If I have just entered the following command in Bash:

echo foo

I can change foo to bar by typing:

^foo^bar

Which results in the following command being executed:

echo bar

Now if I enter:

echo foo foo

Is there a way to change both instances of foo to bar just by using the caret (^) operator?

Additionally, are there man pages for shell operators like ^? man ^ results in "No manual entry for ^".

  • 2
    Thanks for the answers, was hoping for a way to use the ^ syntax for duplicates since it is something I can remember more easily but looks like I will have to memorize the line noise version. – mattjames Jan 27 '10 at 19:12
  • 1
    It might be easier for you to remember the "line noise" version if you also think of ^string1^string2 as already being equivalent to !!:s/string1/string2/. – isomorphismes Jan 3 '13 at 18:45
  • @mattjames if you want something easier to remember, you can check out my answer, which is less "line noise"-y – MLP Aug 17 '17 at 22:55
up vote 50 down vote accepted

That particular feature is called quick substitution; its documentation can be found in the Event Designators section of the Bash Manual. You can't do what you want with quick substitution; you'll have to resort to something slightly more verbose:

!!:gs/foo/bar/
  • @scanny: That doesn't seem to be documented anywhere, and it doesn't work for me in bash 4.2.10(1). What version of the shell are you using (bash --version)? – Adam Rosenfield Sep 27 '13 at 14:56
  • Oops, my mistake, zsh on the brain! :S Deleted the comment. – scanny Sep 27 '13 at 20:45
  • Trailing slash was not needed for me on OSX: !!:gs/foo/bar – B Seven Jul 29 '15 at 21:22

Nor sure how to do it with caret substitution, but here's how you do it with history:

!!:gs/foo/bar/

Let me break that down:

!! - reruns the last command. You can also use !-2 to run two commands ago, !echo to run the last command that starts with echo

:gs says to do a global (all instances) search/replace. If you wanted to just do replace the first instance, you would use ':s'

Finally, /foo/bar/ says to replace foo with bar

Try:

^foo^bar^:&

As you know ^foo^bar^ performs just one substitution, and the :& modifier repeats it.

  • 9
    This will execute two substitutions but not a global substitution. – isomorphismes Jan 3 '13 at 19:14
  • 2
    I discovered that you could pass in multiple ":&" modifiers to the caret substitution. So the ":&" means again, and ":&:&" means again twice, and so on. (Repeating :& for every repetition will become tedious, and I'm glad to learn about !!:gs//. – rickumali Oct 19 '16 at 14:41

Caret substitution and other similar shortcuts are found in the Event Designators subsection of the HISTORY EXPANSION section of the bash(1) man page.

^word^  ........... erase word
^word^^ ........... delete everything until the end of the line
  • 3
    These both do the same thing for me: remove only word from the command. – David Kanarek Jun 1 '11 at 5:22
  • Same here. % echo "word word word word word" word word word word word % ^word^^ echo " word word word word" word word word word – isomorphismes Jan 3 '13 at 18:43

If you're looking for something less difficult to memorize that accomplishes the same thing as the above !!:gs/foo/bar/, you could always create a function in your .bash_profile start-up script. I chose replace().

replace() {
    eval $(echo $(fc -ln -1) | eval "sed 's/${1}/${2}/g'") #compact form
}

OR, Less convolutedly

replace() {
    string=$(fc -ln -1) #gets last command string
    repcmmd="sed 's/${1}/${2}/g'" #build replacement sed command from fn input
    eval $(echo $string | eval $repcmmd) #evaluates the replacement command
}

Then the replace all can be made with

echo foo foo
replace foo bar

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