33

I'm trying to call a function that contains jQuery code. I want this function to return the results of the jQuery statement. It is not working, and I'm trying to figure out why.

function showGetResult (name) {
    var scriptURL = "somefile.php?name=" + name;
    return $.get(scriptURL, {}, function(data) { return data; });
}

alert (showGetResult("John"));

The alert displays "[object XMLHttpRequest]." However, if I run the jQuery statement by itself, outside of a function, it works fine -> $.get(scriptURL, {}, function(data) { alert(data); })

I'd like to be able to re-use this code by putting it inside of a function that returns the $.get data. What fundamental mistake am I making here?

94

You have a few different mistakes. First, $.get doesn't return the return value of the callback function. It returns the XHR object. Second, the get function isn't synchronous, it's asynchronous so showGetResult will likely return before get completes. Third, you can't return something from inside the callback to the outer scope. You can, however, bind a variable in the outer scope and set it in the callback.

To get the functionality that you want, you'll need to use $.ajax and set the async option to false. Then you can define a variable in the outer scope and assign it in the ajax callback, returning this variable from the function.

function showGetResult( name )
{
     var result = null;
     var scriptUrl = "somefile.php?name=" + name;
     $.ajax({
        url: scriptUrl,
        type: 'get',
        dataType: 'html',
        async: false,
        success: function(data) {
            result = data;
        } 
     });
     return result;
}

You would probably be better served, though, figuring out how to do what you want in the callback function itself rather than changing from asynchronous to synchronous calls.

  • 1
    Thanks for the thorough break-down. The combination of switching to synchronous and using a variable in the outer-scope to pass data, has solved my problem. – Kai Oct 28 '09 at 20:12
  • 5
    That's fine, but be aware that by switching to synchronous, you are potentially causing the browser to lock up while waiting for the response. That's probably a mistake, unless you know your user will always be on a lightning fast connection and your server will never be swamped. It's also contrary to what AJAX is all about -- it's meant to make web applications more responsive, but this change could potentially make yours much less responsive. – Jacob Mattison Oct 28 '09 at 20:17
  • I agree with @JacobM that it's better to use asynchronous if at all possible and deal with your actions in the callback. – tvanfosson Oct 28 '09 at 21:00
  • Almost five years later, I had to come back and comment against myself above for using sync instead of async. How ignorant I was. ;-) – Kai Mar 29 '14 at 23:36
8

The fundamental mistake you are making is that the AJAX call is made asynchronously, so by the time you return, the result is not yet ready. To make this work you could modify your code like this:

$(function() {
    showGetResult('John');
});

function showGetResult (name) {
    $.get('somefile.php', { 
        // Pass the name parameter in the data hash so that it gets properly
        // url encoded instead of concatenating it to the url.
        name: name 
    }, function(data) { 
        alert(data); 
    });
}
  • 1
    Task is to return this 'data' result, not to print it when loaded from server. – Vlado Sep 13 '17 at 20:19
  • This is just using the data in the call back, not "returning" outside the callback. – Rmy5 Oct 19 at 21:03
6

Looks like you want synchronous request: How can I get jQuery to perform a synchronous, rather than asynchronous, Ajax request?

Or, you may want to pass callback to your function:

function showGetResult (name, callback) {
  var scriptURL = "somefile.php?name=" + name;
  return $.get(scriptURL, {}, callback);
}

showGetResult("John", function(data){ alert(data); });
2

The fundamental mistake is the "asynchronous" part of AJAX. Because you don't know how long the server will take to send back a response, AJAX methods never "block" -- that is, you don't call out to the server and just sit there waiting for the result. Instead, you go on to something else, but you set up a method, called the "callback", that will fire when the results come back. This method is responsible for doing whatever needs to be done with the data (e.g. injecting it into the page).

1

This is the wrong way to do. The function(data) is a call back function so whenever return $.get will execute .. there is possibility that call back function would have not been called.

Better you call your post data get function from function(data) method.

0

An efficient way is to use jQuery's Deferred method, both sync/async requests to server and wait for deferred.resolve() and then return the deferred promise object. Looks a bit tedious, but a little study is sure helpful for large data. ( tvanfosson's function works well in this case, but when I was working on google analytics data, a large amount of information made me crazy and thus i need to find this solution)

     function showResults(name) { 
        var deferred = $.Deferred, requests = [];

        requests.push($.ajax({url:"/path/to/uri/?name=" + name, type: "GET", async: false}).done(function(d) { 
         //alert or process the results as you wish 
        }));
        $.when.apply(undefined, requests).then(function() { deferred.resolve(); }); 
        return deferred.promise();

    }

the returned promise object can also be used with $.when(showResults('benjamin')).done(function() { }); for post modifications (like chart/graph settings etc). totally reusable. You may also put this function in a loop of $.deferred requests like,

        function updateResults() { 
             var deferred = $.Deferred, requests = [];
             requests.push($.ajax(url:"/path/to/names/?nameArr=" + jsonArrOfNames, type: "GET", async: false}).done(function(res) {  requests.push(showResults(res[0]));}) );
             $.when.apply($, requests).then(function() { deferred.resolve(); }); 
             return deferred.promise();
            }

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.