class Proc # # call-seq: # prc === obj -> result_of_proc # # Invokes the block with obj as the parameter like Proc#call. # This allows a proc object to be the target of a when clause # in a case statement. # # def the_answer # 42 # end # # case the_answer # when proc { |x| x > 40 } # "correct" # else # "incorrect" # end # #=> "correct" # def ===(*args) call(*args) end # # call-seq: # prc.yield(params,...) -> obj # # Invokes the block with the given arguments. This method is provided # for compatibility and is equivalent to Proc#call. # # prc = proc { |x| x * 2 } # prc.yield(5) #=> 10 # def yield(*args) call(*args) end # # call-seq: # prc.to_proc -> prc # # Part of the protocol for converting objects to Proc objects. # Instances of class Proc simply return themselves. # # prc = proc { "hello" } # prc.to_proc #=> # # def to_proc self end # # call-seq: # prc.curry -> curried_proc # prc.curry(arity) -> curried_proc # # Returns a curried proc. If the optional arity argument is given, it # determines the number of arguments. A curried proc receives some # arguments. If a sufficient number of arguments are supplied, it passes # the supplied arguments to the original proc and returns the result. # Otherwise, returns another curried proc that takes the rest of arguments. # # b = proc {|x, y, z| (x||0) + (y||0) + (z||0) } # p b.curry[1][2][3] #=> 6 # p b.curry[1, 2][3, 4] #=> 6 # p b.curry(5)[1][2][3][4][5] #=> 6 # def curry(arity=self.arity) type = :proc abs = lambda {|a| a < 0 ? -a - 1 : a} arity = abs[arity] if lambda? type = :lambda self_arity = self.arity if (self_arity >= 0 && arity != self_arity) || (self_arity < 0 && abs[self_arity] > arity) raise ArgumentError, "wrong number of arguments (given #{arity}, expected #{abs[self_arity]})" end end pproc = self make_curry = proc do |given_args=[]| __send__(type) do |*args| new_args = given_args + args if new_args.size >= arity pproc[*new_args] else make_curry[new_args] end end end make_curry.call end # # call-seq: # prc << other_proc -> new_proc # # Returns a new Proc which is the composition of this proc and the given # other_proc. The returned proc takes a variable number of arguments, calls # other_proc with them then calls this proc with the result. # # f = proc {|x| x * x } # g = proc {|x| x + x } # p (f << g).call(2) #=> 16 # def <<(other) ->(*args, **opts, &block) { call(other.call(*args, **opts, &block)) } end # # call-seq: # prc >> other_proc -> new_proc # # Returns a new Proc which is the composition of this proc and the given # other_proc. The returned proc takes a variable number of arguments, calls # this proc with them then calls other_proc with the result. # # f = proc {|x| x * x } # g = proc {|x| x + x } # p (f >> g).call(2) #=> 8 # def >>(other) ->(*args, **opts, &block) { other.call(call(*args, **opts, &block)) } end end