18

Can some one give an example where declare -x would be useful ?

4 Answers 4

11

Use declare -x when you want to pass a variable to a different program, but don't want the variable to be used in global scope of the parent shell (i.e. when declaring inside a function).

From the bash help:

When used in a function, declare makes NAMEs local, as with the local command. The -g option suppresses this behavior.

-x to make NAMEs export

Using + instead of - turns off the given attribute.

So declare -gx NAME=X will effectively behave the same as export NAME=X, but declare -x does not when the declare statements are inside functions.

8

declare -x FOO is the same as export FOO. It "exports" the FOO variable as an environment variable, so that programs you run from that shell session would see it.

5
  • 3
    I don't think they are exact synonyms. Jul 6, 2012 at 18:46
  • No? Then why is it that when you run export (without any arguments), it prints out the current exports using declare -x? Jul 7, 2012 at 4:48
  • 2
    I'm not sure, but see this question. I tried it and they act differently. Jul 9, 2012 at 13:08
  • 11
    Downvoted, because this answer contains a false statement. declare -x FOO is not the same as export FOO. In particular, the former will not affect the global scope from within a function, whereas the latter will. declare -gx FOO might be the same as export FOO.
    – user82216
    May 7, 2018 at 22:30
  • @user82116 is correct and this answer should be changed to -gx. I was trying just -x in a function and it exported only within the function but did not export even though there was no subshell. -gx worked. Note using "export" within a function works as expected
    – DKebler
    Jan 5, 2023 at 0:57
8

Declare -x can be used instead of eval to allow variables to be set as arguments to the shell. For example, you can replace the extremely insecure:

# THIS IS NOT SAFE
while test $# -gt 0; do
  eval export $1
  shift
done

with the safer:

while test $# -gt 0; do
  declare -x $1
  shift
done

As an aside, this construct allows the user to invoke the script as:

$ ./test-script foo=bar

rather than the more idiomatic (but confusing to some):

$ foo=bar ./test-script
3
  • Thanks. But how is the first option insecure ? Apr 26, 2011 at 21:27
  • 5
    Anytime you eval a string, you give the user who can construct the string the ability to make the script do anything. Apr 27, 2011 at 3:20
  • set -k in the calling shell lets you treat any name=value pairs to be treated as environment modifications, regardless of whether they appear before or after the command. declare "$1" may be sufficient, without -x, if you only need to define a variable to use in the current shell, rather than actually exporting it.
    – chepner
    Feb 17, 2021 at 23:55
2

The accepted solution is not accurate, as commented by @sampablokuper. However both export variable a to subshells (below within ()).
test.sh:

#/bin/bash
foo() {
    declare -x a="OK"
    ([ "$a" = "OK" ]) &&  echo "foo exported a locally"

}

bar() {
    export a="OK"
    ([ "$a" = "OK" ]) && echo "bar exported a locally"
}

foo
echo "Global value of a by foo: ${a}"  
([ "$a" = "OK" ]) &&  echo "foo exported a globally" \
                  || echo 'foo did not export a globally'
bar
echo "Global value of a by bar: ${a}"  
([ "$a" = "OK" ]) && echo "bar exported a globally" \
                  || echo 'bar did not export a globally'

Runs as follows:

$ ./test.sh
foo exported a locally
Global value of a by foo: 
foo did not export a globally
bar exported a locally
Global value of a by bar: OK
bar exported a globally
2
  • 1
    Indeed, I was just banging my head until I discovered this. The global subshell doesn't have anything to do with it. Simply doing the following: function foo { declare -x a="OK"; }; echo $a we will see that a is not printed. But function foo { a="OK"; }; echo $a does print OK (here also the 'export' isn't related. So it seems that 'declare -x' defines a local variable, that is exported and used in further subshells, but it does not persist beyond the function scope of the parent process.
    – Jon
    Feb 17, 2021 at 23:06
  • Thx Jon, I finally get it reading the last sentence of your comment! ♥ Bash definitively has unique subtleties. I wrote many shell scripts as a part of my job for decades, only recently I decided to really dive into Bash, what a journey… It is a rather odd language (compared to Python typically), I think this is why I love it. ^^
    – Stéphane
    Feb 25 at 16:42

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