Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 1 | //===- DominatorSet.cpp - Dominator Set Calculation --------------*- C++ -*--=// |
| 2 | // |
| 3 | // This file provides a simple class to calculate the dominator set of a method. |
| 4 | // |
| 5 | //===----------------------------------------------------------------------===// |
| 6 | |
| 7 | #include "llvm/Analysis/Dominators.h" |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 8 | #include "llvm/Analysis/SimplifyCFG.h" // To get cfg::UnifyAllExitNodes |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 9 | #include "llvm/Method.h" |
Chris Lattner | cee8f9a | 2001-11-27 00:03:19 +0000 | [diff] [blame] | 10 | #include "Support/DepthFirstIterator.h" |
| 11 | #include "Support/STLExtras.h" |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 12 | #include <algorithm> |
Chris Lattner | 697954c | 2002-01-20 22:54:45 +0000 | [diff] [blame^] | 13 | using std::set; |
| 14 | |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 15 | |
| 16 | //===----------------------------------------------------------------------===// |
| 17 | // Helper Template |
| 18 | //===----------------------------------------------------------------------===// |
| 19 | |
| 20 | // set_intersect - Identical to set_intersection, except that it works on |
| 21 | // set<>'s and is nicer to use. Functionally, this iterates through S1, |
| 22 | // removing elements that are not contained in S2. |
| 23 | // |
| 24 | template <class Ty, class Ty2> |
| 25 | void set_intersect(set<Ty> &S1, const set<Ty2> &S2) { |
| 26 | for (typename set<Ty>::iterator I = S1.begin(); I != S1.end();) { |
| 27 | const Ty &E = *I; |
| 28 | ++I; |
| 29 | if (!S2.count(E)) S1.erase(E); // Erase element if not in S2 |
| 30 | } |
| 31 | } |
| 32 | |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 33 | //===----------------------------------------------------------------------===// |
| 34 | // DominatorBase Implementation |
| 35 | //===----------------------------------------------------------------------===// |
| 36 | |
| 37 | bool cfg::DominatorBase::isPostDominator() const { |
Chris Lattner | 384e5b1 | 2001-08-23 17:07:19 +0000 | [diff] [blame] | 38 | // Root can be null if there is no exit node from the CFG and is postdom set |
| 39 | return Root == 0 || Root != Root->getParent()->front(); |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 40 | } |
| 41 | |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 42 | |
| 43 | //===----------------------------------------------------------------------===// |
| 44 | // DominatorSet Implementation |
| 45 | //===----------------------------------------------------------------------===// |
| 46 | |
| 47 | // DominatorSet ctor - Build either the dominator set or the post-dominator |
| 48 | // set for a method... |
| 49 | // |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 50 | cfg::DominatorSet::DominatorSet(const Method *M) : DominatorBase(M->front()) { |
| 51 | calcForwardDominatorSet(M); |
| 52 | } |
| 53 | |
| 54 | // calcForwardDominatorSet - This method calculates the forward dominator sets |
| 55 | // for the specified method. |
| 56 | // |
| 57 | void cfg::DominatorSet::calcForwardDominatorSet(const Method *M) { |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 58 | assert(Root && M && "Can't build dominator set of null method!"); |
Chris Lattner | ff5a8c4 | 2001-11-26 18:52:02 +0000 | [diff] [blame] | 59 | assert(Root->pred_begin() == Root->pred_end() && |
| 60 | "Root node has predecessors in method!"); |
| 61 | |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 62 | bool Changed; |
| 63 | do { |
| 64 | Changed = false; |
| 65 | |
| 66 | DomSetType WorkingSet; |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 67 | df_iterator<const Method*> It = df_begin(M), End = df_end(M); |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 68 | for ( ; It != End; ++It) { |
| 69 | const BasicBlock *BB = *It; |
Chris Lattner | f0604b8 | 2001-10-01 13:19:53 +0000 | [diff] [blame] | 70 | BasicBlock::pred_const_iterator PI = BB->pred_begin(), |
| 71 | PEnd = BB->pred_end(); |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 72 | if (PI != PEnd) { // Is there SOME predecessor? |
| 73 | // Loop until we get to a predecessor that has had it's dom set filled |
| 74 | // in at least once. We are guaranteed to have this because we are |
| 75 | // traversing the graph in DFO and have handled start nodes specially. |
| 76 | // |
| 77 | while (Doms[*PI].size() == 0) ++PI; |
| 78 | WorkingSet = Doms[*PI]; |
| 79 | |
| 80 | for (++PI; PI != PEnd; ++PI) { // Intersect all of the predecessor sets |
| 81 | DomSetType &PredSet = Doms[*PI]; |
| 82 | if (PredSet.size()) |
| 83 | set_intersect(WorkingSet, PredSet); |
| 84 | } |
| 85 | } |
| 86 | |
| 87 | WorkingSet.insert(BB); // A block always dominates itself |
| 88 | DomSetType &BBSet = Doms[BB]; |
| 89 | if (BBSet != WorkingSet) { |
| 90 | BBSet.swap(WorkingSet); // Constant time operation! |
| 91 | Changed = true; // The sets changed. |
| 92 | } |
| 93 | WorkingSet.clear(); // Clear out the set for next iteration |
| 94 | } |
| 95 | } while (Changed); |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 96 | } |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 97 | |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 98 | // Postdominator set constructor. This ctor converts the specified method to |
| 99 | // only have a single exit node (return stmt), then calculates the post |
| 100 | // dominance sets for the method. |
| 101 | // |
| 102 | cfg::DominatorSet::DominatorSet(Method *M, bool PostDomSet) |
| 103 | : DominatorBase(M->front()) { |
| 104 | if (!PostDomSet) { calcForwardDominatorSet(M); return; } |
| 105 | |
| 106 | Root = cfg::UnifyAllExitNodes(M); |
Chris Lattner | 384e5b1 | 2001-08-23 17:07:19 +0000 | [diff] [blame] | 107 | if (Root == 0) { // No exit node for the method? Postdomsets are all empty |
| 108 | for (Method::iterator MI = M->begin(), ME = M->end(); MI != ME; ++MI) |
| 109 | Doms[*MI] = DomSetType(); |
| 110 | return; |
| 111 | } |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 112 | |
| 113 | bool Changed; |
| 114 | do { |
| 115 | Changed = false; |
| 116 | |
| 117 | set<const BasicBlock*> Visited; |
| 118 | DomSetType WorkingSet; |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 119 | idf_iterator<const BasicBlock*> It = idf_begin(Root), End = idf_end(Root); |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 120 | for ( ; It != End; ++It) { |
| 121 | const BasicBlock *BB = *It; |
Chris Lattner | f0604b8 | 2001-10-01 13:19:53 +0000 | [diff] [blame] | 122 | BasicBlock::succ_const_iterator PI = BB->succ_begin(), |
| 123 | PEnd = BB->succ_end(); |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 124 | if (PI != PEnd) { // Is there SOME predecessor? |
| 125 | // Loop until we get to a successor that has had it's dom set filled |
| 126 | // in at least once. We are guaranteed to have this because we are |
| 127 | // traversing the graph in DFO and have handled start nodes specially. |
| 128 | // |
| 129 | while (Doms[*PI].size() == 0) ++PI; |
| 130 | WorkingSet = Doms[*PI]; |
| 131 | |
| 132 | for (++PI; PI != PEnd; ++PI) { // Intersect all of the successor sets |
| 133 | DomSetType &PredSet = Doms[*PI]; |
| 134 | if (PredSet.size()) |
| 135 | set_intersect(WorkingSet, PredSet); |
| 136 | } |
| 137 | } |
| 138 | |
| 139 | WorkingSet.insert(BB); // A block always dominates itself |
| 140 | DomSetType &BBSet = Doms[BB]; |
| 141 | if (BBSet != WorkingSet) { |
| 142 | BBSet.swap(WorkingSet); // Constant time operation! |
| 143 | Changed = true; // The sets changed. |
| 144 | } |
| 145 | WorkingSet.clear(); // Clear out the set for next iteration |
| 146 | } |
| 147 | } while (Changed); |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 148 | } |
| 149 | |
| 150 | |
| 151 | //===----------------------------------------------------------------------===// |
| 152 | // ImmediateDominators Implementation |
| 153 | //===----------------------------------------------------------------------===// |
| 154 | |
| 155 | // calcIDoms - Calculate the immediate dominator mapping, given a set of |
| 156 | // dominators for every basic block. |
| 157 | void cfg::ImmediateDominators::calcIDoms(const DominatorSet &DS) { |
| 158 | // Loop over all of the nodes that have dominators... figuring out the IDOM |
| 159 | // for each node... |
| 160 | // |
| 161 | for (DominatorSet::const_iterator DI = DS.begin(), DEnd = DS.end(); |
| 162 | DI != DEnd; ++DI) { |
| 163 | const BasicBlock *BB = DI->first; |
| 164 | const DominatorSet::DomSetType &Dominators = DI->second; |
| 165 | unsigned DomSetSize = Dominators.size(); |
| 166 | if (DomSetSize == 1) continue; // Root node... IDom = null |
| 167 | |
| 168 | // Loop over all dominators of this node. This corresponds to looping over |
| 169 | // nodes in the dominator chain, looking for a node whose dominator set is |
| 170 | // equal to the current nodes, except that the current node does not exist |
| 171 | // in it. This means that it is one level higher in the dom chain than the |
| 172 | // current node, and it is our idom! |
| 173 | // |
| 174 | DominatorSet::DomSetType::const_iterator I = Dominators.begin(); |
| 175 | DominatorSet::DomSetType::const_iterator End = Dominators.end(); |
| 176 | for (; I != End; ++I) { // Iterate over dominators... |
| 177 | // All of our dominators should form a chain, where the number of elements |
| 178 | // in the dominator set indicates what level the node is at in the chain. |
| 179 | // We want the node immediately above us, so it will have an identical |
| 180 | // dominator set, except that BB will not dominate it... therefore it's |
| 181 | // dominator set size will be one less than BB's... |
| 182 | // |
| 183 | if (DS.getDominators(*I).size() == DomSetSize - 1) { |
| 184 | IDoms[BB] = *I; |
| 185 | break; |
| 186 | } |
| 187 | } |
| 188 | } |
| 189 | } |
| 190 | |
| 191 | |
| 192 | //===----------------------------------------------------------------------===// |
| 193 | // DominatorTree Implementation |
| 194 | //===----------------------------------------------------------------------===// |
| 195 | |
| 196 | // DominatorTree dtor - Free all of the tree node memory. |
| 197 | // |
| 198 | cfg::DominatorTree::~DominatorTree() { |
| 199 | for (NodeMapType::iterator I = Nodes.begin(), E = Nodes.end(); I != E; ++I) |
| 200 | delete I->second; |
| 201 | } |
| 202 | |
| 203 | |
| 204 | cfg::DominatorTree::DominatorTree(const ImmediateDominators &IDoms) |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 205 | : DominatorBase(IDoms.getRoot()) { |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 206 | const Method *M = Root->getParent(); |
| 207 | |
| 208 | Nodes[Root] = new Node(Root, 0); // Add a node for the root... |
| 209 | |
| 210 | // Iterate over all nodes in depth first order... |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 211 | for (df_iterator<const Method*> I = df_begin(M), E = df_end(M); I != E; ++I) { |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 212 | const BasicBlock *BB = *I, *IDom = IDoms[*I]; |
| 213 | |
| 214 | if (IDom != 0) { // Ignore the root node and other nasty nodes |
| 215 | // We know that the immediate dominator should already have a node, |
| 216 | // because we are traversing the CFG in depth first order! |
| 217 | // |
| 218 | assert(Nodes[IDom] && "No node for IDOM?"); |
| 219 | Node *IDomNode = Nodes[IDom]; |
| 220 | |
| 221 | // Add a new tree node for this BasicBlock, and link it as a child of |
| 222 | // IDomNode |
| 223 | Nodes[BB] = IDomNode->addChild(new Node(BB, IDomNode)); |
| 224 | } |
| 225 | } |
| 226 | } |
| 227 | |
| 228 | void cfg::DominatorTree::calculate(const DominatorSet &DS) { |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 229 | Nodes[Root] = new Node(Root, 0); // Add a node for the root... |
| 230 | |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 231 | if (!isPostDominator()) { |
| 232 | // Iterate over all nodes in depth first order... |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 233 | for (df_iterator<const BasicBlock*> I = df_begin(Root), E = df_end(Root); |
| 234 | I != E; ++I) { |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 235 | const BasicBlock *BB = *I; |
| 236 | const DominatorSet::DomSetType &Dominators = DS.getDominators(BB); |
| 237 | unsigned DomSetSize = Dominators.size(); |
| 238 | if (DomSetSize == 1) continue; // Root node... IDom = null |
| 239 | |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 240 | // Loop over all dominators of this node. This corresponds to looping over |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 241 | // nodes in the dominator chain, looking for a node whose dominator set is |
| 242 | // equal to the current nodes, except that the current node does not exist |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 243 | // in it. This means that it is one level higher in the dom chain than the |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 244 | // current node, and it is our idom! We know that we have already added |
| 245 | // a DominatorTree node for our idom, because the idom must be a |
| 246 | // predecessor in the depth first order that we are iterating through the |
| 247 | // method. |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 248 | // |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 249 | DominatorSet::DomSetType::const_iterator I = Dominators.begin(); |
| 250 | DominatorSet::DomSetType::const_iterator End = Dominators.end(); |
| 251 | for (; I != End; ++I) { // Iterate over dominators... |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 252 | // All of our dominators should form a chain, where the number of |
| 253 | // elements in the dominator set indicates what level the node is at in |
| 254 | // the chain. We want the node immediately above us, so it will have |
| 255 | // an identical dominator set, except that BB will not dominate it... |
| 256 | // therefore it's dominator set size will be one less than BB's... |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 257 | // |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 258 | if (DS.getDominators(*I).size() == DomSetSize - 1) { |
| 259 | // We know that the immediate dominator should already have a node, |
| 260 | // because we are traversing the CFG in depth first order! |
| 261 | // |
| 262 | Node *IDomNode = Nodes[*I]; |
| 263 | assert(IDomNode && "No node for IDOM?"); |
| 264 | |
| 265 | // Add a new tree node for this BasicBlock, and link it as a child of |
| 266 | // IDomNode |
| 267 | Nodes[BB] = IDomNode->addChild(new Node(BB, IDomNode)); |
| 268 | break; |
| 269 | } |
| 270 | } |
| 271 | } |
Chris Lattner | 384e5b1 | 2001-08-23 17:07:19 +0000 | [diff] [blame] | 272 | } else if (Root) { |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 273 | // Iterate over all nodes in depth first order... |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 274 | for (idf_iterator<const BasicBlock*> I = idf_begin(Root), E = idf_end(Root); |
| 275 | I != E; ++I) { |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 276 | const BasicBlock *BB = *I; |
| 277 | const DominatorSet::DomSetType &Dominators = DS.getDominators(BB); |
| 278 | unsigned DomSetSize = Dominators.size(); |
| 279 | if (DomSetSize == 1) continue; // Root node... IDom = null |
| 280 | |
Chris Lattner | 3ff4387 | 2001-09-28 22:56:31 +0000 | [diff] [blame] | 281 | // Loop over all dominators of this node. This corresponds to looping |
| 282 | // over nodes in the dominator chain, looking for a node whose dominator |
| 283 | // set is equal to the current nodes, except that the current node does |
| 284 | // not exist in it. This means that it is one level higher in the dom |
| 285 | // chain than the current node, and it is our idom! We know that we have |
| 286 | // already added a DominatorTree node for our idom, because the idom must |
| 287 | // be a predecessor in the depth first order that we are iterating through |
| 288 | // the method. |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 289 | // |
| 290 | DominatorSet::DomSetType::const_iterator I = Dominators.begin(); |
| 291 | DominatorSet::DomSetType::const_iterator End = Dominators.end(); |
| 292 | for (; I != End; ++I) { // Iterate over dominators... |
| 293 | // All of our dominators should form a chain, where the number of elements |
| 294 | // in the dominator set indicates what level the node is at in the chain. |
| 295 | // We want the node immediately above us, so it will have an identical |
| 296 | // dominator set, except that BB will not dominate it... therefore it's |
| 297 | // dominator set size will be one less than BB's... |
| 298 | // |
| 299 | if (DS.getDominators(*I).size() == DomSetSize - 1) { |
| 300 | // We know that the immediate dominator should already have a node, |
| 301 | // because we are traversing the CFG in depth first order! |
| 302 | // |
| 303 | Node *IDomNode = Nodes[*I]; |
| 304 | assert(IDomNode && "No node for IDOM?"); |
| 305 | |
| 306 | // Add a new tree node for this BasicBlock, and link it as a child of |
| 307 | // IDomNode |
| 308 | Nodes[BB] = IDomNode->addChild(new Node(BB, IDomNode)); |
| 309 | break; |
| 310 | } |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 311 | } |
| 312 | } |
| 313 | } |
| 314 | } |
| 315 | |
| 316 | |
| 317 | |
| 318 | //===----------------------------------------------------------------------===// |
| 319 | // DominanceFrontier Implementation |
| 320 | //===----------------------------------------------------------------------===// |
| 321 | |
| 322 | const cfg::DominanceFrontier::DomSetType & |
| 323 | cfg::DominanceFrontier::calcDomFrontier(const DominatorTree &DT, |
| 324 | const DominatorTree::Node *Node) { |
| 325 | // Loop over CFG successors to calculate DFlocal[Node] |
| 326 | const BasicBlock *BB = Node->getNode(); |
| 327 | DomSetType &S = Frontiers[BB]; // The new set to fill in... |
| 328 | |
Chris Lattner | f0604b8 | 2001-10-01 13:19:53 +0000 | [diff] [blame] | 329 | for (BasicBlock::succ_const_iterator SI = BB->succ_begin(), |
| 330 | SE = BB->succ_end(); SI != SE; ++SI) { |
Chris Lattner | 1715229 | 2001-07-02 05:46:38 +0000 | [diff] [blame] | 331 | // Does Node immediately dominate this successor? |
| 332 | if (DT[*SI]->getIDom() != Node) |
| 333 | S.insert(*SI); |
| 334 | } |
| 335 | |
| 336 | // At this point, S is DFlocal. Now we union in DFup's of our children... |
| 337 | // Loop through and visit the nodes that Node immediately dominates (Node's |
| 338 | // children in the IDomTree) |
| 339 | // |
| 340 | for (DominatorTree::Node::const_iterator NI = Node->begin(), NE = Node->end(); |
| 341 | NI != NE; ++NI) { |
| 342 | DominatorTree::Node *IDominee = *NI; |
| 343 | const DomSetType &ChildDF = calcDomFrontier(DT, IDominee); |
| 344 | |
| 345 | DomSetType::const_iterator CDFI = ChildDF.begin(), CDFE = ChildDF.end(); |
| 346 | for (; CDFI != CDFE; ++CDFI) { |
| 347 | if (!Node->dominates(DT[*CDFI])) |
| 348 | S.insert(*CDFI); |
| 349 | } |
| 350 | } |
| 351 | |
| 352 | return S; |
| 353 | } |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 354 | |
| 355 | const cfg::DominanceFrontier::DomSetType & |
| 356 | cfg::DominanceFrontier::calcPostDomFrontier(const DominatorTree &DT, |
| 357 | const DominatorTree::Node *Node) { |
| 358 | // Loop over CFG successors to calculate DFlocal[Node] |
| 359 | const BasicBlock *BB = Node->getNode(); |
| 360 | DomSetType &S = Frontiers[BB]; // The new set to fill in... |
Chris Lattner | 384e5b1 | 2001-08-23 17:07:19 +0000 | [diff] [blame] | 361 | if (!Root) return S; |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 362 | |
Chris Lattner | f0604b8 | 2001-10-01 13:19:53 +0000 | [diff] [blame] | 363 | for (BasicBlock::pred_const_iterator SI = BB->pred_begin(), |
| 364 | SE = BB->pred_end(); SI != SE; ++SI) { |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 365 | // Does Node immediately dominate this predeccessor? |
| 366 | if (DT[*SI]->getIDom() != Node) |
| 367 | S.insert(*SI); |
| 368 | } |
| 369 | |
| 370 | // At this point, S is DFlocal. Now we union in DFup's of our children... |
| 371 | // Loop through and visit the nodes that Node immediately dominates (Node's |
| 372 | // children in the IDomTree) |
| 373 | // |
| 374 | for (DominatorTree::Node::const_iterator NI = Node->begin(), NE = Node->end(); |
| 375 | NI != NE; ++NI) { |
| 376 | DominatorTree::Node *IDominee = *NI; |
Chris Lattner | 3590830 | 2001-07-08 05:54:09 +0000 | [diff] [blame] | 377 | const DomSetType &ChildDF = calcPostDomFrontier(DT, IDominee); |
Chris Lattner | 94108ab | 2001-07-06 16:58:22 +0000 | [diff] [blame] | 378 | |
| 379 | DomSetType::const_iterator CDFI = ChildDF.begin(), CDFE = ChildDF.end(); |
| 380 | for (; CDFI != CDFE; ++CDFI) { |
| 381 | if (!Node->dominates(DT[*CDFI])) |
| 382 | S.insert(*CDFI); |
| 383 | } |
| 384 | } |
| 385 | |
| 386 | return S; |
| 387 | } |