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6

You are overwritting all the values because you are using "html" jquery function. I recommend to use append: $('#city').empty().append("<h4>" + this.CityName+ "</h4>");


5

You forgot a comma after data: data: { name: name, company: company, comments: comments }, success: function(data) {


4

On php end $params = array(); parse_str($_POST['querystr'], $params); echo $params['one'];


4

Try by changing method:"POST", to type:"POST",


4

Cancel the default click event: $( "#tab1" ).click(function(e) { e.preventDefault(); $("#content").load("tab1.html #content"); }); http://api.jquery.com/event.preventDefault/


3

You aren't returning JSon. You are returning (or attempting to return) a view. You need something like this, in your controller: return Json(sfds, JsonRequestBehavior.AllowGet); And, add this to your .ajax() properties: dataType: "json",


3

It's because ajax is submitting a GET variable, and php is looking for a POST variable. Either change ajax type to POST or change php to use $_GET['user'].


3

I think your problem come from your transition tag. Because of the "To" attribute spring reload the viewstate. So removing the "To" should solve your problem.


3

Use delegated event, as the element is loaded via ajax after DOM load: $(document).on('change','#facets',function(e){ mainContent.load('?' + formData + ' .wrap'); e.preventDefault(); });


3

Adding a random numerical param to requests is a common way to defeat browser caching of AJAX result sets.


2

You aren't preventing the default behaviour of the submit event so, before the Ajax request is sent, the form is submitting and the page is reloaded. // Capture the event object argument $("#hidden_form").submit(function(evt){ $.ajax({…}); // Prevent the default behaviour evt.preventDefault();


2

You could try hiding your whole document body first and then showing it with the ajax callback. Something like: CSS: body { display:none; } JS: $(document).ready(function() { callAjaxFunction(); }); function AjaxCallbackFunction() { //callback function code, populating fields $('body').show(); } So once you have the ajax data, the page will ...


2

A button element without a type attribute is treated like a submit element inside of a form. What is happening is on click, your AJAX is being submitted, but so is the form, which is thus reloading your page. A simple fix is to make your button have a type, like: <button type="button" class="delete-job">Delete</button>


1

This works in last Firefox (Nightly) with and without the async: false option.


1

You can also use on Controller public JsonResult AfficherDetailsFacture(string jsonData) { var jss = new JavaScriptSerializer(); var data = jss.Deserialize<AfficheDetails>(jsonData); // do some stuff } where data now contains all the values of the class AfficheDetails and on Jquery edit the line $.ajax({ type: "POST", async: false, ...


1

You need to call clearTimeout on the timer if the selected date is less than today's date var timer; function makeCall(selectedDate) { $.get(... .... if (selectedDate < new Date() && timer) { // If a timer is already running and the selected date is less than today, stop it clearTimeout(timer); } else { // Start a timer ...


1

Just create a boolean flag to indicate is the currentDate selected: var someFlag = true, timeout = null; function makeCall(selectedDate) { if (someFlag == true) { $("#divtable").hide(); $.get('getdataservlet',{ 'selectedDate': selectedDate },function(responseJson) { if ((!isCurrentDate(selected) || someFlag == true) && ...


1

Just set an appropriate content type and send it. // xhr is an instance of XMLHttpRequest which has been open()ed and had event handlers set on it already xhr.setRequestHeader("Content-Type", "text/x-yaml"); xhr.send(string_of_yaml_formatted_data); Note, that most server side languages won't parse it automatically, so you'll need to read the raw data from ...


1

if your problem is access to Session object from static member you can use HttpContext.Current.Session["..."] [WebMethod(EnableSession = true)] public static string Test() { string s = HttpContext.Current.Session["Test"].ToString(); return s; } refer here for documentation about HttpContext.Current Property; inside that property you have also ...


1

What your looking for is called event bubbling. You have tried to define the event handler on an element that does not yet exist. However, with jQuery you can register the event on a parent element and let the event bubble up the tree. Look at this altered code snippet below. It should also be more performant if you define all your events on document and let ...


1

$.get("get_schools.php", function(data) { var results = jQuery.parseJSON(data).map(function (item) { return item.DisplayName; }); alert(results); }); results will be an array of strings ["XXXX Street Middle School", "XXXXX Schools", "XXXX Elementary School"]


1

It will depend on what your putting the objects into. The objects you've been given are just fine, but in order to access the values inside them you will need to access them via the DisplayName property. $.each(results, function(i,e) { console.log(e.DisplayName); }) This would log XXX Street Middle School, XXXX Schools, etc. To circumvent this ...


1

You can tell the model not to validate a set with model.set('something', true, { validate: false });. FYI you can do the same in the .save options hash if you need to. What are you setting anyway? Normally the server response is the attributes you want to save on the client model so maybe you can return what you need on that and avoid calling set.


1

It would be helpful to see your HTML. But it sounds like you want to bind an onClick event to any dynamically created radio buttons you might create? If that's the case, you're looking for JQuery().on() http://api.jquery.com/on/ $("#StaticParentElement").on("change",".DynamicRadioButtonElement", methodToBeFired(eventData)); This way, any new radio ...


1

Cut the entire thing down, learn node.js so I can use websockets to potentially rectify this issue. There is no point doing things with wrong tools. If you need real-time communication, use servers which support it out-of-the box, like node.js (probably the simplest to get into from PHP). Since I have no experience yet at all with ...


1

WebSockets are a great option! Actually working with SocketIO is pretty simple and has a shallow learning curve. Because the connection stays open, your requests skips the DNS lookup and routing for lower latency. This mean much lower overhead for each POST request you make. If you ever forsee pushing data to your users, WebSockets are the de facto way to ...


1

Well what you can do is run the validation on your form and after that you will return your form within a new JsonModel. Here is a little example of how to handle your controller: class RegistrationController extends AbstractActionController { public function RegisterAction() { $form = new RegisterForm(); ...


1

It would be difficult to exactly pinpoint what is wrong since you mentioned the data coming from the log will by dynamic. However you can figure it out by: Do a console.log of $('#logDetails').val() and data Then use a diff software like kDiff to find out what their differences are. Once you find the differences, then you can think about ways to solve ...


1

Edit: Try doing it this way: var bob = {permissions_JSON:[{ id: 1, user_id: 8, project_id: 1, mode: 3}]}; request.permissions_JSON = bob; $.ajax({ url: "Home/Permissions_Set", dataType: 'json', type: 'POST', contentType: 'application/json;', data: JSON.stringify(bob), success: function (data) { console.log(data); } }); ...


1

It's all in your ajax call. In the 'data' property , you declare the post fields that are sent to PHP. So in your code: $.ajax({ type: 'POST', url: ajax_url, dataType: 'json', data: { 'action': $action, 'querystr': $( this ).serialize() } You declare $_POST['action'] , and $_POST['querystr']. Thats why $_POST['one'] is null - because it's ...



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