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I have code as below:

$dir = opendir("D:/Marcin");
if ($dir) {
echo "OK";
}
else {
echo "not ok";
}

and I get not ok, why??

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It should generate a warning telling you why if it returned FALSE. –  jordanm Nov 29 '12 at 0:24
    
Have you enabled error_reporting? What does it say? (Yes, enable it.) –  mario Nov 29 '12 at 0:24
    
it says "[28-Nov-2012 17:31:56] PHP Warning: opendir(D:/Marcin) [<a href='function.opendir'>function.opendir</a>]: failed to open dir: No such file or directory in /home4/imaptwof/public_html/ager.php on line 10" –  Marcin Kostrzewa Nov 29 '12 at 0:33
    
D:/Marcin is on a local PC –  Marcin Kostrzewa Nov 29 '12 at 0:33
    
yeah thats why it wouldn`t probably open.. but if you run it in a local server that can open :D –  Kaii Nov 29 '12 at 0:44

1 Answer 1

up vote 1 down vote accepted

I believe you are trying to open a directory server-side. If you were doing so locally, it would work - as I can see that you are getting the directory from your PC, but instead, you are attempting to execute the script in the client-side, and getting a server-side result.

This means that if that directory doesn't exist on your server, the server will not be able to find the file - and will return false.

At a certain point, you must check whether the directory exists on your server.

localserver === local directory = true;
webserver === web directory = true;

If both of the two are cross-referenced, it will return to false.

$dir = opendir("D:/Marcin"); // Check whether the directory exists on your server.
if ($dir) {
    echo "OK";
} else {
    echo "Not OK";
}

Hope this assists.

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