313

If I have PHP script, how can I get the filename from inside that script?

Also, given the name of a script of the form jquery.js.php, how can I extract just the "jquery.js" part?

2
  • 1
    This is two questions in one. Which one do you want to know. How to tell the current script's name, how to cut off the extension from a file name, or both?
    – Pekka
    Nov 19, 2010 at 1:25
  • 5
    The word also indicates you are asking an additional question. Sheesh. Some peeps kids. Feb 14, 2017 at 19:16

18 Answers 18

472

Just use the PHP magic constant __FILE__ to get the current filename.

But it seems you want the part without .php. So...

basename(__FILE__, '.php'); 

A more generic file extension remover would look like this...

function chopExtension($filename) {
    return pathinfo($filename, PATHINFO_FILENAME);
}

var_dump(chopExtension('bob.php')); // string(3) "bob"
var_dump(chopExtension('bob.i.have.dots.zip')); // string(15) "bob.i.have.dots"

Using standard string library functions is much quicker, as you'd expect.

function chopExtension($filename) {
    return substr($filename, 0, strrpos($filename, '.'));
}
9
  • 1
    Why not simply use substr and strrchr to strip off the last . and everything behind it? Nov 19, 2010 at 1:41
  • 11
    @ThiefMaster Because there is something built into PHP to handle file extensions. The wheel exists, and rolls well.
    – alex
    Nov 19, 2010 at 2:08
  • 3
    But a regex might be more expensive! Nov 19, 2010 at 11:42
  • 23
    While __FILE__ gives you the .php file that line is in, you actually want $_SERVER['SCRIPT_NAME'] for the currently running top-level script (that which was invoked by the web server or directly on the command line) Apr 28, 2011 at 17:34
  • 3
    @Drew I guess that depends on what you really want.
    – alex
    Apr 28, 2011 at 23:17
145

When you want your include to know what file it is in (ie. what script name was actually requested), use:

basename($_SERVER["SCRIPT_FILENAME"], '.php')

Because when you are writing to a file you usually know its name.

Edit: As noted by Alec Teal, if you use symlinks it will show the symlink name instead.

5
  • 5
    That was helpful to me)) needed to get script file name, in required file) Oct 27, 2015 at 21:18
  • 4
    This is wrong, it wont get the actual PHP file, but the file the webserver resolved to the request. Different if you use simlinks.
    – Alec Teal
    Jan 28, 2016 at 14:23
  • Also different if you use PHP-FPM. Aug 26, 2016 at 13:49
  • Also if you need the extension too, use pathinfo($_SERVER["SCRIPT_FILENAME"], PATHINFO_BASENAME);
    – c00000fd
    Mar 13, 2020 at 6:47
  • 1
    @c00000fd If you need the extension just omit the second parameter...
    – SparK
    Mar 14, 2020 at 20:12
72

See http://php.net/manual/en/function.pathinfo.php

pathinfo(__FILE__, PATHINFO_FILENAME);
0
61

Here is the difference between basename(__FILE__, ".php") and basename($_SERVER['REQUEST_URI'], ".php").

basename(__FILE__, ".php") shows the name of the file where this code is included - It means that if you include this code in header.php and current page is index.php, it will return header not index.

basename($_SERVER["REQUEST_URI"], ".php") - If you use include this code in header.php and current page is index.php, it will return index not header.

3
  • which is safer SCRIPT_FILENAME or REQUEST_URI? I know they both are server vars but isn't REQUEST_URI a user tampered value? it enables a "URI injection" threat
    – SparK
    Jan 29, 2014 at 14:56
  • 1
    both have their own impotence, But you can safe your url using different filers, like mysql_real_escape_string, stripslashes etc.. Jan 29, 2014 at 15:43
  • 5
    @KhandadNiazi basename($_SERVER["REQUEST_URI"], ".php"); will return the folder's name if the link is of the form http://example.com/somefolder . While basename($_SERVER['PHP_SELF'], ".php"); will always return the script's name, in this case index. Nov 3, 2014 at 19:10
29

This might help:

basename($_SERVER['PHP_SELF'])

it will work even if you are using include.

3
  • That still leaves the .php at the end that the OP was trying to get rid of Feb 24, 2013 at 0:05
  • 3
    @stumpx Then you can do basename($_SERVER['PHP_SELF'], ".php"); Nov 3, 2014 at 19:08
  • I have 2 files, header.php and home.php, the header.php is called in home.php how can i detect in header that the current page is home.php or contact.php so i could change some banner etc.
    – Moxet Khan
    Dec 28, 2015 at 10:12
26

Here is a list what I've found recently searching an answer:

//self name with file extension
echo basename(__FILE__) . '<br>';
//self name without file extension
echo basename(__FILE__, '.php') . '<br>';
//self full url with file extension
echo __FILE__ . '<br>';

//parent file parent folder name
echo basename($_SERVER["REQUEST_URI"]) . '<br>';
//parent file parent folder name with //s
echo $_SERVER["REQUEST_URI"] . '<br>';

// parent file name without file extension
echo basename($_SERVER['PHP_SELF'], ".php") . '<br>';
// parent file name with file extension
echo basename($_SERVER['PHP_SELF']) . '<br>';
// parent file relative url with file etension
echo $_SERVER['PHP_SELF'] . '<br>';

// parent file name without file extension
echo basename($_SERVER["SCRIPT_FILENAME"], '.php') . '<br>';
// parent file name with file extension
echo basename($_SERVER["SCRIPT_FILENAME"]) . '<br>';
// parent file full url with file extension
echo $_SERVER["SCRIPT_FILENAME"] . '<br>';

//self name without file extension
echo pathinfo(__FILE__, PATHINFO_FILENAME) . '<br>';
//self file extension
echo pathinfo(__FILE__, PATHINFO_EXTENSION) . '<br>';

// parent file name with file extension
echo basename($_SERVER['SCRIPT_NAME']);

Don't forget to remove :)

<br>

2
  • 1
    So... SCRIPT_NAME, SCRIPT_FILENAME and PHP_SELF are 3 different things, right? (Why so many vars with same value?! Rasmus was on drugs for sure)
    – SparK
    May 19, 2016 at 12:31
  • Scenario: index.php includes header.php which in turn includes functions.php, where log_location() resides. I call log_location() in header.php, and then I run index.php. All of the above function print out either function or index or domain or some variation of these. I wan't to know which PHP script called the function. Is it even possible (in a one-liner)? @begoyan
    – s3c
    Feb 18, 2020 at 6:49
22

alex's answer is correct but you could also do this without regular expressions like so:

str_replace(".php", "", basename($_SERVER["SCRIPT_NAME"]));
3
  • 6
    This runs the risk of mangling a filename like hey.php-i-am-a-weird-filename.php.
    – alex
    Nov 19, 2010 at 2:08
  • I already thought of that but I figured they were using it for the single page mentioned in the question. You could also check to see if the ".php" is at the end of the string. Not saying your question is wrong but regular espressions can be kind of a pain in the ass and are usually used in scenarios where a much simpler and less resource intensive method could be used.
    – user
    Nov 19, 2010 at 2:39
  • Shofner I ran some benchmarks and your way runs about twice as quick, but still over 1000 iterations the difference is 0.003231 microseconds.
    – alex
    Nov 19, 2010 at 12:12
9

you can also use this:

echo $pageName = basename($_SERVER['SCRIPT_NAME']);
5

A more general way would be using pathinfo(). Since Version 5.2 it supports PATHINFO_FILENAME.

So

pathinfo(__FILE__,PATHINFO_FILENAME)

will also do what you need.

4

$argv[0]

I've found it much simpler to use $argv[0]. The name of the executing script is always the first element in the $argv array. Unlike all other methods suggested in other answers, this method does not require the use of basename() to remove the directory tree. For example:

  • echo __FILE__; returns something like /my/directory/path/my_script.php

  • echo $argv[0]; returns my_script.php\


Update:

@Martin points out that the behavior of $argv[0] changes when running CLI. The information page about $argv on php.net states,

The first argument $argv[0] is always the name that was used to run the script.

However, a comment from (at the time of this edit) six years ago states,

Sometimes $argv can be null, such as when "register-argc-argv" is set to false. In some cases I've found the variable is populated correctly when running "php-cli" instead of just "php" from the command line (or cron).

Please note that based on the grammar of the text, I expect the comment author meant to say the variable is populated incorrectly when running "php-cli." I could be putting words in the commenter's mouth, but it seems funny to say that in some cases the function occasionally behaves correctly. 😁

2
  • on CLI argV returns a full path.
    – Martin
    Feb 14 at 16:19
  • @Martin It appears $argv using CLI does have that problem. According to php.net $argv[0] should return just the script name, but a comment at the bottom of the page suggests (based on correcting its grammar), that the behavior you're seeing has been an issue for years. Thanks for pointing that out.
    – JBH
    Feb 16 at 16:40
3

This works for me, even when run inside an included PHP file, and you want the filename of the current php file running:

$currentPage= $_SERVER["SCRIPT_NAME"];
$currentPage = substr($currentPage, 1);
echo $currentPage;

Result:

index.php

3

Try This

$current_file_name = $_SERVER['PHP_SELF'];
echo $current_file_name;
2

Try this

$file = basename($_SERVER['PATH_INFO']);//Filename requested

3
  • Wouldn't $_SERVER['SCRIPT_NAME'] be a better idea in case the script is being run on a terminal as suggested by @drew-stephens in the comments above May 26, 2021 at 18:44
  • using basename will canonicalize the filename and prevent path traversal ../../ attack
    – Alvin567
    May 30, 2021 at 5:51
  • My apologies... What I meant was $file = basename($_SERVER['SCRIPT_NAME']); May 30, 2021 at 17:43
2

Although __FILE__ and $_SERVER are the best approaches but this can be an alternative in some cases:

get_included_files();

It contains the file path where you are calling it from and all other includes.

1
  • 1
    It should be clarified that the first calling script is always [0]; so if fileA.php includes fileB.php which itself calls class ClassA.php which uses this function; then all of the files above will have get_included_files()[0] === 'fileA.php' . This is a great little function for traversing includes.
    – Martin
    Feb 14 at 16:55
2

Example:

included File: config.php

<?php
  $file_name_one = basename($_SERVER['SCRIPT_FILENAME'], '.php');
  $file_name_two = basename(__FILE__, '.php');
?>

executed File: index.php

<?php
  require('config.php');
  print $file_name_one."<br>\n"; // Result: index
  print $file_name_two."<br>\n"; // Result: config
?>
1
$filename = "jquery.js.php";
$ext = pathinfo($filename, PATHINFO_EXTENSION);//will output: php
$file_basename = pathinfo($filename, PATHINFO_FILENAME);//will output: jquery.js
1

__FILE__ use examples based on localhost server results:

echo __FILE__;
// C:\LocalServer\www\templates\page.php

echo strrchr( __FILE__ , '\\' );
// \page.php

echo substr( strrchr( __FILE__ , '\\' ), 1);
// page.php

echo basename(__FILE__, '.php');
// page
1

As some said basename($_SERVER["SCRIPT_FILENAME"], '.php') and basename( __FILE__, '.php') are good ways to test this.

To me using the second was the solution for some validation instructions I was making

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