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This might be a simple one. Assume I have a program that uses argparse to process command line arguments/options. The following will print the 'help' message:

./myprogram -h


./myprogram --help

But, if I run the script without any arguments whatsoever, it doesn't do anything. What I want it to do is to display the usage message when it is called with no arguments. How is that done?

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5 Answers 5

up vote 91 down vote accepted

This answer comes from Steven Bethard on Google groups. I'm reposting it here to make it easier for people without a Google account to access.

You can override the default behavior of the error method:

import argparse
import sys

class MyParser(argparse.ArgumentParser):
    def error(self, message):
        sys.stderr.write('error: %s\n' % message)

parser.add_argument('foo', nargs='+')

Note that the above solution will print the help message whenever the error method is triggered. For example, --blah will print the help message too if --blah isn't a valid option.

If you want to print the help message only if no arguments are supplied on the command line, then perhaps this is still the easiest way:

import argparse
import sys

parser.add_argument('foo', nargs='+')
if len(sys.argv)==1:
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Yeah.. that's what I was wondering about, whether there was a way for argparse to handle this scenario. Thanks! –  musashiXXX Oct 28 '10 at 12:37
In the second solution I use parser.print_usage() in place of parser.print_help() -- the help message includes usage but it's more verbose. –  user2314737 Jul 23 at 8:29

Throwing my version into the pile here:

import argparse

parser = argparse.ArgumentParser()
args = parser.parse_args()
if not vars(args):

You may notice the parser.exit - I mainly do it like that because it saves an import line if that was the only reason for sys in the file...

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With argparse you could do:

#parser.add_args here

#sys.argv includes a list of elements starting with the program
if len(sys.argv) < 2:
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This must come before the call to parser.parse_args() –  BobStein-VisiBone Aug 28 at 14:33

Instead of writing a class, a try/except can be used instead

    options = parser.parse_args()

The upside is that the workflow is clearer and you don't need a stub class. The downside is that the first 'usage' line is printed twice.

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you can use optparse

from optparse import OptionParser, make_option
parser = OptionParser()

            help='put the help of the commandline argument')

(options, args) = parser.parse_args()

./myprogram --help

will print all the help messages for each given argument.

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-1 because optparse is deprecated. and has been being phased out for a while. –  deuberger Apr 25 '12 at 15:38
-1 for additionally not answering the OP's question - argparse already supplies a built in -h/--help argument. The OP is asking for help text to be displayed when no arguments are passed to the application. –  Tritium21 Apr 5 '14 at 20:57

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