I am a beginner in python an am currently struggling with something:

I want to make a couple of changes in a single string. Is it possible to use a single asterix sign (*), as a replacement-joker for a couple of characters? For example I have a string:

string1 = "The new year is about to become an old year"

And I want to use this pattern for finding:

find:
*year*year*

replace it with:
*century*one*

Which will result in:

string1 = "The new century is about to become an old one"

Meaning "*" character will replace all those characters between, and before the "year" and "year" words. Is that possible?

  • 6
    You're looking for regular expressions. – SLaks Dec 26 '13 at 21:05
  • It is probably time for you to choose an answer, mate. ;7) – dmvianna Dec 29 '13 at 21:46
up vote 2 down vote accepted

It will be worth your while to look into regular expressions. In your case, the main things you need to know are that . matches any single character, .* matches zero or more of any character, that parentheses are used for grouping, and backslash followed by a number form a backreference (of an existing group).

So, to match year, followed by arbitrary stuff, followed by year again, use year.*year.

Now, to substitute, use the grouping and backreference:

import re
string2 = re.sub('year(.*)year', r'century\1one', string1)

Effective use of regular expressions is definitely not obvious to most beginners. For some suggestions on gentler introductions, see this question:

https://stackoverflow.com/questions/2717856/any-good-and-gentle-python-regexp-tutorials-out-there

  • Thank you John. The Python docs are terrible material for beginners. Your code works perfectly. But what if I change find and replace: string1 = "The new year is about to become an old year in 4 days" find = "yearyear*4*" replace = "centuryone*10" In what way do I need to change your code in order for this new case to work? – marco Dec 27 '13 at 13:31
  • I would argue the Python docs as a whole are at least as beginner-friendly as most documentation out there. The tutorial in particular is solidly above average, though of course it's going to be even better suited to programmers from other languages than newcomers to programming. The issue you're having is that regular expressions are especially (and intrinsically!) geared toward experienced programmers. @dmvianna already included some links for further reading; I'll add some more to my answer. – John Y Dec 27 '13 at 14:21
  • 2
    I like @JohnY's answer better than mine, but to add a numeral literal after a numeric backreference, you need to treat it as if it were an arbitrary one (as in my first answer). So your your code would be re.sub('year(.*)year(.*)4', r'century\1one\g<2>10', string1). See this post. – dmvianna Dec 29 '13 at 0:09
  • Thank you. What does the "\g<2>" represent? – marco Dec 29 '13 at 1:27
  • 1
    Correct. Works for me with string = 'the new year is about to become an old year in 4 days or sometime.' You will gain knowledge by working through the tutorials, and coming here only when you're stuck and can't find the answer on Google. Also, it really helped me to follow @RegexTip on Twitter. – dmvianna Dec 29 '13 at 21:44

You don't need asterisks. Just use

import re
string1 = "The new year is about to become an old year"
new_string = re.sub(r"(?P<y>year)(.*)(?P=y)", r"century\2one", string1)

Or more concisely:

new_string = re.sub(r"(year)(.*)\1", r"century\2one", string1)

One pass, using regular expressions. Explanation: each parentheses of the first argument defines one capturing group. The first is named "y" (with ?P) and matches the literal year; the second matches any number(*) of any character (.); the third matches the named group "y" defined by the first group (in our case, "year"). The second argument replaces the first matched group with century, and the third group with one. Notice that in Python, we start counting from zero.

Kudos to @JonhY for the pointers in the comments below, and also m.buettner. My heros!

It seems to me you haven't heard of regular expressions (or regex) yet. Regex is a very powerful mini language that is used to match text. Python has a very good implementation of regex. Have a look at:

Tutorial at Regex One

Python Documentation on Regex

  • Thank you for the reply dmvianna. But that did not exactly do what I expect. Your code returned this: "The new century is about to become an old century" While I am looking for this: "The new century is about to become an old one" – marco Dec 26 '13 at 21:33
  • Your "solution" differs from what the OP is asking for, and doesn't help. It also doesn't even illustrate the usefulness of regex functionality. If all the OP wanted to do was replace year with century, they could simply do string1.replace('year', 'century'). – John Y Dec 26 '13 at 21:34
  • @JohnY Noted and fixed. ;7) – dmvianna Dec 26 '13 at 21:42
  • 1
    +1 But I'm not convinced the named captures are worth the trouble for such a simple case. This seems much easier to grok: r'(year)(.*)\1'. – FMc Dec 26 '13 at 23:31
  • 1
    @FMc +1, true. This is just me being excited with a brand new skill. :) Also, it may be overkill, but I find the \1 less intuitive for a new learner than making sure every group is inside parentheses. And showing that you could give any arbitrary name for a group. – dmvianna Dec 26 '13 at 23:34
string1 = "The new year is about to become an old year"
find = '*year*year*'
replace = '*century*one*'

for  f,r in zip(find.strip('*').split('*'), replace.strip('*').split('*')):
    string1 = string1.replace(f, r, 1)

Output:

The new century is about to become an old one

This is a sample implementation that does not do any error checking.

>>> def custom_replace(s, find_s, replace_s):
...     terms = find_s.split('*')[1:-1]
...     replacements = replace_s.split('*')[1:-1]
...     for term, replacement in zip(terms, replacements):
...       s = s.replace(term, replacement, 1)
...     return s
... 
>>> string1 = "The new year is about to become an old year"
>>> print custom_replace(string1, "*year*year*", "*century*one*")
The new century is about to become an old one
>>> 
  • Thank you for the reply Yan. But this solution does not work when * is removed from the start of the "find" and "replace" patterns. Fore example: string1 = "year is about to become an old year" print custom_replace(string1, "yearyear", "centuryone") Will result in: "one is about to become an old year" Which is not correct. – marco Dec 26 '13 at 21:41
  • 1
    Well your example had asterisks on the ends. If you want to match without them, remove the [1:-1] from lines 2 and 3. – yan Dec 26 '13 at 21:59
  • You are right. Thank you. – marco Dec 27 '13 at 0:48

Your Answer

 

By clicking "Post Your Answer", you acknowledge that you have read our updated terms of service, privacy policy and cookie policy, and that your continued use of the website is subject to these policies.

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