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I don't Know is below a valid question? or Just my stupidity.

 function IsSlaExists(department) {
     var flag = "";
     $.ajax({
         type: "POST",
         data: "Type=ISSLAEXISTS&Department=" + encodeURI(escape(department)),
         url: "class-accessor.php",
         success: function (data) {
             //flag=data;  
             flag = "YES";
         }
     });
     return flag;
 }

 alert(IsSlaExists('department'));

i'm trying to return the value of flag but function returns blanks even if i set the value of flag maually. what i'm doing wrong?

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marked as duplicate by Benjamin Gruenbaum, DCoder, DrC, Frank Schmitt, Toon Krijthe May 9 '13 at 6:46

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Are you sure that the ajax requests did work right? What will happen, if you add a function for failed request? –  reporter May 8 '13 at 13:06
    
Ajax requests are (almost) always asynchronous, so your return statement is happening before the POST request has time to complete. –  Graham May 8 '13 at 13:06
    
Why didn't you try to alert flag inside of callback function? –  Shijin May 8 '13 at 13:09
    
@shin it's working in callback function –  Muhammad Haseeb Khan May 8 '13 at 13:17
    
What's happening is that the success callback is being called when, and only when, the ajax request has finished (and succeeded). You need to understand that you are making an asynchronous request, therefore your success callback is being called after return flag;. –  Manuel Pedrera May 8 '13 at 14:06

1 Answer 1

$.ajax({
       type: "POST",
       data: "Type=ISSLAEXISTS&Department=" + encodeURI(escape(department)),
       url: "class-accessor.php"
}).done(function(r){
      alert("flag");
});

This would give you the alert WHEN the AJAX request was successfull. r would contain the data that the response got you. You can now, for example, call another function inside the done function that process the request.

Since $.ajax returns a promise, you could return just the ajax call and then chain the functions together

function ajaxCall(department) {
    return  $.ajax({
           type: "POST",
           data: "Type=ISSLAEXISTS&Department=" + encodeURI(escape(department)),
           url: "class-accessor.php"
    });
}

ajaxCall("myDept").done(function(response){
   alert(response);
})
share|improve this answer
    
please understand my prroblem; i want a function which i could use to return a value. in alternative your solution i can simply use the ajax success. i want some way by which i could just return value like var val= ajaxCall('Dep'); –  Muhammad Haseeb Khan May 8 '13 at 13:45

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