#include <AK/String.h>
#include <AK/TypeCasts.h>
#include <AK/Utf16String.h>
#include <AK/Variant.h>
#include <LibJS/Runtime/ArrayBuffer.h>
#include <LibJS/Runtime/DataView.h>
#include <LibJS/Runtime/Error.h>
#include <LibJS/Runtime/Iterator.h>
#include <LibJS/Runtime/Promise.h>
#include <LibJS/Runtime/TypedArray.h>
#include <LibJS/Runtime/VM.h>
#include <LibJS/Runtime/Value.h>
#include <LibJS/Runtime/ValueInlines.h>
#include <LibWeb/Bindings/CryptoKey.h>
#include <LibWeb/Bindings/ExceptionOrUtils.h>
#include <LibWeb/Bindings/Intrinsics.h>
#include <LibWeb/Bindings/SubtleCrypto.h>
#include <LibWeb/Crypto/CryptoKey.h>
#include <LibWeb/Crypto/SubtleCrypto.h>
#include <LibWeb/WebIDL/AbstractOperations.h>
#include <LibWeb/WebIDL/Promise.h>
#include <LibWeb/WebIDL/Tracing.h>
#include <LibWeb/WebIDL/Types.h>

namespace Web::Bindings {

void SubtleCryptoConstructor::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, "SubtleCrypto"_utf16), JS::Attribute::Configurable);
    object.define_direct_property(vm.names.prototype, &ensure_web_prototype<SubtleCryptoPrototype>(realm, "SubtleCrypto"_fly_string), 0);
}

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

void SubtleCryptoPrototype::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());
    object.define_native_function(realm, "encrypt"_utf16_fly_string, encrypt, 3, default_attributes);

    object.define_native_function(realm, "decrypt"_utf16_fly_string, decrypt, 3, default_attributes);

    object.define_native_function(realm, "sign"_utf16_fly_string, sign, 3, default_attributes);

    object.define_native_function(realm, "verify"_utf16_fly_string, verify, 4, default_attributes);

    object.define_native_function(realm, "digest"_utf16_fly_string, digest, 2, default_attributes);

    object.define_native_function(realm, "generateKey"_utf16_fly_string, generate_key, 3, default_attributes);

    object.define_native_function(realm, "deriveKey"_utf16_fly_string, derive_key, 5, default_attributes);

    object.define_native_function(realm, "deriveBits"_utf16_fly_string, derive_bits, 2, default_attributes);

    object.define_native_function(realm, "importKey"_utf16_fly_string, import_key, 5, default_attributes);

    object.define_native_function(realm, "exportKey"_utf16_fly_string, export_key, 2, default_attributes);

    object.define_native_function(realm, "wrapKey"_utf16_fly_string, wrap_key, 4, default_attributes);

    object.define_native_function(realm, "unwrapKey"_utf16_fly_string, unwrap_key, 7, default_attributes);

    object.define_native_function(realm, "encapsulateKey"_utf16_fly_string, encapsulate_key, 5, default_attributes);

    object.define_native_function(realm, "encapsulateBits"_utf16_fly_string, encapsulate_bits, 2, default_attributes);

    object.define_native_function(realm, "decapsulateKey"_utf16_fly_string, decapsulate_key, 6, default_attributes);

    object.define_native_function(realm, "decapsulateBits"_utf16_fly_string, decapsulate_bits, 3, default_attributes);

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

void SubtleCryptoPrototype::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<Crypto::SubtleCrypto*> impl_from(JS::VM& vm, JS::Value js_value)
{

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

[[maybe_unused]] static JS::ThrowCompletionOr<Crypto::SubtleCrypto*> 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(SubtleCryptoPrototype::encrypt)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::encrypt");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 3)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "encrypt", "3");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    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>>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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->encrypt(algorithm, key, data); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::decrypt)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::decrypt");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 3)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "decrypt", "3");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    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>>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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->decrypt(algorithm, key, data); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::sign)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::sign");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 3)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "sign", "3");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    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>>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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->sign(algorithm, key, data); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::verify)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::verify");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 4)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "verify", "4");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    auto signature = 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>>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { float64_array_union_type };
            }
        }

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

    auto arg3 = vm.argument(3);
    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>>> {

        if (arg3.is_object()) {
            [[maybe_unused]] auto& object = arg3.as_object();

            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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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 = arg3.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>> { 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->verify(algorithm, key, signature, data); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::digest)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::digest");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 2)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "digest", "2");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    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>>> {

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

            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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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->digest(algorithm, data); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::generate_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::generate_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 3)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "generateKey", "3");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto extractable = TRY(throw_dom_exception_if_needed(vm, [&] { return arg1.to_boolean(); }));

    auto arg2 = vm.argument(2);
    auto key_usages = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        if (!arg2.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, arg2);

        auto method = TRY(arg2.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, arg2);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        // 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, arg2, *method));

        Vector<KeyUsage> 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 convert_to_idl_value_for_key_usage(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->generate_key(algorithm, extractable, key_usages); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::derive_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::derive_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 5)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "deriveKey", "5");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto base_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    auto derived_key_type = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto derivedKeyType_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg2));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { derivedKeyType_string };

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

    auto arg3 = vm.argument(3);
    auto extractable = TRY(throw_dom_exception_if_needed(vm, [&] { return arg3.to_boolean(); }));

    auto arg4 = vm.argument(4);
    auto key_usages = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        if (!arg4.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, arg4);

        auto method = TRY(arg4.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, arg4);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        // 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, arg4, *method));

        Vector<KeyUsage> 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 convert_to_idl_value_for_key_usage(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->derive_key(algorithm, base_key, derived_key_type, extractable, key_usages); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::derive_bits)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::derive_bits");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 2)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "deriveBits", "2");

    auto arg0 = vm.argument(0);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg1 = vm.argument(1);
    auto base_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    Optional<WebIDL::UnsignedLong> length {};
    if (!arg2.is_undefined())
        length = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Optional<WebIDL::UnsignedLong>> {
        Optional<WebIDL::UnsignedLong> value;

        if (!arg2.is_nullish()) {

            value = TRY(WebIDL::convert_to_int<WebIDL::UnsignedLong>(vm, arg2, WebIDL::EnforceRange::No, WebIDL::Clamp::No));
        }
        return value;
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->derive_bits(algorithm, base_key, length); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::import_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::import_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 5)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "importKey", "5");

    auto arg0 = vm.argument(0);
    auto format = TRY(throw_dom_exception_if_needed(vm, [&] { return convert_to_idl_value_for_key_format(vm, arg0); }));

    auto arg1 = vm.argument(1);
    auto key_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>, JsonWebKey>> {

        if (arg1.is_nullish()) {
            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>, JsonWebKey> { TRY(convert_to_idl_value_for_json_web_key(vm, arg1)) };
        }

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

            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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { 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 = arg1.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>, JsonWebKey> { float64_array_union_type };
            }
            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>, JsonWebKey> { TRY(convert_to_idl_value_for_json_web_key(vm, arg1)) };
        }

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

    auto arg2 = vm.argument(2);
    auto algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto algorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg2));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { algorithm_string };

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

    auto arg3 = vm.argument(3);
    auto extractable = TRY(throw_dom_exception_if_needed(vm, [&] { return arg3.to_boolean(); }));

    auto arg4 = vm.argument(4);
    auto key_usages = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        if (!arg4.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, arg4);

        auto method = TRY(arg4.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, arg4);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        // 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, arg4, *method));

        Vector<KeyUsage> 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 convert_to_idl_value_for_key_usage(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->import_key(format, key_data, algorithm, extractable, key_usages); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::export_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::export_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 2)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "exportKey", "2");

    auto arg0 = vm.argument(0);
    auto format = TRY(throw_dom_exception_if_needed(vm, [&] { return convert_to_idl_value_for_key_format(vm, arg0); }));

    auto arg1 = vm.argument(1);
    auto key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->export_key(format, key); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::wrap_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::wrap_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 4)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "wrapKey", "4");

    auto arg0 = vm.argument(0);
    auto format = TRY(throw_dom_exception_if_needed(vm, [&] { return convert_to_idl_value_for_key_format(vm, arg0); }));

    auto arg1 = vm.argument(1);
    auto key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    auto wrapping_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg2.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg3 = vm.argument(3);
    auto wrap_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg3.is_object()) {
            [[maybe_unused]] auto& object = arg3.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto wrapAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg3));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { wrapAlgorithm_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->wrap_key(format, key, wrapping_key, wrap_algorithm); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::unwrap_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::unwrap_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 7)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "unwrapKey", "7");

    auto arg0 = vm.argument(0);
    auto format = TRY(throw_dom_exception_if_needed(vm, [&] { return convert_to_idl_value_for_key_format(vm, arg0); }));

    auto arg1 = vm.argument(1);
    auto wrapped_key = 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>>> {

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

            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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { 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 = arg1.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>> { float64_array_union_type };
            }
        }

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

    auto arg2 = vm.argument(2);
    auto unwrapping_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg2.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg3 = vm.argument(3);
    auto unwrap_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg3.is_object()) {
            [[maybe_unused]] auto& object = arg3.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto unwrapAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg3));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { unwrapAlgorithm_string };

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

    auto arg4 = vm.argument(4);
    auto unwrapped_key_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg4.is_object()) {
            [[maybe_unused]] auto& object = arg4.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto unwrappedKeyAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg4));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { unwrappedKeyAlgorithm_string };

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

    auto arg5 = vm.argument(5);
    auto extractable = TRY(throw_dom_exception_if_needed(vm, [&] { return arg5.to_boolean(); }));

    auto arg6 = vm.argument(6);
    auto key_usages = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        if (!arg6.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, arg6);

        auto method = TRY(arg6.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, arg6);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        // 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, arg6, *method));

        Vector<KeyUsage> 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 convert_to_idl_value_for_key_usage(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->unwrap_key(format, wrapped_key, unwrapping_key, unwrap_algorithm, unwrapped_key_algorithm, extractable, key_usages); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::encapsulate_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::encapsulate_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 5)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "encapsulateKey", "5");

    auto arg0 = vm.argument(0);
    auto encapsulation_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto encapsulationAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { encapsulationAlgorithm_string };

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

    auto arg1 = vm.argument(1);
    auto encapsulation_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    auto shared_key_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto sharedKeyAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg2));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { sharedKeyAlgorithm_string };

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

    auto arg3 = vm.argument(3);
    auto extractable = TRY(throw_dom_exception_if_needed(vm, [&] { return arg3.to_boolean(); }));

    auto arg4 = vm.argument(4);
    auto key_usages = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        if (!arg4.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, arg4);

        auto method = TRY(arg4.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, arg4);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        // 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, arg4, *method));

        Vector<KeyUsage> 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 convert_to_idl_value_for_key_usage(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->encapsulate_key(encapsulation_algorithm, encapsulation_key, shared_key_algorithm, extractable, key_usages); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::encapsulate_bits)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::encapsulate_bits");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 2)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "encapsulateBits", "2");

    auto arg0 = vm.argument(0);
    auto encapsulation_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto encapsulationAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { encapsulationAlgorithm_string };

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

    auto arg1 = vm.argument(1);
    auto encapsulation_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->encapsulate_bits(encapsulation_algorithm, encapsulation_key); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::decapsulate_key)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::decapsulate_key");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 6)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "decapsulateKey", "6");

    auto arg0 = vm.argument(0);
    auto decapsulation_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto decapsulationAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { decapsulationAlgorithm_string };

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

    auto arg1 = vm.argument(1);
    auto decapsulation_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    auto ciphertext = 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>>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { float64_array_union_type };
            }
        }

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

    auto arg3 = vm.argument(3);
    auto shared_key_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

        if (arg3.is_object()) {
            [[maybe_unused]] auto& object = arg3.as_object();

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto sharedKeyAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg3));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { sharedKeyAlgorithm_string };

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

    auto arg4 = vm.argument(4);
    auto extractable = TRY(throw_dom_exception_if_needed(vm, [&] { return arg4.to_boolean(); }));

    auto arg5 = vm.argument(5);
    auto key_usages = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        if (!arg5.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, arg5);

        auto method = TRY(arg5.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, arg5);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<KeyUsage>> {
        // 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, arg5, *method));

        Vector<KeyUsage> 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 convert_to_idl_value_for_key_usage(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

    [[maybe_unused]] auto R = TRY(throw_dom_exception_if_needed(vm, [&] { return idl_object->decapsulate_key(decapsulation_algorithm, decapsulation_key, ciphertext, shared_key_algorithm, extractable, key_usages); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

JS_DEFINE_NATIVE_FUNCTION(SubtleCryptoPrototype::decapsulate_bits)
{
    WebIDL::log_trace(vm, "SubtleCryptoPrototype::decapsulate_bits");
    [[maybe_unused]] auto& realm = *vm.current_realm();
    auto steps = [&realm, &vm]() -> JS::ThrowCompletionOr<GC::Ref<WebIDL::Promise>> {
        (void)realm;
    [[maybe_unused]] Crypto::SubtleCrypto* idl_object = TRY(impl_from(vm));

    if (vm.argument_count() < 3)
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::BadArgCountMany, "decapsulateBits", "3");

    auto arg0 = vm.argument(0);
    auto decapsulation_algorithm = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Variant<GC::Ref<JS::Object>, Utf16String>> {

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

            return Variant<GC::Ref<JS::Object>, Utf16String> { GC::Ref { object } };
        }

        auto decapsulationAlgorithm_string = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, arg0));
    }());
        return Variant<GC::Ref<JS::Object>, Utf16String> { decapsulationAlgorithm_string };

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

    auto arg1 = vm.argument(1);
    auto decapsulation_key = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = arg1.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

    auto arg2 = vm.argument(2);
    auto ciphertext = 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>>> {

        if (arg2.is_object()) {
            [[maybe_unused]] auto& object = arg2.as_object();

            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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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 = arg2.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>> { 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->decapsulate_bits(decapsulation_algorithm, decapsulation_key, ciphertext); }));
        return R;
    };

    auto maybe_R = steps();

    // And then, if an exception E was thrown:
    // 1. If op has a return type that is a promise type, then return ! Call(%Promise.reject%, %Promise%, «E»).
    // 2. Otherwise, end these steps and allow the exception to propagate.
    if (maybe_R.is_throw_completion())
        return WebIDL::create_rejected_promise(realm, maybe_R.error_value())->promise();

    return GC::Ref { as<JS::Promise>(*maybe_R.release_value()->promise()) };
}

// https://webidl.spec.whatwg.org/#idl-enumeration
JS::ThrowCompletionOr<KeyFormat> convert_to_idl_value_for_key_format(JS::VM& vm, JS::Value value)
{
    // 1. Let S be the result of calling ? ToString(V).
    auto value_as_string = TRY(value.to_utf16_string(vm));

    // 2. If S is not one of E’s enumeration values, then throw a TypeError.
    // 3. Return the enumeration value of type E that is equal to S.
    if (value_as_string == "raw-public"sv)
        return KeyFormat::RawPublic;
    if (value_as_string == "raw-private"sv)
        return KeyFormat::RawPrivate;
    if (value_as_string == "raw-seed"sv)
        return KeyFormat::RawSeed;
    if (value_as_string == "raw-secret"sv)
        return KeyFormat::RawSecret;
    if (value_as_string == "raw"sv)
        return KeyFormat::Raw;
    if (value_as_string == "spki"sv)
        return KeyFormat::Spki;
    if (value_as_string == "pkcs8"sv)
        return KeyFormat::Pkcs8;
    if (value_as_string == "jwk"sv)
        return KeyFormat::Jwk;
    return vm.throw_completion<JS::TypeError>(JS::ErrorType::InvalidEnumerationValue, value_as_string, "KeyFormat");
}

// https://webidl.spec.whatwg.org/#idl-enumeration
Utf16String idl_enum_to_string(KeyFormat value)
{
    // The result of converting an IDL enumeration type value to a JavaScript value is the String value that represents the same sequence of code units as the enumeration value.
    switch (value) {
    case KeyFormat::RawPublic:
        return "raw-public"_utf16;
    case KeyFormat::RawPrivate:
        return "raw-private"_utf16;
    case KeyFormat::RawSeed:
        return "raw-seed"_utf16;
    case KeyFormat::RawSecret:
        return "raw-secret"_utf16;
    case KeyFormat::Raw:
        return "raw"_utf16;
    case KeyFormat::Spki:
        return "spki"_utf16;
    case KeyFormat::Pkcs8:
        return "pkcs8"_utf16;
    case KeyFormat::Jwk:
        return "jwk"_utf16;
    }
    VERIFY_NOT_REACHED();
}

// https://webidl.spec.whatwg.org/#es-dictionary
JS::ThrowCompletionOr<Algorithm> convert_to_idl_value_for_algorithm(JS::VM& vm, JS::Value js_dict)
{
    // 1. If jsDict is not an Object and jsDict is neither undefined nor null, then throw a TypeError.
    if (!js_dict.is_object() && !js_dict.is_nullish())
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "Algorithm");

    // 2. Let idlDict be an empty ordered map, representing a dictionary of type D.
    // 3. Let dictionaries be a list consisting of D and all of D’s inherited dictionaries, in order from least to most derived.
    // 4. For each dictionary dictionary in dictionaries, in order:
    // NB: We defer construction until the return initializer because some members may not be default-constructible. Inherited dictionaries are represented by the generated C++ struct inheritance.

    // 5. Return idlDict.
    return Algorithm {
        .name = TRY([&]() -> JS::ThrowCompletionOr<Utf16String> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("name"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Utf16String> {
        return TRY(WebIDL::to_utf16_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 6. Otherwise, if jsMemberValue is undefined and member is required, then throw a TypeError.
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::MissingRequiredProperty, "name");
        }()),
    };
}

// https://webidl.spec.whatwg.org/#es-dictionary
JS::ThrowCompletionOr<RsaOtherPrimesInfo> convert_to_idl_value_for_rsa_other_primes_info(JS::VM& vm, JS::Value js_dict)
{
    // 1. If jsDict is not an Object and jsDict is neither undefined nor null, then throw a TypeError.
    if (!js_dict.is_object() && !js_dict.is_nullish())
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "RsaOtherPrimesInfo");

    // 2. Let idlDict be an empty ordered map, representing a dictionary of type D.
    // 3. Let dictionaries be a list consisting of D and all of D’s inherited dictionaries, in order from least to most derived.
    // 4. For each dictionary dictionary in dictionaries, in order:
    // NB: We defer construction until the return initializer because some members may not be default-constructible. Inherited dictionaries are represented by the generated C++ struct inheritance.

    // 5. Return idlDict.
    return RsaOtherPrimesInfo {
        .d = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("d"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .r = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("r"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .t = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("t"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
    };
}

// https://webidl.spec.whatwg.org/#es-dictionary
JS::ThrowCompletionOr<JsonWebKey> convert_to_idl_value_for_json_web_key(JS::VM& vm, JS::Value js_dict)
{
    // 1. If jsDict is not an Object and jsDict is neither undefined nor null, then throw a TypeError.
    if (!js_dict.is_object() && !js_dict.is_nullish())
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "JsonWebKey");

    // 2. Let idlDict be an empty ordered map, representing a dictionary of type D.
    // 3. Let dictionaries be a list consisting of D and all of D’s inherited dictionaries, in order from least to most derived.
    // 4. For each dictionary dictionary in dictionaries, in order:
    // NB: We defer construction until the return initializer because some members may not be default-constructible. Inherited dictionaries are represented by the generated C++ struct inheritance.

    // 5. Return idlDict.
    return JsonWebKey {
        .alg = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("alg"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .crv = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("crv"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .d = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("d"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .dp = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("dp"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .dq = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("dq"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .e = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("e"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .ext = TRY([&]() -> JS::ThrowCompletionOr<Optional<bool>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("ext"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return js_member_value.to_boolean(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .k = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("k"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .key_ops = TRY([&]() -> JS::ThrowCompletionOr<Optional<Vector<String>>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("key_ops"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<String>> {
        if (!js_member_value.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, js_member_value);

        auto method = TRY(js_member_value.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, js_member_value);

        return 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, js_member_value, *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;
    }());
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .kty = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("kty"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .n = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("n"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .oth = TRY([&]() -> JS::ThrowCompletionOr<Optional<Vector<RsaOtherPrimesInfo>>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("oth"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<Vector<RsaOtherPrimesInfo>> {
        if (!js_member_value.is_object())
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObject, js_member_value);

        auto method = TRY(js_member_value.get_method(vm, vm.well_known_symbol_iterator()));
        if (!method)
            return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotIterable, js_member_value);

        return TRY([&]() -> JS::ThrowCompletionOr<Vector<RsaOtherPrimesInfo>> {
        // 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, js_member_value, *method));

        Vector<RsaOtherPrimesInfo> 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 convert_to_idl_value_for_rsa_other_primes_info(vm, next_value); }));

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

        return sequence;
    }());
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .p = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("p"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .priv = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("priv"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .pub = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("pub"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .q = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("q"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .qi = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("qi"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .use = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("use"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .x = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("x"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
        .y = TRY([&]() -> JS::ThrowCompletionOr<Optional<String>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("y"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<String> {
        return TRY(WebIDL::to_string(vm, js_member_value));
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return OptionalNone {};
        }()),
    };
}

// https://webidl.spec.whatwg.org/#es-dictionary
JS::ThrowCompletionOr<EncapsulatedKey> convert_to_idl_value_for_encapsulated_key(JS::VM& vm, JS::Value js_dict)
{
    // 1. If jsDict is not an Object and jsDict is neither undefined nor null, then throw a TypeError.
    if (!js_dict.is_object() && !js_dict.is_nullish())
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "EncapsulatedKey");

    // 2. Let idlDict be an empty ordered map, representing a dictionary of type D.
    // 3. Let dictionaries be a list consisting of D and all of D’s inherited dictionaries, in order from least to most derived.
    // 4. For each dictionary dictionary in dictionaries, in order:
    // NB: We defer construction until the return initializer because some members may not be default-constructible. Inherited dictionaries are represented by the generated C++ struct inheritance.

    // 5. Return idlDict.
    return EncapsulatedKey {
        .ciphertext = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<JS::ArrayBuffer>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("ciphertext"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<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 = js_member_value.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 };
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return nullptr;
        }()),
        .shared_key = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<Crypto::CryptoKey>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("sharedKey"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ref<Crypto::CryptoKey>> {
        if (auto impl = js_member_value.as_if<Crypto::CryptoKey>())
            return *impl;
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "CryptoKey");
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return nullptr;
        }()),
    };
}

// https://webidl.spec.whatwg.org/#es-dictionary
JS::ThrowCompletionOr<EncapsulatedBits> convert_to_idl_value_for_encapsulated_bits(JS::VM& vm, JS::Value js_dict)
{
    // 1. If jsDict is not an Object and jsDict is neither undefined nor null, then throw a TypeError.
    if (!js_dict.is_object() && !js_dict.is_nullish())
        return vm.throw_completion<JS::TypeError>(JS::ErrorType::NotAnObjectOfType, "EncapsulatedBits");

    // 2. Let idlDict be an empty ordered map, representing a dictionary of type D.
    // 3. Let dictionaries be a list consisting of D and all of D’s inherited dictionaries, in order from least to most derived.
    // 4. For each dictionary dictionary in dictionaries, in order:
    // NB: We defer construction until the return initializer because some members may not be default-constructible. Inherited dictionaries are represented by the generated C++ struct inheritance.

    // 5. Return idlDict.
    return EncapsulatedBits {
        .ciphertext = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<JS::ArrayBuffer>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("ciphertext"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<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 = js_member_value.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 };
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return nullptr;
        }()),
        .shared_key = TRY([&]() -> JS::ThrowCompletionOr<GC::Ptr<JS::ArrayBuffer>> {
            // 1. Let key be the identifier of member.
            // 2. If jsDict is either undefined or null, then:
            //     1. Let jsMemberValue be undefined.
            // 3. Otherwise,
            //     1. Let jsMemberValue be ? Get(jsDict, key).
            auto js_member_value = JS::js_undefined();
            if (js_dict.is_object())
                js_member_value = TRY(js_dict.as_object().get("sharedKey"_utf16_fly_string));

            // 4. If jsMemberValue is not undefined, then:
            if (!js_member_value.is_undefined()) {
                // 1. Let idlMemberValue be the result of converting jsMemberValue to an IDL value whose type is the type member is declared to be of.
                auto idl_member_value = TRY(throw_dom_exception_if_needed(vm, [&] { return [&]() -> JS::ThrowCompletionOr<GC::Ptr<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 = js_member_value.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 };
    }(); }));

                // 2. Set idlDict[key] to idlMemberValue.
                return idl_member_value;
            }
            // 7. Otherwise, jsMemberValue is undefined and the member is optional.
            return nullptr;
        }()),
    };
}

} // namespace Web::Bindings
