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This is a real ultra newbie question.

I have an age stored in a database.

When I get the age from the database I want to get each individual digit.

Example:

User.age = 25

I want to get the following:

first = 5
second = 2

I can't seem to wrestle this from the data as its a fix num.

Anyone know a clean and simple solution.

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up vote 19 down vote accepted

You can convert to a string and then split into digits e.g.

first, second = User.age.to_s.split('')
=> ["2", "5"]

If you need the individual digits back as Fixnums you can map them back e.g.

first, second = User.age.to_s.split('').map { |digit| digit.to_i }
=> [2, 5]

Alternatively, you can use integer division e.g.

first, second = User.age.div(10), User.age % 10
=> [2, 5]

Note that the above examples are using parallel assignment that you might not have come across yet if you're new to Ruby.

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4  
map { |digit| digit.to_i } shortcut => map(&:to_i) – fl00r Mar 21 '11 at 13:42
2  
Also: n.to_s.chars.map(&:to_i). – tokland May 5 '13 at 12:56
first, last = User.age.divmod(10)
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cool. never heard about divmod :) – fl00r Mar 21 '11 at 13:32
    
this doesn't return the first digit if the users age has three digits – Zippie Apr 24 '13 at 23:16

http://www.ruby-doc.org/core/classes/String.html#M001210

 25.to_s.each_char {|c| print c, ' ' }

This stuff is really easy to find through Ruby docs.

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I was converting to a string and then used the string[0].chr. I thought that there must be a better way. That divmod(10) is pretty cool and compact. – chell Mar 21 '11 at 14:00

Check out benchmarks for a lot of solutions here: http://gistflow.com/posts/873-integer-to-array-of-digits-with-ruby The best one is to use divmod in a loop:

def digits(base)
  digits = []

  while base != 0 do
    base, last_digit = base.divmod(10)
    digits << last_digit
  end

  digits.reverse
end
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Nice, but as a general purpose method, this has a flaw: It will return [] for 0. This can be fixed by replacing while base != 0 with loop, and adding return digits.reverse if base == 0 to the bottom of that loop, instead of the return value outside the loop. It will still however loop infinitely for negative numbers. – daniero Jul 20 '15 at 16:27

Not the best solution, but just for collection:

User.age.chars.to_a.map(&:to_i)
#=> [5, 2]
first, second = User.age.chars.to_a.map(&:to_i)
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