72

I want to do a string replace in Python, but only do the first instance going from right to left. In an ideal world I'd have:

myStr = "mississippi"
print myStr.rreplace("iss","XXX",1)

> missXXXippi

What's the best way of doing this, given that rreplace doesn't exist?

2

8 Answers 8

109

rsplit and join could be used to simulate the effects of an rreplace

>>> 'XXX'.join('mississippi'.rsplit('iss', 1))
'missXXXippi'
5
  • 7
    +1 for a solution that's readily understandable by programers that follow.
    – strongMA
    Oct 23, 2013 at 22:30
  • 1
    As opposed to other solutions, this one is also easily extensible to execute multiple replacements from the right.
    – Anaphory
    Sep 27, 2015 at 9:46
  • 1
    If you want to replace known extension or just remove/append something from/to end you can do it even simpler yourFilepath.rsplit('.py', 1)[0] + '.log' :)
    – jave.web
    Feb 25, 2020 at 16:02
  • I wonder why didn't python teams write a specific method to replace strings from right to left?
    – Hzzkygcs
    Sep 3, 2020 at 18:31
  • 1
    @jave.web or starting with 3.9 yourFilepath.removesuffix('.py') + '.log'
    – Christian
    May 11 at 17:05
25
>>> myStr[::-1].replace("iss"[::-1], "XXX"[::-1], 1)[::-1]
'missXXXippi'
4
  • 14
    that is so not newbie friendly... :)
    – brice
    Mar 30, 2012 at 13:05
  • I'm assuming this does what @sleeplessnerd's does but without reverse?
    – fredley
    Mar 30, 2012 at 13:05
  • Yeah, the .reverse() was a guess :) - But the concept is clear. Mar 30, 2012 at 13:07
  • 2
    Please never ever use code like this in any code you share or expect others to read! Jun 20, 2019 at 23:44
15
>>> re.sub(r'(.*)iss',r'\1XXX',myStr)
'missXXXippi'

The regex engine cosumes all the string and then starts backtracking untill iss is found. Then it replaces the found string with the needed pattern.


Some speed tests

The solution with [::-1] turns out to be faster.

The solution with re was only faster for long strings (longer than 1 million symbols).

8
  • Is this more efficient than the reversal method for short strings (<20 chars)?
    – fredley
    Mar 30, 2012 at 13:13
  • @TomMedley I don't know. I didn't do any speed tests. As I know, backtracking is quite slow. And if iss is somewhere in the beginning of the string, it'll take quite a while to bracktrack until the engine finds a position where iss matches.
    – ovgolovin
    Mar 30, 2012 at 13:15
  • @TomMedley But I don't think that those [::-1] in the other solutions are faster :)
    – ovgolovin
    Mar 30, 2012 at 13:17
  • It's always the last few chars of the string actually
    – fredley
    Mar 30, 2012 at 13:23
  • 1
    @TomMedley - this re solution is in this special case about 9 times slower than mine with [::-1] (12.6µs vs 1.36µs).
    – eumiro
    Mar 30, 2012 at 13:41
13

you may reverse a string like so:

myStr[::-1]

to replace just add the .replace:

print myStr[::-1].replace("iss","XXX",1)

however now your string is backwards, so re-reverse it:

myStr[::-1].replace("iss","XXX",1)[::-1]

and you're done. If your replace strings are static just reverse them in file to reduce overhead. If not, the same trick will work.

myStr[::-1].replace("iss"[::-1],"XXX"[::-1],1)[::-1]
3
  • 2
    you forgot to reverse the matched text and the replacement text Mar 30, 2012 at 13:09
  • 2
    Nope, I said at the end what to do if you wanted them reversed.
    – Serdalis
    Mar 30, 2012 at 13:27
  • Upvoted for a clever alternative solution!
    – Lou
    Dec 30, 2020 at 15:27
3
def rreplace(s, old, new):
    try:
        place = s.rindex(old)
        return ''.join((s[:place],new,s[place+len(old):]))
    except ValueError:
        return s
1

You could also use str.rpartition() which splits the string by the specified separator from right and returns a tuple:

myStr = "mississippi"

first, sep, last = myStr.rpartition('iss')
print(first + 'XXX' + last)
# missXXXippi
0

Using the package fishhook (available through pip), you can add this functionality.

from fishhook import hook

@hook(str)
def rreplace(self, old, new, count=-1):
    return self[::-1].replace(old[::-1], new[::-1], count)[::-1]

print('abxycdxyef'.rreplace('xy', '--', count=1))

# 'abxycd--ef'
-1

It's kind of a dirty hack, but you could reverse the string and replace with also reversed strings.

"mississippi".reverse().replace('iss'.reverse(), 'XXX'.reverse(),1).reverse()
1
  • 14
    There's no reverse() method for strings. Mar 30, 2012 at 13:04

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.