0

I have recently discovered 'bc' in bash, and i have been trying to use it to print out the square root of a user input. The program i wrote below runs successfully, but it only prints out '0' and not the square root of the user input.

Here is the code i wrote:

 #!/data/data/com.termux/files/usr/bin/bash

 echo "input value below"
 read VAR
 echo "square root of $VAR is..."

 echo $((a))                                  
 a=$(bc <<< "scale=0; sqrt(($VAR))")

What is the problem with my code? What am i missing?

3

Your bc command and the use of command substitution is correct, the problem is you have provided the echo $a earlier, when it was unset. Do:

a=$(bc <<< "scale=0; sqrt($VAR)")
echo "$a"

Also while expanding variables, you should use the usual notation for variable expansion which is $var or ${var}. I have also removed a pair of redundant () from sqrt().

  • Also, read -p "input value below" var ie VAR->var. Use of full uppercase variables in shell-script is discouraged. – sjsam Sep 5 '16 at 20:39
  • As the user input should not be trusted. You need to check if it is a number before passing it to bc. You may use if [ "$var" -eq "$var" ] 2>/dev/null;then a=$(bc <<< "scale=0; sqrt($var)") else echo "$var not number"; fi, a concept I've borrowed from [ here ]. – sjsam Sep 5 '16 at 21:05
  • Works perfectly! – Zero-1729 Sep 5 '16 at 23:38
1

Using awk is also possible. For instance, the following example shows 30 decimals of the square root of 98:

awk "BEGIN {printf \"%.30f\n\", sqrt(98)}"

The command above will output 9.899494936611665352188538236078, which you can then store into the a variable.

0

Given that you have a number in variable var and you want square root of that variable. You can also use awk:

a=$(awk -v x=$var 'BEGIN{print sqrt(x)}')

or

a=$(echo "$var" | awk '{print sqrt($1)}')

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