155

If I run this code in bash:

echo dog dog dos | sed -r 's:dog:log:'

it gives output:

log dog dos

How can I make it replace all occurrences of dog?

1
  • 2
    You need the g flag for global substitution, you don't need the -r option here either. Apr 6, 2013 at 9:25

2 Answers 2

241

You should add the g modifier so that sed performs a global substitution of the contents of the pattern buffer:

echo dog dog dos | sed -e 's:dog:log:g'

For a fantastic documentation on sed, check http://www.grymoire.com/Unix/Sed.html. This global flag is explained here: http://www.grymoire.com/Unix/Sed.html#uh-6

The official documentation for GNU sed is available at http://www.gnu.org/software/sed/manual/

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  • 2
    Adding a corner case for GNU sed here: sed -E 's,foo,bar,g' doesn't do the global thing. If you change it to sed -E -e 's,foo,bar,g' it works. Dec 12, 2018 at 13:51
  • If you want to replace all on the line AND on the other lines as well it will also work: echo 'dog dog dos\ndog'|sed 's:dog:log:g
    – Timo
    Nov 18, 2020 at 9:11
31

You have to put a g at the end, it stands for "global":

echo dog dog dos | sed -r 's:dog:log:g'
                                     ^
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  • 1
    sed -e should be used instead of sed -r, which does not exist. Dec 16, 2015 at 1:47
  • 3
    @DylanDaniels According to man sed on Ubuntu, the -r option means "use extended regular expressions". So the given command works fine, although it doesn't need the features of extended regular expressions to work. Apr 11, 2016 at 1:28

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