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I want to strip all kind of punctuation in the starting of the string using Python. My list contains strings and some of them starting with some kind of punctuation. And how can I strip all type of punctuation from the strings?

For example : If my word is like ,,gets, I want to strip ,, from the word...and I want gets as the result. Also, i want to strip away spaces as well as numbers from the list. I have tried with the following code but it is not producing the correct result.

If 'a' is a list contain some words:

for i in range (0,len(a)):
      a[i]=a[i].lstrip().rstrip()
      print a[i]
share|improve this question
    
str.*strip() doesn't magically know what you want to strip, if you want to strip something other than the default. – Ignacio Vazquez-Abrams Mar 18 '14 at 3:28

You can use strip():

Return a copy of the string with the leading and trailing characters removed. The chars argument is a string specifying the set of characters to be removed.

Passing string.punctuation will remove all leading and trailing punctuation chars:

>>> import string
>>> string.punctuation
'!"#$%&\'()*+,-./:;<=>?@[\\]^_`{|}~'

>>> l = [',,gets', 'gets,,', ',,gets,,']
>>> for item in l:
...     print item.strip(string.punctuation)
... 
gets
gets
gets

Or, lstrip() if you need only leading characters removed, rstip() - for trailing characters.

Hope that helps.

share|improve this answer
    
how can i strip spaces in a list – user3254544 Mar 18 '14 at 3:31
    
@user3254544 you can either add space to the "list" of chars to remove: item.strip(string.punctuation + ' '), or call strip() afterwards item.strip(string.punctuation).strip(). – alecxe Mar 18 '14 at 3:33

Pass the characters you want to remove in lstrip and rstrip

'..foo..'.lstrip('.').rstrip('.') == 'foo'
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strip() when used without parameters strips only spaces. If you want to strip any other character, you need to pass it as a parameter to strip function. In your case you should be doing

a[i]=a[i].strip(',')
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To remove punctuation, spaces, numbers from the beginning of each string in a list of strings:

import string

chars = string.punctuation + string.whitespace + string.digits    
a[:] = [s.lstrip(chars) for s in a]

Note: it doesn't take into account non-ascii punctuation, whitespace, or digits.

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If you want to remove it only from the begining, try this:

    import re
    s='"gets'
    re.sub(r'("|,,)(.*)',r'\2',s)
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Assuming you want to remove all punctuation regardless of where it occurs in a list containing strings (which may contain multiple words), this should work:

test1 = ",,gets"
test2 = ",,gets,,"
test3 = ",,this is a sentence and it has commas, and many other punctuations!!"
test4 = [" ", "junk1", ",,gets", "simple", 90234, "234"]
test5 = "word1 word2 word3 word4 902344"

import string

remove_l = string.punctuation + " " + "1234567890"

for t in [test1, test2, test3, test4, test5]:
    if isinstance(t, str):
        print " ".join([x.strip(remove_l) for x in t.split()])
    else:
        print [x.strip(remove_l) for x in t \
               if isinstance(x, str) and len(x.strip(remove_l))]
share|improve this answer
    
test3 = ",,this is a sentence and it has commas, and many other :-) punctuations!!" is like this the output should bee , this is a sentence and it has commas , and many other :-) puntuations !! – user3254544 Mar 18 '14 at 6:22
for each_string in list:
    each_string.lstrip(',./";:') #you can put all kinds of characters that you want to ignore.
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