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How do I add an optional flag to my command line args?

eg. so I can write

python myprog.py 

or

python myprog.py -w

I tried

parser.add_argument('-w')

But I just get an error message saying

Usage [-w W]
error: argument -w: expected one argument

which I take it means that it wants an argument value for the -w option. What's the way of just accepting a flag?

I'm finding http://docs.python.org/library/argparse.html rather opaque on this question.

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1  
If you just want 1 flag to your script, sys.argv would be a whole lot easier. Unless your specifically trying to learn argparse, which is a good because its a handy module to know. – chown Nov 24 '11 at 15:08
4  
Amazing you're required to read chapters of information when all you want is a simple switch. – Martin Konecny Aug 28 '13 at 13:01
up vote 125 down vote accepted

As you have it, the argument w is expecting a value after -w on the command line. If you are just looking to flip a switch by setting a variable True or False, have a look at http://docs.python.org/dev/library/argparse.html#action (specifically store_true and store_false)

parser.add_argument('-w', action='store_true')

Edit: As Sven points out, a default value in this case is superfluous.

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22  
default=False is implied by action='store_true'. – Sven Marnach Nov 24 '11 at 15:04
1  
Ah, didn't realise it defaulted to the opposite of action if not present. Thanks. – Jdog Nov 24 '11 at 15:08
    
@Jdog, Any idea of why this doesn't work for me? The w is always False. – Iulian Onofrei Apr 12 '15 at 21:27

Adding a quick snippet to have it ready to execute:

Source: myparser.py

import argparse
parser = argparse.ArgumentParser(description="Flip a switch by setting a flag")
parser.add_argument('-w', action='store_true')

args = parser.parse_args()
print args.w

Usage:

python myparser.py -w
>> True
share|improve this answer

Here's a quick way to do it, won't require anything besides sys.. though functionality is limited:

flag = "--flag" in sys.argv

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