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I have a file that goes something like:

{{}} line 1
{{}} line 2
line 3
line 4
{{}} line 5
line 6

What I want to do is move the last line of the file prefixed by {{}} to be after the second to last line with {{}}, so the end result would be:

{{}} line 1
{{}} line 2
{{}} line 5
line 3
line 4
line 6

It has to be bash (calling sed, perl, head, or other commands, is fine).

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3 Answers 3

up vote 3 down vote accepted

One way with awk:

awk '$1!="{{}}"{move[++i]=$0;next}1 END{for(x=1;x<=length(move);x++)print move[x]}' file
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Works great. Thank you. –  user137369 Jun 23 '13 at 22:21
    
@user137369 You're welcome. You can further shorten it to: awk '$1!="{{}}"{move[++i]=$0;next}1 END{for(;x<length(move);)print move[++x]}' file –  jaypal Jun 24 '13 at 4:04
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If line begins with {{}}, print it else save it for later,

perl -ne 'if (/^\Q{{}}/) {print}else{push @r,$_} }{print @r' file
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It works to group them, but it’s moving the files with the prefix to the end of the file. How can I keep them at the top? –  user137369 Jun 23 '13 at 21:59
    
what you've got, lines with {{}} at the top or bottom? –  Сухой27 Jun 23 '13 at 22:03
    
I need the lines with {{}} to be grouped at the top. That command seems to be grouping them at the bottom. –  user137369 Jun 23 '13 at 22:05
    
@user137369 It does appear to be working just as your expected result show, i.e. group {{}} at the top. Is your sample data true representation of your actual data? –  jaypal Jun 23 '13 at 22:09
    
@user137369 if you want to reverse "groups", replace if with unless –  Сухой27 Jun 23 '13 at 22:09
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Code for GNU :

sed -n 's/^\({{}}\)/\1/p;tk;H;:k;${x;s/\n//;p};d' file

$cat file
{{}} line 1
{{}} line 2
line 3
line 4
{{}} line 5
line 6

$sed -n 's/^\({{}}\)/\1/p;tk;H;:k;${x;s/\n//;p};d' file
{{}} line 1
{{}} line 2
{{}} line 5
line 3
line 4
line 6
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