Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
#!/bin/bash

ARG_ARRAY=(num1 num2 num3 num4 num5 num6 num7 num8 num9 num10)
dir=$(find . -type f)
i=0

for f in ${dir[@]};do
        printf "$((++i)) $f      "
done

printf "\nPlease select the files:\n"
echo "Using the numbers like: 1 2 4 5 "

read ${ARG_ARRAY[@]}


echo $num1
echo $num2
echo $num3
echo $num4
echo $num5
echo $num6
echo $num7
echo $num8
echo $num9
echo $num10

for f in ${ARG_ARRAY[@]}
do
        var=$f
        echo ${$var}
done

code above intends to show all the files in . and let the usr choose them, then print the file names user selected. But I find this sequence can successfully print

echo $num1
echo $num2
echo $num3
echo $num4
echo $num5
echo $num6
echo $num7
echo $num8
echo $num9
echo $num10

while this get error

for f in ${ARG_ARRAY[@]}
do
        var=$f
        echo ${$var}
done


./test.sh: line 30: num1: command not found

./test.sh: line 30: num2: command not found

./test.sh: line 30: num3: command not found

./test.sh: line 30: num4: command not found

./test.sh: line 30: num5: command not found

./test.sh: line 30: num6: command not found

./test.sh: line 30: num7: command not found

./test.sh: line 30: num8: command not found

./test.sh: line 30: num9: command not found

./test.sh: line 30: num10: command not found

Can anybody help me to fix this problem ? why the second way fails ?

share|improve this question

1 Answer 1

up vote 3 down vote accepted

You can use eval for that purpose, e.g.:

for f in ${ARG_ARRAY[@]}
do
    var=$f
    eval echo \$$var
done
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.