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I have a list of words, with patterns either "term" or "termNUM", e.g. "term" or "term02". I want to save all terms that ends with digit but remove the ones are purely alphabets.

I am totally new to regex, I tried few options, and get the following:

new_list = [x for x in old_list if re.match("[(^a-zA-Z_)\d]", x)]

It is not working, I know it only need a small tweak somewhere, but with my limited skill in regex, cannot do it quickly.

Tips are highly appreciated.

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By placing into brackets [] your whole expression, you are a defining a set of characters. So your regex will only match the first ( or ^, _, ), or a digit (\d) or a letter (a-zA-Z) in the string x. Taking some time to go through this page is really worth it, believe me ;) –  Sebastien Nov 23 '11 at 16:09

3 Answers 3

up vote 3 down vote accepted
r".*\d"

That's any character (.), any number of times (*) followed by a digit (\d). Your list comprehension is correct.

You could also do

[x for x in old_list if x[-1].isdigit()]

assuming the empty string is not in the list. I'd prefer this option, as it's more explicit as to what it does.

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Why use regex, where you can simply check the last char is a digit or not. i.e.

new_list = [x for x in old_list if x[-1].isdigit()]
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clever! I thought about '.endswith' but... –  Flake Nov 23 '11 at 16:03
>>> list = ["term", "term2", "term200"]
>>> new_list = [x for x in list if re.match("^[a-zA-Z_]+\d+$", x)]
>>> new_list
['term2', 'term200']
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