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I have one image in a directory on my server, and want to copy it to another directory.

So I'm using

$post_picture = 'http://mysite.com/image.jpg';

copy($post_picture, 
         'images/pictures/post/thumb/' . 
         $info['filename'] . 
         '_thumb.' . 
         $info['extension']);

The issue is that in fact a file is created in my thumb directory, but that image is empty (0 x 0 pixels). I get no errors.

Any idea what is happening?

Permissions on all dirs are 755, both original and copy image have 644. The original show normally on a browser.

Thanks.

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2  
Is it an empty file, or is it a 0x0 pixel image? –  Kavi Siegel Feb 20 '12 at 17:13
    
Why are you using image URL instead of its normal path? Isn't that image on your server? Is PHP able to fetch URLs (see allow_url_fopen option)? –  lorenzo-s Feb 20 '12 at 17:14
    
allow_url_fopen is on (both local and master) –  torr Feb 20 '12 at 17:27
    
@kavisiegel the image is 41KB but 0x0 –  torr Feb 20 '12 at 17:28
    
lorenzo-s the image is on my server but copy allows URL –  torr Feb 20 '12 at 17:29

5 Answers 5

up vote 3 down vote accepted

Do you have any form of hot-link protection that could alter what php receives? Is allow_url_fopen allowed?

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1  
looks like copy() was failing because of a redirect in my .htaccess - once I commented that out the file shows normally - thanks for pointing this out -- I am now using full system path instead of URL and it works even with the redirect –  torr Feb 20 '12 at 17:34

The $post_picture variable should probably have the file system path to the file, rather than the URL to the file.

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1  
copy() supports URLs. We do not know if the image is fetched from the same server or not. See my questions in the question comments. –  lorenzo-s Feb 20 '12 at 17:15
    
You're right so it does. Missed it when I quickly check the php manual page. –  Vex Feb 20 '12 at 17:21

Is allow_url_fopen set to true in your php.ini?

Sometimes that can produce this result if remote connections are being blocked.

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$post_picture should be a local path i believe

copy( '/path/image.jpg', ... );
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Please use this one...

<?php
$source = 'f-1/2.jpg';
$destination = 'f-2/2.jpg';

$data = file_get_contents($source);

$handle = fopen($destination, "w");
fwrite($handle, $data);
fclose($handle);
?>
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you can change filename in $destination = 'f-2/2.jpg'; –  Adeel Mughal Feb 20 '12 at 17:39

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