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I wish to test string match with some conditions

Condition: All keys must be present.

RegExp: ^(?=.*key1)(?=.*key3)(?=.*key2)

Text: rer key1 werjk key2 and key2 and key3 and end

Text matched!

And now my questions:

  • How can I test string to match any two keys out of three?
  • How can I test string to match any one key out of three?
share|improve this question
    
Do you mean "two or more" or "exactly two, but not three"? –  Tim Pietzcker Apr 11 '12 at 10:01
    
Exactly two, not count duplicate keys –  Dmitry Mordovin Apr 11 '12 at 10:06
    
So your example text should fail in both cases but succeed on rer key1 werjk key2 and key2? –  Tim Pietzcker Apr 11 '12 at 10:11
    
Yes,and match for "teh dsfe key1 and then key3" –  Dmitry Mordovin Apr 11 '12 at 10:12
    
I hope you realize that using something like String.indexOf(string, fragment) in java or something similar in other programming languages has better performance and will produce simpler code. –  U Mad Apr 11 '12 at 11:07

2 Answers 2

up vote 1 down vote accepted

This is not trivial to solve in a single regex. Well, it is trivial for the simple examples you showed, but it won't scale because you need to do the possible permutations yourself.

Two out of three (written in verbose mode for "readability":

^
(?:
 (?=.*key1)(?=.*key2)(?!.*key3)
 |
 (?=.*key1)(?=.*key3)(?!.*key2)
 |
 (?=.*key3)(?=.*key2)(?!.*key1)
)

One out of three:

^
(?:
 (?=.*key1)(?!.*key2)(?!.*key3)
 |
 (?=.*key2)(?!.*key1)(?!.*key3)
 |
 (?=.*key3)(?!.*key2)(?!.*key1)
)
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The good sample! All works like charm! Thank you Tim!!! –  Dmitry Mordovin Apr 11 '12 at 10:54
    
Great (if you have to use a regex). If not, I'd strongly advise you to use @dbaupp's solution. –  Tim Pietzcker Apr 11 '12 at 13:28

If the keys are plain strings, then this is a situation where not using regexes is probably more efficient and clearer. e.g. in Python (using the fact that True == 1 and False == 0):

def matchExactlyN(text, keys, n):
   return sum(key in text for key in keys) == n
>>> text = "rer key1 werjk" 
>>> matchExactlyN(text, ["key1","key2","key3"], 1) # 1 of 3
True
>>> matchExactlyN(text, ["key1","key2","key3"], 2) # 2 of 3
False
share|improve this answer
1  
+1, although I'd use key in text instead of text.find(key) != -1. –  Tim Pietzcker Apr 11 '12 at 12:32
    
@TimPietzcker, oh, yeah; that's much nicer :) –  dbaupp Apr 11 '12 at 12:33

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