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I am creating a dynamic table with a query on my BD, the problem is that I want to disable a button on a table every time I make a submit, I would like to get the form submitted without page load so that the disabled button is visible.

<?php
            $theCounter=0;
            while($row = mysql_fetch_object($result))
            {

        ?>

            <form id="id" action="table.php" method="post">
            <input type="hidden" value="<?php  echo $row->id_table;  ?>" name="idUser">
                <tr>
                    <td><?php  echo $row->id_userS;  ?></td>
                    <td><?php  echo $row->username_s;  ?></td>
                    <td><?php  echo $row->num_people;     ?></td>
                    <td><?php  echo $row->start_time;  ?></td>
                    <td> 
                        <input type="submit" name="delete_check" value="Eliminar"> 
                    </td>
                    <td> 
                        <input type="submit" name="push_check" value="Enviar Push">
                    </td>
              </form>
        <?php
            $theCounter++;
            }

        ?>

The button I want to disable or hide its the one named "push_check". It doesn't matter if I disable the button or hide the button

Thanks in advance!

share|improve this question
    
How about assigning an id to that button and disabling the same through javascript? – Darshan Mehta Jun 12 '13 at 18:11
    
yup, i've tried that but the problem is everytime i press the button, the page refresh and it got created again! PD: sorry for my english – user2465233 Jun 12 '13 at 18:13
    
You cannot achieve what you are trying by submitting the form like this. You have to submit your form through ajax if you want your page not to reload. – NullPointerException Jun 12 '13 at 18:16

If you want the button to be disabled on all the page loads after the first submit then you need to store some flag in the session which will indicate that the button has already been clicked. And you need to check for that flag on every page load.

share|improve this answer

PHP:-

<?php
        $theCounter=0;
        while($row = mysql_fetch_object($result))
        {

Echo "

        <form id='id' action='table.php' method='post'>
        <input type='hidden' value='$row->id_table;' name='idUser'>
            <tr>
                <td>$row->id_userS</td>
                <td>$row->username_s</td>
                <td>$row->num_people</td>
                <td>$row->start_time</td>
                <td> 
                    <input type='submit' id='del$thecounter' name='delete_check' value='Eliminar' onclick='hide(del$thecounter)'> 
                </td>
                <td> 
                    <input type='submit' id='push$thecounter' name='push_check' value='Enviar Push' onclick='hide(push$thecounter)'>
                </td>
          </form>
";
        $theCounter++;
        }
?>

Now use Javascript:-

function hide(a)
{
     document.getElementById(a).style.visibility="hidden";
}
share|improve this answer
    
Does the above work for what you need?reply soon – user2360906 Jun 12 '13 at 18:16
    
The requirement is (or what I understand) that the button should be disabled/invisible on subsequent page reloads once it is clicked. – Darshan Mehta Jun 12 '13 at 18:21
    
yeah, as Darshan said, i will try it adding "dynamic" id's to my button with $theCounter – user2465233 Jun 12 '13 at 18:23
    
if you want it to be invisible use css style visibility. – user2360906 Jun 12 '13 at 18:24
    
do you want the script to use dynamic id? – user2360906 Jun 12 '13 at 18:26

I'm not sure if I understood everything you want to achive, but here is what I made out of your question:

<script>

    document.forms[0].onsubmit = function(e){

        e.preventDefault();  // at the beginning stop page from being reloaded by the script
        var form = e.currentTarget; // get form
        form.push_check.disabled = true; // set submit-button disabled

        if(form.idUser.value){ // send data if there is data to send
           document.forms[0].onsubmit = null; // set event listener null otherwise onsubmit is a forever-loop
           document.forms[0].submit();  // send finally data to the php-script
        }
        else{
           form.mysubmit.disabled = false; // there was no data to send
        }
    }
</script>

You can put this little script after or within the body-tag. It should work in each browser.

share|improve this answer

One more method to prevent loading the page is using target

<form action='' method='POST' target='upload_target' onsubmit='hide(dynamicid)'>

fields between form.....
<input type='submit' id='dynamicid'/>
<iframe id='upload_target' name='upload_target' src='#' style='width:0;height:0;border:0px solid #fff;'></iframe>
</form>
share|improve this answer
up vote 0 down vote accepted

Hi i manage to do it by this:

<?php
                        $push_button = $row->time_push;
                        if($push_button==0)
                        {
                      ?>
                    <td> 
                        <input type="submit" id='push$thecounter' name="push_check" value="Enviar Push">
                    </td>
                    <?php
                        }
                        ?>

Since i've already making a query to my DB, and the button is making a change, im checking if that change its already made, so if not, im displaying the button! thanks a lot for all your comments!

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