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I would like to get just the name of the parent folder of which a script is currently running in the directory?

if we have a script called foo.php with a path of "/Users/Somone/Sites/public/foo.php", how can i go about just getting "public"out of the that file path and not the entire directory tree?

any help would be great.

thanks.

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2  
I am unable to downvote, this has already been asked and there are tons of links to it if you do a google search. [stackoverflow.com/questions/1882044/… –  bowlerae Jan 23 '12 at 23:50
    
I appreciate you calling me stupid. I was not able to find a solutions to this hence i posted here. –  Moshe Jan 23 '12 at 23:58
    
And i did come across the post you linked to before i posted and did not find it helpful. –  Moshe Jan 24 '12 at 0:00
1  
possible duplicate of php: get the directory in which resides a file @rdlowrey There are dozen better duplicates, but by Aletheia, a duplicate it is. (Also keeping in mind that PHP version 5.3 just now surpassed 20% install base, the 'most correct' solution shall be up for debate.) –  mario Jan 24 '12 at 0:19

5 Answers 5

The simplest way to do it:

basename(__DIR__);

As @mario sagely noted, this is only possible with PHP 5.3+, so if you're stuck with 5.2 or less ... well ... you should switch to a new host and stop using legacy software.

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This is definitely the simplest way to do it. thanks –  Moshe Jan 23 '12 at 23:56
echo basename(__DIR__);

Edit: It appears that __DIR__ doesn't include the trailing directory separator, so the substr() call was unnecessary.

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substr(__DIR__, strrpos(__DIR__, '/')+1);
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if you pass in the script file (as the fill path to the file) as the arg for dirname(), it will return the parent directory. http://php.net/manual/en/function.dirname.php

once you have that, pass that string into strrchr to get the string that comes directly after the last slash http://www.php.net/manual/en/function.strrchr.php

strrchr(dirname(__FILE__, '/')
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This has worked for me:

trim(strrchr(__DIR__, DIRECTORY_SEPARATOR), DIRECTORY_SEPARATOR);

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