Issue
How can I read the first n lines and the last n lines of a file?
For n=2
, I read href="https://unix.stackexchange.com/questions/139089/how-to-read-first-and-last-line-from-cat-output">online that (head -n2 && tail -n2)
would work, but it doesn't.
$ cat x
1
2
3
4
5
$ cat x | (head -n2 && tail -n2)
1
2
The expected output for n=2
would be:
1
2
4
5
Solution
Chances are you're going to want something like:
... | awk -v OFS='\n' '{a[NR]=$0} END{print a[1], a[2], a[NR-1], a[NR]}'
or if you need to specify a number and taking into account @Wintermute's astute observation that you don't need to buffer the whole file, something like this is what you really want:
... | awk -v n=2 'NR<=n{print;next} {buf[((NR-1)%n)+1]=$0}
END{for (i=1;i<=n;i++) print buf[((NR+i-1)%n)+1]}'
I think the math is correct on that - hopefully you get the idea to use a rotating buffer indexed by the NR modded by the size of the buffer and adjusted to use indices in the range 1-n instead of 0-(n-1).
To help with comprehension of the modulus operator used in the indexing above, here is an example with intermediate print statements to show the logic as it executes:
$ cat file
1
2
3
4
5
6
7
8
.
$ cat tst.awk
BEGIN {
print "Populating array by index ((NR-1)%n)+1:"
}
{
buf[((NR-1)%n)+1] = $0
printf "NR=%d, n=%d: ((NR-1 = %d) %%n = %d) +1 = %d -> buf[%d] = %s\n",
NR, n, NR-1, (NR-1)%n, ((NR-1)%n)+1, ((NR-1)%n)+1, buf[((NR-1)%n)+1]
}
END {
print "\nAccessing array by index ((NR+i-1)%n)+1:"
for (i=1;i<=n;i++) {
printf "NR=%d, i=%d, n=%d: (((NR+i = %d) - 1 = %d) %%n = %d) +1 = %d -> buf[%d] = %s\n",
NR, i, n, NR+i, NR+i-1, (NR+i-1)%n, ((NR+i-1)%n)+1, ((NR+i-1)%n)+1, buf[((NR+i-1)%n)+1]
}
}
$
$ awk -v n=3 -f tst.awk file
Populating array by index ((NR-1)%n)+1:
NR=1, n=3: ((NR-1 = 0) %n = 0) +1 = 1 -> buf[1] = 1
NR=2, n=3: ((NR-1 = 1) %n = 1) +1 = 2 -> buf[2] = 2
NR=3, n=3: ((NR-1 = 2) %n = 2) +1 = 3 -> buf[3] = 3
NR=4, n=3: ((NR-1 = 3) %n = 0) +1 = 1 -> buf[1] = 4
NR=5, n=3: ((NR-1 = 4) %n = 1) +1 = 2 -> buf[2] = 5
NR=6, n=3: ((NR-1 = 5) %n = 2) +1 = 3 -> buf[3] = 6
NR=7, n=3: ((NR-1 = 6) %n = 0) +1 = 1 -> buf[1] = 7
NR=8, n=3: ((NR-1 = 7) %n = 1) +1 = 2 -> buf[2] = 8
Accessing array by index ((NR+i-1)%n)+1:
NR=8, i=1, n=3: (((NR+i = 9) - 1 = 8) %n = 2) +1 = 3 -> buf[3] = 6
NR=8, i=2, n=3: (((NR+i = 10) - 1 = 9) %n = 0) +1 = 1 -> buf[1] = 7
NR=8, i=3, n=3: (((NR+i = 11) - 1 = 10) %n = 1) +1 = 2 -> buf[2] = 8
Answered By - Ed Morton Answer Checked By - Willingham (WPSolving Volunteer)