Expanding variables Bash Scripting - bash

I have two variables in bash that complete the name of another one, and I want to expand it but don't know how to do it
I have:
echo $sala
a
echo $i
10
and I want to expand ${a10} in this form ${$sala$i} but apparently the {} scape the $ signs.

There are a few ways, with different advantages and disadvantages. The safest way is to save the complete parameter name in a single parameter, and then use indirection to expand it:
tmp="$sala$i" # sets $tmp to 'a10'
echo "${!tmp}" # prints the parameter named by $tmp, namely $a10
A slightly simpler way is a command like this:
eval echo \${$sala$i}
which will run eval with the arguments echo and ${a10}, and therefore run echo ${a10}. This way is less safe in general — its behavior depends a bit more chaotically on the values of the parameters — but it doesn't require a temporary variable.

Use the eval.
eval "echo \${$sala$i}"
Put the value in another variable.
result=$(eval "echo \${$sala$i}")

The usual answer is eval:
sala=a
i=10
a10=37
eval echo "\$$sala$i"
This echoes 37. You can use "\${$sala$i}" if you prefer.
Beware of eval, especially if you need to preserve spaces in argument lists. It is vastly powerful, and vastly confusing. It will work with old shells as well as Bash, which may or may not be a merit in your eyes.

You can do it via indirection:
$ a10=blah
$ sala=a
$ i=10
$ ref="${sala}${i}"
$ echo $ref
a10
$ echo ${!ref}
blah
However, if you have indexes like that... an array might be more appropriate:
$ declare -a a
$ i=10
$ a[$i]="test"
$ echo ${a[$i]}
test

Related

What shellenv command does? [duplicate]

After reading the Bash man pages and with respect to this post, I am still having trouble understanding what exactly the eval command does and which would be its typical uses.
For example, if we do:
$ set -- one two three # Sets $1 $2 $3
$ echo $1
one
$ n=1
$ echo ${$n} ## First attempt to echo $1 using brackets fails
bash: ${$n}: bad substitution
$ echo $($n) ## Second attempt to echo $1 using parentheses fails
bash: 1: command not found
$ eval echo \${$n} ## Third attempt to echo $1 using 'eval' succeeds
one
What exactly is happening here and how do the dollar sign and the backslash tie into the problem?
eval takes a string as its argument, and evaluates it as if you'd typed that string on a command line. (If you pass several arguments, they are first joined with spaces between them.)
${$n} is a syntax error in bash. Inside the braces, you can only have a variable name, with some possible prefix and suffixes, but you can't have arbitrary bash syntax and in particular you can't use variable expansion. There is a way of saying “the value of the variable whose name is in this variable”, though:
echo ${!n}
one
$(…) runs the command specified inside the parentheses in a subshell (i.e. in a separate process that inherits all settings such as variable values from the current shell), and gathers its output. So echo $($n) runs $n as a shell command, and displays its output. Since $n evaluates to 1, $($n) attempts to run the command 1, which does not exist.
eval echo \${$n} runs the parameters passed to eval. After expansion, the parameters are echo and ${1}. So eval echo \${$n} runs the command echo ${1}.
Note that most of the time, you must use double quotes around variable substitutions and command substitutions (i.e. anytime there's a $): "$foo", "$(foo)". Always put double quotes around variable and command substitutions, unless you know you need to leave them off. Without the double quotes, the shell performs field splitting (i.e. it splits value of the variable or the output from the command into separate words) and then treats each word as a wildcard pattern. For example:
$ ls
file1 file2 otherfile
$ set -- 'f* *'
$ echo "$1"
f* *
$ echo $1
file1 file2 file1 file2 otherfile
$ n=1
$ eval echo \${$n}
file1 file2 file1 file2 otherfile
$eval echo \"\${$n}\"
f* *
$ echo "${!n}"
f* *
eval is not used very often. In some shells, the most common use is to obtain the value of a variable whose name is not known until runtime. In bash, this is not necessary thanks to the ${!VAR} syntax. eval is still useful when you need to construct a longer command containing operators, reserved words, etc.
Simply think of eval as "evaluating your expression one additional time before execution"
eval echo \${$n} becomes echo $1 after the first round of evaluation. Three changes to notice:
The \$ became $ (The backslash is needed, otherwise it tries to evaluate ${$n}, which means a variable named {$n}, which is not allowed)
$n was evaluated to 1
The eval disappeared
In the second round, it is basically echo $1 which can be directly executed.
So eval <some command> will first evaluate <some command> (by evaluate here I mean substitute variables, replace escaped characters with the correct ones etc.), and then run the resultant expression once again.
eval is used when you want to dynamically create variables, or to read outputs from programs specifically designed to be read like this. See Eval command and security issues for examples. The link also contains some typical ways in which eval is used, and the risks associated with it.
In my experience, a "typical" use of eval is for running commands that generate shell commands to set environment variables.
Perhaps you have a system that uses a collection of environment variables, and you have a script or program that determines which ones should be set and their values. Whenever you run a script or program, it runs in a forked process, so anything it does directly to environment variables is lost when it exits. But that script or program can send the export commands to standard output.
Without eval, you would need to redirect standard output to a temporary file, source the temporary file, and then delete it. With eval, you can just:
eval "$(script-or-program)"
Note the quotes are important. Take this (contrived) example:
# activate.sh
echo 'I got activated!'
# test.py
print("export foo=bar/baz/womp")
print(". activate.sh")
$ eval $(python test.py)
bash: export: `.': not a valid identifier
bash: export: `activate.sh': not a valid identifier
$ eval "$(python test.py)"
I got activated!
The eval statement tells the shell to take eval’s arguments as commands and run them through the command-line. It is useful in a situation like below:
In your script if you are defining a command into a variable and later on you want to use that command then you should use eval:
a="ls | more"
$a
Output:
bash: command not found: ls | more
The above command didn't work as ls tried to list file with name pipe (|) and more. But these files are not there:
eval $a
Output:
file.txt
mailids
remote_cmd.sh
sample.txt
tmp
Update: Some people say one should -never- use eval. I disagree. I think the risk arises when corrupt input can be passed to eval. However there are many common situations where that is not a risk, and therefore it is worth knowing how to use eval in any case. This stackoverflow answer explains the risks of eval and alternatives to eval. Ultimately it is up to the user to determine if/when eval is safe and efficient to use.
The bash eval statement allows you to execute lines of code calculated or acquired, by your bash script.
Perhaps the most straightforward example would be a bash program that opens another bash script as a text file, reads each line of text, and uses eval to execute them in order. That's essentially the same behavior as the bash source statement, which is what one would use, unless it was necessary to perform some kind of transformation (e.g. filtering or substitution) on the content of the imported script.
I rarely have needed eval, but I have found it useful to read or write variables whose names were contained in strings assigned to other variables. For example, to perform actions on sets of variables, while keeping the code footprint small and avoiding redundancy.
eval is conceptually simple. However, the strict syntax of the bash language, and the bash interpreter's parsing order can be nuanced and make eval appear cryptic and difficult to use or understand. Here are the essentials:
The argument passed to eval is a string expression that is calculated at runtime. eval will execute the final parsed result of its argument as an actual line of code in your script.
Syntax and parsing order are stringent. If the result isn't an executable line of bash code, in scope of your script, the program will crash on the eval statement as it tries to execute garbage.
When testing you can replace the eval statement with echo and look at what is displayed. If it is legitimate code in the current context, running it through eval will work.
The following examples may help clarify how eval works...
Example 1:
eval statement in front of 'normal' code is a NOP
$ eval a=b
$ eval echo $a
b
In the above example, the first eval statements has no purpose and can be eliminated. eval is pointless in the first line because there is no dynamic aspect to the code, i.e. it already parsed into the final lines of bash code, thus it would be identical as a normal statement of code in the bash script. The 2nd eval is pointless too, because, although there is a parsing step converting $a to its literal string equivalent, there is no indirection (e.g. no referencing via string value of an actual bash noun or bash-held script variable), so it would behave identically as a line of code without the eval prefix.
Example 2:
Perform var assignment using var names passed as string values.
$ key="mykey"
$ val="myval"
$ eval $key=$val
$ echo $mykey
myval
If you were to echo $key=$val, the output would be:
mykey=myval
That, being the final result of string parsing, is what will be executed by eval, hence the result of the echo statement at the end...
Example 3:
Adding more indirection to Example 2
$ keyA="keyB"
$ valA="valB"
$ keyB="that"
$ valB="amazing"
$ eval eval \$$keyA=\$$valA
$ echo $that
amazing
The above is a bit more complicated than the previous example, relying more heavily on the parsing-order and peculiarities of bash. The eval line would roughly get parsed internally in the following order (note the following statements are pseudocode, not real code, just to attempt to show how the statement would get broken down into steps internally to arrive at the final result).
eval eval \$$keyA=\$$valA # substitution of $keyA and $valA by interpreter
eval eval \$keyB=\$valB # convert '$' + name-strings to real vars by eval
eval $keyB=$valB # substitution of $keyB and $valB by interpreter
eval that=amazing # execute string literal 'that=amazing' by eval
If the assumed parsing order doesn't explain what eval is doing enough, the third example may describe the parsing in more detail to help clarify what is going on.
Example 4:
Discover whether vars, whose names are contained in strings, themselves contain string values.
a="User-provided"
b="Another user-provided optional value"
c=""
myvarname_a="a"
myvarname_b="b"
myvarname_c="c"
for varname in "myvarname_a" "myvarname_b" "myvarname_c"; do
eval varval=\$$varname
if [ -z "$varval" ]; then
read -p "$varname? " $varname
fi
done
In the first iteration:
varname="myvarname_a"
Bash parses the argument to eval, and eval sees literally this at runtime:
eval varval=\$$myvarname_a
The following pseudocode attempts to illustrate how bash interprets the above line of real code, to arrive at the final value executed by eval. (the following lines descriptive, not exact bash code):
1. eval varval="\$" + "$varname" # This substitution resolved in eval statement
2. .................. "$myvarname_a" # $myvarname_a previously resolved by for-loop
3. .................. "a" # ... to this value
4. eval "varval=$a" # This requires one more parsing step
5. eval varval="User-provided" # Final result of parsing (eval executes this)
Once all the parsing is done, the result is what is executed, and its effect is obvious, demonstrating there is nothing particularly mysterious about eval itself, and the complexity is in the parsing of its argument.
varval="User-provided"
The remaining code in the example above simply tests to see if the value assigned to $varval is null, and, if so, prompts the user to provide a value.
I originally intentionally never learned how to use eval, because most people will recommend to stay away from it like the plague. However I recently discovered a use case that made me facepalm for not recognizing it sooner.
If you have cron jobs that you want to run interactively to test, you might view the contents of the file with cat, and copy and paste the cron job to run it. Unfortunately, this involves touching the mouse, which is a sin in my book.
Lets say you have a cron job at /etc/cron.d/repeatme with the contents:
*/10 * * * * root program arg1 arg2
You cant execute this as a script with all the junk in front of it, but we can use cut to get rid of all the junk, wrap it in a subshell, and execute the string with eval
eval $( cut -d ' ' -f 6- /etc/cron.d/repeatme)
The cut command only prints out the 6th field of the file, delimited by spaces. Eval then executes that command.
I used a cron job here as an example, but the concept is to format text from stdout, and then evaluate that text.
The use of eval in this case is not insecure, because we know exactly what we will be evaluating before hand.
I've recently had to use eval to force multiple brace expansions to be evaluated in the order I needed. Bash does multiple brace expansions from left to right, so
xargs -I_ cat _/{11..15}/{8..5}.jpg
expands to
xargs -I_ cat _/11/8.jpg _/11/7.jpg _/11/6.jpg _/11/5.jpg _/12/8.jpg _/12/7.jpg _/12/6.jpg _/12/5.jpg _/13/8.jpg _/13/7.jpg _/13/6.jpg _/13/5.jpg _/14/8.jpg _/14/7.jpg _/14/6.jpg _/14/5.jpg _/15/8.jpg _/15/7.jpg _/15/6.jpg _/15/5.jpg
but I needed the second brace expansion done first, yielding
xargs -I_ cat _/11/8.jpg _/12/8.jpg _/13/8.jpg _/14/8.jpg _/15/8.jpg _/11/7.jpg _/12/7.jpg _/13/7.jpg _/14/7.jpg _/15/7.jpg _/11/6.jpg _/12/6.jpg _/13/6.jpg _/14/6.jpg _/15/6.jpg _/11/5.jpg _/12/5.jpg _/13/5.jpg _/14/5.jpg _/15/5.jpg
The best I could come up with to do that was
xargs -I_ cat $(eval echo _/'{11..15}'/{8..5}.jpg)
This works because the single quotes protect the first set of braces from expansion during the parsing of the eval command line, leaving them to be expanded by the subshell invoked by eval.
There may be some cunning scheme involving nested brace expansions that allows this to happen in one step, but if there is I'm too old and stupid to see it.
You asked about typical uses.
One common complaint about shell scripting is that you (allegedly) can't pass by reference to get values back out of functions.
But actually, via "eval", you can pass by reference. The callee can pass back a list of variable assignments to be evaluated by the caller. It is pass by reference because the caller can allowed to specify the name(s) of the result variable(s) - see example below. Error results can be passed back standard names like errno and errstr.
Here is an example of passing by reference in bash:
#!/bin/bash
isint()
{
re='^[-]?[0-9]+$'
[[ $1 =~ $re ]]
}
#args 1: name of result variable, 2: first addend, 3: second addend
iadd()
{
if isint ${2} && isint ${3} ; then
echo "$1=$((${2}+${3}));errno=0"
return 0
else
echo "errstr=\"Error: non-integer argument to iadd $*\" ; errno=329"
return 1
fi
}
var=1
echo "[1] var=$var"
eval $(iadd var A B)
if [[ $errno -ne 0 ]]; then
echo "errstr=$errstr"
echo "errno=$errno"
fi
echo "[2] var=$var (unchanged after error)"
eval $(iadd var $var 1)
if [[ $errno -ne 0 ]]; then
echo "errstr=$errstr"
echo "errno=$errno"
fi
echo "[3] var=$var (successfully changed)"
The output looks like this:
[1] var=1
errstr=Error: non-integer argument to iadd var A B
errno=329
[2] var=1 (unchanged after error)
[3] var=2 (successfully changed)
There is almost unlimited band width in that text output! And there are more possibilities if the multiple output lines are used: e.g., the first line could be used for variable assignments, the second for continuous 'stream of thought', but that's beyond the scope of this post.
In the question:
who | grep $(tty | sed s:/dev/::)
outputs errors claiming that files a and tty do not exist. I understood this to mean that tty is not being interpreted before execution of grep, but instead that bash passed tty as a parameter to grep, which interpreted it as a file name.
There is also a situation of nested redirection, which should be handled by matched parentheses which should specify a child process, but bash is primitively a word separator, creating parameters to be sent to a program, therefore parentheses are not matched first, but interpreted as seen.
I got specific with grep, and specified the file as a parameter instead of using a pipe. I also simplified the base command, passing output from a command as a file, so that i/o piping would not be nested:
grep $(tty | sed s:/dev/::) <(who)
works well.
who | grep $(echo pts/3)
is not really desired, but eliminates the nested pipe and also works well.
In conclusion, bash does not seem to like nested pipping. It is important to understand that bash is not a new-wave program written in a recursive manner. Instead, bash is an old 1,2,3 program, which has been appended with features. For purposes of assuring backward compatibility, the initial manner of interpretation has never been modified. If bash was rewritten to first match parentheses, how many bugs would be introduced into how many bash programs? Many programmers love to be cryptic.
As clearlight has said, "(p)erhaps the most straightforward example would be a bash program that opens another bash script as a text file, reads each line of text, and uses eval to execute them in order". I'm no expert, but the textbook I'm currently reading (Shell-Programmierung by Jürgen Wolf) points to one particular use of this that I think would be a valuable addition to the set of potential use cases collected here.
For debugging purposes, you may want to go through your script line by line (pressing Enter for each step). You could use eval to execute every line by trapping the DEBUG signal (which I think is sent after every line):
trap 'printf "$LINENO :-> " ; read line ; eval $line' DEBUG
I like the "evaluating your expression one additional time before execution" answer, and would like to clarify with another example.
var="\"par1 par2\""
echo $var # prints nicely "par1 par2"
function cntpars() {
echo " > Count: $#"
echo " > Pars : $*"
echo " > par1 : $1"
echo " > par2 : $2"
if [[ $# = 1 && $1 = "par1 par2" ]]; then
echo " > PASS"
else
echo " > FAIL"
return 1
fi
}
# Option 1: Will Pass
echo "eval \"cntpars \$var\""
eval "cntpars $var"
# Option 2: Will Fail, with curious results
echo "cntpars \$var"
cntpars $var
The curious results in option 2 are that we would have passed two parameters as follows:
First parameter: "par1
Second parameter: par2"
How is that for counter intuitive? The additional eval will fix that.
It was adapted from another answer on How can I reference a file for variables using Bash?

Bad Substitution - Variable name inside other variable name - in Bash

I have a problem in one of my scripts, here it is simplified.
I want to name a variable using another variable in it. My script is:
#! /bin/bash
j=1
SAMPLE${j}_CHIP=5
echo ${SAMPLE${j}_CHIP}
This script echoes:
line 3: SAMPLE1_CHIP=5: command not found
line 4: ${SAMPLE${j}_CHIP}: bad substitution
I'm trying to do that in order to name several samples in a while loop changing the "j" parameter.
Anyone knows how to name a variable like that?
It's possible with eval, but don't use dynamic variable names. Arrays are much, much better.
$ j=1
$ SAMPLES[j]=5
$ echo ${SAMPLES[j]}
5
You can initialize an entire array at once like so:
$ SAMPLES=(5 10 15 20)
And you can append with:
$ SAMPLES+=(25 30)
Indices start at 0.
To read the value of the variable, you may use indirection: ${!var}:
#! /bin/bash
j=1
val=get_5
var=SAMPLE${j}_CHIP
declare "$var"="$val"
echo "${!var}"
The problem is to make the variable get the value.
I used declare above, and the known options are:
declare "$var"="$val"
printf -v "$var" '%s' "$val"
eval $var'=$val'
export "$var=$val"
The most risky option is to use eval. If the contents of var or val may be set by an external user, you have set a way to get code injection. It may seem safe today, but after someone edit the code for some reason, it may get changed to give an attacker a chance to "get in".
Probably the best solution is to avoid all the above.
Associative Array
One alternative is to use Associative Arrays:
#! /bin/bash
j=1
val=get_5
var=SAMPLE${j}_CHIP
declare -A array
array[$var]=$val
echo "${array[$var]}"
Quite less risky and you get a similar named index.
Plain array
But it is clear that the safest solution is to use the simplest of solutions:
#! /bin/bash
j=1
val=get_5
array[j]=$val
echo "${array[j]}"
All done, little risk.
If you really want to use variable variables:
#! /bin/bash
j=1
var="SAMPLE${j}_CHIP"
export ${var}=5
echo "${!var}" # prints 5
However, there are other approaches to solving the parent issue, which are likely less confusing than this approach.
j=1
eval "SAMPLE${j}_CHIP=5"
echo "${SAMPLE1_CHIP}"
Or
j=1
var="SAMPLE${j}_CHIP"
eval "$var=5"
echo "${!var}"
As others said, it's normally not possible. Here is a workaround if you wish. Note that you have to use eval when declaring a nested variable, and ⭗ instead of $ when accessing it (I use ⭗ as a function name, because why not).
#!/bin/bash
function ⭗ {
if [[ ! "$*" = *\{*\}* ]]
then echo $*
else ⭗ $(eval echo $(echo $* | sed -r 's%\{([^\{\}]*)\}%$(echo ${\1})%'))
fi
}
j=1
eval SAMPLE${j}_CHIP=5
echo `⭗ {SAMPLE{j}_CHIP}`
c=CHIP
echo `⭗ {SAMPLE{j}_{c}}`

How to force bash to do variable expansion on a string?

I have read a line of bash code from the file, and I want to send it to log. To make it more useful, I'd like to send the variable-expanded version of the line.
I want to expand only shell variables. I don't want the pipes to be interpreted, nor I don't want to spawn any side processes, like when expanding a line with $( rm -r /).
I know that variable expansion is very deeply woven into the bash. I hope there is a way to perform just expansion, without any side effects, that would come from pipes, external programs and - perhaps - here-documents.
Maybe there is something like eval?
#!/bin/bash
linenr=42
line=`sed "${linenr}q;d" my-other-script.sh`
shell-expand $line >>mylog.log
I want a way to expand only the shell variables.
if x=a, a="example" then I want the following expansions:
echo $x should be echo a.
echo ${a} should be echo example
touch ${!x}.txt should be touch example.txt
if [ (( ${#a} - 6 )) -gt 10 ]; then echo "Too long string" should be if [ 1 -gt 10 ]; then echo "Too long string"
echo "\$a and \$x">/dev/null should be echo "\$a and \$x>dev/null"
For those arriving five years later, and, although it is not the best answer to the OP's problem, an answer to the question is as follows. Bash can do indirect parameter expansion:
some_param=a
a=b
echo ${!some_param}
echo $BASH_VERSION
# 5.0.18(1)-release
You are absolutely right, it is very dangerous to use the bash.
In fact your command suffers from your problem.
Let us discuss your script in detail:
#!/bin/bash
line=`sed "${42}q;d" my-other-script.sh`
shell-expand $line >>mylog.log
The sed may produce many lines of output, so it is misleading to use the name line.
Then you did not quote $line, this may have obscure effects:
$ x='| grep x'
$ ls -l $x
ls: cannot access |: No such file or directory
ls: cannot access grep: No such file or directory
-rw-rw-r-- 1 foo bar 34493 Nov 19 18:51 x
$
In this case the pipe is not executed, but passed to the program ls.
If you have untrusted input, it is very hard to program a robust shell script.
Using eval is evil - I would never suggest using it, especially for such a purpose!
An alternative way would be in perl, iterate over the $ENV array and replace all env keys by the env values. This way you have more control over the things, which may happen.

How to build bash command from variable?

I have a bash variable:
A="test; ls"
I want to use it as part of a call:
echo $A
I'm expecting it to be expanded into:
echo test; ls
However, it is expanded:
echo "test;" "ls"
How is it possible to achieve what I want? The only solution I can think of is this:
bash -c "echo $A"
Maybe there is something more elegant?
If you're building compound commands, running redirections, etc., then you need to use eval:
A="test; ls"
eval "$A"
However, it's far better not to do this. A typical use case that follows good practices follows:
my_cmd=( something --some-arg "another argument with spaces" )
if [[ $foo ]]; then
my_cmd+=( --foo="$foo" )
fi
"${my_cmd[#]}"
Unlike the eval version, this can only run a single command line, and will run it exactly as-given -- meaning that even if foo='$(rm -rf /)' you won't get your hard drive wiped. :)
If you absolutely must use eval, or are forming a shell command to be used in a context where it will necessarily be shell-evaluated (for instance, passed on a ssh command line), you can achieve a hybrid approach using printf %q to form command lines safe for eval:
printf -v cmd_str 'ls -l %q; exit 1' "some potentially malicious string"
eval "$cmd_str"
See BashFAQ #48 for more details on the eval command and why it should be used only with great care, or BashFAQ #50 for a general discussion of pitfalls and best practices around programmatically constructing commands. (Note that bash -c "$cmd_str" is equivalent to eval in terms of security impact, and requires the same precautions to use safely).
dont use echo, just have the var
A="echo test; ls"
$A

How to concatenate a string with a variable to the new variable in Bash?

I have a shell script like this,
#!/bin/bash
foxy1="foxyserver"
H="1"
and the output should be foxyserver.
I tried this,
echo $foxy$H
and this gives me
1
and then I used
str="foxy$H"
echo $str
the output is
foxy1
How could I do that?
Use indirect variables, as described in BashFAQ #6:
$ foxy1="foxyserver"
$ H="1"
$ varname="foxy$H"
$ echo "${!varname}"
foxyserver
Using eval, you can do indirection:
eval echo \$$str
Output
foxyserver
Warning: This is not really good practice. For example, if you have str=(rm -rf ~/*) then the eval expression would be $(rm -rf ~/*). So be warned and use indirection as suggested by Charles Duffy.

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