非类型模板参数和 std::enable_if_t
Non-type template parameter and std::enable_if_t
我正在尝试做一些持久性的东西,我有一个这样的结构:
struct EntityPersistence {
template <typename Archive>
void persist(Archive &ar, Entity &)
{
}
};
然后,在我的 class 实体中,我有这样的东西:
static const EntityPersistence entityPersistence;
PERSISTENCE_CUSTOM(Entity, entityPersistence)
这个宏做了这样的事情:
#define PERSISTENCE_CUSTOM(Base, customPersistence) \
SERIALIZE(Base, customPersistence)
顺着链条...(这里是重要的地方)
#define SERIALIZE(Base, customPersistence)
template <class Archive>
void serialize(Archive& ar)
{
serialize_custom(ar);
}
template <class Archive, class Base, decltype(customPersistence) &persistence = customPersistence>
std::enable_if_t<std::is_base_of<cereal::InputArchive<Archive>, Archive>::value && has_deserialize<std::remove_const<decltype(customPersistence)>::type, Archive&, Base&>() == true, void>
serialize_custom(Archive &ar)
{
persistence.deserialize(ar, const_cast<Base&>(*this));
}
为了在编译时分支执行代码,检查在 Persistance 结构中实现了哪些函数的一些缺失代码:
template<class> struct sfinae_true : std::true_type{};
template<class T, class A0, class A1>
static auto test_deserialize(int)
-> sfinae_true<decltype(std::declval<T>().deserialize(std::declval<A0>(), std::declval<A1>()))>;
template<class, class A0, class A1>
static auto test_deserialize(long) -> std::false_type;
template<class T, class A0, class A1>
static auto test_persist(int)
-> sfinae_true<decltype(std::declval<T>().persist(std::declval<A0>(), std::declval<A1>()))>;
template<class, class A0, class A1>
static auto test_persist(long) -> std::false_type;
template<class T, class Arg1, class Arg2>
struct has_deserialize : decltype(::detail::test_deserialize<T, Arg1, Arg2>(0)){};
template<class T, class Arg1, class Arg2>
struct has_persist : decltype(::detail::test_persist<T, Arg1, Arg2>(0)){};
有问题的错误:
In member function ‘std::enable_if_t<(std::is_base_of<cereal::InputArchive<Archive>, Archive>::value && (has_deserialize<EntityPersistence, Archive&, Entity&>() == true)), void> Entity::serialize_custom(Archive&)’:
error: ‘const struct EntityPersistence’ has no member named ‘deserialize’
persistence.deserialize(ar, const_cast<Base&>(*this)); \
^
deserialize 函数在 EntityPersistence 中不存在,但是如果 enable_if_t 可以完成它的工作,这个 serialize_custom 专业化也不应该。
我已经在这段代码之外测试了 has_deserialize 结构,它运行良好。这可能与 serialize_custom 函数中的非类型模板参数有关吗?也许它是在 enable_if_t?
之前评估的
提前致谢
不确定,我有足够的元素可以尝试,但是...检查 persistence(serialize_custom() 的模板参数)而不是 customPersistence(这不是serialize_custom()?
的模板参数
我的意思是……下面呢?
template <class Archive, class Base,
decltype(customPersistence) & persistence = customPersistence>
std::enable_if_t<std::is_base_of<cereal::InputArchive<Archive>, Archive>::value
&& has_deserialize<std::remove_const<decltype(persistence)>::type,
Archive&, Base&>() == true> //^^^^^^^^^^^
serialize_custom(Archive &ar)
{
persistence.deserialize(ar, const_cast<Base&>(*this));
}
我终于用中介的方法解决了这个问题(万一有人感兴趣):
template <class Archive>
void serialize(Archive& ar)
{
serialize_custom_helper(ar);
}
template <class Archive, decltype(customPersistence)& persistence = customPersistence> \
void serialize_custom_helper(Archive& ar)
{
serialize_custom(ar, persistence);
}
template <class Archive, class Base, class P>
std::enable_if_t<std::is_base_of<cereal::InputArchive<Archive>, Archive>::value && has_deserialize2<P, Archive&, Base&>() == true, void>
serialize_custom(Archive &ar, P& persistence)
{
persistence.deserialize(ar, const_cast<Base&>(*this));
}
...
我正在尝试做一些持久性的东西,我有一个这样的结构:
struct EntityPersistence {
template <typename Archive>
void persist(Archive &ar, Entity &)
{
}
};
然后,在我的 class 实体中,我有这样的东西:
static const EntityPersistence entityPersistence;
PERSISTENCE_CUSTOM(Entity, entityPersistence)
这个宏做了这样的事情:
#define PERSISTENCE_CUSTOM(Base, customPersistence) \
SERIALIZE(Base, customPersistence)
顺着链条...(这里是重要的地方)
#define SERIALIZE(Base, customPersistence)
template <class Archive>
void serialize(Archive& ar)
{
serialize_custom(ar);
}
template <class Archive, class Base, decltype(customPersistence) &persistence = customPersistence>
std::enable_if_t<std::is_base_of<cereal::InputArchive<Archive>, Archive>::value && has_deserialize<std::remove_const<decltype(customPersistence)>::type, Archive&, Base&>() == true, void>
serialize_custom(Archive &ar)
{
persistence.deserialize(ar, const_cast<Base&>(*this));
}
为了在编译时分支执行代码,检查在 Persistance 结构中实现了哪些函数的一些缺失代码:
template<class> struct sfinae_true : std::true_type{};
template<class T, class A0, class A1>
static auto test_deserialize(int)
-> sfinae_true<decltype(std::declval<T>().deserialize(std::declval<A0>(), std::declval<A1>()))>;
template<class, class A0, class A1>
static auto test_deserialize(long) -> std::false_type;
template<class T, class A0, class A1>
static auto test_persist(int)
-> sfinae_true<decltype(std::declval<T>().persist(std::declval<A0>(), std::declval<A1>()))>;
template<class, class A0, class A1>
static auto test_persist(long) -> std::false_type;
template<class T, class Arg1, class Arg2>
struct has_deserialize : decltype(::detail::test_deserialize<T, Arg1, Arg2>(0)){};
template<class T, class Arg1, class Arg2>
struct has_persist : decltype(::detail::test_persist<T, Arg1, Arg2>(0)){};
有问题的错误:
In member function ‘std::enable_if_t<(std::is_base_of<cereal::InputArchive<Archive>, Archive>::value && (has_deserialize<EntityPersistence, Archive&, Entity&>() == true)), void> Entity::serialize_custom(Archive&)’:
error: ‘const struct EntityPersistence’ has no member named ‘deserialize’
persistence.deserialize(ar, const_cast<Base&>(*this)); \
^
deserialize 函数在 EntityPersistence 中不存在,但是如果 enable_if_t 可以完成它的工作,这个 serialize_custom 专业化也不应该。
我已经在这段代码之外测试了 has_deserialize 结构,它运行良好。这可能与 serialize_custom 函数中的非类型模板参数有关吗?也许它是在 enable_if_t?
提前致谢
不确定,我有足够的元素可以尝试,但是...检查 persistence(serialize_custom() 的模板参数)而不是 customPersistence(这不是serialize_custom()?
我的意思是……下面呢?
template <class Archive, class Base,
decltype(customPersistence) & persistence = customPersistence>
std::enable_if_t<std::is_base_of<cereal::InputArchive<Archive>, Archive>::value
&& has_deserialize<std::remove_const<decltype(persistence)>::type,
Archive&, Base&>() == true> //^^^^^^^^^^^
serialize_custom(Archive &ar)
{
persistence.deserialize(ar, const_cast<Base&>(*this));
}
我终于用中介的方法解决了这个问题(万一有人感兴趣):
template <class Archive>
void serialize(Archive& ar)
{
serialize_custom_helper(ar);
}
template <class Archive, decltype(customPersistence)& persistence = customPersistence> \
void serialize_custom_helper(Archive& ar)
{
serialize_custom(ar, persistence);
}
template <class Archive, class Base, class P>
std::enable_if_t<std::is_base_of<cereal::InputArchive<Archive>, Archive>::value && has_deserialize2<P, Archive&, Base&>() == true, void>
serialize_custom(Archive &ar, P& persistence)
{
persistence.deserialize(ar, const_cast<Base&>(*this));
}
...