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I am not expert of bash scripting, but I really don't understand what is appening here. My script is this:

#!/usr/bin/env bash

echo "calling asetup"
export ATLAS_LOCAL_ROOT_BASE=/cvmfs/
source ${ATLAS_LOCAL_ROOT_BASE}/user/
asetup 17.6.0,slc5

echo "Now running..."
echo "argument $@"

I call it with as ./myscript -v, the output is:

calling asetup invalid option -- 'v'
' --help' for more information
./ line 12: asetup: command not found
Now running...
argument -v

on the second line, what is invalid option -- 'v'?? Why called with the -v option?

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2 Answers 2

The sourced script is run in the current environment without changing the value of positional parameters. The value of "$@" is the same for the called script as for the calling script.

You can use

set --

to clear the positional parameters. If you need to save them, use

set --
set -- "${pos_par[@]}"
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It seems like you are calling your script file with a -v option. Note that source does not change the values of the commandline parameters ($1) unless positional parameters are provided to the source command.

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