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I have not been able to find a proper regex to match any string NOT ending with some condition. For example I don't want to match anything ending with an a.

This matches

b
ab
1

This doesn't match

a
ba

I know the regex should be ending with $ to mark the end, though I don't know what should preceed it.

Edit: The original question doesn't seem to be a legit example for my case. So: how to handle more than one character? Say anything not ending with ab?

I've been able to fix this, using this thread:

.*(?:(?!ab).).$

Though the downside with this is, it doesn't match a string of one character.

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3  
This is not a duplicate of the linked question -- matching against only the end requires a different syntax than matching anywhere within a string. Just look at the top answer here. –  jaustin May 4 at 22:38
    
I agree, this is not a duplicate of the linked question. I wonder how we can remove the above "marks"? –  Alan Cabrera Jun 21 at 2:49
    
There is no such link that I can see. –  Alan Cabrera Jun 21 at 15:42

5 Answers 5

up vote 27 down vote accepted

You don't give us the language, but if your regex flavour support look behind assertion, this is what you need:

.*(?<!a)$

(?<!a) is a negated lookbehind assertion that ensures, that before the end of the string (or row with m modifier), there is not the character "a".

See it here on Regexr

You can also easily extend this with other characters, since this checking for the string and isn't a character class.

.*(?<!ab)$

This would match anything that does not end with "ab", see it on Regexr

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2  
+1 I was thinking on how to achieve this without [^a]. –  HamZa May 6 '13 at 12:33
    
I tried this too! How come RegexPAL gives another result? –  Aquillo May 6 '13 at 12:43
1  
I don't know RegexPAL, but regexes are different in all languages and lookbehind assertions are an advanced feature that is not supported by all. –  stema May 6 '13 at 12:47
2  
regexpal is a javascript based regex tester and javascript doesn't support lookbehind assertions which is sad –  HamZa May 6 '13 at 12:58

Use the not (^) symbol:

.*[^a]$

If you put the ^ symbol at the beginning of brackets, it means "everything except the things in the brackets." $ is simply an anchor to the end.

For multiple characters, just put them all in their own character set:

.*[^a][^b]$
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+1, with the caveat that this does not match the empty string (which may or may not be as intended), so the meaning is rather "any character that is not in the brackets". –  larsmans May 6 '13 at 12:12
    
@larsmans: It does match the empty string though... a<space>b<space> will match the last <space> only. –  user195488 May 6 '13 at 12:14
    
@larsmans Um... it does match the empty string –  Doorknob May 6 '13 at 12:14
2  
@0A0D: a string containing whitespace is not an empty string. –  larsmans May 6 '13 at 12:19
2  
@0A0D Actually, that's not up for debate, that's a fact –  Doorknob May 6 '13 at 12:22
.*[^a]$

the regex above will match strings which is not ending with a.

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I've extended my question since the original example didn't seem to fully match my case. Can you solve it? –  Aquillo May 6 '13 at 12:30

Try this

/.*[^a]$/

The [] denotes a character class, and the ^ inverts the character class to match everything but an a.

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Anything that matches something ending with a --- .*a$ So when you match the regex, negate the condition or alternatively you can also do .*[^a]$ where [^a] means anything which is not a

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