49

I am wondering what is a convenient function in Rails to convert a string with a negative sign into a number. e.g. -1005.32

When I use the .to_f method, the number becomes 1005 with the negative sign and decimal part being ignored.

  • Are you storing the result in an int rather than a float? – Shaji May 6 '10 at 2:51
73

.to_f is the right way.

Example:

irb(main):001:0> "-10".to_f
=> -10.0
irb(main):002:0> "-10.33".to_f
=> -10.33

Maybe your string does not include a regular "-" (dash)? Or is there a space between the dash and the first numeral?

Added:

If you know that your input string is a string version of a floating number, eg, "10.2", then .to_f is the best/simplest way to do the conversion.

If you're not sure of the string's content, then using .to_f will give 0 in the case where you don't have any numbers in the string. It will give various other values depending on your input string too. Eg

irb(main):001:0> "".to_f 
=> 0.0
irb(main):002:0> "hi!".to_f
=> 0.0
irb(main):003:0> "4 you!".to_f
=> 4.0

The above .to_f behavior may be just what you want, it depends on your problem case.

Depending on what you want to do in various error cases, you can use Kernel::Float as Mark Rushakoff suggests, since it raises an error when it is not perfectly happy with converting the input string.

  • Look at the other answer, "abcd".to_f === 0 unfortunately – hakunin Oct 8 '18 at 21:22
  • " '11.0' " with this can we change to 11.0 using to_f – Vishwas Nahar Feb 8 at 19:45
25

You should be using Kernel::Float to convert the number; on invalid input, this will raise an error instead of just "trying" to convert it.

>> "10.5".to_f
=> 10.5
>> "asdf".to_f # do you *really* want a zero for this?
=> 0.0
>> Float("asdf")
ArgumentError: invalid value for Float(): "asdf"
    from (irb):11:in `Float'
    from (irb):11
>> Float("10.5")
=> 10.5
  • 4
    One of the nice things about Float() as opposed to Integer is that the former doesn't convert 010 to 8 (Integer regards something starting with 0 as octal) – Andrew Grimm May 10 '10 at 0:04
  • @AndrewGrimm Or you could just pass the correct base in as the second argument: Integer("010", 10) #=> 10 (See Kernel#integer) – Ajedi32 Jul 6 '15 at 13:35

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.