1 // Copyright 2014 the V8 project authors. All rights reserved.
2 // Use of this source code is governed by a BSD-style license that can be
3 // found in the LICENSE file.
4
5 #include "src/compiler/types.h"
6
7 #include <iomanip>
8
9 #include "src/compiler/js-heap-broker.h"
10 #include "src/handles/handles-inl.h"
11 #include "src/objects/instance-type.h"
12 #include "src/objects/objects-inl.h"
13 #include "src/objects/turbofan-types.h"
14 #include "src/utils/ostreams.h"
15
16 namespace v8 {
17 namespace internal {
18 namespace compiler {
19
20 // -----------------------------------------------------------------------------
21 // Range-related helper functions.
22
IsEmpty()23 bool RangeType::Limits::IsEmpty() { return this->min > this->max; }
24
Intersect(Limits lhs,Limits rhs)25 RangeType::Limits RangeType::Limits::Intersect(Limits lhs, Limits rhs) {
26 DisallowGarbageCollection no_gc;
27 Limits result(lhs);
28 if (lhs.min < rhs.min) result.min = rhs.min;
29 if (lhs.max > rhs.max) result.max = rhs.max;
30 return result;
31 }
32
Union(Limits lhs,Limits rhs)33 RangeType::Limits RangeType::Limits::Union(Limits lhs, Limits rhs) {
34 DisallowGarbageCollection no_gc;
35 if (lhs.IsEmpty()) return rhs;
36 if (rhs.IsEmpty()) return lhs;
37 Limits result(lhs);
38 if (lhs.min > rhs.min) result.min = rhs.min;
39 if (lhs.max < rhs.max) result.max = rhs.max;
40 return result;
41 }
42
Overlap(const RangeType * lhs,const RangeType * rhs)43 bool Type::Overlap(const RangeType* lhs, const RangeType* rhs) {
44 DisallowGarbageCollection no_gc;
45 return !RangeType::Limits::Intersect(RangeType::Limits(lhs),
46 RangeType::Limits(rhs))
47 .IsEmpty();
48 }
49
Contains(const RangeType * lhs,const RangeType * rhs)50 bool Type::Contains(const RangeType* lhs, const RangeType* rhs) {
51 DisallowGarbageCollection no_gc;
52 return lhs->Min() <= rhs->Min() && rhs->Max() <= lhs->Max();
53 }
54
55 // -----------------------------------------------------------------------------
56 // Min and Max computation.
57
Min() const58 double Type::Min() const {
59 DCHECK(this->Is(Number()));
60 DCHECK(!this->Is(NaN()));
61 if (this->IsBitset()) return BitsetType::Min(this->AsBitset());
62 if (this->IsUnion()) {
63 double min = +V8_INFINITY;
64 for (int i = 1, n = AsUnion()->Length(); i < n; ++i) {
65 min = std::min(min, AsUnion()->Get(i).Min());
66 }
67 Type bitset = AsUnion()->Get(0);
68 if (!bitset.Is(NaN())) min = std::min(min, bitset.Min());
69 return min;
70 }
71 if (this->IsRange()) return this->AsRange()->Min();
72 DCHECK(this->IsOtherNumberConstant());
73 return this->AsOtherNumberConstant()->Value();
74 }
75
Max() const76 double Type::Max() const {
77 DCHECK(this->Is(Number()));
78 DCHECK(!this->Is(NaN()));
79 if (this->IsBitset()) return BitsetType::Max(this->AsBitset());
80 if (this->IsUnion()) {
81 double max = -V8_INFINITY;
82 for (int i = 1, n = this->AsUnion()->Length(); i < n; ++i) {
83 max = std::max(max, this->AsUnion()->Get(i).Max());
84 }
85 Type bitset = this->AsUnion()->Get(0);
86 if (!bitset.Is(NaN())) max = std::max(max, bitset.Max());
87 return max;
88 }
89 if (this->IsRange()) return this->AsRange()->Max();
90 DCHECK(this->IsOtherNumberConstant());
91 return this->AsOtherNumberConstant()->Value();
92 }
93
94 // -----------------------------------------------------------------------------
95 // Glb and lub computation.
96
97 // The largest bitset subsumed by this type.
BitsetGlb() const98 Type::bitset Type::BitsetGlb() const {
99 DisallowGarbageCollection no_gc;
100 // Fast case.
101 if (IsBitset()) {
102 return AsBitset();
103 } else if (IsUnion()) {
104 SLOW_DCHECK(AsUnion()->Wellformed());
105 return AsUnion()->Get(0).BitsetGlb() |
106 AsUnion()->Get(1).BitsetGlb(); // Shortcut.
107 } else if (IsRange()) {
108 bitset glb = BitsetType::Glb(AsRange()->Min(), AsRange()->Max());
109 return glb;
110 } else {
111 return BitsetType::kNone;
112 }
113 }
114
115 // The smallest bitset subsuming this type, possibly not a proper one.
BitsetLub() const116 Type::bitset Type::BitsetLub() const {
117 DisallowGarbageCollection no_gc;
118 if (IsBitset()) return AsBitset();
119 if (IsUnion()) {
120 // Take the representation from the first element, which is always
121 // a bitset.
122 bitset lub = AsUnion()->Get(0).BitsetLub();
123 for (int i = 0, n = AsUnion()->Length(); i < n; ++i) {
124 // Other elements only contribute their semantic part.
125 lub |= AsUnion()->Get(i).BitsetLub();
126 }
127 return lub;
128 }
129 if (IsHeapConstant()) return AsHeapConstant()->Lub();
130 if (IsOtherNumberConstant()) {
131 return AsOtherNumberConstant()->Lub();
132 }
133 if (IsRange()) return AsRange()->Lub();
134 if (IsTuple()) return BitsetType::kOtherInternal;
135 UNREACHABLE();
136 }
137
138 // TODO(neis): Once the broker mode kDisabled is gone, change the input type to
139 // MapRef and get rid of the HeapObjectType class.
140 template <typename MapRefLike>
Lub(const MapRefLike & map)141 Type::bitset BitsetType::Lub(const MapRefLike& map) {
142 switch (map.instance_type()) {
143 case CONS_STRING_TYPE:
144 case CONS_ONE_BYTE_STRING_TYPE:
145 case THIN_STRING_TYPE:
146 case THIN_ONE_BYTE_STRING_TYPE:
147 case SLICED_STRING_TYPE:
148 case SLICED_ONE_BYTE_STRING_TYPE:
149 case EXTERNAL_STRING_TYPE:
150 case EXTERNAL_ONE_BYTE_STRING_TYPE:
151 case UNCACHED_EXTERNAL_STRING_TYPE:
152 case UNCACHED_EXTERNAL_ONE_BYTE_STRING_TYPE:
153 case STRING_TYPE:
154 case ONE_BYTE_STRING_TYPE:
155 return kString;
156 case EXTERNAL_INTERNALIZED_STRING_TYPE:
157 case EXTERNAL_ONE_BYTE_INTERNALIZED_STRING_TYPE:
158 case UNCACHED_EXTERNAL_INTERNALIZED_STRING_TYPE:
159 case UNCACHED_EXTERNAL_ONE_BYTE_INTERNALIZED_STRING_TYPE:
160 case INTERNALIZED_STRING_TYPE:
161 case ONE_BYTE_INTERNALIZED_STRING_TYPE:
162 return kInternalizedString;
163 case SYMBOL_TYPE:
164 return kSymbol;
165 case BIGINT_TYPE:
166 return kBigInt;
167 case ODDBALL_TYPE:
168 switch (map.oddball_type()) {
169 case OddballType::kNone:
170 break;
171 case OddballType::kHole:
172 return kHole;
173 case OddballType::kBoolean:
174 return kBoolean;
175 case OddballType::kNull:
176 return kNull;
177 case OddballType::kUndefined:
178 return kUndefined;
179 case OddballType::kUninitialized:
180 case OddballType::kOther:
181 // TODO(neis): We should add a kOtherOddball type.
182 return kOtherInternal;
183 }
184 UNREACHABLE();
185 case HEAP_NUMBER_TYPE:
186 return kNumber;
187 case JS_ARRAY_ITERATOR_PROTOTYPE_TYPE:
188 case JS_ITERATOR_PROTOTYPE_TYPE:
189 case JS_MAP_ITERATOR_PROTOTYPE_TYPE:
190 case JS_OBJECT_PROTOTYPE_TYPE:
191 case JS_OBJECT_TYPE:
192 case JS_PROMISE_PROTOTYPE_TYPE:
193 case JS_REG_EXP_PROTOTYPE_TYPE:
194 case JS_SET_ITERATOR_PROTOTYPE_TYPE:
195 case JS_SET_PROTOTYPE_TYPE:
196 case JS_STRING_ITERATOR_PROTOTYPE_TYPE:
197 case JS_ARGUMENTS_OBJECT_TYPE:
198 case JS_ERROR_TYPE:
199 case JS_EXTERNAL_OBJECT_TYPE:
200 case JS_GLOBAL_OBJECT_TYPE:
201 case JS_GLOBAL_PROXY_TYPE:
202 case JS_API_OBJECT_TYPE:
203 case JS_SPECIAL_API_OBJECT_TYPE:
204 case JS_TYPED_ARRAY_PROTOTYPE_TYPE:
205 if (map.is_undetectable()) {
206 // Currently we assume that every undetectable receiver is also
207 // callable, which is what we need to support document.all. We
208 // could add another Type bit to support other use cases in the
209 // future if necessary.
210 DCHECK(map.is_callable());
211 return kOtherUndetectable;
212 }
213 if (map.is_callable()) {
214 return kOtherCallable;
215 }
216 return kOtherObject;
217 case JS_ARRAY_TYPE:
218 return kArray;
219 case JS_PRIMITIVE_WRAPPER_TYPE:
220 case JS_MESSAGE_OBJECT_TYPE:
221 case JS_DATE_TYPE:
222 #ifdef V8_INTL_SUPPORT
223 case JS_V8_BREAK_ITERATOR_TYPE:
224 case JS_COLLATOR_TYPE:
225 case JS_DATE_TIME_FORMAT_TYPE:
226 case JS_DISPLAY_NAMES_TYPE:
227 case JS_LIST_FORMAT_TYPE:
228 case JS_LOCALE_TYPE:
229 case JS_NUMBER_FORMAT_TYPE:
230 case JS_PLURAL_RULES_TYPE:
231 case JS_RELATIVE_TIME_FORMAT_TYPE:
232 case JS_SEGMENT_ITERATOR_TYPE:
233 case JS_SEGMENTER_TYPE:
234 case JS_SEGMENTS_TYPE:
235 #endif // V8_INTL_SUPPORT
236 case JS_CONTEXT_EXTENSION_OBJECT_TYPE:
237 case JS_GENERATOR_OBJECT_TYPE:
238 case JS_ASYNC_FUNCTION_OBJECT_TYPE:
239 case JS_ASYNC_GENERATOR_OBJECT_TYPE:
240 case JS_MODULE_NAMESPACE_TYPE:
241 case JS_ARRAY_BUFFER_TYPE:
242 case JS_ARRAY_ITERATOR_TYPE:
243 case JS_REG_EXP_TYPE:
244 case JS_REG_EXP_STRING_ITERATOR_TYPE:
245 case JS_TYPED_ARRAY_TYPE:
246 case JS_DATA_VIEW_TYPE:
247 case JS_SET_TYPE:
248 case JS_MAP_TYPE:
249 case JS_SET_KEY_VALUE_ITERATOR_TYPE:
250 case JS_SET_VALUE_ITERATOR_TYPE:
251 case JS_MAP_KEY_ITERATOR_TYPE:
252 case JS_MAP_KEY_VALUE_ITERATOR_TYPE:
253 case JS_MAP_VALUE_ITERATOR_TYPE:
254 case JS_STRING_ITERATOR_TYPE:
255 case JS_ASYNC_FROM_SYNC_ITERATOR_TYPE:
256 case JS_FINALIZATION_REGISTRY_TYPE:
257 case JS_WEAK_MAP_TYPE:
258 case JS_WEAK_REF_TYPE:
259 case JS_WEAK_SET_TYPE:
260 case JS_PROMISE_TYPE:
261 case JS_SHADOW_REALM_TYPE:
262 case JS_SHARED_STRUCT_TYPE:
263 case JS_TEMPORAL_CALENDAR_TYPE:
264 case JS_TEMPORAL_DURATION_TYPE:
265 case JS_TEMPORAL_INSTANT_TYPE:
266 case JS_TEMPORAL_PLAIN_DATE_TYPE:
267 case JS_TEMPORAL_PLAIN_DATE_TIME_TYPE:
268 case JS_TEMPORAL_PLAIN_MONTH_DAY_TYPE:
269 case JS_TEMPORAL_PLAIN_TIME_TYPE:
270 case JS_TEMPORAL_PLAIN_YEAR_MONTH_TYPE:
271 case JS_TEMPORAL_TIME_ZONE_TYPE:
272 case JS_TEMPORAL_ZONED_DATE_TIME_TYPE:
273 #if V8_ENABLE_WEBASSEMBLY
274 case WASM_ARRAY_TYPE:
275 case WASM_GLOBAL_OBJECT_TYPE:
276 case WASM_INSTANCE_OBJECT_TYPE:
277 case WASM_MEMORY_OBJECT_TYPE:
278 case WASM_MODULE_OBJECT_TYPE:
279 case WASM_STRUCT_TYPE:
280 case WASM_SUSPENDER_OBJECT_TYPE:
281 case WASM_TABLE_OBJECT_TYPE:
282 case WASM_TAG_OBJECT_TYPE:
283 case WASM_VALUE_OBJECT_TYPE:
284 #endif // V8_ENABLE_WEBASSEMBLY
285 case WEAK_CELL_TYPE:
286 DCHECK(!map.is_callable());
287 DCHECK(!map.is_undetectable());
288 return kOtherObject;
289 case JS_BOUND_FUNCTION_TYPE:
290 DCHECK(!map.is_undetectable());
291 return kBoundFunction;
292 case JS_WRAPPED_FUNCTION_TYPE:
293 DCHECK(!map.is_undetectable());
294 return kOtherCallable;
295 case JS_FUNCTION_TYPE:
296 case JS_PROMISE_CONSTRUCTOR_TYPE:
297 case JS_REG_EXP_CONSTRUCTOR_TYPE:
298 case JS_ARRAY_CONSTRUCTOR_TYPE:
299 #define TYPED_ARRAY_CONSTRUCTORS_SWITCH(Type, type, TYPE, Ctype) \
300 case TYPE##_TYPED_ARRAY_CONSTRUCTOR_TYPE:
301 TYPED_ARRAYS(TYPED_ARRAY_CONSTRUCTORS_SWITCH)
302 #undef TYPED_ARRAY_CONSTRUCTORS_SWITCH
303 DCHECK(!map.is_undetectable());
304 return kCallableFunction;
305 case JS_CLASS_CONSTRUCTOR_TYPE:
306 return kClassConstructor;
307 case JS_PROXY_TYPE:
308 DCHECK(!map.is_undetectable());
309 if (map.is_callable()) return kCallableProxy;
310 return kOtherProxy;
311 case MAP_TYPE:
312 case ALLOCATION_SITE_TYPE:
313 case ACCESSOR_INFO_TYPE:
314 case SHARED_FUNCTION_INFO_TYPE:
315 case FUNCTION_TEMPLATE_INFO_TYPE:
316 case FUNCTION_TEMPLATE_RARE_DATA_TYPE:
317 case ACCESSOR_PAIR_TYPE:
318 case EMBEDDER_DATA_ARRAY_TYPE:
319 case FIXED_ARRAY_TYPE:
320 case PROPERTY_DESCRIPTOR_OBJECT_TYPE:
321 case HASH_TABLE_TYPE:
322 case ORDERED_HASH_MAP_TYPE:
323 case ORDERED_HASH_SET_TYPE:
324 case ORDERED_NAME_DICTIONARY_TYPE:
325 case NAME_DICTIONARY_TYPE:
326 case GLOBAL_DICTIONARY_TYPE:
327 case NUMBER_DICTIONARY_TYPE:
328 case SIMPLE_NUMBER_DICTIONARY_TYPE:
329 case EPHEMERON_HASH_TABLE_TYPE:
330 case WEAK_FIXED_ARRAY_TYPE:
331 case WEAK_ARRAY_LIST_TYPE:
332 case FIXED_DOUBLE_ARRAY_TYPE:
333 case FEEDBACK_METADATA_TYPE:
334 case BYTE_ARRAY_TYPE:
335 case BYTECODE_ARRAY_TYPE:
336 case OBJECT_BOILERPLATE_DESCRIPTION_TYPE:
337 case ARRAY_BOILERPLATE_DESCRIPTION_TYPE:
338 case REG_EXP_BOILERPLATE_DESCRIPTION_TYPE:
339 case TRANSITION_ARRAY_TYPE:
340 case FEEDBACK_CELL_TYPE:
341 case CLOSURE_FEEDBACK_CELL_ARRAY_TYPE:
342 case FEEDBACK_VECTOR_TYPE:
343 case PROPERTY_ARRAY_TYPE:
344 case FOREIGN_TYPE:
345 case SCOPE_INFO_TYPE:
346 case SCRIPT_CONTEXT_TABLE_TYPE:
347 case AWAIT_CONTEXT_TYPE:
348 case BLOCK_CONTEXT_TYPE:
349 case CATCH_CONTEXT_TYPE:
350 case DEBUG_EVALUATE_CONTEXT_TYPE:
351 case EVAL_CONTEXT_TYPE:
352 case FUNCTION_CONTEXT_TYPE:
353 case MODULE_CONTEXT_TYPE:
354 case MODULE_REQUEST_TYPE:
355 case NATIVE_CONTEXT_TYPE:
356 case SCRIPT_CONTEXT_TYPE:
357 case WITH_CONTEXT_TYPE:
358 case SCRIPT_TYPE:
359 case CODE_TYPE:
360 case CODE_DATA_CONTAINER_TYPE:
361 case PROPERTY_CELL_TYPE:
362 case SOURCE_TEXT_MODULE_TYPE:
363 case SOURCE_TEXT_MODULE_INFO_ENTRY_TYPE:
364 case SYNTHETIC_MODULE_TYPE:
365 case CELL_TYPE:
366 case PREPARSE_DATA_TYPE:
367 case UNCOMPILED_DATA_WITHOUT_PREPARSE_DATA_TYPE:
368 case UNCOMPILED_DATA_WITH_PREPARSE_DATA_TYPE:
369 case COVERAGE_INFO_TYPE:
370 #if V8_ENABLE_WEBASSEMBLY
371 case WASM_TYPE_INFO_TYPE:
372 #endif // V8_ENABLE_WEBASSEMBLY
373 return kOtherInternal;
374
375 // Remaining instance types are unsupported for now. If any of them do
376 // require bit set types, they should get kOtherInternal.
377 default:
378 UNREACHABLE();
379 }
380 UNREACHABLE();
381 }
382
383 // Explicit instantiation.
384 template Type::bitset BitsetType::Lub<MapRef>(const MapRef& map);
385
Lub(double value)386 Type::bitset BitsetType::Lub(double value) {
387 DisallowGarbageCollection no_gc;
388 if (IsMinusZero(value)) return kMinusZero;
389 if (std::isnan(value)) return kNaN;
390 if (IsUint32Double(value) || IsInt32Double(value)) return Lub(value, value);
391 return kOtherNumber;
392 }
393
394 // Minimum values of plain numeric bitsets.
395 const BitsetType::Boundary BitsetType::BoundariesArray[] = {
396 {kOtherNumber, kPlainNumber, -V8_INFINITY},
397 {kOtherSigned32, kNegative32, kMinInt},
398 {kNegative31, kNegative31, -0x40000000},
399 {kUnsigned30, kUnsigned30, 0},
400 {kOtherUnsigned31, kUnsigned31, 0x40000000},
401 {kOtherUnsigned32, kUnsigned32, 0x80000000},
402 {kOtherNumber, kPlainNumber, static_cast<double>(kMaxUInt32) + 1}};
403
Boundaries()404 const BitsetType::Boundary* BitsetType::Boundaries() { return BoundariesArray; }
405
BoundariesSize()406 size_t BitsetType::BoundariesSize() {
407 // Windows doesn't like arraysize here.
408 // return arraysize(BoundariesArray);
409 return 7;
410 }
411
ExpandInternals(Type::bitset bits)412 Type::bitset BitsetType::ExpandInternals(Type::bitset bits) {
413 DCHECK_IMPLIES(bits & kOtherString, (bits & kString) == kString);
414 DisallowGarbageCollection no_gc;
415 if (!(bits & kPlainNumber)) return bits; // Shortcut.
416 const Boundary* boundaries = Boundaries();
417 for (size_t i = 0; i < BoundariesSize(); ++i) {
418 DCHECK(BitsetType::Is(boundaries[i].internal, boundaries[i].external));
419 if (bits & boundaries[i].internal) bits |= boundaries[i].external;
420 }
421 return bits;
422 }
423
Lub(double min,double max)424 Type::bitset BitsetType::Lub(double min, double max) {
425 DisallowGarbageCollection no_gc;
426 bitset lub = kNone;
427 const Boundary* mins = Boundaries();
428
429 for (size_t i = 1; i < BoundariesSize(); ++i) {
430 if (min < mins[i].min) {
431 lub |= mins[i - 1].internal;
432 if (max < mins[i].min) return lub;
433 }
434 }
435 return lub | mins[BoundariesSize() - 1].internal;
436 }
437
NumberBits(bitset bits)438 Type::bitset BitsetType::NumberBits(bitset bits) { return bits & kPlainNumber; }
439
Glb(double min,double max)440 Type::bitset BitsetType::Glb(double min, double max) {
441 DisallowGarbageCollection no_gc;
442 bitset glb = kNone;
443 const Boundary* mins = Boundaries();
444
445 // If the range does not touch 0, the bound is empty.
446 if (max < -1 || min > 0) return glb;
447
448 for (size_t i = 1; i + 1 < BoundariesSize(); ++i) {
449 if (min <= mins[i].min) {
450 if (max + 1 < mins[i + 1].min) break;
451 glb |= mins[i].external;
452 }
453 }
454 // OtherNumber also contains float numbers, so it can never be
455 // in the greatest lower bound.
456 return glb & ~(kOtherNumber);
457 }
458
Min(bitset bits)459 double BitsetType::Min(bitset bits) {
460 DisallowGarbageCollection no_gc;
461 DCHECK(Is(bits, kNumber));
462 DCHECK(!Is(bits, kNaN));
463 const Boundary* mins = Boundaries();
464 bool mz = bits & kMinusZero;
465 for (size_t i = 0; i < BoundariesSize(); ++i) {
466 if (Is(mins[i].internal, bits)) {
467 return mz ? std::min(0.0, mins[i].min) : mins[i].min;
468 }
469 }
470 DCHECK(mz);
471 return 0;
472 }
473
Max(bitset bits)474 double BitsetType::Max(bitset bits) {
475 DisallowGarbageCollection no_gc;
476 DCHECK(Is(bits, kNumber));
477 DCHECK(!Is(bits, kNaN));
478 const Boundary* mins = Boundaries();
479 bool mz = bits & kMinusZero;
480 if (BitsetType::Is(mins[BoundariesSize() - 1].internal, bits)) {
481 return +V8_INFINITY;
482 }
483 for (size_t i = BoundariesSize() - 1; i-- > 0;) {
484 if (Is(mins[i].internal, bits)) {
485 return mz ? std::max(0.0, mins[i + 1].min - 1) : mins[i + 1].min - 1;
486 }
487 }
488 DCHECK(mz);
489 return 0;
490 }
491
492 // static
IsOtherNumberConstant(double value)493 bool OtherNumberConstantType::IsOtherNumberConstant(double value) {
494 // Not an integer, not NaN, and not -0.
495 return !std::isnan(value) && !RangeType::IsInteger(value) &&
496 !IsMinusZero(value);
497 }
498
HeapConstantType(BitsetType::bitset bitset,const HeapObjectRef & heap_ref)499 HeapConstantType::HeapConstantType(BitsetType::bitset bitset,
500 const HeapObjectRef& heap_ref)
501 : TypeBase(kHeapConstant), bitset_(bitset), heap_ref_(heap_ref) {}
502
Value() const503 Handle<HeapObject> HeapConstantType::Value() const {
504 return heap_ref_.object();
505 }
506
507 // -----------------------------------------------------------------------------
508 // Predicates.
509
SimplyEquals(Type that) const510 bool Type::SimplyEquals(Type that) const {
511 DisallowGarbageCollection no_gc;
512 if (this->IsHeapConstant()) {
513 return that.IsHeapConstant() &&
514 this->AsHeapConstant()->Value().address() ==
515 that.AsHeapConstant()->Value().address();
516 }
517 if (this->IsOtherNumberConstant()) {
518 return that.IsOtherNumberConstant() &&
519 this->AsOtherNumberConstant()->Value() ==
520 that.AsOtherNumberConstant()->Value();
521 }
522 if (this->IsRange()) {
523 if (that.IsHeapConstant() || that.IsOtherNumberConstant()) return false;
524 }
525 if (this->IsTuple()) {
526 if (!that.IsTuple()) return false;
527 const TupleType* this_tuple = this->AsTuple();
528 const TupleType* that_tuple = that.AsTuple();
529 if (this_tuple->Arity() != that_tuple->Arity()) {
530 return false;
531 }
532 for (int i = 0, n = this_tuple->Arity(); i < n; ++i) {
533 if (!this_tuple->Element(i).Equals(that_tuple->Element(i))) return false;
534 }
535 return true;
536 }
537 UNREACHABLE();
538 }
539
540 // Check if [this] <= [that].
SlowIs(Type that) const541 bool Type::SlowIs(Type that) const {
542 DisallowGarbageCollection no_gc;
543
544 // Fast bitset cases
545 if (that.IsBitset()) {
546 return BitsetType::Is(this->BitsetLub(), that.AsBitset());
547 }
548
549 if (this->IsBitset()) {
550 return BitsetType::Is(this->AsBitset(), that.BitsetGlb());
551 }
552
553 // (T1 \/ ... \/ Tn) <= T if (T1 <= T) /\ ... /\ (Tn <= T)
554 if (this->IsUnion()) {
555 for (int i = 0, n = this->AsUnion()->Length(); i < n; ++i) {
556 if (!this->AsUnion()->Get(i).Is(that)) return false;
557 }
558 return true;
559 }
560
561 // T <= (T1 \/ ... \/ Tn) if (T <= T1) \/ ... \/ (T <= Tn)
562 if (that.IsUnion()) {
563 for (int i = 0, n = that.AsUnion()->Length(); i < n; ++i) {
564 if (this->Is(that.AsUnion()->Get(i))) return true;
565 if (i > 1 && this->IsRange()) return false; // Shortcut.
566 }
567 return false;
568 }
569
570 if (that.IsRange()) {
571 return this->IsRange() && Contains(that.AsRange(), this->AsRange());
572 }
573 if (this->IsRange()) return false;
574
575 return this->SimplyEquals(that);
576 }
577
578 // Check if [this] and [that] overlap.
Maybe(Type that) const579 bool Type::Maybe(Type that) const {
580 DisallowGarbageCollection no_gc;
581
582 if (BitsetType::IsNone(this->BitsetLub() & that.BitsetLub())) return false;
583
584 // (T1 \/ ... \/ Tn) overlaps T if (T1 overlaps T) \/ ... \/ (Tn overlaps T)
585 if (this->IsUnion()) {
586 for (int i = 0, n = this->AsUnion()->Length(); i < n; ++i) {
587 if (this->AsUnion()->Get(i).Maybe(that)) return true;
588 }
589 return false;
590 }
591
592 // T overlaps (T1 \/ ... \/ Tn) if (T overlaps T1) \/ ... \/ (T overlaps Tn)
593 if (that.IsUnion()) {
594 for (int i = 0, n = that.AsUnion()->Length(); i < n; ++i) {
595 if (this->Maybe(that.AsUnion()->Get(i))) return true;
596 }
597 return false;
598 }
599
600 if (this->IsBitset() && that.IsBitset()) return true;
601
602 if (this->IsRange()) {
603 if (that.IsRange()) {
604 return Overlap(this->AsRange(), that.AsRange());
605 }
606 if (that.IsBitset()) {
607 bitset number_bits = BitsetType::NumberBits(that.AsBitset());
608 if (number_bits == BitsetType::kNone) {
609 return false;
610 }
611 double min = std::max(BitsetType::Min(number_bits), this->Min());
612 double max = std::min(BitsetType::Max(number_bits), this->Max());
613 return min <= max;
614 }
615 }
616 if (that.IsRange()) {
617 return that.Maybe(*this); // This case is handled above.
618 }
619
620 if (this->IsBitset() || that.IsBitset()) return true;
621
622 return this->SimplyEquals(that);
623 }
624
625 // Return the range in [this], or [nullptr].
GetRange() const626 Type Type::GetRange() const {
627 DisallowGarbageCollection no_gc;
628 if (this->IsRange()) return *this;
629 if (this->IsUnion() && this->AsUnion()->Get(1).IsRange()) {
630 return this->AsUnion()->Get(1);
631 }
632 return nullptr;
633 }
634
Wellformed() const635 bool UnionType::Wellformed() const {
636 DisallowGarbageCollection no_gc;
637 // This checks the invariants of the union representation:
638 // 1. There are at least two elements.
639 // 2. The first element is a bitset, no other element is a bitset.
640 // 3. At most one element is a range, and it must be the second one.
641 // 4. No element is itself a union.
642 // 5. No element (except the bitset) is a subtype of any other.
643 // 6. If there is a range, then the bitset type does not contain
644 // plain number bits.
645 DCHECK_LE(2, this->Length()); // (1)
646 DCHECK(this->Get(0).IsBitset()); // (2a)
647
648 for (int i = 0; i < this->Length(); ++i) {
649 if (i != 0) DCHECK(!this->Get(i).IsBitset()); // (2b)
650 if (i != 1) DCHECK(!this->Get(i).IsRange()); // (3)
651 DCHECK(!this->Get(i).IsUnion()); // (4)
652 for (int j = 0; j < this->Length(); ++j) {
653 if (i != j && i != 0) DCHECK(!this->Get(i).Is(this->Get(j))); // (5)
654 }
655 }
656 DCHECK(!this->Get(1).IsRange() ||
657 (BitsetType::NumberBits(this->Get(0).AsBitset()) ==
658 BitsetType::kNone)); // (6)
659 return true;
660 }
661
662 // -----------------------------------------------------------------------------
663 // Union and intersection
664
Intersect(Type type1,Type type2,Zone * zone)665 Type Type::Intersect(Type type1, Type type2, Zone* zone) {
666 // Fast case: bit sets.
667 if (type1.IsBitset() && type2.IsBitset()) {
668 return NewBitset(type1.AsBitset() & type2.AsBitset());
669 }
670
671 // Fast case: top or bottom types.
672 if (type1.IsNone() || type2.IsAny()) return type1; // Shortcut.
673 if (type2.IsNone() || type1.IsAny()) return type2; // Shortcut.
674
675 // Semi-fast case.
676 if (type1.Is(type2)) return type1;
677 if (type2.Is(type1)) return type2;
678
679 // Slow case: create union.
680
681 // Semantic subtyping check - this is needed for consistency with the
682 // semi-fast case above.
683 if (type1.Is(type2)) {
684 type2 = Any();
685 } else if (type2.Is(type1)) {
686 type1 = Any();
687 }
688
689 bitset bits = type1.BitsetGlb() & type2.BitsetGlb();
690 int size1 = type1.IsUnion() ? type1.AsUnion()->Length() : 1;
691 int size2 = type2.IsUnion() ? type2.AsUnion()->Length() : 1;
692 int size;
693 if (base::bits::SignedAddOverflow32(size1, size2, &size)) return Any();
694 if (base::bits::SignedAddOverflow32(size, 2, &size)) return Any();
695 UnionType* result = UnionType::New(size, zone);
696 size = 0;
697
698 // Deal with bitsets.
699 result->Set(size++, NewBitset(bits));
700
701 RangeType::Limits lims = RangeType::Limits::Empty();
702 size = IntersectAux(type1, type2, result, size, &lims, zone);
703
704 // If the range is not empty, then insert it into the union and
705 // remove the number bits from the bitset.
706 if (!lims.IsEmpty()) {
707 size = UpdateRange(Type::Range(lims, zone), result, size, zone);
708
709 // Remove the number bits.
710 bitset number_bits = BitsetType::NumberBits(bits);
711 bits &= ~number_bits;
712 result->Set(0, NewBitset(bits));
713 }
714 return NormalizeUnion(result, size, zone);
715 }
716
UpdateRange(Type range,UnionType * result,int size,Zone * zone)717 int Type::UpdateRange(Type range, UnionType* result, int size, Zone* zone) {
718 if (size == 1) {
719 result->Set(size++, range);
720 } else {
721 // Make space for the range.
722 result->Set(size++, result->Get(1));
723 result->Set(1, range);
724 }
725
726 // Remove any components that just got subsumed.
727 for (int i = 2; i < size;) {
728 if (result->Get(i).Is(range)) {
729 result->Set(i, result->Get(--size));
730 } else {
731 ++i;
732 }
733 }
734 return size;
735 }
736
ToLimits(bitset bits,Zone * zone)737 RangeType::Limits Type::ToLimits(bitset bits, Zone* zone) {
738 bitset number_bits = BitsetType::NumberBits(bits);
739
740 if (number_bits == BitsetType::kNone) {
741 return RangeType::Limits::Empty();
742 }
743
744 return RangeType::Limits(BitsetType::Min(number_bits),
745 BitsetType::Max(number_bits));
746 }
747
IntersectRangeAndBitset(Type range,Type bitset,Zone * zone)748 RangeType::Limits Type::IntersectRangeAndBitset(Type range, Type bitset,
749 Zone* zone) {
750 RangeType::Limits range_lims(range.AsRange());
751 RangeType::Limits bitset_lims = ToLimits(bitset.AsBitset(), zone);
752 return RangeType::Limits::Intersect(range_lims, bitset_lims);
753 }
754
IntersectAux(Type lhs,Type rhs,UnionType * result,int size,RangeType::Limits * lims,Zone * zone)755 int Type::IntersectAux(Type lhs, Type rhs, UnionType* result, int size,
756 RangeType::Limits* lims, Zone* zone) {
757 if (lhs.IsUnion()) {
758 for (int i = 0, n = lhs.AsUnion()->Length(); i < n; ++i) {
759 size = IntersectAux(lhs.AsUnion()->Get(i), rhs, result, size, lims, zone);
760 }
761 return size;
762 }
763 if (rhs.IsUnion()) {
764 for (int i = 0, n = rhs.AsUnion()->Length(); i < n; ++i) {
765 size = IntersectAux(lhs, rhs.AsUnion()->Get(i), result, size, lims, zone);
766 }
767 return size;
768 }
769
770 if (BitsetType::IsNone(lhs.BitsetLub() & rhs.BitsetLub())) return size;
771
772 if (lhs.IsRange()) {
773 if (rhs.IsBitset()) {
774 RangeType::Limits lim = IntersectRangeAndBitset(lhs, rhs, zone);
775
776 if (!lim.IsEmpty()) {
777 *lims = RangeType::Limits::Union(lim, *lims);
778 }
779 return size;
780 }
781 if (rhs.IsRange()) {
782 RangeType::Limits lim = RangeType::Limits::Intersect(
783 RangeType::Limits(lhs.AsRange()), RangeType::Limits(rhs.AsRange()));
784 if (!lim.IsEmpty()) {
785 *lims = RangeType::Limits::Union(lim, *lims);
786 }
787 }
788 return size;
789 }
790 if (rhs.IsRange()) {
791 // This case is handled symmetrically above.
792 return IntersectAux(rhs, lhs, result, size, lims, zone);
793 }
794 if (lhs.IsBitset() || rhs.IsBitset()) {
795 return AddToUnion(lhs.IsBitset() ? rhs : lhs, result, size, zone);
796 }
797 if (lhs.SimplyEquals(rhs)) {
798 return AddToUnion(lhs, result, size, zone);
799 }
800 return size;
801 }
802
803 // Make sure that we produce a well-formed range and bitset:
804 // If the range is non-empty, the number bits in the bitset should be
805 // clear. Moreover, if we have a canonical range (such as Signed32),
806 // we want to produce a bitset rather than a range.
NormalizeRangeAndBitset(Type range,bitset * bits,Zone * zone)807 Type Type::NormalizeRangeAndBitset(Type range, bitset* bits, Zone* zone) {
808 // Fast path: If the bitset does not mention numbers, we can just keep the
809 // range.
810 bitset number_bits = BitsetType::NumberBits(*bits);
811 if (number_bits == 0) {
812 return range;
813 }
814
815 // If the range is semantically contained within the bitset, return None and
816 // leave the bitset untouched.
817 bitset range_lub = range.BitsetLub();
818 if (BitsetType::Is(range_lub, *bits)) {
819 return None();
820 }
821
822 // Slow path: reconcile the bitset range and the range.
823 double bitset_min = BitsetType::Min(number_bits);
824 double bitset_max = BitsetType::Max(number_bits);
825
826 double range_min = range.Min();
827 double range_max = range.Max();
828
829 // Remove the number bits from the bitset, they would just confuse us now.
830 // NOTE: bits contains OtherNumber iff bits contains PlainNumber, in which
831 // case we already returned after the subtype check above.
832 *bits &= ~number_bits;
833
834 if (range_min <= bitset_min && range_max >= bitset_max) {
835 // Bitset is contained within the range, just return the range.
836 return range;
837 }
838
839 if (bitset_min < range_min) {
840 range_min = bitset_min;
841 }
842 if (bitset_max > range_max) {
843 range_max = bitset_max;
844 }
845 return Type::Range(range_min, range_max, zone);
846 }
847
Constant(double value,Zone * zone)848 Type Type::Constant(double value, Zone* zone) {
849 if (RangeType::IsInteger(value)) {
850 return Range(value, value, zone);
851 } else if (IsMinusZero(value)) {
852 return Type::MinusZero();
853 } else if (std::isnan(value)) {
854 return Type::NaN();
855 }
856
857 DCHECK(OtherNumberConstantType::IsOtherNumberConstant(value));
858 return OtherNumberConstant(value, zone);
859 }
860
Constant(JSHeapBroker * broker,Handle<i::Object> value,Zone * zone)861 Type Type::Constant(JSHeapBroker* broker, Handle<i::Object> value, Zone* zone) {
862 // TODO(jgruber,chromium:1209798): Using kAssumeMemoryFence works around
863 // the fact that the graph stores handles (and not refs). The assumption is
864 // that any handle inserted into the graph is safe to read; but we don't
865 // preserve the reason why it is safe to read. Thus we must over-approximate
866 // here and assume the existence of a memory fence. In the future, we should
867 // consider having the graph store ObjectRefs or ObjectData pointer instead,
868 // which would make new ref construction here unnecessary.
869 ObjectRef ref = MakeRefAssumeMemoryFence(broker, value);
870 if (ref.IsSmi()) {
871 return Constant(static_cast<double>(ref.AsSmi()), zone);
872 }
873 if (ref.IsHeapNumber()) {
874 return Constant(ref.AsHeapNumber().value(), zone);
875 }
876 if (ref.IsString() && !ref.IsInternalizedString()) {
877 return Type::String();
878 }
879 return HeapConstant(ref.AsHeapObject(), zone);
880 }
881
Union(Type type1,Type type2,Zone * zone)882 Type Type::Union(Type type1, Type type2, Zone* zone) {
883 // Fast case: bit sets.
884 if (type1.IsBitset() && type2.IsBitset()) {
885 return NewBitset(type1.AsBitset() | type2.AsBitset());
886 }
887
888 // Fast case: top or bottom types.
889 if (type1.IsAny() || type2.IsNone()) return type1;
890 if (type2.IsAny() || type1.IsNone()) return type2;
891
892 // Semi-fast case.
893 if (type1.Is(type2)) return type2;
894 if (type2.Is(type1)) return type1;
895
896 // Slow case: create union.
897 int size1 = type1.IsUnion() ? type1.AsUnion()->Length() : 1;
898 int size2 = type2.IsUnion() ? type2.AsUnion()->Length() : 1;
899 int size;
900 if (base::bits::SignedAddOverflow32(size1, size2, &size)) return Any();
901 if (base::bits::SignedAddOverflow32(size, 2, &size)) return Any();
902 UnionType* result = UnionType::New(size, zone);
903 size = 0;
904
905 // Compute the new bitset.
906 bitset new_bitset = type1.BitsetGlb() | type2.BitsetGlb();
907
908 // Deal with ranges.
909 Type range = None();
910 Type range1 = type1.GetRange();
911 Type range2 = type2.GetRange();
912 if (range1 != nullptr && range2 != nullptr) {
913 RangeType::Limits lims =
914 RangeType::Limits::Union(RangeType::Limits(range1.AsRange()),
915 RangeType::Limits(range2.AsRange()));
916 Type union_range = Type::Range(lims, zone);
917 range = NormalizeRangeAndBitset(union_range, &new_bitset, zone);
918 } else if (range1 != nullptr) {
919 range = NormalizeRangeAndBitset(range1, &new_bitset, zone);
920 } else if (range2 != nullptr) {
921 range = NormalizeRangeAndBitset(range2, &new_bitset, zone);
922 }
923 Type bits = NewBitset(new_bitset);
924 result->Set(size++, bits);
925 if (!range.IsNone()) result->Set(size++, range);
926
927 size = AddToUnion(type1, result, size, zone);
928 size = AddToUnion(type2, result, size, zone);
929 return NormalizeUnion(result, size, zone);
930 }
931
932 // Add [type] to [result] unless [type] is bitset, range, or already subsumed.
933 // Return new size of [result].
AddToUnion(Type type,UnionType * result,int size,Zone * zone)934 int Type::AddToUnion(Type type, UnionType* result, int size, Zone* zone) {
935 if (type.IsBitset() || type.IsRange()) return size;
936 if (type.IsUnion()) {
937 for (int i = 0, n = type.AsUnion()->Length(); i < n; ++i) {
938 size = AddToUnion(type.AsUnion()->Get(i), result, size, zone);
939 }
940 return size;
941 }
942 for (int i = 0; i < size; ++i) {
943 if (type.Is(result->Get(i))) return size;
944 }
945 result->Set(size++, type);
946 return size;
947 }
948
NormalizeUnion(UnionType * unioned,int size,Zone * zone)949 Type Type::NormalizeUnion(UnionType* unioned, int size, Zone* zone) {
950 DCHECK_LE(1, size);
951 DCHECK(unioned->Get(0).IsBitset());
952 // If the union has just one element, return it.
953 if (size == 1) {
954 return unioned->Get(0);
955 }
956 bitset bits = unioned->Get(0).AsBitset();
957 // If the union only consists of a range, we can get rid of the union.
958 if (size == 2 && bits == BitsetType::kNone) {
959 if (unioned->Get(1).IsRange()) {
960 return Type::Range(unioned->Get(1).AsRange()->Min(),
961 unioned->Get(1).AsRange()->Max(), zone);
962 }
963 }
964 unioned->Shrink(size);
965 SLOW_DCHECK(unioned->Wellformed());
966 return Type(unioned);
967 }
968
NumConstants() const969 int Type::NumConstants() const {
970 DisallowGarbageCollection no_gc;
971 if (this->IsHeapConstant() || this->IsOtherNumberConstant()) {
972 return 1;
973 } else if (this->IsUnion()) {
974 int result = 0;
975 for (int i = 0, n = this->AsUnion()->Length(); i < n; ++i) {
976 if (this->AsUnion()->Get(i).IsHeapConstant()) ++result;
977 }
978 return result;
979 } else {
980 return 0;
981 }
982 }
983
984 // -----------------------------------------------------------------------------
985 // Printing.
986
Name(bitset bits)987 const char* BitsetType::Name(bitset bits) {
988 switch (bits) {
989 #define RETURN_NAMED_TYPE(type, value) \
990 case k##type: \
991 return #type;
992 PROPER_BITSET_TYPE_LIST(RETURN_NAMED_TYPE)
993 INTERNAL_BITSET_TYPE_LIST(RETURN_NAMED_TYPE)
994 #undef RETURN_NAMED_TYPE
995
996 default:
997 return nullptr;
998 }
999 }
1000
Print(std::ostream & os,bitset bits)1001 void BitsetType::Print(std::ostream& os, bitset bits) {
1002 DisallowGarbageCollection no_gc;
1003 const char* name = Name(bits);
1004 if (name != nullptr) {
1005 os << name;
1006 return;
1007 }
1008
1009 // clang-format off
1010 static const bitset named_bitsets[] = {
1011 #define BITSET_CONSTANT(type, value) k##type,
1012 INTERNAL_BITSET_TYPE_LIST(BITSET_CONSTANT)
1013 PROPER_BITSET_TYPE_LIST(BITSET_CONSTANT)
1014 #undef BITSET_CONSTANT
1015 };
1016 // clang-format on
1017
1018 bool is_first = true;
1019 os << "(";
1020 for (int i(arraysize(named_bitsets) - 1); bits != 0 && i >= 0; --i) {
1021 bitset subset = named_bitsets[i];
1022 if ((bits & subset) == subset) {
1023 if (!is_first) os << " | ";
1024 is_first = false;
1025 os << Name(subset);
1026 bits -= subset;
1027 }
1028 }
1029 DCHECK_EQ(0, bits);
1030 os << ")";
1031 }
1032
PrintTo(std::ostream & os) const1033 void Type::PrintTo(std::ostream& os) const {
1034 DisallowGarbageCollection no_gc;
1035 if (this->IsBitset()) {
1036 BitsetType::Print(os, this->AsBitset());
1037 } else if (this->IsHeapConstant()) {
1038 os << "HeapConstant(" << this->AsHeapConstant()->Ref() << ")";
1039 } else if (this->IsOtherNumberConstant()) {
1040 os << "OtherNumberConstant(" << this->AsOtherNumberConstant()->Value()
1041 << ")";
1042 } else if (this->IsRange()) {
1043 std::ostream::fmtflags saved_flags = os.setf(std::ios::fixed);
1044 std::streamsize saved_precision = os.precision(0);
1045 os << "Range(" << this->AsRange()->Min() << ", " << this->AsRange()->Max()
1046 << ")";
1047 os.flags(saved_flags);
1048 os.precision(saved_precision);
1049 } else if (this->IsUnion()) {
1050 os << "(";
1051 for (int i = 0, n = this->AsUnion()->Length(); i < n; ++i) {
1052 Type type_i = this->AsUnion()->Get(i);
1053 if (i > 0) os << " | ";
1054 os << type_i;
1055 }
1056 os << ")";
1057 } else if (this->IsTuple()) {
1058 os << "<";
1059 for (int i = 0, n = this->AsTuple()->Arity(); i < n; ++i) {
1060 Type type_i = this->AsTuple()->Element(i);
1061 if (i > 0) os << ", ";
1062 os << type_i;
1063 }
1064 os << ">";
1065 } else {
1066 UNREACHABLE();
1067 }
1068 }
1069
1070 #ifdef DEBUG
Print() const1071 void Type::Print() const {
1072 StdoutStream os;
1073 PrintTo(os);
1074 os << std::endl;
1075 }
Print(bitset bits)1076 void BitsetType::Print(bitset bits) {
1077 StdoutStream os;
1078 Print(os, bits);
1079 os << std::endl;
1080 }
1081 #endif
1082
SignedSmall()1083 BitsetType::bitset BitsetType::SignedSmall() {
1084 return SmiValuesAre31Bits() ? kSigned31 : kSigned32;
1085 }
1086
UnsignedSmall()1087 BitsetType::bitset BitsetType::UnsignedSmall() {
1088 return SmiValuesAre31Bits() ? kUnsigned30 : kUnsigned31;
1089 }
1090
1091 // static
Tuple(Type first,Type second,Type third,Zone * zone)1092 Type Type::Tuple(Type first, Type second, Type third, Zone* zone) {
1093 TupleType* tuple = TupleType::New(3, zone);
1094 tuple->InitElement(0, first);
1095 tuple->InitElement(1, second);
1096 tuple->InitElement(2, third);
1097 return FromTypeBase(tuple);
1098 }
1099
1100 // static
OtherNumberConstant(double value,Zone * zone)1101 Type Type::OtherNumberConstant(double value, Zone* zone) {
1102 return FromTypeBase(OtherNumberConstantType::New(value, zone));
1103 }
1104
1105 // static
HeapConstant(const HeapObjectRef & value,Zone * zone)1106 Type Type::HeapConstant(const HeapObjectRef& value, Zone* zone) {
1107 DCHECK(!value.IsHeapNumber());
1108 DCHECK_IMPLIES(value.IsString(), value.IsInternalizedString());
1109 BitsetType::bitset bitset = BitsetType::Lub(value.GetHeapObjectType());
1110 if (Type(bitset).IsSingleton()) return Type(bitset);
1111 return HeapConstantType::New(value, bitset, zone);
1112 }
1113
1114 // static
Range(double min,double max,Zone * zone)1115 Type Type::Range(double min, double max, Zone* zone) {
1116 return FromTypeBase(RangeType::New(min, max, zone));
1117 }
1118
1119 // static
Range(RangeType::Limits lims,Zone * zone)1120 Type Type::Range(RangeType::Limits lims, Zone* zone) {
1121 return FromTypeBase(RangeType::New(lims, zone));
1122 }
1123
AsHeapConstant() const1124 const HeapConstantType* Type::AsHeapConstant() const {
1125 DCHECK(IsKind(TypeBase::kHeapConstant));
1126 return static_cast<const HeapConstantType*>(ToTypeBase());
1127 }
1128
AsOtherNumberConstant() const1129 const OtherNumberConstantType* Type::AsOtherNumberConstant() const {
1130 DCHECK(IsKind(TypeBase::kOtherNumberConstant));
1131 return static_cast<const OtherNumberConstantType*>(ToTypeBase());
1132 }
1133
AsRange() const1134 const RangeType* Type::AsRange() const {
1135 DCHECK(IsKind(TypeBase::kRange));
1136 return static_cast<const RangeType*>(ToTypeBase());
1137 }
1138
AsTuple() const1139 const TupleType* Type::AsTuple() const {
1140 DCHECK(IsKind(TypeBase::kTuple));
1141 return static_cast<const TupleType*>(ToTypeBase());
1142 }
1143
AsUnion() const1144 const UnionType* Type::AsUnion() const {
1145 DCHECK(IsKind(TypeBase::kUnion));
1146 return static_cast<const UnionType*>(ToTypeBase());
1147 }
1148
operator <<(std::ostream & os,Type type)1149 std::ostream& operator<<(std::ostream& os, Type type) {
1150 type.PrintTo(os);
1151 return os;
1152 }
1153
AllocateOnHeap(Factory * factory)1154 Handle<TurbofanType> Type::AllocateOnHeap(Factory* factory) {
1155 DCHECK(CanBeAsserted());
1156 if (IsBitset()) {
1157 const bitset bits = AsBitset();
1158 uint32_t low = bits & 0xffffffff;
1159 uint32_t high = (bits >> 32) & 0xffffffff;
1160 return factory->NewTurbofanBitsetType(low, high, AllocationType::kYoung);
1161 } else if (IsUnion()) {
1162 const UnionType* union_type = AsUnion();
1163 Handle<TurbofanType> result = union_type->Get(0).AllocateOnHeap(factory);
1164 for (int i = 1; i < union_type->Length(); ++i) {
1165 result = factory->NewTurbofanUnionType(
1166 result, union_type->Get(i).AllocateOnHeap(factory),
1167 AllocationType::kYoung);
1168 }
1169 return result;
1170 } else if (IsHeapConstant()) {
1171 return factory->NewTurbofanHeapConstantType(AsHeapConstant()->Value(),
1172 AllocationType::kYoung);
1173 } else if (IsOtherNumberConstant()) {
1174 return factory->NewTurbofanOtherNumberConstantType(
1175 AsOtherNumberConstant()->Value(), AllocationType::kYoung);
1176 } else if (IsRange()) {
1177 return factory->NewTurbofanRangeType(AsRange()->Min(), AsRange()->Max(),
1178 AllocationType::kYoung);
1179 } else {
1180 // Other types are not supported for type assertions.
1181 UNREACHABLE();
1182 }
1183 }
1184
1185 #define VERIFY_TORQUE_LOW_BITSET_AGREEMENT(Name, _) \
1186 STATIC_ASSERT(static_cast<uint32_t>(BitsetType::k##Name) == \
1187 static_cast<uint32_t>(TurbofanTypeLowBits::k##Name));
1188 #define VERIFY_TORQUE_HIGH_BITSET_AGREEMENT(Name, _) \
1189 STATIC_ASSERT(static_cast<uint32_t>( \
1190 static_cast<uint64_t>(BitsetType::k##Name) >> 32) == \
1191 static_cast<uint32_t>(TurbofanTypeHighBits::k##Name));
1192 INTERNAL_BITSET_TYPE_LIST(VERIFY_TORQUE_LOW_BITSET_AGREEMENT)
1193 PROPER_ATOMIC_BITSET_TYPE_LOW_LIST(VERIFY_TORQUE_LOW_BITSET_AGREEMENT)
1194 PROPER_ATOMIC_BITSET_TYPE_HIGH_LIST(VERIFY_TORQUE_HIGH_BITSET_AGREEMENT)
1195 #undef VERIFY_TORQUE_HIGH_BITSET_AGREEMENT
1196 #undef VERIFY_TORQUE_LOW_BITSET_AGREEMENT
1197
1198 } // namespace compiler
1199 } // namespace internal
1200 } // namespace v8
1201