13

How can I match letters a,b,c once in any combination and varying length like this:

The expression should match these cases:

abc
bc
a
b
bca

but should not match these ones:

abz
aab
cc
x
5
  • So at most only one of each letter can appear? Commented Nov 24, 2012 at 22:19
  • yes, the letter can only appear once. Commented Nov 24, 2012 at 22:24
  • This is duplicate of this question: stackoverflow.com/questions/664194/… Commented Nov 24, 2012 at 22:28
  • @AimonBustardo, this is not a dup of the question you referenced. That one states, "I am only looking for characters that are repeated immediately...". Commented Mar 7, 2020 at 8:52
  • This is a dup of this SO question posted March 7, 2020. :-) Commented Mar 7, 2020 at 8:55

6 Answers 6

19

Use regex pattern

\b(?!\w*(\w)\w*\1)[abc]+\b

You can use this pattern with any set and size, just replace [abc] with desired set...


Example:

enter image description here

(above output is from myregextester)

1
  • For continuous string "abcbac", this method could not match both "abc" and "bac". Anyway, this is still very cool. The first part (?!(?:.\B)*(.)(?:\B.)*\1) tries to find a starting position such that from the starting position to \newline, there is no duplication. Then from the starting position, it tries to match [abc]+
    – William
    Commented Mar 15, 2016 at 21:23
6
^(?=([^a]*a?[^a]*)$)(?=([^b]*b?[^b]*)$)(?=([^c]*c?[^c]*)$)[abc]{1,3}$

This works with lookaheads.

It includes this pattern in three variations: (?=([^a]*a?[^a]*)$)

It says: There needs to be at most one a from here (the beginning) until the end.

Combining lookaheads and backreferences:

^([abc])((?!\1)([abc])((?!\1)(?!\3)[abc])?)?$
0
3

Just to round out the collection:

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

Want to handle a larger set of characters? No problem:

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

EDIT: Apparently I misread the question; you're not validating individual strings like "abc" and "ba", you're trying to find whole-word matches in a larger string. Here's how I would do that:

\b(?:([abc])(?![abc]*\1))+\b

The tricky part is making sure the lookahead doesn't look beyond the end of the word that's currently being matched. For example, if I had left the lookahead as (?!.*\1), it would fail to match the abc in abc za because the lookahead would incorrectly flag the a in za as a duplicate of the a in abc. Allowing the lookahead to look only at valid characters ([abc]*) keeps it on a sufficiently short leash. And if there are invalid characters in the current word, it's not the lookahead's job to spot them anyway.

(Thanks to Honest Abe for bringing this back to my attention.)

2
  • This would be my choice to upvote, but the example doesn't seem to work as is. Does the example work with a certain language? I got it to work by changing it to \b(?:([abc])(?!\1))+\b
    – Honest Abe
    Commented Feb 8, 2013 at 7:22
  • I was assuming the regex would be applied to each string in isolation ("abc", "cb", "abz", etc.), but it looks like the OP wants to pluck whole-word matches from a larger string. So you're right, I should have used \b instead of the anchors, but you can't just remove the .* from the lookahead. That correctly filters out aab but not aba. See my edit for the corrected regex.
    – Alan Moore
    Commented Feb 8, 2013 at 21:13
1

Try this regex:

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

Check in regexpal

0
1
^(?=(.*a.*)?$)(?=(.*b.*)?$)(?=(.*c.*)?$)[abc]{,3}$

The anchored look-aheads limit the number of occurrences of each letter to one.

6
  • This also matches the "ab" in "abz", and "aab" and "cc". So this is not correct. (I just tested in the Patterns regex app for Mac) Commented Nov 24, 2012 at 22:27
  • In the Patterns app this only works when I select both the single-line AND multi-line options - which I'm not sure makes much sense and may be a bug in Patterns. Commented Nov 24, 2012 at 22:54
  • In English, this RegEx says: Be empty OR end in a, b and c at the same time, which is of course impossible.
    – phant0m
    Commented Nov 24, 2012 at 23:00
  • @phant0m Actually it doesn't say that at all. The look aheads each say "there must be either 1 or 0 "a" somewhere in the whole input.
    – Bohemian
    Commented Nov 24, 2012 at 23:54
  • No, it did not and it doesn't say that after your edit either. Now, it says: The string is either empty OR it contains at least an a, a b and a c. (Neglecting that {,3} is invalid)
    – phant0m
    Commented Nov 25, 2012 at 0:01
0

I linked it in comment (this is sort of a dupe of How can I find repeated characters with a regex in Java?).. but to be more specific.. the regex:

(\w)\1+

Will match any two or more of the same character. Negate that and you have your regex.

1
  • He only wants a, b, and c - so replacing \w with [abc] seems like the obvious choice - but the negation of that would still match "abz" and "x" - so it's not a final solution. Commented Nov 24, 2012 at 22:41

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