129

I am confused about a bash script.

I have the following code:

function grep_search() {
    magic_way_to_define_magic_variable_$1=`ls | tail -1`
    echo $magic_variable_$1
}

I want to be able to create a variable name containing the first argument of the command and bearing the value of e.g. the last line of ls.

So to illustrate what I want:

$ ls | tail -1
stack-overflow.txt

$ grep_search() open_box
stack-overflow.txt

So, how should I define/declare $magic_way_to_define_magic_variable_$1 and how should I call it within the script?

I have tried eval, ${...}, \$${...}, but I am still confused.

  • 2
    Don't. Use an associative array to map the command name to the data. – chepner May 14 '13 at 21:38
  • 2
    VAR=A; VAL=333; read "$VAR" <<< "$VAL"; echo "A = $A" – Grigory K Apr 18 '18 at 10:05

12 Answers 12

130

Use an associative array, with command names as keys.

# Requires bash 4, though
declare -A magic_variable=()

function grep_search() {
    magic_variable[$1]=$( ls | tail -1 )
    echo ${magic_variable[$1]}
}

If you can't use associative arrays (e.g., you must support bash 3), you can use declare to create dynamic variable names:

declare "magic_variable_$1=$(ls | tail -1)"

and use indirect parameter expansion to access the value.

var="magic_variable_$1"
echo "${!var}"

See BashFAQ: Indirection - Evaluating indirect/reference variables.

  • Capital -A option didn't work for me. Had to use -a. – fent Dec 2 '13 at 9:24
  • 4
    @DeaDEnD -a declares an indexed array, not an associative array. Unless the argument to grep_search is a number, it will be treated as a parameter with a numeric value (which defaults to 0 if the parameter isn't set). – chepner Dec 2 '13 at 12:24
  • 1
    Hmm. I'm using bash 4.2.45(2) and declare doesn't list it as an option declare: usage: declare [-afFirtx] [-p] [name[=value] ...]. It seems to be working correctly however. – fent Dec 2 '13 at 15:56
  • declare -h in 4.2.45(2) for me shows declare: usage: declare [-aAfFgilrtux] [-p] [name[=value] ...]. You might double-check that you are actually running 4.x and not 3.2. – chepner Dec 2 '13 at 16:08
  • 5
    Why not just declare $varname="foo"? – Ben Davis May 19 '14 at 17:05
205

I've been looking for better way of doing it recently. Associative array sounded like overkill for me. Look what I found:

suffix=bzz
declare prefix_$suffix=mystr

...and then...

varname=prefix_$suffix
echo ${!varname}
  • If want to declare a global inside a function, can use "declare -g" in bash >= 4.2. In earlier bash, can use "readonly" instead of "declare", so long as you don't want to change the value later. Can be okay for configuration or what have you. – Sam Watkins Jul 3 '14 at 4:27
  • 7
    best to use encapsulated variable format: prefix_${middle}_postfix (ie. your formatting wouldn't not work for varname=$prefix_suffix) – msciwoj Dec 5 '14 at 12:08
  • I was stuck with bash 3 and could not use associative arrays; as such this was a life saver. ${!...} not easy to google on that one. I assume it just expands a var name. – Neil McGill Jan 15 '15 at 22:37
  • 8
    @NeilMcGill: See "man bash" gnu.org/software/bash/manual/html_node/… : The basic form of parameter expansion is ${parameter}. <...> If the first character of parameter is an exclamation point (!), a level of variable indirection is introduced. Bash uses the value of the variable formed from the rest of parameter as the name of the variable; this variable is then expanded and that value is used in the rest of the substitution, rather than the value of parameter itself. – Yorik.sar Jan 16 '15 at 13:46
  • 1
    @syntaxerror: you can assign values as much as you want with "declare" command above. – Yorik.sar Jun 23 '15 at 8:09
16

Example below returns value of $name_of_var

var=name_of_var
echo $(eval echo "\$$var")
  • 3
    Nesting two echos with a command substitution (which misses quotes) is unnecessary. Plus, option -n should be given to echo. And, as always, eval is unsafe. But all of this is unnecessary since Bash has a safer, clearer and shorter syntax for this very purpose: ${!var}. – Maëlan Mar 30 at 21:12
12

Beyond associative arrays, there are several ways of achieving dynamic variables in Bash. Note that all these techniques present risks, which are discussed at the end of this answer.

In the following examples I will assume that i=37 and that you want to alias the variable named var_37 whose initial value is lolilol.

Method 1. Using a “pointer” variable

You can simply store the name of the variable in an indirection variable, not unlike a C pointer. Bash then has a syntax for reading the aliased variable: ${!name} expands to the value of the variable whose name is the value of the variable name. You can think of it as a two-stage expansion: ${!name} expands to $var_37, which expands to lolilol.

name="var_$i"
echo "$name"         # outputs “var_37”
echo "${!name}"      # outputs “lolilol”
echo "${!name%lol}"  # outputs “loli”
# etc.

Unfortunately, there is no counterpart syntax for modifying the aliased variable. Instead, you can achieve assignment with one of the following tricks.

1a. Assigning with eval

eval is evil, but is also the simplest and most portable way of achieving our goal. You have to carefully escape the right-hand side of the assignment, as it will be evaluated twice. An easy and systematic way of doing this is to evaluate the right-hand side beforehand (or to use printf %q).

And you should check manually that the left-hand side is a valid variable name, or a name with index (what if it was evil_code # ?). By contrast, all other methods below enforce it automatically.

# check that name is a valid variable name:
# note: this code does not support variable_name[index]
shopt -s globasciiranges
[[ "$name" == [a-zA-Z_]*([a-zA-Z_0-9]) ]] || exit

value='babibab'
eval "$name"='$value'  # carefully escape the right-hand side!
echo "$var_37"  # outputs “babibab”

Downsides:

  • does not check the validity of the variable name.
  • eval is evil.
  • eval is evil.
  • eval is evil.

1b. Assigning with read

The read builtin lets you assign values to a variable of which you give the name, a fact which can be exploited in conjunction with here-strings:

IFS= read -r -d '' "$name" <<< 'babibab'
echo "$var_37"  # outputs “babibab\n”

The IFS part and the option -r make sure that the value is assigned as-is, while the option -d '' allows to assign multi-line values. Because of this last option, the command returns with an non-zero exit code.

Note that, since we are using a here-string, a newline character is appended to the value.

Downsides:

  • somewhat obscure;
  • returns with a non-zero exit code;
  • appends a newline to the value.

1c. Assigning with printf

Since Bash 3.1 (released 2005), the printf builtin can also assign its result to a variable whose name is given. By contrast with the previous solutions, it just works, no extra effort is needed to escape things, to prevent splitting and so on.

printf -v "$name" '%s' 'babibab'
echo "$var_37"  # outputs “babibab”

Downsides:

  • Less portable (but, well).

Method 2. Using a “reference” variable

Since Bash 4.3 (released 2014), the declare builtin has an option -n for creating a variable which is a “name reference” to another variable, much like C++ references. Just as in Method 1, the reference stores the name of the aliased variable, but each time the reference is accessed (either for reading or assigning), Bash automatically resolves the indirection.

In addition, Bash has a special and very confusing syntax for getting the value of the reference itself, judge by yourself: ${!ref}.

declare -n ref="var_$i"
echo "${!ref}"  # outputs “var_37”
echo "$ref"     # outputs “lolilol”
ref='babibab'
echo "$var_37"  # outputs “babibab”

This does not avoid the pitfalls explained below, but at least it makes the syntax straightforward.

Downsides:

  • Not portable.

Risks

All these aliasing techniques present several risks. The first one is executing arbitrary code each time you resolve the indirection (either for reading or for assigning). Indeed, instead of a scalar variable name, like var_37, you may as well alias an array subscript, like arr[42]. But Bash evaluates the contents of the square brackets each time it is needed, so aliasing arr[$(do_evil)] will have unexpected effects… As a consequence, only use these techniques when you control the provenance of the alias.

function guillemots() {
  declare -n var="$1"
  var="«${var}»"
}

arr=( aaa bbb ccc )
guillemots 'arr[1]'  # modifies the second cell of the array, as expected
guillemots 'arr[$(date>>date.out)1]'  # writes twice into date.out
            # (once when expanding var, once when assigning to it)

The second risk is creating a cyclic alias. As Bash variables are identified by their name and not by their scope, you may inadvertently create an alias to itself (while thinking it would alias a variable from an enclosing scope). This may happen in particular when using common variable names (like var). As a consequence, only use these techniques when you control the name of the aliased variable.

function guillemots() {
  # var is intended to be local to the function,
  # aliasing a variable which comes from outside
  declare -n var="$1"
  var="«${var}»"
}

var='lolilol'
guillemots var  # Bash warnings: “var: circular name reference”
echo "$var"     # outputs anything!

Source:

  • Wow, amazing! Why is this not the accepted answer??? – Lennart Rolland Jun 24 at 7:42
  • It came several years after the question. – Maëlan Aug 21 at 21:32
4

This should work:

function grep_search() {
    declare magic_variable_$1="$(ls | tail -1)"
    echo "$(tmpvar=magic_variable_$1 && echo ${!tmpvar})"
}
grep_search var  # calling grep_search with argument "var"
4

This will work too

my_country_code="green"
x="country"

eval z='$'my_"$x"_code
echo $z                 ## o/p: green

In your case

eval final_val='$'magic_way_to_define_magic_variable_"$1"
echo $final_val
3

Wow, most of the syntax is horrible! Here is one solution with some simpler syntax if you need to indirectly reference arrays:

#!/bin/bash

foo_1=("fff" "ddd") ;
foo_2=("ggg" "ccc") ;

for i in 1 2 ;
do
    eval mine=( \${foo_$i[@]} ) ;
    echo ${mine[@]} ;
done ;

For simpler use cases I recommend the syntax described in the Advanced Bash-Scripting Guide.

  • 1
    The ABS is someone notorious for showcasing bad practices in its examples. Please consider leaning on the bash-hackers wiki or the Wooledge wiki -- which has the directly on-topic entry BashFAQ #6 -- instead. – Charles Duffy Feb 9 '17 at 17:22
  • @CharlesDuffy: Thanks, I'll look at those references. I'm quite certain that the syntax here I either came up with myself or hacked from another example somewhere. My reference to the ABS was for people looking for a simpler use case, e.g. not using dynamic variable names. I thought, gee, how confusing is this if someone just wants to reference an array and they find this answer. – ingyhere Feb 11 '17 at 0:18
  • 2
    This works only if the entries in foo_1 and foo_2 are free of whitespace and special symbols. Examples for problematic entries: 'a b' will create two entries inside mine. '' won't create an entry inside mine. '*' will expand to the content of the working directory. You can prevent these problems by quoting: eval 'mine=( "${foo_'"$i"'[@]}" )' – Socowi Mar 1 at 10:17
  • @Socowi That's a general problem with looping through any array in BASH. This could also be solved by temporarily changing the IFS (and then of course changing it back). It's good to see the quoting worked out. – ingyhere May 17 at 21:54
  • @ingyhere I beg to differ. It is not a general problem. There is a standard solution: Always quote [@] constructs. "${array[@]}" will always expand to the correct list of entries without problems like word splitting or expansion of *. Also, the word splitting problem can only be circumvented with IFS if you know any non-null character that does never appear inside the array. Furthermore literal treatment of * cannot be achieved by setting IFS. Either you set IFS='*' and split at the stars or you set IFS=somethingOther and the * expands. – Socowi May 18 at 10:15
1

For indexed arrays, you can reference them like so:

foo=(a b c)
bar=(d e f)

for arr_var in 'foo' 'bar'; do
    declare -a 'arr=("${'"$arr_var"'[@]}")'
    # do something with $arr
    echo "\$$arr_var contains:"
    for char in "${arr[@]}"; do
        echo "$char"
    done
done

Associative arrays can be referenced similarly but need the -A switch on declare instead of -a.

0

I want to be able to create a variable name containing the first argument of the command

script.sh file:

#!/usr/bin/env bash
function grep_search() {
  eval $1=$(ls | tail -1)
}

Test:

$ source script.sh
$ grep_search open_box
$ echo $open_box
script.sh

As per help eval:

Execute arguments as a shell command.


You may also use Bash ${!var} indirect expansion, as already mentioned, however it doesn't support retrieving of array indices.


For further read or examples, check BashFAQ/006 about Indirection.

We are not aware of any trick that can duplicate that functionality in POSIX or Bourne shells without eval, which can be difficult to do securely. So, consider this a use at your own risk hack.

However, you should re-consider using indirection as per the following notes.

Normally, in bash scripting, you won't need indirect references at all. Generally, people look at this for a solution when they don't understand or know about Bash Arrays or haven't fully considered other Bash features such as functions.

Putting variable names or any other bash syntax inside parameters is frequently done incorrectly and in inappropriate situations to solve problems that have better solutions. It violates the separation between code and data, and as such puts you on a slippery slope toward bugs and security issues. Indirection can make your code less transparent and harder to follow.

0

As per BashFAQ/006, you can use read with here string syntax for assigning indirect variables:

function grep_search() {
  read "$1" <<<$(ls | tail -1);
}

Usage:

$ grep_search open_box
$ echo $open_box
stack-overflow.txt
0

Use declare

There is no need on using prefixes like on other answers, neither arrays. Use just declare, double quotes, and parameter expansion.

I often use the following trick to parse argument lists contanining one to n arguments formatted as key=value otherkey=othervalue etc=etc, Like:

# brace expansion just to exemplify
for variable in {one=foo,two=bar,ninja=tip}
do
  declare "${variable%=*}=${variable#*=}"
done
echo $one $two $ninja 
# foo bar tip

But expanding the argv list like

for v in "$@"; do declare "${v%=*}=${v#*=}"; done

Extra tips

# parse argv's leading key=value parameters
for v in "$@"; do
  case "$v" in ?*=?*) declare "${v%=*}=${v#*=}";; *) break;; esac
done
# consume argv's leading key=value parameters
while (( $# )); do
  case "$v" in ?*=?*) declare "${v%=*}=${v#*=}";; *) break;; esac
  shift
done
-3

for varname=$prefix_suffix format, just use:

varname=${prefix}_suffix
  • i get 'no file name' error – chovy Dec 7 '15 at 9:15

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