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I want to make sure that a variable does not contain a specific character (in this case an 'α'), but the following code fails (returns 1):

FOO="test" && [[ $FOO =~ '^[^α]*$' ]]

Edit: Changed the pattern based on feedback from stema below to require matching only “non-'α'” characters from start to end.

Replacing 'α' with e.g. 'x' works as expected. Why does it fail with an 'α', and how can I make this work?

System info:

$ zsh --version
zsh 4.3.11 (i386-apple-darwin11.0)
$ locale
LANG="en_GB.UTF-8"
LC_COLLATE="en_GB.UTF-8"
LC_CTYPE="en_GB.UTF-8"
LC_MESSAGES="en_GB.UTF-8"
LC_MONETARY="en_GB.UTF-8"
LC_NUMERIC="en_GB.UTF-8"
LC_TIME="en_GB.UTF-8"
LC_ALL="en_GB.UTF-8"

Edit 2: I now tested on a Linux machine running Ubuntu 11.10 with zsh 4.3.11 with identical locale settings, and there it works – i.e. FOO="test" && [[ $FOO =~ '^[^α]*$' ]] returns success. I'm running Mac OS X 10.7.2.

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2 Answers 2

with this regex .*[^α].* you can't test that α is not in the string. What this is testing is: Is there ONE character in the string that is not a α.

If you want to check that there is not this character in the string, do this

FOO="test" && [[ $FOO =~ '^[^α]*$' ]]

this will check if the complete string from the start to the end consists of non "α" characters.

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Oh, right. So it will not necessarily need to match the whole string. Yeah, then you are right, it should be FOO="test" && [[ $FOO =~ '^[^α]*$' ]]. But that still fails. Changing the 'α' to an 'x' succeeds, so there must be something that fails when using the 'α' character here. –  beta Dec 18 '11 at 9:28

The simplest way of expressing this is with a negative look-ahead anchored at the start:

^(?!.*α)

This is saying "when looking forward from the start, I shouldn't be able to see α anywhere.

The advantage of using look-heads is they are non-capturing, so you can combine them with other capturing regexes, eg to find groups of numbers in quotes in input that doesn't contain a α, use this: ^(?!.*α)"(\d+)"

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