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I have a string from which I would like to extract certain part. The string looks like :

 E:/test/my_code/content/dir/disp_temp_2.hgx

This is a path on a machine for a specific file with extension hgx

I would exactly like to capture "disp_temp_2". The problem is that I used strip function, does not work for me correctly as there are many '/'. Another problem is that, that the above location will change always on the computer.

Is there any method so that I can capture the exact string between the last '/' and '.'

My code looks like:

path = path.split('.')

.. now I cannot split based on the last '/'.

Any ideas how to do this?

Thanks

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up vote 6 down vote accepted

Use the os.path module:

import os.path
filename = "E:/test/my_code/content/dir/disp_temp_2.hgx"
name = os.path.basename(filename).split('.')[0]
share|improve this answer
    
-1: Doesn't work when the file has multiple dots. – phant0m Jun 23 '11 at 14:14
    
Depends on what the user wants. The code above will turn something like foo.tar.gz into foo. This seems like the desired behavior. If someone has multiple dots in a filename like my.cool.file.txt then the convention becomes ambiguous and cannot be parsed without domain specific knowledge. – jfocht Jun 23 '11 at 14:23
    
Hmm... that's a good point, but what about foo.bar.tar.gz? – phant0m Jun 23 '11 at 14:45
    
Thanks this works perfect for me. The file name that we has always one dot. That is before the extension. – user741592 Jun 27 '11 at 8:27

Python comes with the os.path module, which gives you much better tools for handling paths and filenames:

>>> import os.path
>>> p = "E:/test/my_code/content/dir/disp_temp_2.hgx"
>>> head, tail = os.path.split(p)
>>> tail
'disp_temp_2.hgx'
>>> os.path.splitext(tail)
('disp_temp_2', '.hgx')
share|improve this answer

Standard libs are cool:

>>> from os import path
>>> f = "E:/test/my_code/content/dir/disp_temp_2.hgx"
>>> path.split(f)[1].rsplit('.', 1)[0]
'disp_temp_2'
share|improve this answer

Try this:

path=path.rsplit('/',1)[1].split('.')[0]
share|improve this answer

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

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You can use the split on the other part :

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