1 //===- Predicate.cpp - Predicate class ------------------------------------===// 2 // 3 // Part of the LLVM Project, under the Apache License v2.0 with LLVM Exceptions. 4 // See https://llvm.org/LICENSE.txt for license information. 5 // SPDX-License-Identifier: Apache-2.0 WITH LLVM-exception 6 // 7 //===----------------------------------------------------------------------===// 8 // 9 // Wrapper around predicates defined in TableGen. 10 // 11 //===----------------------------------------------------------------------===// 12 13 #include "mlir/TableGen/Predicate.h" 14 #include "llvm/ADT/SetVector.h" 15 #include "llvm/ADT/SmallPtrSet.h" 16 #include "llvm/ADT/StringExtras.h" 17 #include "llvm/Support/FormatVariadic.h" 18 #include "llvm/TableGen/Error.h" 19 #include "llvm/TableGen/Record.h" 20 21 using namespace mlir; 22 using namespace tblgen; 23 24 // Construct a Predicate from a record. 25 Pred::Pred(const llvm::Record *record) : def(record) { 26 assert(def->isSubClassOf("Pred") && 27 "must be a subclass of TableGen 'Pred' class"); 28 } 29 30 // Construct a Predicate from an initializer. 31 Pred::Pred(const llvm::Init *init) : def(nullptr) { 32 if (const auto *defInit = dyn_cast_or_null<llvm::DefInit>(init)) 33 def = defInit->getDef(); 34 } 35 36 std::string Pred::getCondition() const { 37 // Static dispatch to subclasses. 38 if (def->isSubClassOf("CombinedPred")) 39 return static_cast<const CombinedPred *>(this)->getConditionImpl(); 40 if (def->isSubClassOf("CPred")) 41 return static_cast<const CPred *>(this)->getConditionImpl(); 42 llvm_unreachable("Pred::getCondition must be overridden in subclasses"); 43 } 44 45 bool Pred::isCombined() const { 46 return def && def->isSubClassOf("CombinedPred"); 47 } 48 49 ArrayRef<llvm::SMLoc> Pred::getLoc() const { return def->getLoc(); } 50 51 CPred::CPred(const llvm::Record *record) : Pred(record) { 52 assert(def->isSubClassOf("CPred") && 53 "must be a subclass of Tablegen 'CPred' class"); 54 } 55 56 CPred::CPred(const llvm::Init *init) : Pred(init) { 57 assert((!def || def->isSubClassOf("CPred")) && 58 "must be a subclass of Tablegen 'CPred' class"); 59 } 60 61 // Get condition of the C Predicate. 62 std::string CPred::getConditionImpl() const { 63 assert(!isNull() && "null predicate does not have a condition"); 64 return std::string(def->getValueAsString("predExpr")); 65 } 66 67 CombinedPred::CombinedPred(const llvm::Record *record) : Pred(record) { 68 assert(def->isSubClassOf("CombinedPred") && 69 "must be a subclass of Tablegen 'CombinedPred' class"); 70 } 71 72 CombinedPred::CombinedPred(const llvm::Init *init) : Pred(init) { 73 assert((!def || def->isSubClassOf("CombinedPred")) && 74 "must be a subclass of Tablegen 'CombinedPred' class"); 75 } 76 77 const llvm::Record *CombinedPred::getCombinerDef() const { 78 assert(def->getValue("kind") && "CombinedPred must have a value 'kind'"); 79 return def->getValueAsDef("kind"); 80 } 81 82 const std::vector<llvm::Record *> CombinedPred::getChildren() const { 83 assert(def->getValue("children") && 84 "CombinedPred must have a value 'children'"); 85 return def->getValueAsListOfDefs("children"); 86 } 87 88 namespace { 89 // Kinds of nodes in a logical predicate tree. 90 enum class PredCombinerKind { 91 Leaf, 92 And, 93 Or, 94 Not, 95 SubstLeaves, 96 Concat, 97 // Special kinds that are used in simplification. 98 False, 99 True 100 }; 101 102 // A node in a logical predicate tree. 103 struct PredNode { 104 PredCombinerKind kind; 105 const Pred *predicate; 106 SmallVector<PredNode *, 4> children; 107 std::string expr; 108 109 // Prefix and suffix are used by ConcatPred. 110 std::string prefix; 111 std::string suffix; 112 }; 113 } // end anonymous namespace 114 115 // Get a predicate tree node kind based on the kind used in the predicate 116 // TableGen record. 117 static PredCombinerKind getPredCombinerKind(const Pred &pred) { 118 if (!pred.isCombined()) 119 return PredCombinerKind::Leaf; 120 121 const auto &combinedPred = static_cast<const CombinedPred &>(pred); 122 return llvm::StringSwitch<PredCombinerKind>( 123 combinedPred.getCombinerDef()->getName()) 124 .Case("PredCombinerAnd", PredCombinerKind::And) 125 .Case("PredCombinerOr", PredCombinerKind::Or) 126 .Case("PredCombinerNot", PredCombinerKind::Not) 127 .Case("PredCombinerSubstLeaves", PredCombinerKind::SubstLeaves) 128 .Case("PredCombinerConcat", PredCombinerKind::Concat); 129 } 130 131 namespace { 132 // Substitution<pattern, replacement>. 133 using Subst = std::pair<StringRef, StringRef>; 134 } // end anonymous namespace 135 136 // Build the predicate tree starting from the top-level predicate, which may 137 // have children, and perform leaf substitutions inplace. Note that after 138 // substitution, nodes are still pointing to the original TableGen record. 139 // All nodes are created within "allocator". 140 static PredNode * 141 buildPredicateTree(const Pred &root, 142 llvm::SpecificBumpPtrAllocator<PredNode> &allocator, 143 ArrayRef<Subst> substitutions) { 144 auto *rootNode = allocator.Allocate(); 145 new (rootNode) PredNode; 146 rootNode->kind = getPredCombinerKind(root); 147 rootNode->predicate = &root; 148 if (!root.isCombined()) { 149 rootNode->expr = root.getCondition(); 150 // Apply all parent substitutions from innermost to outermost. 151 for (const auto &subst : llvm::reverse(substitutions)) { 152 auto pos = rootNode->expr.find(std::string(subst.first)); 153 while (pos != std::string::npos) { 154 rootNode->expr.replace(pos, subst.first.size(), 155 std::string(subst.second)); 156 // Skip the newly inserted substring, which itself may consider the 157 // pattern to match. 158 pos += subst.second.size(); 159 // Find the next possible match position. 160 pos = rootNode->expr.find(std::string(subst.first), pos); 161 } 162 } 163 return rootNode; 164 } 165 166 // If the current combined predicate is a leaf substitution, append it to the 167 // list before continuing. 168 auto allSubstitutions = llvm::to_vector<4>(substitutions); 169 if (rootNode->kind == PredCombinerKind::SubstLeaves) { 170 const auto &substPred = static_cast<const SubstLeavesPred &>(root); 171 allSubstitutions.push_back( 172 {substPred.getPattern(), substPred.getReplacement()}); 173 } 174 // If the current predicate is a ConcatPred, record the prefix and suffix. 175 else if (rootNode->kind == PredCombinerKind::Concat) { 176 const auto &concatPred = static_cast<const ConcatPred &>(root); 177 rootNode->prefix = std::string(concatPred.getPrefix()); 178 rootNode->suffix = std::string(concatPred.getSuffix()); 179 } 180 181 // Build child subtrees. 182 auto combined = static_cast<const CombinedPred &>(root); 183 for (const auto *record : combined.getChildren()) { 184 auto childTree = 185 buildPredicateTree(Pred(record), allocator, allSubstitutions); 186 rootNode->children.push_back(childTree); 187 } 188 return rootNode; 189 } 190 191 // Simplify a predicate tree rooted at "node" using the predicates that are 192 // known to be true(false). For AND(OR) combined predicates, if any of the 193 // children is known to be false(true), the result is also false(true). 194 // Furthermore, for AND(OR) combined predicates, children that are known to be 195 // true(false) don't have to be checked dynamically. 196 static PredNode * 197 propagateGroundTruth(PredNode *node, 198 const llvm::SmallPtrSetImpl<Pred *> &knownTruePreds, 199 const llvm::SmallPtrSetImpl<Pred *> &knownFalsePreds) { 200 // If the current predicate is known to be true or false, change the kind of 201 // the node and return immediately. 202 if (knownTruePreds.count(node->predicate) != 0) { 203 node->kind = PredCombinerKind::True; 204 node->children.clear(); 205 return node; 206 } 207 if (knownFalsePreds.count(node->predicate) != 0) { 208 node->kind = PredCombinerKind::False; 209 node->children.clear(); 210 return node; 211 } 212 213 // If the current node is a substitution, stop recursion now. 214 // The expressions in the leaves below this node were rewritten, but the nodes 215 // still point to the original predicate records. While the original 216 // predicate may be known to be true or false, it is not necessarily the case 217 // after rewriting. 218 // TODO: we can support ground truth for rewritten 219 // predicates by either (a) having our own unique'ing of the predicates 220 // instead of relying on TableGen record pointers or (b) taking ground truth 221 // values optionally prefixed with a list of substitutions to apply, e.g. 222 // "predX is true by itself as well as predSubY leaf substitution had been 223 // applied to it". 224 if (node->kind == PredCombinerKind::SubstLeaves) { 225 return node; 226 } 227 228 // Otherwise, look at child nodes. 229 230 // Move child nodes into some local variable so that they can be optimized 231 // separately and re-added if necessary. 232 llvm::SmallVector<PredNode *, 4> children; 233 std::swap(node->children, children); 234 235 for (auto &child : children) { 236 // First, simplify the child. This maintains the predicate as it was. 237 auto simplifiedChild = 238 propagateGroundTruth(child, knownTruePreds, knownFalsePreds); 239 240 // Just add the child if we don't know how to simplify the current node. 241 if (node->kind != PredCombinerKind::And && 242 node->kind != PredCombinerKind::Or) { 243 node->children.push_back(simplifiedChild); 244 continue; 245 } 246 247 // Second, based on the type define which known values of child predicates 248 // immediately collapse this predicate to a known value, and which others 249 // may be safely ignored. 250 // OR(..., True, ...) = True 251 // OR(..., False, ...) = OR(..., ...) 252 // AND(..., False, ...) = False 253 // AND(..., True, ...) = AND(..., ...) 254 auto collapseKind = node->kind == PredCombinerKind::And 255 ? PredCombinerKind::False 256 : PredCombinerKind::True; 257 auto eraseKind = node->kind == PredCombinerKind::And 258 ? PredCombinerKind::True 259 : PredCombinerKind::False; 260 const auto &collapseList = 261 node->kind == PredCombinerKind::And ? knownFalsePreds : knownTruePreds; 262 const auto &eraseList = 263 node->kind == PredCombinerKind::And ? knownTruePreds : knownFalsePreds; 264 if (simplifiedChild->kind == collapseKind || 265 collapseList.count(simplifiedChild->predicate) != 0) { 266 node->kind = collapseKind; 267 node->children.clear(); 268 return node; 269 } else if (simplifiedChild->kind == eraseKind || 270 eraseList.count(simplifiedChild->predicate) != 0) { 271 continue; 272 } 273 node->children.push_back(simplifiedChild); 274 } 275 return node; 276 } 277 278 // Combine a list of predicate expressions using a binary combiner. If a list 279 // is empty, return "init". 280 static std::string combineBinary(ArrayRef<std::string> children, 281 std::string combiner, std::string init) { 282 if (children.empty()) 283 return init; 284 285 auto size = children.size(); 286 if (size == 1) 287 return children.front(); 288 289 std::string str; 290 llvm::raw_string_ostream os(str); 291 os << '(' << children.front() << ')'; 292 for (unsigned i = 1; i < size; ++i) { 293 os << ' ' << combiner << " (" << children[i] << ')'; 294 } 295 return os.str(); 296 } 297 298 // Prepend negation to the only condition in the predicate expression list. 299 static std::string combineNot(ArrayRef<std::string> children) { 300 assert(children.size() == 1 && "expected exactly one child predicate of Neg"); 301 return (Twine("!(") + children.front() + Twine(')')).str(); 302 } 303 304 // Recursively traverse the predicate tree in depth-first post-order and build 305 // the final expression. 306 static std::string getCombinedCondition(const PredNode &root) { 307 // Immediately return for non-combiner predicates that don't have children. 308 if (root.kind == PredCombinerKind::Leaf) 309 return root.expr; 310 if (root.kind == PredCombinerKind::True) 311 return "true"; 312 if (root.kind == PredCombinerKind::False) 313 return "false"; 314 315 // Recurse into children. 316 llvm::SmallVector<std::string, 4> childExpressions; 317 childExpressions.reserve(root.children.size()); 318 for (const auto &child : root.children) 319 childExpressions.push_back(getCombinedCondition(*child)); 320 321 // Combine the expressions based on the predicate node kind. 322 if (root.kind == PredCombinerKind::And) 323 return combineBinary(childExpressions, "&&", "true"); 324 if (root.kind == PredCombinerKind::Or) 325 return combineBinary(childExpressions, "||", "false"); 326 if (root.kind == PredCombinerKind::Not) 327 return combineNot(childExpressions); 328 if (root.kind == PredCombinerKind::Concat) { 329 assert(childExpressions.size() == 1 && 330 "ConcatPred should only have one child"); 331 return root.prefix + childExpressions.front() + root.suffix; 332 } 333 334 // Substitutions were applied before so just ignore them. 335 if (root.kind == PredCombinerKind::SubstLeaves) { 336 assert(childExpressions.size() == 1 && 337 "substitution predicate must have one child"); 338 return childExpressions[0]; 339 } 340 341 llvm::PrintFatalError(root.predicate->getLoc(), "unsupported predicate kind"); 342 } 343 344 std::string CombinedPred::getConditionImpl() const { 345 llvm::SpecificBumpPtrAllocator<PredNode> allocator; 346 auto predicateTree = buildPredicateTree(*this, allocator, {}); 347 predicateTree = 348 propagateGroundTruth(predicateTree, 349 /*knownTruePreds=*/llvm::SmallPtrSet<Pred *, 2>(), 350 /*knownFalsePreds=*/llvm::SmallPtrSet<Pred *, 2>()); 351 352 return getCombinedCondition(*predicateTree); 353 } 354 355 StringRef SubstLeavesPred::getPattern() const { 356 return def->getValueAsString("pattern"); 357 } 358 359 StringRef SubstLeavesPred::getReplacement() const { 360 return def->getValueAsString("replacement"); 361 } 362 363 StringRef ConcatPred::getPrefix() const { 364 return def->getValueAsString("prefix"); 365 } 366 367 StringRef ConcatPred::getSuffix() const { 368 return def->getValueAsString("suffix"); 369 } 370