I would like to set -x temporarily in my script and then return in to the original state.
Is there a way to do it without starting new subshell? Something like
echo_was_on=.......
... ...
if $echo_was_on; then set -x; else set +x; fi
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7 Answers
You can check the value of $- to see the current options; if it contains an x, it was set. You can check like so:
old_setting=${-//[^x]/}
...
if [[ -n "$old_setting" ]]; then set -x; else set +x; fi
In case it's not familiar to you: the ${} above is a Bash Substring Replacement, which takes the variable - and replaces anything that's not an x with nothing, leaving just the x behind (or nothing, if there was no x)
reset_x=false
if ! [ -o xtrace ]; then
set -x
reset_x=true
fi
# do stuff
"$reset_x" && set +x
You test a shell option with the -o test (using [ as above or with test -o). If the xtrace option isn't set (set +x), then set it and set a flag to turn it off later.
In a function, you could even have set a RETURN trap to reset the setting when the function returns:
foo () {
if ! [ -o xtrace ]; then
set -x
trap 'set +x' RETURN
fi
# rest of function body here
}
answered Jun 3, 2018 at 16:05
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1What shells support it? It doesn't seem to be listed among POSIX shell test operators: pubs.opengroup.org/onlinepubs/9699919799/utilities/test.html.– skozinJun 5, 2018 at 19:49
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3@skozin
bashsupports it. The question was specifically aboutbash, both in title, and by tags. Jun 5, 2018 at 20:00 -
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1@Kusalananda, I can't quickly figure out why your solution only works when I use double brackets instead of your suggested single ones. If I just leave single as in your post, then no matter if xtrace enabled or not the if [ ! -o xtrace]; always true. I'm on Ubuntu 20.04, bash --version: 5.0.17(1)-release, thanks! Nov 24, 2021 at 18:16
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1@DmitryShevkoplyas Thanks for finding an interesting bug! The
-otest tests whether an option is set or not, but if you use! -o, the-otest is interpreted as "or" (it changes meaning with the number of arguments inside[ ... ]). The solution is to switch to[[ ... ]]as you figured out, or to do as I now do in my answer, i.e. to negate the result of the test outside the brackets. Nov 24, 2021 at 21:47
Or in a case statement
case $- in
*x* ) echo "X is set, do something here" ;;
* ) echo "x NOT set" ;;
esac
Here are re-usable functions, based on @shellter's and @glenn jackman's answers:
is_shell_attribute_set() { # attribute, like "e"
case "$-" in
*"$1"*) return 0 ;;
*) return 1 ;;
esac
}
is_shell_option_set() { # option, like "pipefail"
case "$(set -o | grep "$1")" in
*on) return 0 ;;
*) return 1 ;;
esac
}
Usage example:
set -e
if is_shell_attribute_set e; then echo "yes"; else echo "no"; fi # yes
set +e
if is_shell_attribute_set e; then echo "yes"; else echo "no"; fi # no
set -o pipefail
if is_shell_option_set pipefail; then echo "yes"; else echo "no"; fi # yes
set +o pipefail
if is_shell_option_set pipefail; then echo "yes"; else echo "no"; fi # no
Update: for Bash, test -o is a better way to accomplish the same, see @Kusalananda's answer.
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@Kusalananda, see my question to your answer. Apart from that, it seems like a good solution.– skozinJun 5, 2018 at 19:54
Also:
case $(set -o | grep xtrace | cut -f2) in
off) do something ;;
on) do another thing ;;
esac
answered Jan 29, 2013 at 1:17
less verbose
[ ${-/x} != ${-} ] && tracing=1 || tracing=0
This should answer exactly the question, provided your okay with the bash extension (non POSIX) and you bash version supports it.
[[ $- =~ x ]] && echo_was_on=true || echo_was_on=false
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2
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Thanks @bufh for the POSIX way. All four Remove Pattern operators can work here. Also without double quotes.
[ -z ${-%*x*} ],[ -z ${-%%*x*} ],[ -z ${-#*x*} ],[ -z ${-##*x*} ]. Please correct me if I am wrong. 2 days ago