1 //===------ 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 #include "polly/CodeGen/Cloog.h"
24 #ifdef CLOOG_FOUND
25 
26 #define DEBUG_TYPE "polly-codegen"
27 #include "polly/Dependences.h"
28 #include "polly/LinkAllPasses.h"
29 #include "polly/ScopInfo.h"
30 #include "polly/TempScopInfo.h"
31 #include "polly/CodeGen/CodeGeneration.h"
32 #include "polly/CodeGen/BlockGenerators.h"
33 #include "polly/CodeGen/LoopGenerators.h"
34 #include "polly/CodeGen/PTXGenerator.h"
35 #include "polly/CodeGen/Utils.h"
36 #include "polly/Support/GICHelper.h"
37 
38 #include "llvm/Module.h"
39 #include "llvm/ADT/SetVector.h"
40 #include "llvm/ADT/PostOrderIterator.h"
41 #include "llvm/Analysis/LoopInfo.h"
42 #include "llvm/Analysis/ScalarEvolutionExpander.h"
43 #include "llvm/Support/CommandLine.h"
44 #include "llvm/Support/Debug.h"
45 #include "llvm/DataLayout.h"
46 #include "llvm/Transforms/Utils/BasicBlockUtils.h"
47 
48 #define CLOOG_INT_GMP 1
49 #include "cloog/cloog.h"
50 #include "cloog/isl/cloog.h"
51 
52 #include "isl/aff.h"
53 
54 #include <vector>
55 #include <utility>
56 
57 using namespace polly;
58 using namespace llvm;
59 
60 struct isl_set;
61 
62 namespace polly {
63 static cl::opt<bool>
64 OpenMP("enable-polly-openmp",
65        cl::desc("Generate OpenMP parallel code"), cl::Hidden,
66        cl::value_desc("OpenMP code generation enabled if true"),
67        cl::init(false), cl::ZeroOrMore);
68 
69 #ifdef GPU_CODEGEN
70 static cl::opt<bool>
71 GPGPU("enable-polly-gpgpu",
72        cl::desc("Generate GPU parallel code"), cl::Hidden,
73        cl::value_desc("GPGPU code generation enabled if true"),
74        cl::init(false), cl::ZeroOrMore);
75 
76 static cl::opt<std::string>
77 GPUTriple("polly-gpgpu-triple",
78        cl::desc("Target triple for GPU code generation"),
79        cl::Hidden, cl::init(""));
80 #endif /* GPU_CODEGEN */
81 
82 static cl::opt<bool>
83 AtLeastOnce("enable-polly-atLeastOnce",
84        cl::desc("Give polly the hint, that every loop is executed at least"
85                 "once"), cl::Hidden,
86        cl::value_desc("OpenMP code generation enabled if true"),
87        cl::init(false), cl::ZeroOrMore);
88 
89 typedef DenseMap<const char*, Value*> CharMapT;
90 
91 /// Class to generate LLVM-IR that calculates the value of a clast_expr.
92 class ClastExpCodeGen {
93   IRBuilder<> &Builder;
94   const CharMapT &IVS;
95 
96   Value *codegen(const clast_name *e, Type *Ty);
97   Value *codegen(const clast_term *e, Type *Ty);
98   Value *codegen(const clast_binary *e, Type *Ty);
99   Value *codegen(const clast_reduction *r, Type *Ty);
100 public:
101 
102   // A generator for clast expressions.
103   //
104   // @param B The IRBuilder that defines where the code to calculate the
105   //          clast expressions should be inserted.
106   // @param IVMAP A Map that translates strings describing the induction
107   //              variables to the Values* that represent these variables
108   //              on the LLVM side.
109   ClastExpCodeGen(IRBuilder<> &B, CharMapT &IVMap);
110 
111   // Generates code to calculate a given clast expression.
112   //
113   // @param e The expression to calculate.
114   // @return The Value that holds the result.
115   Value *codegen(const clast_expr *e, Type *Ty);
116 };
117 
118 Value *ClastExpCodeGen::codegen(const clast_name *e, Type *Ty) {
119   CharMapT::const_iterator I = IVS.find(e->name);
120 
121   assert(I != IVS.end() && "Clast name not found");
122 
123   return Builder.CreateSExtOrBitCast(I->second, Ty);
124 }
125 
126 Value *ClastExpCodeGen::codegen(const clast_term *e, Type *Ty) {
127   APInt a = APInt_from_MPZ(e->val);
128 
129   Value *ConstOne = ConstantInt::get(Builder.getContext(), a);
130   ConstOne = Builder.CreateSExtOrBitCast(ConstOne, Ty);
131 
132   if (!e->var)
133     return ConstOne;
134 
135   Value *var = codegen(e->var, Ty);
136   return Builder.CreateMul(ConstOne, var);
137 }
138 
139 Value *ClastExpCodeGen::codegen(const clast_binary *e, Type *Ty) {
140   Value *LHS = codegen(e->LHS, Ty);
141 
142   APInt RHS_AP = APInt_from_MPZ(e->RHS);
143 
144   Value *RHS = ConstantInt::get(Builder.getContext(), RHS_AP);
145   RHS = Builder.CreateSExtOrBitCast(RHS, Ty);
146 
147   switch (e->type) {
148   case clast_bin_mod:
149     return Builder.CreateSRem(LHS, RHS);
150   case clast_bin_fdiv:
151     {
152       // floord(n,d) ((n < 0) ? (n - d + 1) : n) / d
153       Value *One = ConstantInt::get(Ty, 1);
154       Value *Zero = ConstantInt::get(Ty, 0);
155       Value *Sum1 = Builder.CreateSub(LHS, RHS);
156       Value *Sum2 = Builder.CreateAdd(Sum1, One);
157       Value *isNegative = Builder.CreateICmpSLT(LHS, Zero);
158       Value *Dividend = Builder.CreateSelect(isNegative, Sum2, LHS);
159       return Builder.CreateSDiv(Dividend, RHS);
160     }
161   case clast_bin_cdiv:
162     {
163       // ceild(n,d) ((n < 0) ? n : (n + d - 1)) / d
164       Value *One = ConstantInt::get(Ty, 1);
165       Value *Zero = ConstantInt::get(Ty, 0);
166       Value *Sum1 = Builder.CreateAdd(LHS, RHS);
167       Value *Sum2 = Builder.CreateSub(Sum1, One);
168       Value *isNegative = Builder.CreateICmpSLT(LHS, Zero);
169       Value *Dividend = Builder.CreateSelect(isNegative, LHS, Sum2);
170       return Builder.CreateSDiv(Dividend, RHS);
171     }
172   case clast_bin_div:
173     return Builder.CreateSDiv(LHS, RHS);
174   };
175 
176   llvm_unreachable("Unknown clast binary expression type");
177 }
178 
179 Value *ClastExpCodeGen::codegen(const clast_reduction *r, Type *Ty) {
180   assert((   r->type == clast_red_min
181              || r->type == clast_red_max
182              || r->type == clast_red_sum)
183          && "Clast reduction type not supported");
184   Value *old = codegen(r->elts[0], Ty);
185 
186   for (int i=1; i < r->n; ++i) {
187     Value *exprValue = codegen(r->elts[i], Ty);
188 
189     switch (r->type) {
190     case clast_red_min:
191       {
192         Value *cmp = Builder.CreateICmpSLT(old, exprValue);
193         old = Builder.CreateSelect(cmp, old, exprValue);
194         break;
195       }
196     case clast_red_max:
197       {
198         Value *cmp = Builder.CreateICmpSGT(old, exprValue);
199         old = Builder.CreateSelect(cmp, old, exprValue);
200         break;
201       }
202     case clast_red_sum:
203       old = Builder.CreateAdd(old, exprValue);
204       break;
205     }
206   }
207 
208   return old;
209 }
210 
211 ClastExpCodeGen::ClastExpCodeGen(IRBuilder<> &B, CharMapT &IVMap)
212   : Builder(B), IVS(IVMap) {}
213 
214 Value *ClastExpCodeGen::codegen(const clast_expr *e, Type *Ty) {
215   switch(e->type) {
216   case clast_expr_name:
217     return codegen((const clast_name *)e, Ty);
218   case clast_expr_term:
219     return codegen((const clast_term *)e, Ty);
220   case clast_expr_bin:
221     return codegen((const clast_binary *)e, Ty);
222   case clast_expr_red:
223     return codegen((const clast_reduction *)e, Ty);
224   }
225 
226   llvm_unreachable("Unknown clast expression!");
227 }
228 
229 class ClastStmtCodeGen {
230 public:
231   const std::vector<std::string> &getParallelLoops();
232 
233 private:
234   // The Scop we code generate.
235   Scop *S;
236   Pass *P;
237 
238   // The Builder specifies the current location to code generate at.
239   IRBuilder<> &Builder;
240 
241   // Map the Values from the old code to their counterparts in the new code.
242   ValueMapT ValueMap;
243 
244   // clastVars maps from the textual representation of a clast variable to its
245   // current *Value. clast variables are scheduling variables, original
246   // induction variables or parameters. They are used either in loop bounds or
247   // to define the statement instance that is executed.
248   //
249   //   for (s = 0; s < n + 3; ++i)
250   //     for (t = s; t < m; ++j)
251   //       Stmt(i = s + 3 * m, j = t);
252   //
253   // {s,t,i,j,n,m} is the set of clast variables in this clast.
254   CharMapT ClastVars;
255 
256   // Codegenerator for clast expressions.
257   ClastExpCodeGen ExpGen;
258 
259   // Do we currently generate parallel code?
260   bool parallelCodeGeneration;
261 
262   std::vector<std::string> parallelLoops;
263 
264   void codegen(const clast_assignment *a);
265 
266   void codegen(const clast_assignment *a, ScopStmt *Statement,
267                unsigned Dimension, int vectorDim,
268                std::vector<ValueMapT> *VectorVMap = 0);
269 
270   void codegenSubstitutions(const clast_stmt *Assignment,
271                             ScopStmt *Statement, int vectorDim = 0,
272                             std::vector<ValueMapT> *VectorVMap = 0);
273 
274   void codegen(const clast_user_stmt *u, std::vector<Value*> *IVS = NULL,
275                const char *iterator = NULL, isl_set *scatteringDomain = 0);
276 
277   void codegen(const clast_block *b);
278 
279   /// @brief Create a classical sequential loop.
280   void codegenForSequential(const clast_for *f);
281 
282   /// @brief Create OpenMP structure values.
283   ///
284   /// Create a list of values that has to be stored into the OpenMP subfuncition
285   /// structure.
286   SetVector<Value*> getOMPValues();
287 
288   /// @brief Update ClastVars and ValueMap according to a value map.
289   ///
290   /// @param VMap A map from old to new values.
291   void updateWithValueMap(OMPGenerator::ValueToValueMapTy &VMap);
292 
293   /// @brief Create an OpenMP parallel for loop.
294   ///
295   /// This loop reflects a loop as if it would have been created by an OpenMP
296   /// statement.
297   void codegenForOpenMP(const clast_for *f);
298 
299 #ifdef GPU_CODEGEN
300   /// @brief Create GPGPU device memory access values.
301   ///
302   /// Create a list of values that will be set to be parameters of the GPGPU
303   /// subfunction. These parameters represent device memory base addresses
304   /// and the size in bytes.
305   SetVector<Value*> getGPUValues(unsigned &OutputBytes);
306 
307   /// @brief Create a GPU parallel for loop.
308   ///
309   /// This loop reflects a loop as if it would have been created by a GPU
310   /// statement.
311   void codegenForGPGPU(const clast_for *F);
312 
313   /// @brief Get innermost for loop.
314   const clast_stmt *getScheduleInfo(const clast_for *F,
315                                     std::vector<int> &NumIters,
316                                     unsigned &LoopDepth,
317                                     unsigned &NonPLoopDepth);
318 #endif /* GPU_CODEGEN */
319 
320   /// @brief Check if a loop is parallel
321   ///
322   /// Detect if a clast_for loop can be executed in parallel.
323   ///
324   /// @param f The clast for loop to check.
325   ///
326   /// @return bool Returns true if the incoming clast_for statement can
327   ///              execute in parallel.
328   bool isParallelFor(const clast_for *For);
329 
330   bool isInnermostLoop(const clast_for *f);
331 
332   /// @brief Get the number of loop iterations for this loop.
333   /// @param f The clast for loop to check.
334   int getNumberOfIterations(const clast_for *f);
335 
336   /// @brief Create vector instructions for this loop.
337   void codegenForVector(const clast_for *f);
338 
339   void codegen(const clast_for *f);
340 
341   Value *codegen(const clast_equation *eq);
342 
343   void codegen(const clast_guard *g);
344 
345   void codegen(const clast_stmt *stmt);
346 
347   void addParameters(const CloogNames *names);
348 
349   IntegerType *getIntPtrTy();
350 
351   public:
352   void codegen(const clast_root *r);
353 
354   ClastStmtCodeGen(Scop *scop, IRBuilder<> &B, Pass *P);
355 };
356 }
357 
358 IntegerType *ClastStmtCodeGen::getIntPtrTy() {
359   // FIXME: This might need to get a proper address space. Hard code 0 for now.
360   return P->getAnalysis<DataLayout>().getIntPtrType(Builder.getContext(), 0u);
361 }
362 
363 const std::vector<std::string> &ClastStmtCodeGen::getParallelLoops() {
364   return parallelLoops;
365 }
366 
367 void ClastStmtCodeGen::codegen(const clast_assignment *a) {
368   Value *V= ExpGen.codegen(a->RHS, getIntPtrTy());
369   ClastVars[a->LHS] = V;
370 }
371 
372 void ClastStmtCodeGen::codegen(const clast_assignment *A, ScopStmt *Stmt,
373                                unsigned Dim, int VectorDim,
374                                std::vector<ValueMapT> *VectorVMap) {
375   const PHINode *PN;
376   Value *RHS;
377 
378   assert(!A->LHS && "Statement assignments do not have left hand side");
379 
380   PN = Stmt->getInductionVariableForDimension(Dim);
381   RHS = ExpGen.codegen(A->RHS, Builder.getInt64Ty());
382   RHS = Builder.CreateTruncOrBitCast(RHS, PN->getType());
383 
384   if (VectorVMap)
385     (*VectorVMap)[VectorDim][PN] = RHS;
386 
387   ValueMap[PN] = RHS;
388 }
389 
390 void ClastStmtCodeGen::codegenSubstitutions(const clast_stmt *Assignment,
391                                              ScopStmt *Statement, int vectorDim,
392   std::vector<ValueMapT> *VectorVMap) {
393   int Dimension = 0;
394 
395   while (Assignment) {
396     assert(CLAST_STMT_IS_A(Assignment, stmt_ass)
397            && "Substitions are expected to be assignments");
398     codegen((const clast_assignment *)Assignment, Statement, Dimension,
399             vectorDim, VectorVMap);
400     Assignment = Assignment->next;
401     Dimension++;
402   }
403 }
404 
405 void ClastStmtCodeGen::codegen(const clast_user_stmt *u,
406                                std::vector<Value*> *IVS , const char *iterator,
407                                isl_set *Domain) {
408   ScopStmt *Statement = (ScopStmt *)u->statement->usr;
409 
410   if (u->substitutions)
411     codegenSubstitutions(u->substitutions, Statement);
412 
413   int VectorDimensions = IVS ? IVS->size() : 1;
414 
415   if (VectorDimensions == 1) {
416     BlockGenerator::generate(Builder, *Statement, ValueMap, P);
417     return;
418   }
419 
420   VectorValueMapT VectorMap(VectorDimensions);
421 
422   if (IVS) {
423     assert (u->substitutions && "Substitutions expected!");
424     int i = 0;
425     for (std::vector<Value*>::iterator II = IVS->begin(), IE = IVS->end();
426          II != IE; ++II) {
427       ClastVars[iterator] = *II;
428       codegenSubstitutions(u->substitutions, Statement, i, &VectorMap);
429       i++;
430     }
431   }
432 
433   VectorBlockGenerator::generate(Builder, *Statement, VectorMap, Domain, P);
434 }
435 
436 void ClastStmtCodeGen::codegen(const clast_block *b) {
437   if (b->body)
438     codegen(b->body);
439 }
440 
441 void ClastStmtCodeGen::codegenForSequential(const clast_for *f) {
442   Value *LowerBound, *UpperBound, *IV, *Stride;
443   BasicBlock *AfterBB;
444   Type *IntPtrTy = getIntPtrTy();
445 
446   LowerBound = ExpGen.codegen(f->LB, IntPtrTy);
447   UpperBound = ExpGen.codegen(f->UB, IntPtrTy);
448   Stride = Builder.getInt(APInt_from_MPZ(f->stride));
449 
450   IV = createLoop(LowerBound, UpperBound, Stride, Builder, P, AfterBB,
451                   CmpInst::ICMP_SLE);
452 
453   // Add loop iv to symbols.
454   ClastVars[f->iterator] = IV;
455 
456   if (f->body)
457     codegen(f->body);
458 
459   // Loop is finished, so remove its iv from the live symbols.
460   ClastVars.erase(f->iterator);
461   Builder.SetInsertPoint(AfterBB->begin());
462 }
463 
464 SetVector<Value*> ClastStmtCodeGen::getOMPValues() {
465   SetVector<Value*> Values;
466 
467   // The clast variables
468   for (CharMapT::iterator I = ClastVars.begin(), E = ClastVars.end();
469        I != E; I++)
470     Values.insert(I->second);
471 
472   // The memory reference base addresses
473   for (Scop::iterator SI = S->begin(), SE = S->end(); SI != SE; ++SI) {
474     ScopStmt *Stmt = *SI;
475     for (SmallVector<MemoryAccess*, 8>::iterator I = Stmt->memacc_begin(),
476          E = Stmt->memacc_end(); I != E; ++I) {
477       Value *BaseAddr = const_cast<Value*>((*I)->getBaseAddr());
478       Values.insert((BaseAddr));
479     }
480   }
481 
482   return Values;
483 }
484 
485 void ClastStmtCodeGen::updateWithValueMap(
486   OMPGenerator::ValueToValueMapTy &VMap) {
487   std::set<Value*> Inserted;
488 
489   for (CharMapT::iterator I = ClastVars.begin(), E = ClastVars.end();
490        I != E; I++) {
491     ClastVars[I->first] = VMap[I->second];
492     Inserted.insert(I->second);
493   }
494 
495   for (OMPGenerator::ValueToValueMapTy::iterator I = VMap.begin(),
496        E = VMap.end(); I != E; ++I) {
497     if (Inserted.count(I->first))
498       continue;
499 
500     ValueMap[I->first] = I->second;
501   }
502 }
503 
504 static void clearDomtree(Function *F, DominatorTree &DT) {
505   DomTreeNode *N = DT.getNode(&F->getEntryBlock());
506   std::vector<BasicBlock*> Nodes;
507   for (po_iterator<DomTreeNode*> I = po_begin(N), E = po_end(N); I != E; ++I)
508     Nodes.push_back(I->getBlock());
509 
510   for (std::vector<BasicBlock*>::iterator I = Nodes.begin(), E = Nodes.end();
511        I != E; ++I)
512     DT.eraseNode(*I);
513 }
514 
515 void ClastStmtCodeGen::codegenForOpenMP(const clast_for *For) {
516   Value *Stride, *LB, *UB, *IV;
517   BasicBlock::iterator LoopBody;
518   IntegerType *IntPtrTy = getIntPtrTy();
519   SetVector<Value*> Values;
520   OMPGenerator::ValueToValueMapTy VMap;
521   OMPGenerator OMPGen(Builder, P);
522 
523   Stride = Builder.getInt(APInt_from_MPZ(For->stride));
524   Stride = Builder.CreateSExtOrBitCast(Stride, IntPtrTy);
525   LB = ExpGen.codegen(For->LB, IntPtrTy);
526   UB = ExpGen.codegen(For->UB, IntPtrTy);
527 
528   Values = getOMPValues();
529 
530   IV = OMPGen.createParallelLoop(LB, UB, Stride, Values, VMap, &LoopBody);
531   BasicBlock::iterator AfterLoop = Builder.GetInsertPoint();
532   Builder.SetInsertPoint(LoopBody);
533 
534   // Save the current values.
535   const ValueMapT ValueMapCopy = ValueMap;
536   const CharMapT ClastVarsCopy = ClastVars;
537 
538   updateWithValueMap(VMap);
539   ClastVars[For->iterator] = IV;
540 
541   if (For->body)
542     codegen(For->body);
543 
544   // Restore the original values.
545   ValueMap = ValueMapCopy;
546   ClastVars = ClastVarsCopy;
547 
548   clearDomtree((*LoopBody).getParent()->getParent(),
549                P->getAnalysis<DominatorTree>());
550 
551   Builder.SetInsertPoint(AfterLoop);
552 }
553 
554 #ifdef GPU_CODEGEN
555 static unsigned getArraySizeInBytes(const ArrayType *AT) {
556   unsigned Bytes = AT->getNumElements();
557   if (const ArrayType *T = dyn_cast<ArrayType>(AT->getElementType()))
558     Bytes *= getArraySizeInBytes(T);
559   else
560     Bytes *= AT->getElementType()->getPrimitiveSizeInBits() / 8;
561 
562   return Bytes;
563 }
564 
565 SetVector<Value*> ClastStmtCodeGen::getGPUValues(unsigned &OutputBytes) {
566   SetVector<Value*> Values;
567   OutputBytes = 0;
568 
569   // Record the memory reference base addresses.
570   for (Scop::iterator SI = S->begin(), SE = S->end(); SI != SE; ++SI) {
571     ScopStmt *Stmt = *SI;
572     for (SmallVector<MemoryAccess*, 8>::iterator I = Stmt->memacc_begin(),
573          E = Stmt->memacc_end(); I != E; ++I) {
574       Value *BaseAddr = const_cast<Value*>((*I)->getBaseAddr());
575       Values.insert((BaseAddr));
576 
577       // FIXME: we assume that there is one and only one array to be written
578       // in a SCoP.
579       int NumWrites = 0;
580       if ((*I)->isWrite()) {
581         ++NumWrites;
582         assert(NumWrites <= 1 &&
583                "We support at most one array to be written in a SCoP.");
584         if (const PointerType * PT =
585             dyn_cast<PointerType>(BaseAddr->getType())) {
586           Type *T = PT->getArrayElementType();
587           const ArrayType *ATy = dyn_cast<ArrayType>(T);
588           OutputBytes = getArraySizeInBytes(ATy);
589         }
590       }
591     }
592   }
593 
594   return Values;
595 }
596 
597 const clast_stmt *ClastStmtCodeGen::getScheduleInfo(const clast_for *F,
598                                                     std::vector<int> &NumIters,
599                                                     unsigned &LoopDepth,
600                                                     unsigned &NonPLoopDepth) {
601   clast_stmt *Stmt = (clast_stmt *)F;
602   const clast_for *Result;
603   bool NonParaFlag = false;
604   LoopDepth = 0;
605   NonPLoopDepth = 0;
606 
607   while (Stmt) {
608     if (CLAST_STMT_IS_A(Stmt, stmt_for)) {
609       const clast_for *T = (clast_for *) Stmt;
610       if (isParallelFor(T)) {
611         if (!NonParaFlag) {
612           NumIters.push_back(getNumberOfIterations(T));
613           Result = T;
614         }
615       } else
616         NonParaFlag = true;
617 
618       Stmt = T->body;
619       LoopDepth++;
620       continue;
621     }
622     Stmt = Stmt->next;
623   }
624 
625   assert(NumIters.size() == 4 &&
626          "The loops should be tiled into 4-depth parallel loops and an "
627          "innermost non-parallel one (if exist).");
628   NonPLoopDepth = LoopDepth - NumIters.size();
629   assert(NonPLoopDepth <= 1
630          && "We support only one innermost non-parallel loop currently.");
631   return (const clast_stmt *)Result->body;
632 }
633 
634 void ClastStmtCodeGen::codegenForGPGPU(const clast_for *F) {
635   BasicBlock::iterator LoopBody;
636   SetVector<Value *> Values;
637   SetVector<Value *> IVS;
638   std::vector<int> NumIterations;
639   PTXGenerator::ValueToValueMapTy VMap;
640 
641   assert(!GPUTriple.empty()
642          && "Target triple should be set properly for GPGPU code generation.");
643   PTXGenerator PTXGen(Builder, P, GPUTriple);
644 
645   // Get original IVS and ScopStmt
646   unsigned TiledLoopDepth, NonPLoopDepth;
647   const clast_stmt *InnerStmt = getScheduleInfo(F, NumIterations,
648                                                 TiledLoopDepth, NonPLoopDepth);
649   const clast_stmt *TmpStmt;
650   const clast_user_stmt *U;
651   const clast_for *InnerFor;
652   if (CLAST_STMT_IS_A(InnerStmt, stmt_for)) {
653     InnerFor = (const clast_for *)InnerStmt;
654     TmpStmt = InnerFor->body;
655   } else
656     TmpStmt = InnerStmt;
657   U = (const clast_user_stmt *) TmpStmt;
658   ScopStmt *Statement = (ScopStmt *) U->statement->usr;
659   for (unsigned i = 0; i < Statement->getNumIterators() - NonPLoopDepth; i++) {
660     const Value* IV = Statement->getInductionVariableForDimension(i);
661     IVS.insert(const_cast<Value *>(IV));
662   }
663 
664   unsigned OutBytes;
665   Values = getGPUValues(OutBytes);
666   PTXGen.setOutputBytes(OutBytes);
667   PTXGen.startGeneration(Values, IVS, VMap, &LoopBody);
668 
669   BasicBlock::iterator AfterLoop = Builder.GetInsertPoint();
670   Builder.SetInsertPoint(LoopBody);
671 
672   BasicBlock *AfterBB = 0;
673   if (NonPLoopDepth) {
674     Value *LowerBound, *UpperBound, *IV, *Stride;
675     Type *IntPtrTy = getIntPtrTy();
676     LowerBound = ExpGen.codegen(InnerFor->LB, IntPtrTy);
677     UpperBound = ExpGen.codegen(InnerFor->UB, IntPtrTy);
678     Stride = Builder.getInt(APInt_from_MPZ(InnerFor->stride));
679     IV = createLoop(LowerBound, UpperBound, Stride, Builder, P, AfterBB);
680     const Value *OldIV_ = Statement->getInductionVariableForDimension(2);
681     Value *OldIV = const_cast<Value *>(OldIV_);
682     VMap.insert(std::make_pair<Value*, Value*>(OldIV, IV));
683   }
684 
685   // Preserve the current values.
686   const ValueMapT ValueMapCopy = ValueMap;
687   const CharMapT ClastVarsCopy = ClastVars;
688   updateWithVMap(VMap);
689 
690   BlockGenerator::generate(Builder, *Statement, ValueMap, P);
691 
692   // Restore the original values.
693   ValueMap = ValueMapCopy;
694   ClastVars = ClastVarsCopy;
695 
696   if (AfterBB)
697     Builder.SetInsertPoint(AfterBB->begin());
698 
699   // FIXME: The replacement of the host base address with the parameter of ptx
700   // subfunction should have been done by updateWithValueMap. We use the
701   // following codes to avoid affecting other parts of Polly. This should be
702   // fixed later.
703   Function *FN = Builder.GetInsertBlock()->getParent();
704   for (unsigned j = 0; j < Values.size(); j++) {
705     Value *baseAddr = Values[j];
706     for (Function::iterator B = FN->begin(); B != FN->end(); ++B) {
707       for (BasicBlock::iterator I = B->begin(); I != B->end(); ++I)
708         I->replaceUsesOfWith(baseAddr, ValueMap[baseAddr]);
709     }
710   }
711   Builder.SetInsertPoint(AfterLoop);
712   PTXGen.setLaunchingParameters(NumIterations[0], NumIterations[1],
713                                 NumIterations[2], NumIterations[3]);
714   PTXGen.finishGeneration(FN);
715 }
716 #endif
717 
718 bool ClastStmtCodeGen::isInnermostLoop(const clast_for *f) {
719   const clast_stmt *stmt = f->body;
720 
721   while (stmt) {
722     if (!CLAST_STMT_IS_A(stmt, stmt_user))
723       return false;
724 
725     stmt = stmt->next;
726   }
727 
728   return true;
729 }
730 
731 int ClastStmtCodeGen::getNumberOfIterations(const clast_for *f) {
732   isl_set *loopDomain = isl_set_copy(isl_set_from_cloog_domain(f->domain));
733   isl_set *tmp = isl_set_copy(loopDomain);
734 
735   // Calculate a map similar to the identity map, but with the last input
736   // and output dimension not related.
737   //  [i0, i1, i2, i3] -> [i0, i1, i2, o0]
738   isl_space *Space = isl_set_get_space(loopDomain);
739   Space = isl_space_drop_outputs(Space,
740                                  isl_set_dim(loopDomain, isl_dim_set) - 2, 1);
741   Space = isl_space_map_from_set(Space);
742   isl_map *identity = isl_map_identity(Space);
743   identity = isl_map_add_dims(identity, isl_dim_in, 1);
744   identity = isl_map_add_dims(identity, isl_dim_out, 1);
745 
746   isl_map *map = isl_map_from_domain_and_range(tmp, loopDomain);
747   map = isl_map_intersect(map, identity);
748 
749   isl_map *lexmax = isl_map_lexmax(isl_map_copy(map));
750   isl_map *lexmin = isl_map_lexmin(map);
751   isl_map *sub = isl_map_sum(lexmax, isl_map_neg(lexmin));
752 
753   isl_set *elements = isl_map_range(sub);
754 
755   if (!isl_set_is_singleton(elements)) {
756     isl_set_free(elements);
757     return -1;
758   }
759 
760   isl_point *p = isl_set_sample_point(elements);
761 
762   isl_int v;
763   isl_int_init(v);
764   isl_point_get_coordinate(p, isl_dim_set, isl_set_n_dim(loopDomain) - 1, &v);
765   int numberIterations = isl_int_get_si(v);
766   isl_int_clear(v);
767   isl_point_free(p);
768 
769   return (numberIterations) / isl_int_get_si(f->stride) + 1;
770 }
771 
772 void ClastStmtCodeGen::codegenForVector(const clast_for *F) {
773   DEBUG(dbgs() << "Vectorizing loop '" << F->iterator << "'\n";);
774   int VectorWidth = getNumberOfIterations(F);
775 
776   Value *LB = ExpGen.codegen(F->LB, getIntPtrTy());
777 
778   APInt Stride = APInt_from_MPZ(F->stride);
779   IntegerType *LoopIVType = dyn_cast<IntegerType>(LB->getType());
780   Stride =  Stride.zext(LoopIVType->getBitWidth());
781   Value *StrideValue = ConstantInt::get(LoopIVType, Stride);
782 
783   std::vector<Value*> IVS(VectorWidth);
784   IVS[0] = LB;
785 
786   for (int i = 1; i < VectorWidth; i++)
787     IVS[i] = Builder.CreateAdd(IVS[i-1], StrideValue, "p_vector_iv");
788 
789   isl_set *Domain = isl_set_from_cloog_domain(F->domain);
790 
791   // Add loop iv to symbols.
792   ClastVars[F->iterator] = LB;
793 
794   const clast_stmt *Stmt = F->body;
795 
796   while (Stmt) {
797     codegen((const clast_user_stmt *)Stmt, &IVS, F->iterator,
798             isl_set_copy(Domain));
799     Stmt = Stmt->next;
800   }
801 
802   // Loop is finished, so remove its iv from the live symbols.
803   isl_set_free(Domain);
804   ClastVars.erase(F->iterator);
805 }
806 
807 
808 bool ClastStmtCodeGen::isParallelFor(const clast_for *f) {
809   isl_set *Domain = isl_set_from_cloog_domain(f->domain);
810   assert(Domain && "Cannot access domain of loop");
811 
812   Dependences &D = P->getAnalysis<Dependences>();
813 
814   return D.isParallelDimension(isl_set_copy(Domain), isl_set_n_dim(Domain));
815 }
816 
817 void ClastStmtCodeGen::codegen(const clast_for *f) {
818   bool Vector = PollyVectorizerChoice != VECTORIZER_NONE;
819   if ((Vector || OpenMP) && isParallelFor(f)) {
820     if (Vector && isInnermostLoop(f) && (-1 != getNumberOfIterations(f))
821         && (getNumberOfIterations(f) <= 16)) {
822       codegenForVector(f);
823       return;
824     }
825 
826     if (OpenMP && !parallelCodeGeneration) {
827       parallelCodeGeneration = true;
828       parallelLoops.push_back(f->iterator);
829       codegenForOpenMP(f);
830       parallelCodeGeneration = false;
831       return;
832     }
833   }
834 
835 #ifdef GPU_CODEGEN
836   if (GPGPU && isParallelFor(f)) {
837     if (!parallelCodeGeneration) {
838       parallelCodeGeneration = true;
839       parallelLoops.push_back(f->iterator);
840       codegenForGPGPU(f);
841       parallelCodeGeneration = false;
842       return;
843     }
844   }
845 #endif
846 
847   codegenForSequential(f);
848 }
849 
850 Value *ClastStmtCodeGen::codegen(const clast_equation *eq) {
851   Value *LHS = ExpGen.codegen(eq->LHS, getIntPtrTy());
852   Value *RHS = ExpGen.codegen(eq->RHS, getIntPtrTy());
853   CmpInst::Predicate P;
854 
855   if (eq->sign == 0)
856     P = ICmpInst::ICMP_EQ;
857   else if (eq->sign > 0)
858     P = ICmpInst::ICMP_SGE;
859   else
860     P = ICmpInst::ICMP_SLE;
861 
862   return Builder.CreateICmp(P, LHS, RHS);
863 }
864 
865 void ClastStmtCodeGen::codegen(const clast_guard *g) {
866   Function *F = Builder.GetInsertBlock()->getParent();
867   LLVMContext &Context = F->getContext();
868 
869   BasicBlock *CondBB = SplitBlock(Builder.GetInsertBlock(),
870                                       Builder.GetInsertPoint(), P);
871   CondBB->setName("polly.cond");
872   BasicBlock *MergeBB = SplitBlock(CondBB, CondBB->begin(), P);
873   MergeBB->setName("polly.merge");
874   BasicBlock *ThenBB = BasicBlock::Create(Context, "polly.then", F);
875 
876   DominatorTree &DT = P->getAnalysis<DominatorTree>();
877   DT.addNewBlock(ThenBB, CondBB);
878   DT.changeImmediateDominator(MergeBB, CondBB);
879 
880   CondBB->getTerminator()->eraseFromParent();
881 
882   Builder.SetInsertPoint(CondBB);
883 
884   Value *Predicate = codegen(&(g->eq[0]));
885 
886   for (int i = 1; i < g->n; ++i) {
887     Value *TmpPredicate = codegen(&(g->eq[i]));
888     Predicate = Builder.CreateAnd(Predicate, TmpPredicate);
889   }
890 
891   Builder.CreateCondBr(Predicate, ThenBB, MergeBB);
892   Builder.SetInsertPoint(ThenBB);
893   Builder.CreateBr(MergeBB);
894   Builder.SetInsertPoint(ThenBB->begin());
895 
896   codegen(g->then);
897 
898   Builder.SetInsertPoint(MergeBB->begin());
899 }
900 
901 void ClastStmtCodeGen::codegen(const clast_stmt *stmt) {
902   if	    (CLAST_STMT_IS_A(stmt, stmt_root))
903     assert(false && "No second root statement expected");
904   else if (CLAST_STMT_IS_A(stmt, stmt_ass))
905     codegen((const clast_assignment *)stmt);
906   else if (CLAST_STMT_IS_A(stmt, stmt_user))
907     codegen((const clast_user_stmt *)stmt);
908   else if (CLAST_STMT_IS_A(stmt, stmt_block))
909     codegen((const clast_block *)stmt);
910   else if (CLAST_STMT_IS_A(stmt, stmt_for))
911     codegen((const clast_for *)stmt);
912   else if (CLAST_STMT_IS_A(stmt, stmt_guard))
913     codegen((const clast_guard *)stmt);
914 
915   if (stmt->next)
916     codegen(stmt->next);
917 }
918 
919 void ClastStmtCodeGen::addParameters(const CloogNames *names) {
920   SCEVExpander Rewriter(P->getAnalysis<ScalarEvolution>(), "polly");
921 
922   int i = 0;
923   for (Scop::param_iterator PI = S->param_begin(), PE = S->param_end();
924        PI != PE; ++PI) {
925     assert(i < names->nb_parameters && "Not enough parameter names");
926 
927     const SCEV *Param = *PI;
928     Type *Ty = Param->getType();
929 
930     Instruction *insertLocation = --(Builder.GetInsertBlock()->end());
931     Value *V = Rewriter.expandCodeFor(Param, Ty, insertLocation);
932     ClastVars[names->parameters[i]] = V;
933 
934     ++i;
935   }
936 }
937 
938 void ClastStmtCodeGen::codegen(const clast_root *r) {
939   addParameters(r->names);
940 
941   parallelCodeGeneration = false;
942 
943   const clast_stmt *stmt = (const clast_stmt*) r;
944   if (stmt->next)
945     codegen(stmt->next);
946 }
947 
948 ClastStmtCodeGen::ClastStmtCodeGen(Scop *scop, IRBuilder<> &B, Pass *P) :
949     S(scop), P(P), Builder(B), ExpGen(Builder, ClastVars) {}
950 
951 namespace {
952 class CodeGeneration : public ScopPass {
953   std::vector<std::string> ParallelLoops;
954 
955   public:
956   static char ID;
957 
958   CodeGeneration() : ScopPass(ID) {}
959 
960 
961   bool runOnScop(Scop &S) {
962     ParallelLoops.clear();
963 
964     assert(S.getRegion().isSimple() && "Only simple regions are supported");
965 
966     BasicBlock *StartBlock = executeScopConditionally(S, this);
967 
968     IRBuilder<> Builder(StartBlock->begin());
969 
970     ClastStmtCodeGen CodeGen(&S, Builder, this);
971     CloogInfo &C = getAnalysis<CloogInfo>();
972     CodeGen.codegen(C.getClast());
973 
974     ParallelLoops.insert(ParallelLoops.begin(),
975                          CodeGen.getParallelLoops().begin(),
976                          CodeGen.getParallelLoops().end());
977     return true;
978   }
979 
980   virtual void printScop(raw_ostream &OS) const {
981     for (std::vector<std::string>::const_iterator PI = ParallelLoops.begin(),
982          PE = ParallelLoops.end(); PI != PE; ++PI)
983       OS << "Parallel loop with iterator '" << *PI << "' generated\n";
984   }
985 
986   virtual void getAnalysisUsage(AnalysisUsage &AU) const {
987     AU.addRequired<CloogInfo>();
988     AU.addRequired<Dependences>();
989     AU.addRequired<DominatorTree>();
990     AU.addRequired<RegionInfo>();
991     AU.addRequired<ScalarEvolution>();
992     AU.addRequired<ScopDetection>();
993     AU.addRequired<ScopInfo>();
994     AU.addRequired<DataLayout>();
995 
996     AU.addPreserved<CloogInfo>();
997     AU.addPreserved<Dependences>();
998 
999     // FIXME: We do not create LoopInfo for the newly generated loops.
1000     AU.addPreserved<LoopInfo>();
1001     AU.addPreserved<DominatorTree>();
1002     AU.addPreserved<ScopDetection>();
1003     AU.addPreserved<ScalarEvolution>();
1004 
1005     // FIXME: We do not yet add regions for the newly generated code to the
1006     //        region tree.
1007     AU.addPreserved<RegionInfo>();
1008     AU.addPreserved<TempScopInfo>();
1009     AU.addPreserved<ScopInfo>();
1010     AU.addPreservedID(IndependentBlocksID);
1011   }
1012 };
1013 }
1014 
1015 char CodeGeneration::ID = 1;
1016 
1017 INITIALIZE_PASS_BEGIN(CodeGeneration, "polly-codegen",
1018                       "Polly - Create LLVM-IR from SCoPs", false, false)
1019 INITIALIZE_PASS_DEPENDENCY(CloogInfo)
1020 INITIALIZE_PASS_DEPENDENCY(Dependences)
1021 INITIALIZE_PASS_DEPENDENCY(DominatorTree)
1022 INITIALIZE_PASS_DEPENDENCY(RegionInfo)
1023 INITIALIZE_PASS_DEPENDENCY(ScalarEvolution)
1024 INITIALIZE_PASS_DEPENDENCY(ScopDetection)
1025 INITIALIZE_PASS_DEPENDENCY(DataLayout)
1026 INITIALIZE_PASS_END(CodeGeneration, "polly-codegen",
1027                       "Polly - Create LLVM-IR from SCoPs", false, false)
1028 
1029 Pass *polly::createCodeGenerationPass() {
1030   return new CodeGeneration();
1031 }
1032 
1033 #endif // CLOOG_FOUND
1034