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I've got following bash script to do something for each parameter of the script

#! /bin/sh

while (($#)); do
 echo $1
 shift
done

But somehow, if I start it with the command sudo ./test.sh foo1 foo2 it wont work. And the real strange thing is, that if I enter sudo bash test.sh foo1 foo2 it works. Does anybody know what causes this strange behaviour?

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What are the permissions on your script? What doesn't work about the first attempt? – sarnold Jun 21 '12 at 21:50
4  
If you are writing a bash script put #!/bin/bash at the beginning. If you are writing sh script, don't use any of bash extensions. – Banthar Jun 21 '12 at 21:50
    
please edit your question to include current output, expected output and any error messages (complete text). Impossible to debug given your descriptions. Good luck. – shellter Jun 21 '12 at 21:51
    
'./test heh eheh' gives me './test: 6: 2: not found' sudo is not relevant, but using bash fixes it. – richard Jun 21 '12 at 22:06
    
"it won't work" provides no information. Please post error messages or descriptions of unexpected behavior. – Dennis Williamson Jun 21 '12 at 22:06
up vote 3 down vote accepted

You have specified /bin/sh as your interpreter, which may not be bash. Even if it is bash, bash runs in POSIX mode when called as /bin/sh.

The (( )) command is a bash-specific feature. The following will work in any POSIX compliant shell:

while [ $# -gt 0 ]; do
   echo $1
   shift
done
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Have you tried #!/bin/bash rather than sh?

Here's a link explaining the difference: http://www.linuxquestions.org/questions/programming-9/difference-between-bin-bash-and-bin-sh-693231/

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This will work in either sh or bash:

for arg
do
    echo "$arg"
done

and it does the same thing as your script is intended to do without destroying the argument list.

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