ladybird/Userland/Libraries/LibIPC/Decoder.h
Shannon Booth e800605ad3 AK+LibURL: Move AK::URL into a new URL library
This URL library ends up being a relatively fundamental base library of
the system, as LibCore depends on LibURL.

This change has two main benefits:
 * Moving AK back more towards being an agnostic library that can
   be used between the kernel and userspace. URL has never really fit
   that description - and is not used in the kernel.
 * URL _should_ depend on LibUnicode, as it needs punnycode support.
   However, it's not really possible to do this inside of AK as it can't
   depend on any external library. This change brings us a little closer
   to being able to do that, but unfortunately we aren't there quite
   yet, as the code generators depend on LibCore.
2024-03-18 14:06:28 -04:00

207 lines
4.5 KiB
C++

/*
* Copyright (c) 2020, Andreas Kling <kling@serenityos.org>
* Copyright (c) 2023, Tim Flynn <trflynn89@serenityos.org>
*
* SPDX-License-Identifier: BSD-2-Clause
*/
#pragma once
#include <AK/ByteString.h>
#include <AK/Concepts.h>
#include <AK/Forward.h>
#include <AK/NumericLimits.h>
#include <AK/StdLibExtras.h>
#include <AK/String.h>
#include <AK/Try.h>
#include <AK/TypeList.h>
#include <AK/Variant.h>
#include <LibCore/SharedCircularQueue.h>
#include <LibCore/Socket.h>
#include <LibIPC/Concepts.h>
#include <LibIPC/File.h>
#include <LibIPC/Forward.h>
#include <LibIPC/Message.h>
#include <LibURL/URL.h>
namespace IPC {
template<typename T>
inline ErrorOr<T> decode(Decoder&)
{
static_assert(DependentFalse<T>, "Base IPC::decoder() instantiated");
VERIFY_NOT_REACHED();
}
class Decoder {
public:
Decoder(Stream& stream, Core::LocalSocket& socket)
: m_stream(stream)
, m_socket(socket)
{
}
template<typename T>
ErrorOr<T> decode();
template<typename T>
ErrorOr<void> decode_into(T& value)
{
value = TRY(m_stream.read_value<T>());
return {};
}
ErrorOr<void> decode_into(Bytes bytes)
{
TRY(m_stream.read_until_filled(bytes));
return {};
}
ErrorOr<size_t> decode_size();
Stream& stream() { return m_stream; }
Core::LocalSocket& socket() { return m_socket; }
private:
Stream& m_stream;
Core::LocalSocket& m_socket;
};
template<Arithmetic T>
ErrorOr<T> decode(Decoder& decoder)
{
T value { 0 };
TRY(decoder.decode_into(value));
return value;
}
template<Enum T>
ErrorOr<T> decode(Decoder& decoder)
{
auto value = TRY(decoder.decode<UnderlyingType<T>>());
return static_cast<T>(value);
}
template<>
ErrorOr<String> decode(Decoder&);
template<>
ErrorOr<ByteString> decode(Decoder&);
template<>
ErrorOr<ByteBuffer> decode(Decoder&);
template<>
ErrorOr<JsonValue> decode(Decoder&);
template<>
ErrorOr<Duration> decode(Decoder&);
template<>
ErrorOr<UnixDateTime> decode(Decoder&);
template<>
ErrorOr<URL::URL> decode(Decoder&);
template<>
ErrorOr<File> decode(Decoder&);
template<>
ErrorOr<Empty> decode(Decoder&);
template<Concepts::Array T>
ErrorOr<T> decode(Decoder& decoder)
{
T array {};
auto size = TRY(decoder.decode_size());
if (size != array.size())
return Error::from_string_literal("Array size mismatch");
for (size_t i = 0; i < array.size(); ++i)
array[i] = TRY(decoder.decode<typename T::ValueType>());
return array;
}
template<Concepts::Vector T>
ErrorOr<T> decode(Decoder& decoder)
{
T vector;
auto size = TRY(decoder.decode_size());
TRY(vector.try_ensure_capacity(size));
for (size_t i = 0; i < size; ++i) {
auto value = TRY(decoder.decode<typename T::ValueType>());
vector.template unchecked_append(move(value));
}
return vector;
}
template<Concepts::HashMap T>
ErrorOr<T> decode(Decoder& decoder)
{
T hashmap;
auto size = TRY(decoder.decode_size());
TRY(hashmap.try_ensure_capacity(size));
for (size_t i = 0; i < size; ++i) {
auto key = TRY(decoder.decode<typename T::KeyType>());
auto value = TRY(decoder.decode<typename T::ValueType>());
TRY(hashmap.try_set(move(key), move(value)));
}
return hashmap;
}
template<Concepts::SharedSingleProducerCircularQueue T>
ErrorOr<T> decode(Decoder& decoder)
{
auto anon_file = TRY(decoder.decode<IPC::File>());
return T::create(anon_file.take_fd());
}
template<Concepts::Optional T>
ErrorOr<T> decode(Decoder& decoder)
{
if (auto has_value = TRY(decoder.decode<bool>()); !has_value)
return T {};
return T { TRY(decoder.decode<typename T::ValueType>()) };
}
namespace Detail {
template<Concepts::Variant T, size_t Index = 0>
ErrorOr<T> decode_variant(Decoder& decoder, size_t index)
{
using ElementList = TypeList<T>;
if constexpr (Index < ElementList::size) {
if (index == Index) {
using ElementType = typename ElementList::template Type<Index>;
return T { TRY(decoder.decode<ElementType>()) };
}
return decode_variant<T, Index + 1>(decoder, index);
} else {
VERIFY_NOT_REACHED();
}
}
}
template<Concepts::Variant T>
ErrorOr<T> decode(Decoder& decoder)
{
auto index = TRY(decoder.decode<typename T::IndexType>());
return Detail::decode_variant<T>(decoder, index);
}
// This must be last so that it knows about the above specializations.
template<typename T>
ErrorOr<T> Decoder::decode()
{
return IPC::decode<T>(*this);
}
}