mirror of
https://github.com/RPCS3/llvm-mirror.git
synced 2025-01-31 20:51:52 +01:00
03a4613bc2
llvm-svn: 302377
610 lines
18 KiB
C++
610 lines
18 KiB
C++
//===- llvm/ExecutionEngine/Orc/RPCSerialization.h --------------*- C++ -*-===//
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//
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// The LLVM Compiler Infrastructure
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//
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// This file is distributed under the University of Illinois Open Source
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// License. See LICENSE.TXT for details.
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//
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_EXECUTIONENGINE_ORC_RPCSERIALIZATION_H
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#define LLVM_EXECUTIONENGINE_ORC_RPCSERIALIZATION_H
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#include "OrcError.h"
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#include "llvm/Support/thread.h"
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#include <map>
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#include <mutex>
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#include <sstream>
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namespace llvm {
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namespace orc {
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namespace rpc {
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template <typename T>
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class RPCTypeName;
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/// TypeNameSequence is a utility for rendering sequences of types to a string
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/// by rendering each type, separated by ", ".
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template <typename... ArgTs> class RPCTypeNameSequence {};
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/// Render an empty TypeNameSequence to an ostream.
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template <typename OStream>
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OStream &operator<<(OStream &OS, const RPCTypeNameSequence<> &V) {
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return OS;
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}
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/// Render a TypeNameSequence of a single type to an ostream.
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template <typename OStream, typename ArgT>
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OStream &operator<<(OStream &OS, const RPCTypeNameSequence<ArgT> &V) {
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OS << RPCTypeName<ArgT>::getName();
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return OS;
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}
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/// Render a TypeNameSequence of more than one type to an ostream.
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template <typename OStream, typename ArgT1, typename ArgT2, typename... ArgTs>
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OStream&
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operator<<(OStream &OS, const RPCTypeNameSequence<ArgT1, ArgT2, ArgTs...> &V) {
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OS << RPCTypeName<ArgT1>::getName() << ", "
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<< RPCTypeNameSequence<ArgT2, ArgTs...>();
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return OS;
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}
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template <>
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class RPCTypeName<void> {
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public:
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static const char* getName() { return "void"; }
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};
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template <>
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class RPCTypeName<int8_t> {
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public:
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static const char* getName() { return "int8_t"; }
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};
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template <>
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class RPCTypeName<uint8_t> {
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public:
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static const char* getName() { return "uint8_t"; }
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};
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template <>
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class RPCTypeName<int16_t> {
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public:
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static const char* getName() { return "int16_t"; }
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};
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template <>
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class RPCTypeName<uint16_t> {
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public:
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static const char* getName() { return "uint16_t"; }
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};
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template <>
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class RPCTypeName<int32_t> {
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public:
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static const char* getName() { return "int32_t"; }
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};
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template <>
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class RPCTypeName<uint32_t> {
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public:
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static const char* getName() { return "uint32_t"; }
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};
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template <>
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class RPCTypeName<int64_t> {
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public:
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static const char* getName() { return "int64_t"; }
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};
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template <>
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class RPCTypeName<uint64_t> {
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public:
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static const char* getName() { return "uint64_t"; }
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};
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template <>
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class RPCTypeName<bool> {
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public:
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static const char* getName() { return "bool"; }
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};
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template <>
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class RPCTypeName<std::string> {
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public:
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static const char* getName() { return "std::string"; }
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};
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template <>
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class RPCTypeName<Error> {
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public:
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static const char* getName() { return "Error"; }
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};
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template <typename T>
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class RPCTypeName<Expected<T>> {
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public:
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static const char* getName() {
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std::lock_guard<std::mutex> Lock(NameMutex);
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if (Name.empty())
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raw_string_ostream(Name) << "Expected<"
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<< RPCTypeNameSequence<T>()
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<< ">";
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return Name.data();
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}
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private:
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static std::mutex NameMutex;
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static std::string Name;
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};
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template <typename T>
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std::mutex RPCTypeName<Expected<T>>::NameMutex;
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template <typename T>
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std::string RPCTypeName<Expected<T>>::Name;
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template <typename T1, typename T2>
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class RPCTypeName<std::pair<T1, T2>> {
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public:
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static const char* getName() {
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std::lock_guard<std::mutex> Lock(NameMutex);
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if (Name.empty())
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raw_string_ostream(Name) << "std::pair<" << RPCTypeNameSequence<T1, T2>()
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<< ">";
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return Name.data();
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}
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private:
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static std::mutex NameMutex;
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static std::string Name;
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};
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template <typename T1, typename T2>
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std::mutex RPCTypeName<std::pair<T1, T2>>::NameMutex;
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template <typename T1, typename T2>
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std::string RPCTypeName<std::pair<T1, T2>>::Name;
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template <typename... ArgTs>
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class RPCTypeName<std::tuple<ArgTs...>> {
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public:
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static const char* getName() {
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std::lock_guard<std::mutex> Lock(NameMutex);
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if (Name.empty())
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raw_string_ostream(Name) << "std::tuple<"
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<< RPCTypeNameSequence<ArgTs...>() << ">";
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return Name.data();
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}
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private:
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static std::mutex NameMutex;
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static std::string Name;
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};
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template <typename... ArgTs>
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std::mutex RPCTypeName<std::tuple<ArgTs...>>::NameMutex;
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template <typename... ArgTs>
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std::string RPCTypeName<std::tuple<ArgTs...>>::Name;
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template <typename T>
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class RPCTypeName<std::vector<T>> {
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public:
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static const char*getName() {
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std::lock_guard<std::mutex> Lock(NameMutex);
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if (Name.empty())
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raw_string_ostream(Name) << "std::vector<" << RPCTypeName<T>::getName()
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<< ">";
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return Name.data();
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}
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private:
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static std::mutex NameMutex;
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static std::string Name;
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};
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template <typename T>
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std::mutex RPCTypeName<std::vector<T>>::NameMutex;
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template <typename T>
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std::string RPCTypeName<std::vector<T>>::Name;
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/// The SerializationTraits<ChannelT, T> class describes how to serialize and
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/// deserialize an instance of type T to/from an abstract channel of type
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/// ChannelT. It also provides a representation of the type's name via the
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/// getName method.
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///
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/// Specializations of this class should provide the following functions:
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///
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/// @code{.cpp}
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///
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/// static const char* getName();
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/// static Error serialize(ChannelT&, const T&);
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/// static Error deserialize(ChannelT&, T&);
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///
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/// @endcode
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///
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/// The third argument of SerializationTraits is intended to support SFINAE.
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/// E.g.:
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///
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/// @code{.cpp}
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///
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/// class MyVirtualChannel { ... };
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///
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/// template <DerivedChannelT>
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/// class SerializationTraits<DerivedChannelT, bool,
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/// typename std::enable_if<
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/// std::is_base_of<VirtChannel, DerivedChannel>::value
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/// >::type> {
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/// public:
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/// static const char* getName() { ... };
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/// }
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///
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/// @endcode
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template <typename ChannelT, typename WireType,
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typename ConcreteType = WireType, typename = void>
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class SerializationTraits;
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template <typename ChannelT>
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class SequenceTraits {
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public:
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static Error emitSeparator(ChannelT &C) { return Error::success(); }
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static Error consumeSeparator(ChannelT &C) { return Error::success(); }
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};
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/// Utility class for serializing sequences of values of varying types.
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/// Specializations of this class contain 'serialize' and 'deserialize' methods
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/// for the given channel. The ArgTs... list will determine the "over-the-wire"
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/// types to be serialized. The serialize and deserialize methods take a list
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/// CArgTs... ("caller arg types") which must be the same length as ArgTs...,
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/// but may be different types from ArgTs, provided that for each CArgT there
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/// is a SerializationTraits specialization
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/// SerializeTraits<ChannelT, ArgT, CArgT> with methods that can serialize the
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/// caller argument to over-the-wire value.
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template <typename ChannelT, typename... ArgTs>
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class SequenceSerialization;
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template <typename ChannelT>
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class SequenceSerialization<ChannelT> {
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public:
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static Error serialize(ChannelT &C) { return Error::success(); }
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static Error deserialize(ChannelT &C) { return Error::success(); }
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};
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template <typename ChannelT, typename ArgT>
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class SequenceSerialization<ChannelT, ArgT> {
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public:
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template <typename CArgT>
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static Error serialize(ChannelT &C, CArgT &&CArg) {
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return SerializationTraits<ChannelT, ArgT,
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typename std::decay<CArgT>::type>::
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serialize(C, std::forward<CArgT>(CArg));
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}
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template <typename CArgT>
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static Error deserialize(ChannelT &C, CArgT &CArg) {
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return SerializationTraits<ChannelT, ArgT, CArgT>::deserialize(C, CArg);
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}
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};
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template <typename ChannelT, typename ArgT, typename... ArgTs>
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class SequenceSerialization<ChannelT, ArgT, ArgTs...> {
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public:
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template <typename CArgT, typename... CArgTs>
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static Error serialize(ChannelT &C, CArgT &&CArg,
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CArgTs &&... CArgs) {
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if (auto Err =
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SerializationTraits<ChannelT, ArgT, typename std::decay<CArgT>::type>::
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serialize(C, std::forward<CArgT>(CArg)))
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return Err;
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if (auto Err = SequenceTraits<ChannelT>::emitSeparator(C))
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return Err;
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return SequenceSerialization<ChannelT, ArgTs...>::
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serialize(C, std::forward<CArgTs>(CArgs)...);
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}
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template <typename CArgT, typename... CArgTs>
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static Error deserialize(ChannelT &C, CArgT &CArg,
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CArgTs &... CArgs) {
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if (auto Err =
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SerializationTraits<ChannelT, ArgT, CArgT>::deserialize(C, CArg))
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return Err;
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if (auto Err = SequenceTraits<ChannelT>::consumeSeparator(C))
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return Err;
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return SequenceSerialization<ChannelT, ArgTs...>::deserialize(C, CArgs...);
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}
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};
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template <typename ChannelT, typename... ArgTs>
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Error serializeSeq(ChannelT &C, ArgTs &&... Args) {
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return SequenceSerialization<ChannelT, typename std::decay<ArgTs>::type...>::
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serialize(C, std::forward<ArgTs>(Args)...);
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}
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template <typename ChannelT, typename... ArgTs>
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Error deserializeSeq(ChannelT &C, ArgTs &... Args) {
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return SequenceSerialization<ChannelT, ArgTs...>::deserialize(C, Args...);
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}
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template <typename ChannelT>
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class SerializationTraits<ChannelT, Error> {
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public:
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using WrappedErrorSerializer =
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std::function<Error(ChannelT &C, const ErrorInfoBase&)>;
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using WrappedErrorDeserializer =
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std::function<Error(ChannelT &C, Error &Err)>;
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template <typename ErrorInfoT, typename SerializeFtor,
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typename DeserializeFtor>
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static void registerErrorType(std::string Name, SerializeFtor Serialize,
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DeserializeFtor Deserialize) {
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assert(!Name.empty() &&
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"The empty string is reserved for the Success value");
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const std::string *KeyName = nullptr;
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{
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// We're abusing the stability of std::map here: We take a reference to the
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// key of the deserializers map to save us from duplicating the string in
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// the serializer. This should be changed to use a stringpool if we switch
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// to a map type that may move keys in memory.
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std::lock_guard<std::recursive_mutex> Lock(DeserializersMutex);
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auto I =
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Deserializers.insert(Deserializers.begin(),
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std::make_pair(std::move(Name),
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std::move(Deserialize)));
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KeyName = &I->first;
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}
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{
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assert(KeyName != nullptr && "No keyname pointer");
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std::lock_guard<std::recursive_mutex> Lock(SerializersMutex);
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// FIXME: Move capture Serialize once we have C++14.
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Serializers[ErrorInfoT::classID()] =
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[KeyName, Serialize](ChannelT &C, const ErrorInfoBase &EIB) -> Error {
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assert(EIB.dynamicClassID() == ErrorInfoT::classID() &&
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"Serializer called for wrong error type");
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if (auto Err = serializeSeq(C, *KeyName))
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return Err;
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return Serialize(C, static_cast<const ErrorInfoT&>(EIB));
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};
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}
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}
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static Error serialize(ChannelT &C, Error &&Err) {
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std::lock_guard<std::recursive_mutex> Lock(SerializersMutex);
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if (!Err)
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return serializeSeq(C, std::string());
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return handleErrors(std::move(Err),
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[&C](const ErrorInfoBase &EIB) {
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auto SI = Serializers.find(EIB.dynamicClassID());
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if (SI == Serializers.end())
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return serializeAsStringError(C, EIB);
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return (SI->second)(C, EIB);
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});
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}
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static Error deserialize(ChannelT &C, Error &Err) {
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std::lock_guard<std::recursive_mutex> Lock(DeserializersMutex);
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std::string Key;
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if (auto Err = deserializeSeq(C, Key))
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return Err;
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if (Key.empty()) {
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ErrorAsOutParameter EAO(&Err);
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Err = Error::success();
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return Error::success();
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}
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auto DI = Deserializers.find(Key);
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assert(DI != Deserializers.end() && "No deserializer for error type");
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return (DI->second)(C, Err);
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}
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private:
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static Error serializeAsStringError(ChannelT &C, const ErrorInfoBase &EIB) {
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std::string ErrMsg;
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{
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raw_string_ostream ErrMsgStream(ErrMsg);
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EIB.log(ErrMsgStream);
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}
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return serialize(C, make_error<StringError>(std::move(ErrMsg),
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inconvertibleErrorCode()));
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}
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static std::recursive_mutex SerializersMutex;
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static std::recursive_mutex DeserializersMutex;
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static std::map<const void*, WrappedErrorSerializer> Serializers;
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static std::map<std::string, WrappedErrorDeserializer> Deserializers;
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};
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template <typename ChannelT>
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std::recursive_mutex SerializationTraits<ChannelT, Error>::SerializersMutex;
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template <typename ChannelT>
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std::recursive_mutex SerializationTraits<ChannelT, Error>::DeserializersMutex;
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template <typename ChannelT>
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std::map<const void*,
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typename SerializationTraits<ChannelT, Error>::WrappedErrorSerializer>
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SerializationTraits<ChannelT, Error>::Serializers;
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template <typename ChannelT>
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std::map<std::string,
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typename SerializationTraits<ChannelT, Error>::WrappedErrorDeserializer>
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SerializationTraits<ChannelT, Error>::Deserializers;
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/// Registers a serializer and deserializer for the given error type on the
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/// given channel type.
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template <typename ChannelT, typename ErrorInfoT, typename SerializeFtor,
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typename DeserializeFtor>
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void registerErrorSerialization(std::string Name, SerializeFtor &&Serialize,
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DeserializeFtor &&Deserialize) {
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SerializationTraits<ChannelT, Error>::template registerErrorType<ErrorInfoT>(
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std::move(Name),
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std::forward<SerializeFtor>(Serialize),
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std::forward<DeserializeFtor>(Deserialize));
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}
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/// Registers serialization/deserialization for StringError.
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template <typename ChannelT>
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void registerStringError() {
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static bool AlreadyRegistered = false;
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if (!AlreadyRegistered) {
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registerErrorSerialization<ChannelT, StringError>(
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"StringError",
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[](ChannelT &C, const StringError &SE) {
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return serializeSeq(C, SE.getMessage());
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},
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[](ChannelT &C, Error &Err) -> Error {
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ErrorAsOutParameter EAO(&Err);
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std::string Msg;
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if (auto E2 = deserializeSeq(C, Msg))
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return E2;
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Err =
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make_error<StringError>(std::move(Msg),
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orcError(
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OrcErrorCode::UnknownErrorCodeFromRemote));
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return Error::success();
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});
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AlreadyRegistered = true;
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}
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}
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/// SerializationTraits for Expected<T1> from an Expected<T2>.
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template <typename ChannelT, typename T1, typename T2>
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class SerializationTraits<ChannelT, Expected<T1>, Expected<T2>> {
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public:
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static Error serialize(ChannelT &C, Expected<T2> &&ValOrErr) {
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if (ValOrErr) {
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if (auto Err = serializeSeq(C, true))
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return Err;
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return SerializationTraits<ChannelT, T1, T2>::serialize(C, *ValOrErr);
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}
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if (auto Err = serializeSeq(C, false))
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return Err;
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return serializeSeq(C, ValOrErr.takeError());
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}
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static Error deserialize(ChannelT &C, Expected<T2> &ValOrErr) {
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ExpectedAsOutParameter<T2> EAO(&ValOrErr);
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bool HasValue;
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if (auto Err = deserializeSeq(C, HasValue))
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return Err;
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if (HasValue)
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return SerializationTraits<ChannelT, T1, T2>::deserialize(C, *ValOrErr);
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Error Err = Error::success();
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if (auto E2 = deserializeSeq(C, Err))
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return E2;
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ValOrErr = std::move(Err);
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return Error::success();
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}
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};
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/// SerializationTraits for Expected<T1> from a T2.
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template <typename ChannelT, typename T1, typename T2>
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class SerializationTraits<ChannelT, Expected<T1>, T2> {
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public:
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static Error serialize(ChannelT &C, T2 &&Val) {
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return serializeSeq(C, Expected<T2>(std::forward<T2>(Val)));
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}
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};
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/// SerializationTraits for Expected<T1> from an Error.
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template <typename ChannelT, typename T>
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class SerializationTraits<ChannelT, Expected<T>, Error> {
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public:
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|
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static Error serialize(ChannelT &C, Error &&Err) {
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return serializeSeq(C, Expected<T>(std::move(Err)));
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}
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};
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/// SerializationTraits default specialization for std::pair.
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|
template <typename ChannelT, typename T1, typename T2>
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|
class SerializationTraits<ChannelT, std::pair<T1, T2>> {
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|
public:
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static Error serialize(ChannelT &C, const std::pair<T1, T2> &V) {
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|
return serializeSeq(C, V.first, V.second);
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|
}
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|
|
|
static Error deserialize(ChannelT &C, std::pair<T1, T2> &V) {
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|
return deserializeSeq(C, V.first, V.second);
|
|
}
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|
};
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|
/// SerializationTraits default specialization for std::tuple.
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|
template <typename ChannelT, typename... ArgTs>
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|
class SerializationTraits<ChannelT, std::tuple<ArgTs...>> {
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|
public:
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|
|
|
/// RPC channel serialization for std::tuple.
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|
static Error serialize(ChannelT &C, const std::tuple<ArgTs...> &V) {
|
|
return serializeTupleHelper(C, V, llvm::index_sequence_for<ArgTs...>());
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|
}
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|
|
|
/// RPC channel deserialization for std::tuple.
|
|
static Error deserialize(ChannelT &C, std::tuple<ArgTs...> &V) {
|
|
return deserializeTupleHelper(C, V, llvm::index_sequence_for<ArgTs...>());
|
|
}
|
|
|
|
private:
|
|
// Serialization helper for std::tuple.
|
|
template <size_t... Is>
|
|
static Error serializeTupleHelper(ChannelT &C, const std::tuple<ArgTs...> &V,
|
|
llvm::index_sequence<Is...> _) {
|
|
return serializeSeq(C, std::get<Is>(V)...);
|
|
}
|
|
|
|
// Serialization helper for std::tuple.
|
|
template <size_t... Is>
|
|
static Error deserializeTupleHelper(ChannelT &C, std::tuple<ArgTs...> &V,
|
|
llvm::index_sequence<Is...> _) {
|
|
return deserializeSeq(C, std::get<Is>(V)...);
|
|
}
|
|
};
|
|
|
|
/// SerializationTraits default specialization for std::vector.
|
|
template <typename ChannelT, typename T>
|
|
class SerializationTraits<ChannelT, std::vector<T>> {
|
|
public:
|
|
|
|
/// Serialize a std::vector<T> from std::vector<T>.
|
|
static Error serialize(ChannelT &C, const std::vector<T> &V) {
|
|
if (auto Err = serializeSeq(C, static_cast<uint64_t>(V.size())))
|
|
return Err;
|
|
|
|
for (const auto &E : V)
|
|
if (auto Err = serializeSeq(C, E))
|
|
return Err;
|
|
|
|
return Error::success();
|
|
}
|
|
|
|
/// Deserialize a std::vector<T> to a std::vector<T>.
|
|
static Error deserialize(ChannelT &C, std::vector<T> &V) {
|
|
uint64_t Count = 0;
|
|
if (auto Err = deserializeSeq(C, Count))
|
|
return Err;
|
|
|
|
V.resize(Count);
|
|
for (auto &E : V)
|
|
if (auto Err = deserializeSeq(C, E))
|
|
return Err;
|
|
|
|
return Error::success();
|
|
}
|
|
};
|
|
|
|
} // end namespace rpc
|
|
} // end namespace orc
|
|
} // end namespace llvm
|
|
|
|
#endif // LLVM_EXECUTIONENGINE_ORC_RPCSERIALIZATION_H
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