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I have a trivial problem with regular expression in bash.

#!/bin/bash
FNAME=$1
echo ${FNAME//.*\/tests\//}

I want to remove everything before /test/ including the /test/ as well. Because of some reasons ".*" doesn't work.

$ ./eclipse/unittest.sh /foo/tests/bar
/foo/tests/bar

How do I select anything in bash reg exp?

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4  
Parameter expansion are not REGEX –  sputnick Sep 29 '12 at 22:29
1  
The correct usage of the substitution operator would be ${FNAME//*\/tests\/}, but the accepted answer is cleaner. –  chepner Sep 29 '12 at 22:47

1 Answer 1

up vote 3 down vote accepted

You can use # followed by a pattern to remove everything up to and including the pattern. It will use the shortest match:

function f {
    echo ${1#*/tests/}
}

$ f /foo/tests/bar
bar
$ f /foo/tests/bar/tests/last
bar/tests/last

If you want to use the longest match, you can use ##:

function f {
    echo ${1##*/tests/}
}

$ f /foo/tests/bar
bar
$ f /foo/tests/bar/tests/last
last
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Perfect! Thank you. –  Lukasz Kujawa Sep 29 '12 at 22:28

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