55

This question already has an answer here:

I am trying to do the following, in a clear pythonic way:

def remove_prefix(str, prefix):
    return str.lstrip(prefix)

print remove_prefix('template.extensions', 'template.')

This gives:

xtensions

Which is not what I was expecting (extensions). Obviously (stupid me), because I have used lstrip wrongly: lstrip will remove all characters which appear in the passed chars string, not considering that string as a real string, but as "a set of characters to remove from the beginning of the string".

Is there a standard way to remove a substring from the beginning of a string?

marked as duplicate by sschuberth, Foon, Dan Getz, karthik, AlBlue Apr 20 '16 at 21:43

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

100

I don't know about "standard way".

def remove_prefix(text, prefix):
    if text.startswith(prefix):
        return text[len(prefix):]
    return text  # or whatever
  • 44
    This should be a standard str method. Having to manually redefine this utility function in every Python project is unctuous. It's not obtuse enough to warrant encapsulating in a full-blown third-party library. But it is annoying enough to warrant redefining everywhere. Ignorable gripes aside, thanks for this juicy bit of Pythonic joy! – Cecil Curry Feb 26 '16 at 23:54
22

Short and sweet:

def remove_prefix(text, prefix):
    return text[text.startswith(prefix) and len(prefix):]
  • 2
    @jamylak it's like the "ternary" and-or, but correct :) ... +1, although I think it's a bit too clever for real code. And you can't decide you want it to raise an exception otherwise. – Elazar Jun 3 '13 at 9:15
19

What about this (a bit late):

def remove_prefix(s, prefix):
    return s[len(prefix):] if s.startswith(prefix) else s
  • +1 Concise. But can you make it Raise something in the error case, and still fit it in 2 lines x 80 columns? – personal_cloud Sep 22 '17 at 23:26
  • @personal_cloud: return s[s[:len(prefix)].index(prefix) + len(prefix):] – William Pursell Dec 21 '17 at 19:21
7

I think you can use methods of the str type to do this. There's no need for regular expressions:

def remove_prefix(text, prefix):
    if text.startswith(prefix): # only modify the text if it starts with the prefix
         text = text.replace(prefix, "", 1) # remove one instance of prefix
    return text
  • 2
    replace() returns the replaced string, so don't forget to actually say text = text.replace(prefix, "", 1) :) – TerryA Jun 3 '13 at 6:54
  • @Haidro: Whoops, that's what I intended to do, I just didn't type it correctly. I suppose you could also return the result of the replace call. – Blckknght Jun 3 '13 at 6:56
6

regex solution (The best way is the solution by @Elazar this is just for fun)

import re
def remove_prefix(text, prefix):
    return re.sub(r'^{0}'.format(re.escape(prefix)), '', text)

>>> print remove_prefix('template.extensions', 'template.')
extensions
0
def remove_prefix(str, prefix):
    if str.startswith(prefix):
        return str[len(prefix):]
    else:
        return str

As an aside note, str is a bad name for a variable because it shadows the str type.

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