120 lines
4.3 KiB
Ruby
120 lines
4.3 KiB
Ruby
module Vool
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class SendStatement < Statement
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attr_reader :name , :receiver , :arguments
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def initialize(name , receiver , arguments )
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@name , @receiver , @arguments = name , receiver , arguments
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@arguments ||= []
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end
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def collect(arr)
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@receiver.collect(arr)
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@arguments.each do |arg|
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arg.collect(arr)
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end
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super
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end
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# Sending in a dynamic language is off course not as simple as just calling.
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# The function that needs to be called depends after all on the receiver,
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# and no guarantees can be made on what that is.
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#
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# It helps to know that usually (>99%) the class of the receiver does not change.
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# Our stategy then is to cache the functions and only dynamically determine it in
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# case of a miss (the 1%, and first invocation)
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#
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# As cache key we must use the type of the object (which is the first word of _every_ object)
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# as that is constant, and function implementations depend on the type (not class)
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#
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# A Send breaks down to 2 steps:
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# - Setting up the next message, with receiver, arguments, and (importantly) return address
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# - a CachedCall , or a SimpleCall, depending on wether the receiver type can be determined
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#
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# FIXME: we now presume direct (assignable) values for the arguments and receiver.
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# in a not so distant future, temporary variables will have to be created
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# and complex statements hoisted to assign to them. pps: same as in conditions
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def to_mom( in_method )
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if(@receiver.ct_type)
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simple_call(in_method)
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else
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cached_call(in_method)
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end
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end
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def message_setup(in_method)
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setup = [Mom::MessageSetup.new(in_method)]
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receiver = @receiver.slot_class.new([:message , :next_message , :receiver] , @receiver)
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arg_target = [:message , :next_message , :arguments]
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args = []
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@arguments.each_with_index do |arg , index|
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args << arg.slot_class.new( arg_target + [index] , arg)
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end
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setup << Mom::ArgumentTransfer.new( receiver , args )
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end
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def simple_call(in_method)
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type = @receiver.ct_type
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called_method = type.resolve_method(@name)
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raise "No method #{@name} for #{type}" unless called_method
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Mom::Statements.new( message_setup(in_method) << Mom::SimpleCall.new( called_method) )
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end
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# this breaks cleanly into two parts:
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# - check the cached type and if neccessary update
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# - call the cached method
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def cached_call(in_method)
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create_tmps(in_method)
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Mom::Statements.new( cache_check(in_method) + call_cached_method(in_method) )
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end
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def flatten
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raise "flat"
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end
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# check that current type is the cached type
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# if not, change and find method for the type (simple_call to resolve_method)
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# conceptually easy in ruby, but we have to compile that "easy" ruby
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def cache_check(in_method)
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# if cached_type != current_type
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# cached_type = current_type
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# cached_method = current_type.resolve_method(method.name)
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if_true = [build_type_cache_update , build_method_cache_update]
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#@if_true.to_mom( in_method ) #find and assign
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[Mom::IfStatement.new( build_condition , if_true )]
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end
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# this may look like a simple_call, but the difference is that we don't know
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# the method until run-time. Alas the setup is the same
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def call_cached_method(in_method)
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message_setup(in_method) << Mom::DynamicCall.new(method_var_name)
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end
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private
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# cached type and method are stored in the frame as local variables.
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# this creates the varables in the frame. Names are method_var_name and type_var_name
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def create_tmps(in_method)
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in_method.create_tmp
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end
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# we store the (one!) cached mathod in the frame, under the name that this
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# method returns
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def method_var_name
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"cached_method_#{object_id}"
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end
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def type_var_name
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"cached_type_#{object_id}"
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end
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private
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def build_condition
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cached_type = Mom::SlotDefinition.new(:message , [:frame , type_var_name])
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current_type = Mom::SlotDefinition.new(:message , [:self , :type])
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Mom::NotSameCheck.new(cached_type , current_type)
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end
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def build_type_cache_update
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1
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end
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def build_method_cache_update
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1
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end
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end
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end
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