37

I want to read a list the names of files in a folder in a web page using php. is there any simple script to acheive it?

10 Answers 10

99

The simplest and most fun way (imo) is glob

foreach (glob("*.*") as $filename) {
    echo $filename."<br />";
}

But the standard way is to use the directory functions.

if (is_dir($dir)) {
    if ($dh = opendir($dir)) {
        while (($file = readdir($dh)) !== false) {
            echo "filename: .".$file."<br />";
        }
        closedir($dh);
    }
}

There are also the SPL DirectoryIterator methods. If you are interested

  • Thanks Olafur that helps a lot.. – Smart Pandian Apr 11 '09 at 7:03
  • I don't recommend Glob -- ever! It is extremely slow especially with many files. I would use one of these: FilesystemIterator, DirectoryIterator, RecursiveDirectoryIterator. – JREAM Apr 10 '17 at 15:44
  • $dir = getcwd(); gets the current working directory. – Kai Noack Sep 20 '18 at 7:25
11

This is what I like to do:

$files = array_values(array_filter(scandir($path), function($file) use ($path) { 
    return !is_dir($path . '/' . $file);
}));

foreach($files as $file){
    echo $file;
}
  • Needs one small fix: function($file) use ($path) { return !is_dir($path . '/' . $file); – Borgboy Jun 28 '17 at 15:54
9

There is this function scandir():

$dir = 'dir';
$files = scandir($dir, 0);
for($i = 2; $i < count($files); $i++)
    print $files[$i]."<br>";

More here in the php.net manual

2

If you have problems with accessing to the path, maybe you need to put this:

$root = $_SERVER['DOCUMENT_ROOT'];
$path = "/cv/"; 

// Open the folder
 $dir_handle = @opendir($root . $path) or die("Unable to open $path");
2

There is a glob. In this webpage there are good article how to list files in very simple way:

How to read a list of files from a folder using PHP

  • 8
    Note that link-only answers are discouraged, SO answers should be the end-point of a search for a solution (vs. yet another stopover of references, which tend to get stale over time). Please consider adding a stand-alone synopsis here, keeping the link as a reference. – kleopatra Aug 4 '13 at 15:52
1

Check in many folders :

Folder_1 and folder_2 are name of folders, from which we have to select files.

$format is required format.

<?php
$arr = array("folder_1","folder_2");
$format  = ".csv";

for($x=0;$x<count($arr);$x++){
    $mm = $arr[$x];

    foreach (glob("$mm/*$format") as $filename) {
        echo "$filename size " . filesize($filename) . "<br>";
    }
}
?>
1

You can use standard directory functions

$dir = opendir('/tmp');
while ($file = readdir($dir)) {
    if ($file == '.' || $file == '..') {
        continue;
    }

    echo $file;
}
closedir($dir);
0

There is also a really simple way to do this with the help of the RecursiveTreeIterator class, answered here: https://stackoverflow.com/a/37548504/2032235

0
<html>
<head>
<title>Names</title>
</head>
<body style="background-color:powderblue;">

<form method='post' action='alex.php'>
 <input type='text' name='name'>
<input type='submit' value='name'>
</form>
Enter Name:
<?php

  if($_POST)
  {
  $Name = $_POST['name'];
  $count = 0;
  $fh=fopen("alex.txt",'a+') or die("failed to create");
  while(!feof($fh))
  {
    $line = chop(fgets($fh));
    if($line==$Name && $line!="")
    $count=1;
  }
  if($count==0 && $Name!="")
  {
    fwrite($fh, "\r\n$Name"); 
 }
  else if($count!=0 && $line!="") 
  { 
    echo '<font color="red">'.$Name.', the name you entered is already in the list.</font><br><br>';
  }
  $count=0;
  fseek($fh, 0);
  while(!feof($fh))
  {
    $a = chop(fgets($fh));
    echo $a.'<br>';
    $count++;
  }
  if($count<=1)
  echo '<br>There are no names in the list<br>';
  fclose($fh);
  }
?>
</body>
</html>
  • 1
    While this code may answer the question, providing additional context regarding how and/or why it solves the problem would improve the answer's long-term value. – radoh Dec 3 '16 at 20:51
-2
<?php
    $files = glob("images/*.*"); 
    for ($i=0; $i<count($files); $i++) { // $i mean to start first files names.
    $num = $files[$i];
    echo '<img src="'.$num.'" />'."<br />\n";
}
?>

images/ is meaning to your images directory. $i=0 variable is finding the . images files and will be start first file name.

  • 1
    Please explain how your code snippet is an answer to OP's question. – YSC Jan 5 '16 at 10:10

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