12

I have the following python code:

def split_arg(argv):
    buildDescriptor = argv[1]
    buildfile, target = buildDescriptor.split("#")

    return buildfile, target

It expects a string (argv[1]) of the form buildfile#target and splits them into two variables of the same name. So a string like "my-buildfile#some-target" will get broken into my-buildfile and some-target respectively.

Sometimes though, there won't be "#" and target; sometimes you'll just have "my-buildfile", in which case I just want target to be "" (empty).

How do I modify this function so that it will handle instances where "#" doesn't exist and it returns buildfile with an empty target?

Currently, if I pass just the buildfile, it throws an error:

buildfile, target = buildDescriptor.split("#")
ValueError: need more than 1 value to unpack

Thanks in advance!

  • Use duck typing, try to do what you want and catch exceptions. – Paulo Scardine Oct 14 '12 at 23:14
  • Thanks for the suggestion, but what is duck typing? – IAmYourFaja Oct 14 '12 at 23:16
  • duck typing is one of the programming techniques most suited for Python programs, just google for "python duck typing". – Paulo Scardine Oct 15 '12 at 13:40
8

First, put the result of the split in a list:

split_build_descriptor = buildDescriptor.split("#")

Then check how many elements it has:

if len(split_build_descriptor) == 1:
    buildfile = split_build_descriptor[0]
    target = ''
elif len(split_build_descriptor) == 2:
    buildfile, target = split_build_descriptor
else:
    pass  # handle error; there's two #s
15

I'd use the obvious approach:

    buildfile, target = buildDescriptor.split("#") if \
                        "#" in buildDescriptor else \
                        (buildDescriptor, "")

Note that this will also throw an Exception when there is more than one "#" in buildDescriptor (which is generally a GOOD thing!)

4
>>> buildfile, _, target = "hello#world".partition("#")
>>> buildfile, target
('hello', 'world')
>>> buildfile, _, target = "hello".partition("#")
>>> buildfile, target
('hello', '')
  • +1, .partition() seems really elegant here (except for the dummy var), but it might behave strange (unnoticed) when there is more than one "#". – ch3ka Oct 15 '12 at 1:43
0

You can do this in Python 3:

input_string = 'this is a test'
delimiter = '#'

slots = input_string.split(delimiter)
if slots[0] == input_string:
  print('no %s found' % delimiter)
else:
  print('%s found right after \"%s\"' % (delimiter, slots[0]))

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