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I want to use sed to delete part of code (paragraph) beginning with a pattern and ending with a semicolon (;).

Now I came across an example to delete a paragraph separated by new lines

sed -e '/./{H;$!d;}' -e 'x;/Pattern/!d' 

I'm confused how to use semicolon not as a delimiter but as a pattern instead. Thanks.

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Please show example data and expected results. –  potong Feb 13 '12 at 12:56
    
Yes sure input, pastebin.com/hHXJjtiS –  Harsh Feb 13 '12 at 17:20
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2 Answers

up vote 2 down vote accepted

Other option is to use the GNU extension of address range.

Next example means: delete everything from a line which begins with pattern until a line ending with semicolon.

sed '/pattern/,/;$/ d' infile

EDIT to comment of Harsh:

Try next sed command:

sed '/^\s*LOG\s*(.*;\s*$/ d ; /^\s*LOG/,/;\s*$/ d' infile

Explanation:

/^\s*LOG\s*(.*;\s*$/ d            # Delete line if begins with 'LOG' and ends with semicolon.
/^\s*LOG/,/;\s*$/ d               # Delete range of lines between one that begins with LOG and 
                                  # other that ends with semicolon.
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the code you show does not rely on any GNU extensions to address range processing. This would work with the original sed 20+ years ago ;-) Good luck to all! –  shellter Feb 13 '12 at 16:17
    
Would work only if input is in single line. correct me if i'm wrong. So shouldn't hold buffer be required. Sample pastebin.com/hHXJjtiS –  Harsh Feb 13 '12 at 17:17
    
@shellter: Thanks, fixed. –  Birei Feb 13 '12 at 18:06
    
@Harsh: I added the sed scripts that gives the output you expect. –  Birei Feb 13 '12 at 18:07
    
thank you all. I learned few new things related to sed. (i'm new to post to stackoverflow, so pardon my formatting, couldn't even enter new line, so used pastebin). Thanks –  Harsh Feb 13 '12 at 18:11
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This might work for you:

cat <<! >file
> a
> b
> ;
> x
> y
> ;
> !
sed '/^[^;]*$/{H;$!d};x;s/;//;/x/!d' file  

x
y

Explanation:

  • For any line the does not have a single ; in it /^[^;]*$/
  • Append the above line to the hold space (HS) and delete the pattern space (PS) and begin the next iteration unless it is the last line in the file. {H;$!d}
  • If a line is empty /^$/ or the last line of the file:
    • Swap to the HS x
    • Delete the first ; s/;//
    • Search for pattern (x) and if not found delete the PS /x/!d

N.B. This finds any pattern /x/ to find the beginning pattern use /^x/.

EDIT:

After having seen your data and expected result, this may work for you:

sed '/^\s*LOG(.*);/d;/^\s*LOG(/,/);/d' file
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thank you. it solves my doubt. –  Harsh Feb 13 '12 at 19:43
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