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I am new to Ajax and I am attempting to use Ajax while using a for loop. After the Ajax call I am running a function that uses the variables created in the Ajax call. The function only executes two times. I think that the Ajax call may not have enough time to make the call before the loop starts over. Is there a way to confirm the Ajax call before running the function printWithAjax()? I do not want the printWithAjax() function to execute until the Ajax call is complete. Any help will be greatly appreciated.

var id;
var vname;
function ajaxCall(){
for(var q = 1; q<=10; q++){
 $.ajax({                                            
         url: 'api.php',                        
         data: 'id1='+q+'',                                                         
         dataType: 'json',
         async:false,                    
         success: function(data)          
         {   
            id = data[0];              
            vname = data[1];
         }
      });

       printWithAjax(); 

 }//end of the for statement
}//end of ajax call function
share|improve this question
    
since you are using asycn:false(don't ever use it, if possible), the print will execute only after the ajax is completed.... – Arun P Johny Apr 25 '14 at 2:43
    
but the correct solution will be is to call the print function within the success callback and pass the id and vname as arguments – Arun P Johny Apr 25 '14 at 2:44
    
So you want printWithAjax to fire once for each ajax call? – kempchee Apr 25 '14 at 2:44
    
like jsfiddle.net/arunpjohny/yA8Zu/2 - do you also want to make sure the ajax request is executed in sequence if not you can remove the async:false – Arun P Johny Apr 25 '14 at 2:45
1  
Since your just passing numbers 1 - 10, why not pass an array or range (1-10) to your server and just make one ajax call? Rather then making 10 ajax requests. Also you can loop through the data to control its display. – Jay Bhatt Apr 25 '14 at 2:51

Try this code:

var id;
var vname;
function ajaxCall(){
for(var q = 1; q<=10; q++){
 $.ajax({                                            
     url: 'api.php',                        
     data: 'id1='+q+'',                                                         
     dataType: 'json',
     async:false,                    
     success: function(data)          
     {   
        id = data[0];              
        vname = data[1];
     },
    complete: function (data) {
      printWithAjax(); 
     }
    });

  }//end of the for statement
  }//end of ajax call function

The "complete" function executes only after the "success" of ajax. So try to call the printWithAjax() on "complete". This should work for you.

share|improve this answer

Add .done() to your function

var id;
var vname;
function ajaxCall(){
for(var q = 1; q<=10; q++){
 $.ajax({                                            
         url: 'api.php',                        
         data: 'id1='+q+'',                                                         
         dataType: 'json',
         async:false,                    
         success: function(data)          
         {   
            id = data[0];              
            vname = data[1];
         }
      }).done(function(){
           printWithAjax(); 
      });



 }//end of the for statement
}//end of ajax call function
share|improve this answer
    
done is the same as success. you want ".always()" – Michel Ayres Aug 15 '14 at 13:40
    
@MichelAyres I thought success will run only if it is successful and done would run no matter what... – Geo Aug 19 '14 at 16:26
    

Append .done() to your ajax request.

$.ajax({
  url: "test.html",
  context: document.body
}).done(function() { //use this
  alert("DONE!");
});

See the JQuery Doc for .done()

share|improve this answer

You should set async = false in head. Use post/get instead of ajax.

jQuery.ajaxSetup({ async: false });

    $.post({
        url: 'api.php',
        data: 'id1=' + q + '',
        dataType: 'json',
        success: function (data) {

            id = data[0];
            vname = data[1];

        }
    });
share|improve this answer

try

var id;
var vname;
function ajaxCall(){
for(var q = 1; q<=10; q++){
 $.ajax({  

 url: 'api.php',                        
 data: 'id1='+q+'',                                                         
 dataType: 'json',
 success: function(data)          
  {

    id = data[0];              
   vname = data[1];
   printWithAjax();
}
      });



}//end of the for statement
  }//end of ajax call function
share|improve this answer

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