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I have a slideshow on a php page that uses $folder = opendir($dirpath); to access images in a folder. When I enter the url of said php file all works well, however once I call this php from inside a wordpress page it no longer accesses the image folder.

I'm guessing this is due to the fact the path changes to where the php is being called to. I just can't seem to work out what I need to replace '$dirpath' with so I can access the folder url.

The tag <?php bloginfo('stylesheet_directory'); ?>/imagefolder accesses the folder when not inside a php tag, however I don't know know I can add this inside php tags.

I've tried:

$dirpath = bloginfo('stylesheet_directory')."/imagefolder";
$dirURL = "";
$folder = opendir($dirpath);

but it's not correct.

Any help would be appreciated.

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1 Answer 1

up vote 0 down vote accepted

From the documentation on bloginfo:

This always prints a result to the browser. If you need the values for use in PHP, use get_bloginfo().

And checking the docs on get_bloginfo(), you'll see that's better to use get_stylesheet_directory_uri(), so your code would be

$dirpath = get_stylesheet_directory_uri()."/imagefolder";
$folder = opendir($dirpath);
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Thank you for your help. I've amended the code and managed to echo $dirpath and it seems to be correct, so the issue must lie elsewhere! I'll do some more digging. Thank you. –  wes Jan 28 '13 at 22:58
    
It seems only the following will pull values through.. $dirpath = get_stylesheet_directory() . "/imagefolder; $dirURL = ""; $folder = opendir($dirpath); Is this because opendir will only work with absolute paths? I can see in the generated code that it's looking at the contents of the folder, however the images won't display with the relative path.. "/var/sites/.....". I thought I could just insert the domain in front but as it's a path from the server it's incorrect. Hope that makes sense! Thanks –  wes Jan 29 '13 at 7:30
    
It turned out the solution $dirpath = get_stylesheet_directory() was sufficient for my problem. I just manipulated the value it created later in the code. $dirURL = "http://www.webaddress.co.uk"; $picpath = substr($picpath ,"48" ); $picpath = $dirURL . $picpath; This replaced the /var/w/.... path with the required http address. Thanks for your help brasofilo. –  wes Jan 30 '13 at 10:17
    
Glad you sorted it out, wes :) –  brasofilo Jan 30 '13 at 15:18

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