1

I have a BASH script to add two numbers where I want to pass two numbers via command line arguments.

cat add.sh

a=$1
echo "exit status for a " $?

b=$2
echo "exit status for b " $?

sum=`expr $a + $b`
echo "exit status for sum " $?

echo "result is " $sum
echo "exit status for result " $?

When I run the above script without providing any value or arguments, I am getting following output.

$ ./add.sh 
exit status for a  0  (expecting 1 here)
exit status for b  0 (expecting 1 here)
expr: syntax error
exit status for sum  2  
result is 
exit status for result  0 (expecting 1 here)

I am expecting value of $? as 1 when I am not providing any arguments via command line, so it must be an error for assigning value of a and b.

Can anyone explain why a=$1 or b=$2 doesn't return exit status 1 when NO value is supplied via command line? Why it returns 0 ?

  • 1
    Because parameter expansion on an unset variable is not an error by default. So unless you set -u these are valid, see man set – tomix86 Jan 14 '18 at 19:15
  • 1
    BTW, did you read the very first comment, by tomix86? It would seem to give you exactly what you're asking for (though I don't advise its use). See also BashFAQ #112. – Charles Duffy Jan 14 '18 at 19:19
  • 1
    That's really not what you want to do here. You want to check whether you have passed enough arguments, with (( $# >= 2 )) for example. – PesaThe Jan 14 '18 at 19:20
  • 1
    Or a=${1?First argument is mandatory}; b=${2?Second argument is mandatory} – Charles Duffy Jan 14 '18 at 19:21
  • 3
    Run the script after set -u? No. Put set -u in the script. – Charles Duffy Jan 14 '18 at 19:22

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