Module: MilkTea::Lowering::Resolve
- Included in:
- MilkTea::Lowerer
- Defined in:
- lib/milk_tea/core/lowering/resolve.rb
Defined Under Namespace
Classes: ConstFnLowerEvaluator
Constant Summary collapse
- PASS_THROUGH_BUILTINS =
{ "fatal" => :fatal, "ref_of" => :ref_of, "const_ptr_of" => :const_ptr_of, "read" => :read, "ptr_of" => :ptr_of, "get" => :get, }.freeze
- COMPILE_TIME_BUILTINS =
%w[ field_of callable_of has_attribute attribute_of ].freeze
Instance Method Summary collapse
- #aggregate_arithmetic_result_type(operator, left_type, right_type) ⇒ Object
- #aggregate_scalar_result(aggregate_type, scalar_type) ⇒ Object
- #analysis_for_module(module_name) ⇒ Object
- #attribute_binding_supports_target?(binding, target) ⇒ Boolean
- #attribute_target_kind(target) ⇒ Object
- #binary_right_env(expression, env) ⇒ Object
- #binding_cstr_backed?(binding) ⇒ Boolean
- #binding_cstr_list_backed?(binding) ⇒ Boolean
- #build_direct_function_proc_invoke_function(source_expression, function_c_name, function_type, proc_type, invoke_c_name) ⇒ Object
- #builtin_attribute_binding(name) ⇒ Object
- #cast_expression(expression, target_type) ⇒ Object
- #collect_type_substitutions(pattern_type, actual_type, substitutions, function_name) ⇒ Object
- #common_integer_type(left_type, right_type) ⇒ Object
- #common_numeric_type(left_type, right_type) ⇒ Object
- #compile_time_const_value(expression, env: nil) ⇒ Object
- #compile_time_numeric_const_expression?(expression, env: nil) ⇒ Boolean
- #const_declaration_for_module(module_name, name) ⇒ Object
- #contextual_numeric_compatibility?(expression, actual_type, expected_type, env:, external_numeric: false, contextual_int_to_float: false) ⇒ Boolean
- #copy_cstr_metadata!(target_env, source_env) ⇒ Object
- #cstr_backed_expression?(expression, env) ⇒ Boolean
- #cstr_backed_storage_value?(type, expression, env) ⇒ Boolean
- #cstr_list_backed_expression?(expression, env) ⇒ Boolean
- #cstr_list_backed_storage_value?(type, expression, env) ⇒ Boolean
- #cstr_metadata_exit_envs_for_if_statement(statement, env) ⇒ Object
- #current_type_params ⇒ Object
- #direct_function_identity_expression?(expression, env) ⇒ Boolean
- #direct_function_to_proc_contextual_compatibility?(expression, actual_type, env:, expected_type:) ⇒ Boolean
- #each_non_raw_module_analysis(&block) ⇒ Object
- #each_raw_module_analysis(&block) ⇒ Object
- #evaluate_attribute_arg_call(arguments, env:) ⇒ Object
- #evaluate_attribute_of_call(arguments, env:) ⇒ Object
- #evaluate_attributes_of_call(arguments, env:) ⇒ Object
- #evaluate_callable_of_call(arguments) ⇒ Object
- #evaluate_compile_time_call(expression, env:) ⇒ Object
- #evaluate_const_function_body_lower(func, arguments) ⇒ Object
- #evaluate_field_of_call(arguments, env:) ⇒ Object
- #evaluate_fields_of_call(arguments, env:) ⇒ Object
- #evaluate_has_attribute_call(arguments, env:) ⇒ Object
- #evaluate_members_of_call(arguments, env:) ⇒ Object
- #evaluate_reflection_target_argument(expression, env:) ⇒ Object
- #evaluate_type_returning_call(expression, env:) ⇒ Object
- #exact_compile_time_numeric_compatibility?(actual_type, expression, expected_type, env: nil) ⇒ Boolean
- #external_numeric_assignment_target?(expression, env:) ⇒ Boolean
- #extract_type_callee_info(expression) ⇒ Object
- #ffi_external_layout_root_type(type) ⇒ Object
- #find_attribute_application(target, binding) ⇒ Object
- #find_struct_decl_by_name(declarations, name) ⇒ Object
- #float_literal_expression?(expression) ⇒ Boolean
- #foreign_identity_projection_expression(expression, target_type) ⇒ Object
- #function_type_for_name(name) ⇒ Object
- #harmonize_binary_float_literal_types(left_expression, right_expression, left_type, right_type, env:) ⇒ Object
- #harmonize_binary_integer_literal_types(left_expression, right_expression, left_type, right_type, env:) ⇒ Object
- #imports_for_module(module_name) ⇒ Object
- #infer_binary_operand_types(expression, env:, expected_type: nil) ⇒ Object
- #infer_expression_type(expression, env:, expected_type: nil) ⇒ Object
- #infer_field_handle_member_type(expression) ⇒ Object
- #infer_function_type_arguments(binding, arguments, env, receiver_type: nil) ⇒ Object
- #infer_member_handle_member_type(expression) ⇒ Object
- #infer_null_literal_type(expression, expected_type) ⇒ Object
- #infer_receiver_type_substitutions(binding, receiver_type) ⇒ Object
- #instantiate_function_binding(binding, type_arguments) ⇒ Object
- #instantiate_function_binding_with_receiver(binding, explicit_type_arguments, receiver_type: nil) ⇒ Object
- #integer_literal_expression?(expression) ⇒ Boolean
- #interface_implementation_key(type) ⇒ Object
- #literal_type_argument_name_candidate?(type_ref) ⇒ Boolean
- #lower_array_to_span_expression(expression, target_type) ⇒ Object
- #lower_fn_to_proc_expression(source_expression, source_function, env:, expected_type:) ⇒ Object
- #lower_str_buffer_to_span_expression(expression, target_type) ⇒ Object
- #merge_cstr_metadata_after_if_statement!(statement, env) ⇒ Object
- #method_analysis_key(method_ast) ⇒ Object
- #methods_receiver_type_argument_names!(type_ref) ⇒ Object
- #pointer_arithmetic_result_type(operator, left_type, right_type) ⇒ Object
- #pointer_lowered_method_receiver?(callee_type, callee_binding) ⇒ Boolean
- #pointer_lowered_sync_method_receiver?(binding) ⇒ Boolean
- #promoted_binary_operand_type(operator, left_type, right_type) ⇒ Object
- #propagating_expected_type(operator, expected_type) ⇒ Object
- #receiver_type_uses_pointer_lowering?(type) ⇒ Boolean
- #record_external_layout_assertion(source_type, target_type) ⇒ Object
- #reflection_identifier_name(expression) ⇒ Object
- #reflection_positional_arguments?(arguments, expected_length) ⇒ Boolean
- #reflection_type_from_expression(expression, env:) ⇒ Object
- #reinterpret_expression(expression, target_type) ⇒ Object
- #replace_binding_cstr_metadata!(name, env, cstr_backed:, cstr_list_backed:) ⇒ Object
- #resolve_attribute_name_argument(expression) ⇒ Object
- #resolve_callable_handle_argument(expression) ⇒ Object
- #resolve_callee(callee, env, arguments: nil) ⇒ Object
- #resolve_current_module_const_value(name) ⇒ Object
- #resolve_default_specialization(expression, env:) ⇒ Object
- #resolve_equal_specialization(expression, env:) ⇒ Object
- #resolve_explicit_associated_binding(target_type, method_name, requirement_message:) {|method_binding, method_analysis, method_entry_receiver_type| ... } ⇒ Object
- #resolve_explicit_default_binding(target_type, context:) ⇒ Object
- #resolve_explicit_equal_binding(target_type, context:) ⇒ Object
- #resolve_explicit_format_append_binding(target_type, context:) ⇒ Object
- #resolve_explicit_format_binding(target_type, context:) ⇒ Object
- #resolve_explicit_format_len_binding(target_type, context:) ⇒ Object
- #resolve_explicit_hash_binding(target_type, context:) ⇒ Object
- #resolve_explicit_instance_binding(target_type, method_name, requirement_message:) {|method_binding, method_analysis, method_entry_receiver_type| ... } ⇒ Object
- #resolve_explicit_order_binding(target_type, context:) ⇒ Object
- #resolve_expression_callee(callee, env) ⇒ Object
-
#resolve_field_handle_type_ref(parts) ⇒ Object
Resolves a bare dotted reflection type ref
field.type(wherefieldis a compile-timefield_handlebound in the active inline-for env) to the field's concrete type. - #resolve_hash_specialization(expression, env:) ⇒ Object
- #resolve_identifier_callee(callee, env, arguments) ⇒ Object
- #resolve_imported_module_const_value(import_name, value_name) ⇒ Object
- #resolve_interface_ref(interface_ref) ⇒ Object
- #resolve_member_access_callee(callee, env, arguments) ⇒ Object
- #resolve_named_generic_type(parts) ⇒ Object
- #resolve_named_generic_type_for_analysis(analysis, parts) ⇒ Object
- #resolve_named_literal_type_argument(type_ref) ⇒ Object
- #resolve_nested_type_ref(parts) ⇒ Object
- #resolve_order_specialization(expression, env:) ⇒ Object
- #resolve_specialization_callee(callee, env) ⇒ Object
- #resolve_specialization_type_arguments(expression) ⇒ Object
- #resolve_specialized_callable_binding(expression, env:) ⇒ Object
- #resolve_struct_handle_argument(expression, env:) ⇒ Object
- #resolve_type_argument(argument, type_params: current_type_params) ⇒ Object
- #resolve_type_argument_ref(type_ref, type_params:) ⇒ Object
- #resolve_type_expression(expression) ⇒ Object
- #resolve_type_member(type, name) ⇒ Object
- #resolve_type_member_const_value(expression) ⇒ Object
- #resolve_type_ref(type_ref, type_params: current_type_params) ⇒ Object
- #resolve_type_ref_for_analysis(type_ref, analysis, type_params: current_type_params) ⇒ Object
- #resolved_attribute_applications_for_target(target) ⇒ Object
- #same_attribute_binding?(left, right) ⇒ Boolean
- #signed_type_above_width(width) ⇒ Object
- #simulate_cstr_metadata_block(statements, env:) ⇒ Object
- #specialize_function_binding(binding, arguments, env, receiver_type: nil) ⇒ Object
- #struct_handle_for_type(type) ⇒ Object
- #substitute_type(type, substitutions) ⇒ Object
- #substitute_value_binding(binding, substitutions) ⇒ Object
- #trackable_binding_names(env) ⇒ Object
- #try_resolve_type_ref(type_ref, type_params:) ⇒ Object
- #type_contains_array_storage?(type, visited = Set.new) ⇒ Boolean
- #type_implements_interface?(type, interface) ⇒ Boolean
- #types_for_module(module_name) ⇒ Object
- #update_cstr_metadata_for_assignment!(statement, prepared_value, env) ⇒ Object
- #validate_function_type_param_constraints!(binding, substitutions) ⇒ Object
- #validate_methods_receiver_type_arguments!(type_ref, generic_type) ⇒ Object
- #wider_float_type(left_type, right_type) ⇒ Object
Instance Method Details
#aggregate_arithmetic_result_type(operator, left_type, right_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1174 def aggregate_arithmetic_result_type(operator, left_type, right_type) if left_type.is_a?(Types::Vector) && right_type.is_a?(Types::Vector) && left_type.name == right_type.name return left_type end if left_type.is_a?(Types::Matrix) && right_type.is_a?(Types::Matrix) && left_type.name == right_type.name return left_type end if left_type.is_a?(Types::Quaternion) && right_type.is_a?(Types::Quaternion) return left_type end scalar_result = aggregate_scalar_result(left_type, right_type) return scalar_result if scalar_result case operator when "+", "-" nil when "*", "/" aggregate_scalar_result(right_type, left_type) else nil end end |
#aggregate_scalar_result(aggregate_type, scalar_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1198 def aggregate_scalar_result(aggregate_type, scalar_type) return nil unless aggregate_type.is_a?(Types::Vector) || aggregate_type.is_a?(Types::Matrix) return nil unless scalar_type.is_a?(Types::Primitive) && scalar_type.numeric? aggregate_type end |
#analysis_for_module(module_name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2397 def analysis_for_module(module_name) @program.analyses_by_module_name.fetch(module_name) end |
#attribute_binding_supports_target?(binding, target) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1982 def attribute_binding_supports_target?(binding, target) binding && target && binding.targets.include?(attribute_target_kind(target)) end |
#attribute_target_kind(target) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1986 def attribute_target_kind(target) case target when Types::StructHandle then :struct when Types::FieldHandle then :field when Types::CallableHandle then :callable end end |
#binary_right_env(expression, env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 957 def binary_right_env(expression, env) case expression.operator when "and" env_with_refinements(env, flow_refinements(expression.left, truthy: true, env:)) when "or" env_with_refinements(env, flow_refinements(expression.left, truthy: false, env:)) else env end end |
#binding_cstr_backed?(binding) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 381 def binding_cstr_backed?(binding) binding && binding[:cstr_backed] end |
#binding_cstr_list_backed?(binding) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 385 def binding_cstr_list_backed?(binding) binding && binding[:cstr_list_backed] end |
#build_direct_function_proc_invoke_function(source_expression, function_c_name, function_type, proc_type, invoke_c_name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 77 def build_direct_function_proc_invoke_function(source_expression, function_c_name, function_type, proc_type, invoke_c_name) env = empty_env params = [IR::Param.new(name: "env", linkage_name: "__mt_proc_env", type: proc_env_pointer_type, pointer: false)] parameter_setup = [] call_arguments = [] proc_type.params.each_with_index do |param, index| linkage_name = c_local_name(param.name || "arg#{index}") if array_type?(param.type) input_linkage_name = "#{linkage_name}_input" params << IR::Param.new(name: param.name || "arg#{index}", linkage_name: input_linkage_name, type: param.type, pointer: false) env[:scopes].last[param.name || "arg#{index}"] = local_binding(type: param.type, linkage_name:, mutable: param.mutable, pointer: false) parameter_setup << IR::LocalDecl.new( name: param.name || "arg#{index}", linkage_name:, type: param.type, value: IR::Name.new(name: input_linkage_name, type: param.type, pointer: false), ) call_arguments << IR::Name.new(name: linkage_name, type: param.type, pointer: false) else env[:scopes].last[param.name || "arg#{index}"] = local_binding(type: param.type, linkage_name:, mutable: param.mutable, pointer: false) params << IR::Param.new(name: param.name || "arg#{index}", linkage_name:, type: param.type, pointer: false) call_arguments << IR::Name.new(name: linkage_name, type: param.type, pointer: false) end end call = IR::Call.new(callee: function_c_name, arguments: call_arguments, type: proc_type.return_type) body = if proc_type.return_type == @ctx.types.fetch("void") parameter_setup + [IR::ExpressionStmt.new(expression: call), IR::ReturnStmt.new(value: nil)] else parameter_setup + [IR::ReturnStmt.new(value: call)] end IR::Function.new(name: invoke_c_name, linkage_name: invoke_c_name, params:, return_type: proc_type.return_type, body:, entry_point: false) end |
#builtin_attribute_binding(name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2023 def builtin_attribute_binding(name) Bindings.builtin_attribute_binding(name, @ctx.types) end |
#cast_expression(expression, target_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1026 def cast_expression(expression, target_type) return expression if expression.type == target_type IR::Cast.new(target_type:, expression:, type: target_type) end |
#collect_type_substitutions(pattern_type, actual_type, substitutions, function_name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2292 def collect_type_substitutions(pattern_type, actual_type, substitutions, function_name) case pattern_type when Types::TypeVar existing = substitutions[pattern_type.name] if existing && existing != actual_type raise LoweringError.new("conflicting type argument #{pattern_type.name} for function #{function_name}: got #{existing} and #{actual_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions[pattern_type.name] ||= actual_type when Types::Nullable candidate = actual_type.is_a?(Types::Nullable) ? actual_type.base : actual_type collect_type_substitutions(pattern_type.base, candidate, substitutions, function_name) when Types::GenericInstance if ref_type?(pattern_type) && !ref_type?(actual_type) collect_type_substitutions(referenced_type(pattern_type), actual_type, substitutions, function_name) return end if own_type?(actual_type) && (mutable_pointer_type?(pattern_type) || const_pointer_type?(pattern_type)) collect_type_substitutions(pointee_type(pattern_type), owned_referent_type(actual_type), substitutions, function_name) return end return unless actual_type.is_a?(Types::GenericInstance) return unless actual_type.name == pattern_type.name && actual_type.arguments.length == pattern_type.arguments.length pattern_type.arguments.zip(actual_type.arguments).each do |expected_argument, actual_argument| next if expected_argument.is_a?(Types::LiteralTypeArg) collect_type_substitutions(expected_argument, actual_argument, substitutions, function_name) end when Types::Span return unless actual_type.is_a?(Types::Span) collect_type_substitutions(pattern_type.element_type, actual_type.element_type, substitutions, function_name) when Types::Task return unless actual_type.is_a?(Types::Task) collect_type_substitutions(pattern_type.result_type, actual_type.result_type, substitutions, function_name) when Types::Proc if task_root_proc_type?(pattern_type) && actual_type.is_a?(Types::Task) collect_type_substitutions(pattern_type.return_type, actual_type, substitutions, function_name) return end actual_params = case actual_type when Types::Proc return unless actual_type.params.length == pattern_type.params.length actual_type.params when Types::Function return if actual_type.receiver_type || actual_type.variadic return unless actual_type.params.length == pattern_type.params.length return unless actual_type.params.zip(pattern_type.params).all? { |actual_param, expected_param| actual_param.mutable == expected_param.mutable } actual_type.params else return end pattern_type.params.zip(actual_params).each do |expected_param, actual_param| collect_type_substitutions(expected_param.type, actual_param.type, substitutions, function_name) end collect_type_substitutions(pattern_type.return_type, actual_type.return_type, substitutions, function_name) when Types::StructInstance return unless actual_type.is_a?(Types::StructInstance) return unless actual_type.definition == pattern_type.definition && actual_type.arguments.length == pattern_type.arguments.length pattern_type.arguments.zip(actual_type.arguments).each do |expected_argument, actual_argument| collect_type_substitutions(expected_argument, actual_argument, substitutions, function_name) end when Types::VariantInstance return unless actual_type.is_a?(Types::VariantInstance) return unless actual_type.definition == pattern_type.definition && actual_type.arguments.length == pattern_type.arguments.length pattern_type.arguments.zip(actual_type.arguments).each do |expected_argument, actual_argument| collect_type_substitutions(expected_argument, actual_argument, substitutions, function_name) end when Types::Function return unless actual_type.is_a?(Types::Function) return unless actual_type.params.length == pattern_type.params.length pattern_type.params.zip(actual_type.params).each do |expected_param, actual_param| collect_type_substitutions(expected_param.type, actual_param.type, substitutions, function_name) end collect_type_substitutions(pattern_type.return_type, actual_type.return_type, substitutions, function_name) end end |
#common_integer_type(left_type, right_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1134 def common_integer_type(left_type, right_type) left_type = left_type.backing_type if left_type.is_a?(Types::EnumBase) right_type = right_type.backing_type if right_type.is_a?(Types::EnumBase) return left_type if left_type == right_type return unless left_type.is_a?(Types::Primitive) && right_type.is_a?(Types::Primitive) return unless left_type.integer? && right_type.integer? return unless left_type.fixed_width_integer? && right_type.fixed_width_integer? # Mirrors the semantic analyzer's rule: same signedness picks the wider # type; mixed signed/unsigned promotes to the narrowest signed type that # holds both operands' full ranges (a strictly-wider signed type covers # an unsigned operand, otherwise widen to the next signed width). Mixing # with a 64-bit unsigned type has no safe signed common type. if left_type.signed_integer? == right_type.signed_integer? return left_type.integer_width >= right_type.integer_width ? left_type : right_type end signed_type, unsigned_type = if left_type.signed_integer? [left_type, right_type] else [right_type, left_type] end return signed_type if signed_type.integer_width > unsigned_type.integer_width signed_type_above_width(unsigned_type.integer_width) end |
#common_numeric_type(left_type, right_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1118 def common_numeric_type(left_type, right_type) left_type = left_type.backing_type if left_type.is_a?(Types::EnumBase) right_type = right_type.backing_type if right_type.is_a?(Types::EnumBase) return left_type if left_type == right_type return unless left_type.is_a?(Types::Primitive) && right_type.is_a?(Types::Primitive) return unless left_type.numeric? && right_type.numeric? return common_integer_type(left_type, right_type) if left_type.integer? && right_type.integer? return wider_float_type(left_type, right_type) if left_type.float? && right_type.float? float_type, integer_type = left_type.float? ? [left_type, right_type] : [right_type, left_type] return unless integer_type.integer? && integer_type.fixed_width_integer? float_type end |
#compile_time_const_value(expression, env: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1586 def compile_time_const_value(expression, env: nil) CompileTime.evaluate( expression, resolve_identifier: lambda do |identifier_expression| if env binding = lookup_value(identifier_expression.name, env) return binding[:const_value] unless binding&.fetch(:const_value, nil).nil? end value = resolve_current_module_const_value(identifier_expression.name) return value if value # Resolve a bare type-parameter name (e.g. `T`) to its substituted # concrete type so `inline if T == int` folds during lowering too. current_type_params[identifier_expression.name] || @ctx.types[identifier_expression.name] end, resolve_member_access: lambda do |member_access_expression| if (receiver_value = CompileTime.evaluate( member_access_expression.receiver, resolve_identifier: lambda do |identifier_expression| if env binding = lookup_value(identifier_expression.name, env) return binding[:const_value] unless binding&.fetch(:const_value, nil).nil? end resolve_current_module_const_value(identifier_expression.name) end, resolve_member_access: lambda { |ma| nil }, resolve_type_ref: lambda { |tr| resolve_type_ref(tr) }, resolve_call: lambda { |ce| evaluate_compile_time_call(ce, env:) }, )) case receiver_value when Types::FieldHandle case member_access_expression.member when "name" then next receiver_value.field_name when "type" then next receiver_value.struct_handle.struct_type.field(receiver_value.field_name) end when Types::MemberHandle case member_access_expression.member when "name" then next receiver_value.member_name when "value" then next receiver_value.member_value end end end value = if member_access_expression.receiver.is_a?(AST::Identifier) resolve_imported_module_const_value(member_access_expression.receiver.name, member_access_expression.member) end next value unless value.nil? resolve_type_member_const_value(member_access_expression) end, resolve_type_ref: lambda do |type_ref| resolve_type_ref(type_ref) end, resolve_call: lambda do |call_expression| evaluate_compile_time_call(call_expression, env:) end, ) end |
#compile_time_numeric_const_expression?(expression, env: nil) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1581 def compile_time_numeric_const_expression?(expression, env: nil) value = compile_time_const_value(expression, env:) value.is_a?(Integer) || value.is_a?(Float) end |
#const_declaration_for_module(module_name, name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2419 def const_declaration_for_module(module_name, name) analysis = @program.analyses_by_module_name.fetch(module_name) declaration = analysis.ast.declarations.find { |decl| decl.is_a?(AST::ConstDecl) && decl.name == name } raise LoweringError.new("unknown constant #{analysis.module_name}.#{name}", line: 0, column: 0, path: @ctx.current_analysis_path) unless declaration declaration end |
#contextual_numeric_compatibility?(expression, actual_type, expected_type, env:, external_numeric: false, contextual_int_to_float: false) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 163 def contextual_numeric_compatibility?(expression, actual_type, expected_type, env:, external_numeric: false, contextual_int_to_float: false) return true if exact_compile_time_numeric_compatibility?(actual_type, expression, expected_type, env:) return true if integer_to_char_compatibility?(actual_type, expected_type) return true if external_numeric && external_numeric_compatibility?(actual_type, expected_type) return true if contextual_int_to_float && contextual_int_to_float_compatibility?(actual_type, expected_type) false end |
#copy_cstr_metadata!(target_env, source_env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 344 def (target_env, source_env) trackable_binding_names(target_env).each do |name| binding = lookup_value(name, target_env) source_binding = lookup_value(name, source_env) next unless binding && source_binding ( name, target_env, cstr_backed: binding_cstr_backed?(source_binding), cstr_list_backed: binding_cstr_list_backed?(source_binding), ) end end |
#cstr_backed_expression?(expression, env) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 172 def cstr_backed_expression?(expression, env) return true if infer_expression_type(expression, env:) == @ctx.types.fetch("cstr") case expression when AST::StringLiteral true when AST::Identifier binding_cstr_backed?(lookup_value(expression.name, env)) when AST::IfExpr then_env = env_with_refinements(env, flow_refinements(expression.condition, truthy: true, env:)) else_env = env_with_refinements(env, flow_refinements(expression.condition, truthy: false, env:)) cstr_backed_expression?(expression.then_expression, then_env) && cstr_backed_expression?(expression.else_expression, else_env) when AST::UnsafeExpr cstr_backed_expression?(expression.expression, env) else false end rescue LoweringError false end |
#cstr_backed_storage_value?(type, expression, env) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 220 def cstr_backed_storage_value?(type, expression, env) return false unless expression return true if type == @ctx.types.fetch("cstr") return false unless type == @ctx.types.fetch("str") cstr_backed_expression?(expression, env) end |
#cstr_list_backed_expression?(expression, env) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 194 def cstr_list_backed_expression?(expression, env) actual_type = infer_expression_type(expression, env:) return false unless array_type?(actual_type) element_type = array_element_type(actual_type) return false unless element_type == @ctx.types.fetch("str") || element_type == @ctx.types.fetch("cstr") case expression when AST::Identifier binding_cstr_list_backed?(lookup_value(expression.name, env)) when AST::Call expression.arguments.all? { |argument| cstr_backed_expression?(argument.value, env) } when AST::IfExpr then_env = env_with_refinements(env, flow_refinements(expression.condition, truthy: true, env:)) else_env = env_with_refinements(env, flow_refinements(expression.condition, truthy: false, env:)) cstr_list_backed_expression?(expression.then_expression, then_env) && cstr_list_backed_expression?(expression.else_expression, else_env) when AST::UnsafeExpr cstr_list_backed_expression?(expression.expression, env) else false end rescue LoweringError false end |
#cstr_list_backed_storage_value?(type, expression, env) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 228 def cstr_list_backed_storage_value?(type, expression, env) return false unless expression return false unless cstr_list_trackable_type?(type) cstr_list_backed_expression?(expression, env) end |
#cstr_metadata_exit_envs_for_if_statement(statement, env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 274 def (statement, env) false_refinements = {} exit_envs = [] statement.branches.each do |branch| branch_env = env_with_refinements(env, false_refinements) true_refinements = merge_refinements(false_refinements, flow_refinements(branch.condition, truthy: true, env: branch_env)) simulated = (branch.body, env: env_with_refinements(env, true_refinements)) exit_envs << simulated if simulated false_refinements = merge_refinements(false_refinements, flow_refinements(branch.condition, truthy: false, env: branch_env)) end if statement.else_body simulated = (statement.else_body, env: env_with_refinements(env, false_refinements)) exit_envs << simulated if simulated else exit_envs << env end exit_envs end |
#current_type_params ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2436 def current_type_params @ctx.current_type_substitutions || {} end |
#direct_function_identity_expression?(expression, env) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 27 def direct_function_identity_expression?(expression, env) case expression when AST::Identifier return false if lookup_value(expression.name, env) return false unless @ctx.functions.key?(expression.name) binding = @ctx.functions.fetch(expression.name) !binding.type_params.any? && !foreign_function_binding?(binding) when AST::MemberAccess return false unless expression.receiver.is_a?(AST::Identifier) && @ctx.imports.key?(expression.receiver.name) imported_module = @ctx.imports.fetch(expression.receiver.name) return false unless imported_module.functions.key?(expression.member) binding = imported_module.functions.fetch(expression.member) !binding.type_params.any? && !foreign_function_binding?(binding) when AST::Specialization callable_resolution = resolve_specialized_callable_binding(expression, env:) return false unless callable_resolution callable_kind, binding, = callable_resolution callable_kind == :function && !foreign_function_binding?(binding) else false end end |
#direct_function_to_proc_contextual_compatibility?(expression, actual_type, env:, expected_type:) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 20 def direct_function_to_proc_contextual_compatibility?(expression, actual_type, env:, expected_type:) return false unless actual_type.is_a?(Types::Function) && proc_type?(expected_type) return false unless direct_function_identity_expression?(expression, env) function_type_matches_proc_type?(actual_type, expected_type) end |
#each_non_raw_module_analysis(&block) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2406 def each_non_raw_module_analysis(&block) return @program.analyses_by_module_name.each_value.reject { |a| a.module_kind == :raw_module }.each unless block @program.analyses_by_module_name.each_value { |a| block.call(a) unless a.module_kind == :raw_module } end |
#each_raw_module_analysis(&block) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2401 def each_raw_module_analysis(&block) return @program.analyses_by_module_name.each_value.select { |a| a.module_kind == :raw_module }.each unless block @program.analyses_by_module_name.each_value { |a| block.call(a) if a.module_kind == :raw_module } end |
#evaluate_attribute_arg_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1816 def evaluate_attribute_arg_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 2) attribute_handle = compile_time_const_value(arguments.first.value, env:) return nil unless attribute_handle.is_a?(Types::AttributeHandle) param_name = reflection_identifier_name(arguments[1].value) return nil unless param_name && attribute_handle.argument_values attribute_handle.argument_values[param_name] end |
#evaluate_attribute_of_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1797 def evaluate_attribute_of_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 2) target = evaluate_reflection_target_argument(arguments.first.value, env:) binding = resolve_attribute_name_argument(arguments[1].value) return nil unless attribute_binding_supports_target?(binding, target) application = find_attribute_application(target, binding) return nil unless application Types::AttributeHandle.new( binding.name, binding.module_name, target, binding.params, application.argument_values, ) end |
#evaluate_attributes_of_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1750 def evaluate_attributes_of_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 1) || reflection_positional_arguments?(arguments, 2) target = evaluate_reflection_target_argument(arguments.first.value, env:) return nil unless target if arguments.length == 2 attribute_binding = resolve_attribute_name_argument(arguments[1].value) application = find_attribute_application(target, attribute_binding) return [] unless application [Types::AttributeHandle.new( attribute_binding.name, attribute_binding.module_name, target, attribute_binding.params, application.argument_values, )] else resolved_attribute_applications_for_target(target).map do |application| Types::AttributeHandle.new( application.binding.name, application.binding.module_name, target, application.binding.params, application.argument_values, ) end end end |
#evaluate_callable_of_call(arguments) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1781 def evaluate_callable_of_call(arguments) return nil unless reflection_positional_arguments?(arguments, 1) resolve_callable_handle_argument(arguments.first.value) end |
#evaluate_compile_time_call(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1646 def evaluate_compile_time_call(expression, env:) case expression.callee when AST::Identifier case expression.callee.name when "field_of" evaluate_field_of_call(expression.arguments, env:) when "fields_of" evaluate_fields_of_call(expression.arguments, env:) when "callable_of" evaluate_callable_of_call(expression.arguments) when "has_attribute" evaluate_has_attribute_call(expression.arguments, env:) when "attribute_of" evaluate_attribute_of_call(expression.arguments, env:) when "members_of" evaluate_members_of_call(expression.arguments, env:) when "attributes_of" evaluate_attributes_of_call(expression.arguments, env:) else func = @ctx.functions[expression.callee.name] if func&.ast&.respond_to?(:const) && func.ast.const evaluate_const_function_body_lower(func, expression.arguments) else evaluate_type_returning_call(expression, env:) end end when AST::Specialization if expression.callee.callee.is_a?(AST::Identifier) && expression.callee.callee.name == "attribute_arg" evaluate_attribute_arg_call(expression.arguments, env:) else callee_name = expression.callee.callee.is_a?(AST::Identifier) ? expression.callee.callee.name : nil if callee_name func = @ctx.functions[callee_name] if func&.ast&.respond_to?(:const) && func.ast.const evaluate_const_function_body_lower(func, expression.arguments) else evaluate_type_returning_call(expression, env:) end else evaluate_type_returning_call(expression, env:) end end end end |
#evaluate_const_function_body_lower(func, arguments) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1828 def evaluate_const_function_body_lower(func, arguments) return nil unless func.ast.params.length == arguments.length initial_vars = {} func.ast.params.each_with_index do |param, idx| arg_expr = arguments[idx].value arg_value = compile_time_const_value(arg_expr, env: empty_env) return nil unless arg_value initial_vars[param.name] = arg_value end evaluator = ConstFnLowerEvaluator.new(self) ctx = CompileTime::BlockContext.new(evaluator, initial_variables: initial_vars) ctx.evaluate_block(func.ast.body, scopes: nil) rescue CompileTime::ReturnValue => e e.value end |
#evaluate_field_of_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1718 def evaluate_field_of_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 2) struct_handle = resolve_struct_handle_argument(arguments.first.value, env:) return nil unless struct_handle field_name = reflection_identifier_name(arguments[1].value) return nil unless field_name CompileTime::Reflection.core_field_handle(struct_handle, field_name) end |
#evaluate_fields_of_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1730 def evaluate_fields_of_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 1) struct_handle = resolve_struct_handle_argument(arguments.first.value, env:) return nil unless struct_handle CompileTime::Reflection.core_field_handles(struct_handle) end |
#evaluate_has_attribute_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1787 def evaluate_has_attribute_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 2) target = evaluate_reflection_target_argument(arguments.first.value, env:) binding = resolve_attribute_name_argument(arguments[1].value) return nil unless attribute_binding_supports_target?(binding, target) !find_attribute_application(target, binding).nil? end |
#evaluate_members_of_call(arguments, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1739 def evaluate_members_of_call(arguments, env:) return nil unless reflection_positional_arguments?(arguments, 1) type = resolve_type_expression(arguments.first.value) return nil unless type return nil unless type.is_a?(Types::Enum) || type.is_a?(Types::Flags) CompileTime::Reflection.core_member_handles(type) end |
#evaluate_reflection_target_argument(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1869 def evaluate_reflection_target_argument(expression, env:) struct_handle = resolve_struct_handle_argument(expression, env:) return struct_handle if struct_handle value = compile_time_const_value(expression, env:) return value if value.is_a?(Types::FieldHandle) || value.is_a?(Types::CallableHandle) nil end |
#evaluate_type_returning_call(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1691 def evaluate_type_returning_call(expression, env:) callee_name, type_args = extract_type_callee_info(expression) return nil unless callee_name CompileTime::Reflection.core_evaluate_type_returning( callee_name, type_args, evaluate_value: ->(v) { compile_time_const_value(v, env:) }, resolve_type_ref: ->(tr) { resolve_type_ref(tr) }, pointer_to: ->(t) { pointer_to(t) }, const_pointer_to: ->(t) { const_pointer_to(t) }, top_level_functions: ->(name) { nil }, evaluate_type_returning_function_body: nil, ) end |
#exact_compile_time_numeric_compatibility?(actual_type, expression, expected_type, env: nil) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 389 def exact_compile_time_numeric_compatibility?(actual_type, expression, expected_type, env: nil) return false unless expected_type.is_a?(Types::Primitive) && expected_type.numeric? return false if actual_type.is_a?(Types::EnumBase) value = compile_time_const_value(expression, env:) return false unless value.is_a?(Numeric) numeric_constant_fits_type?(value, expected_type) end |
#external_numeric_assignment_target?(expression, env:) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 399 def external_numeric_assignment_target?(expression, env:) case expression when AST::MemberAccess receiver_type = infer_field_receiver_type(expression.receiver, env:) receiver_type.respond_to?(:external) && receiver_type.external else false end end |
#extract_type_callee_info(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1706 def extract_type_callee_info(expression) if expression.is_a?(AST::Call) && expression.callee.is_a?(AST::Identifier) [expression.callee.name, nil] elsif expression.is_a?(AST::Specialization) if expression.callee.is_a?(AST::Identifier) [expression.callee.name, expression.arguments] elsif expression.callee.is_a?(AST::Specialization) && expression.callee.callee.is_a?(AST::Identifier) [expression.callee.callee.name, expression.callee.arguments] end end end |
#ffi_external_layout_root_type(type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1105 def ffi_external_layout_root_type(type) type = type.base while type.is_a?(Types::Nullable) return pointee_type(type) if pointer_type?(type) type end |
#find_attribute_application(target, binding) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2013 def find_attribute_application(target, binding) resolved_attribute_applications_for_target(target).find do |application| same_attribute_binding?(application.binding, binding) end end |
#find_struct_decl_by_name(declarations, name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1926 def find_struct_decl_by_name(declarations, name) declarations.each do |decl| next unless decl.is_a?(AST::StructDecl) return decl if decl.name == name if decl.nested_types&.any? found = find_struct_decl_by_name(decl.nested_types, name) return found if found end end nil end |
#float_literal_expression?(expression) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 980 def float_literal_expression?(expression) expression.is_a?(AST::FloatLiteral) || (expression.is_a?(AST::UnaryOp) && ["+", "-"].include?(expression.operator) && float_literal_expression?(expression.operand)) end |
#foreign_identity_projection_expression(expression, target_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1067 def foreign_identity_projection_expression(expression, target_type) return expression if expression.type == target_type return cast_expression(expression, target_type) if foreign_identity_projection_cast_compatible?(expression.type, target_type) if foreign_identity_projection_reinterpret_compatible?(expression.type, target_type) record_external_layout_assertion(expression.type, target_type) return reinterpret_expression(expression, target_type) end nil end |
#function_type_for_name(name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1246 def function_type_for_name(name) binding = @ctx.functions.fetch(name) raise LoweringError.new("generic function #{name} cannot be used as a value", line: 0, column: 0, path: @ctx.current_analysis_path) if binding.type_params.any? raise LoweringError.new("foreign function #{name} cannot be used as a value", line: 0, column: 0, path: @ctx.current_analysis_path) if foreign_function_binding?(binding) binding.type end |
#harmonize_binary_float_literal_types(left_expression, right_expression, left_type, right_type, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 968 def harmonize_binary_float_literal_types(left_expression, right_expression, left_type, right_type, env:) if float_literal_expression?(left_expression) && right_type.is_a?(Types::Primitive) && right_type.float? left_type = infer_expression_type(left_expression, env:, expected_type: right_type) end if float_literal_expression?(right_expression) && left_type.is_a?(Types::Primitive) && left_type.float? right_type = infer_expression_type(right_expression, env:, expected_type: left_type) end [left_type, right_type] end |
#harmonize_binary_integer_literal_types(left_expression, right_expression, left_type, right_type, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 985 def harmonize_binary_integer_literal_types(left_expression, right_expression, left_type, right_type, env:) if integer_literal_expression?(left_expression) && right_type.is_a?(Types::Primitive) && right_type.integer? if exact_compile_time_numeric_compatibility?(left_type, left_expression, right_type, env:) left_type = infer_expression_type(left_expression, env:, expected_type: right_type) end end if integer_literal_expression?(right_expression) && left_type.is_a?(Types::Primitive) && left_type.integer? if exact_compile_time_numeric_compatibility?(right_type, right_expression, left_type, env:) right_type = infer_expression_type(right_expression, env:, expected_type: left_type) end end [left_type, right_type] end |
#imports_for_module(module_name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2415 def imports_for_module(module_name) @program.analyses_by_module_name.fetch(module_name).imports end |
#infer_binary_operand_types(expression, env:, expected_type: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 938 def infer_binary_operand_types(expression, env:, expected_type: nil) propagated_type = propagating_expected_type(expression.operator, expected_type) left_type = infer_expression_type(expression.left, env:, expected_type: propagated_type) right_env = binary_right_env(expression, env) right_expected_type = case expression.operator when "<<", ">>" propagated_type || left_type when "+", "-", "*", "/", "%" propagated_type || left_type when "|", "&", "^" left_type else left_type end right_type = infer_expression_type(expression.right, env: right_env, expected_type: right_expected_type) left_type, right_type = harmonize_binary_float_literal_types(expression.left, expression.right, left_type, right_type, env: right_env) harmonize_binary_integer_literal_types(expression.left, expression.right, left_type, right_type, env: right_env) end |
#infer_expression_type(expression, env:, expected_type: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 701 def infer_expression_type(expression, env:, expected_type: nil) if !@bypass_sema_type_cache && expected_type.nil? && (id = @ctx.ast.node_ids[expression.object_id]) && (resolved = @ctx.resolved_expr_types[id]) return resolved end case expression when AST::AwaitExpr task_type = infer_expression_type(expression.expression, env:) raise LoweringError.new("await requires a Task value, got #{task_type}", line: 0, column: 0, path: @ctx.current_analysis_path) unless task_type.is_a?(Types::Task) task_type.result_type when AST::IntegerLiteral if expected_type.is_a?(Types::Primitive) && expected_type.integer? expected_type else @ctx.types.fetch("int") end when AST::CharLiteral @ctx.types.fetch("ubyte") when AST::FloatLiteral if expression.lexeme.end_with?("f") @ctx.types.fetch("float") elsif expression.lexeme.end_with?("d") @ctx.types.fetch("double") elsif expected_type.is_a?(Types::Primitive) && expected_type.float? expected_type else @ctx.types.fetch("float") end when AST::SizeofExpr, AST::AlignofExpr, AST::OffsetofExpr @ctx.types.fetch("ptr_uint") when AST::StringLiteral @ctx.types.fetch(expression.cstring ? "cstr" : "str") when AST::FormatString @ctx.types.fetch("str") when AST::BooleanLiteral @ctx.types.fetch("bool") when AST::NullLiteral infer_null_literal_type(expression, expected_type) when AST::Identifier binding = lookup_value(expression.name, env) return binding[:type] if binding return function_type_for_name(expression.name) if @ctx.functions.key?(expression.name) raise LoweringError.new("unknown identifier #{expression.name}", line: expression.line, column: expression.column) when AST::MemberAccess if (type_expr = resolve_type_expression(expression.receiver)) member_type = resolve_type_member(type_expr, expression.member) return member_type if member_type dispatch_receiver_type = method_dispatch_receiver_type(type_expr) method_entry_receiver_type = type_expr method_entry = @method_definitions[[type_expr, expression.member]] method_entry ||= @method_definitions[[type_expr, "static:#{expression.member}"]] unless method_entry || dispatch_receiver_type == type_expr method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, expression.member]] method_entry ||= @method_definitions[[dispatch_receiver_type, "static:#{expression.member}"]] end if method_entry method_analysis, method_ast = method_entry method_binding = method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key(method_ast)) return method_binding.type if method_binding.type.receiver_type.nil? end end if expression.receiver.is_a?(AST::Identifier) && @ctx.imports.key?(expression.receiver.name) imported_module = @ctx.imports.fetch(expression.receiver.name) return imported_module.values.fetch(expression.member).type if imported_module.values.key?(expression.member) return imported_module.functions.fetch(expression.member).type if imported_module.functions.key?(expression.member) end receiver_type = infer_field_receiver_type(expression.receiver, env:) if (event_type = event_member_from_owner_type(receiver_type, expression.member)) return event_type end if receiver_type == @ctx.types["field_handle"] return infer_field_handle_member_type(expression) end if receiver_type == @ctx.types["member_handle"] return infer_member_handle_member_type(expression) end return receiver_type.field(expression.member) if receiver_type.respond_to?(:field) raise LoweringError.new("unknown member #{expression.member}", line: expression.line, column: expression.column) when AST::IndexAccess receiver_type = infer_expression_type(expression.receiver, env:) index_type = infer_expression_type(expression.index, env:) infer_index_result_type(receiver_type, index_type) when AST::UnaryOp return infer_result_propagation_type(expression, env:) if expression.operator == "?" operand_type = infer_expression_type(expression.operand, env:, expected_type:) case expression.operator when "not" @ctx.types.fetch("bool") else operand_type end when AST::BinaryOp left_type, right_type = infer_binary_operand_types(expression, env:, expected_type: expected_type) case expression.operator when "and", "or", "<", "<=", ">", ">=", "==", "!=" @ctx.types.fetch("bool") when "+", "-", "*", "/" aggregate_arithmetic_result_type(expression.operator, left_type, right_type) || pointer_arithmetic_result_type(expression.operator, left_type, right_type) || common_numeric_type(left_type, right_type) || left_type when "%" common_integer_type(left_type, right_type) || left_type else left_type end when AST::IfExpr then_env = env_with_refinements(env, flow_refinements(expression.condition, truthy: true, env:)) else_env = env_with_refinements(env, flow_refinements(expression.condition, truthy: false, env:)) then_type = infer_expression_type(expression.then_expression, env: then_env, expected_type: expected_type) else_type = infer_expression_type(expression.else_expression, env: else_env, expected_type: expected_type) if expected_type && if_expression_branch_compatible?(then_type, expected_type) && if_expression_branch_compatible?(else_type, expected_type) return expected_type end conditional_common_type(then_type, else_type) || raise(LoweringError, "if expression branches require compatible types, got #{then_type} and #{else_type}") when AST::MatchExpr scrutinee_type = infer_expression_type(expression.expression, env:) arm_types = expression.arms.map do |arm| arm_env = duplicate_env(env) if scrutinee_type.is_a?(Types::Variant) && arm.binding_name && !wildcard_arm_pattern?(arm.pattern) arm_name = variant_match_arm_name_from_pattern(arm.pattern) if arm_name && scrutinee_type.has_payload?(arm_name) fields = scrutinee_type.arm(arm_name) payload_type = Types::VariantArmPayload.new(scrutinee_type, arm_name, fields) arm_env[:scopes].last[arm.binding_name] = local_binding(type: payload_type, linkage_name: c_local_name(arm.binding_name), mutable: false, pointer: false) end end infer_expression_type(arm.value, env: arm_env, expected_type: expected_type) end if expected_type && arm_types.all? { |arm_type| if_expression_branch_compatible?(arm_type, expected_type) } return expected_type end common_type = arm_types.first arm_types.drop(1).each do |arm_type| common_type = conditional_common_type(common_type, arm_type) || raise(LoweringError, "match expression arms require compatible types, got #{common_type} and #{arm_type}") end common_type when AST::UnsafeExpr infer_expression_type(expression.expression, env:, expected_type:) when AST::ProcExpr resolve_type_ref(AST::ProcType.new(params: expression.params, return_type: expression.return_type)) when AST::Call kind, _callee_name, _receiver, callee_type = resolve_callee(expression.callee, env, arguments: expression.arguments) case kind when :function, :method, :associated_method, :callable_value, :str_buffer_clear, :str_buffer_assign, :str_buffer_append, :str_buffer_assign_format, :str_buffer_append_format, :str_buffer_len, :str_buffer_capacity, :str_buffer_as_str, :str_buffer_as_cstr, :event_subscribe, :event_subscribe_once, :event_unsubscribe, :event_emit, :event_wait, :compile_time_builtin, :reinterpret, :zero, :hash, :equal, :order, :dyn_method callee_type.return_type when :struct_literal, :struct_with, :array, :simd, :variant_arm_ctor, :adapt callee_type when :ref_of argument_type = infer_expression_type(expression.arguments.fetch(0).value, env:) Types::Registry.generic_instance("ref", [argument_type]) when :const_ptr_of argument_type = infer_expression_type(expression.arguments.fetch(0).value, env:) Types::Registry.generic_instance("const_ptr", [argument_type]) when :read infer_value_type(expression.arguments.fetch(0).value, env:) when :ptr_of argument_type = infer_expression_type(expression.arguments.fetch(0).value, env:) if ref_type?(argument_type) Types::Registry.generic_instance("ptr", [referenced_type(argument_type)]) else Types::Registry.generic_instance("ptr", [infer_expression_type(expression.arguments.fetch(0).value, env:, expected_type: expected_type && pointer_type?(expected_type) ? pointee_type(expected_type) : nil)]) end when :array_as_span callee_type when :fatal @ctx.types.fetch("void") when :get receiver_type = infer_expression_type(expression.arguments.fetch(0).value, env:) elem_type = if array_type?(receiver_type) array_element_type(receiver_type) else receiver_type.element_type end Types::Registry.nullable(Types::Registry.generic_instance("ptr", [elem_type])) when :atomic_load, :atomic_add, :atomic_sub, :atomic_exchange, :atomic_store, :atomic_compare_exchange, :simd_lane_with callee_type.return_type else raise LoweringError.new("unsupported call kind #{kind}", line: 0, column: 0, path: @ctx.current_analysis_path) end when AST::PrefixCast resolve_type_ref(expression.target_type) when AST::Specialization if expression.callee.is_a?(AST::Identifier) && expression.callee.name == "zero" _, _, _, function_type = resolve_callee(expression, env, arguments: []) function_type.return_type elsif expression.callee.is_a?(AST::Identifier) && expression.callee.name == "default" resolve_default_specialization(expression, env:).target_type elsif (callable_resolution = resolve_specialized_callable_binding(expression, env:)) callable_kind, function_binding, = callable_resolution raise LoweringError.new("specialized method must be called", line: 0, column: 0, path: @ctx.current_analysis_path) if callable_kind == :method function_binding.type else raise LoweringError.new("unsupported specialization", line: 0, column: 0, path: @ctx.current_analysis_path) end when AST::RangeExpr raise LoweringError.new("range expression is not valid in this context; use it as a for-loop iterable", line: 0, column: 0, path: @ctx.current_analysis_path) when AST::ExpressionList names = [] element_types = [] expression.elements.each do |element| if element.is_a?(AST::Argument) names << element.name element_types << infer_expression_type(element.value, env:) else names << nil element_types << infer_expression_type(element, env:) end end has_named = names.any? Types::Registry.tuple(element_types, field_names: has_named ? names : nil) when AST::DetachExpr Types::Handle.new else raise LoweringError.new("unsupported expression type #{expression.class.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end end |
#infer_field_handle_member_type(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2585 def infer_field_handle_member_type(expression) case expression.member when "name" then @ctx.types["str"] when "type" handle = compile_time_const_value(expression.receiver, env: nil) return @error_type unless handle.is_a?(Types::FieldHandle) resolve_type_ref(handle.field_declaration.type) else @error_type end end |
#infer_function_type_arguments(binding, arguments, env, receiver_type: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2132 def infer_function_type_arguments(binding, arguments, env, receiver_type: nil) expected_params = binding.type.params unless call_arity_matches?(binding.type, arguments.length) raise LoweringError.new((binding.type, binding.name, arguments.length), line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions = infer_receiver_type_substitutions(binding, receiver_type) expected_params.each_with_index do |parameter, index| argument = arguments.fetch(index) candidate_type = substitute_type(parameter.type, substitutions) expected_argument_type = if callable_type?(candidate_type) candidate_type elsif contains_type_var?(candidate_type) nil else candidate_type end actual_type = infer_expression_type(argument.value, env:, expected_type: expected_argument_type) collect_type_substitutions(parameter.type, actual_type, substitutions, binding.name) end binding.type_params.map do |name| inferred = substitutions[name] raise LoweringError.new("cannot infer type argument #{name} for function #{binding.name}", line: 0, column: 0, path: @ctx.current_analysis_path) unless inferred inferred end end |
#infer_member_handle_member_type(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2598 def infer_member_handle_member_type(expression) case expression.member when "name" then @ctx.types["str"] when "value" then @ctx.types["int"] else @error_type end end |
#infer_null_literal_type(expression, expected_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1112 def infer_null_literal_type(expression, expected_type) return Types::Null.new(resolve_type_ref(expression.type)) if expression.type expected_type || null_type end |
#infer_receiver_type_substitutions(binding, receiver_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2206 def infer_receiver_type_substitutions(binding, receiver_type) declared_receiver_type = binding.declared_receiver_type return {} unless declared_receiver_type case declared_receiver_type when Types::Nullable unless receiver_type.is_a?(Types::Nullable) raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end infer_receiver_type_substitutions( binding.with(declared_receiver_type: declared_receiver_type.base), receiver_type.base, ) when Types::StructInstance return {} unless declared_receiver_type.definition.is_a?(Types::GenericStructDefinition) unless receiver_type.is_a?(Types::StructInstance) && receiver_type.definition == declared_receiver_type.definition raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end declared_receiver_type.definition.type_params.zip(receiver_type.arguments).to_h when Types::VariantInstance return {} unless declared_receiver_type.definition.is_a?(Types::GenericVariantDefinition) unless receiver_type.is_a?(Types::VariantInstance) && receiver_type.definition == declared_receiver_type.definition raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end declared_receiver_type.definition.type_params.zip(receiver_type.arguments).to_h when Types::GenericInstance unless receiver_type.is_a?(Types::GenericInstance) && receiver_type.name == declared_receiver_type.name && receiver_type.arguments.length == declared_receiver_type.arguments.length raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end declared_receiver_type.arguments.zip(receiver_type.arguments).each_with_object({}) do |(declared_argument, actual_argument), substitutions| if declared_argument.is_a?(Types::TypeVar) substitutions[declared_argument.name] = actual_argument elsif declared_argument != actual_argument raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end when Types::Span return {} unless receiver_type.is_a?(Types::Span) substitutions = {} if declared_receiver_type.element_type.is_a?(Types::TypeVar) substitutions[declared_receiver_type.element_type.name] = receiver_type.element_type elsif declared_receiver_type.element_type != receiver_type.element_type raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions when Types::Task return {} unless receiver_type.is_a?(Types::Task) substitutions = {} if declared_receiver_type.result_type.is_a?(Types::TypeVar) substitutions[declared_receiver_type.result_type.name] = receiver_type.result_type elsif declared_receiver_type.result_type != receiver_type.result_type raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions when Types::SoA return {} unless receiver_type.is_a?(Types::SoA) substitutions = {} if declared_receiver_type.element_type.is_a?(Types::TypeVar) substitutions[declared_receiver_type.element_type.name] = receiver_type.element_type elsif declared_receiver_type.element_type != receiver_type.element_type raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions when Types::Simd return {} unless receiver_type.is_a?(Types::Simd) substitutions = {} if declared_receiver_type.element_type.is_a?(Types::TypeVar) substitutions[declared_receiver_type.element_type.name] = receiver_type.element_type elsif declared_receiver_type.element_type != receiver_type.element_type raise LoweringError.new("cannot use method #{binding.name} with receiver #{receiver_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions else {} end end |
#instantiate_function_binding(binding, type_arguments) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2063 def instantiate_function_binding(binding, type_arguments) if binding.type_params.empty? raise LoweringError.new("function #{binding.name} is not generic and cannot be specialized", line: 0, column: 0, path: @ctx.current_analysis_path) end unless binding.type_params.length == type_arguments.length raise LoweringError.new("function #{binding.name} expects #{binding.type_params.length} type arguments, got #{type_arguments.length}", line: 0, column: 0, path: @ctx.current_analysis_path) end if type_arguments.any? { |type_argument| contains_ref_type?(type_argument) } raise LoweringError.new("generic function #{binding.name} cannot be instantiated with ref types", line: 0, column: 0, path: @ctx.current_analysis_path) end key = type_arguments.freeze return binding.instances.fetch(key) if binding.instances.key?(key) substitutions = binding.type_params.zip(type_arguments).to_h validate_function_type_param_constraints!(binding, substitutions) instance = Bindings::FunctionBinding.new( name: binding.name, type: substitute_type(binding.type, substitutions), body_params: binding.body_params.map { |param| substitute_value_binding(param, substitutions) }, body_return_type: substitute_type(binding.body_return_type, substitutions), ast: binding.ast, external: binding.external, async: binding.async, type_params: [].freeze, type_param_constraints: {}.freeze, instances: {}, type_arguments: key, owner: binding.owner, specialization_owner: nil, type_substitutions: substitutions.freeze, declared_receiver_type: binding.declared_receiver_type ? substitute_type(binding.declared_receiver_type, substitutions) : nil, ) binding.instances[key] = instance end |
#instantiate_function_binding_with_receiver(binding, explicit_type_arguments, receiver_type: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2035 def instantiate_function_binding_with_receiver(binding, explicit_type_arguments, receiver_type: nil) if binding.type_params.empty? raise LoweringError.new("function #{binding.name} is not generic and cannot be specialized", line: 0, column: 0, path: @ctx.current_analysis_path) end receiver_substitutions = infer_receiver_type_substitutions(binding, receiver_type) remaining_type_params = binding.type_params.reject { |name| receiver_substitutions.key?(name) } unless remaining_type_params.length == explicit_type_arguments.length raise LoweringError.new("function #{binding.name} expects #{remaining_type_params.length} type arguments, got #{explicit_type_arguments.length}", line: 0, column: 0, path: @ctx.current_analysis_path) end substitutions = receiver_substitutions.dup remaining_type_params.zip(explicit_type_arguments).each do |name, type_argument| raise LoweringError.new("generic function #{binding.name} cannot be instantiated with ref types", line: 0, column: 0, path: @ctx.current_analysis_path) if contains_ref_type?(type_argument) substitutions[name] = type_argument end type_arguments = binding.type_params.map do |name| inferred = substitutions[name] raise LoweringError.new("cannot infer type argument #{name} for function #{binding.name}", line: 0, column: 0, path: @ctx.current_analysis_path) unless inferred inferred end instantiate_function_binding(binding, type_arguments) end |
#integer_literal_expression?(expression) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1001 def integer_literal_expression?(expression) expression.is_a?(AST::IntegerLiteral) end |
#interface_implementation_key(type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2115 def interface_implementation_key(type) return type.definition if type.is_a?(Types::StructInstance) type end |
#literal_type_argument_name_candidate?(type_ref) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1537 def literal_type_argument_name_candidate?(type_ref) type_ref.arguments.empty? && !type_ref.nullable end |
#lower_array_to_span_expression(expression, target_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 113 def lower_array_to_span_expression(expression, target_type) array_type = expression.type array_type = referenced_type(array_type) if ref_type?(array_type) IR::AggregateLiteral.new( type: target_type, fields: [ IR::AggregateField.new( name: "data", value: IR::AddressOf.new( expression: IR::Index.new( receiver: expression, index: IR::IntegerLiteral.new(value: 0, type: @ctx.types.fetch("ptr_uint")), type: target_type.element_type, ), type: pointer_to(target_type.element_type), ), ), IR::AggregateField.new( name: "len", value: IR::IntegerLiteral.new(value: array_length(array_type), type: @ctx.types.fetch("ptr_uint")), ), ], ) end |
#lower_fn_to_proc_expression(source_expression, source_function, env:, expected_type:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 54 def lower_fn_to_proc_expression(source_expression, source_function, env:, expected_type:) raise LoweringError.new("function-to-proc coercion requires a direct function name", line: 0, column: 0, path: @ctx.current_analysis_path) unless source_function.is_a?(IR::Name) proc_id = fresh_proc_symbol invoke_c_name = "#{@ctx.module_prefix}__proc_#{proc_id}__invoke" release_linkage_name = "#{@ctx.module_prefix}__proc_#{proc_id}__release" retain_c_name = "#{@ctx.module_prefix}__proc_#{proc_id}__retain" @artifacts.synthetic_functions << build_direct_function_proc_invoke_function(source_expression, source_function.name, source_function.type, expected_type, invoke_c_name) @artifacts.synthetic_functions << build_proc_noop_release_function(release_linkage_name) @artifacts.synthetic_functions << build_proc_noop_retain_function(retain_c_name) IR::AggregateLiteral.new( type: expected_type, fields: [ IR::AggregateField.new(name: "env", value: IR::NullLiteral.new(type: proc_env_pointer_type)), IR::AggregateField.new(name: "invoke", value: IR::Name.new(name: invoke_c_name, type: proc_invoke_function_type(expected_type), pointer: false)), IR::AggregateField.new(name: "release", value: IR::Name.new(name: release_linkage_name, type: proc_release_function_type, pointer: false)), IR::AggregateField.new(name: "retain", value: IR::Name.new(name: retain_c_name, type: proc_retain_function_type, pointer: false)), ], ) end |
#lower_str_buffer_to_span_expression(expression, target_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 139 def lower_str_buffer_to_span_expression(expression, target_type) IR::AggregateLiteral.new( type: target_type, fields: [ IR::AggregateField.new( name: "data", value: IR::Call.new( callee: "mt_str_buffer_prepare_write", arguments: [ lower_str_buffer_data_pointer_from_lowered(expression), IR::IntegerLiteral.new(value: str_buffer_capacity(expression.type), type: @ctx.types.fetch("ptr_uint")), lower_str_buffer_dirty_pointer_from_lowered(expression), ], type: pointer_to(target_type.element_type), ), ), IR::AggregateField.new( name: "len", value: IR::IntegerLiteral.new(value: str_buffer_storage_capacity(expression.type), type: @ctx.types.fetch("ptr_uint")), ), ], ) end |
#merge_cstr_metadata_after_if_statement!(statement, env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 257 def (statement, env) exit_envs = (statement, env) return if exit_envs.empty? trackable_binding_names(env).each do |name| binding = lookup_value(name, env) next unless binding ( name, env, cstr_backed: cstr_trackable_type?(binding[:type]) && exit_envs.all? { |exit_env| binding_cstr_backed?(lookup_value(name, exit_env)) }, cstr_list_backed: cstr_list_trackable_type?(binding[:type]) && exit_envs.all? { |exit_env| binding_cstr_list_backed?(lookup_value(name, exit_env)) }, ) end end |
#method_analysis_key(method_ast) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1429 def method_analysis_key(method_ast) method_ast.kind == :static ? "static:#{method_ast.name}" : method_ast.name end |
#methods_receiver_type_argument_names!(type_ref) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2192 def methods_receiver_type_argument_names!(type_ref) names = type_ref.arguments.map do |argument| value = argument.value next unless value.is_a?(AST::TypeRef) next unless value.arguments.empty? && !value.nullable && value.name.parts.length == 1 value.name.parts.first end raise LoweringError.new("extending target #{type_ref} must use the receiver type parameters directly", line: 0, column: 0, path: @ctx.current_analysis_path) if names.any?(&:nil?) names end |
#pointer_arithmetic_result_type(operator, left_type, right_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1205 def pointer_arithmetic_result_type(operator, left_type, right_type) return left_type if pointer_type?(left_type) && integer_type?(right_type) && (operator == "+" || operator == "-") return right_type if operator == "+" && integer_type?(left_type) && pointer_type?(right_type) nil end |
#pointer_lowered_method_receiver?(callee_type, callee_binding) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1038 def pointer_lowered_method_receiver?(callee_type, callee_binding) return true if callee_type.receiver_editable receiver_type_uses_pointer_lowering?(callee_type.receiver_type) && !callee_binding&.async end |
#pointer_lowered_sync_method_receiver?(binding) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1032 def pointer_lowered_sync_method_receiver?(binding) return false if binding.async pointer_lowered_method_receiver?(binding.type, binding) end |
#promoted_binary_operand_type(operator, left_type, right_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1017 def promoted_binary_operand_type(operator, left_type, right_type) case operator when "+", "-", "*", "/", "<", "<=", ">", ">=", "==", "!=" common_numeric_type(left_type, right_type) when "%" common_integer_type(left_type, right_type) end end |
#propagating_expected_type(operator, expected_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1005 def propagating_expected_type(operator, expected_type) case operator when "+", "-", "*", "/", "%", "<<", ">>" return expected_type if expected_type.is_a?(Types::Primitive) && expected_type.numeric? when "|", "&", "^" return expected_type if expected_type.is_a?(Types::Primitive) && expected_type.integer? return expected_type if expected_type.is_a?(Types::Flags) end nil end |
#receiver_type_uses_pointer_lowering?(type) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1044 def receiver_type_uses_pointer_lowering?(type) case type when Types::Nullable receiver_type_uses_pointer_lowering?(type.base) when Types::Struct, Types::StructInstance type_contains_array_storage?(type) else false end end |
#record_external_layout_assertion(source_type, target_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1079 def record_external_layout_assertion(source_type, target_type) source_root = ffi_external_layout_root_type(source_type) target_root = ffi_external_layout_root_type(target_type) return unless source_root && target_root return unless source_root.external && target_root.external return if source_root.module_name == target_root.module_name pair_key = [[source_root.module_name, source_root.name], [target_root.module_name, target_root.name]].sort.freeze return if @artifacts.emitted_external_layout_pairs[pair_key] @artifacts.emitted_external_layout_pairs[pair_key] = true @artifacts.external_layout_assertions << IR::StaticAssert.new( condition: IR::Binary.new( operator: "==", left: IR::SizeofExpr.new(target_type: source_root, type: @ctx.types.fetch("ptr_uint")), right: IR::SizeofExpr.new(target_type: target_root, type: @ctx.types.fetch("ptr_uint")), type: @ctx.types.fetch("bool"), ), message: IR::StringLiteral.new( value: "FFI layout mismatch: #{source_root} vs #{target_root}", type: @ctx.types.fetch("str"), cstring: false, ), ) end |
#reflection_identifier_name(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1978 def reflection_identifier_name(expression) expression.is_a?(AST::Identifier) ? expression.name : nil end |
#reflection_positional_arguments?(arguments, expected_length) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1879 def reflection_positional_arguments?(arguments, expected_length) arguments.length == expected_length && arguments.none?(&:name) end |
#reflection_type_from_expression(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1890 def reflection_type_from_expression(expression, env:) case expression when AST::Identifier return nil if env && lookup_value(expression.name, env) current_type_params[expression.name] || @ctx.types[expression.name] when AST::MemberAccess return nil unless expression.receiver.is_a?(AST::Identifier) if @ctx.imports.key?(expression.receiver.name) imported_module = @ctx.imports[expression.receiver.name] return nil if imported_module.private_type?(expression.member) return imported_module.types[expression.member] end parent_type = @ctx.types[expression.receiver.name] return parent_type.nested_types[expression.member] if parent_type.respond_to?(:nested_types) && parent_type.nested_types.key?(expression.member) nil else nil end end |
#reinterpret_expression(expression, target_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1061 def reinterpret_expression(expression, target_type) return expression if expression.type == target_type IR::ReinterpretExpr.new(target_type:, source_type: expression.type, expression:, type: target_type) end |
#replace_binding_cstr_metadata!(name, env, cstr_backed:, cstr_list_backed:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 359 def (name, env, cstr_backed:, cstr_list_backed:) env[:scopes].reverse_each do |scope| next if scope.is_a?(FlowScope) next unless scope.key?(name) scope[name] = scope.fetch(name).merge(cstr_backed:, cstr_list_backed:) return end end |
#resolve_attribute_name_argument(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1961 def resolve_attribute_name_argument(expression) case expression when AST::Identifier @ctx.attributes[expression.name] || builtin_attribute_binding(expression.name) when AST::MemberAccess return nil unless expression.receiver.is_a?(AST::Identifier) imported_module = @ctx.imports[expression.receiver.name] return nil unless imported_module return nil if imported_module.private_attribute?(expression.member) imported_module.attributes[expression.member] else nil end end |
#resolve_callable_handle_argument(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1938 def resolve_callable_handle_argument(expression) case expression when AST::Identifier binding = @ctx.functions[expression.name] return nil unless binding&.ast Types::CallableHandle.new(expression.name, binding.ast) when AST::MemberAccess return nil unless expression.receiver.is_a?(AST::Identifier) imported_module = @ctx.imports[expression.receiver.name] return nil unless imported_module return nil if imported_module.private_function?(expression.member) binding = imported_module.functions[expression.member] return nil unless binding&.ast Types::CallableHandle.new("#{expression.receiver.name}.#{expression.member}", binding.ast) else nil end end |
#resolve_callee(callee, env, arguments: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 409 def resolve_callee(callee, env, arguments: nil) case callee when AST::Identifier resolve_identifier_callee(callee, env, arguments) when AST::MemberAccess resolve_member_access_callee(callee, env, arguments) when AST::Specialization resolve_specialization_callee(callee, env) else resolve_expression_callee(callee, env) end end |
#resolve_current_module_const_value(name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1554 def resolve_current_module_const_value(name) binding = @ctx.values[name] return unless binding&.kind == :const binding.const_value end |
#resolve_default_specialization(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1306 def resolve_default_specialization(expression, env:) target_type = resolve_type_ref(expression.arguments.fetch(0).value) explicit_default = resolve_explicit_default_binding(target_type, context: "default[#{target_type}]") raise LoweringError.new("default[#{target_type}] requires associated function #{target_type}.default()", line: 0, column: 0, path: @ctx.current_analysis_path) unless explicit_default DefaultResolution.new(target_type:, binding: explicit_default.binding, callee_name: explicit_default.callee_name) end |
#resolve_equal_specialization(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1323 def resolve_equal_specialization(expression, env:) target_type = resolve_type_ref(expression.arguments.fetch(0).value) explicit_equal = resolve_explicit_equal_binding(target_type, context: "equal[#{target_type}]") raise LoweringError.new("equal[#{target_type}] requires associated function #{target_type}.equal(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> bool", line: 0, column: 0, path: @ctx.current_analysis_path) unless explicit_equal EqualResolution.new(target_type:, binding: explicit_equal.binding, callee_name: explicit_equal.callee_name) end |
#resolve_explicit_associated_binding(target_type, method_name, requirement_message:) {|method_binding, method_analysis, method_entry_receiver_type| ... } ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1433 def resolve_explicit_associated_binding(target_type, method_name, requirement_message:) dispatch_receiver_type = method_dispatch_receiver_type(target_type) method_entry_receiver_type = target_type static_method_name = "static:#{method_name}" method_entry = @method_definitions[[target_type, static_method_name]] unless method_entry || dispatch_receiver_type == target_type method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, static_method_name]] end return nil unless method_entry method_analysis, method_ast = method_entry method_binding = method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key(method_ast)) raise LoweringError.new(, line: 0, column: 0, path: @ctx.current_analysis_path) unless method_binding.type.receiver_type.nil? method_binding = instantiate_function_binding_with_receiver(method_binding, [], receiver_type: target_type) if method_binding.type_params.any? yield method_binding, method_analysis, method_entry_receiver_type callee_name = if method_binding.external external_function_c_name(method_binding) else function_binding_c_name(method_binding, module_name: method_analysis.module_name, receiver_type: method_entry_receiver_type) end case method_name when "default" ExplicitDefaultBinding.new(binding: method_binding, callee_name:) when "hash" ExplicitHashBinding.new(binding: method_binding, callee_name:) when "equal" ExplicitEqualBinding.new(binding: method_binding, callee_name:) when "order" ExplicitOrderBinding.new(binding: method_binding, callee_name:) else raise LoweringError.new("unsupported associated hook #{method_name}", line: 0, column: 0, path: @ctx.current_analysis_path) end end |
#resolve_explicit_default_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1339 def resolve_explicit_default_binding(target_type, context:) = "#{context} requires associated function #{target_type}.default()" resolve_explicit_associated_binding(target_type, "default", requirement_message:) do |method_binding, _method_analysis, _method_entry_receiver_type| raise LoweringError.new("#{context} requires #{target_type}.default() to take 0 arguments", line: 0, column: 0, path: @ctx.current_analysis_path) unless method_binding.type.params.empty? unless method_binding.type.return_type == target_type raise LoweringError.new("#{context} requires #{target_type}.default() to return #{target_type}, got #{method_binding.type.return_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#resolve_explicit_equal_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1361 def resolve_explicit_equal_binding(target_type, context:) = "#{context} requires associated function #{target_type}.equal(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> bool" resolve_explicit_associated_binding(target_type, "equal", requirement_message:) do |method_binding, _method_analysis, _method_entry_receiver_type| expected_param_types = [const_pointer_to(target_type), const_pointer_to(target_type)] unless method_binding.type.params.map(&:type) == expected_param_types raise LoweringError.new("#{context} requires #{target_type}.equal(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> bool", line: 0, column: 0, path: @ctx.current_analysis_path) end unless method_binding.type.return_type == @ctx.types.fetch("bool") raise LoweringError.new("#{context} requires #{target_type}.equal(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> bool, got #{method_binding.type.return_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#resolve_explicit_format_append_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1416 def resolve_explicit_format_append_binding(target_type, context:) = "#{context} requires method #{target_type}.append_format(output: ref[std.string.String]) -> void" resolve_explicit_instance_binding(target_type, "append_format", requirement_message:) do |method_binding, _method_analysis, _method_entry_receiver_type| raise LoweringError.new("#{context} requires #{target_type}.append_format() to be non-editable", line: 0, column: 0, path: @ctx.current_analysis_path) if method_binding.type.receiver_editable unless method_binding.type.params.length == 1 && string_builder_ref_type?(method_binding.type.params.first.type) raise LoweringError.new("#{context} requires #{target_type}.append_format(output: ref[std.string.String]) -> void", line: 0, column: 0, path: @ctx.current_analysis_path) end unless method_binding.type.return_type == @ctx.types.fetch("void") raise LoweringError.new("#{context} requires #{target_type}.append_format(output: ref[std.string.String]) -> void, got #{method_binding.type.return_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#resolve_explicit_format_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1387 def resolve_explicit_format_binding(target_type, context:) length_binding = resolve_explicit_format_len_binding(target_type, context:) append_binding = resolve_explicit_format_append_binding(target_type, context:) return ExplicitFormatBinding.new( length_binding: length_binding.fetch(:binding), length_callee_name: length_binding.fetch(:callee_name), append_binding: append_binding.fetch(:binding), append_callee_name: append_binding.fetch(:callee_name), ) if length_binding && append_binding if length_binding || append_binding raise LoweringError.new("#{context} requires methods #{target_type}.format_len() -> ptr_uint and #{target_type}.append_format(output: ref[std.string.String]) -> void", line: 0, column: 0, path: @ctx.current_analysis_path) end nil end |
#resolve_explicit_format_len_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1405 def resolve_explicit_format_len_binding(target_type, context:) = "#{context} requires method #{target_type}.format_len() -> ptr_uint" resolve_explicit_instance_binding(target_type, "format_len", requirement_message:) do |method_binding, _method_analysis, _method_entry_receiver_type| raise LoweringError.new("#{context} requires #{target_type}.format_len() to take 0 arguments", line: 0, column: 0, path: @ctx.current_analysis_path) unless method_binding.type.params.empty? raise LoweringError.new("#{context} requires #{target_type}.format_len() to be non-editable", line: 0, column: 0, path: @ctx.current_analysis_path) if method_binding.type.receiver_editable unless method_binding.type.return_type == @ctx.types.fetch("ptr_uint") raise LoweringError.new("#{context} requires #{target_type}.format_len() -> ptr_uint, got #{method_binding.type.return_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#resolve_explicit_hash_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1349 def resolve_explicit_hash_binding(target_type, context:) = "#{context} requires associated function #{target_type}.hash(value: const_ptr[#{target_type}]) -> uint" resolve_explicit_associated_binding(target_type, "hash", requirement_message:) do |method_binding, _method_analysis, _method_entry_receiver_type| unless method_binding.type.params.map(&:type) == [const_pointer_to(target_type)] raise LoweringError.new("#{context} requires #{target_type}.hash(value: const_ptr[#{target_type}]) -> uint", line: 0, column: 0, path: @ctx.current_analysis_path) end unless method_binding.type.return_type == @ctx.types.fetch("uint") raise LoweringError.new("#{context} requires #{target_type}.hash(value: const_ptr[#{target_type}]) -> uint, got #{method_binding.type.return_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#resolve_explicit_instance_binding(target_type, method_name, requirement_message:) {|method_binding, method_analysis, method_entry_receiver_type| ... } ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1471 def resolve_explicit_instance_binding(target_type, method_name, requirement_message:) dispatch_receiver_type = method_dispatch_receiver_type(target_type) method_entry_receiver_type = target_type method_entry = @method_definitions[[target_type, method_name]] unless method_entry || dispatch_receiver_type == target_type method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, method_name]] end return nil unless method_entry method_analysis, method_ast = method_entry method_binding = method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key(method_ast)) raise LoweringError.new(, line: 0, column: 0, path: @ctx.current_analysis_path) if method_binding.type.receiver_type.nil? method_binding = instantiate_function_binding_with_receiver(method_binding, [], receiver_type: target_type) if method_binding.type_params.any? yield method_binding, method_analysis, method_entry_receiver_type callee_name = if method_binding.external external_function_c_name(method_binding) else function_binding_c_name(method_binding, module_name: method_analysis.module_name, receiver_type: method_entry_receiver_type) end { binding: method_binding, callee_name: callee_name, } end |
#resolve_explicit_order_binding(target_type, context:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1374 def resolve_explicit_order_binding(target_type, context:) = "#{context} requires associated function #{target_type}.order(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> int" resolve_explicit_associated_binding(target_type, "order", requirement_message:) do |method_binding, _method_analysis, _method_entry_receiver_type| expected_param_types = [const_pointer_to(target_type), const_pointer_to(target_type)] unless method_binding.type.params.map(&:type) == expected_param_types raise LoweringError.new("#{context} requires #{target_type}.order(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> int", line: 0, column: 0, path: @ctx.current_analysis_path) end unless method_binding.type.return_type == @ctx.types.fetch("int") raise LoweringError.new("#{context} requires #{target_type}.order(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> int, got #{method_binding.type.return_type}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#resolve_expression_callee(callee, env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 694 def resolve_expression_callee(callee, env) callee_type = infer_expression_type(callee, env:) return [:callable_value, nil, nil, callee_type, nil] if callable_type?(callee_type) raise LoweringError.new("unsupported callee #{callee.class.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end |
#resolve_field_handle_type_ref(parts) ⇒ Object
Resolves a bare dotted reflection type ref field.type (where field is
a compile-time field_handle bound in the active inline-for env) to the
field's concrete type. Mirrors the sema-side resolve_compile_time_type_ref.
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2572 def resolve_field_handle_type_ref(parts) return nil unless parts.length == 2 && parts.last == "type" binding = lookup_value(parts.first, @type_resolution_env) handle = binding && binding[:const_value] return nil unless handle.is_a?(Types::FieldHandle) # Use the struct's already-resolved field type (module-independent) rather # than re-resolving the field's declared TypeRef, which would look up a # user struct name in this (std) module's scope and fail. handle.struct_handle.struct_type.field(handle.field_name) end |
#resolve_hash_specialization(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1315 def resolve_hash_specialization(expression, env:) target_type = resolve_type_ref(expression.arguments.fetch(0).value) explicit_hash = resolve_explicit_hash_binding(target_type, context: "hash[#{target_type}]") raise LoweringError.new("hash[#{target_type}] requires associated function #{target_type}.hash(value: const_ptr[#{target_type}]) -> uint", line: 0, column: 0, path: @ctx.current_analysis_path) unless explicit_hash HashResolution.new(target_type:, binding: explicit_hash.binding, callee_name: explicit_hash.callee_name) end |
#resolve_identifier_callee(callee, env, arguments) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 422 def resolve_identifier_callee(callee, env, arguments) if (binding = lookup_value(callee.name, env)) return [:callable_value, nil, nil, binding[:type], nil] if callable_type?(binding[:type]) raise LoweringError.new("#{callee.name} is not callable", line: 0, column: 0, path: @ctx.current_analysis_path) end if @ctx.functions.key?(callee.name) binding = specialize_function_binding(@ctx.functions.fetch(callee.name), arguments, env) callee_name = if binding.external external_function_c_name(binding) else function_binding_c_name(binding, module_name: @ctx.module_name) end return [:function, callee_name, nil, binding.type, binding] end if (kind = PASS_THROUGH_BUILTINS[callee.name]) return [kind, nil, nil, nil] end if COMPILE_TIME_BUILTINS.include?(callee.name) return [:compile_time_builtin, callee.name, nil, compile_time_builtin_function_type(callee.name, arguments, env)] end type = @ctx.types[callee.name] if type.is_a?(Types::Struct) || type.is_a?(Types::StringView) || task_type?(type) || type.is_a?(Types::Vector) || type.is_a?(Types::Matrix) || type.is_a?(Types::Quaternion) return [:struct_literal, nil, nil, type] end if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) raise LoweringError.new("generic type #{callee.name} requires type arguments", line: 0, column: 0, path: @ctx.current_analysis_path) end emit_fn = @artifacts.emitted_declarations.find { |d| d.is_a?(IR::Function) && d.name == callee.name } if emit_fn return [:function, emit_fn.linkage_name, nil, emit_fn.return_type, nil] end raise LoweringError.new("unknown callee #{callee.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end |
#resolve_imported_module_const_value(import_name, value_name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1561 def resolve_imported_module_const_value(import_name, value_name) imported_module = @ctx.imports[import_name] return unless imported_module if imported_module.private_value?(value_name) raise LoweringError.new("#{import_name}.#{value_name} is private to module #{imported_module.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end binding = imported_module.values[value_name] return unless binding&.kind == :const binding.const_value end |
#resolve_interface_ref(interface_ref) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2606 def resolve_interface_ref(interface_ref) parts = interface_ref.parts interface = if parts.length == 1 @ctx.interfaces[parts.first] elsif parts.length == 2 && @ctx.imports.key?(parts.first) @ctx.imports.fetch(parts.first).interfaces[parts.last] end raise LoweringError.new("unknown interface #{interface_ref}", line: 0, column: 0, path: @ctx.current_analysis_path) unless interface if interface_ref.type_arguments.any? raise LoweringError.new("interface #{interface.name} is not generic", line: 0, column: 0, path: @ctx.current_analysis_path) unless interface.respond_to?(:instantiate) type_args = interface_ref.type_arguments.map { |arg| resolve_type_ref(arg) } interface.instantiate(type_args) else interface end end |
#resolve_member_access_callee(callee, env, arguments) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 464 def resolve_member_access_callee(callee, env, arguments) if callee.receiver.is_a?(AST::Identifier) && @ctx.imports.key?(callee.receiver.name) imported_module = @ctx.imports.fetch(callee.receiver.name) if imported_module.functions.key?(callee.member) binding = specialize_function_binding(imported_module.functions.fetch(callee.member), arguments, env) unless binding.owner binding = binding.with(owner: imported_module.respond_to?(:analysis) ? imported_module.analysis : imported_module) end return [:function, function_binding_c_name(binding, module_name: imported_module.name), nil, binding.type, binding] unless binding.external return [:function, external_function_c_name(binding), nil, binding.type, binding] end imported_type = imported_module.types[callee.member] if imported_type.is_a?(Types::GenericStructDefinition) || imported_type.is_a?(Types::GenericVariantDefinition) raise LoweringError.new("generic type #{callee.receiver.name}.#{callee.member} requires type arguments", line: 0, column: 0, path: @ctx.current_analysis_path) end if imported_type.is_a?(Types::Struct) || imported_type.is_a?(Types::StringView) || task_type?(imported_type) || imported_type.is_a?(Types::Vector) || imported_type.is_a?(Types::Matrix) || imported_type.is_a?(Types::Quaternion) return [:struct_literal, nil, nil, imported_module.types.fetch(callee.member)] end if imported_type.is_a?(Types::Variant) && imported_type.arm_names.include?(callee.member) arm_name = callee.member return [:variant_arm_ctor, nil, nil, imported_type, [imported_type, arm_name]] end end if (type_expr = resolve_type_expression(callee.receiver)) if type_expr.is_a?(Types::Variant) && type_expr.arm_names.include?(callee.member) arm_name = callee.member return [:variant_arm_ctor, nil, nil, type_expr, [type_expr, arm_name]] end if type_expr.respond_to?(:nested_types) && type_expr.nested_types.key?(callee.member) return [:struct_literal, nil, nil, type_expr.nested_types[callee.member]] end dispatch_receiver_type = method_dispatch_receiver_type(type_expr) method_entry_receiver_type = type_expr method_entry = @method_definitions[[type_expr, callee.member]] method_entry ||= @method_definitions[[type_expr, "static:#{callee.member}"]] unless method_entry || dispatch_receiver_type == type_expr method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, callee.member]] method_entry ||= @method_definitions[[dispatch_receiver_type, "static:#{callee.member}"]] end if method_entry method_analysis, method_ast = method_entry method_binding = method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key(method_ast)) if method_binding.type.receiver_type.nil? method_binding = specialize_function_binding(method_binding, arguments, env, receiver_type: type_expr) if method_binding.type_params.any? return [:associated_method, function_binding_c_name(method_binding, module_name: method_analysis.module_name, receiver_type: method_entry_receiver_type), nil, method_binding.type, method_binding] end end raise LoweringError.new("unknown associated function #{type_expr}.#{callee.member}", line: 0, column: 0, path: @ctx.current_analysis_path) end resolved_receiver_type = infer_method_receiver_type(callee.receiver, env:, member_name: callee.member) if dyn_type?(resolved_receiver_type) interface = resolved_receiver_type.interface_binding method_binding = interface.methods[callee.member] raise LoweringError.new("no method '#{callee.member}' on interface #{interface.name}", line: 0, column: 0, path: @ctx.current_analysis_path) unless method_binding return [:dyn_method, nil, callee.receiver, method_binding, nil] end dispatch_receiver_type = method_dispatch_receiver_type(resolved_receiver_type) method_entry_receiver_type = resolved_receiver_type method_entry = @method_definitions[[resolved_receiver_type, callee.member]] unless method_entry || dispatch_receiver_type == resolved_receiver_type method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, callee.member]] end if method_entry method_analysis, method_ast = method_entry method_analysis_key = method_ast.kind == :static ? "static:#{method_ast.name}" : method_ast.name method_binding = method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key) method_binding = specialize_function_binding(method_binding, arguments, env, receiver_type: resolved_receiver_type) return [ :method, function_binding_c_name(method_binding, module_name: method_analysis.module_name, receiver_type: method_entry_receiver_type), callee.receiver, method_binding.type, method_binding, ] end if callee.member == "with" && struct_with_target_type?(resolved_receiver_type) return [:struct_with, nil, callee.receiver, resolved_receiver_type] end if (precomputed = @ctx.resolved_call_kinds[@ctx.ast.node_ids[callee.object_id]]) case precomputed when :str_buffer_clear, :str_buffer_assign, :str_buffer_append, :str_buffer_assign_format, :str_buffer_append_format, :str_buffer_len, :str_buffer_capacity, :str_buffer_as_str, :str_buffer_as_cstr return [precomputed, nil, callee.receiver, str_buffer_method_type(precomputed, resolved_receiver_type)] when :event_subscribe, :event_subscribe_once, :event_unsubscribe, :event_emit, :event_wait event_type = infer_expression_type(callee.receiver, env:) return [precomputed, nil, callee.receiver, event_method_type(precomputed, event_type)] when :atomic_load, :atomic_store, :atomic_add, :atomic_sub, :atomic_exchange, :atomic_compare_exchange elem = atomic_element_type(resolved_receiver_type) ret = case precomputed when :atomic_load, :atomic_add, :atomic_sub, :atomic_exchange then elem when :atomic_store then @ctx.types.fetch("void") when :atomic_compare_exchange then @ctx.types.fetch("bool") end return [precomputed, nil, callee.receiver, Types::Registry.function(nil, params: [], return_type: ret)] when :simd_lane_with return [precomputed, nil, callee.receiver, Types::Registry.function(nil, params: [], return_type: resolved_receiver_type)] end end if (str_buffer_method = str_buffer_method_kind(resolved_receiver_type, callee.member)) return [str_buffer_method, nil, callee.receiver, str_buffer_method_type(str_buffer_method, resolved_receiver_type)] end if (event_method = event_method_kind(resolved_receiver_type, callee.member)) event_type = infer_expression_type(callee.receiver, env:) return [event_method, nil, callee.receiver, event_method_type(event_method, event_type)] end if (atomic_method = atomic_method_kind(resolved_receiver_type, callee.member)) elem = atomic_element_type(resolved_receiver_type) ret = case atomic_method when :atomic_load, :atomic_add, :atomic_sub, :atomic_exchange then elem when :atomic_store then @ctx.types.fetch("void") when :atomic_compare_exchange then @ctx.types.fetch("bool") end return [atomic_method, nil, callee.receiver, Types::Registry.function(nil, params: [], return_type: ret)] end if (simd_method = simd_method_kind(resolved_receiver_type, callee.member)) ret = case simd_method when :simd_lane_with then resolved_receiver_type end return [simd_method, nil, callee.receiver, Types::Registry.function(nil, params: [], return_type: ret)] end field_receiver_type = infer_field_receiver_type(callee.receiver, env:) if array_type?(field_receiver_type) && callee.member == "as_span" return [:array_as_span, nil, callee.receiver, Types::Registry.span(array_element_type(field_receiver_type))] end member_type = field_receiver_type.respond_to?(:field) ? field_receiver_type.field(callee.member) : nil member_type = field_receiver_type.respond_to?(:field) ? field_receiver_type.field(callee.member) : nil return [:callable_value, nil, nil, member_type, nil] if callable_type?(member_type) raise LoweringError.new("unknown callee #{callee.receiver}.#{callee.member}", line: 0, column: 0, path: @ctx.current_analysis_path) end |
#resolve_named_generic_type(parts) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2553 def resolve_named_generic_type(parts) if parts.length == 1 type = @ctx.types[parts.first] return type if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) elsif parts.length >= 2 type = resolve_nested_type_ref(parts) return type if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) if @ctx.imports.key?(parts.first) type = @ctx.imports.fetch(parts.first).types[parts.last] return type if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) end end nil end |
#resolve_named_generic_type_for_analysis(analysis, parts) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2163 def resolve_named_generic_type_for_analysis(analysis, parts) if parts.length == 1 type = analysis.types[parts.first] return type if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) elsif parts.length == 2 && analysis.imports.key?(parts.first) type = analysis.imports.fetch(parts.first).types[parts.last] return type if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) end nil end |
#resolve_named_literal_type_argument(type_ref) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1541 def resolve_named_literal_type_argument(type_ref) value = case type_ref.name.parts.length when 1 resolve_current_module_const_value(type_ref.name.parts.first) when 2 resolve_imported_module_const_value(type_ref.name.parts.first, type_ref.name.parts.last) end return unless value.is_a?(Integer) || value.is_a?(Float) Types::LiteralTypeArg.new(value) end |
#resolve_nested_type_ref(parts) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2541 def resolve_nested_type_ref(parts) current = @ctx.types[parts.first] return nil unless current.is_a?(Types::Struct) || current.is_a?(Types::GenericStructDefinition) parts[1..].each do |part| nested = current.respond_to?(:nested_types) ? current.nested_types[part] : nil return nil unless nested current = nested end current end |
#resolve_order_specialization(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1331 def resolve_order_specialization(expression, env:) target_type = resolve_type_ref(expression.arguments.fetch(0).value) explicit_order = resolve_explicit_order_binding(target_type, context: "order[#{target_type}]") raise LoweringError.new("order[#{target_type}] requires associated function #{target_type}.order(left: const_ptr[#{target_type}], right: const_ptr[#{target_type}]) -> int", line: 0, column: 0, path: @ctx.current_analysis_path) unless explicit_order OrderResolution.new(target_type:, binding: explicit_order.binding, callee_name: explicit_order.callee_name) end |
#resolve_specialization_callee(callee, env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 616 def resolve_specialization_callee(callee, env) if callee.callee.is_a?(AST::Identifier) case callee.callee.name when "reinterpret" target_type = resolve_type_ref(callee.arguments.fetch(0).value) return [:reinterpret, nil, nil, Types::Registry.function("reinterpret", params: [Types::Registry.parameter("value", target_type)], return_type: target_type)] when "array" array_type = resolve_type_ref(AST::TypeRef.new(name: AST::QualifiedName.new(parts: ["array"]), arguments: callee.arguments, nullable: false)) return [:array, nil, nil, array_type] when "simd" simd_type = resolve_type_ref(AST::TypeRef.new(name: AST::QualifiedName.new(parts: ["simd"]), arguments: callee.arguments, nullable: false)) return [:simd, nil, nil, simd_type] when "span" span_type = resolve_type_ref(AST::TypeRef.new(name: AST::QualifiedName.new(parts: ["span"]), arguments: callee.arguments, nullable: false)) return [:struct_literal, nil, nil, span_type] when "zero" target_type = resolve_type_ref(callee.arguments.fetch(0).value) return [:zero, nil, nil, Types::Registry.function("zero", params: [], return_type: target_type)] when "hash" resolution = resolve_hash_specialization(callee, env:) return [:hash, resolution.callee_name, nil, Types::Registry.function("hash", params: [Types::Registry.parameter("value", resolution.target_type)], return_type: @ctx.types.fetch("uint")), resolution.binding] when "equal" resolution = resolve_equal_specialization(callee, env:) params = [ Types::Registry.parameter("left", resolution.target_type), Types::Registry.parameter("right", resolution.target_type), ] return [:equal, resolution.callee_name, nil, Types::Registry.function("equal", params:, return_type: @ctx.types.fetch("bool")), resolution.binding] when "order" resolution = resolve_order_specialization(callee, env:) params = [ Types::Registry.parameter("left", resolution.target_type), Types::Registry.parameter("right", resolution.target_type), ] return [:order, resolution.callee_name, nil, Types::Registry.function("order", params:, return_type: @ctx.types.fetch("int")), resolution.binding] when "attribute_arg" return [:compile_time_builtin, "attribute_arg", nil, compile_time_builtin_specialization_function_type(callee)] when "adapt" raise LoweringError.new("adapt requires exactly one type argument", line: 0, column: 0, path: @ctx.current_analysis_path) unless callee.arguments.length == 1 type_arg = callee.arguments.first.value raise LoweringError.new("adapt type argument must be a type", line: 0, column: 0, path: @ctx.current_analysis_path) unless type_arg.is_a?(AST::TypeRef) parts = type_arg.name.parts type_args = type_arg.arguments.map { |a| a.value } interface = resolve_interface_ref(AST::QualifiedName.new(parts:, type_arguments: type_args)) dyn_type = Types::Dyn.new(interface, interface.respond_to?(:type_arguments) ? (interface.type_arguments || []) : []) return [:adapt, nil, nil, dyn_type, interface] end end if (callable_resolution = resolve_specialized_callable_binding(callee, env:)) callable_kind, function_binding, receiver, method_entry_receiver_type = callable_resolution if callable_kind == :method return [ :method, function_binding_c_name(function_binding, module_name: function_binding.owner.module_name, receiver_type: method_entry_receiver_type), receiver, function_binding.type, function_binding, ] end if function_binding.external return [:function, external_function_c_name(function_binding), nil, function_binding.type, function_binding] end return [:function, function_binding_c_name(function_binding, module_name: function_binding.owner.module_name), nil, function_binding.type, function_binding] end if (type_ref = type_ref_from_specialization(callee)) specialized_type = resolve_type_ref(type_ref) return [:struct_literal, nil, nil, specialized_type] if specialized_type.is_a?(Types::Struct) || task_type?(specialized_type) || specialized_type.is_a?(Types::Vector) || specialized_type.is_a?(Types::Matrix) || specialized_type.is_a?(Types::Quaternion) || specialized_type.is_a?(Types::Simd) end raise LoweringError.new("unsupported specialization callee", line: 0, column: 0, path: @ctx.current_analysis_path) end |
#resolve_specialization_type_arguments(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1500 def resolve_specialization_type_arguments(expression) expression.arguments.map do |argument| resolve_type_argument(argument.value) end end |
#resolve_specialized_callable_binding(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1254 def resolve_specialized_callable_binding(expression, env:) callable_kind = :function receiver = nil receiver_type = nil binding = case expression.callee when AST::Identifier @ctx.functions[expression.callee.name] when AST::MemberAccess if expression.callee.receiver.is_a?(AST::Identifier) && @ctx.imports.key?(expression.callee.receiver.name) @ctx.imports.fetch(expression.callee.receiver.name).functions[expression.callee.member] elsif (type_expr = resolve_type_expression(expression.callee.receiver)) dispatch_receiver_type = method_dispatch_receiver_type(type_expr) method_entry_receiver_type = type_expr method_entry = @method_definitions[[type_expr, expression.callee.member]] method_entry ||= @method_definitions[[type_expr, "static:#{expression.callee.member}"]] unless method_entry || dispatch_receiver_type == type_expr method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, expression.callee.member]] method_entry ||= @method_definitions[[dispatch_receiver_type, "static:#{expression.callee.member}"]] end if method_entry method_analysis, method_ast = method_entry method_binding = method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key(method_ast)) if method_binding.type.receiver_type.nil? receiver_type = type_expr method_binding end end else resolved_receiver_type = infer_method_receiver_type(expression.callee.receiver, env:, member_name: expression.callee.member) dispatch_receiver_type = method_dispatch_receiver_type(resolved_receiver_type) method_entry_receiver_type = resolved_receiver_type method_entry = @method_definitions[[resolved_receiver_type, expression.callee.member]] unless method_entry || dispatch_receiver_type == resolved_receiver_type method_entry_receiver_type = dispatch_receiver_type method_entry = @method_definitions[[dispatch_receiver_type, expression.callee.member]] end if method_entry method_analysis, method_ast = method_entry callable_kind = :method receiver = expression.callee.receiver receiver_type = resolved_receiver_type method_analysis.methods.fetch(method_entry_receiver_type).fetch(method_analysis_key(method_ast)) end end end return nil unless binding type_arguments = resolve_specialization_type_arguments(expression) [callable_kind, instantiate_function_binding_with_receiver(binding, type_arguments, receiver_type:), receiver, method_entry_receiver_type] end |
#resolve_struct_handle_argument(expression, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1883 def resolve_struct_handle_argument(expression, env:) type = reflection_type_from_expression(expression, env:) return nil unless type struct_handle_for_type(type) end |
#resolve_type_argument(argument, type_params: current_type_params) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1506 def resolve_type_argument(argument, type_params: current_type_params) case argument when AST::TypeRef resolve_type_argument_ref(argument, type_params:) when AST::FunctionType, AST::ProcType, AST::TupleType resolve_type_ref(argument, type_params:) when AST::IntegerLiteral, AST::FloatLiteral Types::LiteralTypeArg.new(argument.value) else raise LoweringError.new("unsupported type argument #{argument.class.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end end |
#resolve_type_argument_ref(type_ref, type_params:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1519 def resolve_type_argument_ref(type_ref, type_params:) return resolve_type_ref(type_ref, type_params:) unless literal_type_argument_name_candidate?(type_ref) result = try_resolve_type_ref(type_ref, type_params:) return result if result literal_type_argument = resolve_named_literal_type_argument(type_ref) return literal_type_argument if literal_type_argument resolve_type_ref(type_ref, type_params:) end |
#resolve_type_expression(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1212 def resolve_type_expression(expression) case expression when AST::Identifier return current_type_params[expression.name] if current_type_params.key?(expression.name) @ctx.types[expression.name] when AST::MemberAccess return nil unless expression.receiver.is_a?(AST::Identifier) if @ctx.imports.key?(expression.receiver.name) return @ctx.imports.fetch(expression.receiver.name).types[expression.member] end parent_type = @ctx.types[expression.receiver.name] return parent_type.nested_types[expression.member] if parent_type.respond_to?(:nested_types) && parent_type.nested_types.key?(expression.member) nil when AST::Specialization type_ref = type_ref_from_specialization(expression) return nil unless type_ref resolve_type_ref(type_ref) end end |
#resolve_type_member(type, name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1237 def resolve_type_member(type, name) case type when Types::Enum, Types::Flags type.member(name) when Types::Variant type if type.arm_names.include?(name) end end |
#resolve_type_member_const_value(expression) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1574 def resolve_type_member_const_value(expression) type = resolve_type_expression(expression.receiver) return unless type.is_a?(Types::EnumBase) type.member_value(expression.member) end |
#resolve_type_ref(type_ref, type_params: current_type_params) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2440 def resolve_type_ref(type_ref, type_params: current_type_params) if type_ref.is_a?(AST::FunctionType) params = type_ref.params.map do |param| Types::Registry.parameter(param.name, resolve_type_ref(param.type, type_params:)) end return Types::Registry.function(nil, params:, return_type: resolve_type_ref(type_ref.return_type, type_params:)) end if type_ref.is_a?(AST::ProcType) params = type_ref.params.map do |param| Types::Registry.parameter(param.name, resolve_type_ref(param.type, type_params:)) end return Types::Registry.proc(params:, return_type: resolve_type_ref(type_ref.return_type, type_params:)) end if type_ref.is_a?(AST::DynType) interface = resolve_interface_ref(type_ref.interface) raise LoweringError.new("generic interface requires type arguments", line: 0, column: 0, path: @ctx.current_analysis_path) if interface.respond_to?(:instantiate) type_arguments = interface.respond_to?(:type_arguments) ? (interface.type_arguments || []) : [] return Types::Dyn.new(interface, type_arguments) end if type_ref.is_a?(AST::TupleType) names = [] element_types = [] type_ref.element_types.each do |et| if et.is_a?(AST::Argument) names << et.name element_types << resolve_type_ref(et.value, type_params:) else names << nil element_types << resolve_type_ref(et, type_params:) end end has_named = names.any? return Types::Registry.tuple(element_types, field_names: has_named ? names : nil) end parts = type_ref.name.parts base = if type_ref.arguments.any? name = parts.join(".") args = type_ref.arguments.map { |argument| resolve_type_argument(argument.value, type_params:) } if name != "ref" && args.any? { |argument| contains_ref_type?(argument) && !stored_ref_supported_type?(argument) } raise LoweringError.new("ref types cannot be nested inside #{name}", line: 0, column: 0, path: @ctx.current_analysis_path) end if name == "Task" validate_generic_type!(name, args) Types::Registry.task(args.fetch(0)) elsif (generic_type = resolve_named_generic_type(parts)) generic_type.instantiate(args) elsif name == "span" Types::Registry.span(args.fetch(0)) elsif name == "SoA" validate_generic_type!(name, args) Types::Registry.soa(args.fetch(0), count: args.fetch(1).value) elsif name == "simd" validate_generic_type!(name, args) Types::Registry.simd(args.fetch(0), lane_count: args.fetch(1).value) else validate_generic_type!(name, args) args = [type_ref.lifetime] + args if name == "ref" && type_ref.lifetime Types::Registry.generic_instance(name, args) end elsif parts.length == 1 && type_params.key?(parts.first) type_params.fetch(parts.first) elsif parts.length == 1 type = @ctx.types[parts.first] raise LoweringError.new("unknown type #{parts.first}", line: 0, column: 0, path: @ctx.current_analysis_path) unless type raise LoweringError.new("generic type #{parts.first} requires type arguments", line: 0, column: 0, path: @ctx.current_analysis_path) if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) type elsif parts.length >= 2 type = resolve_nested_type_ref(parts) unless type if @ctx.imports.key?(parts.first) imported_module = @ctx.imports.fetch(parts.first) if imported_module.private_type?(parts.last) raise LoweringError.new("#{parts.first}.#{parts.last} is private to module #{imported_module.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end type = imported_module.types[parts.last] raise LoweringError.new("unknown type #{type_ref.name}", line: 0, column: 0, path: @ctx.current_analysis_path) unless type raise LoweringError.new("generic type #{type_ref.name} requires type arguments", line: 0, column: 0, path: @ctx.current_analysis_path) if type.is_a?(Types::GenericStructDefinition) || type.is_a?(Types::GenericVariantDefinition) elsif @type_resolution_env && (field_type = resolve_field_handle_type_ref(parts)) type = field_type else raise LoweringError.new("unknown type #{type_ref.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end end type else raise LoweringError.new("unknown type #{type_ref.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end raise LoweringError.new("ref types are non-null and cannot be nullable", line: 0, column: 0, path: @ctx.current_analysis_path) if type_ref.nullable && ref_type?(base) type_ref.nullable ? Types::Registry.nullable(base) : base end |
#resolve_type_ref_for_analysis(type_ref, analysis, type_params: current_type_params) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2427 def resolve_type_ref_for_analysis(type_ref, analysis, type_params: current_type_params) saved = @ctx.save @ctx.install(analysis) @ctx.module_prefix = module_c_prefix(@ctx.module_name) resolve_type_ref(type_ref, type_params:) ensure @ctx.restore(saved) end |
#resolved_attribute_applications_for_target(target) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1994 def resolved_attribute_applications_for_target(target) target_id = case target when Types::StructHandle then target.declaration.object_id when Types::FieldHandle then target.field_declaration.object_id when Types::CallableHandle then target.declaration.object_id end return [] unless target_id applications = @ctx.attribute_applications[target_id] return applications if applications @ctx.imports.each_value do |imported_module| applications = imported_module.attribute_applications[target_id] return applications if applications end [] end |
#same_attribute_binding?(left, right) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2019 def same_attribute_binding?(left, right) left.name == right.name && left.module_name == right.module_name end |
#signed_type_above_width(width) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1162 def signed_type_above_width(width) case width when 8 then @ctx.types.fetch("short") when 16 then @ctx.types.fetch("int") when 32 then @ctx.types.fetch("long") end end |
#simulate_cstr_metadata_block(statements, env:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 296 def (statements, env:) simulated_env = duplicate_env(env) statements.each do |statement| case statement when AST::LocalDecl storage_type = if statement.else_body infer_expression_type(statement.value, env: simulated_env) elsif statement.type resolve_type_ref(statement.type) else infer_expression_type(statement.value, env: simulated_env) end type = if statement.else_body statement.type ? resolve_type_ref(statement.type) : let_else_success_type(storage_type) else storage_type end unless let_else_discards_binding?(statement) current_actual_scope(simulated_env[:scopes])[statement.name] = local_binding( type:, storage_type:, linkage_name: c_local_name(statement.name), mutable: statement.kind == :var, pointer: false, projection: statement.else_body ? let_else_binding_projection(storage_type) : nil, cstr_backed: cstr_backed_storage_value?(storage_type, statement.value, simulated_env), cstr_list_backed: cstr_list_backed_storage_value?(storage_type, statement.value, simulated_env), const_value: statement.else_body ? nil : statement.kind == :let && statement.value ? compile_time_const_value(statement.value, env: simulated_env) : nil, ) end when AST::Assignment (statement, statement.value, simulated_env) when AST::IfStmt (statement, simulated_env) when AST::UnsafeStmt nested_env = (statement.body, env: simulated_env) return nil unless nested_env (simulated_env, nested_env) when AST::ReturnStmt, AST::BreakStmt, AST::ContinueStmt return nil end end simulated_env end |
#specialize_function_binding(binding, arguments, env, receiver_type: nil) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2027 def specialize_function_binding(binding, arguments, env, receiver_type: nil) return binding if binding.type_params.empty? raise LoweringError.new("generic function #{binding.name} must be called", line: 0, column: 0, path: @ctx.current_analysis_path) unless arguments type_arguments = infer_function_type_arguments(binding, arguments, env, receiver_type:) instantiate_function_binding(binding, type_arguments) end |
#struct_handle_for_type(type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1914 def struct_handle_for_type(type) base_type = type.is_a?(Types::StructInstance) ? type.definition : type return nil unless base_type.is_a?(Types::Struct) || base_type.is_a?(Types::GenericStructDefinition) return nil unless base_type.respond_to?(:module_name) analysis = analysis_for_module(base_type.module_name) declaration = find_struct_decl_by_name(analysis.ast.declarations, base_type.name) return nil unless declaration Types::StructHandle.new(base_type, declaration) end |
#substitute_type(type, substitutions) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2393 def substitute_type(type, substitutions) Types::SubstituteTypeVisitor.new(substitutions).apply(type) end |
#substitute_value_binding(binding, substitutions) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2381 def substitute_value_binding(binding, substitutions) Bindings::ValueBinding.new( id: binding.id, name: binding.name, storage_type: substitute_type(binding.storage_type, substitutions), flow_type: binding.flow_type ? substitute_type(binding.flow_type, substitutions) : nil, mutable: binding.mutable, kind: binding.kind, const_value: binding.const_value, ) end |
#trackable_binding_names(env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 369 def trackable_binding_names(env) env[:scopes].each_with_object([]) do |scope, names| next if scope.is_a?(FlowScope) scope.each do |name, binding| next unless cstr_trackable_type?(binding[:type]) || cstr_list_trackable_type?(binding[:type]) names << name unless names.include?(name) end end end |
#try_resolve_type_ref(type_ref, type_params:) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1531 def try_resolve_type_ref(type_ref, type_params:) resolve_type_ref(type_ref, type_params:) rescue LoweringError nil end |
#type_contains_array_storage?(type, visited = Set.new) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1055 def type_contains_array_storage?(type, visited = Set.new) visitor = Types::ContainsArrayStorageVisitor.new visitor.visit(type) visitor.found? end |
#type_implements_interface?(type, interface) ⇒ Boolean
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2121 def type_implements_interface?(type, interface) key = interface_implementation_key(type) return true if @ctx.implemented_interfaces.fetch(key, []).include?(interface) @ctx.imports.each_value do |module_binding| return true if module_binding.implemented_interfaces.fetch(key, []).include?(interface) end false end |
#types_for_module(module_name) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2411 def types_for_module(module_name) @program.analyses_by_module_name.fetch(module_name).types end |
#update_cstr_metadata_for_assignment!(statement, prepared_value, env) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 235 def (statement, prepared_value, env) if statement.target.is_a?(AST::Identifier) binding = lookup_value(statement.target.name, env) return unless binding ( statement.target.name, env, cstr_backed: statement.operator == "=" ? cstr_backed_storage_value?(binding[:type], prepared_value, env) : false, cstr_list_backed: statement.operator == "=" ? cstr_list_backed_storage_value?(binding[:type], prepared_value, env) : false, ) return end return unless statement.target.is_a?(AST::IndexAccess) && statement.target.receiver.is_a?(AST::Identifier) binding = lookup_value(statement.target.receiver.name, env) return unless binding && cstr_list_trackable_type?(binding[:type]) (statement.target.receiver.name, env, cstr_backed: binding_cstr_backed?(binding), cstr_list_backed: false) end |
#validate_function_type_param_constraints!(binding, substitutions) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2101 def validate_function_type_param_constraints!(binding, substitutions) binding.type_param_constraints.each do |name, constraints| actual_type = substitutions[name] raise LoweringError.new("cannot infer type argument #{name} for function #{binding.name}", line: 0, column: 0, path: @ctx.current_analysis_path) unless actual_type constraints.interfaces.each do |interface| next if type_implements_interface?(actual_type, interface) raise LoweringError.new("type #{actual_type} does not implement interface #{interface.name} for function #{binding.name}", line: 0, column: 0, path: @ctx.current_analysis_path) end end end |
#validate_methods_receiver_type_arguments!(type_ref, generic_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 2175 def validate_methods_receiver_type_arguments!(type_ref, generic_type) names = type_ref.arguments.map do |argument| value = argument.value next unless value.is_a?(AST::TypeRef) next unless value.arguments.empty? && !value.nullable && value.name.parts.length == 1 value.name.parts.first end expected_names = generic_type.type_params unless names == expected_names raise LoweringError.new("extending target #{type_ref} must use the receiver type parameters directly", line: 0, column: 0, path: @ctx.current_analysis_path) end expected_names end |
#wider_float_type(left_type, right_type) ⇒ Object
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# File 'lib/milk_tea/core/lowering/resolve.rb', line 1170 def wider_float_type(left_type, right_type) left_type.float_width >= right_type.float_width ? left_type : right_type end |