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What is the standard practice in Python when I have a command-line application taking one argument which is

URL to a web page

or

path to a HTML file somewhere on disk

(only one)

is sufficient the code?

if "http://" in sys.argv[1]:
  print "URL"
else:
  print "path to file"
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3 Answers 3

up vote 4 down vote accepted

Depends on what the program must do. If it just prints whether it got a URL, sys.argv[1].startswith('http://') might do. If you must actually use the URL for something useful, do

from urllib2 import urlopen

try:
    f = urlopen(sys.argv[1])
except ValueError:  # invalid URL
    f = open(sys.argv[1])
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The open() throws exception as well. –  rplnt Oct 21 '11 at 13:33
    
Don't forget except IndexError: as the user might not specify an argument, which will throw an index error. Or am I wrong? –  Griffin Oct 21 '11 at 13:55
    
@Griffin: I've considered that a separate problem for the purpose of this answer. –  larsmans Oct 21 '11 at 15:04
    
@rplnt: yes, and the OP might or might not want to check for IOError. I'm just showing how urlopen and open may be combined, not how to tackle the larger problem. This snippet is enough for writing a generic open_url_or_file function that simply re-raises what it gets from open. –  larsmans Oct 21 '11 at 15:05
    
@larsmans That may be, but from the looks of it the OP doesn't know how to use exception handlers. I don't see any reason not to include it since it won't work if an argument isn't specified. –  Griffin Oct 21 '11 at 15:06
import urlparse

def is_url(url):
    return urlparse.urlparse(url).scheme != ""
is_url(sys.argv[1])
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Larsmans might work, but it doesn't check whether the user actually specified an argument or not.

import urllib
import sys

try:
    arg = sys.argv[1]
except IndexError:
    print "Usage: "+sys.argv[0]+" file/URL"
    sys.exit(1)

try:
    site = urllib.urlopen(arg)
except ValueError:
    file = open(arg)
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