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Philip Reamesd16a9b12015-02-20 01:06:44 +00001//===- RewriteStatepointsForGC.cpp - Make GC relocations explicit ---------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// Rewrite an existing set of gc.statepoints such that they make potential
11// relocations performed by the garbage collector explicit in the IR.
12//
13//===----------------------------------------------------------------------===//
14
15#include "llvm/Pass.h"
16#include "llvm/Analysis/CFG.h"
Philip Reamesabcdc5e2015-08-27 01:02:28 +000017#include "llvm/Analysis/InstructionSimplify.h"
Igor Laevskye0317182015-05-19 15:59:05 +000018#include "llvm/Analysis/TargetTransformInfo.h"
Philip Reamesd16a9b12015-02-20 01:06:44 +000019#include "llvm/ADT/SetOperations.h"
20#include "llvm/ADT/Statistic.h"
21#include "llvm/ADT/DenseSet.h"
Philip Reames4d80ede2015-04-10 23:11:26 +000022#include "llvm/ADT/SetVector.h"
Swaroop Sridhar665bc9c2015-05-20 01:07:23 +000023#include "llvm/ADT/StringRef.h"
Philip Reames15d55632015-09-09 23:26:08 +000024#include "llvm/ADT/MapVector.h"
Philip Reamesd16a9b12015-02-20 01:06:44 +000025#include "llvm/IR/BasicBlock.h"
26#include "llvm/IR/CallSite.h"
27#include "llvm/IR/Dominators.h"
28#include "llvm/IR/Function.h"
29#include "llvm/IR/IRBuilder.h"
30#include "llvm/IR/InstIterator.h"
31#include "llvm/IR/Instructions.h"
32#include "llvm/IR/Intrinsics.h"
33#include "llvm/IR/IntrinsicInst.h"
34#include "llvm/IR/Module.h"
Sanjoy Das353a19e2015-06-02 22:33:37 +000035#include "llvm/IR/MDBuilder.h"
Philip Reamesd16a9b12015-02-20 01:06:44 +000036#include "llvm/IR/Statepoint.h"
37#include "llvm/IR/Value.h"
38#include "llvm/IR/Verifier.h"
39#include "llvm/Support/Debug.h"
40#include "llvm/Support/CommandLine.h"
41#include "llvm/Transforms/Scalar.h"
42#include "llvm/Transforms/Utils/BasicBlockUtils.h"
43#include "llvm/Transforms/Utils/Cloning.h"
44#include "llvm/Transforms/Utils/Local.h"
45#include "llvm/Transforms/Utils/PromoteMemToReg.h"
46
47#define DEBUG_TYPE "rewrite-statepoints-for-gc"
48
49using namespace llvm;
50
Philip Reamesd16a9b12015-02-20 01:06:44 +000051// Print the liveset found at the insert location
52static cl::opt<bool> PrintLiveSet("spp-print-liveset", cl::Hidden,
53 cl::init(false));
Philip Reames704e78b2015-04-10 22:34:56 +000054static cl::opt<bool> PrintLiveSetSize("spp-print-liveset-size", cl::Hidden,
55 cl::init(false));
Philip Reamesd16a9b12015-02-20 01:06:44 +000056// Print out the base pointers for debugging
Philip Reames704e78b2015-04-10 22:34:56 +000057static cl::opt<bool> PrintBasePointers("spp-print-base-pointers", cl::Hidden,
58 cl::init(false));
Philip Reamesd16a9b12015-02-20 01:06:44 +000059
Igor Laevskye0317182015-05-19 15:59:05 +000060// Cost threshold measuring when it is profitable to rematerialize value instead
61// of relocating it
62static cl::opt<unsigned>
63RematerializationThreshold("spp-rematerialization-threshold", cl::Hidden,
64 cl::init(6));
65
Philip Reamese73300b2015-04-13 16:41:32 +000066#ifdef XDEBUG
67static bool ClobberNonLive = true;
68#else
69static bool ClobberNonLive = false;
70#endif
71static cl::opt<bool, true> ClobberNonLiveOverride("rs4gc-clobber-non-live",
72 cl::location(ClobberNonLive),
73 cl::Hidden);
74
Sanjoy Das25ec1a32015-10-16 02:41:00 +000075static cl::opt<bool> UseDeoptBundles("rs4gc-use-deopt-bundles", cl::Hidden,
76 cl::init(false));
77static cl::opt<bool>
78 AllowStatepointWithNoDeoptInfo("rs4gc-allow-statepoint-with-no-deopt-info",
79 cl::Hidden, cl::init(true));
80
Benjamin Kramer6f665452015-02-20 14:00:58 +000081namespace {
Sanjoy Dasea45f0e2015-06-02 22:33:34 +000082struct RewriteStatepointsForGC : public ModulePass {
Philip Reamesd16a9b12015-02-20 01:06:44 +000083 static char ID; // Pass identification, replacement for typeid
84
Sanjoy Dasea45f0e2015-06-02 22:33:34 +000085 RewriteStatepointsForGC() : ModulePass(ID) {
Philip Reamesd16a9b12015-02-20 01:06:44 +000086 initializeRewriteStatepointsForGCPass(*PassRegistry::getPassRegistry());
87 }
Sanjoy Dasea45f0e2015-06-02 22:33:34 +000088 bool runOnFunction(Function &F);
89 bool runOnModule(Module &M) override {
90 bool Changed = false;
91 for (Function &F : M)
92 Changed |= runOnFunction(F);
Sanjoy Das353a19e2015-06-02 22:33:37 +000093
94 if (Changed) {
95 // stripDereferenceabilityInfo asserts that shouldRewriteStatepointsIn
96 // returns true for at least one function in the module. Since at least
97 // one function changed, we know that the precondition is satisfied.
98 stripDereferenceabilityInfo(M);
99 }
100
Sanjoy Dasea45f0e2015-06-02 22:33:34 +0000101 return Changed;
102 }
Philip Reamesd16a9b12015-02-20 01:06:44 +0000103
104 void getAnalysisUsage(AnalysisUsage &AU) const override {
105 // We add and rewrite a bunch of instructions, but don't really do much
106 // else. We could in theory preserve a lot more analyses here.
107 AU.addRequired<DominatorTreeWrapperPass>();
Igor Laevskye0317182015-05-19 15:59:05 +0000108 AU.addRequired<TargetTransformInfoWrapperPass>();
Philip Reamesd16a9b12015-02-20 01:06:44 +0000109 }
Sanjoy Das353a19e2015-06-02 22:33:37 +0000110
111 /// The IR fed into RewriteStatepointsForGC may have had attributes implying
112 /// dereferenceability that are no longer valid/correct after
113 /// RewriteStatepointsForGC has run. This is because semantically, after
114 /// RewriteStatepointsForGC runs, all calls to gc.statepoint "free" the entire
115 /// heap. stripDereferenceabilityInfo (conservatively) restores correctness
116 /// by erasing all attributes in the module that externally imply
117 /// dereferenceability.
118 ///
119 void stripDereferenceabilityInfo(Module &M);
120
121 // Helpers for stripDereferenceabilityInfo
122 void stripDereferenceabilityInfoFromBody(Function &F);
123 void stripDereferenceabilityInfoFromPrototype(Function &F);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000124};
Benjamin Kramer6f665452015-02-20 14:00:58 +0000125} // namespace
Philip Reamesd16a9b12015-02-20 01:06:44 +0000126
127char RewriteStatepointsForGC::ID = 0;
128
Sanjoy Dasea45f0e2015-06-02 22:33:34 +0000129ModulePass *llvm::createRewriteStatepointsForGCPass() {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000130 return new RewriteStatepointsForGC();
131}
132
133INITIALIZE_PASS_BEGIN(RewriteStatepointsForGC, "rewrite-statepoints-for-gc",
134 "Make relocations explicit at statepoints", false, false)
135INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass)
136INITIALIZE_PASS_END(RewriteStatepointsForGC, "rewrite-statepoints-for-gc",
137 "Make relocations explicit at statepoints", false, false)
138
139namespace {
Philip Reamesdf1ef082015-04-10 22:53:14 +0000140struct GCPtrLivenessData {
141 /// Values defined in this block.
142 DenseMap<BasicBlock *, DenseSet<Value *>> KillSet;
143 /// Values used in this block (and thus live); does not included values
144 /// killed within this block.
145 DenseMap<BasicBlock *, DenseSet<Value *>> LiveSet;
146
147 /// Values live into this basic block (i.e. used by any
148 /// instruction in this basic block or ones reachable from here)
149 DenseMap<BasicBlock *, DenseSet<Value *>> LiveIn;
150
151 /// Values live out of this basic block (i.e. live into
152 /// any successor block)
153 DenseMap<BasicBlock *, DenseSet<Value *>> LiveOut;
154};
155
Philip Reamesd16a9b12015-02-20 01:06:44 +0000156// The type of the internal cache used inside the findBasePointers family
157// of functions. From the callers perspective, this is an opaque type and
158// should not be inspected.
159//
160// In the actual implementation this caches two relations:
161// - The base relation itself (i.e. this pointer is based on that one)
162// - The base defining value relation (i.e. before base_phi insertion)
163// Generally, after the execution of a full findBasePointer call, only the
164// base relation will remain. Internally, we add a mixture of the two
165// types, then update all the second type to the first type
Philip Reamese9c3b9b2015-02-20 22:48:20 +0000166typedef DenseMap<Value *, Value *> DefiningValueMapTy;
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000167typedef DenseSet<Value *> StatepointLiveSetTy;
Sanjoy Das40bdd042015-10-07 21:32:35 +0000168typedef DenseMap<AssertingVH<Instruction>, AssertingVH<Value>>
169 RematerializedValueMapTy;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000170
Philip Reamesd16a9b12015-02-20 01:06:44 +0000171struct PartiallyConstructedSafepointRecord {
Benjamin Kramerdf005cb2015-08-08 18:27:36 +0000172 /// The set of values known to be live across this safepoint
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000173 StatepointLiveSetTy LiveSet;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000174
175 /// Mapping from live pointers to a base-defining-value
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000176 DenseMap<Value *, Value *> PointerToBase;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000177
Philip Reames0a3240f2015-02-20 21:34:11 +0000178 /// The *new* gc.statepoint instruction itself. This produces the token
179 /// that normal path gc.relocates and the gc.result are tied to.
180 Instruction *StatepointToken;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000181
Philip Reamesf2041322015-02-20 19:26:04 +0000182 /// Instruction to which exceptional gc relocates are attached
183 /// Makes it easier to iterate through them during relocationViaAlloca.
184 Instruction *UnwindToken;
Igor Laevskye0317182015-05-19 15:59:05 +0000185
186 /// Record live values we are rematerialized instead of relocating.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000187 /// They are not included into 'LiveSet' field.
Igor Laevskye0317182015-05-19 15:59:05 +0000188 /// Maps rematerialized copy to it's original value.
189 RematerializedValueMapTy RematerializedValues;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000190};
Alexander Kornienkof00654e2015-06-23 09:49:53 +0000191}
Philip Reamesd16a9b12015-02-20 01:06:44 +0000192
Sanjoy Das25ec1a32015-10-16 02:41:00 +0000193static ArrayRef<Use> GetDeoptBundleOperands(ImmutableCallSite CS) {
194 assert(UseDeoptBundles && "Should not be called otherwise!");
195
196 Optional<OperandBundleUse> DeoptBundle = CS.getOperandBundle("deopt");
197
198 if (!DeoptBundle.hasValue()) {
199 assert(AllowStatepointWithNoDeoptInfo &&
200 "Found non-leaf call without deopt info!");
201 return None;
202 }
203
204 return DeoptBundle.getValue().Inputs;
205}
206
Philip Reamesdf1ef082015-04-10 22:53:14 +0000207/// Compute the live-in set for every basic block in the function
208static void computeLiveInValues(DominatorTree &DT, Function &F,
209 GCPtrLivenessData &Data);
210
211/// Given results from the dataflow liveness computation, find the set of live
212/// Values at a particular instruction.
213static void findLiveSetAtInst(Instruction *inst, GCPtrLivenessData &Data,
214 StatepointLiveSetTy &out);
215
Philip Reamesd16a9b12015-02-20 01:06:44 +0000216// TODO: Once we can get to the GCStrategy, this becomes
217// Optional<bool> isGCManagedPointer(const Value *V) const override {
218
Craig Toppere3dcce92015-08-01 22:20:21 +0000219static bool isGCPointerType(Type *T) {
220 if (auto *PT = dyn_cast<PointerType>(T))
Philip Reamesd16a9b12015-02-20 01:06:44 +0000221 // For the sake of this example GC, we arbitrarily pick addrspace(1) as our
222 // GC managed heap. We know that a pointer into this heap needs to be
223 // updated and that no other pointer does.
224 return (1 == PT->getAddressSpace());
225 return false;
226}
227
Philip Reames8531d8c2015-04-10 21:48:25 +0000228// Return true if this type is one which a) is a gc pointer or contains a GC
229// pointer and b) is of a type this code expects to encounter as a live value.
230// (The insertion code will assert that a type which matches (a) and not (b)
Philip Reames704e78b2015-04-10 22:34:56 +0000231// is not encountered.)
Philip Reames8531d8c2015-04-10 21:48:25 +0000232static bool isHandledGCPointerType(Type *T) {
233 // We fully support gc pointers
234 if (isGCPointerType(T))
235 return true;
236 // We partially support vectors of gc pointers. The code will assert if it
237 // can't handle something.
238 if (auto VT = dyn_cast<VectorType>(T))
239 if (isGCPointerType(VT->getElementType()))
240 return true;
241 return false;
242}
243
244#ifndef NDEBUG
245/// Returns true if this type contains a gc pointer whether we know how to
246/// handle that type or not.
247static bool containsGCPtrType(Type *Ty) {
Philip Reames704e78b2015-04-10 22:34:56 +0000248 if (isGCPointerType(Ty))
Philip Reames8531d8c2015-04-10 21:48:25 +0000249 return true;
250 if (VectorType *VT = dyn_cast<VectorType>(Ty))
251 return isGCPointerType(VT->getScalarType());
252 if (ArrayType *AT = dyn_cast<ArrayType>(Ty))
253 return containsGCPtrType(AT->getElementType());
254 if (StructType *ST = dyn_cast<StructType>(Ty))
Philip Reames704e78b2015-04-10 22:34:56 +0000255 return std::any_of(
256 ST->subtypes().begin(), ST->subtypes().end(),
257 [](Type *SubType) { return containsGCPtrType(SubType); });
Philip Reames8531d8c2015-04-10 21:48:25 +0000258 return false;
259}
260
261// Returns true if this is a type which a) is a gc pointer or contains a GC
262// pointer and b) is of a type which the code doesn't expect (i.e. first class
263// aggregates). Used to trip assertions.
264static bool isUnhandledGCPointerType(Type *Ty) {
265 return containsGCPtrType(Ty) && !isHandledGCPointerType(Ty);
266}
267#endif
268
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000269static bool order_by_name(Value *a, Value *b) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000270 if (a->hasName() && b->hasName()) {
271 return -1 == a->getName().compare(b->getName());
272 } else if (a->hasName() && !b->hasName()) {
273 return true;
274 } else if (!a->hasName() && b->hasName()) {
275 return false;
276 } else {
277 // Better than nothing, but not stable
278 return a < b;
279 }
280}
281
Philip Reamesece70b82015-09-09 23:57:18 +0000282// Return the name of the value suffixed with the provided value, or if the
283// value didn't have a name, the default value specified.
284static std::string suffixed_name_or(Value *V, StringRef Suffix,
285 StringRef DefaultName) {
286 return V->hasName() ? (V->getName() + Suffix).str() : DefaultName.str();
287}
288
Philip Reamesdf1ef082015-04-10 22:53:14 +0000289// Conservatively identifies any definitions which might be live at the
290// given instruction. The analysis is performed immediately before the
291// given instruction. Values defined by that instruction are not considered
292// live. Values used by that instruction are considered live.
293static void analyzeParsePointLiveness(
294 DominatorTree &DT, GCPtrLivenessData &OriginalLivenessData,
295 const CallSite &CS, PartiallyConstructedSafepointRecord &result) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000296 Instruction *inst = CS.getInstruction();
297
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000298 StatepointLiveSetTy LiveSet;
299 findLiveSetAtInst(inst, OriginalLivenessData, LiveSet);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000300
301 if (PrintLiveSet) {
302 // Note: This output is used by several of the test cases
Benjamin Kramerdf005cb2015-08-08 18:27:36 +0000303 // The order of elements in a set is not stable, put them in a vec and sort
Philip Reamesd16a9b12015-02-20 01:06:44 +0000304 // by name
Philip Reamesdab35f32015-09-02 21:11:44 +0000305 SmallVector<Value *, 64> Temp;
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000306 Temp.insert(Temp.end(), LiveSet.begin(), LiveSet.end());
Philip Reamesdab35f32015-09-02 21:11:44 +0000307 std::sort(Temp.begin(), Temp.end(), order_by_name);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000308 errs() << "Live Variables:\n";
Philip Reamesdab35f32015-09-02 21:11:44 +0000309 for (Value *V : Temp)
310 dbgs() << " " << V->getName() << " " << *V << "\n";
Philip Reamesd16a9b12015-02-20 01:06:44 +0000311 }
312 if (PrintLiveSetSize) {
313 errs() << "Safepoint For: " << CS.getCalledValue()->getName() << "\n";
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000314 errs() << "Number live values: " << LiveSet.size() << "\n";
Philip Reamesd16a9b12015-02-20 01:06:44 +0000315 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +0000316 result.LiveSet = LiveSet;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000317}
318
Philip Reamesf5b8e472015-09-03 21:34:30 +0000319static bool isKnownBaseResult(Value *V);
320namespace {
321/// A single base defining value - An immediate base defining value for an
322/// instruction 'Def' is an input to 'Def' whose base is also a base of 'Def'.
323/// For instructions which have multiple pointer [vector] inputs or that
324/// transition between vector and scalar types, there is no immediate base
325/// defining value. The 'base defining value' for 'Def' is the transitive
326/// closure of this relation stopping at the first instruction which has no
327/// immediate base defining value. The b.d.v. might itself be a base pointer,
328/// but it can also be an arbitrary derived pointer.
329struct BaseDefiningValueResult {
330 /// Contains the value which is the base defining value.
331 Value * const BDV;
332 /// True if the base defining value is also known to be an actual base
333 /// pointer.
334 const bool IsKnownBase;
335 BaseDefiningValueResult(Value *BDV, bool IsKnownBase)
336 : BDV(BDV), IsKnownBase(IsKnownBase) {
337#ifndef NDEBUG
338 // Check consistency between new and old means of checking whether a BDV is
339 // a base.
340 bool MustBeBase = isKnownBaseResult(BDV);
341 assert(!MustBeBase || MustBeBase == IsKnownBase);
342#endif
343 }
344};
345}
346
347static BaseDefiningValueResult findBaseDefiningValue(Value *I);
Philip Reames311f7102015-05-12 22:19:52 +0000348
Philip Reames8fe7f132015-06-26 22:47:37 +0000349/// Return a base defining value for the 'Index' element of the given vector
350/// instruction 'I'. If Index is null, returns a BDV for the entire vector
351/// 'I'. As an optimization, this method will try to determine when the
352/// element is known to already be a base pointer. If this can be established,
353/// the second value in the returned pair will be true. Note that either a
354/// vector or a pointer typed value can be returned. For the former, the
355/// vector returned is a BDV (and possibly a base) of the entire vector 'I'.
356/// If the later, the return pointer is a BDV (or possibly a base) for the
357/// particular element in 'I'.
Philip Reamesf5b8e472015-09-03 21:34:30 +0000358static BaseDefiningValueResult
Philip Reames66287132015-09-09 23:40:12 +0000359findBaseDefiningValueOfVector(Value *I) {
Philip Reames8531d8c2015-04-10 21:48:25 +0000360 assert(I->getType()->isVectorTy() &&
361 cast<VectorType>(I->getType())->getElementType()->isPointerTy() &&
362 "Illegal to ask for the base pointer of a non-pointer type");
363
364 // Each case parallels findBaseDefiningValue below, see that code for
365 // detailed motivation.
366
367 if (isa<Argument>(I))
368 // An incoming argument to the function is a base pointer
Philip Reamesf5b8e472015-09-03 21:34:30 +0000369 return BaseDefiningValueResult(I, true);
Philip Reames8531d8c2015-04-10 21:48:25 +0000370
371 // We shouldn't see the address of a global as a vector value?
372 assert(!isa<GlobalVariable>(I) &&
373 "unexpected global variable found in base of vector");
374
375 // inlining could possibly introduce phi node that contains
376 // undef if callee has multiple returns
377 if (isa<UndefValue>(I))
378 // utterly meaningless, but useful for dealing with partially optimized
379 // code.
Philip Reamesf5b8e472015-09-03 21:34:30 +0000380 return BaseDefiningValueResult(I, true);
Philip Reames8531d8c2015-04-10 21:48:25 +0000381
382 // Due to inheritance, this must be _after_ the global variable and undef
383 // checks
384 if (Constant *Con = dyn_cast<Constant>(I)) {
385 assert(!isa<GlobalVariable>(I) && !isa<UndefValue>(I) &&
386 "order of checks wrong!");
387 assert(Con->isNullValue() && "null is the only case which makes sense");
Philip Reamesf5b8e472015-09-03 21:34:30 +0000388 return BaseDefiningValueResult(Con, true);
Philip Reames8531d8c2015-04-10 21:48:25 +0000389 }
Philip Reames8fe7f132015-06-26 22:47:37 +0000390
Philip Reames8531d8c2015-04-10 21:48:25 +0000391 if (isa<LoadInst>(I))
Philip Reamesf5b8e472015-09-03 21:34:30 +0000392 return BaseDefiningValueResult(I, true);
Philip Reamesf5b8e472015-09-03 21:34:30 +0000393
Philip Reames66287132015-09-09 23:40:12 +0000394 if (isa<InsertElementInst>(I))
Philip Reames8fe7f132015-06-26 22:47:37 +0000395 // We don't know whether this vector contains entirely base pointers or
396 // not. To be conservatively correct, we treat it as a BDV and will
397 // duplicate code as needed to construct a parallel vector of bases.
Philip Reames66287132015-09-09 23:40:12 +0000398 return BaseDefiningValueResult(I, false);
NAKAMURA Takumifb3bd712015-05-25 01:43:23 +0000399
Philip Reames8fe7f132015-06-26 22:47:37 +0000400 if (isa<ShuffleVectorInst>(I))
401 // We don't know whether this vector contains entirely base pointers or
402 // not. To be conservatively correct, we treat it as a BDV and will
403 // duplicate code as needed to construct a parallel vector of bases.
404 // TODO: There a number of local optimizations which could be applied here
405 // for particular sufflevector patterns.
Philip Reamesf5b8e472015-09-03 21:34:30 +0000406 return BaseDefiningValueResult(I, false);
Philip Reames8fe7f132015-06-26 22:47:37 +0000407
408 // A PHI or Select is a base defining value. The outer findBasePointer
409 // algorithm is responsible for constructing a base value for this BDV.
410 assert((isa<SelectInst>(I) || isa<PHINode>(I)) &&
411 "unknown vector instruction - no base found for vector element");
Philip Reamesf5b8e472015-09-03 21:34:30 +0000412 return BaseDefiningValueResult(I, false);
Philip Reames8531d8c2015-04-10 21:48:25 +0000413}
414
Philip Reamesd16a9b12015-02-20 01:06:44 +0000415/// Helper function for findBasePointer - Will return a value which either a)
Philip Reames9ac4e382015-08-12 21:00:20 +0000416/// defines the base pointer for the input, b) blocks the simple search
417/// (i.e. a PHI or Select of two derived pointers), or c) involves a change
418/// from pointer to vector type or back.
Philip Reamesf5b8e472015-09-03 21:34:30 +0000419static BaseDefiningValueResult findBaseDefiningValue(Value *I) {
Philip Reames8fe7f132015-06-26 22:47:37 +0000420 if (I->getType()->isVectorTy())
Philip Reamesf5b8e472015-09-03 21:34:30 +0000421 return findBaseDefiningValueOfVector(I);
Philip Reames8fe7f132015-06-26 22:47:37 +0000422
Philip Reamesd16a9b12015-02-20 01:06:44 +0000423 assert(I->getType()->isPointerTy() &&
424 "Illegal to ask for the base pointer of a non-pointer type");
425
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000426 if (isa<Argument>(I))
Philip Reamesd16a9b12015-02-20 01:06:44 +0000427 // An incoming argument to the function is a base pointer
428 // We should have never reached here if this argument isn't an gc value
Philip Reamesf5b8e472015-09-03 21:34:30 +0000429 return BaseDefiningValueResult(I, true);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000430
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000431 if (isa<GlobalVariable>(I))
Philip Reamesd16a9b12015-02-20 01:06:44 +0000432 // base case
Philip Reamesf5b8e472015-09-03 21:34:30 +0000433 return BaseDefiningValueResult(I, true);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000434
435 // inlining could possibly introduce phi node that contains
436 // undef if callee has multiple returns
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000437 if (isa<UndefValue>(I))
438 // utterly meaningless, but useful for dealing with
439 // partially optimized code.
Philip Reamesf5b8e472015-09-03 21:34:30 +0000440 return BaseDefiningValueResult(I, true);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000441
442 // Due to inheritance, this must be _after_ the global variable and undef
443 // checks
Philip Reames3ea15892015-09-03 21:57:40 +0000444 if (isa<Constant>(I)) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000445 assert(!isa<GlobalVariable>(I) && !isa<UndefValue>(I) &&
446 "order of checks wrong!");
447 // Note: Finding a constant base for something marked for relocation
448 // doesn't really make sense. The most likely case is either a) some
449 // screwed up the address space usage or b) your validating against
450 // compiled C++ code w/o the proper separation. The only real exception
451 // is a null pointer. You could have generic code written to index of
452 // off a potentially null value and have proven it null. We also use
453 // null pointers in dead paths of relocation phis (which we might later
454 // want to find a base pointer for).
Philip Reames3ea15892015-09-03 21:57:40 +0000455 assert(isa<ConstantPointerNull>(I) &&
Philip Reames24c6cd52015-03-27 05:47:00 +0000456 "null is the only case which makes sense");
Philip Reamesf5b8e472015-09-03 21:34:30 +0000457 return BaseDefiningValueResult(I, true);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000458 }
459
460 if (CastInst *CI = dyn_cast<CastInst>(I)) {
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000461 Value *Def = CI->stripPointerCasts();
David Blaikie82ad7872015-02-20 23:44:24 +0000462 // If we find a cast instruction here, it means we've found a cast which is
463 // not simply a pointer cast (i.e. an inttoptr). We don't know how to
464 // handle int->ptr conversion.
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000465 assert(!isa<CastInst>(Def) && "shouldn't find another cast here");
466 return findBaseDefiningValue(Def);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000467 }
468
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000469 if (isa<LoadInst>(I))
Philip Reamesf5b8e472015-09-03 21:34:30 +0000470 // The value loaded is an gc base itself
471 return BaseDefiningValueResult(I, true);
472
Philip Reamesd16a9b12015-02-20 01:06:44 +0000473
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000474 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(I))
475 // The base of this GEP is the base
476 return findBaseDefiningValue(GEP->getPointerOperand());
Philip Reamesd16a9b12015-02-20 01:06:44 +0000477
478 if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(I)) {
479 switch (II->getIntrinsicID()) {
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000480 case Intrinsic::experimental_gc_result_ptr:
Philip Reamesd16a9b12015-02-20 01:06:44 +0000481 default:
482 // fall through to general call handling
483 break;
484 case Intrinsic::experimental_gc_statepoint:
485 case Intrinsic::experimental_gc_result_float:
486 case Intrinsic::experimental_gc_result_int:
487 llvm_unreachable("these don't produce pointers");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000488 case Intrinsic::experimental_gc_relocate: {
489 // Rerunning safepoint insertion after safepoints are already
490 // inserted is not supported. It could probably be made to work,
491 // but why are you doing this? There's no good reason.
492 llvm_unreachable("repeat safepoint insertion is not supported");
493 }
494 case Intrinsic::gcroot:
495 // Currently, this mechanism hasn't been extended to work with gcroot.
496 // There's no reason it couldn't be, but I haven't thought about the
497 // implications much.
498 llvm_unreachable(
499 "interaction with the gcroot mechanism is not supported");
500 }
501 }
502 // We assume that functions in the source language only return base
503 // pointers. This should probably be generalized via attributes to support
504 // both source language and internal functions.
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000505 if (isa<CallInst>(I) || isa<InvokeInst>(I))
Philip Reamesf5b8e472015-09-03 21:34:30 +0000506 return BaseDefiningValueResult(I, true);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000507
508 // I have absolutely no idea how to implement this part yet. It's not
Benjamin Kramerdf005cb2015-08-08 18:27:36 +0000509 // necessarily hard, I just haven't really looked at it yet.
Philip Reamesd16a9b12015-02-20 01:06:44 +0000510 assert(!isa<LandingPadInst>(I) && "Landing Pad is unimplemented");
511
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000512 if (isa<AtomicCmpXchgInst>(I))
Philip Reamesd16a9b12015-02-20 01:06:44 +0000513 // A CAS is effectively a atomic store and load combined under a
514 // predicate. From the perspective of base pointers, we just treat it
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000515 // like a load.
Philip Reamesf5b8e472015-09-03 21:34:30 +0000516 return BaseDefiningValueResult(I, true);
Philip Reames704e78b2015-04-10 22:34:56 +0000517
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000518 assert(!isa<AtomicRMWInst>(I) && "Xchg handled above, all others are "
Philip Reames704e78b2015-04-10 22:34:56 +0000519 "binary ops which don't apply to pointers");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000520
521 // The aggregate ops. Aggregates can either be in the heap or on the
522 // stack, but in either case, this is simply a field load. As a result,
523 // this is a defining definition of the base just like a load is.
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000524 if (isa<ExtractValueInst>(I))
Philip Reamesf5b8e472015-09-03 21:34:30 +0000525 return BaseDefiningValueResult(I, true);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000526
527 // We should never see an insert vector since that would require we be
528 // tracing back a struct value not a pointer value.
529 assert(!isa<InsertValueInst>(I) &&
530 "Base pointer for a struct is meaningless");
531
Philip Reames9ac4e382015-08-12 21:00:20 +0000532 // An extractelement produces a base result exactly when it's input does.
533 // We may need to insert a parallel instruction to extract the appropriate
534 // element out of the base vector corresponding to the input. Given this,
535 // it's analogous to the phi and select case even though it's not a merge.
Philip Reames66287132015-09-09 23:40:12 +0000536 if (isa<ExtractElementInst>(I))
537 // Note: There a lot of obvious peephole cases here. This are deliberately
538 // handled after the main base pointer inference algorithm to make writing
539 // test cases to exercise that code easier.
540 return BaseDefiningValueResult(I, false);
Philip Reames9ac4e382015-08-12 21:00:20 +0000541
Philip Reamesd16a9b12015-02-20 01:06:44 +0000542 // The last two cases here don't return a base pointer. Instead, they
Benjamin Kramerdf005cb2015-08-08 18:27:36 +0000543 // return a value which dynamically selects from among several base
Philip Reamesd16a9b12015-02-20 01:06:44 +0000544 // derived pointers (each with it's own base potentially). It's the job of
545 // the caller to resolve these.
Philip Reames704e78b2015-04-10 22:34:56 +0000546 assert((isa<SelectInst>(I) || isa<PHINode>(I)) &&
Philip Reamesaa66dfa2015-03-27 05:34:44 +0000547 "missing instruction case in findBaseDefiningValing");
Philip Reamesf5b8e472015-09-03 21:34:30 +0000548 return BaseDefiningValueResult(I, false);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000549}
550
551/// Returns the base defining value for this value.
Philip Reames18d0feb2015-03-27 05:39:32 +0000552static Value *findBaseDefiningValueCached(Value *I, DefiningValueMapTy &Cache) {
553 Value *&Cached = Cache[I];
Benjamin Kramer6f665452015-02-20 14:00:58 +0000554 if (!Cached) {
Philip Reamesf5b8e472015-09-03 21:34:30 +0000555 Cached = findBaseDefiningValue(I).BDV;
Philip Reames2a892a62015-07-23 22:25:26 +0000556 DEBUG(dbgs() << "fBDV-cached: " << I->getName() << " -> "
557 << Cached->getName() << "\n");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000558 }
Philip Reames18d0feb2015-03-27 05:39:32 +0000559 assert(Cache[I] != nullptr);
Benjamin Kramer6f665452015-02-20 14:00:58 +0000560 return Cached;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000561}
562
563/// Return a base pointer for this value if known. Otherwise, return it's
564/// base defining value.
Philip Reames18d0feb2015-03-27 05:39:32 +0000565static Value *findBaseOrBDV(Value *I, DefiningValueMapTy &Cache) {
566 Value *Def = findBaseDefiningValueCached(I, Cache);
567 auto Found = Cache.find(Def);
568 if (Found != Cache.end()) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000569 // Either a base-of relation, or a self reference. Caller must check.
Benjamin Kramer6f665452015-02-20 14:00:58 +0000570 return Found->second;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000571 }
572 // Only a BDV available
Philip Reames18d0feb2015-03-27 05:39:32 +0000573 return Def;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000574}
575
576/// Given the result of a call to findBaseDefiningValue, or findBaseOrBDV,
577/// is it known to be a base pointer? Or do we need to continue searching.
Philip Reames18d0feb2015-03-27 05:39:32 +0000578static bool isKnownBaseResult(Value *V) {
Philip Reames66287132015-09-09 23:40:12 +0000579 if (!isa<PHINode>(V) && !isa<SelectInst>(V) &&
580 !isa<ExtractElementInst>(V) && !isa<InsertElementInst>(V) &&
581 !isa<ShuffleVectorInst>(V)) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000582 // no recursion possible
583 return true;
584 }
Philip Reames18d0feb2015-03-27 05:39:32 +0000585 if (isa<Instruction>(V) &&
586 cast<Instruction>(V)->getMetadata("is_base_value")) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000587 // This is a previously inserted base phi or select. We know
588 // that this is a base value.
589 return true;
590 }
591
592 // We need to keep searching
593 return false;
594}
595
Philip Reamesd16a9b12015-02-20 01:06:44 +0000596namespace {
Philip Reames9b141ed2015-07-23 22:49:14 +0000597/// Models the state of a single base defining value in the findBasePointer
598/// algorithm for determining where a new instruction is needed to propagate
599/// the base of this BDV.
600class BDVState {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000601public:
602 enum Status { Unknown, Base, Conflict };
603
Philip Reames9b141ed2015-07-23 22:49:14 +0000604 BDVState(Status s, Value *b = nullptr) : status(s), base(b) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000605 assert(status != Base || b);
606 }
Philip Reames9b141ed2015-07-23 22:49:14 +0000607 explicit BDVState(Value *b) : status(Base), base(b) {}
608 BDVState() : status(Unknown), base(nullptr) {}
Philip Reamesd16a9b12015-02-20 01:06:44 +0000609
610 Status getStatus() const { return status; }
611 Value *getBase() const { return base; }
612
613 bool isBase() const { return getStatus() == Base; }
614 bool isUnknown() const { return getStatus() == Unknown; }
615 bool isConflict() const { return getStatus() == Conflict; }
616
Philip Reames9b141ed2015-07-23 22:49:14 +0000617 bool operator==(const BDVState &other) const {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000618 return base == other.base && status == other.status;
619 }
620
Philip Reames9b141ed2015-07-23 22:49:14 +0000621 bool operator!=(const BDVState &other) const { return !(*this == other); }
Philip Reamesd16a9b12015-02-20 01:06:44 +0000622
Philip Reames2a892a62015-07-23 22:25:26 +0000623 LLVM_DUMP_METHOD
624 void dump() const { print(dbgs()); dbgs() << '\n'; }
625
626 void print(raw_ostream &OS) const {
Philip Reamesdab35f32015-09-02 21:11:44 +0000627 switch (status) {
628 case Unknown:
629 OS << "U";
630 break;
631 case Base:
632 OS << "B";
633 break;
634 case Conflict:
635 OS << "C";
636 break;
637 };
638 OS << " (" << base << " - "
Philip Reames2a892a62015-07-23 22:25:26 +0000639 << (base ? base->getName() : "nullptr") << "): ";
Philip Reamesd16a9b12015-02-20 01:06:44 +0000640 }
641
642private:
643 Status status;
644 Value *base; // non null only if status == base
645};
Philip Reamesb3967cd2015-09-02 22:30:53 +0000646}
Philip Reamesd16a9b12015-02-20 01:06:44 +0000647
Philip Reames6906e922015-09-02 21:57:17 +0000648#ifndef NDEBUG
Philip Reamesb3967cd2015-09-02 22:30:53 +0000649static raw_ostream &operator<<(raw_ostream &OS, const BDVState &State) {
Philip Reames2a892a62015-07-23 22:25:26 +0000650 State.print(OS);
651 return OS;
652}
Philip Reames6906e922015-09-02 21:57:17 +0000653#endif
Philip Reames2a892a62015-07-23 22:25:26 +0000654
Philip Reamesb3967cd2015-09-02 22:30:53 +0000655namespace {
Philip Reames9b141ed2015-07-23 22:49:14 +0000656// Values of type BDVState form a lattice, and this is a helper
Philip Reamesd16a9b12015-02-20 01:06:44 +0000657// class that implementes the meet operation. The meat of the meet
Philip Reames9b141ed2015-07-23 22:49:14 +0000658// operation is implemented in MeetBDVStates::pureMeet
659class MeetBDVStates {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000660public:
Philip Reames273e6bb2015-07-23 21:41:27 +0000661 /// Initializes the currentResult to the TOP state so that if can be met with
662 /// any other state to produce that state.
Philip Reames9b141ed2015-07-23 22:49:14 +0000663 MeetBDVStates() {}
Philip Reamesd16a9b12015-02-20 01:06:44 +0000664
Philip Reames9b141ed2015-07-23 22:49:14 +0000665 // Destructively meet the current result with the given BDVState
666 void meetWith(BDVState otherState) {
Philip Reames273e6bb2015-07-23 21:41:27 +0000667 currentResult = meet(otherState, currentResult);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000668 }
669
Philip Reames9b141ed2015-07-23 22:49:14 +0000670 BDVState getResult() const { return currentResult; }
Philip Reamesd16a9b12015-02-20 01:06:44 +0000671
672private:
Philip Reames9b141ed2015-07-23 22:49:14 +0000673 BDVState currentResult;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000674
Philip Reames9b141ed2015-07-23 22:49:14 +0000675 /// Perform a meet operation on two elements of the BDVState lattice.
676 static BDVState meet(BDVState LHS, BDVState RHS) {
Philip Reames273e6bb2015-07-23 21:41:27 +0000677 assert((pureMeet(LHS, RHS) == pureMeet(RHS, LHS)) &&
678 "math is wrong: meet does not commute!");
Philip Reames9b141ed2015-07-23 22:49:14 +0000679 BDVState Result = pureMeet(LHS, RHS);
Philip Reames2a892a62015-07-23 22:25:26 +0000680 DEBUG(dbgs() << "meet of " << LHS << " with " << RHS
681 << " produced " << Result << "\n");
682 return Result;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000683 }
684
Philip Reames9b141ed2015-07-23 22:49:14 +0000685 static BDVState pureMeet(const BDVState &stateA, const BDVState &stateB) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000686 switch (stateA.getStatus()) {
Philip Reames9b141ed2015-07-23 22:49:14 +0000687 case BDVState::Unknown:
Philip Reamesd16a9b12015-02-20 01:06:44 +0000688 return stateB;
689
Philip Reames9b141ed2015-07-23 22:49:14 +0000690 case BDVState::Base:
Philip Reamesd16a9b12015-02-20 01:06:44 +0000691 assert(stateA.getBase() && "can't be null");
David Blaikie82ad7872015-02-20 23:44:24 +0000692 if (stateB.isUnknown())
Philip Reamesd16a9b12015-02-20 01:06:44 +0000693 return stateA;
David Blaikie82ad7872015-02-20 23:44:24 +0000694
695 if (stateB.isBase()) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000696 if (stateA.getBase() == stateB.getBase()) {
697 assert(stateA == stateB && "equality broken!");
698 return stateA;
699 }
Philip Reames9b141ed2015-07-23 22:49:14 +0000700 return BDVState(BDVState::Conflict);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000701 }
David Blaikie82ad7872015-02-20 23:44:24 +0000702 assert(stateB.isConflict() && "only three states!");
Philip Reames9b141ed2015-07-23 22:49:14 +0000703 return BDVState(BDVState::Conflict);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000704
Philip Reames9b141ed2015-07-23 22:49:14 +0000705 case BDVState::Conflict:
Philip Reamesd16a9b12015-02-20 01:06:44 +0000706 return stateA;
707 }
Reid Klecknera070ee52015-02-20 19:46:02 +0000708 llvm_unreachable("only three states!");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000709 }
710};
Alexander Kornienkof00654e2015-06-23 09:49:53 +0000711}
Philip Reamesb3967cd2015-09-02 22:30:53 +0000712
713
Philip Reamesd16a9b12015-02-20 01:06:44 +0000714/// For a given value or instruction, figure out what base ptr it's derived
715/// from. For gc objects, this is simply itself. On success, returns a value
716/// which is the base pointer. (This is reliable and can be used for
717/// relocation.) On failure, returns nullptr.
Philip Reamesba198492015-04-14 00:41:34 +0000718static Value *findBasePointer(Value *I, DefiningValueMapTy &cache) {
Philip Reamesd16a9b12015-02-20 01:06:44 +0000719 Value *def = findBaseOrBDV(I, cache);
720
721 if (isKnownBaseResult(def)) {
722 return def;
723 }
724
725 // Here's the rough algorithm:
726 // - For every SSA value, construct a mapping to either an actual base
727 // pointer or a PHI which obscures the base pointer.
728 // - Construct a mapping from PHI to unknown TOP state. Use an
729 // optimistic algorithm to propagate base pointer information. Lattice
730 // looks like:
731 // UNKNOWN
732 // b1 b2 b3 b4
733 // CONFLICT
734 // When algorithm terminates, all PHIs will either have a single concrete
735 // base or be in a conflict state.
736 // - For every conflict, insert a dummy PHI node without arguments. Add
737 // these to the base[Instruction] = BasePtr mapping. For every
738 // non-conflict, add the actual base.
739 // - For every conflict, add arguments for the base[a] of each input
740 // arguments.
741 //
742 // Note: A simpler form of this would be to add the conflict form of all
743 // PHIs without running the optimistic algorithm. This would be
Benjamin Kramerdf005cb2015-08-08 18:27:36 +0000744 // analogous to pessimistic data flow and would likely lead to an
Philip Reamesd16a9b12015-02-20 01:06:44 +0000745 // overall worse solution.
746
Philip Reames29e9ae72015-07-24 00:42:55 +0000747#ifndef NDEBUG
Philip Reames88958b22015-07-24 00:02:11 +0000748 auto isExpectedBDVType = [](Value *BDV) {
Philip Reames66287132015-09-09 23:40:12 +0000749 return isa<PHINode>(BDV) || isa<SelectInst>(BDV) ||
750 isa<ExtractElementInst>(BDV) || isa<InsertElementInst>(BDV);
Philip Reames88958b22015-07-24 00:02:11 +0000751 };
Philip Reames29e9ae72015-07-24 00:42:55 +0000752#endif
Philip Reames88958b22015-07-24 00:02:11 +0000753
754 // Once populated, will contain a mapping from each potentially non-base BDV
755 // to a lattice value (described above) which corresponds to that BDV.
Philip Reames15d55632015-09-09 23:26:08 +0000756 // We use the order of insertion (DFS over the def/use graph) to provide a
757 // stable deterministic ordering for visiting DenseMaps (which are unordered)
758 // below. This is important for deterministic compilation.
Philip Reames34d7a742015-09-10 00:22:49 +0000759 MapVector<Value *, BDVState> States;
Philip Reames15d55632015-09-09 23:26:08 +0000760
761 // Recursively fill in all base defining values reachable from the initial
762 // one for which we don't already know a definite base value for
Philip Reames88958b22015-07-24 00:02:11 +0000763 /* scope */ {
Philip Reames88958b22015-07-24 00:02:11 +0000764 SmallVector<Value*, 16> Worklist;
765 Worklist.push_back(def);
Philip Reames34d7a742015-09-10 00:22:49 +0000766 States.insert(std::make_pair(def, BDVState()));
Philip Reames88958b22015-07-24 00:02:11 +0000767 while (!Worklist.empty()) {
768 Value *Current = Worklist.pop_back_val();
769 assert(!isKnownBaseResult(Current) && "why did it get added?");
770
771 auto visitIncomingValue = [&](Value *InVal) {
772 Value *Base = findBaseOrBDV(InVal, cache);
773 if (isKnownBaseResult(Base))
774 // Known bases won't need new instructions introduced and can be
775 // ignored safely
776 return;
777 assert(isExpectedBDVType(Base) && "the only non-base values "
778 "we see should be base defining values");
Philip Reames34d7a742015-09-10 00:22:49 +0000779 if (States.insert(std::make_pair(Base, BDVState())).second)
Philip Reames88958b22015-07-24 00:02:11 +0000780 Worklist.push_back(Base);
781 };
782 if (PHINode *Phi = dyn_cast<PHINode>(Current)) {
783 for (Value *InVal : Phi->incoming_values())
784 visitIncomingValue(InVal);
Philip Reames9ac4e382015-08-12 21:00:20 +0000785 } else if (SelectInst *Sel = dyn_cast<SelectInst>(Current)) {
Philip Reames88958b22015-07-24 00:02:11 +0000786 visitIncomingValue(Sel->getTrueValue());
787 visitIncomingValue(Sel->getFalseValue());
Philip Reames9ac4e382015-08-12 21:00:20 +0000788 } else if (auto *EE = dyn_cast<ExtractElementInst>(Current)) {
789 visitIncomingValue(EE->getVectorOperand());
Philip Reames66287132015-09-09 23:40:12 +0000790 } else if (auto *IE = dyn_cast<InsertElementInst>(Current)) {
791 visitIncomingValue(IE->getOperand(0)); // vector operand
792 visitIncomingValue(IE->getOperand(1)); // scalar operand
Philip Reames9ac4e382015-08-12 21:00:20 +0000793 } else {
Philip Reames66287132015-09-09 23:40:12 +0000794 // There is one known class of instructions we know we don't handle.
795 assert(isa<ShuffleVectorInst>(Current));
Philip Reames9ac4e382015-08-12 21:00:20 +0000796 llvm_unreachable("unimplemented instruction case");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000797 }
798 }
799 }
800
Philip Reamesdab35f32015-09-02 21:11:44 +0000801#ifndef NDEBUG
802 DEBUG(dbgs() << "States after initialization:\n");
Philip Reames34d7a742015-09-10 00:22:49 +0000803 for (auto Pair : States) {
Philip Reamesdab35f32015-09-02 21:11:44 +0000804 DEBUG(dbgs() << " " << Pair.second << " for " << *Pair.first << "\n");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000805 }
Philip Reamesdab35f32015-09-02 21:11:44 +0000806#endif
Philip Reamesd16a9b12015-02-20 01:06:44 +0000807
Philip Reames273e6bb2015-07-23 21:41:27 +0000808 // Return a phi state for a base defining value. We'll generate a new
809 // base state for known bases and expect to find a cached state otherwise.
810 auto getStateForBDV = [&](Value *baseValue) {
811 if (isKnownBaseResult(baseValue))
Philip Reames9b141ed2015-07-23 22:49:14 +0000812 return BDVState(baseValue);
Philip Reames34d7a742015-09-10 00:22:49 +0000813 auto I = States.find(baseValue);
814 assert(I != States.end() && "lookup failed!");
Philip Reames273e6bb2015-07-23 21:41:27 +0000815 return I->second;
816 };
817
Philip Reamesd16a9b12015-02-20 01:06:44 +0000818 bool progress = true;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000819 while (progress) {
Yaron Keren42a7adf2015-02-28 13:11:24 +0000820#ifndef NDEBUG
Philip Reamesb4e55f32015-09-10 00:32:56 +0000821 const size_t oldSize = States.size();
Yaron Keren42a7adf2015-02-28 13:11:24 +0000822#endif
Philip Reamesd16a9b12015-02-20 01:06:44 +0000823 progress = false;
Philip Reames15d55632015-09-09 23:26:08 +0000824 // We're only changing values in this loop, thus safe to keep iterators.
825 // Since this is computing a fixed point, the order of visit does not
826 // effect the result. TODO: We could use a worklist here and make this run
827 // much faster.
Philip Reames34d7a742015-09-10 00:22:49 +0000828 for (auto Pair : States) {
Philip Reamesece70b82015-09-09 23:57:18 +0000829 Value *BDV = Pair.first;
830 assert(!isKnownBaseResult(BDV) && "why did it get added?");
Philip Reames273e6bb2015-07-23 21:41:27 +0000831
Philip Reames9b141ed2015-07-23 22:49:14 +0000832 // Given an input value for the current instruction, return a BDVState
Philip Reames273e6bb2015-07-23 21:41:27 +0000833 // instance which represents the BDV of that value.
834 auto getStateForInput = [&](Value *V) mutable {
835 Value *BDV = findBaseOrBDV(V, cache);
836 return getStateForBDV(BDV);
837 };
838
Philip Reames9b141ed2015-07-23 22:49:14 +0000839 MeetBDVStates calculateMeet;
Philip Reamesece70b82015-09-09 23:57:18 +0000840 if (SelectInst *select = dyn_cast<SelectInst>(BDV)) {
Philip Reames273e6bb2015-07-23 21:41:27 +0000841 calculateMeet.meetWith(getStateForInput(select->getTrueValue()));
842 calculateMeet.meetWith(getStateForInput(select->getFalseValue()));
Philip Reamesece70b82015-09-09 23:57:18 +0000843 } else if (PHINode *Phi = dyn_cast<PHINode>(BDV)) {
Philip Reames9ac4e382015-08-12 21:00:20 +0000844 for (Value *Val : Phi->incoming_values())
Philip Reames273e6bb2015-07-23 21:41:27 +0000845 calculateMeet.meetWith(getStateForInput(Val));
Philip Reamesece70b82015-09-09 23:57:18 +0000846 } else if (auto *EE = dyn_cast<ExtractElementInst>(BDV)) {
Philip Reames9ac4e382015-08-12 21:00:20 +0000847 // The 'meet' for an extractelement is slightly trivial, but it's still
848 // useful in that it drives us to conflict if our input is.
Philip Reames9ac4e382015-08-12 21:00:20 +0000849 calculateMeet.meetWith(getStateForInput(EE->getVectorOperand()));
Philip Reames66287132015-09-09 23:40:12 +0000850 } else {
851 // Given there's a inherent type mismatch between the operands, will
852 // *always* produce Conflict.
Philip Reamesece70b82015-09-09 23:57:18 +0000853 auto *IE = cast<InsertElementInst>(BDV);
Philip Reames66287132015-09-09 23:40:12 +0000854 calculateMeet.meetWith(getStateForInput(IE->getOperand(0)));
855 calculateMeet.meetWith(getStateForInput(IE->getOperand(1)));
Philip Reames9ac4e382015-08-12 21:00:20 +0000856 }
857
Philip Reames34d7a742015-09-10 00:22:49 +0000858 BDVState oldState = States[BDV];
Philip Reames9b141ed2015-07-23 22:49:14 +0000859 BDVState newState = calculateMeet.getResult();
Philip Reamesd16a9b12015-02-20 01:06:44 +0000860 if (oldState != newState) {
861 progress = true;
Philip Reames34d7a742015-09-10 00:22:49 +0000862 States[BDV] = newState;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000863 }
864 }
865
Philip Reamesb4e55f32015-09-10 00:32:56 +0000866 assert(oldSize == States.size() &&
867 "fixed point shouldn't be adding any new nodes to state");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000868 }
869
Philip Reamesdab35f32015-09-02 21:11:44 +0000870#ifndef NDEBUG
871 DEBUG(dbgs() << "States after meet iteration:\n");
Philip Reames34d7a742015-09-10 00:22:49 +0000872 for (auto Pair : States) {
Philip Reamesdab35f32015-09-02 21:11:44 +0000873 DEBUG(dbgs() << " " << Pair.second << " for " << *Pair.first << "\n");
Philip Reamesd16a9b12015-02-20 01:06:44 +0000874 }
Philip Reamesdab35f32015-09-02 21:11:44 +0000875#endif
876
Philip Reamesd16a9b12015-02-20 01:06:44 +0000877 // Insert Phis for all conflicts
Philip Reames2e5bcbe2015-02-28 01:52:09 +0000878 // TODO: adjust naming patterns to avoid this order of iteration dependency
Philip Reames34d7a742015-09-10 00:22:49 +0000879 for (auto Pair : States) {
Philip Reames15d55632015-09-09 23:26:08 +0000880 Instruction *I = cast<Instruction>(Pair.first);
881 BDVState State = Pair.second;
Philip Reames6ff1a1e32015-07-21 19:04:38 +0000882 assert(!isKnownBaseResult(I) && "why did it get added?");
883 assert(!State.isUnknown() && "Optimistic algorithm didn't complete!");
Philip Reames9ac4e382015-08-12 21:00:20 +0000884
885 // extractelement instructions are a bit special in that we may need to
886 // insert an extract even when we know an exact base for the instruction.
887 // The problem is that we need to convert from a vector base to a scalar
888 // base for the particular indice we're interested in.
889 if (State.isBase() && isa<ExtractElementInst>(I) &&
890 isa<VectorType>(State.getBase()->getType())) {
891 auto *EE = cast<ExtractElementInst>(I);
892 // TODO: In many cases, the new instruction is just EE itself. We should
893 // exploit this, but can't do it here since it would break the invariant
894 // about the BDV not being known to be a base.
895 auto *BaseInst = ExtractElementInst::Create(State.getBase(),
896 EE->getIndexOperand(),
897 "base_ee", EE);
898 BaseInst->setMetadata("is_base_value", MDNode::get(I->getContext(), {}));
Philip Reames34d7a742015-09-10 00:22:49 +0000899 States[I] = BDVState(BDVState::Base, BaseInst);
Philip Reames9ac4e382015-08-12 21:00:20 +0000900 }
Philip Reames66287132015-09-09 23:40:12 +0000901
902 // Since we're joining a vector and scalar base, they can never be the
903 // same. As a result, we should always see insert element having reached
904 // the conflict state.
905 if (isa<InsertElementInst>(I)) {
906 assert(State.isConflict());
907 }
Philip Reames9ac4e382015-08-12 21:00:20 +0000908
Philip Reames6ff1a1e32015-07-21 19:04:38 +0000909 if (!State.isConflict())
Philip Reamesf986d682015-02-28 00:54:41 +0000910 continue;
Philip Reames704e78b2015-04-10 22:34:56 +0000911
Philip Reames6ff1a1e32015-07-21 19:04:38 +0000912 /// Create and insert a new instruction which will represent the base of
913 /// the given instruction 'I'.
914 auto MakeBaseInstPlaceholder = [](Instruction *I) -> Instruction* {
915 if (isa<PHINode>(I)) {
916 BasicBlock *BB = I->getParent();
917 int NumPreds = std::distance(pred_begin(BB), pred_end(BB));
918 assert(NumPreds > 0 && "how did we reach here");
Philip Reamesece70b82015-09-09 23:57:18 +0000919 std::string Name = suffixed_name_or(I, ".base", "base_phi");
Philip Reamesfa2c6302015-07-24 19:01:39 +0000920 return PHINode::Create(I->getType(), NumPreds, Name, I);
Philip Reames9ac4e382015-08-12 21:00:20 +0000921 } else if (SelectInst *Sel = dyn_cast<SelectInst>(I)) {
922 // The undef will be replaced later
923 UndefValue *Undef = UndefValue::get(Sel->getType());
Philip Reamesece70b82015-09-09 23:57:18 +0000924 std::string Name = suffixed_name_or(I, ".base", "base_select");
Philip Reames9ac4e382015-08-12 21:00:20 +0000925 return SelectInst::Create(Sel->getCondition(), Undef,
926 Undef, Name, Sel);
Philip Reames66287132015-09-09 23:40:12 +0000927 } else if (auto *EE = dyn_cast<ExtractElementInst>(I)) {
Philip Reames9ac4e382015-08-12 21:00:20 +0000928 UndefValue *Undef = UndefValue::get(EE->getVectorOperand()->getType());
Philip Reamesece70b82015-09-09 23:57:18 +0000929 std::string Name = suffixed_name_or(I, ".base", "base_ee");
Philip Reames9ac4e382015-08-12 21:00:20 +0000930 return ExtractElementInst::Create(Undef, EE->getIndexOperand(), Name,
931 EE);
Philip Reames66287132015-09-09 23:40:12 +0000932 } else {
933 auto *IE = cast<InsertElementInst>(I);
934 UndefValue *VecUndef = UndefValue::get(IE->getOperand(0)->getType());
935 UndefValue *ScalarUndef = UndefValue::get(IE->getOperand(1)->getType());
Philip Reamesece70b82015-09-09 23:57:18 +0000936 std::string Name = suffixed_name_or(I, ".base", "base_ie");
Philip Reames66287132015-09-09 23:40:12 +0000937 return InsertElementInst::Create(VecUndef, ScalarUndef,
938 IE->getOperand(2), Name, IE);
Philip Reames6ff1a1e32015-07-21 19:04:38 +0000939 }
Philip Reames66287132015-09-09 23:40:12 +0000940
Philip Reames6ff1a1e32015-07-21 19:04:38 +0000941 };
942 Instruction *BaseInst = MakeBaseInstPlaceholder(I);
943 // Add metadata marking this as a base value
944 BaseInst->setMetadata("is_base_value", MDNode::get(I->getContext(), {}));
Philip Reames34d7a742015-09-10 00:22:49 +0000945 States[I] = BDVState(BDVState::Conflict, BaseInst);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000946 }
947
Philip Reames3ea15892015-09-03 21:57:40 +0000948 // Returns a instruction which produces the base pointer for a given
949 // instruction. The instruction is assumed to be an input to one of the BDVs
950 // seen in the inference algorithm above. As such, we must either already
951 // know it's base defining value is a base, or have inserted a new
952 // instruction to propagate the base of it's BDV and have entered that newly
953 // introduced instruction into the state table. In either case, we are
954 // assured to be able to determine an instruction which produces it's base
955 // pointer.
956 auto getBaseForInput = [&](Value *Input, Instruction *InsertPt) {
957 Value *BDV = findBaseOrBDV(Input, cache);
958 Value *Base = nullptr;
959 if (isKnownBaseResult(BDV)) {
960 Base = BDV;
961 } else {
962 // Either conflict or base.
Philip Reames34d7a742015-09-10 00:22:49 +0000963 assert(States.count(BDV));
964 Base = States[BDV].getBase();
Philip Reames3ea15892015-09-03 21:57:40 +0000965 }
966 assert(Base && "can't be null");
967 // The cast is needed since base traversal may strip away bitcasts
968 if (Base->getType() != Input->getType() &&
969 InsertPt) {
970 Base = new BitCastInst(Base, Input->getType(), "cast",
971 InsertPt);
972 }
973 return Base;
974 };
975
Philip Reames15d55632015-09-09 23:26:08 +0000976 // Fixup all the inputs of the new PHIs. Visit order needs to be
977 // deterministic and predictable because we're naming newly created
978 // instructions.
Philip Reames34d7a742015-09-10 00:22:49 +0000979 for (auto Pair : States) {
Philip Reames7540e3a2015-09-10 00:01:53 +0000980 Instruction *BDV = cast<Instruction>(Pair.first);
Philip Reamesc8ded462015-09-10 00:27:50 +0000981 BDVState State = Pair.second;
Philip Reamesd16a9b12015-02-20 01:06:44 +0000982
Philip Reames7540e3a2015-09-10 00:01:53 +0000983 assert(!isKnownBaseResult(BDV) && "why did it get added?");
Philip Reamesc8ded462015-09-10 00:27:50 +0000984 assert(!State.isUnknown() && "Optimistic algorithm didn't complete!");
985 if (!State.isConflict())
Philip Reames28e61ce2015-02-28 01:57:44 +0000986 continue;
Philip Reames704e78b2015-04-10 22:34:56 +0000987
Philip Reamesc8ded462015-09-10 00:27:50 +0000988 if (PHINode *basephi = dyn_cast<PHINode>(State.getBase())) {
Philip Reames7540e3a2015-09-10 00:01:53 +0000989 PHINode *phi = cast<PHINode>(BDV);
Philip Reames28e61ce2015-02-28 01:57:44 +0000990 unsigned NumPHIValues = phi->getNumIncomingValues();
991 for (unsigned i = 0; i < NumPHIValues; i++) {
992 Value *InVal = phi->getIncomingValue(i);
993 BasicBlock *InBB = phi->getIncomingBlock(i);
Philip Reamesd16a9b12015-02-20 01:06:44 +0000994
Philip Reames28e61ce2015-02-28 01:57:44 +0000995 // If we've already seen InBB, add the same incoming value
996 // we added for it earlier. The IR verifier requires phi
997 // nodes with multiple entries from the same basic block
998 // to have the same incoming value for each of those
999 // entries. If we don't do this check here and basephi
1000 // has a different type than base, we'll end up adding two
1001 // bitcasts (and hence two distinct values) as incoming
1002 // values for the same basic block.
Philip Reamesd16a9b12015-02-20 01:06:44 +00001003
Philip Reames28e61ce2015-02-28 01:57:44 +00001004 int blockIndex = basephi->getBasicBlockIndex(InBB);
1005 if (blockIndex != -1) {
1006 Value *oldBase = basephi->getIncomingValue(blockIndex);
1007 basephi->addIncoming(oldBase, InBB);
Philip Reames3ea15892015-09-03 21:57:40 +00001008
Philip Reamesd16a9b12015-02-20 01:06:44 +00001009#ifndef NDEBUG
Philip Reames3ea15892015-09-03 21:57:40 +00001010 Value *Base = getBaseForInput(InVal, nullptr);
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001011 // In essence this assert states: the only way two
Philip Reames28e61ce2015-02-28 01:57:44 +00001012 // values incoming from the same basic block may be
1013 // different is by being different bitcasts of the same
1014 // value. A cleanup that remains TODO is changing
1015 // findBaseOrBDV to return an llvm::Value of the correct
1016 // type (and still remain pure). This will remove the
1017 // need to add bitcasts.
Philip Reames3ea15892015-09-03 21:57:40 +00001018 assert(Base->stripPointerCasts() == oldBase->stripPointerCasts() &&
Philip Reames28e61ce2015-02-28 01:57:44 +00001019 "sanity -- findBaseOrBDV should be pure!");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001020#endif
Philip Reames28e61ce2015-02-28 01:57:44 +00001021 continue;
1022 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00001023
Philip Reames3ea15892015-09-03 21:57:40 +00001024 // Find the instruction which produces the base for each input. We may
1025 // need to insert a bitcast in the incoming block.
1026 // TODO: Need to split critical edges if insertion is needed
1027 Value *Base = getBaseForInput(InVal, InBB->getTerminator());
1028 basephi->addIncoming(Base, InBB);
Philip Reames28e61ce2015-02-28 01:57:44 +00001029 }
1030 assert(basephi->getNumIncomingValues() == NumPHIValues);
Philip Reamesc8ded462015-09-10 00:27:50 +00001031 } else if (SelectInst *BaseSel = dyn_cast<SelectInst>(State.getBase())) {
Philip Reames7540e3a2015-09-10 00:01:53 +00001032 SelectInst *Sel = cast<SelectInst>(BDV);
Philip Reames28e61ce2015-02-28 01:57:44 +00001033 // Operand 1 & 2 are true, false path respectively. TODO: refactor to
1034 // something more safe and less hacky.
1035 for (int i = 1; i <= 2; i++) {
Philip Reames3ea15892015-09-03 21:57:40 +00001036 Value *InVal = Sel->getOperand(i);
1037 // Find the instruction which produces the base for each input. We may
1038 // need to insert a bitcast.
1039 Value *Base = getBaseForInput(InVal, BaseSel);
1040 BaseSel->setOperand(i, Base);
Philip Reames28e61ce2015-02-28 01:57:44 +00001041 }
Philip Reamesc8ded462015-09-10 00:27:50 +00001042 } else if (auto *BaseEE = dyn_cast<ExtractElementInst>(State.getBase())) {
Philip Reames7540e3a2015-09-10 00:01:53 +00001043 Value *InVal = cast<ExtractElementInst>(BDV)->getVectorOperand();
Philip Reames3ea15892015-09-03 21:57:40 +00001044 // Find the instruction which produces the base for each input. We may
1045 // need to insert a bitcast.
1046 Value *Base = getBaseForInput(InVal, BaseEE);
Philip Reames9ac4e382015-08-12 21:00:20 +00001047 BaseEE->setOperand(0, Base);
Philip Reames66287132015-09-09 23:40:12 +00001048 } else {
Philip Reamesc8ded462015-09-10 00:27:50 +00001049 auto *BaseIE = cast<InsertElementInst>(State.getBase());
Philip Reames7540e3a2015-09-10 00:01:53 +00001050 auto *BdvIE = cast<InsertElementInst>(BDV);
Philip Reames66287132015-09-09 23:40:12 +00001051 auto UpdateOperand = [&](int OperandIdx) {
1052 Value *InVal = BdvIE->getOperand(OperandIdx);
Philip Reames953817b2015-09-10 00:44:10 +00001053 Value *Base = getBaseForInput(InVal, BaseIE);
Philip Reames66287132015-09-09 23:40:12 +00001054 BaseIE->setOperand(OperandIdx, Base);
1055 };
1056 UpdateOperand(0); // vector operand
1057 UpdateOperand(1); // scalar operand
Philip Reamesd16a9b12015-02-20 01:06:44 +00001058 }
Philip Reames66287132015-09-09 23:40:12 +00001059
Philip Reamesd16a9b12015-02-20 01:06:44 +00001060 }
1061
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001062 // Now that we're done with the algorithm, see if we can optimize the
1063 // results slightly by reducing the number of new instructions needed.
1064 // Arguably, this should be integrated into the algorithm above, but
1065 // doing as a post process step is easier to reason about for the moment.
1066 DenseMap<Value *, Value *> ReverseMap;
1067 SmallPtrSet<Instruction *, 16> NewInsts;
Philip Reames9546f362015-09-02 22:25:07 +00001068 SmallSetVector<AssertingVH<Instruction>, 16> Worklist;
Philip Reames246e6182015-09-03 20:24:29 +00001069 // Note: We need to visit the states in a deterministic order. We uses the
1070 // Keys we sorted above for this purpose. Note that we are papering over a
1071 // bigger problem with the algorithm above - it's visit order is not
1072 // deterministic. A larger change is needed to fix this.
Philip Reames34d7a742015-09-10 00:22:49 +00001073 for (auto Pair : States) {
Philip Reames15d55632015-09-09 23:26:08 +00001074 auto *BDV = Pair.first;
1075 auto State = Pair.second;
Philip Reames246e6182015-09-03 20:24:29 +00001076 Value *Base = State.getBase();
Philip Reames15d55632015-09-09 23:26:08 +00001077 assert(BDV && Base);
1078 assert(!isKnownBaseResult(BDV) && "why did it get added?");
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001079 assert(isKnownBaseResult(Base) &&
1080 "must be something we 'know' is a base pointer");
Philip Reames246e6182015-09-03 20:24:29 +00001081 if (!State.isConflict())
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001082 continue;
1083
Philip Reames15d55632015-09-09 23:26:08 +00001084 ReverseMap[Base] = BDV;
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001085 if (auto *BaseI = dyn_cast<Instruction>(Base)) {
1086 NewInsts.insert(BaseI);
1087 Worklist.insert(BaseI);
1088 }
1089 }
Philip Reames9546f362015-09-02 22:25:07 +00001090 auto ReplaceBaseInstWith = [&](Value *BDV, Instruction *BaseI,
1091 Value *Replacement) {
1092 // Add users which are new instructions (excluding self references)
1093 for (User *U : BaseI->users())
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001094 if (auto *UI = dyn_cast<Instruction>(U))
Philip Reames9546f362015-09-02 22:25:07 +00001095 if (NewInsts.count(UI) && UI != BaseI)
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001096 Worklist.insert(UI);
Philip Reames9546f362015-09-02 22:25:07 +00001097 // Then do the actual replacement
1098 NewInsts.erase(BaseI);
1099 ReverseMap.erase(BaseI);
1100 BaseI->replaceAllUsesWith(Replacement);
1101 BaseI->eraseFromParent();
Philip Reames34d7a742015-09-10 00:22:49 +00001102 assert(States.count(BDV));
1103 assert(States[BDV].isConflict() && States[BDV].getBase() == BaseI);
1104 States[BDV] = BDVState(BDVState::Conflict, Replacement);
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001105 };
1106 const DataLayout &DL = cast<Instruction>(def)->getModule()->getDataLayout();
1107 while (!Worklist.empty()) {
1108 Instruction *BaseI = Worklist.pop_back_val();
Philip Reamesdab35f32015-09-02 21:11:44 +00001109 assert(NewInsts.count(BaseI));
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001110 Value *Bdv = ReverseMap[BaseI];
1111 if (auto *BdvI = dyn_cast<Instruction>(Bdv))
1112 if (BaseI->isIdenticalTo(BdvI)) {
1113 DEBUG(dbgs() << "Identical Base: " << *BaseI << "\n");
Philip Reames9546f362015-09-02 22:25:07 +00001114 ReplaceBaseInstWith(Bdv, BaseI, Bdv);
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001115 continue;
1116 }
1117 if (Value *V = SimplifyInstruction(BaseI, DL)) {
1118 DEBUG(dbgs() << "Base " << *BaseI << " simplified to " << *V << "\n");
Philip Reames9546f362015-09-02 22:25:07 +00001119 ReplaceBaseInstWith(Bdv, BaseI, V);
Philip Reamesabcdc5e2015-08-27 01:02:28 +00001120 continue;
1121 }
1122 }
1123
Philip Reamesd16a9b12015-02-20 01:06:44 +00001124 // Cache all of our results so we can cheaply reuse them
1125 // NOTE: This is actually two caches: one of the base defining value
1126 // relation and one of the base pointer relation! FIXME
Philip Reames34d7a742015-09-10 00:22:49 +00001127 for (auto Pair : States) {
Philip Reames15d55632015-09-09 23:26:08 +00001128 auto *BDV = Pair.first;
1129 Value *base = Pair.second.getBase();
1130 assert(BDV && base);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001131
Philip Reamesece70b82015-09-09 23:57:18 +00001132 std::string fromstr = cache.count(BDV) ? cache[BDV]->getName() : "none";
Philip Reamesdab35f32015-09-02 21:11:44 +00001133 DEBUG(dbgs() << "Updating base value cache"
Philip Reamesece70b82015-09-09 23:57:18 +00001134 << " for: " << BDV->getName()
Philip Reamesdab35f32015-09-02 21:11:44 +00001135 << " from: " << fromstr
Philip Reamesece70b82015-09-09 23:57:18 +00001136 << " to: " << base->getName() << "\n");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001137
Philip Reames15d55632015-09-09 23:26:08 +00001138 if (cache.count(BDV)) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001139 // Once we transition from the BDV relation being store in the cache to
1140 // the base relation being stored, it must be stable
Philip Reames15d55632015-09-09 23:26:08 +00001141 assert((!isKnownBaseResult(cache[BDV]) || cache[BDV] == base) &&
Philip Reamesd16a9b12015-02-20 01:06:44 +00001142 "base relation should be stable");
1143 }
Philip Reames15d55632015-09-09 23:26:08 +00001144 cache[BDV] = base;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001145 }
1146 assert(cache.find(def) != cache.end());
1147 return cache[def];
1148}
1149
1150// For a set of live pointers (base and/or derived), identify the base
1151// pointer of the object which they are derived from. This routine will
1152// mutate the IR graph as needed to make the 'base' pointer live at the
1153// definition site of 'derived'. This ensures that any use of 'derived' can
1154// also use 'base'. This may involve the insertion of a number of
1155// additional PHI nodes.
1156//
1157// preconditions: live is a set of pointer type Values
1158//
1159// side effects: may insert PHI nodes into the existing CFG, will preserve
1160// CFG, will not remove or mutate any existing nodes
1161//
Philip Reamesf2041322015-02-20 19:26:04 +00001162// post condition: PointerToBase contains one (derived, base) pair for every
Philip Reamesd16a9b12015-02-20 01:06:44 +00001163// pointer in live. Note that derived can be equal to base if the original
1164// pointer was a base pointer.
Philip Reames704e78b2015-04-10 22:34:56 +00001165static void
1166findBasePointers(const StatepointLiveSetTy &live,
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001167 DenseMap<Value *, Value *> &PointerToBase,
Philip Reamesba198492015-04-14 00:41:34 +00001168 DominatorTree *DT, DefiningValueMapTy &DVCache) {
Philip Reames2e5bcbe2015-02-28 01:52:09 +00001169 // For the naming of values inserted to be deterministic - which makes for
1170 // much cleaner and more stable tests - we need to assign an order to the
1171 // live values. DenseSets do not provide a deterministic order across runs.
Philip Reames704e78b2015-04-10 22:34:56 +00001172 SmallVector<Value *, 64> Temp;
Philip Reames2e5bcbe2015-02-28 01:52:09 +00001173 Temp.insert(Temp.end(), live.begin(), live.end());
1174 std::sort(Temp.begin(), Temp.end(), order_by_name);
1175 for (Value *ptr : Temp) {
Philip Reamesba198492015-04-14 00:41:34 +00001176 Value *base = findBasePointer(ptr, DVCache);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001177 assert(base && "failed to find base pointer");
Philip Reamesf2041322015-02-20 19:26:04 +00001178 PointerToBase[ptr] = base;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001179 assert((!isa<Instruction>(base) || !isa<Instruction>(ptr) ||
1180 DT->dominates(cast<Instruction>(base)->getParent(),
1181 cast<Instruction>(ptr)->getParent())) &&
1182 "The base we found better dominate the derived pointer");
1183
David Blaikie82ad7872015-02-20 23:44:24 +00001184 // If you see this trip and like to live really dangerously, the code should
1185 // be correct, just with idioms the verifier can't handle. You can try
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001186 // disabling the verifier at your own substantial risk.
Philip Reames704e78b2015-04-10 22:34:56 +00001187 assert(!isa<ConstantPointerNull>(base) &&
Philip Reames24c6cd52015-03-27 05:47:00 +00001188 "the relocation code needs adjustment to handle the relocation of "
1189 "a null pointer constant without causing false positives in the "
1190 "safepoint ir verifier.");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001191 }
1192}
1193
1194/// Find the required based pointers (and adjust the live set) for the given
1195/// parse point.
1196static void findBasePointers(DominatorTree &DT, DefiningValueMapTy &DVCache,
1197 const CallSite &CS,
1198 PartiallyConstructedSafepointRecord &result) {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001199 DenseMap<Value *, Value *> PointerToBase;
1200 findBasePointers(result.LiveSet, PointerToBase, &DT, DVCache);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001201
1202 if (PrintBasePointers) {
Philip Reamesa5aeaf42015-02-28 00:20:48 +00001203 // Note: Need to print these in a stable order since this is checked in
1204 // some tests.
Philip Reamesd16a9b12015-02-20 01:06:44 +00001205 errs() << "Base Pairs (w/o Relocation):\n";
Philip Reames704e78b2015-04-10 22:34:56 +00001206 SmallVector<Value *, 64> Temp;
Philip Reamesa5aeaf42015-02-28 00:20:48 +00001207 Temp.reserve(PointerToBase.size());
Philip Reamesf2041322015-02-20 19:26:04 +00001208 for (auto Pair : PointerToBase) {
Philip Reamesa5aeaf42015-02-28 00:20:48 +00001209 Temp.push_back(Pair.first);
1210 }
1211 std::sort(Temp.begin(), Temp.end(), order_by_name);
1212 for (Value *Ptr : Temp) {
1213 Value *Base = PointerToBase[Ptr];
Philip Reames704e78b2015-04-10 22:34:56 +00001214 errs() << " derived %" << Ptr->getName() << " base %" << Base->getName()
1215 << "\n";
Philip Reamesd16a9b12015-02-20 01:06:44 +00001216 }
1217 }
1218
Philip Reamesf2041322015-02-20 19:26:04 +00001219 result.PointerToBase = PointerToBase;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001220}
1221
Philip Reamesdf1ef082015-04-10 22:53:14 +00001222/// Given an updated version of the dataflow liveness results, update the
1223/// liveset and base pointer maps for the call site CS.
1224static void recomputeLiveInValues(GCPtrLivenessData &RevisedLivenessData,
1225 const CallSite &CS,
1226 PartiallyConstructedSafepointRecord &result);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001227
Philip Reamesdf1ef082015-04-10 22:53:14 +00001228static void recomputeLiveInValues(
1229 Function &F, DominatorTree &DT, Pass *P, ArrayRef<CallSite> toUpdate,
Philip Reamesd2b66462015-02-20 22:39:41 +00001230 MutableArrayRef<struct PartiallyConstructedSafepointRecord> records) {
Philip Reamesdf1ef082015-04-10 22:53:14 +00001231 // TODO-PERF: reuse the original liveness, then simply run the dataflow
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001232 // again. The old values are still live and will help it stabilize quickly.
Philip Reamesdf1ef082015-04-10 22:53:14 +00001233 GCPtrLivenessData RevisedLivenessData;
1234 computeLiveInValues(DT, F, RevisedLivenessData);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001235 for (size_t i = 0; i < records.size(); i++) {
1236 struct PartiallyConstructedSafepointRecord &info = records[i];
Philip Reamesd2b66462015-02-20 22:39:41 +00001237 const CallSite &CS = toUpdate[i];
Philip Reamesdf1ef082015-04-10 22:53:14 +00001238 recomputeLiveInValues(RevisedLivenessData, CS, info);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001239 }
1240}
1241
Sanjoy Das7ad67642015-10-20 01:06:24 +00001242// When inserting gc.relocate and gc.result calls, we need to ensure there are
1243// no uses of the original value / return value between the gc.statepoint and
1244// the gc.relocate / gc.result call. One case which can arise is a phi node
1245// starting one of the successor blocks. We also need to be able to insert the
1246// gc.relocates only on the path which goes through the statepoint. We might
1247// need to split an edge to make this possible.
Philip Reamesf209a152015-04-13 20:00:30 +00001248static BasicBlock *
Sanjoy Dasea45f0e2015-06-02 22:33:34 +00001249normalizeForInvokeSafepoint(BasicBlock *BB, BasicBlock *InvokeParent,
1250 DominatorTree &DT) {
Philip Reames69e51ca2015-04-13 18:07:21 +00001251 BasicBlock *Ret = BB;
Sanjoy Dasff3dba72015-10-20 01:06:17 +00001252 if (!BB->getUniquePredecessor())
Chandler Carruth96ada252015-07-22 09:52:54 +00001253 Ret = SplitBlockPredecessors(BB, InvokeParent, "", &DT);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001254
Sanjoy Das7ad67642015-10-20 01:06:24 +00001255 // Now that 'Ret' has unique predecessor we can safely remove all phi nodes
Philip Reames69e51ca2015-04-13 18:07:21 +00001256 // from it
1257 FoldSingleEntryPHINodes(Ret);
Sanjoy Dasff3dba72015-10-20 01:06:17 +00001258 assert(!isa<PHINode>(Ret->begin()) &&
1259 "All PHI nodes should have been removed!");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001260
Sanjoy Das7ad67642015-10-20 01:06:24 +00001261 // At this point, we can safely insert a gc.relocate or gc.result as the first
1262 // instruction in Ret if needed.
Philip Reames69e51ca2015-04-13 18:07:21 +00001263 return Ret;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001264}
1265
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001266// Create new attribute set containing only attributes which can be transferred
Philip Reamesd16a9b12015-02-20 01:06:44 +00001267// from original call to the safepoint.
1268static AttributeSet legalizeCallAttributes(AttributeSet AS) {
Sanjoy Das810a59d2015-10-16 02:41:11 +00001269 AttributeSet Ret;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001270
1271 for (unsigned Slot = 0; Slot < AS.getNumSlots(); Slot++) {
Sanjoy Das810a59d2015-10-16 02:41:11 +00001272 unsigned Index = AS.getSlotIndex(Slot);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001273
Sanjoy Das810a59d2015-10-16 02:41:11 +00001274 if (Index == AttributeSet::ReturnIndex ||
1275 Index == AttributeSet::FunctionIndex) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001276
Sanjoy Das810a59d2015-10-16 02:41:11 +00001277 for (Attribute Attr : make_range(AS.begin(Slot), AS.end(Slot))) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001278
1279 // Do not allow certain attributes - just skip them
1280 // Safepoint can not be read only or read none.
Sanjoy Das810a59d2015-10-16 02:41:11 +00001281 if (Attr.hasAttribute(Attribute::ReadNone) ||
1282 Attr.hasAttribute(Attribute::ReadOnly))
Philip Reamesd16a9b12015-02-20 01:06:44 +00001283 continue;
1284
Sanjoy Das58fae7c2015-10-16 02:41:23 +00001285 // These attributes control the generation of the gc.statepoint call /
1286 // invoke itself; and once the gc.statepoint is in place, they're of no
1287 // use.
1288 if (Attr.hasAttribute("statepoint-num-patch-bytes") ||
1289 Attr.hasAttribute("statepoint-id"))
1290 continue;
1291
Sanjoy Das810a59d2015-10-16 02:41:11 +00001292 Ret = Ret.addAttributes(
1293 AS.getContext(), Index,
1294 AttributeSet::get(AS.getContext(), Index, AttrBuilder(Attr)));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001295 }
1296 }
1297
1298 // Just skip parameter attributes for now
1299 }
1300
Sanjoy Das810a59d2015-10-16 02:41:11 +00001301 return Ret;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001302}
1303
1304/// Helper function to place all gc relocates necessary for the given
1305/// statepoint.
1306/// Inputs:
1307/// liveVariables - list of variables to be relocated.
1308/// liveStart - index of the first live variable.
1309/// basePtrs - base pointers.
1310/// statepointToken - statepoint instruction to which relocates should be
1311/// bound.
1312/// Builder - Llvm IR builder to be used to construct new calls.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001313static void CreateGCRelocates(ArrayRef<Value *> LiveVariables,
Sanjoy Das5665c992015-05-11 23:47:27 +00001314 const int LiveStart,
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001315 ArrayRef<Value *> BasePtrs,
Sanjoy Das5665c992015-05-11 23:47:27 +00001316 Instruction *StatepointToken,
Benjamin Kramerf044d3f2015-03-09 16:23:46 +00001317 IRBuilder<> Builder) {
Philip Reames94babb72015-07-21 17:18:03 +00001318 if (LiveVariables.empty())
1319 return;
Sanjoy Dasb1942f12015-10-20 01:06:28 +00001320
1321 auto FindIndex = [](ArrayRef<Value *> LiveVec, Value *Val) {
1322 auto ValIt = std::find(LiveVec.begin(), LiveVec.end(), Val);
1323 assert(ValIt != LiveVec.end() && "Val not found in LiveVec!");
1324 size_t Index = std::distance(LiveVec.begin(), ValIt);
1325 assert(Index < LiveVec.size() && "Bug in std::find?");
1326 return Index;
1327 };
1328
Philip Reames94babb72015-07-21 17:18:03 +00001329 // All gc_relocate are set to i8 addrspace(1)* type. We originally generated
1330 // unique declarations for each pointer type, but this proved problematic
1331 // because the intrinsic mangling code is incomplete and fragile. Since
1332 // we're moving towards a single unified pointer type anyways, we can just
1333 // cast everything to an i8* of the right address space. A bitcast is added
1334 // later to convert gc_relocate to the actual value's type.
Philip Reames74ce2e72015-07-21 16:51:17 +00001335 Module *M = StatepointToken->getModule();
Philip Reames94babb72015-07-21 17:18:03 +00001336 auto AS = cast<PointerType>(LiveVariables[0]->getType())->getAddressSpace();
1337 Type *Types[] = {Type::getInt8PtrTy(M->getContext(), AS)};
1338 Value *GCRelocateDecl =
1339 Intrinsic::getDeclaration(M, Intrinsic::experimental_gc_relocate, Types);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001340
Sanjoy Das5665c992015-05-11 23:47:27 +00001341 for (unsigned i = 0; i < LiveVariables.size(); i++) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001342 // Generate the gc.relocate call and save the result
Sanjoy Das5665c992015-05-11 23:47:27 +00001343 Value *BaseIdx =
Sanjoy Dasb1942f12015-10-20 01:06:28 +00001344 Builder.getInt32(LiveStart + FindIndex(LiveVariables, BasePtrs[i]));
Philip Reamesf3880502015-07-21 00:49:55 +00001345 Value *LiveIdx =
Sanjoy Dasb1942f12015-10-20 01:06:28 +00001346 Builder.getInt32(LiveStart + FindIndex(LiveVariables, LiveVariables[i]));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001347
1348 // only specify a debug name if we can give a useful one
Philip Reames74ce2e72015-07-21 16:51:17 +00001349 CallInst *Reloc = Builder.CreateCall(
David Blaikieff6409d2015-05-18 22:13:54 +00001350 GCRelocateDecl, {StatepointToken, BaseIdx, LiveIdx},
Philip Reamesece70b82015-09-09 23:57:18 +00001351 suffixed_name_or(LiveVariables[i], ".relocated", ""));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001352 // Trick CodeGen into thinking there are lots of free registers at this
1353 // fake call.
Philip Reames74ce2e72015-07-21 16:51:17 +00001354 Reloc->setCallingConv(CallingConv::Cold);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001355 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00001356}
1357
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001358namespace {
1359
1360/// This struct is used to defer RAUWs and `eraseFromParent` s. Using this
1361/// avoids having to worry about keeping around dangling pointers to Values.
1362class DeferredReplacement {
1363 AssertingVH<Instruction> Old;
1364 AssertingVH<Instruction> New;
1365
1366public:
1367 explicit DeferredReplacement(Instruction *Old, Instruction *New) :
1368 Old(Old), New(New) {
1369 assert(Old != New && "Not allowed!");
1370 }
1371
1372 /// Does the task represented by this instance.
1373 void doReplacement() {
1374 Instruction *OldI = Old;
1375 Instruction *NewI = New;
1376
1377 assert(OldI != NewI && "Disallowed at construction?!");
1378
1379 Old = nullptr;
1380 New = nullptr;
1381
1382 if (NewI)
1383 OldI->replaceAllUsesWith(NewI);
1384 OldI->eraseFromParent();
1385 }
1386};
1387}
1388
Philip Reamesd16a9b12015-02-20 01:06:44 +00001389static void
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001390makeStatepointExplicitImpl(const CallSite CS, /* to replace */
1391 const SmallVectorImpl<Value *> &BasePtrs,
1392 const SmallVectorImpl<Value *> &LiveVariables,
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001393 PartiallyConstructedSafepointRecord &Result,
1394 std::vector<DeferredReplacement> &Replacements) {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001395 assert(BasePtrs.size() == LiveVariables.size());
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001396 assert((UseDeoptBundles || isStatepoint(CS)) &&
Philip Reamesd16a9b12015-02-20 01:06:44 +00001397 "This method expects to be rewriting a statepoint");
1398
Philip Reamesd16a9b12015-02-20 01:06:44 +00001399 // Then go ahead and use the builder do actually do the inserts. We insert
1400 // immediately before the previous instruction under the assumption that all
1401 // arguments will be available here. We can't insert afterwards since we may
1402 // be replacing a terminator.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001403 Instruction *InsertBefore = CS.getInstruction();
1404 IRBuilder<> Builder(InsertBefore);
1405
Sanjoy Das3c520a12015-10-08 23:18:38 +00001406 ArrayRef<Value *> GCArgs(LiveVariables);
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001407 uint64_t StatepointID = 0xABCDEF00;
1408 uint32_t NumPatchBytes = 0;
1409 uint32_t Flags = uint32_t(StatepointFlags::None);
Sanjoy Das3c520a12015-10-08 23:18:38 +00001410
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001411 ArrayRef<Use> CallArgs;
1412 ArrayRef<Use> DeoptArgs;
1413 ArrayRef<Use> TransitionArgs;
1414
1415 Value *CallTarget = nullptr;
1416
1417 if (UseDeoptBundles) {
1418 CallArgs = {CS.arg_begin(), CS.arg_end()};
1419 DeoptArgs = GetDeoptBundleOperands(CS);
1420 // TODO: we don't fill in TransitionArgs or Flags in this branch, but we
1421 // could have an operand bundle for that too.
1422 AttributeSet OriginalAttrs = CS.getAttributes();
1423
1424 Attribute AttrID = OriginalAttrs.getAttribute(AttributeSet::FunctionIndex,
1425 "statepoint-id");
1426 if (AttrID.isStringAttribute())
1427 AttrID.getValueAsString().getAsInteger(10, StatepointID);
1428
1429 Attribute AttrNumPatchBytes = OriginalAttrs.getAttribute(
1430 AttributeSet::FunctionIndex, "statepoint-num-patch-bytes");
1431 if (AttrNumPatchBytes.isStringAttribute())
1432 AttrNumPatchBytes.getValueAsString().getAsInteger(10, NumPatchBytes);
1433
1434 CallTarget = CS.getCalledValue();
1435 } else {
1436 // This branch will be gone soon, and we will soon only support the
1437 // UseDeoptBundles == true configuration.
1438 Statepoint OldSP(CS);
1439 StatepointID = OldSP.getID();
1440 NumPatchBytes = OldSP.getNumPatchBytes();
1441 Flags = OldSP.getFlags();
1442
1443 CallArgs = {OldSP.arg_begin(), OldSP.arg_end()};
1444 DeoptArgs = {OldSP.vm_state_begin(), OldSP.vm_state_end()};
1445 TransitionArgs = {OldSP.gc_transition_args_begin(),
1446 OldSP.gc_transition_args_end()};
1447 CallTarget = OldSP.getCalledValue();
1448 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00001449
1450 // Create the statepoint given all the arguments
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001451 Instruction *Token = nullptr;
1452 AttributeSet ReturnAttrs;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001453 if (CS.isCall()) {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001454 CallInst *ToReplace = cast<CallInst>(CS.getInstruction());
Sanjoy Das3c520a12015-10-08 23:18:38 +00001455 CallInst *Call = Builder.CreateGCStatepointCall(
1456 StatepointID, NumPatchBytes, CallTarget, Flags, CallArgs,
1457 TransitionArgs, DeoptArgs, GCArgs, "safepoint_token");
1458
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001459 Call->setTailCall(ToReplace->isTailCall());
1460 Call->setCallingConv(ToReplace->getCallingConv());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001461
1462 // Currently we will fail on parameter attributes and on certain
1463 // function attributes.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001464 AttributeSet NewAttrs = legalizeCallAttributes(ToReplace->getAttributes());
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001465 // In case if we can handle this set of attributes - set up function attrs
Philip Reamesd16a9b12015-02-20 01:06:44 +00001466 // directly on statepoint and return attrs later for gc_result intrinsic.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001467 Call->setAttributes(NewAttrs.getFnAttributes());
1468 ReturnAttrs = NewAttrs.getRetAttributes();
Philip Reamesd16a9b12015-02-20 01:06:44 +00001469
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001470 Token = Call;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001471
1472 // Put the following gc_result and gc_relocate calls immediately after the
1473 // the old call (which we're about to delete)
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001474 assert(ToReplace->getNextNode() && "Not a terminator, must have next!");
1475 Builder.SetInsertPoint(ToReplace->getNextNode());
1476 Builder.SetCurrentDebugLocation(ToReplace->getNextNode()->getDebugLoc());
David Blaikie82ad7872015-02-20 23:44:24 +00001477 } else {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001478 InvokeInst *ToReplace = cast<InvokeInst>(CS.getInstruction());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001479
1480 // Insert the new invoke into the old block. We'll remove the old one in a
1481 // moment at which point this will become the new terminator for the
1482 // original block.
Sanjoy Das3c520a12015-10-08 23:18:38 +00001483 InvokeInst *Invoke = Builder.CreateGCStatepointInvoke(
1484 StatepointID, NumPatchBytes, CallTarget, ToReplace->getNormalDest(),
1485 ToReplace->getUnwindDest(), Flags, CallArgs, TransitionArgs, DeoptArgs,
1486 GCArgs, "statepoint_token");
1487
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001488 Invoke->setCallingConv(ToReplace->getCallingConv());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001489
1490 // Currently we will fail on parameter attributes and on certain
1491 // function attributes.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001492 AttributeSet NewAttrs = legalizeCallAttributes(ToReplace->getAttributes());
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001493 // In case if we can handle this set of attributes - set up function attrs
Philip Reamesd16a9b12015-02-20 01:06:44 +00001494 // directly on statepoint and return attrs later for gc_result intrinsic.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001495 Invoke->setAttributes(NewAttrs.getFnAttributes());
1496 ReturnAttrs = NewAttrs.getRetAttributes();
Philip Reamesd16a9b12015-02-20 01:06:44 +00001497
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001498 Token = Invoke;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001499
1500 // Generate gc relocates in exceptional path
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001501 BasicBlock *UnwindBlock = ToReplace->getUnwindDest();
1502 assert(!isa<PHINode>(UnwindBlock->begin()) &&
1503 UnwindBlock->getUniquePredecessor() &&
Philip Reames69e51ca2015-04-13 18:07:21 +00001504 "can't safely insert in this block!");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001505
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00001506 Builder.SetInsertPoint(&*UnwindBlock->getFirstInsertionPt());
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001507 Builder.SetCurrentDebugLocation(ToReplace->getDebugLoc());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001508
1509 // Extract second element from landingpad return value. We will attach
1510 // exceptional gc relocates to it.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001511 Instruction *ExceptionalToken =
Philip Reamesd16a9b12015-02-20 01:06:44 +00001512 cast<Instruction>(Builder.CreateExtractValue(
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001513 UnwindBlock->getLandingPadInst(), 1, "relocate_token"));
1514 Result.UnwindToken = ExceptionalToken;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001515
Sanjoy Das3c520a12015-10-08 23:18:38 +00001516 const unsigned LiveStartIdx = Statepoint(Token).gcArgsStartIdx();
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001517 CreateGCRelocates(LiveVariables, LiveStartIdx, BasePtrs, ExceptionalToken,
1518 Builder);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001519
1520 // Generate gc relocates and returns for normal block
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001521 BasicBlock *NormalDest = ToReplace->getNormalDest();
1522 assert(!isa<PHINode>(NormalDest->begin()) &&
1523 NormalDest->getUniquePredecessor() &&
Philip Reames69e51ca2015-04-13 18:07:21 +00001524 "can't safely insert in this block!");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001525
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00001526 Builder.SetInsertPoint(&*NormalDest->getFirstInsertionPt());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001527
1528 // gc relocates will be generated later as if it were regular call
1529 // statepoint
Philip Reamesd16a9b12015-02-20 01:06:44 +00001530 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001531 assert(Token && "Should be set in one of the above branches!");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001532
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001533 if (UseDeoptBundles) {
1534 Token->setName("statepoint_token");
1535 if (!CS.getType()->isVoidTy() && !CS.getInstruction()->use_empty()) {
1536 StringRef Name =
1537 CS.getInstruction()->hasName() ? CS.getInstruction()->getName() : "";
1538 CallInst *GCResult = Builder.CreateGCResult(Token, CS.getType(), Name);
1539 GCResult->setAttributes(CS.getAttributes().getRetAttributes());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001540
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001541 // We cannot RAUW or delete CS.getInstruction() because it could be in the
1542 // live set of some other safepoint, in which case that safepoint's
1543 // PartiallyConstructedSafepointRecord will hold a raw pointer to this
1544 // llvm::Instruction. Instead, we defer the replacement and deletion to
1545 // after the live sets have been made explicit in the IR, and we no longer
1546 // have raw pointers to worry about.
1547 Replacements.emplace_back(CS.getInstruction(), GCResult);
1548 } else {
1549 Replacements.emplace_back(CS.getInstruction(), nullptr);
1550 }
1551 } else {
1552 assert(!CS.getInstruction()->hasNUsesOrMore(2) &&
1553 "only valid use before rewrite is gc.result");
1554 assert(!CS.getInstruction()->hasOneUse() ||
1555 isGCResult(cast<Instruction>(*CS.getInstruction()->user_begin())));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001556
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001557 // Take the name of the original statepoint token if there was one.
1558 Token->takeName(CS.getInstruction());
1559
1560 // Update the gc.result of the original statepoint (if any) to use the newly
1561 // inserted statepoint. This is safe to do here since the token can't be
1562 // considered a live reference.
1563 CS.getInstruction()->replaceAllUsesWith(Token);
1564 CS.getInstruction()->eraseFromParent();
1565 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00001566
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001567 Result.StatepointToken = Token;
Philip Reames0a3240f2015-02-20 21:34:11 +00001568
Philip Reamesd16a9b12015-02-20 01:06:44 +00001569 // Second, create a gc.relocate for every live variable
Sanjoy Das3c520a12015-10-08 23:18:38 +00001570 const unsigned LiveStartIdx = Statepoint(Token).gcArgsStartIdx();
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001571 CreateGCRelocates(LiveVariables, LiveStartIdx, BasePtrs, Token, Builder);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001572}
1573
1574namespace {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001575struct NameOrdering {
1576 Value *Base;
1577 Value *Derived;
1578
1579 bool operator()(NameOrdering const &a, NameOrdering const &b) {
1580 return -1 == a.Derived->getName().compare(b.Derived->getName());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001581 }
1582};
1583}
Philip Reamesd16a9b12015-02-20 01:06:44 +00001584
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001585static void StabilizeOrder(SmallVectorImpl<Value *> &BaseVec,
1586 SmallVectorImpl<Value *> &LiveVec) {
1587 assert(BaseVec.size() == LiveVec.size());
1588
1589 SmallVector<NameOrdering, 64> Temp;
1590 for (size_t i = 0; i < BaseVec.size(); i++) {
1591 NameOrdering v;
1592 v.Base = BaseVec[i];
1593 v.Derived = LiveVec[i];
1594 Temp.push_back(v);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001595 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001596
1597 std::sort(Temp.begin(), Temp.end(), NameOrdering());
1598 for (size_t i = 0; i < BaseVec.size(); i++) {
1599 BaseVec[i] = Temp[i].Base;
1600 LiveVec[i] = Temp[i].Derived;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001601 }
1602}
1603
1604// Replace an existing gc.statepoint with a new one and a set of gc.relocates
1605// which make the relocations happening at this safepoint explicit.
Philip Reames704e78b2015-04-10 22:34:56 +00001606//
Philip Reamesd16a9b12015-02-20 01:06:44 +00001607// WARNING: Does not do any fixup to adjust users of the original live
1608// values. That's the callers responsibility.
1609static void
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001610makeStatepointExplicit(DominatorTree &DT, const CallSite &CS,
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001611 PartiallyConstructedSafepointRecord &Result,
1612 std::vector<DeferredReplacement> &Replacements) {
Sanjoy Das1ede5362015-10-08 23:18:22 +00001613 const auto &LiveSet = Result.LiveSet;
1614 const auto &PointerToBase = Result.PointerToBase;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001615
1616 // Convert to vector for efficient cross referencing.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001617 SmallVector<Value *, 64> BaseVec, LiveVec;
1618 LiveVec.reserve(LiveSet.size());
1619 BaseVec.reserve(LiveSet.size());
1620 for (Value *L : LiveSet) {
1621 LiveVec.push_back(L);
Philip Reames74ce2e72015-07-21 16:51:17 +00001622 assert(PointerToBase.count(L));
Sanjoy Das1ede5362015-10-08 23:18:22 +00001623 Value *Base = PointerToBase.find(L)->second;
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001624 BaseVec.push_back(Base);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001625 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001626 assert(LiveVec.size() == BaseVec.size());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001627
1628 // To make the output IR slightly more stable (for use in diffs), ensure a
1629 // fixed order of the values in the safepoint (by sorting the value name).
1630 // The order is otherwise meaningless.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001631 StabilizeOrder(BaseVec, LiveVec);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001632
1633 // Do the actual rewriting and delete the old statepoint
Sanjoy Das25ec1a32015-10-16 02:41:00 +00001634 makeStatepointExplicitImpl(CS, BaseVec, LiveVec, Result, Replacements);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001635}
1636
1637// Helper function for the relocationViaAlloca.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001638//
1639// It receives iterator to the statepoint gc relocates and emits a store to the
1640// assigned location (via allocaMap) for the each one of them. It adds the
1641// visited values into the visitedLiveValues set, which we will later use them
1642// for sanity checking.
Philip Reamesd16a9b12015-02-20 01:06:44 +00001643static void
Sanjoy Das5665c992015-05-11 23:47:27 +00001644insertRelocationStores(iterator_range<Value::user_iterator> GCRelocs,
1645 DenseMap<Value *, Value *> &AllocaMap,
1646 DenseSet<Value *> &VisitedLiveValues) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001647
Sanjoy Das5665c992015-05-11 23:47:27 +00001648 for (User *U : GCRelocs) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001649 if (!isa<IntrinsicInst>(U))
1650 continue;
1651
Sanjoy Das5665c992015-05-11 23:47:27 +00001652 IntrinsicInst *RelocatedValue = cast<IntrinsicInst>(U);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001653
1654 // We only care about relocates
Sanjoy Das5665c992015-05-11 23:47:27 +00001655 if (RelocatedValue->getIntrinsicID() !=
Philip Reamesd16a9b12015-02-20 01:06:44 +00001656 Intrinsic::experimental_gc_relocate) {
1657 continue;
1658 }
1659
Sanjoy Das5665c992015-05-11 23:47:27 +00001660 GCRelocateOperands RelocateOperands(RelocatedValue);
1661 Value *OriginalValue =
1662 const_cast<Value *>(RelocateOperands.getDerivedPtr());
1663 assert(AllocaMap.count(OriginalValue));
1664 Value *Alloca = AllocaMap[OriginalValue];
Philip Reamesd16a9b12015-02-20 01:06:44 +00001665
1666 // Emit store into the related alloca
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001667 // All gc_relocates are i8 addrspace(1)* typed, and it must be bitcasted to
Sanjoy Das89c54912015-05-11 18:49:34 +00001668 // the correct type according to alloca.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001669 assert(RelocatedValue->getNextNode() &&
1670 "Should always have one since it's not a terminator");
Sanjoy Das5665c992015-05-11 23:47:27 +00001671 IRBuilder<> Builder(RelocatedValue->getNextNode());
Sanjoy Das89c54912015-05-11 18:49:34 +00001672 Value *CastedRelocatedValue =
Philip Reamesece70b82015-09-09 23:57:18 +00001673 Builder.CreateBitCast(RelocatedValue,
1674 cast<AllocaInst>(Alloca)->getAllocatedType(),
1675 suffixed_name_or(RelocatedValue, ".casted", ""));
Sanjoy Das89c54912015-05-11 18:49:34 +00001676
Sanjoy Das5665c992015-05-11 23:47:27 +00001677 StoreInst *Store = new StoreInst(CastedRelocatedValue, Alloca);
1678 Store->insertAfter(cast<Instruction>(CastedRelocatedValue));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001679
1680#ifndef NDEBUG
Sanjoy Das5665c992015-05-11 23:47:27 +00001681 VisitedLiveValues.insert(OriginalValue);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001682#endif
1683 }
1684}
1685
Igor Laevskye0317182015-05-19 15:59:05 +00001686// Helper function for the "relocationViaAlloca". Similar to the
1687// "insertRelocationStores" but works for rematerialized values.
1688static void
1689insertRematerializationStores(
1690 RematerializedValueMapTy RematerializedValues,
1691 DenseMap<Value *, Value *> &AllocaMap,
1692 DenseSet<Value *> &VisitedLiveValues) {
1693
1694 for (auto RematerializedValuePair: RematerializedValues) {
1695 Instruction *RematerializedValue = RematerializedValuePair.first;
1696 Value *OriginalValue = RematerializedValuePair.second;
1697
1698 assert(AllocaMap.count(OriginalValue) &&
1699 "Can not find alloca for rematerialized value");
1700 Value *Alloca = AllocaMap[OriginalValue];
1701
1702 StoreInst *Store = new StoreInst(RematerializedValue, Alloca);
1703 Store->insertAfter(RematerializedValue);
1704
1705#ifndef NDEBUG
1706 VisitedLiveValues.insert(OriginalValue);
1707#endif
1708 }
1709}
1710
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001711/// Do all the relocation update via allocas and mem2reg
Philip Reamesd16a9b12015-02-20 01:06:44 +00001712static void relocationViaAlloca(
Igor Laevsky285fe842015-05-19 16:29:43 +00001713 Function &F, DominatorTree &DT, ArrayRef<Value *> Live,
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001714 ArrayRef<PartiallyConstructedSafepointRecord> Records) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001715#ifndef NDEBUG
Philip Reamesa6ebf072015-03-27 05:53:16 +00001716 // record initial number of (static) allocas; we'll check we have the same
1717 // number when we get done.
1718 int InitialAllocaNum = 0;
Philip Reames704e78b2015-04-10 22:34:56 +00001719 for (auto I = F.getEntryBlock().begin(), E = F.getEntryBlock().end(); I != E;
1720 I++)
Philip Reamesa6ebf072015-03-27 05:53:16 +00001721 if (isa<AllocaInst>(*I))
1722 InitialAllocaNum++;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001723#endif
1724
1725 // TODO-PERF: change data structures, reserve
Igor Laevsky285fe842015-05-19 16:29:43 +00001726 DenseMap<Value *, Value *> AllocaMap;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001727 SmallVector<AllocaInst *, 200> PromotableAllocas;
Igor Laevskye0317182015-05-19 15:59:05 +00001728 // Used later to chack that we have enough allocas to store all values
1729 std::size_t NumRematerializedValues = 0;
Igor Laevsky285fe842015-05-19 16:29:43 +00001730 PromotableAllocas.reserve(Live.size());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001731
Igor Laevskye0317182015-05-19 15:59:05 +00001732 // Emit alloca for "LiveValue" and record it in "allocaMap" and
1733 // "PromotableAllocas"
1734 auto emitAllocaFor = [&](Value *LiveValue) {
1735 AllocaInst *Alloca = new AllocaInst(LiveValue->getType(), "",
1736 F.getEntryBlock().getFirstNonPHI());
Igor Laevsky285fe842015-05-19 16:29:43 +00001737 AllocaMap[LiveValue] = Alloca;
Igor Laevskye0317182015-05-19 15:59:05 +00001738 PromotableAllocas.push_back(Alloca);
1739 };
1740
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001741 // Emit alloca for each live gc pointer
1742 for (Value *V : Live)
1743 emitAllocaFor(V);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001744
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001745 // Emit allocas for rematerialized values
1746 for (const auto &Info : Records)
Igor Laevsky285fe842015-05-19 16:29:43 +00001747 for (auto RematerializedValuePair : Info.RematerializedValues) {
Igor Laevskye0317182015-05-19 15:59:05 +00001748 Value *OriginalValue = RematerializedValuePair.second;
Igor Laevsky285fe842015-05-19 16:29:43 +00001749 if (AllocaMap.count(OriginalValue) != 0)
Igor Laevskye0317182015-05-19 15:59:05 +00001750 continue;
1751
1752 emitAllocaFor(OriginalValue);
1753 ++NumRematerializedValues;
1754 }
Igor Laevsky285fe842015-05-19 16:29:43 +00001755
Philip Reamesd16a9b12015-02-20 01:06:44 +00001756 // The next two loops are part of the same conceptual operation. We need to
1757 // insert a store to the alloca after the original def and at each
1758 // redefinition. We need to insert a load before each use. These are split
1759 // into distinct loops for performance reasons.
1760
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001761 // Update gc pointer after each statepoint: either store a relocated value or
1762 // null (if no relocated value was found for this gc pointer and it is not a
1763 // gc_result). This must happen before we update the statepoint with load of
1764 // alloca otherwise we lose the link between statepoint and old def.
1765 for (const auto &Info : Records) {
Igor Laevsky285fe842015-05-19 16:29:43 +00001766 Value *Statepoint = Info.StatepointToken;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001767
1768 // This will be used for consistency check
Igor Laevsky285fe842015-05-19 16:29:43 +00001769 DenseSet<Value *> VisitedLiveValues;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001770
1771 // Insert stores for normal statepoint gc relocates
Igor Laevsky285fe842015-05-19 16:29:43 +00001772 insertRelocationStores(Statepoint->users(), AllocaMap, VisitedLiveValues);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001773
1774 // In case if it was invoke statepoint
1775 // we will insert stores for exceptional path gc relocates.
Philip Reames0a3240f2015-02-20 21:34:11 +00001776 if (isa<InvokeInst>(Statepoint)) {
Igor Laevsky285fe842015-05-19 16:29:43 +00001777 insertRelocationStores(Info.UnwindToken->users(), AllocaMap,
1778 VisitedLiveValues);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001779 }
1780
Igor Laevskye0317182015-05-19 15:59:05 +00001781 // Do similar thing with rematerialized values
Igor Laevsky285fe842015-05-19 16:29:43 +00001782 insertRematerializationStores(Info.RematerializedValues, AllocaMap,
1783 VisitedLiveValues);
Igor Laevskye0317182015-05-19 15:59:05 +00001784
Philip Reamese73300b2015-04-13 16:41:32 +00001785 if (ClobberNonLive) {
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001786 // As a debugging aid, pretend that an unrelocated pointer becomes null at
Philip Reamese73300b2015-04-13 16:41:32 +00001787 // the gc.statepoint. This will turn some subtle GC problems into
1788 // slightly easier to debug SEGVs. Note that on large IR files with
1789 // lots of gc.statepoints this is extremely costly both memory and time
1790 // wise.
1791 SmallVector<AllocaInst *, 64> ToClobber;
Igor Laevsky285fe842015-05-19 16:29:43 +00001792 for (auto Pair : AllocaMap) {
Philip Reamese73300b2015-04-13 16:41:32 +00001793 Value *Def = Pair.first;
1794 AllocaInst *Alloca = cast<AllocaInst>(Pair.second);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001795
Philip Reamese73300b2015-04-13 16:41:32 +00001796 // This value was relocated
Igor Laevsky285fe842015-05-19 16:29:43 +00001797 if (VisitedLiveValues.count(Def)) {
Philip Reamese73300b2015-04-13 16:41:32 +00001798 continue;
1799 }
1800 ToClobber.push_back(Alloca);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001801 }
Philip Reamesfa2fcf172015-02-20 19:51:56 +00001802
Philip Reamese73300b2015-04-13 16:41:32 +00001803 auto InsertClobbersAt = [&](Instruction *IP) {
1804 for (auto *AI : ToClobber) {
1805 auto AIType = cast<PointerType>(AI->getType());
1806 auto PT = cast<PointerType>(AIType->getElementType());
1807 Constant *CPN = ConstantPointerNull::get(PT);
Igor Laevsky285fe842015-05-19 16:29:43 +00001808 StoreInst *Store = new StoreInst(CPN, AI);
1809 Store->insertBefore(IP);
Philip Reamese73300b2015-04-13 16:41:32 +00001810 }
1811 };
1812
1813 // Insert the clobbering stores. These may get intermixed with the
1814 // gc.results and gc.relocates, but that's fine.
1815 if (auto II = dyn_cast<InvokeInst>(Statepoint)) {
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00001816 InsertClobbersAt(&*II->getNormalDest()->getFirstInsertionPt());
1817 InsertClobbersAt(&*II->getUnwindDest()->getFirstInsertionPt());
Philip Reamese73300b2015-04-13 16:41:32 +00001818 } else {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001819 InsertClobbersAt(cast<Instruction>(Statepoint)->getNextNode());
Philip Reamesfa2fcf172015-02-20 19:51:56 +00001820 }
David Blaikie82ad7872015-02-20 23:44:24 +00001821 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00001822 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001823
1824 // Update use with load allocas and add store for gc_relocated.
Igor Laevsky285fe842015-05-19 16:29:43 +00001825 for (auto Pair : AllocaMap) {
1826 Value *Def = Pair.first;
1827 Value *Alloca = Pair.second;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001828
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001829 // We pre-record the uses of allocas so that we dont have to worry about
1830 // later update that changes the user information..
1831
Igor Laevsky285fe842015-05-19 16:29:43 +00001832 SmallVector<Instruction *, 20> Uses;
Philip Reamesd16a9b12015-02-20 01:06:44 +00001833 // PERF: trade a linear scan for repeated reallocation
Igor Laevsky285fe842015-05-19 16:29:43 +00001834 Uses.reserve(std::distance(Def->user_begin(), Def->user_end()));
1835 for (User *U : Def->users()) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00001836 if (!isa<ConstantExpr>(U)) {
1837 // If the def has a ConstantExpr use, then the def is either a
1838 // ConstantExpr use itself or null. In either case
1839 // (recursively in the first, directly in the second), the oop
1840 // it is ultimately dependent on is null and this particular
1841 // use does not need to be fixed up.
Igor Laevsky285fe842015-05-19 16:29:43 +00001842 Uses.push_back(cast<Instruction>(U));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001843 }
1844 }
1845
Igor Laevsky285fe842015-05-19 16:29:43 +00001846 std::sort(Uses.begin(), Uses.end());
1847 auto Last = std::unique(Uses.begin(), Uses.end());
1848 Uses.erase(Last, Uses.end());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001849
Igor Laevsky285fe842015-05-19 16:29:43 +00001850 for (Instruction *Use : Uses) {
1851 if (isa<PHINode>(Use)) {
1852 PHINode *Phi = cast<PHINode>(Use);
1853 for (unsigned i = 0; i < Phi->getNumIncomingValues(); i++) {
1854 if (Def == Phi->getIncomingValue(i)) {
1855 LoadInst *Load = new LoadInst(
1856 Alloca, "", Phi->getIncomingBlock(i)->getTerminator());
1857 Phi->setIncomingValue(i, Load);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001858 }
1859 }
1860 } else {
Igor Laevsky285fe842015-05-19 16:29:43 +00001861 LoadInst *Load = new LoadInst(Alloca, "", Use);
1862 Use->replaceUsesOfWith(Def, Load);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001863 }
1864 }
1865
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001866 // Emit store for the initial gc value. Store must be inserted after load,
1867 // otherwise store will be in alloca's use list and an extra load will be
1868 // inserted before it.
Igor Laevsky285fe842015-05-19 16:29:43 +00001869 StoreInst *Store = new StoreInst(Def, Alloca);
1870 if (Instruction *Inst = dyn_cast<Instruction>(Def)) {
1871 if (InvokeInst *Invoke = dyn_cast<InvokeInst>(Inst)) {
Philip Reames6da37852015-03-04 00:13:52 +00001872 // InvokeInst is a TerminatorInst so the store need to be inserted
1873 // into its normal destination block.
Igor Laevsky285fe842015-05-19 16:29:43 +00001874 BasicBlock *NormalDest = Invoke->getNormalDest();
1875 Store->insertBefore(NormalDest->getFirstNonPHI());
Philip Reames6da37852015-03-04 00:13:52 +00001876 } else {
Igor Laevsky285fe842015-05-19 16:29:43 +00001877 assert(!Inst->isTerminator() &&
Philip Reames6da37852015-03-04 00:13:52 +00001878 "The only TerminatorInst that can produce a value is "
1879 "InvokeInst which is handled above.");
Igor Laevsky285fe842015-05-19 16:29:43 +00001880 Store->insertAfter(Inst);
Philip Reames6da37852015-03-04 00:13:52 +00001881 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00001882 } else {
Igor Laevsky285fe842015-05-19 16:29:43 +00001883 assert(isa<Argument>(Def));
1884 Store->insertAfter(cast<Instruction>(Alloca));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001885 }
1886 }
1887
Igor Laevsky285fe842015-05-19 16:29:43 +00001888 assert(PromotableAllocas.size() == Live.size() + NumRematerializedValues &&
Philip Reamesd16a9b12015-02-20 01:06:44 +00001889 "we must have the same allocas with lives");
1890 if (!PromotableAllocas.empty()) {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001891 // Apply mem2reg to promote alloca to SSA
Philip Reamesd16a9b12015-02-20 01:06:44 +00001892 PromoteMemToReg(PromotableAllocas, DT);
1893 }
1894
1895#ifndef NDEBUG
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001896 for (auto &I : F.getEntryBlock())
1897 if (isa<AllocaInst>(I))
Philip Reamesa6ebf072015-03-27 05:53:16 +00001898 InitialAllocaNum--;
1899 assert(InitialAllocaNum == 0 && "We must not introduce any extra allocas");
Philip Reamesd16a9b12015-02-20 01:06:44 +00001900#endif
1901}
1902
1903/// Implement a unique function which doesn't require we sort the input
1904/// vector. Doing so has the effect of changing the output of a couple of
1905/// tests in ways which make them less useful in testing fused safepoints.
Philip Reamesd2b66462015-02-20 22:39:41 +00001906template <typename T> static void unique_unsorted(SmallVectorImpl<T> &Vec) {
Benjamin Kramer258ea0d2015-06-13 19:50:38 +00001907 SmallSet<T, 8> Seen;
1908 Vec.erase(std::remove_if(Vec.begin(), Vec.end(), [&](const T &V) {
1909 return !Seen.insert(V).second;
1910 }), Vec.end());
Philip Reamesd16a9b12015-02-20 01:06:44 +00001911}
1912
Philip Reamesd16a9b12015-02-20 01:06:44 +00001913/// Insert holders so that each Value is obviously live through the entire
Philip Reamesf209a152015-04-13 20:00:30 +00001914/// lifetime of the call.
Philip Reamesd16a9b12015-02-20 01:06:44 +00001915static void insertUseHolderAfter(CallSite &CS, const ArrayRef<Value *> Values,
Philip Reamesf209a152015-04-13 20:00:30 +00001916 SmallVectorImpl<CallInst *> &Holders) {
Philip Reames21142752015-04-13 19:07:47 +00001917 if (Values.empty())
1918 // No values to hold live, might as well not insert the empty holder
1919 return;
1920
Philip Reamesd16a9b12015-02-20 01:06:44 +00001921 Module *M = CS.getInstruction()->getParent()->getParent()->getParent();
Philip Reamesf209a152015-04-13 20:00:30 +00001922 // Use a dummy vararg function to actually hold the values live
1923 Function *Func = cast<Function>(M->getOrInsertFunction(
1924 "__tmp_use", FunctionType::get(Type::getVoidTy(M->getContext()), true)));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001925 if (CS.isCall()) {
1926 // For call safepoints insert dummy calls right after safepoint
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00001927 Holders.push_back(CallInst::Create(Func, Values, "",
1928 &*++CS.getInstruction()->getIterator()));
Philip Reamesf209a152015-04-13 20:00:30 +00001929 return;
1930 }
1931 // For invoke safepooints insert dummy calls both in normal and
1932 // exceptional destination blocks
1933 auto *II = cast<InvokeInst>(CS.getInstruction());
1934 Holders.push_back(CallInst::Create(
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00001935 Func, Values, "", &*II->getNormalDest()->getFirstInsertionPt()));
Philip Reamesf209a152015-04-13 20:00:30 +00001936 Holders.push_back(CallInst::Create(
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00001937 Func, Values, "", &*II->getUnwindDest()->getFirstInsertionPt()));
Philip Reamesd16a9b12015-02-20 01:06:44 +00001938}
1939
1940static void findLiveReferences(
Philip Reamesd2b66462015-02-20 22:39:41 +00001941 Function &F, DominatorTree &DT, Pass *P, ArrayRef<CallSite> toUpdate,
1942 MutableArrayRef<struct PartiallyConstructedSafepointRecord> records) {
Philip Reamesdf1ef082015-04-10 22:53:14 +00001943 GCPtrLivenessData OriginalLivenessData;
1944 computeLiveInValues(DT, F, OriginalLivenessData);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001945 for (size_t i = 0; i < records.size(); i++) {
1946 struct PartiallyConstructedSafepointRecord &info = records[i];
Philip Reamesd2b66462015-02-20 22:39:41 +00001947 const CallSite &CS = toUpdate[i];
Philip Reamesdf1ef082015-04-10 22:53:14 +00001948 analyzeParsePointLiveness(DT, OriginalLivenessData, CS, info);
Philip Reamesd16a9b12015-02-20 01:06:44 +00001949 }
1950}
1951
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00001952/// Remove any vector of pointers from the live set by scalarizing them over the
1953/// statepoint instruction. Adds the scalarized pieces to the live set. It
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001954/// would be preferable to include the vector in the statepoint itself, but
Philip Reames8531d8c2015-04-10 21:48:25 +00001955/// the lowering code currently does not handle that. Extending it would be
1956/// slightly non-trivial since it requires a format change. Given how rare
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00001957/// such cases are (for the moment?) scalarizing is an acceptable compromise.
Philip Reames8531d8c2015-04-10 21:48:25 +00001958static void splitVectorValues(Instruction *StatepointInst,
Philip Reames8fe7f132015-06-26 22:47:37 +00001959 StatepointLiveSetTy &LiveSet,
1960 DenseMap<Value *, Value *>& PointerToBase,
1961 DominatorTree &DT) {
Philip Reames8531d8c2015-04-10 21:48:25 +00001962 SmallVector<Value *, 16> ToSplit;
1963 for (Value *V : LiveSet)
1964 if (isa<VectorType>(V->getType()))
1965 ToSplit.push_back(V);
1966
1967 if (ToSplit.empty())
1968 return;
1969
Philip Reames8fe7f132015-06-26 22:47:37 +00001970 DenseMap<Value *, SmallVector<Value *, 16>> ElementMapping;
1971
Philip Reames8531d8c2015-04-10 21:48:25 +00001972 Function &F = *(StatepointInst->getParent()->getParent());
1973
Philip Reames704e78b2015-04-10 22:34:56 +00001974 DenseMap<Value *, AllocaInst *> AllocaMap;
Philip Reames8531d8c2015-04-10 21:48:25 +00001975 // First is normal return, second is exceptional return (invoke only)
Philip Reames704e78b2015-04-10 22:34:56 +00001976 DenseMap<Value *, std::pair<Value *, Value *>> Replacements;
Philip Reames8531d8c2015-04-10 21:48:25 +00001977 for (Value *V : ToSplit) {
Philip Reames704e78b2015-04-10 22:34:56 +00001978 AllocaInst *Alloca =
1979 new AllocaInst(V->getType(), "", F.getEntryBlock().getFirstNonPHI());
Philip Reames8531d8c2015-04-10 21:48:25 +00001980 AllocaMap[V] = Alloca;
1981
1982 VectorType *VT = cast<VectorType>(V->getType());
1983 IRBuilder<> Builder(StatepointInst);
Philip Reames704e78b2015-04-10 22:34:56 +00001984 SmallVector<Value *, 16> Elements;
Philip Reames8531d8c2015-04-10 21:48:25 +00001985 for (unsigned i = 0; i < VT->getNumElements(); i++)
1986 Elements.push_back(Builder.CreateExtractElement(V, Builder.getInt32(i)));
Philip Reames8fe7f132015-06-26 22:47:37 +00001987 ElementMapping[V] = Elements;
Philip Reames8531d8c2015-04-10 21:48:25 +00001988
1989 auto InsertVectorReform = [&](Instruction *IP) {
1990 Builder.SetInsertPoint(IP);
1991 Builder.SetCurrentDebugLocation(IP->getDebugLoc());
1992 Value *ResultVec = UndefValue::get(VT);
1993 for (unsigned i = 0; i < VT->getNumElements(); i++)
1994 ResultVec = Builder.CreateInsertElement(ResultVec, Elements[i],
1995 Builder.getInt32(i));
1996 return ResultVec;
1997 };
1998
1999 if (isa<CallInst>(StatepointInst)) {
2000 BasicBlock::iterator Next(StatepointInst);
2001 Next++;
2002 Instruction *IP = &*(Next);
2003 Replacements[V].first = InsertVectorReform(IP);
2004 Replacements[V].second = nullptr;
2005 } else {
2006 InvokeInst *Invoke = cast<InvokeInst>(StatepointInst);
2007 // We've already normalized - check that we don't have shared destination
Philip Reames704e78b2015-04-10 22:34:56 +00002008 // blocks
Philip Reames8531d8c2015-04-10 21:48:25 +00002009 BasicBlock *NormalDest = Invoke->getNormalDest();
2010 assert(!isa<PHINode>(NormalDest->begin()));
2011 BasicBlock *UnwindDest = Invoke->getUnwindDest();
2012 assert(!isa<PHINode>(UnwindDest->begin()));
2013 // Insert insert element sequences in both successors
2014 Instruction *IP = &*(NormalDest->getFirstInsertionPt());
2015 Replacements[V].first = InsertVectorReform(IP);
2016 IP = &*(UnwindDest->getFirstInsertionPt());
2017 Replacements[V].second = InsertVectorReform(IP);
2018 }
2019 }
Philip Reames8fe7f132015-06-26 22:47:37 +00002020
Philip Reames8531d8c2015-04-10 21:48:25 +00002021 for (Value *V : ToSplit) {
2022 AllocaInst *Alloca = AllocaMap[V];
2023
2024 // Capture all users before we start mutating use lists
Philip Reames704e78b2015-04-10 22:34:56 +00002025 SmallVector<Instruction *, 16> Users;
Philip Reames8531d8c2015-04-10 21:48:25 +00002026 for (User *U : V->users())
2027 Users.push_back(cast<Instruction>(U));
2028
2029 for (Instruction *I : Users) {
2030 if (auto Phi = dyn_cast<PHINode>(I)) {
2031 for (unsigned i = 0; i < Phi->getNumIncomingValues(); i++)
2032 if (V == Phi->getIncomingValue(i)) {
Philip Reames704e78b2015-04-10 22:34:56 +00002033 LoadInst *Load = new LoadInst(
2034 Alloca, "", Phi->getIncomingBlock(i)->getTerminator());
Philip Reames8531d8c2015-04-10 21:48:25 +00002035 Phi->setIncomingValue(i, Load);
2036 }
2037 } else {
2038 LoadInst *Load = new LoadInst(Alloca, "", I);
2039 I->replaceUsesOfWith(V, Load);
2040 }
2041 }
2042
2043 // Store the original value and the replacement value into the alloca
2044 StoreInst *Store = new StoreInst(V, Alloca);
2045 if (auto I = dyn_cast<Instruction>(V))
2046 Store->insertAfter(I);
2047 else
2048 Store->insertAfter(Alloca);
Philip Reames704e78b2015-04-10 22:34:56 +00002049
Philip Reames8531d8c2015-04-10 21:48:25 +00002050 // Normal return for invoke, or call return
2051 Instruction *Replacement = cast<Instruction>(Replacements[V].first);
2052 (new StoreInst(Replacement, Alloca))->insertAfter(Replacement);
2053 // Unwind return for invoke only
2054 Replacement = cast_or_null<Instruction>(Replacements[V].second);
2055 if (Replacement)
2056 (new StoreInst(Replacement, Alloca))->insertAfter(Replacement);
2057 }
2058
2059 // apply mem2reg to promote alloca to SSA
Philip Reames704e78b2015-04-10 22:34:56 +00002060 SmallVector<AllocaInst *, 16> Allocas;
Philip Reames8531d8c2015-04-10 21:48:25 +00002061 for (Value *V : ToSplit)
2062 Allocas.push_back(AllocaMap[V]);
2063 PromoteMemToReg(Allocas, DT);
Philip Reames8fe7f132015-06-26 22:47:37 +00002064
2065 // Update our tracking of live pointers and base mappings to account for the
2066 // changes we just made.
2067 for (Value *V : ToSplit) {
2068 auto &Elements = ElementMapping[V];
2069
2070 LiveSet.erase(V);
2071 LiveSet.insert(Elements.begin(), Elements.end());
2072 // We need to update the base mapping as well.
2073 assert(PointerToBase.count(V));
2074 Value *OldBase = PointerToBase[V];
2075 auto &BaseElements = ElementMapping[OldBase];
2076 PointerToBase.erase(V);
2077 assert(Elements.size() == BaseElements.size());
2078 for (unsigned i = 0; i < Elements.size(); i++) {
2079 Value *Elem = Elements[i];
2080 PointerToBase[Elem] = BaseElements[i];
2081 }
2082 }
Philip Reames8531d8c2015-04-10 21:48:25 +00002083}
2084
Igor Laevskye0317182015-05-19 15:59:05 +00002085// Helper function for the "rematerializeLiveValues". It walks use chain
2086// starting from the "CurrentValue" until it meets "BaseValue". Only "simple"
2087// values are visited (currently it is GEP's and casts). Returns true if it
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00002088// successfully reached "BaseValue" and false otherwise.
Igor Laevskye0317182015-05-19 15:59:05 +00002089// Fills "ChainToBase" array with all visited values. "BaseValue" is not
2090// recorded.
2091static bool findRematerializableChainToBasePointer(
2092 SmallVectorImpl<Instruction*> &ChainToBase,
2093 Value *CurrentValue, Value *BaseValue) {
2094
2095 // We have found a base value
2096 if (CurrentValue == BaseValue) {
2097 return true;
2098 }
2099
2100 if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(CurrentValue)) {
2101 ChainToBase.push_back(GEP);
2102 return findRematerializableChainToBasePointer(ChainToBase,
2103 GEP->getPointerOperand(),
2104 BaseValue);
2105 }
2106
2107 if (CastInst *CI = dyn_cast<CastInst>(CurrentValue)) {
2108 Value *Def = CI->stripPointerCasts();
2109
2110 // This two checks are basically similar. First one is here for the
2111 // consistency with findBasePointers logic.
2112 assert(!isa<CastInst>(Def) && "not a pointer cast found");
2113 if (!CI->isNoopCast(CI->getModule()->getDataLayout()))
2114 return false;
2115
2116 ChainToBase.push_back(CI);
2117 return findRematerializableChainToBasePointer(ChainToBase, Def, BaseValue);
2118 }
2119
2120 // Not supported instruction in the chain
2121 return false;
2122}
2123
2124// Helper function for the "rematerializeLiveValues". Compute cost of the use
2125// chain we are going to rematerialize.
2126static unsigned
2127chainToBasePointerCost(SmallVectorImpl<Instruction*> &Chain,
2128 TargetTransformInfo &TTI) {
2129 unsigned Cost = 0;
2130
2131 for (Instruction *Instr : Chain) {
2132 if (CastInst *CI = dyn_cast<CastInst>(Instr)) {
2133 assert(CI->isNoopCast(CI->getModule()->getDataLayout()) &&
2134 "non noop cast is found during rematerialization");
2135
2136 Type *SrcTy = CI->getOperand(0)->getType();
2137 Cost += TTI.getCastInstrCost(CI->getOpcode(), CI->getType(), SrcTy);
2138
2139 } else if (GetElementPtrInst *GEP = dyn_cast<GetElementPtrInst>(Instr)) {
2140 // Cost of the address calculation
2141 Type *ValTy = GEP->getPointerOperandType()->getPointerElementType();
2142 Cost += TTI.getAddressComputationCost(ValTy);
2143
2144 // And cost of the GEP itself
2145 // TODO: Use TTI->getGEPCost here (it exists, but appears to be not
2146 // allowed for the external usage)
2147 if (!GEP->hasAllConstantIndices())
2148 Cost += 2;
2149
2150 } else {
2151 llvm_unreachable("unsupported instruciton type during rematerialization");
2152 }
2153 }
2154
2155 return Cost;
2156}
2157
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002158// From the statepoint live set pick values that are cheaper to recompute then
2159// to relocate. Remove this values from the live set, rematerialize them after
Igor Laevskye0317182015-05-19 15:59:05 +00002160// statepoint and record them in "Info" structure. Note that similar to
2161// relocated values we don't do any user adjustments here.
2162static void rematerializeLiveValues(CallSite CS,
2163 PartiallyConstructedSafepointRecord &Info,
2164 TargetTransformInfo &TTI) {
Aaron Ballmanff7d4fa2015-05-20 14:53:50 +00002165 const unsigned int ChainLengthThreshold = 10;
NAKAMURA Takumifb3bd712015-05-25 01:43:23 +00002166
Igor Laevskye0317182015-05-19 15:59:05 +00002167 // Record values we are going to delete from this statepoint live set.
2168 // We can not di this in following loop due to iterator invalidation.
2169 SmallVector<Value *, 32> LiveValuesToBeDeleted;
2170
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002171 for (Value *LiveValue: Info.LiveSet) {
Igor Laevskye0317182015-05-19 15:59:05 +00002172 // For each live pointer find it's defining chain
2173 SmallVector<Instruction *, 3> ChainToBase;
Philip Reames74ce2e72015-07-21 16:51:17 +00002174 assert(Info.PointerToBase.count(LiveValue));
Igor Laevskye0317182015-05-19 15:59:05 +00002175 bool FoundChain =
2176 findRematerializableChainToBasePointer(ChainToBase,
2177 LiveValue,
2178 Info.PointerToBase[LiveValue]);
2179 // Nothing to do, or chain is too long
2180 if (!FoundChain ||
2181 ChainToBase.size() == 0 ||
2182 ChainToBase.size() > ChainLengthThreshold)
2183 continue;
2184
2185 // Compute cost of this chain
2186 unsigned Cost = chainToBasePointerCost(ChainToBase, TTI);
2187 // TODO: We can also account for cases when we will be able to remove some
2188 // of the rematerialized values by later optimization passes. I.e if
2189 // we rematerialized several intersecting chains. Or if original values
2190 // don't have any uses besides this statepoint.
2191
2192 // For invokes we need to rematerialize each chain twice - for normal and
2193 // for unwind basic blocks. Model this by multiplying cost by two.
2194 if (CS.isInvoke()) {
2195 Cost *= 2;
2196 }
2197 // If it's too expensive - skip it
2198 if (Cost >= RematerializationThreshold)
2199 continue;
2200
2201 // Remove value from the live set
2202 LiveValuesToBeDeleted.push_back(LiveValue);
2203
2204 // Clone instructions and record them inside "Info" structure
2205
2206 // Walk backwards to visit top-most instructions first
2207 std::reverse(ChainToBase.begin(), ChainToBase.end());
2208
2209 // Utility function which clones all instructions from "ChainToBase"
2210 // and inserts them before "InsertBefore". Returns rematerialized value
2211 // which should be used after statepoint.
2212 auto rematerializeChain = [&ChainToBase](Instruction *InsertBefore) {
2213 Instruction *LastClonedValue = nullptr;
2214 Instruction *LastValue = nullptr;
2215 for (Instruction *Instr: ChainToBase) {
2216 // Only GEP's and casts are suported as we need to be careful to not
2217 // introduce any new uses of pointers not in the liveset.
2218 // Note that it's fine to introduce new uses of pointers which were
2219 // otherwise not used after this statepoint.
2220 assert(isa<GetElementPtrInst>(Instr) || isa<CastInst>(Instr));
2221
2222 Instruction *ClonedValue = Instr->clone();
2223 ClonedValue->insertBefore(InsertBefore);
2224 ClonedValue->setName(Instr->getName() + ".remat");
2225
2226 // If it is not first instruction in the chain then it uses previously
2227 // cloned value. We should update it to use cloned value.
2228 if (LastClonedValue) {
2229 assert(LastValue);
2230 ClonedValue->replaceUsesOfWith(LastValue, LastClonedValue);
2231#ifndef NDEBUG
Igor Laevskyd83f6972015-05-21 13:02:14 +00002232 // Assert that cloned instruction does not use any instructions from
2233 // this chain other than LastClonedValue
2234 for (auto OpValue : ClonedValue->operand_values()) {
2235 assert(std::find(ChainToBase.begin(), ChainToBase.end(), OpValue) ==
2236 ChainToBase.end() &&
2237 "incorrect use in rematerialization chain");
Igor Laevskye0317182015-05-19 15:59:05 +00002238 }
2239#endif
2240 }
2241
2242 LastClonedValue = ClonedValue;
2243 LastValue = Instr;
2244 }
2245 assert(LastClonedValue);
2246 return LastClonedValue;
2247 };
2248
2249 // Different cases for calls and invokes. For invokes we need to clone
2250 // instructions both on normal and unwind path.
2251 if (CS.isCall()) {
2252 Instruction *InsertBefore = CS.getInstruction()->getNextNode();
2253 assert(InsertBefore);
2254 Instruction *RematerializedValue = rematerializeChain(InsertBefore);
2255 Info.RematerializedValues[RematerializedValue] = LiveValue;
2256 } else {
2257 InvokeInst *Invoke = cast<InvokeInst>(CS.getInstruction());
2258
2259 Instruction *NormalInsertBefore =
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00002260 &*Invoke->getNormalDest()->getFirstInsertionPt();
Igor Laevskye0317182015-05-19 15:59:05 +00002261 Instruction *UnwindInsertBefore =
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00002262 &*Invoke->getUnwindDest()->getFirstInsertionPt();
Igor Laevskye0317182015-05-19 15:59:05 +00002263
2264 Instruction *NormalRematerializedValue =
2265 rematerializeChain(NormalInsertBefore);
2266 Instruction *UnwindRematerializedValue =
2267 rematerializeChain(UnwindInsertBefore);
2268
2269 Info.RematerializedValues[NormalRematerializedValue] = LiveValue;
2270 Info.RematerializedValues[UnwindRematerializedValue] = LiveValue;
2271 }
2272 }
2273
2274 // Remove rematerializaed values from the live set
2275 for (auto LiveValue: LiveValuesToBeDeleted) {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002276 Info.LiveSet.erase(LiveValue);
Igor Laevskye0317182015-05-19 15:59:05 +00002277 }
2278}
2279
Philip Reamesd16a9b12015-02-20 01:06:44 +00002280static bool insertParsePoints(Function &F, DominatorTree &DT, Pass *P,
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002281 SmallVectorImpl<CallSite> &ToUpdate) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00002282#ifndef NDEBUG
2283 // sanity check the input
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002284 std::set<CallSite> Uniqued;
2285 Uniqued.insert(ToUpdate.begin(), ToUpdate.end());
2286 assert(Uniqued.size() == ToUpdate.size() && "no duplicates please!");
Philip Reamesd16a9b12015-02-20 01:06:44 +00002287
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002288 for (CallSite CS : ToUpdate) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00002289 assert(CS.getInstruction()->getParent()->getParent() == &F);
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002290 assert((UseDeoptBundles || isStatepoint(CS)) &&
2291 "expected to already be a deopt statepoint");
Philip Reamesd16a9b12015-02-20 01:06:44 +00002292 }
2293#endif
2294
Philip Reames69e51ca2015-04-13 18:07:21 +00002295 // When inserting gc.relocates for invokes, we need to be able to insert at
2296 // the top of the successor blocks. See the comment on
2297 // normalForInvokeSafepoint on exactly what is needed. Note that this step
Philip Reamesf209a152015-04-13 20:00:30 +00002298 // may restructure the CFG.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002299 for (CallSite CS : ToUpdate) {
Philip Reamesf209a152015-04-13 20:00:30 +00002300 if (!CS.isInvoke())
2301 continue;
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002302 auto *II = cast<InvokeInst>(CS.getInstruction());
2303 normalizeForInvokeSafepoint(II->getNormalDest(), II->getParent(), DT);
2304 normalizeForInvokeSafepoint(II->getUnwindDest(), II->getParent(), DT);
Philip Reamesf209a152015-04-13 20:00:30 +00002305 }
Philip Reames69e51ca2015-04-13 18:07:21 +00002306
Philip Reamesd16a9b12015-02-20 01:06:44 +00002307 // A list of dummy calls added to the IR to keep various values obviously
2308 // live in the IR. We'll remove all of these when done.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002309 SmallVector<CallInst *, 64> Holders;
Philip Reamesd16a9b12015-02-20 01:06:44 +00002310
2311 // Insert a dummy call with all of the arguments to the vm_state we'll need
2312 // for the actual safepoint insertion. This ensures reference arguments in
2313 // the deopt argument list are considered live through the safepoint (and
2314 // thus makes sure they get relocated.)
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002315 for (CallSite CS : ToUpdate) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00002316 SmallVector<Value *, 64> DeoptValues;
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002317
2318 iterator_range<const Use *> DeoptStateRange =
2319 UseDeoptBundles
2320 ? iterator_range<const Use *>(GetDeoptBundleOperands(CS))
2321 : iterator_range<const Use *>(Statepoint(CS).vm_state_args());
2322
2323 for (Value *Arg : DeoptStateRange) {
Philip Reames8531d8c2015-04-10 21:48:25 +00002324 assert(!isUnhandledGCPointerType(Arg->getType()) &&
2325 "support for FCA unimplemented");
2326 if (isHandledGCPointerType(Arg->getType()))
Philip Reamesd16a9b12015-02-20 01:06:44 +00002327 DeoptValues.push_back(Arg);
2328 }
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002329
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002330 insertUseHolderAfter(CS, DeoptValues, Holders);
Philip Reamesd16a9b12015-02-20 01:06:44 +00002331 }
2332
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002333 SmallVector<PartiallyConstructedSafepointRecord, 64> Records(ToUpdate.size());
Philip Reamesd16a9b12015-02-20 01:06:44 +00002334
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00002335 // A) Identify all gc pointers which are statically live at the given call
Philip Reamesd16a9b12015-02-20 01:06:44 +00002336 // site.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002337 findLiveReferences(F, DT, P, ToUpdate, Records);
Philip Reamesd16a9b12015-02-20 01:06:44 +00002338
2339 // B) Find the base pointers for each live pointer
2340 /* scope for caching */ {
2341 // Cache the 'defining value' relation used in the computation and
2342 // insertion of base phis and selects. This ensures that we don't insert
2343 // large numbers of duplicate base_phis.
2344 DefiningValueMapTy DVCache;
2345
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002346 for (size_t i = 0; i < Records.size(); i++) {
2347 PartiallyConstructedSafepointRecord &info = Records[i];
2348 findBasePointers(DT, DVCache, ToUpdate[i], info);
Philip Reamesd16a9b12015-02-20 01:06:44 +00002349 }
2350 } // end of cache scope
2351
2352 // The base phi insertion logic (for any safepoint) may have inserted new
2353 // instructions which are now live at some safepoint. The simplest such
2354 // example is:
2355 // loop:
2356 // phi a <-- will be a new base_phi here
2357 // safepoint 1 <-- that needs to be live here
2358 // gep a + 1
2359 // safepoint 2
2360 // br loop
Philip Reamesd16a9b12015-02-20 01:06:44 +00002361 // We insert some dummy calls after each safepoint to definitely hold live
2362 // the base pointers which were identified for that safepoint. We'll then
2363 // ask liveness for _every_ base inserted to see what is now live. Then we
2364 // remove the dummy calls.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002365 Holders.reserve(Holders.size() + Records.size());
2366 for (size_t i = 0; i < Records.size(); i++) {
2367 PartiallyConstructedSafepointRecord &Info = Records[i];
Philip Reamesd16a9b12015-02-20 01:06:44 +00002368
2369 SmallVector<Value *, 128> Bases;
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002370 for (auto Pair : Info.PointerToBase)
Philip Reamesd16a9b12015-02-20 01:06:44 +00002371 Bases.push_back(Pair.second);
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002372
2373 insertUseHolderAfter(ToUpdate[i], Bases, Holders);
Philip Reamesd16a9b12015-02-20 01:06:44 +00002374 }
2375
Philip Reamesdf1ef082015-04-10 22:53:14 +00002376 // By selecting base pointers, we've effectively inserted new uses. Thus, we
2377 // need to rerun liveness. We may *also* have inserted new defs, but that's
2378 // not the key issue.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002379 recomputeLiveInValues(F, DT, P, ToUpdate, Records);
Philip Reamesd16a9b12015-02-20 01:06:44 +00002380
Philip Reamesd16a9b12015-02-20 01:06:44 +00002381 if (PrintBasePointers) {
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002382 for (auto &Info : Records) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00002383 errs() << "Base Pairs: (w/Relocation)\n";
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002384 for (auto Pair : Info.PointerToBase)
Philip Reamesd16a9b12015-02-20 01:06:44 +00002385 errs() << " derived %" << Pair.first->getName() << " base %"
2386 << Pair.second->getName() << "\n";
Philip Reamesd16a9b12015-02-20 01:06:44 +00002387 }
2388 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002389
2390 for (CallInst *CI : Holders)
2391 CI->eraseFromParent();
2392
2393 Holders.clear();
Philip Reamesd16a9b12015-02-20 01:06:44 +00002394
Philip Reames8fe7f132015-06-26 22:47:37 +00002395 // Do a limited scalarization of any live at safepoint vector values which
2396 // contain pointers. This enables this pass to run after vectorization at
2397 // the cost of some possible performance loss. TODO: it would be nice to
2398 // natively support vectors all the way through the backend so we don't need
2399 // to scalarize here.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002400 for (size_t i = 0; i < Records.size(); i++) {
2401 PartiallyConstructedSafepointRecord &Info = Records[i];
2402 Instruction *Statepoint = ToUpdate[i].getInstruction();
2403 splitVectorValues(cast<Instruction>(Statepoint), Info.LiveSet,
2404 Info.PointerToBase, DT);
Philip Reames8fe7f132015-06-26 22:47:37 +00002405 }
2406
Igor Laevskye0317182015-05-19 15:59:05 +00002407 // In order to reduce live set of statepoint we might choose to rematerialize
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00002408 // some values instead of relocating them. This is purely an optimization and
Igor Laevskye0317182015-05-19 15:59:05 +00002409 // does not influence correctness.
2410 TargetTransformInfo &TTI =
2411 P->getAnalysis<TargetTransformInfoWrapperPass>().getTTI(F);
2412
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002413 for (size_t i = 0; i < Records.size(); i++)
2414 rematerializeLiveValues(ToUpdate[i], Records[i], TTI);
Igor Laevskye0317182015-05-19 15:59:05 +00002415
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002416 // We need this to safely RAUW and delete call or invoke return values that
2417 // may themselves be live over a statepoint. For details, please see usage in
2418 // makeStatepointExplicitImpl.
2419 std::vector<DeferredReplacement> Replacements;
2420
Philip Reamesd16a9b12015-02-20 01:06:44 +00002421 // Now run through and replace the existing statepoints with new ones with
2422 // the live variables listed. We do not yet update uses of the values being
2423 // relocated. We have references to live variables that need to
2424 // survive to the last iteration of this loop. (By construction, the
2425 // previous statepoint can not be a live variable, thus we can and remove
2426 // the old statepoint calls as we go.)
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002427 for (size_t i = 0; i < Records.size(); i++)
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002428 makeStatepointExplicit(DT, ToUpdate[i], Records[i], Replacements);
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002429
2430 ToUpdate.clear(); // prevent accident use of invalid CallSites
Philip Reamesd16a9b12015-02-20 01:06:44 +00002431
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002432 for (auto &PR : Replacements)
2433 PR.doReplacement();
2434
2435 Replacements.clear();
2436
2437 for (auto &Info : Records) {
2438 // These live sets may contain state Value pointers, since we replaced calls
2439 // with operand bundles with calls wrapped in gc.statepoint, and some of
2440 // those calls may have been def'ing live gc pointers. Clear these out to
2441 // avoid accidentally using them.
2442 //
2443 // TODO: We should create a separate data structure that does not contain
2444 // these live sets, and migrate to using that data structure from this point
2445 // onward.
2446 Info.LiveSet.clear();
2447 Info.PointerToBase.clear();
2448 }
2449
Philip Reamesd16a9b12015-02-20 01:06:44 +00002450 // Do all the fixups of the original live variables to their relocated selves
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002451 SmallVector<Value *, 128> Live;
2452 for (size_t i = 0; i < Records.size(); i++) {
2453 PartiallyConstructedSafepointRecord &Info = Records[i];
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002454
Philip Reamesd16a9b12015-02-20 01:06:44 +00002455 // We can't simply save the live set from the original insertion. One of
2456 // the live values might be the result of a call which needs a safepoint.
2457 // That Value* no longer exists and we need to use the new gc_result.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002458 // Thankfully, the live set is embedded in the statepoint (and updated), so
Philip Reamesd16a9b12015-02-20 01:06:44 +00002459 // we just grab that.
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002460 Statepoint Statepoint(Info.StatepointToken);
2461 Live.insert(Live.end(), Statepoint.gc_args_begin(),
2462 Statepoint.gc_args_end());
Philip Reames9a2e01d2015-04-13 17:35:55 +00002463#ifndef NDEBUG
2464 // Do some basic sanity checks on our liveness results before performing
2465 // relocation. Relocation can and will turn mistakes in liveness results
2466 // into non-sensical code which is must harder to debug.
2467 // TODO: It would be nice to test consistency as well
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002468 assert(DT.isReachableFromEntry(Info.StatepointToken->getParent()) &&
Philip Reames9a2e01d2015-04-13 17:35:55 +00002469 "statepoint must be reachable or liveness is meaningless");
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002470 for (Value *V : Statepoint.gc_args()) {
Philip Reames9a2e01d2015-04-13 17:35:55 +00002471 if (!isa<Instruction>(V))
2472 // Non-instruction values trivial dominate all possible uses
2473 continue;
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002474 auto *LiveInst = cast<Instruction>(V);
Philip Reames9a2e01d2015-04-13 17:35:55 +00002475 assert(DT.isReachableFromEntry(LiveInst->getParent()) &&
2476 "unreachable values should never be live");
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002477 assert(DT.dominates(LiveInst, Info.StatepointToken) &&
Philip Reames9a2e01d2015-04-13 17:35:55 +00002478 "basic SSA liveness expectation violated by liveness analysis");
2479 }
2480#endif
Philip Reamesd16a9b12015-02-20 01:06:44 +00002481 }
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002482 unique_unsorted(Live);
Philip Reamesd16a9b12015-02-20 01:06:44 +00002483
Nick Lewyckyeb3231e2015-02-20 07:14:02 +00002484#ifndef NDEBUG
Philip Reamesd16a9b12015-02-20 01:06:44 +00002485 // sanity check
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002486 for (auto *Ptr : Live)
2487 assert(isGCPointerType(Ptr->getType()) && "must be a gc pointer type");
Nick Lewyckyeb3231e2015-02-20 07:14:02 +00002488#endif
Philip Reamesd16a9b12015-02-20 01:06:44 +00002489
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002490 relocationViaAlloca(F, DT, Live, Records);
2491 return !Records.empty();
Philip Reamesd16a9b12015-02-20 01:06:44 +00002492}
2493
Sanjoy Das353a19e2015-06-02 22:33:37 +00002494// Handles both return values and arguments for Functions and CallSites.
2495template <typename AttrHolder>
2496static void RemoveDerefAttrAtIndex(LLVMContext &Ctx, AttrHolder &AH,
2497 unsigned Index) {
2498 AttrBuilder R;
2499 if (AH.getDereferenceableBytes(Index))
2500 R.addAttribute(Attribute::get(Ctx, Attribute::Dereferenceable,
2501 AH.getDereferenceableBytes(Index)));
2502 if (AH.getDereferenceableOrNullBytes(Index))
2503 R.addAttribute(Attribute::get(Ctx, Attribute::DereferenceableOrNull,
2504 AH.getDereferenceableOrNullBytes(Index)));
2505
2506 if (!R.empty())
2507 AH.setAttributes(AH.getAttributes().removeAttributes(
2508 Ctx, Index, AttributeSet::get(Ctx, Index, R)));
Vasileios Kalintiris9f77f612015-06-03 08:51:30 +00002509}
Sanjoy Das353a19e2015-06-02 22:33:37 +00002510
2511void
2512RewriteStatepointsForGC::stripDereferenceabilityInfoFromPrototype(Function &F) {
2513 LLVMContext &Ctx = F.getContext();
2514
2515 for (Argument &A : F.args())
2516 if (isa<PointerType>(A.getType()))
2517 RemoveDerefAttrAtIndex(Ctx, F, A.getArgNo() + 1);
2518
2519 if (isa<PointerType>(F.getReturnType()))
2520 RemoveDerefAttrAtIndex(Ctx, F, AttributeSet::ReturnIndex);
2521}
2522
2523void RewriteStatepointsForGC::stripDereferenceabilityInfoFromBody(Function &F) {
2524 if (F.empty())
2525 return;
2526
2527 LLVMContext &Ctx = F.getContext();
2528 MDBuilder Builder(Ctx);
2529
Nico Rieck78199512015-08-06 19:10:45 +00002530 for (Instruction &I : instructions(F)) {
Sanjoy Das353a19e2015-06-02 22:33:37 +00002531 if (const MDNode *MD = I.getMetadata(LLVMContext::MD_tbaa)) {
2532 assert(MD->getNumOperands() < 5 && "unrecognized metadata shape!");
2533 bool IsImmutableTBAA =
2534 MD->getNumOperands() == 4 &&
2535 mdconst::extract<ConstantInt>(MD->getOperand(3))->getValue() == 1;
2536
2537 if (!IsImmutableTBAA)
2538 continue; // no work to do, MD_tbaa is already marked mutable
2539
2540 MDNode *Base = cast<MDNode>(MD->getOperand(0));
2541 MDNode *Access = cast<MDNode>(MD->getOperand(1));
2542 uint64_t Offset =
2543 mdconst::extract<ConstantInt>(MD->getOperand(2))->getZExtValue();
2544
2545 MDNode *MutableTBAA =
2546 Builder.createTBAAStructTagNode(Base, Access, Offset);
2547 I.setMetadata(LLVMContext::MD_tbaa, MutableTBAA);
2548 }
2549
2550 if (CallSite CS = CallSite(&I)) {
2551 for (int i = 0, e = CS.arg_size(); i != e; i++)
2552 if (isa<PointerType>(CS.getArgument(i)->getType()))
2553 RemoveDerefAttrAtIndex(Ctx, CS, i + 1);
2554 if (isa<PointerType>(CS.getType()))
2555 RemoveDerefAttrAtIndex(Ctx, CS, AttributeSet::ReturnIndex);
2556 }
2557 }
2558}
2559
Philip Reamesd16a9b12015-02-20 01:06:44 +00002560/// Returns true if this function should be rewritten by this pass. The main
2561/// point of this function is as an extension point for custom logic.
2562static bool shouldRewriteStatepointsIn(Function &F) {
2563 // TODO: This should check the GCStrategy
Philip Reames2ef029c2015-02-20 18:56:14 +00002564 if (F.hasGC()) {
NAKAMURA Takumifb3bd712015-05-25 01:43:23 +00002565 const char *FunctionGCName = F.getGC();
2566 const StringRef StatepointExampleName("statepoint-example");
2567 const StringRef CoreCLRName("coreclr");
2568 return (StatepointExampleName == FunctionGCName) ||
NAKAMURA Takumi5582a6a2015-05-25 01:43:34 +00002569 (CoreCLRName == FunctionGCName);
2570 } else
Philip Reames2ef029c2015-02-20 18:56:14 +00002571 return false;
Philip Reamesd16a9b12015-02-20 01:06:44 +00002572}
2573
Sanjoy Das353a19e2015-06-02 22:33:37 +00002574void RewriteStatepointsForGC::stripDereferenceabilityInfo(Module &M) {
2575#ifndef NDEBUG
2576 assert(std::any_of(M.begin(), M.end(), shouldRewriteStatepointsIn) &&
2577 "precondition!");
2578#endif
2579
2580 for (Function &F : M)
2581 stripDereferenceabilityInfoFromPrototype(F);
2582
2583 for (Function &F : M)
2584 stripDereferenceabilityInfoFromBody(F);
2585}
2586
Philip Reamesd16a9b12015-02-20 01:06:44 +00002587bool RewriteStatepointsForGC::runOnFunction(Function &F) {
2588 // Nothing to do for declarations.
2589 if (F.isDeclaration() || F.empty())
2590 return false;
2591
2592 // Policy choice says not to rewrite - the most common reason is that we're
2593 // compiling code without a GCStrategy.
2594 if (!shouldRewriteStatepointsIn(F))
2595 return false;
2596
Sanjoy Dasea45f0e2015-06-02 22:33:34 +00002597 DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>(F).getDomTree();
Philip Reames704e78b2015-04-10 22:34:56 +00002598
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002599 auto NeedsRewrite = [](Instruction &I) {
2600 if (UseDeoptBundles) {
2601 if (ImmutableCallSite CS = ImmutableCallSite(&I))
2602 return !callsGCLeafFunction(CS);
2603 return false;
2604 }
2605
2606 return isStatepoint(I);
2607 };
2608
Philip Reames85b36a82015-04-10 22:07:04 +00002609 // Gather all the statepoints which need rewritten. Be careful to only
2610 // consider those in reachable code since we need to ask dominance queries
2611 // when rewriting. We'll delete the unreachable ones in a moment.
Philip Reamesd2b66462015-02-20 22:39:41 +00002612 SmallVector<CallSite, 64> ParsePointNeeded;
Philip Reamesf66d7372015-04-10 22:16:58 +00002613 bool HasUnreachableStatepoint = false;
Nico Rieck78199512015-08-06 19:10:45 +00002614 for (Instruction &I : instructions(F)) {
Philip Reamesd16a9b12015-02-20 01:06:44 +00002615 // TODO: only the ones with the flag set!
Sanjoy Das25ec1a32015-10-16 02:41:00 +00002616 if (NeedsRewrite(I)) {
Philip Reames85b36a82015-04-10 22:07:04 +00002617 if (DT.isReachableFromEntry(I.getParent()))
2618 ParsePointNeeded.push_back(CallSite(&I));
2619 else
Philip Reamesf66d7372015-04-10 22:16:58 +00002620 HasUnreachableStatepoint = true;
Philip Reames85b36a82015-04-10 22:07:04 +00002621 }
Philip Reamesd16a9b12015-02-20 01:06:44 +00002622 }
2623
Philip Reames85b36a82015-04-10 22:07:04 +00002624 bool MadeChange = false;
Philip Reames704e78b2015-04-10 22:34:56 +00002625
Philip Reames85b36a82015-04-10 22:07:04 +00002626 // Delete any unreachable statepoints so that we don't have unrewritten
2627 // statepoints surviving this pass. This makes testing easier and the
2628 // resulting IR less confusing to human readers. Rather than be fancy, we
2629 // just reuse a utility function which removes the unreachable blocks.
Philip Reamesf66d7372015-04-10 22:16:58 +00002630 if (HasUnreachableStatepoint)
Philip Reames85b36a82015-04-10 22:07:04 +00002631 MadeChange |= removeUnreachableBlocks(F);
2632
Philip Reamesd16a9b12015-02-20 01:06:44 +00002633 // Return early if no work to do.
2634 if (ParsePointNeeded.empty())
Philip Reames85b36a82015-04-10 22:07:04 +00002635 return MadeChange;
Philip Reamesd16a9b12015-02-20 01:06:44 +00002636
Philip Reames85b36a82015-04-10 22:07:04 +00002637 // As a prepass, go ahead and aggressively destroy single entry phi nodes.
2638 // These are created by LCSSA. They have the effect of increasing the size
2639 // of liveness sets for no good reason. It may be harder to do this post
2640 // insertion since relocations and base phis can confuse things.
2641 for (BasicBlock &BB : F)
2642 if (BB.getUniquePredecessor()) {
2643 MadeChange = true;
2644 FoldSingleEntryPHINodes(&BB);
2645 }
2646
Philip Reames971dc3a2015-08-12 22:11:45 +00002647 // Before we start introducing relocations, we want to tweak the IR a bit to
2648 // avoid unfortunate code generation effects. The main example is that we
2649 // want to try to make sure the comparison feeding a branch is after any
2650 // safepoints. Otherwise, we end up with a comparison of pre-relocation
2651 // values feeding a branch after relocation. This is semantically correct,
2652 // but results in extra register pressure since both the pre-relocation and
2653 // post-relocation copies must be available in registers. For code without
2654 // relocations this is handled elsewhere, but teaching the scheduler to
2655 // reverse the transform we're about to do would be slightly complex.
2656 // Note: This may extend the live range of the inputs to the icmp and thus
2657 // increase the liveset of any statepoint we move over. This is profitable
2658 // as long as all statepoints are in rare blocks. If we had in-register
2659 // lowering for live values this would be a much safer transform.
2660 auto getConditionInst = [](TerminatorInst *TI) -> Instruction* {
2661 if (auto *BI = dyn_cast<BranchInst>(TI))
2662 if (BI->isConditional())
2663 return dyn_cast<Instruction>(BI->getCondition());
2664 // TODO: Extend this to handle switches
2665 return nullptr;
2666 };
2667 for (BasicBlock &BB : F) {
2668 TerminatorInst *TI = BB.getTerminator();
2669 if (auto *Cond = getConditionInst(TI))
2670 // TODO: Handle more than just ICmps here. We should be able to move
2671 // most instructions without side effects or memory access.
2672 if (isa<ICmpInst>(Cond) && Cond->hasOneUse()) {
2673 MadeChange = true;
2674 Cond->moveBefore(TI);
2675 }
2676 }
2677
Philip Reames85b36a82015-04-10 22:07:04 +00002678 MadeChange |= insertParsePoints(F, DT, this, ParsePointNeeded);
2679 return MadeChange;
Philip Reamesd16a9b12015-02-20 01:06:44 +00002680}
Philip Reamesdf1ef082015-04-10 22:53:14 +00002681
2682// liveness computation via standard dataflow
2683// -------------------------------------------------------------------
2684
2685// TODO: Consider using bitvectors for liveness, the set of potentially
2686// interesting values should be small and easy to pre-compute.
2687
Philip Reamesdf1ef082015-04-10 22:53:14 +00002688/// Compute the live-in set for the location rbegin starting from
2689/// the live-out set of the basic block
2690static void computeLiveInValues(BasicBlock::reverse_iterator rbegin,
2691 BasicBlock::reverse_iterator rend,
2692 DenseSet<Value *> &LiveTmp) {
2693
2694 for (BasicBlock::reverse_iterator ritr = rbegin; ritr != rend; ritr++) {
2695 Instruction *I = &*ritr;
2696
2697 // KILL/Def - Remove this definition from LiveIn
2698 LiveTmp.erase(I);
2699
2700 // Don't consider *uses* in PHI nodes, we handle their contribution to
2701 // predecessor blocks when we seed the LiveOut sets
2702 if (isa<PHINode>(I))
2703 continue;
2704
2705 // USE - Add to the LiveIn set for this instruction
2706 for (Value *V : I->operands()) {
2707 assert(!isUnhandledGCPointerType(V->getType()) &&
2708 "support for FCA unimplemented");
Philip Reames63294cb2015-04-26 19:48:03 +00002709 if (isHandledGCPointerType(V->getType()) && !isa<Constant>(V)) {
2710 // The choice to exclude all things constant here is slightly subtle.
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00002711 // There are two independent reasons:
Philip Reames63294cb2015-04-26 19:48:03 +00002712 // - We assume that things which are constant (from LLVM's definition)
2713 // do not move at runtime. For example, the address of a global
2714 // variable is fixed, even though it's contents may not be.
2715 // - Second, we can't disallow arbitrary inttoptr constants even
2716 // if the language frontend does. Optimization passes are free to
2717 // locally exploit facts without respect to global reachability. This
2718 // can create sections of code which are dynamically unreachable and
2719 // contain just about anything. (see constants.ll in tests)
Philip Reamesdf1ef082015-04-10 22:53:14 +00002720 LiveTmp.insert(V);
2721 }
2722 }
2723 }
2724}
2725
2726static void computeLiveOutSeed(BasicBlock *BB, DenseSet<Value *> &LiveTmp) {
2727
2728 for (BasicBlock *Succ : successors(BB)) {
2729 const BasicBlock::iterator E(Succ->getFirstNonPHI());
2730 for (BasicBlock::iterator I = Succ->begin(); I != E; I++) {
2731 PHINode *Phi = cast<PHINode>(&*I);
2732 Value *V = Phi->getIncomingValueForBlock(BB);
2733 assert(!isUnhandledGCPointerType(V->getType()) &&
2734 "support for FCA unimplemented");
Philip Reames63294cb2015-04-26 19:48:03 +00002735 if (isHandledGCPointerType(V->getType()) && !isa<Constant>(V)) {
Philip Reamesdf1ef082015-04-10 22:53:14 +00002736 LiveTmp.insert(V);
2737 }
2738 }
2739 }
2740}
2741
2742static DenseSet<Value *> computeKillSet(BasicBlock *BB) {
2743 DenseSet<Value *> KillSet;
2744 for (Instruction &I : *BB)
2745 if (isHandledGCPointerType(I.getType()))
2746 KillSet.insert(&I);
2747 return KillSet;
2748}
2749
Philip Reames9638ff92015-04-11 00:06:47 +00002750#ifndef NDEBUG
Philip Reamesdf1ef082015-04-10 22:53:14 +00002751/// Check that the items in 'Live' dominate 'TI'. This is used as a basic
2752/// sanity check for the liveness computation.
2753static void checkBasicSSA(DominatorTree &DT, DenseSet<Value *> &Live,
2754 TerminatorInst *TI, bool TermOkay = false) {
Philip Reamesdf1ef082015-04-10 22:53:14 +00002755 for (Value *V : Live) {
2756 if (auto *I = dyn_cast<Instruction>(V)) {
2757 // The terminator can be a member of the LiveOut set. LLVM's definition
2758 // of instruction dominance states that V does not dominate itself. As
2759 // such, we need to special case this to allow it.
2760 if (TermOkay && TI == I)
2761 continue;
2762 assert(DT.dominates(I, TI) &&
2763 "basic SSA liveness expectation violated by liveness analysis");
2764 }
2765 }
Philip Reamesdf1ef082015-04-10 22:53:14 +00002766}
2767
2768/// Check that all the liveness sets used during the computation of liveness
2769/// obey basic SSA properties. This is useful for finding cases where we miss
2770/// a def.
2771static void checkBasicSSA(DominatorTree &DT, GCPtrLivenessData &Data,
2772 BasicBlock &BB) {
2773 checkBasicSSA(DT, Data.LiveSet[&BB], BB.getTerminator());
2774 checkBasicSSA(DT, Data.LiveOut[&BB], BB.getTerminator(), true);
2775 checkBasicSSA(DT, Data.LiveIn[&BB], BB.getTerminator());
2776}
Philip Reames9638ff92015-04-11 00:06:47 +00002777#endif
Philip Reamesdf1ef082015-04-10 22:53:14 +00002778
2779static void computeLiveInValues(DominatorTree &DT, Function &F,
2780 GCPtrLivenessData &Data) {
2781
Philip Reames4d80ede2015-04-10 23:11:26 +00002782 SmallSetVector<BasicBlock *, 200> Worklist;
Philip Reamesdf1ef082015-04-10 22:53:14 +00002783 auto AddPredsToWorklist = [&](BasicBlock *BB) {
Philip Reames4d80ede2015-04-10 23:11:26 +00002784 // We use a SetVector so that we don't have duplicates in the worklist.
2785 Worklist.insert(pred_begin(BB), pred_end(BB));
Philip Reamesdf1ef082015-04-10 22:53:14 +00002786 };
2787 auto NextItem = [&]() {
2788 BasicBlock *BB = Worklist.back();
2789 Worklist.pop_back();
Philip Reamesdf1ef082015-04-10 22:53:14 +00002790 return BB;
2791 };
2792
2793 // Seed the liveness for each individual block
2794 for (BasicBlock &BB : F) {
2795 Data.KillSet[&BB] = computeKillSet(&BB);
2796 Data.LiveSet[&BB].clear();
2797 computeLiveInValues(BB.rbegin(), BB.rend(), Data.LiveSet[&BB]);
2798
2799#ifndef NDEBUG
2800 for (Value *Kill : Data.KillSet[&BB])
2801 assert(!Data.LiveSet[&BB].count(Kill) && "live set contains kill");
2802#endif
2803
2804 Data.LiveOut[&BB] = DenseSet<Value *>();
2805 computeLiveOutSeed(&BB, Data.LiveOut[&BB]);
2806 Data.LiveIn[&BB] = Data.LiveSet[&BB];
2807 set_union(Data.LiveIn[&BB], Data.LiveOut[&BB]);
2808 set_subtract(Data.LiveIn[&BB], Data.KillSet[&BB]);
2809 if (!Data.LiveIn[&BB].empty())
2810 AddPredsToWorklist(&BB);
2811 }
2812
2813 // Propagate that liveness until stable
2814 while (!Worklist.empty()) {
2815 BasicBlock *BB = NextItem();
2816
2817 // Compute our new liveout set, then exit early if it hasn't changed
2818 // despite the contribution of our successor.
2819 DenseSet<Value *> LiveOut = Data.LiveOut[BB];
2820 const auto OldLiveOutSize = LiveOut.size();
2821 for (BasicBlock *Succ : successors(BB)) {
2822 assert(Data.LiveIn.count(Succ));
2823 set_union(LiveOut, Data.LiveIn[Succ]);
2824 }
2825 // assert OutLiveOut is a subset of LiveOut
2826 if (OldLiveOutSize == LiveOut.size()) {
2827 // If the sets are the same size, then we didn't actually add anything
2828 // when unioning our successors LiveIn Thus, the LiveIn of this block
2829 // hasn't changed.
2830 continue;
2831 }
2832 Data.LiveOut[BB] = LiveOut;
2833
2834 // Apply the effects of this basic block
2835 DenseSet<Value *> LiveTmp = LiveOut;
2836 set_union(LiveTmp, Data.LiveSet[BB]);
2837 set_subtract(LiveTmp, Data.KillSet[BB]);
2838
2839 assert(Data.LiveIn.count(BB));
2840 const DenseSet<Value *> &OldLiveIn = Data.LiveIn[BB];
2841 // assert: OldLiveIn is a subset of LiveTmp
2842 if (OldLiveIn.size() != LiveTmp.size()) {
2843 Data.LiveIn[BB] = LiveTmp;
2844 AddPredsToWorklist(BB);
2845 }
2846 } // while( !worklist.empty() )
2847
2848#ifndef NDEBUG
Benjamin Kramerdf005cb2015-08-08 18:27:36 +00002849 // Sanity check our output against SSA properties. This helps catch any
Philip Reamesdf1ef082015-04-10 22:53:14 +00002850 // missing kills during the above iteration.
2851 for (BasicBlock &BB : F) {
2852 checkBasicSSA(DT, Data, BB);
2853 }
2854#endif
2855}
2856
2857static void findLiveSetAtInst(Instruction *Inst, GCPtrLivenessData &Data,
2858 StatepointLiveSetTy &Out) {
2859
2860 BasicBlock *BB = Inst->getParent();
2861
2862 // Note: The copy is intentional and required
2863 assert(Data.LiveOut.count(BB));
2864 DenseSet<Value *> LiveOut = Data.LiveOut[BB];
2865
2866 // We want to handle the statepoint itself oddly. It's
2867 // call result is not live (normal), nor are it's arguments
2868 // (unless they're used again later). This adjustment is
2869 // specifically what we need to relocate
Duncan P. N. Exon Smithbe4d8cb2015-10-13 19:26:58 +00002870 BasicBlock::reverse_iterator rend(Inst->getIterator());
Philip Reamesdf1ef082015-04-10 22:53:14 +00002871 computeLiveInValues(BB->rbegin(), rend, LiveOut);
2872 LiveOut.erase(Inst);
2873 Out.insert(LiveOut.begin(), LiveOut.end());
2874}
2875
2876static void recomputeLiveInValues(GCPtrLivenessData &RevisedLivenessData,
2877 const CallSite &CS,
2878 PartiallyConstructedSafepointRecord &Info) {
2879 Instruction *Inst = CS.getInstruction();
2880 StatepointLiveSetTy Updated;
2881 findLiveSetAtInst(Inst, RevisedLivenessData, Updated);
2882
2883#ifndef NDEBUG
2884 DenseSet<Value *> Bases;
2885 for (auto KVPair : Info.PointerToBase) {
2886 Bases.insert(KVPair.second);
2887 }
2888#endif
2889 // We may have base pointers which are now live that weren't before. We need
2890 // to update the PointerToBase structure to reflect this.
2891 for (auto V : Updated)
2892 if (!Info.PointerToBase.count(V)) {
2893 assert(Bases.count(V) && "can't find base for unexpected live value");
2894 Info.PointerToBase[V] = V;
2895 continue;
2896 }
2897
2898#ifndef NDEBUG
2899 for (auto V : Updated) {
2900 assert(Info.PointerToBase.count(V) &&
2901 "must be able to find base for live value");
2902 }
2903#endif
2904
2905 // Remove any stale base mappings - this can happen since our liveness is
2906 // more precise then the one inherent in the base pointer analysis
2907 DenseSet<Value *> ToErase;
2908 for (auto KVPair : Info.PointerToBase)
2909 if (!Updated.count(KVPair.first))
2910 ToErase.insert(KVPair.first);
2911 for (auto V : ToErase)
2912 Info.PointerToBase.erase(V);
2913
2914#ifndef NDEBUG
2915 for (auto KVPair : Info.PointerToBase)
2916 assert(Updated.count(KVPair.first) && "record for non-live value");
2917#endif
2918
Sanjoy Dasb40bd1a2015-10-07 02:39:18 +00002919 Info.LiveSet = Updated;
Philip Reamesdf1ef082015-04-10 22:53:14 +00002920}