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In this code, I create an array of strings "1" to "10000":

array_of_strings = (1..10000).collect {|i| String(i)}

Does the Ruby Core API provide a way to get an enumerable object that lets me enumerate over the same list, generating the string values on demand, rather than generating an array of the strings?

Here's a further example which hopefully clarifies what I am trying to do:

def find_me_an_awesome_username
  awesome_names = (1..1000000).xform {|i| "hacker_" + String(i) }
  awesome_names.find {|n| not stackoverflow.userexists(n) }
end

Where xform is the method I am looking for. awesome_names is an Enumerable, so xform isn't creating a 1 million element array of strings, but just generating and returning strings of the form "hacker_[N]" on demand.

By the way, here's what it might look like in C#:

var awesomeNames = from i in Range(1, 1000000) select "hacker_" + i;
var name = awesomeNames.First((n) => !stackoverflow.UserExists(n));

(One Solution)

Here is an extension to Enumerator that adds an xform method. It returns another enumerator which iterates over the values of the original enumerator, with a transform applied to it.

class Enumerator
  def xform(&block)
    Enumerator.new do |yielder|
      self.each do |val|
        yielder.yield block.call(val)
      end
    end
  end
end

# this prints out even numbers from 2 to 10:
(1..10).each.xform {|i| i*2}.each {|i| puts i}
share|improve this question
    
...should read '2 to 20' –  mackenir Feb 24 '10 at 21:00

4 Answers 4

up vote 5 down vote accepted

Ruby 2.0 introduced Enumerable#lazy which allows one to chain map, select, etc..., and only generate the final results at the end with to_a, first, etc... You can use it in any Ruby version with require 'backports/2.0.0/enumerable/lazy'.

require 'backports/2.0.0/enumerable/lazy'
names = (1..Float::INFINITY).lazy.map{|i| "hacker_" + String(i) }
names.first # => 'hacker_1'

Otherwise, you can use Enumerator.new { with_a_block }. It's new in Ruby 1.9, so require 'backports/1.9.1/enumerator/new' if you need it in Ruby 1.8.x.

As per your example, the following will not create an intermediate array and will only construct the needed strings:

require 'backports/1.9.1/enumerator/new'

def find_me_an_awesome_username
  awesome_names = Enumerator.new do |y|
    (1..1000000).each {|i| y.yield "hacker_" + String(i) }
  end
  awesome_names.find {|n| not stackoverflow.userexists(n) }
end

You can even replace the 100000 by 1.0/0 (i.e. Infinity), if you want.

To answer your comment, if you are always mapping your values one to one, you could have something like:

module Enumerable
  def lazy_each
    Enumerator.new do |yielder|
      each do |value|
        yielder.yield(yield value)
      end
    end
  end
end

awesome_names = (1..100000).lazy_each{|i| "hacker_#{i}"}
share|improve this answer
    
@marc, this looks like it! Do you know how I might turn this pattern into a more concise re-usable method taking an 'enumerable thing', and a 'transformer function'? In this example, the 'transformer function' would be {|i| "hacker_" + String(i) }, and the 'enumerable thing' would be (1..100000) or whatever. –  mackenir Feb 24 '10 at 18:47
    
Thanks very much. I updated my question with a possible implementation that I worked out from your answer, and also from reading the link that @Telemachus posted, before I noticed your update :) Again, thanks! –  mackenir Feb 24 '10 at 20:58
    
@mackenir: The Enumerable transform function is map. You should just be able to change each to map and keep the algorithm otherwise unchanged. –  Chuck Feb 24 '10 at 21:06
    
@Chuck Enumerable#map is a synonym for Enumerable#collect so it returns an array rather than an Enumerator. –  mackenir Feb 24 '10 at 21:40
    
@mackenir: Actually, I misread. How is the method given not what you're asking for? It takes a transformer function and gives an enumerator that yields the result of applying that transformation. –  Chuck Feb 24 '10 at 22:02

It sounds like you want an Enumerator object, but not exactly.

That is, an Enumerator object is an object that you can use to call next on demand (rather than each which does the whole loop). (Many people use the language of internal versus external iterators: each is internal, and an Enumerator is external. You drive it.)

Here's how an enumerator might look:

awesome_names = Enumerator.new do |y|
  number = 1
  loop do
    y.yield number
    number += 1
  end
end

puts awesome_names.next
puts awesome_names.next
puts awesome_names.next
puts awesome_names.next

Here's a link, to more discussion of how you might use Enumerators lazily in Ruby: http://www.michaelharrison.ws/weblog/?p=163

There's also a section on this in the Pickaxe book (Programming Ruby by Dave Thomas).

share|improve this answer
    
Thanks. Hmmm. Find definitely stops enumerating when it findsa matching element. You can confirm this by running find on a very large range, with the predicate 'false' and 'true' the latter returns instantly. If both were enumerating everything they'd both return in the same time. Re: enumeration with next, I'm trying to find the 'enumerable transformer' facility in order to write more terse, declarative code, and manually enumerating wont really achieve that. Maybe the answer is to just implement it. –  mackenir Feb 24 '10 at 17:36
    
With all the CRs removed that's less comprehensible. What I mean is, (1..1000000000000000000).find {|i|true} is quick, and (1..1000000000000000000).find {|i|false} is slow. Meaning find just enumerates until it 'finds'. –  mackenir Feb 24 '10 at 17:40
    
Useful link - I think I understand it, and it helped answer the question. –  mackenir Feb 24 '10 at 20:59
class T < Range
  def each
    super { |i| yield String(i) }
  end
end

T.new(1,3).each { |s| p s }
$ ruby rsc.rb
"1"
"2"
"3"

The next thing to do is to return an Enumerator when called without a block...

share|improve this answer

lists have an each method:

(1..100000).each
share|improve this answer
1  
...okay, keep going. :) –  mackenir Feb 24 '10 at 17:00
1  
... okay, now you start searching about Ruby iteration. –  Tempus Feb 24 '10 at 17:01
    
But your code just iterates over the integer range. It doesn't generate a new enumerable of strings. Please try and put yourself in my idiot shoes :). –  mackenir Feb 24 '10 at 17:11
    
(1..100000).each { |j| i = j.to_s ; do_something j } or did you want to do something different? –  anshul Feb 24 '10 at 17:36
1  
@anshul yes, I want to do something a little different from that. I'd like to separate the code that generates the enumerable from the code that works with the enumerable values. TBH it's not the only way to do it, but would make the code cleaner (in my opinion of course). Thanks. –  mackenir Feb 24 '10 at 17:39

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