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I am a new bash learner. I want to print the result of an expression given as input having 3 digits after decimal point with rounding if needed. I can use the following code, but it does not round. Say if I give 5+50*3/20 + (19*2)/7 as input for the following code, the given output is 17.928. Actual result is 17.92857.... So, it is truncating instead of rounding. I want to round it, that means the output should be 17.929. My code:

read a
echo "scale = 3; $a" | bc -l

Equivalent C++ code can be(in main function):

float a = 5+50*3.0/20.0 + (19*2.0)/7.0;
cout<<setprecision(3)<<fixed<<a<<endl;
Enamul Hassan
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3 Answers3

10

What about

a=`echo "5+50*3/20 + (19*2)/7" | bc -l`
a_rounded=`printf "%.3f" $a`
echo "a         = $a"
echo "a_rounded = $a_rounded"

which outputs

a         = 17.92857142857142857142
a_rounded = 17.929

?

nils
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3

Try using this: Here bc will provide the bash the functionality of caluculator and -l will read every single one in string and finally we are printing only three decimals at end

read num
echo $num | bc -l | xargs printf "%.3f"
venkatesh
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2

You can use awk:

awk 'BEGIN{printf "%.3f\n", (5+50*3/20 + (19*2)/7)}'
17.929

%.3f output format will round up the number to 3 decimal points.

anubhava
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  • It works fine for this string. But how to implement it if I take the string as input? You can see [this](https://ideone.com/rdnWmd) what I am trying to do. Thanks. – Enamul Hassan Jun 29 '15 at 21:26