52

Question: I'd like to print a single line directly following a line that contains a matching pattern.

My version of sed will not take the following syntax (it bombs out on +1p) which would seem like a simple solution:

sed -n '/ABC/,+1p' infile

I assume awk would be better to do multiline processing, but I am not sure how to do it.

121

Never use the word "pattern" as is it highly ambiguous. Always use "string" or "regexp" (or in shell "globbing pattern"), whichever it is you really mean.

The specific answer you want is:

awk 'f{print;f=0} /regexp/{f=1}' file

or specializing the more general solution of the Nth record after a regexp (idiom "c" below):

awk 'c&&!--c; /regexp/{c=1}' file

The following idioms describe how to select a range of records given a specific regexp to match:

a) Print all records from some regexp:

awk '/regexp/{f=1}f' file

b) Print all records after some regexp:

awk 'f;/regexp/{f=1}' file

c) Print the Nth record after some regexp:

awk 'c&&!--c;/regexp/{c=N}' file

d) Print every record except the Nth record after some regexp:

awk 'c&&!--c{next}/regexp/{c=N}1' file

e) Print the N records after some regexp:

awk 'c&&c--;/regexp/{c=N}' file

f) Print every record except the N records after some regexp:

awk 'c&&c--{next}/regexp/{c=N}1' file

g) Print the N records from some regexp:

awk '/regexp/{c=N}c&&c--' file

I changed the variable name from "f" for "found" to "c" for "count" where appropriate as that's more expressive of what the variable actually IS.

  • 4
    could you please explain what c&&!--c does? Thanks! – xxks-kkk Feb 15 '16 at 8:40
  • 3
    If c is non-zero, decrement it and test if it is now zero. So if c started out at some positive number, the associated action will be executed after counting down from that number to zero. The "if c is non-zero" part is a guard to make sure c doesn't keep going into negative numbers and potentially wrap around to positive again if the input file is massive. – Ed Morton Feb 15 '16 at 13:38
  • Alternative to (a) : awk '/regexp/,0' file – kvantour Oct 23 '18 at 14:54
  • Alternative to (g): awk '/regexp/&&c=N,!--c' file (but this does not handle overlapping ranges. – kvantour Oct 23 '18 at 14:59
  • 1
    Never use range expressions (e.g. /start/,/end/) as they make trivial tasks very slightly briefer but then require duplicate conditions or a complete rewrite for the tiniest requirements change. – Ed Morton Oct 23 '18 at 15:26
37

It's the line after that match that you're interesting in, right? In sed, that could be accomplished like so:

sed -n '/ABC/{n;p}' infile

Alternatively, grep's A option might be what you're looking for.

-A NUM, Print NUM lines of trailing context after matching lines.

For example, given the following input file:

foo
bar
baz
bash
bongo

You could use the following:

$ grep -A 1 "bar" file
bar
baz
$ sed -n '/bar/{n;p}' file
baz

Hope that helps.

  • 1
    Note: {n;p} seems to be supported by GNU sed but not BSD sed. (Thanks for a sed answer chooban. I have great respect for awk, and have used it, but I try avoid relearning its baroque language whenever possible. (When I need awk I use perl).) – Mars Apr 1 '15 at 16:18
  • 5
    Correction: I had success with BSD sed by adding a ;: sed -n /bar/{n;p;}. Works with GNU sed as well. – Mars Apr 1 '15 at 16:34
  • With the original sed you would've had to write sed -n '/bar/{;n;p;}' because { and } were parsed exactly the same as letter commands. – zwol Jan 16 '16 at 4:05
5

I needed to print ALL lines after the pattern ( ok Ed, REGEX ), so I settled on this one:

sed -n '/pattern/,$p' # prints all lines after ( and including ) the pattern

But since I wanted to print all the lines AFTER ( and exclude the pattern )

sed -n '/pattern/,$p' | tail -n+2  # all lines after first occurrence of pattern

I suppose in your case you can add a head -1 at the end

sed -n '/pattern/,$p' | tail -n+2 | head -1 # prints line after pattern
  • There's a sed-strict way for your second case: sed '0,/regex/d' – tlwhitec Aug 12 '16 at 16:44
  • The above is exactly why I advise people to never use range expressions (/start/,/end/) which means you don't do tasks like this with sed since it doesn't have variables so all you're left with is ranges. All you wanted to do was exclude the start or end line and it required you to add pipes and additional commands to do it vs awk '/start/{f=1} f; /end/{f=0}' - just rearrange the blocks to print or not the start/end sections, no extra tools or pipes required. – Ed Morton Oct 23 '18 at 15:37
2

awk Version:

awk '/regexp/ { getline; print $0; }' filetosearch
  • 1
    Thanks! I forgot about the -A option in grep; it works perfectly with the +1 parameter (the line with the matched pattern is not printed). – user1537723 Jul 28 '13 at 20:36
  • 1
    This will fail in cryptic ways when you least expect it, and will be difficult to enhance in future. Make sure you ready and fully understand awk.info/?tip/getline before deciding to use getline. – Ed Morton Jul 28 '13 at 23:29
  • Make that awk.freeshell.org/AllAboutGetline – Ed Morton Aug 4 '17 at 17:45
1

If pattern match, copy next line into the pattern buffer, delete a return, then quit -- side effect is to print.

sed '/pattern/ { N; s/.*\n//; q }; d'
  • 1
    q is by no means a GNU extension. It is a standard sed command. – tripleee Jan 16 '16 at 12:53
  • Yup *tripleee"... UR right... – Michael Back Jan 20 '16 at 19:08
1

Actually sed -n '/pattern/{n;p}' filename will fail if the pattern match continuous lines:

$ seq 15 |sed -n '/1/{n;p}'
2
11
13
15

The expected answers should be:

2
11
12
13
14
15

My solution is:

$ sed -n -r 'x;/_/{x;p;x};x;/pattern/!s/.*//;/pattern/s/.*/_/;h' filename

For example:

$ seq 15 |sed -n -r 'x;/_/{x;p;x};x;/1/!s/.*//;/1/s/.*/_/;h'
2
11
12
13
14
15

Explains:

  1. x;: at the beginning of each line from input, use x command to exchange the contents in pattern space & hold space.
  2. /_/{x;p;x};: if pattern space, which is the hold space actually, contains _ (this is just a indicator indicating if last line matched the pattern or not), then use x to exchange the actual content of current line to pattern space, use p to print current line, and x to recover this operation.
  3. x: recover the contents in pattern space and hold space.
  4. /pattern/!s/.*//: if current line does NOT match pattern, which means we should NOT print the NEXT following line, then use s/.*// command to delete all contents in pattern space.
  5. /pattern/s/.*/_/: if current line matches pattern, which means we should print the NEXT following line, then we need to set a indicator to tell sed to print NEXT line, so use s/.*/_/ to substitute all contents in pattern space to a _(the second command will use it to judge if last line matched the pattern or not).
  6. h: overwrite the hold space with the contents in pattern space; then, the content in hold space is ^_$ which means current line matches the pattern, or ^$, which means current line does NOT match the pattern.
  7. the fifth step and sixth step can NOT exchange, because after s/.*/_/, the pattern space can NOT match /pattern/, so the s/.*// MUST be executed!
1

This might work for you (GNU sed):

sed -n ':a;/regexp/{n;h;p;x;ba}' file

Use seds grep-like option -n and if the current line contains the required regexp replace the current line with the next, copy that line to the hold space (HS), print the line, swap the pattern space (PS) for the HS and repeat.

protected by RavinderSingh13 Aug 20 '18 at 16:18

Thank you for your interest in this question. Because it has attracted low-quality or spam answers that had to be removed, posting an answer now requires 10 reputation on this site (the association bonus does not count).

Would you like to answer one of these unanswered questions instead?

Not the answer you're looking for? Browse other questions tagged or ask your own question.