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#include <structive/property/property.hpp>
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#include <atomic>
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#include <barrier>
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#include <chrono>
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#include <cstdio>
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#include <cstdlib>
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#include <memory>
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#include <semaphore>
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#include <string>
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#include <thread>
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#include <type_traits>
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using namespace structive;
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struct Test_Tag_Category {};
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template <int Value>
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struct Test_Tag_Attribute {
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using attribute_category = Test_Tag_Category;
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static constexpr bool single_valued = true;
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static constexpr bool inheritable = false;
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static constexpr int value = Value;
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};
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template <int Value>
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inline constexpr Test_Tag_Attribute<Value> test_tag{};
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#define REQUIRE(expression) do { if (!(expression)) { std::fprintf(stderr, "REQUIRE failed: %s:%d: %s\n", __FILE__, __LINE__, #expression); std::abort(); } } while (false)
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struct Device : Property_Object<Device> {
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Device() = default;
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explicit Device(Property_Synchronization synchronization) : Property_Object(std::move(synchronization)) {}
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int temperature{20};
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int pressure{100};
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int min_speed{10};
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int max_speed{100};
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int immutable_id{7};
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};
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template <>
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struct structive::Type_Descriptor<Device> {
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static auto get() {
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return object<Device>(
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defaults(external_access<External_Access::read_write>, persistence_access<Persistence_Access::load_store>),
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synchronization(sync_all_independent, sync_group < &Device::min_speed, &Device::max_speed > ("speed_range"), sync_unsynchronized<&Device::immutable_id>()),
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field < &Device::temperature > (key < "temperature" >, min_value < -50 >, max_value < 200 >, unit < "C" >, test_tag<7>),
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field < &Device::pressure > (key < "pressure" >),
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field < &Device::min_speed > (key < "minimum_speed" >),
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field < &Device::max_speed > (key < "maximum_speed" >),
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field < &Device::immutable_id > (key < "immutable_id" >, external_access<External_Access::read>, persistence_access<Persistence_Access::store>)
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);
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}
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};
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struct Computed_Device : Property_Object<Computed_Device> {
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int min_speed{10};
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int max_speed{100};
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};
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template <>
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struct structive::Type_Descriptor<Computed_Device> {
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static auto get() {
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return object<Computed_Device>(
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defaults(external_access<External_Access::read_write>),
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synchronization(sync_all_independent, sync_group("speed", "min_speed", "max_speed", "speed_span")),
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field < &Computed_Device::min_speed > (key < "min_speed" >),
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field < &Computed_Device::max_speed > (key < "max_speed" >),
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computed_property<Computed_Device, int>([](const auto& view) {
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return view.template get<&Computed_Device::max_speed>() - view.template get<&Computed_Device::min_speed>();
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}, key < "speed_span" >, external_access<External_Access::read>)
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);
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}
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};
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struct Non_Copyable_Device : Property_Object<Non_Copyable_Device> {
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std::unique_ptr<int> payload{std::make_unique<int>(42)};
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};
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template <>
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struct structive::Type_Descriptor<Non_Copyable_Device> {
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static auto get() {
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return object<Non_Copyable_Device>(
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defaults(external_access<External_Access::read>),
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field < &Non_Copyable_Device::payload > (key < "payload" >)
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);
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}
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};
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template <class View>
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concept Has_Write_Temperature = requires(View view) {
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view.template write<&Device::temperature>(1);
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};
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static bool update_speed_range(Device& device, int min_speed, int max_speed) {
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auto guard = device.lock_unique<&Device::min_speed, &Device::max_speed>();
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int old_min = guard.get<&Device::min_speed>();
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int old_max = guard.get<&Device::max_speed>();
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guard.set < &Device::min_speed > (min_speed);
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guard.set < &Device::max_speed > (max_speed);
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if (min_speed <= max_speed) {
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return true;
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}
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guard.set < &Device::min_speed > (old_min);
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guard.set < &Device::max_speed > (old_max);
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return false;
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}
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static void runtime_read_int(void* context, std::size_t, std::string_view, const std::type_info& type, const void* value) {
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REQUIRE(type == typeid(int));
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*static_cast<int*>(context) = *static_cast<const int*>(value);
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}
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int main() {
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static_assert(Property_Described_Object<Device>);
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const auto& schema = type_descriptor<Device>();
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using Schema = type_descriptor_schema_t<Device>;
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static_assert(Valid_Property_Schema<Schema>);
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static_assert(Schema::property_count == 5);
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REQUIRE(schema.template property<0>().key() == "temperature");
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REQUIRE(schema.template property<&Device::temperature>().key() == "temperature");
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REQUIRE(schema.template property<&Device::min_speed>().key() == "minimum_speed");
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REQUIRE(schema.template property<&Device::max_speed>().key() == "maximum_speed");
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using Temperature_Property = std::remove_cvref_t<decltype(schema.template property<&Device::temperature>())>;
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static_assert(Temperature_Property::template has_attribute<Test_Tag_Category>);
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REQUIRE(Temperature_Property::template attribute_type<Test_Tag_Category>::value == 7);
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Device device;
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REQUIRE(device.temperature == 20);
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device.temperature = 21;
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REQUIRE(device.read<&Device::temperature>() == 21);
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device.write < &Device::temperature > (22);
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REQUIRE(device.temperature == 22);
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REQUIRE(&device.unsafe_object() == &device);
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REQUIRE(&device.schema() == &schema);
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REQUIRE(device.lock_slot<&Device::min_speed>() == device.lock_slot<&Device::max_speed>());
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REQUIRE(device.lock_slot<&Device::temperature>() != device.lock_slot<&Device::pressure>());
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REQUIRE(device.lock_slot<&Device::immutable_id>() == Resolved_Synchronization_View::unsynchronized_slot);
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Device shared_device{property_synchronization(synchronization(sync_all_shared))};
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REQUIRE(shared_device.lock_slot<&Device::temperature>() == shared_device.lock_slot<&Device::pressure>());
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REQUIRE(shared_device.lock_slot<&Device::pressure>() == shared_device.lock_slot<&Device::min_speed>());
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Device grouped_device{property_synchronization<Device>(synchronization(sync_all_independent, sync_group < &Device::temperature, &Device::pressure > ("environment")))};
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REQUIRE(grouped_device.lock_slot<&Device::temperature>() == grouped_device.lock_slot<&Device::pressure>());
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device.external().write < &Device::temperature > (30);
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REQUIRE(device.external().read<&Device::temperature>() == 30);
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device.persistence().load < &Device::pressure > (101);
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REQUIRE(device.persistence().store<&Device::pressure>() == 101);
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auto validation = validate_property_value < &Device::temperature > (device.schema(), 500);
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REQUIRE(validation.has_value());
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REQUIRE(validation->code == "max_value");
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REQUIRE(!update_speed_range(device, 200, 100));
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REQUIRE(device.read<&Device::min_speed>() == 10);
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REQUIRE(device.read<&Device::max_speed>() == 100);
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REQUIRE(update_speed_range(device, 20, 120));
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REQUIRE(device.read<&Device::min_speed>() == 20);
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REQUIRE(device.read<&Device::max_speed>() == 120);
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std::size_t schema_visits = 0;
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schema.for_each_property([&](auto, const auto&) {
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++schema_visits;
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});
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REQUIRE(schema_visits == 5);
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std::size_t value_visits = 0;
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device.external().for_each_readable_locked([&](auto, const auto&, const auto&) {
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++value_visits;
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});
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REQUIRE(value_visits == 5);
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Computed_Device computed;
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REQUIRE(computed.external().read_key<"speed_span">() == 90);
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computed.write < &Computed_Device::min_speed > (20);
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REQUIRE(computed.external().read_key<"speed_span">() == 80);
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Non_Copyable_Device non_copyable;
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bool non_copyable_visited = false;
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non_copyable.external().for_each_readable_locked([&](auto, const auto&, const auto& value) {
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REQUIRE(*value == 42);
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non_copyable_visited = true;
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});
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REQUIRE(non_copyable_visited);
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Property_Object_Base& erased = device;
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REQUIRE(erased.runtime_object_type() == typeid(Device));
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REQUIRE(erased.runtime_property_count() == 5);
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int runtime_value = 0;
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REQUIRE(erased.runtime_read(Managed_Access_Mode::external, "temperature", &runtime_value, &runtime_read_int) == Runtime_Access_Result::ok);
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REQUIRE(runtime_value == 30);
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int runtime_write_value = 35;
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REQUIRE(erased.runtime_write(Managed_Access_Mode::external, "temperature", typeid(int), &runtime_write_value) == Runtime_Access_Result::ok);
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REQUIRE(device.temperature == 35);
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REQUIRE(erased.runtime_write(Managed_Access_Mode::external, "immutable_id", typeid(int), &runtime_write_value) == Runtime_Access_Result::not_writable);
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double wrong_type = 1.0;
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REQUIRE(erased.runtime_write(Managed_Access_Mode::external, "temperature", typeid(double), &wrong_type) == Runtime_Access_Result::type_mismatch);
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REQUIRE(erased.runtime_write(Managed_Access_Mode::external, "missing", typeid(int), &runtime_write_value) == Runtime_Access_Result::unknown_property);
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const Device& const_device = device;
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static_assert(!Has_Write_Temperature<decltype(const_device.external())>);
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std::binary_semaphore runtime_blocked_done{0};
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std::jthread runtime_writer;
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{
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auto guard = device.lock_unique<&Device::temperature>();
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runtime_writer = std::jthread([&] {
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int value = 36;
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REQUIRE(erased.runtime_write(Managed_Access_Mode::external, "temperature", typeid(int), &value) == Runtime_Access_Result::ok);
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runtime_blocked_done.release();
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});
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REQUIRE(!runtime_blocked_done.try_acquire_for(std::chrono::milliseconds(20)));
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}
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REQUIRE(runtime_blocked_done.try_acquire_for(std::chrono::seconds(2)));
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runtime_writer.join();
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REQUIRE(device.read<&Device::temperature>() == 36);
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std::binary_semaphore independent_done{0};
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{
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auto guard = device.lock_unique({"temperature"});
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std::jthread writer([&] {
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device.write < &Device::pressure > (200);
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independent_done.release();
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});
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REQUIRE(independent_done.try_acquire_for(std::chrono::seconds(2)));
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}
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std::barrier gate(2);
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std::atomic<int> completed{0};
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std::jthread first([&] {
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gate.arrive_and_wait();
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auto guard = device.lock_unique({"temperature", "pressure"});
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guard.set < &Device::temperature > (40);
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guard.set < &Device::pressure > (140);
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completed.fetch_add(1, std::memory_order_release);
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});
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std::jthread second([&] {
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gate.arrive_and_wait();
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auto guard = device.lock_unique({"pressure", "temperature"});
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guard.set < &Device::pressure > (141);
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guard.set < &Device::temperature > (41);
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completed.fetch_add(1, std::memory_order_release);
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});
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first.join();
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second.join();
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REQUIRE(completed.load(std::memory_order_acquire) == 2);
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Device copied = device;
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REQUIRE(copied.temperature == device.temperature);
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copied.write < &Device::temperature > (99);
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REQUIRE(device.read<&Device::temperature>() != copied.read<&Device::temperature>());
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return 0;
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}
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