119

Using awk or sed how can I select lines which are occurring between two different marker patterns? There may be multiple sections marked with these patterns.

For example: Suppose the file contains:

abc
def1
ghi1
jkl1
mno
abc
def2
ghi2
jkl2
mno
pqr
stu

And the starting pattern is abc and ending pattern is mno So, I need the output as:

def1
ghi1
jkl1
def2
ghi2
jkl2

I am using sed to match the pattern once:

sed -e '1,/abc/d' -e '/mno/,$d' <FILE>

Is there any way in sed or awk to do it repeatedly until the end of file?

187
0

Use awk with a flag to trigger the print when necessary:

$ awk '/abc/{flag=1;next}/mno/{flag=0}flag' file
def1
ghi1
jkl1
def2
ghi2
jkl2

How does this work?

  • /abc/ matches lines having this text, as well as /mno/ does.
  • /abc/{flag=1;next} sets the flag when the text abc is found. Then, it skips the line.
  • /mno/{flag=0} unsets the flag when the text mno is found.
  • The final flag is a pattern with the default action, which is to print $0: if flag is equal 1 the line is printed.

For a more detailed description and examples, together with cases when the patterns are either shown or not, see How to select lines between two patterns?.

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  • 30
    If you want to print everything between and including the pattern then you can use awk '/abc/{a=1}/mno/{print;a=0}a' file. – scai Nov 7 '13 at 8:08
  • 6
    Yes, @scai ! or even awk '/abc/{a=1} a; /mno/{a=0}' file - with this, putting a condition before the /mno/ we make it evaluate the line as true (and print it) before setting a=0. This way we can avoid writing print. – fedorqui 'SO stop harming' Nov 7 '13 at 9:43
  • 11
    @scai @fedorqui For including pattern output, you can do awk '/abc/,/mno/' file – Jotne Dec 4 '13 at 6:44
  • 1
    @hkasera awk '/abc/{flag=1}/mno/{flag=0}flag' file should make. – fedorqui 'SO stop harming' Dec 11 '14 at 8:54
  • 2
    @EirNym that is a weird scenario that can be handled on very different ways: which lines would you like to print? Probably awk 'flag; /PAT1/{flag=1; next} /PAT1/{flag=0}' file would make. – fedorqui 'SO stop harming' Apr 24 '17 at 8:28
45
0

Using sed:

sed -n -e '/^abc$/,/^mno$/{ /^abc$/d; /^mno$/d; p; }'

The -n option means do not print by default.

The pattern looks for lines containing just abc to just mno, and then executes the actions in the { ... }. The first action deletes the abc line; the second the mno line; and the p prints the remaining lines. You can relax the regexes as required. Any lines outside the range of abc..mno are simply not printed.

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  • Thanks for the reply and for the explanation! :) – dvai Aug 1 '13 at 11:48
  • @JonathanLeffler can I know what is the purpose of using -e – Kasun Siyambalapitiya Dec 6 '16 at 4:33
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    @KasunSiyambalapitiya: Mostly it means I like to use it. Formally, it specifies that the next argument is (part of) the script that sed should execute. If you want or need to use several arguments to include the entire script, then you must use -e before each such argument; otherwise, it's optional (but explicit). – Jonathan Leffler Dec 6 '16 at 4:41
  • @JonathanLeffler Thanks – Kasun Siyambalapitiya Dec 6 '16 at 6:37
  • Nice! (I prefer sed over awk.) When using complex regular expressions, it would be nice not to have to repeat them. Isn't it possible to delete the first / last line of the "selected" range? Or to first apply the d to all lines up to the first match, and then another d to all lines starting with the second match? – hans_meine Dec 8 '16 at 10:12
18
0

This might work for you (GNU sed):

sed '/^abc$/,/^mno$/{//!b};d' file

Delete all lines except for those between lines starting abc and mno

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  • !d;//d golfs 2 characters better :-) stackoverflow.com/a/31380266/895245 – Ciro Santilli 郝海东冠状病六四事件法轮功 Jul 13 '15 at 9:54
  • This is awesome. The {//!b} prevents the abc and mno from being included in the output, but I can't figure out how. Could you explain? – Brendan Feb 16 '17 at 17:44
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    @Brendan the instruction //!b reads if the current line is neither one of the lines that match the range, break and therefore print those lines otherwise all other lines are deleted. – potong Feb 17 '17 at 1:14
13
0
sed '/^abc$/,/^mno$/!d;//d' file

golfs two characters better than ppotong's {//!b};d

The empty forward slashes // mean: "reuse the last regular expression used". and the command does the same as the more understandable:

sed '/^abc$/,/^mno$/!d;/^abc$/d;/^mno$/d' file

This seems to be POSIX:

If an RE is empty (that is, no pattern is specified) sed shall behave as if the last RE used in the last command applied (either as an address or as part of a substitute command) was specified.

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  • 1
    I think the second solution will end up with nothing as the second command is also a range. However kudos for the first. – potong Jul 13 '15 at 14:20
  • @potong true! I have to study more why the first one works. Thanks! – Ciro Santilli 郝海东冠状病六四事件法轮功 Jul 13 '15 at 14:22
7
0

From the previous response's links, the one that did it for me, running ksh on Solaris, was this:

sed '1,/firstmatch/d;/secondmatch/,$d'
  • 1,/firstmatch/d: from line 1 until the first time you find firstmatch, delete.
  • /secondmatch/,$d: from the first occurrance of secondmatch until the end of file, delete.
  • Semicolon separates the two commands, which are executed in sequence.
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  • Just curious, why does the range limiter (1,) come before /firstmatch/? I'm guessing this could also be phrased '/firstmatch/1,d;/secondmatch,$d'? – Luke Davis Jun 25 '18 at 0:40
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    With "1,/firstmatch/d" you are saying "from line 1 until the first time you find 'firstmatch', delete". Whereas, with "/secondmatch/,$d" you say "from the first occurrance of 'secondmatch' until the end of file, delete". the semicolon separates the two commands, which are executed in sequence. – FanDeLaU Dec 20 '18 at 17:18
2
0
perl -lne 'print if((/abc/../mno/) && !(/abc/||/mno/))' your_file
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  • Good to know perl equivalent as it is a pretty good alternative to both awk and sed. – akhan Mar 8 '17 at 23:46
2
0

something like this works for me:

file.awk:

BEGIN {
    record=0
}

/^abc$/ {
    record=1
}

/^mno$/ {
    record=0;
    print "s="s;
    s=""
}

!/^abc|mno$/ {
    if (record==1) {
        s = s"\n"$0
    }   
}

using: awk -f file.awk data...

edit: O_o fedorqui solution is way better/prettier than mine.

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2
0

Don_crissti's answer from Show only text between 2 matching pattern?

firstmatch="abc"
secondmatch="cdf"
sed "/$firstmatch/,/$secondmatch/!d;//d" infile

which is much more efficient than AWK's application, see here.

  • I don't think linking the time comparisons makes much sense here, since the requirements of the questions are quite different, hence the solutions. – fedorqui 'SO stop harming' Sep 11 '15 at 15:11
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    I disagree because we should have some criterias to compare answers. Only a few has SED applications. – Léo Léopold Hertz 준영 Sep 11 '15 at 16:10
0
0

I tried to use awk to print lines between two patterns while pattern2 also match pattern1. And the pattern1 line should also be printed.

e.g. source

package AAA
aaa
bbb
ccc
package BBB
ddd
eee
package CCC
fff
ggg
hhh
iii
package DDD
jjj

should has an ouput of

package BBB
ddd
eee

Where pattern1 is package BBB, pattern2 is package \w*. Note that CCC isn't a known value so can't be literally matched.

In this case, neither @scai 's awk '/abc/{a=1}/mno/{print;a=0}a' file nor @fedorqui 's awk '/abc/{a=1} a; /mno/{a=0}' file works for me.

Finally, I managed to solve it by awk '/package BBB/{flag=1;print;next}/package \w*/{flag=0}flag' file, haha

A little more effort result in awk '/package BBB/{flag=1;print;next}flag;/package \w*/{flag=0}' file, to print pattern2 line also, that is,

package BBB
ddd
eee
package CCC
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