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ls 
[cc]a.txt bba.txt [cc]b.txt bbb.txt

ipython

glob.glob("[cc]*")
[]
glob.glob("bb*")
['bba.txt','bbb.txt']
glob.glob("[bb]*")
['bba.txt','bbb.txt']

How can get [cc]a.txt and [cc]b.txt match ? The char [ in the [bb]* seem to make no sense . use like :

glob.glob("\[cc\]*")
[]

also is NULL

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2 Answers 2

up vote 5 down vote accepted

enclose [ and ] in [].

bash:

test $ ls
[cc]a.txt test.dat  test.gp   test.py

python:

>>> glob.glob(r'[[]cc[]]*.txt') #yuck ...
['[cc]a.txt']

In terms of globbing, [ something] means match any of the characters between the square brackets. so [cc]*.txt is equivalent to c*.txt which isn't what you want.

Of course, a more robust solution is to stop naming files with glob characters in them ;^).

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if not use glob.glob . How can use other method can sample use '[' to match ? –  jiamo Aug 30 '12 at 14:39
    
@yanxinyou -- I'm not exactly sure what you're asking. If you're looking for different options, You can use os.listdir and filter the results based on a hand-rolled regular expression ... –  mgilson Aug 30 '12 at 14:41
    
thankyou . I want to use [somethins]* to match some files .Then to move it . I use [[] replace [ , and []] to ] . It works fine. –  jiamo Aug 31 '12 at 0:52

Unfortunately, you cannot simply escape the *, ?, [, ] characters. Confer http://bugs.python.org/issue8402:

The documentation for fnmatch.translate, which is what ultimately gets called, says: There is no way to quote meta-characters. Sorry.

The solution is more complicated, as explained by mgilson.

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Nice. Thanks for tracking down the documentation on this. (+1) –  mgilson Aug 30 '12 at 14:21

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