1 // Copyright 2012 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 #ifndef V8_OBJECTS_PROPERTY_DETAILS_H_
6 #define V8_OBJECTS_PROPERTY_DETAILS_H_
7
8 #include "include/v8.h"
9 #include "src/utils/allocation.h"
10 // TODO(bmeurer): Remove once FLAG_modify_field_representation_inplace is gone.
11 #include "src/base/bit-field.h"
12 #include "src/flags/flags.h"
13
14 namespace v8 {
15 namespace internal {
16
17 // ES6 6.1.7.1
18 enum PropertyAttributes {
19 NONE = ::v8::None,
20 READ_ONLY = ::v8::ReadOnly,
21 DONT_ENUM = ::v8::DontEnum,
22 DONT_DELETE = ::v8::DontDelete,
23
24 ALL_ATTRIBUTES_MASK = READ_ONLY | DONT_ENUM | DONT_DELETE,
25
26 SEALED = DONT_DELETE,
27 FROZEN = SEALED | READ_ONLY,
28
29 ABSENT = 64, // Used in runtime to indicate a property is absent.
30 // ABSENT can never be stored in or returned from a descriptor's attributes
31 // bitfield. It is only used as a return value meaning the attributes of
32 // a non-existent property.
33 };
34
35 enum PropertyFilter {
36 ALL_PROPERTIES = 0,
37 ONLY_WRITABLE = 1,
38 ONLY_ENUMERABLE = 2,
39 ONLY_CONFIGURABLE = 4,
40 SKIP_STRINGS = 8,
41 SKIP_SYMBOLS = 16,
42 ONLY_ALL_CAN_READ = 32,
43 PRIVATE_NAMES_ONLY = 64,
44 ENUMERABLE_STRINGS = ONLY_ENUMERABLE | SKIP_SYMBOLS,
45 };
46 // Enable fast comparisons of PropertyAttributes against PropertyFilters.
47 STATIC_ASSERT(ALL_PROPERTIES == static_cast<PropertyFilter>(NONE));
48 STATIC_ASSERT(ONLY_WRITABLE == static_cast<PropertyFilter>(READ_ONLY));
49 STATIC_ASSERT(ONLY_ENUMERABLE == static_cast<PropertyFilter>(DONT_ENUM));
50 STATIC_ASSERT(ONLY_CONFIGURABLE == static_cast<PropertyFilter>(DONT_DELETE));
51 STATIC_ASSERT(((SKIP_STRINGS | SKIP_SYMBOLS | ONLY_ALL_CAN_READ) &
52 ALL_ATTRIBUTES_MASK) == 0);
53 STATIC_ASSERT(ALL_PROPERTIES ==
54 static_cast<PropertyFilter>(v8::PropertyFilter::ALL_PROPERTIES));
55 STATIC_ASSERT(ONLY_WRITABLE ==
56 static_cast<PropertyFilter>(v8::PropertyFilter::ONLY_WRITABLE));
57 STATIC_ASSERT(ONLY_ENUMERABLE ==
58 static_cast<PropertyFilter>(v8::PropertyFilter::ONLY_ENUMERABLE));
59 STATIC_ASSERT(ONLY_CONFIGURABLE == static_cast<PropertyFilter>(
60 v8::PropertyFilter::ONLY_CONFIGURABLE));
61 STATIC_ASSERT(SKIP_STRINGS ==
62 static_cast<PropertyFilter>(v8::PropertyFilter::SKIP_STRINGS));
63 STATIC_ASSERT(SKIP_SYMBOLS ==
64 static_cast<PropertyFilter>(v8::PropertyFilter::SKIP_SYMBOLS));
65
66 class Smi;
67 class TypeInfo;
68
69 // Order of kinds is significant.
70 // Must fit in the BitField PropertyDetails::KindField.
71 enum PropertyKind { kData = 0, kAccessor = 1 };
72
73 // Order of modes is significant.
74 // Must fit in the BitField PropertyDetails::LocationField.
75 enum PropertyLocation { kField = 0, kDescriptor = 1 };
76
77 // Order of modes is significant.
78 // Must fit in the BitField PropertyDetails::ConstnessField.
79 enum class PropertyConstness { kMutable = 0, kConst = 1 };
80
81 class Representation {
82 public:
83 enum Kind { kNone, kSmi, kDouble, kHeapObject, kTagged, kNumRepresentations };
84
Representation()85 Representation() : kind_(kNone) {}
86
None()87 static Representation None() { return Representation(kNone); }
Tagged()88 static Representation Tagged() { return Representation(kTagged); }
Smi()89 static Representation Smi() { return Representation(kSmi); }
Double()90 static Representation Double() { return Representation(kDouble); }
HeapObject()91 static Representation HeapObject() { return Representation(kHeapObject); }
92
FromKind(Kind kind)93 static Representation FromKind(Kind kind) { return Representation(kind); }
94
Equals(const Representation & other)95 bool Equals(const Representation& other) const {
96 return kind_ == other.kind_;
97 }
98
IsCompatibleForLoad(const Representation & other)99 bool IsCompatibleForLoad(const Representation& other) const {
100 return IsDouble() == other.IsDouble();
101 }
102
IsCompatibleForStore(const Representation & other)103 bool IsCompatibleForStore(const Representation& other) const {
104 return Equals(other);
105 }
106
CanBeInPlaceChangedTo(const Representation & other)107 bool CanBeInPlaceChangedTo(const Representation& other) const {
108 // If it's just a representation generalization case (i.e. property kind and
109 // attributes stays unchanged) it's fine to transition from None to anything
110 // but double without any modification to the object, because the default
111 // uninitialized value for representation None can be overwritten by both
112 // smi and tagged values. Doubles, however, would require a box allocation.
113 if (IsNone()) return !other.IsDouble();
114 if (!FLAG_modify_field_representation_inplace) return false;
115 return (IsSmi() || (!FLAG_unbox_double_fields && IsDouble()) ||
116 IsHeapObject()) &&
117 other.IsTagged();
118 }
119
120 // Return the most generic representation that this representation can be
121 // changed to in-place. If in-place representation changes are disabled, then
122 // this will return the current representation.
MostGenericInPlaceChange()123 Representation MostGenericInPlaceChange() const {
124 if (!FLAG_modify_field_representation_inplace) return *this;
125 // Everything but unboxed doubles can be in-place changed to Tagged.
126 if (FLAG_unbox_double_fields && IsDouble()) return Representation::Double();
127 return Representation::Tagged();
128 }
129
is_more_general_than(const Representation & other)130 bool is_more_general_than(const Representation& other) const {
131 if (IsHeapObject()) return other.IsNone();
132 return kind_ > other.kind_;
133 }
134
fits_into(const Representation & other)135 bool fits_into(const Representation& other) const {
136 return other.is_more_general_than(*this) || other.Equals(*this);
137 }
138
generalize(Representation other)139 Representation generalize(Representation other) {
140 if (other.fits_into(*this)) return *this;
141 if (other.is_more_general_than(*this)) return other;
142 return Representation::Tagged();
143 }
144
size()145 int size() const {
146 DCHECK(!IsNone());
147 if (IsDouble()) return kDoubleSize;
148 DCHECK(IsTagged() || IsSmi() || IsHeapObject());
149 return kTaggedSize;
150 }
151
kind()152 Kind kind() const { return static_cast<Kind>(kind_); }
IsNone()153 bool IsNone() const { return kind_ == kNone; }
IsTagged()154 bool IsTagged() const { return kind_ == kTagged; }
IsSmi()155 bool IsSmi() const { return kind_ == kSmi; }
IsSmiOrTagged()156 bool IsSmiOrTagged() const { return IsSmi() || IsTagged(); }
IsDouble()157 bool IsDouble() const { return kind_ == kDouble; }
IsHeapObject()158 bool IsHeapObject() const { return kind_ == kHeapObject; }
159
Mnemonic()160 const char* Mnemonic() const {
161 switch (kind_) {
162 case kNone:
163 return "v";
164 case kTagged:
165 return "t";
166 case kSmi:
167 return "s";
168 case kDouble:
169 return "d";
170 case kHeapObject:
171 return "h";
172 }
173 UNREACHABLE();
174 }
175
176 private:
Representation(Kind k)177 explicit Representation(Kind k) : kind_(k) {}
178
179 // Make sure kind fits in int8.
180 STATIC_ASSERT(kNumRepresentations <= (1 << kBitsPerByte));
181
182 int8_t kind_;
183 };
184
185 static const int kDescriptorIndexBitCount = 10;
186 static const int kFirstInobjectPropertyOffsetBitCount = 7;
187 // The maximum number of descriptors we want in a descriptor array. It should
188 // fit in a page and also the following should hold:
189 // kMaxNumberOfDescriptors + kFieldsAdded <= PropertyArray::kMaxLength.
190 static const int kMaxNumberOfDescriptors = (1 << kDescriptorIndexBitCount) - 4;
191 static const int kInvalidEnumCacheSentinel =
192 (1 << kDescriptorIndexBitCount) - 1;
193
194 enum class PropertyCellType {
195 // Meaningful when a property cell does not contain the hole.
196 kUndefined, // The PREMONOMORPHIC of property cells.
197 kConstant, // Cell has been assigned only once.
198 kConstantType, // Cell has been assigned only one type.
199 kMutable, // Cell will no longer be tracked as constant.
200
201 // Meaningful when a property cell contains the hole.
202 kUninitialized = kUndefined, // Cell has never been initialized.
203 kInvalidated = kConstant, // Cell has been deleted, invalidated or never
204 // existed.
205
206 // For dictionaries not holding cells.
207 kNoCell = kMutable,
208 };
209
210 enum class PropertyCellConstantType {
211 kSmi,
212 kStableMap,
213 };
214
215 // PropertyDetails captures type and attributes for a property.
216 // They are used both in property dictionaries and instance descriptors.
217 class PropertyDetails {
218 public:
219 // Property details for dictionary mode properties/elements.
220 PropertyDetails(PropertyKind kind, PropertyAttributes attributes,
221 PropertyCellType cell_type, int dictionary_index = 0) {
222 value_ = KindField::encode(kind) | LocationField::encode(kField) |
223 AttributesField::encode(attributes) |
224 DictionaryStorageField::encode(dictionary_index) |
225 PropertyCellTypeField::encode(cell_type);
226 }
227
228 // Property details for fast mode properties.
229 PropertyDetails(PropertyKind kind, PropertyAttributes attributes,
230 PropertyLocation location, PropertyConstness constness,
231 Representation representation, int field_index = 0) {
232 value_ = KindField::encode(kind) | AttributesField::encode(attributes) |
233 LocationField::encode(location) |
234 ConstnessField::encode(constness) |
235 RepresentationField::encode(EncodeRepresentation(representation)) |
236 FieldIndexField::encode(field_index);
237 }
238
239 static PropertyDetails Empty(
240 PropertyCellType cell_type = PropertyCellType::kNoCell) {
241 return PropertyDetails(kData, NONE, cell_type);
242 }
243
pointer()244 int pointer() const { return DescriptorPointer::decode(value_); }
245
set_pointer(int i)246 PropertyDetails set_pointer(int i) const {
247 return PropertyDetails(value_, i);
248 }
249
set_cell_type(PropertyCellType type)250 PropertyDetails set_cell_type(PropertyCellType type) const {
251 PropertyDetails details = *this;
252 details.value_ = PropertyCellTypeField::update(details.value_, type);
253 return details;
254 }
255
set_index(int index)256 PropertyDetails set_index(int index) const {
257 PropertyDetails details = *this;
258 details.value_ = DictionaryStorageField::update(details.value_, index);
259 return details;
260 }
261
CopyWithRepresentation(Representation representation)262 PropertyDetails CopyWithRepresentation(Representation representation) const {
263 return PropertyDetails(value_, representation);
264 }
CopyWithConstness(PropertyConstness constness)265 PropertyDetails CopyWithConstness(PropertyConstness constness) const {
266 return PropertyDetails(value_, constness);
267 }
CopyAddAttributes(PropertyAttributes new_attributes)268 PropertyDetails CopyAddAttributes(PropertyAttributes new_attributes) const {
269 new_attributes =
270 static_cast<PropertyAttributes>(attributes() | new_attributes);
271 return PropertyDetails(value_, new_attributes);
272 }
273
274 // Conversion for storing details as Object.
275 explicit inline PropertyDetails(Smi smi);
276 inline Smi AsSmi() const;
277
EncodeRepresentation(Representation representation)278 static uint8_t EncodeRepresentation(Representation representation) {
279 return representation.kind();
280 }
281
DecodeRepresentation(uint32_t bits)282 static Representation DecodeRepresentation(uint32_t bits) {
283 return Representation::FromKind(static_cast<Representation::Kind>(bits));
284 }
285
kind()286 PropertyKind kind() const { return KindField::decode(value_); }
location()287 PropertyLocation location() const { return LocationField::decode(value_); }
constness()288 PropertyConstness constness() const { return ConstnessField::decode(value_); }
289
attributes()290 PropertyAttributes attributes() const {
291 return AttributesField::decode(value_);
292 }
293
HasKindAndAttributes(PropertyKind kind,PropertyAttributes attributes)294 bool HasKindAndAttributes(PropertyKind kind, PropertyAttributes attributes) {
295 return (value_ & (KindField::kMask | AttributesField::kMask)) ==
296 (KindField::encode(kind) | AttributesField::encode(attributes));
297 }
298
dictionary_index()299 int dictionary_index() const {
300 return DictionaryStorageField::decode(value_);
301 }
302
representation()303 Representation representation() const {
304 return DecodeRepresentation(RepresentationField::decode(value_));
305 }
306
field_index()307 int field_index() const { return FieldIndexField::decode(value_); }
308
309 inline int field_width_in_words() const;
310
IsValidIndex(int index)311 static bool IsValidIndex(int index) {
312 return DictionaryStorageField::is_valid(index);
313 }
314
IsReadOnly()315 bool IsReadOnly() const { return (attributes() & READ_ONLY) != 0; }
IsConfigurable()316 bool IsConfigurable() const { return (attributes() & DONT_DELETE) == 0; }
IsDontEnum()317 bool IsDontEnum() const { return (attributes() & DONT_ENUM) != 0; }
IsEnumerable()318 bool IsEnumerable() const { return !IsDontEnum(); }
cell_type()319 PropertyCellType cell_type() const {
320 return PropertyCellTypeField::decode(value_);
321 }
322
323 // Bit fields in value_ (type, shift, size). Must be public so the
324 // constants can be embedded in generated code.
325 using KindField = base::BitField<PropertyKind, 0, 1>;
326 using LocationField = KindField::Next<PropertyLocation, 1>;
327 using ConstnessField = LocationField::Next<PropertyConstness, 1>;
328 using AttributesField = ConstnessField::Next<PropertyAttributes, 3>;
329 static const int kAttributesReadOnlyMask =
330 (READ_ONLY << AttributesField::kShift);
331 static const int kAttributesDontDeleteMask =
332 (DONT_DELETE << AttributesField::kShift);
333 static const int kAttributesDontEnumMask =
334 (DONT_ENUM << AttributesField::kShift);
335
336 // Bit fields for normalized objects.
337 using PropertyCellTypeField = AttributesField::Next<PropertyCellType, 2>;
338 using DictionaryStorageField = PropertyCellTypeField::Next<uint32_t, 23>;
339
340 // Bit fields for fast objects.
341 using RepresentationField = AttributesField::Next<uint32_t, 3>;
342 using DescriptorPointer =
343 RepresentationField::Next<uint32_t, kDescriptorIndexBitCount>;
344 using FieldIndexField =
345 DescriptorPointer::Next<uint32_t, kDescriptorIndexBitCount>;
346
347 // All bits for both fast and slow objects must fit in a smi.
348 STATIC_ASSERT(DictionaryStorageField::kLastUsedBit < 31);
349 STATIC_ASSERT(FieldIndexField::kLastUsedBit < 31);
350
351 static const int kInitialIndex = 1;
352
353 #ifdef OBJECT_PRINT
354 // For our gdb macros, we should perhaps change these in the future.
355 void Print(bool dictionary_mode);
356 #endif
357
358 enum PrintMode {
359 kPrintAttributes = 1 << 0,
360 kPrintFieldIndex = 1 << 1,
361 kPrintRepresentation = 1 << 2,
362 kPrintPointer = 1 << 3,
363
364 kForProperties = kPrintFieldIndex,
365 kForTransitions = kPrintAttributes,
366 kPrintFull = -1,
367 };
368 void PrintAsSlowTo(std::ostream& out);
369 void PrintAsFastTo(std::ostream& out, PrintMode mode = kPrintFull);
370
371 private:
PropertyDetails(int value,int pointer)372 PropertyDetails(int value, int pointer) {
373 value_ = DescriptorPointer::update(value, pointer);
374 }
PropertyDetails(int value,Representation representation)375 PropertyDetails(int value, Representation representation) {
376 value_ = RepresentationField::update(value,
377 EncodeRepresentation(representation));
378 }
PropertyDetails(int value,PropertyConstness constness)379 PropertyDetails(int value, PropertyConstness constness) {
380 value_ = ConstnessField::update(value, constness);
381 }
PropertyDetails(int value,PropertyAttributes attributes)382 PropertyDetails(int value, PropertyAttributes attributes) {
383 value_ = AttributesField::update(value, attributes);
384 }
385
386 uint32_t value_;
387 };
388
389 // kField location is more general than kDescriptor, kDescriptor generalizes
390 // only to itself.
IsGeneralizableTo(PropertyLocation a,PropertyLocation b)391 inline bool IsGeneralizableTo(PropertyLocation a, PropertyLocation b) {
392 return b == kField || a == kDescriptor;
393 }
394
395 // PropertyConstness::kMutable constness is more general than
396 // VariableMode::kConst, VariableMode::kConst generalizes only to itself.
IsGeneralizableTo(PropertyConstness a,PropertyConstness b)397 inline bool IsGeneralizableTo(PropertyConstness a, PropertyConstness b) {
398 return b == PropertyConstness::kMutable || a == PropertyConstness::kConst;
399 }
400
GeneralizeConstness(PropertyConstness a,PropertyConstness b)401 inline PropertyConstness GeneralizeConstness(PropertyConstness a,
402 PropertyConstness b) {
403 return a == PropertyConstness::kMutable ? PropertyConstness::kMutable : b;
404 }
405
406 V8_EXPORT_PRIVATE std::ostream& operator<<(
407 std::ostream& os, const PropertyAttributes& attributes);
408 V8_EXPORT_PRIVATE std::ostream& operator<<(std::ostream& os,
409 PropertyConstness constness);
410 } // namespace internal
411 } // namespace v8
412
413 #endif // V8_OBJECTS_PROPERTY_DETAILS_H_
414