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I'm trying to make an image into a thumbnail with a certain size without distortion (if image is rectangular).

<?php
$sql = mysql_query("SELECT * FROM images ORDER BY date DESC LIMIT 30");
$img = 'img/'; //this is where my files are.
while($row = mysql_fetch_array($sql))
{

$imageName = $img.$row['images'];
$tempImage = imagecreatetruecolor(150,150);
$thumbnail = imagecopyresampled($tempImage,$imageName,0,0,0,0,150,150,150,150);
echo $thumbnail;
?>
<div id='<?php echo $imageID; ?>' class='images' style=''>
<img src='<?php echo $imageName; ?>' style='height:150px;width:150px;'/>
</div>
<?php
}
?>

This is how my code looks right now and I need some help. I have a code:

<img src='<?php echo $imageName; ?>' style='height:150px;width:150px;'/>

just to see how it looks like with the height and width style, but of course this shows distortion.

When I echo $thumbnail; it gives me imagecopyresized() expects parameter error.

Thank you for your help :)

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1 Answer

The $imageName you're passing in is just a filename, it appears. YOu have to provide a GD image handle for both the source AND destination arguments:

$src = imagecreatefromjpeg('somepicture.jpg');
$dst = imagecreatetruecolor(150,150);
$status = imagecopyresampled($dst, $src, etc....);
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i did $src = imagecreatefromjpeg('img/somepicture.jpg'); but its only displaying the number 1? –  andrewliu May 2 '11 at 5:21
    
That number is the internal GD handle for the image. it is NOT the image itself. –  Marc B May 2 '11 at 5:35
    
sorry, i'm new, how do i get to show the image itself?, –  andrewliu May 2 '11 at 5:37
    
oh and i echo $status –  andrewliu May 2 '11 at 5:48
    
You have to serve it up via a seperate request, or save it to a file and point your HTML at that file. You can't create the image and serve it up within your script as is - you can't (with certain exceptions that DO NOT apply here) mix an image and html within the same script. –  Marc B May 2 '11 at 14:20
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