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I know that

cat foo | sed '$!N;$!D'

will print out the last two lines of the file foo, but I don't understand why.

I have read the man page and know that N joins the next line to the currently processed line etc - but could someone explain in 'good english' that matches the order of operation what is happening here, step by step?

thanks!

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1  
piping cat foo to some process is less efficient than doing 2nd process < foo and it is called a useless use of cat, which you'll often find abbreviated as UUOC. –  Benoit Jan 27 '11 at 13:57
    
agreed but i wasn't trying to start another demoggification argument of old - rather it was just an example. In real use I am munging together multiple files and processing before using $!N to add a column etc. In my searches I found reference to the above.I thought the example given above was a good one to have explained and still has validity in clarity I think. –  wibble Jan 27 '11 at 14:11
    
@Benoit: To nit-pick your nit-picking ;) the redirection is often unnecessary: 2nd-process foo. –  Dennis Williamson Jan 27 '11 at 17:26
1  
@Dennis Williamson: Yes, for some commands that accept a filename. –  Benoit Jan 28 '11 at 5:23

2 Answers 2

up vote 2 down vote accepted

Here is what that script looks like when run through the sedsed debugger (by Aurelio Jargas):

$ echo -e 'a\nb\nc\nd' | sed '$!N;$!D'        PATT:^a$
PATT:^a$
COMM:$ !N
PATT:^a\Nb$
COMM:$ !D
PATT:^b$
COMM:$ !N
PATT:^b\Nc$
COMM:$ !D
PATT:^c$
COMM:$ !N
PATT:^c\Nd$
COMM:$ !D
PATT:^c\Nd$
c
d

I've filtered out the lines that would show hold space ("HOLD") since it's not being used. "PATT" shows what's in pattern space and "COMM" shoes the command about to be executed. "\N" indicates an embedded newline. Of course, "^" and "$" indicate the beginning and end of the string.

!N appends the next line and !D deletes the previous line and loops to the beginning of the script without doing an implicit print. When the last line is read, the $! tests fail so there's nothing left to do and the script exits and performs an implicit print of what remains in the pattern space (since -n was not specified in the arguments).

Disclaimer: I am a contributor to the sedsed project and have made a few minor improvements including expanded color support, adding the ^ line-beginning indicator and preliminary support for Python 3. The bleeding edge version (which hasn't been touched lately) is here.

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Thanks for sharing sedsed, that looks like a very useful tool! –  Sébastien Le Callonnec Jan 28 '11 at 9:41

$!N;$!D is a sed program consisting of two statements, $!N and $!D.

$!N matches everything but the last line of the last file of input ($ negated by !) and runs the N command on it, which as you said yourself appends the next line of input to the line currently under scrutiny (the "pattern space"). In other words, sed now has two lines in the pattern space and has advanced to the next line.

$!D also matches everything but the last line, and wipes the pattern space up to the first newline. D also prevents sed from wiping the entire pattern space when reading the next line.

So, the algorithm being executed is roughly:

For every line up to but not including the last {
    Read the next line and append it to the pattern space
    If still not at the last line
        Delete the first line in the pattern space
}
Print the pattern space
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... "and wipes the pattern space up to the first newline. D also prevents sed from wiping the entire pattern space when reading the next line" just this part that is confusing me now. Do you think you could give an example where it processes a file containing four lines say, step-by-step? –  wibble Jan 27 '11 at 14:38
    
@wibble: sed usually overwrites the pattern space when reading the next line. D prevents this. What kind of example are you looking for, one with D? –  larsmans Jan 27 '11 at 14:44

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