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I can't seem to figure this out. I realize at this point that this just must be a simple syntax issue that is throwing me off, I'm fairly new to PHP so I am going to thank my noobiness for this one.

I am trying to create subdirectories ($slugTitle) within already existing directories ($w_type), yet the directories are failing to be created.

This is my code:

        $path1 = "/".$w_type."/".$slugTitle;
        $path2 = "/".$w_type."/".$slugTitle."/images";
        $mode = 0777;


I've also tried:

        $path1 = "/".$w_type."/".$slugTitle;
        $path2 = "/".$w_type."/".$slugTitle."/images";
        $mode = 0777;


and still now luck. Instead, I get directories that are named " instead of creating a directory within an already existing directory.

Please help! Thank you!


share|improve this question
I've scoured all of the other php mkdir() related posts and none seem to fix my issue. While my problem is not unique, I need case specific guidance because nothing is working and I've torn almost all of my hair out. –  j0sh1e Jun 25 '13 at 5:20
done any basic debugging, e.g. var_dump($path1)? confirmed that the w_type and slugTitle variables contain something that would be valid in a directory name context? –  Marc B Jun 25 '13 at 5:20
Do you have permissions to create directories in the root path? –  Skpd Jun 25 '13 at 5:21
@MarcB yes the output of $path1 returns /existig-directory/new-subdirectory and $path2 returns /existing-directory/new-subdirectory/images. Should quotes be added anywhere? and @Skpd yes, I do have permissions to create directories in the root path. –  j0sh1e Jun 25 '13 at 5:26
no, no quotes, unless you want the quotes to be part of your new directories. –  Marc B Jun 25 '13 at 5:26

2 Answers 2

up vote 1 down vote accepted

Try This,

$path1 = "./".$w_type."/".$slugTitle; 
share|improve this answer
That worked! Thanks again! –  j0sh1e Jun 25 '13 at 6:48

You try to add directiries to root directory

try to change

$path1 = "/".$w_type."/".$slugTitle;


$path1 = "/tmp/".$w_type."/".$slugTitle;

or to dirname (__FILE__) .$w_type."/".$slugTitle;

share|improve this answer
thanks @zool but that didn't work. it still is not doing anything. –  j0sh1e Jun 25 '13 at 5:51

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