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Is it possible to do simple arithmetic in sed addresses? Judging by the "addresses" manual section, the answer seems no. But maybe there is a workaround?

For example, how can I print the second last line of a file? It would be cool something like:

sed -n '$-1 p' file

But it obviously does not work... so I usually have to do multiple sed calls, first for identifying the line, then do the arithmetic using the shell $((expr)) and then finally call sed again. Like this:

sed -n "$(($(sed -n '$ =' file)-1)) p" file

Is there a "better", more compact, more readable way for doing arithmetics with sed addresses?


In a serious moment of procrastination, I decided to write a small script that quickly changes the xterm colorscheme. The idea is that you have the .Xresources a file with a start marker and an end marker:

...
START_MARKER
...
END_MARKER
...

and you want to delete everything that is between the markers, but not the markers themselves. Again, it would be great to do something like:

sed '/START_MARKER/+1,/END_MARKER/-1 d' file

...but you can't!

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1  
Could you explain more about what you're trying to do? it doesn't sound like sed is the right tool for the job. –  Thor Sep 8 '12 at 20:50
    
I added another example where it could be handy to do simple arithmetic with addresses, and that's exactly the problem I was trying to solve. –  mrucci Sep 8 '12 at 21:07
    
sed operates on streams of input data and as such does not know when it is at the second last line. It can only detect the last line –  knittl Sep 8 '12 at 21:13

5 Answers 5

up vote 3 down vote accepted

You're right, one can't directly do math in sed1, even addresses. But you can use some trickery to do what you want:

Second-last row:

$ seq 5 | sed -n -e '${ # On the last line
> g # Replace the buffer with the hold space
> p # and print it
> }
> h' # All lines, store the current line in the hold space.
4

Between START and END:

$ cat test.in
1
START
2
3
END
4
$ cat test.in | sed '/^START$/,/^END$/{
> /^START$/d
> /^END$/d
> p
> }
> d'
2
3
$ cat test.in | sed -n -e '/^START$/,/^END$/!d' -e '/^START/d' -e '/^END$/d' -e p
2
3

I'm using a BSD (mac) sed; on GNU systems you can use ; between lines instead of a newline. Or stick it in a script.

1: Sed is Turing complete, so you can do math, but it's unwieldy at best: http://rosettacode.org/wiki/A%2BB#sed

Yes, I know, UUOC; it's for illustration only

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So, the conclusion seems that there is no general way of dealing with arithmetic in addresses, just very specific workarounds. Even your solution to the "second last line problem" does not generalize to the "third last line problem"... –  mrucci Sep 8 '12 at 22:10

Delete the second last line:

sed ':r;$!{N;br};s/\n[^\n]*\(\n[^\n]*\)$/\1/' file

Delete everything inside markers:

sed ':r;$!{N;br};s/START_MARKER.*END_MARKER/START_MARKER\nEND_MARKER/' file

Far from being elegant, but kinda works.

As it was mentioned in the comments, sed operates on lines. However, you can read another line into the pattern space with N command. The two lines will now both be in the pattern space and will be separated with a \n. sed also has means of execution flow control, namely labels and conditional/unconditional branches. Everything is documented in man sed, also here is a full reference with examples. In the code above r is a label; $!{..} means "everywhere except last line, do ..; N;br reads another line and branches unconditionally to r again. So with :r;$!{N;br} you read all the input into the pattern space and then you operate on it as a single line with \n separating lines of the input.

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Could you please add a minimal explanation of what is happening in there :)? –  mrucci Sep 8 '12 at 21:33
    
@mrucci Sure, done. –  Lev Levitsky Sep 8 '12 at 21:43
    
And what sed version crosses newlines like that? None I've ever seen, nor the three I just tried explicitly (mac/BSD, GNU, busybox). –  Kevin Sep 8 '12 at 21:48
    
And . is explicitly defined as anything but a newline –  Kevin Sep 8 '12 at 21:49
    
@Kevin I'm not sure I understand what you mean by crossing newlines. The examples seem to work in my GNU sed version 4.2.1, and it does match newlines as .. –  Lev Levitsky Sep 8 '12 at 22:03

This might work for you (GNU sed);

sed '$!N;$s/.*\n//;P;D' file

and this works and should be easy to understand:

sed '/start/,/end/!d;//d' file

These are solutions to your questions but as for arithmetic best use awk or perl.

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You have some good sed suggestions, here's one based on GNU awk:

awk -v RS='START_MARKER|END_MARKER' 'RT == "END_MARKER"' infile
  • RS='START_MARKER|END_MARKER' splits input with the markers as separators.
  • RT is set to the matched separator, when it matches "END" the default block {print $0} is executed.

So for example if you wanted to print all but the last three lines, set FS to \n and apply the appropriate loop:

awk -v RS='START_MARKER|END_MARKER' -v FS='\n' 'RT == "END" { for(i=1; i<NF-3; i++) print $i }' infile
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You can use simple method to show second last line of the file.

TOTAL_LENGTH=$(cat file_name | wc -l)
SECOND_LAST_LINE=`expr $TOTAL_LENGTH - 1`
head -$SECOND_LAST_LINE | tail -1

If you want to delete the second last line from the file:

sed -i "$SECOND_LAST_LINE"d file_name
share|improve this answer
    
... or cat file | tail -2 | head -1. The question is about address manipulation in sed. Thanks anyway! –  mrucci Sep 8 '12 at 22:16
    
Useless use of cat. Two demerits. –  tchrist Sep 9 '12 at 1:09

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