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4

What you can do is create a function that makes the ajax request and on failure invoke the function again. $(document).ready(function () { var counter = 0; function apiCall() { $.ajax({ url: "http://www.asiavista.com.tw:9595/ccplapi/service.svc/CheckService", method: "POST", contentType: ...


2

Leveraging promises, you could just do it this way. Might not be particularly elegant, but it works quite well and is very readable: var func = function() { return $.ajax(...); }; func() //call 1 .then(null,function() { return func(); }) //call 2 .then(null,function() { return func(); }) //call 3 .then(null,function() { console.log('3 times'); }) ...


2

This is by design. You can't make an arbitrary HTTP request to another server using XMLHttpRequest unless that server allows it by putting out an Access-Control-Allow-Origin header for the requesting host. https://developer.mozilla.org/en-US/docs/Web/HTTP/Access_control_CORS You could retrieve it in a script tag (there isn't the same restriction on scripts ...


2

you can ask the developers of that domain if they would set the appropriate header for you, this restriction is only for javascript, basically you can request the ressource from your server with php or whatever and the javascript requests the data from your domain then


2

You're getting the success message because done() is fired when a "good" response is received. While you're getting error messages, the actual response from the server is still a 200. You'd want to check the data in done() to make sure it isn't an error. If title === "The title field is required.", you'd want to run the code that is currently in your ...


2

This code send data and get result, your code don't make something Test file a.php <html> <head> <!-- change jquery version, your give me some warnings --> <script src="https://ajax.googleapis.com/ajax/libs/jquery/1.12.0/jquery.min.js"></script> <script type="text/javascript"> $(document).ready(function() { ...


2

I think the problem is due to the fact that the link for fetching the B data is created when A is fetched. The click event handler ($('a.b-call').click) is registered before the actual DOM element exists and therefore it does not get triggered. To get this event handler working you need to change your code. The a-results div exists on page load, so you can ...


2

You need to use delegate() , because .b-call elements does not exist on page load, so jQuery doesnt know where those elements are. So you need to delegate an event to an element that will exist after page load. $('.a-result').delegate('.b-call','click',function (e) { e.preventDefault(); var bid = $(this).attr('data'); $.ajax({ ...


2

There's no way around this when using $.when that way, if one request fails, the entire chain fails. You'd have to roll your own instead, using deferreds to know when the calls are all completed, and always successfully resolving etc. var defs = [new $.Deferred(), new $.Deferred(), new $.Deferred()]; $.get(localAPI, data, function(response) { ...


1

You have to use method $request->query: For GET method: $data = $request->query->get('data'); For POST method: $data = $request->request->get('data');


1

You have to false the ajax contentType property, so the ajax will not set the content type, otherwise it will post the data as a url encoded string to controller method and your file resource will be not available. I hope the example will be helpful. View: <form id="myform" action="<?= base_url('controller/method'); ?>" method="post"> ...


1

Access-Control-Allow-Origin values can’t be regular expressions or any other kind of pattern. They must either exactly match the request Origin header, or be null, or be a single literal *. See also the accepted answer to the question Access-Control-Allow-Origin wildcard subdomains, ports and protocols and the first comment for the question Using a regular ...


1

Try $(form).data( 'setting' , data.settingId );


1

Just do it with jQuery: $('form .form-settings').attr('data-setting', data.settingId);


1

This really is not much a Symfony2 related question... but... This code is javascript, if you want to use GET just change method to GET, var data = 'test'; $.ajax({ url: "{{ path('test_oost') }}", data: { data: data }, method: "get", success: function(data) { //some things here ...


1

As I remember angular doesn't automatically add an application/x-www-form-urlencoded header to requests, so on the php side you may also need to decode the POST data this way: // get the POST data $data = file_get_contents("php://input"); $postData = json_decode($data); // process the data // ... // send response echo json_encode($responseData); Or you ...


1

In your html, change <input type="text" class="form-control" id="r_loginid" required data-validation-required-message="Please enter login id."> To <input type="text" class="form-control" id="r_loginid" name="r_loginid" required data-validation-required-message="Please enter login id."> $_POST vars don't read "id" from input tags...they ...


1

Use this sure you get the last id If using postgresql $lastID = Yii::app()->db->getLastInsertID('table_sequence'); return $lastID; If using mysql $lastID = Yii::app()->db->getLastInsertID(); return $lastID; since getLastInsertID is accessor method you also call like this too $lastID = Yii::app()->db->lastInsertID; return $lastID;


1

The issue is because you need to provide FormData directly to the data property of $.ajax, not within an object as it will be encoded. If you need to add data to the request, append it to the FormData object: var formData = new FormData(); var cardKeyID = $("#CardKeyID").val(); var formData = $.each($("#files")[0].files, function (i, file) { ...


1

Calling the function again after a delay inside the ajax complete will be a better idea and increase the time delay. Using setInterval in the outside will send multiple consecutive requests which can break the browser because of excess memory usage. var auto_refresh3 = function () { $.post("tchata2.php",{FID:identif},function (data){ ...


1

Remove your javascript from html @foreach (var item in Model.value) { <form class="formStyle" id="allCurrentNames_@item.name" method="post" action=""> <input type="hidden" id="part_name_@item.name" value="@item.name"/> <button class="partDelete">Delete</button> ...


1

1. Solution You could create a partial and render it twice: _chatbox.js.erb var id = "<%= @conversation.id %>"; var sender_id = "<%= @message.user.id %>"; var receiver_id = $('meta[name=user-id]').attr("content"); var chatbox = $(".chatboxcontent"); if (event.handled !== true) { $message = $('<%= j render @message %>'); ...


1

use Jenssegers\Mongodb\Eloquent\Model as Eloquent; use Illuminate\Auth\Authenticatable; use Illuminate\Database\Eloquent\Model; use Illuminate\Auth\Passwords\CanResetPassword; use Illuminate\Foundation\Auth\Access\Authorizable; use Illuminate\Contracts\Auth\Authenticatable as AuthenticatableContract; use Illuminate\Contracts\Auth\Access\Authorizable as ...


1

The way you are doing it right now you are registering a click event on every button. So the code $('#" . $ids . "').text(); will run on any button click. What you could do is add that function one time and add the pollid as a data attribute to the button itself <button data-poll-id="5" type="button">Vote</button> then on your function ...


1

You need to put quotes between the String values that get replaced server side, in this case you should add quotes between <%= myclass._namestrings %>: passedname = encodeURIComponent( "<%= myclass._namestrings %>" );


1

busy_array = Array.new #this needs to be rendered in the view If that has to be available in the view, you need to define an @instance variable: def check checkList = params[:checkList] selected_date = params[:selected_date] length = params[:length] @busy_array = Array.new ... @busy_array.push(user.id) #busy_array is a list of ...


1

There is nothing wrong with your code but the approach is wrong, you are using jQuery validation plugin to validate form and Ajax method call separately, what you could use Ajax method call $.ajax inside submithandler and the jQuery validate plugin will invoke the submit handler if the validation has passed. $('#registration').validate({ rules: { ...


1

There are three different ways to go about this, depending on how the new elements arrive on your page. If you control the Ajax requests, then wrap the your iframes they return yourself, in the success callback of the Ajax request. This is the simplest solution. If a third-party library controls the Ajax requests and that library offers an event system ...


1

Check if #change-email has other binded events. In Firebug, inspect #change-email element and go to Event tab. In Chrome, inspect that element and go to Event Listeners tab. You will see all binded events and corresponded callback functions. If it will not help, try to submit a form manually from Console Inspect a form, then run $($0).submit(); If it ...


1

try to put full url instead of url: "push_set.php" like url: "www.yourdomain.com/push_set.php"



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