5

I am having trouble figuring out how to make this work with substitution command, which is what I have been instructed to do. I am using this text as a variable:

text = 'file1, file2, file10, file20'

I want to search the text and substitute in a zero in front of any numbers less than 10. I thought I could do and if statement depending on whether or not re.match or findall would find only one digit after the text, but I can't seem to execute. Here is my starting code where I am trying to extract the string and digits into groups, and only extract the those file names with only one digit:

import re
text = 'file1, file2, file10, file20'
mtch = re.findall('^([a-z]+)(\d{1})$',text)

but it doesn't work

1

You can use:

re.sub('[a-zA-Z]\d,', lambda x: x.group(0)[0] + '0' + x.group(0)[1:], s)
  • this works great but i dont totally follow what its doing – kflaw Aug 12 '13 at 17:19
  • the search pattern that I used '[a-zA-Z]\d,' returns a string of len()=3, and the re.sub() method allows you to use this string by calling a function as the second argument, which makes it pretty easy to build complex replacemen ts using the values from the matched string. You should refer here for more details and examples... – Saullo G. P. Castro Aug 12 '13 at 17:22
  • its this part i'm not totally clear on: x.group(0)[0] + '0' + x.group(0)[1:] – kflaw Aug 12 '13 at 17:32
  • for each match it finds one group that can be accessed using group(0), containing three characters 'e1,', 'e2,', then I use these characters by slicing [0]-->'e' and [1:]-->'1,' or '2,' to rebuild the string to replace the original... – Saullo G. P. Castro Aug 12 '13 at 17:40
  • got it! great solution – kflaw Aug 12 '13 at 17:43
1

Anchors anchor to the beginning and end of strings (or lines, in multi-line mode). What you're looking for are word boundaries. And of course, you don't need the {1} quantifier.

\b([a-z]+)(\d)\b

(Not sure how you plan to use your captures, so I'll leave those alone.)

  • when i tried this and tried to print mtch, it gave me a blank list: – kflaw Aug 12 '13 at 16:48
1

You can use re.sub with str.zfill:

>>> text = 'file1, file2, file10, file20'
>>> re.sub(r'(\d+)', lambda m : m.group(1).zfill(2), text)
'file01, file02, file10, file20'
#or
>>> re.sub(r'([a-z]+)(\d+)', lambda m : m.group(1)+m.group(2).zfill(2), text)
'file01, file02, file10, file20'
  • thanks! but what i have other filenames in my string, like file100? i only want one leading zero – kflaw Aug 12 '13 at 17:06
  • @kflaw It works fine for file100, what's the issue? – Ashwini Chaudhary Aug 13 '13 at 0:50
0

You have the start and end anchors applied, so the pattern cannot be fully matched.

Try something like this

text = "file1, file2, file3, file4, file10, file20, file100"
print re.sub("(?<=[a-z])\d(?!\d),?", "0\g<0>", text)

will result in

file01, file02, file03, file04, file10, file20, file100

This should work if you have a list like above or a single element name.

Explanation

(?<=[a-z]) - Checks that the previous characters are letters using look behind

\d - matches a single digit

(?!\d) - Checks that there are no more digits using lookahead

,? - allows for an optional comma in the list

0\g<0> - The pattern matches a single digit, so it trivial to add a zero. The \g<0> is the matched group.

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.