Question

In Ruby, what is the most expressive way to map an array in such a way that certain elements are modified and the others left untouched?

This is a straight-forward way to do it:

old_a = ["a", "b", "c"]                         # ["a", "b", "c"]
new_a = old_a.map { |x| (x=="b" ? x+"!" : x) }  # ["a", "b!", "c"]

Omitting the "leave-alone" case of course if not enough:

new_a = old_a.map { |x| x+"!" if x=="b" }       # [nil, "b!", nil]

What I would like is something like this:

new_a = old_a.map_modifying_only_elements_where (Proc.new {|x| x == "b"}) 
        do |y|
          y + "!"
        end
# ["a", "b!", "c"]

Is there some nice way to do this in Ruby (or maybe Rails has some kind of convenience method that I haven't found yet)?

CLOSED: Thanks everybody for replying. While you collectively convinced me that it's best to just use map with the ternary operator, some of you posted very interesting answers!

Answer 1

Your map solution is the best one. I'm not sure why you think map_modifying_only_elements_where is somehow better. Using map is cleaner, more concise, and doesn't require multiple blocks.

Answer 2

I agree that the map statement is good as it is. It's clear and simple,, and would easy for anyone to maintain.

If you want something more complex, how about this?

module Enumerable
  def enum_filter(&filter)
    FilteredEnumerator.new(self, &filter)
  end
  alias :on :enum_filter
  class FilteredEnumerator
    include Enumerable
    def initialize(enum, &filter)
      @enum, @filter = enum, filter
      if enum.respond_to?(:map!)
        def self.map!
          @enum.map! { |elt| @filter[elt] ? yield(elt) : elt }
        end
      end
    end
    def each
      @enum.each { |elt| yield(elt) if @filter[elt] }
    end
    def each_with_index
      @enum.each_with_index { |elt,index| yield(elt, index) if @filter[elt] } 
    end
    def map
      @enum.map { |elt| @filter[elt] ? yield(elt) : elt }
    end
    alias :and :enum_filter
    def or
      FilteredEnumerator.new(@enum) { |elt| @filter[elt] || yield(elt) }
    end
  end
end

%w{ a b c }.on { |x| x == 'b' }.map { |x| x + "!" } #=> [ 'a', 'b!', 'c' ]

require 'set'
Set.new(%w{ He likes dogs}).on { |x| x.length % 2 == 0 }.map! { |x| x.reverse } #=> #<Set: {"likes", "eH", "sgod"}>

('a'..'z').on { |x| x[0] % 6 == 0 }.or { |x| 'aeiouy'[x] }.to_a.join #=> "aefiloruxy"

Answer 3

It's a few lines long, but here's an alternative for the hell of it:

oa = %w| a b c |
na = oa.partition { |a| a == 'b' }
na.first.collect! { |a| a+'!' }
na.flatten! #Add .sort! here if you wish
p na
# >> ["b!", "a", "c"]

The collect with ternary seems best in my opinion.

Answer 4

Because arrays are pointers, this also works:

a = ["hello", "to", "you", "dude"]
a.select {|i| i.length <= 3 }.each {|i| i << "!" }

puts a.inspect
# => ["hello", "to!", "you!", "dude"]

In the loop, make sure you use a method that alters the object rather than creating a new object. E.g. upcase! compared to upcase.

The exact procedure depends on what exactly you are trying to achieve. It's hard to nail a definite answer with foo-bar examples.

Answer 5

If you don't need the old array, I prefer map! in this case because you can use the ! method to represent you are changing the array in place.

self.answers.map!{ |x| (x=="b" ? x+"!" : x) }

I prefer this over:

new_map = self.old_map{ |x| (x=="b" ? x+"!" : x) }

Answer 6

old_a.map! { |a| a == "b" ? a + "!" : a }

gives

=> ["a", "b!", "c"]

map! modifies the receiver in place, so old_a is now that returned array.