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Using sed looking for the last lines before matching lines:

echo -e "aaa\nbbb\nccc\naaa\nccc\naaa\nbbb\nccc" | sed '/aaa/!d' | sed '$!d' #In which order and amount of aaa, bb, ccc, ..., nnn is optional

The example above works well. The second method:

echo -e "aaa\nbbb\nccc\naaa\nccc\naaa\nbbb\nccc" | sed -e '/aaa/!d' -e '$!d'

or:

echo -e "aaa\nbbb\nccc\naaa\nccc\naaa\nbbb\nccc" | sed -e '/aaa/!d;$!d'

The second method does not want me to work. The wikipedia someone wrote that sed can be combined. I do not want to work. What I'm doing wrong and I understand? How should properly look like?

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3 Answers 3

up vote 1 down vote accepted

This might work for you (GNU sed):

sed '/aaa/h;$!d;x' file

To catch the last match you must store it in the hold space then retrieve it at the end of the file.

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Thank you. Is perfectly. I understand you do not know how yet. I take to be "man sed". –  user2435244 May 30 '13 at 9:40
    
@potong You wrote this blindfolded, did't ya??? +1 –  jaypal singh May 30 '13 at 12:53
    
Sure @potong learned to sed. Guides to help you understand sed: man sed grymoire.com/Unix/Sed.html catonmat.net/blog/wp-content/uploads/2008/09/sed1line.txt Good tutoarial and a lot can be learned. You have to take care of the poor. –  user2435244 May 30 '13 at 18:41

What is the desired output? The first command gives a single line aaa. The second and third commands give no output. There's a solid reason for the discrepancy in the behaviour.

In the first command, you have:

sed '/aaa/!d' | sed '$!d'

The first sed here deletes each line that is not aaa. The output (3 lines containing aaa) is then filtered so that only the last line is printed.

In the second and third commands (which are equivalent), you have:

sed -e '/aaa/!d' -e '$!d'

The first operand deletes each line that is not aaa and starts the next cycle. The second operand deletes every remaining aaa because none of them is on the last line of input (the last line in the input is ccc, which has already been deleted by virtue of not being aaa). So the output you see is exactly what you should expect.

If you want just one aaa, consider using:

grep '^aaa$' | uniq

Though that's a long-winded way of writing:

echo aaa

Presumably, though, this is a simplified version of the real situation (which is a good thing).

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$ in the address means the last line. It does not change even if the last line is not being printed because of a previous command. In the pipeline, though, only the printed lines get to the second invocation of sed, and $ again means the last line - now only from the lines printed by the previous sed invocation.

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Thank you. A can be another way to catch the last line? –  user2435244 May 30 '13 at 6:59

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