475

I have a very long file which I want to print but skipping the first 1e6 lines for example. I look into the cat man page but I did not see any option to do this. I am looking for a command to do this or a simple bash program.

13 Answers 13

767

You'll need tail. Some examples:

$ tail great-big-file.log
< Last 10 lines of great-big-file.log >

If you really need to SKIP a particular number of "first" lines, use

$ tail -n +<N+1> <filename>
< filename, excluding first N lines. >

That is, if you want to skip N lines, you start printing line N+1. Example:

$ tail -n +11 /tmp/myfile
< /tmp/myfile, starting at line 11, or skipping the first 10 lines. >

If you want to just see the last so many lines, omit the "+":

$ tail -n <N> <filename>
< last N lines of file. >
  • 50
    Or "tail --lines=+<LinesToSkip> ..." for the readable-commands crowd :-) – paxdiablo Mar 3 '09 at 2:34
  • 17
    in centos 5.6 tail -n +1 shows the whole file and tail -n +2 skips first line. strange. The same for tail -c +<num>. – NickSoft Sep 1 '11 at 10:23
  • 11
    @JoelClark No, @NickSoft is right. On Ubuntu, it's tail -n +<start number>, I just tested it. So tail -n +1 won't skip anything, but start from the first line instead. – Andres F. Aug 22 '12 at 14:36
  • 13
    I can confirm that tail -n +2 is required to skip the first line on Darwin/Mac OS X as well. – morgant Mar 24 '14 at 16:40
  • 2
    this must be outdated, but, tail -n+2 OR tail -n +2 works, as with all short commands using getopt, you can run the parameter right next to it's switch, providing that the switch is the last in the group, obviously a command like tail -nv+2 would not work, it would have to be tail -vn+2. if you dont believe me try it yourself. – osirisgothra May 3 '14 at 11:35
92

If you have GNU tail available on your system, you can do the following:

tail -n +1000001 huge-file.log

It's the + character that does what you want. To quote from the man page:

If the first character of K (the number of bytes or lines) is a `+', print beginning with the Kth item from the start of each file.

Thus, as noted in the comment, putting +1000001 starts printing with the first item after the first 1,000,000 lines.

  • Works for BSD tail too (OS X) – Lloeki Nov 17 '16 at 13:59
90

Easiest way I found to remove the first ten lines of a file:

$ sed 1,10d file.txt
  • 11
    In the more general case, you'd have to use sed 1,Xd where X is the number of initial lines to delete, with X greater than 1. – Acumenus Dec 24 '13 at 0:10
  • This makes more sense if you don't know how long the file is and don't want to tell tail to print the last 100000000 lines. – springloaded Aug 29 '18 at 15:06
25

A less verbose version with AWK:

awk 'NR > 1e6' myfile.txt

But I would recommend using integer numbers.

  • 7
    useful if you need to skip some lines in the middle of the file, e.g., awk '!(5 < NR && NR < 10)' – arekolek Jul 28 '16 at 12:24
13

Just to propose a sed alternative. :) To skip first one million lines, try |sed '1,1000000d'.

Example:

$ perl -wle 'print for (1..1_000_005)'|sed '1,1000000d'
1000001
1000002
1000003
1000004
1000005
  • 1
    @Marlon, sorry but that's wrong. That only works for 1d. If, for example, you use it on 2d, you'll delete only line 2. It doesn't delete the range of lines. – Acumenus Dec 24 '13 at 17:19
  • @A-B-B sorry, meant to say that this was the easiest solution by far which is why I +1 it not trying to correct the author. – Marlon Jan 14 '14 at 19:40
13

If you want to see first 10 line you can use sed as below:

sed -n '1,10 p' myFile.txt

or if you want to see lines from 20 to 30 you can use:

sed -n '20,30 p' myFile.txt
13

if you want to skip first two line
tail -n +3 <filename>

if you want to skip first x line
tail -n +$((x+1)) <filename>

  • 2
    This is somewhat misleading because someone may interpret (x+1) literally. For example, for x=2, they may type either (2+1) or even (3), neither of which would work. A better way to write it might be: To skip the first X lines, with Y=X+1, use tail -n +Y <filename> – Acumenus Dec 24 '13 at 17:11
12

Use the sed delete command with a range address. For example:

$ sed 1,100d file.txt # Print file.txt omitting lines 1-100.

Alternatively, if you want to only print a known range use the print command with the -n flag:

$ sed -n 201,300p file.txt # Print lines 201-300 from file.txt

This solution should work reliably on all UNIX systems, regardless of the presence of GNU utilities.

  • 1
    Most readily usable answer for both cli and scripting. – cerd Dec 1 '17 at 1:37
10

This shell script works fine for me:

#!/bin/bash
awk -v initial_line=$1 -v end_line=$2 '{
    if (NR >= initial_line && NR <= end_line) 
    print $0
}' $3

Used with this sample file (file.txt):

one
two
three
four
five
six

The command (it will extract from second to fourth line in the file):

edu@debian5:~$./script.sh 2 4 file.txt

Output of this command:

two
three
four

Of course, you can improve it, for example by testing that all argument values are the expected :-)

  • 1
    ++ for using awk, which is oh so marginally more portable than tail – guns Mar 31 '09 at 13:42
6

You can do this using the head and tail commands:

head -n <num> | tail -n <lines to print>

where num is 1e6 + the number of lines you want to print.

  • 3
    Not the most efficient answer since you'd need to do a "wc -l" on the file to get a line count, followed by an addition to add the million :-). You can do it with just "tail". – paxdiablo Mar 3 '09 at 2:43
  • I'm not sure, my understanding was that 1e6 would be known at the time of calling. Counting backwards isn't the fastest though. – Dana the Sane Mar 3 '09 at 3:11
4
sed -n '1d;p'

this command will delete the first line and print the rest

3
cat < File > | awk '{if(NR > 6) print $0}'
  • This is a syntax error in bash — in what shell does it work? – G-Man May 18 '17 at 4:51
  • I run this in bash. The < and > are not part of the command, the name of the file should replace "< File >" – aamadeo May 19 '17 at 13:37
  • awk 'NR > 6 {print}' is sufficient... no need for the if or the $0. – CSTobey Jan 9 at 20:45
-2

I needed to do the same and found this thread.

I tried "tail -n +, but it just printed everything.

The more +lines worked nicely on the prompt, but it turned out it behaved totally different when run in headless mode (cronjob).

I finally wrote this myself:

skip=5
FILE="/tmp/filetoprint"
tail -n$((`cat "${FILE}" | wc -l` - skip)) "${FILE}"
  • too complicated – Vladislavs Dovgalecs Mar 13 '15 at 22:23
  • 1
    Correct link of Useless Use of Cat Award. The previous is replaced by advert. – kub1x Jul 26 '17 at 13:01
  • 1
    @kub1x I don't think "cat" here is useless, as "cat | wc -l" produces different output than simple "wc -l". The former is suitable for arithmetic operations, the latter is not. – Jack Jan 15 '18 at 10:14
  • @Jack I wasn't judging the use of cat, but only fixing a link in a comment, that led to a dead page. The original comment must have been deleted. Anyways, thanks for pointing that out. – kub1x Jan 15 '18 at 11:55
  • 1
    @kub1x You know? After reading the link now I think that the use of "cat" here is wrong :) It should has been something like "wc -l < ${FILE}", saving some overhead time/memory (new process creation, pipelining I/O,.. ). Thanks, I've learned something new – Jack Jan 16 '18 at 9:43

protected by codeforester Aug 3 '18 at 17:24

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