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With python's argparse, how do I make a subcommand a required argument? I want to do this because I want argparse to error out if a subcommand is not specified. I override the error method to print help instead. I have 3-deep nested subcommands, so it's not a matter of simply handling zero arguments at the top level.

In the following example, if this is called like so, I get:

$./simple.py
$

What I want it to do instead is for argparse to complain that the required subcommand was not specified:

import argparse

class MyArgumentParser(argparse.ArgumentParser):
    def error(self, message):
        self.print_help(sys.stderr)
        self.exit(0, '%s: error: %s\n' % (self.prog, message))

def main():
    parser = MyArgumentParser(description='Simple example')
    subs = parser.add_subparsers()
    sub_one = subs.add_parser('one', help='does something')
    sub_two = subs.add_parser('two', help='does something else')

    parser.parse_args()

if __name__ == '__main__':
    main()
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3 Answers 3

up vote 4 down vote accepted

There was a change in 3.3 in the error message for required arguments, and subcommands got lost in the dust.

http://bugs.python.org/issue9253#msg186387

There I suggest this work around, setting the required attribute after the subparsers is defined.

parser = ArgumentParser(prog='test')
subparsers = parser.add_subparsers()
subparsers.required = True
subparsers.dest = 'command'
subparser = subparsers.add_parser("foo", help="run foo")
parser.parse_args()
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Excellent, that's what I needed. Works great now, and I'll watch out for the bug fix. –  redstreet Aug 17 '13 at 0:05

How about using required=True? More info here.

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1  
It isn't supported by the add_subparsers() method: TypeError: __init__() got an unexpected keyword argument 'required' –  Bakuriu Aug 16 '13 at 21:37
    
Ah, right you are. My bad. –  Joseph Dunn Aug 16 '13 at 21:43

You can use the dest argument, which is documented in the last example in the documentation for add_subparsers():

# required_subparser.py
import argparse

parser = argparse.ArgumentParser()
subparsers = parser.add_subparsers(dest='subparser_name')
one = subparsers.add_parser('one')
two = subparsers.add_parser('two')

args = parser.parse_args()

Running:

$python required_subparser.py 
usage: required_subparser.py [-h] {one,two} ...
required_subparser.py: error: too few arguments
$python required_subparser.py one
$# no error
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Not sure if I'm missing something here, but I don't get the "usage:" message when running your example. I get back to the prompt with no output with or without an argument. I'm using python 3.3.2 and the argparse that came along with it. –  redstreet Aug 16 '13 at 22:10
    
@redstreet You didn't mention you were using python3.3 and I tested it using the system python executable, which is python 2.7. Indeed with python3.3 you don't get the messages. –  Bakuriu Aug 17 '13 at 7:58
    
Yes, because I didn't expect this to be due to a bug (which made it dependent on the version!). Thank you for the answer and for trying it on 2.7! –  redstreet Aug 17 '13 at 8:18

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