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revng-revng/include/revng/TupleTree/Visits.h
Alessandro Di Federico 78be0e9268 Explode TupleTree.h
2022-01-31 16:28:26 +01:00

675 lines
18 KiB
C++

#pragma once
//
// This file is distributed under the MIT License. See LICENSE.md for details.
//
#include <cstdint>
#include <tuple>
#include "revng/ADT/KeyedObjectContainer.h"
#include "revng/ADT/UpcastablePointer.h"
#include "revng/TupleTree/TupleLikeTraits.h"
#include "revng/TupleTree/TupleTreeCompatible.h"
#include "revng/TupleTree/TupleTreePath.h"
//
// visitTupleTree implementation
//
namespace tupletree::detail {
template<size_t I = 0, typename Visitor, typename T>
void visitTuple(Visitor &V, T &Obj) {
if constexpr (I < std::tuple_size_v<T>) {
// Visit the field
visitTupleTree(V, get<I>(Obj));
// Visit next element in tuple
visitTuple<I + 1>(V, Obj);
}
}
} // namespace tupletree::detail
// UpcastablePointerLike-like
template<typename Visitor, UpcastablePointerLike T>
void visitTupleTree(Visitor &V, T &Obj) {
upcast(Obj, [&V](auto &Upcasted) { visitTupleTree(V, Upcasted); });
}
// Tuple-like
template<typename Visitor, HasTupleSize T>
void visitTupleTree(Visitor &V, T &Obj) {
V.PreVisit(Obj);
tupletree::detail::visitTuple(V, Obj);
V.PostVisit(Obj);
}
// Container-like
template<typename Visitor, IsKeyedObjectContainer T>
void visitTupleTree(Visitor &V, T &Obj) {
V.PreVisit(Obj);
using value_type = typename T::value_type;
for (value_type &Element : Obj) {
visitTupleTree(V, Element);
}
V.PostVisit(Obj);
}
// All the others
template<typename Visitor, NotTupleTreeCompatible T>
void visitTupleTree(Visitor &V, T &Element) {
V.PreVisit(Element);
V.PostVisit(Element);
}
template<typename Pre, typename Post, typename T>
void visitTupleTree(T &Element,
const Pre &PreVisitor,
const Post &PostVisitor) {
struct {
const Pre &PreVisit;
const Post &PostVisit;
} Visitor{ PreVisitor, PostVisitor };
visitTupleTree(Visitor, Element);
}
//
// tupleIndexByName
//
template<typename T, size_t I = 0>
size_t tupleIndexByName(llvm::StringRef Name) {
if constexpr (I < std::tuple_size_v<T>) {
llvm::StringRef ThisName = TupleLikeTraits<T>::FieldsName[I];
if (Name == ThisName)
return I;
else
return tupleIndexByName<T, I + 1>(Name);
} else {
return -1;
}
}
//
// getByKey
//
namespace tupletree::detail {
template<typename ResultT, size_t I = 0, typename RootT, typename KeyT>
ResultT *getByKeyTuple(RootT &M, KeyT Key) {
if constexpr (I < std::tuple_size_v<RootT>) {
if (I == Key) {
using tuple_element = typename std::tuple_element<I, RootT>::type;
revng_assert((std::is_same_v<tuple_element, ResultT>) );
return reinterpret_cast<ResultT *>(&get<I>(M));
} else {
return getByKeyTuple<ResultT, I + 1>(M, Key);
}
} else {
return nullptr;
}
}
} // namespace tupletree::detail
template<typename ResultT, UpcastablePointerLike RootT, typename KeyT>
ResultT getByKey(RootT &M, KeyT Key) {
auto Dispatcher = [&](auto &Upcasted) { return getByKey(Upcasted, Key); };
return upcast(M, Dispatcher, ResultT{});
}
template<typename ResultT, HasTupleSize RootT, typename KeyT>
ResultT getByKey(RootT &M, KeyT Key) {
return tupletree::detail::getByKeyTuple<ResultT>(M, Key);
}
template<typename ResultT, IsKeyedObjectContainer RootT, typename KeyT>
ResultT *getByKey(RootT &M, KeyT Key) {
for (auto &Element : M) {
using KOT = KeyedObjectTraits<std::remove_reference_t<decltype(Element)>>;
if (KOT::key(Element) == Key)
return &Element;
}
return nullptr;
}
//
// callOnPathSteps (no instance)
//
template<HasTupleSize RootT, typename Visitor>
bool callOnPathSteps(Visitor &V, llvm::ArrayRef<TupleTreeKeyWrapper> Path);
template<NotTupleTreeCompatible RootT, typename Visitor>
bool callOnPathSteps(Visitor &V, llvm::ArrayRef<TupleTreeKeyWrapper> Path) {
return false;
}
template<NotUpcastablePointerLike RootT, typename Visitor>
bool callOnPathStepsImpl(Visitor &V, llvm::ArrayRef<TupleTreeKeyWrapper> Path) {
return callOnPathSteps<RootT, Visitor>(V, Path.slice(1));
}
template<UpcastablePointerLike RootT, typename Visitor>
bool callOnPathStepsImpl(Visitor &V, llvm::ArrayRef<TupleTreeKeyWrapper> Path) {
auto Dispatcher = [&](auto &Upcasted) {
return callOnPathStepsImpl<std::decay_t<decltype(Upcasted)>>(V, Path);
};
using KOT = KeyedObjectTraits<RootT>;
using key_type = decltype(KOT::key(std::declval<RootT>()));
auto TargetKey = Path[0].get<key_type>();
// TODO: in case of nullptr we should abort
auto Temporary = KeyedObjectTraits<RootT>::fromKey(TargetKey);
return upcast(Temporary, Dispatcher, false);
}
template<IsKeyedObjectContainer RootT, typename Visitor>
bool callOnPathSteps(Visitor &V, llvm::ArrayRef<TupleTreeKeyWrapper> Path) {
using value_type = typename RootT::value_type;
using KOT = KeyedObjectTraits<value_type>;
using key_type = decltype(KOT::key(std::declval<value_type>()));
auto TargetKey = Path[0].get<key_type>();
V.template visitContainerElement<RootT>(TargetKey);
if (Path.size() > 1) {
return callOnPathStepsImpl<value_type>(V, Path);
}
return true;
}
namespace tupletree::detail {
template<typename RootT, size_t I = 0, typename Visitor>
bool callOnPathStepsTuple(Visitor &V,
llvm::ArrayRef<TupleTreeKeyWrapper> Path) {
if constexpr (I < std::tuple_size_v<RootT>) {
if (Path.size() == 0)
return true;
if (Path[0].get<size_t>() == I) {
using next_type = typename std::tuple_element<I, RootT>::type;
V.template visitTupleElement<RootT, I>();
if (Path.size() > 1) {
return callOnPathStepsImpl<next_type>(V, Path);
}
} else {
return callOnPathStepsTuple<RootT, I + 1>(V, Path);
}
}
return true;
}
} // namespace tupletree::detail
template<HasTupleSize RootT, typename Visitor>
bool callOnPathSteps(Visitor &V, llvm::ArrayRef<TupleTreeKeyWrapper> Path) {
return tupletree::detail::callOnPathStepsTuple<RootT>(V, Path);
}
//
// callOnPathSteps (with instance)
//
namespace tupletree::detail {
template<NotTupleTreeCompatible RootT, typename Visitor>
bool callOnPathSteps(Visitor &V,
llvm::ArrayRef<TupleTreeKeyWrapper> Path,
RootT &M) {
return false;
}
template<size_t I = 0, typename RootT, typename Visitor>
bool callOnPathStepsTuple(Visitor &V,
llvm::ArrayRef<TupleTreeKeyWrapper> Path,
RootT &M) {
if constexpr (I < std::tuple_size_v<RootT>) {
if (Path[0].get<size_t>() == I) {
using next_type = typename std::tuple_element<I, RootT>::type;
next_type &Element = get<I>(M);
V.template visitTupleElement<RootT, I>(Element);
if (Path.size() > 1) {
return callOnPathSteps(V, Path.slice(1), Element);
}
} else {
return callOnPathStepsTuple<I + 1>(V, Path, M);
}
}
return true;
}
} // namespace tupletree::detail
template<UpcastablePointerLike RootT, typename Visitor>
bool callOnPathSteps(Visitor &V,
llvm::ArrayRef<TupleTreeKeyWrapper> Path,
RootT &M) {
auto Dispatcher = [&](auto &Upcasted) {
return callOnPathStepsTuple(V, Path, Upcasted);
};
// TODO: in case of nullptr we should abort
return upcast(M, Dispatcher, false);
}
template<HasTupleSize RootT, typename Visitor>
bool callOnPathSteps(Visitor &V,
llvm::ArrayRef<TupleTreeKeyWrapper> Path,
RootT &M) {
return tupletree::detail::callOnPathStepsTuple(V, Path, M);
}
template<IsKeyedObjectContainer RootT, typename Visitor>
bool callOnPathSteps(Visitor &V,
llvm::ArrayRef<TupleTreeKeyWrapper> Path,
RootT &M) {
using value_type = typename RootT::value_type;
using KOT = KeyedObjectTraits<value_type>;
using key_type = decltype(KOT::key(std::declval<value_type>()));
auto TargetKey = Path[0].get<key_type>();
auto It = M.find(TargetKey);
if (It == M.end())
return false;
auto *Matching = &*It;
V.template visitContainerElement<RootT>(TargetKey, *Matching);
if (Path.size() > 1) {
return callOnPathSteps(V, Path.slice(1), *Matching);
}
return true;
}
//
// callByPath (no instance)
//
namespace tupletree::detail {
template<typename Visitor>
struct CallByPathVisitor {
size_t PathSize;
Visitor &V;
template<typename T, int I>
void visitTupleElement() {
--PathSize;
if (PathSize == 0)
V.template visitTupleElement<T, I>();
}
template<typename T, typename KeyT>
void visitContainerElement(KeyT Key) {
PathSize -= 1;
if (PathSize == 0)
V.template visitContainerElement<T>(Key);
}
};
} // namespace tupletree::detail
template<typename RootT, typename Visitor>
bool callByPath(Visitor &V, const TupleTreePath &Path) {
using namespace tupletree::detail;
CallByPathVisitor<Visitor> CBPV{ Path.size(), V };
return callOnPathSteps<RootT>(CBPV, Path.toArrayRef());
}
//
// callByPath (with instance)
//
namespace tupletree::detail {
template<typename Visitor>
struct CallByPathVisitorWithInstance {
size_t PathSize;
Visitor &V;
template<typename T, size_t I, typename K>
void visitTupleElement(K &Element) {
--PathSize;
if (PathSize == 0)
V.template visitTupleElement<T, I>(Element);
}
template<typename T, IsUpcastablePointer K, typename KeyT>
void visitContainerElement(KeyT Key, K &Element) {
PathSize -= 1;
if (PathSize == 0)
V.template visitContainerElement<T>(Key, *Element.get());
}
template<typename T, IsNotUpcastablePointer K, typename KeyT>
void visitContainerElement(KeyT Key, K &Element) {
PathSize -= 1;
if (PathSize == 0)
V.template visitContainerElement<T>(Key, Element);
}
};
} // namespace tupletree::detail
template<typename RootT, typename Visitor>
bool callByPath(Visitor &V, const TupleTreePath &Path, RootT &M) {
using namespace tupletree::detail;
CallByPathVisitorWithInstance<Visitor> CBPV{ Path.size(), V };
return callOnPathSteps(CBPV, Path.toArrayRef(), M);
}
//
// getByPath
//
namespace tupletree::detail {
template<typename ResultT>
struct GetByPathVisitor {
ResultT *Result = nullptr;
template<typename T, typename K, typename KeyT>
void visitContainerElement(KeyT, K &) {
Result = nullptr;
}
template<typename T, typename KeyT>
void visitContainerElement(KeyT, ResultT &Element) {
Result = &Element;
}
template<typename, size_t, typename K>
void visitTupleElement(K &) {
Result = nullptr;
}
template<typename, size_t>
void visitTupleElement(ResultT &Element) {
Result = &Element;
}
};
} // namespace tupletree::detail
template<typename ResultT, typename RootT>
ResultT *getByPath(const TupleTreePath &Path, RootT &M) {
using namespace tupletree::detail;
GetByPathVisitor<ResultT> GBPV;
if (not callByPath(GBPV, Path, M))
return nullptr;
else
return GBPV.Result;
}
//
// pathAsString
//
namespace tupletree::detail {
class DumpPathVisitor {
private:
llvm::raw_string_ostream Stream;
public:
DumpPathVisitor(std::string &Result) : Stream(Result) {}
template<typename T, int I>
void visitTupleElement() {
Stream << "/" << TupleLikeTraits<T>::FieldsName[I];
}
template<typename T, typename KeyT>
void visitContainerElement(KeyT Key) {
Stream << "/" << getNameFromYAMLScalar(Key);
}
};
} // namespace tupletree::detail
template<typename T>
std::optional<std::string> pathAsString(const TupleTreePath &Path) {
std::string Result;
{
tupletree::detail::DumpPathVisitor PV(Result);
if (not callOnPathSteps<T>(PV, Path.toArrayRef()))
return {};
}
return Result;
}
class PathMatcher {
private:
TupleTreePath Path;
std::vector<size_t> Free;
private:
PathMatcher() = default;
public:
template<typename T>
static std::optional<PathMatcher> create(llvm::StringRef Path) {
revng_assert(Path.startswith("/"));
PathMatcher Result;
if (visitTupleTreeNode<T>(Path.substr(1), Result))
return Result;
else
return {};
}
public:
const TupleTreePath &path() const { return Path; }
public:
template<typename... Ts>
TupleTreePath apply(Ts... Args) const {
revng_assert(sizeof...(Args) == Free.size());
TupleTreePath Result = Path;
applyImpl<0, Ts...>(Result, Args...);
return Result;
}
template<typename... Args>
std::optional<std::tuple<Args...>> match(const TupleTreePath &Search) {
revng_assert(sizeof...(Args) == Free.size());
if (Path.size() != Search.size())
return {};
//
// Check non-variable parts match
//
std::vector<size_t> Terminator{ Path.size() };
size_t LastEnd = 0;
for (auto Index : llvm::concat<size_t>(Free, Terminator)) {
for (size_t I = LastEnd; I < Index; ++I) {
if (Search[I] != Path[I])
return {};
}
LastEnd = Index + 1;
}
//
// Compute result
//
std::tuple<Args...> Result;
extractKeys(Search, Result);
return Result;
}
private:
template<size_t I, typename T>
void depositKey(TupleTreePath &Result, T Arg) const {
auto Index = Free.at(I);
Result[Index] = ConcreteTupleTreeKeyWrapper<T>(Arg);
}
template<size_t I, typename T>
void applyImpl(TupleTreePath &Result, T Arg) const {
depositKey<I>(Result, Arg);
}
template<size_t I, typename T, typename... Ts>
void applyImpl(TupleTreePath &Result, T Arg, Ts... Args) const {
depositKey<I>(Result, Arg);
applyImpl<I + 1, Ts...>(Result, Args...);
}
template<typename T, size_t I = 0>
void extractKeys(const TupleTreePath &Search, T &Tuple) const {
if constexpr (I < std::tuple_size_v<T>) {
using element = std::tuple_element_t<I, T>;
std::get<I>(Tuple) = Search[Free[I]].get<element>();
extractKeys<T, I + 1>(Search, Tuple);
}
}
private:
template<typename T, size_t I = 0>
static bool visitTuple(llvm::StringRef Current,
llvm::StringRef Rest,
PathMatcher &Result);
template<UpcastablePointerLike T>
static bool visitTupleTreeNode(llvm::StringRef String, PathMatcher &Result);
template<HasTupleSize T>
static bool visitTupleTreeNode(llvm::StringRef String, PathMatcher &Result);
template<IsKeyedObjectContainer T>
static bool visitTupleTreeNode(llvm::StringRef String, PathMatcher &Result);
template<NotTupleTreeCompatible T>
static bool visitTupleTreeNode(llvm::StringRef Path, PathMatcher &Result);
};
template<UpcastablePointerLike T>
bool PathMatcher::visitTupleTreeNode(llvm::StringRef String,
PathMatcher &Result) {
using element_type = std::remove_reference_t<decltype(*std::declval<T>())>;
return PathMatcher::visitTupleTreeNode<element_type>(String, Result);
}
template<HasTupleSize T>
bool PathMatcher::visitTupleTreeNode(llvm::StringRef String,
PathMatcher &Result) {
if (String.size() == 0)
return true;
auto [Before, After] = String.split('/');
return visitTuple<T>(Before, After, Result);
}
template<IsKeyedObjectContainer T>
bool PathMatcher::visitTupleTreeNode(llvm::StringRef String,
PathMatcher &Result) {
if (String.size() == 0)
return true;
auto [Before, After] = String.split('/');
using Key = std::remove_cv_t<typename T::key_type>;
using Value = typename T::value_type;
if (Before == "*") {
Result.Free.push_back(Result.Path.size());
Result.Path.emplace_back<Key>();
} else {
Result.Path.push_back(getValueFromYAMLScalar<Key>(Before));
}
return visitTupleTreeNode<Value>(After, Result);
}
template<NotTupleTreeCompatible T>
bool PathMatcher::visitTupleTreeNode(llvm::StringRef Path,
PathMatcher &Result) {
return Path.size() == 0;
}
template<typename T, size_t I>
bool PathMatcher::visitTuple(llvm::StringRef Current,
llvm::StringRef Rest,
PathMatcher &Result) {
if constexpr (I < std::tuple_size_v<T>) {
if (TupleLikeTraits<T>::FieldsName[I] == Current) {
Result.Path.push_back(size_t(I));
using element = typename std::tuple_element_t<I, T>;
return PathMatcher::visitTupleTreeNode<element>(Rest, Result);
} else {
return visitTuple<T, I + 1>(Current, Rest, Result);
}
} else {
// Not found
return false;
}
}
template<typename T>
std::optional<TupleTreePath> stringAsPath(llvm::StringRef Path) {
if (Path.empty())
return std::nullopt;
auto Result = PathMatcher::create<T>(Path);
if (Result)
return Result->path();
else
return std::nullopt;
}
template<typename ResultT, typename RootT>
ResultT *getByPath(llvm::StringRef Path, RootT &M) {
auto MaybeKeyVector = stringAsPath<RootT>(Path);
if (not MaybeKeyVector)
return {};
else
return getByPath<ResultT>(*MaybeKeyVector, M);
}
//
// validateTupleTree
//
template<HasTupleSize T, typename L, size_t I = 0>
constexpr bool validateTupleTree(L);
template<typename T, typename L>
constexpr bool validateTupleTree(L);
template<IsKeyedObjectContainer T, typename L>
constexpr bool validateTupleTree(L);
template<UpcastablePointerLike T, typename L>
constexpr bool validateTupleTree(L);
template<UpcastablePointerLike T, typename L>
constexpr bool validateTupleTree(L Check) {
return Check((T *) nullptr)
and validateTupleTree<typename T::element_type>(Check);
}
template<IsKeyedObjectContainer T, typename L>
constexpr bool validateTupleTree(L Check) {
return Check((T *) nullptr)
and validateTupleTree<typename T::value_type>(Check);
}
template<typename T, typename L>
constexpr bool validateTupleTree(L Check) {
return Check((std::remove_const_t<T> *) nullptr);
}
template<HasTupleSize T, typename L, size_t I>
constexpr bool validateTupleTree(L Check) {
if constexpr (I == 0 and not Check((T *) nullptr))
return false;
if constexpr (I < std::tuple_size_v<T>) {
if constexpr (not validateTupleTree<std::tuple_element_t<I, T>>(Check))
return false;
return validateTupleTree<T, L, I + 1>(Check);
}
return true;
}