blob: 5f4990efde795cda31a3a7231ce53365d8b203e4 [file] [log] [blame]
Tobias Grosser75805372011-04-29 06:27:02 +00001//===------ CodeGeneration.cpp - Code generate the Scops. -----------------===//
2//
3// The LLVM Compiler Infrastructure
4//
5// This file is distributed under the University of Illinois Open Source
6// License. See LICENSE.TXT for details.
7//
8//===----------------------------------------------------------------------===//
9//
10// The CodeGeneration pass takes a Scop created by ScopInfo and translates it
11// back to LLVM-IR using Cloog.
12//
13// The Scop describes the high level memory behaviour of a control flow region.
14// Transformation passes can update the schedule (execution order) of statements
15// in the Scop. Cloog is used to generate an abstract syntax tree (clast) that
16// reflects the updated execution order. This clast is used to create new
17// LLVM-IR that is computational equivalent to the original control flow region,
18// but executes its code in the new execution order defined by the changed
19// scattering.
20//
21//===----------------------------------------------------------------------===//
22
23#define DEBUG_TYPE "polly-codegen"
24
25#include "polly/LinkAllPasses.h"
26#include "polly/Support/GICHelper.h"
27#include "polly/Support/ScopHelper.h"
28#include "polly/Cloog.h"
29#include "polly/Dependences.h"
30#include "polly/ScopInfo.h"
31#include "polly/TempScopInfo.h"
32#include "llvm/Support/CommandLine.h"
33#include "llvm/Support/Debug.h"
34#include "llvm/Support/IRBuilder.h"
35#include "llvm/Analysis/LoopInfo.h"
36#include "llvm/Analysis/ScalarEvolutionExpander.h"
Tobias Grosser8c4cfc322011-05-14 19:01:49 +000037#include "llvm/Transforms/Utils/BasicBlockUtils.h"
Tobias Grosser75805372011-04-29 06:27:02 +000038#include "llvm/Target/TargetData.h"
39#include "llvm/Module.h"
40#include "llvm/ADT/SetVector.h"
41
42#define CLOOG_INT_GMP 1
43#include "cloog/cloog.h"
44#include "cloog/isl/cloog.h"
45
46#include <vector>
47#include <utility>
48
49using namespace polly;
50using namespace llvm;
51
52struct isl_set;
53
54namespace polly {
55
56static cl::opt<bool>
57Vector("enable-polly-vector",
58 cl::desc("Enable polly vector code generation"), cl::Hidden,
59 cl::value_desc("Vector code generation enabled if true"),
60 cl::init(false));
61
62static cl::opt<bool>
63OpenMP("enable-polly-openmp",
64 cl::desc("Generate OpenMP parallel code"), cl::Hidden,
65 cl::value_desc("OpenMP code generation enabled if true"),
66 cl::init(false));
67
68static cl::opt<bool>
69AtLeastOnce("enable-polly-atLeastOnce",
70 cl::desc("Give polly the hint, that every loop is executed at least"
71 "once"), cl::Hidden,
72 cl::value_desc("OpenMP code generation enabled if true"),
73 cl::init(false));
74
75static cl::opt<bool>
76Aligned("enable-polly-aligned",
77 cl::desc("Assumed aligned memory accesses."), cl::Hidden,
78 cl::value_desc("OpenMP code generation enabled if true"),
79 cl::init(false));
80
Tobias Grosser75805372011-04-29 06:27:02 +000081typedef DenseMap<const Value*, Value*> ValueMapT;
82typedef DenseMap<const char*, Value*> CharMapT;
83typedef std::vector<ValueMapT> VectorValueMapT;
84
85// Create a new loop.
86//
87// @param Builder The builder used to create the loop. It also defines the
88// place where to create the loop.
89// @param UB The upper bound of the loop iv.
90// @param Stride The number by which the loop iv is incremented after every
91// iteration.
92static void createLoop(IRBuilder<> *Builder, Value *LB, Value *UB, APInt Stride,
93 PHINode*& IV, BasicBlock*& AfterBB, Value*& IncrementedIV,
94 DominatorTree *DT) {
95 Function *F = Builder->GetInsertBlock()->getParent();
96 LLVMContext &Context = F->getContext();
97
98 BasicBlock *PreheaderBB = Builder->GetInsertBlock();
99 BasicBlock *HeaderBB = BasicBlock::Create(Context, "polly.loop_header", F);
100 BasicBlock *BodyBB = BasicBlock::Create(Context, "polly.loop_body", F);
101 AfterBB = BasicBlock::Create(Context, "polly.after_loop", F);
102
103 Builder->CreateBr(HeaderBB);
104 DT->addNewBlock(HeaderBB, PreheaderBB);
105
106 Builder->SetInsertPoint(BodyBB);
107
108 Builder->SetInsertPoint(HeaderBB);
109
110 // Use the type of upper and lower bound.
111 assert(LB->getType() == UB->getType()
112 && "Different types for upper and lower bound.");
113
Tobias Grosser55927aa2011-07-18 09:53:32 +0000114 IntegerType *LoopIVType = dyn_cast<IntegerType>(UB->getType());
Tobias Grosser75805372011-04-29 06:27:02 +0000115 assert(LoopIVType && "UB is not integer?");
116
117 // IV
118 IV = Builder->CreatePHI(LoopIVType, 2, "polly.loopiv");
119 IV->addIncoming(LB, PreheaderBB);
120
121 // IV increment.
122 Value *StrideValue = ConstantInt::get(LoopIVType,
123 Stride.zext(LoopIVType->getBitWidth()));
124 IncrementedIV = Builder->CreateAdd(IV, StrideValue, "polly.next_loopiv");
125
126 // Exit condition.
127 if (AtLeastOnce) { // At least on iteration.
128 UB = Builder->CreateAdd(UB, Builder->getInt64(1));
129 Value *CMP = Builder->CreateICmpEQ(IV, UB);
130 Builder->CreateCondBr(CMP, AfterBB, BodyBB);
131 } else { // Maybe not executed at all.
132 Value *CMP = Builder->CreateICmpSLE(IV, UB);
133 Builder->CreateCondBr(CMP, BodyBB, AfterBB);
134 }
135 DT->addNewBlock(BodyBB, HeaderBB);
136 DT->addNewBlock(AfterBB, HeaderBB);
137
138 Builder->SetInsertPoint(BodyBB);
139}
140
141class BlockGenerator {
142 IRBuilder<> &Builder;
143 ValueMapT &VMap;
144 VectorValueMapT &ValueMaps;
145 Scop &S;
146 ScopStmt &statement;
147 isl_set *scatteringDomain;
148
149public:
150 BlockGenerator(IRBuilder<> &B, ValueMapT &vmap, VectorValueMapT &vmaps,
151 ScopStmt &Stmt, isl_set *domain)
152 : Builder(B), VMap(vmap), ValueMaps(vmaps), S(*Stmt.getParent()),
153 statement(Stmt), scatteringDomain(domain) {}
154
155 const Region &getRegion() {
156 return S.getRegion();
157 }
158
159 Value* makeVectorOperand(Value *operand, int vectorWidth) {
160 if (operand->getType()->isVectorTy())
161 return operand;
162
163 VectorType *vectorType = VectorType::get(operand->getType(), vectorWidth);
164 Value *vector = UndefValue::get(vectorType);
165 vector = Builder.CreateInsertElement(vector, operand, Builder.getInt32(0));
166
167 std::vector<Constant*> splat;
168
169 for (int i = 0; i < vectorWidth; i++)
170 splat.push_back (Builder.getInt32(0));
171
172 Constant *splatVector = ConstantVector::get(splat);
173
174 return Builder.CreateShuffleVector(vector, vector, splatVector);
175 }
176
Raghesh Aloor490c5982011-08-08 08:34:16 +0000177 Value* getOperand(const Value *oldOperand, ValueMapT &BBMap,
Tobias Grosser75805372011-04-29 06:27:02 +0000178 ValueMapT *VectorMap = 0) {
Raghesh Aloor490c5982011-08-08 08:34:16 +0000179 const Instruction *OpInst = dyn_cast<Instruction>(oldOperand);
Tobias Grosser75805372011-04-29 06:27:02 +0000180
181 if (!OpInst)
Raghesh Aloor490c5982011-08-08 08:34:16 +0000182 return const_cast<Value*>(oldOperand);
Tobias Grosser75805372011-04-29 06:27:02 +0000183
Raghesh Aloor490c5982011-08-08 08:34:16 +0000184 if (VectorMap && VectorMap->count(oldOperand))
185 return (*VectorMap)[oldOperand];
Tobias Grosser75805372011-04-29 06:27:02 +0000186
187 // IVS and Parameters.
Raghesh Aloor490c5982011-08-08 08:34:16 +0000188 if (VMap.count(oldOperand)) {
189 Value *NewOperand = VMap[oldOperand];
Tobias Grosser75805372011-04-29 06:27:02 +0000190
191 // Insert a cast if types are different
Raghesh Aloor490c5982011-08-08 08:34:16 +0000192 if (oldOperand->getType()->getScalarSizeInBits()
Tobias Grosser75805372011-04-29 06:27:02 +0000193 < NewOperand->getType()->getScalarSizeInBits())
194 NewOperand = Builder.CreateTruncOrBitCast(NewOperand,
Raghesh Aloor490c5982011-08-08 08:34:16 +0000195 oldOperand->getType());
Tobias Grosser75805372011-04-29 06:27:02 +0000196
197 return NewOperand;
198 }
199
200 // Instructions calculated in the current BB.
Raghesh Aloor490c5982011-08-08 08:34:16 +0000201 if (BBMap.count(oldOperand)) {
202 return BBMap[oldOperand];
Tobias Grosser75805372011-04-29 06:27:02 +0000203 }
204
205 // Ignore instructions that are referencing ops in the old BB. These
206 // instructions are unused. They where replace by new ones during
207 // createIndependentBlocks().
208 if (getRegion().contains(OpInst->getParent()))
209 return NULL;
210
Raghesh Aloor490c5982011-08-08 08:34:16 +0000211 return const_cast<Value*>(oldOperand);
Tobias Grosser75805372011-04-29 06:27:02 +0000212 }
213
Tobias Grosser55927aa2011-07-18 09:53:32 +0000214 Type *getVectorPtrTy(const Value *V, int vectorWidth) {
215 PointerType *pointerType = dyn_cast<PointerType>(V->getType());
Tobias Grosser75805372011-04-29 06:27:02 +0000216 assert(pointerType && "PointerType expected");
217
Tobias Grosser55927aa2011-07-18 09:53:32 +0000218 Type *scalarType = pointerType->getElementType();
Tobias Grosser75805372011-04-29 06:27:02 +0000219 VectorType *vectorType = VectorType::get(scalarType, vectorWidth);
220
221 return PointerType::getUnqual(vectorType);
222 }
223
224 /// @brief Load a vector from a set of adjacent scalars
225 ///
226 /// In case a set of scalars is known to be next to each other in memory,
227 /// create a vector load that loads those scalars
228 ///
229 /// %vector_ptr= bitcast double* %p to <4 x double>*
230 /// %vec_full = load <4 x double>* %vector_ptr
231 ///
232 Value *generateStrideOneLoad(const LoadInst *load, ValueMapT &BBMap,
233 int size) {
234 const Value *pointer = load->getPointerOperand();
Tobias Grosser55927aa2011-07-18 09:53:32 +0000235 Type *vectorPtrType = getVectorPtrTy(pointer, size);
Tobias Grosser75805372011-04-29 06:27:02 +0000236 Value *newPointer = getOperand(pointer, BBMap);
237 Value *VectorPtr = Builder.CreateBitCast(newPointer, vectorPtrType,
238 "vector_ptr");
239 LoadInst *VecLoad = Builder.CreateLoad(VectorPtr,
240 load->getNameStr()
241 + "_p_vec_full");
242 if (!Aligned)
243 VecLoad->setAlignment(8);
244
245 return VecLoad;
246 }
247
248 /// @brief Load a vector initialized from a single scalar in memory
249 ///
250 /// In case all elements of a vector are initialized to the same
251 /// scalar value, this value is loaded and shuffeled into all elements
252 /// of the vector.
253 ///
254 /// %splat_one = load <1 x double>* %p
255 /// %splat = shufflevector <1 x double> %splat_one, <1 x
256 /// double> %splat_one, <4 x i32> zeroinitializer
257 ///
258 Value *generateStrideZeroLoad(const LoadInst *load, ValueMapT &BBMap,
259 int size) {
260 const Value *pointer = load->getPointerOperand();
Tobias Grosser55927aa2011-07-18 09:53:32 +0000261 Type *vectorPtrType = getVectorPtrTy(pointer, 1);
Tobias Grosser75805372011-04-29 06:27:02 +0000262 Value *newPointer = getOperand(pointer, BBMap);
263 Value *vectorPtr = Builder.CreateBitCast(newPointer, vectorPtrType,
264 load->getNameStr() + "_p_vec_p");
265 LoadInst *scalarLoad= Builder.CreateLoad(vectorPtr,
266 load->getNameStr() + "_p_splat_one");
267
268 if (!Aligned)
269 scalarLoad->setAlignment(8);
270
271 std::vector<Constant*> splat;
272
273 for (int i = 0; i < size; i++)
274 splat.push_back (Builder.getInt32(0));
275
276 Constant *splatVector = ConstantVector::get(splat);
277
278 Value *vectorLoad = Builder.CreateShuffleVector(scalarLoad, scalarLoad,
279 splatVector,
280 load->getNameStr()
281 + "_p_splat");
282 return vectorLoad;
283 }
284
285 /// @Load a vector from scalars distributed in memory
286 ///
287 /// In case some scalars a distributed randomly in memory. Create a vector
288 /// by loading each scalar and by inserting one after the other into the
289 /// vector.
290 ///
291 /// %scalar_1= load double* %p_1
292 /// %vec_1 = insertelement <2 x double> undef, double %scalar_1, i32 0
293 /// %scalar 2 = load double* %p_2
294 /// %vec_2 = insertelement <2 x double> %vec_1, double %scalar_1, i32 1
295 ///
296 Value *generateUnknownStrideLoad(const LoadInst *load,
297 VectorValueMapT &scalarMaps,
298 int size) {
299 const Value *pointer = load->getPointerOperand();
300 VectorType *vectorType = VectorType::get(
301 dyn_cast<PointerType>(pointer->getType())->getElementType(), size);
302
303 Value *vector = UndefValue::get(vectorType);
304
305 for (int i = 0; i < size; i++) {
306 Value *newPointer = getOperand(pointer, scalarMaps[i]);
307 Value *scalarLoad = Builder.CreateLoad(newPointer,
308 load->getNameStr() + "_p_scalar_");
309 vector = Builder.CreateInsertElement(vector, scalarLoad,
310 Builder.getInt32(i),
311 load->getNameStr() + "_p_vec_");
312 }
313
314 return vector;
315 }
316
Raghesh Aloor129e8672011-08-15 02:33:39 +0000317 /// @brief Get the memory access offset to be added to the base address
318 std::vector <Value*> getMemoryAccessIndex(isl_map *accessRelation,
319 Value *baseAddr) {
320 isl_int offsetMPZ;
321 isl_int_init(offsetMPZ);
322
323 assert((isl_map_dim(accessRelation, isl_dim_out) == 1)
324 && "Only single dimensional access functions supported");
325
326 if (isl_map_plain_is_fixed(accessRelation, isl_dim_out,
327 0, &offsetMPZ) == -1)
328 errs() << "Only fixed value access functions supported\n";
329
330 // Convert the offset from MPZ to Value*.
331 APInt offset = APInt_from_MPZ(offsetMPZ);
332 Value *offsetValue = ConstantInt::get(Builder.getContext(), offset);
333 PointerType *baseAddrType = dyn_cast<PointerType>(baseAddr->getType());
334 Type *arrayType = baseAddrType->getElementType();
335 Type *arrayElementType = dyn_cast<ArrayType>(arrayType)->getElementType();
336 offsetValue = Builder.CreateSExtOrBitCast(offsetValue, arrayElementType);
337
338 std::vector<Value*> indexArray;
339 Value *nullValue = Constant::getNullValue(arrayElementType);
340 indexArray.push_back(nullValue);
341 indexArray.push_back(offsetValue);
342
343 isl_int_clear(offsetMPZ);
344 return indexArray;
345 }
346
Raghesh Aloor62b13122011-08-03 17:02:50 +0000347 /// @brief Get the new operand address according to the changed access in
348 /// JSCOP file.
349 Value *getNewAccessOperand(isl_map *newAccessRelation, Value *baseAddr,
Raghesh Aloor490c5982011-08-08 08:34:16 +0000350 const Value *oldOperand, ValueMapT &BBMap) {
Raghesh Aloor129e8672011-08-15 02:33:39 +0000351 std::vector<Value*> indexArray = getMemoryAccessIndex(newAccessRelation,
352 baseAddr);
353 Value *newOperand = Builder.CreateGEP(baseAddr, indexArray,
354 "p_newarrayidx_");
Raghesh Aloor62b13122011-08-03 17:02:50 +0000355 return newOperand;
356 }
357
358 /// @brief Generate the operand address
359 Value *generateLocationAccessed(const Instruction *Inst,
360 const Value *pointer, ValueMapT &BBMap ) {
Raghesh Aloor490c5982011-08-08 08:34:16 +0000361 MemoryAccess &access = statement.getAccessFor(Inst);
Raghesh Aloor129e8672011-08-15 02:33:39 +0000362 isl_map *currentAccessRelation = access.getAccessFunction();
Raghesh Aloor490c5982011-08-08 08:34:16 +0000363 isl_map *newAccessRelation = access.getNewAccessFunction();
Raghesh Aloor129e8672011-08-15 02:33:39 +0000364
365 assert(isl_map_has_equal_dim(currentAccessRelation, newAccessRelation)
366 && "Current and new access function dimensions differ");
367
Raghesh Aloor62b13122011-08-03 17:02:50 +0000368 if (!newAccessRelation) {
369 Value *newPointer = getOperand(pointer, BBMap);
370 return newPointer;
371 }
Raghesh Aloore75e9862011-08-11 08:44:56 +0000372
Raghesh Aloor490c5982011-08-08 08:34:16 +0000373 Value *baseAddr = const_cast<Value*>(access.getBaseAddr());
Raghesh Aloor62b13122011-08-03 17:02:50 +0000374 Value *newPointer = getNewAccessOperand(newAccessRelation, baseAddr,
375 pointer, BBMap);
376 return newPointer;
377 }
378
Tobias Grosser75805372011-04-29 06:27:02 +0000379 Value *generateScalarLoad(const LoadInst *load, ValueMapT &BBMap) {
380 const Value *pointer = load->getPointerOperand();
Raghesh Aloor62b13122011-08-03 17:02:50 +0000381 const Instruction *Inst = dyn_cast<Instruction>(load);
382 Value *newPointer = generateLocationAccessed(Inst, pointer, BBMap);
Tobias Grosser75805372011-04-29 06:27:02 +0000383 Value *scalarLoad = Builder.CreateLoad(newPointer,
384 load->getNameStr() + "_p_scalar_");
385 return scalarLoad;
386 }
387
388 /// @brief Load a value (or several values as a vector) from memory.
389 void generateLoad(const LoadInst *load, ValueMapT &vectorMap,
390 VectorValueMapT &scalarMaps, int vectorWidth) {
Tobias Grosser75805372011-04-29 06:27:02 +0000391 if (scalarMaps.size() == 1) {
392 scalarMaps[0][load] = generateScalarLoad(load, scalarMaps[0]);
393 return;
394 }
395
396 Value *newLoad;
397
398 MemoryAccess &Access = statement.getAccessFor(load);
399
400 assert(scatteringDomain && "No scattering domain available");
401
402 if (Access.isStrideZero(scatteringDomain))
403 newLoad = generateStrideZeroLoad(load, scalarMaps[0], vectorWidth);
404 else if (Access.isStrideOne(scatteringDomain))
405 newLoad = generateStrideOneLoad(load, scalarMaps[0], vectorWidth);
406 else
407 newLoad = generateUnknownStrideLoad(load, scalarMaps, vectorWidth);
408
409 vectorMap[load] = newLoad;
410 }
411
Tobias Grosser09c57102011-09-04 11:45:29 +0000412 void copyBinInst(const BinaryOperator *Inst, ValueMapT &BBMap,
413 ValueMapT &vectorMap, VectorValueMapT &scalarMaps,
414 int vectorDimension, int vectorWidth) {
415 Value *opZero = Inst->getOperand(0);
416 Value *opOne = Inst->getOperand(1);
417
418 // This is an old instruction that can be ignored.
419 if (!opZero && !opOne)
420 return;
421
Tobias Grosser09c57102011-09-04 11:45:29 +0000422 Value *newOpZero, *newOpOne;
423 newOpZero = getOperand(opZero, BBMap, &vectorMap);
424 newOpOne = getOperand(opOne, BBMap, &vectorMap);
425
Tobias Grosser7551c302011-09-04 11:45:41 +0000426 newOpZero = makeVectorOperand(newOpZero, vectorWidth);
427 newOpOne = makeVectorOperand(newOpOne, vectorWidth);
Tobias Grosser09c57102011-09-04 11:45:29 +0000428
429 Value *newInst = Builder.CreateBinOp(Inst->getOpcode(), newOpZero,
Tobias Grosser7551c302011-09-04 11:45:41 +0000430 newOpOne,
431 Inst->getNameStr() + "p_vec");
432 vectorMap[Inst] = newInst;
Tobias Grosser09c57102011-09-04 11:45:29 +0000433
434 return;
435 }
436
437 void copyVectorStore(const StoreInst *store, ValueMapT &BBMap,
Tobias Grosser75805372011-04-29 06:27:02 +0000438 ValueMapT &vectorMap, VectorValueMapT &scalarMaps,
439 int vectorDimension, int vectorWidth) {
Tobias Grosser09c57102011-09-04 11:45:29 +0000440 // In vector mode we only generate a store for the first dimension.
441 if (vectorDimension > 0)
Tobias Grosser75805372011-04-29 06:27:02 +0000442 return;
443
Tobias Grosser09c57102011-09-04 11:45:29 +0000444 MemoryAccess &Access = statement.getAccessFor(store);
Tobias Grosser75805372011-04-29 06:27:02 +0000445
Tobias Grosser09c57102011-09-04 11:45:29 +0000446 assert(scatteringDomain && "No scattering domain available");
Tobias Grosser75805372011-04-29 06:27:02 +0000447
Tobias Grosser09c57102011-09-04 11:45:29 +0000448 const Value *pointer = store->getPointerOperand();
449 Value *vector = getOperand(store->getValueOperand(), BBMap, &vectorMap);
Tobias Grosser75805372011-04-29 06:27:02 +0000450
Tobias Grosser09c57102011-09-04 11:45:29 +0000451 if (Access.isStrideOne(scatteringDomain)) {
452 Type *vectorPtrType = getVectorPtrTy(pointer, vectorWidth);
453 Value *newPointer = getOperand(pointer, BBMap, &vectorMap);
Tobias Grosser75805372011-04-29 06:27:02 +0000454
Tobias Grosser09c57102011-09-04 11:45:29 +0000455 Value *VectorPtr = Builder.CreateBitCast(newPointer, vectorPtrType,
456 "vector_ptr");
457 StoreInst *Store = Builder.CreateStore(vector, VectorPtr);
Tobias Grosser75805372011-04-29 06:27:02 +0000458
Tobias Grosser09c57102011-09-04 11:45:29 +0000459 if (!Aligned)
460 Store->setAlignment(8);
461 } else {
462 for (unsigned i = 0; i < scalarMaps.size(); i++) {
463 Value *scalar = Builder.CreateExtractElement(vector,
464 Builder.getInt32(i));
465 Value *newPointer = getOperand(pointer, scalarMaps[i]);
466 Builder.CreateStore(scalar, newPointer);
Tobias Grosser75805372011-04-29 06:27:02 +0000467 }
468 }
469
Tobias Grosser09c57102011-09-04 11:45:29 +0000470 return;
471 }
472
Tobias Grosser7551c302011-09-04 11:45:41 +0000473 void copyInstScalar(const Instruction *Inst, ValueMapT &BBMap) {
Tobias Grosser75805372011-04-29 06:27:02 +0000474 Instruction *NewInst = Inst->clone();
475
Tobias Grosser75805372011-04-29 06:27:02 +0000476 // Replace old operands with the new ones.
Tobias Grosserb06e71b2011-09-04 11:45:34 +0000477 for (Instruction::const_op_iterator OI = Inst->op_begin(),
478 OE = Inst->op_end(); OI != OE; ++OI) {
479 Value *OldOperand = *OI;
480 Value *NewOperand = getOperand(OldOperand, BBMap);
Tobias Grosser75805372011-04-29 06:27:02 +0000481
Tobias Grosserb06e71b2011-09-04 11:45:34 +0000482 if (!NewOperand) {
Tobias Grosser75805372011-04-29 06:27:02 +0000483 assert(!isa<StoreInst>(NewInst)
484 && "Store instructions are always needed!");
485 delete NewInst;
486 return;
487 }
488
Tobias Grosserb06e71b2011-09-04 11:45:34 +0000489 NewInst->replaceUsesOfWith(OldOperand, NewOperand);
Tobias Grosser75805372011-04-29 06:27:02 +0000490 }
491
492 Builder.Insert(NewInst);
493 BBMap[Inst] = NewInst;
494
495 if (!NewInst->getType()->isVoidTy())
496 NewInst->setName("p_" + Inst->getName());
497 }
498
Tobias Grosser7551c302011-09-04 11:45:41 +0000499 bool hasVectorOperands(const Instruction *Inst, ValueMapT &VectorMap) {
500 for (Instruction::const_op_iterator OI = Inst->op_begin(),
501 OE = Inst->op_end(); OI != OE; ++OI)
502 if (VectorMap.count(*OI))
503 return true;
504 return false;
Tobias Grosser09c57102011-09-04 11:45:29 +0000505 }
506
Tobias Grosser75805372011-04-29 06:27:02 +0000507 int getVectorSize() {
508 return ValueMaps.size();
509 }
510
511 bool isVectorBlock() {
512 return getVectorSize() > 1;
513 }
514
Tobias Grosser7551c302011-09-04 11:45:41 +0000515 void copyInstruction(const Instruction *Inst, ValueMapT &BBMap,
516 ValueMapT &vectorMap, VectorValueMapT &scalarMaps,
517 int vectorDimension, int vectorWidth) {
518 // Terminator instructions control the control flow. They are explicitally
519 // expressed in the clast and do not need to be copied.
520 if (Inst->isTerminator())
521 return;
522
523 if (isVectorBlock()) {
524 // If this instruction is already in the vectorMap, a vector instruction
525 // was already issued, that calculates the values of all dimensions. No
526 // need to create any more instructions.
527 if (vectorMap.count(Inst))
528 return;
529 }
530
531 if (const LoadInst *load = dyn_cast<LoadInst>(Inst)) {
532 generateLoad(load, vectorMap, scalarMaps, vectorWidth);
533 return;
534 }
535
536 if (isVectorBlock() && hasVectorOperands(Inst, vectorMap)) {
537 if (const BinaryOperator *binaryInst = dyn_cast<BinaryOperator>(Inst))
538 copyBinInst(binaryInst, BBMap, vectorMap, scalarMaps, vectorDimension,
539 vectorWidth);
540 else if (const StoreInst *store = dyn_cast<StoreInst>(Inst))
541 copyVectorStore(store, BBMap, vectorMap, scalarMaps, vectorDimension,
542 vectorWidth);
543 else
544 llvm_unreachable("Cannot issue vector code for this instruction");
545
546 return;
547 }
548
549 copyInstScalar(Inst, BBMap);
550 }
Tobias Grosser75805372011-04-29 06:27:02 +0000551 // Insert a copy of a basic block in the newly generated code.
552 //
553 // @param Builder The builder used to insert the code. It also specifies
554 // where to insert the code.
555 // @param BB The basic block to copy
556 // @param VMap A map returning for any old value its new equivalent. This
557 // is used to update the operands of the statements.
558 // For new statements a relation old->new is inserted in this
559 // map.
560 void copyBB(BasicBlock *BB, DominatorTree *DT) {
561 Function *F = Builder.GetInsertBlock()->getParent();
562 LLVMContext &Context = F->getContext();
563 BasicBlock *CopyBB = BasicBlock::Create(Context,
Tobias Grosser8ae9aca2011-09-04 11:45:22 +0000564 "polly." + BB->getNameStr()
565 + ".stmt",
Tobias Grosser75805372011-04-29 06:27:02 +0000566 F);
567 Builder.CreateBr(CopyBB);
568 DT->addNewBlock(CopyBB, Builder.GetInsertBlock());
569 Builder.SetInsertPoint(CopyBB);
570
571 // Create two maps that store the mapping from the original instructions of
572 // the old basic block to their copies in the new basic block. Those maps
573 // are basic block local.
574 //
575 // As vector code generation is supported there is one map for scalar values
576 // and one for vector values.
577 //
578 // In case we just do scalar code generation, the vectorMap is not used and
579 // the scalarMap has just one dimension, which contains the mapping.
580 //
581 // In case vector code generation is done, an instruction may either appear
582 // in the vector map once (as it is calculating >vectorwidth< values at a
583 // time. Or (if the values are calculated using scalar operations), it
584 // appears once in every dimension of the scalarMap.
585 VectorValueMapT scalarBlockMap(getVectorSize());
586 ValueMapT vectorBlockMap;
587
588 for (BasicBlock::const_iterator II = BB->begin(), IE = BB->end();
589 II != IE; ++II)
590 for (int i = 0; i < getVectorSize(); i++) {
591 if (isVectorBlock())
592 VMap = ValueMaps[i];
593
594 copyInstruction(II, scalarBlockMap[i], vectorBlockMap,
595 scalarBlockMap, i, getVectorSize());
596 }
597 }
598};
599
600/// Class to generate LLVM-IR that calculates the value of a clast_expr.
601class ClastExpCodeGen {
602 IRBuilder<> &Builder;
603 const CharMapT *IVS;
604
Tobias Grosser55927aa2011-07-18 09:53:32 +0000605 Value *codegen(const clast_name *e, Type *Ty) {
Tobias Grosser75805372011-04-29 06:27:02 +0000606 CharMapT::const_iterator I = IVS->find(e->name);
607
608 if (I != IVS->end())
609 return Builder.CreateSExtOrBitCast(I->second, Ty);
610 else
611 llvm_unreachable("Clast name not found");
612 }
613
Tobias Grosser55927aa2011-07-18 09:53:32 +0000614 Value *codegen(const clast_term *e, Type *Ty) {
Tobias Grosser75805372011-04-29 06:27:02 +0000615 APInt a = APInt_from_MPZ(e->val);
616
617 Value *ConstOne = ConstantInt::get(Builder.getContext(), a);
618 ConstOne = Builder.CreateSExtOrBitCast(ConstOne, Ty);
619
620 if (e->var) {
621 Value *var = codegen(e->var, Ty);
622 return Builder.CreateMul(ConstOne, var);
623 }
624
625 return ConstOne;
626 }
627
Tobias Grosser55927aa2011-07-18 09:53:32 +0000628 Value *codegen(const clast_binary *e, Type *Ty) {
Tobias Grosser75805372011-04-29 06:27:02 +0000629 Value *LHS = codegen(e->LHS, Ty);
630
631 APInt RHS_AP = APInt_from_MPZ(e->RHS);
632
633 Value *RHS = ConstantInt::get(Builder.getContext(), RHS_AP);
634 RHS = Builder.CreateSExtOrBitCast(RHS, Ty);
635
636 switch (e->type) {
637 case clast_bin_mod:
638 return Builder.CreateSRem(LHS, RHS);
639 case clast_bin_fdiv:
640 {
641 // floord(n,d) ((n < 0) ? (n - d + 1) : n) / d
642 Value *One = ConstantInt::get(Builder.getInt1Ty(), 1);
643 Value *Zero = ConstantInt::get(Builder.getInt1Ty(), 0);
644 One = Builder.CreateZExtOrBitCast(One, Ty);
645 Zero = Builder.CreateZExtOrBitCast(Zero, Ty);
646 Value *Sum1 = Builder.CreateSub(LHS, RHS);
647 Value *Sum2 = Builder.CreateAdd(Sum1, One);
648 Value *isNegative = Builder.CreateICmpSLT(LHS, Zero);
649 Value *Dividend = Builder.CreateSelect(isNegative, Sum2, LHS);
650 return Builder.CreateSDiv(Dividend, RHS);
651 }
652 case clast_bin_cdiv:
653 {
654 // ceild(n,d) ((n < 0) ? n : (n + d - 1)) / d
655 Value *One = ConstantInt::get(Builder.getInt1Ty(), 1);
656 Value *Zero = ConstantInt::get(Builder.getInt1Ty(), 0);
657 One = Builder.CreateZExtOrBitCast(One, Ty);
658 Zero = Builder.CreateZExtOrBitCast(Zero, Ty);
659 Value *Sum1 = Builder.CreateAdd(LHS, RHS);
660 Value *Sum2 = Builder.CreateSub(Sum1, One);
661 Value *isNegative = Builder.CreateICmpSLT(LHS, Zero);
662 Value *Dividend = Builder.CreateSelect(isNegative, LHS, Sum2);
663 return Builder.CreateSDiv(Dividend, RHS);
664 }
665 case clast_bin_div:
666 return Builder.CreateSDiv(LHS, RHS);
667 default:
668 llvm_unreachable("Unknown clast binary expression type");
669 };
670 }
671
Tobias Grosser55927aa2011-07-18 09:53:32 +0000672 Value *codegen(const clast_reduction *r, Type *Ty) {
Tobias Grosser75805372011-04-29 06:27:02 +0000673 assert(( r->type == clast_red_min
674 || r->type == clast_red_max
675 || r->type == clast_red_sum)
676 && "Clast reduction type not supported");
677 Value *old = codegen(r->elts[0], Ty);
678
679 for (int i=1; i < r->n; ++i) {
680 Value *exprValue = codegen(r->elts[i], Ty);
681
682 switch (r->type) {
683 case clast_red_min:
684 {
685 Value *cmp = Builder.CreateICmpSLT(old, exprValue);
686 old = Builder.CreateSelect(cmp, old, exprValue);
687 break;
688 }
689 case clast_red_max:
690 {
691 Value *cmp = Builder.CreateICmpSGT(old, exprValue);
692 old = Builder.CreateSelect(cmp, old, exprValue);
693 break;
694 }
695 case clast_red_sum:
696 old = Builder.CreateAdd(old, exprValue);
697 break;
698 default:
699 llvm_unreachable("Clast unknown reduction type");
700 }
701 }
702
703 return old;
704 }
705
706public:
707
708 // A generator for clast expressions.
709 //
710 // @param B The IRBuilder that defines where the code to calculate the
711 // clast expressions should be inserted.
712 // @param IVMAP A Map that translates strings describing the induction
713 // variables to the Values* that represent these variables
714 // on the LLVM side.
715 ClastExpCodeGen(IRBuilder<> &B, CharMapT *IVMap) : Builder(B), IVS(IVMap) {}
716
717 // Generates code to calculate a given clast expression.
718 //
719 // @param e The expression to calculate.
720 // @return The Value that holds the result.
Tobias Grosser55927aa2011-07-18 09:53:32 +0000721 Value *codegen(const clast_expr *e, Type *Ty) {
Tobias Grosser75805372011-04-29 06:27:02 +0000722 switch(e->type) {
723 case clast_expr_name:
724 return codegen((const clast_name *)e, Ty);
725 case clast_expr_term:
726 return codegen((const clast_term *)e, Ty);
727 case clast_expr_bin:
728 return codegen((const clast_binary *)e, Ty);
729 case clast_expr_red:
730 return codegen((const clast_reduction *)e, Ty);
731 default:
732 llvm_unreachable("Unknown clast expression!");
733 }
734 }
735
736 // @brief Reset the CharMap.
737 //
738 // This function is called to reset the CharMap to new one, while generating
739 // OpenMP code.
740 void setIVS(CharMapT *IVSNew) {
741 IVS = IVSNew;
742 }
743
744};
745
746class ClastStmtCodeGen {
747 // The Scop we code generate.
748 Scop *S;
749 ScalarEvolution &SE;
Tobias Grosser75805372011-04-29 06:27:02 +0000750 DominatorTree *DT;
Hongbin Zheng94c5df12011-05-06 02:38:20 +0000751 ScopDetection *SD;
Tobias Grosser75805372011-04-29 06:27:02 +0000752 Dependences *DP;
753 TargetData *TD;
754
755 // The Builder specifies the current location to code generate at.
756 IRBuilder<> &Builder;
757
758 // Map the Values from the old code to their counterparts in the new code.
759 ValueMapT ValueMap;
760
761 // clastVars maps from the textual representation of a clast variable to its
762 // current *Value. clast variables are scheduling variables, original
763 // induction variables or parameters. They are used either in loop bounds or
764 // to define the statement instance that is executed.
765 //
766 // for (s = 0; s < n + 3; ++i)
767 // for (t = s; t < m; ++j)
768 // Stmt(i = s + 3 * m, j = t);
769 //
770 // {s,t,i,j,n,m} is the set of clast variables in this clast.
771 CharMapT *clastVars;
772
773 // Codegenerator for clast expressions.
774 ClastExpCodeGen ExpGen;
775
776 // Do we currently generate parallel code?
777 bool parallelCodeGeneration;
778
779 std::vector<std::string> parallelLoops;
780
781public:
782
783 const std::vector<std::string> &getParallelLoops() {
784 return parallelLoops;
785 }
786
787 protected:
788 void codegen(const clast_assignment *a) {
789 (*clastVars)[a->LHS] = ExpGen.codegen(a->RHS,
790 TD->getIntPtrType(Builder.getContext()));
791 }
792
793 void codegen(const clast_assignment *a, ScopStmt *Statement,
794 unsigned Dimension, int vectorDim,
795 std::vector<ValueMapT> *VectorVMap = 0) {
796 Value *RHS = ExpGen.codegen(a->RHS,
797 TD->getIntPtrType(Builder.getContext()));
798
799 assert(!a->LHS && "Statement assignments do not have left hand side");
800 const PHINode *PN;
801 PN = Statement->getInductionVariableForDimension(Dimension);
802 const Value *V = PN;
803
Tobias Grosser75805372011-04-29 06:27:02 +0000804 if (VectorVMap)
805 (*VectorVMap)[vectorDim][V] = RHS;
806
807 ValueMap[V] = RHS;
808 }
809
810 void codegenSubstitutions(const clast_stmt *Assignment,
811 ScopStmt *Statement, int vectorDim = 0,
812 std::vector<ValueMapT> *VectorVMap = 0) {
813 int Dimension = 0;
814
815 while (Assignment) {
816 assert(CLAST_STMT_IS_A(Assignment, stmt_ass)
817 && "Substitions are expected to be assignments");
818 codegen((const clast_assignment *)Assignment, Statement, Dimension,
819 vectorDim, VectorVMap);
820 Assignment = Assignment->next;
821 Dimension++;
822 }
823 }
824
825 void codegen(const clast_user_stmt *u, std::vector<Value*> *IVS = NULL,
826 const char *iterator = NULL, isl_set *scatteringDomain = 0) {
827 ScopStmt *Statement = (ScopStmt *)u->statement->usr;
828 BasicBlock *BB = Statement->getBasicBlock();
829
830 if (u->substitutions)
831 codegenSubstitutions(u->substitutions, Statement);
832
833 int vectorDimensions = IVS ? IVS->size() : 1;
834
835 VectorValueMapT VectorValueMap(vectorDimensions);
836
837 if (IVS) {
838 assert (u->substitutions && "Substitutions expected!");
839 int i = 0;
840 for (std::vector<Value*>::iterator II = IVS->begin(), IE = IVS->end();
841 II != IE; ++II) {
842 (*clastVars)[iterator] = *II;
843 codegenSubstitutions(u->substitutions, Statement, i, &VectorValueMap);
844 i++;
845 }
846 }
847
848 BlockGenerator Generator(Builder, ValueMap, VectorValueMap, *Statement,
849 scatteringDomain);
850 Generator.copyBB(BB, DT);
851 }
852
853 void codegen(const clast_block *b) {
854 if (b->body)
855 codegen(b->body);
856 }
857
858 /// @brief Create a classical sequential loop.
859 void codegenForSequential(const clast_for *f, Value *lowerBound = 0,
860 Value *upperBound = 0) {
861 APInt Stride = APInt_from_MPZ(f->stride);
862 PHINode *IV;
863 Value *IncrementedIV;
864 BasicBlock *AfterBB;
865 // The value of lowerbound and upperbound will be supplied, if this
866 // function is called while generating OpenMP code. Otherwise get
867 // the values.
868 assert(((lowerBound && upperBound) || (!lowerBound && !upperBound))
869 && "Either give both bounds or none");
870 if (lowerBound == 0 || upperBound == 0) {
871 lowerBound = ExpGen.codegen(f->LB,
872 TD->getIntPtrType(Builder.getContext()));
873 upperBound = ExpGen.codegen(f->UB,
874 TD->getIntPtrType(Builder.getContext()));
875 }
876 createLoop(&Builder, lowerBound, upperBound, Stride, IV, AfterBB,
877 IncrementedIV, DT);
878
879 // Add loop iv to symbols.
880 (*clastVars)[f->iterator] = IV;
881
882 if (f->body)
883 codegen(f->body);
884
885 // Loop is finished, so remove its iv from the live symbols.
886 clastVars->erase(f->iterator);
887
888 BasicBlock *HeaderBB = *pred_begin(AfterBB);
889 BasicBlock *LastBodyBB = Builder.GetInsertBlock();
890 Builder.CreateBr(HeaderBB);
891 IV->addIncoming(IncrementedIV, LastBodyBB);
892 Builder.SetInsertPoint(AfterBB);
893 }
894
Tobias Grosser75805372011-04-29 06:27:02 +0000895 /// @brief Add a new definition of an openmp subfunction.
896 Function* addOpenMPSubfunction(Module *M) {
897 Function *F = Builder.GetInsertBlock()->getParent();
898 const std::string &Name = F->getNameStr() + ".omp_subfn";
899
Tobias Grosser851b96e2011-07-12 12:42:54 +0000900 std::vector<Type*> Arguments(1, Builder.getInt8PtrTy());
Tobias Grosser75805372011-04-29 06:27:02 +0000901 FunctionType *FT = FunctionType::get(Builder.getVoidTy(), Arguments, false);
902 Function *FN = Function::Create(FT, Function::InternalLinkage, Name, M);
Hongbin Zheng94c5df12011-05-06 02:38:20 +0000903 // Do not run any polly pass on the new function.
904 SD->markFunctionAsInvalid(FN);
Tobias Grosser75805372011-04-29 06:27:02 +0000905
906 Function::arg_iterator AI = FN->arg_begin();
907 AI->setName("omp.userContext");
908
909 return FN;
910 }
911
912 /// @brief Add values to the OpenMP structure.
913 ///
914 /// Create the subfunction structure and add the values from the list.
915 Value *addValuesToOpenMPStruct(SetVector<Value*> OMPDataVals,
916 Function *SubFunction) {
Tobias Grosser851b96e2011-07-12 12:42:54 +0000917 std::vector<Type*> structMembers;
Tobias Grosser75805372011-04-29 06:27:02 +0000918
919 // Create the structure.
920 for (unsigned i = 0; i < OMPDataVals.size(); i++)
921 structMembers.push_back(OMPDataVals[i]->getType());
922
Tobias Grosser75805372011-04-29 06:27:02 +0000923 StructType *structTy = StructType::get(Builder.getContext(),
924 structMembers);
Tobias Grosser75805372011-04-29 06:27:02 +0000925 // Store the values into the structure.
926 Value *structData = Builder.CreateAlloca(structTy, 0, "omp.userContext");
927 for (unsigned i = 0; i < OMPDataVals.size(); i++) {
928 Value *storeAddr = Builder.CreateStructGEP(structData, i);
929 Builder.CreateStore(OMPDataVals[i], storeAddr);
930 }
931
932 return structData;
933 }
934
935 /// @brief Create OpenMP structure values.
936 ///
937 /// Create a list of values that has to be stored into the subfuncition
938 /// structure.
939 SetVector<Value*> createOpenMPStructValues() {
940 SetVector<Value*> OMPDataVals;
941
942 // Push the clast variables available in the clastVars.
943 for (CharMapT::iterator I = clastVars->begin(), E = clastVars->end();
944 I != E; I++)
945 OMPDataVals.insert(I->second);
946
947 // Push the base addresses of memory references.
948 for (Scop::iterator SI = S->begin(), SE = S->end(); SI != SE; ++SI) {
949 ScopStmt *Stmt = *SI;
950 for (SmallVector<MemoryAccess*, 8>::iterator I = Stmt->memacc_begin(),
951 E = Stmt->memacc_end(); I != E; ++I) {
952 Value *BaseAddr = const_cast<Value*>((*I)->getBaseAddr());
953 OMPDataVals.insert((BaseAddr));
954 }
955 }
956
957 return OMPDataVals;
958 }
959
960 /// @brief Extract the values from the subfunction parameter.
961 ///
962 /// Extract the values from the subfunction parameter and update the clast
963 /// variables to point to the new values.
964 void extractValuesFromOpenMPStruct(CharMapT *clastVarsOMP,
965 SetVector<Value*> OMPDataVals,
966 Value *userContext) {
967 // Extract the clast variables.
968 unsigned i = 0;
969 for (CharMapT::iterator I = clastVars->begin(), E = clastVars->end();
970 I != E; I++) {
971 Value *loadAddr = Builder.CreateStructGEP(userContext, i);
972 (*clastVarsOMP)[I->first] = Builder.CreateLoad(loadAddr);
973 i++;
974 }
975
976 // Extract the base addresses of memory references.
977 for (unsigned j = i; j < OMPDataVals.size(); j++) {
978 Value *loadAddr = Builder.CreateStructGEP(userContext, j);
979 Value *baseAddr = OMPDataVals[j];
980 ValueMap[baseAddr] = Builder.CreateLoad(loadAddr);
981 }
982
983 }
984
985 /// @brief Add body to the subfunction.
986 void addOpenMPSubfunctionBody(Function *FN, const clast_for *f,
987 Value *structData,
988 SetVector<Value*> OMPDataVals) {
989 Module *M = Builder.GetInsertBlock()->getParent()->getParent();
990 LLVMContext &Context = FN->getContext();
Tobias Grosser55927aa2011-07-18 09:53:32 +0000991 IntegerType *intPtrTy = TD->getIntPtrType(Context);
Tobias Grosser75805372011-04-29 06:27:02 +0000992
993 // Store the previous basic block.
994 BasicBlock *PrevBB = Builder.GetInsertBlock();
995
996 // Create basic blocks.
997 BasicBlock *HeaderBB = BasicBlock::Create(Context, "omp.setup", FN);
998 BasicBlock *ExitBB = BasicBlock::Create(Context, "omp.exit", FN);
999 BasicBlock *checkNextBB = BasicBlock::Create(Context, "omp.checkNext", FN);
1000 BasicBlock *loadIVBoundsBB = BasicBlock::Create(Context, "omp.loadIVBounds",
1001 FN);
1002
1003 DT->addNewBlock(HeaderBB, PrevBB);
1004 DT->addNewBlock(ExitBB, HeaderBB);
1005 DT->addNewBlock(checkNextBB, HeaderBB);
1006 DT->addNewBlock(loadIVBoundsBB, HeaderBB);
1007
1008 // Fill up basic block HeaderBB.
1009 Builder.SetInsertPoint(HeaderBB);
1010 Value *lowerBoundPtr = Builder.CreateAlloca(intPtrTy, 0,
1011 "omp.lowerBoundPtr");
1012 Value *upperBoundPtr = Builder.CreateAlloca(intPtrTy, 0,
1013 "omp.upperBoundPtr");
1014 Value *userContext = Builder.CreateBitCast(FN->arg_begin(),
1015 structData->getType(),
1016 "omp.userContext");
1017
1018 CharMapT clastVarsOMP;
1019 extractValuesFromOpenMPStruct(&clastVarsOMP, OMPDataVals, userContext);
1020
1021 Builder.CreateBr(checkNextBB);
1022
1023 // Add code to check if another set of iterations will be executed.
1024 Builder.SetInsertPoint(checkNextBB);
1025 Function *runtimeNextFunction = M->getFunction("GOMP_loop_runtime_next");
1026 Value *ret1 = Builder.CreateCall2(runtimeNextFunction,
1027 lowerBoundPtr, upperBoundPtr);
1028 Value *hasNextSchedule = Builder.CreateTrunc(ret1, Builder.getInt1Ty(),
1029 "omp.hasNextScheduleBlock");
1030 Builder.CreateCondBr(hasNextSchedule, loadIVBoundsBB, ExitBB);
1031
1032 // Add code to to load the iv bounds for this set of iterations.
1033 Builder.SetInsertPoint(loadIVBoundsBB);
1034 Value *lowerBound = Builder.CreateLoad(lowerBoundPtr, "omp.lowerBound");
1035 Value *upperBound = Builder.CreateLoad(upperBoundPtr, "omp.upperBound");
1036
1037 // Subtract one as the upper bound provided by openmp is a < comparison
1038 // whereas the codegenForSequential function creates a <= comparison.
1039 upperBound = Builder.CreateSub(upperBound, ConstantInt::get(intPtrTy, 1),
1040 "omp.upperBoundAdjusted");
1041
1042 // Use clastVarsOMP during code generation of the OpenMP subfunction.
1043 CharMapT *oldClastVars = clastVars;
1044 clastVars = &clastVarsOMP;
1045 ExpGen.setIVS(&clastVarsOMP);
1046
1047 codegenForSequential(f, lowerBound, upperBound);
1048
1049 // Restore the old clastVars.
1050 clastVars = oldClastVars;
1051 ExpGen.setIVS(oldClastVars);
1052
1053 Builder.CreateBr(checkNextBB);
1054
1055 // Add code to terminate this openmp subfunction.
1056 Builder.SetInsertPoint(ExitBB);
1057 Function *endnowaitFunction = M->getFunction("GOMP_loop_end_nowait");
1058 Builder.CreateCall(endnowaitFunction);
1059 Builder.CreateRetVoid();
1060
1061 // Restore the builder back to previous basic block.
1062 Builder.SetInsertPoint(PrevBB);
1063 }
1064
1065 /// @brief Create an OpenMP parallel for loop.
1066 ///
1067 /// This loop reflects a loop as if it would have been created by an OpenMP
1068 /// statement.
1069 void codegenForOpenMP(const clast_for *f) {
1070 Module *M = Builder.GetInsertBlock()->getParent()->getParent();
Tobias Grosser55927aa2011-07-18 09:53:32 +00001071 IntegerType *intPtrTy = TD->getIntPtrType(Builder.getContext());
Tobias Grosser75805372011-04-29 06:27:02 +00001072
1073 Function *SubFunction = addOpenMPSubfunction(M);
1074 SetVector<Value*> OMPDataVals = createOpenMPStructValues();
1075 Value *structData = addValuesToOpenMPStruct(OMPDataVals, SubFunction);
1076
1077 addOpenMPSubfunctionBody(SubFunction, f, structData, OMPDataVals);
1078
1079 // Create call for GOMP_parallel_loop_runtime_start.
1080 Value *subfunctionParam = Builder.CreateBitCast(structData,
1081 Builder.getInt8PtrTy(),
1082 "omp_data");
1083
1084 Value *numberOfThreads = Builder.getInt32(0);
1085 Value *lowerBound = ExpGen.codegen(f->LB, intPtrTy);
1086 Value *upperBound = ExpGen.codegen(f->UB, intPtrTy);
1087
1088 // Add one as the upper bound provided by openmp is a < comparison
1089 // whereas the codegenForSequential function creates a <= comparison.
1090 upperBound = Builder.CreateAdd(upperBound, ConstantInt::get(intPtrTy, 1));
1091 APInt APStride = APInt_from_MPZ(f->stride);
1092 Value *stride = ConstantInt::get(intPtrTy,
1093 APStride.zext(intPtrTy->getBitWidth()));
1094
1095 SmallVector<Value *, 6> Arguments;
1096 Arguments.push_back(SubFunction);
1097 Arguments.push_back(subfunctionParam);
1098 Arguments.push_back(numberOfThreads);
1099 Arguments.push_back(lowerBound);
1100 Arguments.push_back(upperBound);
1101 Arguments.push_back(stride);
1102
1103 Function *parallelStartFunction =
1104 M->getFunction("GOMP_parallel_loop_runtime_start");
Tobias Grosser0679e172011-07-15 22:54:41 +00001105 Builder.CreateCall(parallelStartFunction, Arguments);
Tobias Grosser75805372011-04-29 06:27:02 +00001106
1107 // Create call to the subfunction.
1108 Builder.CreateCall(SubFunction, subfunctionParam);
1109
1110 // Create call for GOMP_parallel_end.
1111 Function *FN = M->getFunction("GOMP_parallel_end");
1112 Builder.CreateCall(FN);
1113 }
1114
1115 bool isInnermostLoop(const clast_for *f) {
1116 const clast_stmt *stmt = f->body;
1117
1118 while (stmt) {
1119 if (!CLAST_STMT_IS_A(stmt, stmt_user))
1120 return false;
1121
1122 stmt = stmt->next;
1123 }
1124
1125 return true;
1126 }
1127
1128 /// @brief Get the number of loop iterations for this loop.
1129 /// @param f The clast for loop to check.
1130 int getNumberOfIterations(const clast_for *f) {
1131 isl_set *loopDomain = isl_set_copy(isl_set_from_cloog_domain(f->domain));
1132 isl_set *tmp = isl_set_copy(loopDomain);
1133
1134 // Calculate a map similar to the identity map, but with the last input
1135 // and output dimension not related.
1136 // [i0, i1, i2, i3] -> [i0, i1, i2, o0]
1137 isl_dim *dim = isl_set_get_dim(loopDomain);
1138 dim = isl_dim_drop_outputs(dim, isl_set_n_dim(loopDomain) - 2, 1);
1139 dim = isl_dim_map_from_set(dim);
1140 isl_map *identity = isl_map_identity(dim);
1141 identity = isl_map_add_dims(identity, isl_dim_in, 1);
1142 identity = isl_map_add_dims(identity, isl_dim_out, 1);
1143
1144 isl_map *map = isl_map_from_domain_and_range(tmp, loopDomain);
1145 map = isl_map_intersect(map, identity);
1146
1147 isl_map *lexmax = isl_map_lexmax(isl_map_copy(map));
Tobias Grosserb76f38532011-08-20 11:11:25 +00001148 isl_map *lexmin = isl_map_lexmin(map);
Tobias Grosser75805372011-04-29 06:27:02 +00001149 isl_map *sub = isl_map_sum(lexmax, isl_map_neg(lexmin));
1150
1151 isl_set *elements = isl_map_range(sub);
1152
Tobias Grosserc532f122011-08-25 08:40:59 +00001153 if (!isl_set_is_singleton(elements)) {
1154 isl_set_free(elements);
Tobias Grosser75805372011-04-29 06:27:02 +00001155 return -1;
Tobias Grosserc532f122011-08-25 08:40:59 +00001156 }
Tobias Grosser75805372011-04-29 06:27:02 +00001157
1158 isl_point *p = isl_set_sample_point(elements);
1159
1160 isl_int v;
1161 isl_int_init(v);
1162 isl_point_get_coordinate(p, isl_dim_set, isl_set_n_dim(loopDomain) - 1, &v);
1163 int numberIterations = isl_int_get_si(v);
1164 isl_int_clear(v);
Tobias Grosserb76f38532011-08-20 11:11:25 +00001165 isl_point_free(p);
Tobias Grosser75805372011-04-29 06:27:02 +00001166
1167 return (numberIterations) / isl_int_get_si(f->stride) + 1;
1168 }
1169
1170 /// @brief Create vector instructions for this loop.
1171 void codegenForVector(const clast_for *f) {
1172 DEBUG(dbgs() << "Vectorizing loop '" << f->iterator << "'\n";);
1173 int vectorWidth = getNumberOfIterations(f);
1174
1175 Value *LB = ExpGen.codegen(f->LB,
1176 TD->getIntPtrType(Builder.getContext()));
1177
1178 APInt Stride = APInt_from_MPZ(f->stride);
Tobias Grosser55927aa2011-07-18 09:53:32 +00001179 IntegerType *LoopIVType = dyn_cast<IntegerType>(LB->getType());
Tobias Grosser75805372011-04-29 06:27:02 +00001180 Stride = Stride.zext(LoopIVType->getBitWidth());
1181 Value *StrideValue = ConstantInt::get(LoopIVType, Stride);
1182
1183 std::vector<Value*> IVS(vectorWidth);
1184 IVS[0] = LB;
1185
1186 for (int i = 1; i < vectorWidth; i++)
1187 IVS[i] = Builder.CreateAdd(IVS[i-1], StrideValue, "p_vector_iv");
1188
1189 isl_set *scatteringDomain = isl_set_from_cloog_domain(f->domain);
1190
1191 // Add loop iv to symbols.
1192 (*clastVars)[f->iterator] = LB;
1193
1194 const clast_stmt *stmt = f->body;
1195
1196 while (stmt) {
1197 codegen((const clast_user_stmt *)stmt, &IVS, f->iterator,
1198 scatteringDomain);
1199 stmt = stmt->next;
1200 }
1201
1202 // Loop is finished, so remove its iv from the live symbols.
1203 clastVars->erase(f->iterator);
1204 }
1205
1206 void codegen(const clast_for *f) {
Hongbin Zhengdbdebe22011-05-03 13:46:58 +00001207 if (Vector && isInnermostLoop(f) && DP->isParallelFor(f)
Tobias Grosser75805372011-04-29 06:27:02 +00001208 && (-1 != getNumberOfIterations(f))
1209 && (getNumberOfIterations(f) <= 16)) {
1210 codegenForVector(f);
Hongbin Zhengdbdebe22011-05-03 13:46:58 +00001211 } else if (OpenMP && !parallelCodeGeneration && DP->isParallelFor(f)) {
Tobias Grosser75805372011-04-29 06:27:02 +00001212 parallelCodeGeneration = true;
1213 parallelLoops.push_back(f->iterator);
1214 codegenForOpenMP(f);
1215 parallelCodeGeneration = false;
1216 } else
1217 codegenForSequential(f);
1218 }
1219
1220 Value *codegen(const clast_equation *eq) {
1221 Value *LHS = ExpGen.codegen(eq->LHS,
1222 TD->getIntPtrType(Builder.getContext()));
1223 Value *RHS = ExpGen.codegen(eq->RHS,
1224 TD->getIntPtrType(Builder.getContext()));
1225 CmpInst::Predicate P;
1226
1227 if (eq->sign == 0)
1228 P = ICmpInst::ICMP_EQ;
1229 else if (eq->sign > 0)
1230 P = ICmpInst::ICMP_SGE;
1231 else
1232 P = ICmpInst::ICMP_SLE;
1233
1234 return Builder.CreateICmp(P, LHS, RHS);
1235 }
1236
1237 void codegen(const clast_guard *g) {
1238 Function *F = Builder.GetInsertBlock()->getParent();
1239 LLVMContext &Context = F->getContext();
1240 BasicBlock *ThenBB = BasicBlock::Create(Context, "polly.then", F);
1241 BasicBlock *MergeBB = BasicBlock::Create(Context, "polly.merge", F);
1242 DT->addNewBlock(ThenBB, Builder.GetInsertBlock());
1243 DT->addNewBlock(MergeBB, Builder.GetInsertBlock());
1244
1245 Value *Predicate = codegen(&(g->eq[0]));
1246
1247 for (int i = 1; i < g->n; ++i) {
1248 Value *TmpPredicate = codegen(&(g->eq[i]));
1249 Predicate = Builder.CreateAnd(Predicate, TmpPredicate);
1250 }
1251
1252 Builder.CreateCondBr(Predicate, ThenBB, MergeBB);
1253 Builder.SetInsertPoint(ThenBB);
1254
1255 codegen(g->then);
1256
1257 Builder.CreateBr(MergeBB);
1258 Builder.SetInsertPoint(MergeBB);
1259 }
1260
1261 void codegen(const clast_stmt *stmt) {
1262 if (CLAST_STMT_IS_A(stmt, stmt_root))
1263 assert(false && "No second root statement expected");
1264 else if (CLAST_STMT_IS_A(stmt, stmt_ass))
1265 codegen((const clast_assignment *)stmt);
1266 else if (CLAST_STMT_IS_A(stmt, stmt_user))
1267 codegen((const clast_user_stmt *)stmt);
1268 else if (CLAST_STMT_IS_A(stmt, stmt_block))
1269 codegen((const clast_block *)stmt);
1270 else if (CLAST_STMT_IS_A(stmt, stmt_for))
1271 codegen((const clast_for *)stmt);
1272 else if (CLAST_STMT_IS_A(stmt, stmt_guard))
1273 codegen((const clast_guard *)stmt);
1274
1275 if (stmt->next)
1276 codegen(stmt->next);
1277 }
1278
1279 void addParameters(const CloogNames *names) {
Tobias Grosser97fb5ac2011-06-30 19:39:10 +00001280 SCEVExpander Rewriter(SE, "polly");
Tobias Grosser75805372011-04-29 06:27:02 +00001281
1282 // Create an instruction that specifies the location where the parameters
1283 // are expanded.
1284 CastInst::CreateIntegerCast(ConstantInt::getTrue(Builder.getContext()),
1285 Builder.getInt16Ty(), false, "insertInst",
1286 Builder.GetInsertBlock());
1287
1288 int i = 0;
1289 for (Scop::param_iterator PI = S->param_begin(), PE = S->param_end();
1290 PI != PE; ++PI) {
1291 assert(i < names->nb_parameters && "Not enough parameter names");
1292
1293 const SCEV *Param = *PI;
Tobias Grosser55927aa2011-07-18 09:53:32 +00001294 Type *Ty = Param->getType();
Tobias Grosser75805372011-04-29 06:27:02 +00001295
1296 Instruction *insertLocation = --(Builder.GetInsertBlock()->end());
1297 Value *V = Rewriter.expandCodeFor(Param, Ty, insertLocation);
1298 (*clastVars)[names->parameters[i]] = V;
1299
1300 ++i;
1301 }
1302 }
1303
1304 public:
1305 void codegen(const clast_root *r) {
1306 clastVars = new CharMapT();
1307 addParameters(r->names);
1308 ExpGen.setIVS(clastVars);
1309
1310 parallelCodeGeneration = false;
1311
1312 const clast_stmt *stmt = (const clast_stmt*) r;
1313 if (stmt->next)
1314 codegen(stmt->next);
1315
1316 delete clastVars;
1317 }
1318
1319 ClastStmtCodeGen(Scop *scop, ScalarEvolution &se, DominatorTree *dt,
Hongbin Zheng94c5df12011-05-06 02:38:20 +00001320 ScopDetection *sd, Dependences *dp, TargetData *td,
1321 IRBuilder<> &B) :
1322 S(scop), SE(se), DT(dt), SD(sd), DP(dp), TD(td), Builder(B),
1323 ExpGen(Builder, NULL) {}
Tobias Grosser75805372011-04-29 06:27:02 +00001324
1325};
1326}
1327
1328namespace {
1329class CodeGeneration : public ScopPass {
1330 Region *region;
1331 Scop *S;
1332 DominatorTree *DT;
1333 ScalarEvolution *SE;
1334 ScopDetection *SD;
Tobias Grosser75805372011-04-29 06:27:02 +00001335 TargetData *TD;
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001336 RegionInfo *RI;
Tobias Grosser75805372011-04-29 06:27:02 +00001337
1338 std::vector<std::string> parallelLoops;
1339
1340 public:
1341 static char ID;
1342
1343 CodeGeneration() : ScopPass(ID) {}
1344
Tobias Grosser75805372011-04-29 06:27:02 +00001345 // Adding prototypes required if OpenMP is enabled.
1346 void addOpenMPDefinitions(IRBuilder<> &Builder)
1347 {
1348 Module *M = Builder.GetInsertBlock()->getParent()->getParent();
1349 LLVMContext &Context = Builder.getContext();
Tobias Grosser851b96e2011-07-12 12:42:54 +00001350 IntegerType *intPtrTy = TD->getIntPtrType(Context);
Tobias Grosser75805372011-04-29 06:27:02 +00001351
1352 if (!M->getFunction("GOMP_parallel_end")) {
1353 FunctionType *FT = FunctionType::get(Type::getVoidTy(Context), false);
1354 Function::Create(FT, Function::ExternalLinkage, "GOMP_parallel_end", M);
1355 }
1356
1357 if (!M->getFunction("GOMP_parallel_loop_runtime_start")) {
1358 // Type of first argument.
Tobias Grosser851b96e2011-07-12 12:42:54 +00001359 std::vector<Type*> Arguments(1, Builder.getInt8PtrTy());
Tobias Grosser75805372011-04-29 06:27:02 +00001360 FunctionType *FnArgTy = FunctionType::get(Builder.getVoidTy(), Arguments,
1361 false);
1362 PointerType *FnPtrTy = PointerType::getUnqual(FnArgTy);
1363
Tobias Grosser851b96e2011-07-12 12:42:54 +00001364 std::vector<Type*> args;
Tobias Grosser75805372011-04-29 06:27:02 +00001365 args.push_back(FnPtrTy);
1366 args.push_back(Builder.getInt8PtrTy());
1367 args.push_back(Builder.getInt32Ty());
1368 args.push_back(intPtrTy);
1369 args.push_back(intPtrTy);
1370 args.push_back(intPtrTy);
1371
1372 FunctionType *type = FunctionType::get(Builder.getVoidTy(), args, false);
1373 Function::Create(type, Function::ExternalLinkage,
1374 "GOMP_parallel_loop_runtime_start", M);
1375 }
1376
1377 if (!M->getFunction("GOMP_loop_runtime_next")) {
1378 PointerType *intLongPtrTy = PointerType::getUnqual(intPtrTy);
1379
Tobias Grosser851b96e2011-07-12 12:42:54 +00001380 std::vector<Type*> args;
Tobias Grosser75805372011-04-29 06:27:02 +00001381 args.push_back(intLongPtrTy);
1382 args.push_back(intLongPtrTy);
1383
1384 FunctionType *type = FunctionType::get(Builder.getInt8Ty(), args, false);
1385 Function::Create(type, Function::ExternalLinkage,
1386 "GOMP_loop_runtime_next", M);
1387 }
1388
1389 if (!M->getFunction("GOMP_loop_end_nowait")) {
1390 FunctionType *FT = FunctionType::get(Builder.getVoidTy(),
Tobias Grosser851b96e2011-07-12 12:42:54 +00001391 std::vector<Type*>(), false);
Tobias Grosser75805372011-04-29 06:27:02 +00001392 Function::Create(FT, Function::ExternalLinkage,
1393 "GOMP_loop_end_nowait", M);
1394 }
1395 }
1396
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001397 // Split the entry edge of the region and generate a new basic block on this
1398 // edge. This function also updates ScopInfo and RegionInfo.
1399 //
1400 // @param region The region where the entry edge will be splitted.
1401 BasicBlock *splitEdgeAdvanced(Region *region) {
1402 BasicBlock *newBlock;
1403 BasicBlock *splitBlock;
1404
1405 newBlock = SplitEdge(region->getEnteringBlock(), region->getEntry(), this);
1406
1407 if (DT->dominates(region->getEntry(), newBlock)) {
1408 // Update ScopInfo.
1409 for (Scop::iterator SI = S->begin(), SE = S->end(); SI != SE; ++SI)
1410 if ((*SI)->getBasicBlock() == newBlock) {
1411 (*SI)->setBasicBlock(newBlock);
1412 break;
1413 }
1414
1415 // Update RegionInfo.
1416 splitBlock = region->getEntry();
1417 region->replaceEntry(newBlock);
Tobias Grosser7a16c892011-05-14 19:01:55 +00001418 RI->setRegionFor(newBlock, region);
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001419 } else {
1420 RI->setRegionFor(newBlock, region->getParent());
1421 splitBlock = newBlock;
1422 }
1423
1424 return splitBlock;
1425 }
1426
1427 // Create a split block that branches either to the old code or to a new basic
1428 // block where the new code can be inserted.
1429 //
1430 // @param builder A builder that will be set to point to a basic block, where
1431 // the new code can be generated.
1432 // @return The split basic block.
1433 BasicBlock *addSplitAndStartBlock(IRBuilder<> *builder) {
1434 BasicBlock *splitBlock = splitEdgeAdvanced(region);
1435
1436 splitBlock->setName("polly.enterScop");
1437
1438 Function *function = splitBlock->getParent();
1439 BasicBlock *startBlock = BasicBlock::Create(function->getContext(),
1440 "polly.start", function);
1441 splitBlock->getTerminator()->eraseFromParent();
1442 builder->SetInsertPoint(splitBlock);
1443 builder->CreateCondBr(builder->getTrue(), startBlock, region->getEntry());
1444 DT->addNewBlock(startBlock, splitBlock);
1445
1446 // Start code generation here.
1447 builder->SetInsertPoint(startBlock);
1448 return splitBlock;
1449 }
1450
1451 // Merge the control flow of the newly generated code with the existing code.
1452 //
1453 // @param splitBlock The basic block where the control flow was split between
1454 // old and new version of the Scop.
1455 // @param builder An IRBuilder that points to the last instruction of the
1456 // newly generated code.
1457 void mergeControlFlow(BasicBlock *splitBlock, IRBuilder<> *builder) {
1458 BasicBlock *mergeBlock;
1459 Region *R = region;
1460
1461 if (R->getExit()->getSinglePredecessor())
1462 // No splitEdge required. A block with a single predecessor cannot have
1463 // PHI nodes that would complicate life.
1464 mergeBlock = R->getExit();
1465 else {
1466 mergeBlock = SplitEdge(R->getExitingBlock(), R->getExit(), this);
1467 // SplitEdge will never split R->getExit(), as R->getExit() has more than
1468 // one predecessor. Hence, mergeBlock is always a newly generated block.
1469 mergeBlock->setName("polly.finalMerge");
1470 R->replaceExit(mergeBlock);
1471 }
1472
1473 builder->CreateBr(mergeBlock);
1474
1475 if (DT->dominates(splitBlock, mergeBlock))
1476 DT->changeImmediateDominator(mergeBlock, splitBlock);
1477 }
1478
Tobias Grosser75805372011-04-29 06:27:02 +00001479 bool runOnScop(Scop &scop) {
1480 S = &scop;
1481 region = &S->getRegion();
Tobias Grosser75805372011-04-29 06:27:02 +00001482 DT = &getAnalysis<DominatorTree>();
1483 Dependences *DP = &getAnalysis<Dependences>();
1484 SE = &getAnalysis<ScalarEvolution>();
Tobias Grosser75805372011-04-29 06:27:02 +00001485 SD = &getAnalysis<ScopDetection>();
1486 TD = &getAnalysis<TargetData>();
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001487 RI = &getAnalysis<RegionInfo>();
Tobias Grosser75805372011-04-29 06:27:02 +00001488
1489 parallelLoops.clear();
1490
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001491 assert(region->isSimple() && "Only simple regions are supported");
Tobias Grosser76d7c522011-05-14 19:01:37 +00001492
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001493 // In the CFG and we generate next to original code of the Scop the
1494 // optimized version. Both the new and the original version of the code
1495 // remain in the CFG. A branch statement decides which version is executed.
1496 // At the moment, we always execute the newly generated version (the old one
1497 // is dead code eliminated by the cleanup passes). Later we may decide to
1498 // execute the new version only under certain conditions. This will be the
1499 // case if we support constructs for which we cannot prove all assumptions
1500 // at compile time.
1501 //
1502 // Before transformation:
1503 //
1504 // bb0
1505 // |
1506 // orig_scop
1507 // |
1508 // bb1
1509 //
1510 // After transformation:
1511 // bb0
1512 // |
1513 // polly.splitBlock
Tobias Grosser2bd3af12011-08-01 22:39:00 +00001514 // / \.
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001515 // | startBlock
1516 // | |
1517 // orig_scop new_scop
1518 // \ /
1519 // \ /
1520 // bb1 (joinBlock)
1521 IRBuilder<> builder(region->getEntry());
Tobias Grosser75805372011-04-29 06:27:02 +00001522
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001523 // The builder will be set to startBlock.
1524 BasicBlock *splitBlock = addSplitAndStartBlock(&builder);
Tobias Grosser75805372011-04-29 06:27:02 +00001525
1526 if (OpenMP)
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001527 addOpenMPDefinitions(builder);
Tobias Grosser75805372011-04-29 06:27:02 +00001528
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001529 ClastStmtCodeGen CodeGen(S, *SE, DT, SD, DP, TD, builder);
Tobias Grosser3fdecae2011-05-14 19:02:39 +00001530 CloogInfo &C = getAnalysis<CloogInfo>();
1531 CodeGen.codegen(C.getClast());
Tobias Grosser75805372011-04-29 06:27:02 +00001532
Tobias Grosser75805372011-04-29 06:27:02 +00001533 parallelLoops.insert(parallelLoops.begin(),
1534 CodeGen.getParallelLoops().begin(),
1535 CodeGen.getParallelLoops().end());
1536
Tobias Grosser8c4cfc322011-05-14 19:01:49 +00001537 mergeControlFlow(splitBlock, &builder);
Tobias Grosser75805372011-04-29 06:27:02 +00001538
Tobias Grosserabb6dcd2011-05-14 19:02:34 +00001539 return true;
Tobias Grosser75805372011-04-29 06:27:02 +00001540 }
1541
1542 virtual void printScop(raw_ostream &OS) const {
1543 for (std::vector<std::string>::const_iterator PI = parallelLoops.begin(),
1544 PE = parallelLoops.end(); PI != PE; ++PI)
1545 OS << "Parallel loop with iterator '" << *PI << "' generated\n";
1546 }
1547
1548 virtual void getAnalysisUsage(AnalysisUsage &AU) const {
1549 AU.addRequired<CloogInfo>();
1550 AU.addRequired<Dependences>();
1551 AU.addRequired<DominatorTree>();
1552 AU.addRequired<ScalarEvolution>();
Tobias Grosser75805372011-04-29 06:27:02 +00001553 AU.addRequired<RegionInfo>();
1554 AU.addRequired<ScopDetection>();
1555 AU.addRequired<ScopInfo>();
1556 AU.addRequired<TargetData>();
1557
1558 AU.addPreserved<CloogInfo>();
1559 AU.addPreserved<Dependences>();
Tobias Grosser5d6eb862011-05-14 19:02:45 +00001560
Tobias Grosser4e3f9a42011-05-23 15:23:36 +00001561 // FIXME: We do not create LoopInfo for the newly generated loops.
Tobias Grosser75805372011-04-29 06:27:02 +00001562 AU.addPreserved<LoopInfo>();
1563 AU.addPreserved<DominatorTree>();
Tobias Grosser75805372011-04-29 06:27:02 +00001564 AU.addPreserved<ScopDetection>();
1565 AU.addPreserved<ScalarEvolution>();
Tobias Grosser5d6eb862011-05-14 19:02:45 +00001566
Tobias Grosser4e3f9a42011-05-23 15:23:36 +00001567 // FIXME: We do not yet add regions for the newly generated code to the
1568 // region tree.
Tobias Grosser75805372011-04-29 06:27:02 +00001569 AU.addPreserved<RegionInfo>();
1570 AU.addPreserved<TempScopInfo>();
1571 AU.addPreserved<ScopInfo>();
1572 AU.addPreservedID(IndependentBlocksID);
1573 }
1574};
1575}
1576
1577char CodeGeneration::ID = 1;
1578
1579static RegisterPass<CodeGeneration>
1580Z("polly-codegen", "Polly - Create LLVM-IR from the polyhedral information");
1581
1582Pass* polly::createCodeGenerationPass() {
1583 return new CodeGeneration();
1584}