15

Here is my script:

d1=0.003
d2=0.0008
d1d2=$((d1 + d2))

mean1=7
mean2=5
meandiff=$((mean1 - mean2))

echo $meandiff
echo $d1d2

But instead of getting my intended output of:

0.0038
2

I am getting the error Invalid Arithmetic Operator, (error token is ".003")?

  • 1
    BTW, if you switched from bash to ksh93, floating-point would be natively available. – Charles Duffy Feb 25 '16 at 17:59
35

bash does not support floating-point arithmetic. You need to use an external utility like bc.

# Like everything else in shell, these are strings, not
# floating-point values
d1=0.003
d2=0.0008

# bc parses its input to perform math
d1d2=$(echo "$d1 + $d2" | bc)

# These, too, are strings (not integers)
mean1=7
mean2=5

# $((...)) is a built-in construct that can parse
# its contents as integers; valid identifiers
# are recursively resolved as variables.
meandiff=$((mean1 - mean2))
0

In case you do not need floating point precision, you may simply strip off the decimal part.

echo $var | cut -d "." -f 1 | cut -d "," -f 1

cuts the integer part of the value. The reason to use cut twice is to parse integer part in case a regional setting may use dots to separate decimals and some others may use commas.

0

You can change the shell which you are using. If you are executing your script with bash shell bash scriptname.sh try using ksh for your script execution. Bash doesn't support arithmetic operations that involve floating point numbers.

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