26

Example Words: a, akkka, akokaa, kokoko, kakao, oooaooa, kkako, kakaoa

I need the regexp witch gives words with 2 or less 'a' but not the words without 'a'

Result: a, akka, kakao, oooaooa, kkako

Ok actually I am using:

SELECT word FROM dictionary_gr WHERE word REGEXP 'λ{2,3}' LIMIT 0 , 30

this returns 0 lines there are words with 2 λ's and 3 λ's

1

3 Answers 3

42
select *  
from table  
where  LENGTH(name) - LENGTH(REPLACE(name, 'a', '')) between 1 and 2

Updated to use between.

12
  • Example: baaa => b. LENGTH(b) <= 1. But original string contains more than 2 'a's.
    – Simon
    Commented Jan 4, 2013 at 12:53
  • @simon that is a completely different query than what I am using. Further why are you taking the length of b?
    – Woot4Moo
    Commented Jan 4, 2013 at 12:54
  • @Woot4Moo Why? You first replace all 'a's with ''. After that you retrieve the length of the string without 'a's. Am I getting this wrong?
    – Simon
    Commented Jan 4, 2013 at 12:56
  • @Simon you were correct, I missed the initial subtraction, good eye :)
    – Woot4Moo
    Commented Jan 4, 2013 at 12:59
  • @Woot4Moo Now it's nearly perfect :) it must be greater than zero. You can use the BETWEEN-Operator with the operands 1 and 2
    – Simon
    Commented Jan 4, 2013 at 13:00
2

I don't know what MySQL supports in terms of lookaround assertions, but the following will do the trick:

^(?=.*a.*a?.*)(?!.*a.*a.*a.*).*$

We have a lookahead assertion that matches 1 or 2 a characters in the string. Then we have a negative lookahead that disregards 3 or more as anywhere in the string. Then the final pattern just matches the whole string, providing the first two assertions are satisfied.

If MySQL doesn't support lookarounds, then @Woot4Moo's answer would be the way to go.

0
-3

Quick and dirty:

Select word, number_of_as From
(
 Select 'akkka' word, REGEXP_COUNT('akkka', 'a') number_of_as From dual
)
Where number_of_as <= 2
/
3

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