.jquery.com/deferred.always/

9

The below suggestions will not work in jQuery, because jQuery's promise implementation does not handle errors thrown in methods passed to then. I am only leaving them here as an illustration of what could be possible if jQuery was promises/A+ compliant. As Bergi rightly points out, you will have to manually wrap your code in your own try catch block.

call.xmlHttpReq = $.ajax({
    url : url,
    dataType : 'json',
    type : 'GET'
}).then(function(processedDataOrXHRWrapper, textStatus, xhrWrapperOrErrorThrown) {

   throw "something";

}).always(function() {

    alert("i want to always run no matter what");
});

Although I'm not sure if jquery's promise supports always, an alternative would be to use then (again) and pass the same function as both successHandler and errorHandler, like this :

call.xmlHttpReq = $.ajax({
    url : url,
    dataType : 'json',
    type : 'GET'
}).then(function(processedDataOrXHRWrapper, textStatus, xhrWrapperOrErrorThrown) {

   throw "something";

}).then(function() {

    alert("i want to always run no matter what");
},
function() {

    alert("i want to always run no matter what");
});
  • jQuery's then does not catch errors in the callback. Did you try this? – Bergi Apr 10 '13 at 12:36
  • sorry, I tried using then->always, and having two functions in my then, but I still have the same problem. – Oliver Watkins Apr 10 '13 at 12:37
  • sincerest apologies, after looking at jquery's deferred docs I thought this would work, but I was clearly mistaken and Bergi rightly points out I should have checked in a sandbox. – David McMullin Apr 10 '13 at 12:40
3

Just a note for those who use jQuery 3.0 and later

Deprecation Notice: The jqXHR.success(), jqXHR.error(), and jqXHR.complete() callbacks are removed as of jQuery 3.0. You can use jqXHR.done(), jqXHR.fail(), and jqXHR.always() instead.

As in official documentation

2

There is a bug ajax is dependent on the server, need to check status with "complete" is the best, a kind of "success", "error" and others are not 100% of the PUT, POST and GET ... look at an example

$.ajax({
    url: '/api/v2/tickets/123456.json',
    ....
    ....
    ....
    complete: function(data) { 
        if (data.statusText == "success") { 
            console.log("Sent successfully");
        } else { 
            console.log("Not Sent");
        }
    }
});

Sorry bad english! Cheer ;-)

1

if you want one code definition for all ajax requests, you can do it like this

$(document).ajaxComplete(function () {
    console.log('ajax complete on doc');
})

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