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I have the following code, however the problem is that if I use a normal submit button everything works fine, but if I want to submit the checkbox value with jquery onchange it doesn't work (i.e. nothing is going into the db)... I tried even going the non jquery route with an onChange=this.form.submit() appended to construction. Anyone know whats going on/how to fix this? To me it seem like the form is submitting without processing the data.

Also I'm using: https://github.com/ghinda/css-toggle-switch for the checkbox

JQUERY:

$('#construction').change(function() {
  this.form.submit();
});

PHP:

<?php
$config = mysql_query("SELECT construction FROM config") or die(mysql_error());
$row_config = mysql_fetch_assoc($config);

if ($_POST) {
    // 0 = off
    // 1 = on
    $constr = $_POST['construction'];
    if ($constr == 'on') { $c = 0; } else { $c = 1; }
    mysql_query("UPDATE config SET construction = '".$c."'") or die(mysql_error());
    redirect('index.php');
}
?>

HTML:

<div style="margin-top:30px;">
        <form action="index.php" method="post" id="doSite">
            <fieldset class="toggle">
                <input id="construction" name="construction" type="checkbox"<?php if($row_config['construction'] == '0') { echo ' checked'; } ?>>
                <label for="construction">Site construction:</label>
                <span class="toggle-button"></span>
            </fieldset>
            <input name="Submit" type="submit" value="Shutdown site" class="button">
        </form>
    </div>
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3 Answers 3

Try this one,

$('#construction').change(function() {
  $(this).closest("form").submit();
});

DEMO

share|improve this answer
    
it almost seems as though its submitting before processing the checkbox. any idea why? the data isnt going into the db –  Alex Jul 30 '12 at 14:45
    
have you checked the posted data with <?php print_r($_POST) ?> ? –  ocanal Jul 30 '12 at 14:52

Change your jquery to:

$('#construction').change(function() {
  $("#doSite").submit();
});

doSite is your form id, so you may use it directly to submit the form when the checkbox is checked or unchecked.

I updated your code:
- use isset to check if a variable is set or not - checkboxes that are not checked upon form submission are not included in the $_POST data: it means you just have to check if $_POST['construction'] is set or not (its value doesn't matter)
- since you are using double quotes in mysql_query, there is no need to concatenate. And, if construction field is of INT type, you may remove the single quotes around $c

<?php
$config = mysql_query("SELECT construction FROM config") or die(mysql_error());
$row_config = mysql_fetch_assoc($config);

if(isset(($_POST))
{
    // 0 = off
    // 1 = on
    if(isset($_POST['construction']))
        $c = 1;
    else
        $c = 0;
    mysql_query("UPDATE config SET construction = '$c'") or die(mysql_error());
    redirect('index.php');
}
?>

Note: All mysql_* functions are going to be deprecated and removed some day. If possible, you should use MySQLi or PDO instead.
More on that:
http://php.net/manual/en/faq.databases.php#faq.databases.mysql.deprecated
http://php.net/manual/en/mysqlinfo.api.choosing.php

share|improve this answer
    
thank you. i updated the code as you suggested however I am still having the problem that it doesnt the data isnt going into the database. it almost seems as though its submitting before processing the checkbox. any idea why? –  Alex Jul 30 '12 at 14:44

Why dont u use:

$("#checkid").click(function(){

})

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