Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free.

i have a problem with echoing or even retrieving a value after the div popup can anyone help the problem is that $r is not displaying after the divpopup. or rather that the fetch does not iterate and it displays the first record only.. thanks in advance

<?php
   $con = mysql_connect('****', 'root','****')    or die('Error connecting to MySQL server.');  
mysql_select_db("dreschema", $con) or die("cannot select DB"); 
?>
<!DOCTYPE html PUBLIC "-//W3C//DTD XHTML 1.0 Transitional//EN" "http://www.w3.org    /TR/xhtml1/DTD/xhtml1-transitional.dtd">
<html>
<head>
<link href="styles2.css" rel="stylesheet" type="text/css" />
<link href="styles.css" rel="stylesheet" type="text/css" />
<link href="styleshref.css" rel="stylesheet" type="text/css" />
<script>


</script>
</head>
<body>
<div id="container1">


 <div align="center"></div>
  <div id="mainContent1">




<?php 
$text = $_GET["searchtext"];
echo "Results displayed for   ". $text;
echo '</br>';


   $query4 = "SELECT * from products WHERE ProductName LIKE '%$text%'";
$data = mysql_query($query4, $con);
if (!mysql_query($query4, $con)){
print mysql_error();
exit;
}
     while ($row = mysql_fetch_array($data)) {
echo $row['ProductName'];

if($row['Stock']== 0 OR $row['Stock']== "")
{
echo "(SOLDOUT)";
echo '<input type="hidden" name="prod" value="' . $row['Image'] . ' " " id = "prod">';
echo '<a href="preorder.php?image=' . $row['Image'] . '"><img id = "imageid" src="' . $row['Image'] . '" alt="' . $row['Image'] . '"  width="80" height="80" style="margin-left:1.5em;margin-top:1.5em;"/></a>';
echo $row['Price'] . "PhP";
?>

   <div id="blanket" style="display:none;"></div>
    <div id="popUpDiv" style="display:none;">
    <a href="#" onclick="popup('popUpDiv')"><font size =" 20">x</font></a><br>


        <a href="#" onclick="popup('popUpDiv')" ><?php echo '<iframe src="orders2.php?image=' . $row['Image'] . '"style= position:absolute;width:500px;height:500px;"></iframe>';?> </a>

    </div>  
  <a href="#" onclick="popup('popUpDiv')">Click to Open CSS Pop Up</a><br>  

<?php
}
 else 
{
echo '<input type="hidden" name="prod" value="' . $row['Image'] . ' " " id = "prod">';
echo '<a href="orders2.php?image=' . $row['Image'] . '">';
echo '<img id = "imageid" src="' . $row['Image'] . '" alt="' . $row['Image'] . '"  width="80" height="80" style="margin-left:1.5em;margin-top:1.5em;"/></a>';
echo $row['Price'] . "PhP";
$r = $row['Image'];
  echo '<br>';

?>


    <div id="blanket" style="display:none;"></div>
    <div id="popUpDiv" style="display:none;">
<?php
echo $r;
?>
    <a href="#" onclick="popup('popUpDiv')"><font size =" 20">x</font></a><br>

        <a href="#" onclick="popup('popUpDiv')" ><?php echo '<iframe src="orders2.php?image=' . $row['Image'] . '"style= position:absolute;width:500px;height:500px;"></iframe>';?> </a>

    </div>  
  <a href="#" onclick="popup('popUpDiv')">Click to Open CSS Pop Up</a><br>  



   <?php
}


}
?>

    <!-- end #mainContent --></div>
<!-- end #container --></div>
</body> 
</html>
share|improve this question
1  
you're just asking for and SQL injection attack here. –  Ben D Feb 11 '13 at 1:56
1  
@BenD dont forget XSS ($text) –  Lawrence Cherone Feb 11 '13 at 1:58
    
What gets displayed on the page? If you look at the source code from the page, is the last element <div id="popUpDiv" style="display:none;"> –  Boundless Feb 11 '13 at 2:01
    
it is displaying a popup that is supposed to be the iframe that should display an image based on the database..it is displaying the iframe popup but only the first one is displayed so even if it is iterated the link displays 5 times but the row['Image'] is not changed.. –  Andre malupet Feb 11 '13 at 2:13
1  
You should read this: en.wikipedia.org/wiki/SQL_injection Also, it's generally a bad idea to use popups in general. –  starshine531 Feb 11 '13 at 2:15

1 Answer 1

This may or may not be an answer, but it wouldn't fit in the comments section so I wanted to expand it here. Looking over the code it's hard to tell if the problem is that (a) MySQL only returned one row; (b) The PHP loop is hitting a problem; or (c) everything is working fine but your HTML markup is so messed up that the browser is simply unable to render it as you think it should.

To eliminate the first issue, please add this right after your query:

$num_rows = mysql_num_rows($data);
if (!$num_rows){die('no rows');}
echo "<p>$num_rows rows returned</p>";

This way you can see how many rows are being returned. Also, don't do this: if (!mysql_query($query4, $con)){. Do this if(!$data){.

----- ASIDE ----

Better yet switch to PDO or mysqli, as your current setup WILL be hacked and your data will get messed up). *On the MySQL front, at the very least, you should set $text = mysql_real_escape_string($_GET["searchtext"]); to avoid the simplest SQL injection attack, and for g*d's sake don't use the root user for your site. Set up MySQL users with limited permissions and use them... also, to avoid an XSS injection you should also strip_tags($_GET["searchtext"]) when echoing the text to the screen.*

----- /ASIDE ----

If the problem isn't that the query is returning a single response, look at the source code. Are you sure you're not seeing multiple loops-worth of code? You have A LOT of markup problems. I've highlighted a few:

  1. echo '<input type="hidden" name="prod" value="' . $row['Image'] . ' " " id = "prod">'; - What are all those "s doing there? There's a floating " just sitting there, which can mess up how the browser interprets the tag. Also, you often have leading or trailing spaces in attribute values... get rid of those, especially in value attributes.
  2. Same line (as well as others): You've statically coded an element ID (prod). IDs are supposed to be unique, so if the code is successfully looping, you'll end up with lots of elements with the same ID (this shouldn't cause the issue you're facing, but there's javascript included that you're not showing us, so the JS could be removing duplicate IDs).
  3. <iframe src="orders2.php?image=' . $row['Image'] . '"style= position:absolute;width:500px;height:500px;"></iframe> - The style attribute is merged into the src attribute. You need a space there or the browser may not know what to do with either attribute.
  4. Same line, the style attribute has no opening " but it has a closing " - more of the same.
  5. <a href="orders2.php?image=' . $row['Image'] . '"> - You have no opening " but you have a closing "... you can omit quotes altogether, but you can't do both.

There are more issues, as well as some general coding standards you should clean up, but you should have a look at the resulting code and make sure that it passes muster.

Lastly, make sure that the image is supposed to be displaying. In the first if statement the image is never told to display (presumably it's in the iframe) and in the else statement the image is echoed into a div that has style="display:none", so we wouldn't expect to see it. If the problem is just that the isn't displaying the image, make sure that the iframe src is correct (and you might want to urlencode the image URI when you're passing it as a _GET variable.)

If you post the resulting HTML code (and confirm that it's not just that MySQL is returning one row) we might be able to help further.

share|improve this answer
    
ok i ll see what i can do thanks for the reply ill take note of everything you said.. –  Andre malupet Feb 11 '13 at 13:57

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.