36

Looking for a bit of regex help. I'd like to design an expression that matches a string with "foo" OR "bar", but not both "foo" AND "bar"

If I do something like...

/((foo)|(bar))/

It'll match "foobar". Not what I'm looking for. So, how can I make regex match only when one term or the other is present?

Thanks!

3
  • Would foofoobar be a match because it contains "foo" and "foobar"? How about "foonbar"? Could you provide examples of matches and non-matches? Oct 29, 2008 at 15:11
  • Matches: "foo", "bar" nonmatches: "foofoo" "barfoo" "foobarfoo" "barbar" "barfoofoo" Oct 29, 2008 at 15:29
  • 3
    If you don't want "foofoo" to match, then you're not really talking about an exclusive or.
    – cjm
    Oct 29, 2008 at 17:52

13 Answers 13

42

This is what I use:

/^(foo|bar){1}$/

See: http://www.regular-expressions.info/quickstart.html under repetition

5
  • 2
    Much more elegant solution than the accepted answer, especially when you got more than 2 cases.. Sep 28, 2015 at 14:48
  • 1
    Why did you add {1}, what does that mean?
    – oriadam
    Jun 5, 2016 at 10:35
  • 9
    This is wrong, it only means foo or bar should be matched only once.
    – Karl
    Jul 5, 2016 at 1:56
  • 4
    I agree with @Karl this is not an XOR. It only checks if the whole string is "foo" or "bar"
    – ecdani
    Aug 29, 2019 at 7:59
  • You don’t need the {1}, because that indicates it should be repeated 1 times. It’s sufficient to have /^(foo|bar)$/. The reason this regex works is that you’ve used ^ and $; it has nothing to do with repetition.
    – chharvey
    Jan 6, 2022 at 1:38
20

If your regex language supports it, use negative lookaround:

(?<!foo|bar)(foo|bar)(?!foo|bar)

This will match "foo" or "bar" that is not immediately preceded or followed by "foo" or "bar", which I think is what you wanted.

It's not clear from your question or examples if the string you're trying to match can contain other tokens: "foocuzbar". If so, this pattern won't work.

Here are the results of your test cases ("true" means the pattern was found in the input):

foo: true
bar: true
foofoo: false
barfoo: false
foobarfoo: false
barbar: false
barfoofoo: false
0
10

You can do this with a single regex but I suggest for the sake of readability you do something like...

(/foo/ and not /bar/) || (/bar/ and not /foo/)
3
  • 2
    Indeed, I'm pretty sure I would put the XOR logic into the code itself, and not in the regexp.
    – Pistos
    Oct 29, 2008 at 16:18
  • 3
    Or even better, /foo/ xor /bar/, if your language has an XOR operator. (Perl does.)
    – cjm
    Oct 29, 2008 at 17:47
  • 1
    @Ralf This is not a single expression, it is two expressions joined with a logical OR operator.
    – Ed Guiness
    Feb 23, 2018 at 11:02
7

This will take 'foo' and 'bar' but not 'foobar' and not 'blafoo' and not 'blabar':

/^(foo|bar)$/

^ = mark start of string (or line)
$ = mark end of string (or line)

This will take 'foo' and 'bar' and 'foo bar' and 'bar-foo' but not 'foobar' and not 'blafoo' and not 'blabar':

/\b(foo|bar)\b/

\b = mark word boundry
3

You haven't specified behaviour regarding content other than "foo" and "bar" or repetitions of one in the absence of the other. e.g., Should "food" or "barbarian" match?

Assuming that you want to match strings which contain only one instance of either "foo" or "bar", but not both and not multiple instances of the same one, without regard for anything else in the string (i.e., "food" matches and "barbarian" does not match), then you could use a regex which returns the number of matches found and only consider it successful if exactly one match is found. e.g., in Perl:

@matches = ($value =~ /(foo|bar)/g)  # @matches now hold all foos or bars present
if (scalar @matches == 1) {          # exactly one match found
  ...
}

If multiple repetitions of that same target are allowed (i.e., "barbarian" matches), then this same general approach could be used by then walking the list of matches to see whether the matches are all repeats of the same text or if the other option is also present.

2

You might want to consider the ? conditional test.

(?(?=regex)then|else)

Regular Expression Conditionals

2

If you want a true exclusive or, I'd just do that in code instead of in the regex. In Perl:

/foo/ xor /bar/

But your comment:

Matches: "foo", "bar" nonmatches: "foofoo" "barfoo" "foobarfoo" "barbar" "barfoofoo"

indicates that you're not really looking for exclusive or. You actually mean "Does /foo|bar/ match exactly once?"

my $matches = 0;
while (/foo|bar/g) {
  last if ++$matches > 1;
}

my $ok = ($matches == 1)
0
1

I know this is a late entry, but just to help others who may be looking:

(/b(?:(?:(?!foo)bar)|(?:(?!bar)foo))/b)
0

I'd use something like this. It just checks for space around the words, but you could use the \b or \B to check for a border if you use \w. This would match " foo " or " bar ", so obviously you'd have to replace the whitespace as well, just in case. (Assuming you're replacing anything.)

/\s((foo)|(bar))\s/
0

I don't think this can be done with a single regular expression. And boundaries may or may not work depending on what you're matching against.

I would match against each regex separately, and do an XOR on the results.

foo = re.search("foo", str) != None
bar = re.search("bar", str) != None
if foo ^ bar:
    # do someting...
0

I tried with Regex Coach against:

x foo y
x bar y
x foobar y

If I check the g option, indeed it matches all three words, because it searches again after each match.
If you don't want this behavior, you can anchor the expression, for example matching only on word boundaries:

\b(foo|bar)\b

Giving more context on the problem (what the data looks like) might give better answers.

0
\b(foo)\b|\b(bar)\b

And use only the first capture group.

0

Using the word boundaries, you can get the single word...

me@home ~  
$ echo "Where is my bar of soap?" | egrep "\bfoo\b|\bbar\b"  
Where is my bar of soap?  

me@home ~  
$ echo "What the foo happened here?" | egrep "\bfoo\b|\bbar\b"  
What the foo happened here?  

me@home ~  
$ echo "Boy, that sure is foobar\!" | egrep "\bfoo\b|\bbar\b"  

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