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What does the sed expression: G; s/\n/&&/; /^\([ ~-]*\n\).*\n\1/d; s/\n//; h; P do? Exactly what does it match and how does it match it?

It's from todo.sh. In context:

archive()
{
    #defragment blank lines
    sed -i.bak -e '/./!d' "$TODO_FILE"                     ## delete all empty lines
    [ $TODOTXT_VERBOSE -gt 0 ] && grep "^x " "$TODO_FILE"  ## if verbose mode print completed tasks..
    grep "^x " "$TODO_FILE" >> "$DONE_FILE"                ## append completed tasks to $DONE_FILE
    sed -i.bak '/^x /d' "$TODO_FILE"                       ## delete completed tasks
    cp "$TODO_FILE" "$TMP_FILE"


    sed -n 'G; s/\n/&&/; /^\([ ~-]*\n\).*\n\1/d; s/\n//; h; P' "$TMP_FILE" > "$TODO_FILE"


    ## G;                       Add a newline
    ## s/\n/&&/;                Substitute newline with && (two newlines?)
    ## /^\([ ~-]*\n\).*\n\1/d;  Delete duplicate lines???
    ## s/\n//                   Remove newlines
    ## h                        Hold: copy pattern space to buffer
    ## P                        Print first line of pattern space
    if [ $TODOTXT_VERBOSE -gt 0 ]; then
    echo "TODO: $TODO_FILE archived."
    fi
}
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4  
The explanation is right in the comments after the sed, isn't it? –  Peter G. May 8 '11 at 21:13
    
@Peter: I added those comments myself while trying to decipher the sed expression. It's my progress so far... The third segment is a doozy (backreference on the right hand side?), and I'm not sure how all the segments end up interacting with each other. –  Leftium May 8 '11 at 21:22

2 Answers 2

up vote 7 down vote accepted

Ok, you've got some of the story already. Recall that the sed expression is executed for each input line. So the G at the beginning appends the contents of the hold space to the current line (with a newline in between). The contents of the hold space is empty initially but expanded by the h command at the end of each input cycle.

Then s/\n/&&/ duplicates the first newline only, the one between the current line and what was grabbed from the hold space. This is in preparation for the next command. /^\([ -~]*\n\).*\n\1/ indeed matches if the current line is identical to a line in the hold space:
    ^\([ -~]*\n\) matches a line at the beginning of the buffer¹
        Note that this matches only if the line contains only printable ASCII characters.
        If your system supports locales, ^\([[:print:]]*\n\) would be better.
    .*\n matches at least one subsequent line
    \1 matches a line identical to the first line
The extra newline added by the previous s command takes care of the case when the duplicate is the very first line from the hold space. The point of the \n\1 is to “anchor” the duplicate at the beginning of a line, otherwise bar would be considered a duplicate of foobar. If the current line is a duplicate, the d command discards it and execution branches to the next line.

If the current line is not a duplicate, s/\n// discards that extra newline (again, no g modifier, so only the first newline is removed). Then the h command results in the hold space containing what it contained before, with the current line prepended. Finally P prints the current input line.

Ok, now what does the hold space contain? It starts empty, then gets each successive line prepended unless it's a duplicate. So the hold space contains the input lines, in reverse order, minus the duplicates.

¹ Uh, I don't know how you did that, but that should be [ -~], not [ ~-] which wouldn't make any sense.


Here's another way of doing this, if you have a POSIX-conforming set of tools (Single Unix v2 is good enough).

<"$TMP_FILE" \
nl -s: |              # add line numbers
sort -t: -k2 -u |     # sort, ignoring the line numbers, and remove duplicates
sort -t: -k1 -n |     # sort by line number
cut -d: -f2-          # cut out the line numbers

Oh, you wanted to do this legibly and concisely? Just use awk.

<"$TMP_FILE" awk '!seen[$0] {++seen[$0]; print}'

If the current line hasn't been seen yet, mark it as seen, and print it.

Note that like the sed method, the awk method essentially stores the whole file in memory. The method above using sort has the advantage that only sort needs to keep more than one line of input at a time, and it's designed for this.

Of course, if you don't care about the order of the lines, it's as simple as sort -u.

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Thanks for the clear walk-through! Can you explain in more detail how /^\([ ~-]*\n\).*\n\1/ works? –  Leftium May 8 '11 at 22:20
    
I’ve got a lot of respect for anybody who can unravel sed scripts. Hm, what’s nl? That’s not a standard Unix command, is it? It’s not on either of OpenBSD or Mac OS X (FreeBSD). Oh wait, I just found one on Solaris. SystemV then? –  tchrist May 8 '11 at 22:30
    
@tchrist: Huh, so that's yet another bit of POSIX that OpenBSD lacks. nl might not have been in V7, but it's in Single UNIX v2, FreeBSD 4.5, NetBSD 1.4, OSX 10.4, Linux (GNU) since I don't know when. –  Gilles May 8 '11 at 22:49
    
I’ve used BSD since PDP-11’s, and I’ve never heard of nl. …time passes… Ok, it was made part of dot-2 in 2004 with the “Issue 6” update of 1003.2. That’s like yesterday — heck, I dunno if I’ve even rebooted since then. :) More seriously, that’s all part of the XSI extension set, which is not mandatory: “A POSIX-conformant system may support the XSI extensions of the Single UNIX Specification.” –  tchrist May 8 '11 at 23:35
    
@Gilles: apparently [ ~-] works... It was actually changed from [ -~] to fix a bug: github.com/harding/todo.txt-cli/commit/… –  Leftium May 8 '11 at 23:38

After Gilles presented his excellent answer I found Famous Sed One-Liners Explained, which includes this exact sed expression; adding here for reference:

70. Delete duplicate, nonconsecutive lines from a file.

sed -n 'G; s/\n/&&/; /^\([ -~]*\n\).*\n\1/d; s/\n//; h; P'

This is a very tricky one-liner. It stores the unique lines in hold buffer and at each newly read line, tests if the new line already is in the hold buffer. If it is, then the new line is purged. If it's not, then it's saved in hold buffer for future tests and printed.

A more detailed description - at each line this one-liner appends the contents of hold buffer to pattern space with "G" command. The appended string gets separated from the existing contents of pattern space by "\n" character. Next, a substitution is made to that substitutes the "\n" character with two "\n\n". The substitute command "s/\n/&&/" does that. The "&" means the matched string. As the matched string was "\n", then "&&" is two copies of it "\n\n". Next, a test "/^([ -~]\n).\n\1/" is done to see if the contents of group capture group 1 is repeated. The capture group 1 is all the characters from space " " to "~" (which include all printable chars). The "[ -~]" matches that. Replacing one "\n" with two was the key idea here. As "([ -~]\n)" is greedy (matches as much as possible), the double newline makes sure that it matches as little text as possible. If the test is successful, the current input line was already seen and "d" purges the whole pattern space and starts script execution from the beginning. If the test was not successful, the doubled "\n\n" gets replaced with a single "\n" by "s/\n//" command. Then "h" copies the whole string to hold buffer, and "P" prints the new line.

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