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I have the following code in my PHP file - initializes $uploaded_files variable and then calls getDirectory (also listed below).

Now if I do a vardump($uploaded_files) I see the contents of my variable, but for some reason when I call <?php echo $uploaded_files; ?> in my HTML file I get a message stating "No Files Found" - am I doing something incorrect?

Can someone assist? Thank you.

/** LIST UPLOADED FILES **/
$uploaded_files = "";

getDirectory( Settings::$uploadFolder );

// Check if the uploaded_files variable is empty
if(strlen($uploaded_files) == 0)
{
    $uploaded_files = "<li><em>No files found</em></li>";
}

getDirectory Function:

function getDirectory( $path = '.', $level = 0 )
{ 
    // Directories to ignore when listing output. Many hosts 
    // will deny PHP access to the cgi-bin. 
    $ignore = array( 'cgi-bin', '.', '..' ); 

    // Open the directory to the handle $dh 
    $dh = @opendir( $path ); 

    // Loop through the directory 
    while( false !== ( $file = readdir( $dh ) ) ){ 

        // Check that this file is not to be ignored 
        if( !in_array( $file, $ignore ) ){ 

            // Its a directory, so we need to keep reading down... 
            if( is_dir( "$path/$file" ) ){ 

                // We are now inside a directory
                // Re-call this same function but on a new directory. 
                // this is what makes function recursive. 


      getDirectory( "$path/$file", ($level+1) );   
        } 

        else { 
            // Just print out the filename 
            // echo "$file<br />"; 
            $singleSlashPath = str_replace("uploads//", "uploads/", $path);

            if ($path == "uploads/") {
                $filename = "$path$file";
            }
            else $filename = "$singleSlashPath/$file";

            $parts = explode("_", $file);
            $size = formatBytes(filesize($filename));
            $added = date("m/d/Y", $parts[0]);
            $origName = $parts[1];
            $filetype = getFileType(substr($file, strlen($file) - 4));
            $uploaded_files .= "<li class=\"$filetype\"><a href=\"$filename\">$origName</a> $size - $added</li>\n";
            // var_dump($uploaded_files);
        } 
    } 
} 

// Close the directory handle
closedir( $dh ); 
} 
share|improve this question
4  
$uploaded_files is not declared as a global in your function. – crush Jan 11 '13 at 21:09
    
D'oh I did - totally missed that, thanks for your help. Will accept your answer below as soon as Stackoverflow lets me. – mattdonders Jan 11 '13 at 21:16
up vote 4 down vote accepted

You either need to add:

global $uploaded_files;

At the top of your getDirectory function, or

function getDirectory( &$uploaded_files, $path = '.', $level = 0 )

Pass it by reference.

You could also make $uploaded_files the return value of getDirectory.

More reading about globals and security: http://php.net/manual/en/security.globals.php

share|improve this answer

PHP knows nothing about scope.

When you declare a variable from within the body of a function it will not be available outside the scope of said function.

For example:

function add(){
    $var = 'test';
}

var_dump($var); // undefined variable $var

This is exactly the problem you are having when trying to access the variable $uploaded_files.

share|improve this answer

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