Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them, it only takes a minute:

I'm very new to PHP and would like some help creating a menu from files contained in a directory. As I add files i'd like the menu to automatically add an item.

The files in the directory are .htm files and the naming convention is year, then month separated by an underscore i.e, 2013_6.htm (June 2013)

I would like to be able to read the files and then create a menu from those.

I have managed to create a sorted array of the files, like this (which works fine):

$dir = "$cal_path";
$dh  = opendir($dir);
while (false !== ($filename = readdir($dh))) {
    if ($filename != "." && $filename != ".."){
    $files[] = $filename;

How do I now get this array of files into a menu item list that I can then style with CSS, something like this, where xxxx is the year from the filename and yy is the month from the file name.

$cal_menu = 

 <li><a href="$base_url/calendar_view?year=xxxx&month=yy">June 2013</a></li>

I created an array of months and corresponding month names

$CalendarMonth = array("1"=>"January","2"=>"February","3"=>"March","4"=>"April","5"=>"May","6"=>"June","7"=>"July","8"=>"August","9"=>"September","10"=>"October","11"=>"November","12"=>"December");

I hope I have explained my problem properly. Many thanks in advance.

share|improve this question
tip: check out the scandir function –  sgroves May 16 '13 at 18:00
while (false !== ($filename = readdir($dh)) WHAT?? –  samayo May 16 '13 at 18:01
@phpNoOb nothing particularly confusing about that ... but he should just use scandir :P –  sgroves May 16 '13 at 18:01
What difference does it make, they're both fine ways to get a list of files in the directory. That's not really what his question is about. –  Barmar May 16 '13 at 18:02
that's why i commented instead of answered. that's what comments are for. –  sgroves May 16 '13 at 18:03

5 Answers 5

up vote 1 down vote accepted

You can try this code:

EDIT: as you want to save that output on a variable.

$cal_menu = '<ul>';

foreach($files as $file){ 
    preg_match('/(\d{4})_(\d.*).htm/i', $file, $date);
    $mont_name = $CalendarMonth[$date[2]];

    $cal_menu .= '<li><a href="$base_url/calendar_view?year='.$date[1].'&month='.$date[2].'">'.$mont_name.' '.$date[1].'</a></li>';
$cal_menu .= '</ul>';

This code set the output of every li item in the format you required: ?year=xxxx&month=yy

See it working here.

share|improve this answer
thank you. I tried this and got a Parse error: syntax error, unexpected '<' –  Ruf1 May 16 '13 at 19:51
I see, you want to save the output on $cal_menu. In that case, I'll edit my answer. –  Luigi Siri May 16 '13 at 20:01
@Ruf1, try the new code i just posted. –  Luigi Siri May 16 '13 at 20:12
@ Luigi Siri - thank you very much. That is almost there. my files are 2013_6.htm 2013_11.HTM ETC ETC. I notice the output for my file 2013_6.htm i get a url calendar_view,php?year=213&month=06 than than month=6. How do I correct this? Thank you again. –  Ruf1 May 16 '13 at 20:19
thanks again for all your help. It works perfectly. –  Ruf1 May 17 '13 at 8:03

Try this

foreach ($files as $file) {
// pathinfo will return an array containing
// dirname,basename,extension,filename then use extract
// to convert the array into variables
echo "<li><a href="$file">$filename</a></li>"

read more about pathinfo read more about extract

share|improve this answer

Use a loop in which you extract data from each filename with pathinfo. You could do this inside your existing loop, but here it is as a foreach:

echo '<ul>';

foreach($files as $filename) {
     $f_info = pathinfo($dir . '/' . $filename);
     $extension_length = strlen('.' . $f_info['extension']);

     $f_parts = substr($f_info['filename'], 0, -$extension_length);
     $year = $f_parts[0];
     $month = $f_parts[1];

     echo '<li><a href="' . $base_url . '/calendar_view?year=' . $year .
          '&month=' . $month . 'yy">' . $CalendarMonth[$month] . ' ' .
          $year . '</a></li>';

echo '</ul>';

You might want to use array_key_exists to verify that $month actually exists in $CalendarMonth before using $CalendarMonth[$month].

share|improve this answer
Thank you. I tried this but all that was output was the number 2. –  Ruf1 May 16 '13 at 19:49

Try this example. It should give you an idea.

share|improve this answer
foreach ($files as $file) {
    preg_match('/^(\d{4})_(\d{1,2}}/', $file, $match); // Parse filename into YYYY_MM
    $year = $match[1];
    $month = $match[2];
    $monthname = $CalendarMonth[$month];
    // Interpolate these into HTML output
    echo "<ul>
          <li><a href='$base_url/calendar_view?year=$year&month=$month'>$monthname $year</a></li>
share|improve this answer
Thank you for this one. I tried it and got Parse error: syntax error, unexpected T_AS –  Ruf1 May 16 '13 at 19:54
I fixed the missing quote around the regexp –  Barmar May 16 '13 at 20:13

Your Answer


By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.