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I would like to match strings that end with bar, for example: foobar or bar. Such regexp could be: /^.*bar$/.

I would also like to exclude strings with the letter u prefixed to bar, for instance, these strings should not match the regular expression: ubar or fooubar. I tried /^.*[^u]?bar$/, but it doesn't work. How could we fix this?

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Which language or tool are you using? –  m.buettner Nov 16 '12 at 17:22
    
Rubular –  Doug Nov 16 '12 at 17:28
    
Please always include this in any regex question, because regex engine implementations can differ greatly. –  m.buettner Nov 16 '12 at 17:31
    
Oh, yes I didn't think. Thanks. –  Doug Nov 16 '12 at 17:35
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3 Answers

up vote 4 down vote accepted

Simply wrap the whole prefix in parentheses

^(.*[^u])?bar$

By doing this you only allow further preceding characters, if there was at least one non-u character before bar.

Alternatively, if your regex engine supports negative lookbehinds, you could do this:

^.*(?<!u)bar$

When this regex reaches the position before bar it looks at the character left of it and tries to match a u. If that is not possible, the match continues. If the u was found the lookbehind will make the pattern fail. This works both if there is a non-u character and if it's the beginning of the string.

As sawa pointed out in a comment, you don't even need the ^.* if you just want to check whether a string ends in bar:

(?<!u)bar$

Of course, if you want to include the whole string in the match for some reason (replacement or matching lines using multiline mode) then the ^.* is necessary. Note that in the first regex you cannot leave it out. However you could change it to

([^u]|^)bar$

Which would also avoid matching the whole string.

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Excellent. Thank you! –  Doug Nov 16 '12 at 17:23
1  
Even though your regex works, ^.* is unnecessary. –  sawa Nov 16 '12 at 18:51
    
@sawa yep that is true. I just wasn't sure about the usecase. For instance, if the OP is using the original pattern with multiline mode to find lines that end in bar, it might be desirable to capture the whole line in the match. –  m.buettner Nov 16 '12 at 18:55
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Group everything preceding the ? in (). This has the effect of saying "the whole optional structure preceding bar, if present, must not end in u".

For example in JavaScript:

/^(.*[^u])?bar$/.test("foobar");
// true

/^(.*[^u])?bar$/.test("fooubar");
// false

/^(.*[^u])?bar$/.test("bar");
// true

/^(.*[^u])?bar$/.test("ubar");
// false
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Awesome, thanks! –  Doug Nov 16 '12 at 17:23
1  
Share your wisdom, downvoter. –  Michael Berkowski Nov 16 '12 at 18:53
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Use a lookbehind:

def match_bar? string
  string =~ /(?<!u)bar\z/
end

%w{foobar ubar fooubar}.each do |example|
  puts "#{example} does #{match_bar?(example) ? '' : 'not'} match the regex."
end

Output:

foobar does  match the regex.
ubar does not match the regex.
fooubar does not match the regex.
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1  
Fixed. I find \z or \Z to be more useful than $ in most cases. –  Catnapper Nov 16 '12 at 19:05
    
I guess it's a matter of taste. I find them less readable, so I prefer to use $ when I know I'm not using multiline mode anyway. –  m.buettner Nov 16 '12 at 19:07
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