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I just completed the Ruby Koans, and neither the unit on calling methods using Object.send nor the Ruby documentation on the method provides any information on using blocks with the send method. Will a block attached to the send method be passed to the method it calls, or will the block be lost?

Example:

foo.send(:a_method) { bar.another_method }
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3 Answers 3

up vote 13 down vote accepted

The documentation is a bit unclear on this:

send(symbol [, args...]) → obj

Invokes the method identified by symbol, passing it any arguments specified.

But note the any arguments specified part. The block that you give to a method is really a funny type of implicit argument so that you can do things like:

def m(&b)
    @a.each(&b)
end
m { |e| puts e }

to pass the block around as a Proc instance. However, you can also do this:

def m
    yield
end
m { puts 'pancakes' }

so the block is special as far as the argument list is concerned but the block still behaves as an argument even if it is sometimes implicit.

Given the above "block is sort of an argument" rambling and the importance of blocks in Ruby, it would be reasonable for send to pass the block through. You can also try it but you have to careful about accidental and undocumented behavior with the "try it" approach:

class C
    def m
        yield
    end
end
o = C.new
o.send(:m) { puts 'pancakes' }
# "pancakes" comes out
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Yes. Consider the following:

class A
  def explicit(&b); b; end
  def implicit; yield "hello"; end
end

>> A.new.send(:explicit) { }
=> #<Proc:0x0000000000000000@(irb):19>
>> A.new.send(:implicit) { |greeting| puts greeting }
hello
=> nil

Hope this helps!

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Yes, it will. Inside the method you can check it with block_given? and call the block with yield

Code

class Foo
  def bar
    puts "before yield"
    yield if block_given?
    puts "after yield"
  end
end

f = Foo.new
f.send(:bar)
puts ""
f.send(:bar) { puts "yield"}

Output

before yield
after yield

before yield
yield
after yield
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