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With first 9 arguments being referred from $1-$9, $10 gets interpreted as $1 followed by a 0. How do I account for this and access arguments to functions greater than 10?

Thanks.

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You could post an example script where this is not working? I believe $10 should just work and contain to the 10th argument... –  sloth Jan 27 '11 at 13:07
    
@dkson: no. If you do not use {} it consider $10 as $1 and the litteral 0 –  neuro Jan 27 '11 at 13:10
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3 Answers

up vote 13 down vote accepted

Use :

#!/bin/bash
echo ${10}

To test the difference with $10, code in foo.sh :

#!/bin/bash
echo $10
echo ${10}

Then :

$ ./foo.sh first 2 3 4 5 6 7 8 9 10
first0
10

the same thing is true if you have :

foobar=42
foo=FOO
echo $foobar # echoes 42
echo ${foo}bar # echoes FOObar

Use {} when you want to remove ambiguities ...

my2c

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1  
I don't know what bash you're using but the $ is greedy: $foobar will give you 42, not foobar. If you want $foo followed by the literal "bar", you need ${foo}bar. I won't downvote you since the "real" part of your answer is correct but you may want to fix (or remove) the offending bit. –  paxdiablo Jan 27 '11 at 13:23
    
@paxdiablo: yes that was a bad untested (my shame) example ... Thank you. –  neuro Jan 27 '11 at 13:49
    
That's better, so +1. I took the liberty of setting foo to FOO since there was the possibility of confusion having the variable name and value the same. Hope you don't mind. Cheers. –  paxdiablo Jan 28 '11 at 3:05
    
@paxdiablo: not at all. Cheers. –  neuro Jan 28 '11 at 9:02
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If you are using bash, then you can use ${10}.

${...} syntax seems to be POSIX-compliant in this particular case, but it might be preferable to use the command shift like that :

while [ "$*" != "" ]; do
  echo "Arg: $1"
  shift
done

EDIT: I noticed I didn't explain what shift does. It just shift the arguments of the script (or function). Example:

> cat script.sh
echo "$1"
shift
echo "$1"

> ./script.sh "first arg" "second arg"
first arg
second arg

In case it can help, here is an example with getopt/shift :

while getopts a:bc OPT; do
 case "$OPT" in
  'a')
   ADD=1
   ADD_OPT="$OPTARG"
   ;;
  'b')
   BULK=1
   ;;
  'c')
   CHECK=1
   ;;
 esac
done
shift $( expr $OPTIND - 1 )
FILE="$1"
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3  
You probably want $# -ne 0 instead of "$*" != "" –  glenn jackman Jan 27 '11 at 15:52
1  
No need to use while and shift in some cases. You can use for arg or for arg in "$@". –  Dennis Williamson Jan 27 '11 at 16:58
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In general, to be safe that the whole of a given string is used for the variable name when Bash is interpreting the code, you need to enclose it in braces: ${10}

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