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echo $1 $2 $3 ' -> echo $1 $2 $3'
args=("$@")
echo ${args[0]} ${args[1]} ${args[2]} ' -> args=("$@"); echo ${args[0]} ${args[1]} ${args[2]}'
echo $@ ' -> echo $@'
echo Number of arguments passed: $# ' -> echo Number of arguments passed: $#' 

This is suppose to be the output

This is suppose to be the output

But I get this instead.

Jasons-MacBook-Pro:bash jasonkim$ bash arguments.sh 
 -> echo $1 $2 $3
 -> args=("$@"); echo ${args[0]} ${args[1]} ${args[2]}
 -> echo $@
Number of arguments passed: 0  -> echo Number of arguments passed: $#
share|improve this question
up vote 3 down vote accepted

The problem isn't that you can't, it's that you didn't.

bash arguments.sh Bash Scripting Tutorial
share|improve this answer
#!/bin/bash

for var in "$@"
do
    echo "$var"
done

$ ./scr.sh a b c

outputs :

a
b
c
  • And yes, OBVIOUSLY the error is that you didn't pass any parameters to script at all... Maybe try running : bash arguments.sh arg1 arg2 arg3 ?
share|improve this answer
1  
"$@" is the default target for for. – Ignacio Vazquez-Abrams Mar 16 '12 at 5:38
    
Good point. I was just trying to explain it in an "readable" way... ;-) – Dr.Kameleon Mar 16 '12 at 5:40

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