60

This has to be easier than what I am running into. My problem is turning a string that looks like this:

ABC12DEF3G56HIJ7

into

12 * ABC
3  * DEF
56 * G
7  * HIJ

And I can't, for the life of me, design a correct set of loops using REGEX matching. The crux of the issue is that the code has to be completely general because I cannot assume how long the [A-Z] fragments will be, nor how long the [0-9] fragments will be.

Thank you for any assistance!

  • 2
    ''.join("%s * %s\n" % (n, w) for w, n in re.findall(r'(?i)([a-z]+)(\d+)', input_string)) – jfs Oct 13 '12 at 5:21
98

Python's re.findall should work for you.

Live demo

import re

s = "ABC12DEF3G56HIJ7"
pattern = re.compile(r'([A-Z]+)([0-9]+)')

for (letters, numbers) in re.findall(pattern, s):
    print(numbers, '*', letters)
49

It is better to use re.finditer if you dataset is large:

import re

s = "ABC12DEF3G56HIJ7"
pattern = re.compile(r'([A-Z]+)([0-9]+)')

for m in re.finditer(pattern, s):
    print m.group(2), '*', m.group(1)
  • 5
    yes, this is the better way – kdubs Mar 16 '17 at 14:56
  • If I'm not mistaken, the last line of this example should be print m.group(2), '*', m.group(1) to fit the OP's desired output. I believe that m.group(0) is the 'full' match--i.e., ABC12, DEF3, G56, HIJ7. – DaveL17 Jun 8 '17 at 2:19
  • @DaveL17 You are right, thanks. I didn't think much while write this answer, fixed now. – Mithril Jun 8 '17 at 3:14
  • 1
    This method has the benefit of letting you access named groups by name, rather than by location in the regular expression (which might change if the patterns are moved in the regular expression.) – Carl G Nov 21 '17 at 20:34

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