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Possible Duplicate:
What does map(&:name) mean in Ruby?

In Ruby, I know that if I do:

some_objects.each(&:foo)

It's the same as

some_objects.each { |obj| obj.foo }

That is, &:foo creates the block { |obj| obj.foo }, turns it into a Proc, and passes it to each. Why does this work? Is it just a Ruby special case, or is there reason why this works as it does?

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493

Your question is wrong, so to speak. What's happening here isn't "ampersand and colon", it's "ampersand and object". The colon in this case is for the symbol. So, there's & and there's :foo.

The & calls to_proc on the object, and passes it as a block to the method. In Ruby, to_proc is implemented on Symbol, so that these two calls are equivalent:

something {|i| i.foo }
something(&:foo)

So, to sum up: & calls to_proc on the object and passes it as a block to the method, and Ruby implements to_proc on Symbol.

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    More precisely: the ampersand unpacks the Proc object so that it gets passed as if it was a literal block. Only if the object is not already a Proc object, does it call to_proc. – Jörg W Mittag Dec 25 '09 at 14:36
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    @Steve: No, it's in 1.8.7 as well. p RUBY_VERSION # => "1.8.7" p ["a", "b", "c"].map(&:upcase) # => ["A", "B", "C"] – August Lilleaas Dec 25 '09 at 16:24
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    ruby-doc.org/core is for 1.8.7, ruby-doc.org/core-1.8.7 / is the 1.8.7 equivalent. Here's the entry: ruby-doc.org/core-1.8.7/classes/Symbol.html#M000086 – August Lilleaas Dec 26 '09 at 18:06
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    Thanks, that makes sense. Good to know that it's in Ruby 1.8.7 and 1.9. – Allan Grant Dec 26 '09 at 21:12
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    Thanks. This is the first time I've actually understood what &: was doing, despite using the convention for years. – David Hempy Jul 31 '17 at 17:42
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There's nothing special about the combination of the ampersand and the symbol. Here's an example that (ab)uses the regex:

class Regexp
  def to_proc
    ->(str) { self =~ str ; $1 }
  end
end
%w(station nation information).map &/(.*)ion/

=> ["stat", "nat", "informat"]

Or integers.

class Integer
  def to_proc
    ->(arr) { arr[self] }
  end
end

arr = [[*3..7],[*14..27],[*?a..?z]]
arr.map &4
=> [7, 18, "e"]

Who needs arr.map(&:fifth) when you have arr.map &4?

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    Liked this example better than answer marked correct – Donato May 23 '16 at 20:33
  • Fun to see the [*3..7] syntax. I didn't realize you could splat like that! – Ben Coppock Jul 11 '19 at 4:54

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