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I have a randomly generated string from 6 letters in this form, example:

A' B F2 E' B2 A2 C' D2 C D' E2 F

Some letters have " ' " added to them some have number "2". What i want is to add letter "x" to every letter that is on its own.

So it would look like this:

A' Bx F2 E' B2 A2 C' D2 Cx D' E2 Fx

The trick is that it would add the "x" only to those letters that are on their own. No, Bx -> Bx2.

Any ideas?

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7 Answers 7

up vote 5 down vote accepted

Transform your string into list with split()

s = """A' B F2 E' B2 A2 C' D2 C D' E2 F"""

L = s.split(' ')

for i in xrange(len(L)):
  if len(L[i]) == 1:
    L[i] += 'x'

str_out = ' '.join(L)
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The split-comprehend-join version:

' '.join(n+'x' if len(n)==1 else n for n in inputstr.split(' '))

The regex version:

>>> inputstr = "A' F B2 C"
>>> re.sub(r'([A-Z])(?=\s|$)', r'\1x', inputstr)
"A' Fx B2 Cx"

In essence, find any uppercase letter not followed by either a space or the end of the string, and replace it with that character followed by an x.

I ran a few tests with timeit; the former (list comprehension) appears to run slightly faster than the latter (about 15-20% faster on average). This does not appear to change no matter the number of replacements that need to be done (a string 10 times as long still has about the same ratio of processing time as the original).

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Ugly or Pythonic?

items = "A' B F2 E' B2 A2 C' D2 C D' E2 F".split()

itemsx = ((a+'x' if len(a)==1 else a) for a in items)
out = ' '.join(itemsx)
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With a regular expression,

import re
newstring = re.sub(r"\b(\w)(?![2'])", r'\1x', oldstring)

should be fine. If you're allergic to res,

news = ' '.join(x + 'x' if len(x)==1 else x for x in olds.split())

is a concise way of expressing a similar transformation (if length-one is really the only thing you need to check before appending 'x' to an item).

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2  
This actually fails due to the fact that A' is considered to have a word border between the A and the '. (Also, you forgot a capture group around the \w.) –  Amber Feb 15 '10 at 5:48
    
@Dav, thanks -- good spotting, fixing now. –  Alex Martelli Feb 15 '10 at 5:57
1  
Updated version still needs a tweak - the capture group should only be around the \w, and not the following character. Also, since it's trying to match a character after the \w, it won't work on a solo character at the end of a string. –  Amber Feb 15 '10 at 6:09
1  
Finally, since the behavior of re.sub is to replace the entire matched portion, not just the capture group, this will (unintentionally, I'm sure) strip the spaces after the characters it replaces. –  Amber Feb 15 '10 at 6:12
    
@Dav, excellent analysis -- so I've edited again to switch to negative lookahead, which should take care of all the issues. +1 to each of your spot-on remarks! –  Alex Martelli Feb 15 '10 at 6:16
' '.join(n if len(n) == 2 else n + 'x' for n in s.split(' '))
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>>> s="A' B F2 E' B2 A2 C' D2 C D' E2 F".split()
>>> import string
>>> letters=list(string.letters)
>>> for n,i in enumerate(s):
...     if i in letters:
...        s[n]=i+"x"
...
>>> ' '.join(s)
"A' Bx F2 E' B2 A2 C' D2 Cx D' E2 Fx"
>>>
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>>> ' '.join((i+'x')[:2] for i in items.split())
"A' Bx F2 E' B2 A2 C' D2 Cx D' E2 Fx"
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That did the trick. Thank you. –  wtz Feb 15 '10 at 14:35

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