ruby – 我如何得到一个方法的引用?

是否可能在Ruby中获得对对象的方法的引用(我想知道如果没有procs / lambdas可以这样做),例如,考虑下面的代码:


class X
  def initialize
    @map = {}
    setup_map
  end

  private
  def setup_map
    # @map["a"] = get reference to a method
    # @map["b"] = get reference to b method
    # @map["c"] = get referebce to c method
  end

  public
  def call(a)
    @map["a"](a) if a > 10
    @map["b"](a) if a > 20
    @map["c"](a) if a > 30
  end

  def a(arg)
     puts "a was called with #{arg}"
  end

  def b(arg)
     puts "b was called with #{arg}"
  end

  def c(arg)
    puts "c was called with #{arg}"
  end
end

是可能做这样的事情吗?我想避免procs / lambdas,因为我想要能够通过子类化改变A,B,C的行为。

你想要Object#方法:

---------------------------------------------------------- Object#method
     obj.method(sym)    => method
------------------------------------------------------------------------
     Looks up the named method as a receiver in obj, returning a Method 
     object (or raising NameError). The Method object acts as a closure 
     in obj's object instance, so instance variables and the value of 
     self remain available.

        class Demo
          def initialize(n)
            @iv = n
          end
          def hello()
            "Hello, @iv = #{@iv}"
          end
        end

        k = Demo.new(99)
        m = k.method(:hello)
        m.call   #=> "Hello, @iv = 99"

        l = Demo.new('Fred')
        m = l.method("hello")
        m.call   #=> "Hello, @iv = Fred"

现在你的代码变成:

private
def setup_map
  @map = {
    'a' => method(:a),
    'b' => method(:b),
    'c' => method(:c)
  }
  # or, more succinctly
  # @map = Hash.new { |_map,name| _map[name] = method(name.to_sym) }
end

public
def call(arg)
  @map["a"][arg] if arg > 10
  @map["b"][arg] if arg > 20
  @map["c"][arg] if arg > 30
end
http://stackoverflow.com/questions/485151/how-can-i-get-a-reference-to-a-method

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