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my problem is, I try to strip a string at a start of a variable. I have done shopt -s exglob to get extended pattern matching.

    a="HelloDolly"
    echo "${a#[A-Z]+([a-z])}"

I thought that +([a-z]) mean as much lower case letter as possible. And that [A-Z]+([a-z]) should match Hello

should return Dolly but I get lloDolly back. If give / instead # a try

    echo "${a/[A-Z]+([a-z])}"

I get back nothing. Looks like the Parameter Expansions is caseinsensitive.

Thanks everybody who could give me an hint.

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echo "${a/[A-Z]+([a-z])}" should work for you, I get Dolly as output. –  pb2q Aug 18 '12 at 18:32

1 Answer 1

Using a single #, you get the shortest possible match. "He" is the shortest possible match of one uppercase letter and one or more lowercase letters. Switch to double # to get the longest possible match "Hello"

echo "${a##[A-Z]+([a-z])}"

To avoid issues with locale-based interpretation of character ranges, use character classes instead:

echo "${a##[[:upper:]]+([[:lower:]])}"
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it gives empty string for me. extglob is on. –  nshy Aug 18 '12 at 19:22
1  
This page may be relevant. To be safe, use character classes instead of ranges, as shown in the updated answer. –  chepner Aug 18 '12 at 19:30
    
Now it works [like a charm - or comment would be too short]. –  nshy Aug 18 '12 at 19:32
    
oh neat you have two accounts –  ant Aug 18 '12 at 20:29
    
Thanks for your hint. The solution with ## worked as expected. But could you please give some more details about the problem with the locale-based interpretation of character ranges. Because ${a/[[:upper:]]+([[:lower:]])} worked as expected and ${a/[A-Z]+([a-z])} not. How could I see how which characters are in a character range? –  user1609038 Aug 19 '12 at 9:23

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