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Is it possible to both find and substitute in the same line in Python using the re module? i.e. to also return what has been substituted (in a similar way to how re.subn returns the number of substitutions).

For example, I have text of the form "FOO BAR PART 1", what I want to do is to convert this to "FOO BAR" and "PART 1".

All I can think of is to use something like:

title_old = "FOO BAR PART 1"
parts_found = re.findall(r"PART [0-9]*$", title_old )   ## i.e. search for term
if parts_found != []:
    part_string = parts_found[0]
    title_new = re.sub(re.escape(parts_found[0]),"",title_old )  ## If that term exists, then substitute it.
  • provide a sample input along with expected output.. – Avinash Raj Nov 27 '15 at 17:35
  • I would love to know if there's an equivalent of perl -pe 's{foo}{bar}g'. Until I find such a think I'm going to hold onto perl for dear life. – Sridhar Sarnobat Jan 18 '17 at 22:38
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You can pass a separate method instead of a replacement pattern and pass the match object to that method. You may declare a varaiable to keep track of all replaced texts there.

See re.sub reference:

If repl is a function, it is called for every non-overlapping occurrence of pattern. The function takes a single match object argument, and returns the replacement string.

import re

replacements = []
def repl(m):
    replacements.append(m.group(0))  # Add found match to the list
    return "";                       # We remove the match found

title_old = "FOO BAR PART 1"
print(re.sub(r"PART [0-9]*$", repl, title_old))
print(replacements)

See demo

Result:

FOO BAR ['PART 1']

| improve this answer | |
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Just do a split according to the space which exists before PART.

re.split(r'\s+(?=PART\s\d*$)', s)

Example:

>>> import re
>>> s = "FOO BAR PART 1"
>>> re.split(r'\s+(?=PART\s*\d*$)', s)
['FOO BAR', 'PART 1']
>>> s = "PART 1"
>>> re.split(r'\s+(?=PART\s*\d*$)', s)
['PART 1']
| improve this answer | |
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Try this :

import re

title_old = "FOO BAR PART 1"
title_new = re.sub(r" PART \d+$", "", title_old)

See re.sub() documentation for more details.

| improve this answer | |

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