#include <AK/TypeCasts.h>
#include <AK/Variant.h>
#include <LibJS/Runtime/DataView.h>
#include <LibJS/Runtime/Error.h>
#include <LibJS/Runtime/TypedArray.h>
#include <LibJS/Runtime/Value.h>
#include <LibJS/Runtime/ValueInlines.h>
#include <LibWeb/Bindings/ExceptionOrUtils.h>
#include <LibWeb/Bindings/Intrinsics.h>
#include <LibWeb/Bindings/ReadableByteStreamController.h>
#include <LibWeb/Streams/ReadableByteStreamController.h>
#include <LibWeb/Streams/ReadableStreamBYOBRequest.h>
#include <LibWeb/WebIDL/Tracing.h>

namespace Web::Bindings {

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

    
    object.define_direct_property(vm.names.length, JS::Value(0), JS::Attribute::Configurable);
    object.define_direct_property(vm.names.name, JS::PrimitiveString::create(vm, "ReadableByteStreamController"_utf16), JS::Attribute::Configurable);
    object.define_direct_property(vm.names.prototype, &ensure_web_prototype<ReadableByteStreamControllerPrototype>(realm, "ReadableByteStreamController"_fly_string), 0);
}

JS::ThrowCompletionOr<GC::Ref<JS::Object>> ReadableByteStreamControllerConstructor::construct([[maybe_unused]] InterfaceConstructor& constructor, [[maybe_unused]] JS::FunctionObject& new_target)
{
    WebIDL::log_trace(constructor.vm(), "ReadableByteStreamControllerConstructor::construct");
    return constructor.vm().throw_completion<JS::TypeError>(JS::ErrorType::NotAConstructor, "ReadableByteStreamController");
}

void ReadableByteStreamControllerPrototype::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(realm.intrinsics().object_prototype());

    auto byob_request_id = "byobRequest"_utf16_fly_string;
    auto native_byob_request_getter = JS::NativeFunction::create(realm, byob_request_getter, 0, byob_request_id, &realm, "get"sv);
    GC::Ptr<JS::NativeFunction> native_byob_request_setter;

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto byob_request_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(byob_request_id, native_byob_request_getter, native_byob_request_setter, byob_request_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 desired_size_id = "desiredSize"_utf16_fly_string;
    auto native_desired_size_getter = JS::NativeFunction::create(realm, desired_size_getter, 0, desired_size_id, &realm, "get"sv);
    GC::Ptr<JS::NativeFunction> native_desired_size_setter;

    // 4. Let configurable be false if attr is unforgeable and true otherwise.
    auto desired_size_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(desired_size_id, native_desired_size_getter, native_desired_size_setter, desired_size_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, "error"_utf16_fly_string, error, 0, default_attributes);

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

    object.define_direct_property(vm.well_known_symbol_to_string_tag(), JS::PrimitiveString::create(vm, "ReadableByteStreamController"_utf16), JS::Attribute::Configurable);
}

void ReadableByteStreamControllerPrototype::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<Streams::ReadableByteStreamController*> impl_from(JS::VM& vm, JS::Value js_value)
{

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

[[maybe_unused]] static JS::ThrowCompletionOr<Streams::ReadableByteStreamController*> 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(ReadableByteStreamControllerPrototype::byob_request_getter)
{
    WebIDL::log_trace(vm, "ReadableByteStreamControllerPrototype::byob_request_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->byob_request(); }));

    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(JS::Value(R));
    }();
}

JS_DEFINE_NATIVE_FUNCTION(ReadableByteStreamControllerPrototype::desired_size_getter)
{
    WebIDL::log_trace(vm, "ReadableByteStreamControllerPrototype::desired_size_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->desired_size(); }));

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

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

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

JS_DEFINE_NATIVE_FUNCTION(ReadableByteStreamControllerPrototype::error)
{
    WebIDL::log_trace(vm, "ReadableByteStreamControllerPrototype::error");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    [[maybe_unused]] Streams::ReadableByteStreamController* idl_object = TRY(impl_from(vm));

    auto arg0 = vm.argument(0);
    Optional<JS::Value> e {};
    if (!arg0.is_undefined())
        e = TRY(throw_dom_exception_if_needed(vm, [&] { return arg0; }));

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

JS_DEFINE_NATIVE_FUNCTION(ReadableByteStreamControllerPrototype::enqueue)
{
    WebIDL::log_trace(vm, "ReadableByteStreamControllerPrototype::enqueue");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    [[maybe_unused]] Streams::ReadableByteStreamController* idl_object = TRY(impl_from(vm));

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

    auto arg0 = vm.argument(0);
    auto chunk = 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>>> {

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

            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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { 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>> { float64_array_union_type };
            }
        }

        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->enqueue(chunk); }));
    return JS::js_undefined();
}

} // namespace Web::Bindings
