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I have been trying to do this:

$handle = popen('php -q nah.php?part='. $part . ' 2>&1', 'r');
while (!feof($handle))
{
    $read = fread($handle, 2096);
    echo $read;
}
pclose($handle);

What i want to do is i want to pass some values to the file nah.php but When i try it this way i get an error this :

Could not open input file: nah.php?part=say:

How can i do this ?

And yea i am using all this php-cli

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2 Answers 2

up vote 3 down vote accepted

Used in command-line, PHP doesn't take GET arguments but command-line arguments, for example:

php -q nah.php -p='name of part'

You can then get the value of these arguments using getopt():

$options = getopt("p:");
$part = $options["p"];
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your link to getopt() was pointing to the French translation. I've edited it to the English version. But +1 for the good answer. –  Spudley Jul 16 '11 at 17:18
    
And how would the nah.php look in the 2nd case ? –  kritya Jul 16 '11 at 17:24
    
@Spudley: Thanks! As a French-speaker, I just didn't think about it. –  Mathieu Rodic Jul 16 '11 at 17:24
    
@kritya: What do you mean, 2nd case? –  Mathieu Rodic Jul 16 '11 at 17:26
    
With the getopt() how will i get what is passed will it be also in $arg ? –  kritya Jul 16 '11 at 17:30

You're trying to run PHP from the command line, but passing URL type arguments to it.

URL arguments do not work in the command line context; they're being treated as part of the file name.

Arguments need to be passed in as per any other CLI program, as space separated strings.

Inside your PHP program, you also won't get anything in $_GET or $_REQUEST. To process CLI arguments, you need to read them from STDIN.

See here for more info on how to do that: http://www.php.net/manual/en/features.commandline.php#81470

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