blob: 093cfb09af945a324e8ab267e9e478af16eab1aa [file] [log] [blame]
Johannes Doerfert58a7c752015-09-28 09:48:53 +00001//===--------- ScopInfo.cpp - Create Scops from LLVM IR ------------------===//
Tobias Grosser75805372011-04-29 06:27:02 +00002//
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// Create a polyhedral description for a static control flow region.
11//
12// The pass creates a polyhedral description of the Scops detected by the Scop
13// detection derived from their LLVM-IR code.
14//
Tobias Grossera5605d32014-10-29 19:58:28 +000015// This representation is shared among several tools in the polyhedral
Tobias Grosser75805372011-04-29 06:27:02 +000016// community, which are e.g. Cloog, Pluto, Loopo, Graphite.
17//
18//===----------------------------------------------------------------------===//
19
Tobias Grosser75805372011-04-29 06:27:02 +000020#include "polly/LinkAllPasses.h"
Johannes Doerfert0ee1f212014-06-17 17:31:36 +000021#include "polly/Options.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000022#include "polly/ScopInfo.h"
Tobias Grosser75805372011-04-29 06:27:02 +000023#include "polly/Support/GICHelper.h"
Tobias Grosser60b54f12011-11-08 15:41:28 +000024#include "polly/Support/SCEVValidator.h"
Tobias Grosser83628182013-05-07 08:11:54 +000025#include "polly/Support/ScopHelper.h"
Tobias Grosser9737c7b2015-11-22 11:06:51 +000026#include "llvm/ADT/DepthFirstIterator.h"
Tobias Grosserf4c24b22015-04-05 13:11:54 +000027#include "llvm/ADT/MapVector.h"
Tobias Grosserc2bb0cb2015-09-25 09:49:19 +000028#include "llvm/ADT/PostOrderIterator.h"
29#include "llvm/ADT/STLExtras.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000030#include "llvm/ADT/SetVector.h"
Tobias Grosser83628182013-05-07 08:11:54 +000031#include "llvm/ADT/Statistic.h"
Hongbin Zheng86a37742012-04-25 08:01:38 +000032#include "llvm/ADT/StringExtras.h"
Johannes Doerfertb164c792014-09-18 11:17:17 +000033#include "llvm/Analysis/AliasAnalysis.h"
Johannes Doerfert2af10e22015-11-12 03:25:01 +000034#include "llvm/Analysis/AssumptionCache.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000035#include "llvm/Analysis/LoopInfo.h"
Tobias Grosserc2bb0cb2015-09-25 09:49:19 +000036#include "llvm/Analysis/LoopIterator.h"
Tobias Grosser83628182013-05-07 08:11:54 +000037#include "llvm/Analysis/RegionIterator.h"
38#include "llvm/Analysis/ScalarEvolutionExpressions.h"
Johannes Doerfert48fe86f2015-11-12 02:32:32 +000039#include "llvm/IR/DiagnosticInfo.h"
Tobias Grosser75805372011-04-29 06:27:02 +000040#include "llvm/Support/Debug.h"
Tobias Grosser33ba62ad2011-08-18 06:31:50 +000041#include "isl/aff.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000042#include "isl/constraint.h"
Tobias Grosserf5338802011-10-06 00:03:35 +000043#include "isl/local_space.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000044#include "isl/map.h"
Tobias Grosser4a8e3562011-12-07 07:42:51 +000045#include "isl/options.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000046#include "isl/printer.h"
Tobias Grosser808cd692015-07-14 09:33:13 +000047#include "isl/schedule.h"
48#include "isl/schedule_node.h"
Tobias Grosserba0d0922015-05-09 09:13:42 +000049#include "isl/set.h"
50#include "isl/union_map.h"
Tobias Grossercd524dc2015-05-09 09:36:38 +000051#include "isl/union_set.h"
Tobias Grosseredab1352013-06-21 06:41:31 +000052#include "isl/val.h"
Tobias Grosser75805372011-04-29 06:27:02 +000053#include <sstream>
54#include <string>
55#include <vector>
56
57using namespace llvm;
58using namespace polly;
59
Chandler Carruth95fef942014-04-22 03:30:19 +000060#define DEBUG_TYPE "polly-scops"
61
Tobias Grosser74394f02013-01-14 22:40:23 +000062STATISTIC(ScopFound, "Number of valid Scops");
63STATISTIC(RichScopFound, "Number of Scops containing a loop");
Tobias Grosser75805372011-04-29 06:27:02 +000064
Michael Kruse7bf39442015-09-10 12:46:52 +000065static cl::opt<bool> ModelReadOnlyScalars(
66 "polly-analyze-read-only-scalars",
67 cl::desc("Model read-only scalar values in the scop description"),
68 cl::Hidden, cl::ZeroOrMore, cl::init(true), cl::cat(PollyCategory));
69
Johannes Doerfert9e7b17b2014-08-18 00:40:13 +000070// Multiplicative reductions can be disabled separately as these kind of
Johannes Doerfert0ee1f212014-06-17 17:31:36 +000071// operations can overflow easily. Additive reductions and bit operations
72// are in contrast pretty stable.
Tobias Grosser483a90d2014-07-09 10:50:10 +000073static cl::opt<bool> DisableMultiplicativeReductions(
74 "polly-disable-multiplicative-reductions",
75 cl::desc("Disable multiplicative reductions"), cl::Hidden, cl::ZeroOrMore,
76 cl::init(false), cl::cat(PollyCategory));
Johannes Doerfert0ee1f212014-06-17 17:31:36 +000077
Johannes Doerfert9143d672014-09-27 11:02:39 +000078static cl::opt<unsigned> RunTimeChecksMaxParameters(
79 "polly-rtc-max-parameters",
80 cl::desc("The maximal number of parameters allowed in RTCs."), cl::Hidden,
81 cl::ZeroOrMore, cl::init(8), cl::cat(PollyCategory));
82
Tobias Grosser71500722015-03-28 15:11:14 +000083static cl::opt<unsigned> RunTimeChecksMaxArraysPerGroup(
84 "polly-rtc-max-arrays-per-group",
85 cl::desc("The maximal number of arrays to compare in each alias group."),
86 cl::Hidden, cl::ZeroOrMore, cl::init(20), cl::cat(PollyCategory));
Tobias Grosser8a9c2352015-08-16 10:19:29 +000087static cl::opt<std::string> UserContextStr(
88 "polly-context", cl::value_desc("isl parameter set"),
89 cl::desc("Provide additional constraints on the context parameters"),
90 cl::init(""), cl::cat(PollyCategory));
Tobias Grosser71500722015-03-28 15:11:14 +000091
Tobias Grosserd83b8a82015-08-20 19:08:11 +000092static cl::opt<bool> DetectReductions("polly-detect-reductions",
93 cl::desc("Detect and exploit reductions"),
94 cl::Hidden, cl::ZeroOrMore,
95 cl::init(true), cl::cat(PollyCategory));
96
Tobias Grosser20a4c0c2015-11-11 16:22:36 +000097static cl::opt<int> MaxDisjunctsAssumed(
98 "polly-max-disjuncts-assumed",
99 cl::desc("The maximal number of disjuncts we allow in the assumption "
100 "context (this bounds compile time)"),
101 cl::Hidden, cl::ZeroOrMore, cl::init(150), cl::cat(PollyCategory));
102
Tobias Grosser4927c8e2015-11-24 12:50:02 +0000103static cl::opt<bool> IgnoreIntegerWrapping(
104 "polly-ignore-integer-wrapping",
105 cl::desc("Do not build run-time checks to proof absence of integer "
106 "wrapping"),
107 cl::Hidden, cl::ZeroOrMore, cl::init(false), cl::cat(PollyCategory));
108
Michael Kruse7bf39442015-09-10 12:46:52 +0000109//===----------------------------------------------------------------------===//
Michael Kruse7bf39442015-09-10 12:46:52 +0000110
Michael Kruse046dde42015-08-10 13:01:57 +0000111// Create a sequence of two schedules. Either argument may be null and is
112// interpreted as the empty schedule. Can also return null if both schedules are
113// empty.
114static __isl_give isl_schedule *
115combineInSequence(__isl_take isl_schedule *Prev,
116 __isl_take isl_schedule *Succ) {
117 if (!Prev)
118 return Succ;
119 if (!Succ)
120 return Prev;
121
122 return isl_schedule_sequence(Prev, Succ);
123}
124
Johannes Doerferte7044942015-02-24 11:58:30 +0000125static __isl_give isl_set *addRangeBoundsToSet(__isl_take isl_set *S,
126 const ConstantRange &Range,
127 int dim,
128 enum isl_dim_type type) {
129 isl_val *V;
130 isl_ctx *ctx = isl_set_get_ctx(S);
131
Johannes Doerfert8f8af432015-04-26 20:07:21 +0000132 bool useLowerUpperBound = Range.isSignWrappedSet() && !Range.isFullSet();
133 const auto LB = useLowerUpperBound ? Range.getLower() : Range.getSignedMin();
Johannes Doerferte4bd53b2015-03-08 19:49:50 +0000134 V = isl_valFromAPInt(ctx, LB, true);
Johannes Doerferte7044942015-02-24 11:58:30 +0000135 isl_set *SLB = isl_set_lower_bound_val(isl_set_copy(S), type, dim, V);
136
Johannes Doerfert8f8af432015-04-26 20:07:21 +0000137 const auto UB = useLowerUpperBound ? Range.getUpper() : Range.getSignedMax();
Johannes Doerferte4bd53b2015-03-08 19:49:50 +0000138 V = isl_valFromAPInt(ctx, UB, true);
Johannes Doerfert8f8af432015-04-26 20:07:21 +0000139 if (useLowerUpperBound)
Johannes Doerferte4bd53b2015-03-08 19:49:50 +0000140 V = isl_val_sub_ui(V, 1);
Johannes Doerferte7044942015-02-24 11:58:30 +0000141 isl_set *SUB = isl_set_upper_bound_val(S, type, dim, V);
142
Johannes Doerfert8f8af432015-04-26 20:07:21 +0000143 if (useLowerUpperBound)
Johannes Doerferte7044942015-02-24 11:58:30 +0000144 return isl_set_union(SLB, SUB);
145 else
146 return isl_set_intersect(SLB, SUB);
147}
148
Johannes Doerfert4eed5be2015-08-20 18:04:22 +0000149static const ScopArrayInfo *identifyBasePtrOriginSAI(Scop *S, Value *BasePtr) {
150 LoadInst *BasePtrLI = dyn_cast<LoadInst>(BasePtr);
151 if (!BasePtrLI)
152 return nullptr;
153
154 if (!S->getRegion().contains(BasePtrLI))
155 return nullptr;
156
157 ScalarEvolution &SE = *S->getSE();
158
159 auto *OriginBaseSCEV =
160 SE.getPointerBase(SE.getSCEV(BasePtrLI->getPointerOperand()));
161 if (!OriginBaseSCEV)
162 return nullptr;
163
164 auto *OriginBaseSCEVUnknown = dyn_cast<SCEVUnknown>(OriginBaseSCEV);
165 if (!OriginBaseSCEVUnknown)
166 return nullptr;
167
Tobias Grosser6abc75a2015-11-10 17:31:31 +0000168 return S->getScopArrayInfo(OriginBaseSCEVUnknown->getValue(),
169 ScopArrayInfo::KIND_ARRAY);
Johannes Doerfert4eed5be2015-08-20 18:04:22 +0000170}
171
Tobias Grosser49ad36c2015-05-20 08:05:31 +0000172ScopArrayInfo::ScopArrayInfo(Value *BasePtr, Type *ElementType, isl_ctx *Ctx,
Tobias Grosser6abc75a2015-11-10 17:31:31 +0000173 ArrayRef<const SCEV *> Sizes, enum ARRAYKIND Kind,
Johannes Doerfert55b3d8b2015-11-12 20:15:08 +0000174 const DataLayout &DL, Scop *S)
175 : BasePtr(BasePtr), ElementType(ElementType), Kind(Kind), DL(DL), S(*S) {
Tobias Grosser92245222015-07-28 14:53:44 +0000176 std::string BasePtrName =
Tobias Grosser6abc75a2015-11-10 17:31:31 +0000177 getIslCompatibleName("MemRef_", BasePtr, Kind == KIND_PHI ? "__phi" : "");
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000178 Id = isl_id_alloc(Ctx, BasePtrName.c_str(), this);
Johannes Doerfert4eed5be2015-08-20 18:04:22 +0000179
Tobias Grosser99c70dd2015-09-26 08:55:54 +0000180 updateSizes(Sizes);
Johannes Doerfert4eed5be2015-08-20 18:04:22 +0000181 BasePtrOriginSAI = identifyBasePtrOriginSAI(S, BasePtr);
182 if (BasePtrOriginSAI)
183 const_cast<ScopArrayInfo *>(BasePtrOriginSAI)->addDerivedSAI(this);
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000184}
185
Tobias Grosser99c70dd2015-09-26 08:55:54 +0000186__isl_give isl_space *ScopArrayInfo::getSpace() const {
187 auto Space =
188 isl_space_set_alloc(isl_id_get_ctx(Id), 0, getNumberOfDimensions());
189 Space = isl_space_set_tuple_id(Space, isl_dim_set, isl_id_copy(Id));
190 return Space;
191}
192
Tobias Grosser8286b832015-11-02 11:29:32 +0000193bool ScopArrayInfo::updateSizes(ArrayRef<const SCEV *> NewSizes) {
Tobias Grosser99c70dd2015-09-26 08:55:54 +0000194 int SharedDims = std::min(NewSizes.size(), DimensionSizes.size());
195 int ExtraDimsNew = NewSizes.size() - SharedDims;
196 int ExtraDimsOld = DimensionSizes.size() - SharedDims;
Tobias Grosser8286b832015-11-02 11:29:32 +0000197 for (int i = 0; i < SharedDims; i++)
198 if (NewSizes[i + ExtraDimsNew] != DimensionSizes[i + ExtraDimsOld])
199 return false;
200
201 if (DimensionSizes.size() >= NewSizes.size())
202 return true;
Tobias Grosser99c70dd2015-09-26 08:55:54 +0000203
204 DimensionSizes.clear();
205 DimensionSizes.insert(DimensionSizes.begin(), NewSizes.begin(),
206 NewSizes.end());
207 for (isl_pw_aff *Size : DimensionSizesPw)
208 isl_pw_aff_free(Size);
209 DimensionSizesPw.clear();
210 for (const SCEV *Expr : DimensionSizes) {
211 isl_pw_aff *Size = S.getPwAff(Expr);
212 DimensionSizesPw.push_back(Size);
213 }
Tobias Grosser8286b832015-11-02 11:29:32 +0000214 return true;
Tobias Grosser99c70dd2015-09-26 08:55:54 +0000215}
216
Tobias Grosserd46fd5e2015-08-12 15:27:16 +0000217ScopArrayInfo::~ScopArrayInfo() {
218 isl_id_free(Id);
219 for (isl_pw_aff *Size : DimensionSizesPw)
220 isl_pw_aff_free(Size);
221}
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000222
Tobias Grosser49ad36c2015-05-20 08:05:31 +0000223std::string ScopArrayInfo::getName() const { return isl_id_get_name(Id); }
224
225int ScopArrayInfo::getElemSizeInBytes() const {
Johannes Doerfert55b3d8b2015-11-12 20:15:08 +0000226 return DL.getTypeAllocSize(ElementType);
Tobias Grosser49ad36c2015-05-20 08:05:31 +0000227}
228
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000229isl_id *ScopArrayInfo::getBasePtrId() const { return isl_id_copy(Id); }
230
231void ScopArrayInfo::dump() const { print(errs()); }
232
Tobias Grosserd46fd5e2015-08-12 15:27:16 +0000233void ScopArrayInfo::print(raw_ostream &OS, bool SizeAsPwAff) const {
Tobias Grosser4ea2e072015-11-10 14:02:54 +0000234 OS.indent(8) << *getElementType() << " " << getName();
235 if (getNumberOfDimensions() > 0)
236 OS << "[*]";
Tobias Grosser26253842015-11-10 14:24:21 +0000237 for (unsigned u = 1; u < getNumberOfDimensions(); u++) {
Tobias Grosserd46fd5e2015-08-12 15:27:16 +0000238 OS << "[";
239
Tobias Grosser26253842015-11-10 14:24:21 +0000240 if (SizeAsPwAff) {
241 auto Size = getDimensionSizePw(u);
242 OS << " " << Size << " ";
243 isl_pw_aff_free(Size);
244 } else {
245 OS << *getDimensionSize(u);
246 }
Tobias Grosserd46fd5e2015-08-12 15:27:16 +0000247
248 OS << "]";
249 }
250
Tobias Grosser4ea2e072015-11-10 14:02:54 +0000251 OS << ";";
252
Johannes Doerfert4eed5be2015-08-20 18:04:22 +0000253 if (BasePtrOriginSAI)
254 OS << " [BasePtrOrigin: " << BasePtrOriginSAI->getName() << "]";
255
Tobias Grosser49ad36c2015-05-20 08:05:31 +0000256 OS << " // Element size " << getElemSizeInBytes() << "\n";
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000257}
258
259const ScopArrayInfo *
260ScopArrayInfo::getFromAccessFunction(__isl_keep isl_pw_multi_aff *PMA) {
261 isl_id *Id = isl_pw_multi_aff_get_tuple_id(PMA, isl_dim_out);
262 assert(Id && "Output dimension didn't have an ID");
263 return getFromId(Id);
264}
265
266const ScopArrayInfo *ScopArrayInfo::getFromId(isl_id *Id) {
267 void *User = isl_id_get_user(Id);
268 const ScopArrayInfo *SAI = static_cast<ScopArrayInfo *>(User);
269 isl_id_free(Id);
270 return SAI;
271}
272
Tobias Grosser99c70dd2015-09-26 08:55:54 +0000273void MemoryAccess::updateDimensionality() {
274 auto ArraySpace = getScopArrayInfo()->getSpace();
275 auto AccessSpace = isl_space_range(isl_map_get_space(AccessRelation));
276
277 auto DimsArray = isl_space_dim(ArraySpace, isl_dim_set);
278 auto DimsAccess = isl_space_dim(AccessSpace, isl_dim_set);
279 auto DimsMissing = DimsArray - DimsAccess;
280
281 auto Map = isl_map_from_domain_and_range(isl_set_universe(AccessSpace),
282 isl_set_universe(ArraySpace));
283
284 for (unsigned i = 0; i < DimsMissing; i++)
285 Map = isl_map_fix_si(Map, isl_dim_out, i, 0);
286
287 for (unsigned i = DimsMissing; i < DimsArray; i++)
288 Map = isl_map_equate(Map, isl_dim_in, i - DimsMissing, isl_dim_out, i);
289
290 AccessRelation = isl_map_apply_range(AccessRelation, Map);
291}
292
Johannes Doerfert32868bf2014-08-01 08:13:25 +0000293const std::string
294MemoryAccess::getReductionOperatorStr(MemoryAccess::ReductionType RT) {
295 switch (RT) {
296 case MemoryAccess::RT_NONE:
297 llvm_unreachable("Requested a reduction operator string for a memory "
298 "access which isn't a reduction");
299 case MemoryAccess::RT_ADD:
300 return "+";
301 case MemoryAccess::RT_MUL:
302 return "*";
303 case MemoryAccess::RT_BOR:
304 return "|";
305 case MemoryAccess::RT_BXOR:
306 return "^";
307 case MemoryAccess::RT_BAND:
308 return "&";
309 }
310 llvm_unreachable("Unknown reduction type");
311 return "";
312}
313
Johannes Doerfertf6183392014-07-01 20:52:51 +0000314/// @brief Return the reduction type for a given binary operator
315static MemoryAccess::ReductionType getReductionType(const BinaryOperator *BinOp,
316 const Instruction *Load) {
317 if (!BinOp)
318 return MemoryAccess::RT_NONE;
319 switch (BinOp->getOpcode()) {
320 case Instruction::FAdd:
321 if (!BinOp->hasUnsafeAlgebra())
322 return MemoryAccess::RT_NONE;
323 // Fall through
324 case Instruction::Add:
325 return MemoryAccess::RT_ADD;
326 case Instruction::Or:
327 return MemoryAccess::RT_BOR;
328 case Instruction::Xor:
329 return MemoryAccess::RT_BXOR;
330 case Instruction::And:
331 return MemoryAccess::RT_BAND;
332 case Instruction::FMul:
333 if (!BinOp->hasUnsafeAlgebra())
334 return MemoryAccess::RT_NONE;
335 // Fall through
336 case Instruction::Mul:
337 if (DisableMultiplicativeReductions)
338 return MemoryAccess::RT_NONE;
339 return MemoryAccess::RT_MUL;
340 default:
341 return MemoryAccess::RT_NONE;
342 }
343}
Tobias Grosser5fd8c092015-09-17 17:28:15 +0000344
Tobias Grosser5fd8c092015-09-17 17:28:15 +0000345/// @brief Derive the individual index expressions from a GEP instruction
346///
347/// This function optimistically assumes the GEP references into a fixed size
348/// array. If this is actually true, this function returns a list of array
349/// subscript expressions as SCEV as well as a list of integers describing
350/// the size of the individual array dimensions. Both lists have either equal
351/// length of the size list is one element shorter in case there is no known
352/// size available for the outermost array dimension.
353///
354/// @param GEP The GetElementPtr instruction to analyze.
355///
356/// @return A tuple with the subscript expressions and the dimension sizes.
357static std::tuple<std::vector<const SCEV *>, std::vector<int>>
358getIndexExpressionsFromGEP(GetElementPtrInst *GEP, ScalarEvolution &SE) {
359 std::vector<const SCEV *> Subscripts;
360 std::vector<int> Sizes;
361
362 Type *Ty = GEP->getPointerOperandType();
363
364 bool DroppedFirstDim = false;
365
Michael Kruse26ed65e2015-09-24 17:32:49 +0000366 for (unsigned i = 1; i < GEP->getNumOperands(); i++) {
Tobias Grosser5fd8c092015-09-17 17:28:15 +0000367
368 const SCEV *Expr = SE.getSCEV(GEP->getOperand(i));
369
370 if (i == 1) {
371 if (auto PtrTy = dyn_cast<PointerType>(Ty)) {
372 Ty = PtrTy->getElementType();
373 } else if (auto ArrayTy = dyn_cast<ArrayType>(Ty)) {
374 Ty = ArrayTy->getElementType();
375 } else {
376 Subscripts.clear();
377 Sizes.clear();
378 break;
379 }
380 if (auto Const = dyn_cast<SCEVConstant>(Expr))
381 if (Const->getValue()->isZero()) {
382 DroppedFirstDim = true;
383 continue;
384 }
385 Subscripts.push_back(Expr);
386 continue;
387 }
388
389 auto ArrayTy = dyn_cast<ArrayType>(Ty);
390 if (!ArrayTy) {
391 Subscripts.clear();
392 Sizes.clear();
393 break;
394 }
395
396 Subscripts.push_back(Expr);
397 if (!(DroppedFirstDim && i == 2))
398 Sizes.push_back(ArrayTy->getNumElements());
399
400 Ty = ArrayTy->getElementType();
401 }
402
403 return std::make_tuple(Subscripts, Sizes);
404}
405
Tobias Grosser75805372011-04-29 06:27:02 +0000406MemoryAccess::~MemoryAccess() {
Tobias Grosser6f48e0f2015-05-15 09:58:32 +0000407 isl_id_free(Id);
Tobias Grosser54a86e62011-08-18 06:31:46 +0000408 isl_map_free(AccessRelation);
Tobias Grosser166c4222015-09-05 07:46:40 +0000409 isl_map_free(NewAccessRelation);
Tobias Grosser75805372011-04-29 06:27:02 +0000410}
411
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000412const ScopArrayInfo *MemoryAccess::getScopArrayInfo() const {
413 isl_id *ArrayId = getArrayId();
414 void *User = isl_id_get_user(ArrayId);
415 const ScopArrayInfo *SAI = static_cast<ScopArrayInfo *>(User);
416 isl_id_free(ArrayId);
417 return SAI;
418}
419
Tobias Grosser4f663aa2015-03-30 11:52:59 +0000420__isl_give isl_id *MemoryAccess::getArrayId() const {
Johannes Doerfert5d83f092014-07-29 08:37:55 +0000421 return isl_map_get_tuple_id(AccessRelation, isl_dim_out);
422}
423
Tobias Grosser4f663aa2015-03-30 11:52:59 +0000424__isl_give isl_pw_multi_aff *MemoryAccess::applyScheduleToAccessRelation(
425 __isl_take isl_union_map *USchedule) const {
Johannes Doerferta99130f2014-10-13 12:58:03 +0000426 isl_map *Schedule, *ScheduledAccRel;
427 isl_union_set *UDomain;
428
429 UDomain = isl_union_set_from_set(getStatement()->getDomain());
430 USchedule = isl_union_map_intersect_domain(USchedule, UDomain);
431 Schedule = isl_map_from_union_map(USchedule);
432 ScheduledAccRel = isl_map_apply_domain(getAccessRelation(), Schedule);
433 return isl_pw_multi_aff_from_map(ScheduledAccRel);
434}
435
Tobias Grosser4f663aa2015-03-30 11:52:59 +0000436__isl_give isl_map *MemoryAccess::getOriginalAccessRelation() const {
Tobias Grosser5d453812011-10-06 00:04:11 +0000437 return isl_map_copy(AccessRelation);
438}
439
Johannes Doerferta99130f2014-10-13 12:58:03 +0000440std::string MemoryAccess::getOriginalAccessRelationStr() const {
Tobias Grosser5d453812011-10-06 00:04:11 +0000441 return stringFromIslObj(AccessRelation);
442}
443
Johannes Doerferta99130f2014-10-13 12:58:03 +0000444__isl_give isl_space *MemoryAccess::getOriginalAccessRelationSpace() const {
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000445 return isl_map_get_space(AccessRelation);
446}
447
Tobias Grosser4f663aa2015-03-30 11:52:59 +0000448__isl_give isl_map *MemoryAccess::getNewAccessRelation() const {
Tobias Grosser166c4222015-09-05 07:46:40 +0000449 return isl_map_copy(NewAccessRelation);
Tobias Grosser75805372011-04-29 06:27:02 +0000450}
451
Tobias Grosser6f730082015-09-05 07:46:47 +0000452std::string MemoryAccess::getNewAccessRelationStr() const {
453 return stringFromIslObj(NewAccessRelation);
454}
455
Tobias Grosser4f663aa2015-03-30 11:52:59 +0000456__isl_give isl_basic_map *
457MemoryAccess::createBasicAccessMap(ScopStmt *Statement) {
Tobias Grosser084d8f72012-05-29 09:29:44 +0000458 isl_space *Space = isl_space_set_alloc(Statement->getIslCtx(), 0, 1);
Tobias Grossered295662012-09-11 13:50:21 +0000459 Space = isl_space_align_params(Space, Statement->getDomainSpace());
Tobias Grosser75805372011-04-29 06:27:02 +0000460
Tobias Grosser084d8f72012-05-29 09:29:44 +0000461 return isl_basic_map_from_domain_and_range(
Tobias Grosserabfbe632013-02-05 12:09:06 +0000462 isl_basic_set_universe(Statement->getDomainSpace()),
463 isl_basic_set_universe(Space));
Tobias Grosser75805372011-04-29 06:27:02 +0000464}
465
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000466// Formalize no out-of-bound access assumption
467//
468// When delinearizing array accesses we optimistically assume that the
469// delinearized accesses do not access out of bound locations (the subscript
470// expression of each array evaluates for each statement instance that is
471// executed to a value that is larger than zero and strictly smaller than the
472// size of the corresponding dimension). The only exception is the outermost
Tobias Grosserf57d63f2014-08-03 21:07:30 +0000473// dimension for which we do not need to assume any upper bound. At this point
474// we formalize this assumption to ensure that at code generation time the
475// relevant run-time checks can be generated.
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000476//
477// To find the set of constraints necessary to avoid out of bound accesses, we
478// first build the set of data locations that are not within array bounds. We
479// then apply the reverse access relation to obtain the set of iterations that
480// may contain invalid accesses and reduce this set of iterations to the ones
481// that are actually executed by intersecting them with the domain of the
482// statement. If we now project out all loop dimensions, we obtain a set of
483// parameters that may cause statement instances to be executed that may
484// possibly yield out of bound memory accesses. The complement of these
485// constraints is the set of constraints that needs to be assumed to ensure such
486// statement instances are never executed.
Michael Krusee2bccbb2015-09-18 19:59:43 +0000487void MemoryAccess::assumeNoOutOfBound() {
Johannes Doerferta99130f2014-10-13 12:58:03 +0000488 isl_space *Space = isl_space_range(getOriginalAccessRelationSpace());
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000489 isl_set *Outside = isl_set_empty(isl_space_copy(Space));
Michael Krusee2bccbb2015-09-18 19:59:43 +0000490 for (int i = 1, Size = Subscripts.size(); i < Size; ++i) {
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000491 isl_local_space *LS = isl_local_space_from_space(isl_space_copy(Space));
492 isl_pw_aff *Var =
493 isl_pw_aff_var_on_domain(isl_local_space_copy(LS), isl_dim_set, i);
494 isl_pw_aff *Zero = isl_pw_aff_zero_on_domain(LS);
495
496 isl_set *DimOutside;
497
Tobias Grosserf57d63f2014-08-03 21:07:30 +0000498 DimOutside = isl_pw_aff_lt_set(isl_pw_aff_copy(Var), Zero);
Michael Krusee2bccbb2015-09-18 19:59:43 +0000499 isl_pw_aff *SizeE = Statement->getPwAff(Sizes[i - 1]);
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000500
Tobias Grosserf57d63f2014-08-03 21:07:30 +0000501 SizeE = isl_pw_aff_drop_dims(SizeE, isl_dim_in, 0,
502 Statement->getNumIterators());
503 SizeE = isl_pw_aff_add_dims(SizeE, isl_dim_in,
504 isl_space_dim(Space, isl_dim_set));
505 SizeE = isl_pw_aff_set_tuple_id(SizeE, isl_dim_in,
506 isl_space_get_tuple_id(Space, isl_dim_set));
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000507
Tobias Grosserf57d63f2014-08-03 21:07:30 +0000508 DimOutside = isl_set_union(DimOutside, isl_pw_aff_le_set(SizeE, Var));
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000509
510 Outside = isl_set_union(Outside, DimOutside);
511 }
512
513 Outside = isl_set_apply(Outside, isl_map_reverse(getAccessRelation()));
514 Outside = isl_set_intersect(Outside, Statement->getDomain());
515 Outside = isl_set_params(Outside);
Tobias Grosserf54bb772015-06-26 12:09:28 +0000516
517 // Remove divs to avoid the construction of overly complicated assumptions.
518 // Doing so increases the set of parameter combinations that are assumed to
519 // not appear. This is always save, but may make the resulting run-time check
520 // bail out more often than strictly necessary.
521 Outside = isl_set_remove_divs(Outside);
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000522 Outside = isl_set_complement(Outside);
Johannes Doerfertd84493e2015-11-12 02:33:38 +0000523 Statement->getParent()->addAssumption(INBOUNDS, Outside,
524 getAccessInstruction()->getDebugLoc());
Tobias Grosser5e6813d2014-07-02 17:47:48 +0000525 isl_space_free(Space);
526}
527
Johannes Doerferte7044942015-02-24 11:58:30 +0000528void MemoryAccess::computeBoundsOnAccessRelation(unsigned ElementSize) {
529 ScalarEvolution *SE = Statement->getParent()->getSE();
530
531 Value *Ptr = getPointerOperand(*getAccessInstruction());
532 if (!Ptr || !SE->isSCEVable(Ptr->getType()))
533 return;
534
535 auto *PtrSCEV = SE->getSCEV(Ptr);
536 if (isa<SCEVCouldNotCompute>(PtrSCEV))
537 return;
538
539 auto *BasePtrSCEV = SE->getPointerBase(PtrSCEV);
540 if (BasePtrSCEV && !isa<SCEVCouldNotCompute>(BasePtrSCEV))
541 PtrSCEV = SE->getMinusSCEV(PtrSCEV, BasePtrSCEV);
542
543 const ConstantRange &Range = SE->getSignedRange(PtrSCEV);
544 if (Range.isFullSet())
545 return;
546
Johannes Doerferte4bd53b2015-03-08 19:49:50 +0000547 bool isWrapping = Range.isSignWrappedSet();
Johannes Doerferte7044942015-02-24 11:58:30 +0000548 unsigned BW = Range.getBitWidth();
Johannes Doerferte4bd53b2015-03-08 19:49:50 +0000549 const auto LB = isWrapping ? Range.getLower() : Range.getSignedMin();
550 const auto UB = isWrapping ? Range.getUpper() : Range.getSignedMax();
551
552 auto Min = LB.sdiv(APInt(BW, ElementSize));
553 auto Max = (UB - APInt(BW, 1)).sdiv(APInt(BW, ElementSize));
Johannes Doerferte7044942015-02-24 11:58:30 +0000554
555 isl_set *AccessRange = isl_map_range(isl_map_copy(AccessRelation));
556 AccessRange =
557 addRangeBoundsToSet(AccessRange, ConstantRange(Min, Max), 0, isl_dim_set);
558 AccessRelation = isl_map_intersect_range(AccessRelation, AccessRange);
559}
560
Michael Krusee2bccbb2015-09-18 19:59:43 +0000561__isl_give isl_map *MemoryAccess::foldAccess(__isl_take isl_map *AccessRelation,
Tobias Grosser619190d2015-03-30 17:22:28 +0000562 ScopStmt *Statement) {
Michael Krusee2bccbb2015-09-18 19:59:43 +0000563 int Size = Subscripts.size();
Tobias Grosser619190d2015-03-30 17:22:28 +0000564
565 for (int i = Size - 2; i >= 0; --i) {
566 isl_space *Space;
567 isl_map *MapOne, *MapTwo;
Michael Krusee2bccbb2015-09-18 19:59:43 +0000568 isl_pw_aff *DimSize = Statement->getPwAff(Sizes[i]);
Tobias Grosser619190d2015-03-30 17:22:28 +0000569
570 isl_space *SpaceSize = isl_pw_aff_get_space(DimSize);
571 isl_pw_aff_free(DimSize);
572 isl_id *ParamId = isl_space_get_dim_id(SpaceSize, isl_dim_param, 0);
573
574 Space = isl_map_get_space(AccessRelation);
575 Space = isl_space_map_from_set(isl_space_range(Space));
576 Space = isl_space_align_params(Space, SpaceSize);
577
578 int ParamLocation = isl_space_find_dim_by_id(Space, isl_dim_param, ParamId);
579 isl_id_free(ParamId);
580
581 MapOne = isl_map_universe(isl_space_copy(Space));
582 for (int j = 0; j < Size; ++j)
583 MapOne = isl_map_equate(MapOne, isl_dim_in, j, isl_dim_out, j);
584 MapOne = isl_map_lower_bound_si(MapOne, isl_dim_in, i + 1, 0);
585
586 MapTwo = isl_map_universe(isl_space_copy(Space));
587 for (int j = 0; j < Size; ++j)
588 if (j < i || j > i + 1)
589 MapTwo = isl_map_equate(MapTwo, isl_dim_in, j, isl_dim_out, j);
590
591 isl_local_space *LS = isl_local_space_from_space(Space);
592 isl_constraint *C;
593 C = isl_equality_alloc(isl_local_space_copy(LS));
594 C = isl_constraint_set_constant_si(C, -1);
595 C = isl_constraint_set_coefficient_si(C, isl_dim_in, i, 1);
596 C = isl_constraint_set_coefficient_si(C, isl_dim_out, i, -1);
597 MapTwo = isl_map_add_constraint(MapTwo, C);
598 C = isl_equality_alloc(LS);
599 C = isl_constraint_set_coefficient_si(C, isl_dim_in, i + 1, 1);
600 C = isl_constraint_set_coefficient_si(C, isl_dim_out, i + 1, -1);
601 C = isl_constraint_set_coefficient_si(C, isl_dim_param, ParamLocation, 1);
602 MapTwo = isl_map_add_constraint(MapTwo, C);
603 MapTwo = isl_map_upper_bound_si(MapTwo, isl_dim_in, i + 1, -1);
604
605 MapOne = isl_map_union(MapOne, MapTwo);
606 AccessRelation = isl_map_apply_range(AccessRelation, MapOne);
607 }
608 return AccessRelation;
609}
610
Johannes Doerferta4b77c02015-11-12 20:15:32 +0000611/// @brief Check if @p Expr is divisible by @p Size.
612static bool isDivisible(const SCEV *Expr, unsigned Size, ScalarEvolution &SE) {
613
614 // Only one factor needs to be divisible.
615 if (auto *MulExpr = dyn_cast<SCEVMulExpr>(Expr)) {
616 for (auto *FactorExpr : MulExpr->operands())
617 if (isDivisible(FactorExpr, Size, SE))
618 return true;
619 return false;
620 }
621
622 // For other n-ary expressions (Add, AddRec, Max,...) all operands need
623 // to be divisble.
624 if (auto *NAryExpr = dyn_cast<SCEVNAryExpr>(Expr)) {
625 for (auto *OpExpr : NAryExpr->operands())
626 if (!isDivisible(OpExpr, Size, SE))
627 return false;
628 return true;
629 }
630
631 auto *SizeSCEV = SE.getConstant(Expr->getType(), Size);
632 auto *UDivSCEV = SE.getUDivExpr(Expr, SizeSCEV);
633 auto *MulSCEV = SE.getMulExpr(UDivSCEV, SizeSCEV);
634 return MulSCEV == Expr;
635}
636
Michael Krusee2bccbb2015-09-18 19:59:43 +0000637void MemoryAccess::buildAccessRelation(const ScopArrayInfo *SAI) {
638 assert(!AccessRelation && "AccessReltation already built");
Tobias Grosser75805372011-04-29 06:27:02 +0000639
Michael Krusee2bccbb2015-09-18 19:59:43 +0000640 isl_ctx *Ctx = isl_id_get_ctx(Id);
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000641 isl_id *BaseAddrId = SAI->getBasePtrId();
Tobias Grosser5683df42011-11-09 22:34:34 +0000642
Michael Krusee2bccbb2015-09-18 19:59:43 +0000643 if (!isAffine()) {
Tobias Grosser4f967492013-06-23 05:21:18 +0000644 // We overapproximate non-affine accesses with a possible access to the
645 // whole array. For read accesses it does not make a difference, if an
646 // access must or may happen. However, for write accesses it is important to
647 // differentiate between writes that must happen and writes that may happen.
Tobias Grosser04d6ae62013-06-23 06:04:54 +0000648 AccessRelation = isl_map_from_basic_map(createBasicAccessMap(Statement));
Johannes Doerfert5d83f092014-07-29 08:37:55 +0000649 AccessRelation =
650 isl_map_set_tuple_id(AccessRelation, isl_dim_out, BaseAddrId);
Johannes Doerferte7044942015-02-24 11:58:30 +0000651
Michael Krusee2bccbb2015-09-18 19:59:43 +0000652 computeBoundsOnAccessRelation(getElemSizeInBytes());
Tobias Grossera1879642011-12-20 10:43:14 +0000653 return;
654 }
655
Johannes Doerferta4b77c02015-11-12 20:15:32 +0000656 Scop &S = *getStatement()->getParent();
Johannes Doerfert5d83f092014-07-29 08:37:55 +0000657 isl_space *Space = isl_space_alloc(Ctx, 0, Statement->getNumIterators(), 0);
Tobias Grosser79baa212014-04-10 08:38:02 +0000658 AccessRelation = isl_map_universe(Space);
Tobias Grossera1879642011-12-20 10:43:14 +0000659
Michael Krusee2bccbb2015-09-18 19:59:43 +0000660 for (int i = 0, Size = Subscripts.size(); i < Size; ++i) {
661 isl_pw_aff *Affine = Statement->getPwAff(Subscripts[i]);
Tobias Grosser75805372011-04-29 06:27:02 +0000662
Sebastian Pop422e33f2014-06-03 18:16:31 +0000663 if (Size == 1) {
664 // For the non delinearized arrays, divide the access function of the last
665 // subscript by the size of the elements in the array.
Sebastian Pop18016682014-04-08 21:20:44 +0000666 //
667 // A stride one array access in C expressed as A[i] is expressed in
668 // LLVM-IR as something like A[i * elementsize]. This hides the fact that
669 // two subsequent values of 'i' index two values that are stored next to
670 // each other in memory. By this division we make this characteristic
Johannes Doerferta4b77c02015-11-12 20:15:32 +0000671 // obvious again. However, if the index is not divisible by the element
672 // size we will bail out.
Michael Krusee2bccbb2015-09-18 19:59:43 +0000673 isl_val *v = isl_val_int_from_si(Ctx, getElemSizeInBytes());
Sebastian Pop18016682014-04-08 21:20:44 +0000674 Affine = isl_pw_aff_scale_down_val(Affine, v);
Johannes Doerferta4b77c02015-11-12 20:15:32 +0000675
676 if (!isDivisible(Subscripts[0], getElemSizeInBytes(), *S.getSE()))
677 S.addAssumption(ALIGNMENT, isl_set_empty(S.getParamSpace()),
678 AccessInstruction->getDebugLoc());
Sebastian Pop18016682014-04-08 21:20:44 +0000679 }
680
681 isl_map *SubscriptMap = isl_map_from_pw_aff(Affine);
682
Tobias Grosser79baa212014-04-10 08:38:02 +0000683 AccessRelation = isl_map_flat_range_product(AccessRelation, SubscriptMap);
Sebastian Pop18016682014-04-08 21:20:44 +0000684 }
685
Michael Krusee2bccbb2015-09-18 19:59:43 +0000686 if (Sizes.size() > 1 && !isa<SCEVConstant>(Sizes[0]))
687 AccessRelation = foldAccess(AccessRelation, Statement);
Tobias Grosser619190d2015-03-30 17:22:28 +0000688
Tobias Grosser79baa212014-04-10 08:38:02 +0000689 Space = Statement->getDomainSpace();
Tobias Grosserabfbe632013-02-05 12:09:06 +0000690 AccessRelation = isl_map_set_tuple_id(
691 AccessRelation, isl_dim_in, isl_space_get_tuple_id(Space, isl_dim_set));
Johannes Doerfert5d83f092014-07-29 08:37:55 +0000692 AccessRelation =
693 isl_map_set_tuple_id(AccessRelation, isl_dim_out, BaseAddrId);
694
Michael Krusee2bccbb2015-09-18 19:59:43 +0000695 assumeNoOutOfBound();
Tobias Grosseraa660a92015-03-30 00:07:50 +0000696 AccessRelation = isl_map_gist_domain(AccessRelation, Statement->getDomain());
Johannes Doerfert5d83f092014-07-29 08:37:55 +0000697 isl_space_free(Space);
Tobias Grosser8cae72f2011-11-08 15:41:08 +0000698}
Tobias Grosser30b8a092011-08-18 07:51:37 +0000699
Michael Krusecac948e2015-10-02 13:53:07 +0000700MemoryAccess::MemoryAccess(ScopStmt *Stmt, Instruction *AccessInst,
Tobias Grosserf1bfd752015-11-05 20:15:37 +0000701 AccessType Type, Value *BaseAddress,
702 unsigned ElemBytes, bool Affine,
Michael Krusee2bccbb2015-09-18 19:59:43 +0000703 ArrayRef<const SCEV *> Subscripts,
704 ArrayRef<const SCEV *> Sizes, Value *AccessValue,
Michael Kruse8d0b7342015-09-25 21:21:00 +0000705 AccessOrigin Origin, StringRef BaseName)
Tobias Grosserf1bfd752015-11-05 20:15:37 +0000706 : Origin(Origin), AccType(Type), RedType(RT_NONE), Statement(Stmt),
Michael Krusecac948e2015-10-02 13:53:07 +0000707 BaseAddr(BaseAddress), BaseName(BaseName), ElemBytes(ElemBytes),
708 Sizes(Sizes.begin(), Sizes.end()), AccessInstruction(AccessInst),
709 AccessValue(AccessValue), IsAffine(Affine),
Michael Krusee2bccbb2015-09-18 19:59:43 +0000710 Subscripts(Subscripts.begin(), Subscripts.end()), AccessRelation(nullptr),
Tobias Grosserf1bfd752015-11-05 20:15:37 +0000711 NewAccessRelation(nullptr) {
712
713 std::string IdName = "__polly_array_ref";
714 Id = isl_id_alloc(Stmt->getParent()->getIslCtx(), IdName.c_str(), this);
715}
Michael Krusee2bccbb2015-09-18 19:59:43 +0000716
Tobias Grosser8cae72f2011-11-08 15:41:08 +0000717void MemoryAccess::realignParams() {
Tobias Grosser6defb5b2014-04-10 08:37:44 +0000718 isl_space *ParamSpace = Statement->getParent()->getParamSpace();
Tobias Grosser37487052011-10-06 00:03:42 +0000719 AccessRelation = isl_map_align_params(AccessRelation, ParamSpace);
Tobias Grosser75805372011-04-29 06:27:02 +0000720}
721
Johannes Doerfert32868bf2014-08-01 08:13:25 +0000722const std::string MemoryAccess::getReductionOperatorStr() const {
723 return MemoryAccess::getReductionOperatorStr(getReductionType());
724}
725
Tobias Grosser6f48e0f2015-05-15 09:58:32 +0000726__isl_give isl_id *MemoryAccess::getId() const { return isl_id_copy(Id); }
727
Johannes Doerfertf6183392014-07-01 20:52:51 +0000728raw_ostream &polly::operator<<(raw_ostream &OS,
729 MemoryAccess::ReductionType RT) {
Johannes Doerfert32868bf2014-08-01 08:13:25 +0000730 if (RT == MemoryAccess::RT_NONE)
Johannes Doerfertf6183392014-07-01 20:52:51 +0000731 OS << "NONE";
Johannes Doerfert32868bf2014-08-01 08:13:25 +0000732 else
733 OS << MemoryAccess::getReductionOperatorStr(RT);
Johannes Doerfertf6183392014-07-01 20:52:51 +0000734 return OS;
735}
736
Tobias Grosser75805372011-04-29 06:27:02 +0000737void MemoryAccess::print(raw_ostream &OS) const {
Johannes Doerfert4c7ce472014-10-08 10:11:33 +0000738 switch (AccType) {
Tobias Grosserb58f6a42013-07-13 20:41:24 +0000739 case READ:
Johannes Doerfert6780bc32014-06-26 18:47:03 +0000740 OS.indent(12) << "ReadAccess :=\t";
Tobias Grosser4f967492013-06-23 05:21:18 +0000741 break;
Tobias Grosserb58f6a42013-07-13 20:41:24 +0000742 case MUST_WRITE:
Johannes Doerfert6780bc32014-06-26 18:47:03 +0000743 OS.indent(12) << "MustWriteAccess :=\t";
Tobias Grosser4f967492013-06-23 05:21:18 +0000744 break;
Tobias Grosserb58f6a42013-07-13 20:41:24 +0000745 case MAY_WRITE:
Johannes Doerfert6780bc32014-06-26 18:47:03 +0000746 OS.indent(12) << "MayWriteAccess :=\t";
Tobias Grosser4f967492013-06-23 05:21:18 +0000747 break;
748 }
Johannes Doerfert0ff23ec2015-02-06 20:13:15 +0000749 OS << "[Reduction Type: " << getReductionType() << "] ";
Michael Kruse8d0b7342015-09-25 21:21:00 +0000750 OS << "[Scalar: " << isImplicit() << "]\n";
Johannes Doerferta99130f2014-10-13 12:58:03 +0000751 OS.indent(16) << getOriginalAccessRelationStr() << ";\n";
Tobias Grosser6f730082015-09-05 07:46:47 +0000752 if (hasNewAccessRelation())
753 OS.indent(11) << "new: " << getNewAccessRelationStr() << ";\n";
Tobias Grosser75805372011-04-29 06:27:02 +0000754}
755
Tobias Grosser74394f02013-01-14 22:40:23 +0000756void MemoryAccess::dump() const { print(errs()); }
Tobias Grosser75805372011-04-29 06:27:02 +0000757
758// Create a map in the size of the provided set domain, that maps from the
759// one element of the provided set domain to another element of the provided
760// set domain.
761// The mapping is limited to all points that are equal in all but the last
762// dimension and for which the last dimension of the input is strict smaller
763// than the last dimension of the output.
764//
765// getEqualAndLarger(set[i0, i1, ..., iX]):
766//
767// set[i0, i1, ..., iX] -> set[o0, o1, ..., oX]
768// : i0 = o0, i1 = o1, ..., i(X-1) = o(X-1), iX < oX
769//
Tobias Grosserf5338802011-10-06 00:03:35 +0000770static isl_map *getEqualAndLarger(isl_space *setDomain) {
Tobias Grosserc327932c2012-02-01 14:23:36 +0000771 isl_space *Space = isl_space_map_from_set(setDomain);
Tobias Grosser1b6ea572015-05-21 19:02:44 +0000772 isl_map *Map = isl_map_universe(Space);
Sebastian Pop40408762013-10-04 17:14:53 +0000773 unsigned lastDimension = isl_map_dim(Map, isl_dim_in) - 1;
Tobias Grosser75805372011-04-29 06:27:02 +0000774
775 // Set all but the last dimension to be equal for the input and output
776 //
777 // input[i0, i1, ..., iX] -> output[o0, o1, ..., oX]
778 // : i0 = o0, i1 = o1, ..., i(X-1) = o(X-1)
Sebastian Pop40408762013-10-04 17:14:53 +0000779 for (unsigned i = 0; i < lastDimension; ++i)
Tobias Grosserc327932c2012-02-01 14:23:36 +0000780 Map = isl_map_equate(Map, isl_dim_in, i, isl_dim_out, i);
Tobias Grosser75805372011-04-29 06:27:02 +0000781
782 // Set the last dimension of the input to be strict smaller than the
783 // last dimension of the output.
784 //
785 // input[?,?,?,...,iX] -> output[?,?,?,...,oX] : iX < oX
Tobias Grosser1b6ea572015-05-21 19:02:44 +0000786 Map = isl_map_order_lt(Map, isl_dim_in, lastDimension, isl_dim_out,
787 lastDimension);
Tobias Grosserc327932c2012-02-01 14:23:36 +0000788 return Map;
Tobias Grosser75805372011-04-29 06:27:02 +0000789}
790
Tobias Grosser4f663aa2015-03-30 11:52:59 +0000791__isl_give isl_set *
792MemoryAccess::getStride(__isl_take const isl_map *Schedule) const {
Tobias Grosserabfbe632013-02-05 12:09:06 +0000793 isl_map *S = const_cast<isl_map *>(Schedule);
Johannes Doerferta99130f2014-10-13 12:58:03 +0000794 isl_map *AccessRelation = getAccessRelation();
Sebastian Popa00a0292012-12-18 07:46:06 +0000795 isl_space *Space = isl_space_range(isl_map_get_space(S));
796 isl_map *NextScatt = getEqualAndLarger(Space);
Tobias Grosser75805372011-04-29 06:27:02 +0000797
Sebastian Popa00a0292012-12-18 07:46:06 +0000798 S = isl_map_reverse(S);
799 NextScatt = isl_map_lexmin(NextScatt);
Tobias Grosser75805372011-04-29 06:27:02 +0000800
Sebastian Popa00a0292012-12-18 07:46:06 +0000801 NextScatt = isl_map_apply_range(NextScatt, isl_map_copy(S));
802 NextScatt = isl_map_apply_range(NextScatt, isl_map_copy(AccessRelation));
803 NextScatt = isl_map_apply_domain(NextScatt, S);
804 NextScatt = isl_map_apply_domain(NextScatt, AccessRelation);
Tobias Grosser75805372011-04-29 06:27:02 +0000805
Sebastian Popa00a0292012-12-18 07:46:06 +0000806 isl_set *Deltas = isl_map_deltas(NextScatt);
807 return Deltas;
Tobias Grosser75805372011-04-29 06:27:02 +0000808}
809
Sebastian Popa00a0292012-12-18 07:46:06 +0000810bool MemoryAccess::isStrideX(__isl_take const isl_map *Schedule,
Tobias Grosser28dd4862012-01-24 16:42:16 +0000811 int StrideWidth) const {
812 isl_set *Stride, *StrideX;
813 bool IsStrideX;
Tobias Grosser75805372011-04-29 06:27:02 +0000814
Sebastian Popa00a0292012-12-18 07:46:06 +0000815 Stride = getStride(Schedule);
Tobias Grosser28dd4862012-01-24 16:42:16 +0000816 StrideX = isl_set_universe(isl_set_get_space(Stride));
Tobias Grosser01c8f5f2015-08-24 22:20:46 +0000817 for (unsigned i = 0; i < isl_set_dim(StrideX, isl_dim_set) - 1; i++)
818 StrideX = isl_set_fix_si(StrideX, isl_dim_set, i, 0);
819 StrideX = isl_set_fix_si(StrideX, isl_dim_set,
820 isl_set_dim(StrideX, isl_dim_set) - 1, StrideWidth);
Roman Gareevf2bd72e2015-08-18 16:12:05 +0000821 IsStrideX = isl_set_is_subset(Stride, StrideX);
Tobias Grosser75805372011-04-29 06:27:02 +0000822
Tobias Grosser28dd4862012-01-24 16:42:16 +0000823 isl_set_free(StrideX);
Tobias Grosserdea98232012-01-17 20:34:27 +0000824 isl_set_free(Stride);
Tobias Grosserb76f38532011-08-20 11:11:25 +0000825
Tobias Grosser28dd4862012-01-24 16:42:16 +0000826 return IsStrideX;
827}
828
Sebastian Popa00a0292012-12-18 07:46:06 +0000829bool MemoryAccess::isStrideZero(const isl_map *Schedule) const {
830 return isStrideX(Schedule, 0);
Tobias Grosser75805372011-04-29 06:27:02 +0000831}
832
Sebastian Popa00a0292012-12-18 07:46:06 +0000833bool MemoryAccess::isStrideOne(const isl_map *Schedule) const {
834 return isStrideX(Schedule, 1);
Tobias Grosser75805372011-04-29 06:27:02 +0000835}
836
Tobias Grosser166c4222015-09-05 07:46:40 +0000837void MemoryAccess::setNewAccessRelation(isl_map *NewAccess) {
838 isl_map_free(NewAccessRelation);
839 NewAccessRelation = NewAccess;
Raghesh Aloor3cb66282011-07-12 17:14:03 +0000840}
Tobias Grosser75805372011-04-29 06:27:02 +0000841
842//===----------------------------------------------------------------------===//
Tobias Grossercf3942d2011-10-06 00:04:05 +0000843
Tobias Grosser808cd692015-07-14 09:33:13 +0000844isl_map *ScopStmt::getSchedule() const {
845 isl_set *Domain = getDomain();
846 if (isl_set_is_empty(Domain)) {
847 isl_set_free(Domain);
848 return isl_map_from_aff(
849 isl_aff_zero_on_domain(isl_local_space_from_space(getDomainSpace())));
850 }
851 auto *Schedule = getParent()->getSchedule();
852 Schedule = isl_union_map_intersect_domain(
853 Schedule, isl_union_set_from_set(isl_set_copy(Domain)));
854 if (isl_union_map_is_empty(Schedule)) {
855 isl_set_free(Domain);
856 isl_union_map_free(Schedule);
857 return isl_map_from_aff(
858 isl_aff_zero_on_domain(isl_local_space_from_space(getDomainSpace())));
859 }
860 auto *M = isl_map_from_union_map(Schedule);
861 M = isl_map_coalesce(M);
862 M = isl_map_gist_domain(M, Domain);
863 M = isl_map_coalesce(M);
864 return M;
865}
Tobias Grossercf3942d2011-10-06 00:04:05 +0000866
Johannes Doerfert574182d2015-08-12 10:19:50 +0000867__isl_give isl_pw_aff *ScopStmt::getPwAff(const SCEV *E) {
Johannes Doerfertcef616f2015-09-15 22:49:04 +0000868 return getParent()->getPwAff(E, isBlockStmt() ? getBasicBlock()
869 : getRegion()->getEntry());
Johannes Doerfert574182d2015-08-12 10:19:50 +0000870}
871
Tobias Grosser37eb4222014-02-20 21:43:54 +0000872void ScopStmt::restrictDomain(__isl_take isl_set *NewDomain) {
873 assert(isl_set_is_subset(NewDomain, Domain) &&
874 "New domain is not a subset of old domain!");
875 isl_set_free(Domain);
876 Domain = NewDomain;
Tobias Grosser75805372011-04-29 06:27:02 +0000877}
878
Michael Krusecac948e2015-10-02 13:53:07 +0000879void ScopStmt::buildAccessRelations() {
880 for (MemoryAccess *Access : MemAccs) {
881 Type *ElementType = Access->getAccessValue()->getType();
Johannes Doerfert1a28a892014-10-05 11:32:18 +0000882
Tobias Grosser6abc75a2015-11-10 17:31:31 +0000883 ScopArrayInfo::ARRAYKIND Ty;
884 if (Access->isPHI())
885 Ty = ScopArrayInfo::KIND_PHI;
Michael Krusecba170e2015-11-26 12:26:06 +0000886 else if (Access->isExitPHI())
887 Ty = ScopArrayInfo::KIND_EXIT_PHI;
Tobias Grosser6abc75a2015-11-10 17:31:31 +0000888 else if (Access->isImplicit())
889 Ty = ScopArrayInfo::KIND_SCALAR;
890 else
891 Ty = ScopArrayInfo::KIND_ARRAY;
892
Johannes Doerfert80ef1102014-11-07 08:31:31 +0000893 const ScopArrayInfo *SAI = getParent()->getOrCreateScopArrayInfo(
Tobias Grosser6abc75a2015-11-10 17:31:31 +0000894 Access->getBaseAddr(), ElementType, Access->Sizes, Ty);
Johannes Doerfert80ef1102014-11-07 08:31:31 +0000895
Michael Krusecac948e2015-10-02 13:53:07 +0000896 Access->buildAccessRelation(SAI);
Tobias Grosser75805372011-04-29 06:27:02 +0000897 }
898}
899
Michael Krusecac948e2015-10-02 13:53:07 +0000900void ScopStmt::addAccess(MemoryAccess *Access) {
901 Instruction *AccessInst = Access->getAccessInstruction();
902
903 MemoryAccessList *&MAL = InstructionToAccess[AccessInst];
904 if (!MAL)
905 MAL = new MemoryAccessList();
906 MAL->emplace_front(Access);
907 MemAccs.push_back(MAL->front());
908}
909
Tobias Grosser8cae72f2011-11-08 15:41:08 +0000910void ScopStmt::realignParams() {
Johannes Doerfertf6752892014-06-13 18:01:45 +0000911 for (MemoryAccess *MA : *this)
912 MA->realignParams();
Tobias Grosser8cae72f2011-11-08 15:41:08 +0000913
914 Domain = isl_set_align_params(Domain, Parent.getParamSpace());
Tobias Grosser8cae72f2011-11-08 15:41:08 +0000915}
916
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +0000917/// @brief Add @p BSet to the set @p User if @p BSet is bounded.
918static isl_stat collectBoundedParts(__isl_take isl_basic_set *BSet,
919 void *User) {
920 isl_set **BoundedParts = static_cast<isl_set **>(User);
921 if (isl_basic_set_is_bounded(BSet))
922 *BoundedParts = isl_set_union(*BoundedParts, isl_set_from_basic_set(BSet));
923 else
924 isl_basic_set_free(BSet);
925 return isl_stat_ok;
926}
927
928/// @brief Return the bounded parts of @p S.
929static __isl_give isl_set *collectBoundedParts(__isl_take isl_set *S) {
930 isl_set *BoundedParts = isl_set_empty(isl_set_get_space(S));
931 isl_set_foreach_basic_set(S, collectBoundedParts, &BoundedParts);
932 isl_set_free(S);
933 return BoundedParts;
934}
935
936/// @brief Compute the (un)bounded parts of @p S wrt. to dimension @p Dim.
937///
938/// @returns A separation of @p S into first an unbounded then a bounded subset,
939/// both with regards to the dimension @p Dim.
940static std::pair<__isl_give isl_set *, __isl_give isl_set *>
941partitionSetParts(__isl_take isl_set *S, unsigned Dim) {
942
943 for (unsigned u = 0, e = isl_set_n_dim(S); u < e; u++)
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +0000944 S = isl_set_lower_bound_si(S, isl_dim_set, u, 0);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +0000945
946 unsigned NumDimsS = isl_set_n_dim(S);
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +0000947 isl_set *OnlyDimS = isl_set_copy(S);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +0000948
949 // Remove dimensions that are greater than Dim as they are not interesting.
950 assert(NumDimsS >= Dim + 1);
951 OnlyDimS =
952 isl_set_project_out(OnlyDimS, isl_dim_set, Dim + 1, NumDimsS - Dim - 1);
953
954 // Create artificial parametric upper bounds for dimensions smaller than Dim
955 // as we are not interested in them.
956 OnlyDimS = isl_set_insert_dims(OnlyDimS, isl_dim_param, 0, Dim);
957 for (unsigned u = 0; u < Dim; u++) {
958 isl_constraint *C = isl_inequality_alloc(
959 isl_local_space_from_space(isl_set_get_space(OnlyDimS)));
960 C = isl_constraint_set_coefficient_si(C, isl_dim_param, u, 1);
961 C = isl_constraint_set_coefficient_si(C, isl_dim_set, u, -1);
962 OnlyDimS = isl_set_add_constraint(OnlyDimS, C);
963 }
964
965 // Collect all bounded parts of OnlyDimS.
966 isl_set *BoundedParts = collectBoundedParts(OnlyDimS);
967
968 // Create the dimensions greater than Dim again.
969 BoundedParts = isl_set_insert_dims(BoundedParts, isl_dim_set, Dim + 1,
970 NumDimsS - Dim - 1);
971
972 // Remove the artificial upper bound parameters again.
973 BoundedParts = isl_set_remove_dims(BoundedParts, isl_dim_param, 0, Dim);
974
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +0000975 isl_set *UnboundedParts = isl_set_subtract(S, isl_set_copy(BoundedParts));
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +0000976 return std::make_pair(UnboundedParts, BoundedParts);
977}
978
Johannes Doerfert9a132f32015-09-28 09:33:22 +0000979/// @brief Set the dimension Ids from @p From in @p To.
980static __isl_give isl_set *setDimensionIds(__isl_keep isl_set *From,
981 __isl_take isl_set *To) {
982 for (unsigned u = 0, e = isl_set_n_dim(From); u < e; u++) {
983 isl_id *DimId = isl_set_get_dim_id(From, isl_dim_set, u);
984 To = isl_set_set_dim_id(To, isl_dim_set, u, DimId);
985 }
986 return To;
987}
988
989/// @brief Create the conditions under which @p L @p Pred @p R is true.
Johannes Doerfert96425c22015-08-30 21:13:53 +0000990static __isl_give isl_set *buildConditionSet(ICmpInst::Predicate Pred,
Johannes Doerfert9a132f32015-09-28 09:33:22 +0000991 __isl_take isl_pw_aff *L,
992 __isl_take isl_pw_aff *R) {
Johannes Doerfert96425c22015-08-30 21:13:53 +0000993 switch (Pred) {
994 case ICmpInst::ICMP_EQ:
995 return isl_pw_aff_eq_set(L, R);
996 case ICmpInst::ICMP_NE:
997 return isl_pw_aff_ne_set(L, R);
998 case ICmpInst::ICMP_SLT:
999 return isl_pw_aff_lt_set(L, R);
1000 case ICmpInst::ICMP_SLE:
1001 return isl_pw_aff_le_set(L, R);
1002 case ICmpInst::ICMP_SGT:
1003 return isl_pw_aff_gt_set(L, R);
1004 case ICmpInst::ICMP_SGE:
1005 return isl_pw_aff_ge_set(L, R);
1006 case ICmpInst::ICMP_ULT:
1007 return isl_pw_aff_lt_set(L, R);
1008 case ICmpInst::ICMP_UGT:
1009 return isl_pw_aff_gt_set(L, R);
1010 case ICmpInst::ICMP_ULE:
1011 return isl_pw_aff_le_set(L, R);
1012 case ICmpInst::ICMP_UGE:
1013 return isl_pw_aff_ge_set(L, R);
1014 default:
1015 llvm_unreachable("Non integer predicate not supported");
1016 }
1017}
1018
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001019/// @brief Create the conditions under which @p L @p Pred @p R is true.
1020///
1021/// Helper function that will make sure the dimensions of the result have the
1022/// same isl_id's as the @p Domain.
1023static __isl_give isl_set *buildConditionSet(ICmpInst::Predicate Pred,
1024 __isl_take isl_pw_aff *L,
1025 __isl_take isl_pw_aff *R,
1026 __isl_keep isl_set *Domain) {
1027 isl_set *ConsequenceCondSet = buildConditionSet(Pred, L, R);
1028 return setDimensionIds(Domain, ConsequenceCondSet);
1029}
1030
1031/// @brief Build the conditions sets for the switch @p SI in the @p Domain.
Johannes Doerfert96425c22015-08-30 21:13:53 +00001032///
1033/// This will fill @p ConditionSets with the conditions under which control
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001034/// will be moved from @p SI to its successors. Hence, @p ConditionSets will
1035/// have as many elements as @p SI has successors.
Johannes Doerfert96425c22015-08-30 21:13:53 +00001036static void
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001037buildConditionSets(Scop &S, SwitchInst *SI, Loop *L, __isl_keep isl_set *Domain,
Johannes Doerfert96425c22015-08-30 21:13:53 +00001038 SmallVectorImpl<__isl_give isl_set *> &ConditionSets) {
1039
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001040 Value *Condition = getConditionFromTerminator(SI);
1041 assert(Condition && "No condition for switch");
1042
1043 ScalarEvolution &SE = *S.getSE();
1044 BasicBlock *BB = SI->getParent();
1045 isl_pw_aff *LHS, *RHS;
1046 LHS = S.getPwAff(SE.getSCEVAtScope(Condition, L), BB);
1047
1048 unsigned NumSuccessors = SI->getNumSuccessors();
1049 ConditionSets.resize(NumSuccessors);
1050 for (auto &Case : SI->cases()) {
1051 unsigned Idx = Case.getSuccessorIndex();
1052 ConstantInt *CaseValue = Case.getCaseValue();
1053
1054 RHS = S.getPwAff(SE.getSCEV(CaseValue), BB);
1055 isl_set *CaseConditionSet =
1056 buildConditionSet(ICmpInst::ICMP_EQ, isl_pw_aff_copy(LHS), RHS, Domain);
1057 ConditionSets[Idx] = isl_set_coalesce(
1058 isl_set_intersect(CaseConditionSet, isl_set_copy(Domain)));
1059 }
1060
1061 assert(ConditionSets[0] == nullptr && "Default condition set was set");
1062 isl_set *ConditionSetUnion = isl_set_copy(ConditionSets[1]);
1063 for (unsigned u = 2; u < NumSuccessors; u++)
1064 ConditionSetUnion =
1065 isl_set_union(ConditionSetUnion, isl_set_copy(ConditionSets[u]));
1066 ConditionSets[0] = setDimensionIds(
1067 Domain, isl_set_subtract(isl_set_copy(Domain), ConditionSetUnion));
1068
1069 S.markAsOptimized();
1070 isl_pw_aff_free(LHS);
1071}
1072
Johannes Doerfert9b1f9c82015-10-11 13:21:03 +00001073/// @brief Build the conditions sets for the branch condition @p Condition in
1074/// the @p Domain.
1075///
1076/// This will fill @p ConditionSets with the conditions under which control
1077/// will be moved from @p TI to its successors. Hence, @p ConditionSets will
Johannes Doerfert2af10e22015-11-12 03:25:01 +00001078/// have as many elements as @p TI has successors. If @p TI is nullptr the
1079/// context under which @p Condition is true/false will be returned as the
1080/// new elements of @p ConditionSets.
Johannes Doerfert9b1f9c82015-10-11 13:21:03 +00001081static void
1082buildConditionSets(Scop &S, Value *Condition, TerminatorInst *TI, Loop *L,
1083 __isl_keep isl_set *Domain,
1084 SmallVectorImpl<__isl_give isl_set *> &ConditionSets) {
1085
1086 isl_set *ConsequenceCondSet = nullptr;
1087 if (auto *CCond = dyn_cast<ConstantInt>(Condition)) {
1088 if (CCond->isZero())
1089 ConsequenceCondSet = isl_set_empty(isl_set_get_space(Domain));
1090 else
1091 ConsequenceCondSet = isl_set_universe(isl_set_get_space(Domain));
1092 } else if (BinaryOperator *BinOp = dyn_cast<BinaryOperator>(Condition)) {
1093 auto Opcode = BinOp->getOpcode();
1094 assert(Opcode == Instruction::And || Opcode == Instruction::Or);
1095
1096 buildConditionSets(S, BinOp->getOperand(0), TI, L, Domain, ConditionSets);
1097 buildConditionSets(S, BinOp->getOperand(1), TI, L, Domain, ConditionSets);
1098
1099 isl_set_free(ConditionSets.pop_back_val());
1100 isl_set *ConsCondPart0 = ConditionSets.pop_back_val();
1101 isl_set_free(ConditionSets.pop_back_val());
1102 isl_set *ConsCondPart1 = ConditionSets.pop_back_val();
1103
1104 if (Opcode == Instruction::And)
1105 ConsequenceCondSet = isl_set_intersect(ConsCondPart0, ConsCondPart1);
1106 else
1107 ConsequenceCondSet = isl_set_union(ConsCondPart0, ConsCondPart1);
1108 } else {
1109 auto *ICond = dyn_cast<ICmpInst>(Condition);
1110 assert(ICond &&
1111 "Condition of exiting branch was neither constant nor ICmp!");
1112
1113 ScalarEvolution &SE = *S.getSE();
Johannes Doerfert2af10e22015-11-12 03:25:01 +00001114 BasicBlock *BB = TI ? TI->getParent() : nullptr;
Johannes Doerfert9b1f9c82015-10-11 13:21:03 +00001115 isl_pw_aff *LHS, *RHS;
1116 LHS = S.getPwAff(SE.getSCEVAtScope(ICond->getOperand(0), L), BB);
1117 RHS = S.getPwAff(SE.getSCEVAtScope(ICond->getOperand(1), L), BB);
1118 ConsequenceCondSet =
1119 buildConditionSet(ICond->getPredicate(), LHS, RHS, Domain);
1120 }
1121
Johannes Doerfert2af10e22015-11-12 03:25:01 +00001122 // If no terminator was given we are only looking for parameter constraints
1123 // under which @p Condition is true/false.
1124 if (!TI)
1125 ConsequenceCondSet = isl_set_params(ConsequenceCondSet);
1126
Johannes Doerfert9b1f9c82015-10-11 13:21:03 +00001127 assert(ConsequenceCondSet);
1128 isl_set *AlternativeCondSet =
1129 isl_set_complement(isl_set_copy(ConsequenceCondSet));
1130
1131 ConditionSets.push_back(isl_set_coalesce(
1132 isl_set_intersect(ConsequenceCondSet, isl_set_copy(Domain))));
1133 ConditionSets.push_back(isl_set_coalesce(
1134 isl_set_intersect(AlternativeCondSet, isl_set_copy(Domain))));
1135}
1136
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001137/// @brief Build the conditions sets for the terminator @p TI in the @p Domain.
1138///
1139/// This will fill @p ConditionSets with the conditions under which control
1140/// will be moved from @p TI to its successors. Hence, @p ConditionSets will
1141/// have as many elements as @p TI has successors.
1142static void
1143buildConditionSets(Scop &S, TerminatorInst *TI, Loop *L,
1144 __isl_keep isl_set *Domain,
1145 SmallVectorImpl<__isl_give isl_set *> &ConditionSets) {
1146
1147 if (SwitchInst *SI = dyn_cast<SwitchInst>(TI))
1148 return buildConditionSets(S, SI, L, Domain, ConditionSets);
1149
1150 assert(isa<BranchInst>(TI) && "Terminator was neither branch nor switch.");
1151
1152 if (TI->getNumSuccessors() == 1) {
Johannes Doerfert96425c22015-08-30 21:13:53 +00001153 ConditionSets.push_back(isl_set_copy(Domain));
1154 return;
1155 }
1156
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001157 Value *Condition = getConditionFromTerminator(TI);
1158 assert(Condition && "No condition for Terminator");
Johannes Doerfert96425c22015-08-30 21:13:53 +00001159
Johannes Doerfert9b1f9c82015-10-11 13:21:03 +00001160 return buildConditionSets(S, Condition, TI, L, Domain, ConditionSets);
Johannes Doerfert96425c22015-08-30 21:13:53 +00001161}
1162
Johannes Doerfert32ae76e2015-09-10 13:12:02 +00001163void ScopStmt::buildDomain() {
Tobias Grosser084d8f72012-05-29 09:29:44 +00001164 isl_id *Id;
Tobias Grossere19661e2011-10-07 08:46:57 +00001165
Tobias Grosser084d8f72012-05-29 09:29:44 +00001166 Id = isl_id_alloc(getIslCtx(), getBaseName(), this);
1167
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00001168 Domain = getParent()->getDomainConditions(this);
Tobias Grosser084d8f72012-05-29 09:29:44 +00001169 Domain = isl_set_set_tuple_id(Domain, Id);
Tobias Grosser75805372011-04-29 06:27:02 +00001170}
1171
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001172void ScopStmt::deriveAssumptionsFromGEP(GetElementPtrInst *GEP) {
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001173 isl_ctx *Ctx = Parent.getIslCtx();
1174 isl_local_space *LSpace = isl_local_space_from_space(getDomainSpace());
1175 Type *Ty = GEP->getPointerOperandType();
1176 ScalarEvolution &SE = *Parent.getSE();
Johannes Doerfert09e36972015-10-07 20:17:36 +00001177 ScopDetection &SD = Parent.getSD();
1178
1179 // The set of loads that are required to be invariant.
1180 auto &ScopRIL = *SD.getRequiredInvariantLoads(&Parent.getRegion());
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001181
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001182 std::vector<const SCEV *> Subscripts;
1183 std::vector<int> Sizes;
1184
Tobias Grosser5fd8c092015-09-17 17:28:15 +00001185 std::tie(Subscripts, Sizes) = getIndexExpressionsFromGEP(GEP, SE);
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001186
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001187 if (auto *PtrTy = dyn_cast<PointerType>(Ty)) {
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001188 Ty = PtrTy->getElementType();
1189 }
1190
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001191 int IndexOffset = Subscripts.size() - Sizes.size();
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001192
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001193 assert(IndexOffset <= 1 && "Unexpected large index offset");
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001194
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001195 for (size_t i = 0; i < Sizes.size(); i++) {
1196 auto Expr = Subscripts[i + IndexOffset];
1197 auto Size = Sizes[i];
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001198
Johannes Doerfert09e36972015-10-07 20:17:36 +00001199 InvariantLoadsSetTy AccessILS;
1200 if (!isAffineExpr(&Parent.getRegion(), Expr, SE, nullptr, &AccessILS))
1201 continue;
1202
1203 bool NonAffine = false;
1204 for (LoadInst *LInst : AccessILS)
1205 if (!ScopRIL.count(LInst))
1206 NonAffine = true;
1207
1208 if (NonAffine)
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001209 continue;
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001210
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001211 isl_pw_aff *AccessOffset = getPwAff(Expr);
1212 AccessOffset =
1213 isl_pw_aff_set_tuple_id(AccessOffset, isl_dim_in, getDomainId());
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001214
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001215 isl_pw_aff *DimSize = isl_pw_aff_from_aff(isl_aff_val_on_domain(
1216 isl_local_space_copy(LSpace), isl_val_int_from_si(Ctx, Size)));
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001217
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001218 isl_set *OutOfBound = isl_pw_aff_ge_set(AccessOffset, DimSize);
1219 OutOfBound = isl_set_intersect(getDomain(), OutOfBound);
1220 OutOfBound = isl_set_params(OutOfBound);
1221 isl_set *InBound = isl_set_complement(OutOfBound);
1222 isl_set *Executed = isl_set_params(getDomain());
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001223
Tobias Grosserfaf8f6f2015-09-17 15:47:52 +00001224 // A => B == !A or B
1225 isl_set *InBoundIfExecuted =
1226 isl_set_union(isl_set_complement(Executed), InBound);
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001227
Johannes Doerfertd84493e2015-11-12 02:33:38 +00001228 Parent.addAssumption(INBOUNDS, InBoundIfExecuted, GEP->getDebugLoc());
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001229 }
1230
1231 isl_local_space_free(LSpace);
1232}
1233
Johannes Doerfertff9d1982015-02-24 12:00:50 +00001234void ScopStmt::deriveAssumptions(BasicBlock *Block) {
1235 for (Instruction &Inst : *Block)
Tobias Grosser7b50bee2014-11-25 10:51:12 +00001236 if (auto *GEP = dyn_cast<GetElementPtrInst>(&Inst))
1237 deriveAssumptionsFromGEP(GEP);
1238}
1239
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00001240void ScopStmt::collectSurroundingLoops() {
1241 for (unsigned u = 0, e = isl_set_n_dim(Domain); u < e; u++) {
1242 isl_id *DimId = isl_set_get_dim_id(Domain, isl_dim_set, u);
1243 NestLoops.push_back(static_cast<Loop *>(isl_id_get_user(DimId)));
1244 isl_id_free(DimId);
1245 }
1246}
1247
Michael Kruse9d080092015-09-11 21:41:48 +00001248ScopStmt::ScopStmt(Scop &parent, Region &R)
Michael Krusecac948e2015-10-02 13:53:07 +00001249 : Parent(parent), Domain(nullptr), BB(nullptr), R(&R), Build(nullptr) {
Johannes Doerfertff9d1982015-02-24 12:00:50 +00001250
Tobias Grosser16c44032015-07-09 07:31:45 +00001251 BaseName = getIslCompatibleName("Stmt_", R.getNameStr(), "");
Johannes Doerfertff9d1982015-02-24 12:00:50 +00001252}
1253
Michael Kruse9d080092015-09-11 21:41:48 +00001254ScopStmt::ScopStmt(Scop &parent, BasicBlock &bb)
Michael Krusecac948e2015-10-02 13:53:07 +00001255 : Parent(parent), Domain(nullptr), BB(&bb), R(nullptr), Build(nullptr) {
Tobias Grosser75805372011-04-29 06:27:02 +00001256
Johannes Doerfert79fc23f2014-07-24 23:48:02 +00001257 BaseName = getIslCompatibleName("Stmt_", &bb, "");
Michael Krusecac948e2015-10-02 13:53:07 +00001258}
1259
1260void ScopStmt::init() {
1261 assert(!Domain && "init must be called only once");
Tobias Grosser75805372011-04-29 06:27:02 +00001262
Johannes Doerfert32ae76e2015-09-10 13:12:02 +00001263 buildDomain();
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00001264 collectSurroundingLoops();
Michael Krusecac948e2015-10-02 13:53:07 +00001265 buildAccessRelations();
1266
1267 if (BB) {
1268 deriveAssumptions(BB);
1269 } else {
1270 for (BasicBlock *Block : R->blocks()) {
1271 deriveAssumptions(Block);
1272 }
1273 }
1274
Tobias Grosserd83b8a82015-08-20 19:08:11 +00001275 if (DetectReductions)
1276 checkForReductions();
Johannes Doerfert0ee1f212014-06-17 17:31:36 +00001277}
1278
Johannes Doerferte58a0122014-06-27 20:31:28 +00001279/// @brief Collect loads which might form a reduction chain with @p StoreMA
1280///
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001281/// Check if the stored value for @p StoreMA is a binary operator with one or
1282/// two loads as operands. If the binary operand is commutative & associative,
Johannes Doerferte58a0122014-06-27 20:31:28 +00001283/// used only once (by @p StoreMA) and its load operands are also used only
1284/// once, we have found a possible reduction chain. It starts at an operand
1285/// load and includes the binary operator and @p StoreMA.
1286///
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001287/// Note: We allow only one use to ensure the load and binary operator cannot
Johannes Doerferte58a0122014-06-27 20:31:28 +00001288/// escape this block or into any other store except @p StoreMA.
1289void ScopStmt::collectCandiateReductionLoads(
1290 MemoryAccess *StoreMA, SmallVectorImpl<MemoryAccess *> &Loads) {
1291 auto *Store = dyn_cast<StoreInst>(StoreMA->getAccessInstruction());
1292 if (!Store)
Johannes Doerfert0ee1f212014-06-17 17:31:36 +00001293 return;
1294
1295 // Skip if there is not one binary operator between the load and the store
1296 auto *BinOp = dyn_cast<BinaryOperator>(Store->getValueOperand());
Johannes Doerferte58a0122014-06-27 20:31:28 +00001297 if (!BinOp)
1298 return;
1299
1300 // Skip if the binary operators has multiple uses
1301 if (BinOp->getNumUses() != 1)
Johannes Doerfert0ee1f212014-06-17 17:31:36 +00001302 return;
1303
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001304 // Skip if the opcode of the binary operator is not commutative/associative
Johannes Doerfert0ee1f212014-06-17 17:31:36 +00001305 if (!BinOp->isCommutative() || !BinOp->isAssociative())
1306 return;
1307
Johannes Doerfert9890a052014-07-01 00:32:29 +00001308 // Skip if the binary operator is outside the current SCoP
1309 if (BinOp->getParent() != Store->getParent())
1310 return;
1311
Johannes Doerfert0ee1f212014-06-17 17:31:36 +00001312 // Skip if it is a multiplicative reduction and we disabled them
1313 if (DisableMultiplicativeReductions &&
1314 (BinOp->getOpcode() == Instruction::Mul ||
1315 BinOp->getOpcode() == Instruction::FMul))
1316 return;
1317
Johannes Doerferte58a0122014-06-27 20:31:28 +00001318 // Check the binary operator operands for a candidate load
1319 auto *PossibleLoad0 = dyn_cast<LoadInst>(BinOp->getOperand(0));
1320 auto *PossibleLoad1 = dyn_cast<LoadInst>(BinOp->getOperand(1));
1321 if (!PossibleLoad0 && !PossibleLoad1)
1322 return;
1323
1324 // A load is only a candidate if it cannot escape (thus has only this use)
1325 if (PossibleLoad0 && PossibleLoad0->getNumUses() == 1)
Johannes Doerfert9890a052014-07-01 00:32:29 +00001326 if (PossibleLoad0->getParent() == Store->getParent())
1327 Loads.push_back(lookupAccessFor(PossibleLoad0));
Johannes Doerferte58a0122014-06-27 20:31:28 +00001328 if (PossibleLoad1 && PossibleLoad1->getNumUses() == 1)
Johannes Doerfert9890a052014-07-01 00:32:29 +00001329 if (PossibleLoad1->getParent() == Store->getParent())
1330 Loads.push_back(lookupAccessFor(PossibleLoad1));
Johannes Doerferte58a0122014-06-27 20:31:28 +00001331}
1332
1333/// @brief Check for reductions in this ScopStmt
1334///
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001335/// Iterate over all store memory accesses and check for valid binary reduction
1336/// like chains. For all candidates we check if they have the same base address
1337/// and there are no other accesses which overlap with them. The base address
1338/// check rules out impossible reductions candidates early. The overlap check,
1339/// together with the "only one user" check in collectCandiateReductionLoads,
Johannes Doerferte58a0122014-06-27 20:31:28 +00001340/// guarantees that none of the intermediate results will escape during
1341/// execution of the loop nest. We basically check here that no other memory
1342/// access can access the same memory as the potential reduction.
1343void ScopStmt::checkForReductions() {
1344 SmallVector<MemoryAccess *, 2> Loads;
1345 SmallVector<std::pair<MemoryAccess *, MemoryAccess *>, 4> Candidates;
1346
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001347 // First collect candidate load-store reduction chains by iterating over all
Johannes Doerferte58a0122014-06-27 20:31:28 +00001348 // stores and collecting possible reduction loads.
1349 for (MemoryAccess *StoreMA : MemAccs) {
1350 if (StoreMA->isRead())
1351 continue;
1352
1353 Loads.clear();
1354 collectCandiateReductionLoads(StoreMA, Loads);
1355 for (MemoryAccess *LoadMA : Loads)
1356 Candidates.push_back(std::make_pair(LoadMA, StoreMA));
1357 }
1358
1359 // Then check each possible candidate pair.
1360 for (const auto &CandidatePair : Candidates) {
1361 bool Valid = true;
1362 isl_map *LoadAccs = CandidatePair.first->getAccessRelation();
1363 isl_map *StoreAccs = CandidatePair.second->getAccessRelation();
1364
1365 // Skip those with obviously unequal base addresses.
1366 if (!isl_map_has_equal_space(LoadAccs, StoreAccs)) {
1367 isl_map_free(LoadAccs);
1368 isl_map_free(StoreAccs);
1369 continue;
1370 }
1371
1372 // And check if the remaining for overlap with other memory accesses.
1373 isl_map *AllAccsRel = isl_map_union(LoadAccs, StoreAccs);
1374 AllAccsRel = isl_map_intersect_domain(AllAccsRel, getDomain());
1375 isl_set *AllAccs = isl_map_range(AllAccsRel);
1376
1377 for (MemoryAccess *MA : MemAccs) {
1378 if (MA == CandidatePair.first || MA == CandidatePair.second)
1379 continue;
1380
1381 isl_map *AccRel =
1382 isl_map_intersect_domain(MA->getAccessRelation(), getDomain());
1383 isl_set *Accs = isl_map_range(AccRel);
1384
1385 if (isl_set_has_equal_space(AllAccs, Accs) || isl_set_free(Accs)) {
1386 isl_set *OverlapAccs = isl_set_intersect(Accs, isl_set_copy(AllAccs));
1387 Valid = Valid && isl_set_is_empty(OverlapAccs);
1388 isl_set_free(OverlapAccs);
1389 }
1390 }
1391
1392 isl_set_free(AllAccs);
1393 if (!Valid)
1394 continue;
1395
Johannes Doerfertf6183392014-07-01 20:52:51 +00001396 const LoadInst *Load =
1397 dyn_cast<const LoadInst>(CandidatePair.first->getAccessInstruction());
1398 MemoryAccess::ReductionType RT =
1399 getReductionType(dyn_cast<BinaryOperator>(Load->user_back()), Load);
1400
Johannes Doerferte58a0122014-06-27 20:31:28 +00001401 // If no overlapping access was found we mark the load and store as
1402 // reduction like.
Johannes Doerfertf6183392014-07-01 20:52:51 +00001403 CandidatePair.first->markAsReductionLike(RT);
1404 CandidatePair.second->markAsReductionLike(RT);
Johannes Doerferte58a0122014-06-27 20:31:28 +00001405 }
Tobias Grosser75805372011-04-29 06:27:02 +00001406}
1407
Tobias Grosser74394f02013-01-14 22:40:23 +00001408std::string ScopStmt::getDomainStr() const { return stringFromIslObj(Domain); }
Tobias Grosser75805372011-04-29 06:27:02 +00001409
Tobias Grosser54839312015-04-21 11:37:25 +00001410std::string ScopStmt::getScheduleStr() const {
Tobias Grosser808cd692015-07-14 09:33:13 +00001411 auto *S = getSchedule();
1412 auto Str = stringFromIslObj(S);
1413 isl_map_free(S);
1414 return Str;
Tobias Grosser75805372011-04-29 06:27:02 +00001415}
1416
Tobias Grosser74394f02013-01-14 22:40:23 +00001417unsigned ScopStmt::getNumParams() const { return Parent.getNumParams(); }
Tobias Grosser75805372011-04-29 06:27:02 +00001418
Tobias Grosserf567e1a2015-02-19 22:16:12 +00001419unsigned ScopStmt::getNumIterators() const { return NestLoops.size(); }
Tobias Grosser75805372011-04-29 06:27:02 +00001420
Tobias Grosser75805372011-04-29 06:27:02 +00001421const char *ScopStmt::getBaseName() const { return BaseName.c_str(); }
1422
Hongbin Zheng27f3afb2011-04-30 03:26:51 +00001423const Loop *ScopStmt::getLoopForDimension(unsigned Dimension) const {
Sebastian Pop860e0212013-02-15 21:26:44 +00001424 return NestLoops[Dimension];
Tobias Grosser75805372011-04-29 06:27:02 +00001425}
1426
Tobias Grosser74394f02013-01-14 22:40:23 +00001427isl_ctx *ScopStmt::getIslCtx() const { return Parent.getIslCtx(); }
Tobias Grosser75805372011-04-29 06:27:02 +00001428
Tobias Grosser4f663aa2015-03-30 11:52:59 +00001429__isl_give isl_set *ScopStmt::getDomain() const { return isl_set_copy(Domain); }
Tobias Grosserd5a7bfc2011-05-06 19:52:19 +00001430
Tobias Grosser6e6c7e02015-03-30 12:22:39 +00001431__isl_give isl_space *ScopStmt::getDomainSpace() const {
Tobias Grosser78d8a3d2012-01-17 20:34:23 +00001432 return isl_set_get_space(Domain);
1433}
1434
Tobias Grosser4f663aa2015-03-30 11:52:59 +00001435__isl_give isl_id *ScopStmt::getDomainId() const {
1436 return isl_set_get_tuple_id(Domain);
1437}
Tobias Grossercd95b772012-08-30 11:49:38 +00001438
Tobias Grosser75805372011-04-29 06:27:02 +00001439ScopStmt::~ScopStmt() {
Johannes Doerfertecff11d2015-05-22 23:43:58 +00001440 DeleteContainerSeconds(InstructionToAccess);
Tobias Grosser75805372011-04-29 06:27:02 +00001441 isl_set_free(Domain);
Tobias Grosser75805372011-04-29 06:27:02 +00001442}
1443
1444void ScopStmt::print(raw_ostream &OS) const {
1445 OS << "\t" << getBaseName() << "\n";
Tobias Grosser75805372011-04-29 06:27:02 +00001446 OS.indent(12) << "Domain :=\n";
1447
1448 if (Domain) {
1449 OS.indent(16) << getDomainStr() << ";\n";
1450 } else
1451 OS.indent(16) << "n/a\n";
1452
Tobias Grosser54839312015-04-21 11:37:25 +00001453 OS.indent(12) << "Schedule :=\n";
Tobias Grosser75805372011-04-29 06:27:02 +00001454
1455 if (Domain) {
Tobias Grosser54839312015-04-21 11:37:25 +00001456 OS.indent(16) << getScheduleStr() << ";\n";
Tobias Grosser75805372011-04-29 06:27:02 +00001457 } else
1458 OS.indent(16) << "n/a\n";
1459
Tobias Grosser083d3d32014-06-28 08:59:45 +00001460 for (MemoryAccess *Access : MemAccs)
1461 Access->print(OS);
Tobias Grosser75805372011-04-29 06:27:02 +00001462}
1463
1464void ScopStmt::dump() const { print(dbgs()); }
1465
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00001466void ScopStmt::removeMemoryAccesses(MemoryAccessList &InvMAs) {
Tobias Grosseref9ca5d2015-11-30 17:20:40 +00001467 // Remove all memory accesses in @p InvMAs from this statement
1468 // together with all scalar accesses that were caused by them.
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00001469 for (MemoryAccess *MA : InvMAs) {
Tobias Grosseref9ca5d2015-11-30 17:20:40 +00001470 auto Predicate = [&](MemoryAccess *Acc) {
1471 return Acc == MA ||
1472 Acc->getAccessInstruction() == MA->getAccessInstruction();
1473 };
1474 MemAccs.erase(std::remove_if(MemAccs.begin(), MemAccs.end(), Predicate),
1475 MemAccs.end());
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00001476 InstructionToAccess.erase(MA->getAccessInstruction());
Tobias Grosseref9ca5d2015-11-30 17:20:40 +00001477 delete lookupAccessesFor(MA->getAccessInstruction());
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00001478 }
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00001479}
1480
Tobias Grosser75805372011-04-29 06:27:02 +00001481//===----------------------------------------------------------------------===//
1482/// Scop class implement
Tobias Grosser60b54f12011-11-08 15:41:28 +00001483
Tobias Grosser7ffe4e82011-11-17 12:56:10 +00001484void Scop::setContext(__isl_take isl_set *NewContext) {
Tobias Grosserff9b54d2011-11-15 11:38:44 +00001485 NewContext = isl_set_align_params(NewContext, isl_set_get_space(Context));
1486 isl_set_free(Context);
1487 Context = NewContext;
1488}
1489
Johannes Doerfertd6fc0702015-11-03 16:47:58 +00001490/// @brief Remap parameter values but keep AddRecs valid wrt. invariant loads.
1491struct SCEVSensitiveParameterRewriter
1492 : public SCEVVisitor<SCEVSensitiveParameterRewriter, const SCEV *> {
1493 ValueToValueMap &VMap;
1494 ScalarEvolution &SE;
1495
1496public:
1497 SCEVSensitiveParameterRewriter(ValueToValueMap &VMap, ScalarEvolution &SE)
1498 : VMap(VMap), SE(SE) {}
1499
1500 static const SCEV *rewrite(const SCEV *E, ScalarEvolution &SE,
1501 ValueToValueMap &VMap) {
1502 SCEVSensitiveParameterRewriter SSPR(VMap, SE);
1503 return SSPR.visit(E);
1504 }
1505
1506 const SCEV *visit(const SCEV *E) {
1507 return SCEVVisitor<SCEVSensitiveParameterRewriter, const SCEV *>::visit(E);
1508 }
1509
1510 const SCEV *visitConstant(const SCEVConstant *E) { return E; }
1511
1512 const SCEV *visitTruncateExpr(const SCEVTruncateExpr *E) {
1513 return SE.getTruncateExpr(visit(E->getOperand()), E->getType());
1514 }
1515
1516 const SCEV *visitZeroExtendExpr(const SCEVZeroExtendExpr *E) {
1517 return SE.getZeroExtendExpr(visit(E->getOperand()), E->getType());
1518 }
1519
1520 const SCEV *visitSignExtendExpr(const SCEVSignExtendExpr *E) {
1521 return SE.getSignExtendExpr(visit(E->getOperand()), E->getType());
1522 }
1523
1524 const SCEV *visitAddExpr(const SCEVAddExpr *E) {
1525 SmallVector<const SCEV *, 4> Operands;
1526 for (int i = 0, e = E->getNumOperands(); i < e; ++i)
1527 Operands.push_back(visit(E->getOperand(i)));
1528 return SE.getAddExpr(Operands);
1529 }
1530
1531 const SCEV *visitMulExpr(const SCEVMulExpr *E) {
1532 SmallVector<const SCEV *, 4> Operands;
1533 for (int i = 0, e = E->getNumOperands(); i < e; ++i)
1534 Operands.push_back(visit(E->getOperand(i)));
1535 return SE.getMulExpr(Operands);
1536 }
1537
1538 const SCEV *visitSMaxExpr(const SCEVSMaxExpr *E) {
1539 SmallVector<const SCEV *, 4> Operands;
1540 for (int i = 0, e = E->getNumOperands(); i < e; ++i)
1541 Operands.push_back(visit(E->getOperand(i)));
1542 return SE.getSMaxExpr(Operands);
1543 }
1544
1545 const SCEV *visitUMaxExpr(const SCEVUMaxExpr *E) {
1546 SmallVector<const SCEV *, 4> Operands;
1547 for (int i = 0, e = E->getNumOperands(); i < e; ++i)
1548 Operands.push_back(visit(E->getOperand(i)));
1549 return SE.getUMaxExpr(Operands);
1550 }
1551
1552 const SCEV *visitUDivExpr(const SCEVUDivExpr *E) {
1553 return SE.getUDivExpr(visit(E->getLHS()), visit(E->getRHS()));
1554 }
1555
1556 const SCEV *visitAddRecExpr(const SCEVAddRecExpr *E) {
1557 auto *Start = visit(E->getStart());
1558 auto *AddRec = SE.getAddRecExpr(SE.getConstant(E->getType(), 0),
1559 visit(E->getStepRecurrence(SE)),
1560 E->getLoop(), SCEV::FlagAnyWrap);
1561 return SE.getAddExpr(Start, AddRec);
1562 }
1563
1564 const SCEV *visitUnknown(const SCEVUnknown *E) {
1565 if (auto *NewValue = VMap.lookup(E->getValue()))
1566 return SE.getUnknown(NewValue);
1567 return E;
1568 }
1569};
1570
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00001571const SCEV *Scop::getRepresentingInvariantLoadSCEV(const SCEV *S) {
Johannes Doerfertd6fc0702015-11-03 16:47:58 +00001572 return SCEVSensitiveParameterRewriter::rewrite(S, *SE, InvEquivClassVMap);
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001573}
1574
Tobias Grosserabfbe632013-02-05 12:09:06 +00001575void Scop::addParams(std::vector<const SCEV *> NewParameters) {
Tobias Grosser083d3d32014-06-28 08:59:45 +00001576 for (const SCEV *Parameter : NewParameters) {
Johannes Doerfertbe409962015-03-29 20:45:09 +00001577 Parameter = extractConstantFactor(Parameter, *SE).second;
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001578
1579 // Normalize the SCEV to get the representing element for an invariant load.
1580 Parameter = getRepresentingInvariantLoadSCEV(Parameter);
1581
Tobias Grosser60b54f12011-11-08 15:41:28 +00001582 if (ParameterIds.find(Parameter) != ParameterIds.end())
1583 continue;
1584
1585 int dimension = Parameters.size();
1586
1587 Parameters.push_back(Parameter);
1588 ParameterIds[Parameter] = dimension;
1589 }
1590}
1591
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00001592__isl_give isl_id *Scop::getIdForParam(const SCEV *Parameter) {
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001593 // Normalize the SCEV to get the representing element for an invariant load.
1594 Parameter = getRepresentingInvariantLoadSCEV(Parameter);
1595
Tobias Grosser9a38ab82011-11-08 15:41:03 +00001596 ParamIdType::const_iterator IdIter = ParameterIds.find(Parameter);
Tobias Grosser76c2e322011-11-07 12:58:59 +00001597
Tobias Grosser9a38ab82011-11-08 15:41:03 +00001598 if (IdIter == ParameterIds.end())
Tobias Grosser5a56cbf2014-04-16 07:33:47 +00001599 return nullptr;
Tobias Grosser76c2e322011-11-07 12:58:59 +00001600
Tobias Grosser8f99c162011-11-15 11:38:55 +00001601 std::string ParameterName;
1602
Tobias Grosserb39c96a2015-11-17 11:54:51 +00001603 ParameterName = "p_" + utostr_32(IdIter->second);
1604
Tobias Grosser8f99c162011-11-15 11:38:55 +00001605 if (const SCEVUnknown *ValueParameter = dyn_cast<SCEVUnknown>(Parameter)) {
1606 Value *Val = ValueParameter->getValue();
Tobias Grosser8f99c162011-11-15 11:38:55 +00001607
Tobias Grosserb39c96a2015-11-17 11:54:51 +00001608 // If this parameter references a specific Value and this value has a name
1609 // we use this name as it is likely to be unique and more useful than just
1610 // a number.
1611 if (Val->hasName())
1612 ParameterName = Val->getName();
1613 else if (LoadInst *LI = dyn_cast<LoadInst>(Val)) {
1614 auto LoadOrigin = LI->getPointerOperand()->stripInBoundsOffsets();
1615 if (LoadOrigin->hasName()) {
1616 ParameterName += "_loaded_from_";
1617 ParameterName +=
1618 LI->getPointerOperand()->stripInBoundsOffsets()->getName();
1619 }
1620 }
1621 }
Tobias Grosser8f99c162011-11-15 11:38:55 +00001622
Tobias Grosser20532b82014-04-11 17:56:49 +00001623 return isl_id_alloc(getIslCtx(), ParameterName.c_str(),
1624 const_cast<void *>((const void *)Parameter));
Tobias Grosser76c2e322011-11-07 12:58:59 +00001625}
Tobias Grosser75805372011-04-29 06:27:02 +00001626
Johannes Doerfert5d5b3062015-08-20 18:06:30 +00001627isl_set *Scop::addNonEmptyDomainConstraints(isl_set *C) const {
1628 isl_set *DomainContext = isl_union_set_params(getDomains());
1629 return isl_set_intersect_params(C, DomainContext);
1630}
1631
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001632void Scop::buildBoundaryContext() {
Tobias Grosser4927c8e2015-11-24 12:50:02 +00001633 if (IgnoreIntegerWrapping) {
1634 BoundaryContext = isl_set_universe(getParamSpace());
1635 return;
1636 }
1637
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001638 BoundaryContext = Affinator.getWrappingContext();
Tobias Grosser4cd07b12015-11-11 17:34:02 +00001639
1640 // The isl_set_complement operation used to create the boundary context
1641 // can possibly become very expensive. We bound the compile time of
1642 // this operation by setting a compute out.
1643 //
1644 // TODO: We can probably get around using isl_set_complement and directly
1645 // AST generate BoundaryContext.
1646 long MaxOpsOld = isl_ctx_get_max_operations(getIslCtx());
Tobias Grosserf920fb12015-11-13 16:56:13 +00001647 isl_ctx_reset_operations(getIslCtx());
Tobias Grosser4cd07b12015-11-11 17:34:02 +00001648 isl_ctx_set_max_operations(getIslCtx(), 300000);
1649 isl_options_set_on_error(getIslCtx(), ISL_ON_ERROR_CONTINUE);
1650
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001651 BoundaryContext = isl_set_complement(BoundaryContext);
Tobias Grosser4cd07b12015-11-11 17:34:02 +00001652
Tobias Grossera52b4da2015-11-11 17:59:53 +00001653 if (isl_ctx_last_error(getIslCtx()) == isl_error_quota) {
1654 isl_set_free(BoundaryContext);
Tobias Grosser4cd07b12015-11-11 17:34:02 +00001655 BoundaryContext = isl_set_empty(getParamSpace());
Tobias Grossera52b4da2015-11-11 17:59:53 +00001656 }
Tobias Grosser4cd07b12015-11-11 17:34:02 +00001657
1658 isl_options_set_on_error(getIslCtx(), ISL_ON_ERROR_ABORT);
1659 isl_ctx_reset_operations(getIslCtx());
1660 isl_ctx_set_max_operations(getIslCtx(), MaxOpsOld);
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001661 BoundaryContext = isl_set_gist_params(BoundaryContext, getContext());
Johannes Doerfertd84493e2015-11-12 02:33:38 +00001662 trackAssumption(WRAPPING, BoundaryContext, DebugLoc());
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001663}
1664
Johannes Doerfert2af10e22015-11-12 03:25:01 +00001665void Scop::addUserAssumptions(AssumptionCache &AC) {
1666 auto *R = &getRegion();
1667 auto &F = *R->getEntry()->getParent();
1668 for (auto &Assumption : AC.assumptions()) {
1669 auto *CI = dyn_cast_or_null<CallInst>(Assumption);
1670 if (!CI || CI->getNumArgOperands() != 1)
1671 continue;
1672 if (!DT.dominates(CI->getParent(), R->getEntry()))
1673 continue;
1674
1675 auto *Val = CI->getArgOperand(0);
1676 std::vector<const SCEV *> Params;
1677 if (!isAffineParamConstraint(Val, R, *SE, Params)) {
1678 emitOptimizationRemarkAnalysis(F.getContext(), DEBUG_TYPE, F,
1679 CI->getDebugLoc(),
1680 "Non-affine user assumption ignored.");
1681 continue;
1682 }
1683
1684 addParams(Params);
1685
1686 auto *L = LI.getLoopFor(CI->getParent());
1687 SmallVector<isl_set *, 2> ConditionSets;
1688 buildConditionSets(*this, Val, nullptr, L, Context, ConditionSets);
1689 assert(ConditionSets.size() == 2);
1690 isl_set_free(ConditionSets[1]);
1691
1692 auto *AssumptionCtx = ConditionSets[0];
1693 emitOptimizationRemarkAnalysis(
1694 F.getContext(), DEBUG_TYPE, F, CI->getDebugLoc(),
1695 "Use user assumption: " + stringFromIslObj(AssumptionCtx));
1696 Context = isl_set_intersect(Context, AssumptionCtx);
1697 }
1698}
1699
Tobias Grosser8a9c2352015-08-16 10:19:29 +00001700void Scop::addUserContext() {
1701 if (UserContextStr.empty())
1702 return;
1703
1704 isl_set *UserContext = isl_set_read_from_str(IslCtx, UserContextStr.c_str());
1705 isl_space *Space = getParamSpace();
1706 if (isl_space_dim(Space, isl_dim_param) !=
1707 isl_set_dim(UserContext, isl_dim_param)) {
1708 auto SpaceStr = isl_space_to_str(Space);
1709 errs() << "Error: the context provided in -polly-context has not the same "
1710 << "number of dimensions than the computed context. Due to this "
1711 << "mismatch, the -polly-context option is ignored. Please provide "
1712 << "the context in the parameter space: " << SpaceStr << ".\n";
1713 free(SpaceStr);
1714 isl_set_free(UserContext);
1715 isl_space_free(Space);
1716 return;
1717 }
1718
1719 for (unsigned i = 0; i < isl_space_dim(Space, isl_dim_param); i++) {
1720 auto NameContext = isl_set_get_dim_name(Context, isl_dim_param, i);
1721 auto NameUserContext = isl_set_get_dim_name(UserContext, isl_dim_param, i);
1722
1723 if (strcmp(NameContext, NameUserContext) != 0) {
1724 auto SpaceStr = isl_space_to_str(Space);
1725 errs() << "Error: the name of dimension " << i
1726 << " provided in -polly-context "
1727 << "is '" << NameUserContext << "', but the name in the computed "
1728 << "context is '" << NameContext
1729 << "'. Due to this name mismatch, "
1730 << "the -polly-context option is ignored. Please provide "
1731 << "the context in the parameter space: " << SpaceStr << ".\n";
1732 free(SpaceStr);
1733 isl_set_free(UserContext);
1734 isl_space_free(Space);
1735 return;
1736 }
1737
1738 UserContext =
1739 isl_set_set_dim_id(UserContext, isl_dim_param, i,
1740 isl_space_get_dim_id(Space, isl_dim_param, i));
1741 }
1742
1743 Context = isl_set_intersect(Context, UserContext);
1744 isl_space_free(Space);
1745}
1746
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001747void Scop::buildInvariantEquivalenceClasses() {
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00001748 DenseMap<const SCEV *, LoadInst *> EquivClasses;
1749
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001750 const InvariantLoadsSetTy &RIL = *SD.getRequiredInvariantLoads(&getRegion());
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001751 for (LoadInst *LInst : RIL) {
1752 const SCEV *PointerSCEV = SE->getSCEV(LInst->getPointerOperand());
1753
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00001754 LoadInst *&ClassRep = EquivClasses[PointerSCEV];
Johannes Doerfertfc4bfc42015-11-11 04:30:07 +00001755 if (ClassRep) {
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00001756 InvEquivClassVMap[LInst] = ClassRep;
Johannes Doerfertfc4bfc42015-11-11 04:30:07 +00001757 continue;
1758 }
1759
1760 ClassRep = LInst;
1761 InvariantEquivClasses.emplace_back(PointerSCEV, MemoryAccessList(),
1762 nullptr);
Johannes Doerfert697fdf82015-10-09 17:12:26 +00001763 }
1764}
1765
Tobias Grosser6be480c2011-11-08 15:41:13 +00001766void Scop::buildContext() {
1767 isl_space *Space = isl_space_params_alloc(IslCtx, 0);
Tobias Grossere86109f2013-10-29 21:05:49 +00001768 Context = isl_set_universe(isl_space_copy(Space));
1769 AssumedContext = isl_set_universe(Space);
Tobias Grosser0e27e242011-10-06 00:03:48 +00001770}
1771
Tobias Grosser18daaca2012-05-22 10:47:27 +00001772void Scop::addParameterBounds() {
Johannes Doerfert4f8ac3d2015-02-23 16:15:51 +00001773 for (const auto &ParamID : ParameterIds) {
Johannes Doerfert4f8ac3d2015-02-23 16:15:51 +00001774 int dim = ParamID.second;
Tobias Grosser18daaca2012-05-22 10:47:27 +00001775
Johannes Doerfert4f8ac3d2015-02-23 16:15:51 +00001776 ConstantRange SRange = SE->getSignedRange(ParamID.first);
Tobias Grosser18daaca2012-05-22 10:47:27 +00001777
Johannes Doerferte7044942015-02-24 11:58:30 +00001778 Context = addRangeBoundsToSet(Context, SRange, dim, isl_dim_param);
Tobias Grosser18daaca2012-05-22 10:47:27 +00001779 }
1780}
1781
Tobias Grosser8cae72f2011-11-08 15:41:08 +00001782void Scop::realignParams() {
Tobias Grosser6be480c2011-11-08 15:41:13 +00001783 // Add all parameters into a common model.
Tobias Grosser60b54f12011-11-08 15:41:28 +00001784 isl_space *Space = isl_space_params_alloc(IslCtx, ParameterIds.size());
Tobias Grosser6be480c2011-11-08 15:41:13 +00001785
Tobias Grosser083d3d32014-06-28 08:59:45 +00001786 for (const auto &ParamID : ParameterIds) {
1787 const SCEV *Parameter = ParamID.first;
Tobias Grosser6be480c2011-11-08 15:41:13 +00001788 isl_id *id = getIdForParam(Parameter);
Tobias Grosser083d3d32014-06-28 08:59:45 +00001789 Space = isl_space_set_dim_id(Space, isl_dim_param, ParamID.second, id);
Tobias Grosser6be480c2011-11-08 15:41:13 +00001790 }
1791
1792 // Align the parameters of all data structures to the model.
1793 Context = isl_set_align_params(Context, Space);
1794
Tobias Grosser7c3bad52015-05-27 05:16:57 +00001795 for (ScopStmt &Stmt : *this)
1796 Stmt.realignParams();
Tobias Grosser8cae72f2011-11-08 15:41:08 +00001797}
1798
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001799static __isl_give isl_set *
1800simplifyAssumptionContext(__isl_take isl_set *AssumptionContext,
1801 const Scop &S) {
Johannes Doerfertf85ad042015-11-08 20:16:39 +00001802 // If we modelt all blocks in the SCoP that have side effects we can simplify
1803 // the context with the constraints that are needed for anything to be
1804 // executed at all. However, if we have error blocks in the SCoP we already
1805 // assumed some parameter combinations cannot occure and removed them from the
1806 // domains, thus we cannot use the remaining domain to simplify the
1807 // assumptions.
1808 if (!S.hasErrorBlock()) {
1809 isl_set *DomainParameters = isl_union_set_params(S.getDomains());
1810 AssumptionContext =
1811 isl_set_gist_params(AssumptionContext, DomainParameters);
1812 }
1813
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001814 AssumptionContext = isl_set_gist_params(AssumptionContext, S.getContext());
1815 return AssumptionContext;
1816}
1817
1818void Scop::simplifyContexts() {
Tobias Grosser5e6813d2014-07-02 17:47:48 +00001819 // The parameter constraints of the iteration domains give us a set of
1820 // constraints that need to hold for all cases where at least a single
1821 // statement iteration is executed in the whole scop. We now simplify the
1822 // assumed context under the assumption that such constraints hold and at
1823 // least a single statement iteration is executed. For cases where no
1824 // statement instances are executed, the assumptions we have taken about
1825 // the executed code do not matter and can be changed.
1826 //
1827 // WARNING: This only holds if the assumptions we have taken do not reduce
1828 // the set of statement instances that are executed. Otherwise we
1829 // may run into a case where the iteration domains suggest that
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001830 // for a certain set of parameter constraints no code is executed,
Tobias Grosser5e6813d2014-07-02 17:47:48 +00001831 // but in the original program some computation would have been
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001832 // performed. In such a case, modifying the run-time conditions and
1833 // possibly influencing the run-time check may cause certain scops
Tobias Grosser5e6813d2014-07-02 17:47:48 +00001834 // to not be executed.
1835 //
1836 // Example:
1837 //
1838 // When delinearizing the following code:
1839 //
1840 // for (long i = 0; i < 100; i++)
1841 // for (long j = 0; j < m; j++)
1842 // A[i+p][j] = 1.0;
1843 //
1844 // we assume that the condition m <= 0 or (m >= 1 and p >= 0) holds as
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00001845 // otherwise we would access out of bound data. Now, knowing that code is
Tobias Grosser5e6813d2014-07-02 17:47:48 +00001846 // only executed for the case m >= 0, it is sufficient to assume p >= 0.
Johannes Doerfert883f8c12015-09-15 22:52:53 +00001847 AssumedContext = simplifyAssumptionContext(AssumedContext, *this);
1848 BoundaryContext = simplifyAssumptionContext(BoundaryContext, *this);
Tobias Grosser5e6813d2014-07-02 17:47:48 +00001849}
1850
Johannes Doerfertb164c792014-09-18 11:17:17 +00001851/// @brief Add the minimal/maximal access in @p Set to @p User.
Tobias Grosserb2f39922015-05-28 13:32:11 +00001852static isl_stat buildMinMaxAccess(__isl_take isl_set *Set, void *User) {
Johannes Doerfertb164c792014-09-18 11:17:17 +00001853 Scop::MinMaxVectorTy *MinMaxAccesses = (Scop::MinMaxVectorTy *)User;
1854 isl_pw_multi_aff *MinPMA, *MaxPMA;
1855 isl_pw_aff *LastDimAff;
1856 isl_aff *OneAff;
1857 unsigned Pos;
1858
Johannes Doerfert9143d672014-09-27 11:02:39 +00001859 // Restrict the number of parameters involved in the access as the lexmin/
1860 // lexmax computation will take too long if this number is high.
1861 //
1862 // Experiments with a simple test case using an i7 4800MQ:
1863 //
1864 // #Parameters involved | Time (in sec)
1865 // 6 | 0.01
1866 // 7 | 0.04
1867 // 8 | 0.12
1868 // 9 | 0.40
1869 // 10 | 1.54
1870 // 11 | 6.78
1871 // 12 | 30.38
1872 //
1873 if (isl_set_n_param(Set) > RunTimeChecksMaxParameters) {
1874 unsigned InvolvedParams = 0;
1875 for (unsigned u = 0, e = isl_set_n_param(Set); u < e; u++)
1876 if (isl_set_involves_dims(Set, isl_dim_param, u, 1))
1877 InvolvedParams++;
1878
1879 if (InvolvedParams > RunTimeChecksMaxParameters) {
1880 isl_set_free(Set);
Tobias Grosserb2f39922015-05-28 13:32:11 +00001881 return isl_stat_error;
Johannes Doerfert9143d672014-09-27 11:02:39 +00001882 }
1883 }
1884
Johannes Doerfertb6755bb2015-02-14 12:00:06 +00001885 Set = isl_set_remove_divs(Set);
1886
Johannes Doerfertb164c792014-09-18 11:17:17 +00001887 MinPMA = isl_set_lexmin_pw_multi_aff(isl_set_copy(Set));
1888 MaxPMA = isl_set_lexmax_pw_multi_aff(isl_set_copy(Set));
1889
Johannes Doerfert219b20e2014-10-07 14:37:59 +00001890 MinPMA = isl_pw_multi_aff_coalesce(MinPMA);
1891 MaxPMA = isl_pw_multi_aff_coalesce(MaxPMA);
1892
Johannes Doerfertb164c792014-09-18 11:17:17 +00001893 // Adjust the last dimension of the maximal access by one as we want to
1894 // enclose the accessed memory region by MinPMA and MaxPMA. The pointer
1895 // we test during code generation might now point after the end of the
1896 // allocated array but we will never dereference it anyway.
1897 assert(isl_pw_multi_aff_dim(MaxPMA, isl_dim_out) &&
1898 "Assumed at least one output dimension");
1899 Pos = isl_pw_multi_aff_dim(MaxPMA, isl_dim_out) - 1;
1900 LastDimAff = isl_pw_multi_aff_get_pw_aff(MaxPMA, Pos);
1901 OneAff = isl_aff_zero_on_domain(
1902 isl_local_space_from_space(isl_pw_aff_get_domain_space(LastDimAff)));
1903 OneAff = isl_aff_add_constant_si(OneAff, 1);
1904 LastDimAff = isl_pw_aff_add(LastDimAff, isl_pw_aff_from_aff(OneAff));
1905 MaxPMA = isl_pw_multi_aff_set_pw_aff(MaxPMA, Pos, LastDimAff);
1906
1907 MinMaxAccesses->push_back(std::make_pair(MinPMA, MaxPMA));
1908
1909 isl_set_free(Set);
Tobias Grosserb2f39922015-05-28 13:32:11 +00001910 return isl_stat_ok;
Johannes Doerfertb164c792014-09-18 11:17:17 +00001911}
1912
Johannes Doerferteeab05a2014-10-01 12:42:37 +00001913static __isl_give isl_set *getAccessDomain(MemoryAccess *MA) {
1914 isl_set *Domain = MA->getStatement()->getDomain();
1915 Domain = isl_set_project_out(Domain, isl_dim_set, 0, isl_set_n_dim(Domain));
1916 return isl_set_reset_tuple_id(Domain);
1917}
1918
Johannes Doerfert338b42c2015-07-23 17:04:54 +00001919/// @brief Wrapper function to calculate minimal/maximal accesses to each array.
1920static bool calculateMinMaxAccess(__isl_take isl_union_map *Accesses,
Tobias Grosserbb853c22015-07-25 12:31:03 +00001921 __isl_take isl_union_set *Domains,
Johannes Doerfert210b09a2015-07-26 13:14:38 +00001922 Scop::MinMaxVectorTy &MinMaxAccesses) {
Johannes Doerfert338b42c2015-07-23 17:04:54 +00001923
1924 Accesses = isl_union_map_intersect_domain(Accesses, Domains);
1925 isl_union_set *Locations = isl_union_map_range(Accesses);
Johannes Doerfert338b42c2015-07-23 17:04:54 +00001926 Locations = isl_union_set_coalesce(Locations);
1927 Locations = isl_union_set_detect_equalities(Locations);
1928 bool Valid = (0 == isl_union_set_foreach_set(Locations, buildMinMaxAccess,
Johannes Doerfert210b09a2015-07-26 13:14:38 +00001929 &MinMaxAccesses));
Johannes Doerfert338b42c2015-07-23 17:04:54 +00001930 isl_union_set_free(Locations);
1931 return Valid;
1932}
1933
Johannes Doerfert96425c22015-08-30 21:13:53 +00001934/// @brief Helper to treat non-affine regions and basic blocks the same.
1935///
1936///{
1937
1938/// @brief Return the block that is the representing block for @p RN.
1939static inline BasicBlock *getRegionNodeBasicBlock(RegionNode *RN) {
1940 return RN->isSubRegion() ? RN->getNodeAs<Region>()->getEntry()
1941 : RN->getNodeAs<BasicBlock>();
1942}
1943
1944/// @brief Return the @p idx'th block that is executed after @p RN.
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001945static inline BasicBlock *
1946getRegionNodeSuccessor(RegionNode *RN, TerminatorInst *TI, unsigned idx) {
Johannes Doerfert96425c22015-08-30 21:13:53 +00001947 if (RN->isSubRegion()) {
1948 assert(idx == 0);
1949 return RN->getNodeAs<Region>()->getExit();
1950 }
Johannes Doerfert9a132f32015-09-28 09:33:22 +00001951 return TI->getSuccessor(idx);
Johannes Doerfert96425c22015-08-30 21:13:53 +00001952}
1953
1954/// @brief Return the smallest loop surrounding @p RN.
1955static inline Loop *getRegionNodeLoop(RegionNode *RN, LoopInfo &LI) {
1956 if (!RN->isSubRegion())
1957 return LI.getLoopFor(RN->getNodeAs<BasicBlock>());
1958
1959 Region *NonAffineSubRegion = RN->getNodeAs<Region>();
1960 Loop *L = LI.getLoopFor(NonAffineSubRegion->getEntry());
1961 while (L && NonAffineSubRegion->contains(L))
1962 L = L->getParentLoop();
1963 return L;
1964}
1965
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00001966static inline unsigned getNumBlocksInRegionNode(RegionNode *RN) {
1967 if (!RN->isSubRegion())
1968 return 1;
1969
1970 unsigned NumBlocks = 0;
1971 Region *R = RN->getNodeAs<Region>();
1972 for (auto BB : R->blocks()) {
1973 (void)BB;
1974 NumBlocks++;
1975 }
1976 return NumBlocks;
1977}
1978
Johannes Doerfert08d90a32015-10-07 20:32:43 +00001979static bool containsErrorBlock(RegionNode *RN, const Region &R, LoopInfo &LI,
1980 const DominatorTree &DT) {
Johannes Doerfertf5673802015-10-01 23:48:18 +00001981 if (!RN->isSubRegion())
Johannes Doerfert08d90a32015-10-07 20:32:43 +00001982 return isErrorBlock(*RN->getNodeAs<BasicBlock>(), R, LI, DT);
Johannes Doerfertf5673802015-10-01 23:48:18 +00001983 for (BasicBlock *BB : RN->getNodeAs<Region>()->blocks())
Johannes Doerfert08d90a32015-10-07 20:32:43 +00001984 if (isErrorBlock(*BB, R, LI, DT))
Johannes Doerfertf5673802015-10-01 23:48:18 +00001985 return true;
1986 return false;
1987}
1988
Johannes Doerfert96425c22015-08-30 21:13:53 +00001989///}
1990
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00001991static inline __isl_give isl_set *addDomainDimId(__isl_take isl_set *Domain,
1992 unsigned Dim, Loop *L) {
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00001993 Domain = isl_set_lower_bound_si(Domain, isl_dim_set, Dim, -1);
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00001994 isl_id *DimId =
1995 isl_id_alloc(isl_set_get_ctx(Domain), nullptr, static_cast<void *>(L));
1996 return isl_set_set_dim_id(Domain, isl_dim_set, Dim, DimId);
1997}
1998
Johannes Doerfert96425c22015-08-30 21:13:53 +00001999isl_set *Scop::getDomainConditions(ScopStmt *Stmt) {
2000 BasicBlock *BB = Stmt->isBlockStmt() ? Stmt->getBasicBlock()
2001 : Stmt->getRegion()->getEntry();
Johannes Doerfertcef616f2015-09-15 22:49:04 +00002002 return getDomainConditions(BB);
2003}
2004
2005isl_set *Scop::getDomainConditions(BasicBlock *BB) {
2006 assert(DomainMap.count(BB) && "Requested BB did not have a domain");
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002007 return isl_set_copy(DomainMap[BB]);
Johannes Doerfert96425c22015-08-30 21:13:53 +00002008}
2009
Tobias Grosser9737c7b2015-11-22 11:06:51 +00002010void Scop::removeErrorBlockDomains() {
2011 auto removeDomains = [this](BasicBlock *Start) {
2012 auto BBNode = DT.getNode(Start);
2013 for (auto ErrorChild : depth_first(BBNode)) {
2014 auto ErrorChildBlock = ErrorChild->getBlock();
2015 auto CurrentDomain = DomainMap[ErrorChildBlock];
2016 auto Empty = isl_set_empty(isl_set_get_space(CurrentDomain));
2017 DomainMap[ErrorChildBlock] = Empty;
2018 isl_set_free(CurrentDomain);
2019 }
2020 };
2021
Tobias Grosser5ef2bc32015-11-23 10:18:23 +00002022 SmallVector<Region *, 4> Todo = {&R};
Tobias Grosser9737c7b2015-11-22 11:06:51 +00002023
2024 while (!Todo.empty()) {
2025 auto SubRegion = Todo.back();
2026 Todo.pop_back();
2027
2028 if (!SD.isNonAffineSubRegion(SubRegion, &getRegion())) {
2029 for (auto &Child : *SubRegion)
2030 Todo.push_back(Child.get());
2031 continue;
2032 }
2033 if (containsErrorBlock(SubRegion->getNode(), getRegion(), LI, DT))
2034 removeDomains(SubRegion->getEntry());
2035 }
2036
2037 for (auto BB : R.blocks())
2038 if (isErrorBlock(*BB, R, LI, DT))
2039 removeDomains(BB);
2040}
2041
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002042void Scop::buildDomains(Region *R) {
Johannes Doerfert96425c22015-08-30 21:13:53 +00002043
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002044 auto *EntryBB = R->getEntry();
2045 int LD = getRelativeLoopDepth(LI.getLoopFor(EntryBB));
2046 auto *S = isl_set_universe(isl_space_set_alloc(getIslCtx(), 0, LD + 1));
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002047
2048 Loop *L = LI.getLoopFor(EntryBB);
2049 while (LD-- >= 0) {
2050 S = addDomainDimId(S, LD + 1, L);
2051 L = L->getParentLoop();
2052 }
2053
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002054 DomainMap[EntryBB] = S;
Johannes Doerfert96425c22015-08-30 21:13:53 +00002055
Johannes Doerfert40fa56f2015-09-14 11:15:07 +00002056 if (SD.isNonAffineSubRegion(R, R))
2057 return;
2058
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002059 buildDomainsWithBranchConstraints(R);
2060 propagateDomainConstraints(R);
Tobias Grosser9737c7b2015-11-22 11:06:51 +00002061
2062 // Error blocks and blocks dominated by them have been assumed to never be
2063 // executed. Representing them in the Scop does not add any value. In fact,
2064 // it is likely to cause issues during construction of the ScopStmts. The
2065 // contents of error blocks have not been verfied to be expressible and
2066 // will cause problems when building up a ScopStmt for them.
2067 // Furthermore, basic blocks dominated by error blocks may reference
2068 // instructions in the error block which, if the error block is not modeled,
2069 // can themselves not be constructed properly.
2070 removeErrorBlockDomains();
Johannes Doerfert96425c22015-08-30 21:13:53 +00002071}
2072
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002073void Scop::buildDomainsWithBranchConstraints(Region *R) {
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002074 RegionInfo &RI = *R->getRegionInfo();
Johannes Doerfert96425c22015-08-30 21:13:53 +00002075
2076 // To create the domain for each block in R we iterate over all blocks and
2077 // subregions in R and propagate the conditions under which the current region
2078 // element is executed. To this end we iterate in reverse post order over R as
2079 // it ensures that we first visit all predecessors of a region node (either a
2080 // basic block or a subregion) before we visit the region node itself.
2081 // Initially, only the domain for the SCoP region entry block is set and from
2082 // there we propagate the current domain to all successors, however we add the
2083 // condition that the successor is actually executed next.
2084 // As we are only interested in non-loop carried constraints here we can
2085 // simply skip loop back edges.
2086
2087 ReversePostOrderTraversal<Region *> RTraversal(R);
2088 for (auto *RN : RTraversal) {
2089
2090 // Recurse for affine subregions but go on for basic blocks and non-affine
2091 // subregions.
2092 if (RN->isSubRegion()) {
2093 Region *SubRegion = RN->getNodeAs<Region>();
2094 if (!SD.isNonAffineSubRegion(SubRegion, &getRegion())) {
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002095 buildDomainsWithBranchConstraints(SubRegion);
Johannes Doerfert96425c22015-08-30 21:13:53 +00002096 continue;
2097 }
2098 }
2099
Tobias Grosserb76cd3c2015-11-11 08:42:20 +00002100 if (containsErrorBlock(RN, getRegion(), LI, DT))
Johannes Doerfertf85ad042015-11-08 20:16:39 +00002101 HasErrorBlock = true;
Johannes Doerfertf5673802015-10-01 23:48:18 +00002102
Johannes Doerfert96425c22015-08-30 21:13:53 +00002103 BasicBlock *BB = getRegionNodeBasicBlock(RN);
Johannes Doerfert90db75e2015-09-10 17:51:27 +00002104 TerminatorInst *TI = BB->getTerminator();
2105
Tobias Grosserb76cd3c2015-11-11 08:42:20 +00002106 if (isa<UnreachableInst>(TI))
2107 continue;
2108
Johannes Doerfertf5673802015-10-01 23:48:18 +00002109 isl_set *Domain = DomainMap.lookup(BB);
2110 if (!Domain) {
2111 DEBUG(dbgs() << "\tSkip: " << BB->getName()
2112 << ", it is only reachable from error blocks.\n");
Johannes Doerfert90db75e2015-09-10 17:51:27 +00002113 continue;
2114 }
2115
Johannes Doerfert96425c22015-08-30 21:13:53 +00002116 DEBUG(dbgs() << "\tVisit: " << BB->getName() << " : " << Domain << "\n");
Johannes Doerfert96425c22015-08-30 21:13:53 +00002117
2118 Loop *BBLoop = getRegionNodeLoop(RN, LI);
2119 int BBLoopDepth = getRelativeLoopDepth(BBLoop);
2120
2121 // Build the condition sets for the successor nodes of the current region
2122 // node. If it is a non-affine subregion we will always execute the single
2123 // exit node, hence the single entry node domain is the condition set. For
2124 // basic blocks we use the helper function buildConditionSets.
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002125 SmallVector<isl_set *, 8> ConditionSets;
Johannes Doerfert96425c22015-08-30 21:13:53 +00002126 if (RN->isSubRegion())
2127 ConditionSets.push_back(isl_set_copy(Domain));
2128 else
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002129 buildConditionSets(*this, TI, BBLoop, Domain, ConditionSets);
Johannes Doerfert96425c22015-08-30 21:13:53 +00002130
2131 // Now iterate over the successors and set their initial domain based on
2132 // their condition set. We skip back edges here and have to be careful when
2133 // we leave a loop not to keep constraints over a dimension that doesn't
2134 // exist anymore.
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002135 assert(RN->isSubRegion() || TI->getNumSuccessors() == ConditionSets.size());
Johannes Doerfert96425c22015-08-30 21:13:53 +00002136 for (unsigned u = 0, e = ConditionSets.size(); u < e; u++) {
Johannes Doerfert96425c22015-08-30 21:13:53 +00002137 isl_set *CondSet = ConditionSets[u];
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002138 BasicBlock *SuccBB = getRegionNodeSuccessor(RN, TI, u);
Johannes Doerfert96425c22015-08-30 21:13:53 +00002139
2140 // Skip back edges.
2141 if (DT.dominates(SuccBB, BB)) {
2142 isl_set_free(CondSet);
2143 continue;
2144 }
2145
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002146 // Do not adjust the number of dimensions if we enter a boxed loop or are
2147 // in a non-affine subregion or if the surrounding loop stays the same.
Johannes Doerfert96425c22015-08-30 21:13:53 +00002148 Loop *SuccBBLoop = LI.getLoopFor(SuccBB);
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002149 Region *SuccRegion = RI.getRegionFor(SuccBB);
Johannes Doerfert634909c2015-10-04 14:57:41 +00002150 if (SD.isNonAffineSubRegion(SuccRegion, &getRegion()))
2151 while (SuccBBLoop && SuccRegion->contains(SuccBBLoop))
2152 SuccBBLoop = SuccBBLoop->getParentLoop();
2153
2154 if (BBLoop != SuccBBLoop) {
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002155
2156 // Check if the edge to SuccBB is a loop entry or exit edge. If so
2157 // adjust the dimensionality accordingly. Lastly, if we leave a loop
2158 // and enter a new one we need to drop the old constraints.
2159 int SuccBBLoopDepth = getRelativeLoopDepth(SuccBBLoop);
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002160 unsigned LoopDepthDiff = std::abs(BBLoopDepth - SuccBBLoopDepth);
Tobias Grosser2df884f2015-09-01 18:17:41 +00002161 if (BBLoopDepth > SuccBBLoopDepth) {
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002162 CondSet = isl_set_project_out(CondSet, isl_dim_set,
2163 isl_set_n_dim(CondSet) - LoopDepthDiff,
2164 LoopDepthDiff);
Tobias Grosser2df884f2015-09-01 18:17:41 +00002165 } else if (SuccBBLoopDepth > BBLoopDepth) {
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002166 assert(LoopDepthDiff == 1);
Johannes Doerfertf08bd002015-08-31 13:56:32 +00002167 CondSet = isl_set_add_dims(CondSet, isl_dim_set, 1);
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002168 CondSet = addDomainDimId(CondSet, SuccBBLoopDepth, SuccBBLoop);
Tobias Grosser2df884f2015-09-01 18:17:41 +00002169 } else if (BBLoopDepth >= 0) {
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002170 assert(LoopDepthDiff <= 1);
Tobias Grosser2df884f2015-09-01 18:17:41 +00002171 CondSet = isl_set_project_out(CondSet, isl_dim_set, BBLoopDepth, 1);
2172 CondSet = isl_set_add_dims(CondSet, isl_dim_set, 1);
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002173 CondSet = addDomainDimId(CondSet, SuccBBLoopDepth, SuccBBLoop);
Tobias Grosser2df884f2015-09-01 18:17:41 +00002174 }
Johannes Doerfert96425c22015-08-30 21:13:53 +00002175 }
2176
2177 // Set the domain for the successor or merge it with an existing domain in
2178 // case there are multiple paths (without loop back edges) to the
2179 // successor block.
2180 isl_set *&SuccDomain = DomainMap[SuccBB];
2181 if (!SuccDomain)
2182 SuccDomain = CondSet;
2183 else
2184 SuccDomain = isl_set_union(SuccDomain, CondSet);
2185
2186 SuccDomain = isl_set_coalesce(SuccDomain);
Johannes Doerfert634909c2015-10-04 14:57:41 +00002187 DEBUG(dbgs() << "\tSet SuccBB: " << SuccBB->getName() << " : "
2188 << SuccDomain << "\n");
Johannes Doerfert96425c22015-08-30 21:13:53 +00002189 }
2190 }
2191}
2192
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002193/// @brief Return the domain for @p BB wrt @p DomainMap.
2194///
2195/// This helper function will lookup @p BB in @p DomainMap but also handle the
2196/// case where @p BB is contained in a non-affine subregion using the region
2197/// tree obtained by @p RI.
2198static __isl_give isl_set *
2199getDomainForBlock(BasicBlock *BB, DenseMap<BasicBlock *, isl_set *> &DomainMap,
2200 RegionInfo &RI) {
2201 auto DIt = DomainMap.find(BB);
2202 if (DIt != DomainMap.end())
2203 return isl_set_copy(DIt->getSecond());
2204
2205 Region *R = RI.getRegionFor(BB);
2206 while (R->getEntry() == BB)
2207 R = R->getParent();
2208 return getDomainForBlock(R->getEntry(), DomainMap, RI);
2209}
2210
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002211void Scop::propagateDomainConstraints(Region *R) {
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002212 // Iterate over the region R and propagate the domain constrains from the
2213 // predecessors to the current node. In contrast to the
2214 // buildDomainsWithBranchConstraints function, this one will pull the domain
2215 // information from the predecessors instead of pushing it to the successors.
2216 // Additionally, we assume the domains to be already present in the domain
2217 // map here. However, we iterate again in reverse post order so we know all
2218 // predecessors have been visited before a block or non-affine subregion is
2219 // visited.
2220
2221 // The set of boxed loops (loops in non-affine subregions) for this SCoP.
2222 auto &BoxedLoops = *SD.getBoxedLoops(&getRegion());
2223
2224 ReversePostOrderTraversal<Region *> RTraversal(R);
2225 for (auto *RN : RTraversal) {
2226
2227 // Recurse for affine subregions but go on for basic blocks and non-affine
2228 // subregions.
2229 if (RN->isSubRegion()) {
2230 Region *SubRegion = RN->getNodeAs<Region>();
2231 if (!SD.isNonAffineSubRegion(SubRegion, &getRegion())) {
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002232 propagateDomainConstraints(SubRegion);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002233 continue;
2234 }
2235 }
2236
Johannes Doerfertf5673802015-10-01 23:48:18 +00002237 // Get the domain for the current block and check if it was initialized or
2238 // not. The only way it was not is if this block is only reachable via error
2239 // blocks, thus will not be executed under the assumptions we make. Such
2240 // blocks have to be skipped as their predecessors might not have domains
2241 // either. It would not benefit us to compute the domain anyway, only the
2242 // domains of the error blocks that are reachable from non-error blocks
2243 // are needed to generate assumptions.
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002244 BasicBlock *BB = getRegionNodeBasicBlock(RN);
Johannes Doerfertf5673802015-10-01 23:48:18 +00002245 isl_set *&Domain = DomainMap[BB];
2246 if (!Domain) {
2247 DEBUG(dbgs() << "\tSkip: " << BB->getName()
2248 << ", it is only reachable from error blocks.\n");
2249 DomainMap.erase(BB);
2250 continue;
2251 }
2252 DEBUG(dbgs() << "\tVisit: " << BB->getName() << " : " << Domain << "\n");
2253
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002254 Loop *BBLoop = getRegionNodeLoop(RN, LI);
2255 int BBLoopDepth = getRelativeLoopDepth(BBLoop);
2256
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002257 isl_set *PredDom = isl_set_empty(isl_set_get_space(Domain));
2258 for (auto *PredBB : predecessors(BB)) {
2259
2260 // Skip backedges
2261 if (DT.dominates(BB, PredBB))
2262 continue;
2263
2264 isl_set *PredBBDom = nullptr;
2265
2266 // Handle the SCoP entry block with its outside predecessors.
2267 if (!getRegion().contains(PredBB))
2268 PredBBDom = isl_set_universe(isl_set_get_space(PredDom));
2269
2270 if (!PredBBDom) {
2271 // Determine the loop depth of the predecessor and adjust its domain to
2272 // the domain of the current block. This can mean we have to:
2273 // o) Drop a dimension if this block is the exit of a loop, not the
2274 // header of a new loop and the predecessor was part of the loop.
2275 // o) Add an unconstrainted new dimension if this block is the header
2276 // of a loop and the predecessor is not part of it.
2277 // o) Drop the information about the innermost loop dimension when the
2278 // predecessor and the current block are surrounded by different
2279 // loops in the same depth.
2280 PredBBDom = getDomainForBlock(PredBB, DomainMap, *R->getRegionInfo());
2281 Loop *PredBBLoop = LI.getLoopFor(PredBB);
2282 while (BoxedLoops.count(PredBBLoop))
2283 PredBBLoop = PredBBLoop->getParentLoop();
2284
2285 int PredBBLoopDepth = getRelativeLoopDepth(PredBBLoop);
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002286 unsigned LoopDepthDiff = std::abs(BBLoopDepth - PredBBLoopDepth);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002287 if (BBLoopDepth < PredBBLoopDepth)
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002288 PredBBDom = isl_set_project_out(
2289 PredBBDom, isl_dim_set, isl_set_n_dim(PredBBDom) - LoopDepthDiff,
2290 LoopDepthDiff);
2291 else if (PredBBLoopDepth < BBLoopDepth) {
2292 assert(LoopDepthDiff == 1);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002293 PredBBDom = isl_set_add_dims(PredBBDom, isl_dim_set, 1);
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002294 } else if (BBLoop != PredBBLoop && BBLoopDepth >= 0) {
2295 assert(LoopDepthDiff <= 1);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002296 PredBBDom = isl_set_drop_constraints_involving_dims(
2297 PredBBDom, isl_dim_set, BBLoopDepth, 1);
Johannes Doerfertf4fa9872015-09-10 15:53:59 +00002298 }
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002299 }
2300
2301 PredDom = isl_set_union(PredDom, PredBBDom);
2302 }
2303
2304 // Under the union of all predecessor conditions we can reach this block.
Johannes Doerfertb20f1512015-09-15 22:11:49 +00002305 Domain = isl_set_coalesce(isl_set_intersect(Domain, PredDom));
Johannes Doerfert90db75e2015-09-10 17:51:27 +00002306
Johannes Doerfertf32f5f22015-09-28 01:30:37 +00002307 if (BBLoop && BBLoop->getHeader() == BB && getRegion().contains(BBLoop))
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002308 addLoopBoundsToHeaderDomain(BBLoop);
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002309
Johannes Doerfert90db75e2015-09-10 17:51:27 +00002310 // Add assumptions for error blocks.
Johannes Doerfert08d90a32015-10-07 20:32:43 +00002311 if (containsErrorBlock(RN, getRegion(), LI, DT)) {
Johannes Doerfert90db75e2015-09-10 17:51:27 +00002312 IsOptimized = true;
2313 isl_set *DomPar = isl_set_params(isl_set_copy(Domain));
Johannes Doerfertd84493e2015-11-12 02:33:38 +00002314 addAssumption(ERRORBLOCK, isl_set_complement(DomPar),
2315 BB->getTerminator()->getDebugLoc());
Johannes Doerfert90db75e2015-09-10 17:51:27 +00002316 }
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002317 }
2318}
2319
2320/// @brief Create a map from SetSpace -> SetSpace where the dimensions @p Dim
2321/// is incremented by one and all other dimensions are equal, e.g.,
2322/// [i0, i1, i2, i3] -> [i0, i1, i2 + 1, i3]
2323/// if @p Dim is 2 and @p SetSpace has 4 dimensions.
2324static __isl_give isl_map *
2325createNextIterationMap(__isl_take isl_space *SetSpace, unsigned Dim) {
2326 auto *MapSpace = isl_space_map_from_set(SetSpace);
2327 auto *NextIterationMap = isl_map_universe(isl_space_copy(MapSpace));
2328 for (unsigned u = 0; u < isl_map_n_in(NextIterationMap); u++)
2329 if (u != Dim)
2330 NextIterationMap =
2331 isl_map_equate(NextIterationMap, isl_dim_in, u, isl_dim_out, u);
2332 auto *C = isl_constraint_alloc_equality(isl_local_space_from_space(MapSpace));
2333 C = isl_constraint_set_constant_si(C, 1);
2334 C = isl_constraint_set_coefficient_si(C, isl_dim_in, Dim, 1);
2335 C = isl_constraint_set_coefficient_si(C, isl_dim_out, Dim, -1);
2336 NextIterationMap = isl_map_add_constraint(NextIterationMap, C);
2337 return NextIterationMap;
2338}
2339
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002340void Scop::addLoopBoundsToHeaderDomain(Loop *L) {
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002341 int LoopDepth = getRelativeLoopDepth(L);
2342 assert(LoopDepth >= 0 && "Loop in region should have at least depth one");
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002343
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002344 BasicBlock *HeaderBB = L->getHeader();
2345 assert(DomainMap.count(HeaderBB));
2346 isl_set *&HeaderBBDom = DomainMap[HeaderBB];
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002347
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002348 isl_map *NextIterationMap =
2349 createNextIterationMap(isl_set_get_space(HeaderBBDom), LoopDepth);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002350
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002351 isl_set *UnionBackedgeCondition =
2352 isl_set_empty(isl_set_get_space(HeaderBBDom));
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002353
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002354 SmallVector<llvm::BasicBlock *, 4> LatchBlocks;
2355 L->getLoopLatches(LatchBlocks);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002356
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002357 for (BasicBlock *LatchBB : LatchBlocks) {
Johannes Doerfertf5673802015-10-01 23:48:18 +00002358
2359 // If the latch is only reachable via error statements we skip it.
2360 isl_set *LatchBBDom = DomainMap.lookup(LatchBB);
2361 if (!LatchBBDom)
2362 continue;
2363
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002364 isl_set *BackedgeCondition = nullptr;
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002365
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002366 TerminatorInst *TI = LatchBB->getTerminator();
2367 BranchInst *BI = dyn_cast<BranchInst>(TI);
2368 if (BI && BI->isUnconditional())
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002369 BackedgeCondition = isl_set_copy(LatchBBDom);
2370 else {
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002371 SmallVector<isl_set *, 8> ConditionSets;
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002372 int idx = BI->getSuccessor(0) != HeaderBB;
Johannes Doerfert9a132f32015-09-28 09:33:22 +00002373 buildConditionSets(*this, TI, L, LatchBBDom, ConditionSets);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002374
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002375 // Free the non back edge condition set as we do not need it.
2376 isl_set_free(ConditionSets[1 - idx]);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002377
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002378 BackedgeCondition = ConditionSets[idx];
Johannes Doerfert06c57b52015-09-20 15:00:20 +00002379 }
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002380
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002381 int LatchLoopDepth = getRelativeLoopDepth(LI.getLoopFor(LatchBB));
2382 assert(LatchLoopDepth >= LoopDepth);
2383 BackedgeCondition =
2384 isl_set_project_out(BackedgeCondition, isl_dim_set, LoopDepth + 1,
2385 LatchLoopDepth - LoopDepth);
2386 UnionBackedgeCondition =
2387 isl_set_union(UnionBackedgeCondition, BackedgeCondition);
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002388 }
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002389
2390 isl_map *ForwardMap = isl_map_lex_le(isl_set_get_space(HeaderBBDom));
2391 for (int i = 0; i < LoopDepth; i++)
2392 ForwardMap = isl_map_equate(ForwardMap, isl_dim_in, i, isl_dim_out, i);
2393
2394 isl_set *UnionBackedgeConditionComplement =
2395 isl_set_complement(UnionBackedgeCondition);
2396 UnionBackedgeConditionComplement = isl_set_lower_bound_si(
2397 UnionBackedgeConditionComplement, isl_dim_set, LoopDepth, 0);
2398 UnionBackedgeConditionComplement =
2399 isl_set_apply(UnionBackedgeConditionComplement, ForwardMap);
2400 HeaderBBDom = isl_set_subtract(HeaderBBDom, UnionBackedgeConditionComplement);
2401 HeaderBBDom = isl_set_apply(HeaderBBDom, NextIterationMap);
2402
2403 auto Parts = partitionSetParts(HeaderBBDom, LoopDepth);
2404 HeaderBBDom = Parts.second;
2405
Johannes Doerfert6a72a2a2015-09-20 16:59:23 +00002406 // Check if there is a <nsw> tagged AddRec for this loop and if so do not add
2407 // the bounded assumptions to the context as they are already implied by the
2408 // <nsw> tag.
2409 if (Affinator.hasNSWAddRecForLoop(L)) {
2410 isl_set_free(Parts.first);
2411 return;
2412 }
2413
Johannes Doerfertf2cc86e2015-09-20 16:15:32 +00002414 isl_set *UnboundedCtx = isl_set_params(Parts.first);
2415 isl_set *BoundedCtx = isl_set_complement(UnboundedCtx);
Johannes Doerfertd84493e2015-11-12 02:33:38 +00002416 addAssumption(INFINITELOOP, BoundedCtx,
2417 HeaderBB->getTerminator()->getDebugLoc());
Johannes Doerfert5b9ff8b2015-09-10 13:00:06 +00002418}
2419
Johannes Doerfert120de4b2015-08-20 18:30:08 +00002420void Scop::buildAliasChecks(AliasAnalysis &AA) {
2421 if (!PollyUseRuntimeAliasChecks)
2422 return;
2423
2424 if (buildAliasGroups(AA))
2425 return;
2426
2427 // If a problem occurs while building the alias groups we need to delete
2428 // this SCoP and pretend it wasn't valid in the first place. To this end
2429 // we make the assumed context infeasible.
Johannes Doerfertd84493e2015-11-12 02:33:38 +00002430 addAssumption(ALIASING, isl_set_empty(getParamSpace()), DebugLoc());
Johannes Doerfert120de4b2015-08-20 18:30:08 +00002431
2432 DEBUG(dbgs() << "\n\nNOTE: Run time checks for " << getNameStr()
2433 << " could not be created as the number of parameters involved "
2434 "is too high. The SCoP will be "
2435 "dismissed.\nUse:\n\t--polly-rtc-max-parameters=X\nto adjust "
2436 "the maximal number of parameters but be advised that the "
2437 "compile time might increase exponentially.\n\n");
2438}
2439
Johannes Doerfert9143d672014-09-27 11:02:39 +00002440bool Scop::buildAliasGroups(AliasAnalysis &AA) {
Johannes Doerfertb164c792014-09-18 11:17:17 +00002441 // To create sound alias checks we perform the following steps:
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00002442 // o) Use the alias analysis and an alias set tracker to build alias sets
Johannes Doerfertb164c792014-09-18 11:17:17 +00002443 // for all memory accesses inside the SCoP.
2444 // o) For each alias set we then map the aliasing pointers back to the
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00002445 // memory accesses we know, thus obtain groups of memory accesses which
Johannes Doerfertb164c792014-09-18 11:17:17 +00002446 // might alias.
Johannes Doerferteeab05a2014-10-01 12:42:37 +00002447 // o) We divide each group based on the domains of the minimal/maximal
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00002448 // accesses. That means two minimal/maximal accesses are only in a group
Johannes Doerferteeab05a2014-10-01 12:42:37 +00002449 // if their access domains intersect, otherwise they are in different
2450 // ones.
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002451 // o) We partition each group into read only and non read only accesses.
Johannes Doerfert6cad9c42015-02-24 16:00:29 +00002452 // o) For each group with more than one base pointer we then compute minimal
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002453 // and maximal accesses to each array of a group in read only and non
2454 // read only partitions separately.
Johannes Doerfertb164c792014-09-18 11:17:17 +00002455 using AliasGroupTy = SmallVector<MemoryAccess *, 4>;
2456
2457 AliasSetTracker AST(AA);
2458
2459 DenseMap<Value *, MemoryAccess *> PtrToAcc;
Johannes Doerfert13771732014-10-01 12:40:46 +00002460 DenseSet<Value *> HasWriteAccess;
Tobias Grosser7c3bad52015-05-27 05:16:57 +00002461 for (ScopStmt &Stmt : *this) {
Johannes Doerfertf1ee2622014-10-06 17:43:00 +00002462
2463 // Skip statements with an empty domain as they will never be executed.
Tobias Grosser7c3bad52015-05-27 05:16:57 +00002464 isl_set *StmtDomain = Stmt.getDomain();
Johannes Doerfertf1ee2622014-10-06 17:43:00 +00002465 bool StmtDomainEmpty = isl_set_is_empty(StmtDomain);
2466 isl_set_free(StmtDomain);
2467 if (StmtDomainEmpty)
2468 continue;
2469
Tobias Grosser7c3bad52015-05-27 05:16:57 +00002470 for (MemoryAccess *MA : Stmt) {
Michael Kruse8d0b7342015-09-25 21:21:00 +00002471 if (MA->isImplicit())
Johannes Doerfertb164c792014-09-18 11:17:17 +00002472 continue;
Johannes Doerfert13771732014-10-01 12:40:46 +00002473 if (!MA->isRead())
2474 HasWriteAccess.insert(MA->getBaseAddr());
Johannes Doerfertb164c792014-09-18 11:17:17 +00002475 Instruction *Acc = MA->getAccessInstruction();
2476 PtrToAcc[getPointerOperand(*Acc)] = MA;
2477 AST.add(Acc);
2478 }
2479 }
2480
2481 SmallVector<AliasGroupTy, 4> AliasGroups;
2482 for (AliasSet &AS : AST) {
Johannes Doerfert74f68692014-10-08 02:23:48 +00002483 if (AS.isMustAlias() || AS.isForwardingAliasSet())
Johannes Doerfertb164c792014-09-18 11:17:17 +00002484 continue;
2485 AliasGroupTy AG;
2486 for (auto PR : AS)
2487 AG.push_back(PtrToAcc[PR.getValue()]);
2488 assert(AG.size() > 1 &&
2489 "Alias groups should contain at least two accesses");
2490 AliasGroups.push_back(std::move(AG));
2491 }
2492
Johannes Doerferteeab05a2014-10-01 12:42:37 +00002493 // Split the alias groups based on their domain.
2494 for (unsigned u = 0; u < AliasGroups.size(); u++) {
2495 AliasGroupTy NewAG;
2496 AliasGroupTy &AG = AliasGroups[u];
2497 AliasGroupTy::iterator AGI = AG.begin();
2498 isl_set *AGDomain = getAccessDomain(*AGI);
2499 while (AGI != AG.end()) {
2500 MemoryAccess *MA = *AGI;
2501 isl_set *MADomain = getAccessDomain(MA);
2502 if (isl_set_is_disjoint(AGDomain, MADomain)) {
2503 NewAG.push_back(MA);
2504 AGI = AG.erase(AGI);
2505 isl_set_free(MADomain);
2506 } else {
2507 AGDomain = isl_set_union(AGDomain, MADomain);
2508 AGI++;
2509 }
2510 }
2511 if (NewAG.size() > 1)
2512 AliasGroups.push_back(std::move(NewAG));
2513 isl_set_free(AGDomain);
2514 }
2515
Johannes Doerfert0cf4e0a2015-11-12 02:32:51 +00002516 auto &F = *getRegion().getEntry()->getParent();
Tobias Grosserf4c24b22015-04-05 13:11:54 +00002517 MapVector<const Value *, SmallPtrSet<MemoryAccess *, 8>> ReadOnlyPairs;
Johannes Doerfert13771732014-10-01 12:40:46 +00002518 SmallPtrSet<const Value *, 4> NonReadOnlyBaseValues;
2519 for (AliasGroupTy &AG : AliasGroups) {
2520 NonReadOnlyBaseValues.clear();
2521 ReadOnlyPairs.clear();
2522
Johannes Doerferteeab05a2014-10-01 12:42:37 +00002523 if (AG.size() < 2) {
2524 AG.clear();
2525 continue;
2526 }
2527
Johannes Doerfert13771732014-10-01 12:40:46 +00002528 for (auto II = AG.begin(); II != AG.end();) {
Johannes Doerfert0cf4e0a2015-11-12 02:32:51 +00002529 emitOptimizationRemarkAnalysis(
2530 F.getContext(), DEBUG_TYPE, F,
2531 (*II)->getAccessInstruction()->getDebugLoc(),
2532 "Possibly aliasing pointer, use restrict keyword.");
2533
Johannes Doerfert13771732014-10-01 12:40:46 +00002534 Value *BaseAddr = (*II)->getBaseAddr();
2535 if (HasWriteAccess.count(BaseAddr)) {
2536 NonReadOnlyBaseValues.insert(BaseAddr);
2537 II++;
2538 } else {
2539 ReadOnlyPairs[BaseAddr].insert(*II);
2540 II = AG.erase(II);
2541 }
2542 }
2543
2544 // If we don't have read only pointers check if there are at least two
2545 // non read only pointers, otherwise clear the alias group.
Tobias Grosserbb853c22015-07-25 12:31:03 +00002546 if (ReadOnlyPairs.empty() && NonReadOnlyBaseValues.size() <= 1) {
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002547 AG.clear();
Johannes Doerfert13771732014-10-01 12:40:46 +00002548 continue;
2549 }
2550
2551 // If we don't have non read only pointers clear the alias group.
2552 if (NonReadOnlyBaseValues.empty()) {
2553 AG.clear();
2554 continue;
2555 }
2556
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002557 // Calculate minimal and maximal accesses for non read only accesses.
Johannes Doerfert210b09a2015-07-26 13:14:38 +00002558 MinMaxAliasGroups.emplace_back();
2559 MinMaxVectorPairTy &pair = MinMaxAliasGroups.back();
2560 MinMaxVectorTy &MinMaxAccessesNonReadOnly = pair.first;
2561 MinMaxVectorTy &MinMaxAccessesReadOnly = pair.second;
2562 MinMaxAccessesNonReadOnly.reserve(AG.size());
Johannes Doerfertb164c792014-09-18 11:17:17 +00002563
2564 isl_union_map *Accesses = isl_union_map_empty(getParamSpace());
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002565
2566 // AG contains only non read only accesses.
Johannes Doerfertb164c792014-09-18 11:17:17 +00002567 for (MemoryAccess *MA : AG)
2568 Accesses = isl_union_map_add_map(Accesses, MA->getAccessRelation());
Johannes Doerfertb164c792014-09-18 11:17:17 +00002569
Tobias Grosserdaaed0e2015-08-20 21:29:26 +00002570 bool Valid = calculateMinMaxAccess(Accesses, getDomains(),
2571 MinMaxAccessesNonReadOnly);
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002572
2573 // Bail out if the number of values we need to compare is too large.
2574 // This is important as the number of comparisions grows quadratically with
2575 // the number of values we need to compare.
Johannes Doerfert210b09a2015-07-26 13:14:38 +00002576 if (!Valid || (MinMaxAccessesNonReadOnly.size() + !ReadOnlyPairs.empty() >
2577 RunTimeChecksMaxArraysPerGroup))
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002578 return false;
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002579
2580 // Calculate minimal and maximal accesses for read only accesses.
Johannes Doerfert210b09a2015-07-26 13:14:38 +00002581 MinMaxAccessesReadOnly.reserve(ReadOnlyPairs.size());
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002582 Accesses = isl_union_map_empty(getParamSpace());
2583
2584 for (const auto &ReadOnlyPair : ReadOnlyPairs)
2585 for (MemoryAccess *MA : ReadOnlyPair.second)
2586 Accesses = isl_union_map_add_map(Accesses, MA->getAccessRelation());
2587
Tobias Grosserdaaed0e2015-08-20 21:29:26 +00002588 Valid =
2589 calculateMinMaxAccess(Accesses, getDomains(), MinMaxAccessesReadOnly);
Johannes Doerfert9143d672014-09-27 11:02:39 +00002590
2591 if (!Valid)
Tobias Grosser50d4e2e2015-03-28 14:50:32 +00002592 return false;
Johannes Doerfertb164c792014-09-18 11:17:17 +00002593 }
Johannes Doerfert9143d672014-09-27 11:02:39 +00002594
Tobias Grosser50d4e2e2015-03-28 14:50:32 +00002595 return true;
Johannes Doerfertb164c792014-09-18 11:17:17 +00002596}
2597
Johannes Doerfertdec27df2015-11-21 16:56:13 +00002598/// @brief Get the smallest loop that contains @p R but is not in @p R.
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002599static Loop *getLoopSurroundingRegion(Region &R, LoopInfo &LI) {
Johannes Doerfertdec27df2015-11-21 16:56:13 +00002600 // Start with the smallest loop containing the entry and expand that
2601 // loop until it contains all blocks in the region. If there is a loop
2602 // containing all blocks in the region check if it is itself contained
2603 // and if so take the parent loop as it will be the smallest containing
2604 // the region but not contained by it.
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002605 Loop *L = LI.getLoopFor(R.getEntry());
Johannes Doerfertdec27df2015-11-21 16:56:13 +00002606 while (L) {
2607 bool AllContained = true;
2608 for (auto *BB : R.blocks())
2609 AllContained &= L->contains(BB);
2610 if (AllContained)
2611 break;
2612 L = L->getParentLoop();
2613 }
2614
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002615 return L ? (R.contains(L) ? L->getParentLoop() : L) : nullptr;
2616}
2617
Johannes Doerfertf8206cf2015-04-12 22:58:40 +00002618static unsigned getMaxLoopDepthInRegion(const Region &R, LoopInfo &LI,
2619 ScopDetection &SD) {
2620
2621 const ScopDetection::BoxedLoopsSetTy *BoxedLoops = SD.getBoxedLoops(&R);
2622
Johannes Doerferte3da05a2014-11-01 00:12:13 +00002623 unsigned MinLD = INT_MAX, MaxLD = 0;
2624 for (BasicBlock *BB : R.blocks()) {
2625 if (Loop *L = LI.getLoopFor(BB)) {
David Peixottodc0a11c2015-01-13 18:31:55 +00002626 if (!R.contains(L))
2627 continue;
Johannes Doerfertf8206cf2015-04-12 22:58:40 +00002628 if (BoxedLoops && BoxedLoops->count(L))
2629 continue;
Johannes Doerferte3da05a2014-11-01 00:12:13 +00002630 unsigned LD = L->getLoopDepth();
2631 MinLD = std::min(MinLD, LD);
2632 MaxLD = std::max(MaxLD, LD);
2633 }
2634 }
2635
2636 // Handle the case that there is no loop in the SCoP first.
2637 if (MaxLD == 0)
2638 return 1;
2639
2640 assert(MinLD >= 1 && "Minimal loop depth should be at least one");
2641 assert(MaxLD >= MinLD &&
2642 "Maximal loop depth was smaller than mininaml loop depth?");
2643 return MaxLD - MinLD + 1;
2644}
2645
Johannes Doerfert478a7de2015-10-02 13:09:31 +00002646Scop::Scop(Region &R, AccFuncMapType &AccFuncMap, ScopDetection &SD,
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002647 ScalarEvolution &ScalarEvolution, DominatorTree &DT, LoopInfo &LI,
Johannes Doerfert96425c22015-08-30 21:13:53 +00002648 isl_ctx *Context, unsigned MaxLoopDepth)
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002649 : LI(LI), DT(DT), SE(&ScalarEvolution), SD(SD), R(R),
2650 AccFuncMap(AccFuncMap), IsOptimized(false),
Johannes Doerfertf85ad042015-11-08 20:16:39 +00002651 HasSingleExitEdge(R.getExitingBlock()), HasErrorBlock(false),
2652 MaxLoopDepth(MaxLoopDepth), IslCtx(Context), Context(nullptr),
2653 Affinator(this), AssumedContext(nullptr), BoundaryContext(nullptr),
2654 Schedule(nullptr) {}
Johannes Doerfertff9d1982015-02-24 12:00:50 +00002655
Johannes Doerfert2af10e22015-11-12 03:25:01 +00002656void Scop::init(AliasAnalysis &AA, AssumptionCache &AC) {
Tobias Grosser6be480c2011-11-08 15:41:13 +00002657 buildContext();
Johannes Doerfert2af10e22015-11-12 03:25:01 +00002658 addUserAssumptions(AC);
Johannes Doerfert697fdf82015-10-09 17:12:26 +00002659 buildInvariantEquivalenceClasses();
2660
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002661 buildDomains(&R);
Johannes Doerfert96425c22015-08-30 21:13:53 +00002662
Michael Krusecac948e2015-10-02 13:53:07 +00002663 // Remove empty and ignored statements.
Michael Kruseafe06702015-10-02 16:33:27 +00002664 // Exit early in case there are no executable statements left in this scop.
Michael Krusecac948e2015-10-02 13:53:07 +00002665 simplifySCoP(true);
Michael Kruseafe06702015-10-02 16:33:27 +00002666 if (Stmts.empty())
2667 return;
Tobias Grosser75805372011-04-29 06:27:02 +00002668
Michael Krusecac948e2015-10-02 13:53:07 +00002669 // The ScopStmts now have enough information to initialize themselves.
2670 for (ScopStmt &Stmt : Stmts)
2671 Stmt.init();
2672
2673 DenseMap<Loop *, std::pair<isl_schedule *, unsigned>> LoopSchedules;
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002674 Loop *L = getLoopSurroundingRegion(R, LI);
2675 LoopSchedules[L];
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00002676 buildSchedule(&R, LoopSchedules);
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00002677 Schedule = LoopSchedules[L].first;
Tobias Grosser75805372011-04-29 06:27:02 +00002678
Tobias Grosser8286b832015-11-02 11:29:32 +00002679 if (isl_set_is_empty(AssumedContext))
2680 return;
2681
2682 updateAccessDimensionality();
Tobias Grosser8cae72f2011-11-08 15:41:08 +00002683 realignParams();
Tobias Grosser18daaca2012-05-22 10:47:27 +00002684 addParameterBounds();
Tobias Grosser8a9c2352015-08-16 10:19:29 +00002685 addUserContext();
Johannes Doerfert883f8c12015-09-15 22:52:53 +00002686 buildBoundaryContext();
2687 simplifyContexts();
Johannes Doerfert120de4b2015-08-20 18:30:08 +00002688 buildAliasChecks(AA);
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002689
2690 hoistInvariantLoads();
Michael Krusecac948e2015-10-02 13:53:07 +00002691 simplifySCoP(false);
Tobias Grosser75805372011-04-29 06:27:02 +00002692}
2693
2694Scop::~Scop() {
2695 isl_set_free(Context);
Tobias Grossere86109f2013-10-29 21:05:49 +00002696 isl_set_free(AssumedContext);
Johannes Doerfert883f8c12015-09-15 22:52:53 +00002697 isl_set_free(BoundaryContext);
Tobias Grosser808cd692015-07-14 09:33:13 +00002698 isl_schedule_free(Schedule);
Tobias Grosser75805372011-04-29 06:27:02 +00002699
Johannes Doerfert96425c22015-08-30 21:13:53 +00002700 for (auto It : DomainMap)
2701 isl_set_free(It.second);
2702
Johannes Doerfertb164c792014-09-18 11:17:17 +00002703 // Free the alias groups
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002704 for (MinMaxVectorPairTy &MinMaxAccessPair : MinMaxAliasGroups) {
Johannes Doerfert210b09a2015-07-26 13:14:38 +00002705 for (MinMaxAccessTy &MMA : MinMaxAccessPair.first) {
Johannes Doerfertb164c792014-09-18 11:17:17 +00002706 isl_pw_multi_aff_free(MMA.first);
2707 isl_pw_multi_aff_free(MMA.second);
2708 }
Johannes Doerfert210b09a2015-07-26 13:14:38 +00002709 for (MinMaxAccessTy &MMA : MinMaxAccessPair.second) {
Johannes Doerfert338b42c2015-07-23 17:04:54 +00002710 isl_pw_multi_aff_free(MMA.first);
2711 isl_pw_multi_aff_free(MMA.second);
2712 }
Johannes Doerfertb164c792014-09-18 11:17:17 +00002713 }
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002714
Johannes Doerfert697fdf82015-10-09 17:12:26 +00002715 for (const auto &IAClass : InvariantEquivClasses)
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00002716 isl_set_free(std::get<2>(IAClass));
Tobias Grosser75805372011-04-29 06:27:02 +00002717}
2718
Tobias Grosser99c70dd2015-09-26 08:55:54 +00002719void Scop::updateAccessDimensionality() {
2720 for (auto &Stmt : *this)
2721 for (auto &Access : Stmt)
2722 Access->updateDimensionality();
2723}
2724
Michael Krusecac948e2015-10-02 13:53:07 +00002725void Scop::simplifySCoP(bool RemoveIgnoredStmts) {
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002726 for (auto StmtIt = Stmts.begin(), StmtEnd = Stmts.end(); StmtIt != StmtEnd;) {
2727 ScopStmt &Stmt = *StmtIt;
Michael Krusecac948e2015-10-02 13:53:07 +00002728 RegionNode *RN = Stmt.isRegionStmt()
2729 ? Stmt.getRegion()->getNode()
2730 : getRegion().getBBNode(Stmt.getBasicBlock());
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002731
Johannes Doerferteca9e892015-11-03 16:54:49 +00002732 bool RemoveStmt = StmtIt->isEmpty();
2733 if (!RemoveStmt)
2734 RemoveStmt = isl_set_is_empty(DomainMap[getRegionNodeBasicBlock(RN)]);
2735 if (!RemoveStmt)
2736 RemoveStmt = (RemoveIgnoredStmts && isIgnored(RN));
Johannes Doerfertf17a78e2015-10-04 15:00:05 +00002737
Johannes Doerferteca9e892015-11-03 16:54:49 +00002738 // Remove read only statements only after invariant loop hoisting.
2739 if (!RemoveStmt && !RemoveIgnoredStmts) {
2740 bool OnlyRead = true;
2741 for (MemoryAccess *MA : Stmt) {
2742 if (MA->isRead())
2743 continue;
2744
2745 OnlyRead = false;
2746 break;
2747 }
2748
2749 RemoveStmt = OnlyRead;
2750 }
2751
2752 if (RemoveStmt) {
Michael Krusecac948e2015-10-02 13:53:07 +00002753 // Remove the statement because it is unnecessary.
2754 if (Stmt.isRegionStmt())
2755 for (BasicBlock *BB : Stmt.getRegion()->blocks())
2756 StmtMap.erase(BB);
2757 else
2758 StmtMap.erase(Stmt.getBasicBlock());
2759
2760 StmtIt = Stmts.erase(StmtIt);
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002761 continue;
2762 }
2763
Michael Krusecac948e2015-10-02 13:53:07 +00002764 StmtIt++;
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002765 }
2766}
2767
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00002768const InvariantEquivClassTy *Scop::lookupInvariantEquivClass(Value *Val) const {
2769 LoadInst *LInst = dyn_cast<LoadInst>(Val);
2770 if (!LInst)
2771 return nullptr;
2772
2773 if (Value *Rep = InvEquivClassVMap.lookup(LInst))
2774 LInst = cast<LoadInst>(Rep);
2775
2776 const SCEV *PointerSCEV = SE->getSCEV(LInst->getPointerOperand());
2777 for (auto &IAClass : InvariantEquivClasses)
2778 if (PointerSCEV == std::get<0>(IAClass))
2779 return &IAClass;
2780
2781 return nullptr;
2782}
2783
2784void Scop::addInvariantLoads(ScopStmt &Stmt, MemoryAccessList &InvMAs) {
2785
2786 // Get the context under which the statement is executed.
2787 isl_set *DomainCtx = isl_set_params(Stmt.getDomain());
2788 DomainCtx = isl_set_remove_redundancies(DomainCtx);
2789 DomainCtx = isl_set_detect_equalities(DomainCtx);
2790 DomainCtx = isl_set_coalesce(DomainCtx);
2791
2792 // Project out all parameters that relate to loads in the statement. Otherwise
2793 // we could have cyclic dependences on the constraints under which the
2794 // hoisted loads are executed and we could not determine an order in which to
2795 // pre-load them. This happens because not only lower bounds are part of the
2796 // domain but also upper bounds.
2797 for (MemoryAccess *MA : InvMAs) {
2798 Instruction *AccInst = MA->getAccessInstruction();
2799 if (SE->isSCEVable(AccInst->getType())) {
Johannes Doerfert44483c52015-11-07 19:45:27 +00002800 SetVector<Value *> Values;
2801 for (const SCEV *Parameter : Parameters) {
2802 Values.clear();
2803 findValues(Parameter, Values);
2804 if (!Values.count(AccInst))
2805 continue;
2806
2807 if (isl_id *ParamId = getIdForParam(Parameter)) {
2808 int Dim = isl_set_find_dim_by_id(DomainCtx, isl_dim_param, ParamId);
2809 DomainCtx = isl_set_eliminate(DomainCtx, isl_dim_param, Dim, 1);
2810 isl_id_free(ParamId);
2811 }
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00002812 }
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00002813 }
2814 }
2815
2816 for (MemoryAccess *MA : InvMAs) {
2817 // Check for another invariant access that accesses the same location as
2818 // MA and if found consolidate them. Otherwise create a new equivalence
2819 // class at the end of InvariantEquivClasses.
2820 LoadInst *LInst = cast<LoadInst>(MA->getAccessInstruction());
2821 const SCEV *PointerSCEV = SE->getSCEV(LInst->getPointerOperand());
2822
2823 bool Consolidated = false;
2824 for (auto &IAClass : InvariantEquivClasses) {
2825 if (PointerSCEV != std::get<0>(IAClass))
2826 continue;
2827
2828 Consolidated = true;
2829
2830 // Add MA to the list of accesses that are in this class.
2831 auto &MAs = std::get<1>(IAClass);
2832 MAs.push_front(MA);
2833
2834 // Unify the execution context of the class and this statement.
2835 isl_set *&IAClassDomainCtx = std::get<2>(IAClass);
Johannes Doerfertfc4bfc42015-11-11 04:30:07 +00002836 if (IAClassDomainCtx)
2837 IAClassDomainCtx = isl_set_coalesce(
2838 isl_set_union(IAClassDomainCtx, isl_set_copy(DomainCtx)));
2839 else
2840 IAClassDomainCtx = isl_set_copy(DomainCtx);
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00002841 break;
2842 }
2843
2844 if (Consolidated)
2845 continue;
2846
2847 // If we did not consolidate MA, thus did not find an equivalence class
2848 // for it, we create a new one.
2849 InvariantEquivClasses.emplace_back(PointerSCEV, MemoryAccessList{MA},
2850 isl_set_copy(DomainCtx));
2851 }
2852
2853 isl_set_free(DomainCtx);
2854}
2855
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002856void Scop::hoistInvariantLoads() {
2857 isl_union_map *Writes = getWrites();
2858 for (ScopStmt &Stmt : *this) {
2859
2860 // TODO: Loads that are not loop carried, hence are in a statement with
2861 // zero iterators, are by construction invariant, though we
Johannes Doerfert09e36972015-10-07 20:17:36 +00002862 // currently "hoist" them anyway. This is necessary because we allow
2863 // them to be treated as parameters (e.g., in conditions) and our code
2864 // generation would otherwise use the old value.
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002865
Johannes Doerfert8930f482015-10-02 14:51:00 +00002866 BasicBlock *BB = Stmt.isBlockStmt() ? Stmt.getBasicBlock()
2867 : Stmt.getRegion()->getEntry();
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002868 isl_set *Domain = Stmt.getDomain();
2869 MemoryAccessList InvMAs;
2870
2871 for (MemoryAccess *MA : Stmt) {
2872 if (MA->isImplicit() || MA->isWrite() || !MA->isAffine())
2873 continue;
2874
Johannes Doerfertbc7cff42015-10-18 19:49:25 +00002875 // Skip accesses that have an invariant base pointer which is defined but
2876 // not loaded inside the SCoP. This can happened e.g., if a readnone call
2877 // returns a pointer that is used as a base address. However, as we want
2878 // to hoist indirect pointers, we allow the base pointer to be defined in
Johannes Doerfert654c3282015-10-21 22:14:57 +00002879 // the region if it is also a memory access. Each ScopArrayInfo object
2880 // that has a base pointer origin has a base pointer that is loaded and
2881 // that it is invariant, thus it will be hoisted too. However, if there is
Tobias Grosser27e19a02015-10-25 12:05:14 +00002882 // no base pointer origin we check that the base pointer is defined
Johannes Doerfert654c3282015-10-21 22:14:57 +00002883 // outside the region.
Johannes Doerfertbc7cff42015-10-18 19:49:25 +00002884 const ScopArrayInfo *SAI = MA->getScopArrayInfo();
Johannes Doerfert654c3282015-10-21 22:14:57 +00002885 while (auto *BasePtrOriginSAI = SAI->getBasePtrOriginSAI())
2886 SAI = BasePtrOriginSAI;
2887
2888 if (auto *BasePtrInst = dyn_cast<Instruction>(SAI->getBasePtr()))
2889 if (R.contains(BasePtrInst))
2890 continue;
Johannes Doerfertbc7cff42015-10-18 19:49:25 +00002891
Johannes Doerfert8930f482015-10-02 14:51:00 +00002892 // Skip accesses in non-affine subregions as they might not be executed
2893 // under the same condition as the entry of the non-affine subregion.
2894 if (BB != MA->getAccessInstruction()->getParent())
2895 continue;
2896
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002897 isl_map *AccessRelation = MA->getAccessRelation();
Johannes Doerfertb864c2c2015-10-18 19:50:18 +00002898
2899 // Skip accesses that have an empty access relation. These can be caused
2900 // by multiple offsets with a type cast in-between that cause the overall
2901 // byte offset to be not divisible by the new types sizes.
2902 if (isl_map_is_empty(AccessRelation)) {
2903 isl_map_free(AccessRelation);
2904 continue;
2905 }
2906
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002907 if (isl_map_involves_dims(AccessRelation, isl_dim_in, 0,
2908 Stmt.getNumIterators())) {
2909 isl_map_free(AccessRelation);
2910 continue;
2911 }
2912
2913 AccessRelation =
2914 isl_map_intersect_domain(AccessRelation, isl_set_copy(Domain));
2915 isl_set *AccessRange = isl_map_range(AccessRelation);
2916
2917 isl_union_map *Written = isl_union_map_intersect_range(
2918 isl_union_map_copy(Writes), isl_union_set_from_set(AccessRange));
2919 bool IsWritten = !isl_union_map_is_empty(Written);
2920 isl_union_map_free(Written);
2921
2922 if (IsWritten)
2923 continue;
2924
2925 InvMAs.push_front(MA);
2926 }
2927
2928 // We inserted invariant accesses always in the front but need them to be
2929 // sorted in a "natural order". The statements are already sorted in reverse
2930 // post order and that suffices for the accesses too. The reason we require
2931 // an order in the first place is the dependences between invariant loads
2932 // that can be caused by indirect loads.
2933 InvMAs.reverse();
2934
2935 // Transfer the memory access from the statement to the SCoP.
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00002936 Stmt.removeMemoryAccesses(InvMAs);
2937 addInvariantLoads(Stmt, InvMAs);
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002938
2939 isl_set_free(Domain);
2940 }
2941 isl_union_map_free(Writes);
2942
Johannes Doerfert697fdf82015-10-09 17:12:26 +00002943 auto &ScopRIL = *SD.getRequiredInvariantLoads(&getRegion());
Johannes Doerfert09e36972015-10-07 20:17:36 +00002944 // Check required invariant loads that were tagged during SCoP detection.
Johannes Doerfert697fdf82015-10-09 17:12:26 +00002945 for (LoadInst *LI : ScopRIL) {
Johannes Doerfert09e36972015-10-07 20:17:36 +00002946 assert(LI && getRegion().contains(LI));
2947 ScopStmt *Stmt = getStmtForBasicBlock(LI->getParent());
2948 if (Stmt && Stmt->lookupAccessesFor(LI) != nullptr) {
2949 DEBUG(dbgs() << "\n\nWARNING: Load (" << *LI
2950 << ") is required to be invariant but was not marked as "
2951 "such. SCoP for "
2952 << getRegion() << " will be dropped\n\n");
Johannes Doerfertd84493e2015-11-12 02:33:38 +00002953 addAssumption(INVARIANTLOAD, isl_set_empty(getParamSpace()),
2954 LI->getDebugLoc());
Johannes Doerfert09e36972015-10-07 20:17:36 +00002955 return;
2956 }
2957 }
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00002958}
2959
Johannes Doerfert80ef1102014-11-07 08:31:31 +00002960const ScopArrayInfo *
2961Scop::getOrCreateScopArrayInfo(Value *BasePtr, Type *AccessType,
Tobias Grosser6abc75a2015-11-10 17:31:31 +00002962 ArrayRef<const SCEV *> Sizes,
2963 ScopArrayInfo::ARRAYKIND Kind) {
2964 auto &SAI = ScopArrayInfoMap[std::make_pair(BasePtr, Kind)];
Tobias Grosser99c70dd2015-09-26 08:55:54 +00002965 if (!SAI) {
Johannes Doerfert55b3d8b2015-11-12 20:15:08 +00002966 auto &DL = getRegion().getEntry()->getModule()->getDataLayout();
2967 SAI.reset(new ScopArrayInfo(BasePtr, AccessType, getIslCtx(), Sizes, Kind,
2968 DL, this));
Tobias Grosser99c70dd2015-09-26 08:55:54 +00002969 } else {
Tobias Grosser8286b832015-11-02 11:29:32 +00002970 // In case of mismatching array sizes, we bail out by setting the run-time
2971 // context to false.
2972 if (!SAI->updateSizes(Sizes))
Johannes Doerfertd84493e2015-11-12 02:33:38 +00002973 addAssumption(DELINEARIZATION, isl_set_empty(getParamSpace()),
2974 DebugLoc());
Tobias Grosser99c70dd2015-09-26 08:55:54 +00002975 }
Tobias Grosserab671442015-05-23 05:58:27 +00002976 return SAI.get();
Johannes Doerfert1a28a892014-10-05 11:32:18 +00002977}
2978
Tobias Grosser6abc75a2015-11-10 17:31:31 +00002979const ScopArrayInfo *Scop::getScopArrayInfo(Value *BasePtr,
2980 ScopArrayInfo::ARRAYKIND Kind) {
2981 auto *SAI = ScopArrayInfoMap[std::make_pair(BasePtr, Kind)].get();
Johannes Doerfert1a28a892014-10-05 11:32:18 +00002982 assert(SAI && "No ScopArrayInfo available for this base pointer");
2983 return SAI;
2984}
2985
Tobias Grosser74394f02013-01-14 22:40:23 +00002986std::string Scop::getContextStr() const { return stringFromIslObj(Context); }
Tobias Grosser5e6813d2014-07-02 17:47:48 +00002987std::string Scop::getAssumedContextStr() const {
2988 return stringFromIslObj(AssumedContext);
2989}
Johannes Doerfert883f8c12015-09-15 22:52:53 +00002990std::string Scop::getBoundaryContextStr() const {
2991 return stringFromIslObj(BoundaryContext);
2992}
Tobias Grosser75805372011-04-29 06:27:02 +00002993
2994std::string Scop::getNameStr() const {
2995 std::string ExitName, EntryName;
2996 raw_string_ostream ExitStr(ExitName);
2997 raw_string_ostream EntryStr(EntryName);
2998
Tobias Grosserf240b482014-01-09 10:42:15 +00002999 R.getEntry()->printAsOperand(EntryStr, false);
Tobias Grosser75805372011-04-29 06:27:02 +00003000 EntryStr.str();
3001
3002 if (R.getExit()) {
Tobias Grosserf240b482014-01-09 10:42:15 +00003003 R.getExit()->printAsOperand(ExitStr, false);
Tobias Grosser75805372011-04-29 06:27:02 +00003004 ExitStr.str();
3005 } else
3006 ExitName = "FunctionExit";
3007
3008 return EntryName + "---" + ExitName;
3009}
3010
Tobias Grosser74394f02013-01-14 22:40:23 +00003011__isl_give isl_set *Scop::getContext() const { return isl_set_copy(Context); }
Tobias Grosser37487052011-10-06 00:03:42 +00003012__isl_give isl_space *Scop::getParamSpace() const {
Tobias Grossereeb9f3c2015-05-26 21:37:31 +00003013 return isl_set_get_space(Context);
Tobias Grosser37487052011-10-06 00:03:42 +00003014}
3015
Tobias Grossere86109f2013-10-29 21:05:49 +00003016__isl_give isl_set *Scop::getAssumedContext() const {
3017 return isl_set_copy(AssumedContext);
3018}
3019
Johannes Doerfert43788c52015-08-20 05:58:56 +00003020__isl_give isl_set *Scop::getRuntimeCheckContext() const {
3021 isl_set *RuntimeCheckContext = getAssumedContext();
Johannes Doerfert883f8c12015-09-15 22:52:53 +00003022 RuntimeCheckContext =
3023 isl_set_intersect(RuntimeCheckContext, getBoundaryContext());
3024 RuntimeCheckContext = simplifyAssumptionContext(RuntimeCheckContext, *this);
Johannes Doerfert43788c52015-08-20 05:58:56 +00003025 return RuntimeCheckContext;
3026}
3027
Johannes Doerfert5d5b3062015-08-20 18:06:30 +00003028bool Scop::hasFeasibleRuntimeContext() const {
Johannes Doerfert43788c52015-08-20 05:58:56 +00003029 isl_set *RuntimeCheckContext = getRuntimeCheckContext();
Johannes Doerfert5d5b3062015-08-20 18:06:30 +00003030 RuntimeCheckContext = addNonEmptyDomainConstraints(RuntimeCheckContext);
Johannes Doerfert43788c52015-08-20 05:58:56 +00003031 bool IsFeasible = !isl_set_is_empty(RuntimeCheckContext);
3032 isl_set_free(RuntimeCheckContext);
3033 return IsFeasible;
3034}
3035
Johannes Doerfertd84493e2015-11-12 02:33:38 +00003036static std::string toString(AssumptionKind Kind) {
3037 switch (Kind) {
3038 case ALIASING:
3039 return "No-aliasing";
3040 case INBOUNDS:
3041 return "Inbounds";
3042 case WRAPPING:
3043 return "No-overflows";
Johannes Doerferta4b77c02015-11-12 20:15:32 +00003044 case ALIGNMENT:
3045 return "Alignment";
Johannes Doerfertd84493e2015-11-12 02:33:38 +00003046 case ERRORBLOCK:
3047 return "No-error";
3048 case INFINITELOOP:
3049 return "Finite loop";
3050 case INVARIANTLOAD:
3051 return "Invariant load";
3052 case DELINEARIZATION:
3053 return "Delinearization";
3054 }
3055 llvm_unreachable("Unknown AssumptionKind!");
3056}
3057
3058void Scop::trackAssumption(AssumptionKind Kind, __isl_keep isl_set *Set,
3059 DebugLoc Loc) {
3060 if (isl_set_is_subset(Context, Set))
3061 return;
3062
3063 if (isl_set_is_subset(AssumedContext, Set))
3064 return;
3065
3066 auto &F = *getRegion().getEntry()->getParent();
3067 std::string Msg = toString(Kind) + " assumption:\t" + stringFromIslObj(Set);
3068 emitOptimizationRemarkAnalysis(F.getContext(), DEBUG_TYPE, F, Loc, Msg);
3069}
3070
3071void Scop::addAssumption(AssumptionKind Kind, __isl_take isl_set *Set,
3072 DebugLoc Loc) {
3073 trackAssumption(Kind, Set, Loc);
Tobias Grosser5e6813d2014-07-02 17:47:48 +00003074 AssumedContext = isl_set_intersect(AssumedContext, Set);
Tobias Grosser20a4c0c2015-11-11 16:22:36 +00003075
Johannes Doerfert9d7899e2015-11-11 20:01:31 +00003076 int NSets = isl_set_n_basic_set(AssumedContext);
Tobias Grosser20a4c0c2015-11-11 16:22:36 +00003077 if (NSets >= MaxDisjunctsAssumed) {
3078 isl_space *Space = isl_set_get_space(AssumedContext);
3079 isl_set_free(AssumedContext);
Tobias Grossere19fca42015-11-11 20:21:39 +00003080 AssumedContext = isl_set_empty(Space);
Tobias Grosser20a4c0c2015-11-11 16:22:36 +00003081 }
3082
Tobias Grosser7b50bee2014-11-25 10:51:12 +00003083 AssumedContext = isl_set_coalesce(AssumedContext);
Tobias Grosser5e6813d2014-07-02 17:47:48 +00003084}
3085
Johannes Doerfert883f8c12015-09-15 22:52:53 +00003086__isl_give isl_set *Scop::getBoundaryContext() const {
3087 return isl_set_copy(BoundaryContext);
3088}
3089
Tobias Grosser75805372011-04-29 06:27:02 +00003090void Scop::printContext(raw_ostream &OS) const {
3091 OS << "Context:\n";
3092
3093 if (!Context) {
3094 OS.indent(4) << "n/a\n\n";
3095 return;
3096 }
3097
3098 OS.indent(4) << getContextStr() << "\n";
Tobias Grosser60b54f12011-11-08 15:41:28 +00003099
Tobias Grosser5e6813d2014-07-02 17:47:48 +00003100 OS.indent(4) << "Assumed Context:\n";
3101 if (!AssumedContext) {
3102 OS.indent(4) << "n/a\n\n";
3103 return;
3104 }
3105
3106 OS.indent(4) << getAssumedContextStr() << "\n";
3107
Johannes Doerfert883f8c12015-09-15 22:52:53 +00003108 OS.indent(4) << "Boundary Context:\n";
3109 if (!BoundaryContext) {
3110 OS.indent(4) << "n/a\n\n";
3111 return;
3112 }
3113
3114 OS.indent(4) << getBoundaryContextStr() << "\n";
3115
Tobias Grosser083d3d32014-06-28 08:59:45 +00003116 for (const SCEV *Parameter : Parameters) {
Tobias Grosser60b54f12011-11-08 15:41:28 +00003117 int Dim = ParameterIds.find(Parameter)->second;
Tobias Grosser60b54f12011-11-08 15:41:28 +00003118 OS.indent(4) << "p" << Dim << ": " << *Parameter << "\n";
3119 }
Tobias Grosser75805372011-04-29 06:27:02 +00003120}
3121
Johannes Doerfertb164c792014-09-18 11:17:17 +00003122void Scop::printAliasAssumptions(raw_ostream &OS) const {
Tobias Grosserbb853c22015-07-25 12:31:03 +00003123 int noOfGroups = 0;
3124 for (const MinMaxVectorPairTy &Pair : MinMaxAliasGroups) {
Johannes Doerfert210b09a2015-07-26 13:14:38 +00003125 if (Pair.second.size() == 0)
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003126 noOfGroups += 1;
3127 else
Johannes Doerfert210b09a2015-07-26 13:14:38 +00003128 noOfGroups += Pair.second.size();
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003129 }
3130
Tobias Grosserbb853c22015-07-25 12:31:03 +00003131 OS.indent(4) << "Alias Groups (" << noOfGroups << "):\n";
Johannes Doerfertb164c792014-09-18 11:17:17 +00003132 if (MinMaxAliasGroups.empty()) {
3133 OS.indent(8) << "n/a\n";
3134 return;
3135 }
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003136
Tobias Grosserbb853c22015-07-25 12:31:03 +00003137 for (const MinMaxVectorPairTy &Pair : MinMaxAliasGroups) {
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003138
3139 // If the group has no read only accesses print the write accesses.
Johannes Doerfert210b09a2015-07-26 13:14:38 +00003140 if (Pair.second.empty()) {
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003141 OS.indent(8) << "[[";
Johannes Doerfert210b09a2015-07-26 13:14:38 +00003142 for (const MinMaxAccessTy &MMANonReadOnly : Pair.first) {
Tobias Grosserbb853c22015-07-25 12:31:03 +00003143 OS << " <" << MMANonReadOnly.first << ", " << MMANonReadOnly.second
3144 << ">";
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003145 }
3146 OS << " ]]\n";
3147 }
3148
Johannes Doerfert210b09a2015-07-26 13:14:38 +00003149 for (const MinMaxAccessTy &MMAReadOnly : Pair.second) {
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003150 OS.indent(8) << "[[";
Tobias Grosserbb853c22015-07-25 12:31:03 +00003151 OS << " <" << MMAReadOnly.first << ", " << MMAReadOnly.second << ">";
Johannes Doerfert210b09a2015-07-26 13:14:38 +00003152 for (const MinMaxAccessTy &MMANonReadOnly : Pair.first) {
Tobias Grosserbb853c22015-07-25 12:31:03 +00003153 OS << " <" << MMANonReadOnly.first << ", " << MMANonReadOnly.second
3154 << ">";
Johannes Doerfert338b42c2015-07-23 17:04:54 +00003155 }
3156 OS << " ]]\n";
3157 }
Johannes Doerfertb164c792014-09-18 11:17:17 +00003158 }
3159}
3160
Tobias Grosser75805372011-04-29 06:27:02 +00003161void Scop::printStatements(raw_ostream &OS) const {
3162 OS << "Statements {\n";
3163
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003164 for (const ScopStmt &Stmt : *this)
3165 OS.indent(4) << Stmt;
Tobias Grosser75805372011-04-29 06:27:02 +00003166
3167 OS.indent(4) << "}\n";
3168}
3169
Tobias Grosser49ad36c2015-05-20 08:05:31 +00003170void Scop::printArrayInfo(raw_ostream &OS) const {
3171 OS << "Arrays {\n";
3172
Tobias Grosserab671442015-05-23 05:58:27 +00003173 for (auto &Array : arrays())
Tobias Grosser49ad36c2015-05-20 08:05:31 +00003174 Array.second->print(OS);
3175
3176 OS.indent(4) << "}\n";
Tobias Grosserd46fd5e2015-08-12 15:27:16 +00003177
3178 OS.indent(4) << "Arrays (Bounds as pw_affs) {\n";
3179
3180 for (auto &Array : arrays())
3181 Array.second->print(OS, /* SizeAsPwAff */ true);
3182
3183 OS.indent(4) << "}\n";
Tobias Grosser49ad36c2015-05-20 08:05:31 +00003184}
3185
Tobias Grosser75805372011-04-29 06:27:02 +00003186void Scop::print(raw_ostream &OS) const {
Tobias Grosser4eb7ddb2014-03-18 18:51:11 +00003187 OS.indent(4) << "Function: " << getRegion().getEntry()->getParent()->getName()
3188 << "\n";
Tobias Grosser483fdd42014-03-18 18:05:38 +00003189 OS.indent(4) << "Region: " << getNameStr() << "\n";
David Peixottodc0a11c2015-01-13 18:31:55 +00003190 OS.indent(4) << "Max Loop Depth: " << getMaxLoopDepth() << "\n";
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00003191 OS.indent(4) << "Invariant Accesses: {\n";
Johannes Doerfert697fdf82015-10-09 17:12:26 +00003192 for (const auto &IAClass : InvariantEquivClasses) {
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00003193 const auto &MAs = std::get<1>(IAClass);
3194 if (MAs.empty()) {
3195 OS.indent(12) << "Class Pointer: " << *std::get<0>(IAClass) << "\n";
Johannes Doerfert697fdf82015-10-09 17:12:26 +00003196 } else {
Johannes Doerfertaf3e3012015-10-18 12:39:19 +00003197 MAs.front()->print(OS);
3198 OS.indent(12) << "Execution Context: " << std::get<2>(IAClass) << "\n";
Johannes Doerfert697fdf82015-10-09 17:12:26 +00003199 }
Johannes Doerfertc1db67e2015-09-29 23:47:21 +00003200 }
3201 OS.indent(4) << "}\n";
Tobias Grosser75805372011-04-29 06:27:02 +00003202 printContext(OS.indent(4));
Tobias Grosser49ad36c2015-05-20 08:05:31 +00003203 printArrayInfo(OS.indent(4));
Johannes Doerfertb164c792014-09-18 11:17:17 +00003204 printAliasAssumptions(OS);
Tobias Grosser75805372011-04-29 06:27:02 +00003205 printStatements(OS.indent(4));
3206}
3207
3208void Scop::dump() const { print(dbgs()); }
3209
Tobias Grosser9a38ab82011-11-08 15:41:03 +00003210isl_ctx *Scop::getIslCtx() const { return IslCtx; }
Tobias Grosser75805372011-04-29 06:27:02 +00003211
Johannes Doerfertcef616f2015-09-15 22:49:04 +00003212__isl_give isl_pw_aff *Scop::getPwAff(const SCEV *E, BasicBlock *BB) {
3213 return Affinator.getPwAff(E, BB);
Johannes Doerfert574182d2015-08-12 10:19:50 +00003214}
3215
Tobias Grosser808cd692015-07-14 09:33:13 +00003216__isl_give isl_union_set *Scop::getDomains() const {
Tobias Grosserbc4ef902014-06-28 08:59:38 +00003217 isl_union_set *Domain = isl_union_set_empty(getParamSpace());
Tobias Grosser5f9a7622012-02-14 14:02:40 +00003218
Tobias Grosser808cd692015-07-14 09:33:13 +00003219 for (const ScopStmt &Stmt : *this)
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003220 Domain = isl_union_set_add_set(Domain, Stmt.getDomain());
Tobias Grosser5f9a7622012-02-14 14:02:40 +00003221
3222 return Domain;
3223}
3224
Tobias Grossere5a35142015-11-12 14:07:09 +00003225__isl_give isl_union_map *
3226Scop::getAccessesOfType(std::function<bool(MemoryAccess &)> Predicate) {
3227 isl_union_map *Accesses = isl_union_map_empty(getParamSpace());
Tobias Grosser780ce0f2014-07-11 07:12:10 +00003228
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003229 for (ScopStmt &Stmt : *this) {
3230 for (MemoryAccess *MA : Stmt) {
Tobias Grossere5a35142015-11-12 14:07:09 +00003231 if (!Predicate(*MA))
Tobias Grosser780ce0f2014-07-11 07:12:10 +00003232 continue;
3233
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003234 isl_set *Domain = Stmt.getDomain();
Tobias Grosser780ce0f2014-07-11 07:12:10 +00003235 isl_map *AccessDomain = MA->getAccessRelation();
3236 AccessDomain = isl_map_intersect_domain(AccessDomain, Domain);
Tobias Grossere5a35142015-11-12 14:07:09 +00003237 Accesses = isl_union_map_add_map(Accesses, AccessDomain);
Tobias Grosser780ce0f2014-07-11 07:12:10 +00003238 }
3239 }
Tobias Grossere5a35142015-11-12 14:07:09 +00003240 return isl_union_map_coalesce(Accesses);
3241}
3242
3243__isl_give isl_union_map *Scop::getMustWrites() {
3244 return getAccessesOfType([](MemoryAccess &MA) { return MA.isMustWrite(); });
Tobias Grosser780ce0f2014-07-11 07:12:10 +00003245}
3246
3247__isl_give isl_union_map *Scop::getMayWrites() {
Tobias Grossere5a35142015-11-12 14:07:09 +00003248 return getAccessesOfType([](MemoryAccess &MA) { return MA.isMayWrite(); });
Tobias Grosser780ce0f2014-07-11 07:12:10 +00003249}
3250
Tobias Grosser37eb4222014-02-20 21:43:54 +00003251__isl_give isl_union_map *Scop::getWrites() {
Tobias Grossere5a35142015-11-12 14:07:09 +00003252 return getAccessesOfType([](MemoryAccess &MA) { return MA.isWrite(); });
Tobias Grosser37eb4222014-02-20 21:43:54 +00003253}
3254
3255__isl_give isl_union_map *Scop::getReads() {
Tobias Grossere5a35142015-11-12 14:07:09 +00003256 return getAccessesOfType([](MemoryAccess &MA) { return MA.isRead(); });
Tobias Grosser37eb4222014-02-20 21:43:54 +00003257}
3258
Tobias Grosser2ac23382015-11-12 14:07:13 +00003259__isl_give isl_union_map *Scop::getAccesses() {
3260 return getAccessesOfType([](MemoryAccess &MA) { return true; });
3261}
3262
Tobias Grosser808cd692015-07-14 09:33:13 +00003263__isl_give isl_union_map *Scop::getSchedule() const {
3264 auto Tree = getScheduleTree();
3265 auto S = isl_schedule_get_map(Tree);
3266 isl_schedule_free(Tree);
3267 return S;
3268}
Tobias Grosser37eb4222014-02-20 21:43:54 +00003269
Tobias Grosser808cd692015-07-14 09:33:13 +00003270__isl_give isl_schedule *Scop::getScheduleTree() const {
3271 return isl_schedule_intersect_domain(isl_schedule_copy(Schedule),
3272 getDomains());
3273}
Tobias Grosserbc4ef902014-06-28 08:59:38 +00003274
Tobias Grosser808cd692015-07-14 09:33:13 +00003275void Scop::setSchedule(__isl_take isl_union_map *NewSchedule) {
3276 auto *S = isl_schedule_from_domain(getDomains());
3277 S = isl_schedule_insert_partial_schedule(
3278 S, isl_multi_union_pw_aff_from_union_map(NewSchedule));
3279 isl_schedule_free(Schedule);
3280 Schedule = S;
3281}
3282
3283void Scop::setScheduleTree(__isl_take isl_schedule *NewSchedule) {
3284 isl_schedule_free(Schedule);
3285 Schedule = NewSchedule;
Tobias Grosser37eb4222014-02-20 21:43:54 +00003286}
3287
3288bool Scop::restrictDomains(__isl_take isl_union_set *Domain) {
3289 bool Changed = false;
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003290 for (ScopStmt &Stmt : *this) {
3291 isl_union_set *StmtDomain = isl_union_set_from_set(Stmt.getDomain());
Tobias Grosser37eb4222014-02-20 21:43:54 +00003292 isl_union_set *NewStmtDomain = isl_union_set_intersect(
3293 isl_union_set_copy(StmtDomain), isl_union_set_copy(Domain));
3294
3295 if (isl_union_set_is_subset(StmtDomain, NewStmtDomain)) {
3296 isl_union_set_free(StmtDomain);
3297 isl_union_set_free(NewStmtDomain);
3298 continue;
3299 }
3300
3301 Changed = true;
3302
3303 isl_union_set_free(StmtDomain);
3304 NewStmtDomain = isl_union_set_coalesce(NewStmtDomain);
3305
3306 if (isl_union_set_is_empty(NewStmtDomain)) {
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003307 Stmt.restrictDomain(isl_set_empty(Stmt.getDomainSpace()));
Tobias Grosser37eb4222014-02-20 21:43:54 +00003308 isl_union_set_free(NewStmtDomain);
3309 } else
Tobias Grosser7c3bad52015-05-27 05:16:57 +00003310 Stmt.restrictDomain(isl_set_from_union_set(NewStmtDomain));
Tobias Grosser37eb4222014-02-20 21:43:54 +00003311 }
3312 isl_union_set_free(Domain);
3313 return Changed;
3314}
3315
Tobias Grosser75805372011-04-29 06:27:02 +00003316ScalarEvolution *Scop::getSE() const { return SE; }
3317
Johannes Doerfertf5673802015-10-01 23:48:18 +00003318bool Scop::isIgnored(RegionNode *RN) {
3319 BasicBlock *BB = getRegionNodeBasicBlock(RN);
Tobias Grosser75805372011-04-29 06:27:02 +00003320
Johannes Doerfertf5673802015-10-01 23:48:18 +00003321 // Check if there are accesses contained.
3322 bool ContainsAccesses = false;
3323 if (!RN->isSubRegion())
3324 ContainsAccesses = getAccessFunctions(BB);
3325 else
3326 for (BasicBlock *RBB : RN->getNodeAs<Region>()->blocks())
3327 ContainsAccesses |= (getAccessFunctions(RBB) != nullptr);
3328 if (!ContainsAccesses)
3329 return true;
3330
3331 // Check for reachability via non-error blocks.
3332 if (!DomainMap.count(BB))
3333 return true;
3334
3335 // Check if error blocks are contained.
Johannes Doerfert08d90a32015-10-07 20:32:43 +00003336 if (containsErrorBlock(RN, getRegion(), LI, DT))
Johannes Doerfertf5673802015-10-01 23:48:18 +00003337 return true;
3338
3339 return false;
Tobias Grosser75805372011-04-29 06:27:02 +00003340}
3341
Tobias Grosser808cd692015-07-14 09:33:13 +00003342struct MapToDimensionDataTy {
3343 int N;
3344 isl_union_pw_multi_aff *Res;
3345};
Johannes Doerfertff9d1982015-02-24 12:00:50 +00003346
Tobias Grosser808cd692015-07-14 09:33:13 +00003347// @brief Create a function that maps the elements of 'Set' to its N-th
3348// dimension.
3349//
3350// The result is added to 'User->Res'.
3351//
3352// @param Set The input set.
3353// @param N The dimension to map to.
3354//
3355// @returns Zero if no error occurred, non-zero otherwise.
3356static isl_stat mapToDimension_AddSet(__isl_take isl_set *Set, void *User) {
3357 struct MapToDimensionDataTy *Data = (struct MapToDimensionDataTy *)User;
3358 int Dim;
3359 isl_space *Space;
3360 isl_pw_multi_aff *PMA;
3361
3362 Dim = isl_set_dim(Set, isl_dim_set);
3363 Space = isl_set_get_space(Set);
3364 PMA = isl_pw_multi_aff_project_out_map(Space, isl_dim_set, Data->N,
3365 Dim - Data->N);
3366 if (Data->N > 1)
3367 PMA = isl_pw_multi_aff_drop_dims(PMA, isl_dim_out, 0, Data->N - 1);
3368 Data->Res = isl_union_pw_multi_aff_add_pw_multi_aff(Data->Res, PMA);
3369
3370 isl_set_free(Set);
3371
3372 return isl_stat_ok;
Johannes Doerfertff9d1982015-02-24 12:00:50 +00003373}
3374
Tobias Grosser808cd692015-07-14 09:33:13 +00003375// @brief Create a function that maps the elements of Domain to their Nth
3376// dimension.
3377//
3378// @param Domain The set of elements to map.
3379// @param N The dimension to map to.
3380static __isl_give isl_multi_union_pw_aff *
3381mapToDimension(__isl_take isl_union_set *Domain, int N) {
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003382 if (N <= 0 || isl_union_set_is_empty(Domain)) {
3383 isl_union_set_free(Domain);
3384 return nullptr;
3385 }
3386
Tobias Grosser808cd692015-07-14 09:33:13 +00003387 struct MapToDimensionDataTy Data;
3388 isl_space *Space;
3389
3390 Space = isl_union_set_get_space(Domain);
3391 Data.N = N;
3392 Data.Res = isl_union_pw_multi_aff_empty(Space);
3393 if (isl_union_set_foreach_set(Domain, &mapToDimension_AddSet, &Data) < 0)
3394 Data.Res = isl_union_pw_multi_aff_free(Data.Res);
3395
3396 isl_union_set_free(Domain);
3397 return isl_multi_union_pw_aff_from_union_pw_multi_aff(Data.Res);
3398}
3399
Tobias Grosser316b5b22015-11-11 19:28:14 +00003400void Scop::addScopStmt(BasicBlock *BB, Region *R) {
Tobias Grosser808cd692015-07-14 09:33:13 +00003401 if (BB) {
Michael Kruse9d080092015-09-11 21:41:48 +00003402 Stmts.emplace_back(*this, *BB);
Tobias Grosser316b5b22015-11-11 19:28:14 +00003403 auto Stmt = &Stmts.back();
Tobias Grosser808cd692015-07-14 09:33:13 +00003404 StmtMap[BB] = Stmt;
3405 } else {
3406 assert(R && "Either basic block or a region expected.");
Michael Kruse9d080092015-09-11 21:41:48 +00003407 Stmts.emplace_back(*this, *R);
Tobias Grosser316b5b22015-11-11 19:28:14 +00003408 auto Stmt = &Stmts.back();
Tobias Grosser808cd692015-07-14 09:33:13 +00003409 for (BasicBlock *BB : R->blocks())
3410 StmtMap[BB] = Stmt;
3411 }
Tobias Grosser808cd692015-07-14 09:33:13 +00003412}
3413
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003414void Scop::buildSchedule(
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00003415 Region *R,
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003416 DenseMap<Loop *, std::pair<isl_schedule *, unsigned>> &LoopSchedules) {
Michael Kruse046dde42015-08-10 13:01:57 +00003417
Johannes Doerfert40fa56f2015-09-14 11:15:07 +00003418 if (SD.isNonAffineSubRegion(R, &getRegion())) {
Johannes Doerfertc6987c12015-09-26 13:41:43 +00003419 Loop *L = getLoopSurroundingRegion(*R, LI);
3420 auto &LSchedulePair = LoopSchedules[L];
Michael Krusecac948e2015-10-02 13:53:07 +00003421 ScopStmt *Stmt = getStmtForBasicBlock(R->getEntry());
Michael Kruseafe06702015-10-02 16:33:27 +00003422 isl_set *Domain = Stmt->getDomain();
Michael Krusecac948e2015-10-02 13:53:07 +00003423 auto *UDomain = isl_union_set_from_set(Domain);
3424 auto *StmtSchedule = isl_schedule_from_domain(UDomain);
Johannes Doerfert40fa56f2015-09-14 11:15:07 +00003425 LSchedulePair.first = StmtSchedule;
3426 return;
3427 }
3428
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003429 ReversePostOrderTraversal<Region *> RTraversal(R);
3430 for (auto *RN : RTraversal) {
Michael Kruse046dde42015-08-10 13:01:57 +00003431
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003432 if (RN->isSubRegion()) {
3433 Region *SubRegion = RN->getNodeAs<Region>();
3434 if (!SD.isNonAffineSubRegion(SubRegion, &getRegion())) {
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00003435 buildSchedule(SubRegion, LoopSchedules);
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003436 continue;
3437 }
Tobias Grosser75805372011-04-29 06:27:02 +00003438 }
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003439
3440 Loop *L = getRegionNodeLoop(RN, LI);
Johannes Doerfert30c22652015-10-18 21:17:11 +00003441 if (!getRegion().contains(L))
3442 L = getLoopSurroundingRegion(getRegion(), LI);
3443
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003444 int LD = getRelativeLoopDepth(L);
3445 auto &LSchedulePair = LoopSchedules[L];
3446 LSchedulePair.second += getNumBlocksInRegionNode(RN);
3447
Michael Krusecac948e2015-10-02 13:53:07 +00003448 BasicBlock *BB = getRegionNodeBasicBlock(RN);
3449 ScopStmt *Stmt = getStmtForBasicBlock(BB);
3450 if (Stmt) {
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003451 auto *UDomain = isl_union_set_from_set(Stmt->getDomain());
3452 auto *StmtSchedule = isl_schedule_from_domain(UDomain);
3453 LSchedulePair.first =
3454 combineInSequence(LSchedulePair.first, StmtSchedule);
3455 }
3456
3457 unsigned NumVisited = LSchedulePair.second;
3458 while (L && NumVisited == L->getNumBlocks()) {
3459 auto *LDomain = isl_schedule_get_domain(LSchedulePair.first);
3460 if (auto *MUPA = mapToDimension(LDomain, LD + 1))
3461 LSchedulePair.first =
3462 isl_schedule_insert_partial_schedule(LSchedulePair.first, MUPA);
3463
3464 auto *PL = L->getParentLoop();
Johannes Doerfertdca28372015-11-03 00:28:07 +00003465
3466 // Either we have a proper loop and we also build a schedule for the
3467 // parent loop or we have a infinite loop that does not have a proper
3468 // parent loop. In the former case this conditional will be skipped, in
3469 // the latter case however we will break here as we do not build a domain
3470 // nor a schedule for a infinite loop.
3471 assert(LoopSchedules.count(PL) || LSchedulePair.first == nullptr);
3472 if (!LoopSchedules.count(PL))
3473 break;
3474
Johannes Doerfertb68cffb2015-09-10 15:27:46 +00003475 auto &PSchedulePair = LoopSchedules[PL];
3476 PSchedulePair.first =
3477 combineInSequence(PSchedulePair.first, LSchedulePair.first);
3478 PSchedulePair.second += NumVisited;
3479
3480 L = PL;
3481 NumVisited = PSchedulePair.second;
3482 }
Tobias Grosser808cd692015-07-14 09:33:13 +00003483 }
Tobias Grosser75805372011-04-29 06:27:02 +00003484}
3485
Johannes Doerfert7c494212014-10-31 23:13:39 +00003486ScopStmt *Scop::getStmtForBasicBlock(BasicBlock *BB) const {
Tobias Grosser57411e32015-05-27 06:51:34 +00003487 auto StmtMapIt = StmtMap.find(BB);
Johannes Doerfert7c494212014-10-31 23:13:39 +00003488 if (StmtMapIt == StmtMap.end())
3489 return nullptr;
3490 return StmtMapIt->second;
3491}
3492
Johannes Doerfert96425c22015-08-30 21:13:53 +00003493int Scop::getRelativeLoopDepth(const Loop *L) const {
3494 Loop *OuterLoop =
3495 L ? R.outermostLoopInRegion(const_cast<Loop *>(L)) : nullptr;
3496 if (!OuterLoop)
3497 return -1;
Johannes Doerfertd020b772015-08-27 06:53:52 +00003498 return L->getLoopDepth() - OuterLoop->getLoopDepth();
3499}
3500
Michael Krused868b5d2015-09-10 15:25:24 +00003501void ScopInfo::buildPHIAccesses(PHINode *PHI, Region &R,
Michael Krused868b5d2015-09-10 15:25:24 +00003502 Region *NonAffineSubRegion, bool IsExitBlock) {
Michael Kruse7bf39442015-09-10 12:46:52 +00003503
3504 // PHI nodes that are in the exit block of the region, hence if IsExitBlock is
3505 // true, are not modeled as ordinary PHI nodes as they are not part of the
3506 // region. However, we model the operands in the predecessor blocks that are
3507 // part of the region as regular scalar accesses.
3508
3509 // If we can synthesize a PHI we can skip it, however only if it is in
3510 // the region. If it is not it can only be in the exit block of the region.
3511 // In this case we model the operands but not the PHI itself.
3512 if (!IsExitBlock && canSynthesize(PHI, LI, SE, &R))
3513 return;
3514
3515 // PHI nodes are modeled as if they had been demoted prior to the SCoP
3516 // detection. Hence, the PHI is a load of a new memory location in which the
3517 // incoming value was written at the end of the incoming basic block.
3518 bool OnlyNonAffineSubRegionOperands = true;
3519 for (unsigned u = 0; u < PHI->getNumIncomingValues(); u++) {
3520 Value *Op = PHI->getIncomingValue(u);
3521 BasicBlock *OpBB = PHI->getIncomingBlock(u);
3522
3523 // Do not build scalar dependences inside a non-affine subregion.
3524 if (NonAffineSubRegion && NonAffineSubRegion->contains(OpBB))
3525 continue;
3526
3527 OnlyNonAffineSubRegionOperands = false;
3528
3529 if (!R.contains(OpBB))
3530 continue;
3531
3532 Instruction *OpI = dyn_cast<Instruction>(Op);
3533 if (OpI) {
3534 BasicBlock *OpIBB = OpI->getParent();
3535 // As we pretend there is a use (or more precise a write) of OpI in OpBB
3536 // we have to insert a scalar dependence from the definition of OpI to
3537 // OpBB if the definition is not in OpBB.
Michael Kruse668af712015-10-15 14:45:48 +00003538 if (scop->getStmtForBasicBlock(OpIBB) !=
3539 scop->getStmtForBasicBlock(OpBB)) {
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003540 addScalarReadAccess(OpI, PHI, OpBB);
3541 addScalarWriteAccess(OpI);
Michael Kruse7bf39442015-09-10 12:46:52 +00003542 }
Tobias Grosserda95a4a2015-09-24 20:59:59 +00003543 } else if (ModelReadOnlyScalars && !isa<Constant>(Op)) {
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003544 addScalarReadAccess(Op, PHI, OpBB);
Michael Kruse7bf39442015-09-10 12:46:52 +00003545 }
3546
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003547 addPHIWriteAccess(PHI, OpBB, Op, IsExitBlock);
Michael Kruse7bf39442015-09-10 12:46:52 +00003548 }
3549
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003550 if (!OnlyNonAffineSubRegionOperands && !IsExitBlock) {
3551 addPHIReadAccess(PHI);
Michael Kruse7bf39442015-09-10 12:46:52 +00003552 }
3553}
3554
Michael Krused868b5d2015-09-10 15:25:24 +00003555bool ScopInfo::buildScalarDependences(Instruction *Inst, Region *R,
3556 Region *NonAffineSubRegion) {
Michael Kruse7bf39442015-09-10 12:46:52 +00003557 bool canSynthesizeInst = canSynthesize(Inst, LI, SE, R);
3558 if (isIgnoredIntrinsic(Inst))
3559 return false;
3560
3561 bool AnyCrossStmtUse = false;
3562 BasicBlock *ParentBB = Inst->getParent();
3563
3564 for (User *U : Inst->users()) {
3565 Instruction *UI = dyn_cast<Instruction>(U);
3566
3567 // Ignore the strange user
3568 if (UI == 0)
3569 continue;
3570
3571 BasicBlock *UseParent = UI->getParent();
3572
Tobias Grosserbaffa092015-10-24 20:55:27 +00003573 // Ignore basic block local uses. A value that is defined in a scop, but
3574 // used in a PHI node in the same basic block does not count as basic block
3575 // local, as for such cases a control flow edge is passed between definition
3576 // and use.
3577 if (UseParent == ParentBB && !isa<PHINode>(UI))
Michael Kruse7bf39442015-09-10 12:46:52 +00003578 continue;
3579
Michael Krusef714d472015-11-05 13:18:43 +00003580 // Uses by PHI nodes in the entry node count as external uses in case the
3581 // use is through an incoming block that is itself not contained in the
3582 // region.
3583 if (R->getEntry() == UseParent) {
3584 if (auto *PHI = dyn_cast<PHINode>(UI)) {
3585 bool ExternalUse = false;
3586 for (unsigned i = 0; i < PHI->getNumIncomingValues(); i++) {
3587 if (PHI->getIncomingValue(i) == Inst &&
3588 !R->contains(PHI->getIncomingBlock(i))) {
3589 ExternalUse = true;
3590 break;
3591 }
3592 }
3593
3594 if (ExternalUse) {
3595 AnyCrossStmtUse = true;
3596 continue;
3597 }
3598 }
3599 }
3600
Michael Kruse7bf39442015-09-10 12:46:52 +00003601 // Do not build scalar dependences inside a non-affine subregion.
3602 if (NonAffineSubRegion && NonAffineSubRegion->contains(UseParent))
3603 continue;
3604
Michael Kruse01cb3792015-10-17 21:07:08 +00003605 // Check for PHI nodes in the region exit and skip them, if they will be
Tobias Grosser05d7fa72015-10-17 21:46:28 +00003606 // modeled as PHI nodes.
Michael Kruse01cb3792015-10-17 21:07:08 +00003607 //
3608 // PHI nodes in the region exit that have more than two incoming edges need
Tobias Grosser05d7fa72015-10-17 21:46:28 +00003609 // to be modeled as PHI-Nodes to correctly model the fact that depending on
3610 // the control flow a different value will be assigned to the PHI node. In
3611 // case this is the case, there is no need to create an additional normal
3612 // scalar dependence. Hence, bail out before we register an "out-of-region"
3613 // use for this definition.
Michael Kruse01cb3792015-10-17 21:07:08 +00003614 if (isa<PHINode>(UI) && UI->getParent() == R->getExit() &&
3615 !R->getExitingBlock())
3616 continue;
3617
Michael Kruse7bf39442015-09-10 12:46:52 +00003618 // Check whether or not the use is in the SCoP.
Tobias Grosserc73d8b02015-10-23 22:36:22 +00003619 if (!R->contains(UseParent)) {
Michael Kruse7bf39442015-09-10 12:46:52 +00003620 AnyCrossStmtUse = true;
3621 continue;
3622 }
3623
3624 // If the instruction can be synthesized and the user is in the region
3625 // we do not need to add scalar dependences.
3626 if (canSynthesizeInst)
3627 continue;
3628
3629 // No need to translate these scalar dependences into polyhedral form,
3630 // because synthesizable scalars can be generated by the code generator.
3631 if (canSynthesize(UI, LI, SE, R))
3632 continue;
3633
3634 // Skip PHI nodes in the region as they handle their operands on their own.
3635 if (isa<PHINode>(UI))
3636 continue;
3637
3638 // Now U is used in another statement.
3639 AnyCrossStmtUse = true;
3640
3641 // Do not build a read access that is not in the current SCoP
Michael Krusee2bccbb2015-09-18 19:59:43 +00003642 // Use the def instruction as base address of the MemoryAccess, so that it
3643 // will become the name of the scalar access in the polyhedral form.
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003644 addScalarReadAccess(Inst, UI);
Michael Kruse7bf39442015-09-10 12:46:52 +00003645 }
3646
Tobias Grosserda95a4a2015-09-24 20:59:59 +00003647 if (ModelReadOnlyScalars && !isa<PHINode>(Inst)) {
Michael Kruse7bf39442015-09-10 12:46:52 +00003648 for (Value *Op : Inst->operands()) {
3649 if (canSynthesize(Op, LI, SE, R))
3650 continue;
3651
3652 if (Instruction *OpInst = dyn_cast<Instruction>(Op))
3653 if (R->contains(OpInst))
3654 continue;
3655
3656 if (isa<Constant>(Op))
3657 continue;
3658
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003659 addScalarReadAccess(Op, Inst);
Michael Kruse7bf39442015-09-10 12:46:52 +00003660 }
3661 }
3662
3663 return AnyCrossStmtUse;
3664}
3665
3666extern MapInsnToMemAcc InsnToMemAcc;
3667
Michael Krusee2bccbb2015-09-18 19:59:43 +00003668void ScopInfo::buildMemoryAccess(
3669 Instruction *Inst, Loop *L, Region *R,
Johannes Doerfert09e36972015-10-07 20:17:36 +00003670 const ScopDetection::BoxedLoopsSetTy *BoxedLoops,
3671 const InvariantLoadsSetTy &ScopRIL) {
Michael Kruse7bf39442015-09-10 12:46:52 +00003672 unsigned Size;
3673 Type *SizeType;
3674 Value *Val;
Michael Krusee2bccbb2015-09-18 19:59:43 +00003675 enum MemoryAccess::AccessType Type;
Michael Kruse7bf39442015-09-10 12:46:52 +00003676
3677 if (LoadInst *Load = dyn_cast<LoadInst>(Inst)) {
3678 SizeType = Load->getType();
Johannes Doerfert55b3d8b2015-11-12 20:15:08 +00003679 Size = TD->getTypeAllocSize(SizeType);
Michael Krusee2bccbb2015-09-18 19:59:43 +00003680 Type = MemoryAccess::READ;
Michael Kruse7bf39442015-09-10 12:46:52 +00003681 Val = Load;
3682 } else {
3683 StoreInst *Store = cast<StoreInst>(Inst);
3684 SizeType = Store->getValueOperand()->getType();
Johannes Doerfert55b3d8b2015-11-12 20:15:08 +00003685 Size = TD->getTypeAllocSize(SizeType);
Michael Krusee2bccbb2015-09-18 19:59:43 +00003686 Type = MemoryAccess::MUST_WRITE;
Michael Kruse7bf39442015-09-10 12:46:52 +00003687 Val = Store->getValueOperand();
3688 }
3689
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003690 auto Address = getPointerOperand(*Inst);
3691
3692 const SCEV *AccessFunction = SE->getSCEVAtScope(Address, L);
Michael Kruse7bf39442015-09-10 12:46:52 +00003693 const SCEVUnknown *BasePointer =
3694 dyn_cast<SCEVUnknown>(SE->getPointerBase(AccessFunction));
3695
3696 assert(BasePointer && "Could not find base pointer");
3697 AccessFunction = SE->getMinusSCEV(AccessFunction, BasePointer);
3698
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003699 if (isa<GetElementPtrInst>(Address) || isa<BitCastInst>(Address)) {
3700 auto NewAddress = Address;
3701 if (auto *BitCast = dyn_cast<BitCastInst>(Address)) {
3702 auto Src = BitCast->getOperand(0);
3703 auto SrcTy = Src->getType();
3704 auto DstTy = BitCast->getType();
3705 if (SrcTy->getPrimitiveSizeInBits() == DstTy->getPrimitiveSizeInBits())
3706 NewAddress = Src;
3707 }
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003708
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003709 if (auto *GEP = dyn_cast<GetElementPtrInst>(NewAddress)) {
3710 std::vector<const SCEV *> Subscripts;
3711 std::vector<int> Sizes;
3712 std::tie(Subscripts, Sizes) = getIndexExpressionsFromGEP(GEP, *SE);
3713 auto BasePtr = GEP->getOperand(0);
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003714
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003715 std::vector<const SCEV *> SizesSCEV;
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003716
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003717 bool AllAffineSubcripts = true;
Johannes Doerfert09e36972015-10-07 20:17:36 +00003718 for (auto Subscript : Subscripts) {
3719 InvariantLoadsSetTy AccessILS;
3720 AllAffineSubcripts =
3721 isAffineExpr(R, Subscript, *SE, nullptr, &AccessILS);
3722
3723 for (LoadInst *LInst : AccessILS)
3724 if (!ScopRIL.count(LInst))
3725 AllAffineSubcripts = false;
3726
3727 if (!AllAffineSubcripts)
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003728 break;
Johannes Doerfert09e36972015-10-07 20:17:36 +00003729 }
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003730
3731 if (AllAffineSubcripts && Sizes.size() > 0) {
3732 for (auto V : Sizes)
3733 SizesSCEV.push_back(SE->getSCEV(ConstantInt::get(
3734 IntegerType::getInt64Ty(BasePtr->getContext()), V)));
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003735 SizesSCEV.push_back(SE->getSCEV(ConstantInt::get(
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003736 IntegerType::getInt64Ty(BasePtr->getContext()), Size)));
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003737
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003738 addExplicitAccess(Inst, Type, BasePointer->getValue(), Size, true,
3739 Subscripts, SizesSCEV, Val);
Tobias Grosserb1c39422015-09-21 16:19:25 +00003740 return;
Tobias Grosser6f36d9a2015-09-17 20:16:21 +00003741 }
Tobias Grosser5fd8c092015-09-17 17:28:15 +00003742 }
3743 }
3744
Michael Kruse7bf39442015-09-10 12:46:52 +00003745 auto AccItr = InsnToMemAcc.find(Inst);
Michael Krusee2bccbb2015-09-18 19:59:43 +00003746 if (PollyDelinearize && AccItr != InsnToMemAcc.end()) {
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003747 addExplicitAccess(Inst, Type, BasePointer->getValue(), Size, true,
3748 AccItr->second.DelinearizedSubscripts,
3749 AccItr->second.Shape->DelinearizedSizes, Val);
Michael Krusee2bccbb2015-09-18 19:59:43 +00003750 return;
3751 }
Michael Kruse7bf39442015-09-10 12:46:52 +00003752
3753 // Check if the access depends on a loop contained in a non-affine subregion.
3754 bool isVariantInNonAffineLoop = false;
3755 if (BoxedLoops) {
3756 SetVector<const Loop *> Loops;
3757 findLoops(AccessFunction, Loops);
3758 for (const Loop *L : Loops)
3759 if (BoxedLoops->count(L))
3760 isVariantInNonAffineLoop = true;
3761 }
3762
Johannes Doerfert09e36972015-10-07 20:17:36 +00003763 InvariantLoadsSetTy AccessILS;
3764 bool IsAffine =
3765 !isVariantInNonAffineLoop &&
3766 isAffineExpr(R, AccessFunction, *SE, BasePointer->getValue(), &AccessILS);
3767
3768 for (LoadInst *LInst : AccessILS)
3769 if (!ScopRIL.count(LInst))
3770 IsAffine = false;
Michael Kruse7bf39442015-09-10 12:46:52 +00003771
Michael Krusecaac2b62015-09-26 15:51:44 +00003772 // FIXME: Size of the number of bytes of an array element, not the number of
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003773 // elements as probably intended here.
Tobias Grossera43b6e92015-09-27 17:54:50 +00003774 const SCEV *SizeSCEV =
3775 SE->getConstant(TD->getIntPtrType(Inst->getContext()), Size);
Michael Kruse7bf39442015-09-10 12:46:52 +00003776
Michael Krusee2bccbb2015-09-18 19:59:43 +00003777 if (!IsAffine && Type == MemoryAccess::MUST_WRITE)
3778 Type = MemoryAccess::MAY_WRITE;
Michael Kruse7bf39442015-09-10 12:46:52 +00003779
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003780 addExplicitAccess(Inst, Type, BasePointer->getValue(), Size, IsAffine,
3781 ArrayRef<const SCEV *>(AccessFunction),
3782 ArrayRef<const SCEV *>(SizeSCEV), Val);
Michael Kruse7bf39442015-09-10 12:46:52 +00003783}
3784
Michael Krused868b5d2015-09-10 15:25:24 +00003785void ScopInfo::buildAccessFunctions(Region &R, Region &SR) {
Michael Kruse7bf39442015-09-10 12:46:52 +00003786
3787 if (SD->isNonAffineSubRegion(&SR, &R)) {
3788 for (BasicBlock *BB : SR.blocks())
3789 buildAccessFunctions(R, *BB, &SR);
3790 return;
3791 }
3792
3793 for (auto I = SR.element_begin(), E = SR.element_end(); I != E; ++I)
3794 if (I->isSubRegion())
3795 buildAccessFunctions(R, *I->getNodeAs<Region>());
3796 else
3797 buildAccessFunctions(R, *I->getNodeAs<BasicBlock>());
3798}
3799
Michael Krusecac948e2015-10-02 13:53:07 +00003800void ScopInfo::buildStmts(Region &SR) {
3801 Region *R = getRegion();
3802
3803 if (SD->isNonAffineSubRegion(&SR, R)) {
3804 scop->addScopStmt(nullptr, &SR);
3805 return;
3806 }
3807
3808 for (auto I = SR.element_begin(), E = SR.element_end(); I != E; ++I)
3809 if (I->isSubRegion())
3810 buildStmts(*I->getNodeAs<Region>());
3811 else
3812 scop->addScopStmt(I->getNodeAs<BasicBlock>(), nullptr);
3813}
3814
Michael Krused868b5d2015-09-10 15:25:24 +00003815void ScopInfo::buildAccessFunctions(Region &R, BasicBlock &BB,
3816 Region *NonAffineSubRegion,
3817 bool IsExitBlock) {
Tobias Grosser910cf262015-11-11 20:15:49 +00003818 // We do not build access functions for error blocks, as they may contain
3819 // instructions we can not model.
3820 DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
3821 if (isErrorBlock(BB, R, *LI, DT) && !IsExitBlock)
3822 return;
3823
Michael Kruse7bf39442015-09-10 12:46:52 +00003824 Loop *L = LI->getLoopFor(&BB);
3825
3826 // The set of loops contained in non-affine subregions that are part of R.
3827 const ScopDetection::BoxedLoopsSetTy *BoxedLoops = SD->getBoxedLoops(&R);
3828
Johannes Doerfert09e36972015-10-07 20:17:36 +00003829 // The set of loads that are required to be invariant.
3830 auto &ScopRIL = *SD->getRequiredInvariantLoads(&R);
3831
Michael Kruse7bf39442015-09-10 12:46:52 +00003832 for (BasicBlock::iterator I = BB.begin(), E = --BB.end(); I != E; ++I) {
Duncan P. N. Exon Smithb8f58b52015-11-06 22:56:54 +00003833 Instruction *Inst = &*I;
Michael Kruse7bf39442015-09-10 12:46:52 +00003834
3835 PHINode *PHI = dyn_cast<PHINode>(Inst);
3836 if (PHI)
Michael Krusee2bccbb2015-09-18 19:59:43 +00003837 buildPHIAccesses(PHI, R, NonAffineSubRegion, IsExitBlock);
Michael Kruse7bf39442015-09-10 12:46:52 +00003838
3839 // For the exit block we stop modeling after the last PHI node.
3840 if (!PHI && IsExitBlock)
3841 break;
3842
Johannes Doerfert09e36972015-10-07 20:17:36 +00003843 // TODO: At this point we only know that elements of ScopRIL have to be
3844 // invariant and will be hoisted for the SCoP to be processed. Though,
3845 // there might be other invariant accesses that will be hoisted and
3846 // that would allow to make a non-affine access affine.
Michael Kruse7bf39442015-09-10 12:46:52 +00003847 if (isa<LoadInst>(Inst) || isa<StoreInst>(Inst))
Johannes Doerfert09e36972015-10-07 20:17:36 +00003848 buildMemoryAccess(Inst, L, &R, BoxedLoops, ScopRIL);
Michael Kruse7bf39442015-09-10 12:46:52 +00003849
3850 if (isIgnoredIntrinsic(Inst))
3851 continue;
3852
Johannes Doerfert09e36972015-10-07 20:17:36 +00003853 // Do not build scalar dependences for required invariant loads as we will
3854 // hoist them later on anyway or drop the SCoP if we cannot.
3855 if (ScopRIL.count(dyn_cast<LoadInst>(Inst)))
3856 continue;
3857
Michael Kruse7bf39442015-09-10 12:46:52 +00003858 if (buildScalarDependences(Inst, &R, NonAffineSubRegion)) {
Michael Krusee2bccbb2015-09-18 19:59:43 +00003859 if (!isa<StoreInst>(Inst))
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003860 addScalarWriteAccess(Inst);
Michael Kruse7bf39442015-09-10 12:46:52 +00003861 }
3862 }
Michael Krusee2bccbb2015-09-18 19:59:43 +00003863}
Michael Kruse7bf39442015-09-10 12:46:52 +00003864
Michael Kruse2d0ece92015-09-24 11:41:21 +00003865void ScopInfo::addMemoryAccess(BasicBlock *BB, Instruction *Inst,
3866 MemoryAccess::AccessType Type,
3867 Value *BaseAddress, unsigned ElemBytes,
3868 bool Affine, Value *AccessValue,
3869 ArrayRef<const SCEV *> Subscripts,
Michael Kruse8d0b7342015-09-25 21:21:00 +00003870 ArrayRef<const SCEV *> Sizes,
3871 MemoryAccess::AccessOrigin Origin) {
Michael Krusecac948e2015-10-02 13:53:07 +00003872 ScopStmt *Stmt = scop->getStmtForBasicBlock(BB);
3873
3874 // Do not create a memory access for anything not in the SCoP. It would be
3875 // ignored anyway.
3876 if (!Stmt)
3877 return;
3878
Michael Krusee2bccbb2015-09-18 19:59:43 +00003879 AccFuncSetType &AccList = AccFuncMap[BB];
Michael Krusee2bccbb2015-09-18 19:59:43 +00003880 Value *BaseAddr = BaseAddress;
3881 std::string BaseName = getIslCompatibleName("MemRef_", BaseAddr, "");
3882
Michael Krusecac948e2015-10-02 13:53:07 +00003883 bool isApproximated =
3884 Stmt->isRegionStmt() && (Stmt->getRegion()->getEntry() != BB);
3885 if (isApproximated && Type == MemoryAccess::MUST_WRITE)
3886 Type = MemoryAccess::MAY_WRITE;
3887
Tobias Grosserf1bfd752015-11-05 20:15:37 +00003888 AccList.emplace_back(Stmt, Inst, Type, BaseAddress, ElemBytes, Affine,
Michael Kruse8d0b7342015-09-25 21:21:00 +00003889 Subscripts, Sizes, AccessValue, Origin, BaseName);
Michael Krusecac948e2015-10-02 13:53:07 +00003890 Stmt->addAccess(&AccList.back());
Michael Kruse7bf39442015-09-10 12:46:52 +00003891}
3892
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003893void ScopInfo::addExplicitAccess(
3894 Instruction *MemAccInst, MemoryAccess::AccessType Type, Value *BaseAddress,
3895 unsigned ElemBytes, bool IsAffine, ArrayRef<const SCEV *> Subscripts,
3896 ArrayRef<const SCEV *> Sizes, Value *AccessValue) {
3897 assert(isa<LoadInst>(MemAccInst) || isa<StoreInst>(MemAccInst));
3898 assert(isa<LoadInst>(MemAccInst) == (Type == MemoryAccess::READ));
3899 addMemoryAccess(MemAccInst->getParent(), MemAccInst, Type, BaseAddress,
Michael Kruse8d0b7342015-09-25 21:21:00 +00003900 ElemBytes, IsAffine, AccessValue, Subscripts, Sizes,
3901 MemoryAccess::EXPLICIT);
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003902}
3903void ScopInfo::addScalarWriteAccess(Instruction *Value) {
3904 addMemoryAccess(Value->getParent(), Value, MemoryAccess::MUST_WRITE, Value, 1,
3905 true, Value, ArrayRef<const SCEV *>(),
Michael Kruse8d0b7342015-09-25 21:21:00 +00003906 ArrayRef<const SCEV *>(), MemoryAccess::SCALAR);
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003907}
3908void ScopInfo::addScalarReadAccess(Value *Value, Instruction *User) {
3909 assert(!isa<PHINode>(User));
3910 addMemoryAccess(User->getParent(), User, MemoryAccess::READ, Value, 1, true,
3911 Value, ArrayRef<const SCEV *>(), ArrayRef<const SCEV *>(),
Michael Kruse8d0b7342015-09-25 21:21:00 +00003912 MemoryAccess::SCALAR);
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003913}
3914void ScopInfo::addScalarReadAccess(Value *Value, PHINode *User,
3915 BasicBlock *UserBB) {
3916 addMemoryAccess(UserBB, User, MemoryAccess::READ, Value, 1, true, Value,
Michael Kruse8d0b7342015-09-25 21:21:00 +00003917 ArrayRef<const SCEV *>(), ArrayRef<const SCEV *>(),
3918 MemoryAccess::SCALAR);
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003919}
3920void ScopInfo::addPHIWriteAccess(PHINode *PHI, BasicBlock *IncomingBlock,
3921 Value *IncomingValue, bool IsExitBlock) {
3922 addMemoryAccess(IncomingBlock, IncomingBlock->getTerminator(),
3923 MemoryAccess::MUST_WRITE, PHI, 1, true, IncomingValue,
3924 ArrayRef<const SCEV *>(), ArrayRef<const SCEV *>(),
Michael Krusecba170e2015-11-26 12:26:06 +00003925 IsExitBlock ? MemoryAccess::EXIT_PHI : MemoryAccess::PHI);
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003926}
3927void ScopInfo::addPHIReadAccess(PHINode *PHI) {
3928 addMemoryAccess(PHI->getParent(), PHI, MemoryAccess::READ, PHI, 1, true, PHI,
Michael Kruse8d0b7342015-09-25 21:21:00 +00003929 ArrayRef<const SCEV *>(), ArrayRef<const SCEV *>(),
3930 MemoryAccess::PHI);
Michael Kruse33d6c0b2015-09-25 18:53:27 +00003931}
3932
Johannes Doerfert2af10e22015-11-12 03:25:01 +00003933void ScopInfo::buildScop(Region &R, DominatorTree &DT, AssumptionCache &AC) {
Michael Kruse9d080092015-09-11 21:41:48 +00003934 unsigned MaxLoopDepth = getMaxLoopDepthInRegion(R, *LI, *SD);
Johannes Doerfertd8dd8632015-10-07 20:31:36 +00003935 scop = new Scop(R, AccFuncMap, *SD, *SE, DT, *LI, ctx, MaxLoopDepth);
Michael Kruse7bf39442015-09-10 12:46:52 +00003936
Michael Krusecac948e2015-10-02 13:53:07 +00003937 buildStmts(R);
Michael Kruse7bf39442015-09-10 12:46:52 +00003938 buildAccessFunctions(R, R);
3939
3940 // In case the region does not have an exiting block we will later (during
3941 // code generation) split the exit block. This will move potential PHI nodes
3942 // from the current exit block into the new region exiting block. Hence, PHI
3943 // nodes that are at this point not part of the region will be.
3944 // To handle these PHI nodes later we will now model their operands as scalar
3945 // accesses. Note that we do not model anything in the exit block if we have
3946 // an exiting block in the region, as there will not be any splitting later.
3947 if (!R.getExitingBlock())
3948 buildAccessFunctions(R, *R.getExit(), nullptr, /* IsExitBlock */ true);
3949
Johannes Doerfert2af10e22015-11-12 03:25:01 +00003950 scop->init(*AA, AC);
Michael Kruse7bf39442015-09-10 12:46:52 +00003951}
3952
Michael Krused868b5d2015-09-10 15:25:24 +00003953void ScopInfo::print(raw_ostream &OS, const Module *) const {
Michael Kruse9d080092015-09-11 21:41:48 +00003954 if (!scop) {
Michael Krused868b5d2015-09-10 15:25:24 +00003955 OS << "Invalid Scop!\n";
Michael Kruse9d080092015-09-11 21:41:48 +00003956 return;
3957 }
3958
Michael Kruse9d080092015-09-11 21:41:48 +00003959 scop->print(OS);
Michael Kruse7bf39442015-09-10 12:46:52 +00003960}
3961
Michael Krused868b5d2015-09-10 15:25:24 +00003962void ScopInfo::clear() {
Michael Kruse7bf39442015-09-10 12:46:52 +00003963 AccFuncMap.clear();
Michael Krused868b5d2015-09-10 15:25:24 +00003964 if (scop) {
3965 delete scop;
3966 scop = 0;
3967 }
Michael Kruse7bf39442015-09-10 12:46:52 +00003968}
3969
3970//===----------------------------------------------------------------------===//
Michael Kruse9d080092015-09-11 21:41:48 +00003971ScopInfo::ScopInfo() : RegionPass(ID), scop(0) {
Tobias Grosserb76f38532011-08-20 11:11:25 +00003972 ctx = isl_ctx_alloc();
Tobias Grosser4a8e3562011-12-07 07:42:51 +00003973 isl_options_set_on_error(ctx, ISL_ON_ERROR_ABORT);
Tobias Grosserb76f38532011-08-20 11:11:25 +00003974}
3975
3976ScopInfo::~ScopInfo() {
3977 clear();
3978 isl_ctx_free(ctx);
3979}
3980
Tobias Grosser75805372011-04-29 06:27:02 +00003981void ScopInfo::getAnalysisUsage(AnalysisUsage &AU) const {
Chandler Carruthf5579872015-01-17 14:16:56 +00003982 AU.addRequired<LoopInfoWrapperPass>();
Matt Arsenault8ca36812014-07-19 18:40:17 +00003983 AU.addRequired<RegionInfoPass>();
Johannes Doerfert96425c22015-08-30 21:13:53 +00003984 AU.addRequired<DominatorTreeWrapperPass>();
Michael Krused868b5d2015-09-10 15:25:24 +00003985 AU.addRequiredTransitive<ScalarEvolutionWrapperPass>();
3986 AU.addRequiredTransitive<ScopDetection>();
Chandler Carruth66ef16b2015-09-09 22:13:56 +00003987 AU.addRequired<AAResultsWrapperPass>();
Johannes Doerfert2af10e22015-11-12 03:25:01 +00003988 AU.addRequired<AssumptionCacheTracker>();
Tobias Grosser75805372011-04-29 06:27:02 +00003989 AU.setPreservesAll();
3990}
3991
3992bool ScopInfo::runOnRegion(Region *R, RGPassManager &RGM) {
Michael Krused868b5d2015-09-10 15:25:24 +00003993 SD = &getAnalysis<ScopDetection>();
Tobias Grosser75805372011-04-29 06:27:02 +00003994
Michael Krused868b5d2015-09-10 15:25:24 +00003995 if (!SD->isMaxRegionInScop(*R))
3996 return false;
3997
3998 Function *F = R->getEntry()->getParent();
3999 SE = &getAnalysis<ScalarEvolutionWrapperPass>().getSE();
4000 LI = &getAnalysis<LoopInfoWrapperPass>().getLoopInfo();
4001 AA = &getAnalysis<AAResultsWrapperPass>().getAAResults();
4002 TD = &F->getParent()->getDataLayout();
4003 DominatorTree &DT = getAnalysis<DominatorTreeWrapperPass>().getDomTree();
Johannes Doerfert2af10e22015-11-12 03:25:01 +00004004 auto &AC = getAnalysis<AssumptionCacheTracker>().getAssumptionCache(*F);
Michael Krused868b5d2015-09-10 15:25:24 +00004005
Johannes Doerfert48fe86f2015-11-12 02:32:32 +00004006 DebugLoc Beg, End;
4007 getDebugLocations(R, Beg, End);
4008 std::string Msg = "SCoP begins here.";
4009 emitOptimizationRemarkAnalysis(F->getContext(), DEBUG_TYPE, *F, Beg, Msg);
4010
Johannes Doerfert2af10e22015-11-12 03:25:01 +00004011 buildScop(*R, DT, AC);
Tobias Grosser75805372011-04-29 06:27:02 +00004012
Tobias Grosserd6a50b32015-05-30 06:26:21 +00004013 DEBUG(scop->print(dbgs()));
4014
Michael Kruseafe06702015-10-02 16:33:27 +00004015 if (scop->isEmpty() || !scop->hasFeasibleRuntimeContext()) {
Johannes Doerfert48fe86f2015-11-12 02:32:32 +00004016 Msg = "SCoP ends here but was dismissed.";
Johannes Doerfert43788c52015-08-20 05:58:56 +00004017 delete scop;
4018 scop = nullptr;
Johannes Doerfert48fe86f2015-11-12 02:32:32 +00004019 } else {
4020 Msg = "SCoP ends here.";
4021 ++ScopFound;
4022 if (scop->getMaxLoopDepth() > 0)
4023 ++RichScopFound;
Johannes Doerfert43788c52015-08-20 05:58:56 +00004024 }
4025
Johannes Doerfert48fe86f2015-11-12 02:32:32 +00004026 emitOptimizationRemarkAnalysis(F->getContext(), DEBUG_TYPE, *F, End, Msg);
4027
Tobias Grosser75805372011-04-29 06:27:02 +00004028 return false;
4029}
4030
4031char ScopInfo::ID = 0;
4032
Tobias Grosser4d96c8d2013-03-23 01:05:07 +00004033Pass *polly::createScopInfoPass() { return new ScopInfo(); }
4034
Tobias Grosser73600b82011-10-08 00:30:40 +00004035INITIALIZE_PASS_BEGIN(ScopInfo, "polly-scops",
4036 "Polly - Create polyhedral description of Scops", false,
Tobias Grosser4d96c8d2013-03-23 01:05:07 +00004037 false);
Chandler Carruth66ef16b2015-09-09 22:13:56 +00004038INITIALIZE_PASS_DEPENDENCY(AAResultsWrapperPass);
Johannes Doerfert2af10e22015-11-12 03:25:01 +00004039INITIALIZE_PASS_DEPENDENCY(AssumptionCacheTracker);
Chandler Carruthf5579872015-01-17 14:16:56 +00004040INITIALIZE_PASS_DEPENDENCY(LoopInfoWrapperPass);
Matt Arsenault8ca36812014-07-19 18:40:17 +00004041INITIALIZE_PASS_DEPENDENCY(RegionInfoPass);
Tobias Grosserc5bcf242015-08-17 10:57:08 +00004042INITIALIZE_PASS_DEPENDENCY(ScalarEvolutionWrapperPass);
Johannes Doerfertff9d1982015-02-24 12:00:50 +00004043INITIALIZE_PASS_DEPENDENCY(ScopDetection);
Johannes Doerfert96425c22015-08-30 21:13:53 +00004044INITIALIZE_PASS_DEPENDENCY(DominatorTreeWrapperPass);
Tobias Grosser73600b82011-10-08 00:30:40 +00004045INITIALIZE_PASS_END(ScopInfo, "polly-scops",
4046 "Polly - Create polyhedral description of Scops", false,
4047 false)