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For example:

"Angry Birds 2.4.1".split(" ", 2)
 => ["Angry", "Birds 2.4.1"] 

How can I split the string into: ["Angry Birds", "2.4.1"]

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the example is a bit unfortunate because we don't know if the breaking condition is the version number or that you simply want to split on the second ocurrence of a space. –  tokland Aug 30 '12 at 8:11
    
split on the last occurrence of a space –  ohho Aug 30 '12 at 8:20

7 Answers 7

up vote 16 down vote accepted

String#rpartition, e.g.

irb(main):068:0> str = "Angry Birds 2.4.1"
=> "Angry Birds 2.4.1"
irb(main):069:0> str.rpartition(' ')
=> ["Angry Birds", " ", "2.4.1"]

Since the returned value is an array, using .first and .last would allow to treat the result as if it was split in two, e.g

irb(main):073:0> str.rpartition(' ').first
=> "Angry Birds"
irb(main):074:0> str.rpartition(' ').last
=> "2.4.1"
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awesome work..!! –  Swati Dec 12 '13 at 12:25
    
sexiest way! ;) –  Attenzione Mar 18 at 10:12

I hava a solution like this:

class String
  def split_by_last(char=" ")
    pos = self.rindex(char)
    pos != nil ? [self[0...pos], self[pos+1..-1]] : [self]
  end
end

"Angry Birds 2.4.1".split_by_last  #=> ["Angry Birds", "2.4.1"]
"test".split_by_last               #=> ["test"]
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rindex is the best and efficient way. –  Jing Li Aug 30 '12 at 8:31
    
Most readable and most efficient. Be careful that this fails with an input that does not contain the separator, e.g. "test". –  robinst Aug 30 '12 at 8:39
    
@robinst I've fixed that. Thank you. –  halfelf Aug 30 '12 at 8:45

Some like this maybe ? Split where a space is followed by anything but a space till the end of the string.

"Angry Birds 2.4.1".split(/ (?=\S+$)/)
#=> ["Angry Birds", "2.4.1"]
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"Angry Birds 2.4.1".split(/ (?=\d+)/)

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It solves this particular variation of problem, but it is not an answer to the question. –  Anton Aug 30 '12 at 8:05

This is probably way too tricky (and probably not particularly efficient), but you can do this:

"Angry Birds 2.4.1".reverse.split(" ", 2).map(&:reverse).reverse
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Personally, yours worked out best for me. It's much more readable & deals with excess whitespace. –  James Billingham Sep 13 '13 at 3:05
class String
  def divide_into_two_from_end(separator = ' ')
    self.split(separator)[-1].split().unshift(self.split(separator)[0..-2].join(separator))
  end
end

"Angry Birds 2.4.1".divide_into_two_from_end(' ') #=> ["Angry Birds", "2.4.1"]
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The rpartition solution makes a great sexy one-liner (I voted for it), but here's another technique if you want a one liner that's more flexible for solving more complex partitioning problems:

"Angry Birds 2.4.1".split(' ')[0..-2].join(' ')

By more flexible, I mean if there were more items being partitioned, you could just adjust the range of the sequence.

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