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What is the fastest way to check if the all keys of a Ruby hash object point to empty arrays?

My current approach:

h = {"a" => [1,2,3], "b" => []}
var = "something" if h.values.flatten.size > 0

Another approach:

h = {"a" => [1,2,3], "b" => []}
var = "something" if h.values.flatten.empty?

Any other demonstrably faster way?

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maybe just override the "setter" methods so it keeps track, on set time, if this property has now been violated? –  rogerdpack Jan 17 '13 at 0:23

2 Answers 2

up vote 4 down vote accepted

Flatten will cause your code to re-allocate a new, much larger buffer. You can skip the flatten like this:

h.values.all? &:empty?

Benchmarks:

Benchmark.measure {100000.times{ h.values.all? &:empty? }}
# =>   0.100000   0.000000   0.100000 (  0.096073)

Benchmark.measure {100000.times{ h.values.flatten.empty? }}
# =>   0.140000   0.000000   0.140000 (  0.143457)

Bigger benchmark, including h.all? {|_,v| v.empty?}

h = {}
(1...10000).each {|i| h[i] = []}  # Pathological case

Benchmark.measure {1000.times{ h.values.flatten.empty? }}
# =>   1.880000   0.000000   1.880000 (  1.882853)
Benchmark.measure {1000.times{ h.values.all? &:empty? }}
# =>   1.750000   0.000000   1.750000 (  1.748415)
Benchmark.measure {1000.times{ h.all? {|_,v| v.empty?} }}
# =>   4.140000   0.000000   4.140000 (  4.137548)
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1  
You don't need h.values at all: h.all? { |_,v| v.empty? } –  mu is too short Jul 28 '12 at 5:50
1  
The Symbol#to_proc seems to be slightly faster than a block, but not by much: irb(main):017:0> Benchmark.measure {100000.times{ h.all? {|_,v| v.empty?} }} => 0.090000 0.000000 0.090000 ( 0.097628) –  Tanzeeb Khalili Jul 28 '12 at 5:52
    
I'm getting the opposite results. Perhaps you should use a larger h. –  mu is too short Jul 28 '12 at 5:53
    
Can you post your benchmarks? I've included mine in the answer with a much larger h and it seems the block is even worse than flatten. –  Tanzeeb Khalili Jul 28 '12 at 6:00
    
Yeah, all? does fall apart for the worst case, it does much better with the best case h though :) –  mu is too short Jul 28 '12 at 7:35

Let's be greedy:

all_empty = true

h.each_value do |value|
  unless value.empty?
    all_empty = false
    break
  end
end

Benchmarks:

h = {}
(1...10000).each {|i| h[i] = []}

Benchmark.measure {1000.times{ h.values.flatten.empty? }}
=>   2.020000   0.000000   2.020000 (  2.026274)
Benchmark.measure {1000.times{ h.values.all? &:empty? }}
=>   1.750000   0.000000   1.750000 (  1.750908)
Benchmark.measure {1000.times{ h.all? {|_,v| v.empty?} }}
=>   3.570000   0.000000   3.570000 (  3.570945)
Benchmark.measure {1000.times{ <code above> }} # Worst case
=>   1.530000   0.000000   1.530000 (  1.529857)
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@rogerdpack: of course, it got lost somehow. :D –  InternetSeriousBusiness Jan 19 '13 at 9:24

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