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I am working on a bash function, and I suspect that it currently has a syntax error, the code is this:

for (( i=1; i<$#; i++))
do
  GET_BLOCK "/$${!i}/" ...
done

What I am trying to do is to run GET_BLOCK "/$1/" for the first parameter, "/$2/" for the second, and so on until there are no more parameters passed to the script. Am I doing this right? (PS! I need to get the value of the variables $1, $2 exc...)

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You don't need to put SOLVED in the question title; accepting an answer marks the question as solved. –  chepner Jun 18 '13 at 13:18

1 Answer 1

up vote 4 down vote accepted

The more idiomatic way of iterating over the positional parameters is to use $@:

for p in "$@"; do
    GET_BLOCK "/$p/"
done

What you wanted was

for ((i=1; i<$#; i++))
do
    GET_BLOCK "/${!i}"
done

but this is both non-standard and less clear than iterating over $@ directly.

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Thanks for your feedback! You are quite right, the problem though is that I need to take in an unknown amount of parameters. The first solution would only work for one parameter right? –  Dan-Simon Myrland Jun 18 '13 at 12:53
1  
No, $@ expands to the list of all positional parameters, and when quoted, each parameter is individually quoted, so with a call like script "foo bar" "1 2", p gets assigned first to foo bar and secondly to 1 2. –  chepner Jun 18 '13 at 12:57
    
Oh, cool! I didn't realize that, thanks :) –  Dan-Simon Myrland Jun 18 '13 at 13:04

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