I tried to link $child['id'] but can't do it. Link is removed on line 13. Can anyone tell me correct way to generate category link on click?

<!-- fetch parent categories -->
<?php
while ($parent = mysqli_fetch_assoc($parentquery)) : ?>

<?php
$parent_id=$parent['cat_id'];?>

<!--fetch sub-categories-->
<?php
$sql2 = "SELECT * FROM categories WHERE cat_parent = '$parent_id'";
$child_query = $db->query($sql2); // database object
?>

<div class="col-menu col-md-3">
<h6 class="title"><?php echo $parent['cat_name'] ?></h6>

<div class="content">
<ul class="menu-col">
<?php while($child = mysqli_fetch_assoc($child_query)) : ?>

Now I want to link each category on the below. Loops works fine. I am seeing category names but no link. Please help

<li> <a href='#'>
<?php echo $child['cat_name']; ?></a></li>
<?php endwhile; ?>
</ul>
</div>
</div>
<?php endwhile; ?>
  • 1
    Uhm... What...? – GrumpyCrouton Apr 20 at 20:14
  • <a href='#'> .. I want to link it to the category id when clicked on it. – wonkxags Apr 20 at 20:15
  • Okay, and what's the problem? – GrumpyCrouton Apr 20 at 20:16
  • 1
    WARNING: When using mysqli you should be using parameterized queries and bind_param to add user data to your query. DO NOT use string interpolation or concatenation to accomplish this because you have created a severe SQL injection bug. NEVER put $_POST, $_GET or any user data directly into a query, it can be very harmful if someone seeks to exploit your mistake. – tadman Apr 20 at 20:22
  • 1
    Also please fix your indentation – Lonely Neuron Apr 20 at 21:25

You need to pass it in href

<li> 
   <a href='<?php echo $child['link'];?'>
       <?php echo $child['cat_name']; ?>
   </a>
</li>

Try this if ur href is empty then you should add

<a href='"<?php echo $child['link'];?>"'> // double quotes

you should pass the id to the href,

<a href='<?=$child['id'];?>'>

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