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i am in mobile app and i use multiple ajax calls to receive data from web server like below

function get_json() {
    $(document).ready(function(){         
            $.ajax({
                url: 'http://www.xxxxxxxxxxxxx',
                data: {name: 'xxxxxx'},
                dataType: 'jsonp',
//                jsonp: 'callback',
//                jsonpCallback: 'jsonpCallback',
                success: function(data){
                    $.each(data.posts, function(i,post){
                        $.mobile.notesdb.transaction(function(t) {
                        t.executeSql('INSERT into bill (barcode, buildingcode, buildingaddress, flatname, flatdescription, entryseason, period, amount, pastpayments, todaypayments, paydate, receiptno) VALUES (?,?,?,?,?,?,?,?,?,?,?,?);',
                            [post.Id, post.Code, post.Address, post.Name, post.Description, post.EntrySeason, post.Period, post.Revenue, post.PastPayments, post.todaypayments, post.paydate, post.receiptno],
                            //$.mobile.changePage('#page3', 'slide', false, true),  
                            null);
                        });             
                    $('#mycontent').append(post.Name);
                    });
                }
            });

     $.ajax({
xxxx
  });

     $.ajax({
xxxx
  });

How can i force the 2nd ajax call to begin after the end of the first... the 3rd after the end of the 2nd and so go on

thx in advance for your time

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The only thing about this is a failed AJAX call will result in no other AJAX calls being made (because there is no "do this if the AJAX call fails", it'll just wait for a "success" forever). Maybe that's exactly what you want ... just something to consider. –  Timothy Aaron Feb 10 '12 at 22:04
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5 Answers

up vote 3 down vote accepted

Place them inside of the success: of the one it relies on.

$.ajax({
    url: 'http://www.xxxxxxxxxxxxx',
    data: {name: 'xxxxxx'},
    dataType: 'jsonp',
    success: function(data){

        // do stuff

        // call next ajax function
        $.ajax({ xxx });
    }
});
share|improve this answer
    
how can i do this can you explain it –  kosbou Feb 10 '12 at 21:47
    
Repeat for multiple levels of $.ajax() calls. –  Timothy Aaron Feb 10 '12 at 21:51
    
You can recursively do this for an unknown number of AJAX requests. There are currently a couple of answers to the question that demonstrate this. –  Jasper Feb 10 '12 at 21:53
    
Recursive is definitely the way to go ... assuming he's doing the exact same call every time. I just wasn't assuming that. –  Timothy Aaron Feb 10 '12 at 21:58
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You are somewhat close, but you should put your function inside the document.ready event handler instead of the other-way-around.

Put your AJAX call in a function and call it from the AJAX callback:

$(function () {

    //setup an array of AJAX options, each object is an index that will specify information for a single AJAX request
    var ajaxes  = [{ url : '<url>', dataType : 'json' }, { url : '<url2>', dataType : 'xml' }],
        current = 0;

    //declare your function to run AJAX requests
    function do_ajax() {

        //check to make sure there are more requests to make
        if (current < ajaxes.length) {

            //make the AJAX request with the given data from the `ajaxes` array of objects
            $.ajax({
                url      : ajaxes[current].url,
                dataType : ajaxes[current].dataType,
                success  : function (serverResponse) {
                    ...
                    //increment the `current` counter and recursively call this function again
                    current++;
                    do_ajax();
                }
            });
        }
    }

    //run the AJAX function for the first time once `document.ready` fires
    do_ajax();
});
share|improve this answer
    
This should be the one marked answer. Very nice. –  sohtimsso1970 Apr 16 '13 at 0:37
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Wrap each ajax call in a named function and just add them to the success callbacks of the previous call:

function callA() {
    $.ajax({
    ...
    success: function() {
      //do stuff
      callB();
    }
    });
}

function callB() {
    $.ajax({
    ...
    success: function() {
        //do stuff
        callC();
    }
    });
}

function callC() {
    $.ajax({
    ...
    });
}


callA();
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thx for your time... and for your quick reply –  kosbou Feb 10 '12 at 22:04
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$(document).ready(function(){
 $('#category').change(function(){  
  $("#app").fadeOut();
$.ajax({
type: "POST",
url: "themes/ajax.php",
data: "cat="+$(this).val(),
cache: false,
success: function(msg)
    {
    $('#app').fadeIn().html(msg);
    $('#app').change(function(){    
    $("#store").fadeOut();
        $.ajax({
        type: "POST",
        url: "themes/ajax.php",
        data: "app="+$(this).val(),
        cache: false,
        success: function(ms)
            {
            $('#store').fadeIn().html(ms);

            }
            });// second ajAx
        });// second on change


     }// first  ajAx sucess
  });// firs ajAx
 });// firs on change

});
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You could also use jquery when and then functions. for example

 $.when( $.ajax( "test.aspx" ) ).then(function( data, textStatus, jqXHR ) {
  //another ajax call
});

https://api.jquery.com/jQuery.when/

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