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Basically I want to take as input text from a file, remove a line from that file, and send the output back to the same file. Something along these lines if that makes it any clearer.

grep -v 'seg[0-9]\{1,\}\.[0-9]\{1\}' file_name > file_name

however, when I do this I end up with a blank file. Any thoughts?

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7 Answers 7

up vote 11 down vote accepted

You cannot do that. You can use a temporary file though.

grep -v 'seg[0-9]\{1,\}\.[0-9]\{1\}' file_name > tmpfile
cat tmpfile > file_name

like that, consider using mktemp to create the tmpfile but note that it's not POSIX.

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9  
The reason why you can't do that: bash processes the redirections first, then executes the command. So by the time grep looks at file_name, it is already empty. –  glenn jackman Jul 14 '11 at 17:27

Use sponge for this kind of tasks. Its part of moreutils.

Try this command:

 grep -v 'seg[0-9]\{1,\}\.[0-9]\{1\}' file_name | sponge file_name
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2  
Thanks for the answer. As a possibly helpful addition, if you're using homebrew on Mac, can use brew install moreutils. –  Anthony Panozzo Feb 6 '13 at 2:12
    
Or sudo apt-get install moreutils on Debian-based systems. –  Jonah Aug 15 '14 at 16:45

Use sed instead:

sed -i '/seg[0-9]\{1,\}\.[0-9]\{1\}/d' file_name
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1  
iirc -i is GNU only extension, just noting. –  c00kiemon5ter Jul 14 '11 at 16:44
    
@c00kiemon5ter: Not GNU-only, it works on Mac OS X, too. –  user405725 Jul 14 '11 at 17:09

There's also ed (as an alternative to sed -i):

# cf. http://wiki.bash-hackers.org/howto/edit-ed
printf '%s\n' H 'g/seg[0-9]\{1,\}\.[0-9]\{1\}/d' wq |  ed -s file_name
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One liner alternative - set the content of the file as variable:

VAR=`cat file_name`; echo "$VAR"|grep -v 'seg[0-9]\{1,\}\.[0-9]\{1\}' > file_name
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GNU awk 4.1

awk -i inplace '!/seg[0-9]\{1,\}\.[0-9]\{1\}/' file_name
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maybe you can do it like this:

grep -v 'seg[0-9]\{1,\}\.[0-9]\{1\}' file_name | cat > file_name
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