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Say we usually access via

http://localhost/index.php?a=1&b=2&c=3

How do we execute the same in linux command prompt?

php -e index.php

But what about passing the $_GET variables? Maybe something like php -e index.php --a 1 --b 2 --c 3? Doubt that'll work.

Thank you!

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9 Answers 9

up vote 52 down vote accepted

Typically, for passing arguments to a command line script, you will use either argv global variable or getopt:

// bash command:
//   php -e myscript.php hello
echo $argv[1]; // prints hello

// bash command:
//   php -e myscript.php -f=world
$opts = getopt('f:');
echo $opts['f']; // prints world

$_GET refers to the HTTP GET method parameters, which are unavailable in command line, since they require a web server to populate.

If you really want to populate $_GET anyway, you can do this:

// bash command:
//   export QUERY_STRING="var=value&arg=value" ; php -e myscript.php
parse_str($_SERVER['QUERY_STRING'], $_GET);
print_r($_GET);
/* outputs:
     Array(
        [var] => value
        [arg] => value
     )
*/

You can also execute a given script, populate $_GET from the command line, without having to modify said script:

export QUERY_STRING="var=value&arg=value" ; \
php -e -r 'parse_str($_SERVER["QUERY_STRING"], $_GET); include "index.php";'

Note that you can do the same with $_POST and $_COOKIE as well.

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It's worth noting that, on our Centos 6 machine running PHP 5.3, calling php [script name] "a=1&b=2&c=3" will not populate the $_SERVER['QUERY_STRING'], but you can easily affect the same thing by referencing $_SERVER['argv'][1]. –  Eirik Jul 31 '13 at 14:31
1  
Try this answer to populate the query string from the command line without modifying the PHP script. –  qris Jan 27 at 13:53
    
This is not the best answer. See this other answer on this page: stackoverflow.com/a/11965479/543738 –  L S Dec 5 at 17:40

From this answer on ServerFault:

Use the php-cgi binary instead of just php, and pass the arguments on the command line, like this:

php-cgi -f index.php left=1058 right=1067 class=A language=English

Which puts this in $_GET:

Array
(
    [left] => 1058
    [right] => 1067
    [class] => A
    [language] => English
)

You can also set environment variables that would be set by the web server, like this:

REQUEST_URI='/index.php' SCRIPT_NAME='/index.php' php-cgi -f index.php left=1058 right=1067 class=A language=English
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12  
I don't know why this doesn't have any up votes. Easiest solution! –  Twitchy Oct 1 '12 at 11:07
7  
+1 and +1: This answer should have been the accepted answer. Much less hassle! No need to change the php source. –  micha Jan 7 '13 at 14:34
2  
Excellent, this could be easily wrapped in any OS-dependent script. –  Sebastian Jun 12 '13 at 0:43
2  
+1 - by far the easiest solution. –  Parkyprg Oct 2 '13 at 8:27
2  
+1, awesome solution, I'm currently backporting all my CLI scripts to support this now ;) –  ehime Dec 26 '13 at 22:04

Try using WGET:

WGET 'http://localhost/index.php?a=1&b=2&c=3'
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1  
You'd want to enclose the URL in single quotes, as the ? and & in the query portion are shell metacharacters (single char wildcard + "run this command in the background"). –  Marc B Nov 15 '10 at 16:26
    
@Marc B: Thanks for the hint; I've updated the command –  Giu Nov 15 '10 at 16:28
3  
This will work, but requires a running web server, and makes the whole process a tad bit more inefficient than is required. –  Brad Nov 15 '10 at 16:41
    
It does, but typically $_GET implies a running webserver. –  quickshiftin Sep 30 at 14:54

I don't have a php-cgi binary on Ubuntu, so I did this:

% alias php-cgi="php -r '"'parse_str(implode("&", array_slice($argv, 2)), $_GET); include($argv[1]);'"' --"
% php-cgi test1.php foo=123
<html>
You set foo to 123.
</html>

%cat test1.php
<html>You set foo to <?php print $_GET['foo']?>.</html>
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Nice compromise, +1 –  ehime Dec 26 '13 at 22:02
php file_name.php var1 var2 varN

...Then set your $_GET variables on your first line in PHP, although this is not the desired way of setting a $_GET variable and you may experience problems depending on what you do later with that variable.

if(isset($argv[1]) {
   $_GET['variable_name'] = $argv[1];

the variables you launch the script with will be accessible from the $argv array in your php app. the first entry will the name of the script they came from, so you may want to do an array_shift($argv) to drop that first entry if you want to process a bunch of variables.

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I just pass them like this:

php5 script.php param1=blabla param2=yadayada

works just fine, the $_GET array is:

array(3) {
  ["script_php"]=>
  string(0) ""
  ["param1"]=>
  string(6) "blabla"
  ["param2"]=>
  string(8) "yadayada"
}
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just found out this works on my hosting server, but not on my local server, freaky. –  Asaf Jun 6 '12 at 10:19
    
Maybe a difference in the installed version? Which version did this work for you on, and which did it fail? –  Kzqai Jun 12 '12 at 19:20
    
php 5.2 on hosting, works, 5.3 locally doesn't... doesn't matter I did it the $argv way just in case the $_GET is empty –  Asaf Jun 13 '12 at 12:00
    
This works for the CGI version/variant, but not CLI. –  blueyed Jan 15 '13 at 17:10

If you need to pass $_GET, $_REQUEST, $_POST, or anything else you can also use PHP interactive mode:

php -a

Then type:

<?php
$_GET['a']=1;
$_POST['b']=2;
include("/somefolder/some_file_path.php");

This will manually set any variables you want and then run your php file with those variables set.

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or just (if you have LYNX):

lynx 'http://localhost/index.php?a=1&b=2&c=3'
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2  
This does not run PHP from the command line. This runs a browser which invokes the web server through the command line. –  Andrea Lazzarotto Aug 27 at 10:43

php -r 'parse_str($argv[2],$_GET);include $argv[1];' index.php 'a=1&b=2'

You could make the first part as an alias:

alias php-get='php -r '\''parse_str($argv[2],$_GET);include $argv[1];'\'

then simply use:

php-get some_script.php 'a=1&b=2&c=3'

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