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I have a series of dynamically created forms that allow a user to update various sections on a webpage. When submitted the form is supposed to update the database and echo a success alert. No matter how many list elements there are the first form of the list seems not to work (no idea why) any ideas?

NOTE when submitting the form in the first LI (the one that never works) it returns a success statement (that the AJAX works) but does not update the database. I have played around making sure the IDs line up to the SQL db being queried and it matches up fine, but the form in the first child refuses to update

Page

<?php
    $conn = mysqli_connect('localhost', 'root', '', 'ajax') or die ('error could not connect');
    $query = "SELECT * FROM data";
    $result = mysqli_query($conn, $query) or die('error could not query');

    echo '<ul>';
    while ($row = mysqli_fetch_array($result)) {
        echo '<li>';
            echo '<form class="form">';
                echo '<input type="hidden" name="id" value="'.$row['id'].'">';
                echo '<input type="text" name="data" value="'.$row['data'].'">';
                echo '<input type="submit" name="submit" value="Submit">';
            echo '</form>';        
        echo '</li>';   
    }
    echo '</ul>';

    mysqli_close($conn);
?>
<script>
$('form').on('submit', function(e){
    $.ajax({ // Starter Ajax Call
       type: "POST",        
       url: 'update.php', 
       data: $('form').serialize(),
       success: function() {
        alert('updated');    
       }
    });
    e.preventDefault(); 
});
</script>

Update.php

<?php
    $id = $_POST['id'];
    $data = $_POST['data'];

    $conn = mysqli_connect('localhost', 'root', '', 'ajax') or die ('error could not connect');
    $query = "UPDATE data SET data = '$data' WHERE id = $id";
    mysqli_query($conn, $query) or die('error could not query');
    mysqli_close($conn);
?>

HTML OUTPUT

<ul>
 <li>
    <form>
     <input type="hidden" name="id" value="3">
     <input type="text" name="data" value="change">
     <input type="submit" name="submit" value="Submit">
    </form></li> //Does not update SQL specific row
 <li><form></form></li> //updates fine
 <li><form></form></li> //updates fine
 <li><form></form></li> //updates fine
</ul>
share|improve this question
    
Do you want the data in all form to be submitted when you submit any form? –  Musa Jan 18 at 17:42
    
ideally just the form thats being updated but all the forms are created dynmaically and the number of them will vary all the time –  user934902 Jan 18 at 17:47

1 Answer 1

up vote 1 down vote accepted

In your code you have $('form').serialize() which will attempt serialize the data of all forms. What you should do is serialize the form that is being submitted $(this).serialize().

<script>
$('form').on('submit', function(e){
    $.ajax({ // Starter Ajax Call
       type: "POST",        
       url: 'update.php', 
       data: $(this).serialize(),
       success: function() {
        alert('updated');    
       }
    });
    e.preventDefault(); 
});
</script>
share|improve this answer
    
that fixed it all, thanks –  user934902 Jan 18 at 17:55

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