55

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"]

2
  • 1
    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, 2012 at 8:11
  • 2
    split on the last occurrence of a space
    – ohho
    Aug 30, 2012 at 8:20

10 Answers 10

119

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"
1
  • 10
    Note that String#rpartition plays very nicely with Ruby's _"don't care" variable: [1] pry(main)> name, _, version = "Angry Birds 2.4.1".rpartition(' ') => ["Angry Birds", " ", "2.4.1"] [2] pry(main)> name => "Angry Birds" [3] pry(main)> version => "2.4.1" So no need for Array#first or Array#last... less is more! :-) Apr 27, 2015 at 17:26
11

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"]
1
  • rindex is the best and efficient way.
    – Jing Li
    Aug 30, 2012 at 8:31
10

Something 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"]
5

I don't seem able to get the example code in my comment properly formatted, so I'm submitting it as a separate answer, even though Vadym Tyemirov deserves all the credit for the String#rpartition solution he provided above.

I just wanted to add that String#rpartition plays very nicely with Ruby's "don't care" variable, as typically you're indeed only interested in the first and last element of the result array, but not the middle element (the separator):

[1] pry(main)> name, _, version = "Angry Birds 2.4.1".rpartition(' ')
=> ["Angry Birds", " ", "2.4.1"]
[2] pry(main)> name
=> "Angry Birds"
[3] pry(main)> version
=> "2.4.1"

So no need for Array#first or Array#last... less is more! :-)

2

"Angry Birds 2.4.1".split(/ (?=\d+)/)

1
  • 1
    It solves this particular variation of problem, but it is not an answer to the question.
    – Anton
    Aug 30, 2012 at 8:05
2

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(' '), "Angry Birds 2.4.1".split(' ')[-1..-1].join(' ')]

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

2
  • Could you explain why -2 in [0..-2]
    – spuder
    Feb 5, 2018 at 19:52
  • My answer before was incomplete @spuder. I just fixed it. Originally, I was assuming the question didn't care about the second half. [0..-2] means splice the last element off of the array, because in ruby -1 is the last element of the array.
    – jsarma
    Feb 8, 2018 at 14:43
2

Create a String#split_on_last method.

Heavily inspired by halfelf's answer but permits more than just a single character, doesn't have a default param value and refactored for clarity.

Definition

class String
  def split_on_last( text )
    position_of_last_occurrence = self.rindex( text )

    return [ self ] if position_of_last_occurrence.nil?

    first_part = self[ 0...position_of_last_occurrence ]
    last_part  = self[ position_of_last_occurrence + text.length..-1 ]

    [ first_part, last_part ]
  end
end

Usage

"Angry Birds 2.4.1".split_on_last( " " )
#=> ["Angry Birds", "2.4.1"]

"start middle end end suffix".split_on_last( "end" )
#=> ["start middle end ", " suffix"]

"start middle suffix".split_on_last( "end" ) # No occurrence.
#=> ["start middle suffix"]
1

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
2
  • Personally, yours worked out best for me. It's much more readable & deals with excess whitespace. Sep 13, 2013 at 3:05
  • Really? .map(&:reverse).reverse More readable? :) Sep 18, 2020 at 16:22
1

reverse, split, then reverse every element and elements in array

"Angry Birds 2.4.1".reverse.split(' ', 2).map(&:reverse).reverse
0
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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