39

I want to get filename without any $_GET variable values from a url in php?

My url is http://learner.com/learningphp.php?lid=1348

I only want to retrieve the learningphp.php from the url?

How to do this? Please help.

I used basename but it gives all the variable values also- learntolearn.php?lid=1348 which are in the url.

10 Answers 10

61

This should work:

echo basename($_SERVER['REQUEST_URI'], '?' . $_SERVER['QUERY_STRING']);

But beware of any malicious parts in your URL.

  • 2
    Okay, but the question mark is still output. This works fine for me: echo basename($_SERVER['REQUEST_URI'], '?'.$_SERVER['QUERY_STRING']);. – ComFreek Oct 21 '11 at 16:40
  • Thanks, I was unsure whether the question mark was included or not in QUERY_STRING. Now the solution works. – str Oct 21 '11 at 16:42
  • 1
    But not for this URL: http://www.example.com/path/script.php/test/?arg1=val1 ;) – ComFreek Oct 21 '11 at 16:43
  • @str Thanx a lot. You saved my day. – Learner Feb 16 '13 at 9:18
25

Following steps shows total information about how to get file, file with extension, file without extension. This technique is very helpful for me. Hope it will be helpful to you too.

  $url = 'https://www.google.com/images/branding/googlelogo/2x/googlelogo_color_120x44dp.png';
        $file = file_get_contents($url); // to get file
        $name = basename($url); // to get file name
        $ext = pathinfo($url, PATHINFO_EXTENSION); // to get extension
        $name2 =pathinfo($url, PATHINFO_FILENAME); //file name without extension
19

Use parse_url() as Pekka said:

<?php
$url = 'http://www.example.com/search.php?arg1=arg2';

$parts = parse_url($url);

$str = $parts['scheme'].'://'.$parts['host'].$parts['path'];

echo $str;
?>

http://codepad.org/NBBf4yTB

In this example the optional username and password aren't output!

  • sir, how do i get the whole url into the $url? – sqlchild Oct 21 '11 at 17:00
  • 1
    If you want to use the called URL: $url = $_SERVER['REQUEST_URI']; – ComFreek Oct 21 '11 at 17:01
  • but this won't give the 'http' in the $parts['scheme'] – sqlchild Oct 21 '11 at 17:09
  • Parse the url http://example.com/this/is/a/directory/path/file.php?bla=1 You won't get the file name file.php, but the full path – Steve Horvath Jul 5 at 4:25
14

Is better to use parse_url to retrieve only the path, and then getting only the filename with the basename. This way we also avoid query parameters.

<?php

// url to inspect
$url = 'http://www.example.com/image.jpg?q=6574&t=987';

// parsed path
$path = parse_url($url, PHP_URL_PATH);

// extracted basename
echo basename($path);

?>

Is somewhat similar to Sultan answer excepting that I'm using component parse_url parameter, to obtain only the path.

5

You can use,

$directoryURI =basename($_SERVER['SCRIPT_NAME']);

echo $directoryURI;
3

An other way to get only the filename without querystring is by using parse_url and basename functions :

$parts = parse_url("http://example.com/foo/bar/baz/file.php?a=b&c=d");
$filename = basename($parts["path"]); // this will return 'file.php'
  • this turns into 98f3da9ae1c4dd972785fde37d21d3a9.jpg__ why the __ at the end ? edit: I used trim and fixed it – Jaxx0rr Nov 22 '18 at 3:37
3

Try the following code:

For PHP 5.4.0 and above:

$filename = basename(parse_url('http://learner.com/learningphp.php?lid=1348')['path']);

For PHP Version < 5.4.0

$parsed = parse_url('http://learner.com/learningphp.php?lid=1348');
$filename = basename($parsed['path']);
  • 1
    Answer is the same as CROZET's one. – userlond Oct 18 '18 at 1:40
1
$url = "learner.com/learningphp.php?lid=1348";
$l = parse_url($url);
print_r(stristr($l['path'], "/"));
1
$filename = pathinfo( parse_url( $url, PHP_URL_PATH ), PATHINFO_FILENAME ); 

Use parse_url to extract the path from the URL, then pathinfo returns the filename from the path

  • please format your answer appropriately (use backticks for inline code and 4-space indentation for blocks of code) – YakovL Oct 13 '16 at 20:41
0

Use this function:

function getScriptName()
{
    $filename = baseName($_SERVER['REQUEST_URI']);
    $ipos = strpos($filename, "?");
    if ( !($ipos === false) )   $filename = substr($filename, 0, $ipos);
    return $filename;
}

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