#include <AK/String.h>
#include <AK/TypeCasts.h>
#include <AK/Variant.h>
#include <LibGC/Heap.h>
#include <LibJS/Runtime/AbstractOperations.h>
#include <LibJS/Runtime/ArrayBuffer.h>
#include <LibJS/Runtime/DataView.h>
#include <LibJS/Runtime/Error.h>
#include <LibJS/Runtime/FunctionObject.h>
#include <LibJS/Runtime/Iterator.h>
#include <LibJS/Runtime/PropertyDescriptor.h>
#include <LibJS/Runtime/Realm.h>
#include <LibJS/Runtime/TypedArray.h>
#include <LibJS/Runtime/Value.h>
#include <LibJS/Runtime/ValueInlines.h>
#include <LibWeb/Bindings/EventTarget.h>
#include <LibWeb/Bindings/ExceptionOrUtils.h>
#include <LibWeb/Bindings/Intrinsics.h>
#include <LibWeb/Bindings/PlatformObject.h>
#include <LibWeb/Bindings/WebSocket.h>
#include <LibWeb/FileAPI/Blob.h>
#include <LibWeb/HTML/Scripting/Environments.h>
#include <LibWeb/WebIDL/AbstractOperations.h>
#include <LibWeb/WebIDL/CallbackType.h>
#include <LibWeb/WebIDL/Tracing.h>
#include <LibWeb/WebIDL/Types.h>
#include <LibWeb/WebSockets/WebSocket.h>

namespace Web::Bindings {

void WebSocketConstructor::initialize(JS::Realm& realm, JS::NativeFunction& object)
{
    auto& vm = realm.vm();
    [[maybe_unused]] u8 default_attributes = JS::Attribute::Enumerable;

    object.set_prototype(&ensure_web_constructor<EventTargetPrototype>(realm, "EventTarget"_fly_string));
    object.define_direct_property(vm.names.length, JS::Value(1), JS::Attribute::Configurable);
    object.define_direct_property(vm.names.name, JS::PrimitiveString::create(vm, "WebSocket"_utf16), JS::Attribute::Configurable);
    object.define_direct_property(vm.names.prototype, &ensure_web_prototype<WebSocketPrototype>(realm, "WebSocket"_fly_string), 0);

    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("CONNECTING"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(0)), JS::Attribute::Enumerable);
    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("OPEN"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(1)), JS::Attribute::Enumerable);
    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("CLOSING"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(2)), JS::Attribute::Enumerable);
    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("CLOSED"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(3)), JS::Attribute::Enumerable);
}

JS::ThrowCompletionOr<GC::Ref<JS::Object>> WebSocketConstructor::construct([[maybe_unused]] InterfaceConstructor& constructor, [[maybe_unused]] JS::FunctionObject& new_target)
{
    WebIDL::log_trace(constructor.vm(), "WebSocketConstructor::construct");
    auto& vm = constructor.vm();
    [[maybe_unused]] auto& realm = *vm.current_realm();

    // To internally create a new object implementing the interface WebSocket:

    // 3.2. Let prototype be ? Get(newTarget, "prototype").
    auto prototype = TRY(new_target.get(vm.names.prototype));

    // 3.3. If Type(prototype) is not Object, then:
    if (!prototype.is_object()) {
        // 1. Let targetRealm be ? GetFunctionRealm(newTarget).
        auto* target_realm = TRY(JS::get_function_realm(vm, new_target));

        // 2. Set prototype to the interface prototype object for interface in targetRealm.
        VERIFY(target_realm);
        prototype = &Bindings::ensure_web_prototype<WebSocketPrototype>(*target_realm, "WebSocket"_fly_string);
    }

    if (vm.argument_count() < 1)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountOne, "WebSocket");

    auto arg0 = vm.argument(0);
    auto url = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_usv_string(vm, arg0));
    }(); }));

    auto arg1 = vm.argument(1);
    Optional<Variant<String, Vector<String>>> protocols {};
    if (!arg1.is_undefined())
        protocols = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<String, Vector<String>>> {

        if (arg1.is_object()) {
            [[maybe_unused]] auto& object = arg1.as_object();

            // 1. Let method be ? GetMethod(V, @@iterator).
            auto method = TRY(arg1.get_method(vm, vm.well_known_symbol_iterator()));

            // 2. If method is not undefined, return the result of creating a sequence of that type from V and method.
            if (method) {
                auto sequence_union_type = TRY([&]() -> JS::ThrowCompletionOr<Vector<String>> {
        // To create an IDL value of type sequence<T> given an iterable iterable and an iterator getter method, perform the following steps:
        // 1. Let iteratorRecord be ? GetIteratorFromMethod(iterable, method).
        auto iterator = TRY(JS::get_iterator_from_method(vm, arg1, *method));

        Vector<String> sequence;

        // 2. Initialize i to be 0.
        // 3. Repeat
        for (;;) {
            // 1. Let next be ? IteratorStepValue(iteratorRecord).
            auto next = TRY(JS::iterator_step_value(vm, iterator));

            // 2. If next is done, then return an IDL sequence value of type sequence<T> of length i, where the value of the element at index j is Sj.
            if (!next.has_value())
                break;

            // 3. Initialize Si to the result of converting next to an IDL value of type T.
            auto next_value = next.release_value();
            auto sequence_item = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, next_value));
    }(); }));

            // 4. Set i to i + 1.
            sequence.append(sequence_item);
        }

        return sequence;
    }());
                return Variant<String, Vector<String>> { sequence_union_type };
            }

        }

        auto protocols_string = TRY([&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, arg1));
    }());
        return Variant<String, Vector<String>> { protocols_string };

        return vm.throw_completion<JS::TypeError>("No union types matched"_utf16);
    }(); }));

    auto impl = TRY(throw_dom_exception_if_needed(vm, [&] { return WebSockets::WebSocket::construct_impl(realm, url, protocols); }));

    // 7. Set instance.[[Prototype]] to prototype.
    VERIFY(prototype.is_object());
    impl->set_prototype(&prototype.as_object());

    // FIXME: Steps 8...11. of the "internally create a new object implementing the interface WebSocket" algorithm
    // (https://webidl.spec.whatwg.org/#js-platform-objects) are currently not handled, or are handled within WebSockets::WebSocket::construct_impl().

    return *impl;
}

void WebSocketPrototype::initialize(JS::Realm& realm, JS::Object& object)
{
    [[maybe_unused]] auto& vm = realm.vm();
    [[maybe_unused]] u8 default_attributes = JS::Attribute::Enumerable | JS::Attribute::Configurable | JS::Attribute::Writable;

    object.set_prototype(GC::Ref { ensure_web_prototype<EventTargetPrototype>(realm, "EventTarget"_fly_string) });

    auto url_id = "url"_utf16_fly_string;
    auto native_url_getter = JS::NativeFunction::create(realm, url_getter, 0, url_id, &realm, "get"sv);
    GC::Ptr<JS::NativeFunction> native_url_setter;

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto url_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(url_id, native_url_getter, native_url_setter, url_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto ready_state_id = "readyState"_utf16_fly_string;
    auto native_ready_state_getter = JS::NativeFunction::create(realm, ready_state_getter, 0, ready_state_id, &realm, "get"sv);
    GC::Ptr<JS::NativeFunction> native_ready_state_setter;

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto ready_state_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(ready_state_id, native_ready_state_getter, native_ready_state_setter, ready_state_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto onopen_id = "onopen"_utf16_fly_string;
    auto native_onopen_getter = JS::NativeFunction::create(realm, onopen_getter, 0, onopen_id, &realm, "get"sv);
    auto native_onopen_setter = JS::NativeFunction::create(realm, onopen_setter, 1, onopen_id, &realm, "set"sv);

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto onopen_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(onopen_id, native_onopen_getter, native_onopen_setter, onopen_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto onerror_id = "onerror"_utf16_fly_string;
    auto native_onerror_getter = JS::NativeFunction::create(realm, onerror_getter, 0, onerror_id, &realm, "get"sv);
    auto native_onerror_setter = JS::NativeFunction::create(realm, onerror_setter, 1, onerror_id, &realm, "set"sv);

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto onerror_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(onerror_id, native_onerror_getter, native_onerror_setter, onerror_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto onclose_id = "onclose"_utf16_fly_string;
    auto native_onclose_getter = JS::NativeFunction::create(realm, onclose_getter, 0, onclose_id, &realm, "get"sv);
    auto native_onclose_setter = JS::NativeFunction::create(realm, onclose_setter, 1, onclose_id, &realm, "set"sv);

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto onclose_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(onclose_id, native_onclose_getter, native_onclose_setter, onclose_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto extensions_id = "extensions"_utf16_fly_string;
    auto native_extensions_getter = JS::NativeFunction::create(realm, extensions_getter, 0, extensions_id, &realm, "get"sv);
    GC::Ptr<JS::NativeFunction> native_extensions_setter;

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto extensions_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(extensions_id, native_extensions_getter, native_extensions_setter, extensions_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto protocol_id = "protocol"_utf16_fly_string;
    auto native_protocol_getter = JS::NativeFunction::create(realm, protocol_getter, 0, protocol_id, &realm, "get"sv);
    GC::Ptr<JS::NativeFunction> native_protocol_setter;

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto protocol_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(protocol_id, native_protocol_getter, native_protocol_setter, protocol_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto onmessage_id = "onmessage"_utf16_fly_string;
    auto native_onmessage_getter = JS::NativeFunction::create(realm, onmessage_getter, 0, onmessage_id, &realm, "get"sv);
    auto native_onmessage_setter = JS::NativeFunction::create(realm, onmessage_setter, 1, onmessage_id, &realm, "set"sv);

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto onmessage_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(onmessage_id, native_onmessage_getter, native_onmessage_setter, onmessage_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    auto binary_type_id = "binaryType"_utf16_fly_string;
    auto native_binary_type_getter = JS::NativeFunction::create(realm, binary_type_getter, 0, binary_type_id, &realm, "get"sv);
    auto native_binary_type_setter = JS::NativeFunction::create(realm, binary_type_setter, 1, binary_type_id, &realm, "set"sv);

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto binary_type_attributes = default_attributes;

    // 5. Let desc be the PropertyDescriptor{[[Get]]: getter, [[Set]]: setter, [[Enumerable]]: true, [[Configurable]]: configurable}.

    // 7. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_accessor(binary_type_id, native_binary_type_getter, native_binary_type_setter, binary_type_attributes);

    // 8. FIXME: If attr’s type is an observable array type with type argument T, then set target’s backing observable array exotic object for attr to the result of creating an observable array exotic object in realm, given T, attr’s set an indexed value algorithm, and attr’s delete an indexed value algorithm.
    object.define_native_function(realm, "close"_utf16_fly_string, close, 0, default_attributes);

    object.define_native_function(realm, "send"_utf16_fly_string, send, 1, default_attributes);


    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("CONNECTING"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(0)), JS::Attribute::Enumerable);
    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("OPEN"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(1)), JS::Attribute::Enumerable);
    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("CLOSING"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(2)), JS::Attribute::Enumerable);
    // 1. FIXME: If const is not exposed in realm, then continue.
    // 2. Let value be the result of converting const’s IDL value to a JavaScript value.
    // 3. Let desc be the PropertyDescriptor{[[Writable]]: false, [[Enumerable]]: true, [[Configurable]]: false, [[Value]]: value}.
    // 4. Let id be const’s identifier.
    // 5. Perform ! DefinePropertyOrThrow(target, id, desc).
    object.define_direct_property("CLOSED"_utf16_fly_string, JS::Value(static_cast<WebIDL::UnsignedShort>(3)), JS::Attribute::Enumerable);
    object.define_direct_property(vm.well_known_symbol_to_string_tag(), JS::PrimitiveString::create(vm, "WebSocket"_utf16), JS::Attribute::Configurable);
}

void WebSocketPrototype::define_unforgeable_attributes(JS::Realm& realm, [[maybe_unused]] JS::Object& object)
{
    [[maybe_unused]] auto& vm = realm.vm();
    [[maybe_unused]] u8 default_attributes = JS::Attribute::Enumerable;
}

[[maybe_unused]] static JS::ThrowCompletionOr<WebSockets::WebSocket*> impl_from(JS::VM& vm, JS::Value js_value)
{

    if (auto impl = js_value.as_if<WebSockets::WebSocket>())
        return impl.ptr();
    return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "WebSocket");
}

[[maybe_unused]] static JS::ThrowCompletionOr<WebSockets::WebSocket*> impl_from(JS::VM& vm)
{
    auto this_value = vm.this_value();
    if (this_value.is_nullish())
        this_value = &vm.current_realm()->global_object();
    return impl_from(vm, this_value);
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::url_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::url_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->url(); }));

    return WebIDL::primitive_string_from_string(vm, R);
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::ready_state_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::ready_state_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->ready_state(); }));

    return JS::Value(static_cast<WebIDL::UnsignedShort>(R));
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onopen_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onopen_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->onopen(); }));

    return [&]() -> JS::Value {
        // 1. If the IDL nullable type T? value is null, then the JavaScript value is null.
        if (!R)
            return JS::js_null();

        // 2. Otherwise, the JavaScript value is the result of converting the IDL nullable type value to the inner IDL type T.
        return JS::Value(R->callback);
    }();
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onerror_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onerror_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->onerror(); }));

    return [&]() -> JS::Value {
        // 1. If the IDL nullable type T? value is null, then the JavaScript value is null.
        if (!R)
            return JS::js_null();

        // 2. Otherwise, the JavaScript value is the result of converting the IDL nullable type value to the inner IDL type T.
        return JS::Value(R->callback);
    }();
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onclose_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onclose_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->onclose(); }));

    return [&]() -> JS::Value {
        // 1. If the IDL nullable type T? value is null, then the JavaScript value is null.
        if (!R)
            return JS::js_null();

        // 2. Otherwise, the JavaScript value is the result of converting the IDL nullable type value to the inner IDL type T.
        return JS::Value(R->callback);
    }();
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::extensions_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::extensions_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->extensions(); }));

    return WebIDL::primitive_string_from_string(vm, R);
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::protocol_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::protocol_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->protocol(); }));

    return WebIDL::primitive_string_from_string(vm, R);
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onmessage_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onmessage_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->onmessage(); }));

    return [&]() -> JS::Value {
        // 1. If the IDL nullable type T? value is null, then the JavaScript value is null.
        if (!R)
            return JS::js_null();

        // 2. Otherwise, the JavaScript value is the result of converting the IDL nullable type value to the inner IDL type T.
        return JS::Value(R->callback);
    }();
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::binary_type_getter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::binary_type_getter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    auto* idl_object = TRY(impl_from(vm));


    auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->binary_type(); }));

    return WebIDL::primitive_string_from_string(vm, R);
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onopen_setter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onopen_setter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    // 1. Let V be undefined.
    auto V = JS::js_undefined();

    // 2. If any arguments were passed, then set V to the value of the first argument passed.
    if (vm.argument_count() > 0)
        V = vm.argument(0);

    // 3. Let id be attribute’s identifier.

    // 4. Let idlObject be null.
    [[maybe_unused]] WebSockets::WebSocket* idl_object = nullptr;

    // 5. If attribute is a regular attribute:

    // 1. Let jsValue be the this value, if it is not null or undefined, or realm’s global object otherwise. (This will subsequently cause a TypeError in a few steps, if the global object does not implement target and [LegacyLenientThis] is not specified.)
    auto js_value = vm.this_value();
    if (js_value.is_nullish())
        js_value = &realm.global_object();

    // 2. FIXME: If jsValue is a platform object, then perform a security check, passing jsValue, attribute’s identifier, and "setter".

    // 3. Let validThis be true if jsValue implements target, or false otherwise.
    auto maybe_idl_object = impl_from(vm, js_value);

    // 4. If validThis is false and attribute was not specified with the [LegacyLenientThis] extended attribute, then throw a TypeError.
    idl_object = TRY(maybe_idl_object);

    auto original_steps = [&]() -> JS::ThrowCompletionOr<JS::Value> {
        // 6. Let idlValue be determined as follows:
        // -> Otherwise, idlValue is the result of converting V to an IDL value of attribute’s type.
        auto idl_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {
        GC::Ptr<WebIDL::CallbackType> value;
        if (V.is_object()) {

        if (!V.is_nullish()) {

            value = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {

        return vm.heap().allocate<WebIDL::CallbackType>(V.as_object(),  HTML::incumbent_realm(), WebIDL::OperationReturnsPromise::No);
    }());
        }
        }
        return value;
    }(); }));

        // 7. Run the setter steps of attribute with idlObject as this and idlValue as the value.
        auto setter_result = [&]() -> JS::ThrowCompletionOr<void> {
            TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->set_onopen(idl_value); }));
    return {};
        }();

        if (setter_result.is_error())
            return setter_result.release_error();

        return JS::js_undefined();
    };

    // 8. Return undefined.
    return TRY(original_steps());
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onerror_setter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onerror_setter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    // 1. Let V be undefined.
    auto V = JS::js_undefined();

    // 2. If any arguments were passed, then set V to the value of the first argument passed.
    if (vm.argument_count() > 0)
        V = vm.argument(0);

    // 3. Let id be attribute’s identifier.

    // 4. Let idlObject be null.
    [[maybe_unused]] WebSockets::WebSocket* idl_object = nullptr;

    // 5. If attribute is a regular attribute:

    // 1. Let jsValue be the this value, if it is not null or undefined, or realm’s global object otherwise. (This will subsequently cause a TypeError in a few steps, if the global object does not implement target and [LegacyLenientThis] is not specified.)
    auto js_value = vm.this_value();
    if (js_value.is_nullish())
        js_value = &realm.global_object();

    // 2. FIXME: If jsValue is a platform object, then perform a security check, passing jsValue, attribute’s identifier, and "setter".

    // 3. Let validThis be true if jsValue implements target, or false otherwise.
    auto maybe_idl_object = impl_from(vm, js_value);

    // 4. If validThis is false and attribute was not specified with the [LegacyLenientThis] extended attribute, then throw a TypeError.
    idl_object = TRY(maybe_idl_object);

    auto original_steps = [&]() -> JS::ThrowCompletionOr<JS::Value> {
        // 6. Let idlValue be determined as follows:
        // -> Otherwise, idlValue is the result of converting V to an IDL value of attribute’s type.
        auto idl_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {
        GC::Ptr<WebIDL::CallbackType> value;
        if (V.is_object()) {

        if (!V.is_nullish()) {

            value = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {

        return vm.heap().allocate<WebIDL::CallbackType>(V.as_object(),  HTML::incumbent_realm(), WebIDL::OperationReturnsPromise::No);
    }());
        }
        }
        return value;
    }(); }));

        // 7. Run the setter steps of attribute with idlObject as this and idlValue as the value.
        auto setter_result = [&]() -> JS::ThrowCompletionOr<void> {
            TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->set_onerror(idl_value); }));
    return {};
        }();

        if (setter_result.is_error())
            return setter_result.release_error();

        return JS::js_undefined();
    };

    // 8. Return undefined.
    return TRY(original_steps());
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onclose_setter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onclose_setter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    // 1. Let V be undefined.
    auto V = JS::js_undefined();

    // 2. If any arguments were passed, then set V to the value of the first argument passed.
    if (vm.argument_count() > 0)
        V = vm.argument(0);

    // 3. Let id be attribute’s identifier.

    // 4. Let idlObject be null.
    [[maybe_unused]] WebSockets::WebSocket* idl_object = nullptr;

    // 5. If attribute is a regular attribute:

    // 1. Let jsValue be the this value, if it is not null or undefined, or realm’s global object otherwise. (This will subsequently cause a TypeError in a few steps, if the global object does not implement target and [LegacyLenientThis] is not specified.)
    auto js_value = vm.this_value();
    if (js_value.is_nullish())
        js_value = &realm.global_object();

    // 2. FIXME: If jsValue is a platform object, then perform a security check, passing jsValue, attribute’s identifier, and "setter".

    // 3. Let validThis be true if jsValue implements target, or false otherwise.
    auto maybe_idl_object = impl_from(vm, js_value);

    // 4. If validThis is false and attribute was not specified with the [LegacyLenientThis] extended attribute, then throw a TypeError.
    idl_object = TRY(maybe_idl_object);

    auto original_steps = [&]() -> JS::ThrowCompletionOr<JS::Value> {
        // 6. Let idlValue be determined as follows:
        // -> Otherwise, idlValue is the result of converting V to an IDL value of attribute’s type.
        auto idl_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {
        GC::Ptr<WebIDL::CallbackType> value;
        if (V.is_object()) {

        if (!V.is_nullish()) {

            value = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {

        return vm.heap().allocate<WebIDL::CallbackType>(V.as_object(),  HTML::incumbent_realm(), WebIDL::OperationReturnsPromise::No);
    }());
        }
        }
        return value;
    }(); }));

        // 7. Run the setter steps of attribute with idlObject as this and idlValue as the value.
        auto setter_result = [&]() -> JS::ThrowCompletionOr<void> {
            TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->set_onclose(idl_value); }));
    return {};
        }();

        if (setter_result.is_error())
            return setter_result.release_error();

        return JS::js_undefined();
    };

    // 8. Return undefined.
    return TRY(original_steps());
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::onmessage_setter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::onmessage_setter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    // 1. Let V be undefined.
    auto V = JS::js_undefined();

    // 2. If any arguments were passed, then set V to the value of the first argument passed.
    if (vm.argument_count() > 0)
        V = vm.argument(0);

    // 3. Let id be attribute’s identifier.

    // 4. Let idlObject be null.
    [[maybe_unused]] WebSockets::WebSocket* idl_object = nullptr;

    // 5. If attribute is a regular attribute:

    // 1. Let jsValue be the this value, if it is not null or undefined, or realm’s global object otherwise. (This will subsequently cause a TypeError in a few steps, if the global object does not implement target and [LegacyLenientThis] is not specified.)
    auto js_value = vm.this_value();
    if (js_value.is_nullish())
        js_value = &realm.global_object();

    // 2. FIXME: If jsValue is a platform object, then perform a security check, passing jsValue, attribute’s identifier, and "setter".

    // 3. Let validThis be true if jsValue implements target, or false otherwise.
    auto maybe_idl_object = impl_from(vm, js_value);

    // 4. If validThis is false and attribute was not specified with the [LegacyLenientThis] extended attribute, then throw a TypeError.
    idl_object = TRY(maybe_idl_object);

    auto original_steps = [&]() -> JS::ThrowCompletionOr<JS::Value> {
        // 6. Let idlValue be determined as follows:
        // -> Otherwise, idlValue is the result of converting V to an IDL value of attribute’s type.
        auto idl_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {
        GC::Ptr<WebIDL::CallbackType> value;
        if (V.is_object()) {

        if (!V.is_nullish()) {

            value = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<WebIDL::CallbackType>> {

        return vm.heap().allocate<WebIDL::CallbackType>(V.as_object(),  HTML::incumbent_realm(), WebIDL::OperationReturnsPromise::No);
    }());
        }
        }
        return value;
    }(); }));

        // 7. Run the setter steps of attribute with idlObject as this and idlValue as the value.
        auto setter_result = [&]() -> JS::ThrowCompletionOr<void> {
            TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->set_onmessage(idl_value); }));
    return {};
        }();

        if (setter_result.is_error())
            return setter_result.release_error();

        return JS::js_undefined();
    };

    // 8. Return undefined.
    return TRY(original_steps());
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::binary_type_setter)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::binary_type_setter");
    [[maybe_unused]] auto& realm = *vm.current_realm();

    // 1. Let V be undefined.
    auto V = JS::js_undefined();

    // 2. If any arguments were passed, then set V to the value of the first argument passed.
    if (vm.argument_count() > 0)
        V = vm.argument(0);

    // 3. Let id be attribute’s identifier.

    // 4. Let idlObject be null.
    [[maybe_unused]] WebSockets::WebSocket* idl_object = nullptr;

    // 5. If attribute is a regular attribute:

    // 1. Let jsValue be the this value, if it is not null or undefined, or realm’s global object otherwise. (This will subsequently cause a TypeError in a few steps, if the global object does not implement target and [LegacyLenientThis] is not specified.)
    auto js_value = vm.this_value();
    if (js_value.is_nullish())
        js_value = &realm.global_object();

    // 2. FIXME: If jsValue is a platform object, then perform a security check, passing jsValue, attribute’s identifier, and "setter".

    // 3. Let validThis be true if jsValue implements target, or false otherwise.
    auto maybe_idl_object = impl_from(vm, js_value);

    // 4. If validThis is false and attribute was not specified with the [LegacyLenientThis] extended attribute, then throw a TypeError.
    idl_object = TRY(maybe_idl_object);

    auto original_steps = [&]() -> JS::ThrowCompletionOr<JS::Value> {
        // 6. Let idlValue be determined as follows:
        // -> Otherwise, idlValue is the result of converting V to an IDL value of attribute’s type.
        auto idl_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, V));
    }(); }));

        // 7. Run the setter steps of attribute with idlObject as this and idlValue as the value.
        auto setter_result = [&]() -> JS::ThrowCompletionOr<void> {
            TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->set_binary_type(idl_value); }));
    return {};
        }();

        if (setter_result.is_error())
            return setter_result.release_error();

        return JS::js_undefined();
    };

    // 8. Return undefined.
    return TRY(original_steps());
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::close)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::close");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    [[maybe_unused]] WebSockets::WebSocket* idl_object = TRY(impl_from(vm));

    auto arg0 = vm.argument(0);
    Optional<WebIDL::UnsignedShort> code {};
    if (!arg0.is_undefined())
        code = TRY(throw_dom_exception_if_needed(vm, [&] { return WebIDL::convert_to_int<WebIDL::UnsignedShort>(vm, arg0, WebIDL::EnforceRange::No, WebIDL::Clamp::Yes); }));

    auto arg1 = vm.argument(1);
    Optional<String> reason {};
    if (!arg1.is_undefined())
        reason = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_usv_string(vm, arg1));
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->close(code, reason); }));
    return JS::js_undefined();
}

JS_DEFINE_NATIVE_FUNCTION(WebSocketPrototype::send)
{
    WebIDL::log_trace(vm, "WebSocketPrototype::send");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    [[maybe_unused]] WebSockets::WebSocket* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 1)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountOne, "send");

    auto arg0 = vm.argument(0);
    auto data = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String>> {

        if (arg0.is_object()) {
            [[maybe_unused]] auto& object = arg0.as_object();

            if (is<PlatformObject>(object)) {

                if (auto* result = as_if<FileAPI::Blob>(object))
                    return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { GC::Ref { *result } };
            }

            if (auto* array_buffer = as_if<JS::ArrayBuffer>(object)) {
                if (!array_buffer->is_shared_array_buffer()) {
                    // 1. If types includes ArrayBuffer, then return the result of converting V to ArrayBuffer.
                    auto array_buffer_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::ArrayBuffer>> {
        // A JavaScript value V is converted to an IDL ArrayBuffer value by running the following algorithm:
        // 1. If V is not an Object, or V does not have an [[ArrayBufferData]] internal slot, then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::ArrayBuffer>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "ArrayBuffer");

        // 2. If IsSharedArrayBuffer(V) is true, then throw a TypeError.
        if (builtin_buffer->is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V) is false, then throw a TypeError.
        if (!builtin_buffer->is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length ArrayBuffer");

        // 4. Return the IDL ArrayBuffer value that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                    return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { array_buffer_union_type };
                }
            }

            if (as_if<JS::DataView>(object)) {
                // 1. If types includes DataView, then return the result of converting V to DataView.
                auto data_view_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::DataView>> {
        // A JavaScript value V is converted to an IDL DataView value by running the following algorithm:
        // 1. If V is not an Object, or V does not have a [[DataView]] internal slot, then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::DataView>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "DataView");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length DataView");

        // 4. Return the IDL DataView value that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { data_view_union_type };
            }

            if (as_if<JS::Int8Array>(object)) {
                auto int8_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Int8Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Int8Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Int8Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Int8Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { int8_array_union_type };
            }

            if (as_if<JS::Int16Array>(object)) {
                auto int16_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Int16Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Int16Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Int16Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Int16Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { int16_array_union_type };
            }

            if (as_if<JS::Int32Array>(object)) {
                auto int32_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Int32Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Int32Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Int32Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Int32Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { int32_array_union_type };
            }

            if (as_if<JS::Uint8Array>(object)) {
                auto uint8_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Uint8Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Uint8Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Uint8Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Uint8Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { uint8_array_union_type };
            }

            if (as_if<JS::Uint16Array>(object)) {
                auto uint16_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Uint16Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Uint16Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Uint16Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Uint16Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { uint16_array_union_type };
            }

            if (as_if<JS::Uint32Array>(object)) {
                auto uint32_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Uint32Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Uint32Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Uint32Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Uint32Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { uint32_array_union_type };
            }

            if (as_if<JS::Uint8ClampedArray>(object)) {
                auto uint8_clamped_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Uint8ClampedArray>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Uint8ClampedArray>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Uint8ClampedArray");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Uint8ClampedArray");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { uint8_clamped_array_union_type };
            }

            if (as_if<JS::BigInt64Array>(object)) {
                auto big_int64_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::BigInt64Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::BigInt64Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "BigInt64Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length BigInt64Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { big_int64_array_union_type };
            }

            if (as_if<JS::BigUint64Array>(object)) {
                auto big_uint64_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::BigUint64Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::BigUint64Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "BigUint64Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length BigUint64Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { big_uint64_array_union_type };
            }

            if (as_if<JS::Float16Array>(object)) {
                auto float16_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Float16Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Float16Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Float16Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Float16Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { float16_array_union_type };
            }

            if (as_if<JS::Float32Array>(object)) {
                auto float32_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Float32Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Float32Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Float32Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Float32Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { float32_array_union_type };
            }

            if (as_if<JS::Float64Array>(object)) {
                auto float64_array_union_type = TRY([&]() -> JS::ThrowCompletionOr<GC::Ref<JS::Float64Array>> {
        // A JavaScript value V is converted to an IDL typed array value by running the following algorithm:
        // 1. Let T be the IDL type V is being converted to.
        // 2. If V is not an Object, or V does not have a [[TypedArrayName]] internal slot with a value equal to T's name,
        //    then throw a TypeError.
        auto builtin_buffer = arg0.as_if<JS::Float64Array>();
        if (!builtin_buffer)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Float64Array");

        auto& viewed_array_buffer = *builtin_buffer->viewed_array_buffer();

        // 2. If the conversion is not to an IDL type associated with the [AllowShared] extended attribute, and
        //    IsSharedArrayBuffer(V.[[ViewedArrayBuffer]]) is true, then throw a TypeError.
        if (viewed_array_buffer.is_shared_array_buffer())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::SharedArrayBuffer);

        // 3. If the conversion is not to an IDL type associated with the [AllowResizable] extended attribute, and
        //    IsFixedLengthArrayBuffer(V.[[ViewedArrayBuffer]]) is false, then throw a TypeError.
        if (!viewed_array_buffer.is_fixed_length())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "fixed-length Float64Array");

        // 5. Return the IDL value of type T that is a reference to the same object as V.
        return GC::Ref { *builtin_buffer };
    }());
                return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { float64_array_union_type };
            }
        }

        auto data_string = TRY([&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_usv_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Int8Array>, GC::Ref<JS::Int16Array>, GC::Ref<JS::Int32Array>, GC::Ref<JS::Uint8Array>, GC::Ref<JS::Uint16Array>, GC::Ref<JS::Uint32Array>, GC::Ref<JS::Uint8ClampedArray>, GC::Ref<JS::BigInt64Array>, GC::Ref<JS::BigUint64Array>, GC::Ref<JS::Float16Array>, GC::Ref<JS::Float32Array>, GC::Ref<JS::Float64Array>, GC::Ref<JS::DataView>, GC::Ref<JS::ArrayBuffer>, GC::Ref<FileAPI::Blob>, String> { data_string };

        return vm.throw_completion<JS::TypeError>("No union types matched"_utf16);
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->send(data); }));
    return JS::js_undefined();
}

} // namespace Web::Bindings
