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overloaded (and simpler). Sean rightly pointed out in code review that we've started using "wrapper pass" as a specific part of the old pass manager, and in fact it is more applicable there. Here, we really have a pass *template* to build a repeated pass, so call it that. llvm-svn: 277689
1034 lines
40 KiB
C++
1034 lines
40 KiB
C++
//===- PassManager.h - Pass management infrastructure -----------*- 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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/// \file
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///
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/// This header defines various interfaces for pass management in LLVM. There
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/// is no "pass" interface in LLVM per se. Instead, an instance of any class
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/// which supports a method to 'run' it over a unit of IR can be used as
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/// a pass. A pass manager is generally a tool to collect a sequence of passes
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/// which run over a particular IR construct, and run each of them in sequence
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/// over each such construct in the containing IR construct. As there is no
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/// containing IR construct for a Module, a manager for passes over modules
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/// forms the base case which runs its managed passes in sequence over the
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/// single module provided.
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///
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/// The core IR library provides managers for running passes over
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/// modules and functions.
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///
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/// * FunctionPassManager can run over a Module, runs each pass over
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/// a Function.
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/// * ModulePassManager must be directly run, runs each pass over the Module.
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///
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/// Note that the implementations of the pass managers use concept-based
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/// polymorphism as outlined in the "Value Semantics and Concept-based
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/// Polymorphism" talk (or its abbreviated sibling "Inheritance Is The Base
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/// Class of Evil") by Sean Parent:
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/// * http://github.com/sean-parent/sean-parent.github.com/wiki/Papers-and-Presentations
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/// * http://www.youtube.com/watch?v=_BpMYeUFXv8
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/// * http://channel9.msdn.com/Events/GoingNative/2013/Inheritance-Is-The-Base-Class-of-Evil
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///
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//===----------------------------------------------------------------------===//
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#ifndef LLVM_IR_PASSMANAGER_H
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#define LLVM_IR_PASSMANAGER_H
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#include "llvm/ADT/DenseMap.h"
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#include "llvm/ADT/STLExtras.h"
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#include "llvm/ADT/SmallPtrSet.h"
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#include "llvm/IR/Function.h"
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#include "llvm/IR/Module.h"
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#include "llvm/IR/PassManagerInternal.h"
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#include "llvm/Support/Debug.h"
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#include "llvm/Support/TypeName.h"
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#include "llvm/Support/raw_ostream.h"
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#include "llvm/Support/type_traits.h"
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#include <list>
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#include <memory>
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#include <vector>
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namespace llvm {
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/// \brief An abstract set of preserved analyses following a transformation pass
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/// run.
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///
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/// When a transformation pass is run, it can return a set of analyses whose
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/// results were preserved by that transformation. The default set is "none",
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/// and preserving analyses must be done explicitly.
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///
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/// There is also an explicit all state which can be used (for example) when
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/// the IR is not mutated at all.
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class PreservedAnalyses {
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public:
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// We have to explicitly define all the special member functions because MSVC
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// refuses to generate them.
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PreservedAnalyses() {}
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PreservedAnalyses(const PreservedAnalyses &Arg)
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: PreservedPassIDs(Arg.PreservedPassIDs) {}
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PreservedAnalyses(PreservedAnalyses &&Arg)
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: PreservedPassIDs(std::move(Arg.PreservedPassIDs)) {}
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friend void swap(PreservedAnalyses &LHS, PreservedAnalyses &RHS) {
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using std::swap;
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swap(LHS.PreservedPassIDs, RHS.PreservedPassIDs);
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}
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PreservedAnalyses &operator=(PreservedAnalyses RHS) {
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swap(*this, RHS);
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return *this;
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}
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/// \brief Convenience factory function for the empty preserved set.
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static PreservedAnalyses none() { return PreservedAnalyses(); }
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/// \brief Construct a special preserved set that preserves all passes.
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static PreservedAnalyses all() {
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PreservedAnalyses PA;
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PA.PreservedPassIDs.insert((void *)AllPassesID);
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return PA;
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}
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/// \brief Mark a particular pass as preserved, adding it to the set.
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template <typename PassT> void preserve() { preserve(PassT::ID()); }
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/// \brief Mark an abstract PassID as preserved, adding it to the set.
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void preserve(void *PassID) {
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if (!areAllPreserved())
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PreservedPassIDs.insert(PassID);
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}
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/// \brief Intersect this set with another in place.
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///
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/// This is a mutating operation on this preserved set, removing all
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/// preserved passes which are not also preserved in the argument.
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void intersect(const PreservedAnalyses &Arg) {
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if (Arg.areAllPreserved())
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return;
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if (areAllPreserved()) {
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PreservedPassIDs = Arg.PreservedPassIDs;
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return;
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}
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for (void *P : PreservedPassIDs)
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if (!Arg.PreservedPassIDs.count(P))
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PreservedPassIDs.erase(P);
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}
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/// \brief Intersect this set with a temporary other set in place.
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///
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/// This is a mutating operation on this preserved set, removing all
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/// preserved passes which are not also preserved in the argument.
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void intersect(PreservedAnalyses &&Arg) {
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if (Arg.areAllPreserved())
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return;
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if (areAllPreserved()) {
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PreservedPassIDs = std::move(Arg.PreservedPassIDs);
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return;
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}
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for (void *P : PreservedPassIDs)
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if (!Arg.PreservedPassIDs.count(P))
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PreservedPassIDs.erase(P);
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}
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/// \brief Query whether a pass is marked as preserved by this set.
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template <typename PassT> bool preserved() const {
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return preserved(PassT::ID());
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}
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/// \brief Query whether an abstract pass ID is marked as preserved by this
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/// set.
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bool preserved(void *PassID) const {
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return PreservedPassIDs.count((void *)AllPassesID) ||
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PreservedPassIDs.count(PassID);
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}
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/// \brief Query whether all of the analyses in the set are preserved.
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bool preserved(PreservedAnalyses Arg) {
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if (Arg.areAllPreserved())
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return areAllPreserved();
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for (void *P : Arg.PreservedPassIDs)
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if (!preserved(P))
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return false;
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return true;
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}
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/// \brief Test whether all passes are preserved.
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///
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/// This is used primarily to optimize for the case of no changes which will
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/// common in many scenarios.
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bool areAllPreserved() const {
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return PreservedPassIDs.count((void *)AllPassesID);
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}
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private:
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// Note that this must not be -1 or -2 as those are already used by the
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// SmallPtrSet.
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static const uintptr_t AllPassesID = (intptr_t)(-3);
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SmallPtrSet<void *, 2> PreservedPassIDs;
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};
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// Forward declare the analysis manager template.
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template <typename IRUnitT> class AnalysisManager;
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/// A CRTP mix-in to automatically provide informational APIs needed for
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/// passes.
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///
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/// This provides some boiler plate for types that are passes.
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template <typename DerivedT> struct PassInfoMixin {
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/// Returns the name of the derived pass type.
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static StringRef name() {
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StringRef Name = getTypeName<DerivedT>();
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if (Name.startswith("llvm::"))
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Name = Name.drop_front(strlen("llvm::"));
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return Name;
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}
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};
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/// A CRTP mix-in to automatically provide informational APIs needed for
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/// analysis passes.
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///
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/// This provides some boiler plate for types that are analysis passes. It
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/// automatically mixes in \c PassInfoMixin and adds informational APIs
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/// specifically used for analyses.
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template <typename DerivedT>
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struct AnalysisInfoMixin : PassInfoMixin<DerivedT> {
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/// Returns an opaque, unique ID for this pass type.
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///
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/// Note that this requires the derived type provide a static member whose
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/// address can be converted to a void pointer.
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///
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/// FIXME: The only reason the derived type needs to provide this rather than
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/// this mixin providing it is due to broken implementations which cannot
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/// correctly unique a templated static so that they have the same addresses
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/// for each instantiation and are definitively emitted once for each
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/// instantiation. The only currently known platform with this limitation are
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/// Windows DLL builds, specifically building each part of LLVM as a DLL. If
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/// we ever remove that build configuration, this mixin can provide the
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/// static PassID as well.
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static void *ID() { return (void *)&DerivedT::PassID; }
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};
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/// \brief Manages a sequence of passes over units of IR.
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///
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/// A pass manager contains a sequence of passes to run over units of IR. It is
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/// itself a valid pass over that unit of IR, and when over some given IR will
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/// run each pass in sequence. This is the primary and most basic building
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/// block of a pass pipeline.
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///
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/// If it is run with an \c AnalysisManager<IRUnitT> argument, it will propagate
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/// that analysis manager to each pass it runs, as well as calling the analysis
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/// manager's invalidation routine with the PreservedAnalyses of each pass it
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/// runs.
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template <typename IRUnitT>
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class PassManager : public PassInfoMixin<PassManager<IRUnitT>> {
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public:
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/// \brief Construct a pass manager.
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///
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/// It can be passed a flag to get debug logging as the passes are run.
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PassManager(bool DebugLogging = false) : DebugLogging(DebugLogging) {}
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// We have to explicitly define all the special member functions because MSVC
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// refuses to generate them.
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PassManager(PassManager &&Arg)
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: Passes(std::move(Arg.Passes)),
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DebugLogging(std::move(Arg.DebugLogging)) {}
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PassManager &operator=(PassManager &&RHS) {
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Passes = std::move(RHS.Passes);
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DebugLogging = std::move(RHS.DebugLogging);
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return *this;
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}
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/// \brief Run all of the passes in this manager over the IR.
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PreservedAnalyses run(IRUnitT &IR, AnalysisManager<IRUnitT> &AM) {
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PreservedAnalyses PA = PreservedAnalyses::all();
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if (DebugLogging)
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dbgs() << "Starting " << getTypeName<IRUnitT>() << " pass manager run.\n";
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for (unsigned Idx = 0, Size = Passes.size(); Idx != Size; ++Idx) {
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if (DebugLogging)
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dbgs() << "Running pass: " << Passes[Idx]->name() << " on "
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<< IR.getName() << "\n";
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PreservedAnalyses PassPA = Passes[Idx]->run(IR, AM);
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// Update the analysis manager as each pass runs and potentially
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// invalidates analyses. We also update the preserved set of analyses
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// based on what analyses we have already handled the invalidation for
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// here and don't need to invalidate when finished.
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PassPA = AM.invalidate(IR, std::move(PassPA));
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// Finally, we intersect the final preserved analyses to compute the
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// aggregate preserved set for this pass manager.
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PA.intersect(std::move(PassPA));
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// FIXME: Historically, the pass managers all called the LLVM context's
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// yield function here. We don't have a generic way to acquire the
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// context and it isn't yet clear what the right pattern is for yielding
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// in the new pass manager so it is currently omitted.
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//IR.getContext().yield();
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}
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if (DebugLogging)
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dbgs() << "Finished " << getTypeName<IRUnitT>() << " pass manager run.\n";
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return PA;
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}
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template <typename PassT> void addPass(PassT Pass) {
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typedef detail::PassModel<IRUnitT, PassT> PassModelT;
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Passes.emplace_back(new PassModelT(std::move(Pass)));
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}
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private:
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typedef detail::PassConcept<IRUnitT> PassConceptT;
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PassManager(const PassManager &) = delete;
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PassManager &operator=(const PassManager &) = delete;
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std::vector<std::unique_ptr<PassConceptT>> Passes;
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/// \brief Flag indicating whether we should do debug logging.
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bool DebugLogging;
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};
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extern template class PassManager<Module>;
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/// \brief Convenience typedef for a pass manager over modules.
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typedef PassManager<Module> ModulePassManager;
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extern template class PassManager<Function>;
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/// \brief Convenience typedef for a pass manager over functions.
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typedef PassManager<Function> FunctionPassManager;
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namespace detail {
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/// \brief A CRTP base used to implement analysis managers.
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///
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/// This class template serves as the boiler plate of an analysis manager. Any
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/// analysis manager can be implemented on top of this base class. Any
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/// implementation will be required to provide specific hooks:
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///
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/// - getResultImpl
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/// - getCachedResultImpl
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/// - invalidateImpl
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///
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/// The details of the call pattern are within.
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///
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/// Note that there is also a generic analysis manager template which implements
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/// the above required functions along with common datastructures used for
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/// managing analyses. This base class is factored so that if you need to
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/// customize the handling of a specific IR unit, you can do so without
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/// replicating *all* of the boilerplate.
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template <typename DerivedT, typename IRUnitT> class AnalysisManagerBase {
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DerivedT *derived_this() { return static_cast<DerivedT *>(this); }
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const DerivedT *derived_this() const {
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return static_cast<const DerivedT *>(this);
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}
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AnalysisManagerBase(const AnalysisManagerBase &) = delete;
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AnalysisManagerBase &operator=(const AnalysisManagerBase &) = delete;
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protected:
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typedef detail::AnalysisResultConcept<IRUnitT> ResultConceptT;
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typedef detail::AnalysisPassConcept<IRUnitT> PassConceptT;
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// FIXME: Provide template aliases for the models when we're using C++11 in
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// a mode supporting them.
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// We have to explicitly define all the special member functions because MSVC
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// refuses to generate them.
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AnalysisManagerBase() {}
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AnalysisManagerBase(AnalysisManagerBase &&Arg)
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: AnalysisPasses(std::move(Arg.AnalysisPasses)) {}
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AnalysisManagerBase &operator=(AnalysisManagerBase &&RHS) {
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AnalysisPasses = std::move(RHS.AnalysisPasses);
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return *this;
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}
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public:
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/// \brief Get the result of an analysis pass for this module.
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///
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/// If there is not a valid cached result in the manager already, this will
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/// re-run the analysis to produce a valid result.
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template <typename PassT> typename PassT::Result &getResult(IRUnitT &IR) {
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assert(AnalysisPasses.count(PassT::ID()) &&
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"This analysis pass was not registered prior to being queried");
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ResultConceptT &ResultConcept =
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derived_this()->getResultImpl(PassT::ID(), IR);
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typedef detail::AnalysisResultModel<IRUnitT, PassT, typename PassT::Result>
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ResultModelT;
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return static_cast<ResultModelT &>(ResultConcept).Result;
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}
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/// \brief Get the cached result of an analysis pass for this module.
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///
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/// This method never runs the analysis.
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///
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/// \returns null if there is no cached result.
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template <typename PassT>
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typename PassT::Result *getCachedResult(IRUnitT &IR) const {
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assert(AnalysisPasses.count(PassT::ID()) &&
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"This analysis pass was not registered prior to being queried");
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ResultConceptT *ResultConcept =
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derived_this()->getCachedResultImpl(PassT::ID(), IR);
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if (!ResultConcept)
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return nullptr;
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typedef detail::AnalysisResultModel<IRUnitT, PassT, typename PassT::Result>
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ResultModelT;
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return &static_cast<ResultModelT *>(ResultConcept)->Result;
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}
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/// \brief Register an analysis pass with the manager.
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///
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/// The argument is a callable whose result is a pass. This allows passing in
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/// a lambda to construct the pass.
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///
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/// The pass type registered is the result type of calling the argument. If
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/// that pass has already been registered, then the argument will not be
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/// called and this function will return false. Otherwise, the pass type
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/// becomes registered, with the instance provided by calling the argument
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/// once, and this function returns true.
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///
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/// While this returns whether or not the pass type was already registered,
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/// there in't an independent way to query that as that would be prone to
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/// risky use when *querying* the analysis manager. Instead, the only
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/// supported use case is avoiding duplicate registry of an analysis. This
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/// interface also lends itself to minimizing the number of times we have to
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/// do lookups for analyses or construct complex passes only to throw them
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/// away.
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template <typename PassBuilderT> bool registerPass(PassBuilderT PassBuilder) {
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typedef decltype(PassBuilder()) PassT;
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typedef detail::AnalysisPassModel<IRUnitT, PassT> PassModelT;
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auto &PassPtr = AnalysisPasses[PassT::ID()];
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if (PassPtr)
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// Already registered this pass type!
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return false;
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// Construct a new model around the instance returned by the builder.
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PassPtr.reset(new PassModelT(PassBuilder()));
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return true;
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}
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/// \brief Invalidate a specific analysis pass for an IR module.
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///
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/// Note that the analysis result can disregard invalidation.
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template <typename PassT> void invalidate(IRUnitT &IR) {
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assert(AnalysisPasses.count(PassT::ID()) &&
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"This analysis pass was not registered prior to being invalidated");
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derived_this()->invalidateImpl(PassT::ID(), IR);
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}
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/// \brief Invalidate analyses cached for an IR unit.
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///
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/// Walk through all of the analyses pertaining to this unit of IR and
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/// invalidate them unless they are preserved by the PreservedAnalyses set.
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/// We accept the PreservedAnalyses set by value and update it with each
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/// analyis pass which has been successfully invalidated and thus can be
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/// preserved going forward. The updated set is returned.
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PreservedAnalyses invalidate(IRUnitT &IR, PreservedAnalyses PA) {
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return derived_this()->invalidateImpl(IR, std::move(PA));
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}
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protected:
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/// \brief Lookup a registered analysis pass.
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PassConceptT &lookupPass(void *PassID) {
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typename AnalysisPassMapT::iterator PI = AnalysisPasses.find(PassID);
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assert(PI != AnalysisPasses.end() &&
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"Analysis passes must be registered prior to being queried!");
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return *PI->second;
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}
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/// \brief Lookup a registered analysis pass.
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const PassConceptT &lookupPass(void *PassID) const {
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typename AnalysisPassMapT::const_iterator PI = AnalysisPasses.find(PassID);
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assert(PI != AnalysisPasses.end() &&
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"Analysis passes must be registered prior to being queried!");
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return *PI->second;
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}
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private:
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/// \brief Map type from module analysis pass ID to pass concept pointer.
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typedef DenseMap<void *, std::unique_ptr<PassConceptT>> AnalysisPassMapT;
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/// \brief Collection of module analysis passes, indexed by ID.
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AnalysisPassMapT AnalysisPasses;
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};
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} // End namespace detail
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/// \brief A generic analysis pass manager with lazy running and caching of
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/// results.
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///
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/// This analysis manager can be used for any IR unit where the address of the
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/// IR unit sufficies as its identity. It manages the cache for a unit of IR via
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/// the address of each unit of IR cached.
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template <typename IRUnitT>
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class AnalysisManager
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: public detail::AnalysisManagerBase<AnalysisManager<IRUnitT>, IRUnitT> {
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friend class detail::AnalysisManagerBase<AnalysisManager<IRUnitT>, IRUnitT>;
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typedef detail::AnalysisManagerBase<AnalysisManager<IRUnitT>, IRUnitT> BaseT;
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typedef typename BaseT::ResultConceptT ResultConceptT;
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typedef typename BaseT::PassConceptT PassConceptT;
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public:
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// Most public APIs are inherited from the CRTP base class.
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|
|
|
/// \brief Construct an empty analysis manager.
|
|
///
|
|
/// A flag can be passed to indicate that the manager should perform debug
|
|
/// logging.
|
|
AnalysisManager(bool DebugLogging = false) : DebugLogging(DebugLogging) {}
|
|
|
|
// We have to explicitly define all the special member functions because MSVC
|
|
// refuses to generate them.
|
|
AnalysisManager(AnalysisManager &&Arg)
|
|
: BaseT(std::move(static_cast<BaseT &>(Arg))),
|
|
AnalysisResults(std::move(Arg.AnalysisResults)),
|
|
DebugLogging(std::move(Arg.DebugLogging)) {}
|
|
AnalysisManager &operator=(AnalysisManager &&RHS) {
|
|
BaseT::operator=(std::move(static_cast<BaseT &>(RHS)));
|
|
AnalysisResults = std::move(RHS.AnalysisResults);
|
|
DebugLogging = std::move(RHS.DebugLogging);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Returns true if the analysis manager has an empty results cache.
|
|
bool empty() const {
|
|
assert(AnalysisResults.empty() == AnalysisResultLists.empty() &&
|
|
"The storage and index of analysis results disagree on how many "
|
|
"there are!");
|
|
return AnalysisResults.empty();
|
|
}
|
|
|
|
/// \brief Clear the analysis result cache.
|
|
///
|
|
/// This routine allows cleaning up when the set of IR units itself has
|
|
/// potentially changed, and thus we can't even look up a a result and
|
|
/// invalidate it directly. Notably, this does *not* call invalidate functions
|
|
/// as there is nothing to be done for them.
|
|
void clear() {
|
|
AnalysisResults.clear();
|
|
AnalysisResultLists.clear();
|
|
}
|
|
|
|
private:
|
|
AnalysisManager(const AnalysisManager &) = delete;
|
|
AnalysisManager &operator=(const AnalysisManager &) = delete;
|
|
|
|
/// \brief Get an analysis result, running the pass if necessary.
|
|
ResultConceptT &getResultImpl(void *PassID, IRUnitT &IR) {
|
|
typename AnalysisResultMapT::iterator RI;
|
|
bool Inserted;
|
|
std::tie(RI, Inserted) = AnalysisResults.insert(std::make_pair(
|
|
std::make_pair(PassID, &IR), typename AnalysisResultListT::iterator()));
|
|
|
|
// If we don't have a cached result for this function, look up the pass and
|
|
// run it to produce a result, which we then add to the cache.
|
|
if (Inserted) {
|
|
auto &P = this->lookupPass(PassID);
|
|
if (DebugLogging)
|
|
dbgs() << "Running analysis: " << P.name() << "\n";
|
|
AnalysisResultListT &ResultList = AnalysisResultLists[&IR];
|
|
ResultList.emplace_back(PassID, P.run(IR, *this));
|
|
|
|
// P.run may have inserted elements into AnalysisResults and invalidated
|
|
// RI.
|
|
RI = AnalysisResults.find(std::make_pair(PassID, &IR));
|
|
assert(RI != AnalysisResults.end() && "we just inserted it!");
|
|
|
|
RI->second = std::prev(ResultList.end());
|
|
}
|
|
|
|
return *RI->second->second;
|
|
}
|
|
|
|
/// \brief Get a cached analysis result or return null.
|
|
ResultConceptT *getCachedResultImpl(void *PassID, IRUnitT &IR) const {
|
|
typename AnalysisResultMapT::const_iterator RI =
|
|
AnalysisResults.find(std::make_pair(PassID, &IR));
|
|
return RI == AnalysisResults.end() ? nullptr : &*RI->second->second;
|
|
}
|
|
|
|
/// \brief Invalidate a function pass result.
|
|
void invalidateImpl(void *PassID, IRUnitT &IR) {
|
|
typename AnalysisResultMapT::iterator RI =
|
|
AnalysisResults.find(std::make_pair(PassID, &IR));
|
|
if (RI == AnalysisResults.end())
|
|
return;
|
|
|
|
if (DebugLogging)
|
|
dbgs() << "Invalidating analysis: " << this->lookupPass(PassID).name()
|
|
<< "\n";
|
|
AnalysisResultLists[&IR].erase(RI->second);
|
|
AnalysisResults.erase(RI);
|
|
}
|
|
|
|
/// \brief Invalidate the results for a function..
|
|
PreservedAnalyses invalidateImpl(IRUnitT &IR, PreservedAnalyses PA) {
|
|
// Short circuit for a common case of all analyses being preserved.
|
|
if (PA.areAllPreserved())
|
|
return PA;
|
|
|
|
if (DebugLogging)
|
|
dbgs() << "Invalidating all non-preserved analyses for: " << IR.getName()
|
|
<< "\n";
|
|
|
|
// Clear all the invalidated results associated specifically with this
|
|
// function.
|
|
SmallVector<void *, 8> InvalidatedPassIDs;
|
|
AnalysisResultListT &ResultsList = AnalysisResultLists[&IR];
|
|
for (typename AnalysisResultListT::iterator I = ResultsList.begin(),
|
|
E = ResultsList.end();
|
|
I != E;) {
|
|
void *PassID = I->first;
|
|
|
|
// Pass the invalidation down to the pass itself to see if it thinks it is
|
|
// necessary. The analysis pass can return false if no action on the part
|
|
// of the analysis manager is required for this invalidation event.
|
|
if (I->second->invalidate(IR, PA)) {
|
|
if (DebugLogging)
|
|
dbgs() << "Invalidating analysis: " << this->lookupPass(PassID).name()
|
|
<< "\n";
|
|
|
|
InvalidatedPassIDs.push_back(I->first);
|
|
I = ResultsList.erase(I);
|
|
} else {
|
|
++I;
|
|
}
|
|
|
|
// After handling each pass, we mark it as preserved. Once we've
|
|
// invalidated any stale results, the rest of the system is allowed to
|
|
// start preserving this analysis again.
|
|
PA.preserve(PassID);
|
|
}
|
|
while (!InvalidatedPassIDs.empty())
|
|
AnalysisResults.erase(
|
|
std::make_pair(InvalidatedPassIDs.pop_back_val(), &IR));
|
|
if (ResultsList.empty())
|
|
AnalysisResultLists.erase(&IR);
|
|
|
|
return PA;
|
|
}
|
|
|
|
/// \brief List of function analysis pass IDs and associated concept pointers.
|
|
///
|
|
/// Requires iterators to be valid across appending new entries and arbitrary
|
|
/// erases. Provides both the pass ID and concept pointer such that it is
|
|
/// half of a bijection and provides storage for the actual result concept.
|
|
typedef std::list<std::pair<
|
|
void *, std::unique_ptr<detail::AnalysisResultConcept<IRUnitT>>>>
|
|
AnalysisResultListT;
|
|
|
|
/// \brief Map type from function pointer to our custom list type.
|
|
typedef DenseMap<IRUnitT *, AnalysisResultListT> AnalysisResultListMapT;
|
|
|
|
/// \brief Map from function to a list of function analysis results.
|
|
///
|
|
/// Provides linear time removal of all analysis results for a function and
|
|
/// the ultimate storage for a particular cached analysis result.
|
|
AnalysisResultListMapT AnalysisResultLists;
|
|
|
|
/// \brief Map type from a pair of analysis ID and function pointer to an
|
|
/// iterator into a particular result list.
|
|
typedef DenseMap<std::pair<void *, IRUnitT *>,
|
|
typename AnalysisResultListT::iterator>
|
|
AnalysisResultMapT;
|
|
|
|
/// \brief Map from an analysis ID and function to a particular cached
|
|
/// analysis result.
|
|
AnalysisResultMapT AnalysisResults;
|
|
|
|
/// \brief A flag indicating whether debug logging is enabled.
|
|
bool DebugLogging;
|
|
};
|
|
|
|
extern template class AnalysisManager<Module>;
|
|
/// \brief Convenience typedef for the Module analysis manager.
|
|
typedef AnalysisManager<Module> ModuleAnalysisManager;
|
|
|
|
extern template class AnalysisManager<Function>;
|
|
/// \brief Convenience typedef for the Function analysis manager.
|
|
typedef AnalysisManager<Function> FunctionAnalysisManager;
|
|
|
|
/// \brief A module analysis which acts as a proxy for a function analysis
|
|
/// manager.
|
|
///
|
|
/// This primarily proxies invalidation information from the module analysis
|
|
/// manager and module pass manager to a function analysis manager. You should
|
|
/// never use a function analysis manager from within (transitively) a module
|
|
/// pass manager unless your parent module pass has received a proxy result
|
|
/// object for it.
|
|
///
|
|
/// Note that the proxy's result is a move-only object and represents ownership
|
|
/// of the validity of the analyses in the \c FunctionAnalysisManager it
|
|
/// provides.
|
|
template <typename AnalysisManagerT, typename IRUnitT>
|
|
class InnerAnalysisManagerProxy
|
|
: public AnalysisInfoMixin<
|
|
InnerAnalysisManagerProxy<AnalysisManagerT, IRUnitT>> {
|
|
public:
|
|
class Result {
|
|
public:
|
|
explicit Result(AnalysisManagerT &AM) : AM(&AM) {}
|
|
Result(Result &&Arg) : AM(std::move(Arg.AM)) {
|
|
// We have to null out the analysis manager in the moved-from state
|
|
// because we are taking ownership of the responsibilty to clear the
|
|
// analysis state.
|
|
Arg.AM = nullptr;
|
|
}
|
|
Result &operator=(Result &&RHS) {
|
|
AM = RHS.AM;
|
|
// We have to null out the analysis manager in the moved-from state
|
|
// because we are taking ownership of the responsibilty to clear the
|
|
// analysis state.
|
|
RHS.AM = nullptr;
|
|
return *this;
|
|
}
|
|
~Result() {
|
|
// AM is cleared in a moved from state where there is nothing to do.
|
|
if (!AM)
|
|
return;
|
|
|
|
// Clear out the analysis manager if we're being destroyed -- it means we
|
|
// didn't even see an invalidate call when we got invalidated.
|
|
AM->clear();
|
|
}
|
|
|
|
/// \brief Accessor for the analysis manager.
|
|
AnalysisManagerT &getManager() { return *AM; }
|
|
|
|
/// \brief Handler for invalidation of the module.
|
|
///
|
|
/// If this analysis itself is preserved, then we assume that the set of \c
|
|
/// Function objects in the \c Module hasn't changed and thus we don't need
|
|
/// to invalidate *all* cached data associated with a \c Function* in the \c
|
|
/// FunctionAnalysisManager.
|
|
///
|
|
/// Regardless of whether this analysis is marked as preserved, all of the
|
|
/// analyses in the \c FunctionAnalysisManager are potentially invalidated
|
|
/// based on the set of preserved analyses.
|
|
bool invalidate(IRUnitT &IR, const PreservedAnalyses &PA) {
|
|
// If this proxy isn't marked as preserved, then we can't even invalidate
|
|
// individual function analyses, there may be an invalid set of Function
|
|
// objects in the cache making it impossible to incrementally preserve
|
|
// them. Just clear the entire manager.
|
|
if (!PA.preserved(InnerAnalysisManagerProxy::ID()))
|
|
AM->clear();
|
|
|
|
// Return false to indicate that this result is still a valid proxy.
|
|
return false;
|
|
}
|
|
|
|
private:
|
|
AnalysisManagerT *AM;
|
|
};
|
|
|
|
explicit InnerAnalysisManagerProxy(AnalysisManagerT &AM) : AM(&AM) {}
|
|
// We have to explicitly define all the special member functions because MSVC
|
|
// refuses to generate them.
|
|
InnerAnalysisManagerProxy(const InnerAnalysisManagerProxy &Arg)
|
|
: AM(Arg.AM) {}
|
|
InnerAnalysisManagerProxy(InnerAnalysisManagerProxy &&Arg)
|
|
: AM(std::move(Arg.AM)) {}
|
|
InnerAnalysisManagerProxy &operator=(InnerAnalysisManagerProxy RHS) {
|
|
std::swap(AM, RHS.AM);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Run the analysis pass and create our proxy result object.
|
|
///
|
|
/// This doesn't do any interesting work, it is primarily used to insert our
|
|
/// proxy result object into the module analysis cache so that we can proxy
|
|
/// invalidation to the function analysis manager.
|
|
///
|
|
/// In debug builds, it will also assert that the analysis manager is empty
|
|
/// as no queries should arrive at the function analysis manager prior to
|
|
/// this analysis being requested.
|
|
Result run(IRUnitT &IR, AnalysisManager<IRUnitT> &) { return Result(*AM); }
|
|
|
|
private:
|
|
friend AnalysisInfoMixin<
|
|
InnerAnalysisManagerProxy<AnalysisManagerT, IRUnitT>>;
|
|
static char PassID;
|
|
|
|
AnalysisManagerT *AM;
|
|
};
|
|
|
|
template <typename AnalysisManagerT, typename IRUnitT>
|
|
char InnerAnalysisManagerProxy<AnalysisManagerT, IRUnitT>::PassID;
|
|
|
|
extern template class InnerAnalysisManagerProxy<FunctionAnalysisManager,
|
|
Module>;
|
|
/// Provide the \c FunctionAnalysisManager to \c Module proxy.
|
|
typedef InnerAnalysisManagerProxy<FunctionAnalysisManager, Module>
|
|
FunctionAnalysisManagerModuleProxy;
|
|
|
|
/// \brief A function analysis which acts as a proxy for a module analysis
|
|
/// manager.
|
|
///
|
|
/// This primarily provides an accessor to a parent module analysis manager to
|
|
/// function passes. Only the const interface of the module analysis manager is
|
|
/// provided to indicate that once inside of a function analysis pass you
|
|
/// cannot request a module analysis to actually run. Instead, the user must
|
|
/// rely on the \c getCachedResult API.
|
|
///
|
|
/// This proxy *doesn't* manage the invalidation in any way. That is handled by
|
|
/// the recursive return path of each layer of the pass manager and the
|
|
/// returned PreservedAnalysis set.
|
|
template <typename AnalysisManagerT, typename IRUnitT>
|
|
class OuterAnalysisManagerProxy
|
|
: public AnalysisInfoMixin<
|
|
OuterAnalysisManagerProxy<AnalysisManagerT, IRUnitT>> {
|
|
public:
|
|
/// \brief Result proxy object for \c OuterAnalysisManagerProxy.
|
|
class Result {
|
|
public:
|
|
explicit Result(const AnalysisManagerT &AM) : AM(&AM) {}
|
|
// We have to explicitly define all the special member functions because
|
|
// MSVC refuses to generate them.
|
|
Result(const Result &Arg) : AM(Arg.AM) {}
|
|
Result(Result &&Arg) : AM(std::move(Arg.AM)) {}
|
|
Result &operator=(Result RHS) {
|
|
std::swap(AM, RHS.AM);
|
|
return *this;
|
|
}
|
|
|
|
const AnalysisManagerT &getManager() const { return *AM; }
|
|
|
|
/// \brief Handle invalidation by ignoring it, this pass is immutable.
|
|
bool invalidate(IRUnitT &) { return false; }
|
|
|
|
private:
|
|
const AnalysisManagerT *AM;
|
|
};
|
|
|
|
OuterAnalysisManagerProxy(const AnalysisManagerT &AM) : AM(&AM) {}
|
|
// We have to explicitly define all the special member functions because MSVC
|
|
// refuses to generate them.
|
|
OuterAnalysisManagerProxy(const OuterAnalysisManagerProxy &Arg)
|
|
: AM(Arg.AM) {}
|
|
OuterAnalysisManagerProxy(OuterAnalysisManagerProxy &&Arg)
|
|
: AM(std::move(Arg.AM)) {}
|
|
OuterAnalysisManagerProxy &operator=(OuterAnalysisManagerProxy RHS) {
|
|
std::swap(AM, RHS.AM);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Run the analysis pass and create our proxy result object.
|
|
/// Nothing to see here, it just forwards the \c AM reference into the
|
|
/// result.
|
|
Result run(IRUnitT &, AnalysisManager<IRUnitT> &) { return Result(*AM); }
|
|
|
|
private:
|
|
friend AnalysisInfoMixin<
|
|
OuterAnalysisManagerProxy<AnalysisManagerT, IRUnitT>>;
|
|
static char PassID;
|
|
|
|
const AnalysisManagerT *AM;
|
|
};
|
|
|
|
template <typename AnalysisManagerT, typename IRUnitT>
|
|
char OuterAnalysisManagerProxy<AnalysisManagerT, IRUnitT>::PassID;
|
|
|
|
extern template class OuterAnalysisManagerProxy<ModuleAnalysisManager,
|
|
Function>;
|
|
/// Provide the \c ModuleAnalysisManager to \c Fucntion proxy.
|
|
typedef OuterAnalysisManagerProxy<ModuleAnalysisManager, Function>
|
|
ModuleAnalysisManagerFunctionProxy;
|
|
|
|
/// \brief Trivial adaptor that maps from a module to its functions.
|
|
///
|
|
/// Designed to allow composition of a FunctionPass(Manager) and
|
|
/// a ModulePassManager. Note that if this pass is constructed with a pointer
|
|
/// to a \c ModuleAnalysisManager it will run the
|
|
/// \c FunctionAnalysisManagerModuleProxy analysis prior to running the function
|
|
/// pass over the module to enable a \c FunctionAnalysisManager to be used
|
|
/// within this run safely.
|
|
///
|
|
/// Function passes run within this adaptor can rely on having exclusive access
|
|
/// to the function they are run over. They should not read or modify any other
|
|
/// functions! Other threads or systems may be manipulating other functions in
|
|
/// the module, and so their state should never be relied on.
|
|
/// FIXME: Make the above true for all of LLVM's actual passes, some still
|
|
/// violate this principle.
|
|
///
|
|
/// Function passes can also read the module containing the function, but they
|
|
/// should not modify that module outside of the use lists of various globals.
|
|
/// For example, a function pass is not permitted to add functions to the
|
|
/// module.
|
|
/// FIXME: Make the above true for all of LLVM's actual passes, some still
|
|
/// violate this principle.
|
|
template <typename FunctionPassT>
|
|
class ModuleToFunctionPassAdaptor
|
|
: public PassInfoMixin<ModuleToFunctionPassAdaptor<FunctionPassT>> {
|
|
public:
|
|
explicit ModuleToFunctionPassAdaptor(FunctionPassT Pass)
|
|
: Pass(std::move(Pass)) {}
|
|
// We have to explicitly define all the special member functions because MSVC
|
|
// refuses to generate them.
|
|
ModuleToFunctionPassAdaptor(const ModuleToFunctionPassAdaptor &Arg)
|
|
: Pass(Arg.Pass) {}
|
|
ModuleToFunctionPassAdaptor(ModuleToFunctionPassAdaptor &&Arg)
|
|
: Pass(std::move(Arg.Pass)) {}
|
|
friend void swap(ModuleToFunctionPassAdaptor &LHS,
|
|
ModuleToFunctionPassAdaptor &RHS) {
|
|
using std::swap;
|
|
swap(LHS.Pass, RHS.Pass);
|
|
}
|
|
ModuleToFunctionPassAdaptor &operator=(ModuleToFunctionPassAdaptor RHS) {
|
|
swap(*this, RHS);
|
|
return *this;
|
|
}
|
|
|
|
/// \brief Runs the function pass across every function in the module.
|
|
PreservedAnalyses run(Module &M, ModuleAnalysisManager &AM) {
|
|
// Setup the function analysis manager from its proxy.
|
|
FunctionAnalysisManager &FAM =
|
|
AM.getResult<FunctionAnalysisManagerModuleProxy>(M).getManager();
|
|
|
|
PreservedAnalyses PA = PreservedAnalyses::all();
|
|
for (Function &F : M) {
|
|
if (F.isDeclaration())
|
|
continue;
|
|
|
|
PreservedAnalyses PassPA = Pass.run(F, FAM);
|
|
|
|
// We know that the function pass couldn't have invalidated any other
|
|
// function's analyses (that's the contract of a function pass), so
|
|
// directly handle the function analysis manager's invalidation here and
|
|
// update our preserved set to reflect that these have already been
|
|
// handled.
|
|
PassPA = FAM.invalidate(F, std::move(PassPA));
|
|
|
|
// Then intersect the preserved set so that invalidation of module
|
|
// analyses will eventually occur when the module pass completes.
|
|
PA.intersect(std::move(PassPA));
|
|
}
|
|
|
|
// By definition we preserve the proxy. This precludes *any* invalidation
|
|
// of function analyses by the proxy, but that's OK because we've taken
|
|
// care to invalidate analyses in the function analysis manager
|
|
// incrementally above.
|
|
PA.preserve<FunctionAnalysisManagerModuleProxy>();
|
|
return PA;
|
|
}
|
|
|
|
private:
|
|
FunctionPassT Pass;
|
|
};
|
|
|
|
/// \brief A function to deduce a function pass type and wrap it in the
|
|
/// templated adaptor.
|
|
template <typename FunctionPassT>
|
|
ModuleToFunctionPassAdaptor<FunctionPassT>
|
|
createModuleToFunctionPassAdaptor(FunctionPassT Pass) {
|
|
return ModuleToFunctionPassAdaptor<FunctionPassT>(std::move(Pass));
|
|
}
|
|
|
|
/// \brief A template utility pass to force an analysis result to be available.
|
|
///
|
|
/// This is a no-op pass which simply forces a specific analysis pass's result
|
|
/// to be available when it is run.
|
|
template <typename AnalysisT>
|
|
struct RequireAnalysisPass : PassInfoMixin<RequireAnalysisPass<AnalysisT>> {
|
|
/// \brief Run this pass over some unit of IR.
|
|
///
|
|
/// This pass can be run over any unit of IR and use any analysis manager
|
|
/// provided they satisfy the basic API requirements. When this pass is
|
|
/// created, these methods can be instantiated to satisfy whatever the
|
|
/// context requires.
|
|
template <typename IRUnitT>
|
|
PreservedAnalyses run(IRUnitT &Arg, AnalysisManager<IRUnitT> &AM) {
|
|
(void)AM.template getResult<AnalysisT>(Arg);
|
|
|
|
return PreservedAnalyses::all();
|
|
}
|
|
};
|
|
|
|
/// \brief A template utility pass to force an analysis result to be
|
|
/// invalidated.
|
|
///
|
|
/// This is a no-op pass which simply forces a specific analysis result to be
|
|
/// invalidated when it is run.
|
|
template <typename AnalysisT>
|
|
struct InvalidateAnalysisPass
|
|
: PassInfoMixin<InvalidateAnalysisPass<AnalysisT>> {
|
|
/// \brief Run this pass over some unit of IR.
|
|
///
|
|
/// This pass can be run over any unit of IR and use any analysis manager
|
|
/// provided they satisfy the basic API requirements. When this pass is
|
|
/// created, these methods can be instantiated to satisfy whatever the
|
|
/// context requires.
|
|
template <typename IRUnitT>
|
|
PreservedAnalyses run(IRUnitT &Arg, AnalysisManager<IRUnitT> &AM) {
|
|
// We have to directly invalidate the analysis result as we can't
|
|
// enumerate all other analyses and use the preserved set to control it.
|
|
AM.template invalidate<AnalysisT>(Arg);
|
|
|
|
return PreservedAnalyses::all();
|
|
}
|
|
};
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/// \brief A utility pass that does nothing but preserves no analyses.
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///
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/// As a consequence fo not preserving any analyses, this pass will force all
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/// analysis passes to be re-run to produce fresh results if any are needed.
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struct InvalidateAllAnalysesPass : PassInfoMixin<InvalidateAllAnalysesPass> {
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/// \brief Run this pass over some unit of IR.
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|
template <typename IRUnitT>
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PreservedAnalyses run(IRUnitT &, AnalysisManager<IRUnitT> &) {
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return PreservedAnalyses::none();
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|
}
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};
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|
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/// A utility pass template that simply runs another pass multiple times.
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///
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|
/// This can be useful when debugging or testing passes. It also serves as an
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/// example of how to extend the pass manager in ways beyond composition.
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template <typename PassT>
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class RepeatedPass : public PassInfoMixin<RepeatedPass<PassT>> {
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|
public:
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RepeatedPass(int Count, PassT P) : Count(Count), P(std::move(P)) {}
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|
// We have to explicitly define all the special member functions because MSVC
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|
// refuses to generate them.
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|
RepeatedPass(const RepeatedPass &Arg) : Count(Arg.Count), P(Arg.P) {}
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|
RepeatedPass(RepeatedPass &&Arg) : Count(Arg.Count), P(std::move(Arg.P)) {}
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|
friend void swap(RepeatedPass &LHS, RepeatedPass &RHS) {
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|
using std::swap;
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|
swap(LHS.Count, RHS.Count);
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|
swap(LHS.P, RHS.P);
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|
}
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|
RepeatedPass &operator=(RepeatedPass RHS) {
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|
swap(*this, RHS);
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|
return *this;
|
|
}
|
|
|
|
template <typename IRUnitT, typename... Ts>
|
|
PreservedAnalyses run(IRUnitT &Arg, AnalysisManager<IRUnitT> &AM,
|
|
Ts... Args) {
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|
auto PA = PreservedAnalyses::all();
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|
for (int i = 0; i < Count; ++i)
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|
PA.intersect(P.run(Arg, AM, Args...));
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|
return PA;
|
|
}
|
|
|
|
private:
|
|
int Count;
|
|
PassT P;
|
|
};
|
|
|
|
template <typename PassT>
|
|
RepeatedPass<PassT> createRepeatedPass(int Count, PassT P) {
|
|
return RepeatedPass<PassT>(Count, std::move(P));
|
|
}
|
|
|
|
}
|
|
|
|
#endif
|