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I'm sorry if this topic already exists, but I couldn't find one answering the specific question I have.

When you run a PHP script through a browser it looks something like

http://somewebsite.com/yourscript?param1=val1&param2=val2.

I am trying to achieve the same thing via command line without having to rewrite the script to accept argv instead of $_REQUEST. Is there a way to do something like this:

php yourscript.php?param1=val1&param2=val2 

such that the parameters you send show up in the $_REQUEST variable?

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migrated from superuser.com Jul 7 '13 at 14:37

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2 Answers 2

up vote 2 down vote accepted

No, there is no easy way to achieve that. The web server will split up the request string and pass it into the PHP interpreter, who will then store it in the $_REQUEST array.

If you run from the command line and you want to accept similar parameters, you'll have to parse them yourself. The command line has completely different syntax for passing parameters than HTTP has. You might want to look into getopt.

For a brute force approach that doesn't take user error into account, you can try this snippet:

<?php
foreach( $argv as $argument ) {
        if( $argument == $argv[ 0 ] ) continue;

        $pair = explode( "=", $argument );
        $variableName = substr( $pair[ 0 ], 2 );
        $variableValue = $pair[ 1 ];
        echo $variableName . " = " . $variableValue . "\n";
        // Optionally store the variable in $_REQUEST
        $_REQUEST[ $variableName ] = $variableValue;
}

Use it like this:

$ php test.php --param1=val1 --param2=val2
param1 = val1
param2 = val2
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Thanks, I ended up doing something like that and it works well. –  emilyk Jun 20 '13 at 18:28

In case you don't want to modify running script, you can specify parameters using in -B parameter. But in this case you must also add -F tag:

php -B "$_REQUEST = array('param1' => 'val1', 'param2' => 'val2');" -F yourscript.php
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