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I have code like this in Bash :

read a
read b
c=96.0
d=100.0
echo "scale=2;($b*$c - $a*$d)/$a" |bc 

And it prints result of this expression :

(b*96-a*100)/a

But when result is between -1 and 0 it gives something like this : -.99

For smaller values it prints result correctly. So, my question is, how to force program to put 0 when printing

0.123123(...)

? Not only

.123123(...)

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1 Answer 1

up vote 2 down vote accepted

Use printf:

$ printf "%0.2f" "$(echo 'scale=2; 1.9/10.0' | bc)"
0.19

printf is (also) a bash builtin

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May not work for some locales, try LANG=ru_RU.UTF-8 printf "%0.2f" .19 –  eugene y Sep 9 '11 at 14:40
    
@eugene: works for me (prints 0.19); what's the problem with it? –  sehe Sep 9 '11 at 14:41
    
The problem is that the decimal separator is a comma in the RU locale (as it is in the NL locale). However, this works for me: export LC_ALL=nl_NL && printf "%0.2f\n" 0,18. This does not work: export LC_ALL=nl_NL && printf "%0.2f\n" 0.18 - it generates the error message "-bash: printf: 0.18: invalid number". –  micans Sep 9 '11 at 14:52
    
@micans: that means that eugene is simply using wrong input (.19 instead of ,19); possibly, bc doesn't honour the locale number format as well. I can't really fix that. Of course my numbers are just a sample and I assumed en_US or C locale –  sehe Sep 9 '11 at 15:04

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