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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.

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11 Answers 11

up vote 190 down vote accepted

you need tail.

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

if you really need to SKIP a particular number of lines, use

$ tail -n+<First line to Print> <filename>
< filename, excluding first so many lines. >

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

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

$ tail -n<Lines to show> <filename>
< last so many lines of file. >
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This will print the LAST 1000000 lines, which isn't what you're asking about. –  Eddie Mar 3 '09 at 2:29
10  
Or "tail --lines=+<LinesToSkip> ..." for the readable-commands crowd :-) –  paxdiablo Mar 3 '09 at 2:34
4  
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
20  
Actually this answer is wrong. The right command is tail -n +<start number> or tail -n +<lines to skip + 1>. So if you want to skip the first line: tail -n +2 file.txt –  NickSoft Sep 1 '11 at 10:41
3  
@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

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.

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10  
Strictly speaking, it should be +1000001, because the argument is the 1-based line index from which output should start. In other words: to skip N lines, specify +(N+1). –  mklement0 Jun 8 '12 at 21:13
    
This answer should be deleted. It is wrong and misleading with the uncorrected off-by-one error. –  A-B-B Dec 24 '13 at 17:17
    
I corrected the answer. –  Eddie Jan 3 at 16:12

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
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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. –  A-B-B 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 at 19:40

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 :-)

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

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

cat file | sed 1d

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1  
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. –  A-B-B Dec 24 '13 at 0:10

A less verbose version with AWK:

awk 'NR > 1e6' myfile.txt

But I would recommend using integer numbers.

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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.

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2  
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

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
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cat < File > | awk '{if(NR > 6) print $0}'
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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>

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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> –  A-B-B Dec 24 '13 at 17:11

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}"
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2  
That deserves at least a Useless Use of Cat Award –  pihentagy Mar 8 '12 at 13:07

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