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I have a file like below. I would like to remove all lines before foo but leave just one last instance of bar. Input:

bar1
foo
bar1
bar2
bar3
foo
bar5
bar6
bar7
foo

Output:

bar1
foo
bar3
foo
bar7
foo

Can someone please help me how to accomplish this. I'm trying to use sed but all my attempts gave nothing.

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1  
How do you have bar6 in the desired output; shouldn't it be bar7? –  devnull Nov 8 '13 at 7:00

3 Answers 3

I hope it doesn't have to be sed. Use grep's -B option to print the matching line and 1 line before it:

grep -B 1 foo input > output
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-A if next line :) Good Answer –  Ashish Nov 8 '13 at 7:07
1  
I believe OP wants bar6 just before last foo. –  anubhava Nov 8 '13 at 7:18
2  
@anubhava I'm willing to bet that was a typo in the example. –  Barmar Nov 8 '13 at 7:19
    
Thanks Barmar! That is exactly what I need:) I should have found this solution myself though. –  sidorvm Nov 8 '13 at 7:44
    
@sidorvm: That's great, mark this answer as accepted. –  anubhava Nov 8 '13 at 7:49

Using awk you can do:

awk '/^foo/ {print a "\n" $0} /^bar/ {a=$0}' file
bar1
foo
bar3
foo
bar7
foo
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This might work for you (GNU sed):

sed '$!N;/^bar.*\nfoo/!D'  file
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