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Hi i am tring to produce flaoting point precision using the following code

let number1=0 number2=0 operator=+

printf "%0.2f\n" result=$(( number1 $operator number2 ))

The code works without the printf but i cannot figure out how to perform negative(-) calcs and floating points?

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bash variables are integers. ksh can declare floats using the float alias which expands to typeset -lE. Better yet use awk, as it has natural support for floats OR if you really must have bash you can pipe your calcs the the bc (which is an external process, so expensive to do in a typical loop construct), but search here for examples. You'll get better help if you take the time to read the stackoverflow.com/faq. For awk help, read grymoire.com/Unix/Awk.html. Good luck. –  shellter Jan 19 '13 at 1:41
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2 Answers

Bash does not support floating point calculations, so, either you multiply the numbers being operated by as many zeros as decimals you want:

# 10.321 - 123.01
result=$(( 10321 - 123010 ))
echo ${result:0:-3}.${result:${#result} - 3}

Or simply use another tool to do this, like bc:

echo "scale=2; 10.321 - 123.01" | bc

Also, the syntax you've used is not valid; you should have:

printf "%0.2f\n" $(( number1 $operator number2 ))
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Thanks for the info however the result is required to store the sum in for interation - printf "%0.2f\n" $(( number1 $operator number2 )) wouldnt suffice –  Tricky Dicky Jan 19 '13 at 2:01
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@TrickyDicky :your question doesn't state this requirement. The solution is res=$( printf "%0.2f\n" $(( n $o n2 )) ). Good luck –  shellter Jan 19 '13 at 2:06
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In the end i figured it out!

result=$(echo "scale=4; (( $number1 $operator $number2 ))" | bc)
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result=$(echo "scale=4; $number1 $operator $number2 " | bc) <- needs no parentheses - they are superfluous because there is no order of operation -MDAS - to override. $(( )) is a bash construct. –  jim mcnamara Jan 20 '13 at 16:16
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