18

When we match a pattern using sed, the matched pattern is stored in the "ampersand" (&) variable. IS there a way to replace a character in this matched pattern using the ampersand itself ?

For example, if & contains the string "apple1", how can I use & to make the string to "apple2" (i.e replace 1 by 2) ?

1
  • 3
    This isn't the way you use &. It might help if you explained why you wanted to do this.
    – nneonneo
    Oct 2, 2012 at 16:42

4 Answers 4

25

If I guessed right, what you want to do is to apply a subsitution in a pattern matched. You can't do that using &. You want to do this instead:

echo apple1 apple3 apple1 apple2 botemo1 | sed '/apple./ { s/apple1/apple2/g; }'

This means that you want to execute the command substitution only on the lines that matches the pattern /apple./.

2
  • Please explain to a longtime sed newbie like me why this is any better than sed 's/apple1/apple2/g'. Because I want to use sed '/apple./ { s/1/2/g; }' and it changes it to botemo2 which is totally counterintuitive.
    – Steven Lu
    Feb 6, 2016 at 4:46
  • @StevenLu Thing is sed is line-oriented, so /apple./ means: apply the commands to follow only to the lines that match the pattern. Since botemo1 is in the same line, sed will apply the substitution for it too. Feb 6, 2016 at 12:25
18

You can also use a capture group. A capture is used to grab a part of the match and save it into an auxiliary variable, that is named numerically in the order that the capture appears.

echo apple1 | sed -e 's/\(a\)\(p*\)\(le\)1/\1\2\32/g'

We used three captures:

  1. The first one, stored in \1, contains an "a"
  2. The second one, stored in \2, contains a sequence of "p"s (in the example it contains "pp")
  3. The third one, stored in \3, contains the sequence "le"

Now we can print the replacement using the matches we captured: \1\2\32. Notice that we are using 3 capture values to generate "apple" and then we append a 2. This wont be interpreted as variable \32 because we can only have a total of 9 captures.

Hope this helps =)

7
  • yes, but this doesn't handle multiple matches in a single line.
    – jaf0
    Jun 18, 2014 at 20:00
  • The backreferences are designed for referring to "stored matches" (as the OP phrased); and the question is about replacing a string IN those, not WITH those.
    – 7heo.tk
    Apr 30, 2015 at 13:01
  • Adding an example to 7heo.tk's comment. You can use back references like so: sed -e 's/\(a\)\(p*\)\(le\)1 \1\2\32/\1\2\33 \1\2\34/' will replace apple1 apple2 with apple3 apple4, and it would also work (if you want to) with appple1 appple2, resulting in appple3 appple4. However, it wouldn't replace apple1 aple2, nor appple1 apple2, nor apple1 appple2, because they don't have the same string stored in the captures (ie. when comparing the words, they're not the same). Apr 30, 2015 at 14:09
  • @JanitoVaqueiroFerreiraFilho I didn't know that you can use the backreferences in the match part of the regex. Do you know if it's POSIX?
    – 7heo.tk
    Apr 30, 2015 at 15:01
  • @7heo.tk Yes, AFAICT, it's part of BRE (basic regular expressions) that every POSIX capable sed should implement (pubs.opengroup.org/onlinepubs/007904975/basedefs/…). Apr 30, 2015 at 15:11
13

you can first match a pattern and then change the text if matched:

echo "apple1" | sed '/apple/s/1/2/'    # gives you "apple2"

this code changes 1 to 2 in all lines containing apple

1
  • 3
    Thanks! I feel I understand sed better after reading this answer.
    – mwfearnley
    Sep 30, 2018 at 16:29
2

This might work for you (GNU sed and Bash):

sed 's/apple1/sed "s|1|2|" <<<"&"/e' file
1
  • OK, worked it out... Normally the "replacement" string is inserted, but GNU sed uses the e flag to execute it and insert its output instead. The executed command passes & (the matched pattern) as a here-string to sed "s|1|2", where | takes the place of the more conventional /.
    – mwfearnley
    Sep 30, 2018 at 16:14

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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