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Say I have a script with a number of lines beginning foobar

I would like to move all of the lines to the end of the document while keeping their order

e.g. go from:

# There's a Polar Bear
# In our Frigidaire--
foobar['brangelina'] <- 2
# He likes it 'cause it's cold in there.
# With his seat in the meat
foobar['billybob'] <- 1
# And his face in the fish

to

# There's a Polar Bear
# In our Frigidaire--
# He likes it 'cause it's cold in there.
# With his seat in the meat
# And his face in the fish
foobar['brangelina'] <- 2
foobar['billybob'] <- 1

This is as far as I have gotten:

grep foobar file.txt > newfile.txt
sed -i 's/foobar//g' foo.txt
cat newfile.txt > foo.txt
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2  
Hint: the output file is just all the lines not beginning with foobar, followed by all the lines beginning with foobar. Two grep commands. –  Amnon Nov 3 '11 at 21:01
    
@Amnon thanks for pointing that out. makes sense, but I still am not sure how to say "not" in bash –  Abe Nov 3 '11 at 21:03
    
@Amnon -v got it –  Abe Nov 3 '11 at 21:04

5 Answers 5

up vote 3 down vote accepted

This might work:

sed '/^foobar/{H;$!d;s/.*//};$G;s/\n*//' input_file

EDIT: Amended for the corner case when foobar is on the last line

share|improve this answer
    
diff shows it is the same as the other two, but the one liner takes it (unless something more awesome appears). It would be great if you could explain what {H;d};$G;s/\n/ does, for extra credit. –  Abe Nov 3 '11 at 21:15
1  
All lines that don't contain the string foobar pass straight through. Those lines that contain foobar are appended to the a register called the hold space, then the pattern space (the current line) is deleted. On the last line $ the hold space (which contains all the foobar lines) is appended to the pattern space, ready to be printed but first an empty line is deleted. –  potong Nov 3 '11 at 21:27
grep -v ^foobar file.txt >newfile.txt
grep ^foobar file.txt >>newfile.txt

no need for temporary file

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that doesn't work, and not only because you misspelled grerp –  Abe Nov 3 '11 at 21:19
    
Abe: then please tell me why, because it seems to work fine on my machine –  Dadam Nov 3 '11 at 21:26
    
You have two different output file names. –  tripleee Nov 4 '11 at 6:39
    
LOL, finaly I see that I deserve the -1. Repairing this as well. –  Dadam Nov 4 '11 at 7:56
    
@Dadam now I see your point about not having a temporary file. Thanks –  Abe Nov 4 '11 at 17:12

This will do:

grep -v ^foobar file.txt > tmp1.txt
grep ^foobar file.txt > tmp2.txt
cat tmp1.txt tmp2.txt > newfile.txt
rm tmp1.txt tmp2.txt

The -v option returns all the lines which do not match the given pattern. The ^ marks the beginning of a line, so ^foobar matches lines beginning with foobar.

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why the carats? –  David Nov 3 '11 at 21:11
    
@David Because Abe wants to move lines beginning with foobar, and ^ marks the beginning of a line. –  Bolo Nov 3 '11 at 21:16
    
thanks... and +1 I've updated my answer –  David Nov 3 '11 at 21:17
grep -v ^foobar file.txt > file1.txt
grep ^foobar file.txt > file2.txt
cat file2.txt >> file1.txt
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You can also do:

vim file.txt -c 'g/^foobar/m$' -c 'wq'

The -c switch means an Ex command follows, the g commands operates on all lines containing the pattern given, and the action is here m$ which means “move to end of file” (it preserves order). wq weans “save and exit vim”.

If this is too slow you can also prevent vim from reading vimrc:

vim -u NONE file.txt -c 'g/^foobar/m$' -c 'wq'
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