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I have been struggling with this for a while. I know there are multiple posts about this but since I am new to the subject I am struggling to understand. I would like to post the values of a my checkbox forms to php script and return the value of the values back to a div on my page. Here is the code :

onclick function with ajax call :

    <script>
    function submit_form(){
    var data = { 'saqalinproxy[]' : []};
    $("input:checked").each(function() {
    var chck1 = $(this).val();
    alert(chck1);
    data['saqalinproxy[]'].push($(this).val());
    });
    $.ajax({
    type : 'POST',
    url : 'testdeploy.php',
    data : data,
    dataType: "html",
    success : function(data){
          $('#progress_status').hide();
          $('.return').html(data); // replace the contents coming from php file
            }
        });
          $('#progress_status').show();
   }
   </script>

HTML Form :

<div style="width: 700px; height: 150px; padding: 10px">
<form id="caForm" class="caForm" method="post" name="caForm">
<fieldset id="fs-0">
<legend>QA Proxy Servers</legend>
<input type="checkbox" id="saqalin-proxy01" name="saqalinproxy[]" value="41.191.126.246">saqalin-proxy01<br>
<input type="checkbox" id="saqalin-proxy02" name="saqalinproxy[]" value="41.191.126.247">saqalin-proxy02<br><br>
<!--<input type="checkbox" id="ca-0"> Check/Uncheck All -->
<br>
<input type="submit" value="Deploy" onclick="submit_form();"/>

</fieldset>
</form>

</div>

<div id="status">
<p style="display:none;" id="progress_status"><img id="progress_image_status" style="padding-left:5px;padding-top:5px;" src="images/ajax-loader.gif" alt=""> Checking if this kak works!</p>
</div>

<div id="return"></div>

PHP Post Page :

<?

    if(isset($_POST['saqalinproxy[]'])){
        $invite = $_POST['saqalinproxy[]'];
        print_r($invite);
    }

?>

I am struggling to get the values returned on my page. Any help is appreciated.

share|improve this question
    
$('.return') there is no class as return, pl change this into $('#return'). Still if it's not working means post your php code –  LearneR ツ Nov 23 '12 at 11:54
    
alert data variable after success function and check what you are getting? –  LearneR ツ Nov 23 '12 at 11:59

3 Answers 3

few changes in both html js and php. In html

<input type="submit" value="Deploy" onclick="return submit_form();"/>

In js return false in submit_form function. And in php

if(isset($_POST['saqalinproxy'])){
    $invite = $_POST['saqalinproxy'];
    print_r($invite);
}

also change $('.return').html(data); to $('#return').html(data);

share|improve this answer
    
you are not able to see response as page was refreshing after submit return false will prevent page from refreshing. –  Tinku Rana Nov 23 '12 at 12:28

On this line you are selecting an element with a class of return because the . denotes a classname:

$('.return').html(data); 

In your HTML, your div has an id of return not a class (note the #). So change it to:

$('#return').html(data); 

Your second problem is in the PHP code, you are trying to target the posted array with $_POST['saqalinproxy[]']. PHP parses it directly to a PHP array so $_POST['saqalinproxy'] is actually the array.

 if(isset($_POST['saqalinproxy'])){
    $invite = $_POST['saqalinproxy'];

For example, if both items are checked then:

echo $_POST['saqalinproxy'][0]; // outputs 41.191.126.246
echo $_POST['saqalinproxy'][1]; // outputs 41.191.126.247

Also, instead of trying to build the post data like you are, you can simply serialize the form:

$.ajax({
    type : 'POST',
    url : 'testdeploy.php',
    data : $('#caForm').serialize(),

When you get those problems fixed, you'll see that the form is submitting twice. The first time as ajax, then second as a traditional request. To resolve that you need to return false in the onclick or return false from the function..

<input type="submit" value="Deploy" onclick="submit_form(); return false;"/>
share|improve this answer
    
ok changed to $('#return').html(data); which I had originally actually still no luck. The alert gives me the correct data - Im not sure if Im posting to the script correctly or if its recieving the data correctly...? –  user1632953 Nov 23 '12 at 12:07
    
See my edit, I've spotted a few other problems. –  MrCode Nov 23 '12 at 12:11
    
Ok great. Firebug is showing that posts are working fine and the correct data : html and response is posting but I am struggling to get the data returned into the div... –  user1632953 Nov 23 '12 at 12:28
    
see my code, you must return false on submit form –  Tinku Rana Nov 23 '12 at 12:30
    
Does the PHP code output the expected result? If you don't check any of the checkboxes, they won't be received by the PHP end. –  MrCode Nov 23 '12 at 12:30

you may use a library that makes that automatically for you, that is phery http://phery-php-ajax.net, in your case, it would be like this (notice the data-remote="deploy" on the form)

<div style="width: 700px; height: 150px; padding: 10px">
    <form id="caForm" class="caForm" data-remote="deploy" action="testdeploy.php" name="caForm">
        <fieldset id="fs-0">
            <legend>QA Proxy Servers</legend>
            <input type="checkbox" id="saqalin-proxy01" name="saqalinproxy[]" value="41.191.126.246">saqalin-proxy01<br>
            <input type="checkbox" id="saqalin-proxy02" name="saqalinproxy[]" value="41.191.126.247">saqalin-proxy02<br><br>
            <!--<input type="checkbox" id="ca-0"> Check/Uncheck All -->
            <br>
            <input type="submit" value="Deploy" />
        </fieldset>
    </form>
</div>

<div id="status">
    <p style="display:none;" id="progress_status"><img id="progress_image_status" style="padding-left:5px;padding-top:5px;" src="images/ajax-loader.gif" alt=""> Checking if this kak works!</p>
</div>

<div id="return"></div>

then in your testdeploy.php you would change it to:

function deploy($data){
  $r = new PheryResponse;
  foreach ($data['saqalinproxy'] as $proxy){
    // do whatever you need to do with $proxy here
  }
  $r->jquery('#return')->html('set the HTML of your return');
  $r->jquery('#progress_status')->hide();
  return $r;
}

Phery::instance()->set(array(
  'deploy' => 'deploy'
))->process();

That's it, no need for additional Javascript code, it's all automatic. But to show the progress, you'd do:

$(function(){
  // phery:before fires before sending the AJAX
  $('#caForm').bind('phery:before', function(){
    $('#progress_status').show();
  });
});
share|improve this answer

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