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i have the following code

#some function thing
#second function thing

and i want to call function2 but i get an error that say function2 : not found
there is solution?

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4 Answers 4

Function definitions in bash don't work the way function definitions work in many other languages. In bash, a function definition is an executable command which defines the effect of a function (replacing any previous definition), in much the same way that a variable assignment command defines the value of a variable (replacing any previous definition). Perhaps this example will clarify what I mean:

    $ outerfunc1() {
> innerfunc() { echo "Running inner function #1"; }
> echo "Running outer function #1"
> }
$ outerfunc2() {
> innerfunc() { echo "Running inner function #2"; }
> echo "Running outer function #2"
> }
$ # At this point, both outerfunc1 and outerfunc2 contain definitions of
$ # innerfunc, but since neither has been executed yet, the definitions
$ # haven't "happened".
$ innerfunc
-bash: innerfunc: command not found
$ outerfunc1
Running outer function #1
$ # Now that outerfunc1 has executed, it has defined innerfunc:
$ innerfunc
Running inner function #1
$ outerfunc2
Running outer function #2
$ # Running outerfunc2 has redefined innerfunc:
$ innerfunc
Running inner function #2

Now, if you didn't already know this, I'm pretty sure this wasn't your reason for nesting function definitions. Which brings up the question: why are you nesting function definitions at all? Whatever effect you expected nested definitions to have, that's not what they do in bash; so 1) unnest them and 2) find some other way to accomplish whatever you were trying to get the nesting to do for you.

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Don't nest function definitions. replace with:

$ cat try.bash 
function one {
  echo "One"

function two {
  echo "Two"

function three {

$ bash try.bash 
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When you say 'Don't nest the functions', is it because bash does not support nested functions? (I'm just curious as I'm not very familiar with bash) – Russell Dias Dec 8 '11 at 4:20
my code need to call a function inside another.. i cant split all – tiranodev Dec 8 '11 at 4:21
You can call the functions from within each other. You just can't define them within each other as in the original post and expect it to work. – Michael Hoffman Dec 8 '11 at 4:24
See Sorry, but search for "It is even possible to nest a function within another function, although this is not very useful." Bash is not an OO language. Also it is not clear what your really trying to acomplish here, maybe a re-write of you problem will help the bash regulars determine if bash can help. Good luck.! – shellter Dec 8 '11 at 4:25
I have a huge code with a lot of functions nested and i want to add command line arguments for some functions that are inside another – tiranodev Dec 8 '11 at 4:32

In the question case I suppose that you were trying to call function2 before it is defined, "some function thing" should have been after the function2 definition.

For the sake of discussion, I have a case where using such definitions can be of some use.

Suppose you want to provide a function that might be complex, its readability could be helped by splitting the code in smaller functions but you don't want that such functions are made accessible.

Running the following script (

function outer1 {
    function inner1 {
       echo '*** Into inner function of outer1'
    unset -f inner1

function outer2 {
    function inner2 {
       echo '*** Into inner function of outer2'
    unset -f inner2
export PS1=':inner_vs_outer\$ '
export -f outer1 outer2

exec bash -i

when executed a new shell is created. Here outer1 and outer2 are valid commands, but inner is not, since it has been unset exiting from where you have outer1 and outer2 defined but inner is not and will not be because you unset it at the end of the function.

$ ./
:inner_vs_outer$ outer1
*** Into inner function of outer1
:inner_vs_outer$ outer2
*** Into inner function of outer2
:inner_vs_outer$ inner1
bash: inner1: command not found
:inner_vs_outer$ inner2
bash: inner2: command not found

Note that if you define the inner functions at the outer level and you don't export them they will not be accessible from the new shell, but running the outer function will result in errors because they will try executing functions no longer accessible; instead, the nested functions are defined every time the outer function is called.

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Nice and POSIX. Shame that it destroys external functions called inner1, so should be coupled with a naming convention like __ prefix. – Ciro Santilli 六四事件 法轮功 包卓轩 Jul 9 at 10:16

To limit the scope of the inner function, you can use a function defined with parenthesis () instead of braces {}:

f() (
  g() {
    echo G

# Ouputs `G`
# Command not found.

Parenthesis functions are run in sub-shells, which have the same semantics of () vs {}, see also: Defining bash function body using parenthesis instead of braces

This cannot be used if you want to do things like setting variables or exiting from the function, but this is often the case, see also: bash functions: enclosing the body in braces vs. parentheses

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Nice. You can even pass local scope variables into g. Solves declaring global arrays in many cases? Example: function f( )( local var=$1; function g( ){ echo $var; }; g; ) – AsymLabs Aug 30 at 19:45

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