-1

Sample:

>>> line = 'the the, To to'
>>> re.findall(r'\b(\w+) \1', line)
['the']
>>> re.findall(r'\b(\w+) \1', line, re.I)
['the', 'To']

>>> re.sub(r'\b(\w+) \1', r'\1', line, re.I)
'the, To to'

Expected:

'the, To'

The regex works in other places like

  • Vim: s/\v<(\w+) \1/\1/gi
  • Perl: s/\b(\w+) \1/$1/gi
  • sed: -r 's/\b(\w+) \1/\1/gi'


Is this a known behavior? What is a workaround? My Python version is 3.4.3 if that makes a difference.

2
  • This isn't really a perl question, is it? But the core difference is - you don't seem to have a gi modifier in your pattern anywhere. – Sobrique Jun 27 '16 at 13:09
  • @Sobrique the OP has re.I, the ignore case flag, and re.sub is "global" by default; however, they aren't passing the flag correctly. – jonrsharpe Jun 27 '16 at 13:10
3

Read the definition of re.sub:

re.sub(pattern, repl, string, count=0, flags=0)

You are passing re.I as count (where it is allowing at most 2 replacements), not as flags. Instead, try:

>>> re.sub(r'\b(\w+) \1', r'\1', s, flags=re.I)
                                  # ^ note
'the, To'
3
  • @jonrsharpe is there really need to add word boundry..? – Shekhar Khairnar Jun 27 '16 at 13:19
  • @ShekharKhairnar I didn't add it, just copied the OP's regex from the question. In this case it doesn't matter, but I assume they're dealing with other cases where it may be relevant. – jonrsharpe Jun 27 '16 at 13:20
  • yes, in required case, I need to avoid replacing cases like dot the - without the \b it will change t t – Sundeep Jun 27 '16 at 13:21

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