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This is my first day and first question here, hope you will forgive me if my question is very trivial for this platform.

I am trying to call ajax inside ajax, One ajax call is going to call one cotroller action in which it will insert a record in the database, The action for the 1st ajax call is

public function createAction(Request $request){
    if ($request->isXmlHttpRequest()) {
        $name = $request->get("gname");
        $description = $request->get("desc");
                    $portfolio_id = $request->get("PID");
                    $portfolio = $this->getDoctrine()
                        ->getRepository('MunichInnovationGroupPatentBundle:PmPortfolios')
                        ->find($portfolio_id);
        $portfolio_group = new PmPatentgroups();
        $portfolio_group->setName($name);
        $portfolio_group->setDescription($description);
        $portfolio_group->setPortfolio($portfolio);
        $portfolio_group->setOrder(1000000);
        $portfolio_group->setIs_deleted(0);
        $em = $this->getDoctrine()->getEntityManager();
        $em->persist($portfolio_group);
        $em->flush();
        $msg = 'true';
    }
    echo $msg;
    return new Response();
}

The 2nd ajax call is going to get the updated data that is inserted by the first ajax call, The action for this call is

public function getgroupsAction(Request $request){
    if ($request->isXmlHttpRequest()) {

        $id = $request->get("PID");
        $em = $this->getDoctrine()->getEntityManager();
        $portfolio_groups = $em->getRepository('MunichInnovationGroupPatentBundle:PmPatentgroups')
        ->getpatentgroups($id);
        echo json_encode($portfolio_groups);
        return new Response();
    }
}

My JQuery is as follows

 $.ajax({
         type: 'POST',
         url: url,
         data: data,
         success: function(data) {
         if(data == "true") {
                 $("#new-group").fadeOut("fast", function(){
                 $(this).before("<strong>Success! Your Portfolio Group is created Successfully.</strong>");
                 setTimeout("$.fancybox.close()", 3000);
                 });
                  $.ajax({
                          type: 'POST',
                          url: getgroups,
                          data: data,
                          success: function(data) 
                          { 
                            var myArray = JSON.parse(data); 
                            var options = $("#portfolio-groups"); 
                            for(var i = 0; i < myArray.length; i++)
                            { 
                              options.append($("<option />").val(myArray[i].id).text(myArray[i].name)); 
                             } 
                       } 
                });
            }
         }
     });

I am calling the 2nd ajax inside the success of the 1st one to ensure that the first ajax is successfully completed, but the 2nd ajax call is not getting the updated data.

How can I ensure that the 2nd ajax will be called after the completion of the first one and I get the recently inserted data as well

Thanks

MY SOLUTION Just using one ajax call

in the create action where an insertion is made , just after the insertion take all the groups for the portfolio, and return json_encode($portfolio_groups);

Inside the JQuery

 $.ajax({
        type: 'POST',
        url: url,
        data: data,
        success: function(data) {
              $("#new-group").fadeOut("fast", function(){
              $(this).before("<strong>Success! Your Portfolio Group is created Successfully.</strong>");
              setTimeout("$.fancybox.close()", 3000);
              });
              var myArray = JSON.parse(data); 
              var options = $("#portfolio-groups"); 
              for(var i = 0; i < myArray.length; i++)
              { 
                 options.append($("<option />").val(myArray[i].id).text(myArray[i].name)); 
               } 
            }
       });   
share|improve this question
    
Why don´t you return the data you need in the first ajax call? This would save you from having to make the second call –  Carlos Granados Aug 29 '12 at 9:19
    
@Carlos Granados nice idea let me try it –  Umair Iqbal Aug 29 '12 at 9:20
    
one ajax call worked :) –  Umair Iqbal Aug 29 '12 at 9:30
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3 Answers 3

I think the problem may be that you've got lots of variables names ´data´. In the second ajax call, the data sent will always be "true", but I suspect you would like to send something else. I would give them unique names to make things clearer and see what happens.

share|improve this answer
    
The data variable is same because in both calls the data that needs to be sent is same, the urls for both calls are different though –  Umair Iqbal Aug 29 '12 at 9:19
2  
Yes, but you are also using "data" for the name of the data that is returned by the ajax call and this messes things up –  Carlos Granados Aug 29 '12 at 9:20
    
function(data) can be 'returnedData ' and is not the same! –  VDP Aug 29 '12 at 9:20
add comment
up vote 1 down vote accepted

Just using one ajax call

in the create action where an insertion is made , just after the insertion take all the groups for the portfolio, and return json_encode($portfolio_groups);

Inside the JQuery

$.ajax({
    type: 'POST',
    url: url,
    data: data,
    success: function(data) {
          $("#new-group").fadeOut("fast", function(){
          $(this).before("<strong>Success! Your Portfolio Group is created Successfully.</strong>");
          setTimeout("$.fancybox.close()", 3000);
          });
          var myArray = JSON.parse(data); 
          var options = $("#portfolio-groups"); 
          for(var i = 0; i < myArray.length; i++)
          { 
             options.append($("<option />").val(myArray[i].id).text(myArray[i].name)); 
           } 
        }
   });  
share|improve this answer
add comment

Ajax in side the success method of the first Ajax, as you did, should ensure you the second Ajax is called after the first one. The success method is triggered ONLY after results have returned.
For a test add console.log() inside the first Ajax req just before you call the second one. and another console.log() inside the second Ajax success method.

try to put a console.log on the first success->data variable and see what you get. If you have an error I will cause the second request to fail.

share|improve this answer
    
I can see in the console both of them executed successfully –  Umair Iqbal Aug 29 '12 at 9:24
    
Do they appear in the order you expected? can you write what is the output of both? –  user1134422 Aug 29 '12 at 9:40
    
Yes they apear as I wanted, Actually the firsta ajax call just insert a group in the groups table, and the 2nd one get the updated result of all the groups and populate them in a select box, So after inserting the group in createAction I run a query to get all the groups of a selected portfolio and then return that as JSON and in my JQuery you can see how I parse the JSON String and populate my Select drop down with updated data, And for your information the group is created using a fancybox a popup form –  Umair Iqbal Aug 29 '12 at 9:43
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