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I'm using the below code to get JSON from multiple urls. However, when one of the URL failed or get 404 response the function the execute doesn't work. I read the jquery doc and I know "then" should execute no matter one of the call has failed.

var data = {};
var calls = [];
for (var i in funcs) {
    calls.push(
        $.getJSON(base_url+i,
            (function(i) {
                return function(d) {
                    data[i] = d;
                };
            }(i)) 
        )
    );
}
$.when.apply($,calls).then(function() {
    do_something(data);
}); 
share|improve this question
    
Do you need to control when all of the requests have ended or can it be for each single request? –  Andre Calil Jul 29 '13 at 15:01
    
no. I just want to get the array of collected data. so if there is no data in this url ignore. but most importantly here I want make do_something(data); execute –  user2581550 Jul 29 '13 at 15:04
1  
If you want do_something(data) to run even if one of the AJAX calls fails, $.when() may not be the right method to use. It bails out (and rejects the promise it returned instead of resolving it) as soon as one of the calls fail. –  Frédéric Hamidi Jul 29 '13 at 15:06
1  
@user2581550 Could you give a try to this script, please? jsfiddle.net/LnAxZ I hadn't been able to test any, any feedback will be appreciated. –  Andre Calil Jul 29 '13 at 15:14
    
I don't understand how to make the function wait before you do 'do_somthing(data)' . It would not work like that –  user2581550 Jul 29 '13 at 22:37

4 Answers 4

Take a look at always method. It will executed in both cases. For example:

$.when.apply($, calls).always(function() { 
    alert('Resolved or rejected'); 
});

In response to successful transaction, arguments are same as .done() (ie. a = data, b = jqXHR) and for failed transactions the arguments are same as .fail() (ie. a = jqXHR, b = errorThrown). (c)

share|improve this answer

As jQuery docs the .then function takes two (or three) arguments in your case deferred.then( doneCallbacks, failCallbacks )

So you need to specify the second function to handle the failing request.

i.e.

$.when.apply($,calls).then(function() {
    alerT('ok');
}, function() {
    alert('fail');
});

Here a simple fiddle: http://jsfiddle.net/rrMwr/

Hope this helps

share|improve this answer

You need to use the second parameter of deferred.then() (documentation):

$.when.apply($, calls).then(function() {
    do_something(data);
}, function() {
    // something failed
});

If you want to call the same callback regardless of successes and failures, use deferred.always() (documentation):

$.when.apply($, calls).always(function() {
    do_something(data);
});

It is also worth reading the jQuery.when() documentation, which explains the aggregation when multiple deferred objects are passed.

share|improve this answer
    
is there a way to make do_something(data); execute no matter if it failed or not. –  user2581550 Jul 29 '13 at 15:06
    
yeah, you can put the function in both the closures –  Mangiucugna Jul 29 '13 at 15:08
    
Ok thanks, I'm just slightly lazy to put the functions in both. –  user2581550 Jul 29 '13 at 15:11
1  
@user2581550: Yep, use the always method. –  seteh Jul 29 '13 at 15:21
    
@seteh good point; I'll add that in. –  cmbuckley Jul 29 '13 at 15:22

I read the jquery doc and I know "then" should execute no matter one of the call has failed.

Nope, the promise only gets fulfilled if all of the passed objects are fulfilled. If one of them fails, the result will get rejected.

is there a way to make do_something(data); execute no matter if it failed or not.

You could use .always:

// doSomething waits until all are fulfilled or one is rejected
$.when.apply($,calls).always(do_something);

Yet, you probably want to execute the callback when all calls are resolved (no matter if fulfilled or rejected) - like allSettled does in Q. With jQuery, you have to work around a little:

var calls = $.map(funcs, function(_, i) {
    var d = new $.Deferred;
    $.getJSON(base_url+i).done(function(r/*…*/) {
        d.resolve(i, r);
    }, function(/*…*/) {
        d.resolve();
    });
    return d.promise();
});
$.when.apply($, calls).then(function() {
    var data = {};
    for (var i=0; i<arguments.length; i++)
        data[arguments[i][0]] = arguments[i][1];
    do_something(data);
}); 
share|improve this answer
    
I don't want all data. if one of query has no data then I don't show it. How to get around this. always still doesn't work . –  user2581550 Jul 29 '13 at 22:29

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