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How can I find all words with at least one non latin letter (arabic, chinese...) in them using regex.h library?

cityدبي

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See stackoverflow.com/questions/2124010/… and its answer, hope it helps. –  Paolo Stefan Sep 19 '12 at 7:49

3 Answers 3

up vote 2 down vote accepted

How about:

(?=\pL)(?![a-zA-Z])

This will match a letter in any alphabet that is not a latin letter:

not ok - cityدبي
ok - city
not ok - دبي
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Won't this match latin characters with accents, like ąęśćżół? I have to say that I'm quite irritated by how some English-speaking people apparently treat accented latin letters as second-class. –  Janek Warchol Jul 2 at 11:37

Try this :

[a-zA-Z]*[^A-Za-z \d]+[a-zA-Z]*

Means : One or more non latin letter preceded or followed by one or more latin letter i.e. a word containing atleast 1 non latin character. See demo with some random text: http://regexr.com?326s3

You may need to adjust this regex to your needs,and include things like digits,special characters,word boundaries as per your input.

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just use [^a-zA-Z] if not match, it should contain an international character...

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-1 or a space, or a period ... Depends on the locale and encoding anyway. –  tripleee Sep 19 '12 at 8:25
    
@tripleee I think regex.h support unicode. And I dont think we need a more complicated regular expression to distinct a pure latin word... –  frogwang Sep 19 '12 at 8:39

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