286

Below is the snippet of a shell script from a larger script. It removes the quotes from the string that is held by a variable. I am doing it using sed, but is it efficient? If not, then what is the efficient way?

#!/bin/sh

opt="\"html\\test\\\""
temp=`echo $opt | sed 's/.\(.*\)/\1/' | sed 's/\(.*\)./\1/'`
echo $temp
3
  • I would suggest using sed "s/^\(\"\)\(.*\)\1\$/\2/g" <<<"$opt". This syntax will remove qoutes only when there is a matching pair. – John Smith Aug 30 '17 at 18:33
  • @JohnSmith I also have to automatically escape quotes in a shell script, but I need to do so whether they are matching or not, so I probably will not use that expression you posted. – Pysis Oct 11 '17 at 13:46
  • If you found this question while simply wanting to remove all quotes, see this answer: askubuntu.com/a/979964/103498. – Gordon Bean May 13 '19 at 18:35

15 Answers 15

332

There's a simpler and more efficient way, using the native shell prefix/suffix removal feature:

temp="${opt%\"}"
temp="${temp#\"}"
echo "$temp"

${opt%\"} will remove the suffix " (escaped with a backslash to prevent shell interpretation).

${temp#\"} will remove the prefix " (escaped with a backslash to prevent shell interpretation).

Another advantage is that it will remove surrounding quotes only if there are surrounding quotes.

BTW, your solution always removes the first and last character, whatever they may be (of course, I'm sure you know your data, but it's always better to be sure of what you're removing).

Using sed:

echo "$opt" | sed -e 's/^"//' -e 's/"$//'

(Improved version, as indicated by jfgagne, getting rid of echo)

sed -e 's/^"//' -e 's/"$//' <<<"$opt"

So it replaces a leading " with nothing, and a trailing " with nothing too. In the same invocation (there isn't any need to pipe and start another sed. Using -e you can have multiple text processing).

11
  • 16
    You can get rid of the pipe in the sed solution with sed -e 's/^"//' -e 's/"$//' <<< $opt. – jfg956 Mar 17 '12 at 15:15
  • 1
    This could misbehave it the string doesn't have both a leading and trailing quote character. Any suggestions for handling that gracefully? – jsears Apr 13 '16 at 21:37
  • To handle only matched outer quotes, see the answer by @Joachim Pileborg – jsears Apr 13 '16 at 21:43
  • 1
    @jsears Huh? This specifically trims one from the start if there is one, and one from the end if there is one. If you don't want to remove unless both are present; yes, a single sed regex could be used, or the variable substitution could be wrapped in something line case $opt in '"'*'"') ... do it ... ;; esac – tripleee Oct 7 '16 at 6:24
  • 4
    You could avoid the multiple expressions by using sed 's/^"\|"$//g' – tzrlk Oct 18 '17 at 23:42
347

Use tr to delete ":

 echo "$opt" | tr -d '"'

Note: This removes all double quotes, not just leading and trailing.

5
  • 20
    This is not what OP asked for since it also removes all quotes, not just the leading and trailing ones. – Lenar Hoyt Dec 24 '15 at 14:51
  • 25
    Although not answering OP explicitly this solves for me because there are only double quotes at beginning and end of "/path/file-name". There are no embedded double quotes. +1 – WinEunuuchs2Unix Feb 19 '17 at 15:55
  • 7
    This solution will be what a lot of people want. In many cases, scripting can easily get the workable data down to a string surrounded by quotes. – Shadoninja Jun 25 '18 at 19:27
  • 2
    Elegant and saved me from a lot more trial-error-debug time. Thx. – Scott Wade Nov 22 '18 at 0:07
  • This is what ideally one wants and thats why it has more votes than the accepted answer. – apurvc Nov 13 '19 at 17:37
63

If you're using jq and trying to remove the quotes from the result, the other answers will work, but there's a better way. By using the -r option, you can output the result with no quotes.

$ echo '{"foo": "bar"}' | jq '.foo'
"bar"

$ echo '{"foo": "bar"}' | jq -r '.foo'
bar
2
  • 1
    I'm using jq but please note that it doesn't work if jq is also outputting ASCII output with -a (it's a bug at jq's side) – Can Poyrazoğlu Apr 29 '20 at 17:13
  • yq also has -r option: yq -r '.foo' file.yml – Hlib Babii May 15 '20 at 17:42
41

There is a straightforward way using xargs:

> echo '"quoted"' | xargs
quoted

xargs uses echo as the default command if no command is provided and strips quotes from the input. See e.g. here.

2
  • echo '"quoted"' | xargs --> quoted – kyb Sep 1 '18 at 18:54
  • 2
    This works, but only for an even number of quotes in a string. If there is an odd number, it generates an error. – James Shewey Oct 16 '18 at 19:06
24

The shortest way around - try:

echo $opt | sed "s/\"//g"

It actually removes all "s (double quotes) from opt (are there really going to be any more double quotes other than in the beginning and the end though? So it's actually the same thing, and much more brief ;-))

2
  • 6
    If you want to remove all the double quotes, then it's even better to use : "${opt//\"/}". No pipe, no subshell... And beware that if you have spaces in opt, you may loose them. Always quote variables like : echo "$opt" – huelbois Mar 16 '12 at 7:35
  • Well, the variable basically reads the path of DocumentRoot from httpd's config file, so I dont think there could be case where a quote character could be possibly there in the string. And this sed is much neater and efficient.... Thanks! – user1263746 Mar 16 '12 at 8:49
22

You can do it with only one call to sed:

$ echo "\"html\\test\\\"" | sed 's/^"\(.*\)"$/\1/'
html\test\
0
17

The easiest solution in Bash:

$ s='"abc"'
$ echo $s
"abc"
$ echo "${s:1:-1}"
abc

This is called substring expansion (see Gnu Bash Manual and search for ${parameter:offset:length}). In this example it takes the substring from s starting at position 1 and ending at the second last position. This is due to the fact that if length is a negative value it is interpreted as a backwards running offset from the end of parameter.

1
  • 1
    negative lengths supported from bash v4.2 – mr.spuratic Jun 11 '20 at 18:29
14

Update

A simple and elegant answer from Stripping single and double quotes in a string using bash / standard Linux commands only:

BAR=$(eval echo $BAR) strips quotes from BAR.

=============================================================

Based on hueybois's answer, I came up with this function after much trial and error:

function stripStartAndEndQuotes {
    cmd="temp=\${$1%\\\"}"
    eval echo $cmd
    temp="${temp#\"}"
    eval echo "$1=$temp"
}

If you don't want anything printed out, you can pipe the evals to /dev/null 2>&1.

Usage:

$ BAR="FOO BAR"
$ echo BAR
"FOO BAR"
$ stripStartAndEndQuotes "BAR"
$ echo BAR
FOO BAR
1
  • 3
    Though I really like the simple and elegant, I think it is worth noticing that eval doesn't do just double quote trimmings, but actually evaluates as a line of code. Therefore this technique may yield unexpected results when BAR contains other sequences that may substitute by the shell (e.g. BAR=\'abc\' or BAR=ab\'c or BAR=a\$b, or BAR=a\$(ls *) ) – MaxP Nov 6 '17 at 13:23
10

This is the most discrete way without using sed:

x='"fish"'
printf "   quotes: %s\nno quotes:  %s\n" "$x" "${x//\"/}"

Or

echo $x
echo ${x//\"/}

Output:

   quotes: "fish"
no quotes:  fish

I got this from a source.

2
  • 1
    This will remove quotes from within the string as well as those surrounding it. – jsears Apr 13 '16 at 21:41
  • 1
    Apart from the commentary, this is identical to @StevenPenny's answer from 2012. – tripleee Oct 7 '16 at 6:26
7

I know this is a very old question, but here is another sed variation, which may be useful to someone. Unlike some of the others, it only replaces double quotes at the start or end...

echo "$opt" | sed -r 's/^"|"$//g'
2

My version

strip_quotes() {
    while [[ $# -gt 0 ]]; do
        local value=${!1}
        local len=${#value}
        [[ ${value:0:1} == \" && ${value:$len-1:1} == \" ]] && declare -g $1="${value:1:$len-2}"
        shift
    done
}

The function accepts variable name(s) and strips quotes in place. It only strips a matching pair of leading and trailing quotes. It doesn't check if the trailing quote is escaped (preceded by \ which is not itself escaped).

In my experience, general-purpose string utility functions like this (I have a library of them) are most efficient when manipulating the strings directly, not using any pattern matching and especially not creating any sub-shells, or calling any external tools such as sed, awk or grep.

var1="\"test \\ \" end \""
var2=test
var3=\"test
var4=test\"
echo before:
for i in var{1,2,3,4}; do
    echo $i="${!i}"
done
strip_quotes var{1,2,3,4}
echo
echo after:
for i in var{1,2,3,4}; do
    echo $i="${!i}"
done
2

In Bash, I would use the following one-liner:

[[ "${str}" == \"*\" || "${str}" == \'*\' ]] && str="${str:1:-1}"

This will remove surrounding quotes (both single and double) while keeping quoting characters inside the string intact. Also, it won't do anything if there's only a single leading quote or only a single trailing quote, which is usually what you want in my experience.

Wrapped in a function:

#!/usr/bin/env bash

# Strip surrounding quotes from string [$1: variable name]
function strip_quotes() {
    local -n var="$1"
    [[ "${var}" == \"*\" || "${var}" == \'*\' ]] && var="${var:1:-1}"
}

str="$*"
echo "Before: ${str}"
strip_quotes str
echo "After:  ${str}"
2

If you come here for aws cli --query, try --output text.

1

There is another way to do it. Like:

echo ${opt:1:-1}
1
-2

If you try to remove quotes because the Makefile keeps them, try this:

$(subst $\",,$(YOUR_VARIABLE))

Based on another answer: https://stackoverflow.com/a/10430975/10452175

2
  • Doesn't work - should fix this – A X Jan 30 at 21:38
  • $(subst ...) is a make function. The OP hasn't mentioned any Makefile – xhienne Feb 11 at 13:27

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.