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So you can assign a value to var doub as below:

function getDouble(number) {
    var doubl = number + number;
    return doubl;
}

var num = 4;
var doub = getDouble(num);

I want to know if I can get the return type by calling a second function as below. So can the return value of the second method be assigned to doub?

function getDouble(number) {
    var doubl = number + number;
    return quadruple(doubl);
}

function quadruple(doubl) {
    quad = doubl + doubl
    return quad;
}

var num = 4;
var doub = getDouble(num);

For some reason it doesn't work for me.

This is my code with the problem..I am doing something similar to the above, but not working:

In my doc ready, I have this code..I want the result to be stored in newjsn

    $(document).ready(function() 
    {
     var newjsn= DatabaseCategoriesToSelectList(num, 200, 100);

My DatabaseCategoriesToSelectList function is :

function DatabaseCategoriesToSelectList(jsn, max, min){

    var ddl="<option selected='selected' value='"+min+"'>Select...</option>";

    //load categories from database, and put them into the select drop down.
    $.getJSON(GLOBALURL+'content/plugins/subcategories/getSubcategories.php',             
        function(data, ddl) {

            var datas=  jQuery.grep(data, function(element, index){
                return element.category_id < max && element.category_id>min; // retain appropriate elements
            });
            for (x=0; x<datas.length; x++){
                ddl= ddl+"<option value='"+datas[x].category_id+"'data-subcategory='"+datas[x].category_subselect+"'>"+datas[x].category_safe_name+"</option>";
            }   
            alert (ddl); return runafter(ddl, jsn); 
        });

}

function runafter(ddl, jsn){
    jsn=ddl;
    alert(jsn);

    return 500;

}

For some reason, the alerts work, but I can't get it to return me the string. I even tried to return a random value of 500, and it doesnt..

share|improve this question
3  
This works fine for me. How are you running it? –  Xymostech Apr 9 '13 at 21:27
    
thanks, well that is a simple version of what I have..I will add my code to it now –  gray Apr 9 '13 at 21:28
    
quad = doubl + doubl -> var quad = doubl + doubl; –  AaronLS Apr 9 '13 at 21:31
    
@AaronLS That won't change the value of the answer, it'll just pollute the globals with a quad variable. –  Xymostech Apr 9 '13 at 21:33
1  
possible duplicate of How to return the response from an AJAX call? –  Felix Kling Apr 9 '13 at 22:06

3 Answers 3

up vote 1 down vote accepted

You aren't going to have access to the return from a getJson handler. The framework calls that handler. You are giving it a function, and .getJson calls that function if/when the response is received. If you need access to the return of runAfter, you need to do whatever with it you plan to.

Instead of:

$.getJSON(GLOBALURL+'content/plugins/subcategories/getSubcategories.php',
  function(data, ddl) {

          ...
           return runafter(ddl, jsn); 
  });
}

You need to decide what you want to do with that value, for example I stuff it into the value of some hidden field maybe:

$.getJSON(GLOBALURL+'content/plugins/subcategories/getSubcategories.php',
  function(data, ddl) {

          ...
          $('#someField').val( runafter(ddl, jsn) ); 
  });
}
share|improve this answer
    
I used this method, works very well, thank you –  gray Apr 9 '13 at 22:04

The problem is that you're never returning out of your DatabaseCategoriesToSelectList function. Your function looks like this:

function DatabaseCategoriesToSelectList(jsn, max, min) {
    ...
    $.getJSON(GLOBALURL+'content/plugins/subcategories/getSubcategories.php',             
        function(data, ddl) {
             ...
             return runafter(ddl, jsn); 
        }
    );
}

The inner return is not returning out of DatabaseCategoriesToSelectList, it is returning out of the inner function. However, there is no way to make this return the values that you want no matter what you do, because $.getJSON is an asynchronous call. You have to put something like

function(data, dll) {
    ...
    var newjsn = runafter(ddl, jsn);
    // put the rest of your stuff that uses newjsn here
}

in your code, and then put whatever came after that also into that function also.

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Fiddle (output is : 16)

What you are doing is just fine as it should

 function getDouble (number){
    var doubl = number+number;
    return quadruple(doubl);
    }

function quadruple(doubl){
var quad=doubl+doubl
return quad;
}

var num = 4;
var doub = getDouble(num);
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