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How to give a pattern for new line in grep? New line at beginning, new line at end. Not the regular expression way. Something like \n.

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It's not clear what you want. new line at the beginning is a blank line and new line at end applies to every line in the file. Can you post an example? –  Blue Moon Sep 29 '12 at 12:11
    
Actually you can just use $. It's somewhat limited, but usable in simple cases. –  Krzysztof Jabłoński Feb 13 at 7:03

3 Answers 3

up vote 19 down vote accepted

grep patterns are matched against individual lines so there is no way for a pattern to match a newline found in the input.

However you can find empty lines like this:

grep '^$' file
grep '^[[:space:]]*$' file # include white spaces 
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try pcregrep instead of regular grep:

pcregrep -M "pattern1.*\n.*pattern2" filename

the -M option allows it to match across multiple lines, so you can search for newlines as \n.

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You can use this way...

grep -P '^\s$' file

-P is used for Perl regular expressions (an extension to POSIX grep). \s match the white space characters; if followed by *, it matches an empty line also. ^ matches the beginning of the line. $ matches the end of the line.

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-P is a GNU extension. I am fine for using it when the situation calls for it (typically lookahead/lookbehind), but POSIX grep can do this just file with [[:space:]]. –  jordanm Sep 29 '12 at 21:29
    
FWIW, Solaris' and BSD's grep manpages (didn't check others) both have a paragraph for -P. GNU is quite standard anyway. :) –  K3---rnc Jun 24 '13 at 5:09
    
+1 for perl regex :) –  mattexx Oct 30 at 18:03
    
From manual page: [-P] This option is not supported in FreeBSD. –  Marián Černý Dec 4 at 13:31

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