155

I have a script that has some functions.

Can I run one of the function directly from command line?

Something like this?

myScript.sh func()
297

Well, while the other answers are right - you can certainly do something else: if you have access to the bash script, you can modify it, and simply place at the end the special parameter "$@" - which will expand to the arguments of the command line you specify, and since it's "alone" the shell will try to call them verbatim; and here you could specify the function name as the first argument. Example:

$ cat test.sh
testA() {
  echo "TEST A $1";
}

testB() {
  echo "TEST B $2";
}

"$@"


$ bash test.sh
$ bash test.sh testA
TEST A 
$ bash test.sh testA arg1 arg2
TEST A arg1
$ bash test.sh testB arg1 arg2
TEST B arg2

For polish, you can first verify that the command exists and is a function:

# Check if the function exists (bash specific)
if declare -f "$1" > /dev/null
then
  # call arguments verbatim
  "$@"
else
  # Show a helpful error
  echo "'$1' is not a known function name" >&2
  exit 1
fi
6
  • 20
    Use "$@" in most cases. $@ is not safe in some cases.
    – fumiyas
    Apr 10 '15 at 13:21
  • 1
    How to run more than a function? for example can I run bash test.sh testA testB ?
    – Jeff Pang
    Aug 25 '18 at 8:22
  • This also needs to be wrapped with [ ! -z "$1" ] otherwise source will raise the else statement in some bash verions
    – JackLeo
    Sep 3 '18 at 14:27
  • I've been searching near and far for this magical "$@" variable to use whichever function is called on a file, thank you @sdaau! Feb 15 '20 at 7:08
  • What if I have some other code at the beginning of test.sh which are not functions? Does it still work? - I tried myself and yes it works!
    – Ömer An
    Jul 24 '21 at 9:33
77

If the script only defines the functions and does nothing else, you can first execute the script within the context of the current shell using the source or . command and then simply call the function. See help source for more information.

3
  • 2
    The only problem with this method is that if you use exit in your function, it will close the terminal after the function executed. Is there any way around this? @SvenMarnach Sep 2 '14 at 23:01
  • @user1527227: Go with the next answer in that case, given you have control of the shell script. If you don't, you can call an interactive subshell first (just enter bash), and exit will only terminate the subshell, but not your terminal. Sep 3 '14 at 10:09
  • 2
    would be good if there was an actual code example for this
    – cryanbhu
    Jan 14 '21 at 9:32
55

The following command first registers the function in the context, then calls it:

. ./myScript.sh && function_name
3
  • 2
    You can also simply use source. As in - source myScript.sh && function_name Feb 27 '20 at 14:14
  • 3
    may i know why your alternative is simpler? Not being snarky, i just really don't get it?
    – cryanbhu
    Jan 14 '21 at 9:35
  • What if user wants to pass some command line arguments/options to the script?
    – yabhishek
    Feb 4 '21 at 9:50
23

Briefly, no.

You can import all of the functions in the script into your environment with source (help source for details), which will then allow you to call them. This also has the effect of executing the script, so take care.

There is no way to call a function from a shell script as if it were a shared library.

1
  • 2
    I think this should be given more weight as an appropriate answer. I tried to do something similar to what the OP is wanting, but shell scripting simply isn't engineered for "clean-cut, OOP development" (IMHO).
    – Dan L
    Dec 18 '14 at 17:23
14

Using case

#!/bin/bash

fun1 () {
    echo "run function1"
    [[ "$@" ]] && echo "options: $@"
}

fun2 () {
    echo "run function2"
    [[ "$@" ]] && echo "options: $@"
}

case $1 in
    fun1) "$@"; exit;;
    fun2) "$@"; exit;;
esac

fun1
fun2

This script will run functions fun1 and fun2 but if you start it with option fun1 or fun2 it'll only run given function with args(if provided) and exit. Usage

$ ./test 
run function1
run function2

$ ./test fun2 a b c
run function2
options: a b c
3

I have a situation where I need a function from bash script which must not be executed before (e.g. by source) and the problem with @$ is that myScript.sh is then run twice, it seems... So I've come up with the idea to get the function out with sed:

sed -n "/^func ()/,/^}/p" myScript.sh

And to execute it at the time I need it, I put it in a file and use source:

sed -n "/^func ()/,/^}/p" myScript.sh > func.sh; source func.sh; rm func.sh

0

Edit: WARNING - seems this doesn't work in all cases, but works well on many public scripts.

If you have a bash script called "control" and inside it you have a function called "build":

function build() { 
  ... 
}

Then you can call it like this (from the directory where it is):

./control build

If it's inside another folder, that would make it:

another_folder/control build

If your file is called "control.sh", that would accordingly make the function callable like this:

./control.sh build
1
  • 2
    This didn't work in interactive shell for me. But this worked: . ./control.sh && build
    – saulius2
    Jul 10 '19 at 12:16
0

Solved post but I'd like to mention my preferred solution. Namely, define a generic one-liner script eval_func.sh:

#!/bin/bash
source $1 && shift && "@a"

Then call any function within any script via:

./eval_func.sh <any script> <any function> <any args>...

An issue I ran into with the accepted solution is that when sourcing my function-containing script within another script, the arguments of the latter would be evaluated by the former, causing an error.

-2

you can call function from command line argument like below

function irfan() {
echo "Irfan khan"
date
hostname
}
function config() {
ifconfig
echo "hey"
}
$1

Once you defined the functions put $1 at the end to accept argument which function you want to call. Lets say the above code is saved in fun.sh. Now you can call the functions like ./fun.sh irfan & ./fun.sh config in command line.

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