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Here's my code:

    [HttpPost]
    public ActionResult VoteChampionStrongAgainst(string championStrong, string againstChampion)
    {
        int champStrongId = int.Parse(championStrong);
        int againstChampId = int.Parse(againstChampion);

        string ip = System.Web.HttpContext.Current.Request.UserHostAddress;

        using (EfCounterPickRepository counterPickRepository = new EfCounterPickRepository())
        {
            var existingCounterPick = counterPickRepository.FindAll()
                                                           .SingleOrDefault(x => x.ChampionStrong == champStrongId && x.AgainstChampion == againstChampId);

            //Does this counterpick combination already exist?
            if (existingCounterPick != null)
            {
                //Has this user already voted?
                var existingVote = counterPickRepository.FindVoteForUser(ip, existingCounterPick.CounterPickVoteId);

                //He hasn't voted, add his vote history.
                if (existingVote == null)
                {
                    StrongCounterHistory history = new StrongCounterHistory();
                    history.IPAddress = ip;
                    history.VoteType = true;
                    history.StrongCounterPickVoteId = existingCounterPick.CounterPickVoteId;

                    counterPickRepository.AddStrongPickHistory(history);
                    counterPickRepository.SaveChanges();

                    //Add a total vote the pick.
                    existingCounterPick.TotalVotes++;
                    counterPickRepository.SaveChanges();
                }
                else
                {
                    //Will use this to display an error message.
                    //How to return an "error" that jquery understands?
                }
            }
            else //This combination doesn't exist. Create it.
            {
                //Create it....
                StrongCounterPickVote newCounterPick = new StrongCounterPickVote();
                newCounterPick.ChampionStrong = champStrongId;
                newCounterPick.AgainstChampion = againstChampId;
                newCounterPick.TotalVotes = 1;

                counterPickRepository.CreateNewCounterPick(newCounterPick);
                counterPickRepository.SaveChanges();

                //Assign a vote history for that user.
                StrongCounterHistory history = new StrongCounterHistory();
                history.IPAddress = ip;
                history.VoteType = true;
                history.StrongCounterPickVoteId = newCounterPick.CounterPickVoteId;

                counterPickRepository.AddStrongPickHistory(history);
                counterPickRepository.SaveChanges();
            }

            return View();
        }
    }

Here's my jQuery code:

$(".pick .data .actions .btn-success").click(function () {
    var champStrongId = $(this).data("champstrongid");
    var againstChampId = $(this).data("againstchampid");

    $.ajax({
        type: 'POST',
        url: "/Counterpicks/VoteChampionStrongAgainst",
        data: { championStrong: champStrongId, againstChampion: againstChampId },
        success: function () {
            alert("Great success!");
        },
        error: function (e) {
            alert("Something bad happened!");
            console.log(e);
        }
    });
});

What do I need to return from my ActionMethod so the code execution enters success: if things went OK, or error: if things go wrong (for example, he already voted on this particular counter pick?

share|improve this question
    
It seems return Json(new { success = true }); makes it go into the success: path correctly. But trying return Json(new { error = true }); doesn't make it go into the error: path. Any ideas? –  Only Bolivian Here May 1 '12 at 3:43
    
Try this post.. stackoverflow.com/questions/5867706/… –  naim shaikh May 1 '12 at 3:54
    
Or this one... stackoverflow.com/questions/6010368/… –  naim shaikh May 1 '12 at 3:54
    
The second post linked by @naimshaikh has the correct answer in it. –  Domenic May 1 '12 at 3:56
    
@SergioTapia even if error you are creating new error, server is returning 200 so still error on you javascript ajax call won't get hit. You need to send something other than 200 –  zero7 May 1 '12 at 4:04
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3 Answers 3

Servlet should answer a "200 OK" HTTP response.

Don't know about your 'View' api, but HttpServletResponse.setStatus(200) would do on the Java side. Don't forget, you can request the AJAX url manually in your browser to see what it is returning..

share|improve this answer
    
This has nothing to do with Java. –  Only Bolivian Here May 1 '12 at 3:41
1  
+1, this has everything to do with HTTP status codes. –  Domenic May 1 '12 at 3:55
    
As the other posts say: it's the HTTP status code. stackoverflow.com/questions/6010368/… –  Thomas W May 4 '12 at 3:20
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Here's some things I'd do...

public JsonResult VoteChampionStrongAgainst(string championStrong, string againstChampion)    {
    var success = true;

    // Do all of your data stuff

    return Json(new { success = success, error = 'Some error message'});

}

The JsonResult is a special ActionResult for returning Json. It automatically sets the correct headers for the browser. The Json() will use ASP.NET's built in serializer to serialize an anonymous object to return to the client.

Then with your jQuery code...

$.ajax({
        type: 'POST',
        url: "/Counterpicks/VoteChampionStrongAgainst",
        data: { championStrong: champStrongId, againstChampion: againstChampId },
        success: function (json) {
            if (json.success) {
                alert("Great success!");
            }
            else if(json.error && json.error.length) {
                alert(json.error);
            }
        },
        // This error is only for responses with codes other than a 
        // 200 back from the server.
        error: function (e) {
            alert("Something bad happened!");
            console.log(e);
        }
    });

In order to have the error fire you'd have to return a different response code with Response.StatusCode = (int)HttpStatusCode.BadRequest;

share|improve this answer
    
+1, I prefer this method rather than changing the response status code –  bhiku May 1 '12 at 7:20
add comment

You can return 500 internal server error if there are any errors on your server something like

Response.StatusCode = (int)HttpStatusCode.InternalServerError;
Response.ContentType = "text/plain";
return Json(new { "internal error message"});
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