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Apparently you can access the arguments of a shell script via $1, $2, etc.

But if you do a function inside the script, you access the parameters to a function in the same way.

How to do it if I want to create a shell script which receives an argument, and which also has functions that receives parameters?

I've tried doing it but the scope breaks, the function thinks there are no parameters if I pass no arguments to the script :(

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up vote 1 down vote accepted

I have not found this to be the case, the function parameters have different scope than the script parameters

bar ()
{
  echo $1
}
echo $1
bar bird

Output

$ foo.sh

bird

$ foo.sh dog
dog
bird
share|improve this answer
    
so weird! in my first testing it didn't work... I'll try to find the culprit, thanks! – knocte Apr 17 '13 at 23:29

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