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Wait until all jquery ajax request are done?
Multiple ajax calls inside a each() function.. then do something once ALL of them are finished?

The function below runs all this code at document ready but I am trying to run other functions when all the data from these completes.

function loadZonesDistrictsStoresData(){
        $.getJSON('/CampaignMgmt/GetZonesByClient', { 'clientid': clientid }, function (zones){
            $.each(zones, function(index, zoneid){
                var li_tag = '<li id="'+ zoneid +'"> <label><input id="'+zoneid+'" data-id="'+zoneid+'" onchange="zones.selectZone(this.value)" type="checkbox" name="zone_'+zoneid+'" value="'+ zoneid +'"><span>' + zoneid +'</span> </label></li>';
                $("ul.zones").append(li_tag);
                $.getJSON('/CampaignMgmt/GetDistrictsByZone', {'clientid': clientid, 'zone': zoneid }, function(data){
                    zone_object[zoneid] = data;
                    $.each(data, function(index, districtid){
                        $.getJSON('/CampaignMgmt/GetStoresByDistrict', {'clientid': clientid, 'district': districtid }, function(stores){
                            districts_object[districtid] = stores;
                        });
                    });
                });
            });
        });
    }
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marked as duplicate by Felix Kling, Mark Coleman, ᾠῗᵲᄐᶌ, Matt Burland, Vivin Paliath Oct 22 '12 at 22:21

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probably use .done with jQuery deferred object –  diEcho Oct 22 '12 at 19:19
    
That is a lot of ajax. Any way to combine the calls on the backend? If not .done will most likely do what you need. –  Mark Coleman Oct 22 '12 at 19:20
    
you can either us deferred objects as @diEcho mentioned, or a custom queue using jQuery.queue() and jQuery.dequeue() –  Derek Oct 22 '12 at 19:24

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