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I have noticed some weird behavior when sourcing another script within my shell script. The script that I am sourcing to setup the environment in my shell script takes an optional argument, e.g.

source setup.sh version1

However in my shell script I have also have command line argument variables. For example:

./myscript.sh TEST 1

Inside myscript.sh:

#!/bin/zsh
source setup.sh
echo ROOT version setup $ROOT_SYS
...more of the script

The problem that I have noticed with my script above is that the $1 argument (TEST in this example) is used in the source setup.sh command. This causes the command to become

source setup.sh TEST

which of course fails as setup.sh does not have a version TEST.

I solved this problem by editing my script to below.

#!/bin/zsh
source setup.sh version1
echo ROOT version setup $ROOT_SYS
...more of the script

The source command now does not pick up the $1 argument.

Why/How does the source command pick up the $1 argument when I am running my shell script?

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2 Answers 2

up vote 1 down vote accepted

This is because source executes the code of setup.sh as if it was in place, so when setup.sh access, say, $1, the value it has is that of the first argument of the actual script. If you want to avoid that you could either execute it:

setup.sh

or, if you need to get back some variables or values from it, change it to return the result in form of an output, something like:

ROOT_SYS=`setup.sh`

Finally, as you figured out, the source keywords also allows providing arguments to the scripts, but it bypasses current arguments if you don't provide any.

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Thanks Diego. So in my script I could just ./setup.sh instead of source setup.sh? the source setup.sh sets up a command in the shell (sets path etc ) which I use in the script will this still be done with ./setup (I can not see why it wouldn't)? –  MWright Sep 21 '11 at 11:26
    
If your script actually sets variables to be used in the calling script, you have to source it, but then, either the read script ignores command-line arguments, or you provide them explicitly. –  Diego Sevilla Sep 21 '11 at 11:50
    
Thank you Diego. I have just added the argument to my setup.sh as I need to use source –  MWright Sep 21 '11 at 12:43

Historically, unix shells didn't allow any arguments to be passed to scripts called with the . built-in (source is an alias of . available in bash, ksh and zsh). The . built-in means “act as if this file was actually included here”.

In bash, ksh and zsh, if you pass extra arguments to the . built-in, they become positional parameters ($1 and so on) in the sourced script. If you pass zero arguments, the positional parameters of the main script remain in effect. In those shells, . behaves rather like calling a function, though not perfectly so (in particular, in bash, if you modify the positional parameters inside the sub-script, the modification is seen by the main script).

A simple way of avoiding this kind of difficulty is to only ever define functions (and perhaps variables) in the subscript. Treat it as a code library, such that merely sourcing it has no effect, and then call functions from the sub-script to actually do something.

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