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Suppose I have op(abc)asdfasdf and I need sed to print abc between the brackets. What would work for me? (Note: I only want the text between first pair of delimiters on a line, and nothing if a particular line of input does not have a pair of brackets.)

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up vote 4 down vote accepted
sed -n -e '/^[^(]*(\([^)]*\)).*/s//\1/p'

The pattern looks for lines that start with a list of zero or more characters that are not open parentheses, then an open parenthesis; then start remembering a list of zero or more characters that are not close parentheses, then a close parenthesis, followed by anything. Replace the input with the list you remembered and print it. The -n means 'do not print by default' - any lines of input without the parentheses will not be printed.

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it was helpful thanks. – Mark May 12 '11 at 2:30
$ echo 'op(abc)asdfasdf' | sed 's|[^(]*(\([^)]*\)).*|\1|'
abc
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awesome it works, could you please explain what the syntax mean so I can play around with it to solve similar problems? – Mark May 12 '11 at 2:21
    
@mark see answer from @jonathan-leffler above where he fully describe how it works. One difference is that I not use -n option (but probably should because when string not match, my one-liner will print original string). – Slava Semushin May 12 '11 at 2:28
    
I figured it out thanks! – Mark May 12 '11 at 2:30
    
@Mark: the explanation is essentially the same as in my answer; the solution is essentially the same as mine. One difference is that php-coder uses '|' where I use '/'. Otherwise, his solution prints lines that don't contain a matched pair of parentheses, whereas mine deletes lines that don't match - a difference of interpretation of your question. On the sample input, both solutions produce the same output. – Jonathan Leffler May 12 '11 at 2:30

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