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I have a simple form submission with ajax, but it keeps giving me an error. All the error says is "error". No code, no description. No nothing, when I alert it when it fails.

Javascript with jQuery:

$(document).ready(function(){

        $(".post-input").submit(function(){
            var postcontent = $(".post-form").val();

            if (postcontent == ""){
                return false;
            }

            $(".post-form").attr("disabled", "disabled");

            $.ajax({
                url: '/post',
                type: 'POST',
                data: {"post-form": postcontent},
                dataType: json,
                success: function(response, textStatus, jqXHR) {
                    alert("Yay!");
                },
                error: function(jqXHR, textStatus, errorThrown){
                    alert(textStatus, errorThrown);
                }
            });
        });
    });

HTML:

<form class="post-input" action="" method="post" accept-charset="utf-8">
                <textarea class="post-form" name="post-form" rows="1" cols="10" onFocus="this.value='';return false;">What are you thinking about...</textarea>
                <p><input class="post-submit" type="submit" name = "post.submitted" value="Post"></p>
            </form>

and if there are no problems there, then the server-side (pyramid):

def post(request):
    session = Session()
    user = authenticated_userid(request)
    postContent = request.POST['post-form']
    if not postContent == '':
        session.add(Activity(user.user_id, 0, postContent, None, None))
        return {}
    return HTTPNotFound()

UPDATE: After some more debugging with firebug, I discovered that the post request body contains only post.submitted=Post, instead of the intended result of {"post-form": postcontent}.

share|improve this question
    
Is it a javascript error (client), server error or python error? –  Hamish Jul 21 '12 at 21:47
    
@Hamish through my debugging, I'm assuming it's a client error. –  Wiz Jul 21 '12 at 22:12

3 Answers 3

up vote 9 down vote accepted

According to jQuery documentation, you must declare the data type:

$.ajax({
  type: 'POST',
  url: url,
  data: data,
  success: success,
  dataType: dataType
});

Also, looking at your server-side code, you don't actually want to post JSON formatted data. This {"post-form":postcontent} is JSON formatted data. What you actually want to do is send TEXT or HTML. Seeming as it's form data, I would guess at TEXT.

Try this:

$.ajax({
   url: '/post',
   type: 'POST',
   data: 'post-form='+postcontent,
   dataType: 'text',
   success: function(response, textStatus, jqXHR) {
     alert("Yay!");
   },
   error: function(jqXHR, textStatus, errorThrown){
     alert(textStatus, errorThrown);
  }
});
share|improve this answer
    
+1 This should do it –  ShadowStorm Jul 21 '12 at 22:00
    
sadly, this didn't work, but after some more debugging with firebug, I discovered that the post body is actually post. submitted = Post, instead of the intended post-form = postcontent. –  Wiz Jul 21 '12 at 22:08
1  
@Wiz: You can actually do away with the whole FORM. Leave the textarea and button and change $(".post-input").submit( to $(".post-submit").click(function(){ –  PaparazzoKid Jul 21 '12 at 22:36
1  
@Wiz: Only other things I can think of are using CACHE:FALSE in the AJAX caller, make sure there are no bugs on your server-side as that will throw an error (but should be a detailed error, not 'error') and also try adding the full URL to the page you are calling. –  PaparazzoKid Jul 21 '12 at 22:44
1  
@Wiz: Glad I could assist. Good luck with your project. –  PaparazzoKid Jul 21 '12 at 23:00

Since you are posting JSON-data you have to declare the dataType "JSON":

$.ajax({
  url: '/post',
  type: 'POST',
  dataType: "json",
  data: {"post-form": postcontent},
  success: function(response, textStatus, jqXHR) {
    alert("Yay!");
  },
  error: function(jqXHR, textStatus, errorThrown){
    alert(textStatus, errorThrown);
  }
share|improve this answer

I think the problem is that the data that you are passing is not properly written.

Try to change data: {"post-form": postcontent},
To:
data: 'post-form='+ $('.post-form').val(),
share|improve this answer

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