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I'm very new to bash scripting and I'm trying to practice by making this little script that simply asks for a range of numbers. I would enter ex. 5..20 and it should print the range, however - it just echo's back whatever I enter ("5..20" in this example) and does not expand the variable. Can someone tell me what I'm doing wrong?

Script:

    echo -n "Enter range of number to display using 0..10 format: "
    read range

    function func_printrage
    {
         for n in {$range}; do
         echo $n
         done
    }

func_printrange
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4 Answers 4

up vote 14 down vote accepted
  1. Brace expansion in bash does not expand parameters (unlike zsh)
  2. You can get around this through the use of eval and command substitution $()
  3. eval is evil because you need to sanitize your input otherwise people can enter ranges like rm -rf /; and eval will run that
  4. Don't use the function keyword, it is not POSIX and has been deprecated
  5. use read's -p flag instead of echo

However, for learning purposes, this is how you would do it:

read -p "Enter range of number to display using 0..10 format: " range

func_printrange()
{
  for n in $(eval echo {$range}); do
    echo $n
  done
}

func_printrange

Note: In this case the use of eval is OK because you are only echo'ing the range

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Thank You, it works now! What is wrong with using "function" ? Is there an alternative I should be using? –  ZDRuX Mar 27 '11 at 5:12
    
@ZDRuX: function is not POSIX, i.e. it is not portable. As for the alternative see my code. –  SiegeX Mar 27 '11 at 5:13
4  
This use of eval is absolutely not safe. Try entering 1..5 $(ls). –  Etan Reisner May 18 '12 at 18:01

One way to get around the lack of expansion, and skip the issues with eval is to use command substitution and seq.

Reworked function (also avoids globals):

function func_print_range
{
     for n in $(seq $1 $2); do
     echo $n
     done
}

func_print_range $start $end
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One way is to use eval, crude example,

for i in $(eval echo {0..$range}); do echo $i; done

the other way is to use bash's C style for loop

for((i=1;i<=20;i++))
do
  ...
done

And the last one is more faster than first (for example if you have $range > 1 000 000)

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you cannot substitute variable in this way: ...;i<=$var;... –  karatedog Jan 9 '12 at 13:05
    
@karatedog Correct, but you didn't really help. The proper usage is to use the variable name without the $ prefix: for ((i=begin;i<=end;i++); do echo $i; done –  paddy Mar 27 '14 at 3:19

Use ${} for variable expansion. In your case, it would be ${range}. You left off the $ in ${}, which is used for variable expansion and substitution.

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Thank You for your comment, however - I do not want to execute a command in the subshell. I want to substitute the $range variable into the "for n in" loop, so essentially it becomes: "for n in {5..20}; do" –  ZDRuX Mar 27 '11 at 4:56
    
@ZDRuX ah, I see, corrected my answer. You forgot the $ to initiate variable expansion. –  Rafe Kettler Mar 27 '11 at 4:57
    
-1, this does not answer the question. He is talking about brace expansion not variable expansion –  SiegeX Mar 27 '11 at 5:12

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