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I have a text file with characters from different languages like (chinese, latin etc)

I want to remove all lines that contain these non-English characters. I want to include all English characters (a-b), numbers (0-9) and all punctuations.

How can I do it using unix tools like awk or sed.

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3 Answers 3

up vote 3 down vote accepted

Perl supports an [:ascii:] character class.

perl -nle 'print if m{^[[:ascii:]]+$}' inputfile
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Thanks. This worked perfectly. –  Sudar Jul 20 '12 at 11:15

You can use egrep -v to return only lines not matching the pattern and use something like [^ a-zA-Z0-9.,;:-'"?!] as pattern (include more punctuation as needed).

Hm, thinking about it, a double negation (-v and the inverted character class) is probably not that good. Another way might be ^[ a-zA-Z0-9.,;:-'"?!]*$.

You can also just filter for ASCII:

egrep -v "[^ -~]" foo.txt
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I need all the punctuation. So is it possible to just filter out all non-ascii characters, instead of specifying the list of allowed characters? –  Sudar Jul 20 '12 at 10:49

You can use Awk, provided you force the use of the C locale:

LC_CTYPE=C awk '! /[^[:alnum:][:space:][:punct:]]/' my_file

The environment variable LC_TYPE=C (or LC_ALL=C) force the use of the C locale for character classification. It changes the meaning of the character classes ([:alnum:], [:space:], etc.) to match only ASCII characters.

The /[^[:alnum:][:space:][:punct:]]/ regex match lines with any non ASCII character. The ! before the regex invert the condition. So only lines without any non ASCII characters will match. Then as no action is given, the default action is used for matching lines (print).

EDIT: This can also be done with grep:

LC_CTYPE=C grep -v '[^[:alnum:][:space:][:punct:]]' my_file
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