I have two scripts foo.sh and bla.sh

foo.sh

#bin/bash 
test(){
    "hello world"
}   
test
exit 1

bla.sh

#bin/bash 
source ./a.sh
echo a.test

The problem is that source seems like run the a.sh script, and of course then after exit 1 b never is executed.

There´s any way to just use the function test from bla without run the whole script?

  • Aside: .sh implies that a script is intended to be sourced into a POSIX sh script, whereas a #!/bin/bash shebang indicates execution by bash, not POSIX sh. If you mean something to be sourced by another shell instance, use an extension that accurately indicates which shell is supported. – Charles Duffy May 20 '16 at 15:39
  • (...whereas if something is intended to only be a command and not be sourced, it shouldn't have any extension at all, just as you run ls, not ls.elf). – Charles Duffy May 20 '16 at 15:41
  • 1
    Further aside: A shebang has to be #!/bin/bash; #bin/bash won't work -- #! have to be the first two characters or the operating system won't acknowledge the shebang as such. – Charles Duffy May 20 '16 at 15:53
  • 1
    (also, since test is a shell builtin, it's good practice to name anything that overlaps something difference, hence mytest in my example). – Charles Duffy May 20 '16 at 15:56
up vote 7 down vote accepted

If you want your script to be capable of being sourced without running its contents, you should design it that way.

#!/bin/bash

# put your function definitions here
mytest() { echo "hello world"; }

# ...and choose one of the following, depending on your requirements:

# more reliable approach, *except* doesn't detect being sourced from an interactive or
# piped-in shell.
(( ${#BASH_SOURCE[@]} > 1 )) && return

# less reliable approach in general, but *does* detect being sourced from an interactive
# shell.
[[ "$BASH_SOURCE" != "$0" ]] && return

# put your actions to take when executed here
mytest
exit 1

Why it works: (( ${#BASH_SOURCE[@]} > 1 ))

If the array of source files (per stack frame) is of length more than one in the root of a script, the only way to have any additional stack frame is for the script to have been sourced from elsewhere.

The caveat, here, is that an interactive shell (or a noninteractive shell with its input coming from a pipeline or other non-file source) doesn't have an entry in the BASH_SOURCE array, so if we're sourced from a human-driven shell -- or a shell reading its input from a pipeline or other non-file source -- there will still be only one entry.

Why it works: [[ $BASH_SOURCE != "$0" ]]

BASH_SOURCE is an array of source files, one element per stack frame; like all bash arrays, when expanded without explicitly indexing into a specific element, it defaults to the first one (that being the file currently being executed or sourced). $0 is the name of the command being executed, which is not updated by the source command.

Thus, if these don't match, we know that we were sourced.

Important caveat: Note that there are circumstances where depending on $0 will necessarily be broken: cat input-script | bash can't accurately know the location on disk where input-script came from, so it will always detect this as being sourced. See the Why $0 is NOT an option section of BashFAQ #28 to understand these limitations in detail.

  • Can you explain me please what that means this "[[ $_ != $0 ]] && return # being sourced" Regards – paul May 20 '16 at 15:39
  • What part of it don't you understand? Do you know what [[ ]] does? &&? $0? $_? – Charles Duffy May 20 '16 at 15:40
  • Sorry very very newby on bash. I only understand the && and I´m not even sure what it´s doing in this context. Really sorry. – paul May 20 '16 at 15:41
  • [[ $foo = "$bar" ]] is a string comparison. ([[ $foo = $bar ]] is not, quite -- it treats the right-hand side as a glob expression, as opposed to a string -- but it's close). && is a short-circuiting boolean operator, same as it is in most other languages: Because it's short-circuiting, the right-hand side only runs if the left-hand side has a truthy result. And when a script is being sourced, return exits it early. – Charles Duffy May 20 '16 at 15:52
  • Unfortunately $0 isn't all that reliable (even bash from where that quote comes from doesn't actually do that, it doesn't use an absolute pathname it uses whatever you typed to run the script, that still happens to match but that's coincidental). – Etan Reisner May 20 '16 at 16:02

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