117

Hi I'm very new to bash programming. I want a way to search in a given Text. For that I use grep function:

grep -i "my_regex"

That works. But given the data like this :

This is the test data
This is the error data as follows
. . . 
. . . .
. . . . . . 
. . . . . . . . .
Error data ends

Once I found the word error ( using grep -i error data), I wish to find the 10 lines that following the word error. So my output should be:

    . . . 
    . . . .
    . . . . . . 
    . . . . . . . . .
    Error data ends

Are there any ways to do it?

  • From your description it seems you want the 10 lines proceeding the word error. – ThomasW Mar 19 '15 at 5:33
217

You can use the -B and -A to print lines before and after the match.

grep -i -B 10 'error' data

Will print the 10 lines before the match, including the matching line itself.

  • Thanks this is working. But when I tried to store this execution in the variable like this test=$(grep -i -B 10 'error' data), and print it using echo $test, I get the straight long lines as output. – sriram Sep 16 '12 at 9:35
  • 1
    Thanks I figured out I need to do like this echo "$test" rather than echo $test – sriram Sep 16 '12 at 9:37
  • 15
    -C 10 will print out 10 lines before AND after in one fell swoop! – Joshua Pinter Jan 22 '18 at 15:19
  • is there a way to do this using a specific before point? say the length i have to grab prior is variable? – Erudaki Jul 17 '18 at 19:05
19

This prints 10 lines of trailing context after matching lines

grep -i "my_regex" -A 10

If you need to print 10 lines of leading context before matching lines,

grep -i "my_regex" -B 10

And if you need to print 10 lines of leading and trailing output context.

grep -i "my_regex" -C 10

Example

user@box:~$ cat out 
line 1
line 2
line 3
line 4
line 5 my_regex
line 6
line 7
line 8
line 9
user@box:~$

Normal grep

user@box:~$ grep my_regex out 
line 5 my_regex
user@box:~$ 

Grep exact matching lines and 2 lines after

user@box:~$ grep -A 2 my_regex out   
line 5 my_regex
line 6
line 7
user@box:~$ 

Grep exact matching lines and 2 lines before

user@box:~$ grep -B 2 my_regex out  
line 3
line 4
line 5 my_regex
user@box:~$ 

Grep exact matching lines and 2 lines before and after

user@box:~$ grep -C 2 my_regex out  
line 3
line 4
line 5 my_regex
line 6
line 7
user@box:~$ 

Reference: manpage grep

-A num
--after-context=num

    Print num lines of trailing context after matching lines.
-B num
--before-context=num

    Print num lines of leading context before matching lines.
-C num
-num
--context=num

    Print num lines of leading and trailing output context.
  • 2
    Nice, ive had to look this up a few times now, maybe I can remember it as -A(FTER) -B(EFORE) -C(ONTEXT) – Opentuned Aug 30 '18 at 13:47
9

The way to do this is near the top of the man page

grep -i -A 10 'error data'
6

Try this:

grep -i -A 10 "my_regex"

-A 10 means, print ten lines after match to "my_regex"

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