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I get this error:

java.util.regex.PatternSyntaxException: Look-behind group does not have an
    obvious maximum length near index 22
([a-z])(?!.*\1)(?<!\1.+)([a-z])(?!.*\2)(?<!\2.+)(.)(\3)(.)(\5)
                      ^

I'm trying to match COFFEE, but not BOBBEE.

I'm using java 1.6.

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3 Answers 3

up vote 4 down vote accepted

Java doesn't support variable length in look behind.
In this case, it seems you can easily ignore it (assuming your entire input is one word):

([a-z])(?!.*\1)([a-z])(?!.*\2)(.)(\3)(.)(\5)

Both lookbehinds do not add anything: the first asserts at least two characters where you only had one, and the second checks the second character is different from the first, which was already covered by (?!.*\1).

Working example: http://regexr.com?2up96

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To avoid this error, you should replace + with a region like {0,10}:

([a-z])(?!.*\1)(?<!\1.{0,10})([a-z])(?!.*\2)(?<!\2.{0,10})(.)(\3)(.)(\5)
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I was using this (?<=(OF[ ]{0,5})|(MIRS[ ]{0,5}))[0-9]+ and it was giving me the same error Look-behind group does not have an obvious maximum length near index 22 then after reading your comment i changed the * to {0,5} and it worked perfect. Wonder why java doesnt support this –  shabby Aug 17 '12 at 11:46
    
@shabby: It's a bug. bugs.sun.com/view_bug.do?bug_id=6695369 –  luobo25 Sep 27 '13 at 11:27

Java takes things a step further by allowing finite repetition. You still cannot use the star or plus, but you can use the question mark and the curly braces with the max parameter specified. Java determines the minimum and maximum possible lengths of the lookbehind.
The lookbehind in the regex (?

copy from Here

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