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I'm having trouble using a variable for the directory name in this PHP if statement:

if (($handle = opendir("news"))) {
    // Read all file from the actual directory
    while ($file = readdir($handle))  {
        if (!is_dir($file)) {
            $fileList[] = $file;
        }
    }
}

When I use a variable ($newsDir) instead of a string literal for the directory name ("news"), the script stops working.

$newsDir = $_SERVER[DOCUMENT_ROOT] . "edit/news";
var_dump(file_exists($newsDir));
// bool(true)
var_dump(is_dir($newsDir));
// bool(true)
var_dump($newsDir);
// string(36) "/f5/jb-cms-testing/public//edit/news"
if (($handle = opendir($newsDir))) {
    // Read all file from the actual directory
    while ($file = readdir($handle))  {
        if (!is_dir($file)) {
            $fileList[] = $file;
        }
    }
}

It doesn't throw any errors, the function just doesn't properly run. At first, I thought it was because my $newsDir variable is $_SERVER[DOCUMENT_ROOT] . "edit/news", but even if I set $newsDir to just "news", it doesn't work. So it's something to do with the fact that I'm using a variable, as far as I can tell.

Any ideas why? Also, this is the only place, and the only file that $handle occurs, so I'm not sure why it works at all. It was a while ago that I built this, and I was using a tutorial, so I'm not sure exactly how it works. It's basically just a way to sort files in the news directory.

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1  
Please edit your question to show a complete test-case. –  Oliver Charlesworth Dec 17 '11 at 18:25
    
Please show the output of var_dump($newsDir); –  DaveRandom Dec 17 '11 at 18:26
1  
You could try scandir() or glob() which don't incur the handle overhead. –  mario Dec 17 '11 at 18:26
5  
Also enable error_reporting(). And you might just lack a / separator between DOCUMENT_ROOT and the local path fragment. –  mario Dec 17 '11 at 18:29
1  
Please show the output of var_dump(file_exists($newsDir), is_dir($newsDir)); –  TimWolla Dec 17 '11 at 18:30

2 Answers 2

Use the following to check where the error is (example from php.net)

<?php
// Report all PHP errors
error_reporting(-1);

$dir = $_SERVER[DOCUMENT_ROOT] . "edit/news";
if (is_dir($dir)) {
    if ($dh = opendir($dir)) {
        while (($file = readdir($dh)) !== false) {
            $fileList[] = $file;
            echo "filename: $file : filetype: " . filetype($dir . $file) . "read \n";
        }
        closedir($dh);
    }
}
?>
share|improve this answer
up vote 0 down vote accepted

Wow. I figured it out. It's just that you apparently can't use variables out side of a function. I was including the vars.php file outside of the function, which was causing the error. I have no idea why you wouldn't be able to do this, maybe someone can enlighten me?

Thanks for all the input.

share|improve this answer
    
SO is a Q&A site, not a forum. If you have a new question, first search to make sure it hasn't been answered before and, if it hasn't, post a new question. –  outis Dec 31 '11 at 21:08
    
I always do search. I couldn't find an answer because it's a pretty noob question (I didn't know to search for "using variables outside of a function" since that was the answer). I know it's not a forum, I was answering my own question, not replying to it. I try and mark things as answered whenever I can, even if I have to submit the answer myself. –  Rev Jan 10 '12 at 3:21
    
I was referring to where you ask a question within your answer, not the part where you answer your question. –  outis Jan 10 '12 at 10:26

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