Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

I have got the complete path of files in a list like this:

a = ['home/robert/Documents/Workspace/datafile.xlsx', 'home/robert/Documents/Workspace/datafile2.xls', 'home/robert/Documents/Workspace/datafile3.xlsx']

what I want is to get just the file NAMES without their extensions, like:

b = ['datafile', 'datafile2', 'datafile3']

What I have tried is:

xfn = re.compile(r'(\.xls)+')
for name in a:
    fp, fb = os.path.split(fp)
    ofn = xfn.sub('', name)
    b.append(ofn)

But it results in:

b = ['datafilex', 'datafile2', 'datafile3x']
share|improve this question
    
use str.replace() for this. it is much, much faster – Amelia Apr 6 '13 at 10:05
2  
Do you have to use regexes at all? os.path.splitext removes the extension... – Ben Apr 6 '13 at 10:07
up vote 22 down vote accepted
  1. The regex you've used is wrong. (\.xls)+ matches strings of the form .xls, .xls.xls, etc. This is why there is a remaining x in the .xlsx items. What you want is \.xls.*, i.e. a .xls followed by zero or more of any characters.

  2. You don't really need to use regex. There are specialized methods in os.path that deals with this: basename and splitext.

    >>> import os.path
    >>> os.path.basename('home/robert/Documents/Workspace/datafile.xlsx')
    'datafile.xlsx'
    >>> os.path.splitext(os.path.basename('home/robert/Documents/Workspace/datafile.xlsx'))[0]
    'datafile'
    

    so, assuming you don't really care about the .xls/.xlsx suffix, your code can be as simple as:

    >>> a = ['home/robert/Documents/Workspace/datafile.xlsx', 'home/robert/Documents/Workspace/datafile2.xls', 'home/robert/Documents/Workspace/datafile3.xlsx']
    >>> [os.path.splitext(os.path.basename(fn))[0] for fn in a]
    ['datafile', 'datafile2', 'datafile3']
    

    (also note the list comprehension.)

share|improve this answer
    
+1 for both correcting OP's incorrect approach and for providing a better solution to the problem – dgraziotin Apr 6 '13 at 10:16

Oneliner:

>>> filename = 'file.ext'
>>> '.'.join(filename.split('.')[:-1]) if '.' in filename else filename
'file'
share|improve this answer

Why not just use the split method?

def get_filename(path):
    """ Gets a filename (without extension) from a provided path """

    filename = path.split('/')[-1].split('.')[0]
    return filename


>>> path = '/home/robert/Documents/Workspace/datafile.xlsx'
>>> filename = get_filename(path)
>>> filename
'datafile'
share|improve this answer
1  
get_filename('/path/to/some/file.tar.bz2') == 'file' - should be file.tar – Paulo Scardine Apr 6 '13 at 12:19

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.