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I'm building a hash with keys available at runtime (so the size of the object isn't known beforehand). I want all these values to be a new instance of a class ContestStanding, but not the exact same instance. I've achieved this with

h = Hash.new {|h,k| h[k] = ContestStanding.new}
@my_keys.map {|k| h[k]}
h #=> {1=>#<ContestStanding...>, 2=>#<ContestStanding...>, ...}

I'm wondering if there's a way I could do this using Enums or Lambdas like the following. Note: I've verified this does not work. This is just my thought process

Hash[@my_keys.zip(-> { ContestStanding.new })]

Here, the problem is my Lambda isn't enumerable. Is there something like an infinite generator in Ruby?

EDIT

I initially got really tripped up by that Enumerable#each_with_object method. Didn't see the order of k and h in the block parameters. Thought I was going crazy! As for your suggested implementation, when I run in IRB, this is what I get

my_keys = [1,2,3]
my_keys.each_with_object({}) {|k,h| h[k] = 'a'}
#=> {1=>"a", 2=>"a", 3=>"a"}
# The above is what I want to get out of the implementation
Hash[my_keys.zip(Array.new(my_keys.size, Hash.new {|h,k| h[k] = 'a'}))]
#=> {1=>{}, 2=>{}, 3=>{}}

I'm not looking for a Hash of Hashes. That seems to be what the implementation is returning. I'm wanting to get back {1=>'a', 2=>'a', 3=>'a'}. Any thoughts on that?

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1  
Brad, you could use my_keys.each_with_object({}) { |k,h| h[k] = ContestStanding.new } where my_keys.each_with_object({}) is an enumerator. To use zip: Hash[my_keys.zip(Array.new(my_keys.size, Hash.new {|h,k| h[k]= ContestStanding.new }))]. Is that the sort of thing you were looking for? –  Cary Swoveland Apr 10 at 22:32
1  
For the record, @CarySwoveland's method is the one I would have used, I was more impressed with how you solved the problem, I'd have never thought of that (kinda surprised it works)! the other method is definitely more idiomatic and less confusing though. –  Mike H-R Apr 11 at 9:04
    
@CarySwoveland See my edit for a couple questions –  Brad Rice Apr 11 at 14:26
    
Sorry, Brad, I believe that should be (Array.new(my_keys.size) {ContestStanding.new}), but I'll check that later this morning. I'll put it in the form of an answer and also offer some comments on your solution. –  Cary Swoveland Apr 11 at 16:11

2 Answers 2

up vote 1 down vote accepted

Brad,

Here are two ways you could produce the hash. I will use the following as an example:

class ContestStanding
  def checkit
    puts "hi"
  end
end

my_keys = [1,2,3]

Use Enumerable#each_with_object

h = my_keys.each_with_object({}) { |k,h| h[k] = ContestStanding.new }
  #=> {1=>#<ContestStanding:0x000001010efdd8>,
  #    2=>#<ContestStanding:0x000001010efdb0>,
  #    3=>#<ContestStanding:0x000001010efd88>}
h[1].checkit #=> "hi"

each_with_object creates and empty array which is referenced by the block parameter h. The first value passed into the block (and assigned to the block parameter k) is my_keys.first => 1, so have

h[1] = ContestStanding.new

The other elements of the hash are created similarly.

Use Array.zip

Hash[my_keys.zip(Array.new(my_keys.size) {ContestStanding.new})]
  #=> {1=>#<ContestStanding:0x0000010280f720>,
  #    2=>#<ContestStanding:0x0000010280f6f8>,
  #    3=>#<ContestStanding:0x0000010280f6d0>}

or, for Ruby v2.0+

my_keys.zip(Array.new(my_keys.size) {ContestStanding.new}).to_h
  #=> {1=>#<ContestStanding:0x0000010184bd48>,
  #    2=>#<ContestStanding:0x0000010184bd20>,
  #    3=>#<ContestStanding:0x0000010184bcf8>}

Here the following steps are performed:

a = Array.new(my_keys.size) {ContestStanding.new}
  #=> [#<ContestStanding:0x0000010185b248>,
  #    #<ContestStanding:0x0000010185b220>,
  #    #<ContestStanding:0x0000010185b1f8>]
b = my_keys.zip(a)
  #=> [[1, #<ContestStanding:0x0000010185b248>],
  #    [2, #<ContestStanding:0x0000010185b220>],
  #    [3, #<ContestStanding:0x0000010185b1f8>]]
b.to_h
  #=> {1=>#<ContestStanding:0x0000010185b248>,
  #    2=>#<ContestStanding:0x0000010185b220>,
  #    3=>#<ContestStanding:0x0000010185b1f8>}

Your solution

I found your solution interesting. This is one one way of explaining how it works:

enum = Enumerator.new { |y| loop { y << ContestStanding.new } }
  #=> #<Enumerator: #<Enumerator::Generator:0x000001011a9530>:each>
a1 = my_keys.size.times.with_object([]) { |k,a| a << enum.next }
  #=> [#<ContestStanding:0x000001018820a0>,
  #    #<ContestStanding:0x00000101882028>,
  #    #<ContestStanding:0x00000101881fb0>
a2 = my_keys.zip(a1)
  #=> [[1, #<ContestStanding:0x000001018820a0>],
  #    [2, #<ContestStanding:0x00000101882028>],
  #    [3, #<ContestStanding:0x00000101881fb0>]]
Hash[a2]
  #=> {1=>#<ContestStanding:0x000001018820a0>,
  #    2=>#<ContestStanding:0x00000101882028>,
  #    3=>#<ContestStanding:0x00000101881fb0>}
share|improve this answer
    
Cary, nice explanations! I reasoned my way through Enumerator#each_with_object in IRB after the block parameter fiasco was sorted out. I'd never heard of that. That's really cool! My thought process behind using the Enumerator over an Array was I hoped it might be smaller in memory. Say my_keys had 1000 elements. I wouldn't be instantiating 1000 ContestStandings in memory all at once, and then immediately copy them to a new data structure. I'd create them once, in the right place. Does that make sense? –  Brad Rice Apr 12 at 0:03
    
my_keys.zip is not an enumerator, so it cannot chain to your enumerator to create a single enumerator. That means zip won't do its thing until its argument is fully built, the same as if its argument were an array. In any event, Hash requires a fully-formed array of tuples to create the hash. That's one advantage of the each_with_object approach: no temporary array is needed. By the way, you could instead use reduce (aka inject), which is what people did before each_with_object became available (in v1.9, I believe): my_keys.reduce({}) { |h,k| h[k] = ContestStanding.new; h }. –  Cary Swoveland Apr 12 at 2:13
    
Oh! Thank you for that explanation. If I could ask you one more question, where would you go or what would you do to evaluate performance of function calls like this? To monitor efficiency? Just so I can try to keep myself from continuously posting questions like these in the future –  Brad Rice Apr 12 at 16:35
    
I think that's mainly just a matter of experience. If you can think of at least two ways of attacking a problem, it won't be long before you are able to conclude which is best by just thinking them through. The bigger problem is coming up with option #1, and then option #2. If you have >= 2 options and still are not sure, you could run Benchmark with some test data. Search on "Ruby benchmark" and you'll find plenty of examples here. –  Cary Swoveland Apr 12 at 18:05
    
Wow. Thanks so much for your help. Can't upvote enough. –  Brad Rice Apr 12 at 18:10

As I dug through Enumerator documentation and a similar SO question, I played around with building a custom Enum. I was looking for the nested infinite loop within the Enum block. Final code came out to this

Hash[@my_keys.zip(Enumerator.new {|y| loop { y << ContestStanding.new}})]

which is pretty darn close to what I wanted!

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