80

In my script in bash, there are lot of variables, and I have to make something to save them to file. My question is how to list all variables declared in my script and get list like this:

VARIABLE1=abc
VARIABLE2=def
VARIABLE3=ghi

11 Answers 11

130

set will output the variables, unfortunately it will also output the functions defines as well.

Luckily POSIX mode only outputs the variables:

( set -o posix ; set ) | less

Piping to less, or redirect to where you want the options.

So to get the variables declared in just the script:

( set -o posix ; set ) >/tmp/variables.before
source script
( set -o posix ; set ) >/tmp/variables.after
diff /tmp/variables.before /tmp/variables.after
rm /tmp/variables.before /tmp/variables.after

(Or at least something based on that :-) )

  • You edited while I was posting. Nice call with the -o posix now a diff will only contain the variables. – ezpz Aug 20 '09 at 10:50
  • 7
    Without using temporary files: VARS="`set -o posix ; set`"; source script; SCRIPT_VARS="`grep -vFe "$VARS" <<<"$(set -o posix ; set)" | grep -v ^VARS=`"; unset VARS; . This will also output the vars in a ready-to-save format. The list will include the variables that the script changed (it depends whether this is desirable) – ivan_pozdeev Aug 15 '11 at 22:12
  • 1
    @ErikAronesty If you want to be able to recreate an environment with source, you should be able to do so with the output of declare -p. – Six Sep 13 '15 at 13:47
  • 2
    If you want to compare an environment before and after with diff (or any similar command) without resorting to the use of temp files, you can do so with the following: before=$(set -o posix; set); dosomestuff; diff <(echo "$before") <(set -o posix; set) – Six Sep 13 '15 at 13:51
  • 1
    @Caesar No, I only tried non-empty arrays. Your are right in case of empty arrays – they are not printed. – Socowi Mar 12 at 7:47
32
compgen -v

It lists all variables including local ones. I learned it from Get list of variables whose name matches a certain pattern, and used it in my script.

  • Sadly, compgen -v lists also global variables that were unset locally. Not sure if that's a long-standing bug or the desired behavior. – Michał Górny Nov 16 '15 at 19:35
9
for i in _ {a..z} {A..Z}; do eval "echo \${!$i@}" ; done | xargs printf "%s\n"

This must print all shell variables names. You can get a list before and after sourcing your file just like with "set" to diff which variables are new (as explained in the other answers). But keep in mind such filtering with diff can filter out some variables that you need but were present before sourcing your file.

In your case, if you know your variables' names start with "VARIABLE", then you can source your script and do:

for var in ${!VARIABLE@}; do
   printf "%s%q\n" "$var=" "${!var}"
done

UPDATE: For pure BASH solution (no external commands used):

for i in _ {a..z} {A..Z}; do
   for var in `eval echo "\\${!$i@}"`; do
      echo $var
      # you can test if $var matches some criteria and put it in the file or ignore
   done 
done
4

Based on some of the above answers, this worked for me:

before=$(set -o posix; set | sort);

source file:

comm -13 <(printf %s "$before") <(set -o posix; set | sort | uniq) 
3

If you can post-process, (as already mentioned) you might just place a set call at the beginning and end of your script (each to a different file) and do a diff on the two files. Realize that this will still contain some noise.

You can also do this programatically. To limit the output to just your current scope, you would have to implement a wrapper to variable creation. For example

store() {
    export ${1}="${*:2}"
    [[ ${STORED} =~ "(^| )${1}($| )" ]] || STORED="${STORED} ${1}"
}

store VAR1 abc
store VAR2 bcd
store VAR3 cde

for i in ${STORED}; do
    echo "${i}=${!i}"
done

Which yields

VAR1=abc
VAR2=bcd
VAR3=cde
1

Here's something similar to the @GinkgoFr answer, but without the problems identified by @Tino or @DejayClayton, and is more robust than @DouglasLeeder's clever set -o posix bit:

+ function SOLUTION() { (set +o posix; set) | sed -ne '/^\w\+=/!q; p;'; }

The difference is that this solution STOPS after the first non-variable report, e.g. the first function reported by set

BTW: The "Tino" problem is solved. Even though POSIX is turned off and functions are reported by set, the sed ... portion of the solution only allows variable reports through (e.g. VAR=VALUE lines). In particular, the A2 does not spuriously make it into the output.

+ function a() { echo $'\nA2=B'; }; A0=000; A9=999; 
+ SOLUTION | grep '^A[0-9]='
A0=000
A9=999

AND: The "DejayClayton" problem is solved (embedded newlines in variable values do not disrupt the output - each VAR=VALUE get a single output line):

+ A1=$'111\nA2=222'; A0=000; A9=999; 
+ SOLUTION | grep '^A[0-9]='
A0=000
A1=$'111\nA2=222'
A9=999

NOTE: The solution provided by @DouglasLeeder suffers from the "DejayClayton" problem (values with embedded newlines). Below, the A1 is wrong and A2 should not show at all.

$ A1=$'111\nA2=222'; A0=000; A9=999; (set -o posix; set) | grep '^A[0-9]='
A0=000
A1='111
A2=222'
A9=999

FINALLY: I don't think the version of bash matters, but it might. I did my testing / developing on this one:

$ bash --version
GNU bash, version 4.4.12(1)-release (x86_64-pc-msys)

POST-SCRIPT: Given some of the other responses to the OP, I'm left < 100% sure that set always converts newlines within the value to \n, which this solution relies upon to avoid the "DejayClayton" problem. Perhaps that's a modern behavior? Or a compile-time variation? Or a set -o or shopt option setting? If you know of such variations, please add a comment...

0

Try using a script (lets call it "ls_vars"):

  #!/bin/bash
  set -a
  env > /tmp/a
  source $1
  env > /tmp/b
  diff /tmp/{a,b} | sed -ne 's/^> //p'

chmod +x it, and:

  ls_vars your-script.sh > vars.files.save
  • 3
    This doesn't show local variables, only exported ones. – docwhat Nov 1 '10 at 19:50
0

From a security perspective, either @akostadinov's answer or @JuvenXu's answer is preferable to relying upon the unstructured output of the set command, due to the following potential security flaw:

#!/bin/bash

function doLogic()
{
    local COMMAND="${1}"
    if ( set -o posix; set | grep -q '^PS1=' )
    then
        echo 'Script is interactive'
    else
        echo 'Script is NOT interactive'
    fi
}

doLogic 'hello'   # Script is NOT interactive
doLogic $'\nPS1=' # Script is interactive

The above function doLogic uses set to check for the presence of variable PS1 to determine if the script is interactive or not (never mind if this is the best way to accomplish that goal; this is just an example.)

However, the output of set is unstructured, which means that any variable that contains a newline can totally contaminate the results.

This, of course, is a potential security risk. Instead, use either Bash's support for indirect variable name expansion, or compgen -v.

0

I probably have stolen the answer while ago ... anyway slightly different as a func:

    ##
    # usage source bin/nps-bash-util-funcs
    # doEchoVars
    doEchoVars(){

        # if the tmp dir does not exist
        test -z ${tmp_dir} && \
        export tmp_dir="$(cd "$(dirname $0)/../../.."; pwd)""/dat/log/.tmp.$$" && \
        mkdir -p "$tmp_dir" && \
        ( set -o posix ; set )| sort >"$tmp_dir/.vars.before"


        ( set -o posix ; set ) | sort >"$tmp_dir/.vars.after"
        cmd="$(comm -3 $tmp_dir/.vars.before $tmp_dir/.vars.after | perl -ne 's#\s+##g;print "\n $_ "' )"
        echo -e "$cmd"
    } 
0

The printenv command:

printenv prints all environment variables along with their values.

Good Luck...

-1

Try this : set | egrep "^\w+=" (with or without the | less piping)

The first proposed solution, ( set -o posix ; set ) | less, works but has a drawback: it transmits control codes to the terminal, so they are not displayed properly. So for example, if there is (likely) a IFS=$' \t\n' variable, we can see:

IFS='
'

…instead.

My egrep solution displays this (and eventually other similars ones) properly.

  • it's been 8 years, you know – lauriys Mar 9 '17 at 15:22
  • Downvoted because it is plain wrong bash -c $'a() { echo "\nA=B"; }; unset A; set | egrep "^\w+="' | grep ^A displays A=B" -> Fail! – Tino Dec 30 '17 at 11:19
  • Strange test that seems to imply only the "_" (last argument to the previous command) pseudo-variable, but doesn't fail on others, especially IFS. Running it under "bash -c" could also making it not significant. You should at least have stayed neutral instead of downvoting. – GingkoFr Apr 5 '18 at 7:30

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.