588

I have "I love Suzi and Marry" and I want to change "Suzi" to "Sara".

#!/bin/bash
firstString="I love Suzi and Marry"
secondString="Sara"
# do something...

The result must be like this:

firstString="I love Sara and Marry"
|improve this question
948

To replace the first occurrence of a pattern with a given string, use ${parameter/pattern/string}:

#!/bin/bash
firstString="I love Suzi and Marry"
secondString="Sara"
echo "${firstString/Suzi/$secondString}"    
# prints 'I love Sara and Marry'

To replace all occurrences, use ${parameter//pattern/string}:

message='The secret code is 12345'
echo "${message//[0-9]/X}"           
# prints 'The secret code is XXXXX'

(This is documented in the Bash Reference Manual, §3.5.3 "Shell Parameter Expansion".)

Note that this feature is not specified by POSIX — it's a Bash extension — so not all Unix shells implement it. For the relevant POSIX documentation, see The Open Group Technical Standard Base Specifications, Issue 7, the Shell & Utilities volume, §2.6.2 "Parameter Expansion".

|improve this answer
  • 2
    @ruakh how do I write this statement with a or condition. Just if I want to replace Suzi or Marry with new string. – Priyatham51 Jan 8 '14 at 22:41
  • 2
    @Priyatham51: There's no built-in feature for that. Just replace one, then the other. – ruakh Jan 9 '14 at 0:05
  • @ruakh : Thank you for your reply . I already did that yesterday, and just wanted to check with you if there is an option so that I don't have to write two lines of code. :) – Priyatham51 Jan 9 '14 at 15:08
  • 2
    @Bu: No, because \n in that context would represent itself, not a newline. I don't have Bash handy right now to test, but you should be able to write something like, $STRING="${STRING/$'\n'/<br />}". (Though you probably want STRING// -- replace-all -- instead of just STRING/.) – ruakh Jul 23 '15 at 5:08
  • 9
    To be clear, since this confused me for a bit, the first part has to be a variable reference. You can't do echo ${my string foo/foo/bar}. You'd need input="my string foo"; echo ${input/foo/bar} – Henrik N Sep 15 '16 at 7:42
156

This can be done entirely with bash string manipulation:

first="I love Suzy and Mary"
second="Sara"
first=${first/Suzy/$second}

That will replace only the first occurrence; to replace them all, double the first slash:

first="Suzy, Suzy, Suzy"
second="Sara"
first=${first//Suzy/$second}
# first is now "Sara, Sara, Sara"
|improve this answer
  • 2
    What's the point in having an answer that duplicates the accepted one, instead of editing the accepted one with the global replacement option? And adding that regexps are supported, while at it. And explaining what's up with "Bad substitution". You have enough points, @Kevin :) – Dan Dascalescu Oct 15 '17 at 21:10
55

try this:

 sed "s/Suzi/$secondString/g" <<<"$firstString"
|improve this answer
  • 16
    You don't actually need Sed for this; Bash supports this sort of replacement natively. – ruakh Nov 3 '12 at 16:05
  • 11
    I guess this is tagged "bash" but came here because needed something simple for another shell. This is a nice succinct alternative to what wiki.ubuntu.com/… made it look like I'd need. – natevw Sep 30 '14 at 22:02
  • 3
    This works great for ash/dash or any other POSIX sh. – Yoshua Wuyts Mar 21 '15 at 10:18
  • 1
    I get error sed: -e expression #1, char 9: unknown option to `s – Nam G VU Aug 8 '17 at 8:58
  • 1
    First answer that works with stdin, great for pipelining strings. – Dinei Jan 24 '18 at 21:31
43

It's better to use bash than sed if strings have RegExp characters.

echo ${first_string/Suzi/$second_string}

It's portable to Windows and works with at least as old as Bash 3.1.

To show you don't need to worry much about escaping let's turn this:

/home/name/foo/bar

Into this:

~/foo/bar

But only if /home/name is in the beginning. We don't need sed!

Given that bash gives us magic variables $PWD and $HOME, we can:

echo "${PWD/#$HOME/\~}"

EDIT: Thanks for Mark Haferkamp in the comments for the note on quoting/escaping ~.*

Note how the variable $HOME contains slashes but this didn't break anything.

Further reading: Advanced Bash-Scripting Guide.
If using sed is a must, be sure to escape every character.

|improve this answer
  • This answer stopped me from using sed with the pwd command to avoid defining a new variable each time my custom $PS1 runs. Does Bash provide a more general way than magic variables to use the output of a command for string replacement? As for your code, I had to escape the ~ to keep Bash from expanding it into $HOME. Also, what does the # in your command do? – Mark Haferkamp May 26 '15 at 0:05
  • 1
    @MarkHaferkamp See this from the "further reading recommended" link. About "escaping the ~": notice how I quoted stuff. Remember to always quote stuff! And this doesn't just work for magic variables: any variable is capable of substitutions, getting string length, and more, within bash. Congrats on trying to your $PS1 fast: you may also be interested in $PROMPT_COMMAND if you are more comfortable in another programming language and want to code a compiled prompt. – Camilo Martin May 27 '15 at 19:33
  • The "further reading" link explains the "#". On Bash 4.3.30, echo "${PWD/#$HOME/~}" doesn't replace my $HOME with ~. Replacing ~ with \~ or '~' works. Any of these work on Bash 4.2.53 on another distro. Can you please update your post to quote or escape the ~ for better compatibility? What I meant by my "magic variables" question was: Can I use Bash's variable substitution on, e.g., the output of uname without saving it as a variable first? As for my personal $PROMPT_COMMAND, it's complicated. – Mark Haferkamp May 30 '15 at 7:46
  • @MarkHaferkamp Whoa, you're totally right, my bad. Will update the answer now. – Camilo Martin May 31 '15 at 5:45
  • It seems that I was wrong.... Actually rebooting between Chakra Linux and openSUSE (as opposed to chrooting) shows that ${PWD/#$HOME/~} works in Bash 4.2.53 on SUSE and ${PWD/#$HOME/\~} works in Bash 4.3.30 on Chakra, but not vice versa. A workaround that works on both distros is to replace ~ with $(echo '~'), as in the verbose ${PWD/#$HOME/$(echo '~')}. Edit: I just realized that $'~' might be better. I'm testing it now. – Mark Haferkamp Jun 10 '15 at 0:45
39

For Dash all previous posts aren't working

The POSIX sh compatible solution is:

result=$(echo "$firstString" | sed "s/Suzi/$secondString/")
|improve this answer
  • I got this: $ echo $(echo $firstString | sed 's/Suzi/$secondString/g') I love $secondString and Marry – Qstnr_La May 9 '17 at 18:43
  • 1
    @Qstnr_La use double quotes for variable substitution: result=$(echo $firstString | sed "s/Suzi/$secondString/g") – emc Jun 8 '17 at 6:31
  • 1
    Plus 1 for showing how to output to a variable as well. Thanks! – Chef Pharaoh Nov 1 '17 at 14:28
  • 1
    I fixed the single quotes and also added the missing quotes around the echo argument. It deceptively works without quoting with simple strings, but easily breaks on any nontrivial input string (irregular spacing, shell metacharacters, etc). – tripleee Jul 17 '18 at 16:54
  • In sh (AWS Codebuild / Ubuntu sh) I found that I need a single slash at the end, not a double. I'm going to edit the comment as the comments above also show a single slash. – Tim Apr 11 at 1:01
14

If tomorrow you decide you don't love Marry either she can be replaced as well:

today=$(</tmp/lovers.txt)
tomorrow="${today//Suzi/Sara}"
echo "${tomorrow//Marry/Jesica}" > /tmp/lovers.txt

There must be 50 ways to leave your lover.

|improve this answer
  • :-D yeah, you are right! – YadirHB Feb 20 at 12:45
1

Since I can't add a comment. @ruaka To make the example more readable write it like this

full_string="I love Suzy and Mary"
search_string="Suzy"
replace_string="Sara"
my_string=${full_string/$search_string/$replace_string}
or
my_string=${full_string/Suzy/Sarah}
|improve this answer

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.