17

I'm wondering if there's any way in python or perl to build a regex where you can define a set of options can appear at most once in any order. So for example I would like a derivative of foo(?: [abc])*, where a, b, c could only appear once. So:

foo a b c
foo b c a
foo a b
foo b

would all be valid, but

foo b b

would not be

9
  • 4
    I feel like string methods would be faster then regex in this case. I would suggest something like words = string.split(); len(words) == len(set(words)) to check if there are only unique values in the config.
    – rv.kvetch
    Oct 7 at 19:23
  • 2
    For such a regular expression you would need to list all combinations, since regex don't have memory. There are options to build in a memory (for example capture groups) in those languages, but then it is, strictly speaking, not an regex.
    – jjj
    Oct 8 at 12:44
  • 1
    Just out of curiosity, why use regex for this? It can be done in 2 lines or so using a set, while maintaining legibility and likely speed. What is the advantage of using regex, except as an abstract challenge (which is a worthy purpose in and of itself)? Oct 8 at 14:04
  • 1
    s = mystring.split(); if s[0] == 'foo' and len(set(s[1:])) == len(s) - 1 and all(x in ['a', 'b', 'c' for x in s[1:]]): print('OK') Oct 8 at 20:14
  • 2
    @Mad guy, as you may have noticed, the motivation for many regex questions is to better understand how regular expressions work, not whether the use of a regex is the best approach for the problem at hand. That's certainly fair game. In my experience it hardly ever makes sense to use a highly complex regex, if for no other reason that it is too hard to properly test it, but striving to understand the toughies makes for a better understanding of the more pedestrian ones. Oct 8 at 20:29
12

You may use this regex with a capture group and a negative lookahead:

For Perl, you can use this variant with forward referencing:

^foo((?!.*\1) [abc])+$

RegEx Demo

RegEx Details:

  • ^: Start
  • foo: Match foo
  • (: Start a capture group #1
    • (?!.*\1): Negative lookahead to assert that we don't match what we have in capture group #1 anywhere in input
    • [abc]: Match a space followed by a or b or c
  • )+: End capture group #1. Repeat this group 1+ times
  • $: End

As mentioned earlier, this regex is using a feature called Forward Referencing which is a back-reference to a group that appears later in the regex pattern. JGsoft, .NET, Java, Perl, PCRE, PHP, Delphi, and Ruby allow forward references but Python doesn't.


Here is a work-around of same regex for Python that doesn't use forward referencing:

^foo(?!.* ([abc]).*\1)(?: [abc])+$

Here we use a negative lookahead before repeated group to check and fail the match if there is any repeat of allowed substrings i.e. [abc].

RegEx Demo 2

6
  • Just a quick note to any future readers referencing this; this solution does have a limitation -- while it works for the posted question, if you wanted to expand your pattern to be foo((?!.*\1) [abc])+ bar((?!.*\1) [abc])+ this would prevent a match for foo a bar a. Oct 12 at 12:54
  • @HardcoreHenry: It would be ^foo((?!.*\1) [abc])+ bar((?!.*\2) [abc])+$ because we have to use \2 for the 2nd capture group.
    – anubhava
    Oct 12 at 13:38
  • Ahh yes, my bad! (sorry, my issue was with this, but also foo b bar b still doesn't work because bar starts with ` b`, which the regex picks up, but this is handled easily with a word boundary... Oct 12 at 15:27
  • Yes ^foo((?!.*\1\b) [abc])+ bar((?!.*\2\b) [abc])+$ might be the one
    – anubhava
    Oct 12 at 15:49
  • Actually, even with this, I'm getting some weird results. According to regex101.com, ^foo((?!.*\1\b) [abc])* bar((?!.*\2\b) [abc])*$ matches foo a bar a, and foo a b c bar, but does not match foo a b c bar a ... (note chaged + to * from your regex) Oct 12 at 15:53
6

You can assert that there is no match for a second match for a space and a letter at the right:

foo(?!(?: [abc])*( [abc])(?: [abc])*\1)(?: [abc])*
  • foo Match literally
  • (?! Negative lookahead
    • (?: [abc])* Match optional repetitions of a space and a b or c
    • ( [abc]) Capture group, use to compare with a backreference for the same
    • (?: [abc])* Match again a space and either a b or c
    • \1 Backreference to group 1
  • ) Close lookahead
  • (?: [abc])* Match optional repetitions or a space and either a b or c

Regex demo

If you don't want to match only foo, you can change the quantifier to 1 or more (?: [abc])+


A variant in perl reusing the first subpattern using (?1) which refers to the capture group ([abc])

^foo ([abc])(?: (?!\1)((?1))(?: (?!\1|\2)(?1))?)?$

Regex demo

0
4

If it doesn't have to be a regex:

import collections

# python >=3.10
def is_a_match(sentence):
    words = sentence.split()
    return (
      (len(words) > 0)
      and (words[0] == 'foo')
      and (collections.Counter(words) <= collections.Counter(['foo', 'a', 'b', 'c']))
    )

# python <3.10
def is_a_match(sentence):
    words = sentence.split()
    return (
      (len(words) > 0)
      and (words[0] == 'foo')
      and not (collections.Counter(words) - collections.Counter(['foo', 'a', 'b', 'c']))
    )

# TESTING
#foo a b c True
#foo b c a True
#foo a b True
#foo b True
#foo b b False

Or with a set and the walrus operator:

def is_a_match(sentence):
    words = sentence.split()
    return (
      (len(words) > 0)
      and (words[0] == 'foo')
      and (
        (s := set(words[1:])) <= set(['a', 'b', 'c'])
        and len(s) == len(words) - 1
      )
    )
8
  • 1
    Or you could use a set. It adds one extra check, but you don't have to keep track of the values: (s := set(words[1:])) <= set(['a', 'b', 'c']) and len(s) == len(words) - 1 Oct 8 at 22:43
  • You don't need the extra parentheses. and can be chained indefinitely as-is. Evaluation is guaranteed left-to-right since it's a short-circuiting operator. Oct 8 at 23:05
  • @MadPhysicist Well, I need them if I want to keep the indentation this way ;)
    – Stef
    Oct 8 at 23:06
  • 1
    I'm thinking that might pass food a b c Oct 9 at 14:33
  • 1
    On a side note, I would make set(['a', 'b', 'c']) into a global constant rather than recomputing it every time Oct 9 at 14:35
3

You can do it using references to previously captured groups.

foo(?: ([abc]))?(?: (?!\1)([abc]))?(?: (?!\1|\2)([abc]))?$

This gets quite long with many options. Such a regex can be generated dynamically, if necessary.

def match_sequence_without_repeats(options, seperator):
    def prevent_previous(n):
        if n == 0:
            return ""
        groups = "".join(rf"\{i}" for i in range(1, n + 1))
        return f"(?!{groups})"

    return "".join(
        f"(?:{seperator}{prevent_previous(i)}([{options}]))?"
        for i in range(len(options))
    )


print(f"foo{match_sequence_without_repeats('abc', ' ')}$")
3

Here is a modified version of anubhava's answer, using a backreference (which works in Python, and is easier to understand at least for me) instead of a forward reference.

Match using [abc] inside a capturing group, then check that the text matched by the capturing group does not appear again anywhere after it:

^foo(?:( [abc])(?!.*\1))+$

regex demo

  • ^: Start
  • foo: Match foo
  • (?:: Start non-capturing group (?:( [abc])(?!.*\1))
    • ( [abc]): Capturing Group 1, matching a space followed by either a, b, or c
    • (?!.*\1): Negative lookahead, failing to match if the text matched by the first capturing group occurs after zero or more characters matched by .
  • )+: End non-capturing group and match it 1 or more times
  • $: End
2

I have assumed that the elements of the string can be in any order and appear any number of times. For example, 'a foo' should match and 'a foo b foo' should not.

You can do that with a series of alternations employing lookaheads, one for each substring of interest, but it becomes a bit of a dog's breakfast when there are many strings to consider. Let's suppose you wanted to match zero or one "foo"'s and/or zero or one "a"'s. You could use the following regular expression:

^(?:(?!.*\bfoo\b)|(?=(?:(?!\bfoo\b).)*\bfoo\b(?!(.*\bfoo\b))))(?:(?!.*\ba\b)|(?=(?:(?!\ba\b).)*\ba\b(?!(.*\ba\b))))

Start your engine!

This matches, for example, 'foofoo', 'aa' and afooa. If they are not to be matched remove the word breaks (\b).

Notice that this expression begins by asserting the start of the string (^) followed by two positive lookaheads, one for 'foo' and one for 'a'. To also check for, say, 'c' one would tack on

(?:(?!.*\bc\b)|(?=(?:(?!\bc\b).)*\bc\b(?!(.*\bc\b))))

which is the same as

(?:(?!.*\ba\b)|(?=(?:(?!\ba\b).)*\ba\b(?!(.*\ba\b))))

with \ba\b changed to \bc\b.

It would be nice to be able to use back-references but I don't see how that could be done.

By hovering over the regular expression in the link an explanation is provided for each element of the expression. (If this is not clear I am referring to the cursor.)

Note that

(?!\bfoo\b).

matches a character provided it does not begin the word 'foo'. Therefore

(?:(?!\bfoo\b).)*

matches a substring that does not contain 'foo' and does not end with 'f' followed by 'oo'.

Would I advocate this approach in practice, as opposed to using simple string methods? Let me ponder that.

0
0

If the order of the strings doesn't matter, and you want to make sure every string occurs only once, you can turn the list into a set in Python:

my_lst = ['a', 'a', 'b', 'c']
my_set = set(lst)

print(my_set)
# {'a', 'c', 'b'}
8
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    That will not match foo Oct 7 at 19:35
  • 1
    Your answer could be improved with additional supporting information. Please edit to add further details, such as citations or documentation, so that others can confirm that your answer is correct. You can find more information on how to write good answers in the help center.
    – Community Bot
    Oct 7 at 20:33
  • @Community Citation for Python's built-in sets? Erm okay.
    – marcelm
    Oct 8 at 13:59
  • @marcelm I think the point was: "add additional information as to how sets can help solve the original problem", since it's not clear how using set( ... ) will help check that a string is a match or not.
    – Stef
    Oct 8 at 14:07
  • @Stef Perhaps, and I agree the answer can be improved that way. But honestly, the comment reads like a canned message asking for links, which I don't think is appropriate.
    – marcelm
    Oct 8 at 14:11

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