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The following needs to be displayed:

  1. Display all items of a certain fabric

  2. If no fabrics are available in the sql display "no result"

The code is fully functional for the first point but does not support the second feature. Many thanks for helping out.

//echo $sql;

$data = "";
$ii = 0;
$m = 0;
while($myrow = mysql_fetch_array($result)){
    $ii++;
    $m++;
    if ($m == 1) $data = $data."<div class=\"page current\" id=\"gallery\">";
    elseif ($ii == 1) $data = $data."<div class=\"page\" id=\"gallery\">";

    $data = $data."<a href=\"#\" title=\"".$myrow['name']."\" class=\"show_fabric\" rel=\"".$myrow['id']."\"><img src=\"".$image_directory.$myrow['thumbnail']."\" width=\"100 px\" height=\"100 px\"><div class=\"fb_name\">".$myrow['name']."</div></a>\n";
    if ($ii == 10) {
        $data = $data."</div>";
        $ii = 0;
    }
}
    if ($ii != 10) {
        $data = $data."</div>";
    }

if (empty($data)) echo "No result";
else echo $data;
share|improve this question
1  
if you have no result and $ii didn't increment you seem to always do this $data = $data."</div>"; which makes empty($data) return false –  tradyblix May 18 '11 at 6:08

3 Answers 3

if($result)
{
   while()
  {
   -----
   --
   -
   }
}
else
echo "No Result";
share|improve this answer
    if($result && mysql_num_rows($result)>0)
    {
     $data = "";
   $ii = 0;
  $m = 0;
while($myrow = mysql_fetch_array($result)){
    $ii++;
    $m++;
    if ($m == 1) $data = $data."<div class=\"page current\" id=\"gallery\">";
    elseif ($ii == 1) $data = $data."<div class=\"page\" id=\"gallery\">";

    $data = $data."<a href=\"#\" title=\"".$myrow['name']."\" class=\"show_fabric\" rel=\"".$myrow['id']."\"><img src=\"".$image_directory.$myrow['thumbnail']."\" width=\"100 px\" height=\"100 px\"><div class=\"fb_name\">".$myrow['name']."</div></a>\n";
    if ($ii == 10) {
        $data = $data."</div>";
        $ii = 0;
    }
}
    if ($ii != 10) {
        $data = $data."</div>";
    }

    }else
    echo('No Result');
share|improve this answer
    
I'm sorry for my ignorance but I'm not a developer. How would this particular change look for the code above? I don't want to mess something up. Thank you! –  Gerald May 18 '11 at 6:41
    
@Gerald. I have updated my answer. Now again look there –  Awais Qarni May 18 '11 at 6:45
    
Thank you so much Awais! :) –  Gerald May 18 '11 at 6:47
    
@Gerald Always welcome dude.... –  Awais Qarni May 18 '11 at 6:57
    
I was too fast :) Unfortunately the code works if the fabric is not available but does not display the fabrics when they are available. –  Gerald May 23 '11 at 16:28

You could use the following modified code, but it still creates a new <div [...] id="gallery"> every ten iterations. Note that HTML IDs must be unique.

if ( ( !$result ) || ( 0 == mysql_num_rows( $result ) ) ) {
    echo 'No result';
}
else {
    $data = "";
    $ii = 0;
    $m = 0;
    while ( $myrow = mysql_fetch_array( $result ) ) {
        $ii++;
        $m++;
        if ( $m == 1 ) {
            $data .= '<div class="page current" id="gallery">';
        }
        elseif ( $ii == 1 ) {
            $data .= '<div class="page" id="gallery">';
        }
        $data .= '<a href="#" title="' . $myrow['name'] . '" class="show_fabric" rel="' . $myrow['id'] . '"><img src="' . $image_directory . $myrow['thumbnail'] . '" width="100px" height="100px"><div class="fb_name">' . $myrow['name'] . "</div></a>\n";
        if ( $ii == 10 ) {
            $data .= "</div>";
            $ii = 0;
        }
    }
    if ( $ii != 10 ) {
        $data .= "</div>";
    }
    echo $data;
}
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