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Let's say I have a simple program called which supports command line arguments by using Python's argparse.

The program reads from a file specified by the positional argument input. Without specifying additional arguments, this program is not very exciting. It just reads from input and exits. The optional argument --output [OUTPUT_FILE] signifies that the input file should be written to a file. OUTPUT_FILE is also optional. If it is not specified, the input should be written to default.out.

I set up my argument parser like this:

parser = argparse.ArgumentParser(description='Read from a file')
    help='file to read from')
    help="""write file to %(metavar)s. If %(metavar)s isn't
         specified, write file to %(const)s.""",
args = parser.parse_args()
return args.file, args.output_file

Note I use default=None so that if --ouput doesn't appear on the command line, I can detect its absence with None.

Which gives a usage signature like this:

usage: [-h] [--output [OUTPUT_FILE]] input

This handles arguments as expected if I run

python --output somefile.out


python --output somefile.out input

It sets output to default.out if I run

python --output

but if I run

python --output

it complains about there being too few arguments. I thought argparse would be 'smart' enough to interpret this pattern, setting input to and output to default.out. The generated usage even suggests this.

Am I missing something?

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Whoever downvoted this Q should at least leave a constructive hint in a comment. – cfi Mar 23 '13 at 16:54

2 Answers 2

up vote 4 down vote accepted

No, it will not recognize this. You are in the last example clearly passing in to --output.

I would recommend that you flip the default and the const parameters. You want the default to be default.out, so it should be default='default.out'. const can then be set to something else for the case of having an empty --output parameter.

That way you don't have to add the --output parameter unless you want to change the default, and you can use an empty --output parameter if you want to output to stdout for example.

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In this case (confusingly?) default is used for no parameter after --output and const is used for the absence of the --output parameter altogether. – eidorb Dec 14 '12 at 13:14
@eidorb: Yes, and that's backwards. Change it around. Use it as its supposed to be used. – Lennart Regebro Dec 14 '12 at 13:55
I must apologise. My comment has it back to front, but my code has it the way I intended. – eidorb Dec 14 '12 at 22:59
@eidorb: And that is backwards. Change it around. Use it as its supposed to be used. Seriously. – Lennart Regebro Dec 15 '12 at 6:50

You can pass "--" to mark the end of any options. For instance:

python --output -- input

has the intended effect. However, making the argument to --output required and allowing:

python --output - input

is probably cleaner.

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