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In Ruby, it is quite often said that yield is faster than converting a block into a Proc.

For example:

def method
  yield
end

Is faster than

def method &block
  block.call
end

However, what if a block needs to be passed as an argument several layers deep? Is yield always faster no matter how many layers deep you pass it down? Does it depend on how many layers, or does it depend on the number of variables in each closure?

The reason I ask is because to yield several layers deep involves wrapping it into a block multiple times, whereas converting it to a Proc may save time by only doing it once. I also want to know whether it depends on how many variables need to be packaged up in the to_proc method.

Thus, which is faster:

The nested yield?

def method1;method2 {yield};end
def method2;method3 {yield};end
  ...
def methodn;yield;end

Or the &block?

def method1 █method2 █end
def method2 █method3 █end
  ...
def methodn █block.call;end
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where did you read that? –  apneadiving Sep 10 '12 at 9:30
2  
Converting to a Proc does supposedly cost some time, but why don't you just benchmark it? ruby-doc.org/stdlib-1.9.3/libdoc/benchmark/rdoc/Benchmark.html –  rubiii Sep 10 '12 at 9:31

1 Answer 1

require "benchmark"

def test_yield
    yield
end

def test_block(&block)
    block.call
end

Benchmark.bm do |b|

    b.report("test_yield") {
        10000.times{ test_yield {1+1} }
    }

    b.report("test_block") {
        10000.times{ test_block {1+1} }
    }

end



      user     system      total        real
test_yield  0.000000   0.000000   0.000000 (  0.002623)
test_block  0.000000   0.000000   0.000000 (  0.009497)

It seems like Yield is faster than block.call. I would love to understand why though.

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