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I have very long log files, is it possible to ask grep to only search the first 10 lines?

12 Answers 12

147

The magic of pipes;

head -10 log.txt | grep <whatever>
  • 9
    you can also pipe an arbitrary stream to head: someCmd | head -10 – Stuart Nelson May 30 '15 at 8:19
  • Head defaults to printing the first 10 lines to standard output, so this is valid for 10 lines head log.txt | grep <whatever> – Zlemini Sep 30 '16 at 12:38
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    Is there a way to do this when using grep's -l option? I'd like to list all the files who's first 5 characters are RIFFD. – James M. Lay May 23 '17 at 19:20
44

For folks who find this on Google, I needed to search the first n lines of multiple files, but to only print the matching filenames. I used

 gawk 'FNR>10 {nextfile} /pattern/ { print FILENAME ; nextfile }' filenames

The FNR..nextfile stops processing a file once 10 lines have been seen. The //..{} prints the filename and moves on whenever the first match in a given file shows up. To quote the filenames for the benefit of other programs, use

 gawk 'FNR>10 {nextfile} /pattern/ { print "\"" FILENAME "\"" ; nextfile }' filenames
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    I was one of those folks who found this on Google. Thanks! – Floris Dec 17 '13 at 15:06
  • for me, this code printed out the full path of the file. Which is exactly what I needed. Also FNR=1 will just search 1st line. Thanks! – Brian W Oct 12 '17 at 5:25
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    To do this recursively over a directory: find ./path -type -f -exec awk 'FNR>10 {nextfile} /pattern/ { print FILENAME ; nextfile }' '{}' + – OrangeDog May 7 at 17:17
23

Or use awk for a single process without |:

awk '/your_regexp/ && NR < 11' INPUTFILE

On each line, if your_regexp matches, and the number of records (lines) is less than 11, it executes the default action (which is printing the input line).

Or use sed:

sed -n '/your_regexp/p;10q' INPUTFILE 

Checks your regexp and prints the line (-n means don't print the input, which is otherwise the default), and quits right after the 10th line.

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    Why not quit on the 10th? (see sed solution) – potong Jan 6 '12 at 23:56
  • awk '{ if ( NR <= 10 ) { if(index($0,"ab") > 0) { print $0; } } else { exit; } }' textfile -- faster. – user982733 Jan 7 '12 at 3:07
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    @potong you are right, corrected. @srikanthradix while it can be faster you're solution is not searching for regexps but only for fixed strings. awk '{ if ( NR <= 10 ) { if( $0 ~ "YOUR_REGEXP") { print } } else { exit; } }' textfile does. – Zsolt Botykai Jan 7 '12 at 10:06
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    Plus the style isn't awkish. 2xifs and 1xelse in a command that needs no action statement would make aho. weinberger and kernighan cry ... – jaypal singh Jan 7 '12 at 12:46
  • I think, instead of NR it would be better to use FNR, because if you use awk with multiple files FNR starts from 0 for each file. – Vladyslav Savchenko Oct 4 '16 at 9:09
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You have a few options using programs along with grep. The simplest in my opinion is to use head:

head -n10 filename | grep ...

head will output the first 10 lines (using the -n option), and then you can pipe that output to grep.

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    I didn't even realize, all the solutions here using head have used -n 10 (including me) not realizing that head by default displays only 10 lines. :) – jaypal singh Jan 7 '12 at 1:05
  • Oh goodness that's right... – Dan Fego Jan 7 '12 at 3:37
4
grep "pattern" <(head -n 10 filename)
2

You can use the following line:

head -n 10 /path/to/file | grep [...]
2

The output of head -10 file can be piped to grep in order to accomplish this:

head -10 file | grep …

Using Perl:

perl -ne 'last if $. > 10; print if /pattern/' file
2
head -10 log.txt | grep -A 2 -B 2 pattern_to_search

-A 2: print two lines before the pattern.

-B 2: print two lines after the pattern.

head -10 log.txt # read the first 10 lines of the file.
2
grep -m6 "string" cov.txt

This searches only the first 6 lines for string

1

An extension to Joachim Isaksson's answer: Quite often I need something from the middle of a long file, e.g. lines 5001 to 5020, in which case you can combine head with tail:

head -5020 file.txt | tail -20 | grep x

This gets the first 5020 lines, then shows only the last 20 of those, then pipes everything to grep.

(Edited: fencepost error in my example numbers, added pipe to grep)

0

grep -A 10 <Pattern>

This is to grab the pattern and the next 10 lines after the pattern. This would work well only for a known pattern, if you don't have a known pattern use the "head" suggestions.

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    Although it might right. add more description of question to make answer more comprehensive. – Pra Jazz Sep 18 '14 at 8:37
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    This answers a completely different question and is not useful in this context. – Pre101 Oct 18 '18 at 3:43
0

I had a similar problem and all the above problem don't solve it entirely. I am also interested in getting the file name containing the matching lines. My solution:

ls |parallel --gnu 'cat <(echo {}) <(head {})|grep -B1 -m1 -P "^>.*F3$"'

N.B: The Pattern in my case always match the first line.

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