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Here's the simplest way to explain this. Here's what I'm using:

re.split('\W', 'foo/bar spam\neggs')
-> ['foo', 'bar', 'spam', 'eggs']

Here's what I want:

someMethod('\W', 'foo/bar spam\neggs')
-> ['foo', '/', 'bar', ' ', 'spam', '\n', 'eggs']

The reason is that I want to split a string into tokens, manipulate it, then put it back together again.

share|improve this question
1  
what does \W stand for? I failed on google it. – Ooker Aug 29 '15 at 19:26
    
A non-word character see here for details – Russell Dec 2 '15 at 21:27
up vote 87 down vote accepted
>>> re.split('(\W)', 'foo/bar spam\neggs')
['foo', '/', 'bar', ' ', 'spam', '\n', 'eggs']
share|improve this answer
6  
That's cool. I didn't know re.split did that with capture groups. – Laurence Gonsalves Jan 25 '10 at 23:48
4  
@Laurence: Well, it's documented: docs.python.org/library/re.html#re.split: "Split string by the occurrences of pattern. If capturing parentheses are used in pattern, then the text of all groups in the pattern are also returned as part of the resulting list." – Vinay Sajip Jan 25 '10 at 23:54
3  
It's seriously underdocumented. I've been using Python for 14 years and only just found this out. – smci Jun 19 '13 at 16:33
1  
It's also possible to escape the special characters in a string, which makes it easier to generate a regular expression that matches a list of strings. – Anderson Green Mar 4 '14 at 4:00
4  
Is there an option so that the output of the group match is attached to whatever is on the left (or analogously right) of the split? For example, can this be easily modified so the output is ['foo', '/bar', ' spam', '\neggs']? – Mr. F Feb 9 '15 at 2:24

Another no-regex solution that works well on Python 3

# Split strings and keep separator
test_strings = ['<Hello>', 'Hi', '<Hi> <Planet>', '<', '']

def split_and_keep(s, sep):
   if not s: return [''] # consistent with string.split()

   # Find replacement character that is not used in string
   # i.e. just use the highest available character plus one
   # Note: This fails if ord(max(s)) = 0x10FFFF (ValueError)
   p=chr(ord(max(s))+1) 

   return s.replace(sep, sep+p).split(p)

for s in test_strings:
   print(split_and_keep(s, '<'))


# If the unicode limit is reached it will fail explicitly
unicode_max_char = chr(1114111)
ridiculous_string = '<Hello>'+unicode_max_char+'<World>'
print(split_and_keep(ridiculous_string, '<'))
share|improve this answer
    
this question is over five years old – Joseph Farah Dec 6 '15 at 17:53
2  
Yes, and it was (at least to me) relevant today... plus there are other, similar, questions listing this one as duplicate.... – ootwch Dec 6 '15 at 19:04
    
Good point. +1, – Joseph Farah Dec 6 '15 at 19:05

You can also split a string with an array of strings instead of a regular expression, like this:

def tokenizeString(aString, separators):
    #separators is an array of strings that are being used to split the the string.
    #sort separators in order of descending length
    separators.sort(key=len)
    listToReturn = []
    i = 0
    while i < len(aString):
        theSeparator = ""
        for current in separators:
            if current == aString[i:i+len(current)]:
                theSeparator = current
        if theSeparator != "":
            listToReturn += [theSeparator]
            i = i + len(theSeparator)
        else:
            if listToReturn == []:
                listToReturn = [""]
            if(listToReturn[-1] in separators):
                listToReturn += [""]
            listToReturn[-1] += aString[i]
            i += 1
    return listToReturn


print(tokenizeString(aString = "\"\"\"hi\"\"\" hello + world += (1*2+3/5) '''hi'''", separators = ["'''", '+=', '+', "/", "*", "\\'", '\\"', "-=", "-", " ", '"""', "(", ")"]))
share|improve this answer
# This keeps all separators  in result 
##########################################################################
import re
st="%%(c+dd+e+f-1523)%%7"
sh=re.compile('[\+\-//\*\<\>\%\(\)]')

def splitStringFull(sh, st):
   ls=sh.split(st)
   lo=[]
   start=0
   for l in ls:
     if not l : continue
     k=st.find(l)
     llen=len(l)
     if k> start:
       tmp= st[start:k]
       lo.append(tmp)
       lo.append(l)
       start = k + llen
     else:
       lo.append(l)
       start =llen
   return lo
  #############################

li= splitStringFull(sh , st)
['%%(', 'c', '+', 'dd', '+', 'e', '+', 'f', '-', '1523', ')%%', '7']
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