227

Is there any bash command that will let you get the nth line of STDOUT?

That is to say, something that would take this

$ ls -l
-rw-r--r--@ 1 root  wheel my.txt
-rw-r--r--@ 1 root  wheel files.txt
-rw-r--r--@ 1 root  wheel here.txt

and do something like

$ ls -l | magic-command 2
-rw-r--r--@ 1 root  wheel files.txt

I realize this would be bad practice when writing scripts meant to be reused, BUT when working with the shell day to day it'd be useful to me to be able to filter my STDOUT in such a way.

I also realize this would be semi-trivial command to write (buffer STDOUT, return a specific line), but I want to know if there's some standard shell command to do this that would be available without me dropping a script into place.

1
  • 7
    I just voted this up for the use of word magic-command – Robert Johnstone Apr 26 '19 at 14:22

12 Answers 12

355

Using sed, just for variety:

ls -l | sed -n 2p

Using this alternative, which looks more efficient since it stops reading the input when the required line is printed, may generate a SIGPIPE in the feeding process, which may in turn generate an unwanted error message:

ls -l | sed -n -e '2{p;q}'

I've seen that often enough that I usually use the first (which is easier to type, anyway), though ls is not a command that complains when it gets SIGPIPE.

For a range of lines:

ls -l | sed -n 2,4p

For several ranges of lines:

ls -l | sed -n -e 2,4p -e 20,30p
ls -l | sed -n -e '2,4p;20,30p'
3
  • What does the p mean? like 2p 3p? In the sense I understand that it's for 2/3 line, but what's the theory/understanding behind it? – Leo Ufimtsev Dec 6 '17 at 22:18
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    @LeoUfimtsev: the p is the sed statement that prints the lines identified by the range of lines that precedes it. Thus 2,4p means print lines 2, 3, 4. – Jonathan Leffler Dec 6 '17 at 23:03
  • 4
    And n means to NOT print all the other lines – Timo May 3 '18 at 8:23
88
ls -l | head -2 | tail -1
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  • 13
    +2, but I'd suggest head -n 2 | tail -n 1 — modern heads and tails tend to issue warnings otherwise. – Michael Krelin - hacker Sep 15 '09 at 20:59
  • 2
    Using two processes to filter the data is a bit of overkill (but, given the power of machines these days, they'd probably cope). Generalizing to handle one range is not wholly trivial (for range N..M, you use head -n M | tail -n M-N+1), and generalizing to handle multiple ranges is not possible. – Jonathan Leffler Sep 15 '09 at 22:22
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    head piped into tail? horrible. Multiple better ways to do it. – camh Sep 15 '09 at 23:44
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    Great thing about *nix command line: a million and one ways to do everything and everybody's got a favorite and a hates all the other ways... :-) – beggs Sep 16 '09 at 3:35
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    How to print a range of lines another way: $ ls -l | awk '{if (NR>=4 && NR<=64) print}' (can add more conditions easier, multiple ranges, etc...) – user10607 Jul 3 '15 at 11:51
42

Alternative to the nice head / tail way:

ls -al | awk 'NR==2'

or

ls -al | sed -n '2p'
6
  • 1
    mine awk is better, but sed is nice. – Michael Krelin - hacker Sep 15 '09 at 21:05
  • No need for an "if" - see hacker's answer (except for the part about finding every file on the system). ;-) – Dennis Williamson Sep 15 '09 at 21:07
  • what does '2p' stand for? – shredding Apr 12 '16 at 15:44
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    @shredding short answer print second line; long -> When used, only lines that match the pattern are given the command after the address. Briefly, when used with the /p flag, matching lines are printed twice: sed '/PATTERN/p' file. And of course PATTERN is any regular expression more – Medhat Jan 11 '17 at 13:26
  • what if 2 is a variable? Every example uses single quotes, but with a var you need double quotes. Could we "program" awk to work also with single quotes when using vars? Example line =1; ls | awk 'NR==$line'. I know that bash uses double quotes with vars. – Timo May 3 '18 at 8:32
21

From sed1line:

# print line number 52
sed -n '52p'                 # method 1
sed '52!d'                   # method 2
sed '52q;d'                  # method 3, efficient on large files

From awk1line:

# print line number 52
awk 'NR==52'
awk 'NR==52 {print;exit}'          # more efficient on large files
0
9

For the sake of completeness ;-)

shorter code

find / | awk NR==3

shorter life

find / | awk 'NR==3 {print $0; exit}'
8
  • You're not kidding about completeness! – Dennis Williamson Sep 15 '09 at 21:05
  • I am not ;-) Actually, I don' know why everyone's using ls — the original question was about someone's STDOUT, so I thought it's better to have it bigger. – Michael Krelin - hacker Sep 15 '09 at 21:10
  • At least with GNU awk, the default action is { print $0 }, so `awk 'NR==3' is a shorter way to write the same. – ephemient Sep 15 '09 at 21:51
  • You should probably add "; exit" to that action. No point processing the rest of the lines when you're not going to do anything with them. – camh Sep 15 '09 at 23:46
  • @camh: See Jonathan Leffer's answer about that: "may generate a SIGPIPE in the feeding process, which may in turn generate an unwanted error message". – ephemient Sep 16 '09 at 3:44
7

Try this sed version:

ls -l | sed '2 ! d'

It says "delete all the lines that aren't the second one".

6

You can use awk:

ls -l | awk 'NR==2'

Update

The above code will not get what we want because of off-by-one error: the ls -l command's first line is the total line. For that, the following revised code will work:

ls -l | awk 'NR==3'
4

Is Perl easily available to you?

$ perl -n -e 'if ($. == 7) { print; exit(0); }'

Obviously substitute whatever number you want for 7.

2
  • This is my fav since it's seems to be the easiest to generalised to what I was personally after which is every nth, perl -n -e 'if ($. %7==0) { print; exit(0); }' – mat kelcey Jan 8 '12 at 21:11
  • @matkelcey also you can do $ awk 'NR % 7' filename to print every 7th line in file. – user10607 Jul 3 '15 at 11:44
3

Another poster suggested

ls -l | head -2 | tail -1

but if you pipe head into tail, it looks like everything up to line N is processed twice.

Piping tail into head

ls -l | tail -n +2 | head -n1

would be more efficient?

0
0

Yes, the most efficient way (as already pointed out by Jonathan Leffler) is to use sed with print & quit:

set -o pipefail                        # cf. help set
time -p ls -l | sed -n -e '2{p;q;}'    # only print the second line & quit (on Mac OS X)
echo "$?: ${PIPESTATUS[*]}"            # cf. man bash | less -p 'PIPESTATUS'
1
  • The use of pipefail and PIPESTATUS are very interesting and this adds a lot to this page. – Mike S Jan 23 '17 at 16:54
0

Hmm

sed did not work in my case. I propose:

for "odd" lines 1,3,5,7... ls |awk '0 == (NR+1) % 2'

for "even" lines 2,4,6,8 ls |awk '0 == (NR) % 2'

-1

For more completeness..

ls -l | (for ((x=0;x<2;x++)) ; do read ; done ; head -n1)

Throw away lines until you get to the second, then print out the first line after that. So, it prints the 3rd line.

If it's just the second line..

ls -l | (read; head -n1)

Put as many 'read's as necessary.

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