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This script includes multiple files from a directory, how can I leave out a single file from the inclusion, for example, file one.php to leave out the included directory

And here's the script

<?php      
$dir = "dir1/dir2/dir3/dir4 ";
$phpfiles  = glob($dir ."*.php");
$phpfiles=array_map(function($f){return pathinfo($f, PATHINFO_FILENAME );},$phpfiles);
foreach ($phpfi2les as $phpfile){
echo '<li><a href="'.'/'.$dir.$phpfile.'/'.'">'.$phpfile.'</a></li>';
 }
?>

example output

1
2
3
omit the file 3
share|improve this question

Several ways. Here's one if you can remove it from the array:

$phpfiles = preg_grep("/one.php$/", glob($dir . "*.php"), PREG_GREP_INVERT);

If you wanted to exclude multiple files:

$exclude = array('one.php', 'two.php');
$phpfiles = preg_grep("/(" . implode("|", $exclude) . ")$/", glob($dir . "*.php"), PREG_GREP_INVERT);
share|improve this answer

Quick/dirty check for a single file to skip:

foreach ($phpfiles as $phpfile) {
   if (basename($phpfile) == 'file to be skipped') {
      continue;
   }
}
share|improve this answer

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