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I am using Ruby 1.8.7 and Rails 2.3.5.

If I have a float like 12.525, how can a get the number of digits past the decimal place? In this case I expect to get a '3' back.

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up vote 6 down vote accepted

Here is a very simple approach. Keep track of how many times you have to multiple the number by 10 before it equals its equivalent integer:

def decimals(a)
    num = 0
    while(a != a.to_i)
        num += 1
        a *= 10
    end
    num   
end

decimals(1.234) # -> 3
decimals(10/3.0) # -> 16
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1  
Quite an elegant solution! – Linuxios Dec 21 '11 at 23:48
    
Thanks, I stuck than in my application helper file. Nice to have there to be called when needed. – Reno Dec 22 '11 at 0:55
1  
What about (1/3) ? – MrYoshiji May 21 '13 at 16:14
1  
Take care, don't pass Rationals into this logic. For example Rational(1, 3) will never terminate. – reto Jul 14 '14 at 13:59
    
For rationals and such you can define a maximum. a = a.round(maximum) and maximum is passed as an optional param. – Skully Feb 18 '15 at 15:48

You should be very careful with what you want. Floating point numbers are excellent for scientific purposes and mostly work for daily use, but they fall apart pretty badly when you want to know something like "how many digits past the decimal place" -- if only because they have about 16 digits total, not all of which will contain accurate data for your computation. (Or, some libraries might actually throw away accurate data towards the end of the number when formatting a number for output, on the grounds that "rounded numbers are more friendly". Which, while often true, means it can be a bit dangerous to rely upon formatted output.)

If you can replace the standard floating point numbers with the BigDecimal class to provide arbitrary-precision floating point numbers, then you can inspect the "raw" number:

> require 'bigdecimal'
=> true
> def digits_after_decimal_point(f)
>   sign, digits, base, exponent = f.split
>   return digits.length - exponent
> end
> l = %w{1.0, 1.1, 1000000000.1, 1.0000000001}
=> ["1.0,", "1.1,", "1000000000.1,", "1.0000000001"]
> list = l.map { |n| BigDecimal(n) }
=> [#<BigDecimal:7f7a56aa8f70,'0.1E1',9(18)>, #<BigDecimal:7f7a56aa8ef8,'0.11E1',18(18)>, #<BigDecimal:7f7a56aa8ea8,'0.1000000000 1E10',27(27)>, #<BigDecimal:7f7a56aa8e58,'0.1000000000 1E1',27(27)>]
> list.map { |i| digits_after_decimal_point(i) }
=> [0, 1, 1, 10]

Of course, if moving to BigDecimal makes your application too slow or is patently too powerful for what you need, this might overly complicate your code for no real benefit. You'll have to decide what is most important for your application.

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2  
TAKE CARE: The value 0 returns 1 (should be 0) and the value 10 returns -1. – reto Jul 15 '14 at 15:19
    
@reto, nice catch. Thanks. – sarnold Jul 15 '14 at 22:25

Something like that, I guess:

n = 12.525
n.to_s.split('.').last.size
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2  
Be aware that this will return 1 if n is an integer, when you'd probably want a zero. This tripped me up when I had mixed integers and floats. – Barry Jan 19 '15 at 15:48
1  
return 0 if not num.to_s.include? '.' – laffuste Feb 27 '15 at 4:11

Like This:

theFloat.to_s.split(".")[1].length

It is not very pretty, but you can insert it as a method for Float:

class Float
    def decimalPlaces
      self.to_s.split(".")[1].length
    end
end
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This approach gives me 14 for (10/3.0) but my answer gives 16. I think repeating decimals will be problematic no matter how you approach it. – Matt Greer Dec 21 '11 at 23:43
    
Well, thats odd... I need to go use IRB! – Linuxios Dec 21 '11 at 23:44
    
Each approach is depending on different things, so the different answers aren't too surprising. – Matt Greer Dec 21 '11 at 23:45
    
Wait. By (10/3.0) do you mean an object of Ruby's Rational class? – Linuxios Dec 21 '11 at 23:46
    
Because for the decimal 12.567 my approach worked for me. – Linuxios Dec 21 '11 at 23:46

Can you subtract the floor and then just count how many characters left?

(12.525 -( 12.52­5.floor )).to­_s.length-­2 => 3

edit: nope this doesnt work for a bunch of reasons, negatives and 0.99999 issues

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It works only in 1.8. Try with 1.9. – Oleksandr Skrypnyk Dec 21 '11 at 23:53

Olexandr's answer doesn't work for integer. Can try the following:

def decimals(num)
  if num
    arr = num.to_s.split('.')
    case arr.size
      when 1
        0
      when 2
        arr.last.size
      else
        nil
    end
  else
    nil
  end
end
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