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I'm debugging an old shell script; I want to check the values of all the variables used, it's a huge ugly script with approx more than 140 variables used. Is there anyway I can extract the variable names from the script and put them in a convenient pattern like:

#!/bin/sh
if [ ${BLAH} ....
.....
rm -rf ${JUNK}.....

to

echo ${BLAH}
echo ${JUNK}
...
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If this were a bash script, yes, you could ask the shell to list all variables used. Since it starts with #!/bin/sh it's not bash, but a POSIX sh script; that doesn't have the extension. –  Charles Duffy Jun 21 '13 at 15:23
    
...by the way, [ ${BLAH} ] and rm -rf ${JUNK} are both very bad practice. [[ ${BLAH} ]] or [ "${BLAH}" ], both of which avoid string-splitting and glob-expansion, would be safer. Think about how the code you gave would behave with values such as JUNK='/tmp/foo.d/ /etc/passwd /junk.txt', or BLAH='-n foobar' –  Charles Duffy Jun 21 '13 at 19:04

4 Answers 4

Try running your script as follows:

bash -x ./script.bash

Or enable the setting in the script:

set -x
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Unfortunately, the script can take many paths based on different conditions and many statements may not be executed. Also it is.. uhm.. kinda cumbersome to track the values to the variable names. –  Rnet Jun 21 '13 at 15:05

You can dump all interested variables in one command using:

set | grep -w -e BLAH -e JUNK

To dump all the variables to stdout use:

set

or

env

from inside your script.

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I don't know the names of all the variables.... –  Rnet Jun 21 '13 at 15:06
    
@Rnet: If you're echoing them then obviously you have to know them. Otherwise just run the set OR env command from your script to dump ALL variables on stdout. –  anubhava Jun 21 '13 at 15:07
    
I thought of 'forming' the echo commands dynamically once I extract the variable names... –  Rnet Jun 21 '13 at 15:10
    
Why make things complicated when simple env can do just that. –  anubhava Jun 21 '13 at 15:14
1  
@anubhava env definitely doesn't show variables not exported to the environment. It may be that you're using set -a to export everything unconditionally. –  Charles Duffy Jun 21 '13 at 15:29

You can extract a (sub)list of the variables declared in your script using grep:

grep -Po "([a-z][a-zA-Z0-9_]+)(?==\")" ./script.bash | sort -u

Disclaimer: why "sublist"?

The expression given will match string followed by an egal sign (=) and a double quote ("). So if you don't use syntax such as myvar="my-value" it won't work. But you got the idea.

grep Options

  • -P --perl-regexp: Interpret PATTERN as a Perl regular expression (PCRE, see below) (experimental) ;
  • -o --only-matching: Print only the matched (non-empty) parts of a matching line, with each such part on a separate output line.

Pattern

I'm using a positive lookahead: (?==\") to require an egal sign followed by a double quote.

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1  
It'd be more accurate to match (1) only things which can be POSIX sh variable names on the left side of the =, and (2) no whitespace in the line prior to a quote symbol, escape, or $(. Even then... trying to write a parser for shell syntax in regex seems like an exercise in futility. –  Charles Duffy Jun 21 '13 at 15:32
    
That's not a robust idea for sure, but it might fit the need of @Rnet –  Édouard Lopez Jun 21 '13 at 15:34
    
Correct me if I'm wrong, but the positive lookahead: (?==\")" require an egal sign directly followed by a double quote. –  Édouard Lopez Jun 21 '13 at 15:41
    
...it's also a risk to assume grep -P -- not only is it a non-POSIX option, but even GNU grep has it as a compile-time switch, so it isn't guaranteed to be compiled in at all. –  Charles Duffy Jun 21 '13 at 16:26
1  
Your regex won't match varnames beginning with an upper case letter (unless you also use grep's -i option). Here's an updated one: '[[:alpha:]_]\w+(?:\[.*?\])?(?==)' -- that will also match assignments to array elements, uses Perl character classes for brevity, and does not require a double quote following the equal sign (i.e. num=0) –  glenn jackman Jun 21 '13 at 20:47

In bash, but not sh, compgen -v will list the names of all variables assigned (compare this to set, which has a great deal of output other than variable names, and thus needs to be parsed).

Thus, if you change the top of the script to #!/bin/bash, you will be able to use compgen -v to generate that list.

That said, the person who advised you use set -x did well. Consider this extension on that:

PS4=':$BASH_SOURCE:$LINENO+'; set -x

This will print the source file and line number before every command (or variable assignment) which is executed, so you will have a log not only of which variables are set, but just where in the source each one was assigned. This makes tracking down where each variable is set far easier.

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