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I want to wait on multiple AJAX calls without nesting callbacks one inside the other.

From this documentation, I understand it's possible using jQuery.when().

$.when($.ajax("/page1.php"), $.ajax("/page2.php")).done(function(a1,  a2){
    /* a1 and a2 are arguments resolved for the 
        page1 and page2 ajax requests, respectively */
   var jqXHR = a1[2]; /* arguments are [ "success", statusText, jqXHR ] */
   if ( /Whip It/.test(jqXHR.responseText) ) {
      alert("First page has 'Whip It' somewhere.");
   }
});

However, from the supplied example, I don't understand how errors are handled. In a normal jquery.ajax call, I supply an error callback in the options.

Ideally, what I'd like is for a supplied error callback to be called when at least one of the ajax calls causes an error.

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You can get results in a1[0] and a2[0]. Then you can test for "success" or "error". –  Guillaume Poussel Mar 6 '12 at 8:16
    
Are you sure? I've tried it, and the function passed to done just isn't called. –  Ovesh Mar 7 '12 at 1:21

1 Answer 1

The correct thing is to chain then to when, instead of done.

For example:

$.when(
   $.ajax("/page1.php", {
    error: function(jqXHR, textStatus, errorThrown){
      // handle the error for this specific call
    },
    success: function(data, textStatus, jqXHR){
      // handle the success for this specific call
    }
   }), 
   $.ajax("/page2.php"), {
    error: function(jqXHR, textStatus, errorThrown){
      // handle the error for this specific call
    },
    success: function(data, textStatus, jqXHR){
      // handle the success for this specific call
    }
   }).then(
   function(){
     // all calls succeeded
   },
   function(){
     // at least one of the calls failed
   }
});
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