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Editorial Team
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Asked: 2026-05-27T16:08:34+00:00

I have a PHP script that takes to command line arguments. I want the

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I have a PHP script that takes to command line arguments. I want the user to type the name of the program with no arguments:

$ ./foo.php

and I want it to output something like:

usage: $ ./foo arg1 arg2 where arg1 is something and arg2 is something else

Is there a standard way of doing this?

Many thanks :).

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1 Answer

  1. Editorial Team

    Just output it. 

    if (count($_SERVER['argv']) <= 1) {
  echo 'Usage: $ ' . $_SERVER['argv'][0] . ' arg1 arg2 where arg1 is something and arg2 is something else' . PHP_EOL;
}

    $_SERVER['argv'] contains all arguments from the command line and especially the first item is always the scriptname.

    See “reserved variables: $argv” and “reserved variables: $_SERVER”. Note, that $argv is no available in any case, thus I recommend using $_SERVER['argv']

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