Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

i write a script that takes one or more input files. I want to be able to specify options for the script (A and B) and for each of the input files separately (C and D).

Usage should look like:

script.py [-A] [-B]  [-C] [-D] file1 [[-C] [-D] file2] ...

How can it be done with argparse?

Thank you!

share|improve this question
    
Do you know how many input files you will have? –  mgilson Nov 2 '12 at 17:39
    
One or more :)) –  Roux Nov 4 '12 at 11:10

5 Answers 5

If possible try docopt. It is much easier to use and has enough examples to get started.

share|improve this answer
    
Thanks! Impressive approach. However, my script is supposed to work at several computers with quite ancient python installed. So, unfortunately, standard solutions are preferred to elegant those... –  Roux Nov 4 '12 at 11:09

I've wanted to do this for a while, but never dreamt up a use case. You've found one: thank you!

You can do this with two-stages of argparsing. In the first stage, you only look for -A or -B options.

In the second stage, you split up the remaining arguments into fragments (in this case using a generator function) and call parse_args on the fragments:

import argparse

def fileargs(args):
    result = []
    for arg in args:
        result.append(arg)
        if not arg.startswith('-'):
            yield result
            result = []

parser = argparse.ArgumentParser()
parser.add_argument('-A', action = 'store_true')
parser.add_argument('-B', action = 'store_true')
args, unk = parser.parse_known_args()
print(args)

file_parser = argparse.ArgumentParser()
file_parser.add_argument('-C', action = 'store_true')
file_parser.add_argument('-D', action = 'store_true')
file_parser.add_argument('file')
for filearg in fileargs(unk):
    fargs = file_parser.parse_args(filearg)
    print(fargs)

then test.py -A -B -C -D file1 -C file2 yields

Namespace(A=True, B=True)
Namespace(C=True, D=True, file='file1')
Namespace(C=True, D=False, file='file2')
share|improve this answer
    
Thank you! Clear, simple and exactly addresses the asked question. Indeed i needed also to use option arguments for files, but that somehow dropped out from the questions formulation. Sorry. Please see also my answer, that was found after trying your code... –  Roux Nov 4 '12 at 10:52

My, this answer is convoluted:

import sys

#Unforunately, you can't split up positional arguments in a reasonable way if you
#don't know about all of them...  Count positional arguments (files)

def how_many_files(lst):
    return sum(1 for x in lst if not x.startswith('-'))

args = sys.argv[1:]
Nfiles = how_many_files(args)

import argparse

#Create our own NameSpace class so that we can have an easy handle on the
#attributes that the namespace actually holds.
class MyNameSpace(argparse.Namespace,dict):
    def __init__(self):
        argparse.Namespace.__init__(self)
        dict.__init__(self)

    def __setattr__(self,k,o):
        argparse.Namespace.__setattr__(self,k,o)
        self[k] = o

class MyParser(argparse.ArgumentParser):
    def __init__(self,*args,**kwargs):
        self.my_parents = kwargs.get('parents',[])
        argparse.ArgumentParser.__init__(self,*args,**kwargs)

class FooAction(argparse.Action):
    def __call__(self,parser,namespace,value,option_string=None):
        ref = namespace.pop('accumulated',{})
        try:
            del namespace.accumulated
        except AttributeError:
            pass

        #get a new namespace and populate it with the arguments we've picked up
        #along the way        
        new_namespace = self.__default_namespace(parser)
        for k,v in namespace.items():
            setattr(new_namespace,k,v)
            delattr(namespace,k)  #delete things from `namespace.__dict__`

        namespace.clear() #also remove things from the dictionary side.
        namespace.accumulated = ref
        new_namespace.file = value
        ref[value] = new_namespace

    def __default_namespace(self,parser):
        n = argparse.Namespace()
        for parent in parser.my_parents:
            parent.parse_args([],namespace=n)
        return n


parser = argparse.ArgumentParser()
parser.add_argument('-A',action='store_true')
parser.add_argument('-B',action='store_true')
parser.add_argument('-C',action='store_true')
parser.add_argument('-D',action='store_true')


parser2 = MyParser(parents=[parser],conflict_handler='resolve')
for i in range(Nfiles):
    parser2.add_argument('files%d'%i,action=FooAction,default=argparse.SUPPRESS)


n = parser2.parse_args(args,namespace = MyNameSpace())
for k,v in n.accumulated.items():
    print k,v

Calling this with:

~ $ python test.py -A foo bar -A -B -C qux

yields:

qux Namespace(A=True, B=True, C=True, D=False, file='qux')
foo Namespace(A=True, B=False, C=False, D=False, file='foo')
bar Namespace(A=False, B=False, C=False, D=False, file='bar')
share|improve this answer
up vote 1 down vote accepted

As usually, the question appeared to be not exactly what is needed.. Sorry. Here is my working result (inspired by unutbu's answer) that allows also per-file options with arguments.

import argparse

parser = argparse.ArgumentParser()
parser.add_argument('-A', action = 'store_true')
parser.add_argument('-B', action = 'store_true')
args, unk = parser.parse_known_args()

file_parser = argparse.ArgumentParser()
file_parser.add_argument('-C', action = 'store_true')
file_parser.add_argument('-D', action = 'store_true')
file_parser.add_argument('-V', "--variable-list")
file_parser.add_argument('file')

fargs=[]
n=len(unk)
while True:
        i=0
        for i in  range(n): # finding longest fully parsable tail
            Parsed, unkf = file_parser.parse_known_args(unk[i:n])
            if not unkf: break
        if i==n: # did not found parsable tail
            file_parser.parse_args(unk[0:n]) # cause error 
        else:
            fargs.append(Parsed)
            n=i
        if (n<=0): break
fargs.reverse()

print args
for argl in fargs:
        print argl

Calling this with:

myscript.py -A -B -C -D file1 -C -V a,b,c file

yields:

Namespace(A=True, B=True)
Namespace(C=True, D=True, file='file1', variable_list=None)
Namespace(C=True, D=False, file='file2', variable_list='a,b,c')
share|improve this answer
    
Now, the only trouble is how to arrange reasonable usage and help messages.... –  Roux Nov 4 '12 at 11:01

The action=append option will probably help. This will let you specify an option multiple times and all arguments with a specific option will be stored in their respective lists.

... here's a example, lets call it sample.py:

if __name__ == '__main__':
    parser = argparse.ArgumentParser()
    parser.add_argument("-c", "--cfilein", action="append")
    parser.add_argument("-d", "--dfilein", action="append")
    args = parser.parse_args()
    print args.cfilein
    print args.dfilein

Execute: ./sample.py -c f1 -d f2 -c f3 -d f4
Output:  ['f1', 'f3']
         ['f2', 'f4']

Check out: http://docs.python.org/2/library/argparse.html#action ... Hope this helps ...

share|improve this answer
    
with custom actions, something like this could be made to work pretty easily, but it forces you to specify an unnecessary -f before each file. –  mgilson Nov 2 '12 at 18:59

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.