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Dan Gohman2d1be872009-04-16 03:18:22 +00001//===- LoopStrengthReduce.cpp - Strength Reduce IVs in Loops --------------===//
Misha Brukmanfd939082005-04-21 23:48:37 +00002//
Nate Begemaneaa13852004-10-18 21:08:22 +00003// The LLVM Compiler Infrastructure
4//
Chris Lattner4ee451d2007-12-29 20:36:04 +00005// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
Misha Brukmanfd939082005-04-21 23:48:37 +00007//
Nate Begemaneaa13852004-10-18 21:08:22 +00008//===----------------------------------------------------------------------===//
9//
Dan Gohmancec8f9d2009-05-19 20:37:36 +000010// This transformation analyzes and transforms the induction variables (and
11// computations derived from them) into forms suitable for efficient execution
12// on the target.
13//
Nate Begemaneaa13852004-10-18 21:08:22 +000014// This pass performs a strength reduction on array references inside loops that
Dan Gohmancec8f9d2009-05-19 20:37:36 +000015// have as one or more of their components the loop induction variable, it
16// rewrites expressions to take advantage of scaled-index addressing modes
17// available on the target, and it performs a variety of other optimizations
18// related to loop induction variables.
Nate Begemaneaa13852004-10-18 21:08:22 +000019//
Dan Gohman572645c2010-02-12 10:34:29 +000020// Terminology note: this code has a lot of handling for "post-increment" or
21// "post-inc" users. This is not talking about post-increment addressing modes;
22// it is instead talking about code like this:
23//
24// %i = phi [ 0, %entry ], [ %i.next, %latch ]
25// ...
26// %i.next = add %i, 1
27// %c = icmp eq %i.next, %n
28//
29// The SCEV for %i is {0,+,1}<%L>. The SCEV for %i.next is {1,+,1}<%L>, however
30// it's useful to think about these as the same register, with some uses using
31// the value of the register before the add and some using // it after. In this
32// example, the icmp is a post-increment user, since it uses %i.next, which is
33// the value of the induction variable after the increment. The other common
34// case of post-increment users is users outside the loop.
35//
36// TODO: More sophistication in the way Formulae are generated and filtered.
37//
38// TODO: Handle multiple loops at a time.
39//
40// TODO: Should TargetLowering::AddrMode::BaseGV be changed to a ConstantExpr
41// instead of a GlobalValue?
42//
43// TODO: When truncation is free, truncate ICmp users' operands to make it a
44// smaller encoding (on x86 at least).
45//
46// TODO: When a negated register is used by an add (such as in a list of
47// multiple base registers, or as the increment expression in an addrec),
48// we may not actually need both reg and (-1 * reg) in registers; the
49// negation can be implemented by using a sub instead of an add. The
50// lack of support for taking this into consideration when making
51// register pressure decisions is partly worked around by the "Special"
52// use kind.
53//
Nate Begemaneaa13852004-10-18 21:08:22 +000054//===----------------------------------------------------------------------===//
55
Chris Lattnerbe3e5212005-08-03 23:30:08 +000056#define DEBUG_TYPE "loop-reduce"
Nate Begemaneaa13852004-10-18 21:08:22 +000057#include "llvm/Transforms/Scalar.h"
58#include "llvm/Constants.h"
59#include "llvm/Instructions.h"
Dan Gohmane5b01be2007-05-04 14:59:09 +000060#include "llvm/IntrinsicInst.h"
Jeff Cohen2f3c9b72005-03-04 04:04:26 +000061#include "llvm/DerivedTypes.h"
Dan Gohman81db61a2009-05-12 02:17:14 +000062#include "llvm/Analysis/IVUsers.h"
Dan Gohman572645c2010-02-12 10:34:29 +000063#include "llvm/Analysis/Dominators.h"
Devang Patel0f54dcb2007-03-06 21:14:09 +000064#include "llvm/Analysis/LoopPass.h"
Nate Begeman16997482005-07-30 00:15:07 +000065#include "llvm/Analysis/ScalarEvolutionExpander.h"
Chris Lattner9fc5cdf2011-01-02 22:09:33 +000066#include "llvm/Assembly/Writer.h"
Chris Lattnere0391be2005-08-12 22:06:11 +000067#include "llvm/Transforms/Utils/BasicBlockUtils.h"
Nate Begemaneaa13852004-10-18 21:08:22 +000068#include "llvm/Transforms/Utils/Local.h"
Dan Gohman572645c2010-02-12 10:34:29 +000069#include "llvm/ADT/SmallBitVector.h"
70#include "llvm/ADT/SetVector.h"
71#include "llvm/ADT/DenseSet.h"
Nate Begeman16997482005-07-30 00:15:07 +000072#include "llvm/Support/Debug.h"
Andrew Trick80ef1b22011-09-27 00:44:14 +000073#include "llvm/Support/CommandLine.h"
Dan Gohmanafc36a92009-05-02 18:29:22 +000074#include "llvm/Support/ValueHandle.h"
Daniel Dunbar460f6562009-07-26 09:48:23 +000075#include "llvm/Support/raw_ostream.h"
Evan Chengd277f2c2006-03-13 23:14:23 +000076#include "llvm/Target/TargetLowering.h"
Jeff Cohencfb1d422005-07-30 18:22:27 +000077#include <algorithm>
Nate Begemaneaa13852004-10-18 21:08:22 +000078using namespace llvm;
79
Andrew Tricka02bfce2011-10-11 02:30:45 +000080// Temporary flag to cleanup congruent phis after LSR phi expansion.
81// It's currently disabled until we can determine whether it's truly useful or
82// not. The flag should be removed after the v3.0 release.
Andrew Trick24f670f2012-01-07 07:08:17 +000083// This is now needed for ivchains.
Benjamin Kramer0861f572011-11-26 23:01:57 +000084static cl::opt<bool> EnablePhiElim(
Andrew Trick24f670f2012-01-07 07:08:17 +000085 "enable-lsr-phielim", cl::Hidden, cl::init(true),
86 cl::desc("Enable LSR phi elimination"));
Andrew Trick80ef1b22011-09-27 00:44:14 +000087
Andrew Trick22d20c22012-01-09 21:18:52 +000088#ifndef NDEBUG
89// Stress test IV chain generation.
90static cl::opt<bool> StressIVChain(
91 "stress-ivchain", cl::Hidden, cl::init(false),
92 cl::desc("Stress test LSR IV chains"));
93#else
94static bool StressIVChain = false;
95#endif
96
Dan Gohman572645c2010-02-12 10:34:29 +000097namespace {
Nate Begemaneaa13852004-10-18 21:08:22 +000098
Dan Gohman572645c2010-02-12 10:34:29 +000099/// RegSortData - This class holds data which is used to order reuse candidates.
100class RegSortData {
101public:
102 /// UsedByIndices - This represents the set of LSRUse indices which reference
103 /// a particular register.
104 SmallBitVector UsedByIndices;
105
106 RegSortData() {}
107
108 void print(raw_ostream &OS) const;
109 void dump() const;
110};
111
112}
113
114void RegSortData::print(raw_ostream &OS) const {
115 OS << "[NumUses=" << UsedByIndices.count() << ']';
116}
117
118void RegSortData::dump() const {
119 print(errs()); errs() << '\n';
120}
Dan Gohmanc17e0cf2009-02-20 04:17:46 +0000121
Chris Lattner0e5f4992006-12-19 21:40:18 +0000122namespace {
Dale Johannesendc42f482007-03-20 00:47:50 +0000123
Dan Gohman572645c2010-02-12 10:34:29 +0000124/// RegUseTracker - Map register candidates to information about how they are
125/// used.
126class RegUseTracker {
127 typedef DenseMap<const SCEV *, RegSortData> RegUsesTy;
Dale Johannesendc42f482007-03-20 00:47:50 +0000128
Dan Gohman90bb3552010-05-18 22:33:00 +0000129 RegUsesTy RegUsesMap;
Dan Gohman572645c2010-02-12 10:34:29 +0000130 SmallVector<const SCEV *, 16> RegSequence;
Evan Chengd1d6b5c2006-03-16 21:53:05 +0000131
Dan Gohman572645c2010-02-12 10:34:29 +0000132public:
133 void CountRegister(const SCEV *Reg, size_t LUIdx);
Dan Gohmanb2df4332010-05-18 23:42:37 +0000134 void DropRegister(const SCEV *Reg, size_t LUIdx);
Dan Gohmanc6897702010-10-07 23:33:43 +0000135 void SwapAndDropUse(size_t LUIdx, size_t LastLUIdx);
Dan Gohmana10756e2010-01-21 02:09:26 +0000136
Dan Gohman572645c2010-02-12 10:34:29 +0000137 bool isRegUsedByUsesOtherThan(const SCEV *Reg, size_t LUIdx) const;
Dan Gohmana10756e2010-01-21 02:09:26 +0000138
Dan Gohman572645c2010-02-12 10:34:29 +0000139 const SmallBitVector &getUsedByIndices(const SCEV *Reg) const;
Dan Gohmana10756e2010-01-21 02:09:26 +0000140
Dan Gohman572645c2010-02-12 10:34:29 +0000141 void clear();
Dan Gohmana10756e2010-01-21 02:09:26 +0000142
Dan Gohman572645c2010-02-12 10:34:29 +0000143 typedef SmallVectorImpl<const SCEV *>::iterator iterator;
144 typedef SmallVectorImpl<const SCEV *>::const_iterator const_iterator;
145 iterator begin() { return RegSequence.begin(); }
146 iterator end() { return RegSequence.end(); }
147 const_iterator begin() const { return RegSequence.begin(); }
148 const_iterator end() const { return RegSequence.end(); }
149};
Dan Gohmana10756e2010-01-21 02:09:26 +0000150
Dan Gohmana10756e2010-01-21 02:09:26 +0000151}
152
Dan Gohman572645c2010-02-12 10:34:29 +0000153void
154RegUseTracker::CountRegister(const SCEV *Reg, size_t LUIdx) {
155 std::pair<RegUsesTy::iterator, bool> Pair =
Dan Gohman90bb3552010-05-18 22:33:00 +0000156 RegUsesMap.insert(std::make_pair(Reg, RegSortData()));
Dan Gohman572645c2010-02-12 10:34:29 +0000157 RegSortData &RSD = Pair.first->second;
158 if (Pair.second)
159 RegSequence.push_back(Reg);
160 RSD.UsedByIndices.resize(std::max(RSD.UsedByIndices.size(), LUIdx + 1));
161 RSD.UsedByIndices.set(LUIdx);
Dan Gohmana10756e2010-01-21 02:09:26 +0000162}
163
Dan Gohmanb2df4332010-05-18 23:42:37 +0000164void
165RegUseTracker::DropRegister(const SCEV *Reg, size_t LUIdx) {
166 RegUsesTy::iterator It = RegUsesMap.find(Reg);
167 assert(It != RegUsesMap.end());
168 RegSortData &RSD = It->second;
169 assert(RSD.UsedByIndices.size() > LUIdx);
170 RSD.UsedByIndices.reset(LUIdx);
171}
172
Dan Gohmana2086b32010-05-19 23:43:12 +0000173void
Dan Gohmanc6897702010-10-07 23:33:43 +0000174RegUseTracker::SwapAndDropUse(size_t LUIdx, size_t LastLUIdx) {
175 assert(LUIdx <= LastLUIdx);
176
177 // Update RegUses. The data structure is not optimized for this purpose;
178 // we must iterate through it and update each of the bit vectors.
Dan Gohmana2086b32010-05-19 23:43:12 +0000179 for (RegUsesTy::iterator I = RegUsesMap.begin(), E = RegUsesMap.end();
Dan Gohmanc6897702010-10-07 23:33:43 +0000180 I != E; ++I) {
181 SmallBitVector &UsedByIndices = I->second.UsedByIndices;
182 if (LUIdx < UsedByIndices.size())
183 UsedByIndices[LUIdx] =
184 LastLUIdx < UsedByIndices.size() ? UsedByIndices[LastLUIdx] : 0;
185 UsedByIndices.resize(std::min(UsedByIndices.size(), LastLUIdx));
186 }
Dan Gohmana2086b32010-05-19 23:43:12 +0000187}
188
Dan Gohman572645c2010-02-12 10:34:29 +0000189bool
190RegUseTracker::isRegUsedByUsesOtherThan(const SCEV *Reg, size_t LUIdx) const {
Dan Gohman46fd7a62010-08-29 15:18:49 +0000191 RegUsesTy::const_iterator I = RegUsesMap.find(Reg);
192 if (I == RegUsesMap.end())
193 return false;
194 const SmallBitVector &UsedByIndices = I->second.UsedByIndices;
Dan Gohman572645c2010-02-12 10:34:29 +0000195 int i = UsedByIndices.find_first();
196 if (i == -1) return false;
197 if ((size_t)i != LUIdx) return true;
198 return UsedByIndices.find_next(i) != -1;
199}
Dan Gohmana10756e2010-01-21 02:09:26 +0000200
Dan Gohman572645c2010-02-12 10:34:29 +0000201const SmallBitVector &RegUseTracker::getUsedByIndices(const SCEV *Reg) const {
Dan Gohman90bb3552010-05-18 22:33:00 +0000202 RegUsesTy::const_iterator I = RegUsesMap.find(Reg);
203 assert(I != RegUsesMap.end() && "Unknown register!");
Dan Gohman572645c2010-02-12 10:34:29 +0000204 return I->second.UsedByIndices;
205}
Dan Gohmana10756e2010-01-21 02:09:26 +0000206
Dan Gohman572645c2010-02-12 10:34:29 +0000207void RegUseTracker::clear() {
Dan Gohman90bb3552010-05-18 22:33:00 +0000208 RegUsesMap.clear();
Dan Gohman572645c2010-02-12 10:34:29 +0000209 RegSequence.clear();
210}
Dan Gohmana10756e2010-01-21 02:09:26 +0000211
Dan Gohman572645c2010-02-12 10:34:29 +0000212namespace {
213
214/// Formula - This class holds information that describes a formula for
215/// computing satisfying a use. It may include broken-out immediates and scaled
216/// registers.
217struct Formula {
218 /// AM - This is used to represent complex addressing, as well as other kinds
219 /// of interesting uses.
220 TargetLowering::AddrMode AM;
221
222 /// BaseRegs - The list of "base" registers for this use. When this is
223 /// non-empty, AM.HasBaseReg should be set to true.
224 SmallVector<const SCEV *, 2> BaseRegs;
225
226 /// ScaledReg - The 'scaled' register for this use. This should be non-null
227 /// when AM.Scale is not zero.
228 const SCEV *ScaledReg;
229
Dan Gohmancca82142011-05-03 00:46:49 +0000230 /// UnfoldedOffset - An additional constant offset which added near the
231 /// use. This requires a temporary register, but the offset itself can
232 /// live in an add immediate field rather than a register.
233 int64_t UnfoldedOffset;
234
235 Formula() : ScaledReg(0), UnfoldedOffset(0) {}
Dan Gohman572645c2010-02-12 10:34:29 +0000236
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000237 void InitialMatch(const SCEV *S, Loop *L, ScalarEvolution &SE);
Dan Gohman572645c2010-02-12 10:34:29 +0000238
239 unsigned getNumRegs() const;
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000240 Type *getType() const;
Dan Gohman572645c2010-02-12 10:34:29 +0000241
Dan Gohman5ce6d052010-05-20 15:17:54 +0000242 void DeleteBaseReg(const SCEV *&S);
243
Dan Gohman572645c2010-02-12 10:34:29 +0000244 bool referencesReg(const SCEV *S) const;
245 bool hasRegsUsedByUsesOtherThan(size_t LUIdx,
246 const RegUseTracker &RegUses) const;
247
248 void print(raw_ostream &OS) const;
249 void dump() const;
250};
251
252}
253
Dan Gohman3f46a3a2010-03-01 17:49:51 +0000254/// DoInitialMatch - Recursion helper for InitialMatch.
Dan Gohman572645c2010-02-12 10:34:29 +0000255static void DoInitialMatch(const SCEV *S, Loop *L,
256 SmallVectorImpl<const SCEV *> &Good,
257 SmallVectorImpl<const SCEV *> &Bad,
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000258 ScalarEvolution &SE) {
Dan Gohman572645c2010-02-12 10:34:29 +0000259 // Collect expressions which properly dominate the loop header.
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000260 if (SE.properlyDominates(S, L->getHeader())) {
Dan Gohman572645c2010-02-12 10:34:29 +0000261 Good.push_back(S);
262 return;
Dan Gohmana10756e2010-01-21 02:09:26 +0000263 }
Dan Gohman572645c2010-02-12 10:34:29 +0000264
265 // Look at add operands.
266 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
267 for (SCEVAddExpr::op_iterator I = Add->op_begin(), E = Add->op_end();
268 I != E; ++I)
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000269 DoInitialMatch(*I, L, Good, Bad, SE);
Dan Gohman572645c2010-02-12 10:34:29 +0000270 return;
271 }
272
273 // Look at addrec operands.
274 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S))
275 if (!AR->getStart()->isZero()) {
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000276 DoInitialMatch(AR->getStart(), L, Good, Bad, SE);
Dan Gohmandeff6212010-05-03 22:09:21 +0000277 DoInitialMatch(SE.getAddRecExpr(SE.getConstant(AR->getType(), 0),
Dan Gohman572645c2010-02-12 10:34:29 +0000278 AR->getStepRecurrence(SE),
Andrew Trick3228cc22011-03-14 16:50:06 +0000279 // FIXME: AR->getNoWrapFlags()
280 AR->getLoop(), SCEV::FlagAnyWrap),
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000281 L, Good, Bad, SE);
Dan Gohman572645c2010-02-12 10:34:29 +0000282 return;
283 }
284
285 // Handle a multiplication by -1 (negation) if it didn't fold.
286 if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(S))
287 if (Mul->getOperand(0)->isAllOnesValue()) {
288 SmallVector<const SCEV *, 4> Ops(Mul->op_begin()+1, Mul->op_end());
289 const SCEV *NewMul = SE.getMulExpr(Ops);
290
291 SmallVector<const SCEV *, 4> MyGood;
292 SmallVector<const SCEV *, 4> MyBad;
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000293 DoInitialMatch(NewMul, L, MyGood, MyBad, SE);
Dan Gohman572645c2010-02-12 10:34:29 +0000294 const SCEV *NegOne = SE.getSCEV(ConstantInt::getAllOnesValue(
295 SE.getEffectiveSCEVType(NewMul->getType())));
296 for (SmallVectorImpl<const SCEV *>::const_iterator I = MyGood.begin(),
297 E = MyGood.end(); I != E; ++I)
298 Good.push_back(SE.getMulExpr(NegOne, *I));
299 for (SmallVectorImpl<const SCEV *>::const_iterator I = MyBad.begin(),
300 E = MyBad.end(); I != E; ++I)
301 Bad.push_back(SE.getMulExpr(NegOne, *I));
302 return;
303 }
304
305 // Ok, we can't do anything interesting. Just stuff the whole thing into a
306 // register and hope for the best.
307 Bad.push_back(S);
308}
309
310/// InitialMatch - Incorporate loop-variant parts of S into this Formula,
311/// attempting to keep all loop-invariant and loop-computable values in a
312/// single base register.
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000313void Formula::InitialMatch(const SCEV *S, Loop *L, ScalarEvolution &SE) {
Dan Gohman572645c2010-02-12 10:34:29 +0000314 SmallVector<const SCEV *, 4> Good;
315 SmallVector<const SCEV *, 4> Bad;
Dan Gohmandc0e8fb2010-11-17 21:41:58 +0000316 DoInitialMatch(S, L, Good, Bad, SE);
Dan Gohman572645c2010-02-12 10:34:29 +0000317 if (!Good.empty()) {
Dan Gohmane60bb152010-04-08 23:36:27 +0000318 const SCEV *Sum = SE.getAddExpr(Good);
319 if (!Sum->isZero())
320 BaseRegs.push_back(Sum);
Dan Gohman572645c2010-02-12 10:34:29 +0000321 AM.HasBaseReg = true;
322 }
323 if (!Bad.empty()) {
Dan Gohmane60bb152010-04-08 23:36:27 +0000324 const SCEV *Sum = SE.getAddExpr(Bad);
325 if (!Sum->isZero())
326 BaseRegs.push_back(Sum);
Dan Gohman572645c2010-02-12 10:34:29 +0000327 AM.HasBaseReg = true;
328 }
329}
330
331/// getNumRegs - Return the total number of register operands used by this
332/// formula. This does not include register uses implied by non-constant
333/// addrec strides.
334unsigned Formula::getNumRegs() const {
335 return !!ScaledReg + BaseRegs.size();
336}
337
338/// getType - Return the type of this formula, if it has one, or null
339/// otherwise. This type is meaningless except for the bit size.
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000340Type *Formula::getType() const {
Dan Gohman572645c2010-02-12 10:34:29 +0000341 return !BaseRegs.empty() ? BaseRegs.front()->getType() :
342 ScaledReg ? ScaledReg->getType() :
343 AM.BaseGV ? AM.BaseGV->getType() :
344 0;
345}
346
Dan Gohman5ce6d052010-05-20 15:17:54 +0000347/// DeleteBaseReg - Delete the given base reg from the BaseRegs list.
348void Formula::DeleteBaseReg(const SCEV *&S) {
349 if (&S != &BaseRegs.back())
350 std::swap(S, BaseRegs.back());
351 BaseRegs.pop_back();
352}
353
Dan Gohman572645c2010-02-12 10:34:29 +0000354/// referencesReg - Test if this formula references the given register.
355bool Formula::referencesReg(const SCEV *S) const {
356 return S == ScaledReg ||
357 std::find(BaseRegs.begin(), BaseRegs.end(), S) != BaseRegs.end();
358}
359
360/// hasRegsUsedByUsesOtherThan - Test whether this formula uses registers
361/// which are used by uses other than the use with the given index.
362bool Formula::hasRegsUsedByUsesOtherThan(size_t LUIdx,
363 const RegUseTracker &RegUses) const {
364 if (ScaledReg)
365 if (RegUses.isRegUsedByUsesOtherThan(ScaledReg, LUIdx))
366 return true;
367 for (SmallVectorImpl<const SCEV *>::const_iterator I = BaseRegs.begin(),
368 E = BaseRegs.end(); I != E; ++I)
369 if (RegUses.isRegUsedByUsesOtherThan(*I, LUIdx))
370 return true;
371 return false;
372}
373
374void Formula::print(raw_ostream &OS) const {
375 bool First = true;
376 if (AM.BaseGV) {
377 if (!First) OS << " + "; else First = false;
378 WriteAsOperand(OS, AM.BaseGV, /*PrintType=*/false);
379 }
380 if (AM.BaseOffs != 0) {
381 if (!First) OS << " + "; else First = false;
382 OS << AM.BaseOffs;
383 }
384 for (SmallVectorImpl<const SCEV *>::const_iterator I = BaseRegs.begin(),
385 E = BaseRegs.end(); I != E; ++I) {
386 if (!First) OS << " + "; else First = false;
387 OS << "reg(" << **I << ')';
388 }
Dan Gohmanc4cfbaf2010-05-18 22:35:55 +0000389 if (AM.HasBaseReg && BaseRegs.empty()) {
390 if (!First) OS << " + "; else First = false;
391 OS << "**error: HasBaseReg**";
392 } else if (!AM.HasBaseReg && !BaseRegs.empty()) {
393 if (!First) OS << " + "; else First = false;
394 OS << "**error: !HasBaseReg**";
395 }
Dan Gohman572645c2010-02-12 10:34:29 +0000396 if (AM.Scale != 0) {
397 if (!First) OS << " + "; else First = false;
398 OS << AM.Scale << "*reg(";
399 if (ScaledReg)
400 OS << *ScaledReg;
401 else
402 OS << "<unknown>";
403 OS << ')';
404 }
Dan Gohmancca82142011-05-03 00:46:49 +0000405 if (UnfoldedOffset != 0) {
406 if (!First) OS << " + "; else First = false;
407 OS << "imm(" << UnfoldedOffset << ')';
408 }
Dan Gohman572645c2010-02-12 10:34:29 +0000409}
410
411void Formula::dump() const {
412 print(errs()); errs() << '\n';
413}
414
Dan Gohmanaae01f12010-02-19 19:32:49 +0000415/// isAddRecSExtable - Return true if the given addrec can be sign-extended
416/// without changing its value.
417static bool isAddRecSExtable(const SCEVAddRecExpr *AR, ScalarEvolution &SE) {
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000418 Type *WideTy =
Dan Gohmanea507f52010-05-20 19:44:23 +0000419 IntegerType::get(SE.getContext(), SE.getTypeSizeInBits(AR->getType()) + 1);
Dan Gohmanaae01f12010-02-19 19:32:49 +0000420 return isa<SCEVAddRecExpr>(SE.getSignExtendExpr(AR, WideTy));
421}
422
423/// isAddSExtable - Return true if the given add can be sign-extended
424/// without changing its value.
425static bool isAddSExtable(const SCEVAddExpr *A, ScalarEvolution &SE) {
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000426 Type *WideTy =
Dan Gohmanea507f52010-05-20 19:44:23 +0000427 IntegerType::get(SE.getContext(), SE.getTypeSizeInBits(A->getType()) + 1);
Dan Gohmanaae01f12010-02-19 19:32:49 +0000428 return isa<SCEVAddExpr>(SE.getSignExtendExpr(A, WideTy));
429}
430
Dan Gohman473e6352010-06-24 16:45:11 +0000431/// isMulSExtable - Return true if the given mul can be sign-extended
Dan Gohmanaae01f12010-02-19 19:32:49 +0000432/// without changing its value.
Dan Gohman473e6352010-06-24 16:45:11 +0000433static bool isMulSExtable(const SCEVMulExpr *M, ScalarEvolution &SE) {
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000434 Type *WideTy =
Dan Gohman473e6352010-06-24 16:45:11 +0000435 IntegerType::get(SE.getContext(),
436 SE.getTypeSizeInBits(M->getType()) * M->getNumOperands());
437 return isa<SCEVMulExpr>(SE.getSignExtendExpr(M, WideTy));
Dan Gohmanaae01f12010-02-19 19:32:49 +0000438}
439
Dan Gohmanf09b7122010-02-19 19:35:48 +0000440/// getExactSDiv - Return an expression for LHS /s RHS, if it can be determined
441/// and if the remainder is known to be zero, or null otherwise. If
442/// IgnoreSignificantBits is true, expressions like (X * Y) /s Y are simplified
443/// to Y, ignoring that the multiplication may overflow, which is useful when
444/// the result will be used in a context where the most significant bits are
445/// ignored.
446static const SCEV *getExactSDiv(const SCEV *LHS, const SCEV *RHS,
447 ScalarEvolution &SE,
448 bool IgnoreSignificantBits = false) {
Dan Gohman572645c2010-02-12 10:34:29 +0000449 // Handle the trivial case, which works for any SCEV type.
450 if (LHS == RHS)
Dan Gohmandeff6212010-05-03 22:09:21 +0000451 return SE.getConstant(LHS->getType(), 1);
Dan Gohman572645c2010-02-12 10:34:29 +0000452
Dan Gohmand42819a2010-06-24 16:51:25 +0000453 // Handle a few RHS special cases.
454 const SCEVConstant *RC = dyn_cast<SCEVConstant>(RHS);
455 if (RC) {
456 const APInt &RA = RC->getValue()->getValue();
457 // Handle x /s -1 as x * -1, to give ScalarEvolution a chance to do
458 // some folding.
459 if (RA.isAllOnesValue())
460 return SE.getMulExpr(LHS, RC);
461 // Handle x /s 1 as x.
462 if (RA == 1)
463 return LHS;
464 }
Dan Gohman572645c2010-02-12 10:34:29 +0000465
466 // Check for a division of a constant by a constant.
467 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(LHS)) {
Dan Gohman572645c2010-02-12 10:34:29 +0000468 if (!RC)
469 return 0;
Dan Gohmand42819a2010-06-24 16:51:25 +0000470 const APInt &LA = C->getValue()->getValue();
471 const APInt &RA = RC->getValue()->getValue();
472 if (LA.srem(RA) != 0)
Dan Gohman572645c2010-02-12 10:34:29 +0000473 return 0;
Dan Gohmand42819a2010-06-24 16:51:25 +0000474 return SE.getConstant(LA.sdiv(RA));
Dan Gohman572645c2010-02-12 10:34:29 +0000475 }
476
Dan Gohmanaae01f12010-02-19 19:32:49 +0000477 // Distribute the sdiv over addrec operands, if the addrec doesn't overflow.
Dan Gohman572645c2010-02-12 10:34:29 +0000478 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(LHS)) {
Dan Gohmanaae01f12010-02-19 19:32:49 +0000479 if (IgnoreSignificantBits || isAddRecSExtable(AR, SE)) {
Dan Gohmanf09b7122010-02-19 19:35:48 +0000480 const SCEV *Step = getExactSDiv(AR->getStepRecurrence(SE), RHS, SE,
481 IgnoreSignificantBits);
Dan Gohmanaae01f12010-02-19 19:32:49 +0000482 if (!Step) return 0;
Dan Gohman694a15e2010-08-19 01:02:31 +0000483 const SCEV *Start = getExactSDiv(AR->getStart(), RHS, SE,
484 IgnoreSignificantBits);
485 if (!Start) return 0;
Andrew Trick3228cc22011-03-14 16:50:06 +0000486 // FlagNW is independent of the start value, step direction, and is
487 // preserved with smaller magnitude steps.
488 // FIXME: AR->getNoWrapFlags(SCEV::FlagNW)
489 return SE.getAddRecExpr(Start, Step, AR->getLoop(), SCEV::FlagAnyWrap);
Dan Gohmanaae01f12010-02-19 19:32:49 +0000490 }
Dan Gohman2ea09e02010-06-24 16:57:52 +0000491 return 0;
Dan Gohman572645c2010-02-12 10:34:29 +0000492 }
493
Dan Gohmanaae01f12010-02-19 19:32:49 +0000494 // Distribute the sdiv over add operands, if the add doesn't overflow.
Dan Gohman572645c2010-02-12 10:34:29 +0000495 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(LHS)) {
Dan Gohmanaae01f12010-02-19 19:32:49 +0000496 if (IgnoreSignificantBits || isAddSExtable(Add, SE)) {
497 SmallVector<const SCEV *, 8> Ops;
498 for (SCEVAddExpr::op_iterator I = Add->op_begin(), E = Add->op_end();
499 I != E; ++I) {
Dan Gohmanf09b7122010-02-19 19:35:48 +0000500 const SCEV *Op = getExactSDiv(*I, RHS, SE,
501 IgnoreSignificantBits);
Dan Gohmanaae01f12010-02-19 19:32:49 +0000502 if (!Op) return 0;
503 Ops.push_back(Op);
504 }
505 return SE.getAddExpr(Ops);
Dan Gohman572645c2010-02-12 10:34:29 +0000506 }
Dan Gohman2ea09e02010-06-24 16:57:52 +0000507 return 0;
Dan Gohman572645c2010-02-12 10:34:29 +0000508 }
509
510 // Check for a multiply operand that we can pull RHS out of.
Dan Gohman2ea09e02010-06-24 16:57:52 +0000511 if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(LHS)) {
Dan Gohmanaae01f12010-02-19 19:32:49 +0000512 if (IgnoreSignificantBits || isMulSExtable(Mul, SE)) {
Dan Gohman572645c2010-02-12 10:34:29 +0000513 SmallVector<const SCEV *, 4> Ops;
514 bool Found = false;
515 for (SCEVMulExpr::op_iterator I = Mul->op_begin(), E = Mul->op_end();
516 I != E; ++I) {
Dan Gohman47667442010-05-20 16:23:28 +0000517 const SCEV *S = *I;
Dan Gohman572645c2010-02-12 10:34:29 +0000518 if (!Found)
Dan Gohman47667442010-05-20 16:23:28 +0000519 if (const SCEV *Q = getExactSDiv(S, RHS, SE,
Dan Gohmanf09b7122010-02-19 19:35:48 +0000520 IgnoreSignificantBits)) {
Dan Gohman47667442010-05-20 16:23:28 +0000521 S = Q;
Dan Gohman572645c2010-02-12 10:34:29 +0000522 Found = true;
Dan Gohman572645c2010-02-12 10:34:29 +0000523 }
Dan Gohman47667442010-05-20 16:23:28 +0000524 Ops.push_back(S);
Dan Gohman572645c2010-02-12 10:34:29 +0000525 }
526 return Found ? SE.getMulExpr(Ops) : 0;
527 }
Dan Gohman2ea09e02010-06-24 16:57:52 +0000528 return 0;
529 }
Dan Gohman572645c2010-02-12 10:34:29 +0000530
531 // Otherwise we don't know.
532 return 0;
533}
534
535/// ExtractImmediate - If S involves the addition of a constant integer value,
536/// return that integer value, and mutate S to point to a new SCEV with that
537/// value excluded.
538static int64_t ExtractImmediate(const SCEV *&S, ScalarEvolution &SE) {
539 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(S)) {
540 if (C->getValue()->getValue().getMinSignedBits() <= 64) {
Dan Gohmandeff6212010-05-03 22:09:21 +0000541 S = SE.getConstant(C->getType(), 0);
Dan Gohman572645c2010-02-12 10:34:29 +0000542 return C->getValue()->getSExtValue();
543 }
544 } else if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
545 SmallVector<const SCEV *, 8> NewOps(Add->op_begin(), Add->op_end());
546 int64_t Result = ExtractImmediate(NewOps.front(), SE);
Dan Gohmane62d5882010-08-13 21:17:19 +0000547 if (Result != 0)
548 S = SE.getAddExpr(NewOps);
Dan Gohman572645c2010-02-12 10:34:29 +0000549 return Result;
550 } else if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) {
551 SmallVector<const SCEV *, 8> NewOps(AR->op_begin(), AR->op_end());
552 int64_t Result = ExtractImmediate(NewOps.front(), SE);
Dan Gohmane62d5882010-08-13 21:17:19 +0000553 if (Result != 0)
Andrew Trick3228cc22011-03-14 16:50:06 +0000554 S = SE.getAddRecExpr(NewOps, AR->getLoop(),
555 // FIXME: AR->getNoWrapFlags(SCEV::FlagNW)
556 SCEV::FlagAnyWrap);
Dan Gohman572645c2010-02-12 10:34:29 +0000557 return Result;
558 }
559 return 0;
560}
561
562/// ExtractSymbol - If S involves the addition of a GlobalValue address,
563/// return that symbol, and mutate S to point to a new SCEV with that
564/// value excluded.
565static GlobalValue *ExtractSymbol(const SCEV *&S, ScalarEvolution &SE) {
566 if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S)) {
567 if (GlobalValue *GV = dyn_cast<GlobalValue>(U->getValue())) {
Dan Gohmandeff6212010-05-03 22:09:21 +0000568 S = SE.getConstant(GV->getType(), 0);
Dan Gohman572645c2010-02-12 10:34:29 +0000569 return GV;
570 }
571 } else if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
572 SmallVector<const SCEV *, 8> NewOps(Add->op_begin(), Add->op_end());
573 GlobalValue *Result = ExtractSymbol(NewOps.back(), SE);
Dan Gohmane62d5882010-08-13 21:17:19 +0000574 if (Result)
575 S = SE.getAddExpr(NewOps);
Dan Gohman572645c2010-02-12 10:34:29 +0000576 return Result;
577 } else if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) {
578 SmallVector<const SCEV *, 8> NewOps(AR->op_begin(), AR->op_end());
579 GlobalValue *Result = ExtractSymbol(NewOps.front(), SE);
Dan Gohmane62d5882010-08-13 21:17:19 +0000580 if (Result)
Andrew Trick3228cc22011-03-14 16:50:06 +0000581 S = SE.getAddRecExpr(NewOps, AR->getLoop(),
582 // FIXME: AR->getNoWrapFlags(SCEV::FlagNW)
583 SCEV::FlagAnyWrap);
Dan Gohman572645c2010-02-12 10:34:29 +0000584 return Result;
585 }
586 return 0;
Nate Begemaneaa13852004-10-18 21:08:22 +0000587}
588
Dan Gohmanf284ce22009-02-18 00:08:39 +0000589/// isAddressUse - Returns true if the specified instruction is using the
Dale Johannesen203af582008-12-05 21:47:27 +0000590/// specified value as an address.
591static bool isAddressUse(Instruction *Inst, Value *OperandVal) {
592 bool isAddress = isa<LoadInst>(Inst);
593 if (StoreInst *SI = dyn_cast<StoreInst>(Inst)) {
594 if (SI->getOperand(1) == OperandVal)
595 isAddress = true;
596 } else if (IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) {
597 // Addressing modes can also be folded into prefetches and a variety
598 // of intrinsics.
599 switch (II->getIntrinsicID()) {
600 default: break;
601 case Intrinsic::prefetch:
Dale Johannesen203af582008-12-05 21:47:27 +0000602 case Intrinsic::x86_sse_storeu_ps:
603 case Intrinsic::x86_sse2_storeu_pd:
604 case Intrinsic::x86_sse2_storeu_dq:
605 case Intrinsic::x86_sse2_storel_dq:
Gabor Greifad72e732010-06-30 09:15:28 +0000606 if (II->getArgOperand(0) == OperandVal)
Dale Johannesen203af582008-12-05 21:47:27 +0000607 isAddress = true;
608 break;
609 }
610 }
611 return isAddress;
612}
Chris Lattner0ae33eb2005-10-03 01:04:44 +0000613
Dan Gohman21e77222009-03-09 21:01:17 +0000614/// getAccessType - Return the type of the memory being accessed.
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000615static Type *getAccessType(const Instruction *Inst) {
616 Type *AccessTy = Inst->getType();
Dan Gohman21e77222009-03-09 21:01:17 +0000617 if (const StoreInst *SI = dyn_cast<StoreInst>(Inst))
Dan Gohmana537bf82009-05-18 16:45:28 +0000618 AccessTy = SI->getOperand(0)->getType();
Dan Gohman21e77222009-03-09 21:01:17 +0000619 else if (const IntrinsicInst *II = dyn_cast<IntrinsicInst>(Inst)) {
620 // Addressing modes can also be folded into prefetches and a variety
621 // of intrinsics.
622 switch (II->getIntrinsicID()) {
623 default: break;
624 case Intrinsic::x86_sse_storeu_ps:
625 case Intrinsic::x86_sse2_storeu_pd:
626 case Intrinsic::x86_sse2_storeu_dq:
627 case Intrinsic::x86_sse2_storel_dq:
Gabor Greifad72e732010-06-30 09:15:28 +0000628 AccessTy = II->getArgOperand(0)->getType();
Dan Gohman21e77222009-03-09 21:01:17 +0000629 break;
630 }
631 }
Dan Gohman572645c2010-02-12 10:34:29 +0000632
633 // All pointers have the same requirements, so canonicalize them to an
634 // arbitrary pointer type to minimize variation.
Chris Lattnerdb125cf2011-07-18 04:54:35 +0000635 if (PointerType *PTy = dyn_cast<PointerType>(AccessTy))
Dan Gohman572645c2010-02-12 10:34:29 +0000636 AccessTy = PointerType::get(IntegerType::get(PTy->getContext(), 1),
637 PTy->getAddressSpace());
638
Dan Gohmana537bf82009-05-18 16:45:28 +0000639 return AccessTy;
Dan Gohman21e77222009-03-09 21:01:17 +0000640}
641
Andrew Trick8a5d7922011-12-06 03:13:31 +0000642/// isExistingPhi - Return true if this AddRec is already a phi in its loop.
643static bool isExistingPhi(const SCEVAddRecExpr *AR, ScalarEvolution &SE) {
644 for (BasicBlock::iterator I = AR->getLoop()->getHeader()->begin();
645 PHINode *PN = dyn_cast<PHINode>(I); ++I) {
646 if (SE.isSCEVable(PN->getType()) &&
647 (SE.getEffectiveSCEVType(PN->getType()) ==
648 SE.getEffectiveSCEVType(AR->getType())) &&
649 SE.getSCEV(PN) == AR)
650 return true;
651 }
652 return false;
653}
654
Andrew Trick64925c52012-01-10 01:45:08 +0000655/// Check if expanding this expression is likely to incur significant cost. This
656/// is tricky because SCEV doesn't track which expressions are actually computed
657/// by the current IR.
658///
659/// We currently allow expansion of IV increments that involve adds,
660/// multiplication by constants, and AddRecs from existing phis.
661///
662/// TODO: Allow UDivExpr if we can find an existing IV increment that is an
663/// obvious multiple of the UDivExpr.
664static bool isHighCostExpansion(const SCEV *S,
665 SmallPtrSet<const SCEV*, 8> &Processed,
666 ScalarEvolution &SE) {
667 // Zero/One operand expressions
668 switch (S->getSCEVType()) {
669 case scUnknown:
670 case scConstant:
671 return false;
672 case scTruncate:
673 return isHighCostExpansion(cast<SCEVTruncateExpr>(S)->getOperand(),
674 Processed, SE);
675 case scZeroExtend:
676 return isHighCostExpansion(cast<SCEVZeroExtendExpr>(S)->getOperand(),
677 Processed, SE);
678 case scSignExtend:
679 return isHighCostExpansion(cast<SCEVSignExtendExpr>(S)->getOperand(),
680 Processed, SE);
681 }
682
683 if (!Processed.insert(S))
684 return false;
685
686 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
687 for (SCEVAddExpr::op_iterator I = Add->op_begin(), E = Add->op_end();
688 I != E; ++I) {
689 if (isHighCostExpansion(*I, Processed, SE))
690 return true;
691 }
692 return false;
693 }
694
695 if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(S)) {
696 if (Mul->getNumOperands() == 2) {
697 // Multiplication by a constant is ok
698 if (isa<SCEVConstant>(Mul->getOperand(0)))
699 return isHighCostExpansion(Mul->getOperand(1), Processed, SE);
700
701 // If we have the value of one operand, check if an existing
702 // multiplication already generates this expression.
703 if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(Mul->getOperand(1))) {
704 Value *UVal = U->getValue();
705 for (Value::use_iterator UI = UVal->use_begin(), UE = UVal->use_end();
706 UI != UE; ++UI) {
707 Instruction *User = cast<Instruction>(*UI);
708 if (User->getOpcode() == Instruction::Mul
709 && SE.isSCEVable(User->getType())) {
710 return SE.getSCEV(User) == Mul;
711 }
712 }
713 }
714 }
715 }
716
717 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) {
718 if (isExistingPhi(AR, SE))
719 return false;
720 }
721
722 // Fow now, consider any other type of expression (div/mul/min/max) high cost.
723 return true;
724}
725
Dan Gohman572645c2010-02-12 10:34:29 +0000726/// DeleteTriviallyDeadInstructions - If any of the instructions is the
727/// specified set are trivially dead, delete them and see if this makes any of
728/// their operands subsequently dead.
729static bool
730DeleteTriviallyDeadInstructions(SmallVectorImpl<WeakVH> &DeadInsts) {
731 bool Changed = false;
732
733 while (!DeadInsts.empty()) {
Gabor Greiff097b592010-09-18 11:55:34 +0000734 Instruction *I = dyn_cast_or_null<Instruction>(&*DeadInsts.pop_back_val());
Dan Gohman572645c2010-02-12 10:34:29 +0000735
736 if (I == 0 || !isInstructionTriviallyDead(I))
737 continue;
738
739 for (User::op_iterator OI = I->op_begin(), E = I->op_end(); OI != E; ++OI)
740 if (Instruction *U = dyn_cast<Instruction>(*OI)) {
741 *OI = 0;
742 if (U->use_empty())
743 DeadInsts.push_back(U);
744 }
745
746 I->eraseFromParent();
747 Changed = true;
748 }
749
750 return Changed;
751}
752
Dan Gohman7979b722010-01-22 00:46:49 +0000753namespace {
Jim Grosbach56a1f802009-11-17 17:53:56 +0000754
Dan Gohman572645c2010-02-12 10:34:29 +0000755/// Cost - This class is used to measure and compare candidate formulae.
756class Cost {
757 /// TODO: Some of these could be merged. Also, a lexical ordering
758 /// isn't always optimal.
759 unsigned NumRegs;
760 unsigned AddRecCost;
761 unsigned NumIVMuls;
762 unsigned NumBaseAdds;
763 unsigned ImmCost;
764 unsigned SetupCost;
Nate Begeman16997482005-07-30 00:15:07 +0000765
Dan Gohman572645c2010-02-12 10:34:29 +0000766public:
767 Cost()
768 : NumRegs(0), AddRecCost(0), NumIVMuls(0), NumBaseAdds(0), ImmCost(0),
769 SetupCost(0) {}
Jim Grosbach56a1f802009-11-17 17:53:56 +0000770
Dan Gohman572645c2010-02-12 10:34:29 +0000771 bool operator<(const Cost &Other) const;
Dan Gohman7979b722010-01-22 00:46:49 +0000772
Dan Gohman572645c2010-02-12 10:34:29 +0000773 void Loose();
Dan Gohman7979b722010-01-22 00:46:49 +0000774
Andrew Trick7d11bd82011-09-26 23:11:04 +0000775#ifndef NDEBUG
776 // Once any of the metrics loses, they must all remain losers.
777 bool isValid() {
778 return ((NumRegs | AddRecCost | NumIVMuls | NumBaseAdds
779 | ImmCost | SetupCost) != ~0u)
780 || ((NumRegs & AddRecCost & NumIVMuls & NumBaseAdds
781 & ImmCost & SetupCost) == ~0u);
782 }
783#endif
784
785 bool isLoser() {
786 assert(isValid() && "invalid cost");
787 return NumRegs == ~0u;
788 }
789
Dan Gohman572645c2010-02-12 10:34:29 +0000790 void RateFormula(const Formula &F,
791 SmallPtrSet<const SCEV *, 16> &Regs,
792 const DenseSet<const SCEV *> &VisitedRegs,
793 const Loop *L,
794 const SmallVectorImpl<int64_t> &Offsets,
Andrew Trick8a5d7922011-12-06 03:13:31 +0000795 ScalarEvolution &SE, DominatorTree &DT,
796 SmallPtrSet<const SCEV *, 16> *LoserRegs = 0);
Dan Gohman7979b722010-01-22 00:46:49 +0000797
Dan Gohman572645c2010-02-12 10:34:29 +0000798 void print(raw_ostream &OS) const;
799 void dump() const;
Dan Gohman7979b722010-01-22 00:46:49 +0000800
Dan Gohman572645c2010-02-12 10:34:29 +0000801private:
802 void RateRegister(const SCEV *Reg,
803 SmallPtrSet<const SCEV *, 16> &Regs,
804 const Loop *L,
805 ScalarEvolution &SE, DominatorTree &DT);
Dan Gohman9214b822010-02-13 02:06:02 +0000806 void RatePrimaryRegister(const SCEV *Reg,
807 SmallPtrSet<const SCEV *, 16> &Regs,
808 const Loop *L,
Andrew Trick8a5d7922011-12-06 03:13:31 +0000809 ScalarEvolution &SE, DominatorTree &DT,
810 SmallPtrSet<const SCEV *, 16> *LoserRegs);
Dan Gohman572645c2010-02-12 10:34:29 +0000811};
812
813}
814
815/// RateRegister - Tally up interesting quantities from the given register.
816void Cost::RateRegister(const SCEV *Reg,
817 SmallPtrSet<const SCEV *, 16> &Regs,
818 const Loop *L,
819 ScalarEvolution &SE, DominatorTree &DT) {
Dan Gohman9214b822010-02-13 02:06:02 +0000820 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(Reg)) {
Andrew Trick0c01bc32011-09-29 01:33:38 +0000821 // If this is an addrec for another loop, don't second-guess its addrec phi
822 // nodes. LSR isn't currently smart enough to reason about more than one
Andrew Trickbd618f12012-03-22 22:42:45 +0000823 // loop at a time. LSR has already run on inner loops, will not run on outer
824 // loops, and cannot be expected to change sibling loops.
825 if (AR->getLoop() != L) {
826 // If the AddRec exists, consider it's register free and leave it alone.
Andrew Trick8a5d7922011-12-06 03:13:31 +0000827 if (isExistingPhi(AR, SE))
828 return;
829
Andrew Trickbd618f12012-03-22 22:42:45 +0000830 // Otherwise, do not consider this formula at all.
831 Loose();
832 return;
Dan Gohman572645c2010-02-12 10:34:29 +0000833 }
Andrew Trickbd618f12012-03-22 22:42:45 +0000834 AddRecCost += 1; /// TODO: This should be a function of the stride.
Dan Gohman572645c2010-02-12 10:34:29 +0000835
Dan Gohman9214b822010-02-13 02:06:02 +0000836 // Add the step value register, if it needs one.
837 // TODO: The non-affine case isn't precisely modeled here.
Andrew Trick25b689e2011-09-26 23:35:25 +0000838 if (!AR->isAffine() || !isa<SCEVConstant>(AR->getOperand(1))) {
839 if (!Regs.count(AR->getOperand(1))) {
Dan Gohman9214b822010-02-13 02:06:02 +0000840 RateRegister(AR->getOperand(1), Regs, L, SE, DT);
Andrew Trick25b689e2011-09-26 23:35:25 +0000841 if (isLoser())
842 return;
843 }
844 }
Dan Gohman572645c2010-02-12 10:34:29 +0000845 }
Dan Gohman9214b822010-02-13 02:06:02 +0000846 ++NumRegs;
847
848 // Rough heuristic; favor registers which don't require extra setup
849 // instructions in the preheader.
850 if (!isa<SCEVUnknown>(Reg) &&
851 !isa<SCEVConstant>(Reg) &&
852 !(isa<SCEVAddRecExpr>(Reg) &&
853 (isa<SCEVUnknown>(cast<SCEVAddRecExpr>(Reg)->getStart()) ||
854 isa<SCEVConstant>(cast<SCEVAddRecExpr>(Reg)->getStart()))))
855 ++SetupCost;
Dan Gohman23c3fde2010-10-07 23:41:58 +0000856
857 NumIVMuls += isa<SCEVMulExpr>(Reg) &&
Dan Gohman17ead4f2010-11-17 21:23:15 +0000858 SE.hasComputableLoopEvolution(Reg, L);
Dan Gohman9214b822010-02-13 02:06:02 +0000859}
860
861/// RatePrimaryRegister - Record this register in the set. If we haven't seen it
Andrew Trick8a5d7922011-12-06 03:13:31 +0000862/// before, rate it. Optional LoserRegs provides a way to declare any formula
863/// that refers to one of those regs an instant loser.
Dan Gohman9214b822010-02-13 02:06:02 +0000864void Cost::RatePrimaryRegister(const SCEV *Reg,
Dan Gohman7fca2292010-02-16 19:42:34 +0000865 SmallPtrSet<const SCEV *, 16> &Regs,
866 const Loop *L,
Andrew Trick8a5d7922011-12-06 03:13:31 +0000867 ScalarEvolution &SE, DominatorTree &DT,
868 SmallPtrSet<const SCEV *, 16> *LoserRegs) {
869 if (LoserRegs && LoserRegs->count(Reg)) {
870 Loose();
871 return;
872 }
873 if (Regs.insert(Reg)) {
Dan Gohman9214b822010-02-13 02:06:02 +0000874 RateRegister(Reg, Regs, L, SE, DT);
Andrew Trick8a5d7922011-12-06 03:13:31 +0000875 if (isLoser())
876 LoserRegs->insert(Reg);
877 }
Dan Gohman572645c2010-02-12 10:34:29 +0000878}
879
880void Cost::RateFormula(const Formula &F,
881 SmallPtrSet<const SCEV *, 16> &Regs,
882 const DenseSet<const SCEV *> &VisitedRegs,
883 const Loop *L,
884 const SmallVectorImpl<int64_t> &Offsets,
Andrew Trick8a5d7922011-12-06 03:13:31 +0000885 ScalarEvolution &SE, DominatorTree &DT,
886 SmallPtrSet<const SCEV *, 16> *LoserRegs) {
Dan Gohman572645c2010-02-12 10:34:29 +0000887 // Tally up the registers.
888 if (const SCEV *ScaledReg = F.ScaledReg) {
889 if (VisitedRegs.count(ScaledReg)) {
890 Loose();
891 return;
892 }
Andrew Trick8a5d7922011-12-06 03:13:31 +0000893 RatePrimaryRegister(ScaledReg, Regs, L, SE, DT, LoserRegs);
Andrew Trick7d11bd82011-09-26 23:11:04 +0000894 if (isLoser())
895 return;
Dan Gohman572645c2010-02-12 10:34:29 +0000896 }
897 for (SmallVectorImpl<const SCEV *>::const_iterator I = F.BaseRegs.begin(),
898 E = F.BaseRegs.end(); I != E; ++I) {
899 const SCEV *BaseReg = *I;
900 if (VisitedRegs.count(BaseReg)) {
901 Loose();
902 return;
903 }
Andrew Trick8a5d7922011-12-06 03:13:31 +0000904 RatePrimaryRegister(BaseReg, Regs, L, SE, DT, LoserRegs);
Andrew Trick7d11bd82011-09-26 23:11:04 +0000905 if (isLoser())
906 return;
Dan Gohman572645c2010-02-12 10:34:29 +0000907 }
908
Dan Gohmancca82142011-05-03 00:46:49 +0000909 // Determine how many (unfolded) adds we'll need inside the loop.
910 size_t NumBaseParts = F.BaseRegs.size() + (F.UnfoldedOffset != 0);
911 if (NumBaseParts > 1)
912 NumBaseAdds += NumBaseParts - 1;
Dan Gohman572645c2010-02-12 10:34:29 +0000913
914 // Tally up the non-zero immediates.
915 for (SmallVectorImpl<int64_t>::const_iterator I = Offsets.begin(),
916 E = Offsets.end(); I != E; ++I) {
917 int64_t Offset = (uint64_t)*I + F.AM.BaseOffs;
918 if (F.AM.BaseGV)
919 ImmCost += 64; // Handle symbolic values conservatively.
920 // TODO: This should probably be the pointer size.
921 else if (Offset != 0)
922 ImmCost += APInt(64, Offset, true).getMinSignedBits();
923 }
Andrew Trick7d11bd82011-09-26 23:11:04 +0000924 assert(isValid() && "invalid cost");
Dan Gohman572645c2010-02-12 10:34:29 +0000925}
926
Chris Lattner7a2bdde2011-04-15 05:18:47 +0000927/// Loose - Set this cost to a losing value.
Dan Gohman572645c2010-02-12 10:34:29 +0000928void Cost::Loose() {
929 NumRegs = ~0u;
930 AddRecCost = ~0u;
931 NumIVMuls = ~0u;
932 NumBaseAdds = ~0u;
933 ImmCost = ~0u;
934 SetupCost = ~0u;
935}
936
937/// operator< - Choose the lower cost.
938bool Cost::operator<(const Cost &Other) const {
939 if (NumRegs != Other.NumRegs)
940 return NumRegs < Other.NumRegs;
941 if (AddRecCost != Other.AddRecCost)
942 return AddRecCost < Other.AddRecCost;
943 if (NumIVMuls != Other.NumIVMuls)
944 return NumIVMuls < Other.NumIVMuls;
945 if (NumBaseAdds != Other.NumBaseAdds)
946 return NumBaseAdds < Other.NumBaseAdds;
947 if (ImmCost != Other.ImmCost)
948 return ImmCost < Other.ImmCost;
949 if (SetupCost != Other.SetupCost)
950 return SetupCost < Other.SetupCost;
951 return false;
952}
953
954void Cost::print(raw_ostream &OS) const {
955 OS << NumRegs << " reg" << (NumRegs == 1 ? "" : "s");
956 if (AddRecCost != 0)
957 OS << ", with addrec cost " << AddRecCost;
958 if (NumIVMuls != 0)
959 OS << ", plus " << NumIVMuls << " IV mul" << (NumIVMuls == 1 ? "" : "s");
960 if (NumBaseAdds != 0)
961 OS << ", plus " << NumBaseAdds << " base add"
962 << (NumBaseAdds == 1 ? "" : "s");
963 if (ImmCost != 0)
964 OS << ", plus " << ImmCost << " imm cost";
965 if (SetupCost != 0)
966 OS << ", plus " << SetupCost << " setup cost";
967}
968
969void Cost::dump() const {
970 print(errs()); errs() << '\n';
971}
972
973namespace {
974
975/// LSRFixup - An operand value in an instruction which is to be replaced
976/// with some equivalent, possibly strength-reduced, replacement.
977struct LSRFixup {
978 /// UserInst - The instruction which will be updated.
979 Instruction *UserInst;
980
981 /// OperandValToReplace - The operand of the instruction which will
982 /// be replaced. The operand may be used more than once; every instance
983 /// will be replaced.
984 Value *OperandValToReplace;
985
Dan Gohman448db1c2010-04-07 22:27:08 +0000986 /// PostIncLoops - If this user is to use the post-incremented value of an
Dan Gohman572645c2010-02-12 10:34:29 +0000987 /// induction variable, this variable is non-null and holds the loop
988 /// associated with the induction variable.
Dan Gohman448db1c2010-04-07 22:27:08 +0000989 PostIncLoopSet PostIncLoops;
Dan Gohman572645c2010-02-12 10:34:29 +0000990
991 /// LUIdx - The index of the LSRUse describing the expression which
992 /// this fixup needs, minus an offset (below).
993 size_t LUIdx;
994
995 /// Offset - A constant offset to be added to the LSRUse expression.
996 /// This allows multiple fixups to share the same LSRUse with different
997 /// offsets, for example in an unrolled loop.
998 int64_t Offset;
999
Dan Gohman448db1c2010-04-07 22:27:08 +00001000 bool isUseFullyOutsideLoop(const Loop *L) const;
1001
Dan Gohman572645c2010-02-12 10:34:29 +00001002 LSRFixup();
1003
1004 void print(raw_ostream &OS) const;
1005 void dump() const;
1006};
1007
1008}
1009
1010LSRFixup::LSRFixup()
Dan Gohmanea507f52010-05-20 19:44:23 +00001011 : UserInst(0), OperandValToReplace(0), LUIdx(~size_t(0)), Offset(0) {}
Dan Gohman572645c2010-02-12 10:34:29 +00001012
Dan Gohman448db1c2010-04-07 22:27:08 +00001013/// isUseFullyOutsideLoop - Test whether this fixup always uses its
1014/// value outside of the given loop.
1015bool LSRFixup::isUseFullyOutsideLoop(const Loop *L) const {
1016 // PHI nodes use their value in their incoming blocks.
1017 if (const PHINode *PN = dyn_cast<PHINode>(UserInst)) {
1018 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i)
1019 if (PN->getIncomingValue(i) == OperandValToReplace &&
1020 L->contains(PN->getIncomingBlock(i)))
1021 return false;
1022 return true;
1023 }
1024
1025 return !L->contains(UserInst);
1026}
1027
Dan Gohman572645c2010-02-12 10:34:29 +00001028void LSRFixup::print(raw_ostream &OS) const {
1029 OS << "UserInst=";
1030 // Store is common and interesting enough to be worth special-casing.
1031 if (StoreInst *Store = dyn_cast<StoreInst>(UserInst)) {
1032 OS << "store ";
1033 WriteAsOperand(OS, Store->getOperand(0), /*PrintType=*/false);
1034 } else if (UserInst->getType()->isVoidTy())
1035 OS << UserInst->getOpcodeName();
1036 else
1037 WriteAsOperand(OS, UserInst, /*PrintType=*/false);
1038
1039 OS << ", OperandValToReplace=";
1040 WriteAsOperand(OS, OperandValToReplace, /*PrintType=*/false);
1041
Dan Gohman448db1c2010-04-07 22:27:08 +00001042 for (PostIncLoopSet::const_iterator I = PostIncLoops.begin(),
1043 E = PostIncLoops.end(); I != E; ++I) {
Dan Gohman572645c2010-02-12 10:34:29 +00001044 OS << ", PostIncLoop=";
Dan Gohman448db1c2010-04-07 22:27:08 +00001045 WriteAsOperand(OS, (*I)->getHeader(), /*PrintType=*/false);
Dan Gohman572645c2010-02-12 10:34:29 +00001046 }
1047
1048 if (LUIdx != ~size_t(0))
1049 OS << ", LUIdx=" << LUIdx;
1050
1051 if (Offset != 0)
1052 OS << ", Offset=" << Offset;
1053}
1054
1055void LSRFixup::dump() const {
1056 print(errs()); errs() << '\n';
1057}
1058
1059namespace {
1060
1061/// UniquifierDenseMapInfo - A DenseMapInfo implementation for holding
1062/// DenseMaps and DenseSets of sorted SmallVectors of const SCEV*.
1063struct UniquifierDenseMapInfo {
1064 static SmallVector<const SCEV *, 2> getEmptyKey() {
1065 SmallVector<const SCEV *, 2> V;
1066 V.push_back(reinterpret_cast<const SCEV *>(-1));
1067 return V;
1068 }
1069
1070 static SmallVector<const SCEV *, 2> getTombstoneKey() {
1071 SmallVector<const SCEV *, 2> V;
1072 V.push_back(reinterpret_cast<const SCEV *>(-2));
1073 return V;
1074 }
1075
1076 static unsigned getHashValue(const SmallVector<const SCEV *, 2> &V) {
1077 unsigned Result = 0;
1078 for (SmallVectorImpl<const SCEV *>::const_iterator I = V.begin(),
1079 E = V.end(); I != E; ++I)
1080 Result ^= DenseMapInfo<const SCEV *>::getHashValue(*I);
1081 return Result;
1082 }
1083
1084 static bool isEqual(const SmallVector<const SCEV *, 2> &LHS,
1085 const SmallVector<const SCEV *, 2> &RHS) {
1086 return LHS == RHS;
1087 }
1088};
1089
1090/// LSRUse - This class holds the state that LSR keeps for each use in
1091/// IVUsers, as well as uses invented by LSR itself. It includes information
1092/// about what kinds of things can be folded into the user, information about
1093/// the user itself, and information about how the use may be satisfied.
1094/// TODO: Represent multiple users of the same expression in common?
1095class LSRUse {
1096 DenseSet<SmallVector<const SCEV *, 2>, UniquifierDenseMapInfo> Uniquifier;
1097
1098public:
1099 /// KindType - An enum for a kind of use, indicating what types of
1100 /// scaled and immediate operands it might support.
1101 enum KindType {
1102 Basic, ///< A normal use, with no folding.
1103 Special, ///< A special case of basic, allowing -1 scales.
1104 Address, ///< An address use; folding according to TargetLowering
1105 ICmpZero ///< An equality icmp with both operands folded into one.
1106 // TODO: Add a generic icmp too?
Dan Gohman7979b722010-01-22 00:46:49 +00001107 };
Dan Gohman572645c2010-02-12 10:34:29 +00001108
1109 KindType Kind;
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001110 Type *AccessTy;
Dan Gohman572645c2010-02-12 10:34:29 +00001111
1112 SmallVector<int64_t, 8> Offsets;
1113 int64_t MinOffset;
1114 int64_t MaxOffset;
1115
1116 /// AllFixupsOutsideLoop - This records whether all of the fixups using this
1117 /// LSRUse are outside of the loop, in which case some special-case heuristics
1118 /// may be used.
1119 bool AllFixupsOutsideLoop;
1120
Dan Gohmana9db1292010-07-15 20:24:58 +00001121 /// WidestFixupType - This records the widest use type for any fixup using
1122 /// this LSRUse. FindUseWithSimilarFormula can't consider uses with different
1123 /// max fixup widths to be equivalent, because the narrower one may be relying
1124 /// on the implicit truncation to truncate away bogus bits.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001125 Type *WidestFixupType;
Dan Gohmana9db1292010-07-15 20:24:58 +00001126
Dan Gohman572645c2010-02-12 10:34:29 +00001127 /// Formulae - A list of ways to build a value that can satisfy this user.
1128 /// After the list is populated, one of these is selected heuristically and
1129 /// used to formulate a replacement for OperandValToReplace in UserInst.
1130 SmallVector<Formula, 12> Formulae;
1131
1132 /// Regs - The set of register candidates used by all formulae in this LSRUse.
1133 SmallPtrSet<const SCEV *, 4> Regs;
1134
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001135 LSRUse(KindType K, Type *T) : Kind(K), AccessTy(T),
Dan Gohman572645c2010-02-12 10:34:29 +00001136 MinOffset(INT64_MAX),
1137 MaxOffset(INT64_MIN),
Dan Gohmana9db1292010-07-15 20:24:58 +00001138 AllFixupsOutsideLoop(true),
1139 WidestFixupType(0) {}
Dan Gohman572645c2010-02-12 10:34:29 +00001140
Dan Gohmana2086b32010-05-19 23:43:12 +00001141 bool HasFormulaWithSameRegs(const Formula &F) const;
Dan Gohman454d26d2010-02-22 04:11:59 +00001142 bool InsertFormula(const Formula &F);
Dan Gohmand69d6282010-05-18 22:39:15 +00001143 void DeleteFormula(Formula &F);
Dan Gohmanb2df4332010-05-18 23:42:37 +00001144 void RecomputeRegs(size_t LUIdx, RegUseTracker &Reguses);
Dan Gohman572645c2010-02-12 10:34:29 +00001145
Dan Gohman572645c2010-02-12 10:34:29 +00001146 void print(raw_ostream &OS) const;
1147 void dump() const;
1148};
1149
Dan Gohmanb6211712010-06-19 21:21:39 +00001150}
1151
Dan Gohmana2086b32010-05-19 23:43:12 +00001152/// HasFormula - Test whether this use as a formula which has the same
1153/// registers as the given formula.
1154bool LSRUse::HasFormulaWithSameRegs(const Formula &F) const {
1155 SmallVector<const SCEV *, 2> Key = F.BaseRegs;
1156 if (F.ScaledReg) Key.push_back(F.ScaledReg);
1157 // Unstable sort by host order ok, because this is only used for uniquifying.
1158 std::sort(Key.begin(), Key.end());
1159 return Uniquifier.count(Key);
1160}
1161
Dan Gohman572645c2010-02-12 10:34:29 +00001162/// InsertFormula - If the given formula has not yet been inserted, add it to
1163/// the list, and return true. Return false otherwise.
Dan Gohman454d26d2010-02-22 04:11:59 +00001164bool LSRUse::InsertFormula(const Formula &F) {
Dan Gohman572645c2010-02-12 10:34:29 +00001165 SmallVector<const SCEV *, 2> Key = F.BaseRegs;
1166 if (F.ScaledReg) Key.push_back(F.ScaledReg);
1167 // Unstable sort by host order ok, because this is only used for uniquifying.
1168 std::sort(Key.begin(), Key.end());
1169
1170 if (!Uniquifier.insert(Key).second)
1171 return false;
1172
1173 // Using a register to hold the value of 0 is not profitable.
1174 assert((!F.ScaledReg || !F.ScaledReg->isZero()) &&
1175 "Zero allocated in a scaled register!");
1176#ifndef NDEBUG
1177 for (SmallVectorImpl<const SCEV *>::const_iterator I =
1178 F.BaseRegs.begin(), E = F.BaseRegs.end(); I != E; ++I)
1179 assert(!(*I)->isZero() && "Zero allocated in a base register!");
1180#endif
1181
1182 // Add the formula to the list.
1183 Formulae.push_back(F);
1184
1185 // Record registers now being used by this use.
Dan Gohman572645c2010-02-12 10:34:29 +00001186 Regs.insert(F.BaseRegs.begin(), F.BaseRegs.end());
1187
1188 return true;
Dan Gohman7979b722010-01-22 00:46:49 +00001189}
1190
Dan Gohmand69d6282010-05-18 22:39:15 +00001191/// DeleteFormula - Remove the given formula from this use's list.
1192void LSRUse::DeleteFormula(Formula &F) {
Dan Gohman5ce6d052010-05-20 15:17:54 +00001193 if (&F != &Formulae.back())
1194 std::swap(F, Formulae.back());
Dan Gohmand69d6282010-05-18 22:39:15 +00001195 Formulae.pop_back();
1196}
1197
Dan Gohmanb2df4332010-05-18 23:42:37 +00001198/// RecomputeRegs - Recompute the Regs field, and update RegUses.
1199void LSRUse::RecomputeRegs(size_t LUIdx, RegUseTracker &RegUses) {
1200 // Now that we've filtered out some formulae, recompute the Regs set.
1201 SmallPtrSet<const SCEV *, 4> OldRegs = Regs;
1202 Regs.clear();
Dan Gohman402d4352010-05-20 20:33:18 +00001203 for (SmallVectorImpl<Formula>::const_iterator I = Formulae.begin(),
1204 E = Formulae.end(); I != E; ++I) {
1205 const Formula &F = *I;
Dan Gohmanb2df4332010-05-18 23:42:37 +00001206 if (F.ScaledReg) Regs.insert(F.ScaledReg);
1207 Regs.insert(F.BaseRegs.begin(), F.BaseRegs.end());
1208 }
1209
1210 // Update the RegTracker.
1211 for (SmallPtrSet<const SCEV *, 4>::iterator I = OldRegs.begin(),
1212 E = OldRegs.end(); I != E; ++I)
1213 if (!Regs.count(*I))
1214 RegUses.DropRegister(*I, LUIdx);
1215}
1216
Dan Gohman572645c2010-02-12 10:34:29 +00001217void LSRUse::print(raw_ostream &OS) const {
1218 OS << "LSR Use: Kind=";
1219 switch (Kind) {
1220 case Basic: OS << "Basic"; break;
1221 case Special: OS << "Special"; break;
1222 case ICmpZero: OS << "ICmpZero"; break;
1223 case Address:
1224 OS << "Address of ";
Duncan Sands1df98592010-02-16 11:11:14 +00001225 if (AccessTy->isPointerTy())
Dan Gohman572645c2010-02-12 10:34:29 +00001226 OS << "pointer"; // the full pointer type could be really verbose
1227 else
1228 OS << *AccessTy;
Evan Chengcdf43b12007-10-25 09:11:16 +00001229 }
1230
Dan Gohman572645c2010-02-12 10:34:29 +00001231 OS << ", Offsets={";
1232 for (SmallVectorImpl<int64_t>::const_iterator I = Offsets.begin(),
1233 E = Offsets.end(); I != E; ++I) {
1234 OS << *I;
Oscar Fuentesee56c422010-08-02 06:00:15 +00001235 if (llvm::next(I) != E)
Dan Gohman572645c2010-02-12 10:34:29 +00001236 OS << ',';
Dan Gohman7979b722010-01-22 00:46:49 +00001237 }
Dan Gohman572645c2010-02-12 10:34:29 +00001238 OS << '}';
Dan Gohman7979b722010-01-22 00:46:49 +00001239
Dan Gohman572645c2010-02-12 10:34:29 +00001240 if (AllFixupsOutsideLoop)
1241 OS << ", all-fixups-outside-loop";
Dan Gohmana9db1292010-07-15 20:24:58 +00001242
1243 if (WidestFixupType)
1244 OS << ", widest fixup type: " << *WidestFixupType;
Dan Gohman7979b722010-01-22 00:46:49 +00001245}
1246
Dan Gohman572645c2010-02-12 10:34:29 +00001247void LSRUse::dump() const {
1248 print(errs()); errs() << '\n';
1249}
Dan Gohman7979b722010-01-22 00:46:49 +00001250
Dan Gohman572645c2010-02-12 10:34:29 +00001251/// isLegalUse - Test whether the use described by AM is "legal", meaning it can
1252/// be completely folded into the user instruction at isel time. This includes
1253/// address-mode folding and special icmp tricks.
1254static bool isLegalUse(const TargetLowering::AddrMode &AM,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001255 LSRUse::KindType Kind, Type *AccessTy,
Dan Gohman572645c2010-02-12 10:34:29 +00001256 const TargetLowering *TLI) {
1257 switch (Kind) {
1258 case LSRUse::Address:
1259 // If we have low-level target information, ask the target if it can
1260 // completely fold this address.
1261 if (TLI) return TLI->isLegalAddressingMode(AM, AccessTy);
1262
1263 // Otherwise, just guess that reg+reg addressing is legal.
1264 return !AM.BaseGV && AM.BaseOffs == 0 && AM.Scale <= 1;
1265
1266 case LSRUse::ICmpZero:
1267 // There's not even a target hook for querying whether it would be legal to
1268 // fold a GV into an ICmp.
1269 if (AM.BaseGV)
1270 return false;
1271
1272 // ICmp only has two operands; don't allow more than two non-trivial parts.
1273 if (AM.Scale != 0 && AM.HasBaseReg && AM.BaseOffs != 0)
1274 return false;
1275
1276 // ICmp only supports no scale or a -1 scale, as we can "fold" a -1 scale by
1277 // putting the scaled register in the other operand of the icmp.
1278 if (AM.Scale != 0 && AM.Scale != -1)
1279 return false;
1280
1281 // If we have low-level target information, ask the target if it can fold an
1282 // integer immediate on an icmp.
1283 if (AM.BaseOffs != 0) {
Eli Friedmandae36ba2011-10-13 23:48:33 +00001284 if (TLI) return TLI->isLegalICmpImmediate(-(uint64_t)AM.BaseOffs);
Dan Gohman572645c2010-02-12 10:34:29 +00001285 return false;
Dan Gohman7979b722010-01-22 00:46:49 +00001286 }
Dan Gohman572645c2010-02-12 10:34:29 +00001287
1288 return true;
1289
1290 case LSRUse::Basic:
1291 // Only handle single-register values.
1292 return !AM.BaseGV && AM.Scale == 0 && AM.BaseOffs == 0;
1293
1294 case LSRUse::Special:
1295 // Only handle -1 scales, or no scale.
1296 return AM.Scale == 0 || AM.Scale == -1;
Dan Gohman7979b722010-01-22 00:46:49 +00001297 }
1298
David Blaikie4d6ccb52012-01-20 21:51:11 +00001299 llvm_unreachable("Invalid LSRUse Kind!");
Dan Gohman7979b722010-01-22 00:46:49 +00001300}
1301
Dan Gohman572645c2010-02-12 10:34:29 +00001302static bool isLegalUse(TargetLowering::AddrMode AM,
1303 int64_t MinOffset, int64_t MaxOffset,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001304 LSRUse::KindType Kind, Type *AccessTy,
Dan Gohman572645c2010-02-12 10:34:29 +00001305 const TargetLowering *TLI) {
1306 // Check for overflow.
1307 if (((int64_t)((uint64_t)AM.BaseOffs + MinOffset) > AM.BaseOffs) !=
1308 (MinOffset > 0))
1309 return false;
1310 AM.BaseOffs = (uint64_t)AM.BaseOffs + MinOffset;
1311 if (isLegalUse(AM, Kind, AccessTy, TLI)) {
1312 AM.BaseOffs = (uint64_t)AM.BaseOffs - MinOffset;
1313 // Check for overflow.
1314 if (((int64_t)((uint64_t)AM.BaseOffs + MaxOffset) > AM.BaseOffs) !=
1315 (MaxOffset > 0))
1316 return false;
1317 AM.BaseOffs = (uint64_t)AM.BaseOffs + MaxOffset;
1318 return isLegalUse(AM, Kind, AccessTy, TLI);
Dan Gohman7979b722010-01-22 00:46:49 +00001319 }
Dan Gohman572645c2010-02-12 10:34:29 +00001320 return false;
Dan Gohman7979b722010-01-22 00:46:49 +00001321}
1322
Dan Gohman572645c2010-02-12 10:34:29 +00001323static bool isAlwaysFoldable(int64_t BaseOffs,
1324 GlobalValue *BaseGV,
1325 bool HasBaseReg,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001326 LSRUse::KindType Kind, Type *AccessTy,
Dan Gohman454d26d2010-02-22 04:11:59 +00001327 const TargetLowering *TLI) {
Dan Gohman572645c2010-02-12 10:34:29 +00001328 // Fast-path: zero is always foldable.
1329 if (BaseOffs == 0 && !BaseGV) return true;
Dan Gohman7979b722010-01-22 00:46:49 +00001330
Dan Gohman572645c2010-02-12 10:34:29 +00001331 // Conservatively, create an address with an immediate and a
1332 // base and a scale.
1333 TargetLowering::AddrMode AM;
1334 AM.BaseOffs = BaseOffs;
1335 AM.BaseGV = BaseGV;
1336 AM.HasBaseReg = HasBaseReg;
1337 AM.Scale = Kind == LSRUse::ICmpZero ? -1 : 1;
Dan Gohman7979b722010-01-22 00:46:49 +00001338
Dan Gohmana2086b32010-05-19 23:43:12 +00001339 // Canonicalize a scale of 1 to a base register if the formula doesn't
1340 // already have a base register.
1341 if (!AM.HasBaseReg && AM.Scale == 1) {
1342 AM.Scale = 0;
1343 AM.HasBaseReg = true;
1344 }
1345
Dan Gohman572645c2010-02-12 10:34:29 +00001346 return isLegalUse(AM, Kind, AccessTy, TLI);
Dan Gohman7979b722010-01-22 00:46:49 +00001347}
1348
Dan Gohman572645c2010-02-12 10:34:29 +00001349static bool isAlwaysFoldable(const SCEV *S,
1350 int64_t MinOffset, int64_t MaxOffset,
1351 bool HasBaseReg,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001352 LSRUse::KindType Kind, Type *AccessTy,
Dan Gohman572645c2010-02-12 10:34:29 +00001353 const TargetLowering *TLI,
1354 ScalarEvolution &SE) {
1355 // Fast-path: zero is always foldable.
1356 if (S->isZero()) return true;
1357
1358 // Conservatively, create an address with an immediate and a
1359 // base and a scale.
1360 int64_t BaseOffs = ExtractImmediate(S, SE);
1361 GlobalValue *BaseGV = ExtractSymbol(S, SE);
1362
1363 // If there's anything else involved, it's not foldable.
1364 if (!S->isZero()) return false;
1365
1366 // Fast-path: zero is always foldable.
1367 if (BaseOffs == 0 && !BaseGV) return true;
1368
1369 // Conservatively, create an address with an immediate and a
1370 // base and a scale.
1371 TargetLowering::AddrMode AM;
1372 AM.BaseOffs = BaseOffs;
1373 AM.BaseGV = BaseGV;
1374 AM.HasBaseReg = HasBaseReg;
1375 AM.Scale = Kind == LSRUse::ICmpZero ? -1 : 1;
1376
1377 return isLegalUse(AM, MinOffset, MaxOffset, Kind, AccessTy, TLI);
Dan Gohman7979b722010-01-22 00:46:49 +00001378}
1379
Dan Gohmanb6211712010-06-19 21:21:39 +00001380namespace {
1381
Dan Gohman1e3121c2010-06-19 21:29:59 +00001382/// UseMapDenseMapInfo - A DenseMapInfo implementation for holding
1383/// DenseMaps and DenseSets of pairs of const SCEV* and LSRUse::Kind.
1384struct UseMapDenseMapInfo {
1385 static std::pair<const SCEV *, LSRUse::KindType> getEmptyKey() {
1386 return std::make_pair(reinterpret_cast<const SCEV *>(-1), LSRUse::Basic);
1387 }
1388
1389 static std::pair<const SCEV *, LSRUse::KindType> getTombstoneKey() {
1390 return std::make_pair(reinterpret_cast<const SCEV *>(-2), LSRUse::Basic);
1391 }
1392
1393 static unsigned
1394 getHashValue(const std::pair<const SCEV *, LSRUse::KindType> &V) {
1395 unsigned Result = DenseMapInfo<const SCEV *>::getHashValue(V.first);
1396 Result ^= DenseMapInfo<unsigned>::getHashValue(unsigned(V.second));
1397 return Result;
1398 }
1399
1400 static bool isEqual(const std::pair<const SCEV *, LSRUse::KindType> &LHS,
1401 const std::pair<const SCEV *, LSRUse::KindType> &RHS) {
1402 return LHS == RHS;
1403 }
1404};
1405
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00001406/// IVInc - An individual increment in a Chain of IV increments.
1407/// Relate an IV user to an expression that computes the IV it uses from the IV
1408/// used by the previous link in the Chain.
1409///
1410/// For the head of a chain, IncExpr holds the absolute SCEV expression for the
1411/// original IVOperand. The head of the chain's IVOperand is only valid during
1412/// chain collection, before LSR replaces IV users. During chain generation,
1413/// IncExpr can be used to find the new IVOperand that computes the same
1414/// expression.
1415struct IVInc {
1416 Instruction *UserInst;
1417 Value* IVOperand;
1418 const SCEV *IncExpr;
1419
1420 IVInc(Instruction *U, Value *O, const SCEV *E):
1421 UserInst(U), IVOperand(O), IncExpr(E) {}
1422};
1423
1424// IVChain - The list of IV increments in program order.
1425// We typically add the head of a chain without finding subsequent links.
1426typedef SmallVector<IVInc,1> IVChain;
1427
1428/// ChainUsers - Helper for CollectChains to track multiple IV increment uses.
1429/// Distinguish between FarUsers that definitely cross IV increments and
1430/// NearUsers that may be used between IV increments.
1431struct ChainUsers {
1432 SmallPtrSet<Instruction*, 4> FarUsers;
1433 SmallPtrSet<Instruction*, 4> NearUsers;
1434};
1435
Dan Gohman572645c2010-02-12 10:34:29 +00001436/// LSRInstance - This class holds state for the main loop strength reduction
1437/// logic.
1438class LSRInstance {
1439 IVUsers &IU;
1440 ScalarEvolution &SE;
1441 DominatorTree &DT;
Dan Gohmane5f76872010-04-09 22:07:05 +00001442 LoopInfo &LI;
Dan Gohman572645c2010-02-12 10:34:29 +00001443 const TargetLowering *const TLI;
1444 Loop *const L;
1445 bool Changed;
1446
1447 /// IVIncInsertPos - This is the insert position that the current loop's
1448 /// induction variable increment should be placed. In simple loops, this is
1449 /// the latch block's terminator. But in more complicated cases, this is a
1450 /// position which will dominate all the in-loop post-increment users.
1451 Instruction *IVIncInsertPos;
1452
1453 /// Factors - Interesting factors between use strides.
1454 SmallSetVector<int64_t, 8> Factors;
1455
1456 /// Types - Interesting use types, to facilitate truncation reuse.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001457 SmallSetVector<Type *, 4> Types;
Dan Gohman572645c2010-02-12 10:34:29 +00001458
1459 /// Fixups - The list of operands which are to be replaced.
1460 SmallVector<LSRFixup, 16> Fixups;
1461
1462 /// Uses - The list of interesting uses.
1463 SmallVector<LSRUse, 16> Uses;
1464
1465 /// RegUses - Track which uses use which register candidates.
1466 RegUseTracker RegUses;
1467
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00001468 // Limit the number of chains to avoid quadratic behavior. We don't expect to
1469 // have more than a few IV increment chains in a loop. Missing a Chain falls
1470 // back to normal LSR behavior for those uses.
1471 static const unsigned MaxChains = 8;
1472
1473 /// IVChainVec - IV users can form a chain of IV increments.
1474 SmallVector<IVChain, MaxChains> IVChainVec;
1475
Andrew Trick22d20c22012-01-09 21:18:52 +00001476 /// IVIncSet - IV users that belong to profitable IVChains.
1477 SmallPtrSet<Use*, MaxChains> IVIncSet;
1478
Dan Gohman572645c2010-02-12 10:34:29 +00001479 void OptimizeShadowIV();
1480 bool FindIVUserForCond(ICmpInst *Cond, IVStrideUse *&CondUse);
1481 ICmpInst *OptimizeMax(ICmpInst *Cond, IVStrideUse* &CondUse);
Dan Gohmanc6519f92010-05-20 20:05:31 +00001482 void OptimizeLoopTermCond();
Dan Gohman572645c2010-02-12 10:34:29 +00001483
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00001484 void ChainInstruction(Instruction *UserInst, Instruction *IVOper,
1485 SmallVectorImpl<ChainUsers> &ChainUsersVec);
Andrew Trick22d20c22012-01-09 21:18:52 +00001486 void FinalizeChain(IVChain &Chain);
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00001487 void CollectChains();
Andrew Trick22d20c22012-01-09 21:18:52 +00001488 void GenerateIVChain(const IVChain &Chain, SCEVExpander &Rewriter,
1489 SmallVectorImpl<WeakVH> &DeadInsts);
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00001490
Dan Gohman572645c2010-02-12 10:34:29 +00001491 void CollectInterestingTypesAndFactors();
1492 void CollectFixupsAndInitialFormulae();
1493
1494 LSRFixup &getNewFixup() {
1495 Fixups.push_back(LSRFixup());
1496 return Fixups.back();
1497 }
1498
1499 // Support for sharing of LSRUses between LSRFixups.
Dan Gohman1e3121c2010-06-19 21:29:59 +00001500 typedef DenseMap<std::pair<const SCEV *, LSRUse::KindType>,
1501 size_t,
1502 UseMapDenseMapInfo> UseMapTy;
Dan Gohman572645c2010-02-12 10:34:29 +00001503 UseMapTy UseMap;
1504
Dan Gohman191bd642010-09-01 01:45:53 +00001505 bool reconcileNewOffset(LSRUse &LU, int64_t NewOffset, bool HasBaseReg,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001506 LSRUse::KindType Kind, Type *AccessTy);
Dan Gohman572645c2010-02-12 10:34:29 +00001507
1508 std::pair<size_t, int64_t> getUse(const SCEV *&Expr,
1509 LSRUse::KindType Kind,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001510 Type *AccessTy);
Dan Gohman572645c2010-02-12 10:34:29 +00001511
Dan Gohmanc6897702010-10-07 23:33:43 +00001512 void DeleteUse(LSRUse &LU, size_t LUIdx);
Dan Gohman5ce6d052010-05-20 15:17:54 +00001513
Dan Gohman191bd642010-09-01 01:45:53 +00001514 LSRUse *FindUseWithSimilarFormula(const Formula &F, const LSRUse &OrigLU);
Dan Gohmana2086b32010-05-19 23:43:12 +00001515
Dan Gohman454d26d2010-02-22 04:11:59 +00001516 void InsertInitialFormula(const SCEV *S, LSRUse &LU, size_t LUIdx);
Dan Gohman572645c2010-02-12 10:34:29 +00001517 void InsertSupplementalFormula(const SCEV *S, LSRUse &LU, size_t LUIdx);
1518 void CountRegisters(const Formula &F, size_t LUIdx);
1519 bool InsertFormula(LSRUse &LU, unsigned LUIdx, const Formula &F);
1520
1521 void CollectLoopInvariantFixupsAndFormulae();
1522
1523 void GenerateReassociations(LSRUse &LU, unsigned LUIdx, Formula Base,
1524 unsigned Depth = 0);
1525 void GenerateCombinations(LSRUse &LU, unsigned LUIdx, Formula Base);
1526 void GenerateSymbolicOffsets(LSRUse &LU, unsigned LUIdx, Formula Base);
1527 void GenerateConstantOffsets(LSRUse &LU, unsigned LUIdx, Formula Base);
1528 void GenerateICmpZeroScales(LSRUse &LU, unsigned LUIdx, Formula Base);
1529 void GenerateScales(LSRUse &LU, unsigned LUIdx, Formula Base);
1530 void GenerateTruncates(LSRUse &LU, unsigned LUIdx, Formula Base);
1531 void GenerateCrossUseConstantOffsets();
1532 void GenerateAllReuseFormulae();
1533
1534 void FilterOutUndesirableDedicatedRegisters();
Dan Gohmand079c302010-05-18 22:51:59 +00001535
1536 size_t EstimateSearchSpaceComplexity() const;
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00001537 void NarrowSearchSpaceByDetectingSupersets();
1538 void NarrowSearchSpaceByCollapsingUnrolledCode();
Dan Gohman4f7e18d2010-08-29 16:39:22 +00001539 void NarrowSearchSpaceByRefilteringUndesirableDedicatedRegisters();
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00001540 void NarrowSearchSpaceByPickingWinnerRegs();
Dan Gohman572645c2010-02-12 10:34:29 +00001541 void NarrowSearchSpaceUsingHeuristics();
1542
1543 void SolveRecurse(SmallVectorImpl<const Formula *> &Solution,
1544 Cost &SolutionCost,
1545 SmallVectorImpl<const Formula *> &Workspace,
1546 const Cost &CurCost,
1547 const SmallPtrSet<const SCEV *, 16> &CurRegs,
1548 DenseSet<const SCEV *> &VisitedRegs) const;
1549 void Solve(SmallVectorImpl<const Formula *> &Solution) const;
1550
Dan Gohmane5f76872010-04-09 22:07:05 +00001551 BasicBlock::iterator
1552 HoistInsertPosition(BasicBlock::iterator IP,
1553 const SmallVectorImpl<Instruction *> &Inputs) const;
Andrew Trickb5c26ef2012-01-20 07:41:13 +00001554 BasicBlock::iterator
1555 AdjustInsertPositionForExpand(BasicBlock::iterator IP,
1556 const LSRFixup &LF,
1557 const LSRUse &LU,
1558 SCEVExpander &Rewriter) const;
Dan Gohmand96eae82010-04-09 02:00:38 +00001559
Dan Gohman572645c2010-02-12 10:34:29 +00001560 Value *Expand(const LSRFixup &LF,
1561 const Formula &F,
Dan Gohman454d26d2010-02-22 04:11:59 +00001562 BasicBlock::iterator IP,
Dan Gohman572645c2010-02-12 10:34:29 +00001563 SCEVExpander &Rewriter,
Dan Gohman454d26d2010-02-22 04:11:59 +00001564 SmallVectorImpl<WeakVH> &DeadInsts) const;
Dan Gohman3a02cbc2010-02-16 20:25:07 +00001565 void RewriteForPHI(PHINode *PN, const LSRFixup &LF,
1566 const Formula &F,
Dan Gohman3a02cbc2010-02-16 20:25:07 +00001567 SCEVExpander &Rewriter,
1568 SmallVectorImpl<WeakVH> &DeadInsts,
Dan Gohman3a02cbc2010-02-16 20:25:07 +00001569 Pass *P) const;
Dan Gohman572645c2010-02-12 10:34:29 +00001570 void Rewrite(const LSRFixup &LF,
1571 const Formula &F,
Dan Gohman572645c2010-02-12 10:34:29 +00001572 SCEVExpander &Rewriter,
1573 SmallVectorImpl<WeakVH> &DeadInsts,
Dan Gohman572645c2010-02-12 10:34:29 +00001574 Pass *P) const;
1575 void ImplementSolution(const SmallVectorImpl<const Formula *> &Solution,
1576 Pass *P);
1577
Andrew Trickd56ef8d2011-12-13 00:55:33 +00001578public:
Dan Gohman572645c2010-02-12 10:34:29 +00001579 LSRInstance(const TargetLowering *tli, Loop *l, Pass *P);
1580
1581 bool getChanged() const { return Changed; }
1582
1583 void print_factors_and_types(raw_ostream &OS) const;
1584 void print_fixups(raw_ostream &OS) const;
1585 void print_uses(raw_ostream &OS) const;
1586 void print(raw_ostream &OS) const;
1587 void dump() const;
1588};
1589
1590}
1591
1592/// OptimizeShadowIV - If IV is used in a int-to-float cast
Dan Gohman3f46a3a2010-03-01 17:49:51 +00001593/// inside the loop then try to eliminate the cast operation.
Dan Gohman572645c2010-02-12 10:34:29 +00001594void LSRInstance::OptimizeShadowIV() {
1595 const SCEV *BackedgeTakenCount = SE.getBackedgeTakenCount(L);
1596 if (isa<SCEVCouldNotCompute>(BackedgeTakenCount))
1597 return;
1598
1599 for (IVUsers::const_iterator UI = IU.begin(), E = IU.end();
1600 UI != E; /* empty */) {
1601 IVUsers::const_iterator CandidateUI = UI;
1602 ++UI;
1603 Instruction *ShadowUse = CandidateUI->getUser();
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001604 Type *DestTy = NULL;
Andrew Trickc2c988e2011-07-21 01:05:01 +00001605 bool IsSigned = false;
Dan Gohman572645c2010-02-12 10:34:29 +00001606
1607 /* If shadow use is a int->float cast then insert a second IV
1608 to eliminate this cast.
1609
1610 for (unsigned i = 0; i < n; ++i)
1611 foo((double)i);
1612
1613 is transformed into
1614
1615 double d = 0.0;
1616 for (unsigned i = 0; i < n; ++i, ++d)
1617 foo(d);
1618 */
Andrew Trickc2c988e2011-07-21 01:05:01 +00001619 if (UIToFPInst *UCast = dyn_cast<UIToFPInst>(CandidateUI->getUser())) {
1620 IsSigned = false;
Dan Gohman572645c2010-02-12 10:34:29 +00001621 DestTy = UCast->getDestTy();
Andrew Trickc2c988e2011-07-21 01:05:01 +00001622 }
1623 else if (SIToFPInst *SCast = dyn_cast<SIToFPInst>(CandidateUI->getUser())) {
1624 IsSigned = true;
Dan Gohman572645c2010-02-12 10:34:29 +00001625 DestTy = SCast->getDestTy();
Andrew Trickc2c988e2011-07-21 01:05:01 +00001626 }
Dan Gohman572645c2010-02-12 10:34:29 +00001627 if (!DestTy) continue;
1628
1629 if (TLI) {
1630 // If target does not support DestTy natively then do not apply
1631 // this transformation.
1632 EVT DVT = TLI->getValueType(DestTy);
1633 if (!TLI->isTypeLegal(DVT)) continue;
1634 }
1635
1636 PHINode *PH = dyn_cast<PHINode>(ShadowUse->getOperand(0));
1637 if (!PH) continue;
1638 if (PH->getNumIncomingValues() != 2) continue;
1639
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001640 Type *SrcTy = PH->getType();
Dan Gohman572645c2010-02-12 10:34:29 +00001641 int Mantissa = DestTy->getFPMantissaWidth();
1642 if (Mantissa == -1) continue;
1643 if ((int)SE.getTypeSizeInBits(SrcTy) > Mantissa)
1644 continue;
1645
1646 unsigned Entry, Latch;
1647 if (PH->getIncomingBlock(0) == L->getLoopPreheader()) {
1648 Entry = 0;
1649 Latch = 1;
Dan Gohman7979b722010-01-22 00:46:49 +00001650 } else {
Dan Gohman572645c2010-02-12 10:34:29 +00001651 Entry = 1;
1652 Latch = 0;
Dan Gohman7979b722010-01-22 00:46:49 +00001653 }
Dan Gohman7979b722010-01-22 00:46:49 +00001654
Dan Gohman572645c2010-02-12 10:34:29 +00001655 ConstantInt *Init = dyn_cast<ConstantInt>(PH->getIncomingValue(Entry));
1656 if (!Init) continue;
Andrew Trickc2c988e2011-07-21 01:05:01 +00001657 Constant *NewInit = ConstantFP::get(DestTy, IsSigned ?
Andrew Trickc205a092011-07-21 01:45:54 +00001658 (double)Init->getSExtValue() :
1659 (double)Init->getZExtValue());
Dan Gohman7979b722010-01-22 00:46:49 +00001660
Dan Gohman572645c2010-02-12 10:34:29 +00001661 BinaryOperator *Incr =
1662 dyn_cast<BinaryOperator>(PH->getIncomingValue(Latch));
1663 if (!Incr) continue;
1664 if (Incr->getOpcode() != Instruction::Add
1665 && Incr->getOpcode() != Instruction::Sub)
Dan Gohman7979b722010-01-22 00:46:49 +00001666 continue;
Dan Gohman7979b722010-01-22 00:46:49 +00001667
Dan Gohman572645c2010-02-12 10:34:29 +00001668 /* Initialize new IV, double d = 0.0 in above example. */
1669 ConstantInt *C = NULL;
1670 if (Incr->getOperand(0) == PH)
1671 C = dyn_cast<ConstantInt>(Incr->getOperand(1));
1672 else if (Incr->getOperand(1) == PH)
1673 C = dyn_cast<ConstantInt>(Incr->getOperand(0));
Dan Gohman7979b722010-01-22 00:46:49 +00001674 else
Dan Gohman7979b722010-01-22 00:46:49 +00001675 continue;
1676
Dan Gohman572645c2010-02-12 10:34:29 +00001677 if (!C) continue;
Dan Gohman7979b722010-01-22 00:46:49 +00001678
Dan Gohman572645c2010-02-12 10:34:29 +00001679 // Ignore negative constants, as the code below doesn't handle them
1680 // correctly. TODO: Remove this restriction.
1681 if (!C->getValue().isStrictlyPositive()) continue;
Dan Gohman7979b722010-01-22 00:46:49 +00001682
Dan Gohman572645c2010-02-12 10:34:29 +00001683 /* Add new PHINode. */
Jay Foad3ecfc862011-03-30 11:28:46 +00001684 PHINode *NewPH = PHINode::Create(DestTy, 2, "IV.S.", PH);
Dan Gohman7979b722010-01-22 00:46:49 +00001685
Dan Gohman572645c2010-02-12 10:34:29 +00001686 /* create new increment. '++d' in above example. */
1687 Constant *CFP = ConstantFP::get(DestTy, C->getZExtValue());
1688 BinaryOperator *NewIncr =
1689 BinaryOperator::Create(Incr->getOpcode() == Instruction::Add ?
1690 Instruction::FAdd : Instruction::FSub,
1691 NewPH, CFP, "IV.S.next.", Incr);
Dan Gohman7979b722010-01-22 00:46:49 +00001692
Dan Gohman572645c2010-02-12 10:34:29 +00001693 NewPH->addIncoming(NewInit, PH->getIncomingBlock(Entry));
1694 NewPH->addIncoming(NewIncr, PH->getIncomingBlock(Latch));
Dan Gohman7979b722010-01-22 00:46:49 +00001695
Dan Gohman572645c2010-02-12 10:34:29 +00001696 /* Remove cast operation */
1697 ShadowUse->replaceAllUsesWith(NewPH);
1698 ShadowUse->eraseFromParent();
Dan Gohmanc6519f92010-05-20 20:05:31 +00001699 Changed = true;
Dan Gohman572645c2010-02-12 10:34:29 +00001700 break;
Dan Gohman7979b722010-01-22 00:46:49 +00001701 }
1702}
1703
1704/// FindIVUserForCond - If Cond has an operand that is an expression of an IV,
1705/// set the IV user and stride information and return true, otherwise return
1706/// false.
Dan Gohmanea507f52010-05-20 19:44:23 +00001707bool LSRInstance::FindIVUserForCond(ICmpInst *Cond, IVStrideUse *&CondUse) {
Dan Gohman572645c2010-02-12 10:34:29 +00001708 for (IVUsers::iterator UI = IU.begin(), E = IU.end(); UI != E; ++UI)
1709 if (UI->getUser() == Cond) {
1710 // NOTE: we could handle setcc instructions with multiple uses here, but
1711 // InstCombine does it as well for simple uses, it's not clear that it
1712 // occurs enough in real life to handle.
1713 CondUse = UI;
1714 return true;
1715 }
Dan Gohman7979b722010-01-22 00:46:49 +00001716 return false;
Evan Chengcdf43b12007-10-25 09:11:16 +00001717}
1718
Dan Gohman7979b722010-01-22 00:46:49 +00001719/// OptimizeMax - Rewrite the loop's terminating condition if it uses
1720/// a max computation.
1721///
1722/// This is a narrow solution to a specific, but acute, problem. For loops
1723/// like this:
1724///
1725/// i = 0;
1726/// do {
1727/// p[i] = 0.0;
1728/// } while (++i < n);
1729///
1730/// the trip count isn't just 'n', because 'n' might not be positive. And
1731/// unfortunately this can come up even for loops where the user didn't use
1732/// a C do-while loop. For example, seemingly well-behaved top-test loops
1733/// will commonly be lowered like this:
1734//
1735/// if (n > 0) {
1736/// i = 0;
1737/// do {
1738/// p[i] = 0.0;
1739/// } while (++i < n);
1740/// }
1741///
1742/// and then it's possible for subsequent optimization to obscure the if
1743/// test in such a way that indvars can't find it.
1744///
1745/// When indvars can't find the if test in loops like this, it creates a
1746/// max expression, which allows it to give the loop a canonical
1747/// induction variable:
1748///
1749/// i = 0;
1750/// max = n < 1 ? 1 : n;
1751/// do {
1752/// p[i] = 0.0;
1753/// } while (++i != max);
1754///
1755/// Canonical induction variables are necessary because the loop passes
1756/// are designed around them. The most obvious example of this is the
1757/// LoopInfo analysis, which doesn't remember trip count values. It
1758/// expects to be able to rediscover the trip count each time it is
Dan Gohman572645c2010-02-12 10:34:29 +00001759/// needed, and it does this using a simple analysis that only succeeds if
Dan Gohman7979b722010-01-22 00:46:49 +00001760/// the loop has a canonical induction variable.
1761///
1762/// However, when it comes time to generate code, the maximum operation
1763/// can be quite costly, especially if it's inside of an outer loop.
1764///
1765/// This function solves this problem by detecting this type of loop and
1766/// rewriting their conditions from ICMP_NE back to ICMP_SLT, and deleting
1767/// the instructions for the maximum computation.
1768///
Dan Gohman572645c2010-02-12 10:34:29 +00001769ICmpInst *LSRInstance::OptimizeMax(ICmpInst *Cond, IVStrideUse* &CondUse) {
Dan Gohman7979b722010-01-22 00:46:49 +00001770 // Check that the loop matches the pattern we're looking for.
1771 if (Cond->getPredicate() != CmpInst::ICMP_EQ &&
1772 Cond->getPredicate() != CmpInst::ICMP_NE)
1773 return Cond;
Dan Gohmana10756e2010-01-21 02:09:26 +00001774
Dan Gohman7979b722010-01-22 00:46:49 +00001775 SelectInst *Sel = dyn_cast<SelectInst>(Cond->getOperand(1));
1776 if (!Sel || !Sel->hasOneUse()) return Cond;
Dan Gohmana10756e2010-01-21 02:09:26 +00001777
Dan Gohman572645c2010-02-12 10:34:29 +00001778 const SCEV *BackedgeTakenCount = SE.getBackedgeTakenCount(L);
Dan Gohman7979b722010-01-22 00:46:49 +00001779 if (isa<SCEVCouldNotCompute>(BackedgeTakenCount))
1780 return Cond;
Dan Gohmandeff6212010-05-03 22:09:21 +00001781 const SCEV *One = SE.getConstant(BackedgeTakenCount->getType(), 1);
Dan Gohmana10756e2010-01-21 02:09:26 +00001782
Dan Gohman7979b722010-01-22 00:46:49 +00001783 // Add one to the backedge-taken count to get the trip count.
Dan Gohman4065f602010-08-16 15:39:27 +00001784 const SCEV *IterationCount = SE.getAddExpr(One, BackedgeTakenCount);
Dan Gohman1d367982010-04-24 03:13:44 +00001785 if (IterationCount != SE.getSCEV(Sel)) return Cond;
Dan Gohman7979b722010-01-22 00:46:49 +00001786
Dan Gohman1d367982010-04-24 03:13:44 +00001787 // Check for a max calculation that matches the pattern. There's no check
1788 // for ICMP_ULE here because the comparison would be with zero, which
1789 // isn't interesting.
1790 CmpInst::Predicate Pred = ICmpInst::BAD_ICMP_PREDICATE;
1791 const SCEVNAryExpr *Max = 0;
1792 if (const SCEVSMaxExpr *S = dyn_cast<SCEVSMaxExpr>(BackedgeTakenCount)) {
1793 Pred = ICmpInst::ICMP_SLE;
1794 Max = S;
1795 } else if (const SCEVSMaxExpr *S = dyn_cast<SCEVSMaxExpr>(IterationCount)) {
1796 Pred = ICmpInst::ICMP_SLT;
1797 Max = S;
1798 } else if (const SCEVUMaxExpr *U = dyn_cast<SCEVUMaxExpr>(IterationCount)) {
1799 Pred = ICmpInst::ICMP_ULT;
1800 Max = U;
1801 } else {
1802 // No match; bail.
Dan Gohman7979b722010-01-22 00:46:49 +00001803 return Cond;
Dan Gohman1d367982010-04-24 03:13:44 +00001804 }
Dan Gohman7979b722010-01-22 00:46:49 +00001805
1806 // To handle a max with more than two operands, this optimization would
1807 // require additional checking and setup.
1808 if (Max->getNumOperands() != 2)
1809 return Cond;
1810
1811 const SCEV *MaxLHS = Max->getOperand(0);
1812 const SCEV *MaxRHS = Max->getOperand(1);
Dan Gohman1d367982010-04-24 03:13:44 +00001813
1814 // ScalarEvolution canonicalizes constants to the left. For < and >, look
1815 // for a comparison with 1. For <= and >=, a comparison with zero.
1816 if (!MaxLHS ||
1817 (ICmpInst::isTrueWhenEqual(Pred) ? !MaxLHS->isZero() : (MaxLHS != One)))
1818 return Cond;
1819
Dan Gohman7979b722010-01-22 00:46:49 +00001820 // Check the relevant induction variable for conformance to
1821 // the pattern.
Dan Gohman572645c2010-02-12 10:34:29 +00001822 const SCEV *IV = SE.getSCEV(Cond->getOperand(0));
Dan Gohman7979b722010-01-22 00:46:49 +00001823 const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(IV);
1824 if (!AR || !AR->isAffine() ||
1825 AR->getStart() != One ||
Dan Gohman572645c2010-02-12 10:34:29 +00001826 AR->getStepRecurrence(SE) != One)
Dan Gohman7979b722010-01-22 00:46:49 +00001827 return Cond;
1828
1829 assert(AR->getLoop() == L &&
1830 "Loop condition operand is an addrec in a different loop!");
1831
1832 // Check the right operand of the select, and remember it, as it will
1833 // be used in the new comparison instruction.
1834 Value *NewRHS = 0;
Dan Gohman1d367982010-04-24 03:13:44 +00001835 if (ICmpInst::isTrueWhenEqual(Pred)) {
1836 // Look for n+1, and grab n.
1837 if (AddOperator *BO = dyn_cast<AddOperator>(Sel->getOperand(1)))
1838 if (isa<ConstantInt>(BO->getOperand(1)) &&
1839 cast<ConstantInt>(BO->getOperand(1))->isOne() &&
1840 SE.getSCEV(BO->getOperand(0)) == MaxRHS)
1841 NewRHS = BO->getOperand(0);
1842 if (AddOperator *BO = dyn_cast<AddOperator>(Sel->getOperand(2)))
1843 if (isa<ConstantInt>(BO->getOperand(1)) &&
1844 cast<ConstantInt>(BO->getOperand(1))->isOne() &&
1845 SE.getSCEV(BO->getOperand(0)) == MaxRHS)
1846 NewRHS = BO->getOperand(0);
1847 if (!NewRHS)
1848 return Cond;
1849 } else if (SE.getSCEV(Sel->getOperand(1)) == MaxRHS)
Dan Gohman7979b722010-01-22 00:46:49 +00001850 NewRHS = Sel->getOperand(1);
Dan Gohman572645c2010-02-12 10:34:29 +00001851 else if (SE.getSCEV(Sel->getOperand(2)) == MaxRHS)
Dan Gohman7979b722010-01-22 00:46:49 +00001852 NewRHS = Sel->getOperand(2);
Dan Gohmancaf71ab2010-06-22 23:07:13 +00001853 else if (const SCEVUnknown *SU = dyn_cast<SCEVUnknown>(MaxRHS))
1854 NewRHS = SU->getValue();
Dan Gohman1d367982010-04-24 03:13:44 +00001855 else
Dan Gohmancaf71ab2010-06-22 23:07:13 +00001856 // Max doesn't match expected pattern.
1857 return Cond;
Dan Gohman7979b722010-01-22 00:46:49 +00001858
1859 // Determine the new comparison opcode. It may be signed or unsigned,
1860 // and the original comparison may be either equality or inequality.
Dan Gohman7979b722010-01-22 00:46:49 +00001861 if (Cond->getPredicate() == CmpInst::ICMP_EQ)
1862 Pred = CmpInst::getInversePredicate(Pred);
1863
1864 // Ok, everything looks ok to change the condition into an SLT or SGE and
1865 // delete the max calculation.
1866 ICmpInst *NewCond =
1867 new ICmpInst(Cond, Pred, Cond->getOperand(0), NewRHS, "scmp");
1868
1869 // Delete the max calculation instructions.
1870 Cond->replaceAllUsesWith(NewCond);
1871 CondUse->setUser(NewCond);
1872 Instruction *Cmp = cast<Instruction>(Sel->getOperand(0));
1873 Cond->eraseFromParent();
1874 Sel->eraseFromParent();
1875 if (Cmp->use_empty())
1876 Cmp->eraseFromParent();
1877 return NewCond;
Dan Gohmanad7321f2008-09-15 21:22:06 +00001878}
1879
Jim Grosbach56a1f802009-11-17 17:53:56 +00001880/// OptimizeLoopTermCond - Change loop terminating condition to use the
Evan Cheng586f69a2009-11-12 07:35:05 +00001881/// postinc iv when possible.
Dan Gohmanc6519f92010-05-20 20:05:31 +00001882void
Dan Gohman572645c2010-02-12 10:34:29 +00001883LSRInstance::OptimizeLoopTermCond() {
1884 SmallPtrSet<Instruction *, 4> PostIncs;
1885
Evan Cheng586f69a2009-11-12 07:35:05 +00001886 BasicBlock *LatchBlock = L->getLoopLatch();
Evan Cheng076e0852009-11-17 18:10:11 +00001887 SmallVector<BasicBlock*, 8> ExitingBlocks;
1888 L->getExitingBlocks(ExitingBlocks);
Jim Grosbach56a1f802009-11-17 17:53:56 +00001889
Evan Cheng076e0852009-11-17 18:10:11 +00001890 for (unsigned i = 0, e = ExitingBlocks.size(); i != e; ++i) {
1891 BasicBlock *ExitingBlock = ExitingBlocks[i];
Evan Cheng586f69a2009-11-12 07:35:05 +00001892
Dan Gohman572645c2010-02-12 10:34:29 +00001893 // Get the terminating condition for the loop if possible. If we
Evan Cheng076e0852009-11-17 18:10:11 +00001894 // can, we want to change it to use a post-incremented version of its
1895 // induction variable, to allow coalescing the live ranges for the IV into
1896 // one register value.
Evan Cheng586f69a2009-11-12 07:35:05 +00001897
Evan Cheng076e0852009-11-17 18:10:11 +00001898 BranchInst *TermBr = dyn_cast<BranchInst>(ExitingBlock->getTerminator());
1899 if (!TermBr)
1900 continue;
1901 // FIXME: Overly conservative, termination condition could be an 'or' etc..
1902 if (TermBr->isUnconditional() || !isa<ICmpInst>(TermBr->getCondition()))
1903 continue;
Evan Cheng586f69a2009-11-12 07:35:05 +00001904
Evan Cheng076e0852009-11-17 18:10:11 +00001905 // Search IVUsesByStride to find Cond's IVUse if there is one.
1906 IVStrideUse *CondUse = 0;
Evan Cheng076e0852009-11-17 18:10:11 +00001907 ICmpInst *Cond = cast<ICmpInst>(TermBr->getCondition());
Dan Gohman572645c2010-02-12 10:34:29 +00001908 if (!FindIVUserForCond(Cond, CondUse))
Evan Cheng076e0852009-11-17 18:10:11 +00001909 continue;
1910
Evan Cheng076e0852009-11-17 18:10:11 +00001911 // If the trip count is computed in terms of a max (due to ScalarEvolution
1912 // being unable to find a sufficient guard, for example), change the loop
1913 // comparison to use SLT or ULT instead of NE.
Dan Gohman572645c2010-02-12 10:34:29 +00001914 // One consequence of doing this now is that it disrupts the count-down
1915 // optimization. That's not always a bad thing though, because in such
1916 // cases it may still be worthwhile to avoid a max.
1917 Cond = OptimizeMax(Cond, CondUse);
Evan Cheng076e0852009-11-17 18:10:11 +00001918
Dan Gohman572645c2010-02-12 10:34:29 +00001919 // If this exiting block dominates the latch block, it may also use
1920 // the post-inc value if it won't be shared with other uses.
1921 // Check for dominance.
1922 if (!DT.dominates(ExitingBlock, LatchBlock))
Dan Gohman7979b722010-01-22 00:46:49 +00001923 continue;
Evan Cheng076e0852009-11-17 18:10:11 +00001924
Dan Gohman572645c2010-02-12 10:34:29 +00001925 // Conservatively avoid trying to use the post-inc value in non-latch
1926 // exits if there may be pre-inc users in intervening blocks.
Dan Gohman590bfe82010-02-14 03:21:49 +00001927 if (LatchBlock != ExitingBlock)
Dan Gohman572645c2010-02-12 10:34:29 +00001928 for (IVUsers::const_iterator UI = IU.begin(), E = IU.end(); UI != E; ++UI)
1929 // Test if the use is reachable from the exiting block. This dominator
1930 // query is a conservative approximation of reachability.
1931 if (&*UI != CondUse &&
1932 !DT.properlyDominates(UI->getUser()->getParent(), ExitingBlock)) {
1933 // Conservatively assume there may be reuse if the quotient of their
1934 // strides could be a legal scale.
Dan Gohmanc0564542010-04-19 21:48:58 +00001935 const SCEV *A = IU.getStride(*CondUse, L);
1936 const SCEV *B = IU.getStride(*UI, L);
Dan Gohman448db1c2010-04-07 22:27:08 +00001937 if (!A || !B) continue;
Dan Gohman572645c2010-02-12 10:34:29 +00001938 if (SE.getTypeSizeInBits(A->getType()) !=
1939 SE.getTypeSizeInBits(B->getType())) {
1940 if (SE.getTypeSizeInBits(A->getType()) >
1941 SE.getTypeSizeInBits(B->getType()))
1942 B = SE.getSignExtendExpr(B, A->getType());
1943 else
1944 A = SE.getSignExtendExpr(A, B->getType());
1945 }
1946 if (const SCEVConstant *D =
Dan Gohmanf09b7122010-02-19 19:35:48 +00001947 dyn_cast_or_null<SCEVConstant>(getExactSDiv(B, A, SE))) {
Dan Gohman9f383eb2010-05-20 22:25:20 +00001948 const ConstantInt *C = D->getValue();
Dan Gohman572645c2010-02-12 10:34:29 +00001949 // Stride of one or negative one can have reuse with non-addresses.
Dan Gohman9f383eb2010-05-20 22:25:20 +00001950 if (C->isOne() || C->isAllOnesValue())
Dan Gohman572645c2010-02-12 10:34:29 +00001951 goto decline_post_inc;
1952 // Avoid weird situations.
Dan Gohman9f383eb2010-05-20 22:25:20 +00001953 if (C->getValue().getMinSignedBits() >= 64 ||
1954 C->getValue().isMinSignedValue())
Dan Gohman572645c2010-02-12 10:34:29 +00001955 goto decline_post_inc;
Dan Gohman590bfe82010-02-14 03:21:49 +00001956 // Without TLI, assume that any stride might be valid, and so any
1957 // use might be shared.
1958 if (!TLI)
1959 goto decline_post_inc;
Dan Gohman572645c2010-02-12 10:34:29 +00001960 // Check for possible scaled-address reuse.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00001961 Type *AccessTy = getAccessType(UI->getUser());
Dan Gohman572645c2010-02-12 10:34:29 +00001962 TargetLowering::AddrMode AM;
Dan Gohman9f383eb2010-05-20 22:25:20 +00001963 AM.Scale = C->getSExtValue();
Dan Gohman2763dfd2010-02-14 02:45:21 +00001964 if (TLI->isLegalAddressingMode(AM, AccessTy))
Dan Gohman572645c2010-02-12 10:34:29 +00001965 goto decline_post_inc;
1966 AM.Scale = -AM.Scale;
Dan Gohman2763dfd2010-02-14 02:45:21 +00001967 if (TLI->isLegalAddressingMode(AM, AccessTy))
Dan Gohman572645c2010-02-12 10:34:29 +00001968 goto decline_post_inc;
1969 }
1970 }
1971
David Greene63c94632009-12-23 22:58:38 +00001972 DEBUG(dbgs() << " Change loop exiting icmp to use postinc iv: "
Dan Gohman572645c2010-02-12 10:34:29 +00001973 << *Cond << '\n');
Evan Cheng076e0852009-11-17 18:10:11 +00001974
1975 // It's possible for the setcc instruction to be anywhere in the loop, and
1976 // possible for it to have multiple users. If it is not immediately before
1977 // the exiting block branch, move it.
Dan Gohman572645c2010-02-12 10:34:29 +00001978 if (&*++BasicBlock::iterator(Cond) != TermBr) {
1979 if (Cond->hasOneUse()) {
Evan Cheng076e0852009-11-17 18:10:11 +00001980 Cond->moveBefore(TermBr);
1981 } else {
Dan Gohman572645c2010-02-12 10:34:29 +00001982 // Clone the terminating condition and insert into the loopend.
1983 ICmpInst *OldCond = Cond;
Evan Cheng076e0852009-11-17 18:10:11 +00001984 Cond = cast<ICmpInst>(Cond->clone());
1985 Cond->setName(L->getHeader()->getName() + ".termcond");
1986 ExitingBlock->getInstList().insert(TermBr, Cond);
1987
1988 // Clone the IVUse, as the old use still exists!
Andrew Trick4417e532011-06-21 15:43:52 +00001989 CondUse = &IU.AddUser(Cond, CondUse->getOperandValToReplace());
Dan Gohman572645c2010-02-12 10:34:29 +00001990 TermBr->replaceUsesOfWith(OldCond, Cond);
Evan Cheng076e0852009-11-17 18:10:11 +00001991 }
Evan Cheng586f69a2009-11-12 07:35:05 +00001992 }
1993
Evan Cheng076e0852009-11-17 18:10:11 +00001994 // If we get to here, we know that we can transform the setcc instruction to
1995 // use the post-incremented version of the IV, allowing us to coalesce the
1996 // live ranges for the IV correctly.
Dan Gohman448db1c2010-04-07 22:27:08 +00001997 CondUse->transformToPostInc(L);
Evan Cheng076e0852009-11-17 18:10:11 +00001998 Changed = true;
1999
Dan Gohman572645c2010-02-12 10:34:29 +00002000 PostIncs.insert(Cond);
2001 decline_post_inc:;
Dan Gohmana10756e2010-01-21 02:09:26 +00002002 }
Dan Gohman572645c2010-02-12 10:34:29 +00002003
2004 // Determine an insertion point for the loop induction variable increment. It
2005 // must dominate all the post-inc comparisons we just set up, and it must
2006 // dominate the loop latch edge.
2007 IVIncInsertPos = L->getLoopLatch()->getTerminator();
2008 for (SmallPtrSet<Instruction *, 4>::const_iterator I = PostIncs.begin(),
2009 E = PostIncs.end(); I != E; ++I) {
2010 BasicBlock *BB =
2011 DT.findNearestCommonDominator(IVIncInsertPos->getParent(),
2012 (*I)->getParent());
2013 if (BB == (*I)->getParent())
2014 IVIncInsertPos = *I;
2015 else if (BB != IVIncInsertPos->getParent())
2016 IVIncInsertPos = BB->getTerminator();
2017 }
Dan Gohmana10756e2010-01-21 02:09:26 +00002018}
2019
Chris Lattner7a2bdde2011-04-15 05:18:47 +00002020/// reconcileNewOffset - Determine if the given use can accommodate a fixup
Dan Gohman76c315a2010-05-20 20:52:00 +00002021/// at the given offset and other details. If so, update the use and
2022/// return true.
Dan Gohman572645c2010-02-12 10:34:29 +00002023bool
Dan Gohman191bd642010-09-01 01:45:53 +00002024LSRInstance::reconcileNewOffset(LSRUse &LU, int64_t NewOffset, bool HasBaseReg,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002025 LSRUse::KindType Kind, Type *AccessTy) {
Dan Gohman191bd642010-09-01 01:45:53 +00002026 int64_t NewMinOffset = LU.MinOffset;
2027 int64_t NewMaxOffset = LU.MaxOffset;
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002028 Type *NewAccessTy = AccessTy;
Dan Gohman7979b722010-01-22 00:46:49 +00002029
Dan Gohman572645c2010-02-12 10:34:29 +00002030 // Check for a mismatched kind. It's tempting to collapse mismatched kinds to
2031 // something conservative, however this can pessimize in the case that one of
2032 // the uses will have all its uses outside the loop, for example.
2033 if (LU.Kind != Kind)
Dan Gohman7979b722010-01-22 00:46:49 +00002034 return false;
Dan Gohman572645c2010-02-12 10:34:29 +00002035 // Conservatively assume HasBaseReg is true for now.
Dan Gohman191bd642010-09-01 01:45:53 +00002036 if (NewOffset < LU.MinOffset) {
2037 if (!isAlwaysFoldable(LU.MaxOffset - NewOffset, 0, HasBaseReg,
Dan Gohman454d26d2010-02-22 04:11:59 +00002038 Kind, AccessTy, TLI))
Dan Gohman7979b722010-01-22 00:46:49 +00002039 return false;
Dan Gohman191bd642010-09-01 01:45:53 +00002040 NewMinOffset = NewOffset;
2041 } else if (NewOffset > LU.MaxOffset) {
2042 if (!isAlwaysFoldable(NewOffset - LU.MinOffset, 0, HasBaseReg,
Dan Gohman454d26d2010-02-22 04:11:59 +00002043 Kind, AccessTy, TLI))
Dan Gohman7979b722010-01-22 00:46:49 +00002044 return false;
Dan Gohman191bd642010-09-01 01:45:53 +00002045 NewMaxOffset = NewOffset;
Dan Gohmana10756e2010-01-21 02:09:26 +00002046 }
Dan Gohman572645c2010-02-12 10:34:29 +00002047 // Check for a mismatched access type, and fall back conservatively as needed.
Dan Gohman74e5ef02010-06-19 21:30:18 +00002048 // TODO: Be less conservative when the type is similar and can use the same
2049 // addressing modes.
Dan Gohman572645c2010-02-12 10:34:29 +00002050 if (Kind == LSRUse::Address && AccessTy != LU.AccessTy)
Dan Gohman191bd642010-09-01 01:45:53 +00002051 NewAccessTy = Type::getVoidTy(AccessTy->getContext());
Dan Gohmana10756e2010-01-21 02:09:26 +00002052
Dan Gohman572645c2010-02-12 10:34:29 +00002053 // Update the use.
Dan Gohman191bd642010-09-01 01:45:53 +00002054 LU.MinOffset = NewMinOffset;
2055 LU.MaxOffset = NewMaxOffset;
2056 LU.AccessTy = NewAccessTy;
2057 if (NewOffset != LU.Offsets.back())
2058 LU.Offsets.push_back(NewOffset);
Dan Gohman8b0ade32010-01-21 22:42:49 +00002059 return true;
2060}
2061
Dan Gohman572645c2010-02-12 10:34:29 +00002062/// getUse - Return an LSRUse index and an offset value for a fixup which
2063/// needs the given expression, with the given kind and optional access type.
Dan Gohman3f46a3a2010-03-01 17:49:51 +00002064/// Either reuse an existing use or create a new one, as needed.
Dan Gohman572645c2010-02-12 10:34:29 +00002065std::pair<size_t, int64_t>
2066LSRInstance::getUse(const SCEV *&Expr,
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002067 LSRUse::KindType Kind, Type *AccessTy) {
Dan Gohman572645c2010-02-12 10:34:29 +00002068 const SCEV *Copy = Expr;
2069 int64_t Offset = ExtractImmediate(Expr, SE);
Evan Cheng586f69a2009-11-12 07:35:05 +00002070
Dan Gohman572645c2010-02-12 10:34:29 +00002071 // Basic uses can't accept any offset, for example.
Dan Gohman454d26d2010-02-22 04:11:59 +00002072 if (!isAlwaysFoldable(Offset, 0, /*HasBaseReg=*/true, Kind, AccessTy, TLI)) {
Dan Gohman572645c2010-02-12 10:34:29 +00002073 Expr = Copy;
2074 Offset = 0;
2075 }
2076
2077 std::pair<UseMapTy::iterator, bool> P =
Dan Gohman1e3121c2010-06-19 21:29:59 +00002078 UseMap.insert(std::make_pair(std::make_pair(Expr, Kind), 0));
Dan Gohman572645c2010-02-12 10:34:29 +00002079 if (!P.second) {
2080 // A use already existed with this base.
2081 size_t LUIdx = P.first->second;
2082 LSRUse &LU = Uses[LUIdx];
Dan Gohman191bd642010-09-01 01:45:53 +00002083 if (reconcileNewOffset(LU, Offset, /*HasBaseReg=*/true, Kind, AccessTy))
Dan Gohman572645c2010-02-12 10:34:29 +00002084 // Reuse this use.
2085 return std::make_pair(LUIdx, Offset);
2086 }
2087
2088 // Create a new use.
2089 size_t LUIdx = Uses.size();
2090 P.first->second = LUIdx;
2091 Uses.push_back(LSRUse(Kind, AccessTy));
2092 LSRUse &LU = Uses[LUIdx];
2093
Dan Gohman191bd642010-09-01 01:45:53 +00002094 // We don't need to track redundant offsets, but we don't need to go out
2095 // of our way here to avoid them.
2096 if (LU.Offsets.empty() || Offset != LU.Offsets.back())
2097 LU.Offsets.push_back(Offset);
2098
Dan Gohman572645c2010-02-12 10:34:29 +00002099 LU.MinOffset = Offset;
2100 LU.MaxOffset = Offset;
2101 return std::make_pair(LUIdx, Offset);
2102}
2103
Dan Gohman5ce6d052010-05-20 15:17:54 +00002104/// DeleteUse - Delete the given use from the Uses list.
Dan Gohmanc6897702010-10-07 23:33:43 +00002105void LSRInstance::DeleteUse(LSRUse &LU, size_t LUIdx) {
Dan Gohman191bd642010-09-01 01:45:53 +00002106 if (&LU != &Uses.back())
Dan Gohman5ce6d052010-05-20 15:17:54 +00002107 std::swap(LU, Uses.back());
2108 Uses.pop_back();
Dan Gohmanc6897702010-10-07 23:33:43 +00002109
2110 // Update RegUses.
2111 RegUses.SwapAndDropUse(LUIdx, Uses.size());
Dan Gohman5ce6d052010-05-20 15:17:54 +00002112}
2113
Dan Gohmana2086b32010-05-19 23:43:12 +00002114/// FindUseWithFormula - Look for a use distinct from OrigLU which is has
2115/// a formula that has the same registers as the given formula.
2116LSRUse *
2117LSRInstance::FindUseWithSimilarFormula(const Formula &OrigF,
Dan Gohman191bd642010-09-01 01:45:53 +00002118 const LSRUse &OrigLU) {
2119 // Search all uses for the formula. This could be more clever.
Dan Gohmana2086b32010-05-19 23:43:12 +00002120 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
2121 LSRUse &LU = Uses[LUIdx];
Dan Gohman6a832712010-08-29 15:27:08 +00002122 // Check whether this use is close enough to OrigLU, to see whether it's
2123 // worthwhile looking through its formulae.
2124 // Ignore ICmpZero uses because they may contain formulae generated by
2125 // GenerateICmpZeroScales, in which case adding fixup offsets may
2126 // be invalid.
Dan Gohmana2086b32010-05-19 23:43:12 +00002127 if (&LU != &OrigLU &&
2128 LU.Kind != LSRUse::ICmpZero &&
2129 LU.Kind == OrigLU.Kind && OrigLU.AccessTy == LU.AccessTy &&
Dan Gohmana9db1292010-07-15 20:24:58 +00002130 LU.WidestFixupType == OrigLU.WidestFixupType &&
Dan Gohmana2086b32010-05-19 23:43:12 +00002131 LU.HasFormulaWithSameRegs(OrigF)) {
Dan Gohman6a832712010-08-29 15:27:08 +00002132 // Scan through this use's formulae.
Dan Gohman402d4352010-05-20 20:33:18 +00002133 for (SmallVectorImpl<Formula>::const_iterator I = LU.Formulae.begin(),
2134 E = LU.Formulae.end(); I != E; ++I) {
2135 const Formula &F = *I;
Dan Gohman6a832712010-08-29 15:27:08 +00002136 // Check to see if this formula has the same registers and symbols
2137 // as OrigF.
Dan Gohmana2086b32010-05-19 23:43:12 +00002138 if (F.BaseRegs == OrigF.BaseRegs &&
2139 F.ScaledReg == OrigF.ScaledReg &&
2140 F.AM.BaseGV == OrigF.AM.BaseGV &&
Dan Gohmancca82142011-05-03 00:46:49 +00002141 F.AM.Scale == OrigF.AM.Scale &&
2142 F.UnfoldedOffset == OrigF.UnfoldedOffset) {
Dan Gohman191bd642010-09-01 01:45:53 +00002143 if (F.AM.BaseOffs == 0)
Dan Gohmana2086b32010-05-19 23:43:12 +00002144 return &LU;
Dan Gohman6a832712010-08-29 15:27:08 +00002145 // This is the formula where all the registers and symbols matched;
2146 // there aren't going to be any others. Since we declined it, we
2147 // can skip the rest of the formulae and procede to the next LSRUse.
Dan Gohmana2086b32010-05-19 23:43:12 +00002148 break;
2149 }
2150 }
2151 }
2152 }
2153
Dan Gohman6a832712010-08-29 15:27:08 +00002154 // Nothing looked good.
Dan Gohmana2086b32010-05-19 23:43:12 +00002155 return 0;
2156}
2157
Dan Gohman572645c2010-02-12 10:34:29 +00002158void LSRInstance::CollectInterestingTypesAndFactors() {
2159 SmallSetVector<const SCEV *, 4> Strides;
2160
Dan Gohman1b7bf182010-02-19 00:05:23 +00002161 // Collect interesting types and strides.
Dan Gohman448db1c2010-04-07 22:27:08 +00002162 SmallVector<const SCEV *, 4> Worklist;
Dan Gohman572645c2010-02-12 10:34:29 +00002163 for (IVUsers::const_iterator UI = IU.begin(), E = IU.end(); UI != E; ++UI) {
Dan Gohmanc0564542010-04-19 21:48:58 +00002164 const SCEV *Expr = IU.getExpr(*UI);
Dan Gohman572645c2010-02-12 10:34:29 +00002165
2166 // Collect interesting types.
Dan Gohman448db1c2010-04-07 22:27:08 +00002167 Types.insert(SE.getEffectiveSCEVType(Expr->getType()));
Dan Gohman572645c2010-02-12 10:34:29 +00002168
Dan Gohman448db1c2010-04-07 22:27:08 +00002169 // Add strides for mentioned loops.
2170 Worklist.push_back(Expr);
2171 do {
2172 const SCEV *S = Worklist.pop_back_val();
2173 if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) {
Andrew Trickbd618f12012-03-22 22:42:45 +00002174 if (AR->getLoop() == L)
Andrew Trickfa1948a2011-12-10 00:25:00 +00002175 Strides.insert(AR->getStepRecurrence(SE));
Dan Gohman448db1c2010-04-07 22:27:08 +00002176 Worklist.push_back(AR->getStart());
2177 } else if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
Dan Gohman403a8cd2010-06-21 19:47:52 +00002178 Worklist.append(Add->op_begin(), Add->op_end());
Dan Gohman448db1c2010-04-07 22:27:08 +00002179 }
2180 } while (!Worklist.empty());
Dan Gohman1b7bf182010-02-19 00:05:23 +00002181 }
2182
2183 // Compute interesting factors from the set of interesting strides.
2184 for (SmallSetVector<const SCEV *, 4>::const_iterator
2185 I = Strides.begin(), E = Strides.end(); I != E; ++I)
Dan Gohman572645c2010-02-12 10:34:29 +00002186 for (SmallSetVector<const SCEV *, 4>::const_iterator NewStrideIter =
Oscar Fuentesee56c422010-08-02 06:00:15 +00002187 llvm::next(I); NewStrideIter != E; ++NewStrideIter) {
Dan Gohman1b7bf182010-02-19 00:05:23 +00002188 const SCEV *OldStride = *I;
Dan Gohman572645c2010-02-12 10:34:29 +00002189 const SCEV *NewStride = *NewStrideIter;
Dan Gohman572645c2010-02-12 10:34:29 +00002190
2191 if (SE.getTypeSizeInBits(OldStride->getType()) !=
2192 SE.getTypeSizeInBits(NewStride->getType())) {
2193 if (SE.getTypeSizeInBits(OldStride->getType()) >
2194 SE.getTypeSizeInBits(NewStride->getType()))
2195 NewStride = SE.getSignExtendExpr(NewStride, OldStride->getType());
2196 else
2197 OldStride = SE.getSignExtendExpr(OldStride, NewStride->getType());
2198 }
2199 if (const SCEVConstant *Factor =
Dan Gohmanf09b7122010-02-19 19:35:48 +00002200 dyn_cast_or_null<SCEVConstant>(getExactSDiv(NewStride, OldStride,
2201 SE, true))) {
Dan Gohman572645c2010-02-12 10:34:29 +00002202 if (Factor->getValue()->getValue().getMinSignedBits() <= 64)
2203 Factors.insert(Factor->getValue()->getValue().getSExtValue());
2204 } else if (const SCEVConstant *Factor =
Dan Gohman454d26d2010-02-22 04:11:59 +00002205 dyn_cast_or_null<SCEVConstant>(getExactSDiv(OldStride,
2206 NewStride,
Dan Gohmanf09b7122010-02-19 19:35:48 +00002207 SE, true))) {
Dan Gohman572645c2010-02-12 10:34:29 +00002208 if (Factor->getValue()->getValue().getMinSignedBits() <= 64)
2209 Factors.insert(Factor->getValue()->getValue().getSExtValue());
2210 }
2211 }
Dan Gohman572645c2010-02-12 10:34:29 +00002212
2213 // If all uses use the same type, don't bother looking for truncation-based
2214 // reuse.
2215 if (Types.size() == 1)
2216 Types.clear();
2217
2218 DEBUG(print_factors_and_types(dbgs()));
2219}
2220
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002221/// findIVOperand - Helper for CollectChains that finds an IV operand (computed
2222/// by an AddRec in this loop) within [OI,OE) or returns OE. If IVUsers mapped
2223/// Instructions to IVStrideUses, we could partially skip this.
2224static User::op_iterator
2225findIVOperand(User::op_iterator OI, User::op_iterator OE,
2226 Loop *L, ScalarEvolution &SE) {
2227 for(; OI != OE; ++OI) {
2228 if (Instruction *Oper = dyn_cast<Instruction>(*OI)) {
2229 if (!SE.isSCEVable(Oper->getType()))
2230 continue;
2231
2232 if (const SCEVAddRecExpr *AR =
2233 dyn_cast<SCEVAddRecExpr>(SE.getSCEV(Oper))) {
2234 if (AR->getLoop() == L)
2235 break;
2236 }
2237 }
2238 }
2239 return OI;
2240}
2241
2242/// getWideOperand - IVChain logic must consistenctly peek base TruncInst
2243/// operands, so wrap it in a convenient helper.
2244static Value *getWideOperand(Value *Oper) {
2245 if (TruncInst *Trunc = dyn_cast<TruncInst>(Oper))
2246 return Trunc->getOperand(0);
2247 return Oper;
2248}
2249
2250/// isCompatibleIVType - Return true if we allow an IV chain to include both
2251/// types.
2252static bool isCompatibleIVType(Value *LVal, Value *RVal) {
2253 Type *LType = LVal->getType();
2254 Type *RType = RVal->getType();
2255 return (LType == RType) || (LType->isPointerTy() && RType->isPointerTy());
2256}
2257
Andrew Trick64925c52012-01-10 01:45:08 +00002258/// getExprBase - Return an approximation of this SCEV expression's "base", or
2259/// NULL for any constant. Returning the expression itself is
2260/// conservative. Returning a deeper subexpression is more precise and valid as
2261/// long as it isn't less complex than another subexpression. For expressions
2262/// involving multiple unscaled values, we need to return the pointer-type
2263/// SCEVUnknown. This avoids forming chains across objects, such as:
2264/// PrevOper==a[i], IVOper==b[i], IVInc==b-a.
2265///
2266/// Since SCEVUnknown is the rightmost type, and pointers are the rightmost
2267/// SCEVUnknown, we simply return the rightmost SCEV operand.
2268static const SCEV *getExprBase(const SCEV *S) {
2269 switch (S->getSCEVType()) {
2270 default: // uncluding scUnknown.
2271 return S;
2272 case scConstant:
2273 return 0;
2274 case scTruncate:
2275 return getExprBase(cast<SCEVTruncateExpr>(S)->getOperand());
2276 case scZeroExtend:
2277 return getExprBase(cast<SCEVZeroExtendExpr>(S)->getOperand());
2278 case scSignExtend:
2279 return getExprBase(cast<SCEVSignExtendExpr>(S)->getOperand());
2280 case scAddExpr: {
2281 // Skip over scaled operands (scMulExpr) to follow add operands as long as
2282 // there's nothing more complex.
2283 // FIXME: not sure if we want to recognize negation.
2284 const SCEVAddExpr *Add = cast<SCEVAddExpr>(S);
2285 for (std::reverse_iterator<SCEVAddExpr::op_iterator> I(Add->op_end()),
2286 E(Add->op_begin()); I != E; ++I) {
2287 const SCEV *SubExpr = *I;
2288 if (SubExpr->getSCEVType() == scAddExpr)
2289 return getExprBase(SubExpr);
2290
2291 if (SubExpr->getSCEVType() != scMulExpr)
2292 return SubExpr;
2293 }
2294 return S; // all operands are scaled, be conservative.
2295 }
2296 case scAddRecExpr:
2297 return getExprBase(cast<SCEVAddRecExpr>(S)->getStart());
2298 }
2299}
2300
Andrew Trick22d20c22012-01-09 21:18:52 +00002301/// Return true if the chain increment is profitable to expand into a loop
2302/// invariant value, which may require its own register. A profitable chain
2303/// increment will be an offset relative to the same base. We allow such offsets
2304/// to potentially be used as chain increment as long as it's not obviously
2305/// expensive to expand using real instructions.
2306static const SCEV *
2307getProfitableChainIncrement(Value *NextIV, Value *PrevIV,
2308 const IVChain &Chain, Loop *L,
2309 ScalarEvolution &SE, const TargetLowering *TLI) {
Andrew Trick64925c52012-01-10 01:45:08 +00002310 // Prune the solution space aggressively by checking that both IV operands
2311 // are expressions that operate on the same unscaled SCEVUnknown. This
2312 // "base" will be canceled by the subsequent getMinusSCEV call. Checking first
2313 // avoids creating extra SCEV expressions.
2314 const SCEV *OperExpr = SE.getSCEV(NextIV);
2315 const SCEV *PrevExpr = SE.getSCEV(PrevIV);
2316 if (getExprBase(OperExpr) != getExprBase(PrevExpr) && !StressIVChain)
2317 return 0;
2318
2319 const SCEV *IncExpr = SE.getMinusSCEV(OperExpr, PrevExpr);
Andrew Trick22d20c22012-01-09 21:18:52 +00002320 if (!SE.isLoopInvariant(IncExpr, L))
2321 return 0;
2322
2323 // We are not able to expand an increment unless it is loop invariant,
2324 // however, the following checks are purely for profitability.
2325 if (StressIVChain)
2326 return IncExpr;
2327
Andrew Trick64925c52012-01-10 01:45:08 +00002328 // Do not replace a constant offset from IV head with a nonconstant IV
2329 // increment.
2330 if (!isa<SCEVConstant>(IncExpr)) {
2331 const SCEV *HeadExpr = SE.getSCEV(getWideOperand(Chain[0].IVOperand));
2332 if (isa<SCEVConstant>(SE.getMinusSCEV(OperExpr, HeadExpr)))
2333 return 0;
2334 }
2335
2336 SmallPtrSet<const SCEV*, 8> Processed;
2337 if (isHighCostExpansion(IncExpr, Processed, SE))
2338 return 0;
2339
2340 return IncExpr;
Andrew Trick22d20c22012-01-09 21:18:52 +00002341}
2342
2343/// Return true if the number of registers needed for the chain is estimated to
2344/// be less than the number required for the individual IV users. First prohibit
2345/// any IV users that keep the IV live across increments (the Users set should
2346/// be empty). Next count the number and type of increments in the chain.
2347///
2348/// Chaining IVs can lead to considerable code bloat if ISEL doesn't
2349/// effectively use postinc addressing modes. Only consider it profitable it the
2350/// increments can be computed in fewer registers when chained.
2351///
2352/// TODO: Consider IVInc free if it's already used in another chains.
2353static bool
2354isProfitableChain(IVChain &Chain, SmallPtrSet<Instruction*, 4> &Users,
2355 ScalarEvolution &SE, const TargetLowering *TLI) {
2356 if (StressIVChain)
2357 return true;
2358
Andrew Trick64925c52012-01-10 01:45:08 +00002359 if (Chain.size() <= 2)
2360 return false;
2361
2362 if (!Users.empty()) {
2363 DEBUG(dbgs() << "Chain: " << *Chain[0].UserInst << " users:\n";
2364 for (SmallPtrSet<Instruction*, 4>::const_iterator I = Users.begin(),
2365 E = Users.end(); I != E; ++I) {
2366 dbgs() << " " << **I << "\n";
2367 });
2368 return false;
2369 }
2370 assert(!Chain.empty() && "empty IV chains are not allowed");
2371
2372 // The chain itself may require a register, so intialize cost to 1.
2373 int cost = 1;
2374
2375 // A complete chain likely eliminates the need for keeping the original IV in
2376 // a register. LSR does not currently know how to form a complete chain unless
2377 // the header phi already exists.
2378 if (isa<PHINode>(Chain.back().UserInst)
2379 && SE.getSCEV(Chain.back().UserInst) == Chain[0].IncExpr) {
2380 --cost;
2381 }
2382 const SCEV *LastIncExpr = 0;
2383 unsigned NumConstIncrements = 0;
2384 unsigned NumVarIncrements = 0;
2385 unsigned NumReusedIncrements = 0;
2386 for (IVChain::const_iterator I = llvm::next(Chain.begin()), E = Chain.end();
2387 I != E; ++I) {
2388
2389 if (I->IncExpr->isZero())
2390 continue;
2391
2392 // Incrementing by zero or some constant is neutral. We assume constants can
2393 // be folded into an addressing mode or an add's immediate operand.
2394 if (isa<SCEVConstant>(I->IncExpr)) {
2395 ++NumConstIncrements;
2396 continue;
2397 }
2398
2399 if (I->IncExpr == LastIncExpr)
2400 ++NumReusedIncrements;
2401 else
2402 ++NumVarIncrements;
2403
2404 LastIncExpr = I->IncExpr;
2405 }
2406 // An IV chain with a single increment is handled by LSR's postinc
2407 // uses. However, a chain with multiple increments requires keeping the IV's
2408 // value live longer than it needs to be if chained.
2409 if (NumConstIncrements > 1)
2410 --cost;
2411
2412 // Materializing increment expressions in the preheader that didn't exist in
2413 // the original code may cost a register. For example, sign-extended array
2414 // indices can produce ridiculous increments like this:
2415 // IV + ((sext i32 (2 * %s) to i64) + (-1 * (sext i32 %s to i64)))
2416 cost += NumVarIncrements;
2417
2418 // Reusing variable increments likely saves a register to hold the multiple of
2419 // the stride.
2420 cost -= NumReusedIncrements;
2421
2422 DEBUG(dbgs() << "Chain: " << *Chain[0].UserInst << " Cost: " << cost << "\n");
2423
2424 return cost < 0;
Andrew Trick22d20c22012-01-09 21:18:52 +00002425}
2426
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002427/// ChainInstruction - Add this IV user to an existing chain or make it the head
2428/// of a new chain.
2429void LSRInstance::ChainInstruction(Instruction *UserInst, Instruction *IVOper,
2430 SmallVectorImpl<ChainUsers> &ChainUsersVec) {
2431 // When IVs are used as types of varying widths, they are generally converted
2432 // to a wider type with some uses remaining narrow under a (free) trunc.
2433 Value *NextIV = getWideOperand(IVOper);
2434
2435 // Visit all existing chains. Check if its IVOper can be computed as a
2436 // profitable loop invariant increment from the last link in the Chain.
2437 unsigned ChainIdx = 0, NChains = IVChainVec.size();
2438 const SCEV *LastIncExpr = 0;
2439 for (; ChainIdx < NChains; ++ChainIdx) {
2440 Value *PrevIV = getWideOperand(IVChainVec[ChainIdx].back().IVOperand);
2441 if (!isCompatibleIVType(PrevIV, NextIV))
2442 continue;
2443
2444 // A phi nodes terminates a chain.
2445 if (isa<PHINode>(UserInst)
2446 && isa<PHINode>(IVChainVec[ChainIdx].back().UserInst))
2447 continue;
2448
Andrew Trick22d20c22012-01-09 21:18:52 +00002449 if (const SCEV *IncExpr =
2450 getProfitableChainIncrement(NextIV, PrevIV, IVChainVec[ChainIdx],
2451 L, SE, TLI)) {
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002452 LastIncExpr = IncExpr;
2453 break;
2454 }
2455 }
2456 // If we haven't found a chain, create a new one, unless we hit the max. Don't
2457 // bother for phi nodes, because they must be last in the chain.
2458 if (ChainIdx == NChains) {
2459 if (isa<PHINode>(UserInst))
2460 return;
Andrew Trick22d20c22012-01-09 21:18:52 +00002461 if (NChains >= MaxChains && !StressIVChain) {
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002462 DEBUG(dbgs() << "IV Chain Limit\n");
2463 return;
2464 }
Andrew Trick0041d4d2012-01-20 21:23:40 +00002465 LastIncExpr = SE.getSCEV(NextIV);
2466 // IVUsers may have skipped over sign/zero extensions. We don't currently
2467 // attempt to form chains involving extensions unless they can be hoisted
2468 // into this loop's AddRec.
2469 if (!isa<SCEVAddRecExpr>(LastIncExpr))
2470 return;
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002471 ++NChains;
2472 IVChainVec.resize(NChains);
2473 ChainUsersVec.resize(NChains);
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002474 DEBUG(dbgs() << "IV Head: (" << *UserInst << ") IV=" << *LastIncExpr
2475 << "\n");
2476 }
2477 else
2478 DEBUG(dbgs() << "IV Inc: (" << *UserInst << ") IV+" << *LastIncExpr
2479 << "\n");
2480
2481 // Add this IV user to the end of the chain.
2482 IVChainVec[ChainIdx].push_back(IVInc(UserInst, IVOper, LastIncExpr));
2483
2484 SmallPtrSet<Instruction*,4> &NearUsers = ChainUsersVec[ChainIdx].NearUsers;
2485 // This chain's NearUsers become FarUsers.
2486 if (!LastIncExpr->isZero()) {
2487 ChainUsersVec[ChainIdx].FarUsers.insert(NearUsers.begin(),
2488 NearUsers.end());
2489 NearUsers.clear();
2490 }
2491
2492 // All other uses of IVOperand become near uses of the chain.
2493 // We currently ignore intermediate values within SCEV expressions, assuming
2494 // they will eventually be used be the current chain, or can be computed
2495 // from one of the chain increments. To be more precise we could
2496 // transitively follow its user and only add leaf IV users to the set.
2497 for (Value::use_iterator UseIter = IVOper->use_begin(),
2498 UseEnd = IVOper->use_end(); UseIter != UseEnd; ++UseIter) {
2499 Instruction *OtherUse = dyn_cast<Instruction>(*UseIter);
Andrew Trick81748bc2012-03-26 18:03:16 +00002500 if (!OtherUse || OtherUse == UserInst)
2501 continue;
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002502 if (SE.isSCEVable(OtherUse->getType())
2503 && !isa<SCEVUnknown>(SE.getSCEV(OtherUse))
2504 && IU.isIVUserOrOperand(OtherUse)) {
2505 continue;
2506 }
Andrew Trick81748bc2012-03-26 18:03:16 +00002507 NearUsers.insert(OtherUse);
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002508 }
2509
2510 // Since this user is part of the chain, it's no longer considered a use
2511 // of the chain.
2512 ChainUsersVec[ChainIdx].FarUsers.erase(UserInst);
2513}
2514
2515/// CollectChains - Populate the vector of Chains.
2516///
2517/// This decreases ILP at the architecture level. Targets with ample registers,
2518/// multiple memory ports, and no register renaming probably don't want
2519/// this. However, such targets should probably disable LSR altogether.
2520///
2521/// The job of LSR is to make a reasonable choice of induction variables across
2522/// the loop. Subsequent passes can easily "unchain" computation exposing more
2523/// ILP *within the loop* if the target wants it.
2524///
2525/// Finding the best IV chain is potentially a scheduling problem. Since LSR
2526/// will not reorder memory operations, it will recognize this as a chain, but
2527/// will generate redundant IV increments. Ideally this would be corrected later
2528/// by a smart scheduler:
2529/// = A[i]
2530/// = A[i+x]
2531/// A[i] =
2532/// A[i+x] =
2533///
2534/// TODO: Walk the entire domtree within this loop, not just the path to the
2535/// loop latch. This will discover chains on side paths, but requires
2536/// maintaining multiple copies of the Chains state.
2537void LSRInstance::CollectChains() {
2538 SmallVector<ChainUsers, 8> ChainUsersVec;
2539
2540 SmallVector<BasicBlock *,8> LatchPath;
2541 BasicBlock *LoopHeader = L->getHeader();
2542 for (DomTreeNode *Rung = DT.getNode(L->getLoopLatch());
2543 Rung->getBlock() != LoopHeader; Rung = Rung->getIDom()) {
2544 LatchPath.push_back(Rung->getBlock());
2545 }
2546 LatchPath.push_back(LoopHeader);
2547
2548 // Walk the instruction stream from the loop header to the loop latch.
2549 for (SmallVectorImpl<BasicBlock *>::reverse_iterator
2550 BBIter = LatchPath.rbegin(), BBEnd = LatchPath.rend();
2551 BBIter != BBEnd; ++BBIter) {
2552 for (BasicBlock::iterator I = (*BBIter)->begin(), E = (*BBIter)->end();
2553 I != E; ++I) {
2554 // Skip instructions that weren't seen by IVUsers analysis.
2555 if (isa<PHINode>(I) || !IU.isIVUserOrOperand(I))
2556 continue;
2557
2558 // Ignore users that are part of a SCEV expression. This way we only
2559 // consider leaf IV Users. This effectively rediscovers a portion of
2560 // IVUsers analysis but in program order this time.
2561 if (SE.isSCEVable(I->getType()) && !isa<SCEVUnknown>(SE.getSCEV(I)))
2562 continue;
2563
2564 // Remove this instruction from any NearUsers set it may be in.
2565 for (unsigned ChainIdx = 0, NChains = IVChainVec.size();
2566 ChainIdx < NChains; ++ChainIdx) {
2567 ChainUsersVec[ChainIdx].NearUsers.erase(I);
2568 }
2569 // Search for operands that can be chained.
2570 SmallPtrSet<Instruction*, 4> UniqueOperands;
2571 User::op_iterator IVOpEnd = I->op_end();
2572 User::op_iterator IVOpIter = findIVOperand(I->op_begin(), IVOpEnd, L, SE);
2573 while (IVOpIter != IVOpEnd) {
2574 Instruction *IVOpInst = cast<Instruction>(*IVOpIter);
2575 if (UniqueOperands.insert(IVOpInst))
2576 ChainInstruction(I, IVOpInst, ChainUsersVec);
2577 IVOpIter = findIVOperand(llvm::next(IVOpIter), IVOpEnd, L, SE);
2578 }
2579 } // Continue walking down the instructions.
2580 } // Continue walking down the domtree.
2581 // Visit phi backedges to determine if the chain can generate the IV postinc.
2582 for (BasicBlock::iterator I = L->getHeader()->begin();
2583 PHINode *PN = dyn_cast<PHINode>(I); ++I) {
2584 if (!SE.isSCEVable(PN->getType()))
2585 continue;
2586
2587 Instruction *IncV =
2588 dyn_cast<Instruction>(PN->getIncomingValueForBlock(L->getLoopLatch()));
2589 if (IncV)
2590 ChainInstruction(PN, IncV, ChainUsersVec);
2591 }
Andrew Trick22d20c22012-01-09 21:18:52 +00002592 // Remove any unprofitable chains.
2593 unsigned ChainIdx = 0;
2594 for (unsigned UsersIdx = 0, NChains = IVChainVec.size();
2595 UsersIdx < NChains; ++UsersIdx) {
2596 if (!isProfitableChain(IVChainVec[UsersIdx],
2597 ChainUsersVec[UsersIdx].FarUsers, SE, TLI))
2598 continue;
2599 // Preserve the chain at UsesIdx.
2600 if (ChainIdx != UsersIdx)
2601 IVChainVec[ChainIdx] = IVChainVec[UsersIdx];
2602 FinalizeChain(IVChainVec[ChainIdx]);
2603 ++ChainIdx;
2604 }
2605 IVChainVec.resize(ChainIdx);
2606}
2607
2608void LSRInstance::FinalizeChain(IVChain &Chain) {
2609 assert(!Chain.empty() && "empty IV chains are not allowed");
2610 DEBUG(dbgs() << "Final Chain: " << *Chain[0].UserInst << "\n");
2611
2612 for (IVChain::const_iterator I = llvm::next(Chain.begin()), E = Chain.end();
2613 I != E; ++I) {
2614 DEBUG(dbgs() << " Inc: " << *I->UserInst << "\n");
2615 User::op_iterator UseI =
2616 std::find(I->UserInst->op_begin(), I->UserInst->op_end(), I->IVOperand);
2617 assert(UseI != I->UserInst->op_end() && "cannot find IV operand");
2618 IVIncSet.insert(UseI);
2619 }
2620}
2621
2622/// Return true if the IVInc can be folded into an addressing mode.
2623static bool canFoldIVIncExpr(const SCEV *IncExpr, Instruction *UserInst,
2624 Value *Operand, const TargetLowering *TLI) {
2625 const SCEVConstant *IncConst = dyn_cast<SCEVConstant>(IncExpr);
2626 if (!IncConst || !isAddressUse(UserInst, Operand))
2627 return false;
2628
2629 if (IncConst->getValue()->getValue().getMinSignedBits() > 64)
2630 return false;
2631
2632 int64_t IncOffset = IncConst->getValue()->getSExtValue();
2633 if (!isAlwaysFoldable(IncOffset, /*BaseGV=*/0, /*HaseBaseReg=*/false,
2634 LSRUse::Address, getAccessType(UserInst), TLI))
2635 return false;
2636
2637 return true;
2638}
2639
2640/// GenerateIVChains - Generate an add or subtract for each IVInc in a chain to
2641/// materialize the IV user's operand from the previous IV user's operand.
2642void LSRInstance::GenerateIVChain(const IVChain &Chain, SCEVExpander &Rewriter,
2643 SmallVectorImpl<WeakVH> &DeadInsts) {
2644 // Find the new IVOperand for the head of the chain. It may have been replaced
2645 // by LSR.
2646 const IVInc &Head = Chain[0];
2647 User::op_iterator IVOpEnd = Head.UserInst->op_end();
2648 User::op_iterator IVOpIter = findIVOperand(Head.UserInst->op_begin(),
2649 IVOpEnd, L, SE);
2650 Value *IVSrc = 0;
2651 while (IVOpIter != IVOpEnd) {
2652 IVSrc = getWideOperand(*IVOpIter);
2653
2654 // If this operand computes the expression that the chain needs, we may use
2655 // it. (Check this after setting IVSrc which is used below.)
2656 //
2657 // Note that if Head.IncExpr is wider than IVSrc, then this phi is too
2658 // narrow for the chain, so we can no longer use it. We do allow using a
2659 // wider phi, assuming the LSR checked for free truncation. In that case we
2660 // should already have a truncate on this operand such that
2661 // getSCEV(IVSrc) == IncExpr.
2662 if (SE.getSCEV(*IVOpIter) == Head.IncExpr
2663 || SE.getSCEV(IVSrc) == Head.IncExpr) {
2664 break;
2665 }
2666 IVOpIter = findIVOperand(llvm::next(IVOpIter), IVOpEnd, L, SE);
2667 }
2668 if (IVOpIter == IVOpEnd) {
2669 // Gracefully give up on this chain.
2670 DEBUG(dbgs() << "Concealed chain head: " << *Head.UserInst << "\n");
2671 return;
2672 }
2673
2674 DEBUG(dbgs() << "Generate chain at: " << *IVSrc << "\n");
2675 Type *IVTy = IVSrc->getType();
2676 Type *IntTy = SE.getEffectiveSCEVType(IVTy);
2677 const SCEV *LeftOverExpr = 0;
2678 for (IVChain::const_iterator IncI = llvm::next(Chain.begin()),
2679 IncE = Chain.end(); IncI != IncE; ++IncI) {
2680
2681 Instruction *InsertPt = IncI->UserInst;
2682 if (isa<PHINode>(InsertPt))
2683 InsertPt = L->getLoopLatch()->getTerminator();
2684
2685 // IVOper will replace the current IV User's operand. IVSrc is the IV
2686 // value currently held in a register.
2687 Value *IVOper = IVSrc;
2688 if (!IncI->IncExpr->isZero()) {
2689 // IncExpr was the result of subtraction of two narrow values, so must
2690 // be signed.
2691 const SCEV *IncExpr = SE.getNoopOrSignExtend(IncI->IncExpr, IntTy);
2692 LeftOverExpr = LeftOverExpr ?
2693 SE.getAddExpr(LeftOverExpr, IncExpr) : IncExpr;
2694 }
2695 if (LeftOverExpr && !LeftOverExpr->isZero()) {
2696 // Expand the IV increment.
2697 Rewriter.clearPostInc();
2698 Value *IncV = Rewriter.expandCodeFor(LeftOverExpr, IntTy, InsertPt);
2699 const SCEV *IVOperExpr = SE.getAddExpr(SE.getUnknown(IVSrc),
2700 SE.getUnknown(IncV));
2701 IVOper = Rewriter.expandCodeFor(IVOperExpr, IVTy, InsertPt);
2702
2703 // If an IV increment can't be folded, use it as the next IV value.
2704 if (!canFoldIVIncExpr(LeftOverExpr, IncI->UserInst, IncI->IVOperand,
2705 TLI)) {
2706 assert(IVTy == IVOper->getType() && "inconsistent IV increment type");
2707 IVSrc = IVOper;
2708 LeftOverExpr = 0;
2709 }
2710 }
2711 Type *OperTy = IncI->IVOperand->getType();
2712 if (IVTy != OperTy) {
2713 assert(SE.getTypeSizeInBits(IVTy) >= SE.getTypeSizeInBits(OperTy) &&
2714 "cannot extend a chained IV");
2715 IRBuilder<> Builder(InsertPt);
2716 IVOper = Builder.CreateTruncOrBitCast(IVOper, OperTy, "lsr.chain");
2717 }
2718 IncI->UserInst->replaceUsesOfWith(IncI->IVOperand, IVOper);
2719 DeadInsts.push_back(IncI->IVOperand);
2720 }
2721 // If LSR created a new, wider phi, we may also replace its postinc. We only
2722 // do this if we also found a wide value for the head of the chain.
2723 if (isa<PHINode>(Chain.back().UserInst)) {
2724 for (BasicBlock::iterator I = L->getHeader()->begin();
2725 PHINode *Phi = dyn_cast<PHINode>(I); ++I) {
2726 if (!isCompatibleIVType(Phi, IVSrc))
2727 continue;
2728 Instruction *PostIncV = dyn_cast<Instruction>(
2729 Phi->getIncomingValueForBlock(L->getLoopLatch()));
2730 if (!PostIncV || (SE.getSCEV(PostIncV) != SE.getSCEV(IVSrc)))
2731 continue;
2732 Value *IVOper = IVSrc;
2733 Type *PostIncTy = PostIncV->getType();
2734 if (IVTy != PostIncTy) {
2735 assert(PostIncTy->isPointerTy() && "mixing int/ptr IV types");
2736 IRBuilder<> Builder(L->getLoopLatch()->getTerminator());
2737 Builder.SetCurrentDebugLocation(PostIncV->getDebugLoc());
2738 IVOper = Builder.CreatePointerCast(IVSrc, PostIncTy, "lsr.chain");
2739 }
2740 Phi->replaceUsesOfWith(PostIncV, IVOper);
2741 DeadInsts.push_back(PostIncV);
2742 }
2743 }
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00002744}
2745
Dan Gohman572645c2010-02-12 10:34:29 +00002746void LSRInstance::CollectFixupsAndInitialFormulae() {
2747 for (IVUsers::const_iterator UI = IU.begin(), E = IU.end(); UI != E; ++UI) {
Andrew Trick22d20c22012-01-09 21:18:52 +00002748 Instruction *UserInst = UI->getUser();
2749 // Skip IV users that are part of profitable IV Chains.
2750 User::op_iterator UseI = std::find(UserInst->op_begin(), UserInst->op_end(),
2751 UI->getOperandValToReplace());
2752 assert(UseI != UserInst->op_end() && "cannot find IV operand");
2753 if (IVIncSet.count(UseI))
2754 continue;
2755
Dan Gohman572645c2010-02-12 10:34:29 +00002756 // Record the uses.
2757 LSRFixup &LF = getNewFixup();
Andrew Trick22d20c22012-01-09 21:18:52 +00002758 LF.UserInst = UserInst;
Dan Gohman572645c2010-02-12 10:34:29 +00002759 LF.OperandValToReplace = UI->getOperandValToReplace();
Dan Gohman448db1c2010-04-07 22:27:08 +00002760 LF.PostIncLoops = UI->getPostIncLoops();
Dan Gohman572645c2010-02-12 10:34:29 +00002761
2762 LSRUse::KindType Kind = LSRUse::Basic;
Chris Lattnerdb125cf2011-07-18 04:54:35 +00002763 Type *AccessTy = 0;
Dan Gohman572645c2010-02-12 10:34:29 +00002764 if (isAddressUse(LF.UserInst, LF.OperandValToReplace)) {
2765 Kind = LSRUse::Address;
2766 AccessTy = getAccessType(LF.UserInst);
2767 }
2768
Dan Gohmanc0564542010-04-19 21:48:58 +00002769 const SCEV *S = IU.getExpr(*UI);
Dan Gohman572645c2010-02-12 10:34:29 +00002770
2771 // Equality (== and !=) ICmps are special. We can rewrite (i == N) as
2772 // (N - i == 0), and this allows (N - i) to be the expression that we work
2773 // with rather than just N or i, so we can consider the register
2774 // requirements for both N and i at the same time. Limiting this code to
2775 // equality icmps is not a problem because all interesting loops use
2776 // equality icmps, thanks to IndVarSimplify.
2777 if (ICmpInst *CI = dyn_cast<ICmpInst>(LF.UserInst))
2778 if (CI->isEquality()) {
2779 // Swap the operands if needed to put the OperandValToReplace on the
2780 // left, for consistency.
2781 Value *NV = CI->getOperand(1);
2782 if (NV == LF.OperandValToReplace) {
2783 CI->setOperand(1, CI->getOperand(0));
2784 CI->setOperand(0, NV);
Dan Gohmanf182b232010-05-20 19:26:52 +00002785 NV = CI->getOperand(1);
Dan Gohman9da1bf42010-05-20 19:16:03 +00002786 Changed = true;
Dan Gohman572645c2010-02-12 10:34:29 +00002787 }
2788
2789 // x == y --> x - y == 0
2790 const SCEV *N = SE.getSCEV(NV);
Dan Gohman17ead4f2010-11-17 21:23:15 +00002791 if (SE.isLoopInvariant(N, L)) {
Dan Gohman673968a2011-05-18 21:02:18 +00002792 // S is normalized, so normalize N before folding it into S
2793 // to keep the result normalized.
2794 N = TransformForPostIncUse(Normalize, N, CI, 0,
2795 LF.PostIncLoops, SE, DT);
Dan Gohman572645c2010-02-12 10:34:29 +00002796 Kind = LSRUse::ICmpZero;
2797 S = SE.getMinusSCEV(N, S);
2798 }
2799
2800 // -1 and the negations of all interesting strides (except the negation
2801 // of -1) are now also interesting.
2802 for (size_t i = 0, e = Factors.size(); i != e; ++i)
2803 if (Factors[i] != -1)
2804 Factors.insert(-(uint64_t)Factors[i]);
2805 Factors.insert(-1);
2806 }
2807
2808 // Set up the initial formula for this use.
2809 std::pair<size_t, int64_t> P = getUse(S, Kind, AccessTy);
2810 LF.LUIdx = P.first;
2811 LF.Offset = P.second;
2812 LSRUse &LU = Uses[LF.LUIdx];
Dan Gohman448db1c2010-04-07 22:27:08 +00002813 LU.AllFixupsOutsideLoop &= LF.isUseFullyOutsideLoop(L);
Dan Gohmana9db1292010-07-15 20:24:58 +00002814 if (!LU.WidestFixupType ||
2815 SE.getTypeSizeInBits(LU.WidestFixupType) <
2816 SE.getTypeSizeInBits(LF.OperandValToReplace->getType()))
2817 LU.WidestFixupType = LF.OperandValToReplace->getType();
Dan Gohman572645c2010-02-12 10:34:29 +00002818
2819 // If this is the first use of this LSRUse, give it a formula.
2820 if (LU.Formulae.empty()) {
Dan Gohman454d26d2010-02-22 04:11:59 +00002821 InsertInitialFormula(S, LU, LF.LUIdx);
Dan Gohman572645c2010-02-12 10:34:29 +00002822 CountRegisters(LU.Formulae.back(), LF.LUIdx);
2823 }
2824 }
2825
2826 DEBUG(print_fixups(dbgs()));
2827}
2828
Dan Gohman76c315a2010-05-20 20:52:00 +00002829/// InsertInitialFormula - Insert a formula for the given expression into
2830/// the given use, separating out loop-variant portions from loop-invariant
2831/// and loop-computable portions.
Dan Gohman572645c2010-02-12 10:34:29 +00002832void
Dan Gohman454d26d2010-02-22 04:11:59 +00002833LSRInstance::InsertInitialFormula(const SCEV *S, LSRUse &LU, size_t LUIdx) {
Dan Gohman572645c2010-02-12 10:34:29 +00002834 Formula F;
Dan Gohmandc0e8fb2010-11-17 21:41:58 +00002835 F.InitialMatch(S, L, SE);
Dan Gohman572645c2010-02-12 10:34:29 +00002836 bool Inserted = InsertFormula(LU, LUIdx, F);
2837 assert(Inserted && "Initial formula already exists!"); (void)Inserted;
2838}
2839
Dan Gohman76c315a2010-05-20 20:52:00 +00002840/// InsertSupplementalFormula - Insert a simple single-register formula for
2841/// the given expression into the given use.
Dan Gohman572645c2010-02-12 10:34:29 +00002842void
2843LSRInstance::InsertSupplementalFormula(const SCEV *S,
2844 LSRUse &LU, size_t LUIdx) {
2845 Formula F;
2846 F.BaseRegs.push_back(S);
2847 F.AM.HasBaseReg = true;
2848 bool Inserted = InsertFormula(LU, LUIdx, F);
2849 assert(Inserted && "Supplemental formula already exists!"); (void)Inserted;
2850}
2851
2852/// CountRegisters - Note which registers are used by the given formula,
2853/// updating RegUses.
2854void LSRInstance::CountRegisters(const Formula &F, size_t LUIdx) {
2855 if (F.ScaledReg)
2856 RegUses.CountRegister(F.ScaledReg, LUIdx);
2857 for (SmallVectorImpl<const SCEV *>::const_iterator I = F.BaseRegs.begin(),
2858 E = F.BaseRegs.end(); I != E; ++I)
2859 RegUses.CountRegister(*I, LUIdx);
2860}
2861
2862/// InsertFormula - If the given formula has not yet been inserted, add it to
2863/// the list, and return true. Return false otherwise.
2864bool LSRInstance::InsertFormula(LSRUse &LU, unsigned LUIdx, const Formula &F) {
Dan Gohman454d26d2010-02-22 04:11:59 +00002865 if (!LU.InsertFormula(F))
Dan Gohman572645c2010-02-12 10:34:29 +00002866 return false;
2867
2868 CountRegisters(F, LUIdx);
2869 return true;
2870}
2871
2872/// CollectLoopInvariantFixupsAndFormulae - Check for other uses of
2873/// loop-invariant values which we're tracking. These other uses will pin these
2874/// values in registers, making them less profitable for elimination.
2875/// TODO: This currently misses non-constant addrec step registers.
2876/// TODO: Should this give more weight to users inside the loop?
2877void
2878LSRInstance::CollectLoopInvariantFixupsAndFormulae() {
2879 SmallVector<const SCEV *, 8> Worklist(RegUses.begin(), RegUses.end());
2880 SmallPtrSet<const SCEV *, 8> Inserted;
2881
2882 while (!Worklist.empty()) {
2883 const SCEV *S = Worklist.pop_back_val();
2884
2885 if (const SCEVNAryExpr *N = dyn_cast<SCEVNAryExpr>(S))
Dan Gohman403a8cd2010-06-21 19:47:52 +00002886 Worklist.append(N->op_begin(), N->op_end());
Dan Gohman572645c2010-02-12 10:34:29 +00002887 else if (const SCEVCastExpr *C = dyn_cast<SCEVCastExpr>(S))
2888 Worklist.push_back(C->getOperand());
2889 else if (const SCEVUDivExpr *D = dyn_cast<SCEVUDivExpr>(S)) {
2890 Worklist.push_back(D->getLHS());
2891 Worklist.push_back(D->getRHS());
2892 } else if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(S)) {
2893 if (!Inserted.insert(U)) continue;
2894 const Value *V = U->getValue();
Dan Gohmana15ec5d2010-06-04 23:16:05 +00002895 if (const Instruction *Inst = dyn_cast<Instruction>(V)) {
2896 // Look for instructions defined outside the loop.
Dan Gohman572645c2010-02-12 10:34:29 +00002897 if (L->contains(Inst)) continue;
Dan Gohmana15ec5d2010-06-04 23:16:05 +00002898 } else if (isa<UndefValue>(V))
2899 // Undef doesn't have a live range, so it doesn't matter.
2900 continue;
Gabor Greif60ad7812010-03-25 23:06:16 +00002901 for (Value::const_use_iterator UI = V->use_begin(), UE = V->use_end();
Dan Gohman572645c2010-02-12 10:34:29 +00002902 UI != UE; ++UI) {
2903 const Instruction *UserInst = dyn_cast<Instruction>(*UI);
2904 // Ignore non-instructions.
2905 if (!UserInst)
Dan Gohman7979b722010-01-22 00:46:49 +00002906 continue;
Dan Gohman572645c2010-02-12 10:34:29 +00002907 // Ignore instructions in other functions (as can happen with
2908 // Constants).
2909 if (UserInst->getParent()->getParent() != L->getHeader()->getParent())
Dan Gohman7979b722010-01-22 00:46:49 +00002910 continue;
Dan Gohman572645c2010-02-12 10:34:29 +00002911 // Ignore instructions not dominated by the loop.
2912 const BasicBlock *UseBB = !isa<PHINode>(UserInst) ?
2913 UserInst->getParent() :
2914 cast<PHINode>(UserInst)->getIncomingBlock(
2915 PHINode::getIncomingValueNumForOperand(UI.getOperandNo()));
2916 if (!DT.dominates(L->getHeader(), UseBB))
2917 continue;
2918 // Ignore uses which are part of other SCEV expressions, to avoid
2919 // analyzing them multiple times.
Dan Gohman4a2a6832010-04-09 19:12:34 +00002920 if (SE.isSCEVable(UserInst->getType())) {
2921 const SCEV *UserS = SE.getSCEV(const_cast<Instruction *>(UserInst));
2922 // If the user is a no-op, look through to its uses.
2923 if (!isa<SCEVUnknown>(UserS))
2924 continue;
2925 if (UserS == U) {
2926 Worklist.push_back(
2927 SE.getUnknown(const_cast<Instruction *>(UserInst)));
2928 continue;
2929 }
2930 }
Dan Gohman572645c2010-02-12 10:34:29 +00002931 // Ignore icmp instructions which are already being analyzed.
2932 if (const ICmpInst *ICI = dyn_cast<ICmpInst>(UserInst)) {
2933 unsigned OtherIdx = !UI.getOperandNo();
2934 Value *OtherOp = const_cast<Value *>(ICI->getOperand(OtherIdx));
Dan Gohman17ead4f2010-11-17 21:23:15 +00002935 if (SE.hasComputableLoopEvolution(SE.getSCEV(OtherOp), L))
Dan Gohman572645c2010-02-12 10:34:29 +00002936 continue;
2937 }
2938
2939 LSRFixup &LF = getNewFixup();
2940 LF.UserInst = const_cast<Instruction *>(UserInst);
2941 LF.OperandValToReplace = UI.getUse();
2942 std::pair<size_t, int64_t> P = getUse(S, LSRUse::Basic, 0);
2943 LF.LUIdx = P.first;
2944 LF.Offset = P.second;
2945 LSRUse &LU = Uses[LF.LUIdx];
Dan Gohman448db1c2010-04-07 22:27:08 +00002946 LU.AllFixupsOutsideLoop &= LF.isUseFullyOutsideLoop(L);
Dan Gohmana9db1292010-07-15 20:24:58 +00002947 if (!LU.WidestFixupType ||
2948 SE.getTypeSizeInBits(LU.WidestFixupType) <
2949 SE.getTypeSizeInBits(LF.OperandValToReplace->getType()))
2950 LU.WidestFixupType = LF.OperandValToReplace->getType();
Dan Gohman572645c2010-02-12 10:34:29 +00002951 InsertSupplementalFormula(U, LU, LF.LUIdx);
2952 CountRegisters(LU.Formulae.back(), Uses.size() - 1);
2953 break;
2954 }
2955 }
2956 }
2957}
2958
2959/// CollectSubexprs - Split S into subexpressions which can be pulled out into
2960/// separate registers. If C is non-null, multiply each subexpression by C.
2961static void CollectSubexprs(const SCEV *S, const SCEVConstant *C,
2962 SmallVectorImpl<const SCEV *> &Ops,
Dan Gohman3e3f15b2010-06-25 22:32:18 +00002963 const Loop *L,
Dan Gohman572645c2010-02-12 10:34:29 +00002964 ScalarEvolution &SE) {
2965 if (const SCEVAddExpr *Add = dyn_cast<SCEVAddExpr>(S)) {
2966 // Break out add operands.
2967 for (SCEVAddExpr::op_iterator I = Add->op_begin(), E = Add->op_end();
2968 I != E; ++I)
Dan Gohman3e22b7c2010-08-16 15:50:00 +00002969 CollectSubexprs(*I, C, Ops, L, SE);
Dan Gohman572645c2010-02-12 10:34:29 +00002970 return;
2971 } else if (const SCEVAddRecExpr *AR = dyn_cast<SCEVAddRecExpr>(S)) {
2972 // Split a non-zero base out of an addrec.
2973 if (!AR->getStart()->isZero()) {
Dan Gohmandeff6212010-05-03 22:09:21 +00002974 CollectSubexprs(SE.getAddRecExpr(SE.getConstant(AR->getType(), 0),
Dan Gohman572645c2010-02-12 10:34:29 +00002975 AR->getStepRecurrence(SE),
Andrew Trick3228cc22011-03-14 16:50:06 +00002976 AR->getLoop(),
2977 //FIXME: AR->getNoWrapFlags(SCEV::FlagNW)
2978 SCEV::FlagAnyWrap),
Dan Gohman3e22b7c2010-08-16 15:50:00 +00002979 C, Ops, L, SE);
2980 CollectSubexprs(AR->getStart(), C, Ops, L, SE);
Dan Gohman572645c2010-02-12 10:34:29 +00002981 return;
2982 }
2983 } else if (const SCEVMulExpr *Mul = dyn_cast<SCEVMulExpr>(S)) {
2984 // Break (C * (a + b + c)) into C*a + C*b + C*c.
2985 if (Mul->getNumOperands() == 2)
2986 if (const SCEVConstant *Op0 =
2987 dyn_cast<SCEVConstant>(Mul->getOperand(0))) {
2988 CollectSubexprs(Mul->getOperand(1),
2989 C ? cast<SCEVConstant>(SE.getMulExpr(C, Op0)) : Op0,
Dan Gohman3e22b7c2010-08-16 15:50:00 +00002990 Ops, L, SE);
Dan Gohman572645c2010-02-12 10:34:29 +00002991 return;
2992 }
2993 }
2994
Dan Gohman3e22b7c2010-08-16 15:50:00 +00002995 // Otherwise use the value itself, optionally with a scale applied.
2996 Ops.push_back(C ? SE.getMulExpr(C, S) : S);
Dan Gohman572645c2010-02-12 10:34:29 +00002997}
2998
2999/// GenerateReassociations - Split out subexpressions from adds and the bases of
3000/// addrecs.
3001void LSRInstance::GenerateReassociations(LSRUse &LU, unsigned LUIdx,
3002 Formula Base,
3003 unsigned Depth) {
3004 // Arbitrarily cap recursion to protect compile time.
3005 if (Depth >= 3) return;
3006
3007 for (size_t i = 0, e = Base.BaseRegs.size(); i != e; ++i) {
3008 const SCEV *BaseReg = Base.BaseRegs[i];
3009
Dan Gohman3e22b7c2010-08-16 15:50:00 +00003010 SmallVector<const SCEV *, 8> AddOps;
3011 CollectSubexprs(BaseReg, 0, AddOps, L, SE);
Dan Gohman3e3f15b2010-06-25 22:32:18 +00003012
Dan Gohman572645c2010-02-12 10:34:29 +00003013 if (AddOps.size() == 1) continue;
3014
3015 for (SmallVectorImpl<const SCEV *>::const_iterator J = AddOps.begin(),
3016 JE = AddOps.end(); J != JE; ++J) {
Dan Gohman3e22b7c2010-08-16 15:50:00 +00003017
3018 // Loop-variant "unknown" values are uninteresting; we won't be able to
3019 // do anything meaningful with them.
Dan Gohman17ead4f2010-11-17 21:23:15 +00003020 if (isa<SCEVUnknown>(*J) && !SE.isLoopInvariant(*J, L))
Dan Gohman3e22b7c2010-08-16 15:50:00 +00003021 continue;
3022
Dan Gohman572645c2010-02-12 10:34:29 +00003023 // Don't pull a constant into a register if the constant could be folded
3024 // into an immediate field.
3025 if (isAlwaysFoldable(*J, LU.MinOffset, LU.MaxOffset,
3026 Base.getNumRegs() > 1,
3027 LU.Kind, LU.AccessTy, TLI, SE))
3028 continue;
3029
3030 // Collect all operands except *J.
Dan Gohman403a8cd2010-06-21 19:47:52 +00003031 SmallVector<const SCEV *, 8> InnerAddOps
Dan Gohman4eaee282010-08-04 17:43:57 +00003032 (((const SmallVector<const SCEV *, 8> &)AddOps).begin(), J);
Dan Gohman403a8cd2010-06-21 19:47:52 +00003033 InnerAddOps.append
Oscar Fuentesee56c422010-08-02 06:00:15 +00003034 (llvm::next(J), ((const SmallVector<const SCEV *, 8> &)AddOps).end());
Dan Gohman572645c2010-02-12 10:34:29 +00003035
3036 // Don't leave just a constant behind in a register if the constant could
3037 // be folded into an immediate field.
3038 if (InnerAddOps.size() == 1 &&
3039 isAlwaysFoldable(InnerAddOps[0], LU.MinOffset, LU.MaxOffset,
3040 Base.getNumRegs() > 1,
3041 LU.Kind, LU.AccessTy, TLI, SE))
3042 continue;
3043
Dan Gohmanfafb8902010-04-23 01:55:05 +00003044 const SCEV *InnerSum = SE.getAddExpr(InnerAddOps);
3045 if (InnerSum->isZero())
3046 continue;
Dan Gohman572645c2010-02-12 10:34:29 +00003047 Formula F = Base;
Dan Gohmancca82142011-05-03 00:46:49 +00003048
3049 // Add the remaining pieces of the add back into the new formula.
3050 const SCEVConstant *InnerSumSC = dyn_cast<SCEVConstant>(InnerSum);
3051 if (TLI && InnerSumSC &&
3052 SE.getTypeSizeInBits(InnerSumSC->getType()) <= 64 &&
3053 TLI->isLegalAddImmediate((uint64_t)F.UnfoldedOffset +
3054 InnerSumSC->getValue()->getZExtValue())) {
3055 F.UnfoldedOffset = (uint64_t)F.UnfoldedOffset +
3056 InnerSumSC->getValue()->getZExtValue();
3057 F.BaseRegs.erase(F.BaseRegs.begin() + i);
3058 } else
3059 F.BaseRegs[i] = InnerSum;
3060
3061 // Add J as its own register, or an unfolded immediate.
3062 const SCEVConstant *SC = dyn_cast<SCEVConstant>(*J);
3063 if (TLI && SC && SE.getTypeSizeInBits(SC->getType()) <= 64 &&
3064 TLI->isLegalAddImmediate((uint64_t)F.UnfoldedOffset +
3065 SC->getValue()->getZExtValue()))
3066 F.UnfoldedOffset = (uint64_t)F.UnfoldedOffset +
3067 SC->getValue()->getZExtValue();
3068 else
3069 F.BaseRegs.push_back(*J);
3070
Dan Gohman572645c2010-02-12 10:34:29 +00003071 if (InsertFormula(LU, LUIdx, F))
3072 // If that formula hadn't been seen before, recurse to find more like
3073 // it.
3074 GenerateReassociations(LU, LUIdx, LU.Formulae.back(), Depth+1);
3075 }
3076 }
3077}
3078
3079/// GenerateCombinations - Generate a formula consisting of all of the
3080/// loop-dominating registers added into a single register.
3081void LSRInstance::GenerateCombinations(LSRUse &LU, unsigned LUIdx,
Dan Gohman441a3892010-02-14 18:51:39 +00003082 Formula Base) {
Dan Gohman3f46a3a2010-03-01 17:49:51 +00003083 // This method is only interesting on a plurality of registers.
Dan Gohman572645c2010-02-12 10:34:29 +00003084 if (Base.BaseRegs.size() <= 1) return;
3085
3086 Formula F = Base;
3087 F.BaseRegs.clear();
3088 SmallVector<const SCEV *, 4> Ops;
3089 for (SmallVectorImpl<const SCEV *>::const_iterator
3090 I = Base.BaseRegs.begin(), E = Base.BaseRegs.end(); I != E; ++I) {
3091 const SCEV *BaseReg = *I;
Dan Gohmandc0e8fb2010-11-17 21:41:58 +00003092 if (SE.properlyDominates(BaseReg, L->getHeader()) &&
Dan Gohman17ead4f2010-11-17 21:23:15 +00003093 !SE.hasComputableLoopEvolution(BaseReg, L))
Dan Gohman572645c2010-02-12 10:34:29 +00003094 Ops.push_back(BaseReg);
3095 else
3096 F.BaseRegs.push_back(BaseReg);
3097 }
3098 if (Ops.size() > 1) {
Dan Gohmance947362010-02-14 18:50:49 +00003099 const SCEV *Sum = SE.getAddExpr(Ops);
3100 // TODO: If Sum is zero, it probably means ScalarEvolution missed an
3101 // opportunity to fold something. For now, just ignore such cases
Dan Gohman3f46a3a2010-03-01 17:49:51 +00003102 // rather than proceed with zero in a register.
Dan Gohmance947362010-02-14 18:50:49 +00003103 if (!Sum->isZero()) {
3104 F.BaseRegs.push_back(Sum);
3105 (void)InsertFormula(LU, LUIdx, F);
3106 }
Dan Gohman572645c2010-02-12 10:34:29 +00003107 }
3108}
3109
3110/// GenerateSymbolicOffsets - Generate reuse formulae using symbolic offsets.
3111void LSRInstance::GenerateSymbolicOffsets(LSRUse &LU, unsigned LUIdx,
3112 Formula Base) {
3113 // We can't add a symbolic offset if the address already contains one.
3114 if (Base.AM.BaseGV) return;
3115
3116 for (size_t i = 0, e = Base.BaseRegs.size(); i != e; ++i) {
3117 const SCEV *G = Base.BaseRegs[i];
3118 GlobalValue *GV = ExtractSymbol(G, SE);
3119 if (G->isZero() || !GV)
3120 continue;
3121 Formula F = Base;
3122 F.AM.BaseGV = GV;
3123 if (!isLegalUse(F.AM, LU.MinOffset, LU.MaxOffset,
3124 LU.Kind, LU.AccessTy, TLI))
3125 continue;
3126 F.BaseRegs[i] = G;
3127 (void)InsertFormula(LU, LUIdx, F);
3128 }
3129}
3130
3131/// GenerateConstantOffsets - Generate reuse formulae using symbolic offsets.
3132void LSRInstance::GenerateConstantOffsets(LSRUse &LU, unsigned LUIdx,
3133 Formula Base) {
3134 // TODO: For now, just add the min and max offset, because it usually isn't
3135 // worthwhile looking at everything inbetween.
Dan Gohmanc88c1a42010-07-15 15:14:45 +00003136 SmallVector<int64_t, 2> Worklist;
Dan Gohman572645c2010-02-12 10:34:29 +00003137 Worklist.push_back(LU.MinOffset);
3138 if (LU.MaxOffset != LU.MinOffset)
3139 Worklist.push_back(LU.MaxOffset);
3140
3141 for (size_t i = 0, e = Base.BaseRegs.size(); i != e; ++i) {
3142 const SCEV *G = Base.BaseRegs[i];
3143
3144 for (SmallVectorImpl<int64_t>::const_iterator I = Worklist.begin(),
3145 E = Worklist.end(); I != E; ++I) {
3146 Formula F = Base;
3147 F.AM.BaseOffs = (uint64_t)Base.AM.BaseOffs - *I;
3148 if (isLegalUse(F.AM, LU.MinOffset - *I, LU.MaxOffset - *I,
3149 LU.Kind, LU.AccessTy, TLI)) {
Dan Gohmanc88c1a42010-07-15 15:14:45 +00003150 // Add the offset to the base register.
Dan Gohman4065f602010-08-16 15:39:27 +00003151 const SCEV *NewG = SE.getAddExpr(SE.getConstant(G->getType(), *I), G);
Dan Gohmanc88c1a42010-07-15 15:14:45 +00003152 // If it cancelled out, drop the base register, otherwise update it.
3153 if (NewG->isZero()) {
3154 std::swap(F.BaseRegs[i], F.BaseRegs.back());
3155 F.BaseRegs.pop_back();
3156 } else
3157 F.BaseRegs[i] = NewG;
Dan Gohman572645c2010-02-12 10:34:29 +00003158
3159 (void)InsertFormula(LU, LUIdx, F);
3160 }
3161 }
3162
3163 int64_t Imm = ExtractImmediate(G, SE);
3164 if (G->isZero() || Imm == 0)
3165 continue;
3166 Formula F = Base;
3167 F.AM.BaseOffs = (uint64_t)F.AM.BaseOffs + Imm;
3168 if (!isLegalUse(F.AM, LU.MinOffset, LU.MaxOffset,
3169 LU.Kind, LU.AccessTy, TLI))
3170 continue;
3171 F.BaseRegs[i] = G;
3172 (void)InsertFormula(LU, LUIdx, F);
3173 }
3174}
3175
3176/// GenerateICmpZeroScales - For ICmpZero, check to see if we can scale up
3177/// the comparison. For example, x == y -> x*c == y*c.
3178void LSRInstance::GenerateICmpZeroScales(LSRUse &LU, unsigned LUIdx,
3179 Formula Base) {
3180 if (LU.Kind != LSRUse::ICmpZero) return;
3181
3182 // Determine the integer type for the base formula.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00003183 Type *IntTy = Base.getType();
Dan Gohman572645c2010-02-12 10:34:29 +00003184 if (!IntTy) return;
3185 if (SE.getTypeSizeInBits(IntTy) > 64) return;
3186
3187 // Don't do this if there is more than one offset.
3188 if (LU.MinOffset != LU.MaxOffset) return;
3189
3190 assert(!Base.AM.BaseGV && "ICmpZero use is not legal!");
3191
3192 // Check each interesting stride.
3193 for (SmallSetVector<int64_t, 8>::const_iterator
3194 I = Factors.begin(), E = Factors.end(); I != E; ++I) {
3195 int64_t Factor = *I;
Dan Gohman572645c2010-02-12 10:34:29 +00003196
3197 // Check that the multiplication doesn't overflow.
Dan Gohman2ea09e02010-06-24 16:57:52 +00003198 if (Base.AM.BaseOffs == INT64_MIN && Factor == -1)
Dan Gohman968cb932010-02-17 00:41:53 +00003199 continue;
Dan Gohman2ea09e02010-06-24 16:57:52 +00003200 int64_t NewBaseOffs = (uint64_t)Base.AM.BaseOffs * Factor;
3201 if (NewBaseOffs / Factor != Base.AM.BaseOffs)
Dan Gohman572645c2010-02-12 10:34:29 +00003202 continue;
3203
3204 // Check that multiplying with the use offset doesn't overflow.
3205 int64_t Offset = LU.MinOffset;
Dan Gohman968cb932010-02-17 00:41:53 +00003206 if (Offset == INT64_MIN && Factor == -1)
3207 continue;
Dan Gohman572645c2010-02-12 10:34:29 +00003208 Offset = (uint64_t)Offset * Factor;
Dan Gohman378c0b32010-02-17 00:42:19 +00003209 if (Offset / Factor != LU.MinOffset)
Dan Gohman572645c2010-02-12 10:34:29 +00003210 continue;
3211
Dan Gohman2ea09e02010-06-24 16:57:52 +00003212 Formula F = Base;
3213 F.AM.BaseOffs = NewBaseOffs;
3214
Dan Gohman572645c2010-02-12 10:34:29 +00003215 // Check that this scale is legal.
3216 if (!isLegalUse(F.AM, Offset, Offset, LU.Kind, LU.AccessTy, TLI))
3217 continue;
3218
3219 // Compensate for the use having MinOffset built into it.
3220 F.AM.BaseOffs = (uint64_t)F.AM.BaseOffs + Offset - LU.MinOffset;
3221
Dan Gohmandeff6212010-05-03 22:09:21 +00003222 const SCEV *FactorS = SE.getConstant(IntTy, Factor);
Dan Gohman572645c2010-02-12 10:34:29 +00003223
3224 // Check that multiplying with each base register doesn't overflow.
3225 for (size_t i = 0, e = F.BaseRegs.size(); i != e; ++i) {
3226 F.BaseRegs[i] = SE.getMulExpr(F.BaseRegs[i], FactorS);
Dan Gohmanf09b7122010-02-19 19:35:48 +00003227 if (getExactSDiv(F.BaseRegs[i], FactorS, SE) != Base.BaseRegs[i])
Dan Gohman572645c2010-02-12 10:34:29 +00003228 goto next;
3229 }
3230
3231 // Check that multiplying with the scaled register doesn't overflow.
3232 if (F.ScaledReg) {
3233 F.ScaledReg = SE.getMulExpr(F.ScaledReg, FactorS);
Dan Gohmanf09b7122010-02-19 19:35:48 +00003234 if (getExactSDiv(F.ScaledReg, FactorS, SE) != Base.ScaledReg)
Dan Gohman572645c2010-02-12 10:34:29 +00003235 continue;
3236 }
3237
Dan Gohmancca82142011-05-03 00:46:49 +00003238 // Check that multiplying with the unfolded offset doesn't overflow.
3239 if (F.UnfoldedOffset != 0) {
Dan Gohman1b58d452011-05-23 21:07:39 +00003240 if (F.UnfoldedOffset == INT64_MIN && Factor == -1)
3241 continue;
Dan Gohmancca82142011-05-03 00:46:49 +00003242 F.UnfoldedOffset = (uint64_t)F.UnfoldedOffset * Factor;
3243 if (F.UnfoldedOffset / Factor != Base.UnfoldedOffset)
3244 continue;
3245 }
3246
Dan Gohman572645c2010-02-12 10:34:29 +00003247 // If we make it here and it's legal, add it.
3248 (void)InsertFormula(LU, LUIdx, F);
3249 next:;
3250 }
3251}
3252
3253/// GenerateScales - Generate stride factor reuse formulae by making use of
3254/// scaled-offset address modes, for example.
Dan Gohmanea507f52010-05-20 19:44:23 +00003255void LSRInstance::GenerateScales(LSRUse &LU, unsigned LUIdx, Formula Base) {
Dan Gohman572645c2010-02-12 10:34:29 +00003256 // Determine the integer type for the base formula.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00003257 Type *IntTy = Base.getType();
Dan Gohman572645c2010-02-12 10:34:29 +00003258 if (!IntTy) return;
3259
3260 // If this Formula already has a scaled register, we can't add another one.
3261 if (Base.AM.Scale != 0) return;
3262
3263 // Check each interesting stride.
3264 for (SmallSetVector<int64_t, 8>::const_iterator
3265 I = Factors.begin(), E = Factors.end(); I != E; ++I) {
3266 int64_t Factor = *I;
3267
3268 Base.AM.Scale = Factor;
3269 Base.AM.HasBaseReg = Base.BaseRegs.size() > 1;
3270 // Check whether this scale is going to be legal.
3271 if (!isLegalUse(Base.AM, LU.MinOffset, LU.MaxOffset,
3272 LU.Kind, LU.AccessTy, TLI)) {
3273 // As a special-case, handle special out-of-loop Basic users specially.
3274 // TODO: Reconsider this special case.
3275 if (LU.Kind == LSRUse::Basic &&
3276 isLegalUse(Base.AM, LU.MinOffset, LU.MaxOffset,
3277 LSRUse::Special, LU.AccessTy, TLI) &&
3278 LU.AllFixupsOutsideLoop)
3279 LU.Kind = LSRUse::Special;
3280 else
3281 continue;
3282 }
3283 // For an ICmpZero, negating a solitary base register won't lead to
3284 // new solutions.
3285 if (LU.Kind == LSRUse::ICmpZero &&
3286 !Base.AM.HasBaseReg && Base.AM.BaseOffs == 0 && !Base.AM.BaseGV)
3287 continue;
3288 // For each addrec base reg, apply the scale, if possible.
3289 for (size_t i = 0, e = Base.BaseRegs.size(); i != e; ++i)
3290 if (const SCEVAddRecExpr *AR =
3291 dyn_cast<SCEVAddRecExpr>(Base.BaseRegs[i])) {
Dan Gohmandeff6212010-05-03 22:09:21 +00003292 const SCEV *FactorS = SE.getConstant(IntTy, Factor);
Dan Gohman572645c2010-02-12 10:34:29 +00003293 if (FactorS->isZero())
3294 continue;
3295 // Divide out the factor, ignoring high bits, since we'll be
3296 // scaling the value back up in the end.
Dan Gohmanf09b7122010-02-19 19:35:48 +00003297 if (const SCEV *Quotient = getExactSDiv(AR, FactorS, SE, true)) {
Dan Gohman572645c2010-02-12 10:34:29 +00003298 // TODO: This could be optimized to avoid all the copying.
3299 Formula F = Base;
3300 F.ScaledReg = Quotient;
Dan Gohman5ce6d052010-05-20 15:17:54 +00003301 F.DeleteBaseReg(F.BaseRegs[i]);
Dan Gohman572645c2010-02-12 10:34:29 +00003302 (void)InsertFormula(LU, LUIdx, F);
3303 }
3304 }
3305 }
3306}
3307
3308/// GenerateTruncates - Generate reuse formulae from different IV types.
Dan Gohmanea507f52010-05-20 19:44:23 +00003309void LSRInstance::GenerateTruncates(LSRUse &LU, unsigned LUIdx, Formula Base) {
Dan Gohman572645c2010-02-12 10:34:29 +00003310 // This requires TargetLowering to tell us which truncates are free.
3311 if (!TLI) return;
3312
3313 // Don't bother truncating symbolic values.
3314 if (Base.AM.BaseGV) return;
3315
3316 // Determine the integer type for the base formula.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00003317 Type *DstTy = Base.getType();
Dan Gohman572645c2010-02-12 10:34:29 +00003318 if (!DstTy) return;
3319 DstTy = SE.getEffectiveSCEVType(DstTy);
3320
Chris Lattnerdb125cf2011-07-18 04:54:35 +00003321 for (SmallSetVector<Type *, 4>::const_iterator
Dan Gohman572645c2010-02-12 10:34:29 +00003322 I = Types.begin(), E = Types.end(); I != E; ++I) {
Chris Lattnerdb125cf2011-07-18 04:54:35 +00003323 Type *SrcTy = *I;
Dan Gohman572645c2010-02-12 10:34:29 +00003324 if (SrcTy != DstTy && TLI->isTruncateFree(SrcTy, DstTy)) {
3325 Formula F = Base;
3326
3327 if (F.ScaledReg) F.ScaledReg = SE.getAnyExtendExpr(F.ScaledReg, *I);
3328 for (SmallVectorImpl<const SCEV *>::iterator J = F.BaseRegs.begin(),
3329 JE = F.BaseRegs.end(); J != JE; ++J)
3330 *J = SE.getAnyExtendExpr(*J, SrcTy);
3331
3332 // TODO: This assumes we've done basic processing on all uses and
3333 // have an idea what the register usage is.
3334 if (!F.hasRegsUsedByUsesOtherThan(LUIdx, RegUses))
3335 continue;
3336
3337 (void)InsertFormula(LU, LUIdx, F);
3338 }
3339 }
3340}
3341
3342namespace {
3343
Dan Gohman6020d852010-02-14 18:51:20 +00003344/// WorkItem - Helper class for GenerateCrossUseConstantOffsets. It's used to
Dan Gohman572645c2010-02-12 10:34:29 +00003345/// defer modifications so that the search phase doesn't have to worry about
3346/// the data structures moving underneath it.
3347struct WorkItem {
3348 size_t LUIdx;
3349 int64_t Imm;
3350 const SCEV *OrigReg;
3351
3352 WorkItem(size_t LI, int64_t I, const SCEV *R)
3353 : LUIdx(LI), Imm(I), OrigReg(R) {}
3354
3355 void print(raw_ostream &OS) const;
3356 void dump() const;
3357};
3358
3359}
3360
3361void WorkItem::print(raw_ostream &OS) const {
3362 OS << "in formulae referencing " << *OrigReg << " in use " << LUIdx
3363 << " , add offset " << Imm;
3364}
3365
3366void WorkItem::dump() const {
3367 print(errs()); errs() << '\n';
3368}
3369
3370/// GenerateCrossUseConstantOffsets - Look for registers which are a constant
3371/// distance apart and try to form reuse opportunities between them.
3372void LSRInstance::GenerateCrossUseConstantOffsets() {
3373 // Group the registers by their value without any added constant offset.
3374 typedef std::map<int64_t, const SCEV *> ImmMapTy;
3375 typedef DenseMap<const SCEV *, ImmMapTy> RegMapTy;
3376 RegMapTy Map;
3377 DenseMap<const SCEV *, SmallBitVector> UsedByIndicesMap;
3378 SmallVector<const SCEV *, 8> Sequence;
3379 for (RegUseTracker::const_iterator I = RegUses.begin(), E = RegUses.end();
3380 I != E; ++I) {
3381 const SCEV *Reg = *I;
3382 int64_t Imm = ExtractImmediate(Reg, SE);
3383 std::pair<RegMapTy::iterator, bool> Pair =
3384 Map.insert(std::make_pair(Reg, ImmMapTy()));
3385 if (Pair.second)
3386 Sequence.push_back(Reg);
3387 Pair.first->second.insert(std::make_pair(Imm, *I));
3388 UsedByIndicesMap[Reg] |= RegUses.getUsedByIndices(*I);
3389 }
3390
3391 // Now examine each set of registers with the same base value. Build up
3392 // a list of work to do and do the work in a separate step so that we're
3393 // not adding formulae and register counts while we're searching.
Dan Gohman191bd642010-09-01 01:45:53 +00003394 SmallVector<WorkItem, 32> WorkItems;
3395 SmallSet<std::pair<size_t, int64_t>, 32> UniqueItems;
Dan Gohman572645c2010-02-12 10:34:29 +00003396 for (SmallVectorImpl<const SCEV *>::const_iterator I = Sequence.begin(),
3397 E = Sequence.end(); I != E; ++I) {
3398 const SCEV *Reg = *I;
3399 const ImmMapTy &Imms = Map.find(Reg)->second;
3400
Dan Gohmancd045c02010-02-12 19:20:37 +00003401 // It's not worthwhile looking for reuse if there's only one offset.
3402 if (Imms.size() == 1)
3403 continue;
3404
Dan Gohman572645c2010-02-12 10:34:29 +00003405 DEBUG(dbgs() << "Generating cross-use offsets for " << *Reg << ':';
3406 for (ImmMapTy::const_iterator J = Imms.begin(), JE = Imms.end();
3407 J != JE; ++J)
3408 dbgs() << ' ' << J->first;
3409 dbgs() << '\n');
3410
3411 // Examine each offset.
3412 for (ImmMapTy::const_iterator J = Imms.begin(), JE = Imms.end();
3413 J != JE; ++J) {
3414 const SCEV *OrigReg = J->second;
3415
3416 int64_t JImm = J->first;
3417 const SmallBitVector &UsedByIndices = RegUses.getUsedByIndices(OrigReg);
3418
3419 if (!isa<SCEVConstant>(OrigReg) &&
3420 UsedByIndicesMap[Reg].count() == 1) {
3421 DEBUG(dbgs() << "Skipping cross-use reuse for " << *OrigReg << '\n');
3422 continue;
3423 }
3424
3425 // Conservatively examine offsets between this orig reg a few selected
3426 // other orig regs.
3427 ImmMapTy::const_iterator OtherImms[] = {
3428 Imms.begin(), prior(Imms.end()),
Dan Gohmancca82142011-05-03 00:46:49 +00003429 Imms.lower_bound((Imms.begin()->first + prior(Imms.end())->first) / 2)
Dan Gohman572645c2010-02-12 10:34:29 +00003430 };
3431 for (size_t i = 0, e = array_lengthof(OtherImms); i != e; ++i) {
3432 ImmMapTy::const_iterator M = OtherImms[i];
Dan Gohmancd045c02010-02-12 19:20:37 +00003433 if (M == J || M == JE) continue;
Dan Gohman572645c2010-02-12 10:34:29 +00003434
3435 // Compute the difference between the two.
3436 int64_t Imm = (uint64_t)JImm - M->first;
3437 for (int LUIdx = UsedByIndices.find_first(); LUIdx != -1;
Dan Gohman191bd642010-09-01 01:45:53 +00003438 LUIdx = UsedByIndices.find_next(LUIdx))
Dan Gohman572645c2010-02-12 10:34:29 +00003439 // Make a memo of this use, offset, and register tuple.
Dan Gohman191bd642010-09-01 01:45:53 +00003440 if (UniqueItems.insert(std::make_pair(LUIdx, Imm)))
3441 WorkItems.push_back(WorkItem(LUIdx, Imm, OrigReg));
Evan Cheng586f69a2009-11-12 07:35:05 +00003442 }
3443 }
3444 }
3445
Dan Gohman572645c2010-02-12 10:34:29 +00003446 Map.clear();
3447 Sequence.clear();
3448 UsedByIndicesMap.clear();
Dan Gohman191bd642010-09-01 01:45:53 +00003449 UniqueItems.clear();
Dan Gohman572645c2010-02-12 10:34:29 +00003450
3451 // Now iterate through the worklist and add new formulae.
3452 for (SmallVectorImpl<WorkItem>::const_iterator I = WorkItems.begin(),
3453 E = WorkItems.end(); I != E; ++I) {
3454 const WorkItem &WI = *I;
3455 size_t LUIdx = WI.LUIdx;
3456 LSRUse &LU = Uses[LUIdx];
3457 int64_t Imm = WI.Imm;
3458 const SCEV *OrigReg = WI.OrigReg;
3459
Chris Lattnerdb125cf2011-07-18 04:54:35 +00003460 Type *IntTy = SE.getEffectiveSCEVType(OrigReg->getType());
Dan Gohman572645c2010-02-12 10:34:29 +00003461 const SCEV *NegImmS = SE.getSCEV(ConstantInt::get(IntTy, -(uint64_t)Imm));
3462 unsigned BitWidth = SE.getTypeSizeInBits(IntTy);
3463
Dan Gohman3f46a3a2010-03-01 17:49:51 +00003464 // TODO: Use a more targeted data structure.
Dan Gohman572645c2010-02-12 10:34:29 +00003465 for (size_t L = 0, LE = LU.Formulae.size(); L != LE; ++L) {
Dan Gohman9f383eb2010-05-20 22:25:20 +00003466 const Formula &F = LU.Formulae[L];
Dan Gohman572645c2010-02-12 10:34:29 +00003467 // Use the immediate in the scaled register.
3468 if (F.ScaledReg == OrigReg) {
3469 int64_t Offs = (uint64_t)F.AM.BaseOffs +
3470 Imm * (uint64_t)F.AM.Scale;
3471 // Don't create 50 + reg(-50).
3472 if (F.referencesReg(SE.getSCEV(
3473 ConstantInt::get(IntTy, -(uint64_t)Offs))))
3474 continue;
3475 Formula NewF = F;
3476 NewF.AM.BaseOffs = Offs;
3477 if (!isLegalUse(NewF.AM, LU.MinOffset, LU.MaxOffset,
3478 LU.Kind, LU.AccessTy, TLI))
3479 continue;
3480 NewF.ScaledReg = SE.getAddExpr(NegImmS, NewF.ScaledReg);
3481
3482 // If the new scale is a constant in a register, and adding the constant
3483 // value to the immediate would produce a value closer to zero than the
3484 // immediate itself, then the formula isn't worthwhile.
3485 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(NewF.ScaledReg))
Chris Lattnerc73b24d2011-07-15 06:08:15 +00003486 if (C->getValue()->isNegative() !=
Dan Gohman572645c2010-02-12 10:34:29 +00003487 (NewF.AM.BaseOffs < 0) &&
3488 (C->getValue()->getValue().abs() * APInt(BitWidth, F.AM.Scale))
Dan Gohmane0567812010-04-08 23:03:40 +00003489 .ule(abs64(NewF.AM.BaseOffs)))
Dan Gohman572645c2010-02-12 10:34:29 +00003490 continue;
3491
3492 // OK, looks good.
3493 (void)InsertFormula(LU, LUIdx, NewF);
3494 } else {
3495 // Use the immediate in a base register.
3496 for (size_t N = 0, NE = F.BaseRegs.size(); N != NE; ++N) {
3497 const SCEV *BaseReg = F.BaseRegs[N];
3498 if (BaseReg != OrigReg)
3499 continue;
3500 Formula NewF = F;
3501 NewF.AM.BaseOffs = (uint64_t)NewF.AM.BaseOffs + Imm;
3502 if (!isLegalUse(NewF.AM, LU.MinOffset, LU.MaxOffset,
Dan Gohmancca82142011-05-03 00:46:49 +00003503 LU.Kind, LU.AccessTy, TLI)) {
3504 if (!TLI ||
3505 !TLI->isLegalAddImmediate((uint64_t)NewF.UnfoldedOffset + Imm))
3506 continue;
3507 NewF = F;
3508 NewF.UnfoldedOffset = (uint64_t)NewF.UnfoldedOffset + Imm;
3509 }
Dan Gohman572645c2010-02-12 10:34:29 +00003510 NewF.BaseRegs[N] = SE.getAddExpr(NegImmS, BaseReg);
3511
3512 // If the new formula has a constant in a register, and adding the
3513 // constant value to the immediate would produce a value closer to
3514 // zero than the immediate itself, then the formula isn't worthwhile.
3515 for (SmallVectorImpl<const SCEV *>::const_iterator
3516 J = NewF.BaseRegs.begin(), JE = NewF.BaseRegs.end();
3517 J != JE; ++J)
3518 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(*J))
Dan Gohman360026f2010-05-18 23:48:08 +00003519 if ((C->getValue()->getValue() + NewF.AM.BaseOffs).abs().slt(
3520 abs64(NewF.AM.BaseOffs)) &&
3521 (C->getValue()->getValue() +
3522 NewF.AM.BaseOffs).countTrailingZeros() >=
3523 CountTrailingZeros_64(NewF.AM.BaseOffs))
Dan Gohman572645c2010-02-12 10:34:29 +00003524 goto skip_formula;
3525
3526 // Ok, looks good.
3527 (void)InsertFormula(LU, LUIdx, NewF);
3528 break;
3529 skip_formula:;
3530 }
3531 }
3532 }
3533 }
Dale Johannesenc1acc3f2009-05-11 17:15:42 +00003534}
3535
Dan Gohman572645c2010-02-12 10:34:29 +00003536/// GenerateAllReuseFormulae - Generate formulae for each use.
3537void
3538LSRInstance::GenerateAllReuseFormulae() {
Dan Gohmanc2385a02010-02-16 01:42:53 +00003539 // This is split into multiple loops so that hasRegsUsedByUsesOtherThan
Dan Gohman572645c2010-02-12 10:34:29 +00003540 // queries are more precise.
3541 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3542 LSRUse &LU = Uses[LUIdx];
3543 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3544 GenerateReassociations(LU, LUIdx, LU.Formulae[i]);
3545 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3546 GenerateCombinations(LU, LUIdx, LU.Formulae[i]);
3547 }
3548 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3549 LSRUse &LU = Uses[LUIdx];
3550 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3551 GenerateSymbolicOffsets(LU, LUIdx, LU.Formulae[i]);
3552 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3553 GenerateConstantOffsets(LU, LUIdx, LU.Formulae[i]);
3554 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3555 GenerateICmpZeroScales(LU, LUIdx, LU.Formulae[i]);
3556 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3557 GenerateScales(LU, LUIdx, LU.Formulae[i]);
Dan Gohmanc2385a02010-02-16 01:42:53 +00003558 }
3559 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3560 LSRUse &LU = Uses[LUIdx];
Dan Gohman572645c2010-02-12 10:34:29 +00003561 for (size_t i = 0, f = LU.Formulae.size(); i != f; ++i)
3562 GenerateTruncates(LU, LUIdx, LU.Formulae[i]);
3563 }
3564
3565 GenerateCrossUseConstantOffsets();
Dan Gohman3902f9f2010-08-29 15:21:38 +00003566
3567 DEBUG(dbgs() << "\n"
3568 "After generating reuse formulae:\n";
3569 print_uses(dbgs()));
Dan Gohman572645c2010-02-12 10:34:29 +00003570}
3571
Dan Gohmanf63d70f2010-10-07 23:43:09 +00003572/// If there are multiple formulae with the same set of registers used
Dan Gohman572645c2010-02-12 10:34:29 +00003573/// by other uses, pick the best one and delete the others.
3574void LSRInstance::FilterOutUndesirableDedicatedRegisters() {
Dan Gohmanfc7744b2010-10-07 23:52:18 +00003575 DenseSet<const SCEV *> VisitedRegs;
3576 SmallPtrSet<const SCEV *, 16> Regs;
Andrew Trick8a5d7922011-12-06 03:13:31 +00003577 SmallPtrSet<const SCEV *, 16> LoserRegs;
Dan Gohman572645c2010-02-12 10:34:29 +00003578#ifndef NDEBUG
Dan Gohmanc6519f92010-05-20 20:05:31 +00003579 bool ChangedFormulae = false;
Dan Gohman572645c2010-02-12 10:34:29 +00003580#endif
3581
3582 // Collect the best formula for each unique set of shared registers. This
3583 // is reset for each use.
3584 typedef DenseMap<SmallVector<const SCEV *, 2>, size_t, UniquifierDenseMapInfo>
3585 BestFormulaeTy;
3586 BestFormulaeTy BestFormulae;
3587
3588 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3589 LSRUse &LU = Uses[LUIdx];
Dan Gohmanea507f52010-05-20 19:44:23 +00003590 DEBUG(dbgs() << "Filtering for use "; LU.print(dbgs()); dbgs() << '\n');
Dan Gohman572645c2010-02-12 10:34:29 +00003591
Dan Gohmanb2df4332010-05-18 23:42:37 +00003592 bool Any = false;
Dan Gohman572645c2010-02-12 10:34:29 +00003593 for (size_t FIdx = 0, NumForms = LU.Formulae.size();
3594 FIdx != NumForms; ++FIdx) {
3595 Formula &F = LU.Formulae[FIdx];
3596
Andrew Trick8a5d7922011-12-06 03:13:31 +00003597 // Some formulas are instant losers. For example, they may depend on
3598 // nonexistent AddRecs from other loops. These need to be filtered
3599 // immediately, otherwise heuristics could choose them over others leading
3600 // to an unsatisfactory solution. Passing LoserRegs into RateFormula here
3601 // avoids the need to recompute this information across formulae using the
3602 // same bad AddRec. Passing LoserRegs is also essential unless we remove
3603 // the corresponding bad register from the Regs set.
3604 Cost CostF;
3605 Regs.clear();
3606 CostF.RateFormula(F, Regs, VisitedRegs, L, LU.Offsets, SE, DT,
3607 &LoserRegs);
3608 if (CostF.isLoser()) {
3609 // During initial formula generation, undesirable formulae are generated
3610 // by uses within other loops that have some non-trivial address mode or
3611 // use the postinc form of the IV. LSR needs to provide these formulae
3612 // as the basis of rediscovering the desired formula that uses an AddRec
3613 // corresponding to the existing phi. Once all formulae have been
3614 // generated, these initial losers may be pruned.
3615 DEBUG(dbgs() << " Filtering loser "; F.print(dbgs());
3616 dbgs() << "\n");
Dan Gohman572645c2010-02-12 10:34:29 +00003617 }
Andrew Trick8a5d7922011-12-06 03:13:31 +00003618 else {
3619 SmallVector<const SCEV *, 2> Key;
3620 for (SmallVectorImpl<const SCEV *>::const_iterator J = F.BaseRegs.begin(),
3621 JE = F.BaseRegs.end(); J != JE; ++J) {
3622 const SCEV *Reg = *J;
3623 if (RegUses.isRegUsedByUsesOtherThan(Reg, LUIdx))
3624 Key.push_back(Reg);
3625 }
3626 if (F.ScaledReg &&
3627 RegUses.isRegUsedByUsesOtherThan(F.ScaledReg, LUIdx))
3628 Key.push_back(F.ScaledReg);
3629 // Unstable sort by host order ok, because this is only used for
3630 // uniquifying.
3631 std::sort(Key.begin(), Key.end());
Dan Gohman572645c2010-02-12 10:34:29 +00003632
Andrew Trick8a5d7922011-12-06 03:13:31 +00003633 std::pair<BestFormulaeTy::const_iterator, bool> P =
3634 BestFormulae.insert(std::make_pair(Key, FIdx));
3635 if (P.second)
3636 continue;
3637
Dan Gohman572645c2010-02-12 10:34:29 +00003638 Formula &Best = LU.Formulae[P.first->second];
Dan Gohmanfc7744b2010-10-07 23:52:18 +00003639
Dan Gohmanfc7744b2010-10-07 23:52:18 +00003640 Cost CostBest;
Dan Gohmanfc7744b2010-10-07 23:52:18 +00003641 Regs.clear();
Andrew Trick8a5d7922011-12-06 03:13:31 +00003642 CostBest.RateFormula(Best, Regs, VisitedRegs, L, LU.Offsets, SE, DT);
Dan Gohmanfc7744b2010-10-07 23:52:18 +00003643 if (CostF < CostBest)
Dan Gohman572645c2010-02-12 10:34:29 +00003644 std::swap(F, Best);
Dan Gohman6458ff92010-05-18 22:37:37 +00003645 DEBUG(dbgs() << " Filtering out formula "; F.print(dbgs());
Dan Gohman572645c2010-02-12 10:34:29 +00003646 dbgs() << "\n"
Dan Gohman6458ff92010-05-18 22:37:37 +00003647 " in favor of formula "; Best.print(dbgs());
Dan Gohman572645c2010-02-12 10:34:29 +00003648 dbgs() << '\n');
Dan Gohman572645c2010-02-12 10:34:29 +00003649 }
Andrew Trick8a5d7922011-12-06 03:13:31 +00003650#ifndef NDEBUG
3651 ChangedFormulae = true;
3652#endif
3653 LU.DeleteFormula(F);
3654 --FIdx;
3655 --NumForms;
3656 Any = true;
Dan Gohman59dc6032010-05-07 23:36:59 +00003657 }
3658
Dan Gohman57aaa0b2010-05-18 23:55:57 +00003659 // Now that we've filtered out some formulae, recompute the Regs set.
Dan Gohmanb2df4332010-05-18 23:42:37 +00003660 if (Any)
3661 LU.RecomputeRegs(LUIdx, RegUses);
Dan Gohman59dc6032010-05-07 23:36:59 +00003662
3663 // Reset this to prepare for the next use.
Dan Gohman572645c2010-02-12 10:34:29 +00003664 BestFormulae.clear();
3665 }
3666
Dan Gohmanc6519f92010-05-20 20:05:31 +00003667 DEBUG(if (ChangedFormulae) {
Dan Gohman9214b822010-02-13 02:06:02 +00003668 dbgs() << "\n"
3669 "After filtering out undesirable candidates:\n";
Dan Gohman572645c2010-02-12 10:34:29 +00003670 print_uses(dbgs());
3671 });
3672}
3673
Dan Gohmand079c302010-05-18 22:51:59 +00003674// This is a rough guess that seems to work fairly well.
3675static const size_t ComplexityLimit = UINT16_MAX;
3676
3677/// EstimateSearchSpaceComplexity - Estimate the worst-case number of
3678/// solutions the solver might have to consider. It almost never considers
3679/// this many solutions because it prune the search space, but the pruning
3680/// isn't always sufficient.
3681size_t LSRInstance::EstimateSearchSpaceComplexity() const {
Dan Gohman0d6715a2010-10-07 23:37:58 +00003682 size_t Power = 1;
Dan Gohmand079c302010-05-18 22:51:59 +00003683 for (SmallVectorImpl<LSRUse>::const_iterator I = Uses.begin(),
3684 E = Uses.end(); I != E; ++I) {
3685 size_t FSize = I->Formulae.size();
3686 if (FSize >= ComplexityLimit) {
3687 Power = ComplexityLimit;
3688 break;
3689 }
3690 Power *= FSize;
3691 if (Power >= ComplexityLimit)
3692 break;
3693 }
3694 return Power;
3695}
3696
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003697/// NarrowSearchSpaceByDetectingSupersets - When one formula uses a superset
3698/// of the registers of another formula, it won't help reduce register
3699/// pressure (though it may not necessarily hurt register pressure); remove
3700/// it to simplify the system.
3701void LSRInstance::NarrowSearchSpaceByDetectingSupersets() {
Dan Gohmana2086b32010-05-19 23:43:12 +00003702 if (EstimateSearchSpaceComplexity() >= ComplexityLimit) {
3703 DEBUG(dbgs() << "The search space is too complex.\n");
3704
3705 DEBUG(dbgs() << "Narrowing the search space by eliminating formulae "
3706 "which use a superset of registers used by other "
3707 "formulae.\n");
3708
3709 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3710 LSRUse &LU = Uses[LUIdx];
3711 bool Any = false;
3712 for (size_t i = 0, e = LU.Formulae.size(); i != e; ++i) {
3713 Formula &F = LU.Formulae[i];
Dan Gohmanf7ff37d2010-05-20 20:00:41 +00003714 // Look for a formula with a constant or GV in a register. If the use
3715 // also has a formula with that same value in an immediate field,
3716 // delete the one that uses a register.
Dan Gohmana2086b32010-05-19 23:43:12 +00003717 for (SmallVectorImpl<const SCEV *>::const_iterator
3718 I = F.BaseRegs.begin(), E = F.BaseRegs.end(); I != E; ++I) {
3719 if (const SCEVConstant *C = dyn_cast<SCEVConstant>(*I)) {
3720 Formula NewF = F;
3721 NewF.AM.BaseOffs += C->getValue()->getSExtValue();
3722 NewF.BaseRegs.erase(NewF.BaseRegs.begin() +
3723 (I - F.BaseRegs.begin()));
3724 if (LU.HasFormulaWithSameRegs(NewF)) {
3725 DEBUG(dbgs() << " Deleting "; F.print(dbgs()); dbgs() << '\n');
3726 LU.DeleteFormula(F);
3727 --i;
3728 --e;
3729 Any = true;
3730 break;
3731 }
3732 } else if (const SCEVUnknown *U = dyn_cast<SCEVUnknown>(*I)) {
3733 if (GlobalValue *GV = dyn_cast<GlobalValue>(U->getValue()))
3734 if (!F.AM.BaseGV) {
3735 Formula NewF = F;
3736 NewF.AM.BaseGV = GV;
3737 NewF.BaseRegs.erase(NewF.BaseRegs.begin() +
3738 (I - F.BaseRegs.begin()));
3739 if (LU.HasFormulaWithSameRegs(NewF)) {
3740 DEBUG(dbgs() << " Deleting "; F.print(dbgs());
3741 dbgs() << '\n');
3742 LU.DeleteFormula(F);
3743 --i;
3744 --e;
3745 Any = true;
3746 break;
3747 }
3748 }
3749 }
3750 }
3751 }
3752 if (Any)
3753 LU.RecomputeRegs(LUIdx, RegUses);
3754 }
3755
3756 DEBUG(dbgs() << "After pre-selection:\n";
3757 print_uses(dbgs()));
3758 }
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003759}
Dan Gohmana2086b32010-05-19 23:43:12 +00003760
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003761/// NarrowSearchSpaceByCollapsingUnrolledCode - When there are many registers
3762/// for expressions like A, A+1, A+2, etc., allocate a single register for
3763/// them.
3764void LSRInstance::NarrowSearchSpaceByCollapsingUnrolledCode() {
Dan Gohmana2086b32010-05-19 23:43:12 +00003765 if (EstimateSearchSpaceComplexity() >= ComplexityLimit) {
3766 DEBUG(dbgs() << "The search space is too complex.\n");
3767
3768 DEBUG(dbgs() << "Narrowing the search space by assuming that uses "
3769 "separated by a constant offset will use the same "
3770 "registers.\n");
3771
Dan Gohmanf7ff37d2010-05-20 20:00:41 +00003772 // This is especially useful for unrolled loops.
3773
Dan Gohmana2086b32010-05-19 23:43:12 +00003774 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3775 LSRUse &LU = Uses[LUIdx];
Dan Gohman402d4352010-05-20 20:33:18 +00003776 for (SmallVectorImpl<Formula>::const_iterator I = LU.Formulae.begin(),
3777 E = LU.Formulae.end(); I != E; ++I) {
3778 const Formula &F = *I;
Dan Gohmana2086b32010-05-19 23:43:12 +00003779 if (F.AM.BaseOffs != 0 && F.AM.Scale == 0) {
Dan Gohman191bd642010-09-01 01:45:53 +00003780 if (LSRUse *LUThatHas = FindUseWithSimilarFormula(F, LU)) {
3781 if (reconcileNewOffset(*LUThatHas, F.AM.BaseOffs,
Dan Gohmana2086b32010-05-19 23:43:12 +00003782 /*HasBaseReg=*/false,
3783 LU.Kind, LU.AccessTy)) {
3784 DEBUG(dbgs() << " Deleting use "; LU.print(dbgs());
3785 dbgs() << '\n');
3786
3787 LUThatHas->AllFixupsOutsideLoop &= LU.AllFixupsOutsideLoop;
3788
Dan Gohman191bd642010-09-01 01:45:53 +00003789 // Update the relocs to reference the new use.
3790 for (SmallVectorImpl<LSRFixup>::iterator I = Fixups.begin(),
3791 E = Fixups.end(); I != E; ++I) {
3792 LSRFixup &Fixup = *I;
3793 if (Fixup.LUIdx == LUIdx) {
3794 Fixup.LUIdx = LUThatHas - &Uses.front();
3795 Fixup.Offset += F.AM.BaseOffs;
Dan Gohmandd3db0e2010-10-07 23:36:45 +00003796 // Add the new offset to LUThatHas' offset list.
3797 if (LUThatHas->Offsets.back() != Fixup.Offset) {
3798 LUThatHas->Offsets.push_back(Fixup.Offset);
3799 if (Fixup.Offset > LUThatHas->MaxOffset)
3800 LUThatHas->MaxOffset = Fixup.Offset;
3801 if (Fixup.Offset < LUThatHas->MinOffset)
3802 LUThatHas->MinOffset = Fixup.Offset;
3803 }
Dan Gohman191bd642010-09-01 01:45:53 +00003804 DEBUG(dbgs() << "New fixup has offset "
3805 << Fixup.Offset << '\n');
3806 }
3807 if (Fixup.LUIdx == NumUses-1)
3808 Fixup.LUIdx = LUIdx;
3809 }
3810
Dan Gohmanc2921ea2010-10-08 19:33:26 +00003811 // Delete formulae from the new use which are no longer legal.
3812 bool Any = false;
3813 for (size_t i = 0, e = LUThatHas->Formulae.size(); i != e; ++i) {
3814 Formula &F = LUThatHas->Formulae[i];
3815 if (!isLegalUse(F.AM,
3816 LUThatHas->MinOffset, LUThatHas->MaxOffset,
3817 LUThatHas->Kind, LUThatHas->AccessTy, TLI)) {
3818 DEBUG(dbgs() << " Deleting "; F.print(dbgs());
3819 dbgs() << '\n');
3820 LUThatHas->DeleteFormula(F);
3821 --i;
3822 --e;
3823 Any = true;
3824 }
3825 }
3826 if (Any)
3827 LUThatHas->RecomputeRegs(LUThatHas - &Uses.front(), RegUses);
3828
Dan Gohmana2086b32010-05-19 23:43:12 +00003829 // Delete the old use.
Dan Gohmanc6897702010-10-07 23:33:43 +00003830 DeleteUse(LU, LUIdx);
Dan Gohmana2086b32010-05-19 23:43:12 +00003831 --LUIdx;
3832 --NumUses;
3833 break;
3834 }
3835 }
3836 }
3837 }
3838 }
3839
3840 DEBUG(dbgs() << "After pre-selection:\n";
3841 print_uses(dbgs()));
3842 }
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003843}
Dan Gohmana2086b32010-05-19 23:43:12 +00003844
Andrew Trick3228cc22011-03-14 16:50:06 +00003845/// NarrowSearchSpaceByRefilteringUndesirableDedicatedRegisters - Call
Dan Gohman4f7e18d2010-08-29 16:39:22 +00003846/// FilterOutUndesirableDedicatedRegisters again, if necessary, now that
3847/// we've done more filtering, as it may be able to find more formulae to
3848/// eliminate.
3849void LSRInstance::NarrowSearchSpaceByRefilteringUndesirableDedicatedRegisters(){
3850 if (EstimateSearchSpaceComplexity() >= ComplexityLimit) {
3851 DEBUG(dbgs() << "The search space is too complex.\n");
3852
3853 DEBUG(dbgs() << "Narrowing the search space by re-filtering out "
3854 "undesirable dedicated registers.\n");
3855
3856 FilterOutUndesirableDedicatedRegisters();
3857
3858 DEBUG(dbgs() << "After pre-selection:\n";
3859 print_uses(dbgs()));
3860 }
3861}
3862
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003863/// NarrowSearchSpaceByPickingWinnerRegs - Pick a register which seems likely
3864/// to be profitable, and then in any use which has any reference to that
3865/// register, delete all formulae which do not reference that register.
3866void LSRInstance::NarrowSearchSpaceByPickingWinnerRegs() {
Dan Gohman76c315a2010-05-20 20:52:00 +00003867 // With all other options exhausted, loop until the system is simple
3868 // enough to handle.
Dan Gohman572645c2010-02-12 10:34:29 +00003869 SmallPtrSet<const SCEV *, 4> Taken;
Dan Gohmand079c302010-05-18 22:51:59 +00003870 while (EstimateSearchSpaceComplexity() >= ComplexityLimit) {
Dan Gohman572645c2010-02-12 10:34:29 +00003871 // Ok, we have too many of formulae on our hands to conveniently handle.
3872 // Use a rough heuristic to thin out the list.
Dan Gohman0da751b2010-05-18 22:41:32 +00003873 DEBUG(dbgs() << "The search space is too complex.\n");
Dan Gohman572645c2010-02-12 10:34:29 +00003874
3875 // Pick the register which is used by the most LSRUses, which is likely
3876 // to be a good reuse register candidate.
3877 const SCEV *Best = 0;
3878 unsigned BestNum = 0;
3879 for (RegUseTracker::const_iterator I = RegUses.begin(), E = RegUses.end();
3880 I != E; ++I) {
3881 const SCEV *Reg = *I;
3882 if (Taken.count(Reg))
3883 continue;
3884 if (!Best)
3885 Best = Reg;
3886 else {
3887 unsigned Count = RegUses.getUsedByIndices(Reg).count();
3888 if (Count > BestNum) {
3889 Best = Reg;
3890 BestNum = Count;
3891 }
3892 }
3893 }
3894
3895 DEBUG(dbgs() << "Narrowing the search space by assuming " << *Best
Dan Gohman3f46a3a2010-03-01 17:49:51 +00003896 << " will yield profitable reuse.\n");
Dan Gohman572645c2010-02-12 10:34:29 +00003897 Taken.insert(Best);
3898
3899 // In any use with formulae which references this register, delete formulae
3900 // which don't reference it.
Dan Gohmanb2df4332010-05-18 23:42:37 +00003901 for (size_t LUIdx = 0, NumUses = Uses.size(); LUIdx != NumUses; ++LUIdx) {
3902 LSRUse &LU = Uses[LUIdx];
Dan Gohman572645c2010-02-12 10:34:29 +00003903 if (!LU.Regs.count(Best)) continue;
3904
Dan Gohmanb2df4332010-05-18 23:42:37 +00003905 bool Any = false;
Dan Gohman572645c2010-02-12 10:34:29 +00003906 for (size_t i = 0, e = LU.Formulae.size(); i != e; ++i) {
3907 Formula &F = LU.Formulae[i];
3908 if (!F.referencesReg(Best)) {
3909 DEBUG(dbgs() << " Deleting "; F.print(dbgs()); dbgs() << '\n');
Dan Gohmand69d6282010-05-18 22:39:15 +00003910 LU.DeleteFormula(F);
Dan Gohman572645c2010-02-12 10:34:29 +00003911 --e;
3912 --i;
Dan Gohmanb2df4332010-05-18 23:42:37 +00003913 Any = true;
Dan Gohman59dc6032010-05-07 23:36:59 +00003914 assert(e != 0 && "Use has no formulae left! Is Regs inconsistent?");
Dan Gohman572645c2010-02-12 10:34:29 +00003915 continue;
3916 }
Dan Gohman572645c2010-02-12 10:34:29 +00003917 }
Dan Gohmanb2df4332010-05-18 23:42:37 +00003918
3919 if (Any)
3920 LU.RecomputeRegs(LUIdx, RegUses);
Dan Gohman572645c2010-02-12 10:34:29 +00003921 }
3922
3923 DEBUG(dbgs() << "After pre-selection:\n";
3924 print_uses(dbgs()));
3925 }
3926}
3927
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003928/// NarrowSearchSpaceUsingHeuristics - If there are an extraordinary number of
3929/// formulae to choose from, use some rough heuristics to prune down the number
3930/// of formulae. This keeps the main solver from taking an extraordinary amount
3931/// of time in some worst-case scenarios.
3932void LSRInstance::NarrowSearchSpaceUsingHeuristics() {
3933 NarrowSearchSpaceByDetectingSupersets();
3934 NarrowSearchSpaceByCollapsingUnrolledCode();
Dan Gohman4f7e18d2010-08-29 16:39:22 +00003935 NarrowSearchSpaceByRefilteringUndesirableDedicatedRegisters();
Dan Gohman4aa5c2e2010-08-29 16:09:42 +00003936 NarrowSearchSpaceByPickingWinnerRegs();
3937}
3938
Dan Gohman572645c2010-02-12 10:34:29 +00003939/// SolveRecurse - This is the recursive solver.
3940void LSRInstance::SolveRecurse(SmallVectorImpl<const Formula *> &Solution,
3941 Cost &SolutionCost,
3942 SmallVectorImpl<const Formula *> &Workspace,
3943 const Cost &CurCost,
3944 const SmallPtrSet<const SCEV *, 16> &CurRegs,
3945 DenseSet<const SCEV *> &VisitedRegs) const {
3946 // Some ideas:
3947 // - prune more:
3948 // - use more aggressive filtering
3949 // - sort the formula so that the most profitable solutions are found first
3950 // - sort the uses too
3951 // - search faster:
Dan Gohman3f46a3a2010-03-01 17:49:51 +00003952 // - don't compute a cost, and then compare. compare while computing a cost
Dan Gohman572645c2010-02-12 10:34:29 +00003953 // and bail early.
3954 // - track register sets with SmallBitVector
3955
3956 const LSRUse &LU = Uses[Workspace.size()];
3957
3958 // If this use references any register that's already a part of the
3959 // in-progress solution, consider it a requirement that a formula must
3960 // reference that register in order to be considered. This prunes out
3961 // unprofitable searching.
3962 SmallSetVector<const SCEV *, 4> ReqRegs;
3963 for (SmallPtrSet<const SCEV *, 16>::const_iterator I = CurRegs.begin(),
3964 E = CurRegs.end(); I != E; ++I)
Dan Gohman9214b822010-02-13 02:06:02 +00003965 if (LU.Regs.count(*I))
Dan Gohman572645c2010-02-12 10:34:29 +00003966 ReqRegs.insert(*I);
Dan Gohman572645c2010-02-12 10:34:29 +00003967
3968 SmallPtrSet<const SCEV *, 16> NewRegs;
3969 Cost NewCost;
3970 for (SmallVectorImpl<Formula>::const_iterator I = LU.Formulae.begin(),
3971 E = LU.Formulae.end(); I != E; ++I) {
3972 const Formula &F = *I;
3973
3974 // Ignore formulae which do not use any of the required registers.
Andrew Trickd1944542012-03-22 22:42:51 +00003975 bool SatisfiedReqReg = true;
Dan Gohman572645c2010-02-12 10:34:29 +00003976 for (SmallSetVector<const SCEV *, 4>::const_iterator J = ReqRegs.begin(),
3977 JE = ReqRegs.end(); J != JE; ++J) {
3978 const SCEV *Reg = *J;
3979 if ((!F.ScaledReg || F.ScaledReg != Reg) &&
3980 std::find(F.BaseRegs.begin(), F.BaseRegs.end(), Reg) ==
Andrew Trickd1944542012-03-22 22:42:51 +00003981 F.BaseRegs.end()) {
3982 SatisfiedReqReg = false;
3983 break;
3984 }
Dan Gohman572645c2010-02-12 10:34:29 +00003985 }
Andrew Trickd1944542012-03-22 22:42:51 +00003986 if (!SatisfiedReqReg) {
3987 // If none of the formulae satisfied the required registers, then we could
3988 // clear ReqRegs and try again. Currently, we simply give up in this case.
3989 continue;
3990 }
Dan Gohman572645c2010-02-12 10:34:29 +00003991
3992 // Evaluate the cost of the current formula. If it's already worse than
3993 // the current best, prune the search at that point.
3994 NewCost = CurCost;
3995 NewRegs = CurRegs;
3996 NewCost.RateFormula(F, NewRegs, VisitedRegs, L, LU.Offsets, SE, DT);
3997 if (NewCost < SolutionCost) {
3998 Workspace.push_back(&F);
3999 if (Workspace.size() != Uses.size()) {
4000 SolveRecurse(Solution, SolutionCost, Workspace, NewCost,
4001 NewRegs, VisitedRegs);
4002 if (F.getNumRegs() == 1 && Workspace.size() == 1)
4003 VisitedRegs.insert(F.ScaledReg ? F.ScaledReg : F.BaseRegs[0]);
4004 } else {
4005 DEBUG(dbgs() << "New best at "; NewCost.print(dbgs());
Andrew Trick8bf295b2012-01-09 18:58:16 +00004006 dbgs() << ".\n Regs:";
Dan Gohman572645c2010-02-12 10:34:29 +00004007 for (SmallPtrSet<const SCEV *, 16>::const_iterator
4008 I = NewRegs.begin(), E = NewRegs.end(); I != E; ++I)
4009 dbgs() << ' ' << **I;
4010 dbgs() << '\n');
4011
4012 SolutionCost = NewCost;
4013 Solution = Workspace;
4014 }
4015 Workspace.pop_back();
4016 }
Dan Gohman9214b822010-02-13 02:06:02 +00004017 }
Dan Gohman572645c2010-02-12 10:34:29 +00004018}
4019
Dan Gohman76c315a2010-05-20 20:52:00 +00004020/// Solve - Choose one formula from each use. Return the results in the given
4021/// Solution vector.
Dan Gohman572645c2010-02-12 10:34:29 +00004022void LSRInstance::Solve(SmallVectorImpl<const Formula *> &Solution) const {
4023 SmallVector<const Formula *, 8> Workspace;
4024 Cost SolutionCost;
4025 SolutionCost.Loose();
4026 Cost CurCost;
4027 SmallPtrSet<const SCEV *, 16> CurRegs;
4028 DenseSet<const SCEV *> VisitedRegs;
4029 Workspace.reserve(Uses.size());
4030
Dan Gohmanf7ff37d2010-05-20 20:00:41 +00004031 // SolveRecurse does all the work.
Dan Gohman572645c2010-02-12 10:34:29 +00004032 SolveRecurse(Solution, SolutionCost, Workspace, CurCost,
4033 CurRegs, VisitedRegs);
Andrew Trick80ef1b22011-09-27 00:44:14 +00004034 if (Solution.empty()) {
4035 DEBUG(dbgs() << "\nNo Satisfactory Solution\n");
4036 return;
4037 }
Dan Gohman572645c2010-02-12 10:34:29 +00004038
4039 // Ok, we've now made all our decisions.
4040 DEBUG(dbgs() << "\n"
4041 "The chosen solution requires "; SolutionCost.print(dbgs());
4042 dbgs() << ":\n";
4043 for (size_t i = 0, e = Uses.size(); i != e; ++i) {
4044 dbgs() << " ";
4045 Uses[i].print(dbgs());
4046 dbgs() << "\n"
4047 " ";
4048 Solution[i]->print(dbgs());
4049 dbgs() << '\n';
4050 });
Dan Gohmana5528782010-05-20 20:59:23 +00004051
4052 assert(Solution.size() == Uses.size() && "Malformed solution!");
Dan Gohman572645c2010-02-12 10:34:29 +00004053}
4054
Dan Gohmane5f76872010-04-09 22:07:05 +00004055/// HoistInsertPosition - Helper for AdjustInsertPositionForExpand. Climb up
4056/// the dominator tree far as we can go while still being dominated by the
4057/// input positions. This helps canonicalize the insert position, which
4058/// encourages sharing.
4059BasicBlock::iterator
4060LSRInstance::HoistInsertPosition(BasicBlock::iterator IP,
4061 const SmallVectorImpl<Instruction *> &Inputs)
4062 const {
4063 for (;;) {
4064 const Loop *IPLoop = LI.getLoopFor(IP->getParent());
4065 unsigned IPLoopDepth = IPLoop ? IPLoop->getLoopDepth() : 0;
4066
4067 BasicBlock *IDom;
Dan Gohmand974a0e2010-05-20 20:00:25 +00004068 for (DomTreeNode *Rung = DT.getNode(IP->getParent()); ; ) {
Dan Gohman0fe46d92010-05-20 22:46:54 +00004069 if (!Rung) return IP;
Dan Gohmand974a0e2010-05-20 20:00:25 +00004070 Rung = Rung->getIDom();
4071 if (!Rung) return IP;
4072 IDom = Rung->getBlock();
Dan Gohmane5f76872010-04-09 22:07:05 +00004073
4074 // Don't climb into a loop though.
4075 const Loop *IDomLoop = LI.getLoopFor(IDom);
4076 unsigned IDomDepth = IDomLoop ? IDomLoop->getLoopDepth() : 0;
4077 if (IDomDepth <= IPLoopDepth &&
4078 (IDomDepth != IPLoopDepth || IDomLoop == IPLoop))
4079 break;
4080 }
4081
4082 bool AllDominate = true;
4083 Instruction *BetterPos = 0;
4084 Instruction *Tentative = IDom->getTerminator();
4085 for (SmallVectorImpl<Instruction *>::const_iterator I = Inputs.begin(),
4086 E = Inputs.end(); I != E; ++I) {
4087 Instruction *Inst = *I;
4088 if (Inst == Tentative || !DT.dominates(Inst, Tentative)) {
4089 AllDominate = false;
4090 break;
4091 }
4092 // Attempt to find an insert position in the middle of the block,
4093 // instead of at the end, so that it can be used for other expansions.
4094 if (IDom == Inst->getParent() &&
4095 (!BetterPos || DT.dominates(BetterPos, Inst)))
Douglas Gregor7d9663c2010-05-11 06:17:44 +00004096 BetterPos = llvm::next(BasicBlock::iterator(Inst));
Dan Gohmane5f76872010-04-09 22:07:05 +00004097 }
4098 if (!AllDominate)
4099 break;
4100 if (BetterPos)
4101 IP = BetterPos;
4102 else
4103 IP = Tentative;
4104 }
4105
4106 return IP;
4107}
4108
4109/// AdjustInsertPositionForExpand - Determine an input position which will be
Dan Gohmand96eae82010-04-09 02:00:38 +00004110/// dominated by the operands and which will dominate the result.
4111BasicBlock::iterator
Andrew Trickb5c26ef2012-01-20 07:41:13 +00004112LSRInstance::AdjustInsertPositionForExpand(BasicBlock::iterator LowestIP,
Dan Gohmane5f76872010-04-09 22:07:05 +00004113 const LSRFixup &LF,
Andrew Trickb5c26ef2012-01-20 07:41:13 +00004114 const LSRUse &LU,
4115 SCEVExpander &Rewriter) const {
Dan Gohmand96eae82010-04-09 02:00:38 +00004116 // Collect some instructions which must be dominated by the
Dan Gohman448db1c2010-04-07 22:27:08 +00004117 // expanding replacement. These must be dominated by any operands that
Dan Gohman572645c2010-02-12 10:34:29 +00004118 // will be required in the expansion.
4119 SmallVector<Instruction *, 4> Inputs;
4120 if (Instruction *I = dyn_cast<Instruction>(LF.OperandValToReplace))
4121 Inputs.push_back(I);
4122 if (LU.Kind == LSRUse::ICmpZero)
4123 if (Instruction *I =
4124 dyn_cast<Instruction>(cast<ICmpInst>(LF.UserInst)->getOperand(1)))
4125 Inputs.push_back(I);
Dan Gohman448db1c2010-04-07 22:27:08 +00004126 if (LF.PostIncLoops.count(L)) {
4127 if (LF.isUseFullyOutsideLoop(L))
Dan Gohman069d6f32010-03-02 01:59:21 +00004128 Inputs.push_back(L->getLoopLatch()->getTerminator());
4129 else
4130 Inputs.push_back(IVIncInsertPos);
4131 }
Dan Gohman701a4ae2010-04-08 05:57:57 +00004132 // The expansion must also be dominated by the increment positions of any
4133 // loops it for which it is using post-inc mode.
4134 for (PostIncLoopSet::const_iterator I = LF.PostIncLoops.begin(),
4135 E = LF.PostIncLoops.end(); I != E; ++I) {
4136 const Loop *PIL = *I;
4137 if (PIL == L) continue;
4138
Dan Gohmane5f76872010-04-09 22:07:05 +00004139 // Be dominated by the loop exit.
Dan Gohman701a4ae2010-04-08 05:57:57 +00004140 SmallVector<BasicBlock *, 4> ExitingBlocks;
4141 PIL->getExitingBlocks(ExitingBlocks);
4142 if (!ExitingBlocks.empty()) {
4143 BasicBlock *BB = ExitingBlocks[0];
4144 for (unsigned i = 1, e = ExitingBlocks.size(); i != e; ++i)
4145 BB = DT.findNearestCommonDominator(BB, ExitingBlocks[i]);
4146 Inputs.push_back(BB->getTerminator());
4147 }
4148 }
Dan Gohman572645c2010-02-12 10:34:29 +00004149
Andrew Trickb5c26ef2012-01-20 07:41:13 +00004150 assert(!isa<PHINode>(LowestIP) && !isa<LandingPadInst>(LowestIP)
4151 && !isa<DbgInfoIntrinsic>(LowestIP) &&
4152 "Insertion point must be a normal instruction");
4153
Dan Gohman572645c2010-02-12 10:34:29 +00004154 // Then, climb up the immediate dominator tree as far as we can go while
4155 // still being dominated by the input positions.
Andrew Trickb5c26ef2012-01-20 07:41:13 +00004156 BasicBlock::iterator IP = HoistInsertPosition(LowestIP, Inputs);
Dan Gohmand96eae82010-04-09 02:00:38 +00004157
4158 // Don't insert instructions before PHI nodes.
Dan Gohman572645c2010-02-12 10:34:29 +00004159 while (isa<PHINode>(IP)) ++IP;
Dan Gohmand96eae82010-04-09 02:00:38 +00004160
Bill Wendlinga4c86ab2011-08-24 21:06:46 +00004161 // Ignore landingpad instructions.
4162 while (isa<LandingPadInst>(IP)) ++IP;
4163
Dan Gohmand96eae82010-04-09 02:00:38 +00004164 // Ignore debug intrinsics.
Dan Gohman449f31c2010-03-26 00:33:27 +00004165 while (isa<DbgInfoIntrinsic>(IP)) ++IP;
Dan Gohman572645c2010-02-12 10:34:29 +00004166
Andrew Trickb5c26ef2012-01-20 07:41:13 +00004167 // Set IP below instructions recently inserted by SCEVExpander. This keeps the
4168 // IP consistent across expansions and allows the previously inserted
4169 // instructions to be reused by subsequent expansion.
4170 while (Rewriter.isInsertedInstruction(IP) && IP != LowestIP) ++IP;
4171
Dan Gohmand96eae82010-04-09 02:00:38 +00004172 return IP;
4173}
4174
Dan Gohman76c315a2010-05-20 20:52:00 +00004175/// Expand - Emit instructions for the leading candidate expression for this
4176/// LSRUse (this is called "expanding").
Dan Gohmand96eae82010-04-09 02:00:38 +00004177Value *LSRInstance::Expand(const LSRFixup &LF,
4178 const Formula &F,
4179 BasicBlock::iterator IP,
4180 SCEVExpander &Rewriter,
4181 SmallVectorImpl<WeakVH> &DeadInsts) const {
4182 const LSRUse &LU = Uses[LF.LUIdx];
4183
4184 // Determine an input position which will be dominated by the operands and
4185 // which will dominate the result.
Andrew Trickb5c26ef2012-01-20 07:41:13 +00004186 IP = AdjustInsertPositionForExpand(IP, LF, LU, Rewriter);
Dan Gohmand96eae82010-04-09 02:00:38 +00004187
Dan Gohman572645c2010-02-12 10:34:29 +00004188 // Inform the Rewriter if we have a post-increment use, so that it can
4189 // perform an advantageous expansion.
Dan Gohman448db1c2010-04-07 22:27:08 +00004190 Rewriter.setPostInc(LF.PostIncLoops);
Dan Gohman572645c2010-02-12 10:34:29 +00004191
4192 // This is the type that the user actually needs.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00004193 Type *OpTy = LF.OperandValToReplace->getType();
Dan Gohman572645c2010-02-12 10:34:29 +00004194 // This will be the type that we'll initially expand to.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00004195 Type *Ty = F.getType();
Dan Gohman572645c2010-02-12 10:34:29 +00004196 if (!Ty)
4197 // No type known; just expand directly to the ultimate type.
4198 Ty = OpTy;
4199 else if (SE.getEffectiveSCEVType(Ty) == SE.getEffectiveSCEVType(OpTy))
4200 // Expand directly to the ultimate type if it's the right size.
4201 Ty = OpTy;
4202 // This is the type to do integer arithmetic in.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00004203 Type *IntTy = SE.getEffectiveSCEVType(Ty);
Dan Gohman572645c2010-02-12 10:34:29 +00004204
4205 // Build up a list of operands to add together to form the full base.
4206 SmallVector<const SCEV *, 8> Ops;
4207
4208 // Expand the BaseRegs portion.
4209 for (SmallVectorImpl<const SCEV *>::const_iterator I = F.BaseRegs.begin(),
4210 E = F.BaseRegs.end(); I != E; ++I) {
4211 const SCEV *Reg = *I;
4212 assert(!Reg->isZero() && "Zero allocated in a base register!");
4213
Dan Gohman448db1c2010-04-07 22:27:08 +00004214 // If we're expanding for a post-inc user, make the post-inc adjustment.
4215 PostIncLoopSet &Loops = const_cast<PostIncLoopSet &>(LF.PostIncLoops);
4216 Reg = TransformForPostIncUse(Denormalize, Reg,
4217 LF.UserInst, LF.OperandValToReplace,
4218 Loops, SE, DT);
Dan Gohman572645c2010-02-12 10:34:29 +00004219
4220 Ops.push_back(SE.getUnknown(Rewriter.expandCodeFor(Reg, 0, IP)));
4221 }
4222
Dan Gohman087bd1e2010-03-03 05:29:13 +00004223 // Flush the operand list to suppress SCEVExpander hoisting.
4224 if (!Ops.empty()) {
4225 Value *FullV = Rewriter.expandCodeFor(SE.getAddExpr(Ops), Ty, IP);
4226 Ops.clear();
4227 Ops.push_back(SE.getUnknown(FullV));
4228 }
4229
Dan Gohman572645c2010-02-12 10:34:29 +00004230 // Expand the ScaledReg portion.
4231 Value *ICmpScaledV = 0;
4232 if (F.AM.Scale != 0) {
4233 const SCEV *ScaledS = F.ScaledReg;
4234
Dan Gohman448db1c2010-04-07 22:27:08 +00004235 // If we're expanding for a post-inc user, make the post-inc adjustment.
4236 PostIncLoopSet &Loops = const_cast<PostIncLoopSet &>(LF.PostIncLoops);
4237 ScaledS = TransformForPostIncUse(Denormalize, ScaledS,
4238 LF.UserInst, LF.OperandValToReplace,
4239 Loops, SE, DT);
Dan Gohman572645c2010-02-12 10:34:29 +00004240
4241 if (LU.Kind == LSRUse::ICmpZero) {
4242 // An interesting way of "folding" with an icmp is to use a negated
4243 // scale, which we'll implement by inserting it into the other operand
4244 // of the icmp.
4245 assert(F.AM.Scale == -1 &&
4246 "The only scale supported by ICmpZero uses is -1!");
4247 ICmpScaledV = Rewriter.expandCodeFor(ScaledS, 0, IP);
4248 } else {
4249 // Otherwise just expand the scaled register and an explicit scale,
4250 // which is expected to be matched as part of the address.
4251 ScaledS = SE.getUnknown(Rewriter.expandCodeFor(ScaledS, 0, IP));
4252 ScaledS = SE.getMulExpr(ScaledS,
Dan Gohmandeff6212010-05-03 22:09:21 +00004253 SE.getConstant(ScaledS->getType(), F.AM.Scale));
Dan Gohman572645c2010-02-12 10:34:29 +00004254 Ops.push_back(ScaledS);
Dan Gohman087bd1e2010-03-03 05:29:13 +00004255
4256 // Flush the operand list to suppress SCEVExpander hoisting.
4257 Value *FullV = Rewriter.expandCodeFor(SE.getAddExpr(Ops), Ty, IP);
4258 Ops.clear();
4259 Ops.push_back(SE.getUnknown(FullV));
Dan Gohman572645c2010-02-12 10:34:29 +00004260 }
4261 }
4262
Dan Gohman087bd1e2010-03-03 05:29:13 +00004263 // Expand the GV portion.
4264 if (F.AM.BaseGV) {
4265 Ops.push_back(SE.getUnknown(F.AM.BaseGV));
4266
4267 // Flush the operand list to suppress SCEVExpander hoisting.
4268 Value *FullV = Rewriter.expandCodeFor(SE.getAddExpr(Ops), Ty, IP);
4269 Ops.clear();
4270 Ops.push_back(SE.getUnknown(FullV));
4271 }
4272
4273 // Expand the immediate portion.
Dan Gohman572645c2010-02-12 10:34:29 +00004274 int64_t Offset = (uint64_t)F.AM.BaseOffs + LF.Offset;
4275 if (Offset != 0) {
4276 if (LU.Kind == LSRUse::ICmpZero) {
4277 // The other interesting way of "folding" with an ICmpZero is to use a
4278 // negated immediate.
4279 if (!ICmpScaledV)
Eli Friedmandae36ba2011-10-13 23:48:33 +00004280 ICmpScaledV = ConstantInt::get(IntTy, -(uint64_t)Offset);
Dan Gohman572645c2010-02-12 10:34:29 +00004281 else {
4282 Ops.push_back(SE.getUnknown(ICmpScaledV));
4283 ICmpScaledV = ConstantInt::get(IntTy, Offset);
4284 }
4285 } else {
4286 // Just add the immediate values. These again are expected to be matched
4287 // as part of the address.
Dan Gohman087bd1e2010-03-03 05:29:13 +00004288 Ops.push_back(SE.getUnknown(ConstantInt::getSigned(IntTy, Offset)));
Dan Gohman572645c2010-02-12 10:34:29 +00004289 }
4290 }
4291
Dan Gohmancca82142011-05-03 00:46:49 +00004292 // Expand the unfolded offset portion.
4293 int64_t UnfoldedOffset = F.UnfoldedOffset;
4294 if (UnfoldedOffset != 0) {
4295 // Just add the immediate values.
4296 Ops.push_back(SE.getUnknown(ConstantInt::getSigned(IntTy,
4297 UnfoldedOffset)));
4298 }
4299
Dan Gohman572645c2010-02-12 10:34:29 +00004300 // Emit instructions summing all the operands.
4301 const SCEV *FullS = Ops.empty() ?
Dan Gohmandeff6212010-05-03 22:09:21 +00004302 SE.getConstant(IntTy, 0) :
Dan Gohman572645c2010-02-12 10:34:29 +00004303 SE.getAddExpr(Ops);
4304 Value *FullV = Rewriter.expandCodeFor(FullS, Ty, IP);
4305
4306 // We're done expanding now, so reset the rewriter.
Dan Gohman448db1c2010-04-07 22:27:08 +00004307 Rewriter.clearPostInc();
Dan Gohman572645c2010-02-12 10:34:29 +00004308
4309 // An ICmpZero Formula represents an ICmp which we're handling as a
4310 // comparison against zero. Now that we've expanded an expression for that
4311 // form, update the ICmp's other operand.
4312 if (LU.Kind == LSRUse::ICmpZero) {
4313 ICmpInst *CI = cast<ICmpInst>(LF.UserInst);
4314 DeadInsts.push_back(CI->getOperand(1));
4315 assert(!F.AM.BaseGV && "ICmp does not support folding a global value and "
4316 "a scale at the same time!");
4317 if (F.AM.Scale == -1) {
4318 if (ICmpScaledV->getType() != OpTy) {
4319 Instruction *Cast =
4320 CastInst::Create(CastInst::getCastOpcode(ICmpScaledV, false,
4321 OpTy, false),
4322 ICmpScaledV, OpTy, "tmp", CI);
4323 ICmpScaledV = Cast;
4324 }
4325 CI->setOperand(1, ICmpScaledV);
4326 } else {
4327 assert(F.AM.Scale == 0 &&
4328 "ICmp does not support folding a global value and "
4329 "a scale at the same time!");
4330 Constant *C = ConstantInt::getSigned(SE.getEffectiveSCEVType(OpTy),
4331 -(uint64_t)Offset);
4332 if (C->getType() != OpTy)
4333 C = ConstantExpr::getCast(CastInst::getCastOpcode(C, false,
4334 OpTy, false),
4335 C, OpTy);
4336
4337 CI->setOperand(1, C);
4338 }
4339 }
4340
4341 return FullV;
4342}
4343
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004344/// RewriteForPHI - Helper for Rewrite. PHI nodes are special because the use
4345/// of their operands effectively happens in their predecessor blocks, so the
4346/// expression may need to be expanded in multiple places.
4347void LSRInstance::RewriteForPHI(PHINode *PN,
4348 const LSRFixup &LF,
4349 const Formula &F,
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004350 SCEVExpander &Rewriter,
4351 SmallVectorImpl<WeakVH> &DeadInsts,
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004352 Pass *P) const {
4353 DenseMap<BasicBlock *, Value *> Inserted;
4354 for (unsigned i = 0, e = PN->getNumIncomingValues(); i != e; ++i)
4355 if (PN->getIncomingValue(i) == LF.OperandValToReplace) {
4356 BasicBlock *BB = PN->getIncomingBlock(i);
4357
4358 // If this is a critical edge, split the edge so that we do not insert
4359 // the code on all predecessor/successor paths. We do this unless this
4360 // is the canonical backedge for this loop, which complicates post-inc
4361 // users.
4362 if (e != 1 && BB->getTerminator()->getNumSuccessors() > 1 &&
Dan Gohman3ef98382011-02-08 00:55:13 +00004363 !isa<IndirectBrInst>(BB->getTerminator())) {
Bill Wendling89d44112011-08-25 01:08:34 +00004364 BasicBlock *Parent = PN->getParent();
4365 Loop *PNLoop = LI.getLoopFor(Parent);
4366 if (!PNLoop || Parent != PNLoop->getHeader()) {
Dan Gohman3ef98382011-02-08 00:55:13 +00004367 // Split the critical edge.
Bill Wendling8b6af8a2011-08-25 05:55:40 +00004368 BasicBlock *NewBB = 0;
4369 if (!Parent->isLandingPad()) {
Andrew Trickf143b792011-10-04 03:50:44 +00004370 NewBB = SplitCriticalEdge(BB, Parent, P,
4371 /*MergeIdenticalEdges=*/true,
4372 /*DontDeleteUselessPhis=*/true);
Bill Wendling8b6af8a2011-08-25 05:55:40 +00004373 } else {
4374 SmallVector<BasicBlock*, 2> NewBBs;
4375 SplitLandingPadPredecessors(Parent, BB, "", "", P, NewBBs);
4376 NewBB = NewBBs[0];
4377 }
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004378
Dan Gohman3ef98382011-02-08 00:55:13 +00004379 // If PN is outside of the loop and BB is in the loop, we want to
4380 // move the block to be immediately before the PHI block, not
4381 // immediately after BB.
4382 if (L->contains(BB) && !L->contains(PN))
4383 NewBB->moveBefore(PN->getParent());
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004384
Dan Gohman3ef98382011-02-08 00:55:13 +00004385 // Splitting the edge can reduce the number of PHI entries we have.
4386 e = PN->getNumIncomingValues();
4387 BB = NewBB;
4388 i = PN->getBasicBlockIndex(BB);
4389 }
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004390 }
4391
4392 std::pair<DenseMap<BasicBlock *, Value *>::iterator, bool> Pair =
4393 Inserted.insert(std::make_pair(BB, static_cast<Value *>(0)));
4394 if (!Pair.second)
4395 PN->setIncomingValue(i, Pair.first->second);
4396 else {
Dan Gohman454d26d2010-02-22 04:11:59 +00004397 Value *FullV = Expand(LF, F, BB->getTerminator(), Rewriter, DeadInsts);
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004398
4399 // If this is reuse-by-noop-cast, insert the noop cast.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00004400 Type *OpTy = LF.OperandValToReplace->getType();
Dan Gohman3a02cbc2010-02-16 20:25:07 +00004401 if (FullV->getType() != OpTy)
4402 FullV =
4403 CastInst::Create(CastInst::getCastOpcode(FullV, false,
4404 OpTy, false),
4405 FullV, LF.OperandValToReplace->getType(),
4406 "tmp", BB->getTerminator());
4407
4408 PN->setIncomingValue(i, FullV);
4409 Pair.first->second = FullV;
4410 }
4411 }
4412}
4413
Dan Gohman572645c2010-02-12 10:34:29 +00004414/// Rewrite - Emit instructions for the leading candidate expression for this
4415/// LSRUse (this is called "expanding"), and update the UserInst to reference
4416/// the newly expanded value.
4417void LSRInstance::Rewrite(const LSRFixup &LF,
4418 const Formula &F,
Dan Gohman572645c2010-02-12 10:34:29 +00004419 SCEVExpander &Rewriter,
4420 SmallVectorImpl<WeakVH> &DeadInsts,
Dan Gohman572645c2010-02-12 10:34:29 +00004421 Pass *P) const {
Dan Gohman572645c2010-02-12 10:34:29 +00004422 // First, find an insertion point that dominates UserInst. For PHI nodes,
4423 // find the nearest block which dominates all the relevant uses.
4424 if (PHINode *PN = dyn_cast<PHINode>(LF.UserInst)) {
Dan Gohman454d26d2010-02-22 04:11:59 +00004425 RewriteForPHI(PN, LF, F, Rewriter, DeadInsts, P);
Dan Gohman572645c2010-02-12 10:34:29 +00004426 } else {
Dan Gohman454d26d2010-02-22 04:11:59 +00004427 Value *FullV = Expand(LF, F, LF.UserInst, Rewriter, DeadInsts);
Dan Gohman572645c2010-02-12 10:34:29 +00004428
4429 // If this is reuse-by-noop-cast, insert the noop cast.
Chris Lattnerdb125cf2011-07-18 04:54:35 +00004430 Type *OpTy = LF.OperandValToReplace->getType();
Dan Gohman572645c2010-02-12 10:34:29 +00004431 if (FullV->getType() != OpTy) {
4432 Instruction *Cast =
4433 CastInst::Create(CastInst::getCastOpcode(FullV, false, OpTy, false),
4434 FullV, OpTy, "tmp", LF.UserInst);
4435 FullV = Cast;
4436 }
4437
4438 // Update the user. ICmpZero is handled specially here (for now) because
4439 // Expand may have updated one of the operands of the icmp already, and
4440 // its new value may happen to be equal to LF.OperandValToReplace, in
4441 // which case doing replaceUsesOfWith leads to replacing both operands
4442 // with the same value. TODO: Reorganize this.
4443 if (Uses[LF.LUIdx].Kind == LSRUse::ICmpZero)
4444 LF.UserInst->setOperand(0, FullV);
4445 else
4446 LF.UserInst->replaceUsesOfWith(LF.OperandValToReplace, FullV);
4447 }
4448
4449 DeadInsts.push_back(LF.OperandValToReplace);
4450}
4451
Dan Gohman76c315a2010-05-20 20:52:00 +00004452/// ImplementSolution - Rewrite all the fixup locations with new values,
4453/// following the chosen solution.
Dan Gohman572645c2010-02-12 10:34:29 +00004454void
4455LSRInstance::ImplementSolution(const SmallVectorImpl<const Formula *> &Solution,
4456 Pass *P) {
4457 // Keep track of instructions we may have made dead, so that
4458 // we can remove them after we are done working.
4459 SmallVector<WeakVH, 16> DeadInsts;
4460
Andrew Trick5e7645b2011-06-28 05:07:32 +00004461 SCEVExpander Rewriter(SE, "lsr");
Andrew Trick8bf295b2012-01-09 18:58:16 +00004462#ifndef NDEBUG
4463 Rewriter.setDebugType(DEBUG_TYPE);
4464#endif
Dan Gohman572645c2010-02-12 10:34:29 +00004465 Rewriter.disableCanonicalMode();
Andrew Trickc5701912011-10-07 23:46:21 +00004466 Rewriter.enableLSRMode();
Dan Gohman572645c2010-02-12 10:34:29 +00004467 Rewriter.setIVIncInsertPos(L, IVIncInsertPos);
4468
Andrew Trick64925c52012-01-10 01:45:08 +00004469 // Mark phi nodes that terminate chains so the expander tries to reuse them.
4470 for (SmallVectorImpl<IVChain>::const_iterator ChainI = IVChainVec.begin(),
4471 ChainE = IVChainVec.end(); ChainI != ChainE; ++ChainI) {
4472 if (PHINode *PN = dyn_cast<PHINode>(ChainI->back().UserInst))
4473 Rewriter.setChainedPhi(PN);
4474 }
4475
Dan Gohman572645c2010-02-12 10:34:29 +00004476 // Expand the new value definitions and update the users.
Dan Gohman402d4352010-05-20 20:33:18 +00004477 for (SmallVectorImpl<LSRFixup>::const_iterator I = Fixups.begin(),
4478 E = Fixups.end(); I != E; ++I) {
4479 const LSRFixup &Fixup = *I;
Dan Gohman572645c2010-02-12 10:34:29 +00004480
Dan Gohman402d4352010-05-20 20:33:18 +00004481 Rewrite(Fixup, *Solution[Fixup.LUIdx], Rewriter, DeadInsts, P);
Dan Gohman572645c2010-02-12 10:34:29 +00004482
4483 Changed = true;
4484 }
4485
Andrew Trick22d20c22012-01-09 21:18:52 +00004486 for (SmallVectorImpl<IVChain>::const_iterator ChainI = IVChainVec.begin(),
4487 ChainE = IVChainVec.end(); ChainI != ChainE; ++ChainI) {
4488 GenerateIVChain(*ChainI, Rewriter, DeadInsts);
4489 Changed = true;
4490 }
Dan Gohman572645c2010-02-12 10:34:29 +00004491 // Clean up after ourselves. This must be done before deleting any
4492 // instructions.
4493 Rewriter.clear();
4494
4495 Changed |= DeleteTriviallyDeadInstructions(DeadInsts);
4496}
4497
4498LSRInstance::LSRInstance(const TargetLowering *tli, Loop *l, Pass *P)
4499 : IU(P->getAnalysis<IVUsers>()),
4500 SE(P->getAnalysis<ScalarEvolution>()),
4501 DT(P->getAnalysis<DominatorTree>()),
Dan Gohmane5f76872010-04-09 22:07:05 +00004502 LI(P->getAnalysis<LoopInfo>()),
Dan Gohman572645c2010-02-12 10:34:29 +00004503 TLI(tli), L(l), Changed(false), IVIncInsertPos(0) {
Devang Patel0f54dcb2007-03-06 21:14:09 +00004504
Dan Gohman03e896b2009-11-05 21:11:53 +00004505 // If LoopSimplify form is not available, stay out of trouble.
Andrew Trickacdb4aa2012-01-07 03:16:50 +00004506 if (!L->isLoopSimplifyForm())
4507 return;
Dan Gohman03e896b2009-11-05 21:11:53 +00004508
Andrew Trick75ae2032012-03-16 03:16:56 +00004509 // If there's no interesting work to be done, bail early.
4510 if (IU.empty()) return;
4511
4512#ifndef NDEBUG
Andrew Trick0f080912012-01-17 06:45:52 +00004513 // All dominating loops must have preheaders, or SCEVExpander may not be able
4514 // to materialize an AddRecExpr whose Start is an outer AddRecExpr.
4515 //
Andrew Trick75ae2032012-03-16 03:16:56 +00004516 // IVUsers analysis should only create users that are dominated by simple loop
4517 // headers. Since this loop should dominate all of its users, its user list
4518 // should be empty if this loop itself is not within a simple loop nest.
Andrew Trick0f080912012-01-17 06:45:52 +00004519 for (DomTreeNode *Rung = DT.getNode(L->getLoopPreheader());
4520 Rung; Rung = Rung->getIDom()) {
4521 BasicBlock *BB = Rung->getBlock();
4522 const Loop *DomLoop = LI.getLoopFor(BB);
4523 if (DomLoop && DomLoop->getHeader() == BB) {
Andrew Trick75ae2032012-03-16 03:16:56 +00004524 assert(DomLoop->getLoopPreheader() && "LSR needs a simplified loop nest");
Andrew Trick0f080912012-01-17 06:45:52 +00004525 }
Andrew Trickacdb4aa2012-01-07 03:16:50 +00004526 }
Andrew Trick75ae2032012-03-16 03:16:56 +00004527#endif // DEBUG
Dan Gohman80b0f8c2009-03-09 20:34:59 +00004528
Dan Gohman572645c2010-02-12 10:34:29 +00004529 DEBUG(dbgs() << "\nLSR on loop ";
4530 WriteAsOperand(dbgs(), L->getHeader(), /*PrintType=*/false);
4531 dbgs() << ":\n");
Dan Gohmanf7912df2009-03-09 20:46:50 +00004532
Dan Gohman402d4352010-05-20 20:33:18 +00004533 // First, perform some low-level loop optimizations.
Dan Gohman572645c2010-02-12 10:34:29 +00004534 OptimizeShadowIV();
Dan Gohmanc6519f92010-05-20 20:05:31 +00004535 OptimizeLoopTermCond();
Evan Cheng5792f512009-05-11 22:33:01 +00004536
Andrew Trick37eb38d2011-07-21 00:40:04 +00004537 // If loop preparation eliminates all interesting IV users, bail.
4538 if (IU.empty()) return;
4539
Andrew Trick5219f862011-09-29 01:53:08 +00004540 // Skip nested loops until we can model them better with formulae.
Andrew Trickbd618f12012-03-22 22:42:45 +00004541 if (!L->empty()) {
Andrew Trick0c01bc32011-09-29 01:33:38 +00004542 DEBUG(dbgs() << "LSR skipping outer loop " << *L << "\n");
Andrew Trick5219f862011-09-29 01:53:08 +00004543 return;
Andrew Trick0c01bc32011-09-29 01:33:38 +00004544 }
4545
Dan Gohman402d4352010-05-20 20:33:18 +00004546 // Start collecting data and preparing for the solver.
Andrew Trick6c7d0ae2012-01-09 19:50:34 +00004547 CollectChains();
Dan Gohman572645c2010-02-12 10:34:29 +00004548 CollectInterestingTypesAndFactors();
4549 CollectFixupsAndInitialFormulae();
4550 CollectLoopInvariantFixupsAndFormulae();
Chris Lattner010de252005-08-08 05:28:22 +00004551
Andrew Trick22d20c22012-01-09 21:18:52 +00004552 assert(!Uses.empty() && "IVUsers reported at least one use");
Dan Gohman572645c2010-02-12 10:34:29 +00004553 DEBUG(dbgs() << "LSR found " << Uses.size() << " uses:\n";
4554 print_uses(dbgs()));
Misha Brukmanfd939082005-04-21 23:48:37 +00004555
Dan Gohman572645c2010-02-12 10:34:29 +00004556 // Now use the reuse data to generate a bunch of interesting ways
4557 // to formulate the values needed for the uses.
4558 GenerateAllReuseFormulae();
Evan Chengd1d6b5c2006-03-16 21:53:05 +00004559
Dan Gohman572645c2010-02-12 10:34:29 +00004560 FilterOutUndesirableDedicatedRegisters();
4561 NarrowSearchSpaceUsingHeuristics();
Dan Gohman6bec5bb2009-12-18 00:06:20 +00004562
Dan Gohman572645c2010-02-12 10:34:29 +00004563 SmallVector<const Formula *, 8> Solution;
4564 Solve(Solution);
Dan Gohman6bec5bb2009-12-18 00:06:20 +00004565
Dan Gohman572645c2010-02-12 10:34:29 +00004566 // Release memory that is no longer needed.
4567 Factors.clear();
4568 Types.clear();
4569 RegUses.clear();
4570
Andrew Trick80ef1b22011-09-27 00:44:14 +00004571 if (Solution.empty())
4572 return;
4573
Dan Gohman572645c2010-02-12 10:34:29 +00004574#ifndef NDEBUG
4575 // Formulae should be legal.
4576 for (SmallVectorImpl<LSRUse>::const_iterator I = Uses.begin(),
4577 E = Uses.end(); I != E; ++I) {
4578 const LSRUse &LU = *I;
4579 for (SmallVectorImpl<Formula>::const_iterator J = LU.Formulae.begin(),
4580 JE = LU.Formulae.end(); J != JE; ++J)
4581 assert(isLegalUse(J->AM, LU.MinOffset, LU.MaxOffset,
4582 LU.Kind, LU.AccessTy, TLI) &&
4583 "Illegal formula generated!");
4584 };
4585#endif
4586
4587 // Now that we've decided what we want, make it so.
4588 ImplementSolution(Solution, P);
4589}
4590
4591void LSRInstance::print_factors_and_types(raw_ostream &OS) const {
4592 if (Factors.empty() && Types.empty()) return;
4593
4594 OS << "LSR has identified the following interesting factors and types: ";
4595 bool First = true;
4596
4597 for (SmallSetVector<int64_t, 8>::const_iterator
4598 I = Factors.begin(), E = Factors.end(); I != E; ++I) {
4599 if (!First) OS << ", ";
4600 First = false;
4601 OS << '*' << *I;
Evan Cheng81ebdcf2009-11-10 21:14:05 +00004602 }
Dale Johannesenc1acc3f2009-05-11 17:15:42 +00004603
Chris Lattnerdb125cf2011-07-18 04:54:35 +00004604 for (SmallSetVector<Type *, 4>::const_iterator
Dan Gohman572645c2010-02-12 10:34:29 +00004605 I = Types.begin(), E = Types.end(); I != E; ++I) {
4606 if (!First) OS << ", ";
4607 First = false;
4608 OS << '(' << **I << ')';
4609 }
4610 OS << '\n';
4611}
4612
4613void LSRInstance::print_fixups(raw_ostream &OS) const {
4614 OS << "LSR is examining the following fixup sites:\n";
4615 for (SmallVectorImpl<LSRFixup>::const_iterator I = Fixups.begin(),
4616 E = Fixups.end(); I != E; ++I) {
Dan Gohman572645c2010-02-12 10:34:29 +00004617 dbgs() << " ";
Dan Gohman9f383eb2010-05-20 22:25:20 +00004618 I->print(OS);
Dan Gohman572645c2010-02-12 10:34:29 +00004619 OS << '\n';
4620 }
4621}
4622
4623void LSRInstance::print_uses(raw_ostream &OS) const {
4624 OS << "LSR is examining the following uses:\n";
4625 for (SmallVectorImpl<LSRUse>::const_iterator I = Uses.begin(),
4626 E = Uses.end(); I != E; ++I) {
4627 const LSRUse &LU = *I;
4628 dbgs() << " ";
4629 LU.print(OS);
4630 OS << '\n';
4631 for (SmallVectorImpl<Formula>::const_iterator J = LU.Formulae.begin(),
4632 JE = LU.Formulae.end(); J != JE; ++J) {
4633 OS << " ";
4634 J->print(OS);
4635 OS << '\n';
4636 }
4637 }
4638}
4639
4640void LSRInstance::print(raw_ostream &OS) const {
4641 print_factors_and_types(OS);
4642 print_fixups(OS);
4643 print_uses(OS);
4644}
4645
4646void LSRInstance::dump() const {
4647 print(errs()); errs() << '\n';
4648}
4649
4650namespace {
4651
4652class LoopStrengthReduce : public LoopPass {
4653 /// TLI - Keep a pointer of a TargetLowering to consult for determining
4654 /// transformation profitability.
4655 const TargetLowering *const TLI;
4656
4657public:
4658 static char ID; // Pass ID, replacement for typeid
4659 explicit LoopStrengthReduce(const TargetLowering *tli = 0);
4660
4661private:
4662 bool runOnLoop(Loop *L, LPPassManager &LPM);
4663 void getAnalysisUsage(AnalysisUsage &AU) const;
4664};
4665
4666}
4667
4668char LoopStrengthReduce::ID = 0;
Owen Anderson2ab36d32010-10-12 19:48:12 +00004669INITIALIZE_PASS_BEGIN(LoopStrengthReduce, "loop-reduce",
Owen Andersonce665bd2010-10-07 22:25:06 +00004670 "Loop Strength Reduction", false, false)
Owen Anderson2ab36d32010-10-12 19:48:12 +00004671INITIALIZE_PASS_DEPENDENCY(DominatorTree)
4672INITIALIZE_PASS_DEPENDENCY(ScalarEvolution)
4673INITIALIZE_PASS_DEPENDENCY(IVUsers)
Owen Anderson205942a2010-10-19 20:08:44 +00004674INITIALIZE_PASS_DEPENDENCY(LoopInfo)
4675INITIALIZE_PASS_DEPENDENCY(LoopSimplify)
Owen Anderson2ab36d32010-10-12 19:48:12 +00004676INITIALIZE_PASS_END(LoopStrengthReduce, "loop-reduce",
4677 "Loop Strength Reduction", false, false)
4678
Dan Gohman572645c2010-02-12 10:34:29 +00004679
4680Pass *llvm::createLoopStrengthReducePass(const TargetLowering *TLI) {
4681 return new LoopStrengthReduce(TLI);
4682}
4683
4684LoopStrengthReduce::LoopStrengthReduce(const TargetLowering *tli)
Owen Anderson081c34b2010-10-19 17:21:58 +00004685 : LoopPass(ID), TLI(tli) {
4686 initializeLoopStrengthReducePass(*PassRegistry::getPassRegistry());
4687 }
Dan Gohman572645c2010-02-12 10:34:29 +00004688
4689void LoopStrengthReduce::getAnalysisUsage(AnalysisUsage &AU) const {
4690 // We split critical edges, so we change the CFG. However, we do update
4691 // many analyses if they are around.
Eric Christopher6793c492011-02-10 01:48:24 +00004692 AU.addPreservedID(LoopSimplifyID);
Dan Gohman572645c2010-02-12 10:34:29 +00004693
Eric Christopher6793c492011-02-10 01:48:24 +00004694 AU.addRequired<LoopInfo>();
4695 AU.addPreserved<LoopInfo>();
4696 AU.addRequiredID(LoopSimplifyID);
Dan Gohman572645c2010-02-12 10:34:29 +00004697 AU.addRequired<DominatorTree>();
4698 AU.addPreserved<DominatorTree>();
4699 AU.addRequired<ScalarEvolution>();
4700 AU.addPreserved<ScalarEvolution>();
Cameron Zwarich2c2b9332011-02-10 23:53:14 +00004701 // Requiring LoopSimplify a second time here prevents IVUsers from running
4702 // twice, since LoopSimplify was invalidated by running ScalarEvolution.
4703 AU.addRequiredID(LoopSimplifyID);
Dan Gohman572645c2010-02-12 10:34:29 +00004704 AU.addRequired<IVUsers>();
4705 AU.addPreserved<IVUsers>();
4706}
4707
4708bool LoopStrengthReduce::runOnLoop(Loop *L, LPPassManager & /*LPM*/) {
4709 bool Changed = false;
4710
4711 // Run the main LSR transformation.
4712 Changed |= LSRInstance(TLI, L, this).getChanged();
4713
Andrew Trickf231a6d2012-01-07 01:36:44 +00004714 // Remove any extra phis created by processing inner loops.
Dan Gohman9fff2182010-01-05 16:31:45 +00004715 Changed |= DeleteDeadPHIs(L->getHeader());
Andrew Trickf231a6d2012-01-07 01:36:44 +00004716 if (EnablePhiElim) {
4717 SmallVector<WeakVH, 16> DeadInsts;
4718 SCEVExpander Rewriter(getAnalysis<ScalarEvolution>(), "lsr");
4719#ifndef NDEBUG
4720 Rewriter.setDebugType(DEBUG_TYPE);
4721#endif
4722 unsigned numFolded = Rewriter.
4723 replaceCongruentIVs(L, &getAnalysis<DominatorTree>(), DeadInsts, TLI);
4724 if (numFolded) {
4725 Changed = true;
4726 DeleteTriviallyDeadInstructions(DeadInsts);
4727 DeleteDeadPHIs(L->getHeader());
4728 }
4729 }
Evan Cheng1ce75dc2008-07-07 19:51:32 +00004730 return Changed;
Nate Begemaneaa13852004-10-18 21:08:22 +00004731}