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is there possiblity how to include levenshtein distance in regular expression query?

Except making union between permutations. Like searching "hello" with L.d. 1

.ello | h.llo | he.lo | hel.o | hell.

this is a lot stupid and un-usable for larger numbers of L.d.

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2 Answers 2

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is there possiblity how to include levenshtein distance in regular expression query?

No, not in a sane way. Implementing - or using an existing - Levenshtein distance algorithm is the way to go.

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ok, i will wait if someone else will answer, otherwise i will mark ur answer as correct :-) –  d1x Apr 10 '12 at 11:30

You can generate the regex programmatically. I will leave that as an exercise for the reader, but for the output of this hypothetical function (given an input of "word") you want something like this string:

"^(?>word|word.|wor.d|wo.rd|w.ord|.word|wor.?|wo.?d|w.?rd|.?ord)$"

The length of that string, given a word of length n, will be

2*(n**2) + 6*n + 8

Which is reasonable, I think.

You pass this to your regex generator (like in Ruby it would be Regexp.new(str)) and bam, you got a matcher for ANY word with a levenshtein distance of 1 from a given word.

(Levenshtein distances of 2 are far more complicated.)

Note use of the (?> non-backtracing construct which means the order of the individual |'d expressions in that output matter.

I could not think of a way to "compact" that expression.

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