59

I have a list of regexes in python, and a string. Is there an elegant way to check if the at least one regex in the list matches the string? By elegant, I mean something better than simply looping through all of the regexes and checking them against the string and stopping if a match is found.

Basically, I had this code:

list = ['something','another','thing','hello']
string = 'hi'
if string in list:
  pass # do something
else:
  pass # do something else

Now I would like to have some regular expressions in the list, rather than just strings, and I am wondering if there is an elegant solution to check for a match to replace if string in list:.

Thanks in advance.

90
import re

regexes = [
    "foo.*",
    "bar.*",
    "qu*x"
    ]

# Make a regex that matches if any of our regexes match.
combined = "(" + ")|(".join(regexes) + ")"

if re.match(combined, mystring):
    print "Some regex matched!"
| improve this answer | |
  • 4
    If you don't need to know which one matched, it's better to bracket them with (?:regex) instead of (regex) – John Machin Jun 15 '10 at 0:22
  • 4
    This method doesn't work if there are more than 100 regexes in the array (Python 2.6). Try nosklo's answer below. – Amjith Aug 18 '11 at 15:13
  • 5
    regexes = '(?:%s)' % '|'.join(regexes) – alxndr Feb 1 '13 at 21:08
  • Any idea why "quax" does not match? – radar Mar 12 '19 at 8:52
  • 2
    Because "qu*x" means, q, zero or more u's, and an x. – Ned Batchelder Mar 12 '19 at 14:25
95
import re

regexes = [
    # your regexes here
    re.compile('hi'),
#    re.compile(...),
#    re.compile(...),
#    re.compile(...),
]

mystring = 'hi'

if any(regex.match(mystring) for regex in regexes):
    print 'Some regex matched!'
| improve this answer | |
  • If working in python 2.4, you won't have any - see stackoverflow.com/questions/3785433/… – Sam Heuck Sep 12 '13 at 19:42
  • 3
    How is this "something better than simply looping through all of the regexes and checking them against the string and stopping if a match is found"? I guess the combination of Ned's and this answer could be a winner though... – johndodo Jan 21 '14 at 15:26
6

A mix of both Ned's and Nosklo's answers. Works guaranteed for any length of list... hope you enjoy

import re   
raw_lst = ["foo.*",
          "bar.*",
          "(Spam.{0,3}){1,3}"]

reg_lst = []
for raw_regex in raw_lst:
    reg_lst.append(re.compile(raw_regex))

mystring = "Spam, Spam, Spam!"
if any(compiled_reg.match(mystring) for compiled_reg in reg_lst):
    print("something matched")
| improve this answer | |
4

Here's what I went for based on the other answers:

raw_list = ["some_regex","some_regex","some_regex","some_regex"]
reg_list = map(re.compile, raw_list)

mystring = "some_string"

if any(regex.match(mystring) for regex in reg_list):
    print("matched")
| improve this answer | |
1

If you loop over the strings, the time complexity would be O(n). A better approach would be combine those regexes as a regex-trie.

| improve this answer | |

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