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I have a Bash script where I want to keep quotes in the arguments passed.

Example:

./test.sh this is "some test"

then I want to use those arguments, and re-use them, including quotes and quotes around the whole argument list.

I tried using \"$@\", but that removes the quotes inside the list.

How do I accomplish this?

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up vote 9 down vote accepted
./test.sh this is '"some test"'
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5  
How can this be the accepted answer? This requires the caller of the script to know that he meeds double quotation although this can be handled in the script without altering the way the caller builds the parameter list – Patrick Cornelissen Mar 2 at 7:09
2  
If you have no control over ./test.sh then this is the correct answer, but if you are authoring ./test.sh, then the answer from Chris Dodd is the better solution. – sanscore Mar 29 at 8:26

using "$@" will substitute the arguments as a list, without re-splitting them on whitespace (they were split once when the shell script was invoked), which is generally exactly what you want if you just want to re-pass the arguments to another program.

What are you trying to do and in what way is it not working?

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2  
I think he means the quotes are part of the argument string, not part of the bash syntax. – Alex Brown May 12 '14 at 17:46
1  
@qwertzguy is incorrect. The double quotes will be stripped before the variable enters the arguments list. – Donal Lafferty Nov 3 '14 at 9:35
1  
This is the top-rated answer. While it is correct per se, it doesn't address the question really. – Torsten Bronger Jan 25 at 22:10
1  
Yes, I agree that it is unclear. And that your answer has its value in its own right. And I really do not grudge you any upvote. But still ... this is the answer to another question. :) – Torsten Bronger Jan 26 at 7:23
1  
@Hofi: Those are all because you need the correct quoting for echo -- xargs and "$@" are irrelevant. Try echo -ne "nospace\x0yes space\x0" as I suggested. – Chris Dodd Apr 15 at 14:25

Yuku's answer only works if you're the only user of your script, while Dennis Williamson's is great if you're mainly interested in printing the strings, and expect them to have no quotes-in-quotes.

Here's a version that can be used if you want to pass all arguments as one big quoted-string argument as the bash or su "-c" parameter:

#!/bin/bash
C=''
for i in "$@"; do 
    C="$C \"${i//\"/\\\"}\""
done
bash -c "$C"

So, all the parameters get a quote around them (harmless if it wasn't there before, for this purpose), but we also escape any quotes that were already in a parameter (the syntax ${var//from/to} does global substring substitution).

You could of course only quote stuff which already had whitespace in it, but it won't matter here. One utility of a script like this is to be able to have a certain predefined set of environment variables (or, with su, to run stuff as a certain user, without that mess of double-quoting everything).

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Use array instead? I'll post an example below. – JohnMudd Apr 1 '15 at 18:45

If it's safe to make the assumption that an argument that contains white space must have been (and should be) quoted, then you can add them like this:

#!/bin/bash
whitespace="[[:space:]]"
for i in "$@"
do
    if [[ $i =~ $whitespace ]]
    then
        i=\"$i\"
    fi
    echo "$i"
done

Here is a sample run:

$ ./argtest abc def "ghi jkl" $'mno\tpqr' $'stu\nvwx'
abc
def
"ghi jkl"
"mno    pqr"
"stu
vwx"

You can also insert literal tabs and newlines using Ctrl-V Tab and Ctrl-V Ctrl-J within double or single quotes instead of using escapes within $'...'.

A note on inserting characters in Bash: If you're using Vi key bindings (set -o vi) in Bash (Emacs is the default - set -o emacs), you'll need to be in insert mode in order to insert characters. In Emacs mode, you're always in insert mode.

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Changed unhammer's example to use array.

printargs() { printf "'%s' " "$@"; echo; };  # http://superuser.com/a/361133/126847

C=()
for i in "$@"; do
    C+=("$i")  # Need quotes here to append as a single array element.
done

printargs "${C[@]}"  # Pass array to a program as a list of arguments.                               
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Is it possible to use "${C[@]}" as an argument to bash -c there? E.g. if your script was called with the arguments echo foo\"bar"'"fie – unhammer Feb 3 at 8:25
    
e.g. foo=( echo bar\"fie"'"fum ); C='';for i in "${foo[@]}"; do C="$C \"${i//\"/\\\"}\""; done; bash -c "$C" gives bar"fie'fum – unhammer Feb 3 at 8:28

Quotes are interpreted by bash and are not stored in command line arguments or variable values.

If you want to use quoted arguments, you have to quote them each time you use them:

val="$3"
echo "Hello World" > "$val"
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Having troubles launching processes with double quotes in the arguments?

Try using eval to stop Bash from processing the arguments before they are handed to a process, e.g.

#!/bin/sh

call_in_double_quotes()
{
    echo Trying $@
    "$@"
}

call_in_double_quotes /root/some/binary./test.sh this is "some test"
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