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I have an argument for input file and its easy to handle it with argparse

parser.add_argument( '-al', nargs = 1, type = argparse.FileType( 'r' ),
                     dest = 'alphabet' )

This parameter is optional but if it is omitted I still need to get this input file by searching current directory. And if there is more than one or none file with .al extensions I will raise the error, otherwise open file I found.

#if no alphabet look for .al file in current directory
if( args.alphabet == None ):
    AlFiles = [ f for f in os.listdir( '.' ) 
                if os.path.isfile( f ) and f.endswith( '.al' ) ]

    #there should be one file with .al extension
    if( len( AlFiles ) != 1 ):
            sys.exit( 'error: no alphabet file provided and '
                    'there are more than one or no .al file in current directory, '
                    'which leads to ambiguity' )

    args.alphabet = open( AlFiles[0], 'r' )

Is there anyway to perform this with argparse, with default or action parameters maybe. If I do the search before parsing arguments and there are an exception situation I still can not raise it because needed file may be provided by command line arguments. I thought of performing action if parser did not meet needed parameter, but can not find out how to do it with argparse.

share|improve this question
up vote 0 down vote accepted

You can fix that by setting the default attribute for the argument.

parser = argparse.ArgumentParser()
parser.add_argument('-al',
                    type = argparse.FileType('r'),
                    default = [ f for f in os.listdir( '.' )
                                if os.path.isfile( f ) and f.endswith( '.al' )],
                    dest = 'alphabet' )

And afterwards do your checking. That way you only have one function checking if there are more than one or none *.al files whether the argument was omitted or not.

This could, for example, be accomplished by something like this:

args =  parser.parse_args()
if isinstance(args.alphabet,types.ListType):
    if len(args.alphabet) != 1:
        parser.error("There must be exactly one alphabet in the directory")
    else:
        args.alphabet = open(args.alphabet[0])

This way args.alphabet will hold an open file if there was a alphabet file specified or there is only one alphabet file in the current working directory, but will raise an error if there are more or none in the cwd.

Note: Because we get a list if the -al argument is omitted, argparse.FileType('r') will not open any file. You also have to omit nargs=1 since that would create a list containing the one opened file, the user specified in the -al argument. Omitting this attribute will give us the raw open file, the user specified.

EDIT: You will have to import types.

share|improve this answer
    
So after parsing i just checking args.alphabet for size? And if there are several files they all will be open? – Yaroslav Kishchenko Aug 16 '13 at 14:21
    
As I understand your question, you only want to open a file if it is the only *.al file in the directory. Check my edit for a solution attempt. – angryfruitsalad Aug 16 '13 at 14:30
    
yah I got your answer, just in add_arguments type is FileType that means that all files are open automaticly At least you should not reopen it again args.alphabet = open(args.alphabet[0]) And if several files open would they be close if we raise the error? – Yaroslav Kishchenko Aug 16 '13 at 14:43
    
You are right, I missed that. What do you exactly want to parse with the -al argument? The name of the .al file or the directory containing it? – angryfruitsalad Aug 16 '13 at 14:49
    
I just want open one file thats all – Yaroslav Kishchenko Aug 16 '13 at 14:52

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