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I use Python 2.6 and I want to replace each instance of certain leading characters (., _ and $ in my case) in a string with another character or string. Since in my case the replacement string is the same, I came up with this:

def replaceLeadingCharacters(string, old, new = ''):
    t = string.lstrip(old)

    return new * (len(string) - len(t)) + t

which seems to work fine:

>>> replaceLeadingCharacters('._.!$XXX$._', '._$', 'Y')
'YYY!$XXX$._'
  • Is there a better (simpler or more efficient) way to achieve the same effect in Python ?

  • Is there a way to achieve this effect with a string instead of characters? Something like str.replace() that stops once something different than the string-to-be-replaced comes up in the input string? Right now I've come up with this:

    def replaceLeadingString(string, old, new = ''):
        n = 0
        o = 0
        s = len(old)
    
        while string.startswith(old, o):
            n += 1
            o += s
    
        return new * n + string[o:]
    

    I am hoping that there is a way to do this without an explicit loop

EDIT:

There are quite a few answers using the re module. I have a couple of questions/issues with it:

  • Isn't it significantly slower than the str methods when used as a replacement for them?

  • Is there an easy way to properly quote/escape strings that will be used in a regular expression? For example if I wanted to use re for replaceLeadingCharacters, how would I ensure that the contents of the old variable will not mess things up in ^[old]+ ? I'd rather have a "black-box" function that does not require its users to pay attention to the list of characters that they provide.

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2 Answers

up vote 1 down vote accepted

Your replaceLeadingCharacters() seems fine as is.

Here's replaceLeadingString() implementation that uses re module (without the while loop):

#!/usr/bin/env python
import re

def lreplace(s, old, new):
    """Return a copy of string `s` with leading occurrences of
    substring `old` replaced by `new`.

    >>> lreplace('abcabcdefabc', 'abc', 'X')
    'XXdefabc'
    >>> lreplace('_abc', 'abc', 'X')
    '_abc'
    """
    return re.sub(r'^(?:%s)+' % re.escape(old),
                  lambda m: new * (m.end() / len(old)),
                  s)

Isn't it significantly slower than the str methods when used as a replacement for them?

Don't guess. Measure it for expected input.

Is there an easy way to properly quote/escape strings that will be used in a regular expression?

re.escape()

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Nice and useful! I totally missed re.escape() in the re documentation. +1 –  thkala Jan 10 '11 at 19:39
    
Well, on my system timeit says your lreplace() function is significantly faster than my own for any string larger than 50 characters. Very nice! –  thkala Jan 10 '11 at 19:59
    
@thkala: if you paste your code (e.g. on ideone.com or as an answer here) I could test it on my machine. –  J.F. Sebastian Jan 10 '11 at 20:10
    
@J.F. Sebastian: I compared with the replaceLeadingString() function from my question - I have not come up with something better. –  thkala Jan 10 '11 at 20:24
    
@thkala: I've meant what kind of input data you expect: string length distribution, "number of times input string starts with old" distribution (or just averages). For example, for short strings replaceLeadingString() is 8 times faster than lreplace() ideone.com/A53co –  J.F. Sebastian Jan 10 '11 at 21:13
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re.sub(r'^[._$]+', lambda m: 'Y' * m.end(0), '._.!$XXX$._')

But IMHO your first solution is good enough.

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This is an interesting alternative, although timeit says it is significantly slower that the str-based version for short strings. It gets faster as the input string grows, though, so it might catch up for larger strings. –  thkala Jan 10 '11 at 19:38
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