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Vikram S. Adve96b21c12002-12-08 13:26:29 +00001//===- MemoryDepAnalysis.cpp - Compute dep graph for memory ops --*-C++-*--===//
2//
3// This file implements a pass (MemoryDepAnalysis) that computes memory-based
4// data dependences between instructions for each function in a module.
5// Memory-based dependences occur due to load and store operations, but
6// also the side-effects of call instructions.
7//
8// The result of this pass is a DependenceGraph for each function
9// representing the memory-based data dependences between instructions.
10//===----------------------------------------------------------------------===//
11
12#include "llvm/Analysis/MemoryDepAnalysis.h"
13#include "llvm/Analysis/IPModRef.h"
14#include "llvm/Analysis/DataStructure.h"
15#include "llvm/Analysis/DSGraph.h"
16#include "llvm/Module.h"
Vikram S. Adve96b21c12002-12-08 13:26:29 +000017#include "llvm/iMemory.h"
18#include "llvm/iOther.h"
19#include "llvm/Support/InstVisitor.h"
20#include "llvm/Support/CFG.h"
21#include "Support/TarjanSCCIterator.h"
22#include "Support/Statistic.h"
Vikram S. Adve96b21c12002-12-08 13:26:29 +000023#include "Support/STLExtras.h"
24#include "Support/hash_map"
25#include "Support/hash_set"
Vikram S. Adve96b21c12002-12-08 13:26:29 +000026
27
28///--------------------------------------------------------------------------
29/// struct ModRefTable:
30///
31/// A data structure that tracks ModRefInfo for instructions:
32/// -- modRefMap is a map of Instruction* -> ModRefInfo for the instr.
33/// -- definers is a vector of instructions that define any node
34/// -- users is a vector of instructions that reference any node
35/// -- numUsersBeforeDef is a vector indicating that the number of users
36/// seen before definers[i] is numUsersBeforeDef[i].
37///
38/// numUsersBeforeDef[] effectively tells us the exact interleaving of
39/// definers and users within the ModRefTable.
40/// This is only maintained when constructing the table for one SCC, and
41/// not copied over from one table to another since it is no longer useful.
42///--------------------------------------------------------------------------
43
44struct ModRefTable
45{
46 typedef hash_map<Instruction*, ModRefInfo> ModRefMap;
47 typedef ModRefMap::const_iterator const_map_iterator;
48 typedef ModRefMap:: iterator map_iterator;
49 typedef std::vector<Instruction*>::const_iterator const_ref_iterator;
50 typedef std::vector<Instruction*>:: iterator ref_iterator;
51
52 ModRefMap modRefMap;
53 std::vector<Instruction*> definers;
54 std::vector<Instruction*> users;
55 std::vector<unsigned> numUsersBeforeDef;
56
57 // Iterators to enumerate all the defining instructions
58 const_ref_iterator defsBegin() const { return definers.begin(); }
59 ref_iterator defsBegin() { return definers.begin(); }
60 const_ref_iterator defsEnd() const { return definers.end(); }
61 ref_iterator defsEnd() { return definers.end(); }
62
63 // Iterators to enumerate all the user instructions
64 const_ref_iterator usersBegin() const { return users.begin(); }
65 ref_iterator usersBegin() { return users.begin(); }
66 const_ref_iterator usersEnd() const { return users.end(); }
67 ref_iterator usersEnd() { return users.end(); }
68
69 // Iterator identifying the last user that was seen *before* a
70 // specified def. In particular, all users in the half-closed range
71 // [ usersBegin(), usersBeforeDef_End(defPtr) )
72 // were seen *before* the specified def. All users in the half-closed range
73 // [ usersBeforeDef_End(defPtr), usersEnd() )
74 // were seen *after* the specified def.
75 //
76 ref_iterator usersBeforeDef_End(const_ref_iterator defPtr) {
77 unsigned defIndex = (unsigned) (defPtr - defsBegin());
78 assert(defIndex < numUsersBeforeDef.size());
79 assert(usersBegin() + numUsersBeforeDef[defIndex] <= usersEnd());
80 return usersBegin() + numUsersBeforeDef[defIndex];
81 }
82 const_ref_iterator usersBeforeDef_End(const_ref_iterator defPtr) const {
83 return const_cast<ModRefTable*>(this)->usersBeforeDef_End(defPtr);
84 }
85
86 //
87 // Modifier methods
88 //
89 void AddDef(Instruction* D) {
90 definers.push_back(D);
91 numUsersBeforeDef.push_back(users.size());
92 }
93 void AddUse(Instruction* U) {
94 users.push_back(U);
95 }
96 void Insert(const ModRefTable& fromTable) {
97 modRefMap.insert(fromTable.modRefMap.begin(), fromTable.modRefMap.end());
98 definers.insert(definers.end(),
99 fromTable.definers.begin(), fromTable.definers.end());
100 users.insert(users.end(),
101 fromTable.users.begin(), fromTable.users.end());
102 numUsersBeforeDef.clear(); /* fromTable.numUsersBeforeDef is ignored */
103 }
104};
105
106
107///--------------------------------------------------------------------------
108/// class ModRefInfoBuilder:
109///
110/// A simple InstVisitor<> class that retrieves the Mod/Ref info for
111/// Load/Store/Call instructions and inserts this information in
112/// a ModRefTable. It also records all instructions that Mod any node
113/// and all that use any node.
114///--------------------------------------------------------------------------
115
Chris Lattner80431272003-08-06 17:16:24 +0000116class ModRefInfoBuilder : public InstVisitor<ModRefInfoBuilder> {
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000117 const DSGraph& funcGraph;
118 const FunctionModRefInfo& funcModRef;
119 ModRefTable& modRefTable;
120
Chris Lattner80431272003-08-06 17:16:24 +0000121 ModRefInfoBuilder(); // DO NOT IMPLEMENT
122 ModRefInfoBuilder(const ModRefInfoBuilder&); // DO NOT IMPLEMENT
123 void operator=(const ModRefInfoBuilder&); // DO NOT IMPLEMENT
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000124
125public:
126 /*ctor*/ ModRefInfoBuilder(const DSGraph& _funcGraph,
127 const FunctionModRefInfo& _funcModRef,
128 ModRefTable& _modRefTable)
129 : funcGraph(_funcGraph), funcModRef(_funcModRef), modRefTable(_modRefTable)
130 {
131 }
132
133 // At a call instruction, retrieve the ModRefInfo using IPModRef results.
134 // Add the call to the defs list if it modifies any nodes and to the uses
135 // list if it refs any nodes.
136 //
137 void visitCallInst (CallInst& callInst) {
138 ModRefInfo safeModRef(funcGraph.getGraphSize());
139 const ModRefInfo* callModRef = funcModRef.getModRefInfo(callInst);
140 if (callModRef == NULL)
141 { // call to external/unknown function: mark all nodes as Mod and Ref
142 safeModRef.getModSet().set();
143 safeModRef.getRefSet().set();
144 callModRef = &safeModRef;
145 }
146
147 modRefTable.modRefMap.insert(std::make_pair(&callInst,
148 ModRefInfo(*callModRef)));
149 if (callModRef->getModSet().any())
150 modRefTable.AddDef(&callInst);
151 if (callModRef->getRefSet().any())
152 modRefTable.AddUse(&callInst);
153 }
154
155 // At a store instruction, add to the mod set the single node pointed to
156 // by the pointer argument of the store. Interestingly, if there is no
157 // such node, that would be a null pointer reference!
158 void visitStoreInst (StoreInst& storeInst) {
159 const DSNodeHandle& ptrNode =
160 funcGraph.getNodeForValue(storeInst.getPointerOperand());
161 if (const DSNode* target = ptrNode.getNode())
162 {
163 unsigned nodeId = funcModRef.getNodeId(target);
164 ModRefInfo& minfo =
165 modRefTable.modRefMap.insert(
166 std::make_pair(&storeInst,
167 ModRefInfo(funcGraph.getGraphSize()))).first->second;
168 minfo.setNodeIsMod(nodeId);
169 modRefTable.AddDef(&storeInst);
170 }
171 else
172 std::cerr << "Warning: Uninitialized pointer reference!\n";
173 }
174
175 // At a load instruction, add to the ref set the single node pointed to
176 // by the pointer argument of the load. Interestingly, if there is no
177 // such node, that would be a null pointer reference!
178 void visitLoadInst (LoadInst& loadInst) {
179 const DSNodeHandle& ptrNode =
180 funcGraph.getNodeForValue(loadInst.getPointerOperand());
181 if (const DSNode* target = ptrNode.getNode())
182 {
183 unsigned nodeId = funcModRef.getNodeId(target);
184 ModRefInfo& minfo =
185 modRefTable.modRefMap.insert(
186 std::make_pair(&loadInst,
187 ModRefInfo(funcGraph.getGraphSize()))).first->second;
188 minfo.setNodeIsRef(nodeId);
189 modRefTable.AddUse(&loadInst);
190 }
191 else
192 std::cerr << "Warning: Uninitialized pointer reference!\n";
193 }
194};
195
196
197//----------------------------------------------------------------------------
198// class MemoryDepAnalysis: A dep. graph for load/store/call instructions
199//----------------------------------------------------------------------------
200
201/// Basic dependence gathering algorithm, using TarjanSCCIterator on CFG:
202///
203/// for every SCC S in the CFG in PostOrder on the SCC DAG
204/// {
205/// for every basic block BB in S in *postorder*
206/// for every instruction I in BB in reverse
207/// Add (I, ModRef[I]) to ModRefCurrent
208/// if (Mod[I] != NULL)
209/// Add I to DefSetCurrent: { I \in S : Mod[I] != NULL }
210/// if (Ref[I] != NULL)
211/// Add I to UseSetCurrent: { I : Ref[I] != NULL }
212///
213/// for every def D in DefSetCurrent
214///
215/// // NOTE: D comes after itself iff S contains a loop
216/// if (HasLoop(S) && D & D)
217/// Add output-dep: D -> D2
218///
219/// for every def D2 *after* D in DefSetCurrent
220/// // NOTE: D2 comes before D in execution order
221/// if (D & D2)
222/// Add output-dep: D2 -> D
223/// if (HasLoop(S))
224/// Add output-dep: D -> D2
225///
226/// for every use U in UseSetCurrent that was seen *before* D
227/// // NOTE: U comes after D in execution order
228/// if (U & D)
229/// if (U != D || HasLoop(S))
230/// Add true-dep: D -> U
231/// if (HasLoop(S))
232/// Add anti-dep: U -> D
233///
234/// for every use U in UseSetCurrent that was seen *after* D
235/// // NOTE: U comes before D in execution order
236/// if (U & D)
237/// if (U != D || HasLoop(S))
238/// Add anti-dep: U -> D
239/// if (HasLoop(S))
240/// Add true-dep: D -> U
241///
242/// for every def Dnext in DefSetAfter
243/// // NOTE: Dnext comes after D in execution order
244/// if (Dnext & D)
245/// Add output-dep: D -> Dnext
246///
247/// for every use Unext in UseSetAfter
248/// // NOTE: Unext comes after D in execution order
249/// if (Unext & D)
250/// Add true-dep: D -> Unext
251///
252/// for every use U in UseSetCurrent
253/// for every def Dnext in DefSetAfter
254/// // NOTE: Dnext comes after U in execution order
255/// if (Dnext & D)
256/// Add anti-dep: U -> Dnext
257///
258/// Add ModRefCurrent to ModRefAfter: { (I, ModRef[I] ) }
259/// Add DefSetCurrent to DefSetAfter: { I : Mod[I] != NULL }
260/// Add UseSetCurrent to UseSetAfter: { I : Ref[I] != NULL }
261/// }
262///
263///
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000264void MemoryDepAnalysis::ProcessSCC(SCC<Function*>& S,
Chris Lattner0c0023b2003-08-31 19:29:52 +0000265 ModRefTable& ModRefAfter) {
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000266 ModRefTable ModRefCurrent;
267 ModRefTable::ModRefMap& mapCurrent = ModRefCurrent.modRefMap;
268 ModRefTable::ModRefMap& mapAfter = ModRefAfter.modRefMap;
269
270 bool hasLoop = S.HasLoop();
271
272 // Builder class fills out a ModRefTable one instruction at a time.
273 // To use it, we just invoke it's visit function for each basic block:
274 //
275 // for each basic block BB in the SCC in *postorder*
276 // for each instruction I in BB in *reverse*
277 // ModRefInfoBuilder::visit(I)
278 // : Add (I, ModRef[I]) to ModRefCurrent.modRefMap
279 // : Add I to ModRefCurrent.definers if it defines any node
280 // : Add I to ModRefCurrent.users if it uses any node
281 //
282 ModRefInfoBuilder builder(*funcGraph, *funcModRef, ModRefCurrent);
283 for (SCC<Function*>::iterator BI=S.begin(), BE=S.end(); BI != BE; ++BI)
284 // Note: BBs in the SCC<> created by TarjanSCCIterator are in postorder.
285 for (BasicBlock::reverse_iterator II=(*BI)->rbegin(), IE=(*BI)->rend();
286 II != IE; ++II)
287 builder.visit(*II);
288
289 /// for every def D in DefSetCurrent
290 ///
291 for (ModRefTable::ref_iterator II=ModRefCurrent.defsBegin(),
292 IE=ModRefCurrent.defsEnd(); II != IE; ++II)
293 {
294 /// // NOTE: D comes after itself iff S contains a loop
295 /// if (HasLoop(S))
296 /// Add output-dep: D -> D2
297 if (hasLoop)
298 funcDepGraph->AddSimpleDependence(**II, **II, OutputDependence);
299
300 /// for every def D2 *after* D in DefSetCurrent
301 /// // NOTE: D2 comes before D in execution order
302 /// if (D2 & D)
303 /// Add output-dep: D2 -> D
304 /// if (HasLoop(S))
305 /// Add output-dep: D -> D2
306 for (ModRefTable::ref_iterator JI=II+1; JI != IE; ++JI)
307 if (!Disjoint(mapCurrent.find(*II)->second.getModSet(),
308 mapCurrent.find(*JI)->second.getModSet()))
309 {
310 funcDepGraph->AddSimpleDependence(**JI, **II, OutputDependence);
311 if (hasLoop)
312 funcDepGraph->AddSimpleDependence(**II, **JI, OutputDependence);
313 }
314
315 /// for every use U in UseSetCurrent that was seen *before* D
316 /// // NOTE: U comes after D in execution order
317 /// if (U & D)
318 /// if (U != D || HasLoop(S))
319 /// Add true-dep: U -> D
320 /// if (HasLoop(S))
321 /// Add anti-dep: D -> U
322 ModRefTable::ref_iterator JI=ModRefCurrent.usersBegin();
323 ModRefTable::ref_iterator JE = ModRefCurrent.usersBeforeDef_End(II);
324 for ( ; JI != JE; ++JI)
325 if (!Disjoint(mapCurrent.find(*II)->second.getModSet(),
326 mapCurrent.find(*JI)->second.getRefSet()))
327 {
328 if (*II != *JI || hasLoop)
329 funcDepGraph->AddSimpleDependence(**II, **JI, TrueDependence);
330 if (hasLoop)
331 funcDepGraph->AddSimpleDependence(**JI, **II, AntiDependence);
332 }
333
334 /// for every use U in UseSetCurrent that was seen *after* D
335 /// // NOTE: U comes before D in execution order
336 /// if (U & D)
337 /// if (U != D || HasLoop(S))
338 /// Add anti-dep: U -> D
339 /// if (HasLoop(S))
340 /// Add true-dep: D -> U
341 for (/*continue JI*/ JE = ModRefCurrent.usersEnd(); JI != JE; ++JI)
342 if (!Disjoint(mapCurrent.find(*II)->second.getModSet(),
343 mapCurrent.find(*JI)->second.getRefSet()))
344 {
345 if (*II != *JI || hasLoop)
346 funcDepGraph->AddSimpleDependence(**JI, **II, AntiDependence);
347 if (hasLoop)
348 funcDepGraph->AddSimpleDependence(**II, **JI, TrueDependence);
349 }
350
351 /// for every def Dnext in DefSetPrev
352 /// // NOTE: Dnext comes after D in execution order
353 /// if (Dnext & D)
354 /// Add output-dep: D -> Dnext
355 for (ModRefTable::ref_iterator JI=ModRefAfter.defsBegin(),
356 JE=ModRefAfter.defsEnd(); JI != JE; ++JI)
357 if (!Disjoint(mapCurrent.find(*II)->second.getModSet(),
358 mapAfter.find(*JI)->second.getModSet()))
359 funcDepGraph->AddSimpleDependence(**II, **JI, OutputDependence);
360
361 /// for every use Unext in UseSetAfter
362 /// // NOTE: Unext comes after D in execution order
363 /// if (Unext & D)
364 /// Add true-dep: D -> Unext
365 for (ModRefTable::ref_iterator JI=ModRefAfter.usersBegin(),
366 JE=ModRefAfter.usersEnd(); JI != JE; ++JI)
367 if (!Disjoint(mapCurrent.find(*II)->second.getModSet(),
368 mapAfter.find(*JI)->second.getRefSet()))
369 funcDepGraph->AddSimpleDependence(**II, **JI, TrueDependence);
370 }
371
372 ///
373 /// for every use U in UseSetCurrent
374 /// for every def Dnext in DefSetAfter
375 /// // NOTE: Dnext comes after U in execution order
376 /// if (Dnext & D)
377 /// Add anti-dep: U -> Dnext
378 for (ModRefTable::ref_iterator II=ModRefCurrent.usersBegin(),
379 IE=ModRefCurrent.usersEnd(); II != IE; ++II)
380 for (ModRefTable::ref_iterator JI=ModRefAfter.defsBegin(),
381 JE=ModRefAfter.defsEnd(); JI != JE; ++JI)
382 if (!Disjoint(mapCurrent.find(*II)->second.getRefSet(),
383 mapAfter.find(*JI)->second.getModSet()))
384 funcDepGraph->AddSimpleDependence(**II, **JI, AntiDependence);
385
386 /// Add ModRefCurrent to ModRefAfter: { (I, ModRef[I] ) }
387 /// Add DefSetCurrent to DefSetAfter: { I : Mod[I] != NULL }
388 /// Add UseSetCurrent to UseSetAfter: { I : Ref[I] != NULL }
389 ModRefAfter.Insert(ModRefCurrent);
390}
391
392
393/// Debugging support methods
394///
395void MemoryDepAnalysis::print(std::ostream &O) const
396{
397 // TEMPORARY LOOP
398 for (hash_map<Function*, DependenceGraph*>::const_iterator
399 I = funcMap.begin(), E = funcMap.end(); I != E; ++I)
400 {
401 Function* func = I->first;
402 DependenceGraph* depGraph = I->second;
403
404 O << "\n================================================================\n";
405 O << "DEPENDENCE GRAPH FOR MEMORY OPERATIONS IN FUNCTION " << func->getName();
406 O << "\n================================================================\n\n";
407 depGraph->print(*func, O);
408
409 }
410}
411
412
413///
414/// Run the pass on a function
415///
Chris Lattner0c0023b2003-08-31 19:29:52 +0000416bool MemoryDepAnalysis::runOnFunction(Function &F) {
417 assert(!F.isExternal());
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000418
419 // Get the FunctionModRefInfo holding IPModRef results for this function.
420 // Use the TD graph recorded within the FunctionModRefInfo object, which
421 // may not be the same as the original TD graph computed by DS analysis.
422 //
Chris Lattner0c0023b2003-08-31 19:29:52 +0000423 funcModRef = &getAnalysis<IPModRef>().getFunctionModRefInfo(F);
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000424 funcGraph = &funcModRef->getFuncGraph();
425
426 // TEMPORARY: ptr to depGraph (later just becomes "this").
Chris Lattner0c0023b2003-08-31 19:29:52 +0000427 assert(!funcMap.count(&F) && "Analyzing function twice?");
428 funcDepGraph = funcMap[&F] = new DependenceGraph();
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000429
430 ModRefTable ModRefAfter;
431
432 SCC<Function*>* nextSCC;
Chris Lattner0c0023b2003-08-31 19:29:52 +0000433 for (TarjanSCC_iterator<Function*> I = tarj_begin(&F), E = tarj_end(&F);
434 I != E; ++I)
Chris Lattner6c5fd8e2003-08-31 19:35:16 +0000435 ProcessSCC(*I, ModRefAfter);
Vikram S. Adve96b21c12002-12-08 13:26:29 +0000436
437 return true;
438}
439
440
441//-------------------------------------------------------------------------
442// TEMPORARY FUNCTIONS TO MAKE THIS A MODULE PASS ---
443// These functions will go away once this class becomes a FunctionPass.
444//
445
446// Driver function to compute dependence graphs for every function.
447// This is temporary and will go away once this is a FunctionPass.
448//
449bool MemoryDepAnalysis::run(Module& M)
450{
451 for (Module::iterator FI = M.begin(), FE = M.end(); FI != FE; ++FI)
452 if (! FI->isExternal())
453 runOnFunction(*FI); // automatically inserts each depGraph into funcMap
454 return true;
455}
456
457// Release all the dependence graphs in the map.
458void MemoryDepAnalysis::releaseMemory()
459{
460 for (hash_map<Function*, DependenceGraph*>::const_iterator
461 I = funcMap.begin(), E = funcMap.end(); I != E; ++I)
462 delete I->second;
463 funcMap.clear();
464
465 // Clear pointers because the pass constructor will not be invoked again.
466 funcDepGraph = NULL;
467 funcGraph = NULL;
468 funcModRef = NULL;
469}
470
471MemoryDepAnalysis::~MemoryDepAnalysis()
472{
473 releaseMemory();
474}
475
476//----END TEMPORARY FUNCTIONS----------------------------------------------
477
478
479void MemoryDepAnalysis::dump() const
480{
481 this->print(std::cerr);
482}
483
484static RegisterAnalysis<MemoryDepAnalysis>
485Z("memdep", "Memory Dependence Analysis");
486