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I want to convert from cents to dollars correctly in Ruby. I will never have to work with fractions of cents.

Is it possible to do this correctly (without floating point errors) without having to use BigDecimal?

E.g., cents to dollars

"99" => "0.99"
"324" => "3.24"

The following seems to work, but is it correct?

(cents.to_i/100.0).to_s
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Depends on the precision you need. If you are ok with cent-precision, go with the money gem. –  Philip Sep 18 '11 at 12:08

4 Answers 4

As Micheal Kohl already answered: Take a look to the money gem.

The following seems to work, but is it correct?

(cents.to_i/100.0).to_s

On the first look, it is ok, but:

cents = '10'
p (cents.to_i/100.0).to_s # -> '0.1'

You don't have 2 digits.

Alternative:

p '%.2f' % (cents.to_i/100.0) # -> '0.10'
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2  
Thanks for providing a solution instead of just saying "use this gem". –  Dana Woodman Apr 9 at 18:54

Personally I wouldn't try to re-invent this specific wheel and go with the money gem. From the docs (emphasis added):

Features

Provides a Money class which encapsulates all information about an certain amount of money, such as its value and its currency.

Provides a Money::Currency class which encapsulates all information about a monetary unit.

Represents monetary values as integers, in cents. This avoids floating point rounding errors.

Represents currency as Money::Currency instances providing an high level of flexibility.

Provides APIs for exchanging money from one currency to another.

Has the ability to parse a money and currency strings into the corresponding Money/Currency object.

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Actually money gem uses BigDecimal to perform divisions. –  Philip Sep 18 '11 at 12:11
    
Fair enough. As I said, OP didn't tell us too much of what he intends to do, but I for one would not want to deal with all the intricacies of money when someone else has already done it. –  Michael Kohl Sep 18 '11 at 13:23

If they're stings already you could use string manipulation and bypass the numeric problems completely:

# There are, of course, all sorts of ways to do this.
def add_decimal(s)
    pfx = [ '0.00', '0.0', '0.' ]
    if(pfx[s.length])
        s = pfx[s.length] + s
    else
        s = s.dup
        s[-2, 0] = '.'
    end
    s
end

add_decimal('')      #   "0.00" 
add_decimal('1')     #   "0.01" 
add_decimal('12')    #   "0.12" 
add_decimal('123')   #   "1.23" 
add_decimal('1234')  #  "12.34" 
add_decimal('12345') # "123.45"

No precision issues, no floating point, no bignums, no Rational, nothing tricky, nothing clever. Some simple modifications would be needed to deal with negative values but that will be as simple as what's already there.

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1  
Best answer, thanks. –  Micah Nov 6 at 15:16

You can consider using Rationals as well. However, I am not sure do they get converted to floats when sprintf-ed:

"%.2f" % Rational("324".to_i,100)
#=> "3.24"
"%.2f" % Rational("99".to_i,100)
#=> "0.99"
"%.2f" % Rational("80".to_i,100)
#=> "0.80"
"%.2f" % Rational("12380".to_i,100)
#=> "123.80"
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